1 /* SPDX-License-Identifier: GPL-2.0 */ 2 /* 3 * BPF extensible scheduler class: Documentation/scheduler/sched-ext.rst 4 * 5 * Copyright (c) 2022 Meta Platforms, Inc. and affiliates. 6 * Copyright (c) 2022 Tejun Heo <tj@kernel.org> 7 * Copyright (c) 2022 David Vernet <dvernet@meta.com> 8 */ 9 #include <linux/bitmap.h> 10 #include <linux/btf_ids.h> 11 #include <linux/rhashtable.h> 12 #include <linux/sched/clock.h> 13 #include <linux/sched/isolation.h> 14 #include <linux/suspend.h> 15 #include <linux/sysrq.h> 16 17 #include "../pelt.h" 18 #include "internal.h" 19 #include "cid.h" 20 #include "arena.h" 21 #include "idle.h" 22 #include "sub.h" 23 #include "inlines.h" 24 25 DEFINE_RAW_SPINLOCK(scx_sched_lock); 26 27 /* 28 * NOTE: sched_ext is in the process of growing multiple scheduler support and 29 * scx_root usage is in a transitional state. Naked dereferences are safe if the 30 * caller is one of the tasks attached to SCX and explicit RCU dereference is 31 * necessary otherwise. Naked scx_root dereferences trigger sparse warnings but 32 * are used as temporary markers to indicate that the dereferences need to be 33 * updated to point to the associated scheduler instances rather than scx_root. 34 */ 35 struct scx_sched __rcu *scx_root; 36 37 /* 38 * All scheds, writers must hold both scx_enable_mutex and scx_sched_lock. 39 * Readers can hold either or rcu_read_lock(). 40 */ 41 LIST_HEAD(scx_sched_all); 42 43 #ifdef CONFIG_EXT_SUB_SCHED 44 const struct rhashtable_params scx_sched_hash_params = { 45 .key_len = sizeof_field(struct scx_sched, ops.sub_cgroup_id), 46 .key_offset = offsetof(struct scx_sched, ops.sub_cgroup_id), 47 .head_offset = offsetof(struct scx_sched, hash_node), 48 .insecure_elasticity = true, /* inserted under scx_sched_lock */ 49 }; 50 51 struct rhashtable scx_sched_hash; 52 #endif 53 54 /* see SCX_OPS_TID_TO_TASK */ 55 static const struct rhashtable_params scx_tid_hash_params = { 56 .key_len = sizeof_field(struct sched_ext_entity, tid), 57 .key_offset = offsetof(struct sched_ext_entity, tid), 58 .head_offset = offsetof(struct sched_ext_entity, tid_hash_node), 59 .insecure_elasticity = true, /* inserted/removed under scx_tasks_lock */ 60 }; 61 static struct rhashtable scx_tid_hash; 62 63 /* 64 * During exit, a task may schedule after losing its PIDs. When disabling the 65 * BPF scheduler, we need to be able to iterate tasks in every state to 66 * guarantee system safety. Maintain a dedicated task list which contains every 67 * task between its fork and eventual free. 68 */ 69 static DEFINE_RAW_SPINLOCK(scx_tasks_lock); 70 static LIST_HEAD(scx_tasks); 71 72 /* ops enable/disable */ 73 DEFINE_MUTEX(scx_enable_mutex); 74 DEFINE_STATIC_KEY_FALSE(__scx_enabled); 75 DEFINE_PERCPU_RWSEM(scx_fork_rwsem); 76 static atomic_t scx_enable_state_var = ATOMIC_INIT(SCX_DISABLED); 77 static DEFINE_RAW_SPINLOCK(scx_bypass_lock); 78 static bool scx_init_task_enabled; 79 static bool scx_switching_all; 80 DEFINE_STATIC_KEY_FALSE(__scx_switched_all); 81 static DEFINE_STATIC_KEY_FALSE(__scx_tid_to_task_enabled); 82 83 /* 84 * Gates cgroup ops delivery. Set at the end of the cgroup init phase of root 85 * enable and cleared before root disable starts tearing down tasks, both under 86 * scx_cgroup_lock(). Holding cgroup_lock() and seeing %true guarantees no race 87 * against root tearing down tasks. 88 */ 89 bool scx_cgroup_enabled; 90 91 /* 92 * True once SCX_OPS_TID_TO_TASK has been negotiated with the root scheduler 93 * and the tid->task table is live. Wraps the static key so callers don't 94 * take the address, and hints "likely enabled" for the common case where 95 * the feature is in use. 96 */ 97 static inline bool scx_tid_to_task_enabled(void) 98 { 99 return static_branch_likely(&__scx_tid_to_task_enabled); 100 } 101 102 static atomic_long_t scx_nr_rejected = ATOMIC_LONG_INIT(0); 103 static atomic_long_t scx_hotplug_seq = ATOMIC_LONG_INIT(0); 104 105 /* Global cursor for the per-CPU tid allocator. Starts at 1; tid 0 is reserved. */ 106 static atomic64_t scx_tid_cursor = ATOMIC64_INIT(1); 107 108 /* is @dsq synchronized by the containing rq lock instead of dsq->lock? */ 109 static bool dsq_is_rq_owned(struct scx_dispatch_q *dsq) 110 { 111 switch (dsq->id) { 112 case SCX_DSQ_LOCAL: 113 case SCX_DSQ_REJECT: 114 case SCX_DSQ_RESCUE: 115 return true; 116 default: 117 return false; 118 } 119 } 120 121 /* Cursor for unique scx_sched instance ids. id 0 is reserved. */ 122 static atomic64_t scx_sched_id_cursor = ATOMIC64_INIT(0); 123 124 #ifdef CONFIG_EXT_SUB_SCHED 125 /* 126 * The sub sched being enabled. Used by scx_disable_and_exit_task() to exit 127 * tasks for the sub-sched being enabled. Use a global variable instead of a 128 * per-task field as all enables are serialized. 129 */ 130 struct scx_sched *scx_enabling_sub_sched; 131 #else 132 #define scx_enabling_sub_sched (struct scx_sched *)NULL 133 #endif /* CONFIG_EXT_SUB_SCHED */ 134 135 /* 136 * A monotonically increasing sequence number that is incremented every time a 137 * scheduler is enabled. This can be used to check if any custom sched_ext 138 * scheduler has ever been used in the system. 139 */ 140 static atomic_long_t scx_enable_seq = ATOMIC_LONG_INIT(0); 141 142 /* 143 * Watchdog interval. All scx_sched's share a single watchdog timer and the 144 * interval is half of the shortest sch->watchdog_timeout. 145 */ 146 static unsigned long scx_watchdog_interval; 147 148 /* 149 * The last time the delayed work was run. This delayed work relies on 150 * ksoftirqd being able to run to service timer interrupts, so it's possible 151 * that this work itself could get wedged. To account for this, we check that 152 * it's not stalled in the timer tick, and trigger an error if it is. 153 */ 154 static unsigned long scx_watchdog_timestamp = INITIAL_JIFFIES; 155 156 static struct delayed_work scx_watchdog_work; 157 158 /* 159 * For %SCX_KICK_WAIT: Each CPU has a pointer to an array of kick_sync sequence 160 * numbers. The arrays are allocated with kvzalloc() as size can exceed percpu 161 * allocator limits on large machines. O(nr_cpu_ids^2) allocation, allocated 162 * lazily when enabling and freed when disabling to avoid waste when sched_ext 163 * isn't active. 164 */ 165 struct scx_kick_syncs { 166 struct rcu_head rcu; 167 unsigned long syncs[]; 168 }; 169 170 static DEFINE_PER_CPU(struct scx_kick_syncs __rcu *, scx_kick_syncs); 171 172 /* 173 * Per-CPU buffered allocator state for p->scx.tid. Each CPU pulls a chunk of 174 * SCX_TID_CHUNK ids from scx_tid_cursor and hands them out locally without 175 * further synchronization. See scx_alloc_tid(). 176 */ 177 struct scx_tid_alloc { 178 u64 next; 179 u64 end; 180 }; 181 static DEFINE_PER_CPU(struct scx_tid_alloc, scx_tid_alloc); 182 183 /* 184 * Direct dispatch marker. 185 * 186 * Non-NULL values are used for direct dispatch from enqueue path. A valid 187 * pointer points to the task currently being enqueued. An ERR_PTR value is used 188 * to indicate that direct dispatch has already happened. 189 */ 190 static DEFINE_PER_CPU(struct task_struct *, direct_dispatch_task); 191 192 static const struct rhashtable_params dsq_hash_params = { 193 .key_len = sizeof_field(struct scx_dispatch_q, id), 194 .key_offset = offsetof(struct scx_dispatch_q, id), 195 .head_offset = offsetof(struct scx_dispatch_q, hash_node), 196 }; 197 198 static LLIST_HEAD(dsqs_to_free); 199 200 /* ops debug dump */ 201 static DEFINE_RAW_SPINLOCK(scx_dump_lock); 202 203 struct scx_dump_data { 204 s32 cpu; 205 bool first; 206 s32 cursor; 207 struct seq_buf *s; 208 const char *prefix; 209 struct scx_bstr_buf buf; 210 }; 211 212 static struct scx_dump_data scx_dump_data = { 213 .cpu = -1, 214 }; 215 216 /* /sys/kernel/sched_ext interface */ 217 static struct kset *scx_kset; 218 219 /* 220 * Parameters that can be adjusted through /sys/module/sched_ext/parameters. 221 * There usually is no reason to modify these as normal scheduler operation 222 * shouldn't be affected by them. The knobs are primarily for debugging. 223 */ 224 static unsigned int scx_slice_bypass_us = SCX_SLICE_BYPASS / NSEC_PER_USEC; 225 static unsigned int scx_bypass_lb_intv_us = SCX_BYPASS_LB_DFL_INTV_US; 226 227 static int set_slice_us(const char *val, const struct kernel_param *kp) 228 { 229 return param_set_uint_minmax(val, kp, 100, 100 * USEC_PER_MSEC); 230 } 231 232 static const struct kernel_param_ops slice_us_param_ops = { 233 .set = set_slice_us, 234 .get = param_get_uint, 235 }; 236 237 static int set_bypass_lb_intv_us(const char *val, const struct kernel_param *kp) 238 { 239 return param_set_uint_minmax(val, kp, 0, 10 * USEC_PER_SEC); 240 } 241 242 static const struct kernel_param_ops bypass_lb_intv_us_param_ops = { 243 .set = set_bypass_lb_intv_us, 244 .get = param_get_uint, 245 }; 246 247 #undef MODULE_PARAM_PREFIX 248 #define MODULE_PARAM_PREFIX "sched_ext." 249 250 module_param_cb(slice_bypass_us, &slice_us_param_ops, &scx_slice_bypass_us, 0600); 251 MODULE_PARM_DESC(slice_bypass_us, "bypass slice in microseconds, applied on [un]load (100us to 100ms)"); 252 module_param_cb(bypass_lb_intv_us, &bypass_lb_intv_us_param_ops, &scx_bypass_lb_intv_us, 0600); 253 MODULE_PARM_DESC(bypass_lb_intv_us, "bypass load balance interval in microseconds (0 (disable) to 10s)"); 254 255 #undef MODULE_PARAM_PREFIX 256 257 #define CREATE_TRACE_POINTS 258 #include <trace/events/sched_ext.h> 259 260 static void run_deferred(struct rq *rq); 261 static bool task_dead_and_done(struct task_struct *p); 262 static void scx_disable(struct scx_sched *sch, enum scx_exit_kind kind); 263 264 __printf(5, 6) bool __scx_exit(struct scx_sched *sch, 265 enum scx_exit_kind kind, s64 exit_code, 266 s32 exit_cpu, const char *fmt, ...) 267 { 268 va_list args; 269 bool ret; 270 271 va_start(args, fmt); 272 ret = scx_vexit(sch, kind, exit_code, exit_cpu, fmt, args); 273 va_end(args); 274 275 return ret; 276 } 277 278 static long jiffies_delta_msecs(unsigned long at, unsigned long now) 279 { 280 if (time_after(at, now)) 281 return jiffies_to_msecs(at - now); 282 else 283 return -(long)jiffies_to_msecs(now - at); 284 } 285 286 static bool u32_before(u32 a, u32 b) 287 { 288 return (s32)(a - b) < 0; 289 } 290 291 /** 292 * scx_is_descendant - Test whether sched is a descendant 293 * @sch: sched to test 294 * @ancestor: ancestor sched to test against 295 * 296 * Test whether @sch is a descendant of @ancestor. 297 */ 298 bool scx_is_descendant(struct scx_sched *sch, struct scx_sched *ancestor) 299 { 300 if (sch->level < ancestor->level) 301 return false; 302 return sch->ancestors[ancestor->level] == ancestor; 303 } 304 305 static struct scx_dispatch_q *find_global_dsq(struct scx_sched *sch, s32 cpu) 306 { 307 return &sch->pnode[cpu_to_node(cpu)]->global_dsq; 308 } 309 310 static struct scx_dispatch_q *find_user_dsq(struct scx_sched *sch, u64 dsq_id) 311 { 312 return rhashtable_lookup(&sch->dsq_hash, &dsq_id, dsq_hash_params); 313 } 314 315 static const struct sched_class *scx_setscheduler_class(struct task_struct *p) 316 { 317 if (p->sched_class == &stop_sched_class) 318 return &stop_sched_class; 319 320 return __setscheduler_class(p->policy, p->prio); 321 } 322 323 static struct scx_dispatch_q *bypass_enq_target_dsq(struct scx_sched *sch, s32 cpu) 324 { 325 #ifdef CONFIG_EXT_SUB_SCHED 326 /* 327 * If @sch is a sub-sched which is bypassing, its tasks should go into 328 * the bypass DSQs of the nearest ancestor which is not bypassing. The 329 * not-bypassing ancestor is responsible for scheduling all tasks from 330 * bypassing sub-trees. If all ancestors including root are bypassing, 331 * all tasks should go to the root's bypass DSQs. 332 * 333 * Whenever a sched starts bypassing, all runnable tasks in its subtree 334 * are re-enqueued after scx_bypassing() is turned on, guaranteeing that 335 * all tasks are transferred to the right DSQs. 336 */ 337 while (scx_parent(sch) && scx_bypassing(sch, cpu)) 338 sch = scx_parent(sch); 339 #endif /* CONFIG_EXT_SUB_SCHED */ 340 341 return scx_bypass_dsq(sch, cpu); 342 } 343 344 /** 345 * rq_is_open - Is the rq available for immediate execution of an SCX task? 346 * @rq: rq to test 347 * @enq_flags: optional %SCX_ENQ_* of the task being enqueued 348 * 349 * Returns %true if @rq is currently open for executing an SCX task. After a 350 * %false return, @rq is guaranteed to invoke SCX dispatch path at least once 351 * before going to idle and not inserting a task into @rq's local DSQ after a 352 * %false return doesn't cause @rq to stall. 353 */ 354 static bool rq_is_open(struct rq *rq, u64 enq_flags) 355 { 356 lockdep_assert_rq_held(rq); 357 358 /* 359 * A higher-priority class task is either running or in the process of 360 * waking up on @rq. 361 */ 362 if (sched_class_above(rq->next_class, &ext_sched_class)) 363 return false; 364 365 /* 366 * @rq is either in transition to or in idle and there is no 367 * higher-priority class task waking up on it. 368 */ 369 if (sched_class_above(&ext_sched_class, rq->next_class)) 370 return true; 371 372 /* 373 * @rq is either picking, in transition to, or running an SCX task. 374 */ 375 376 /* 377 * If we're in the dispatch path holding rq lock, $curr may or may not 378 * be ready depending on whether the on-going dispatch decides to extend 379 * $curr's slice. We say yes here and resolve it at the end of dispatch. 380 * See dispatch_one(). 381 */ 382 if (rq->scx.flags & SCX_RQ_IN_DISPATCH) 383 return true; 384 385 /* 386 * %SCX_ENQ_PREEMPT clears $curr's slice if on SCX and kicks dispatch, 387 * so allow it to avoid spuriously triggering reenq on a combined 388 * PREEMPT|IMMED insertion. 389 */ 390 if (enq_flags & SCX_ENQ_PREEMPT) { 391 struct task_struct *curr = rq->curr; 392 393 /* 394 * A protected slice refuses the preemption and the cpu stays 395 * occupied. See rq_owned_post_enq(). 396 */ 397 return curr->sched_class != &ext_sched_class || 398 likely(!(curr->scx.flags & SCX_TASK_PROTECTED)); 399 } 400 401 /* 402 * @rq is either in transition to or running an SCX task and can't go 403 * idle without another SCX dispatch cycle. 404 */ 405 return false; 406 } 407 408 /* 409 * Track the rq currently locked. 410 * 411 * This allows kfuncs to safely operate on rq from any scx ops callback, 412 * knowing which rq is already locked. 413 */ 414 DEFINE_PER_CPU(struct rq *, scx_locked_rq_state); 415 416 /* 417 * Under core scheduling, a pick that releases the rq lock invalidates the 418 * core-wide selection it is part of. Count the releases so that the core-sched 419 * pick can tell whether one happened across dispatch. 420 */ 421 static void scx_rq_lock_drop(struct rq *rq) 422 { 423 lockdep_assert_rq_held(rq); 424 #ifdef CONFIG_SCHED_CORE 425 if (sched_core_enabled(rq)) 426 rq->scx.lock_drop_seq++; 427 #endif 428 } 429 430 static void switch_rq_lock(struct rq *from, struct rq *to) 431 { 432 bool tracked = scx_locked_rq() == from; 433 434 if (tracked) 435 update_locked_rq(NULL); 436 scx_rq_lock_drop(from); 437 raw_spin_rq_unlock(from); 438 raw_spin_rq_lock(to); 439 if (tracked) 440 update_locked_rq(to); 441 } 442 443 /* 444 * Flipped on enable per sch->is_cid_type. Declared in internal.h so 445 * subsystem inlines can read it. 446 */ 447 DEFINE_STATIC_KEY_FALSE(__scx_is_cid_type); 448 449 /** 450 * scx_call_op_set_cpumask - invoke ops.set_cpumask / ops_cid.set_cmask for @task 451 * @sch: scx_sched being invoked 452 * @rq: rq to update as the currently-locked rq, or NULL 453 * @task: task whose affinity is changing 454 * @cpumask: new cpumask 455 * 456 * For cid-form schedulers, translate @cpumask to a cmask via the per-cpu 457 * scratch in cid.c and dispatch through the ops_cid union view. Caller 458 * must hold @rq's rq lock so this_cpu_ptr is stable across the call. 459 */ 460 static inline void scx_call_op_set_cpumask(struct scx_sched *sch, struct rq *rq, 461 struct task_struct *task, 462 const struct cpumask *cpumask) 463 { 464 if (scx_is_cid_type()) { 465 struct scx_cmask *kern_va = *this_cpu_ptr(sch->set_cmask_scratch); 466 struct scx_cmask_ref ref; 467 468 /* 469 * Build the per-cpu arena cmask from kernel geometry via @ref, 470 * never reading its BPF-writable header. set_cmask()'s __arena 471 * argument takes the kernel address and the struct_ops 472 * trampoline rebases it into BPF's arena pointer form. The rq 473 * lock makes this cpu the sole kernel writer. 474 */ 475 scx_cmask_ref_init_kern(sch, kern_va, 0, num_possible_cpus(), &ref); 476 scx_cmask_ref_from_cpumask(&ref, cpumask); 477 SCX_CALL_CID_OP_TASK(sch, set_cmask, rq, task, kern_va); 478 } else { 479 SCX_CALL_OP_TASK(sch, set_cpumask, rq, task, cpumask); 480 } 481 } 482 483 enum scx_dsq_iter_flags { 484 /* iterate in the reverse dispatch order */ 485 SCX_DSQ_ITER_REV = 1U << 16, 486 487 __SCX_DSQ_ITER_HAS_SLICE = 1U << 30, 488 __SCX_DSQ_ITER_HAS_VTIME = 1U << 31, 489 490 __SCX_DSQ_ITER_USER_FLAGS = SCX_DSQ_ITER_REV, 491 __SCX_DSQ_ITER_ALL_FLAGS = __SCX_DSQ_ITER_USER_FLAGS | 492 __SCX_DSQ_ITER_HAS_SLICE | 493 __SCX_DSQ_ITER_HAS_VTIME, 494 }; 495 496 /** 497 * nldsq_next_task - Iterate to the next task in a non-local DSQ 498 * @dsq: non-local dsq being iterated 499 * @cur: current position, %NULL to start iteration 500 * @rev: walk backwards 501 * 502 * Returns %NULL when iteration is finished. 503 */ 504 static struct task_struct *nldsq_next_task(struct scx_dispatch_q *dsq, 505 struct task_struct *cur, bool rev) 506 { 507 struct list_head *list_node; 508 struct scx_dsq_list_node *dsq_lnode; 509 510 lockdep_assert_held(&dsq->lock); 511 512 if (cur) 513 list_node = &cur->scx.dsq_list.node; 514 else 515 list_node = &dsq->list; 516 517 /* find the next task, need to skip BPF iteration cursors */ 518 do { 519 if (rev) 520 list_node = list_node->prev; 521 else 522 list_node = list_node->next; 523 524 if (list_node == &dsq->list) 525 return NULL; 526 527 dsq_lnode = container_of(list_node, struct scx_dsq_list_node, 528 node); 529 } while (dsq_lnode->flags & SCX_DSQ_LNODE_ITER_CURSOR); 530 531 return container_of(dsq_lnode, struct task_struct, scx.dsq_list); 532 } 533 534 #define nldsq_for_each_task(p, dsq) \ 535 for ((p) = nldsq_next_task((dsq), NULL, false); (p); \ 536 (p) = nldsq_next_task((dsq), (p), false)) 537 538 /** 539 * nldsq_cursor_next_task - Iterate to the next task given a cursor in a non-local DSQ 540 * @cursor: scx_dsq_list_node initialized with INIT_DSQ_LIST_CURSOR() 541 * @dsq: non-local dsq being iterated 542 * 543 * Find the next task in a cursor based iteration. The caller must have 544 * initialized @cursor using INIT_DSQ_LIST_CURSOR() and can release the DSQ lock 545 * between the iteration steps. 546 * 547 * Only tasks which were queued before @cursor was initialized are visible. This 548 * bounds the iteration and guarantees that vtime never jumps in the other 549 * direction while iterating. 550 */ 551 static struct task_struct *nldsq_cursor_next_task(struct scx_dsq_list_node *cursor, 552 struct scx_dispatch_q *dsq) 553 { 554 bool rev = cursor->flags & SCX_DSQ_ITER_REV; 555 struct task_struct *p; 556 557 lockdep_assert_held(&dsq->lock); 558 BUG_ON(!(cursor->flags & SCX_DSQ_LNODE_ITER_CURSOR)); 559 560 if (list_empty(&cursor->node)) 561 p = NULL; 562 else 563 p = container_of(cursor, struct task_struct, scx.dsq_list); 564 565 /* skip cursors and tasks that were queued after @cursor init */ 566 do { 567 p = nldsq_next_task(dsq, p, rev); 568 } while (p && unlikely(u32_before(cursor->priv, p->scx.dsq_seq))); 569 570 if (p) { 571 if (rev) 572 list_move_tail(&cursor->node, &p->scx.dsq_list.node); 573 else 574 list_move(&cursor->node, &p->scx.dsq_list.node); 575 } else { 576 list_del_init(&cursor->node); 577 } 578 579 return p; 580 } 581 582 /** 583 * nldsq_cursor_lost_task - Test whether someone else took the task since iteration 584 * @cursor: scx_dsq_list_node initialized with INIT_DSQ_LIST_CURSOR() 585 * @rq: rq @p was on 586 * @dsq: dsq @p was on 587 * @p: target task 588 * 589 * @p is a task returned by nldsq_cursor_next_task(). The locks may have been 590 * dropped and re-acquired inbetween. Verify that no one else took or is in the 591 * process of taking @p from @dsq. 592 * 593 * On %false return, the caller can assume full ownership of @p. 594 */ 595 static bool nldsq_cursor_lost_task(struct scx_dsq_list_node *cursor, 596 struct rq *rq, struct scx_dispatch_q *dsq, 597 struct task_struct *p) 598 { 599 lockdep_assert_rq_held(rq); 600 lockdep_assert_held(&dsq->lock); 601 602 /* 603 * @p could have already left $src_dsq, got re-enqueud, or be in the 604 * process of being consumed by someone else. 605 */ 606 if (unlikely(p->scx.dsq != dsq || 607 u32_before(cursor->priv, p->scx.dsq_seq) || 608 p->scx.holding_cpu >= 0)) 609 return true; 610 611 /* if @p has stayed on @dsq, its rq couldn't have changed */ 612 if (WARN_ON_ONCE(rq != task_rq(p))) 613 return true; 614 615 return false; 616 } 617 618 /* 619 * BPF DSQ iterator. Tasks in a non-local DSQ can be iterated in [reverse] 620 * dispatch order. BPF-visible iterator is opaque and larger to allow future 621 * changes without breaking backward compatibility. Can be used with 622 * bpf_for_each(). See bpf_iter_scx_dsq_*(). 623 */ 624 struct bpf_iter_scx_dsq_kern { 625 struct scx_dsq_list_node cursor; 626 struct scx_dispatch_q *dsq; 627 u64 slice; 628 u64 vtime; 629 } __attribute__((aligned(8))); 630 631 struct bpf_iter_scx_dsq { 632 u64 __opaque[6]; 633 } __attribute__((aligned(8))); 634 635 636 u32 scx_get_task_state(const struct task_struct *p) 637 { 638 return p->scx.flags & SCX_TASK_STATE_MASK; 639 } 640 641 void scx_set_task_state(struct task_struct *p, u32 state) 642 { 643 u32 prev_state = scx_get_task_state(p); 644 bool warn = false; 645 646 switch (state) { 647 case SCX_TASK_NONE: 648 warn = prev_state == SCX_TASK_DEAD; 649 break; 650 case SCX_TASK_INIT_BEGIN: 651 warn = prev_state != SCX_TASK_NONE; 652 break; 653 case SCX_TASK_INIT: 654 warn = prev_state != SCX_TASK_INIT_BEGIN; 655 p->scx.flags |= SCX_TASK_RESET_RUNNABLE_AT; 656 break; 657 case SCX_TASK_READY: 658 warn = !(prev_state == SCX_TASK_INIT || 659 prev_state == SCX_TASK_ENABLED); 660 break; 661 case SCX_TASK_ENABLED: 662 warn = prev_state != SCX_TASK_READY; 663 break; 664 case SCX_TASK_DEAD: 665 warn = !(prev_state == SCX_TASK_NONE || 666 prev_state == SCX_TASK_INIT_BEGIN); 667 break; 668 default: 669 WARN_ONCE(1, "sched_ext: Invalid task state %d -> %d for %s[%d]", 670 prev_state, state, p->comm, p->pid); 671 return; 672 } 673 674 WARN_ONCE(warn, "sched_ext: Invalid task state transition 0x%x -> 0x%x for %s[%d]", 675 prev_state, state, p->comm, p->pid); 676 677 p->scx.flags &= ~SCX_TASK_STATE_MASK; 678 p->scx.flags |= state; 679 } 680 681 /** 682 * scx_task_iter_start - Lock scx_tasks_lock and start a task iteration 683 * @iter: iterator to init 684 * @cgrp: Optional root of cgroup subhierarchy to iterate 685 * 686 * Initialize @iter. Once initialized, @iter must eventually be stopped with 687 * scx_task_iter_stop(). 688 * 689 * If @cgrp is %NULL, scx_tasks is used for iteration and this function returns 690 * with scx_tasks_lock held and @iter->cursor inserted into scx_tasks. 691 * 692 * If @cgrp is not %NULL, @cgrp and its descendants' tasks are walked using 693 * @iter->css_iter. The caller must be holding cgroup_lock() to prevent cgroup 694 * task migrations. 695 * 696 * The two modes of iterations are largely independent and it's likely that 697 * scx_tasks can be removed in favor of always using cgroup iteration if 698 * CONFIG_SCHED_CLASS_EXT depends on CONFIG_CGROUPS. 699 * 700 * scx_tasks_lock and the rq lock may be released using scx_task_iter_unlock() 701 * between this and the first next() call or between any two next() calls. If 702 * the locks are released between two next() calls, the caller is responsible 703 * for ensuring that the task being iterated remains accessible either through 704 * RCU read lock or obtaining a reference count. 705 * 706 * All tasks which existed when the iteration started are guaranteed to be 707 * visited as long as they are not dead. 708 */ 709 void scx_task_iter_start(struct scx_task_iter *iter, struct cgroup *cgrp) 710 { 711 memset(iter, 0, sizeof(*iter)); 712 713 #ifdef CONFIG_EXT_SUB_SCHED 714 if (cgrp) { 715 lockdep_assert_held(&cgroup_mutex); 716 iter->cgrp = cgrp; 717 iter->css_pos = css_next_descendant_pre(NULL, &iter->cgrp->self); 718 css_task_iter_start(iter->css_pos, CSS_TASK_ITER_WITH_DEAD, 719 &iter->css_iter); 720 return; 721 } 722 #endif 723 raw_spin_lock_irq(&scx_tasks_lock); 724 725 iter->cursor = (struct sched_ext_entity){ .flags = SCX_TASK_CURSOR }; 726 list_add(&iter->cursor.tasks_node, &scx_tasks); 727 iter->list_locked = true; 728 } 729 730 static void __scx_task_iter_rq_unlock(struct scx_task_iter *iter) 731 { 732 if (iter->locked_task) { 733 __balance_callbacks(iter->rq, &iter->rf); 734 task_rq_unlock(iter->rq, iter->locked_task, &iter->rf); 735 iter->locked_task = NULL; 736 } 737 } 738 739 /** 740 * scx_task_iter_unlock - Unlock rq and scx_tasks_lock held by a task iterator 741 * @iter: iterator to unlock 742 * 743 * If @iter is in the middle of a locked iteration, it may be locking the rq of 744 * the task currently being visited in addition to scx_tasks_lock. Unlock both. 745 * This function can be safely called anytime during an iteration. The next 746 * iterator operation will automatically restore the necessary locking. 747 */ 748 void scx_task_iter_unlock(struct scx_task_iter *iter) 749 { 750 __scx_task_iter_rq_unlock(iter); 751 if (iter->list_locked) { 752 iter->list_locked = false; 753 raw_spin_unlock_irq(&scx_tasks_lock); 754 } 755 } 756 757 static void __scx_task_iter_maybe_relock(struct scx_task_iter *iter) 758 { 759 if (!iter->list_locked) { 760 raw_spin_lock_irq(&scx_tasks_lock); 761 iter->list_locked = true; 762 } 763 } 764 765 /** 766 * scx_task_iter_relock - Re-acquire scx_tasks_lock and, optionally, @p's rq 767 * @iter: iterator to relock 768 * @p: task whose rq to lock, or %NULL for scx_tasks_lock only 769 * 770 * Counterpart to scx_task_iter_unlock(). Locking @p's rq is optional. Once 771 * re-acquired, both locks are managed by the iterator from here on. 772 */ 773 static void scx_task_iter_relock(struct scx_task_iter *iter, 774 struct task_struct *p) 775 { 776 __scx_task_iter_maybe_relock(iter); 777 if (p) { 778 iter->rq = task_rq_lock(p, &iter->rf); 779 iter->locked_task = p; 780 } 781 } 782 783 /** 784 * scx_task_iter_stop - Stop a task iteration and unlock scx_tasks_lock 785 * @iter: iterator to exit 786 * 787 * Exit a previously initialized @iter. Must be called with scx_tasks_lock held 788 * which is released on return. If the iterator holds a task's rq lock, that rq 789 * lock is also released. See scx_task_iter_start() for details. 790 */ 791 void scx_task_iter_stop(struct scx_task_iter *iter) 792 { 793 #ifdef CONFIG_EXT_SUB_SCHED 794 if (iter->cgrp) { 795 if (iter->css_pos) 796 css_task_iter_end(&iter->css_iter); 797 __scx_task_iter_rq_unlock(iter); 798 return; 799 } 800 #endif 801 __scx_task_iter_maybe_relock(iter); 802 list_del_init(&iter->cursor.tasks_node); 803 scx_task_iter_unlock(iter); 804 } 805 806 /** 807 * scx_task_iter_next - Next task 808 * @iter: iterator to walk 809 * 810 * Visit the next task. See scx_task_iter_start() for details. Locks are dropped 811 * and re-acquired every %SCX_TASK_ITER_BATCH iterations to avoid causing stalls 812 * by holding scx_tasks_lock for too long. 813 */ 814 static struct task_struct *scx_task_iter_next(struct scx_task_iter *iter) 815 { 816 struct list_head *cursor = &iter->cursor.tasks_node; 817 struct sched_ext_entity *pos; 818 819 if (!(++iter->cnt % SCX_TASK_ITER_BATCH)) { 820 scx_task_iter_unlock(iter); 821 cond_resched(); 822 } 823 824 #ifdef CONFIG_EXT_SUB_SCHED 825 if (iter->cgrp) { 826 while (iter->css_pos) { 827 struct task_struct *p; 828 829 p = css_task_iter_next(&iter->css_iter); 830 if (p) 831 return p; 832 833 css_task_iter_end(&iter->css_iter); 834 iter->css_pos = css_next_descendant_pre(iter->css_pos, 835 &iter->cgrp->self); 836 if (iter->css_pos) 837 css_task_iter_start(iter->css_pos, CSS_TASK_ITER_WITH_DEAD, 838 &iter->css_iter); 839 } 840 return NULL; 841 } 842 #endif 843 __scx_task_iter_maybe_relock(iter); 844 845 list_for_each_entry(pos, cursor, tasks_node) { 846 if (&pos->tasks_node == &scx_tasks) 847 return NULL; 848 if (!(pos->flags & SCX_TASK_CURSOR)) { 849 list_move(cursor, &pos->tasks_node); 850 return container_of(pos, struct task_struct, scx); 851 } 852 } 853 854 /* can't happen, should always terminate at scx_tasks above */ 855 BUG(); 856 } 857 858 /** 859 * scx_task_iter_next_locked - Next non-idle task with its rq locked 860 * @iter: iterator to walk 861 * 862 * Visit the non-idle task with its rq lock held. Allows callers to specify 863 * whether they would like to filter out dead tasks. See scx_task_iter_start() 864 * for details. 865 */ 866 struct task_struct *scx_task_iter_next_locked(struct scx_task_iter *iter) 867 { 868 struct task_struct *p; 869 870 __scx_task_iter_rq_unlock(iter); 871 872 while ((p = scx_task_iter_next(iter))) { 873 /* 874 * scx_task_iter is used to prepare and move tasks into SCX 875 * while loading the BPF scheduler and vice-versa while 876 * unloading. The init_tasks ("swappers") should be excluded 877 * from the iteration because: 878 * 879 * - It's unsafe to use __setschduler_prio() on an init_task to 880 * determine the sched_class to use as it won't preserve its 881 * idle_sched_class. 882 * 883 * - ops.init/exit_task() can easily be confused if called with 884 * init_tasks as they, e.g., share PID 0. 885 * 886 * As init_tasks are never scheduled through SCX, they can be 887 * skipped safely. Note that is_idle_task() which tests %PF_IDLE 888 * doesn't work here: 889 * 890 * - %PF_IDLE may not be set for an init_task whose CPU hasn't 891 * yet been onlined. 892 * 893 * - %PF_IDLE can be set on tasks that are not init_tasks. See 894 * play_idle_precise() used by CONFIG_IDLE_INJECT. 895 * 896 * Test for idle_sched_class as only init_tasks are on it. 897 */ 898 if (p->sched_class == &idle_sched_class) 899 continue; 900 901 iter->rq = task_rq_lock(p, &iter->rf); 902 iter->locked_task = p; 903 904 /* 905 * cgroup_task_dead() removes the dead tasks from cset->tasks 906 * after sched_ext_dead() and cgroup iteration may see tasks 907 * which already finished sched_ext_dead(). %SCX_TASK_DEAD is 908 * set by sched_ext_dead() under @p's rq lock. Test it to 909 * avoid visiting tasks which are already dead from SCX POV. 910 */ 911 if (scx_get_task_state(p) == SCX_TASK_DEAD) { 912 __scx_task_iter_rq_unlock(iter); 913 continue; 914 } 915 916 return p; 917 } 918 return NULL; 919 } 920 921 /** 922 * scx_dump_event - Dump an event 'kind' in 'events' to 's' 923 * @s: output seq_buf 924 * @events: event stats 925 * @kind: a kind of event to dump 926 */ 927 #define scx_dump_event(s, events, kind) do { \ 928 scx_dump_line(&(s), "%40s: %16lld", #kind, (events)->kind); \ 929 } while (0) 930 931 932 static void scx_read_events(struct scx_sched *sch, 933 struct scx_event_stats *events); 934 935 static enum scx_enable_state scx_enable_state(void) 936 { 937 return atomic_read(&scx_enable_state_var); 938 } 939 940 static enum scx_enable_state scx_set_enable_state(enum scx_enable_state to) 941 { 942 return atomic_xchg(&scx_enable_state_var, to); 943 } 944 945 static bool scx_tryset_enable_state(enum scx_enable_state to, 946 enum scx_enable_state from) 947 { 948 int from_v = from; 949 950 return atomic_try_cmpxchg(&scx_enable_state_var, &from_v, to); 951 } 952 953 /** 954 * wait_ops_state - Busy-wait the specified ops state to end 955 * @p: target task 956 * @opss: state to wait the end of 957 * 958 * Busy-wait for @p to transition out of @opss. This can only be used when the 959 * state part of @opss is %SCX_QUEUEING or %SCX_DISPATCHING. This function also 960 * has load_acquire semantics to ensure that the caller can see the updates made 961 * in the enqueueing and dispatching paths. 962 */ 963 static void wait_ops_state(struct task_struct *p, unsigned long opss) 964 { 965 do { 966 cpu_relax(); 967 } while (atomic_long_read_acquire(&p->scx.ops_state) == opss); 968 } 969 970 static inline bool __cpu_valid(s32 cpu) 971 { 972 return likely(cpu >= 0 && cpu < nr_cpu_ids && cpu_possible(cpu)); 973 } 974 975 /** 976 * scx_cpu_valid - Verify a cpu number, to be used on ops input args 977 * @sch: scx_sched to abort on error 978 * @cpu: cpu number which came from a BPF ops 979 * @where: extra information reported on error 980 * 981 * @cpu is a cpu number which came from the BPF scheduler and can be any value. 982 * Verify that it is in range and one of the possible cpus. If invalid, trigger 983 * an ops error. 984 */ 985 bool scx_cpu_valid(struct scx_sched *sch, s32 cpu, const char *where) 986 { 987 if (__cpu_valid(cpu)) { 988 return true; 989 } else { 990 scx_error(sch, "invalid CPU %d%s%s", cpu, where ? " " : "", where ?: ""); 991 return false; 992 } 993 } 994 995 static void deferred_bal_cb_workfn(struct rq *rq) 996 { 997 run_deferred(rq); 998 } 999 1000 static void deferred_irq_workfn(struct irq_work *irq_work) 1001 { 1002 struct rq *rq = container_of(irq_work, struct rq, scx.deferred_irq_work); 1003 1004 raw_spin_rq_lock(rq); 1005 run_deferred(rq); 1006 scx_rq_lock_drop(rq); 1007 raw_spin_rq_unlock(rq); 1008 } 1009 1010 /** 1011 * schedule_deferred - Schedule execution of deferred actions on an rq 1012 * @rq: target rq 1013 * 1014 * Schedule execution of deferred actions on @rq. Deferred actions are executed 1015 * with @rq locked but unpinned, and thus can unlock @rq to e.g. migrate tasks 1016 * to other rqs. 1017 */ 1018 static void schedule_deferred(struct rq *rq) 1019 { 1020 /* 1021 * This is the fallback when schedule_deferred_locked() can't use 1022 * the cheaper balance callback or wakeup hook paths (the target 1023 * CPU is not in dispatch or wakeup). Currently, this is primarily 1024 * hit by reenqueue operations targeting a remote CPU. 1025 * 1026 * Queue on the target CPU. The deferred work can run from any CPU 1027 * correctly - the _locked() path already processes remote rqs from 1028 * the calling CPU - but targeting the owning CPU allows IPI delivery 1029 * without waiting for the calling CPU to re-enable IRQs and is 1030 * cheaper as the reenqueue runs locally. 1031 */ 1032 irq_work_queue_on(&rq->scx.deferred_irq_work, cpu_of(rq)); 1033 } 1034 1035 /** 1036 * schedule_deferred_locked - Schedule execution of deferred actions on an rq 1037 * @rq: target rq 1038 * 1039 * Schedule execution of deferred actions on @rq. Equivalent to 1040 * schedule_deferred() but requires @rq to be locked and can be more efficient. 1041 */ 1042 static void schedule_deferred_locked(struct rq *rq) 1043 { 1044 lockdep_assert_rq_held(rq); 1045 1046 /* 1047 * If in the middle of waking up a task, task_woken_scx() will be called 1048 * afterwards which will then run the deferred actions, no need to 1049 * schedule anything. 1050 */ 1051 if (rq->scx.flags & SCX_RQ_IN_WAKEUP) 1052 return; 1053 1054 /* Don't do anything if there already is a deferred operation. */ 1055 if (rq->scx.flags & SCX_RQ_BAL_CB_PENDING) 1056 return; 1057 1058 /* 1059 * If in dispatch, the balance callbacks will be called before rq lock 1060 * is released. Schedule one. 1061 * 1062 * 1063 * We can't directly insert the callback into the 1064 * rq's list: The call can drop its lock and make the pending balance 1065 * callback visible to unrelated code paths that call rq_pin_lock(). 1066 * 1067 * Just let dispatch_one() know that it must do it itself. 1068 */ 1069 if (rq->scx.flags & SCX_RQ_IN_DISPATCH) { 1070 rq->scx.flags |= SCX_RQ_BAL_CB_PENDING; 1071 return; 1072 } 1073 1074 /* 1075 * No scheduler hooks available. Use the generic irq_work path. The 1076 * above WAKEUP and DISPATCH paths should cover most of the cases and 1077 * the time to IRQ re-enable shouldn't be long. 1078 */ 1079 schedule_deferred(rq); 1080 } 1081 1082 void schedule_dsq_reenq(struct scx_sched *sch, struct scx_dispatch_q *dsq, 1083 u64 reenq_flags, struct rq *locked_rq) 1084 { 1085 struct rq *rq; 1086 1087 /* 1088 * Allowing reenqueues doesn't make sense while bypassing. This also 1089 * blocks from new reenqueues to be scheduled on dead scheds. 1090 */ 1091 if (unlikely(READ_ONCE(sch->bypass_depth))) 1092 return; 1093 1094 if (dsq->id == SCX_DSQ_LOCAL) { 1095 rq = container_of(dsq, struct rq, scx.local_dsq); 1096 1097 /* 1098 * A sub-sched lacking baseline access on the target cid has no 1099 * business triggering IPIs. The lockless test is fine: slipping 1100 * through right after a revoke is harmless and a wrong denial 1101 * can't happen - if the caller has seen its ownership, so does 1102 * this test. 1103 */ 1104 if (unlikely(scx_missing_caps(sch, cpu_of(rq), SCX_CAP_BASE))) { 1105 __scx_add_event(sch, SCX_EV_SUB_REENQ_DENIED, 1); 1106 return; 1107 } 1108 1109 struct scx_sched_pcpu *sch_pcpu = per_cpu_ptr(sch->pcpu, cpu_of(rq)); 1110 struct scx_deferred_reenq_local *drl = &sch_pcpu->deferred_reenq_local; 1111 1112 /* 1113 * Pairs with smp_mb() in process_deferred_reenq_locals() and 1114 * guarantees that there is a reenq_local() afterwards. 1115 */ 1116 smp_mb(); 1117 1118 if (list_empty(&drl->node) || 1119 (READ_ONCE(drl->flags) & reenq_flags) != reenq_flags) { 1120 1121 guard(raw_spinlock_irqsave)(&rq->scx.deferred_reenq_lock); 1122 1123 if (list_empty(&drl->node)) 1124 list_move_tail(&drl->node, &rq->scx.deferred_reenq_locals); 1125 WRITE_ONCE(drl->flags, drl->flags | reenq_flags); 1126 } 1127 } else if (!(dsq->id & SCX_DSQ_FLAG_BUILTIN)) { 1128 rq = this_rq(); 1129 1130 struct scx_dsq_pcpu *dsq_pcpu = per_cpu_ptr(dsq->pcpu, cpu_of(rq)); 1131 struct scx_deferred_reenq_user *dru = &dsq_pcpu->deferred_reenq_user; 1132 1133 /* 1134 * Pairs with smp_mb() in process_deferred_reenq_users() and 1135 * guarantees that there is a reenq_user() afterwards. 1136 */ 1137 smp_mb(); 1138 1139 if (list_empty(&dru->node) || 1140 (READ_ONCE(dru->flags) & reenq_flags) != reenq_flags) { 1141 1142 guard(raw_spinlock_irqsave)(&rq->scx.deferred_reenq_lock); 1143 1144 if (list_empty(&dru->node)) 1145 list_move_tail(&dru->node, &rq->scx.deferred_reenq_users); 1146 WRITE_ONCE(dru->flags, dru->flags | reenq_flags); 1147 } 1148 } else { 1149 scx_error(sch, "DSQ 0x%llx not allowed for reenq", dsq->id); 1150 return; 1151 } 1152 1153 if (rq == locked_rq) 1154 schedule_deferred_locked(rq); 1155 else 1156 schedule_deferred(rq); 1157 } 1158 1159 /* 1160 * p->scx.slice_oob packs an out-of-band slice request into one atomic64. A zero 1161 * word means no request. Otherwise the fields are: 1162 * 1163 * 63 SCX_SLICE_OOB_PENDING, set on every request 1164 * 62-43 lower bits of issuing scheduler's id 1165 * 42-0 requested slice duration in nsecs 1166 * 1167 * A duration of SCX_SLICE_OOB_DUR_MASK means SCX_SLICE_INF. A finite dur 1168 * saturates at SCX_SLICE_OOB_DUR_MASK - 1. The id is used to detect and ignore 1169 * a request that outlived a task ownership change. 1170 * 1171 * Only the low 20 bits of sch->id are packed, which is enough to make 1172 * collisions practically impossible. A theoretical collision just lets a stale 1173 * request through once. 1174 */ 1175 enum scx_slice_oob_consts { 1176 SCX_SLICE_OOB_DUR_BITS = 43, 1177 SCX_SLICE_OOB_ID_BITS = 64 - SCX_SLICE_OOB_DUR_BITS - 1, 1178 1179 SCX_SLICE_OOB_DUR_MASK = (1LLU << SCX_SLICE_OOB_DUR_BITS) - 1, 1180 SCX_SLICE_OOB_ID_SHIFT = SCX_SLICE_OOB_DUR_BITS, 1181 SCX_SLICE_OOB_ID_MASK = (1LLU << SCX_SLICE_OOB_ID_BITS) - 1, 1182 SCX_SLICE_OOB_PENDING = 1LLU << 63, 1183 }; 1184 1185 /* 1186 * Slice and dsq_vtime write rules 1187 * 1188 * While @p is running, sleeping or queued on an rq-owned DSQ, both fields are 1189 * protected by the rq lock. While running, the rq lock is required because 1190 * update_curr_scx() RMWs the slice and the cap check for slice extension is 1191 * only reliable under the rq lock. 1192 * 1193 * While @p is queued on a user DSQ or on the BPF side, the kernel neither 1194 * consumes nor decides on the fields. Synchronizing the writers is the BPF 1195 * scheduler's responsibility. An rq-locked scx_bpf_task_set_slice() write and a 1196 * concurrent DSQ insertion commit can race each other and whichever lands last 1197 * wins. 1198 * 1199 * A DSQ insert kfunc doesn't update the fields directly. The verdict carries 1200 * the values and apply_slice_vtime() commits them at the insertion. 1201 * 1202 * scx_bpf_task_set_slice() may be called from any context and writes directly 1203 * only if @p's rq lock is already held, otherwise it bounces through 1204 * p->scx.slice_oob, applied under @p's rq lock at the next slice consideration. 1205 * 1206 * While %SCX_TASK_PROTECTED is set, every scheduler-reachable slice update is 1207 * refused. See set_task_slice_keep_oob(). 1208 * 1209 * dsq_vtime orders the next PRIQ insertion and has no running-side consumer, so 1210 * scx_bpf_task_set_dsq_vtime() writes it directly. Fork-time init and direct 1211 * BPF stores from non-cid-form schedulers are outside these rules. 1212 */ 1213 1214 /* clear a pending slice request */ 1215 static void clear_task_slice_oob(struct task_struct *p) 1216 { 1217 if (unlikely(atomic64_read(&p->scx.slice_oob))) 1218 atomic64_set(&p->scx.slice_oob, 0); 1219 } 1220 1221 /** 1222 * dsq_insert_head - FIFO head insertion honoring %SCX_TASK_PROTECTED 1223 * @dsq: DSQ to insert into 1224 * @p: task being inserted 1225 * 1226 * A HEAD insert should land behind any leading protected tasks. Return %true 1227 * indicates whether @p became the first entry. 1228 */ 1229 static bool dsq_insert_head(struct scx_dispatch_q *dsq, struct task_struct *p) 1230 { 1231 struct list_head *pos = &dsq->list; 1232 struct scx_dsq_list_node *node; 1233 1234 /* 1235 * Only rq-owned DSQs can hold protected tasks and the associated rq 1236 * lock keeps their flags stable. 1237 */ 1238 if (!dsq_is_rq_owned(dsq)) { 1239 list_add(&p->scx.dsq_list.node, &dsq->list); 1240 return true; 1241 } 1242 1243 list_for_each_entry(node, &dsq->list, node) { 1244 struct task_struct *q; 1245 1246 if (WARN_ON_ONCE(node->flags & SCX_DSQ_LNODE_ITER_CURSOR)) 1247 continue; 1248 1249 q = container_of(node, struct task_struct, scx.dsq_list); 1250 if (!(q->scx.flags & SCX_TASK_PROTECTED)) 1251 break; 1252 1253 pos = &node->node; 1254 } 1255 1256 list_add(&p->scx.dsq_list.node, pos); 1257 1258 return pos == &dsq->list; 1259 } 1260 1261 /** 1262 * set_task_slice_keep_oob - Set @p's slice, leaving any pending oob request 1263 * @p: task of interest 1264 * @slice: slice to set 1265 * 1266 * While %SCX_TASK_PROTECTED is set, BPF schedulers may not modify the slice. 1267 * Refuse and return %false. 1268 */ 1269 static bool set_task_slice_keep_oob(struct task_struct *p, u64 slice) 1270 { 1271 lockdep_assert_rq_held(task_rq(p)); 1272 1273 if (unlikely(p->scx.flags & SCX_TASK_PROTECTED)) 1274 return false; 1275 1276 p->scx.slice = slice; 1277 return true; 1278 } 1279 1280 /* set @p's slice, superseding any pending out-of-band request */ 1281 bool scx_set_task_slice(struct task_struct *p, u64 slice) 1282 { 1283 if (!set_task_slice_keep_oob(p, slice)) 1284 return false; 1285 clear_task_slice_oob(p); 1286 return true; 1287 } 1288 1289 /** 1290 * scx_task_slice_ended - @p's slice is consumed or given up 1291 * @rq: rq @p is on 1292 * @p: task of interest 1293 * 1294 * End what rides on the slice - the protection, and the rescue if @p is being 1295 * rescued. 1296 * 1297 * A dequeue normally ends the slice too. The exception is a save/restore pair 1298 * on the running task. Attribute changes like renice cycle the task through 1299 * dequeue and enqueue while it keeps executing, so the slice continues. A 1300 * queued task instead loses its DSQ position on any dequeue and the slice ends 1301 * with it. 1302 */ 1303 void scx_task_slice_ended(struct rq *rq, struct task_struct *p) 1304 { 1305 lockdep_assert_rq_held(rq); 1306 1307 p->scx.flags &= ~SCX_TASK_PROTECTED; 1308 if (unlikely(p == scx_rescuee(rq))) 1309 scx_rescue_end(rq); 1310 } 1311 1312 /* request @p's slice to be set to @slice, see the write rules above */ 1313 static void set_task_slice_oob(struct scx_sched *sch, struct task_struct *p, u64 slice) 1314 { 1315 u64 dur; 1316 1317 if (slice == SCX_SLICE_INF) { 1318 dur = SCX_SLICE_OOB_DUR_MASK; 1319 } else if (unlikely(slice >= SCX_SLICE_OOB_DUR_MASK)) { 1320 dur = SCX_SLICE_OOB_DUR_MASK - 1; 1321 scx_add_event(sch, SCX_EV_SLICE_CLAMPED, 1); 1322 } else { 1323 dur = slice; 1324 } 1325 1326 atomic64_set(&p->scx.slice_oob, SCX_SLICE_OOB_PENDING | 1327 ((sch->id & SCX_SLICE_OOB_ID_MASK) << SCX_SLICE_OOB_ID_SHIFT) | dur); 1328 } 1329 1330 /* 1331 * Apply a pending out-of-band slice request under @rq's lock. A request whose 1332 * packed id no longer matches @p's current owner is dropped. An extension needs 1333 * baseline cpu access on @p's cid, shortening is always allowed, and a 1334 * protected slice refuses both. %SCX_EV_SLICE_DENIED counts the denials. See 1335 * the write rules above. 1336 */ 1337 static void apply_task_slice_oob(struct rq *rq, struct task_struct *p) 1338 { 1339 u64 oob, dur, slice; 1340 1341 lockdep_assert_rq_held(rq); 1342 1343 if (likely(!atomic64_read(&p->scx.slice_oob))) 1344 return; 1345 1346 oob = atomic64_xchg(&p->scx.slice_oob, 0); 1347 if (unlikely(!oob)) 1348 return; 1349 1350 /* the issuing scheduler no longer owns @p, drop the request */ 1351 if (unlikely(((oob >> SCX_SLICE_OOB_ID_SHIFT) & SCX_SLICE_OOB_ID_MASK) != 1352 (scx_task_sched(p)->id & SCX_SLICE_OOB_ID_MASK))) 1353 return; 1354 1355 dur = oob & SCX_SLICE_OOB_DUR_MASK; 1356 slice = dur == SCX_SLICE_OOB_DUR_MASK ? SCX_SLICE_INF : dur; 1357 1358 if (slice > p->scx.slice && 1359 unlikely(scx_missing_caps(scx_task_sched(p), cpu_of(rq), SCX_CAP_BASE))) { 1360 __scx_add_event(scx_task_sched(p), SCX_EV_SLICE_DENIED, 1); 1361 return; 1362 } 1363 1364 if (unlikely(!set_task_slice_keep_oob(p, slice))) 1365 __scx_add_event(scx_task_sched(p), SCX_EV_SLICE_DENIED, 1); 1366 } 1367 1368 /* 1369 * A dsq insert kfunc doesn't write slice or dsq_vtime. The verdict carries them 1370 * and they are committed here, at the insertion. A zero @slice keeps the 1371 * current value, floored at 1 so the task isn't treated as expired. 1372 */ 1373 static void apply_slice_vtime(struct task_struct *p, u64 slice, u64 vtime, u64 enq_flags) 1374 { 1375 if (slice) { 1376 p->scx.slice = slice; 1377 /* 1378 * An explicit slice supersedes a pending oob request. A carried 1379 * default refill is not an explicit request and must keep it. 1380 */ 1381 if (!(enq_flags & SCX_ENQ_SLICE_DFL)) 1382 clear_task_slice_oob(p); 1383 } else if (!p->scx.slice) { 1384 p->scx.slice = 1; 1385 } 1386 1387 if (enq_flags & SCX_ENQ_DSQ_PRIQ) 1388 p->scx.dsq_vtime = vtime; 1389 } 1390 1391 static void update_curr_scx(struct rq *rq) 1392 { 1393 struct task_struct *curr = rq->curr; 1394 s64 delta_exec; 1395 1396 /* apply even on 0 delta_exec, callers may still act on the slice */ 1397 apply_task_slice_oob(rq, curr); 1398 1399 delta_exec = update_curr_common(rq); 1400 if (unlikely(delta_exec <= 0)) 1401 return; 1402 1403 if (curr->scx.slice != SCX_SLICE_INF) 1404 curr->scx.slice -= min_t(u64, curr->scx.slice, delta_exec); 1405 1406 if (unlikely(curr == scx_rescuee(rq))) 1407 scx_rescue_charge(rq, delta_exec); 1408 1409 dl_server_update(&rq->ext_server, delta_exec); 1410 } 1411 1412 static bool scx_dsq_priq_less(struct rb_node *node_a, 1413 const struct rb_node *node_b) 1414 { 1415 const struct task_struct *a = 1416 container_of(node_a, struct task_struct, scx.dsq_priq); 1417 const struct task_struct *b = 1418 container_of(node_b, struct task_struct, scx.dsq_priq); 1419 1420 return time_before64(a->scx.dsq_vtime, b->scx.dsq_vtime); 1421 } 1422 1423 static void dsq_inc_nr(struct scx_dispatch_q *dsq, struct task_struct *p, u64 enq_flags) 1424 { 1425 /* scx_bpf_dsq_nr_queued() reads ->nr without locking, use WRITE_ONCE() */ 1426 WRITE_ONCE(dsq->nr, dsq->nr + 1); 1427 1428 /* 1429 * Once @p reaches a local DSQ, it can only leave it by being dispatched 1430 * to the CPU or dequeued. In both cases, the only way @p can go back to 1431 * the BPF sched is through enqueueing. If being inserted into a local 1432 * DSQ with IMMED, persist the state until the next enqueueing event in 1433 * scx_do_enqueue_task() so that we can maintain IMMED protection 1434 * through e.g. SAVE/RESTORE cycles and slice extensions. 1435 */ 1436 if (enq_flags & SCX_ENQ_IMMED) { 1437 if (unlikely(dsq->id != SCX_DSQ_LOCAL)) { 1438 WARN_ON_ONCE(!(enq_flags & SCX_ENQ_GDSQ_FALLBACK)); 1439 return; 1440 } 1441 p->scx.flags |= SCX_TASK_IMMED; 1442 } 1443 1444 if (p->scx.flags & SCX_TASK_IMMED) { 1445 struct rq *rq = container_of(dsq, struct rq, scx.local_dsq); 1446 1447 if (WARN_ON_ONCE(dsq->id != SCX_DSQ_LOCAL)) 1448 return; 1449 1450 rq->scx.nr_immed++; 1451 1452 /* 1453 * If @rq already had other tasks or the current task is not 1454 * done yet, @p can't go on the CPU immediately. Re-enqueue. 1455 */ 1456 if (unlikely(dsq->nr > 1 || !rq_is_open(rq, enq_flags))) 1457 scx_schedule_reenq_local(rq, 0); 1458 } 1459 } 1460 1461 static void dsq_dec_nr(struct scx_dispatch_q *dsq, struct task_struct *p) 1462 { 1463 /* see dsq_inc_nr() */ 1464 WRITE_ONCE(dsq->nr, dsq->nr - 1); 1465 1466 if (p->scx.flags & SCX_TASK_IMMED) { 1467 struct rq *rq = container_of(dsq, struct rq, scx.local_dsq); 1468 1469 if (WARN_ON_ONCE(dsq->id != SCX_DSQ_LOCAL) || 1470 WARN_ON_ONCE(rq->scx.nr_immed <= 0)) 1471 return; 1472 1473 rq->scx.nr_immed--; 1474 } 1475 } 1476 1477 static void refill_task_slice_dfl(struct scx_sched *sch, struct task_struct *p) 1478 { 1479 /* 1480 * A default refill is not an explicit request, so it must not drop a 1481 * pending out-of-band one, which is applied when @p next runs. 1482 */ 1483 set_task_slice_keep_oob(p, READ_ONCE(sch->slice_dfl)); 1484 __scx_add_event(sch, SCX_EV_REFILL_SLICE_DFL, 1); 1485 } 1486 1487 /* 1488 * Return true if @p is moving due to an internal SCX migration, false 1489 * otherwise. 1490 */ 1491 static inline bool task_scx_migrating(struct task_struct *p) 1492 { 1493 /* 1494 * We only need to check sticky_cpu: it is set to the destination 1495 * CPU in move_remote_task_to_local_dsq() before deactivate_task() 1496 * and cleared when the task is enqueued on the destination, so it 1497 * is only non-negative during an internal SCX migration. 1498 */ 1499 return p->scx.sticky_cpu >= 0; 1500 } 1501 1502 /* 1503 * Call ops.dequeue() if the task is in BPF custody and not migrating. 1504 * Clears %SCX_TASK_IN_CUSTODY when the callback is invoked. 1505 */ 1506 static void call_task_dequeue(struct scx_sched *sch, struct rq *rq, 1507 struct task_struct *p, u64 deq_flags) 1508 { 1509 if (!(p->scx.flags & SCX_TASK_IN_CUSTODY) || task_scx_migrating(p)) 1510 return; 1511 1512 if (SCX_HAS_OP(sch, dequeue)) 1513 SCX_CALL_OP_TASK(sch, dequeue, rq, p, deq_flags); 1514 1515 p->scx.flags &= ~SCX_TASK_IN_CUSTODY; 1516 } 1517 1518 static void rq_owned_post_enq(struct scx_sched *sch, struct rq *rq, 1519 struct scx_dispatch_q *dsq, struct task_struct *p, 1520 u64 enq_flags) 1521 { 1522 call_task_dequeue(sch, rq, p, 0); 1523 1524 /* 1525 * Only local inserts get the wakeup treatment below. Rejects kick the 1526 * deferred reenq and rescue parks are paced by the rescue timer. 1527 */ 1528 if (unlikely(dsq->id != SCX_DSQ_LOCAL)) { 1529 if (dsq->id == SCX_DSQ_REJECT) 1530 schedule_deferred_locked(rq); 1531 return; 1532 } 1533 1534 /* 1535 * Note that @rq's lock may be dropped between this enqueue and @p 1536 * actually getting on CPU. This gives higher-class tasks (e.g. RT) 1537 * an opportunity to wake up on @rq and prevent @p from running. 1538 * Here are some concrete examples: 1539 * 1540 * Example 1: 1541 * 1542 * We dispatch two tasks from a single ops.dispatch(): 1543 * - First, a local task to this CPU's local DSQ; 1544 * - Second, a local/remote task to a remote CPU's local DSQ. 1545 * We must drop the local rq lock in order to finish the second 1546 * dispatch. In that time, an RT task can wake up on the local rq. 1547 * 1548 * Example 2: 1549 * 1550 * We dispatch a local/remote task to a remote CPU's local DSQ. 1551 * We must drop the remote rq lock before the dispatched task can run, 1552 * which gives an RT task an opportunity to wake up on the remote rq. 1553 * 1554 * Both examples work the same if we replace dispatching with moving 1555 * the tasks from a user-created DSQ. 1556 * 1557 * We must detect these wakeups so that we can re-enqueue IMMED tasks 1558 * from @rq's local DSQ. scx_wakeup_preempt() serves exactly this 1559 * purpose, but for it to be invoked, we must ensure that we bump 1560 * @rq->next_class to &ext_sched_class if it's currently idle. 1561 * 1562 * wakeup_preempt() does the bumping, and since we only invoke it if 1563 * @rq->next_class is below &ext_sched_class, it will also 1564 * resched_curr(rq). 1565 */ 1566 if (sched_class_above(p->sched_class, rq->next_class)) 1567 wakeup_preempt(rq, p, 0); 1568 1569 /* 1570 * If @rq is in dispatch, the CPU is already vacant and looking for the 1571 * next task to run. No need to preempt or trigger resched after moving 1572 * @p into its local DSQ. 1573 * Note that the wakeup_preempt() above may have already triggered 1574 * a resched if @rq->next_class was idle. It's harmless, since 1575 * need_resched is cleared immediately after task pick. 1576 */ 1577 if (rq->scx.flags & SCX_RQ_IN_DISPATCH) 1578 return; 1579 1580 if ((enq_flags & SCX_ENQ_PREEMPT) && p != rq->curr && 1581 rq->curr->sched_class == &ext_sched_class) { 1582 if (likely(scx_set_task_slice(rq->curr, 0))) 1583 resched_curr(rq); 1584 else 1585 __scx_add_event(sch, SCX_EV_SLICE_DENIED, 1); 1586 } 1587 } 1588 1589 static void scx_dispatch_enqueue(struct scx_sched *sch, struct rq *rq, 1590 struct scx_dispatch_q *dsq, struct task_struct *p, 1591 u64 slice, u64 vtime, u64 enq_flags) 1592 { 1593 bool is_rq_owned = false; 1594 1595 if (dsq->id == SCX_DSQ_LOCAL) { 1596 dsq = scx_resolve_local_dsq(sch, rq, p, &enq_flags); 1597 is_rq_owned = true; 1598 } 1599 1600 WARN_ON_ONCE(p->scx.dsq || !list_empty(&p->scx.dsq_list.node)); 1601 WARN_ON_ONCE((p->scx.dsq_flags & SCX_TASK_DSQ_ON_PRIQ) || 1602 !RB_EMPTY_NODE(&p->scx.dsq_priq)); 1603 1604 if (!is_rq_owned) { 1605 raw_spin_lock_nested(&dsq->lock, 1606 (enq_flags & SCX_ENQ_NESTED) ? SINGLE_DEPTH_NESTING : 0); 1607 1608 if (unlikely(dsq->id == SCX_DSQ_INVALID)) { 1609 scx_error(sch, "attempting to dispatch to a destroyed dsq"); 1610 /* fall back to the global dsq */ 1611 raw_spin_unlock(&dsq->lock); 1612 dsq = find_global_dsq(sch, task_cpu(p)); 1613 raw_spin_lock(&dsq->lock); 1614 } 1615 } 1616 1617 if (unlikely((dsq->id & SCX_DSQ_FLAG_BUILTIN) && 1618 (enq_flags & SCX_ENQ_DSQ_PRIQ))) { 1619 /* 1620 * SCX_DSQ_LOCAL and SCX_DSQ_GLOBAL DSQs always consume from 1621 * their FIFO queues. To avoid confusion and accidentally 1622 * starving vtime-dispatched tasks by FIFO-dispatched tasks, we 1623 * disallow any internal DSQ from doing vtime ordering of 1624 * tasks. 1625 */ 1626 scx_error(sch, "cannot use vtime ordering for built-in DSQs"); 1627 enq_flags &= ~SCX_ENQ_DSQ_PRIQ; 1628 } 1629 1630 /* 1631 * @dsq is locked and @enq_flags is sanitized. Commit the carried slice 1632 * and vtime before the PRIQ insertion below reads the new dsq_vtime. 1633 */ 1634 if (enq_flags & SCX_ENQ_APPLY_SLICE) 1635 apply_slice_vtime(p, slice, vtime, enq_flags); 1636 1637 if (enq_flags & SCX_ENQ_DSQ_PRIQ) { 1638 struct rb_node *rbp; 1639 1640 /* 1641 * A PRIQ DSQ shouldn't be using FIFO enqueueing. As tasks are 1642 * linked to both the rbtree and list on PRIQs, this can only be 1643 * tested easily when adding the first task. 1644 */ 1645 if (unlikely(RB_EMPTY_ROOT(&dsq->priq) && 1646 nldsq_next_task(dsq, NULL, false))) 1647 scx_error(sch, "DSQ ID 0x%016llx already had FIFO-enqueued tasks", 1648 dsq->id); 1649 1650 p->scx.dsq_flags |= SCX_TASK_DSQ_ON_PRIQ; 1651 rb_add(&p->scx.dsq_priq, &dsq->priq, scx_dsq_priq_less); 1652 1653 /* 1654 * Find the previous task and insert after it on the list so 1655 * that @dsq->list is vtime ordered. 1656 */ 1657 rbp = rb_prev(&p->scx.dsq_priq); 1658 if (rbp) { 1659 struct task_struct *prev = 1660 container_of(rbp, struct task_struct, 1661 scx.dsq_priq); 1662 list_add(&p->scx.dsq_list.node, &prev->scx.dsq_list.node); 1663 /* first task unchanged - no update needed */ 1664 } else { 1665 list_add(&p->scx.dsq_list.node, &dsq->list); 1666 /* not builtin and new task is at head - use fastpath */ 1667 rcu_assign_pointer(dsq->first_task, p); 1668 } 1669 } else { 1670 /* a FIFO DSQ shouldn't be using PRIQ enqueuing */ 1671 if (unlikely(!RB_EMPTY_ROOT(&dsq->priq))) 1672 scx_error(sch, "DSQ ID 0x%016llx already had PRIQ-enqueued tasks", 1673 dsq->id); 1674 1675 if (enq_flags & (SCX_ENQ_HEAD | SCX_ENQ_PREEMPT)) { 1676 /* new task inserted at head - use fastpath */ 1677 if (dsq_insert_head(dsq, p) && !(dsq->id & SCX_DSQ_FLAG_BUILTIN)) 1678 rcu_assign_pointer(dsq->first_task, p); 1679 } else { 1680 /* 1681 * dsq->list can contain parked BPF iterator cursors, so 1682 * list_empty() here isn't a reliable proxy for "no real 1683 * task in the DSQ". Test dsq->first_task directly. 1684 */ 1685 list_add_tail(&p->scx.dsq_list.node, &dsq->list); 1686 if (!dsq->first_task && !(dsq->id & SCX_DSQ_FLAG_BUILTIN)) 1687 rcu_assign_pointer(dsq->first_task, p); 1688 } 1689 } 1690 1691 /* seq records the order tasks are queued, used by BPF DSQ iterator */ 1692 WRITE_ONCE(dsq->seq, dsq->seq + 1); 1693 p->scx.dsq_seq = dsq->seq; 1694 1695 dsq_inc_nr(dsq, p, enq_flags); 1696 p->scx.dsq = dsq; 1697 1698 /* 1699 * Update custody and call ops.dequeue() before clearing ops_state: 1700 * once ops_state is cleared, waiters in ops_dequeue() can proceed 1701 * and dequeue_task_scx() will RMW p->scx.flags. If we clear 1702 * ops_state first, both sides would modify p->scx.flags 1703 * concurrently in a non-atomic way. 1704 */ 1705 if (is_rq_owned) { 1706 rq_owned_post_enq(sch, rq, dsq, p, enq_flags); 1707 } else { 1708 /* 1709 * Global and bypass DSQs are terminal - the task leaves the 1710 * scheduler's custody, so ops.dequeue() fires here. It can run 1711 * without @p's rq lock (finish_dispatch() passes the dispatch 1712 * rq); that's safe because dequeue_task_scx() waits on 1713 * SCX_OPSS_DISPATCHING (see the ops_state note above) and so 1714 * can't race it. A non-terminal DSQ keeps the task in custody. 1715 */ 1716 if (dsq->id == SCX_DSQ_GLOBAL || dsq->id == SCX_DSQ_BYPASS) 1717 call_task_dequeue(sch, rq, p, 0); 1718 else 1719 p->scx.flags |= SCX_TASK_IN_CUSTODY; 1720 1721 raw_spin_unlock(&dsq->lock); 1722 } 1723 1724 /* 1725 * We're transitioning out of QUEUEING or DISPATCHING. store_release to 1726 * match waiters' load_acquire. 1727 */ 1728 if (enq_flags & SCX_ENQ_CLEAR_OPSS) 1729 atomic_long_set_release(&p->scx.ops_state, SCX_OPSS_NONE); 1730 } 1731 1732 void scx_task_unlink_from_dsq(struct task_struct *p, struct scx_dispatch_q *dsq) 1733 { 1734 WARN_ON_ONCE(list_empty(&p->scx.dsq_list.node)); 1735 1736 if (p->scx.dsq_flags & SCX_TASK_DSQ_ON_PRIQ) { 1737 rb_erase(&p->scx.dsq_priq, &dsq->priq); 1738 RB_CLEAR_NODE(&p->scx.dsq_priq); 1739 p->scx.dsq_flags &= ~SCX_TASK_DSQ_ON_PRIQ; 1740 } 1741 1742 list_del_init(&p->scx.dsq_list.node); 1743 dsq_dec_nr(dsq, p); 1744 1745 if (!(dsq->id & SCX_DSQ_FLAG_BUILTIN) && rcu_access_pointer(dsq->first_task) == p) { 1746 struct task_struct *first_task; 1747 1748 first_task = nldsq_next_task(dsq, NULL, false); 1749 rcu_assign_pointer(dsq->first_task, first_task); 1750 } 1751 } 1752 1753 void scx_dispatch_dequeue(struct rq *rq, struct task_struct *p) 1754 { 1755 struct scx_dispatch_q *dsq = p->scx.dsq; 1756 bool is_rq_owned = dsq && dsq_is_rq_owned(dsq); 1757 1758 lockdep_assert_rq_held(rq); 1759 1760 if (!dsq) { 1761 /* 1762 * If !dsq && on-list, @p is on @rq's ddsp_deferred_locals. 1763 * Unlinking is all that's needed to cancel. 1764 */ 1765 if (unlikely(!list_empty(&p->scx.dsq_list.node))) 1766 list_del_init(&p->scx.dsq_list.node); 1767 1768 /* 1769 * When dispatching directly from the BPF scheduler to a local 1770 * DSQ, the task isn't associated with any DSQ but 1771 * @p->scx.holding_cpu may be set under the protection of 1772 * %SCX_OPSS_DISPATCHING. 1773 */ 1774 if (p->scx.holding_cpu >= 0) 1775 p->scx.holding_cpu = -1; 1776 1777 return; 1778 } 1779 1780 if (!is_rq_owned) 1781 raw_spin_lock(&dsq->lock); 1782 1783 /* 1784 * Now that we hold @dsq->lock, @p->holding_cpu and @p->scx.dsq_* can't 1785 * change underneath us. 1786 */ 1787 if (p->scx.holding_cpu < 0) { 1788 /* @p must still be on @dsq, dequeue */ 1789 scx_task_unlink_from_dsq(p, dsq); 1790 } else { 1791 /* 1792 * We're racing against dispatch_to_local_dsq() which already 1793 * removed @p from @dsq and set @p->scx.holding_cpu. Clear the 1794 * holding_cpu which tells dispatch_to_local_dsq() that it lost 1795 * the race. 1796 */ 1797 WARN_ON_ONCE(!list_empty(&p->scx.dsq_list.node)); 1798 p->scx.holding_cpu = -1; 1799 } 1800 p->scx.dsq = NULL; 1801 1802 if (!is_rq_owned) 1803 raw_spin_unlock(&dsq->lock); 1804 } 1805 1806 /* 1807 * Abbreviated version of scx_dispatch_dequeue() that can be used when both 1808 * @p's rq and dsq are locked. 1809 */ 1810 static void dispatch_dequeue_locked(struct task_struct *p, 1811 struct scx_dispatch_q *dsq) 1812 { 1813 lockdep_assert_rq_held(task_rq(p)); 1814 lockdep_assert_held(&dsq->lock); 1815 1816 scx_task_unlink_from_dsq(p, dsq); 1817 p->scx.dsq = NULL; 1818 } 1819 1820 static struct scx_dispatch_q *find_dsq_for_dispatch(struct scx_sched *sch, 1821 struct rq *rq, u64 dsq_id, 1822 s32 tcpu) 1823 { 1824 struct scx_dispatch_q *dsq; 1825 1826 if (dsq_id == SCX_DSQ_LOCAL) 1827 return &rq->scx.local_dsq; 1828 1829 if ((dsq_id & SCX_DSQ_LOCAL_ON) == SCX_DSQ_LOCAL_ON) { 1830 s32 cpu = scx_cpu_ret(sch, dsq_id & SCX_DSQ_LOCAL_CPU_MASK); 1831 1832 if (!scx_cpu_valid(sch, cpu, "in SCX_DSQ_LOCAL_ON dispatch verdict")) 1833 return find_global_dsq(sch, tcpu); 1834 1835 return &cpu_rq(cpu)->scx.local_dsq; 1836 } 1837 1838 if (dsq_id == SCX_DSQ_GLOBAL) 1839 dsq = find_global_dsq(sch, tcpu); 1840 else 1841 dsq = find_user_dsq(sch, dsq_id); 1842 1843 /* 1844 * Built-in DSQs are never inserted into dsq_hash, so REJECT and RESCUE 1845 * hit the error below. They cannot be reached with an ID. 1846 */ 1847 if (unlikely(!dsq)) { 1848 scx_error(sch, "non-existent DSQ 0x%llx", dsq_id); 1849 return find_global_dsq(sch, tcpu); 1850 } 1851 1852 return dsq; 1853 } 1854 1855 static void mark_direct_dispatch(struct scx_sched *sch, 1856 struct task_struct *ddsp_task, 1857 struct task_struct *p, u64 dsq_id, 1858 u64 slice, u64 vtime, u64 enq_flags) 1859 { 1860 /* 1861 * Mark that dispatch already happened from ops.select_cpu() or 1862 * ops.enqueue() by spoiling direct_dispatch_task with a non-NULL value 1863 * which can never match a valid task pointer. 1864 */ 1865 __this_cpu_write(direct_dispatch_task, ERR_PTR(-ESRCH)); 1866 1867 /* @p must match the task on the enqueue path */ 1868 if (unlikely(p != ddsp_task)) { 1869 if (IS_ERR(ddsp_task)) 1870 scx_error(sch, "%s[%d] already direct-dispatched", 1871 p->comm, p->pid); 1872 else 1873 scx_error(sch, "scheduling for %s[%d] but trying to direct-dispatch %s[%d]", 1874 ddsp_task->comm, ddsp_task->pid, 1875 p->comm, p->pid); 1876 return; 1877 } 1878 1879 WARN_ON_ONCE(p->scx.ddsp_dsq_id != SCX_DSQ_INVALID); 1880 WARN_ON_ONCE(p->scx.ddsp_enq_flags); 1881 1882 p->scx.ddsp_slice = slice; 1883 p->scx.ddsp_vtime = vtime; 1884 p->scx.ddsp_dsq_id = dsq_id; 1885 p->scx.ddsp_enq_flags = enq_flags; 1886 } 1887 1888 /* 1889 * Clear @p direct dispatch state when leaving the scheduler. 1890 * 1891 * Direct dispatch state must be cleared in the following cases: 1892 * - direct_dispatch(): cleared on the synchronous enqueue path, deferred 1893 * dispatch keeps the state until consumed 1894 * - process_ddsp_deferred_locals(): cleared after consuming deferred state, 1895 * - scx_do_enqueue_task(): cleared on enqueue fallbacks where the dispatch 1896 * verdict is ignored (local/global/bypass) 1897 * - dequeue_task_scx(): cleared after scx_dispatch_dequeue(), covering 1898 * deferred cancellation and holding_cpu races 1899 * - scx_disable_task(): cleared for queued wakeup tasks, which are excluded by 1900 * the scx_bypass() loop, so that stale state is not reused by a subsequent 1901 * scheduler instance 1902 */ 1903 static inline void clear_direct_dispatch(struct task_struct *p) 1904 { 1905 p->scx.ddsp_dsq_id = SCX_DSQ_INVALID; 1906 p->scx.ddsp_enq_flags = 0; 1907 } 1908 1909 static void direct_dispatch(struct scx_sched *sch, struct task_struct *p, 1910 u64 enq_flags) 1911 { 1912 struct rq *rq = task_rq(p); 1913 struct scx_dispatch_q *dsq = 1914 find_dsq_for_dispatch(sch, rq, p->scx.ddsp_dsq_id, task_cpu(p)); 1915 u64 ddsp_enq_flags, slice, vtime; 1916 1917 p->scx.ddsp_enq_flags |= enq_flags; 1918 1919 /* 1920 * We are in the enqueue path with @rq locked and pinned, and thus can't 1921 * double lock a remote rq and enqueue to its local DSQ. For 1922 * DSQ_LOCAL_ON verdicts targeting the local DSQ of a remote CPU, defer 1923 * the enqueue so that it's executed when @rq can be unlocked. 1924 */ 1925 if (dsq->id == SCX_DSQ_LOCAL && dsq != &rq->scx.local_dsq) { 1926 unsigned long opss; 1927 1928 opss = atomic_long_read(&p->scx.ops_state) & SCX_OPSS_STATE_MASK; 1929 1930 switch (opss & SCX_OPSS_STATE_MASK) { 1931 case SCX_OPSS_NONE: 1932 break; 1933 case SCX_OPSS_QUEUEING: 1934 /* 1935 * As @p was never passed to the BPF side, _release is 1936 * not strictly necessary. Still do it for consistency. 1937 */ 1938 atomic_long_set_release(&p->scx.ops_state, SCX_OPSS_NONE); 1939 break; 1940 default: 1941 WARN_ONCE(true, "sched_ext: %s[%d] has invalid ops state 0x%lx in direct_dispatch()", 1942 p->comm, p->pid, opss); 1943 atomic_long_set_release(&p->scx.ops_state, SCX_OPSS_NONE); 1944 break; 1945 } 1946 1947 WARN_ON_ONCE(p->scx.dsq || !list_empty(&p->scx.dsq_list.node)); 1948 list_add_tail(&p->scx.dsq_list.node, 1949 &rq->scx.ddsp_deferred_locals); 1950 schedule_deferred_locked(rq); 1951 return; 1952 } 1953 1954 ddsp_enq_flags = p->scx.ddsp_enq_flags; 1955 slice = p->scx.ddsp_slice; 1956 vtime = p->scx.ddsp_vtime; 1957 clear_direct_dispatch(p); 1958 1959 scx_dispatch_enqueue(sch, rq, dsq, p, slice, vtime, 1960 ddsp_enq_flags | SCX_ENQ_APPLY_SLICE | SCX_ENQ_CLEAR_OPSS); 1961 } 1962 1963 bool scx_rq_online(struct rq *rq) 1964 { 1965 /* 1966 * Test both cpu_active() and %SCX_RQ_ONLINE. %SCX_RQ_ONLINE indicates 1967 * the online state as seen from the BPF scheduler. cpu_active() test 1968 * guarantees that, if this function returns %true, %SCX_RQ_ONLINE will 1969 * stay set until the current scheduling operation is complete even if 1970 * we aren't locking @rq. 1971 */ 1972 return likely((rq->scx.flags & SCX_RQ_ONLINE) && cpu_active(cpu_of(rq))); 1973 } 1974 1975 void scx_do_enqueue_task(struct rq *rq, struct task_struct *p, u64 enq_flags, 1976 int sticky_cpu) 1977 { 1978 struct scx_sched *sch = scx_task_sched(p); 1979 struct task_struct **ddsp_taskp; 1980 struct scx_dispatch_q *dsq; 1981 unsigned long qseq; 1982 1983 WARN_ON_ONCE(!(p->scx.flags & SCX_TASK_QUEUED)); 1984 1985 /* internal movements - rq migration / RESTORE */ 1986 if (sticky_cpu == cpu_of(rq)) 1987 goto local_norefill; 1988 1989 /* 1990 * Clear persistent TASK_IMMED for fresh enqueues, see dsq_inc_nr(). 1991 * Note that exiting and migration-disabled tasks that skip 1992 * ops.enqueue() below will lose IMMED protection unless 1993 * %SCX_OPS_ENQ_EXITING / %SCX_OPS_ENQ_MIGRATION_DISABLED are set. 1994 */ 1995 p->scx.flags &= ~SCX_TASK_IMMED; 1996 1997 /* 1998 * A task reenqueued too many times without running means the scheduler 1999 * keeps re-deciding a placement it can't honor, e.g. re-inserting to a 2000 * cid it lacks caps on. Eject the owning scheduler and strand the task 2001 * to be picked up during sched exit. 2002 */ 2003 if (enq_flags & SCX_ENQ_REENQ) { 2004 if (++p->scx.reenq_cnt > 1) 2005 __scx_add_event(sch, SCX_EV_REENQ_REPEAT, 1); 2006 2007 if (unlikely(p->scx.reenq_cnt > SCX_REENQ_MAX_REPEAT)) { 2008 __scx_exit(sch, SCX_EXIT_ERROR_REENQ, 0, cpu_of(rq), 2009 "%s[%d] reenqueued %u times without running", 2010 p->comm, p->pid, p->scx.reenq_cnt); 2011 return; 2012 } 2013 } 2014 2015 /* 2016 * If !scx_rq_online(), we already told the BPF scheduler that the CPU 2017 * is offline and are just running the hotplug path. Don't bother the 2018 * BPF scheduler. 2019 */ 2020 if (!scx_rq_online(rq)) 2021 goto local; 2022 2023 if (scx_bypassing(sch, cpu_of(rq))) { 2024 __scx_add_event(sch, SCX_EV_BYPASS_DISPATCH, 1); 2025 goto bypass; 2026 } 2027 2028 if (p->scx.ddsp_dsq_id != SCX_DSQ_INVALID) 2029 goto direct; 2030 2031 /* see %SCX_OPS_ENQ_EXITING */ 2032 if (!(sch->ops.flags & SCX_OPS_ENQ_EXITING) && 2033 unlikely(p->flags & PF_EXITING)) { 2034 __scx_add_event(sch, SCX_EV_ENQ_SKIP_EXITING, 1); 2035 enq_flags |= SCX_ENQ_RESCUE; /* avoid looping on cap rejection */ 2036 goto local; 2037 } 2038 2039 /* see %SCX_OPS_ENQ_MIGRATION_DISABLED */ 2040 if (!(sch->ops.flags & SCX_OPS_ENQ_MIGRATION_DISABLED) && 2041 is_migration_disabled(p)) { 2042 __scx_add_event(sch, SCX_EV_ENQ_SKIP_MIGRATION_DISABLED, 1); 2043 goto local; 2044 } 2045 2046 if (unlikely(!SCX_HAS_OP(sch, enqueue))) 2047 goto global; 2048 2049 /* DSQ bypass didn't trigger, enqueue on the BPF scheduler */ 2050 qseq = rq->scx.ops_qseq++ << SCX_OPSS_QSEQ_SHIFT; 2051 2052 WARN_ON_ONCE(atomic_long_read(&p->scx.ops_state) != SCX_OPSS_NONE); 2053 atomic_long_set(&p->scx.ops_state, SCX_OPSS_QUEUEING | qseq); 2054 2055 ddsp_taskp = this_cpu_ptr(&direct_dispatch_task); 2056 WARN_ON_ONCE(*ddsp_taskp); 2057 *ddsp_taskp = p; 2058 2059 SCX_CALL_OP_TASK(sch, enqueue, rq, p, enq_flags); 2060 2061 *ddsp_taskp = NULL; 2062 if (p->scx.ddsp_dsq_id != SCX_DSQ_INVALID) 2063 goto direct; 2064 2065 /* 2066 * Task is now in BPF scheduler's custody. Set %SCX_TASK_IN_CUSTODY 2067 * so ops.dequeue() is called when it leaves custody. 2068 */ 2069 p->scx.flags |= SCX_TASK_IN_CUSTODY; 2070 2071 /* 2072 * If not directly dispatched, QUEUEING isn't clear yet and dispatch or 2073 * dequeue may be waiting. The store_release matches their load_acquire. 2074 */ 2075 atomic_long_set_release(&p->scx.ops_state, SCX_OPSS_QUEUED | qseq); 2076 return; 2077 2078 direct: 2079 direct_dispatch(sch, p, enq_flags); 2080 return; 2081 local_norefill: 2082 scx_dispatch_enqueue(sch, rq, &rq->scx.local_dsq, p, 0, 0, enq_flags); 2083 return; 2084 local: 2085 dsq = &rq->scx.local_dsq; 2086 goto enqueue; 2087 global: 2088 dsq = find_global_dsq(sch, task_cpu(p)); 2089 goto enqueue; 2090 bypass: 2091 dsq = bypass_enq_target_dsq(sch, task_cpu(p)); 2092 goto enqueue; 2093 2094 enqueue: 2095 refill_task_slice_dfl(sch, p); 2096 clear_direct_dispatch(p); 2097 scx_dispatch_enqueue(sch, rq, dsq, p, 0, 0, enq_flags); 2098 } 2099 2100 static bool task_runnable(const struct task_struct *p) 2101 { 2102 return !list_empty(&p->scx.runnable_node); 2103 } 2104 2105 static void set_task_runnable(struct rq *rq, struct task_struct *p) 2106 { 2107 lockdep_assert_rq_held(rq); 2108 2109 if (p->scx.flags & SCX_TASK_RESET_RUNNABLE_AT) { 2110 p->scx.runnable_at = jiffies; 2111 p->scx.flags &= ~SCX_TASK_RESET_RUNNABLE_AT; 2112 } 2113 2114 /* 2115 * list_add_tail() must be used. scx_bypass() depends on tasks being 2116 * appended to the runnable_list. 2117 */ 2118 list_add_tail(&p->scx.runnable_node, &rq->scx.runnable_list); 2119 2120 /* 2121 * Record the rq @p is runnable on, maintained under the rq lock so it 2122 * stays valid unlike task_cpu(), which a remote wakeup can move under 2123 * pi_lock alone. 2124 */ 2125 WRITE_ONCE(p->scx.runnable_cpu, cpu_of(rq)); 2126 } 2127 2128 static void clr_task_runnable(struct task_struct *p, bool reset_runnable_at) 2129 { 2130 list_del_init(&p->scx.runnable_node); 2131 WRITE_ONCE(p->scx.runnable_cpu, -1); 2132 if (reset_runnable_at) { 2133 p->scx.flags |= SCX_TASK_RESET_RUNNABLE_AT; 2134 p->scx.reenq_cnt = 0; 2135 } 2136 } 2137 2138 static void enqueue_task_scx(struct rq *rq, struct task_struct *p, int core_enq_flags) 2139 { 2140 struct scx_sched *sch = scx_task_sched(p); 2141 int sticky_cpu = p->scx.sticky_cpu; 2142 u64 enq_flags = core_enq_flags | rq->scx.remote_activate_enq_flags; 2143 2144 if (enq_flags & ENQUEUE_WAKEUP) 2145 rq->scx.flags |= SCX_RQ_IN_WAKEUP; 2146 2147 /* 2148 * Restoring a running task will be immediately followed by 2149 * set_next_task_scx() which expects the task to not be on the BPF 2150 * scheduler as tasks can only start running through local DSQs. Force 2151 * direct-dispatch into the local DSQ by setting the sticky_cpu. Mark 2152 * IGNORE_CAPS to force entry into the local DSQ. 2153 */ 2154 if (unlikely(enq_flags & ENQUEUE_RESTORE) && task_current(rq, p)) { 2155 sticky_cpu = cpu_of(rq); 2156 enq_flags |= SCX_ENQ_IGNORE_CAPS; 2157 } 2158 2159 if (p->scx.flags & SCX_TASK_QUEUED) { 2160 WARN_ON_ONCE(!task_runnable(p)); 2161 goto out; 2162 } 2163 2164 set_task_runnable(rq, p); 2165 p->scx.flags |= SCX_TASK_QUEUED; 2166 rq->scx.nr_running++; 2167 add_nr_running(rq, 1); 2168 2169 if (SCX_HAS_OP(sch, runnable) && !task_on_rq_migrating(p)) 2170 SCX_CALL_OP_TASK(sch, runnable, rq, p, enq_flags); 2171 2172 /* Start dl_server if this is the first task being enqueued */ 2173 if (rq->scx.nr_running == 1) 2174 dl_server_start(&rq->ext_server); 2175 2176 scx_do_enqueue_task(rq, p, enq_flags, sticky_cpu); 2177 2178 if (sticky_cpu >= 0) 2179 p->scx.sticky_cpu = -1; 2180 out: 2181 rq->scx.flags &= ~SCX_RQ_IN_WAKEUP; 2182 2183 if ((enq_flags & SCX_ENQ_CPU_SELECTED) && 2184 unlikely(cpu_of(rq) != p->scx.selected_cpu)) 2185 __scx_add_event(sch, SCX_EV_SELECT_CPU_FALLBACK, 1); 2186 } 2187 2188 static void ops_dequeue(struct rq *rq, struct task_struct *p, u64 deq_flags) 2189 { 2190 struct scx_sched *sch = scx_task_sched(p); 2191 unsigned long opss; 2192 2193 /* dequeue is always temporary, don't reset runnable_at */ 2194 clr_task_runnable(p, false); 2195 2196 retry: 2197 /* acquire ensures that we see the preceding updates on QUEUED */ 2198 opss = atomic_long_read_acquire(&p->scx.ops_state); 2199 2200 switch (opss & SCX_OPSS_STATE_MASK) { 2201 case SCX_OPSS_NONE: 2202 break; 2203 case SCX_OPSS_QUEUEING: 2204 /* 2205 * QUEUEING is started and finished while holding @p's rq lock. 2206 * As we're holding the rq lock now, we shouldn't see QUEUEING. 2207 */ 2208 BUG(); 2209 case SCX_OPSS_QUEUED: 2210 /* 2211 * A queued task must always be in BPF scheduler's custody. If 2212 * SCX_TASK_IN_CUSTODY is clear, finish_dispatch() on another 2213 * CPU has already passed call_task_dequeue() (which clears the 2214 * flag), but has not yet written SCX_OPSS_NONE. That final 2215 * store does not require this rq's lock, so retrying with 2216 * cpu_relax() is bounded: we will observe NONE (or DISPATCHING, 2217 * handled by the fallthrough) on a subsequent iteration. 2218 */ 2219 if (unlikely(!(READ_ONCE(p->scx.flags) & SCX_TASK_IN_CUSTODY))) { 2220 cpu_relax(); 2221 goto retry; 2222 } 2223 2224 if (atomic_long_try_cmpxchg(&p->scx.ops_state, &opss, 2225 SCX_OPSS_NONE)) 2226 break; 2227 fallthrough; 2228 case SCX_OPSS_DISPATCHING: 2229 /* 2230 * If @p is being dispatched from the BPF scheduler to a DSQ, 2231 * wait for the transfer to complete so that @p doesn't get 2232 * added to its DSQ after dequeueing is complete. 2233 * 2234 * As we're waiting on DISPATCHING with the rq locked, the 2235 * dispatching side shouldn't try to lock the rq while 2236 * DISPATCHING is set. See dispatch_to_local_dsq(). 2237 * 2238 * DISPATCHING shouldn't have qseq set and control can reach 2239 * here with NONE @opss from the above QUEUED case block. 2240 * Explicitly wait on %SCX_OPSS_DISPATCHING instead of @opss. 2241 */ 2242 wait_ops_state(p, SCX_OPSS_DISPATCHING); 2243 BUG_ON(atomic_long_read(&p->scx.ops_state) != SCX_OPSS_NONE); 2244 break; 2245 } 2246 2247 /* 2248 * Call ops.dequeue() if the task is still in BPF custody. 2249 * 2250 * The code that clears ops_state to %SCX_OPSS_NONE does not always 2251 * clear %SCX_TASK_IN_CUSTODY: in dispatch_to_local_dsq(), when 2252 * we're moving a task that was in %SCX_OPSS_DISPATCHING to a 2253 * remote CPU's local DSQ, we only set ops_state to %SCX_OPSS_NONE 2254 * so that a concurrent dequeue can proceed, but we clear 2255 * %SCX_TASK_IN_CUSTODY only when we later enqueue or move the 2256 * task. So we can see NONE + IN_CUSTODY here and we must handle 2257 * it. Similarly, after waiting on %SCX_OPSS_DISPATCHING we see 2258 * NONE but the task may still have %SCX_TASK_IN_CUSTODY set until 2259 * it is enqueued on the destination. 2260 */ 2261 call_task_dequeue(sch, rq, p, deq_flags); 2262 } 2263 2264 static bool dequeue_task_scx(struct rq *rq, struct task_struct *p, int core_deq_flags) 2265 { 2266 struct scx_sched *sch = scx_task_sched(p); 2267 u64 deq_flags = core_deq_flags; 2268 2269 /* 2270 * Set %SCX_DEQ_SCHED_CHANGE when the dequeue is due to a property 2271 * change (not sleep). 2272 */ 2273 if (!(deq_flags & DEQUEUE_SLEEP)) 2274 deq_flags |= SCX_DEQ_SCHED_CHANGE; 2275 2276 if (!(p->scx.flags & SCX_TASK_QUEUED)) { 2277 WARN_ON_ONCE(task_runnable(p)); 2278 return true; 2279 } 2280 2281 ops_dequeue(rq, p, deq_flags); 2282 2283 /* 2284 * A currently running task which is going off @rq first gets dequeued 2285 * and then stops running. As we want running <-> stopping transitions 2286 * to be contained within runnable <-> quiescent transitions, trigger 2287 * ->stopping() early here instead of in put_prev_task_scx(). 2288 * 2289 * @p may go through multiple stopping <-> running transitions between 2290 * here and put_prev_task_scx() if task attribute changes occur while 2291 * dispatch_one() leaves @rq unlocked. However, they don't contain any 2292 * information meaningful to the BPF scheduler and can be suppressed by 2293 * skipping the callbacks if the task is !QUEUED. 2294 */ 2295 if (task_current(rq, p) && 2296 (SCX_HAS_OP(sch, stopping) || unlikely(p == scx_rescuee(rq)))) { 2297 update_curr_scx(rq); 2298 if (SCX_HAS_OP(sch, stopping)) 2299 SCX_CALL_OP_TASK(sch, stopping, rq, p, false); 2300 } 2301 2302 if (SCX_HAS_OP(sch, quiescent) && !task_on_rq_migrating(p)) 2303 SCX_CALL_OP_TASK(sch, quiescent, rq, p, deq_flags); 2304 2305 if (deq_flags & SCX_DEQ_SLEEP) 2306 p->scx.flags |= SCX_TASK_DEQD_FOR_SLEEP; 2307 else 2308 p->scx.flags &= ~SCX_TASK_DEQD_FOR_SLEEP; 2309 2310 p->scx.flags &= ~SCX_TASK_QUEUED; 2311 rq->scx.nr_running--; 2312 sub_nr_running(rq, 1); 2313 2314 scx_dispatch_dequeue(rq, p); 2315 2316 /* see scx_task_slice_ended() for the save/restore exception */ 2317 if (!((deq_flags & DEQUEUE_SAVE) && task_current(rq, p))) 2318 scx_task_slice_ended(rq, p); 2319 2320 clear_direct_dispatch(p); 2321 return true; 2322 } 2323 2324 static void yield_task_scx(struct rq *rq) 2325 { 2326 struct task_struct *p = rq->donor; 2327 struct scx_sched *sch = scx_task_sched(p); 2328 2329 /* a yield gives the slice up */ 2330 scx_task_slice_ended(rq, p); 2331 2332 if (SCX_HAS_OP(sch, yield)) 2333 SCX_CALL_OP_2TASKS_RET(sch, yield, rq, p, NULL); 2334 else 2335 scx_set_task_slice(p, 0); 2336 } 2337 2338 static bool yield_to_task_scx(struct rq *rq, struct task_struct *to) 2339 { 2340 struct task_struct *from = rq->donor; 2341 struct scx_sched *sch = scx_task_sched(from); 2342 2343 /* like a plain yield, giving the slice up ends the protection */ 2344 scx_task_slice_ended(rq, from); 2345 2346 if (SCX_HAS_OP(sch, yield) && sch == scx_task_sched(to)) 2347 return SCX_CALL_OP_2TASKS_RET(sch, yield, rq, from, to); 2348 else 2349 return false; 2350 } 2351 2352 static void wakeup_preempt_scx(struct rq *rq, struct task_struct *p, int wake_flags) 2353 { 2354 /* 2355 * Preemption between SCX tasks is implemented by resetting the victim 2356 * task's slice to 0 and triggering reschedule on the target CPU. 2357 * Nothing to do. 2358 */ 2359 if (p->sched_class == &ext_sched_class) 2360 return; 2361 2362 /* 2363 * Getting preempted by a higher-priority class. Reenqueue IMMED tasks. 2364 * This captures all preemption cases including: 2365 * 2366 * - A SCX task is currently running. 2367 * 2368 * - @rq is waking from idle due to a SCX task waking to it. 2369 * 2370 * - A higher-priority wakes up while SCX dispatch is in progress. 2371 */ 2372 if (rq->scx.nr_immed) 2373 scx_schedule_reenq_local(rq, 0); 2374 } 2375 2376 void scx_move_local_task_to_local_dsq(struct scx_sched *sch, struct task_struct *p, 2377 u64 enq_flags, struct scx_dispatch_q *src_dsq, 2378 struct rq *dst_rq) 2379 { 2380 struct scx_dispatch_q *dst_dsq = scx_resolve_local_dsq(sch, dst_rq, p, &enq_flags); 2381 2382 /* @p is on @dst_rq, an rq-owned @src_dsq is covered by the rq lock */ 2383 if (!dsq_is_rq_owned(src_dsq)) 2384 lockdep_assert_held(&src_dsq->lock); 2385 lockdep_assert_rq_held(dst_rq); 2386 2387 WARN_ON_ONCE(p->scx.holding_cpu >= 0); 2388 2389 if (enq_flags & (SCX_ENQ_HEAD | SCX_ENQ_PREEMPT)) 2390 dsq_insert_head(dst_dsq, p); 2391 else 2392 list_add_tail(&p->scx.dsq_list.node, &dst_dsq->list); 2393 2394 dsq_inc_nr(dst_dsq, p, enq_flags); 2395 p->scx.dsq = dst_dsq; 2396 2397 rq_owned_post_enq(sch, dst_rq, dst_dsq, p, enq_flags); 2398 } 2399 2400 /** 2401 * move_remote_task_to_local_dsq - Move a task from a foreign rq to a local DSQ 2402 * @sch: scheduler placing @p 2403 * @p: task to move 2404 * @enq_flags: %SCX_ENQ_* 2405 * @src_rq: rq to move the task from, locked on entry, released on return 2406 * @dst_rq: rq to move the task into, locked on return 2407 * 2408 * Move @p which is currently on @src_rq to @dst_rq's local DSQ. 2409 */ 2410 static void move_remote_task_to_local_dsq(struct scx_sched *sch, 2411 struct task_struct *p, u64 enq_flags, 2412 struct rq *src_rq, struct rq *dst_rq) 2413 { 2414 lockdep_assert_rq_held(src_rq); 2415 2416 /* 2417 * Set sticky_cpu before deactivate_task() to properly mark the 2418 * beginning of an SCX-internal migration. 2419 */ 2420 p->scx.sticky_cpu = cpu_of(dst_rq); 2421 deactivate_task(src_rq, p, 0); 2422 set_task_cpu(p, cpu_of(dst_rq)); 2423 2424 switch_rq_lock(src_rq, dst_rq); 2425 2426 /* 2427 * activate_task() below truncates enq_flags to 32 bits and re-derives 2428 * @p's owner, dropping our scx flags and the placing @sch. We own @rq, 2429 * so stash both across the call. The enqueue reads them back, keeping 2430 * the scx flags and checking caps against the placer, not the owner. 2431 */ 2432 WARN_ON_ONCE(!cpumask_test_cpu(cpu_of(dst_rq), p->cpus_ptr)); 2433 WARN_ON_ONCE(dst_rq->scx.remote_activate_enq_flags || 2434 dst_rq->scx.remote_activate_sch); 2435 dst_rq->scx.remote_activate_enq_flags = enq_flags; 2436 dst_rq->scx.remote_activate_sch = sch; 2437 activate_task(dst_rq, p, 0); 2438 dst_rq->scx.remote_activate_enq_flags = 0; 2439 dst_rq->scx.remote_activate_sch = NULL; 2440 } 2441 2442 /* 2443 * Similar to kernel/sched/core.c::is_cpu_allowed(). However, there are two 2444 * differences: 2445 * 2446 * - is_cpu_allowed() asks "Can this task run on this CPU?" while 2447 * task_can_run_on_remote_rq() asks "Can the BPF scheduler migrate the task to 2448 * this CPU?". 2449 * 2450 * While migration is disabled, is_cpu_allowed() has to say "yes" as the task 2451 * must be allowed to finish on the CPU that it's currently on regardless of 2452 * the CPU state. However, task_can_run_on_remote_rq() must say "no" as the 2453 * BPF scheduler shouldn't attempt to migrate a task which has migration 2454 * disabled. 2455 * 2456 * - The BPF scheduler is bypassed while the rq is offline and we can always say 2457 * no to the BPF scheduler initiated migrations while offline. 2458 * 2459 * The caller must ensure that @p and @rq are on different CPUs. 2460 * If enforce == true, caller must hold @p's rq lock. 2461 */ 2462 static bool task_can_run_on_remote_rq(struct scx_sched *sch, 2463 struct task_struct *p, struct rq *rq, 2464 bool enforce) 2465 { 2466 s32 cpu = cpu_of(rq); 2467 2468 /* 2469 * To prevent races with @p still running on its old CPU while switching 2470 * out, make sure we're holding @p's rq lock so as not to risk 2471 * erroneously killing the BPF scheduler. 2472 */ 2473 if (enforce) 2474 lockdep_assert_rq_held(task_rq(p)); 2475 2476 WARN_ON_ONCE(task_cpu(p) == cpu); 2477 2478 /* 2479 * If @p has migration disabled, @p->cpus_ptr is updated to contain only 2480 * the pinned CPU in migrate_disable_switch() while @p is being switched 2481 * out. However, put_prev_task_scx() is called before @p->cpus_ptr is 2482 * updated and thus another CPU may see @p on a DSQ inbetween leading to 2483 * @p passing the below task_allowed_on_cpu() check while migration is 2484 * disabled. 2485 * 2486 * Test the migration disabled state first as the race window is narrow 2487 * and the BPF scheduler failing to check migration disabled state can 2488 * easily be masked if task_allowed_on_cpu() is done first. 2489 */ 2490 if (unlikely(is_migration_disabled(p))) { 2491 if (enforce) 2492 scx_error(sch, "SCX_DSQ_LOCAL[_ON] cannot move migration disabled %s[%d] from CPU %d to %d", 2493 p->comm, p->pid, task_cpu(p), cpu); 2494 return false; 2495 } 2496 2497 /* 2498 * We don't require the BPF scheduler to avoid dispatching to offline 2499 * CPUs mostly for convenience but also because CPUs can go offline 2500 * between scx_bpf_dsq_insert() calls and here. Trigger error iff the 2501 * picked CPU is outside the allowed mask. 2502 */ 2503 if (!task_allowed_on_cpu(p, cpu)) { 2504 if (enforce) 2505 scx_error(sch, "SCX_DSQ_LOCAL[_ON] target CPU %d not allowed for %s[%d]", 2506 cpu, p->comm, p->pid); 2507 return false; 2508 } 2509 2510 if (!scx_rq_online(rq)) { 2511 if (enforce) 2512 __scx_add_event(sch, SCX_EV_DISPATCH_LOCAL_DSQ_OFFLINE, 1); 2513 return false; 2514 } 2515 2516 return true; 2517 } 2518 2519 /** 2520 * unlink_dsq_and_switch_rq_lock() - Unlink task and switch to its rq lock 2521 * @p: target task 2522 * @dsq: locked DSQ @p is currently on 2523 * @locked_rq: currently locked rq 2524 * @src_rq: rq @p is currently on, stable with @dsq locked 2525 * 2526 * Called with @dsq and @locked_rq locked. We want to move @p to a different DSQ, 2527 * including any local DSQ, but are not locking @src_rq. Locking @src_rq is 2528 * required when transferring into a local DSQ. Even when transferring into a 2529 * non-local DSQ, it's better to use the same mechanism to protect against 2530 * dequeues and maintain the invariant that @p->scx.dsq can only change while 2531 * @src_rq is locked, which e.g. scx_dump_task() depends on. 2532 * 2533 * We want to grab @src_rq but that can deadlock if we try while locking @dsq, 2534 * so we want to unlink @p from @dsq, drop its lock and then lock @src_rq. As 2535 * this may race with dequeue, which can't drop the rq lock or fail, do a little 2536 * dancing from our side. 2537 * 2538 * @p->scx.holding_cpu is set to this CPU before @dsq is unlocked. If @p gets 2539 * dequeued after we unlock @dsq but before locking @src_rq, the holding_cpu 2540 * would be cleared to -1. While other cpus may have updated it to different 2541 * values afterwards, as this operation can't be preempted or recurse, the 2542 * holding_cpu can never become this CPU again before we're done. Thus, we can 2543 * tell whether we lost to dequeue by testing whether the holding_cpu still 2544 * points to this CPU. See scx_dispatch_dequeue() for the counterpart. 2545 * 2546 * On return, @dsq is unlocked and @src_rq is locked. Returns %true if @p is 2547 * still valid. %false if lost to dequeue. 2548 */ 2549 static bool unlink_dsq_and_switch_rq_lock(struct task_struct *p, 2550 struct scx_dispatch_q *dsq, 2551 struct rq *locked_rq, 2552 struct rq *src_rq) 2553 { 2554 s32 cpu = raw_smp_processor_id(); 2555 2556 lockdep_assert_held(&dsq->lock); 2557 lockdep_assert_rq_held(locked_rq); 2558 2559 WARN_ON_ONCE(p->scx.holding_cpu >= 0); 2560 scx_task_unlink_from_dsq(p, dsq); 2561 p->scx.holding_cpu = cpu; 2562 2563 raw_spin_unlock(&dsq->lock); 2564 switch_rq_lock(locked_rq, src_rq); 2565 2566 /* task_rq couldn't have changed if we're still the holding cpu */ 2567 return likely(p->scx.holding_cpu == cpu) && 2568 !WARN_ON_ONCE(src_rq != task_rq(p)); 2569 } 2570 2571 static bool consume_remote_task(struct scx_sched *sch, struct rq *this_rq, 2572 struct task_struct *p, u64 enq_flags, 2573 struct scx_dispatch_q *dsq, struct rq *src_rq) 2574 { 2575 if (unlink_dsq_and_switch_rq_lock(p, dsq, this_rq, src_rq)) { 2576 move_remote_task_to_local_dsq(sch, p, enq_flags, src_rq, this_rq); 2577 return true; 2578 } else { 2579 switch_rq_lock(src_rq, this_rq); 2580 return false; 2581 } 2582 } 2583 2584 /** 2585 * move_task_between_dsqs() - Move a task from one DSQ to another 2586 * @sch: scx_sched being operated on 2587 * @p: target task 2588 * @enq_flags: %SCX_ENQ_* 2589 * @src_dsq: DSQ @p is currently on, must not be a local DSQ 2590 * @dst_dsq: DSQ @p is being moved to, can be any DSQ 2591 * 2592 * Must be called with @p's task_rq and @src_dsq locked. If @dst_dsq is a local 2593 * DSQ and @p is on a different CPU, @p will be migrated and thus its task_rq 2594 * will change. As @p's task_rq is locked, this function doesn't need to use the 2595 * holding_cpu mechanism. 2596 * 2597 * On return, @src_dsq is unlocked and only @p's new task_rq, which is the 2598 * return value, is locked. 2599 */ 2600 static struct rq *move_task_between_dsqs(struct scx_sched *sch, 2601 struct task_struct *p, u64 enq_flags, 2602 struct scx_dispatch_q *src_dsq, 2603 struct scx_dispatch_q *dst_dsq) 2604 { 2605 struct rq *src_rq = task_rq(p), *dst_rq; 2606 2607 BUG_ON(src_dsq->id == SCX_DSQ_LOCAL); 2608 lockdep_assert_held(&src_dsq->lock); 2609 lockdep_assert_rq_held(src_rq); 2610 2611 if (dst_dsq->id == SCX_DSQ_LOCAL) { 2612 dst_rq = container_of(dst_dsq, struct rq, scx.local_dsq); 2613 if (src_rq != dst_rq && 2614 unlikely(!task_can_run_on_remote_rq(sch, p, dst_rq, true))) { 2615 dst_dsq = find_global_dsq(sch, task_cpu(p)); 2616 dst_rq = src_rq; 2617 enq_flags |= SCX_ENQ_GDSQ_FALLBACK; 2618 } 2619 } else { 2620 /* no need to migrate if destination is a non-local DSQ */ 2621 dst_rq = src_rq; 2622 } 2623 2624 /* 2625 * Move @p into $dst_dsq. If $dst_dsq is the local DSQ of a different 2626 * CPU, @p will be migrated. 2627 */ 2628 if (dst_dsq->id == SCX_DSQ_LOCAL) { 2629 /* @p is going from a non-local DSQ to a local DSQ */ 2630 if (src_rq == dst_rq) { 2631 scx_task_unlink_from_dsq(p, src_dsq); 2632 scx_move_local_task_to_local_dsq(sch, p, enq_flags, src_dsq, dst_rq); 2633 raw_spin_unlock(&src_dsq->lock); 2634 } else { 2635 raw_spin_unlock(&src_dsq->lock); 2636 move_remote_task_to_local_dsq(sch, p, enq_flags, src_rq, dst_rq); 2637 } 2638 } else { 2639 /* 2640 * @p is going from a non-local DSQ to a non-local DSQ. As 2641 * $src_dsq is already locked, do an abbreviated dequeue. 2642 */ 2643 dispatch_dequeue_locked(p, src_dsq); 2644 raw_spin_unlock(&src_dsq->lock); 2645 2646 scx_dispatch_enqueue(sch, dst_rq, dst_dsq, p, 0, 0, enq_flags); 2647 } 2648 2649 return dst_rq; 2650 } 2651 2652 bool scx_consume_dispatch_q(struct scx_sched *sch, struct rq *rq, 2653 struct scx_dispatch_q *dsq, u64 enq_flags) 2654 { 2655 struct task_struct *p; 2656 retry: 2657 /* 2658 * The caller can't expect to successfully consume a task if the task's 2659 * addition to @dsq isn't guaranteed to be visible somehow. Test 2660 * @dsq->list without locking and skip if it seems empty. 2661 */ 2662 if (list_empty(&dsq->list)) 2663 return false; 2664 2665 raw_spin_lock(&dsq->lock); 2666 2667 nldsq_for_each_task(p, dsq) { 2668 struct rq *task_rq = task_rq(p); 2669 2670 /* 2671 * This loop can lead to multiple lockup scenarios, e.g. the BPF 2672 * scheduler can put an enormous number of affinitized tasks into 2673 * a contended DSQ, or the outer retry loop can repeatedly race 2674 * against scx_bypass() dequeueing tasks from @dsq trying to put 2675 * the system into the bypass mode. This can easily live-lock the 2676 * machine. If aborting, exit from all non-bypass DSQs. 2677 */ 2678 if (unlikely(READ_ONCE(sch->aborting)) && dsq->id != SCX_DSQ_BYPASS) 2679 break; 2680 2681 if (rq == task_rq) { 2682 scx_task_unlink_from_dsq(p, dsq); 2683 scx_move_local_task_to_local_dsq(sch, p, enq_flags, dsq, rq); 2684 raw_spin_unlock(&dsq->lock); 2685 return true; 2686 } 2687 2688 if (task_can_run_on_remote_rq(sch, p, rq, false)) { 2689 if (likely(consume_remote_task(sch, rq, p, enq_flags, dsq, task_rq))) 2690 return true; 2691 goto retry; 2692 } 2693 } 2694 2695 raw_spin_unlock(&dsq->lock); 2696 return false; 2697 } 2698 2699 bool scx_consume_global_dsq(struct scx_sched *sch, struct rq *rq) 2700 { 2701 int node = cpu_to_node(cpu_of(rq)); 2702 2703 return scx_consume_dispatch_q(sch, rq, &sch->pnode[node]->global_dsq, 0); 2704 } 2705 2706 /** 2707 * dispatch_to_local_dsq - Dispatch a task to a local dsq 2708 * @sch: scx_sched being operated on 2709 * @rq: current rq which is locked 2710 * @dst_dsq: destination DSQ 2711 * @p: task to dispatch 2712 * @slice: slice carried by the insert verdict, 0 keeps the current value 2713 * @vtime: vtime carried by the insert verdict, committed on PRIQ inserts 2714 * @enq_flags: %SCX_ENQ_* 2715 * 2716 * We're holding @rq lock and want to dispatch @p to @dst_dsq which is a local 2717 * DSQ. This function performs all the synchronization dancing needed because 2718 * local DSQs are protected with rq locks. 2719 * 2720 * The caller must have exclusive ownership of @p (e.g. through 2721 * %SCX_OPSS_DISPATCHING). 2722 */ 2723 static void dispatch_to_local_dsq(struct scx_sched *sch, struct rq *rq, 2724 struct scx_dispatch_q *dst_dsq, struct task_struct *p, 2725 u64 slice, u64 vtime, u64 enq_flags) 2726 { 2727 struct rq *src_rq = task_rq(p); 2728 struct rq *dst_rq = container_of(dst_dsq, struct rq, scx.local_dsq); 2729 struct rq *locked_rq = rq; 2730 2731 /* 2732 * We're synchronized against dequeue through DISPATCHING. As @p can't 2733 * be dequeued, its task_rq and cpus_allowed are stable too. 2734 * 2735 * If dispatching to @rq that @p is already on, no lock dancing needed. 2736 */ 2737 if (rq == src_rq && rq == dst_rq) { 2738 scx_dispatch_enqueue(sch, rq, dst_dsq, p, slice, vtime, 2739 enq_flags | SCX_ENQ_APPLY_SLICE | SCX_ENQ_CLEAR_OPSS); 2740 return; 2741 } 2742 2743 /* 2744 * @p is on a possibly remote @src_rq which we need to lock to move the 2745 * task. If dequeue is in progress, it'd be locking @src_rq and waiting 2746 * on DISPATCHING, so we can't grab @src_rq lock while holding 2747 * DISPATCHING. 2748 * 2749 * As DISPATCHING guarantees that @p is wholly ours, we can pretend that 2750 * we're moving from a DSQ and use the same mechanism - mark the task 2751 * under transfer with holding_cpu, release DISPATCHING and then follow 2752 * the same protocol. See unlink_dsq_and_switch_rq_lock(). 2753 */ 2754 p->scx.holding_cpu = raw_smp_processor_id(); 2755 2756 /* store_release ensures that dequeue sees the above */ 2757 atomic_long_set_release(&p->scx.ops_state, SCX_OPSS_NONE); 2758 2759 /* switch to @src_rq lock */ 2760 if (locked_rq != src_rq) { 2761 switch_rq_lock(locked_rq, src_rq); 2762 locked_rq = src_rq; 2763 } 2764 2765 /* task_rq couldn't have changed if we're still the holding cpu */ 2766 if (likely(p->scx.holding_cpu == raw_smp_processor_id()) && 2767 !WARN_ON_ONCE(src_rq != task_rq(p))) { 2768 bool fallback = false; 2769 /* 2770 * If @p is staying on the same rq, there's no need to go 2771 * through the full deactivate/activate cycle. Optimize by 2772 * abbreviating move_remote_task_to_local_dsq(). 2773 */ 2774 if (src_rq == dst_rq) { 2775 p->scx.holding_cpu = -1; 2776 scx_dispatch_enqueue(sch, dst_rq, &dst_rq->scx.local_dsq, p, 2777 slice, vtime, enq_flags | SCX_ENQ_APPLY_SLICE); 2778 } else if (unlikely(!task_can_run_on_remote_rq(sch, p, dst_rq, true))) { 2779 p->scx.holding_cpu = -1; 2780 fallback = true; 2781 scx_dispatch_enqueue(sch, src_rq, find_global_dsq(sch, task_cpu(p)), 2782 p, slice, vtime, 2783 enq_flags | SCX_ENQ_APPLY_SLICE | 2784 SCX_ENQ_GDSQ_FALLBACK); 2785 } else { 2786 apply_slice_vtime(p, slice, vtime, enq_flags); 2787 move_remote_task_to_local_dsq(sch, p, enq_flags, src_rq, dst_rq); 2788 /* task has been moved to dst_rq, which is now locked */ 2789 locked_rq = dst_rq; 2790 } 2791 2792 /* if the destination CPU is idle, wake it up */ 2793 if (!fallback && sched_class_above(p->sched_class, dst_rq->curr->sched_class)) 2794 resched_curr(dst_rq); 2795 } 2796 2797 /* switch back to @rq lock */ 2798 if (locked_rq != rq) 2799 switch_rq_lock(locked_rq, rq); 2800 } 2801 2802 /** 2803 * finish_dispatch - Asynchronously finish dispatching a task 2804 * @sch: the scheduler 2805 * @rq: current rq which is locked 2806 * @p: task to finish dispatching 2807 * @qseq_at_dispatch: qseq when @p started getting dispatched 2808 * @dsq_id: destination DSQ ID 2809 * @enq_flags: %SCX_ENQ_* 2810 * 2811 * Dispatching to local DSQs may need to wait for queueing to complete or 2812 * require rq lock dancing. As we don't wanna do either while inside 2813 * ops.dispatch() to avoid locking order inversion, we split dispatching into 2814 * two parts. scx_bpf_dsq_insert() which is called by ops.dispatch() records the 2815 * task and its qseq. Once ops.dispatch() returns, this function is called to 2816 * finish up. 2817 * 2818 * There is no guarantee that @p is still valid for dispatching or even that it 2819 * was valid in the first place. Make sure that the task is still owned by the 2820 * BPF scheduler and claim the ownership before dispatching. 2821 */ 2822 static void finish_dispatch(struct scx_sched *sch, struct rq *rq, struct task_struct *p, 2823 unsigned long qseq_at_dispatch, u64 dsq_id, 2824 u64 slice, u64 vtime, u64 enq_flags) 2825 { 2826 struct scx_dispatch_q *dsq; 2827 unsigned long opss; 2828 2829 retry: 2830 /* 2831 * No need for _acquire here. @p is accessed only after a successful 2832 * try_cmpxchg to DISPATCHING. 2833 */ 2834 opss = atomic_long_read(&p->scx.ops_state); 2835 2836 switch (opss & SCX_OPSS_STATE_MASK) { 2837 case SCX_OPSS_DISPATCHING: 2838 case SCX_OPSS_NONE: 2839 /* someone else already got to it */ 2840 return; 2841 case SCX_OPSS_QUEUED: 2842 /* 2843 * If qseq doesn't match, @p has gone through at least one 2844 * dispatch/dequeue and re-enqueue cycle between 2845 * scx_bpf_dsq_insert() and here and we have no claim on it. 2846 */ 2847 if ((opss & SCX_OPSS_QSEQ_MASK) != qseq_at_dispatch) 2848 return; 2849 2850 /* see SCX_EV_INSERT_NOT_OWNED definition */ 2851 if (unlikely(!scx_task_on_sched(sch, p))) { 2852 __scx_add_event(sch, SCX_EV_INSERT_NOT_OWNED, 1); 2853 return; 2854 } 2855 2856 /* 2857 * While we know @p is accessible, we don't yet have a claim on 2858 * it - the BPF scheduler is allowed to dispatch tasks 2859 * spuriously and there can be a racing dequeue attempt. Let's 2860 * claim @p by atomically transitioning it from QUEUED to 2861 * DISPATCHING. 2862 */ 2863 if (likely(atomic_long_try_cmpxchg(&p->scx.ops_state, &opss, 2864 SCX_OPSS_DISPATCHING))) 2865 break; 2866 goto retry; 2867 case SCX_OPSS_QUEUEING: 2868 /* 2869 * scx_do_enqueue_task() is in the process of transferring the 2870 * task to the BPF scheduler while holding @p's rq lock. As we 2871 * aren't holding any kernel or BPF resource that the enqueue 2872 * path may depend upon, it's safe to wait. 2873 */ 2874 wait_ops_state(p, opss); 2875 goto retry; 2876 } 2877 2878 BUG_ON(!(p->scx.flags & SCX_TASK_QUEUED)); 2879 2880 dsq = find_dsq_for_dispatch(sch, rq, dsq_id, task_cpu(p)); 2881 2882 if (dsq->id == SCX_DSQ_LOCAL) 2883 dispatch_to_local_dsq(sch, rq, dsq, p, slice, vtime, enq_flags); 2884 else 2885 scx_dispatch_enqueue(sch, rq, dsq, p, slice, vtime, 2886 enq_flags | SCX_ENQ_APPLY_SLICE | SCX_ENQ_CLEAR_OPSS); 2887 } 2888 2889 void scx_flush_dispatch_buf(struct scx_sched *sch, struct rq *rq) 2890 { 2891 struct scx_dsp_ctx *dspc = &this_cpu_ptr(sch->pcpu)->dsp_ctx; 2892 u32 u; 2893 2894 for (u = 0; u < dspc->cursor; u++) { 2895 struct scx_dsp_buf_ent *ent = &dspc->buf[u]; 2896 2897 finish_dispatch(sch, rq, ent->task, ent->qseq, ent->dsq_id, 2898 ent->slice, ent->vtime, ent->enq_flags); 2899 } 2900 2901 dspc->nr_tasks += dspc->cursor; 2902 dspc->cursor = 0; 2903 } 2904 2905 static inline void maybe_queue_balance_callback(struct rq *rq) 2906 { 2907 lockdep_assert_rq_held(rq); 2908 2909 if (!(rq->scx.flags & SCX_RQ_BAL_CB_PENDING)) 2910 return; 2911 2912 queue_balance_callback(rq, &rq->scx.deferred_bal_cb, 2913 deferred_bal_cb_workfn); 2914 2915 rq->scx.flags &= ~SCX_RQ_BAL_CB_PENDING; 2916 } 2917 2918 static enum scx_dsp_verdict dispatch_one(struct rq *rq, struct task_struct *prev) 2919 { 2920 struct scx_sched *sch = scx_root_protected_live(); 2921 enum scx_dsp_verdict verdict; 2922 s32 cpu = cpu_of(rq); 2923 2924 lockdep_assert_rq_held(rq); 2925 rq->scx.flags |= SCX_RQ_IN_DISPATCH; 2926 2927 scx_process_sync_ecaps(rq, prev); 2928 2929 if ((sch->ops.flags & SCX_OPS_HAS_CPU_PREEMPT) && 2930 unlikely(rq->scx.cpu_released)) { 2931 /* 2932 * If the previous sched_class for the current CPU was not SCX, 2933 * notify the BPF scheduler that it again has control of the 2934 * core. This callback complements ->cpu_release(), which is 2935 * emitted in switch_class(). 2936 */ 2937 if (sch->ops.cpu_acquire) 2938 SCX_CALL_OP(sch, cpu_acquire, rq, cpu, NULL); 2939 rq->scx.cpu_released = false; 2940 } 2941 2942 if (prev->sched_class == &ext_sched_class) { 2943 update_curr_scx(rq); 2944 2945 /* 2946 * If @prev is runnable & has slice left, it has priority and 2947 * fetching more just increases latency for the fetched tasks. 2948 * Tell pick_task_scx() to keep running @prev. If the BPF 2949 * scheduler wants to handle this explicitly, it should 2950 * implement ->cpu_release(). 2951 * 2952 * See scx_disable_workfn() for the explanation on the bypassing 2953 * test. 2954 */ 2955 if ((prev->scx.flags & SCX_TASK_QUEUED) && prev->scx.slice && 2956 !scx_bypassing(sch, cpu)) { 2957 verdict = SCX_DSP_PREV; 2958 goto has_tasks; 2959 } 2960 } 2961 2962 /* if there already are tasks to run, nothing to do */ 2963 if (rq->scx.local_dsq.nr) { 2964 verdict = SCX_DSP_LOCAL; 2965 goto has_tasks; 2966 } 2967 2968 verdict = scx_dispatch_sched(sch, rq, prev, false); 2969 if (verdict != SCX_DSP_NONE) 2970 goto has_tasks; 2971 2972 /* 2973 * Didn't find another task to run. Keep running @prev unless 2974 * %SCX_OPS_ENQ_LAST is in effect. 2975 */ 2976 if ((prev->scx.flags & SCX_TASK_QUEUED) && 2977 (!(sch->ops.flags & SCX_OPS_ENQ_LAST) || scx_bypassing(sch, cpu)) && 2978 scx_task_can_stay_on_cpu(rq, prev)) { 2979 __scx_add_event(sch, SCX_EV_DISPATCH_KEEP_LAST, 1); 2980 verdict = SCX_DSP_PREV; 2981 goto has_tasks; 2982 } 2983 rq->scx.flags &= ~SCX_RQ_IN_DISPATCH; 2984 return SCX_DSP_NONE; 2985 2986 has_tasks: 2987 /* 2988 * @rq may have extra IMMED tasks without reenq scheduled: 2989 * 2990 * - rq_is_open() can't reliably tell when and how slice is going to be 2991 * modified for $curr and allows IMMED tasks to be queued while 2992 * dispatch is in progress. 2993 * 2994 * - A non-IMMED HEAD task can get queued in front of an IMMED task 2995 * between the IMMED queueing and the subsequent scheduling event. 2996 */ 2997 if (unlikely(rq->scx.local_dsq.nr > 1 && rq->scx.nr_immed)) 2998 scx_schedule_reenq_local(rq, 0); 2999 3000 rq->scx.flags &= ~SCX_RQ_IN_DISPATCH; 3001 return verdict; 3002 } 3003 3004 static void set_next_task_scx(struct rq *rq, struct task_struct *p, bool first) 3005 { 3006 struct scx_sched *sch = scx_task_sched(p); 3007 3008 if (p->scx.flags & SCX_TASK_QUEUED) { 3009 /* 3010 * Core-sched might decide to execute @p before it is 3011 * dispatched. Call ops_dequeue() to notify the BPF scheduler. 3012 */ 3013 ops_dequeue(rq, p, SCX_DEQ_CORE_SCHED_EXEC); 3014 scx_dispatch_dequeue(rq, p); 3015 } 3016 3017 p->se.exec_start = rq_clock_task(rq); 3018 3019 /* see dequeue_task_scx() on why we skip when !QUEUED */ 3020 if (SCX_HAS_OP(sch, running) && (p->scx.flags & SCX_TASK_QUEUED)) 3021 SCX_CALL_OP_TASK(sch, running, rq, p); 3022 3023 clr_task_runnable(p, true); 3024 3025 /* apply any pending out-of-band slice request before the tick decision */ 3026 apply_task_slice_oob(rq, p); 3027 3028 /* 3029 * @p is getting newly scheduled or got kicked after someone updated its 3030 * slice. Update SCX_RQ_CAN_STOP_TICK to reflect whether the tick can be 3031 * stopped. See scx_can_stop_tick(). 3032 * 3033 * Moreover, refresh the load_avgs just when transitioning in and out of 3034 * nohz. In the future, we might want to add a mechanism to update 3035 * load_avgs periodically on tick-stopped CPUs. 3036 */ 3037 if (p->scx.slice == SCX_SLICE_INF) { 3038 if (!(rq->scx.flags & SCX_RQ_CAN_STOP_TICK)) { 3039 /* 3040 * Bypass mode always assigns finite slices, so @p 3041 * can't have an infinite slice while bypassing. 3042 * Therefore, sched_update_tick_dependency() can safely 3043 * evaluate the outgoing task. 3044 */ 3045 rq->scx.flags |= SCX_RQ_CAN_STOP_TICK; 3046 sched_update_tick_dependency(rq); 3047 3048 update_other_load_avgs(rq); 3049 } 3050 } else { 3051 if (rq->scx.flags & SCX_RQ_CAN_STOP_TICK) { 3052 rq->scx.flags &= ~SCX_RQ_CAN_STOP_TICK; 3053 update_other_load_avgs(rq); 3054 } 3055 3056 /* 3057 * @rq still references the outgoing scheduling context. A finite 3058 * slice is sufficient by itself to require the tick. 3059 */ 3060 if (tick_nohz_full_cpu(cpu_of(rq))) 3061 tick_nohz_dep_set_cpu(cpu_of(rq), TICK_DEP_BIT_SCHED); 3062 } 3063 } 3064 3065 static enum scx_cpu_preempt_reason 3066 preempt_reason_from_class(const struct sched_class *class) 3067 { 3068 if (class == &stop_sched_class) 3069 return SCX_CPU_PREEMPT_STOP; 3070 if (class == &dl_sched_class) 3071 return SCX_CPU_PREEMPT_DL; 3072 if (class == &rt_sched_class) 3073 return SCX_CPU_PREEMPT_RT; 3074 return SCX_CPU_PREEMPT_UNKNOWN; 3075 } 3076 3077 static void switch_class(struct rq *rq, struct task_struct *next) 3078 { 3079 struct scx_sched *sch = scx_root_protected_live(); 3080 const struct sched_class *next_class = next->sched_class; 3081 3082 if (!(sch->ops.flags & SCX_OPS_HAS_CPU_PREEMPT)) 3083 return; 3084 3085 /* 3086 * The callback is conceptually meant to convey that the CPU is no 3087 * longer under the control of SCX. Therefore, don't invoke the callback 3088 * if the next class is below SCX (in which case the BPF scheduler has 3089 * actively decided not to schedule any tasks on the CPU). 3090 */ 3091 if (sched_class_above(&ext_sched_class, next_class)) 3092 return; 3093 3094 /* 3095 * At this point we know that SCX was preempted by a higher priority 3096 * sched_class, so invoke the ->cpu_release() callback if we have not 3097 * done so already. We only send the callback once between SCX being 3098 * preempted, and it regaining control of the CPU. 3099 * 3100 * ->cpu_release() complements ->cpu_acquire(), which is emitted the 3101 * next time that dispatch_one() is invoked. 3102 */ 3103 if (!rq->scx.cpu_released) { 3104 if (sch->ops.cpu_release) { 3105 struct scx_cpu_release_args args = { 3106 .reason = preempt_reason_from_class(next_class), 3107 .task = next, 3108 }; 3109 3110 SCX_CALL_OP(sch, cpu_release, rq, cpu_of(rq), &args); 3111 } 3112 rq->scx.cpu_released = true; 3113 } 3114 } 3115 3116 static void put_prev_task_scx(struct rq *rq, struct task_struct *p, 3117 struct task_struct *next) 3118 { 3119 struct scx_sched *sch = scx_task_sched(p); 3120 bool rescue_keep = false; 3121 3122 /* see kick_sync_wait_bal_cb() */ 3123 smp_store_release(&rq->scx.kick_sync, rq->scx.kick_sync + 1); 3124 3125 update_curr_scx(rq); 3126 3127 /* 3128 * If the slice is consumed, protection ends with it. A rescuee 3129 * preempted beforehand keeps going, see scx_rescue_keep(). 3130 */ 3131 if (!p->scx.slice) { 3132 if (unlikely(p == scx_rescuee(rq))) 3133 rescue_keep = scx_rescue_keep(rq, p); 3134 if (!rescue_keep) 3135 scx_task_slice_ended(rq, p); 3136 } 3137 3138 /* see dequeue_task_scx() on why we skip when !QUEUED */ 3139 if (SCX_HAS_OP(sch, stopping) && (p->scx.flags & SCX_TASK_QUEUED)) 3140 SCX_CALL_OP_TASK(sch, stopping, rq, p, true); 3141 3142 if (p->scx.flags & SCX_TASK_QUEUED) { 3143 set_task_runnable(rq, p); 3144 3145 /* 3146 * If @p has slice left and is being put, @p is getting 3147 * preempted by a higher priority scheduler class or core-sched 3148 * forcing a different task. Leave it at the head of the local 3149 * DSQ unless it was an IMMED task. IMMED tasks should not 3150 * linger on a busy CPU, reenqueue them to the BPF scheduler. 3151 * 3152 * An open rescue must keep @p on the local DSQ even if the 3153 * scheduler zeroed the slice in ops.stopping() above. 3154 */ 3155 if ((p->scx.slice || unlikely(p == scx_rescuee(rq))) && 3156 !scx_bypassing(sch, cpu_of(rq))) { 3157 if (p->scx.flags & SCX_TASK_IMMED) { 3158 p->scx.flags |= SCX_TASK_REENQ_PREEMPTED; 3159 scx_do_enqueue_task(rq, p, SCX_ENQ_REENQ, -1); 3160 p->scx.flags &= ~SCX_TASK_REENQ_REASON_MASK; 3161 } else { 3162 u64 enq_flags = 0; 3163 3164 /* 3165 * Keep a preempted rescue going. If preempted 3166 * by another SCX task, append to the local DSQ, 3167 * see scx_rescue_keep(). 3168 */ 3169 if (unlikely(p == scx_rescuee(rq))) { 3170 enq_flags |= SCX_ENQ_IGNORE_CAPS; 3171 if (!rescue_keep) 3172 enq_flags |= SCX_ENQ_HEAD; 3173 } else { 3174 enq_flags |= SCX_ENQ_HEAD; 3175 } 3176 3177 scx_dispatch_enqueue(sch, rq, &rq->scx.local_dsq, p, 0, 0, 3178 enq_flags); 3179 } 3180 goto switch_class; 3181 } 3182 3183 /* 3184 * If @p is runnable but we're about to enter a lower 3185 * sched_class, %SCX_OPS_ENQ_LAST must be set. Tell 3186 * ops.enqueue() that @p is the only one available for this cpu, 3187 * which should trigger an explicit follow-up scheduling event. 3188 * This doesn't apply if the baseline access on the CPU is lost. 3189 * 3190 * Under core scheduling, a pick dispatches only when nothing is 3191 * locally runnable and can legitimately go idle with @p still 3192 * runnable (see do_pick_task_scx()). 3193 */ 3194 if (next && sched_class_above(&ext_sched_class, next->sched_class) && 3195 scx_task_can_stay_on_cpu(rq, p)) { 3196 WARN_ON_ONCE(!sched_core_enabled(rq) && 3197 !(sch->ops.flags & SCX_OPS_ENQ_LAST)); 3198 scx_do_enqueue_task(rq, p, SCX_ENQ_LAST, -1); 3199 } else { 3200 scx_do_enqueue_task(rq, p, 0, -1); 3201 } 3202 } 3203 3204 switch_class: 3205 if (next && next->sched_class != &ext_sched_class) 3206 switch_class(rq, next); 3207 } 3208 3209 static void kick_sync_wait_bal_cb(struct rq *rq) 3210 { 3211 struct scx_kick_syncs __rcu *ks; 3212 unsigned long *ksyncs; 3213 bool waited; 3214 s32 cpu; 3215 3216 /* 3217 * This callback is queued and normally flushed within @rq's own 3218 * scheduling pass. However, dispatch can drop the rq lock while it sits 3219 * queued, and lock takers in that window (the sched class change paths, 3220 * the scx task iterator) flush pending balance callbacks on release, 3221 * running this one on a foreign CPU whose snapshots are unrelated. The 3222 * kicked CPUs are already on their way to advance the kick_syncs being 3223 * waited on. Don't get in the way. 3224 */ 3225 if (unlikely(cpu_of(rq) != smp_processor_id())) 3226 return; 3227 3228 ks = __this_cpu_read(scx_kick_syncs); 3229 ksyncs = rcu_dereference_sched(ks)->syncs; 3230 3231 /* 3232 * Drop rq lock and enable IRQs while waiting. IRQs must be enabled 3233 * — a target CPU may be waiting for us to process an IPI (e.g. TLB 3234 * flush) while we wait for its kick_sync to advance. 3235 * 3236 * Also, keep advancing our own kick_sync so that new kick_sync waits 3237 * targeting us, which can start after we drop the lock, cannot form 3238 * cyclic dependencies. 3239 */ 3240 retry: 3241 waited = false; 3242 for_each_cpu(cpu, rq->scx.cpus_to_sync) { 3243 /* 3244 * smp_load_acquire() pairs with smp_store_release() on 3245 * kick_sync updates on the target CPUs. 3246 */ 3247 if (cpu == cpu_of(rq) || 3248 smp_load_acquire(&cpu_rq(cpu)->scx.kick_sync) != ksyncs[cpu]) { 3249 cpumask_clear_cpu(cpu, rq->scx.cpus_to_sync); 3250 continue; 3251 } 3252 3253 scx_rq_lock_drop(rq); 3254 raw_spin_rq_unlock_irq(rq); 3255 while (READ_ONCE(cpu_rq(cpu)->scx.kick_sync) == ksyncs[cpu]) { 3256 smp_store_release(&rq->scx.kick_sync, rq->scx.kick_sync + 1); 3257 cpu_relax(); 3258 } 3259 raw_spin_rq_lock_irq(rq); 3260 waited = true; 3261 } 3262 3263 if (waited) 3264 goto retry; 3265 } 3266 3267 static struct task_struct *first_local_task(struct rq *rq) 3268 { 3269 return list_first_entry_or_null(&rq->scx.local_dsq.list, 3270 struct task_struct, scx.dsq_list.node); 3271 } 3272 3273 /* 3274 * Run dispatch and queue the follow-up work for a pick. 3275 */ 3276 static enum scx_dsp_verdict dispatch_pick(struct rq *rq, struct rq_flags *rf, 3277 struct task_struct *prev) 3278 { 3279 enum scx_dsp_verdict verdict; 3280 3281 rq_unpin_lock(rq, rf); 3282 verdict = dispatch_one(rq, prev); 3283 rq_repin_lock(rq, rf); 3284 maybe_queue_balance_callback(rq); 3285 3286 /* 3287 * Defer to a balance callback which can drop rq lock and enable IRQs. 3288 * Waiting directly in the pick path would deadlock against CPUs sending 3289 * us IPIs (e.g. TLB flushes) while we wait for them. 3290 */ 3291 if (unlikely(rq->scx.kick_sync_pending)) { 3292 rq->scx.kick_sync_pending = false; 3293 queue_balance_callback(rq, &rq->scx.kick_sync_bal_cb, 3294 kick_sync_wait_bal_cb); 3295 } 3296 3297 return verdict; 3298 } 3299 3300 #ifdef CONFIG_SCHED_CORE 3301 /* 3302 * Dispatch for a pick when core scheduling is enabled. The selection picks for 3303 * all SMT siblings and the rq_i->core_pick state it builds must stay atomic 3304 * throughout. If the dispatch released the rq lock, anything can have happened 3305 * in between - return %SCX_DSP_RETRY to restart the selection against current 3306 * state. 3307 */ 3308 static enum scx_dsp_verdict dispatch_core_pick(struct rq *rq, struct rq_flags *rf, 3309 struct task_struct *prev) 3310 { 3311 enum scx_dsp_verdict verdict; 3312 u32 seq = rq->scx.lock_drop_seq; 3313 3314 /* another dispatch is in flight on @rq, let that handle it */ 3315 if (rq->scx.flags & SCX_RQ_IN_DISPATCH) 3316 return SCX_DSP_NONE; 3317 3318 rq_unpin_lock(rq, rf); 3319 3320 verdict = dispatch_one(rq, prev); 3321 3322 if (cpu_of(rq) == smp_processor_id()) { 3323 maybe_queue_balance_callback(rq); 3324 3325 /* see dispatch_pick() */ 3326 if (unlikely(rq->scx.kick_sync_pending)) { 3327 rq->scx.kick_sync_pending = false; 3328 queue_balance_callback(rq, &rq->scx.kick_sync_bal_cb, 3329 kick_sync_wait_bal_cb); 3330 } 3331 } else if (unlikely(rq->scx.flags & SCX_RQ_BAL_CB_PENDING)) { 3332 /* 3333 * Balance callbacks must run in the context that queued them, 3334 * so they can't be queued on another CPU's rq. Run the deferred 3335 * work directly instead. 3336 */ 3337 rq->scx.flags &= ~SCX_RQ_BAL_CB_PENDING; 3338 run_deferred(rq); 3339 } 3340 3341 rq_repin_lock(rq, rf); 3342 3343 /* if dispatch_one() released the rq lock, restart the selection */ 3344 if (rq->scx.lock_drop_seq != seq) 3345 return SCX_DSP_RETRY; 3346 3347 return verdict; 3348 } 3349 #else /* CONFIG_SCHED_CORE */ 3350 static enum scx_dsp_verdict dispatch_core_pick(struct rq *rq, struct rq_flags *rf, 3351 struct task_struct *prev) 3352 { 3353 return SCX_DSP_NONE; 3354 } 3355 #endif /* CONFIG_SCHED_CORE */ 3356 3357 static struct task_struct * 3358 do_pick_task_scx(struct rq *rq, struct rq_flags *rf, bool force_scx) 3359 { 3360 struct task_struct *prev = rq->curr; 3361 enum scx_dsp_verdict verdict; 3362 struct task_struct *p; 3363 3364 /* see kick_sync_wait_bal_cb() */ 3365 smp_store_release(&rq->scx.kick_sync, rq->scx.kick_sync + 1); 3366 3367 rq_modified_begin(rq, &ext_sched_class); 3368 3369 if (sched_core_enabled(rq)) 3370 verdict = dispatch_core_pick(rq, rf, prev); 3371 else 3372 verdict = dispatch_pick(rq, rf, prev); 3373 3374 if (verdict == SCX_DSP_RETRY) 3375 return RETRY_TASK; 3376 3377 /* 3378 * If any higher-priority sched class enqueued a runnable task on this 3379 * rq during dispatch_one(), abort and return RETRY_TASK, so that the 3380 * scheduler loop can restart. 3381 * 3382 * If @force_scx is true, always try to pick a SCHED_EXT task, 3383 * regardless of any higher-priority sched classes activity. 3384 */ 3385 if (!force_scx && rq_modified_above(rq, &ext_sched_class)) 3386 return RETRY_TASK; 3387 3388 /* 3389 * If we're keeping @prev, replenish slice if necessary and keep running 3390 * @prev. Otherwise, pop the first one from the local DSQ. 3391 */ 3392 if (verdict == SCX_DSP_PREV) { 3393 p = prev; 3394 if (!p->scx.slice) { 3395 /* the slice is consumed, protection ends */ 3396 scx_task_slice_ended(rq, p); 3397 refill_task_slice_dfl(scx_task_sched(p), p); 3398 } 3399 } else { 3400 p = first_local_task(rq); 3401 if (!p) 3402 return NULL; 3403 3404 if (unlikely(!p->scx.slice) && scx_task_can_stay_on_cpu(rq, p)) { 3405 struct scx_sched *sch = scx_task_sched(p); 3406 3407 if (!scx_bypassing(sch, cpu_of(rq)) && 3408 !sch->warned_zero_slice) { 3409 printk_deferred(KERN_WARNING "sched_ext: %s[%d] has zero slice in %s()\n", 3410 p->comm, p->pid, __func__); 3411 sch->warned_zero_slice = true; 3412 } 3413 refill_task_slice_dfl(sch, p); 3414 } 3415 } 3416 3417 return p; 3418 } 3419 3420 static struct task_struct *pick_task_scx(struct rq *rq, struct rq_flags *rf) 3421 { 3422 return do_pick_task_scx(rq, rf, false); 3423 } 3424 3425 /* 3426 * Select the next task to run from the ext scheduling class. 3427 * 3428 * Use do_pick_task_scx() directly with @force_scx enabled, since the 3429 * dl_server must always select a sched_ext task. 3430 */ 3431 static struct task_struct * 3432 ext_server_pick_task(struct sched_dl_entity *dl_se, struct rq_flags *rf) 3433 { 3434 if (!scx_enabled()) 3435 return NULL; 3436 3437 return do_pick_task_scx(dl_se->rq, rf, true); 3438 } 3439 3440 /* 3441 * Initialize the ext server deadline entity. 3442 */ 3443 void ext_server_init(struct rq *rq) 3444 { 3445 struct sched_dl_entity *dl_se = &rq->ext_server; 3446 3447 init_dl_entity(dl_se); 3448 3449 dl_server_init(dl_se, rq, ext_server_pick_task); 3450 } 3451 3452 #ifdef CONFIG_SCHED_CORE 3453 /** 3454 * scx_prio_less - Task ordering for core-sched 3455 * @a: task A 3456 * @b: task B 3457 * @in_fi: in forced idle state 3458 * 3459 * Core-sched is implemented as an additional scheduling layer on top of the 3460 * usual sched_class'es and needs to find out the expected task ordering. For 3461 * SCX, core-sched calls this function to interrogate the task ordering. 3462 * 3463 * A pair of tasks owned by one scheduler is ordered by the owner's 3464 * ops.core_sched_before(). A pair spanning two schedulers is ordered by their 3465 * nearest common ancestor which implements the op - the one case where the op 3466 * is called on tasks that the scheduler delegated to its sub-schedulers and may 3467 * not be scheduling anymore. 3468 * 3469 * When neither applies, or the deciding scheduler is bypassing on either task's 3470 * CPU, the default ordering runs the task which has been waiting longer first. 3471 * A running task counts as the most recently serviced and orders after every 3472 * waiting task. Waiting tasks are compared by @p->scx.runnable_at. 3473 * 3474 * Return: %true if @a should run after @b. 3475 */ 3476 bool scx_prio_less(const struct task_struct *a, const struct task_struct *b, 3477 bool in_fi) 3478 { 3479 struct scx_sched *sch_a = scx_task_sched(a); 3480 struct scx_sched *sch_b = scx_task_sched(b); 3481 struct scx_sched *sch = NULL; 3482 bool a_running, b_running; 3483 3484 if (sch_a == sch_b) { 3485 if (SCX_HAS_OP(sch_a, core_sched_before)) 3486 sch = sch_a; 3487 } else { 3488 s32 level; 3489 3490 for (level = min(sch_a->level, sch_b->level); level >= 0; level--) { 3491 struct scx_sched *anc = sch_a->ancestors[level]; 3492 3493 if (anc == sch_b->ancestors[level] && 3494 SCX_HAS_OP(anc, core_sched_before)) { 3495 sch = anc; 3496 break; 3497 } 3498 } 3499 } 3500 3501 /* 3502 * scx_prio_less() returns whether @a should run after @b while 3503 * ops.core_sched_before() returns whether its first argument should run 3504 * before the second. Swap the arguments. 3505 * 3506 * The const qualifiers are dropped from task_struct pointers when 3507 * calling ops.core_sched_before(). Accesses are controlled by the 3508 * verifier. 3509 */ 3510 if (sch && !scx_bypassing(sch, task_cpu(a)) && !scx_bypassing(sch, task_cpu(b))) 3511 return SCX_CALL_OP_2TASKS_RET(sch, core_sched_before, task_rq(a), 3512 (struct task_struct *)b, 3513 (struct task_struct *)a); 3514 3515 /* 3516 * runnable_at is refreshed only on enqueue, so a task which keeps 3517 * occupying its CPU carries a stale stamp. A running task is the most 3518 * recently serviced whatever its stamp says. Order it after every 3519 * waiting task. 3520 */ 3521 a_running = a->on_cpu; 3522 b_running = b->on_cpu; 3523 if (a_running != b_running) 3524 return a_running; 3525 3526 return time_after(a->scx.runnable_at, b->scx.runnable_at); 3527 } 3528 #endif /* CONFIG_SCHED_CORE */ 3529 3530 static int select_task_rq_scx(struct task_struct *p, int prev_cpu, int wake_flags) 3531 { 3532 struct scx_sched *sch = scx_task_sched(p); 3533 bool bypassing; 3534 3535 /* 3536 * sched_exec() calls with %WF_EXEC when @p is about to exec(2) as it 3537 * can be a good migration opportunity with low cache and memory 3538 * footprint. Returning a CPU different than @prev_cpu triggers 3539 * immediate rq migration. However, for SCX, as the current rq 3540 * association doesn't dictate where the task is going to run, this 3541 * doesn't fit well. If necessary, we can later add a dedicated method 3542 * which can decide to preempt self to force it through the regular 3543 * scheduling path. 3544 */ 3545 if (unlikely(wake_flags & WF_EXEC)) 3546 return prev_cpu; 3547 3548 bypassing = scx_bypassing(sch, task_cpu(p)); 3549 if (likely(SCX_HAS_OP(sch, select_cpu)) && !bypassing) { 3550 s32 cpu; 3551 struct task_struct **ddsp_taskp; 3552 3553 ddsp_taskp = this_cpu_ptr(&direct_dispatch_task); 3554 WARN_ON_ONCE(*ddsp_taskp); 3555 *ddsp_taskp = p; 3556 3557 this_rq()->scx.in_select_cpu = true; 3558 cpu = SCX_CALL_OP_TASK_RET(sch, select_cpu, NULL, p, 3559 scx_cpu_arg(prev_cpu), wake_flags); 3560 cpu = scx_cpu_ret(sch, cpu); 3561 this_rq()->scx.in_select_cpu = false; 3562 p->scx.selected_cpu = cpu; 3563 *ddsp_taskp = NULL; 3564 if (scx_cpu_valid(sch, cpu, "from ops.select_cpu()")) 3565 return cpu; 3566 else 3567 return prev_cpu; 3568 } else { 3569 s32 cpu; 3570 3571 /* 3572 * While bypassing, the enqueue path routes @p to a bypass DSQ 3573 * without consulting the direct-dispatch target, making the 3574 * default selection pointless. It doesn't work anyway when the 3575 * scheduler does its own idle tracking and the built-in idle 3576 * cpumasks are not updated. Leave @p on @prev_cpu. 3577 */ 3578 if (bypassing) { 3579 __scx_add_event(sch, SCX_EV_BYPASS_DISPATCH, 1); 3580 p->scx.selected_cpu = prev_cpu; 3581 return prev_cpu; 3582 } 3583 3584 cpu = scx_select_cpu_dfl(p, prev_cpu, wake_flags, NULL, 0); 3585 if (cpu >= 0) { 3586 /* 3587 * Carry the slice refill and let the insertion commit 3588 * it under rq lock. See the write rules. 3589 */ 3590 __scx_add_event(sch, SCX_EV_REFILL_SLICE_DFL, 1); 3591 p->scx.ddsp_slice = READ_ONCE(sch->slice_dfl); 3592 p->scx.ddsp_enq_flags = SCX_ENQ_SLICE_DFL; 3593 p->scx.ddsp_dsq_id = SCX_DSQ_LOCAL; 3594 } else { 3595 cpu = prev_cpu; 3596 } 3597 p->scx.selected_cpu = cpu; 3598 3599 return cpu; 3600 } 3601 } 3602 3603 static void task_woken_scx(struct rq *rq, struct task_struct *p) 3604 { 3605 run_deferred(rq); 3606 } 3607 3608 static void set_cpus_allowed_scx(struct task_struct *p, 3609 struct affinity_context *ac) 3610 { 3611 struct scx_sched *sch = scx_task_sched(p); 3612 3613 set_cpus_allowed_common(p, ac); 3614 3615 if (task_dead_and_done(p)) 3616 return; 3617 3618 /* 3619 * The effective cpumask is stored in @p->cpus_ptr which may temporarily 3620 * differ from the configured one in @p->cpus_mask. Always tell the bpf 3621 * scheduler the effective one. 3622 * 3623 * Fine-grained memory write control is enforced by BPF making the const 3624 * designation pointless. Cast it away when calling the operation. 3625 */ 3626 if (SCX_HAS_OP(sch, set_cpumask)) 3627 scx_call_op_set_cpumask(sch, task_rq(p), p, (struct cpumask *)p->cpus_ptr); 3628 } 3629 3630 static void handle_hotplug(struct rq *rq, bool online) 3631 { 3632 struct scx_sched *sch = scx_root_protected(); 3633 s32 cpu = cpu_of(rq); 3634 s32 cpu_or_cid = cpu; 3635 3636 atomic_long_inc(&scx_hotplug_seq); 3637 3638 /* 3639 * scx_root updates are protected by cpus_read_lock() and will stay 3640 * stable here. Note that we can't depend on scx_enabled() test as the 3641 * hotplug ops need to be enabled before __scx_enabled is set. 3642 */ 3643 if (unlikely(!sch)) 3644 return; 3645 3646 if (scx_enabled()) 3647 scx_idle_update_selcpu_topology(&sch->ops); 3648 3649 if (online) 3650 scx_online_ecaps(rq); 3651 else 3652 scx_offline_ecaps(rq); 3653 3654 /* 3655 * The tables can't be retired while this function is running as the 3656 * retirement is inside cpus_read_lock. However, scx_cpu_arg() is 3657 * awkward here as the tables can be NULL after root enable failure and 3658 * lockdep would trigger without surrounding rcu_read_lock(). Open code 3659 * the translation. If the table is NULL, the ops are also cleared and 3660 * @cpu_or_cid goes unused. 3661 */ 3662 if (scx_is_cid_type()) { 3663 s16 *tbl = rcu_dereference_check(scx_cpu_to_cid_tbl, 3664 lockdep_is_cpus_held()); 3665 3666 if (tbl) 3667 cpu_or_cid = tbl[cpu]; 3668 } 3669 3670 if (online && SCX_HAS_OP(sch, cpu_online)) 3671 SCX_CALL_OP(sch, cpu_online, NULL, cpu_or_cid); 3672 else if (!online && SCX_HAS_OP(sch, cpu_offline)) 3673 SCX_CALL_OP(sch, cpu_offline, NULL, cpu_or_cid); 3674 else 3675 scx_exit(sch, SCX_EXIT_UNREG_KERN, 3676 SCX_ECODE_ACT_RESTART | SCX_ECODE_RSN_HOTPLUG, 3677 "cpu %d going %s, exiting scheduler", cpu, 3678 online ? "online" : "offline"); 3679 } 3680 3681 void scx_rq_activate(struct rq *rq) 3682 { 3683 handle_hotplug(rq, true); 3684 } 3685 3686 void scx_rq_deactivate(struct rq *rq) 3687 { 3688 handle_hotplug(rq, false); 3689 } 3690 3691 static void rq_online_scx(struct rq *rq) 3692 { 3693 rq->scx.flags |= SCX_RQ_ONLINE; 3694 } 3695 3696 static void rq_offline_scx(struct rq *rq) 3697 { 3698 rq->scx.flags &= ~SCX_RQ_ONLINE; 3699 scx_rescue_flush(rq); 3700 } 3701 3702 static bool check_rq_for_timeouts(struct rq *rq) 3703 { 3704 struct scx_sched *sch; 3705 struct task_struct *p; 3706 struct rq_flags rf; 3707 bool timed_out = false; 3708 3709 rq_lock_irqsave(rq, &rf); 3710 sch = rcu_dereference_bh(scx_root); 3711 if (unlikely(!sch)) 3712 goto out_unlock; 3713 3714 list_for_each_entry(p, &rq->scx.runnable_list, scx.runnable_node) { 3715 struct scx_sched *sch = scx_task_sched(p); 3716 unsigned long last_runnable = p->scx.runnable_at; 3717 3718 if (unlikely(time_after(jiffies, 3719 last_runnable + READ_ONCE(sch->watchdog_timeout)))) { 3720 struct scx_dispatch_q *dsq = READ_ONCE(p->scx.dsq); 3721 u32 dur_ms = jiffies_to_msecs(jiffies - last_runnable); 3722 3723 /* 3724 * A task can be stuck on a DSQ that a sched other than 3725 * its owner is responsible for draining, e.g. an 3726 * ancestor's bypass DSQ while the owner is bypassing. 3727 * Blame the drainer. The local DSQ is consumed by the 3728 * cpu itself and keeps blame on the owner. 3729 */ 3730 if (dsq && dsq->sched && dsq->id != SCX_DSQ_LOCAL) 3731 sch = dsq->sched; 3732 3733 __scx_exit(sch, SCX_EXIT_ERROR_STALL, 0, cpu_of(rq), 3734 "%s[%d] failed to run for %u.%03us", 3735 p->comm, p->pid, dur_ms / 1000, 3736 dur_ms % 1000); 3737 timed_out = true; 3738 break; 3739 } 3740 } 3741 out_unlock: 3742 rq_unlock_irqrestore(rq, &rf); 3743 return timed_out; 3744 } 3745 3746 static void scx_watchdog_workfn(struct work_struct *work) 3747 { 3748 unsigned long intv; 3749 int cpu; 3750 3751 WRITE_ONCE(scx_watchdog_timestamp, jiffies); 3752 3753 for_each_online_cpu(cpu) { 3754 if (unlikely(check_rq_for_timeouts(cpu_rq(cpu)))) 3755 break; 3756 3757 cond_resched(); 3758 } 3759 3760 intv = READ_ONCE(scx_watchdog_interval); 3761 if (intv < ULONG_MAX) 3762 queue_delayed_work(system_dfl_wq, to_delayed_work(work), intv); 3763 } 3764 3765 void scx_tick(struct rq *rq) 3766 { 3767 struct scx_sched *root; 3768 unsigned long last_check; 3769 3770 if (!scx_enabled()) 3771 return; 3772 3773 root = rcu_dereference_bh(scx_root); 3774 if (unlikely(!root)) 3775 return; 3776 3777 last_check = READ_ONCE(scx_watchdog_timestamp); 3778 if (unlikely(time_after(jiffies, 3779 last_check + READ_ONCE(root->watchdog_timeout)))) { 3780 u32 dur_ms = jiffies_to_msecs(jiffies - last_check); 3781 3782 scx_exit(root, SCX_EXIT_ERROR_STALL, 0, 3783 "watchdog failed to check in for %u.%03us", 3784 dur_ms / 1000, dur_ms % 1000); 3785 } 3786 3787 update_other_load_avgs(rq); 3788 } 3789 3790 static void task_tick_scx(struct rq *rq, struct task_struct *curr, int queued) 3791 { 3792 struct scx_sched *sch = scx_task_sched(curr); 3793 3794 update_curr_scx(rq); 3795 3796 /* 3797 * While disabling, always resched as we can't trust the slice 3798 * management. 3799 */ 3800 if (scx_bypassing(sch, cpu_of(rq))) 3801 scx_set_task_slice(curr, 0); 3802 else if (SCX_HAS_OP(sch, tick)) 3803 SCX_CALL_OP_TASK(sch, tick, rq, curr); 3804 3805 if (!curr->scx.slice) 3806 resched_curr(rq); 3807 } 3808 3809 #ifdef CONFIG_EXT_GROUP_SCHED 3810 static struct cgroup *tg_cgrp(struct task_group *tg) 3811 { 3812 /* 3813 * If CGROUP_SCHED is disabled, @tg is NULL. If @tg is an autogroup, 3814 * @tg->css.cgroup is NULL. In both cases, @tg can be treated as the 3815 * root cgroup. 3816 */ 3817 if (tg && tg->css.cgroup) 3818 return tg->css.cgroup; 3819 else 3820 return &cgrp_dfl_root.cgrp; 3821 } 3822 3823 #define SCX_INIT_TASK_ARGS_CGROUP(cgrp) .cgroup = (cgrp), 3824 3825 #else /* CONFIG_EXT_GROUP_SCHED */ 3826 3827 #define SCX_INIT_TASK_ARGS_CGROUP(cgrp) 3828 3829 #endif /* CONFIG_EXT_GROUP_SCHED */ 3830 3831 /** 3832 * __scx_init_task - Initialize a task for a sched 3833 * @sch: sched to initialize @p for 3834 * @p: task of interest 3835 * @cgrp: cgroup @p is joining, %NULL for @p's current task_group's cgroup 3836 * @fork: %true if @p is being forked 3837 * 3838 * Pre-commit cgroup migration passes @cgrp explicitly as @p's task_group 3839 * still reflects the source. 3840 * 3841 * Return 0 on success, -errno on failure. 3842 */ 3843 int __scx_init_task(struct scx_sched *sch, struct task_struct *p, 3844 struct cgroup *cgrp, bool fork) 3845 { 3846 int ret; 3847 3848 p->scx.disallow = false; 3849 3850 if (SCX_HAS_OP(sch, init_task)) { 3851 struct scx_init_task_args args = { 3852 SCX_INIT_TASK_ARGS_CGROUP(cgrp ?: tg_cgrp(task_group(p))) 3853 .fork = fork, 3854 }; 3855 3856 ret = SCX_CALL_OP_RET(sch, init_task, NULL, p, &args); 3857 if (unlikely(ret)) { 3858 ret = scx_ops_sanitize_err(sch, "init_task", ret); 3859 return ret; 3860 } 3861 } 3862 3863 if (p->scx.disallow) { 3864 if (unlikely(scx_parent(sch))) { 3865 scx_error(sch, "non-root ops.init_task() set task->scx.disallow for %s[%d]", 3866 p->comm, p->pid); 3867 } else if (unlikely(fork)) { 3868 scx_error(sch, "ops.init_task() set task->scx.disallow for %s[%d] during fork", 3869 p->comm, p->pid); 3870 } else if (unlikely(scx_enable_state() != SCX_ENABLING)) { 3871 scx_error(sch, "ops.init_task() set task->scx.disallow for %s[%d] outside the enable path", 3872 p->comm, p->pid); 3873 } else { 3874 struct rq *rq; 3875 struct rq_flags rf; 3876 3877 rq = task_rq_lock(p, &rf); 3878 3879 /* 3880 * We're in the load path and @p->policy will be applied 3881 * right after. Reverting @p->policy here and rejecting 3882 * %SCHED_EXT transitions from scx_check_setscheduler() 3883 * guarantees that if ops.init_task() sets @p->disallow, 3884 * @p can never be in SCX. 3885 */ 3886 if (p->policy == SCHED_EXT) { 3887 p->policy = SCHED_NORMAL; 3888 atomic_long_inc(&scx_nr_rejected); 3889 } 3890 3891 task_rq_unlock(rq, p, &rf); 3892 } 3893 } 3894 3895 return 0; 3896 } 3897 3898 static void __scx_enable_task(struct scx_sched *sch, struct task_struct *p) 3899 { 3900 struct rq *rq = task_rq(p); 3901 u32 weight; 3902 3903 lockdep_assert_rq_held(rq); 3904 3905 /* 3906 * Verify the task is not in BPF scheduler's custody. If flag 3907 * transitions are consistent, the flag should always be clear 3908 * here. 3909 */ 3910 WARN_ON_ONCE(p->scx.flags & SCX_TASK_IN_CUSTODY); 3911 3912 /* 3913 * Set the weight before calling ops.enable() so that the scheduler 3914 * doesn't see a stale value if they inspect the task struct. 3915 */ 3916 if (task_has_idle_policy(p)) 3917 weight = WEIGHT_IDLEPRIO; 3918 else 3919 weight = sched_prio_to_weight[p->static_prio - MAX_RT_PRIO]; 3920 3921 p->scx.weight = sched_weight_to_cgroup(weight); 3922 3923 if (SCX_HAS_OP(sch, enable)) 3924 SCX_CALL_OP_TASK(sch, enable, rq, p); 3925 3926 if (SCX_HAS_OP(sch, set_weight)) 3927 SCX_CALL_OP_TASK(sch, set_weight, rq, p, p->scx.weight); 3928 } 3929 3930 void scx_enable_task(struct scx_sched *sch, struct task_struct *p) 3931 { 3932 __scx_enable_task(sch, p); 3933 scx_set_task_state(p, SCX_TASK_ENABLED); 3934 } 3935 3936 static void scx_disable_task(struct scx_sched *sch, struct task_struct *p) 3937 { 3938 struct rq *rq = task_rq(p); 3939 3940 lockdep_assert_rq_held(rq); 3941 WARN_ON_ONCE(scx_get_task_state(p) != SCX_TASK_ENABLED); 3942 3943 clear_direct_dispatch(p); 3944 3945 if (SCX_HAS_OP(sch, disable)) 3946 SCX_CALL_OP_TASK(sch, disable, rq, p); 3947 scx_set_task_state(p, SCX_TASK_READY); 3948 3949 /* 3950 * Reset the SCX-managed fields when @p leaves the BPF scheduler's 3951 * control, after ops.disable() has observed their final values. 3952 */ 3953 p->scx.dsq_vtime = 0; 3954 scx_task_slice_ended(rq, p); 3955 scx_set_task_slice(p, 0); 3956 p->scx.reenq_cnt = 0; 3957 3958 /* 3959 * Verify the task is not in BPF scheduler's custody. If flag 3960 * transitions are consistent, the flag should always be clear 3961 * here. 3962 */ 3963 WARN_ON_ONCE(p->scx.flags & SCX_TASK_IN_CUSTODY); 3964 } 3965 3966 void __scx_disable_and_exit_task(struct scx_sched *sch, struct task_struct *p) 3967 { 3968 struct scx_exit_task_args args = { 3969 .cancelled = false, 3970 }; 3971 3972 lockdep_assert_held(&p->pi_lock); 3973 lockdep_assert_rq_held(task_rq(p)); 3974 3975 switch (scx_get_task_state(p)) { 3976 case SCX_TASK_NONE: 3977 return; 3978 case SCX_TASK_INIT: 3979 args.cancelled = true; 3980 break; 3981 case SCX_TASK_READY: 3982 break; 3983 case SCX_TASK_ENABLED: 3984 scx_disable_task(sch, p); 3985 break; 3986 default: 3987 WARN_ON_ONCE(true); 3988 return; 3989 } 3990 3991 if (SCX_HAS_OP(sch, exit_task)) 3992 SCX_CALL_OP_TASK(sch, exit_task, task_rq(p), p, &args); 3993 } 3994 3995 /* 3996 * Undo a completed __scx_init_task(sch, p, false) when scx_enable_task() never 3997 * ran. The task state has not been transitioned, so this mirrors the 3998 * SCX_TASK_INIT branch in __scx_disable_and_exit_task(). 3999 */ 4000 void scx_sub_init_cancel_task(struct scx_sched *sch, struct task_struct *p) 4001 { 4002 struct scx_exit_task_args args = { .cancelled = true }; 4003 4004 lockdep_assert_held(&p->pi_lock); 4005 lockdep_assert_rq_held(task_rq(p)); 4006 4007 /* @p was never associated with @sch, dispatch on the explicit @sch */ 4008 if (SCX_HAS_OP(sch, exit_task)) 4009 __SCX_CALL_OP_TASK(sch, ops, exit_task, task_rq(p), p, &args); 4010 } 4011 4012 void scx_disable_and_exit_task(struct scx_sched *sch, struct task_struct *p) 4013 { 4014 __scx_disable_and_exit_task(sch, p); 4015 4016 /* 4017 * If set, @p exited between __scx_init_task() and scx_enable_task() in 4018 * scx_sub_enable() and is initialized for both the associated sched and 4019 * its parent. Exit for the child too - scx_enable_task() never ran for 4020 * it, so undo only init_task. The flag is only set on the sub-enable 4021 * path, so it's always clear when @p arrives here in %SCX_TASK_NONE. 4022 */ 4023 if (p->scx.flags & SCX_TASK_SUB_INIT) { 4024 if (!WARN_ON_ONCE(!scx_enabling_sub_sched)) 4025 scx_sub_init_cancel_task(scx_enabling_sub_sched, p); 4026 p->scx.flags &= ~SCX_TASK_SUB_INIT; 4027 } 4028 4029 scx_set_task_sched(p, NULL); 4030 scx_set_task_state(p, SCX_TASK_NONE); 4031 } 4032 4033 void init_scx_entity(struct sched_ext_entity *scx) 4034 { 4035 memset(scx, 0, sizeof(*scx)); 4036 INIT_LIST_HEAD(&scx->dsq_list.node); 4037 RB_CLEAR_NODE(&scx->dsq_priq); 4038 scx->sticky_cpu = -1; 4039 scx->holding_cpu = -1; 4040 scx->runnable_cpu = -1; 4041 INIT_LIST_HEAD(&scx->runnable_node); 4042 scx->runnable_at = jiffies; 4043 scx->ddsp_dsq_id = SCX_DSQ_INVALID; 4044 scx->slice = SCX_SLICE_DFL; 4045 } 4046 4047 /* See scx_tid_alloc / scx_tid_cursor. */ 4048 static u64 scx_alloc_tid(void) 4049 { 4050 struct scx_tid_alloc *ta; 4051 4052 guard(preempt)(); 4053 ta = this_cpu_ptr(&scx_tid_alloc); 4054 4055 if (unlikely(ta->next >= ta->end)) { 4056 ta->next = atomic64_fetch_add(SCX_TID_CHUNK, &scx_tid_cursor); 4057 ta->end = ta->next + SCX_TID_CHUNK; 4058 } 4059 return ta->next++; 4060 } 4061 4062 static void scx_tid_hash_insert(struct task_struct *p) 4063 { 4064 int ret; 4065 4066 lockdep_assert_held(&scx_tasks_lock); 4067 4068 ret = rhashtable_lookup_insert_fast(&scx_tid_hash, 4069 &p->scx.tid_hash_node, 4070 scx_tid_hash_params); 4071 WARN_ON_ONCE(ret); 4072 } 4073 4074 void scx_pre_fork(struct task_struct *p) 4075 { 4076 /* 4077 * BPF scheduler enable/disable paths want to be able to iterate and 4078 * update all tasks which can become complex when racing forks. As 4079 * enable/disable are very cold paths, let's use a percpu_rwsem to 4080 * exclude forks. 4081 */ 4082 percpu_down_read(&scx_fork_rwsem); 4083 } 4084 4085 int scx_fork(struct task_struct *p, struct kernel_clone_args *kargs) 4086 { 4087 s32 ret; 4088 4089 percpu_rwsem_assert_held(&scx_fork_rwsem); 4090 4091 p->scx.tid = scx_alloc_tid(); 4092 4093 if (scx_init_task_enabled) { 4094 #ifdef CONFIG_EXT_SUB_SCHED 4095 struct scx_sched *sch = scx_cgroup_sched(kargs->cset->dfl_cgrp); 4096 #else 4097 struct scx_sched *sch = scx_root_protected_live(); 4098 #endif 4099 scx_set_task_state(p, SCX_TASK_INIT_BEGIN); 4100 ret = __scx_init_task(sch, p, NULL, true); 4101 if (unlikely(ret)) { 4102 scx_set_task_state(p, SCX_TASK_NONE); 4103 return ret; 4104 } 4105 scx_set_task_state(p, SCX_TASK_INIT); 4106 scx_set_task_sched(p, sch); 4107 } 4108 4109 return 0; 4110 } 4111 4112 void scx_post_fork(struct task_struct *p) 4113 { 4114 if (scx_init_task_enabled) { 4115 scx_set_task_state(p, SCX_TASK_READY); 4116 4117 /* 4118 * Enable the task immediately if it's running on sched_ext. 4119 * Otherwise, it'll be enabled in switching_to_scx() if and 4120 * when it's ever configured to run with a SCHED_EXT policy. 4121 */ 4122 if (p->sched_class == &ext_sched_class) { 4123 struct rq_flags rf; 4124 struct rq *rq; 4125 4126 rq = task_rq_lock(p, &rf); 4127 scx_enable_task(scx_task_sched(p), p); 4128 task_rq_unlock(rq, p, &rf); 4129 } 4130 } 4131 4132 scoped_guard(raw_spinlock_irq, &scx_tasks_lock) { 4133 list_add_tail(&p->scx.tasks_node, &scx_tasks); 4134 if (scx_tid_to_task_enabled()) 4135 scx_tid_hash_insert(p); 4136 } 4137 4138 percpu_up_read(&scx_fork_rwsem); 4139 } 4140 4141 void scx_cancel_fork(struct task_struct *p) 4142 { 4143 if (scx_init_task_enabled) { 4144 struct rq *rq; 4145 struct rq_flags rf; 4146 4147 rq = task_rq_lock(p, &rf); 4148 WARN_ON_ONCE(scx_get_task_state(p) >= SCX_TASK_READY); 4149 scx_disable_and_exit_task(scx_task_sched(p), p); 4150 task_rq_unlock(rq, p, &rf); 4151 } 4152 4153 percpu_up_read(&scx_fork_rwsem); 4154 } 4155 4156 /** 4157 * task_dead_and_done - Is a task dead and done running? 4158 * @p: target task 4159 * 4160 * Once sched_ext_dead() removes the dead task from scx_tasks and exits it, the 4161 * task no longer exists from SCX's POV. However, certain sched_class ops may be 4162 * invoked on these dead tasks leading to failures - e.g. sched_setscheduler() 4163 * may try to switch a task which finished sched_ext_dead() back into SCX 4164 * triggering invalid SCX task state transitions and worse. 4165 * 4166 * Once a task has finished the final switch, sched_ext_dead() is the only thing 4167 * that needs to happen on the task. Use this test to short-circuit sched_class 4168 * operations which may be called on dead tasks. 4169 */ 4170 static bool task_dead_and_done(struct task_struct *p) 4171 { 4172 struct rq *rq = task_rq(p); 4173 4174 lockdep_assert_rq_held(rq); 4175 4176 /* 4177 * In do_task_dead(), a dying task sets %TASK_DEAD with preemption 4178 * disabled and __schedule(). If @p has %TASK_DEAD set and off CPU, @p 4179 * won't ever run again. 4180 */ 4181 return unlikely(READ_ONCE(p->__state) == TASK_DEAD) && 4182 !task_on_cpu(rq, p); 4183 } 4184 4185 void sched_ext_dead(struct task_struct *p) 4186 { 4187 /* 4188 * By the time control reaches here, @p has %TASK_DEAD set, switched out 4189 * for the last time and then dropped the rq lock - task_dead_and_done() 4190 * should be returning %true nullifying the straggling sched_class ops. 4191 * Remove from scx_tasks and exit @p. 4192 */ 4193 scoped_guard(raw_spinlock_irqsave, &scx_tasks_lock) { 4194 list_del_init(&p->scx.tasks_node); 4195 if (scx_tid_to_task_enabled()) 4196 rhashtable_remove_fast(&scx_tid_hash, 4197 &p->scx.tid_hash_node, 4198 scx_tid_hash_params); 4199 } 4200 4201 /* 4202 * @p is off scx_tasks and wholly ours. scx_root_enable()'s READY -> 4203 * ENABLED transitions can't race us. Disable ops for @p. 4204 * 4205 * %SCX_TASK_DEAD synchronizes against cgroup task iteration - see 4206 * scx_task_iter_next_locked(). NONE tasks need no marking: cgroup 4207 * iteration is only used from sub-sched paths, which require root 4208 * enabled. Root enable transitions every live task to at least READY. 4209 * 4210 * %INIT_BEGIN means ops.init_task() is running for @p. Don't call 4211 * into ops; transition to %DEAD so the post-init recheck unwinds 4212 * via scx_sub_init_cancel_task(). 4213 */ 4214 if (scx_get_task_state(p) != SCX_TASK_NONE) { 4215 struct rq_flags rf; 4216 struct rq *rq; 4217 4218 rq = task_rq_lock(p, &rf); 4219 if (scx_get_task_state(p) != SCX_TASK_INIT_BEGIN) 4220 scx_disable_and_exit_task(scx_task_sched(p), p); 4221 scx_set_task_state(p, SCX_TASK_DEAD); 4222 task_rq_unlock(rq, p, &rf); 4223 } 4224 } 4225 4226 static void reweight_task_scx(struct rq *rq, struct task_struct *p, 4227 const struct load_weight *lw) 4228 { 4229 struct scx_sched *sch = scx_task_sched(p); 4230 4231 lockdep_assert_rq_held(task_rq(p)); 4232 4233 if (task_dead_and_done(p)) 4234 return; 4235 4236 /* 4237 * When switching sched_class away from SCX, reweight_task_scx() 4238 * is called _after_ scx_disable_task(). Skip calling ops.set_weight() 4239 * since the BPF scheduler may have already forgotten the task in 4240 * ops.disable(). 4241 * p->scx.weight will be recalculated in scx_enable_task() if the task 4242 * ever returns to SCX class. 4243 */ 4244 if (scx_get_task_state(p) != SCX_TASK_ENABLED) 4245 return; 4246 4247 p->scx.weight = sched_weight_to_cgroup(scale_load_down(lw->weight)); 4248 if (SCX_HAS_OP(sch, set_weight)) 4249 SCX_CALL_OP_TASK(sch, set_weight, rq, p, p->scx.weight); 4250 } 4251 4252 static void prio_changed_scx(struct rq *rq, struct task_struct *p, u64 oldprio) 4253 { 4254 } 4255 4256 static void switching_to_scx(struct rq *rq, struct task_struct *p) 4257 { 4258 struct scx_sched *sch = scx_task_sched(p); 4259 4260 if (task_dead_and_done(p)) 4261 return; 4262 4263 scx_enable_task(sch, p); 4264 4265 /* 4266 * set_cpus_allowed_scx() is not called while @p is associated with a 4267 * different scheduler class. Keep the BPF scheduler up-to-date. 4268 */ 4269 if (SCX_HAS_OP(sch, set_cpumask)) 4270 scx_call_op_set_cpumask(sch, rq, p, (struct cpumask *)p->cpus_ptr); 4271 } 4272 4273 static void switched_from_scx(struct rq *rq, struct task_struct *p) 4274 { 4275 if (task_dead_and_done(p)) 4276 return; 4277 4278 /* 4279 * %NONE means SCX is no longer tracking @p at the task level (e.g. 4280 * scx_fail_parent() handed @p back to the parent at NONE pending the 4281 * parent's own teardown). There is nothing to disable; calling 4282 * scx_disable_task() would WARN on the non-%ENABLED state and trigger a 4283 * NONE -> READY validation failure. 4284 */ 4285 if (scx_get_task_state(p) == SCX_TASK_NONE) 4286 return; 4287 4288 scx_disable_task(scx_task_sched(p), p); 4289 } 4290 4291 static void switched_to_scx(struct rq *rq, struct task_struct *p) {} 4292 4293 int scx_check_setscheduler(struct task_struct *p, int policy) 4294 { 4295 lockdep_assert_rq_held(task_rq(p)); 4296 4297 /* if disallow, reject transitioning into SCX */ 4298 if (scx_enabled() && READ_ONCE(p->scx.disallow) && 4299 p->policy != policy && policy == SCHED_EXT) 4300 return -EACCES; 4301 4302 return 0; 4303 } 4304 4305 static void process_ddsp_deferred_locals(struct rq *rq) 4306 { 4307 struct task_struct *p; 4308 4309 lockdep_assert_rq_held(rq); 4310 4311 /* 4312 * Now that @rq can be unlocked, execute the deferred enqueueing of 4313 * tasks directly dispatched to the local DSQs of other CPUs. See 4314 * direct_dispatch(). Keep popping from the head instead of using 4315 * list_for_each_entry_safe() as dispatch_local_dsq() may unlock @rq 4316 * temporarily. 4317 */ 4318 while ((p = list_first_entry_or_null(&rq->scx.ddsp_deferred_locals, 4319 struct task_struct, scx.dsq_list.node))) { 4320 struct scx_sched *sch = scx_task_sched(p); 4321 struct scx_dispatch_q *dsq; 4322 u64 dsq_id = p->scx.ddsp_dsq_id; 4323 u64 enq_flags = p->scx.ddsp_enq_flags; 4324 u64 slice = p->scx.ddsp_slice; 4325 u64 vtime = p->scx.ddsp_vtime; 4326 4327 list_del_init(&p->scx.dsq_list.node); 4328 clear_direct_dispatch(p); 4329 4330 dsq = find_dsq_for_dispatch(sch, rq, dsq_id, task_cpu(p)); 4331 if (!WARN_ON_ONCE(dsq->id != SCX_DSQ_LOCAL)) 4332 dispatch_to_local_dsq(sch, rq, dsq, p, slice, vtime, enq_flags); 4333 } 4334 } 4335 4336 /* 4337 * Determine whether @p should be reenqueued from a local DSQ. 4338 * 4339 * @reenq_flags is mutable and accumulates state across the DSQ walk: 4340 * 4341 * - %SCX_REENQ_TSR_NOT_FIRST: Set after the first task is visited. "First" 4342 * tracks position in the DSQ list, not among IMMED tasks. A non-IMMED task at 4343 * the head consumes the first slot. 4344 * 4345 * - %SCX_REENQ_TSR_RQ_OPEN: Set by reenq_local() before the walk if 4346 * rq_is_open() is true. 4347 * 4348 * An IMMED task is kept (returns %false) only if it's the first task in the DSQ 4349 * AND the current task is done — i.e. it will execute immediately. All other 4350 * IMMED tasks are reenqueued. This means if a non-IMMED task sits at the head, 4351 * every IMMED task behind it gets reenqueued. 4352 * 4353 * Reenqueued tasks go through ops.enqueue() with %SCX_ENQ_REENQ | 4354 * %SCX_TASK_REENQ_IMMED. If the BPF scheduler dispatches back to the same local 4355 * DSQ with %SCX_ENQ_IMMED while the CPU is still unavailable, this triggers 4356 * another reenq cycle. Repetitions are bounded by %SCX_REENQ_MAX_REPEAT in 4357 * scx_do_enqueue_task(), which ejects the task's owning scheduler. 4358 */ 4359 static bool local_task_should_reenq(struct rq *rq, struct task_struct *p, 4360 u64 *reenq_flags, u32 *reason) 4361 { 4362 bool first; 4363 4364 first = !(*reenq_flags & SCX_REENQ_TSR_NOT_FIRST); 4365 *reenq_flags |= SCX_REENQ_TSR_NOT_FIRST; 4366 4367 if (unlikely((p->scx.flags & SCX_TASK_PROTECTED) || p == scx_rescuee(rq))) 4368 return false; 4369 4370 *reason = SCX_TASK_REENQ_KFUNC; 4371 4372 if ((p->scx.flags & SCX_TASK_IMMED) && 4373 (!first || !(*reenq_flags & SCX_REENQ_TSR_RQ_OPEN))) { 4374 __scx_add_event(scx_task_sched(p), SCX_EV_REENQ_IMMED, 1); 4375 *reason = SCX_TASK_REENQ_IMMED; 4376 return true; 4377 } 4378 4379 if ((*reenq_flags & SCX_REENQ_CAP_REVOKE) && 4380 scx_task_reenq_on_cap_revoke(rq, p)) { 4381 *reason = SCX_TASK_REENQ_CAP; 4382 return true; 4383 } 4384 4385 return *reenq_flags & SCX_REENQ_ANY; 4386 } 4387 4388 static u32 reenq_local(struct scx_sched *sch, struct rq *rq, u64 reenq_flags) 4389 { 4390 LIST_HEAD(tasks); 4391 u32 nr_enqueued = 0; 4392 struct task_struct *p, *n; 4393 4394 lockdep_assert_rq_held(rq); 4395 4396 if (WARN_ON_ONCE(reenq_flags & __SCX_REENQ_TSR_MASK)) 4397 reenq_flags &= ~__SCX_REENQ_TSR_MASK; 4398 if (rq_is_open(rq, 0)) 4399 reenq_flags |= SCX_REENQ_TSR_RQ_OPEN; 4400 4401 /* 4402 * The BPF scheduler may choose to dispatch tasks back to 4403 * @rq->scx.local_dsq. Move all candidate tasks off to a private list 4404 * first to avoid processing the same tasks repeatedly. 4405 */ 4406 list_for_each_entry_safe(p, n, &rq->scx.local_dsq.list, 4407 scx.dsq_list.node) { 4408 struct scx_sched *task_sch = scx_task_sched(p); 4409 u32 reason; 4410 4411 /* 4412 * If @p is being migrated, @p's current CPU may not agree with 4413 * its allowed CPUs and the migration_cpu_stop is about to 4414 * deactivate and re-activate @p anyway. Skip re-enqueueing. 4415 * 4416 * While racing sched property changes may also dequeue and 4417 * re-enqueue a migrating task while its current CPU and allowed 4418 * CPUs disagree, they use %ENQUEUE_RESTORE which is bypassed to 4419 * the current local DSQ for running tasks and thus are not 4420 * visible to the BPF scheduler. 4421 */ 4422 if (p->migration_pending) 4423 continue; 4424 4425 if (!scx_is_descendant(task_sch, sch)) 4426 continue; 4427 4428 if (!local_task_should_reenq(rq, p, &reenq_flags, &reason)) 4429 continue; 4430 4431 scx_dispatch_dequeue(rq, p); 4432 4433 if (WARN_ON_ONCE(p->scx.flags & SCX_TASK_REENQ_REASON_MASK)) 4434 p->scx.flags &= ~SCX_TASK_REENQ_REASON_MASK; 4435 p->scx.flags |= reason; 4436 4437 list_add_tail(&p->scx.dsq_list.node, &tasks); 4438 } 4439 4440 list_for_each_entry_safe(p, n, &tasks, scx.dsq_list.node) { 4441 list_del_init(&p->scx.dsq_list.node); 4442 4443 scx_do_enqueue_task(rq, p, SCX_ENQ_REENQ, -1); 4444 4445 p->scx.flags &= ~SCX_TASK_REENQ_REASON_MASK; 4446 nr_enqueued++; 4447 } 4448 4449 /* 4450 * The revoke that scheduled this scan may have raced the pick: curr 4451 * may be a now-capless task, either one that kept running or one 4452 * promoted off the local DSQ between the ecaps sync and this scan. 4453 * Zero the slice to evict it. The enqueue gate blocks new capless 4454 * inserts, so no later pick can slip through after the scan. 4455 */ 4456 if ((reenq_flags & SCX_REENQ_CAP_REVOKE) && 4457 rq->curr->sched_class == &ext_sched_class && 4458 scx_task_reenq_on_cap_revoke(rq, rq->curr)) { 4459 scx_set_task_slice(rq->curr, 0); 4460 resched_curr(rq); 4461 } 4462 4463 return nr_enqueued; 4464 } 4465 4466 static void process_deferred_reenq_locals(struct rq *rq) 4467 { 4468 lockdep_assert_rq_held(rq); 4469 4470 /* 4471 * A task can be re-queued within this loop when a reenqueued task 4472 * bounces straight back to the local DSQ. That recursion is bounded by 4473 * the per-task reenqueue cap in scx_do_enqueue_task(). 4474 */ 4475 while (true) { 4476 struct scx_sched *sch; 4477 u64 reenq_flags; 4478 4479 scoped_guard (raw_spinlock, &rq->scx.deferred_reenq_lock) { 4480 struct scx_deferred_reenq_local *drl = 4481 list_first_entry_or_null(&rq->scx.deferred_reenq_locals, 4482 struct scx_deferred_reenq_local, 4483 node); 4484 struct scx_sched_pcpu *sch_pcpu; 4485 4486 if (!drl) 4487 return; 4488 4489 sch_pcpu = container_of(drl, struct scx_sched_pcpu, 4490 deferred_reenq_local); 4491 sch = sch_pcpu->sch; 4492 4493 reenq_flags = drl->flags; 4494 WRITE_ONCE(drl->flags, 0); 4495 list_del_init(&drl->node); 4496 } 4497 4498 /* see schedule_dsq_reenq() */ 4499 smp_mb(); 4500 4501 reenq_local(sch, rq, reenq_flags); 4502 } 4503 } 4504 4505 static bool user_task_should_reenq(struct task_struct *p, u64 reenq_flags, u32 *reason) 4506 { 4507 *reason = SCX_TASK_REENQ_KFUNC; 4508 return reenq_flags & SCX_REENQ_ANY; 4509 } 4510 4511 static void reenq_user(struct rq *rq, struct scx_dispatch_q *dsq, u64 reenq_flags) 4512 { 4513 struct rq *locked_rq = rq; 4514 struct scx_sched *sch = dsq->sched; 4515 struct scx_dsq_list_node cursor = INIT_DSQ_LIST_CURSOR(cursor, dsq, 0); 4516 struct task_struct *p; 4517 s32 nr_enqueued = 0; 4518 4519 lockdep_assert_rq_held(rq); 4520 4521 raw_spin_lock(&dsq->lock); 4522 4523 while (likely(!READ_ONCE(sch->bypass_depth))) { 4524 struct rq *task_rq; 4525 u32 reason; 4526 4527 p = nldsq_cursor_next_task(&cursor, dsq); 4528 if (!p) 4529 break; 4530 4531 if (!user_task_should_reenq(p, reenq_flags, &reason)) 4532 continue; 4533 4534 task_rq = task_rq(p); 4535 4536 if (locked_rq != task_rq) { 4537 if (locked_rq) { 4538 scx_rq_lock_drop(locked_rq); 4539 raw_spin_rq_unlock(locked_rq); 4540 } 4541 if (unlikely(!raw_spin_rq_trylock(task_rq))) { 4542 raw_spin_unlock(&dsq->lock); 4543 raw_spin_rq_lock(task_rq); 4544 raw_spin_lock(&dsq->lock); 4545 } 4546 locked_rq = task_rq; 4547 4548 /* did we lose @p while switching locks? */ 4549 if (nldsq_cursor_lost_task(&cursor, task_rq, dsq, p)) 4550 continue; 4551 } 4552 4553 /* @p is on @dsq, its rq and @dsq are locked */ 4554 dispatch_dequeue_locked(p, dsq); 4555 raw_spin_unlock(&dsq->lock); 4556 4557 if (WARN_ON_ONCE(p->scx.flags & SCX_TASK_REENQ_REASON_MASK)) 4558 p->scx.flags &= ~SCX_TASK_REENQ_REASON_MASK; 4559 p->scx.flags |= reason; 4560 4561 scx_do_enqueue_task(task_rq, p, SCX_ENQ_REENQ, -1); 4562 4563 p->scx.flags &= ~SCX_TASK_REENQ_REASON_MASK; 4564 4565 if (!(++nr_enqueued % SCX_TASK_ITER_BATCH)) { 4566 scx_rq_lock_drop(locked_rq); 4567 raw_spin_rq_unlock(locked_rq); 4568 locked_rq = NULL; 4569 cpu_relax(); 4570 } 4571 4572 raw_spin_lock(&dsq->lock); 4573 } 4574 4575 list_del_init(&cursor.node); 4576 raw_spin_unlock(&dsq->lock); 4577 4578 if (locked_rq != rq) { 4579 if (locked_rq) { 4580 scx_rq_lock_drop(locked_rq); 4581 raw_spin_rq_unlock(locked_rq); 4582 } 4583 raw_spin_rq_lock(rq); 4584 } 4585 } 4586 4587 static void process_deferred_reenq_users(struct rq *rq) 4588 { 4589 lockdep_assert_rq_held(rq); 4590 4591 while (true) { 4592 struct scx_dispatch_q *dsq; 4593 u64 dsq_id, reenq_flags; 4594 4595 scoped_guard (raw_spinlock, &rq->scx.deferred_reenq_lock) { 4596 struct scx_deferred_reenq_user *dru = 4597 list_first_entry_or_null(&rq->scx.deferred_reenq_users, 4598 struct scx_deferred_reenq_user, 4599 node); 4600 struct scx_dsq_pcpu *dsq_pcpu; 4601 4602 if (!dru) 4603 return; 4604 4605 dsq_pcpu = container_of(dru, struct scx_dsq_pcpu, 4606 deferred_reenq_user); 4607 dsq = dsq_pcpu->dsq; 4608 reenq_flags = dru->flags; 4609 WRITE_ONCE(dru->flags, 0); 4610 list_del_init(&dru->node); 4611 } 4612 4613 /* see schedule_dsq_reenq() */ 4614 smp_mb(); 4615 4616 /* destroy_dsq() may have raced and invalidated @dsq, nothing to reenq */ 4617 dsq_id = READ_ONCE(dsq->id); 4618 if (unlikely(dsq_id == SCX_DSQ_INVALID)) 4619 continue; 4620 4621 BUG_ON(dsq_id & SCX_DSQ_FLAG_BUILTIN); 4622 reenq_user(rq, dsq, reenq_flags); 4623 } 4624 } 4625 4626 static void run_deferred(struct rq *rq) 4627 { 4628 process_ddsp_deferred_locals(rq); 4629 4630 if (!list_empty(&rq->scx.deferred_reenq_locals)) 4631 process_deferred_reenq_locals(rq); 4632 4633 if (!list_empty(&rq->scx.deferred_reenq_users)) 4634 process_deferred_reenq_users(rq); 4635 4636 scx_reenq_reject(rq); 4637 } 4638 4639 #ifdef CONFIG_NO_HZ_FULL 4640 bool scx_can_stop_tick(struct rq *rq) 4641 { 4642 struct task_struct *p = rq->curr; 4643 struct scx_sched *sch = scx_task_sched(p); 4644 4645 if (p->sched_class != &ext_sched_class) 4646 return true; 4647 4648 /* 4649 * @rq->curr may still reference an outgoing EXT task after it has been 4650 * dequeued. If no EXT tasks are accounted on @rq, ignore its stale 4651 * slice state. If another task is dispatched from a DSQ, 4652 * set_next_task_scx() will update the dependency for the incoming task. 4653 */ 4654 if (!rq->scx.nr_running) 4655 return true; 4656 4657 if (scx_bypassing(sch, cpu_of(rq))) 4658 return false; 4659 4660 /* 4661 * A running rescuee's charging and expiry are tick-driven, see 4662 * scx_rescue_charge(). Keep the tick while rescue is in progress. 4663 */ 4664 if (unlikely(p == scx_rescuee(rq))) 4665 return false; 4666 4667 /* 4668 * @rq can dispatch from different DSQs, so we can't tell whether it 4669 * needs the tick or not by looking at nr_running. Allow stopping ticks 4670 * iff the BPF scheduler indicated so. See set_next_task_scx(). 4671 */ 4672 return rq->scx.flags & SCX_RQ_CAN_STOP_TICK; 4673 } 4674 #endif 4675 4676 #ifdef CONFIG_EXT_GROUP_SCHED 4677 4678 DEFINE_STATIC_PERCPU_RWSEM(scx_cgroup_ops_rwsem); 4679 4680 void scx_tg_init(struct task_group *tg) 4681 { 4682 tg->scx.weight = CGROUP_WEIGHT_DFL; 4683 tg->scx.bw_period_us = default_bw_period_us(); 4684 tg->scx.bw_quota_us = RUNTIME_INF; 4685 tg->scx.idle = false; 4686 } 4687 4688 /** 4689 * scx_tg_sched - Resolve a task_group's sched 4690 * @tg: task_group of interest 4691 * 4692 * Return the sched that @tg's ops.cgroup_init() succeeded on, %NULL if @tg 4693 * isn't inited. An autogroup tg has no cgroup of its own and resolves to the 4694 * root sched. 4695 * 4696 * When a child sched exits, its task_groups are moved to the parent and 4697 * re-inited on it. A failed re-init fails the parent in turn and leaves the 4698 * task_group without a sched it's inited on, resolving to %NULL. See 4699 * scx_cgroup_return_subtree(). 4700 * 4701 * Safe for callers read-locking the ops rwsem. tg->scx.sched rewrites 4702 * write-lock it, and tg on/offline can't overlap such callers as a css's files 4703 * are created after online and drained before offline. 4704 */ 4705 static struct scx_sched *scx_tg_sched(struct task_group *tg) 4706 { 4707 lockdep_assert(lockdep_is_held(&cgroup_mutex) || 4708 lockdep_is_held(&scx_cgroup_ops_rwsem)); 4709 4710 if (!tg->css.cgroup) 4711 tg = &root_task_group; 4712 /* INITED means ops.cgroup_init() succeeded on @tg->scx.sched */ 4713 return (tg->scx.flags & SCX_TG_INITED) ? tg->scx.sched : NULL; 4714 } 4715 4716 /** 4717 * scx_tg_knob_sched - Resolve the sched receiving a task_group's knob updates 4718 * @tg: task_group of interest 4719 * 4720 * Knobs of a cgroup belong to the parent. Deliver the set_* ops to the 4721 * parent task_group's sched, which equals @tg's own sched everywhere except 4722 * at a sub-scheduler attach point, where the sub's parent sched receives 4723 * them. 4724 * 4725 * Return %NULL if the parent task_group has no sched. That can happen when the 4726 * parent's ops.cgroup_init() fails while a sub-scheduler is being disabled. 4727 * 4728 * The callers sit in @tg's cgroup file writes holding the ops rwsem read 4729 * side. That extends scx_tg_sched()'s file-write argument to the parent's 4730 * sched read: a parent css outlives its children's files. 4731 */ 4732 static struct scx_sched *scx_tg_knob_sched(struct task_group *tg) 4733 { 4734 lockdep_assert(lockdep_is_held(&cgroup_mutex) || 4735 lockdep_is_held(&scx_cgroup_ops_rwsem)); 4736 4737 if (!tg->css.cgroup || !tg->css.parent) 4738 return scx_tg_sched(&root_task_group); 4739 return scx_tg_sched(css_tg(tg->css.parent)); 4740 } 4741 4742 int scx_tg_online(struct task_group *tg) 4743 { 4744 int ret = 0; 4745 4746 WARN_ON_ONCE(tg->scx.flags & (SCX_TG_ONLINE | SCX_TG_INITED)); 4747 4748 if (scx_cgroup_enabled) { 4749 struct scx_sched *sch; 4750 4751 /* 4752 * The cgroup lifetime notifier populates cgrp->scx_sched before 4753 * css_online, but only on the default hierarchy. Sub-scheds are 4754 * attached to the cgroup2 hierarchy, so a cgroup1 task_group 4755 * always belongs to the root sched. 4756 */ 4757 if (cgroup_on_dfl(tg->css.cgroup)) 4758 sch = scx_cgroup_sched(tg->css.cgroup); 4759 else 4760 sch = scx_tg_sched(&root_task_group); 4761 4762 if (SCX_HAS_OP(sch, cgroup_init)) { 4763 struct scx_cgroup_init_args args = 4764 { .weight = tg->scx.weight, 4765 .bw_period_us = tg->scx.bw_period_us, 4766 .bw_quota_us = tg->scx.bw_quota_us, 4767 .bw_burst_us = tg->scx.bw_burst_us }; 4768 4769 ret = SCX_CALL_OP_RET(sch, cgroup_init, 4770 NULL, tg->css.cgroup, &args); 4771 if (ret) 4772 ret = scx_ops_sanitize_err(sch, "cgroup_init", ret); 4773 } 4774 if (ret == 0) { 4775 tg->scx.sched = sch; 4776 tg->scx.flags |= SCX_TG_ONLINE | SCX_TG_INITED; 4777 } 4778 } else { 4779 tg->scx.flags |= SCX_TG_ONLINE; 4780 } 4781 4782 return ret; 4783 } 4784 4785 void scx_tg_offline(struct task_group *tg) 4786 { 4787 struct scx_sched *sch = tg->scx.sched; 4788 4789 WARN_ON_ONCE(!(tg->scx.flags & SCX_TG_ONLINE)); 4790 4791 /* INITED implies non-NULL @sch, test before SCX_HAS_OP() derefs */ 4792 if (scx_cgroup_enabled && (tg->scx.flags & SCX_TG_INITED) && 4793 SCX_HAS_OP(sch, cgroup_exit)) 4794 SCX_CALL_OP(sch, cgroup_exit, NULL, tg->css.cgroup); 4795 tg->scx.sched = NULL; 4796 tg->scx.flags &= ~(SCX_TG_ONLINE | SCX_TG_INITED); 4797 } 4798 4799 /* 4800 * @p's sched for the cgroup migration paths. Stable as re-homes happen either 4801 * at CGROUP_TASK_MIGRATED of the same migration or under scx_cgroup_lock(), 4802 * both while holding cgroup_mutex. 4803 */ 4804 static struct scx_sched *scx_cgroup_task_sched(struct task_struct *p) 4805 { 4806 return rcu_dereference_protected(p->scx.sched, lockdep_is_held(&cgroup_mutex)); 4807 } 4808 4809 int scx_cgroup_can_attach(struct cgroup_taskset *tset) 4810 { 4811 struct cgroup_subsys_state *css; 4812 struct task_struct *p; 4813 int ret; 4814 4815 if (!scx_cgroup_enabled) 4816 return 0; 4817 4818 cgroup_taskset_for_each(p, css, tset) { 4819 struct scx_sched *sch = scx_cgroup_task_sched(p); 4820 struct cgroup *from = tg_cgrp(task_group(p)); 4821 struct cgroup *to = tg_cgrp(css_tg(css)); 4822 4823 WARN_ON_ONCE(p->scx.cgrp_moving_from); 4824 4825 /* 4826 * sched_move_task() omits identity migrations. Let's match the 4827 * behavior so that ops.cgroup_prep_move() and ops.cgroup_move() 4828 * always match one-to-one. 4829 */ 4830 if (from == to) 4831 continue; 4832 4833 /* 4834 * The cgroup_move ops are delivered to @p's sched, and only for 4835 * moves that don't re-home @p. A re-homing move changes the dfl 4836 * cgroup's sched and is reported through the 4837 * exit_task/init_task pair that the re-homing generates. 4838 */ 4839 if (!sch || sch != scx_cgroup_sched(task_css_set(p)->mg_dst_cset->dfl_cgrp)) 4840 continue; 4841 4842 if (SCX_HAS_OP(sch, cgroup_prep_move)) { 4843 ret = SCX_CALL_OP_RET(sch, cgroup_prep_move, NULL, 4844 p, from, css->cgroup); 4845 if (ret) { 4846 ret = scx_ops_sanitize_err(sch, "cgroup_prep_move", ret); 4847 goto err; 4848 } 4849 } 4850 4851 p->scx.cgrp_moving_from = from; 4852 } 4853 4854 return 0; 4855 4856 err: 4857 cgroup_taskset_for_each(p, css, tset) { 4858 struct scx_sched *sch = scx_cgroup_task_sched(p); 4859 4860 /* cgrp_moving_from implies non-NULL @sch, test it first */ 4861 if (p->scx.cgrp_moving_from && SCX_HAS_OP(sch, cgroup_cancel_move)) 4862 SCX_CALL_OP(sch, cgroup_cancel_move, NULL, 4863 p, p->scx.cgrp_moving_from, css->cgroup); 4864 p->scx.cgrp_moving_from = NULL; 4865 } 4866 4867 return ret; 4868 } 4869 4870 void scx_cgroup_move_task(struct task_struct *p) 4871 { 4872 struct scx_sched *sch; 4873 4874 if (!scx_cgroup_enabled) 4875 return; 4876 4877 /* 4878 * Migration keys off css rather than cgroup identity, so it can hand an 4879 * unchanged-cgroup task here with cgrp_moving_from NULL. Nothing to 4880 * report to the BPF scheduler then, so skip it and keep prep_move and 4881 * move paired. 4882 */ 4883 sch = scx_cgroup_task_sched(p); 4884 if (p->scx.cgrp_moving_from && SCX_HAS_OP(sch, cgroup_move)) 4885 SCX_CALL_OP_TASK(sch, cgroup_move, task_rq(p), 4886 p, p->scx.cgrp_moving_from, 4887 tg_cgrp(task_group(p))); 4888 p->scx.cgrp_moving_from = NULL; 4889 } 4890 4891 void scx_cgroup_cancel_attach(struct cgroup_taskset *tset) 4892 { 4893 struct cgroup_subsys_state *css; 4894 struct task_struct *p; 4895 4896 if (!scx_cgroup_enabled) 4897 return; 4898 4899 cgroup_taskset_for_each(p, css, tset) { 4900 struct scx_sched *sch = scx_cgroup_task_sched(p); 4901 4902 /* cgrp_moving_from implies non-NULL @sch, test it first */ 4903 if (p->scx.cgrp_moving_from && SCX_HAS_OP(sch, cgroup_cancel_move)) 4904 SCX_CALL_OP(sch, cgroup_cancel_move, NULL, 4905 p, p->scx.cgrp_moving_from, css->cgroup); 4906 p->scx.cgrp_moving_from = NULL; 4907 } 4908 } 4909 4910 void scx_group_set_weight(struct task_group *tg, unsigned long weight) 4911 { 4912 struct scx_sched *sch; 4913 4914 percpu_down_read(&scx_cgroup_ops_rwsem); 4915 sch = scx_tg_knob_sched(tg); 4916 4917 if (scx_cgroup_enabled && sch && SCX_HAS_OP(sch, cgroup_set_weight) && 4918 tg->scx.weight != weight) 4919 SCX_CALL_OP(sch, cgroup_set_weight, NULL, tg_cgrp(tg), weight); 4920 4921 tg->scx.weight = weight; 4922 4923 percpu_up_read(&scx_cgroup_ops_rwsem); 4924 } 4925 4926 void scx_group_set_idle(struct task_group *tg, bool idle) 4927 { 4928 struct scx_sched *sch; 4929 4930 percpu_down_read(&scx_cgroup_ops_rwsem); 4931 sch = scx_tg_knob_sched(tg); 4932 4933 if (scx_cgroup_enabled && sch && SCX_HAS_OP(sch, cgroup_set_idle)) 4934 SCX_CALL_OP(sch, cgroup_set_idle, NULL, tg_cgrp(tg), idle); 4935 4936 /* Update the task group's idle state */ 4937 tg->scx.idle = idle; 4938 4939 percpu_up_read(&scx_cgroup_ops_rwsem); 4940 } 4941 4942 void scx_group_set_bandwidth(struct task_group *tg, 4943 u64 period_us, u64 quota_us, u64 burst_us) 4944 { 4945 struct scx_sched *sch; 4946 4947 percpu_down_read(&scx_cgroup_ops_rwsem); 4948 sch = scx_tg_knob_sched(tg); 4949 4950 if (scx_cgroup_enabled && sch && SCX_HAS_OP(sch, cgroup_set_bandwidth) && 4951 (tg->scx.bw_period_us != period_us || 4952 tg->scx.bw_quota_us != quota_us || 4953 tg->scx.bw_burst_us != burst_us)) 4954 SCX_CALL_OP(sch, cgroup_set_bandwidth, NULL, 4955 tg_cgrp(tg), period_us, quota_us, burst_us); 4956 4957 tg->scx.bw_period_us = period_us; 4958 tg->scx.bw_quota_us = quota_us; 4959 tg->scx.bw_burst_us = burst_us; 4960 4961 percpu_up_read(&scx_cgroup_ops_rwsem); 4962 } 4963 #endif /* CONFIG_EXT_GROUP_SCHED */ 4964 4965 #if defined(CONFIG_EXT_GROUP_SCHED) || defined(CONFIG_EXT_SUB_SCHED) 4966 static struct cgroup *root_cgroup(void) 4967 { 4968 return &cgrp_dfl_root.cgrp; 4969 } 4970 4971 /* 4972 * cgroup_lock() must nest outside the rwsem write side: a writer waiting 4973 * for cgroup_mutex deadlocks with cgroup teardown, which holds it while 4974 * draining a set_* file write blocked on the rwsem behind the writer. 4975 */ 4976 void scx_cgroup_lock(void) 4977 { 4978 cgroup_lock(); 4979 #ifdef CONFIG_EXT_GROUP_SCHED 4980 percpu_down_write(&scx_cgroup_ops_rwsem); 4981 #endif 4982 } 4983 4984 void scx_cgroup_unlock(void) 4985 { 4986 #ifdef CONFIG_EXT_GROUP_SCHED 4987 percpu_up_write(&scx_cgroup_ops_rwsem); 4988 #endif 4989 cgroup_unlock(); 4990 } 4991 #else /* CONFIG_EXT_GROUP_SCHED || CONFIG_EXT_SUB_SCHED */ 4992 static inline struct cgroup *root_cgroup(void) { return NULL; } 4993 static inline void scx_cgroup_lock(void) {} 4994 static inline void scx_cgroup_unlock(void) {} 4995 #endif /* CONFIG_EXT_GROUP_SCHED || CONFIG_EXT_SUB_SCHED */ 4996 4997 /* 4998 * Omitted operations: 4999 * 5000 * - migrate_task_rq: Unnecessary as task to cpu mapping is transient. 5001 * 5002 * - task_fork/dead: We need fork/dead notifications for all tasks regardless of 5003 * their current sched_class. Call them directly from sched core instead. 5004 */ 5005 DEFINE_SCHED_CLASS(ext) = { 5006 .enqueue_task = enqueue_task_scx, 5007 .dequeue_task = dequeue_task_scx, 5008 .yield_task = yield_task_scx, 5009 .yield_to_task = yield_to_task_scx, 5010 5011 .wakeup_preempt = wakeup_preempt_scx, 5012 5013 .pick_task = pick_task_scx, 5014 5015 .put_prev_task = put_prev_task_scx, 5016 .set_next_task = set_next_task_scx, 5017 5018 .select_task_rq = select_task_rq_scx, 5019 .task_woken = task_woken_scx, 5020 .set_cpus_allowed = set_cpus_allowed_scx, 5021 5022 .rq_online = rq_online_scx, 5023 .rq_offline = rq_offline_scx, 5024 5025 .task_tick = task_tick_scx, 5026 5027 .switching_to = switching_to_scx, 5028 .switched_from = switched_from_scx, 5029 .switched_to = switched_to_scx, 5030 .reweight_task = reweight_task_scx, 5031 .prio_changed = prio_changed_scx, 5032 5033 .update_curr = update_curr_scx, 5034 5035 #ifdef CONFIG_UCLAMP_TASK 5036 .uclamp_enabled = 1, 5037 #endif 5038 }; 5039 5040 s32 scx_init_dsq(struct scx_dispatch_q *dsq, u64 dsq_id, struct scx_sched *sch) 5041 { 5042 s32 cpu; 5043 5044 memset(dsq, 0, sizeof(*dsq)); 5045 5046 raw_spin_lock_init(&dsq->lock); 5047 INIT_LIST_HEAD(&dsq->list); 5048 dsq->id = dsq_id; 5049 dsq->sched = sch; 5050 5051 dsq->pcpu = alloc_percpu(struct scx_dsq_pcpu); 5052 if (!dsq->pcpu) 5053 return -ENOMEM; 5054 5055 for_each_possible_cpu(cpu) { 5056 struct scx_dsq_pcpu *pcpu = per_cpu_ptr(dsq->pcpu, cpu); 5057 5058 pcpu->dsq = dsq; 5059 INIT_LIST_HEAD(&pcpu->deferred_reenq_user.node); 5060 } 5061 5062 return 0; 5063 } 5064 5065 static void exit_dsq(struct scx_dispatch_q *dsq) 5066 { 5067 s32 cpu; 5068 5069 for_each_possible_cpu(cpu) { 5070 struct scx_dsq_pcpu *pcpu = per_cpu_ptr(dsq->pcpu, cpu); 5071 struct scx_deferred_reenq_user *dru = &pcpu->deferred_reenq_user; 5072 struct rq *rq = cpu_rq(cpu); 5073 5074 /* 5075 * There must have been a RCU grace period since the last 5076 * insertion and @dsq should be off the deferred list by now. 5077 */ 5078 if (WARN_ON_ONCE(!list_empty(&dru->node))) { 5079 guard(raw_spinlock_irqsave)(&rq->scx.deferred_reenq_lock); 5080 list_del_init(&dru->node); 5081 } 5082 } 5083 5084 free_percpu(dsq->pcpu); 5085 } 5086 5087 static void free_dsq_rcufn(struct rcu_head *rcu) 5088 { 5089 struct scx_dispatch_q *dsq = container_of(rcu, struct scx_dispatch_q, rcu); 5090 5091 exit_dsq(dsq); 5092 kfree(dsq); 5093 } 5094 5095 static void free_dsq_irq_workfn(struct irq_work *irq_work) 5096 { 5097 struct llist_node *to_free = llist_del_all(&dsqs_to_free); 5098 struct scx_dispatch_q *dsq, *tmp_dsq; 5099 5100 llist_for_each_entry_safe(dsq, tmp_dsq, to_free, free_node) 5101 call_rcu(&dsq->rcu, free_dsq_rcufn); 5102 } 5103 5104 static DEFINE_IRQ_WORK(free_dsq_irq_work, free_dsq_irq_workfn); 5105 5106 static void destroy_dsq(struct scx_sched *sch, u64 dsq_id) 5107 { 5108 struct scx_dispatch_q *dsq; 5109 unsigned long flags; 5110 5111 rcu_read_lock(); 5112 5113 dsq = find_user_dsq(sch, dsq_id); 5114 if (!dsq) 5115 goto out_unlock_rcu; 5116 5117 raw_spin_lock_irqsave(&dsq->lock, flags); 5118 5119 if (dsq->nr) { 5120 scx_error(sch, "attempting to destroy in-use dsq 0x%016llx (nr=%u)", 5121 dsq->id, dsq->nr); 5122 goto out_unlock_dsq; 5123 } 5124 5125 if (rhashtable_remove_fast(&sch->dsq_hash, &dsq->hash_node, 5126 dsq_hash_params)) 5127 goto out_unlock_dsq; 5128 5129 /* 5130 * Mark dead by invalidating ->id to prevent scx_dispatch_enqueue() from 5131 * queueing more tasks. As this function can be called from anywhere, 5132 * freeing is bounced through an irq work to avoid nesting RCU 5133 * operations inside scheduler locks. 5134 */ 5135 dsq->id = SCX_DSQ_INVALID; 5136 if (llist_add(&dsq->free_node, &dsqs_to_free)) 5137 irq_work_queue(&free_dsq_irq_work); 5138 5139 out_unlock_dsq: 5140 raw_spin_unlock_irqrestore(&dsq->lock, flags); 5141 out_unlock_rcu: 5142 rcu_read_unlock(); 5143 } 5144 5145 #ifdef CONFIG_EXT_GROUP_SCHED 5146 static void scx_cgroup_exit(struct scx_sched *sch) 5147 { 5148 struct cgroup_subsys_state *css; 5149 5150 /* 5151 * scx_tg_on/offline() are excluded through cgroup_lock(). If we walk 5152 * cgroups and exit all the inited ones, all online cgroups are exited. 5153 */ 5154 css_for_each_descendant_post(css, &root_task_group.css) { 5155 struct task_group *tg = css_tg(css); 5156 5157 /* also clear the sched of tgs whose ops.cgroup_init() failed */ 5158 tg->scx.sched = NULL; 5159 if (tg->scx.flags & SCX_TG_INITED) { 5160 tg->scx.flags &= ~SCX_TG_INITED; 5161 if (sch->ops.cgroup_exit) 5162 SCX_CALL_OP(sch, cgroup_exit, NULL, css->cgroup); 5163 } 5164 } 5165 } 5166 5167 static int scx_cgroup_init(struct scx_sched *sch) 5168 { 5169 struct cgroup_subsys_state *css; 5170 int ret; 5171 5172 /* 5173 * scx_tg_on/offline() are excluded through cgroup_lock(). If we walk 5174 * cgroups and init, all online cgroups are initialized. 5175 */ 5176 css_for_each_descendant_pre(css, &root_task_group.css) { 5177 struct task_group *tg = css_tg(css); 5178 5179 if ((tg->scx.flags & (SCX_TG_ONLINE | SCX_TG_INITED)) != SCX_TG_ONLINE) 5180 continue; 5181 5182 if (sch->ops.cgroup_init) { 5183 struct scx_cgroup_init_args args = { 5184 .weight = tg->scx.weight, 5185 .bw_period_us = tg->scx.bw_period_us, 5186 .bw_quota_us = tg->scx.bw_quota_us, 5187 .bw_burst_us = tg->scx.bw_burst_us, 5188 }; 5189 5190 ret = SCX_CALL_OP_RET(sch, cgroup_init, NULL, css->cgroup, &args); 5191 if (ret) { 5192 scx_error(sch, "ops.cgroup_init() failed (%d)", ret); 5193 return ret; 5194 } 5195 } 5196 5197 tg->scx.sched = sch; 5198 tg->scx.flags |= SCX_TG_INITED; 5199 } 5200 5201 return 0; 5202 } 5203 5204 #else 5205 static void scx_cgroup_exit(struct scx_sched *sch) {} 5206 static int scx_cgroup_init(struct scx_sched *sch) { return 0; } 5207 #endif 5208 5209 5210 /******************************************************************************** 5211 * Sysfs interface and ops enable/disable. 5212 */ 5213 5214 #define SCX_ATTR(_name) \ 5215 static struct kobj_attribute scx_attr_##_name = { \ 5216 .attr = { .name = __stringify(_name), .mode = 0444 }, \ 5217 .show = scx_attr_##_name##_show, \ 5218 } 5219 5220 static ssize_t scx_attr_state_show(struct kobject *kobj, 5221 struct kobj_attribute *ka, char *buf) 5222 { 5223 return sysfs_emit(buf, "%s\n", scx_enable_state_str[scx_enable_state()]); 5224 } 5225 SCX_ATTR(state); 5226 5227 static ssize_t scx_attr_switch_all_show(struct kobject *kobj, 5228 struct kobj_attribute *ka, char *buf) 5229 { 5230 return sysfs_emit(buf, "%d\n", READ_ONCE(scx_switching_all)); 5231 } 5232 SCX_ATTR(switch_all); 5233 5234 static ssize_t scx_attr_nr_rejected_show(struct kobject *kobj, 5235 struct kobj_attribute *ka, char *buf) 5236 { 5237 return sysfs_emit(buf, "%ld\n", atomic_long_read(&scx_nr_rejected)); 5238 } 5239 SCX_ATTR(nr_rejected); 5240 5241 static ssize_t scx_attr_hotplug_seq_show(struct kobject *kobj, 5242 struct kobj_attribute *ka, char *buf) 5243 { 5244 return sysfs_emit(buf, "%ld\n", atomic_long_read(&scx_hotplug_seq)); 5245 } 5246 SCX_ATTR(hotplug_seq); 5247 5248 static ssize_t scx_attr_enable_seq_show(struct kobject *kobj, 5249 struct kobj_attribute *ka, char *buf) 5250 { 5251 return sysfs_emit(buf, "%ld\n", atomic_long_read(&scx_enable_seq)); 5252 } 5253 SCX_ATTR(enable_seq); 5254 5255 static struct attribute *scx_global_attrs[] = { 5256 &scx_attr_state.attr, 5257 &scx_attr_switch_all.attr, 5258 &scx_attr_nr_rejected.attr, 5259 &scx_attr_hotplug_seq.attr, 5260 &scx_attr_enable_seq.attr, 5261 NULL, 5262 }; 5263 5264 static const struct attribute_group scx_global_attr_group = { 5265 .attrs = scx_global_attrs, 5266 }; 5267 5268 static void free_pnode(struct scx_sched_pnode *pnode); 5269 static void free_exit_info(struct scx_exit_info *ei); 5270 static const char *scx_exit_reason(enum scx_exit_kind kind); 5271 static bool scx_claim_exit(struct scx_sched *sch, enum scx_exit_kind kind); 5272 5273 s32 scx_set_cmask_scratch_alloc(struct scx_sched *sch) 5274 { 5275 size_t size = struct_size_t(struct scx_cmask, bits, 5276 SCX_CMASK_NR_WORDS(num_possible_cpus())); 5277 int cpu; 5278 5279 if (!sch->is_cid_type || !sch->arena_pool) 5280 return 0; 5281 5282 sch->set_cmask_scratch = alloc_percpu(struct scx_cmask *); 5283 if (!sch->set_cmask_scratch) 5284 return -ENOMEM; 5285 5286 for_each_possible_cpu(cpu) { 5287 struct scx_cmask **slot = per_cpu_ptr(sch->set_cmask_scratch, cpu); 5288 5289 *slot = scx_arena_alloc(sch, size); 5290 if (!*slot) 5291 return -ENOMEM; 5292 scx_cmask_init(*slot, 0, num_possible_cpus()); 5293 } 5294 return 0; 5295 } 5296 5297 static void scx_set_cmask_scratch_free(struct scx_sched *sch) 5298 { 5299 size_t size = struct_size_t(struct scx_cmask, bits, 5300 SCX_CMASK_NR_WORDS(num_possible_cpus())); 5301 int cpu; 5302 5303 if (!sch->set_cmask_scratch) 5304 return; 5305 5306 for_each_possible_cpu(cpu) { 5307 struct scx_cmask **slot = per_cpu_ptr(sch->set_cmask_scratch, cpu); 5308 5309 scx_arena_free(sch, *slot, size); 5310 } 5311 free_percpu(sch->set_cmask_scratch); 5312 sch->set_cmask_scratch = NULL; 5313 } 5314 5315 static void scx_sched_free_rcu_work(struct work_struct *work) 5316 { 5317 struct rcu_work *rcu_work = to_rcu_work(work); 5318 struct scx_sched *sch = container_of(rcu_work, struct scx_sched, rcu_work); 5319 struct rhashtable_iter rht_iter; 5320 struct scx_dispatch_q *dsq; 5321 int cpu, node; 5322 5323 irq_work_sync(&sch->propagate_exit_irq_work); 5324 irq_work_sync(&sch->disable_irq_work); 5325 kthread_destroy_worker(sch->helper); 5326 timer_shutdown_sync(&sch->bypass_lb_timer); 5327 free_cpumask_var(sch->bypass_lb_donee_cpumask); 5328 free_cpumask_var(sch->bypass_lb_resched_cpumask); 5329 free_cpumask_var(sch->stall_cpus); 5330 5331 #ifdef CONFIG_EXT_SUB_SCHED 5332 kfree(sch->cgrp_path); 5333 if (sch_cgroup(sch)) 5334 cgroup_put(sch_cgroup(sch)); 5335 if (sch->sub_kset) 5336 kobject_put(&sch->sub_kset->kobj); 5337 if (scx_parent(sch)) 5338 kobject_put(&scx_parent(sch)->kobj); 5339 #endif /* CONFIG_EXT_SUB_SCHED */ 5340 5341 for_each_possible_cpu(cpu) { 5342 struct scx_sched_pcpu *pcpu = per_cpu_ptr(sch->pcpu, cpu); 5343 5344 /* 5345 * $sch would have entered bypass mode before the RCU grace 5346 * period. As that blocks new deferrals, all 5347 * deferred_reenq_local_node's must be off-list by now. 5348 */ 5349 WARN_ON_ONCE(!list_empty(&pcpu->deferred_reenq_local.node)); 5350 5351 /* remove the queued ecaps sync so the pcpu can be freed */ 5352 scx_discard_ecaps_to_sync(cpu, pcpu); 5353 5354 /* 5355 * Bypass blocks new kicks. Flush the kick irq_work so this 5356 * pcpu's to_kick_node is off the list before it is freed. 5357 */ 5358 irq_work_sync(&cpu_rq(cpu)->scx.kick_cpus_irq_work); 5359 WARN_ON_ONCE(!list_empty(&pcpu->to_kick_node)); 5360 free_cpumask_var(pcpu->cpus_to_kick); 5361 free_cpumask_var(pcpu->cpus_to_kick_if_idle); 5362 free_cpumask_var(pcpu->cpus_to_preempt); 5363 free_cpumask_var(pcpu->cpus_to_wait); 5364 5365 exit_dsq(scx_bypass_dsq(sch, cpu)); 5366 } 5367 5368 free_percpu(sch->pcpu); 5369 5370 for_each_node_state(node, N_POSSIBLE) 5371 free_pnode(sch->pnode[node]); 5372 kfree(sch->pnode); 5373 5374 scx_free_pshards(sch); 5375 5376 rhashtable_walk_enter(&sch->dsq_hash, &rht_iter); 5377 do { 5378 rhashtable_walk_start(&rht_iter); 5379 5380 while (!IS_ERR_OR_NULL((dsq = rhashtable_walk_next(&rht_iter)))) 5381 destroy_dsq(sch, dsq->id); 5382 5383 rhashtable_walk_stop(&rht_iter); 5384 } while (dsq == ERR_PTR(-EAGAIN)); 5385 rhashtable_walk_exit(&rht_iter); 5386 5387 rhashtable_free_and_destroy(&sch->dsq_hash, NULL, NULL); 5388 free_exit_info(sch->exit_info); 5389 scx_set_cmask_scratch_free(sch); 5390 scx_arena_pool_destroy(sch); 5391 if (sch->arena_map) 5392 bpf_map_put(sch->arena_map); 5393 5394 /* @sch is completely inactive by now */ 5395 scx_dec_has_subs(sch); 5396 5397 kfree(sch); 5398 } 5399 5400 static void scx_kobj_release(struct kobject *kobj) 5401 { 5402 struct scx_sched *sch = container_of(kobj, struct scx_sched, kobj); 5403 5404 INIT_RCU_WORK(&sch->rcu_work, scx_sched_free_rcu_work); 5405 queue_rcu_work(system_dfl_wq, &sch->rcu_work); 5406 } 5407 5408 static ssize_t scx_attr_ops_show(struct kobject *kobj, 5409 struct kobj_attribute *ka, char *buf) 5410 { 5411 struct scx_sched *sch = container_of(kobj, struct scx_sched, kobj); 5412 5413 return sysfs_emit(buf, "%s\n", sch->ops.name); 5414 } 5415 SCX_ATTR(ops); 5416 5417 #define scx_attr_event_show(buf, at, events, kind) ({ \ 5418 sysfs_emit_at(buf, at, "%s %llu\n", #kind, (events)->kind); \ 5419 }) 5420 5421 static ssize_t scx_attr_events_show(struct kobject *kobj, 5422 struct kobj_attribute *ka, char *buf) 5423 { 5424 struct scx_sched *sch = container_of(kobj, struct scx_sched, kobj); 5425 struct scx_event_stats events; 5426 int at = 0; 5427 5428 scx_read_events(sch, &events); 5429 #define SCX_EVENT(name) (at += scx_attr_event_show(buf, at, &events, name)) 5430 SCX_EVENTS_LIST(SCX_EVENT); 5431 #undef SCX_EVENT 5432 return at; 5433 } 5434 SCX_ATTR(events); 5435 5436 #ifdef CONFIG_EXT_SUB_SCHED 5437 static const char *scx_cap_names[__SCX_NR_CAPS] = { 5438 [__SCX_CAP_ENQ_IMMED] = "enq_immed", 5439 [__SCX_CAP_ENQ] = "enq", 5440 [__SCX_CAP_PREEMPT] = "preempt", 5441 [__SCX_CAP_PERF] = "perf", 5442 }; 5443 5444 static ssize_t scx_attr_caps_show(struct kobject *kobj, 5445 struct kobj_attribute *ka, char *buf) 5446 { 5447 struct scx_sched *sch = container_of(kobj, struct scx_sched, kobj); 5448 u32 npossible = num_possible_cpus(); 5449 struct scx_cmask *agg __free(kfree) = 5450 kzalloc(struct_size(agg, bits, SCX_CMASK_NR_WORDS(npossible)), GFP_KERNEL); 5451 unsigned long *agg_bm __free(bitmap) = bitmap_zalloc(npossible, GFP_KERNEL); 5452 ssize_t count = 0; 5453 s32 cap, si; 5454 5455 if (!agg || !agg_bm) 5456 return -ENOMEM; 5457 5458 for (cap = 0; cap < __SCX_NR_CAPS; cap++) { 5459 SCX_CMASK_DEFINE(snap, 0, SCX_CID_SHARD_MAX_CPUS); 5460 5461 scx_cmask_init(agg, 0, npossible); 5462 for (si = 0; si < sch->nr_pshards; si++) { 5463 struct scx_cmask *cm = &sch->pshard[si]->caps[cap].cmask; 5464 5465 scx_cmask_reframe(snap, cm->base, cm->nr_cids); 5466 scx_cmask_copy(snap, cm); 5467 scx_cmask_or(agg, snap); 5468 } 5469 /* %*pbl takes unsigned long bitmap layout, convert from u64 */ 5470 bitmap_from_arr64(agg_bm, agg->bits, npossible); 5471 count += sysfs_emit_at(buf, count, "%s: %*pbl\n", 5472 scx_cap_names[cap], npossible, agg_bm); 5473 } 5474 return count; 5475 } 5476 SCX_ATTR(caps); 5477 #endif /* CONFIG_EXT_SUB_SCHED */ 5478 5479 static struct attribute *scx_sched_attrs[] = { 5480 &scx_attr_ops.attr, 5481 &scx_attr_events.attr, 5482 #ifdef CONFIG_EXT_SUB_SCHED 5483 &scx_attr_caps.attr, 5484 #endif 5485 NULL, 5486 }; 5487 ATTRIBUTE_GROUPS(scx_sched); 5488 5489 static const struct kobj_type scx_ktype = { 5490 .release = scx_kobj_release, 5491 .sysfs_ops = &kobj_sysfs_ops, 5492 .default_groups = scx_sched_groups, 5493 }; 5494 5495 static int scx_uevent(const struct kobject *kobj, struct kobj_uevent_env *env) 5496 { 5497 const struct scx_sched *sch; 5498 5499 /* 5500 * scx_uevent() can be reached by both scx_sched kobjects (scx_ktype) 5501 * and sub-scheduler kset kobjects (kset_ktype) through the parent 5502 * chain walk. Filter out the latter to avoid invalid casts. 5503 */ 5504 if (kobj->ktype != &scx_ktype) 5505 return 0; 5506 5507 sch = container_of(kobj, struct scx_sched, kobj); 5508 5509 return add_uevent_var(env, "SCXOPS=%s", sch->ops.name); 5510 } 5511 5512 static const struct kset_uevent_ops scx_uevent_ops = { 5513 .uevent = scx_uevent, 5514 }; 5515 5516 /* 5517 * Used by sched_fork() and __setscheduler_prio() to pick the matching 5518 * sched_class. dl/rt are already handled. 5519 */ 5520 bool task_should_scx(int policy) 5521 { 5522 /* if disabled, nothing should be on it */ 5523 if (!scx_enabled()) 5524 return false; 5525 5526 /* scx is taking over all SCHED_OTHER and SCHED_EXT tasks */ 5527 if (READ_ONCE(scx_switching_all)) 5528 return true; 5529 5530 /* 5531 * scx is tearing down - keep new SCHED_EXT tasks out. 5532 * 5533 * Must come after scx_switching_all test, which serves as a proxy 5534 * for __scx_switched_all. While __scx_switched_all is set, we must 5535 * return true via the branch above: a fork routed to fair would 5536 * stall because next_active_class() skips fair. 5537 * 5538 * This can develop into a deadlock - scx holds scx_enable_mutex across 5539 * kthread_create() in scx_alloc_and_add_sched(); if the new kthread is 5540 * the stalled task, the disable path can never grab the mutex to clear 5541 * scx_switching_all. 5542 */ 5543 if (unlikely(scx_enable_state() == SCX_DISABLING)) 5544 return false; 5545 5546 return policy == SCHED_EXT; 5547 } 5548 5549 bool scx_allow_ttwu_queue(const struct task_struct *p) 5550 { 5551 struct scx_sched *sch; 5552 5553 if (!scx_enabled()) 5554 return true; 5555 5556 sch = scx_task_sched(p); 5557 if (unlikely(!sch)) 5558 return true; 5559 5560 if (sch->ops.flags & SCX_OPS_ALLOW_QUEUED_WAKEUP) 5561 return true; 5562 5563 if (unlikely(p->sched_class != &ext_sched_class)) 5564 return true; 5565 5566 return false; 5567 } 5568 5569 /** 5570 * handle_lockup - sched_ext common lockup handler 5571 * @exit_cpu: CPU to record in exit_info. Pass the stalled/hung CPU, not current. 5572 * @fmt: format string 5573 * 5574 * Called on system stall or lockup condition and initiates abort of sched_ext 5575 * if enabled, which may resolve the reported lockup. 5576 * 5577 * Returns %true if sched_ext is enabled and abort was initiated, which may 5578 * resolve the lockup. %false if sched_ext is not enabled or abort was already 5579 * initiated by someone else. 5580 */ 5581 static __printf(2, 3) bool handle_lockup(int exit_cpu, const char *fmt, ...) 5582 { 5583 struct scx_sched *sch; 5584 va_list args; 5585 bool ret; 5586 5587 guard(rcu)(); 5588 5589 sch = rcu_dereference(scx_root); 5590 if (unlikely(!sch)) 5591 return false; 5592 5593 switch (scx_enable_state()) { 5594 case SCX_ENABLING: 5595 case SCX_ENABLED: 5596 va_start(args, fmt); 5597 ret = scx_vexit(sch, SCX_EXIT_ERROR, 0, exit_cpu, fmt, args); 5598 va_end(args); 5599 return ret; 5600 default: 5601 return false; 5602 } 5603 } 5604 5605 /** 5606 * scx_rcu_cpu_stall - sched_ext RCU CPU stall handler 5607 * @stalled_mask: bit mask of stalled CPUs 5608 * 5609 * While there are various reasons why RCU CPU stalls can occur on a system 5610 * that may not be caused by the current BPF scheduler, try kicking out the 5611 * current scheduler in an attempt to recover the system to a good state before 5612 * issuing panics. 5613 * 5614 * Returns %true if sched_ext is enabled and abort was initiated, which may 5615 * resolve the reported RCU stall. %false if sched_ext is not enabled or someone 5616 * else already initiated abort. 5617 */ 5618 bool scx_rcu_cpu_stall(const struct cpumask *stalled_mask) 5619 { 5620 struct scx_sched *sch; 5621 struct scx_exit_info *ei; 5622 int exit_cpu; 5623 5624 guard(rcu)(); 5625 5626 sch = rcu_dereference(scx_root); 5627 if (unlikely(!sch)) 5628 return false; 5629 5630 switch (scx_enable_state()) { 5631 case SCX_ENABLING: 5632 case SCX_ENABLED: 5633 break; 5634 default: 5635 return false; 5636 } 5637 5638 exit_cpu = cpumask_empty(stalled_mask) ? -1 : (int)cpumask_first(stalled_mask); 5639 ei = sch->exit_info; 5640 5641 guard(preempt)(); 5642 5643 if (!scx_claim_exit(sch, SCX_EXIT_ERROR)) 5644 return false; 5645 5646 #ifdef CONFIG_STACKTRACE 5647 ei->bt_len = stack_trace_save(ei->bt, SCX_EXIT_BT_LEN, 1); 5648 #endif 5649 scnprintf(ei->msg, SCX_EXIT_MSG_LEN, "RCU CPU stall on CPUs (%*pbl)", 5650 cpumask_pr_args(stalled_mask)); 5651 ei->kind = SCX_EXIT_ERROR; 5652 ei->reason = scx_exit_reason(SCX_EXIT_ERROR); 5653 ei->exit_cpu = exit_cpu; 5654 cpumask_copy(sch->stall_cpus, stalled_mask); 5655 5656 irq_work_queue(&sch->disable_irq_work); 5657 return true; 5658 } 5659 5660 /** 5661 * scx_softlockup - sched_ext softlockup handler 5662 * @dur_s: number of seconds of CPU stuck due to soft lockup 5663 * 5664 * On some multi-socket setups (e.g. 2x Intel 8480c), the BPF scheduler can 5665 * live-lock the system by making many CPUs target the same DSQ to the point 5666 * where soft-lockup detection triggers. This function is called from 5667 * soft-lockup watchdog when the triggering point is close and tries to unjam 5668 * the system and aborting the BPF scheduler. 5669 */ 5670 void scx_softlockup(u32 dur_s) 5671 { 5672 int cpu = smp_processor_id(); 5673 5674 if (!handle_lockup(cpu, "soft lockup - CPU %d stuck for %us", cpu, dur_s)) 5675 return; 5676 5677 printk_deferred(KERN_ERR "sched_ext: Soft lockup - CPU %d stuck for %us, disabling BPF scheduler\n", 5678 cpu, dur_s); 5679 } 5680 5681 /** 5682 * scx_hardlockup - sched_ext hardlockup handler 5683 * @cpu: the target CPU 5684 * 5685 * A poorly behaving BPF scheduler can trigger hard lockup by e.g. putting 5686 * numerous affinitized tasks in a single queue and directing all CPUs at it. 5687 * Try kicking out the current scheduler in an attempt to recover the system to 5688 * a good state before taking more drastic actions. 5689 * 5690 * Called from NMI. Aborting the scheduler sets ->aborting throughout the 5691 * hierarchy before returning, which is what breaks the dispatch-path live-locks 5692 * that can hard-lock CPUs. 5693 * 5694 * Returns %true if sched_ext is enabled and abort was initiated, which may 5695 * resolve the lockup. %false if sched_ext is not enabled or abort was already 5696 * initiated by someone else. 5697 */ 5698 bool scx_hardlockup(int cpu) 5699 { 5700 if (!handle_lockup(cpu, "hard lockup - CPU %d", cpu)) 5701 return false; 5702 5703 printk_deferred(KERN_ERR "sched_ext: Hard lockup - CPU %d, disabling BPF scheduler\n", 5704 cpu); 5705 return true; 5706 } 5707 5708 static u32 bypass_lb_cpu(struct scx_sched *sch, s32 donor, 5709 struct cpumask *donee_mask, struct cpumask *resched_mask, 5710 u32 nr_donor_target, u32 nr_donee_target) 5711 { 5712 struct rq *donor_rq = cpu_rq(donor); 5713 struct scx_dispatch_q *donor_dsq = scx_bypass_dsq(sch, donor); 5714 struct task_struct *p, *n; 5715 struct scx_dsq_list_node cursor = INIT_DSQ_LIST_CURSOR(cursor, donor_dsq, 0); 5716 s32 delta = READ_ONCE(donor_dsq->nr) - nr_donor_target; 5717 u32 nr_balanced = 0, min_delta_us; 5718 5719 /* 5720 * All we want to guarantee is reasonable forward progress. No reason to 5721 * fine tune. Assuming every task on @donor_dsq runs their full slice, 5722 * consider offloading iff the total queued duration is over the 5723 * threshold. 5724 */ 5725 min_delta_us = READ_ONCE(scx_bypass_lb_intv_us) / SCX_BYPASS_LB_MIN_DELTA_DIV; 5726 if (delta < DIV_ROUND_UP(min_delta_us, READ_ONCE(scx_slice_bypass_us))) 5727 return 0; 5728 5729 raw_spin_rq_lock_irq(donor_rq); 5730 raw_spin_lock(&donor_dsq->lock); 5731 list_add(&cursor.node, &donor_dsq->list); 5732 resume: 5733 n = container_of(&cursor, struct task_struct, scx.dsq_list); 5734 n = nldsq_next_task(donor_dsq, n, false); 5735 5736 while ((p = n)) { 5737 struct scx_dispatch_q *donee_dsq; 5738 int donee; 5739 5740 n = nldsq_next_task(donor_dsq, n, false); 5741 5742 if (donor_dsq->nr <= nr_donor_target) 5743 break; 5744 5745 if (cpumask_empty(donee_mask)) 5746 break; 5747 5748 /* 5749 * If an earlier pass placed @p on @donor_dsq from a different 5750 * CPU and the donee hasn't consumed it yet, @p is still on the 5751 * previous CPU and task_rq(@p) != @donor_rq. @p can't be moved 5752 * without its rq locked. Skip. 5753 */ 5754 if (task_rq(p) != donor_rq) 5755 continue; 5756 5757 donee = cpumask_any_and_distribute(donee_mask, p->cpus_ptr); 5758 if (donee >= nr_cpu_ids) 5759 continue; 5760 5761 donee_dsq = scx_bypass_dsq(sch, donee); 5762 5763 /* 5764 * $p's rq is not locked but $p's DSQ lock protects its 5765 * scheduling properties making this test safe. 5766 */ 5767 if (!task_can_run_on_remote_rq(sch, p, cpu_rq(donee), false)) 5768 continue; 5769 5770 /* 5771 * Moving $p from one non-local DSQ to another. The source rq 5772 * and DSQ are already locked. Do an abbreviated dequeue and 5773 * then perform enqueue without unlocking $donor_dsq. 5774 * 5775 * We don't want to drop and reacquire the lock on each 5776 * iteration as @donor_dsq can be very long and potentially 5777 * highly contended. Donee DSQs are less likely to be contended. 5778 * The nested locking is safe as only this LB moves tasks 5779 * between bypass DSQs. 5780 */ 5781 dispatch_dequeue_locked(p, donor_dsq); 5782 scx_dispatch_enqueue(sch, cpu_rq(donee), donee_dsq, p, 0, 0, SCX_ENQ_NESTED); 5783 5784 /* 5785 * $donee might have been idle and need to be woken up. No need 5786 * to be clever. Kick every CPU that receives tasks. 5787 */ 5788 cpumask_set_cpu(donee, resched_mask); 5789 5790 if (READ_ONCE(donee_dsq->nr) >= nr_donee_target) 5791 cpumask_clear_cpu(donee, donee_mask); 5792 5793 nr_balanced++; 5794 if (!(nr_balanced % SCX_BYPASS_LB_BATCH) && n) { 5795 list_move_tail(&cursor.node, &n->scx.dsq_list.node); 5796 raw_spin_unlock(&donor_dsq->lock); 5797 scx_rq_lock_drop(donor_rq); 5798 raw_spin_rq_unlock_irq(donor_rq); 5799 cpu_relax(); 5800 raw_spin_rq_lock_irq(donor_rq); 5801 raw_spin_lock(&donor_dsq->lock); 5802 goto resume; 5803 } 5804 } 5805 5806 list_del_init(&cursor.node); 5807 raw_spin_unlock(&donor_dsq->lock); 5808 scx_rq_lock_drop(donor_rq); 5809 raw_spin_rq_unlock_irq(donor_rq); 5810 5811 return nr_balanced; 5812 } 5813 5814 static void bypass_lb_node(struct scx_sched *sch, int node) 5815 { 5816 const struct cpumask *node_mask = cpumask_of_node(node); 5817 struct cpumask *donee_mask = sch->bypass_lb_donee_cpumask; 5818 struct cpumask *resched_mask = sch->bypass_lb_resched_cpumask; 5819 u32 nr_tasks = 0, nr_cpus = 0, nr_balanced = 0; 5820 u32 nr_target, nr_donor_target; 5821 u32 before_min = U32_MAX, before_max = 0; 5822 u32 after_min = U32_MAX, after_max = 0; 5823 int cpu; 5824 5825 /* count the target tasks and CPUs */ 5826 for_each_cpu_and(cpu, cpu_online_mask, node_mask) { 5827 u32 nr = READ_ONCE(scx_bypass_dsq(sch, cpu)->nr); 5828 5829 nr_tasks += nr; 5830 nr_cpus++; 5831 5832 before_min = min(nr, before_min); 5833 before_max = max(nr, before_max); 5834 } 5835 5836 if (!nr_cpus) 5837 return; 5838 5839 /* 5840 * We don't want CPUs to have more than $nr_donor_target tasks and 5841 * balancing to fill donee CPUs upto $nr_target. Once targets are 5842 * calculated, find the donee CPUs. 5843 */ 5844 nr_target = DIV_ROUND_UP(nr_tasks, nr_cpus); 5845 nr_donor_target = DIV_ROUND_UP(nr_target * SCX_BYPASS_LB_DONOR_PCT, 100); 5846 5847 cpumask_clear(donee_mask); 5848 for_each_cpu_and(cpu, cpu_online_mask, node_mask) { 5849 if (READ_ONCE(scx_bypass_dsq(sch, cpu)->nr) < nr_target) 5850 cpumask_set_cpu(cpu, donee_mask); 5851 } 5852 5853 /* iterate !donee CPUs and see if they should be offloaded */ 5854 cpumask_clear(resched_mask); 5855 for_each_cpu_and(cpu, cpu_online_mask, node_mask) { 5856 if (cpumask_empty(donee_mask)) 5857 break; 5858 if (cpumask_test_cpu(cpu, donee_mask)) 5859 continue; 5860 if (READ_ONCE(scx_bypass_dsq(sch, cpu)->nr) <= nr_donor_target) 5861 continue; 5862 5863 nr_balanced += bypass_lb_cpu(sch, cpu, donee_mask, resched_mask, 5864 nr_donor_target, nr_target); 5865 } 5866 5867 for_each_cpu(cpu, resched_mask) 5868 resched_cpu(cpu); 5869 5870 for_each_cpu_and(cpu, cpu_online_mask, node_mask) { 5871 u32 nr = READ_ONCE(scx_bypass_dsq(sch, cpu)->nr); 5872 5873 after_min = min(nr, after_min); 5874 after_max = max(nr, after_max); 5875 5876 } 5877 5878 trace_sched_ext_bypass_lb(node, nr_cpus, nr_tasks, nr_balanced, 5879 before_min, before_max, after_min, after_max); 5880 } 5881 5882 /* 5883 * In bypass mode, all tasks are put on the per-CPU bypass DSQs. If the machine 5884 * is over-saturated and the BPF scheduler skewed tasks into few CPUs, some 5885 * bypass DSQs can be overloaded. If there are enough tasks to saturate other 5886 * lightly loaded CPUs, such imbalance can lead to very high execution latency 5887 * on the overloaded CPUs and thus to hung tasks and RCU stalls. To avoid such 5888 * outcomes, a simple load balancing mechanism is implemented by the following 5889 * timer which runs periodically while bypass mode is in effect. 5890 */ 5891 static void scx_bypass_lb_timerfn(struct timer_list *timer) 5892 { 5893 struct scx_sched *sch = container_of(timer, struct scx_sched, bypass_lb_timer); 5894 int node; 5895 u32 intv_us; 5896 5897 if (!scx_bypass_dsp_enabled(sch)) 5898 return; 5899 5900 for_each_node_with_cpus(node) 5901 bypass_lb_node(sch, node); 5902 5903 intv_us = READ_ONCE(scx_bypass_lb_intv_us); 5904 if (intv_us) 5905 mod_timer(timer, jiffies + usecs_to_jiffies(intv_us)); 5906 } 5907 5908 static bool inc_bypass_depth(struct scx_sched *sch) 5909 { 5910 lockdep_assert_held(&scx_bypass_lock); 5911 5912 WARN_ON_ONCE(sch->bypass_depth < 0); 5913 WRITE_ONCE(sch->bypass_depth, sch->bypass_depth + 1); 5914 if (sch->bypass_depth != 1) 5915 return false; 5916 5917 WRITE_ONCE(sch->slice_dfl, READ_ONCE(scx_slice_bypass_us) * NSEC_PER_USEC); 5918 sch->bypass_timestamp = ktime_get_ns(); 5919 scx_add_event(sch, SCX_EV_BYPASS_ACTIVATE, 1); 5920 return true; 5921 } 5922 5923 static bool dec_bypass_depth(struct scx_sched *sch) 5924 { 5925 lockdep_assert_held(&scx_bypass_lock); 5926 5927 WARN_ON_ONCE(sch->bypass_depth < 1); 5928 WRITE_ONCE(sch->bypass_depth, sch->bypass_depth - 1); 5929 if (sch->bypass_depth != 0) 5930 return false; 5931 5932 WRITE_ONCE(sch->slice_dfl, SCX_SLICE_DFL); 5933 scx_add_event(sch, SCX_EV_BYPASS_DURATION, 5934 ktime_get_ns() - sch->bypass_timestamp); 5935 return true; 5936 } 5937 5938 static void enable_bypass_dsp(struct scx_sched *sch) 5939 { 5940 struct scx_sched *host = scx_parent(sch) ?: sch; 5941 u32 intv_us = READ_ONCE(scx_bypass_lb_intv_us); 5942 s32 ret; 5943 5944 /* 5945 * @sch->bypass_depth transitioning from 0 to 1 triggers enabling. 5946 * Shouldn't stagger. 5947 */ 5948 if (WARN_ON_ONCE(test_and_set_bit(0, &sch->bypass_dsp_claim))) 5949 return; 5950 5951 /* 5952 * When a sub-sched bypasses, its tasks are queued on the bypass DSQs of 5953 * the nearest non-bypassing ancestor or root. As enable_bypass_dsp() is 5954 * called iff @sch is not already bypassed due to an ancestor bypassing, 5955 * we can assume that the parent is not bypassing and thus will be the 5956 * host of the bypass DSQs. 5957 * 5958 * While the situation may change in the future, the following 5959 * guarantees that the nearest non-bypassing ancestor or root has bypass 5960 * dispatch enabled while a descendant is bypassing, which is all that's 5961 * required. 5962 * 5963 * scx_bypass_dsp_enabled() test is used to determine whether to enter 5964 * the bypass dispatch handling path from both bypassing and hosting 5965 * scheds. Bump enable depth on both @sch and bypass dispatch host. 5966 */ 5967 ret = atomic_inc_return(&sch->bypass_dsp_enable_depth); 5968 WARN_ON_ONCE(ret <= 0); 5969 5970 if (host != sch) { 5971 ret = atomic_inc_return(&host->bypass_dsp_enable_depth); 5972 WARN_ON_ONCE(ret <= 0); 5973 } 5974 5975 /* 5976 * The LB timer will stop running if bypass dispatch is disabled. Start 5977 * after enabling bypass dispatch. 5978 */ 5979 if (intv_us && !timer_pending(&host->bypass_lb_timer)) 5980 mod_timer(&host->bypass_lb_timer, 5981 jiffies + usecs_to_jiffies(intv_us)); 5982 } 5983 5984 /* may be called without holding scx_bypass_lock */ 5985 void scx_disable_bypass_dsp(struct scx_sched *sch) 5986 { 5987 s32 ret; 5988 5989 if (!test_and_clear_bit(0, &sch->bypass_dsp_claim)) 5990 return; 5991 5992 ret = atomic_dec_return(&sch->bypass_dsp_enable_depth); 5993 WARN_ON_ONCE(ret < 0); 5994 5995 if (scx_parent(sch)) { 5996 ret = atomic_dec_return(&scx_parent(sch)->bypass_dsp_enable_depth); 5997 WARN_ON_ONCE(ret < 0); 5998 } 5999 } 6000 6001 /** 6002 * unbypass_renotify_idle - Arm an idle re-notify for a sched leaving bypass 6003 * @rq: rq of the cpu leaving bypass 6004 * @pos: scheduler that just left bypass on @rq's cpu 6005 * @pcpu: @pos's per-cpu state for @rq's cpu 6006 * 6007 * A sched leaving bypass is owed the ops.update_idle() calls suppressed while 6008 * bypassing. A cpu that goes idle during the bypass window and stays idle won't 6009 * produce a notification. Arm a re-notify that scx_bypass()'s resched flushes 6010 * on the next idle pick. 6011 * 6012 * An acute case is ops.sub_attach(). If the parent grants the child cids while 6013 * attaching, when attach is complete and bypass is lifted, the child may hold 6014 * idle cids it never saw go idle. 6015 * 6016 * The root is no exception as bypass suppresses its notifications the same way. 6017 * However, the root uses a separate per-rq flag so its re-notify keeps working 6018 * even when !CONFIG_EXT_SUB_SCHED. 6019 */ 6020 static void unbypass_renotify_idle(struct rq *rq, struct scx_sched *pos, 6021 struct scx_sched_pcpu *pcpu) 6022 { 6023 if (!pos->level) { 6024 rq->scx.flags |= SCX_RQ_ROOT_IDLE_RENOTIFY; 6025 return; 6026 } 6027 #ifdef CONFIG_EXT_SUB_SCHED 6028 pcpu->idle_renotify = true; 6029 rq->scx.flags |= SCX_RQ_SUB_IDLE_RENOTIFY; 6030 #endif 6031 } 6032 6033 /** 6034 * scx_bypass - [Un]bypass scx_ops and guarantee forward progress 6035 * @sch: sched to bypass 6036 * @bypass: true for bypass, false for unbypass 6037 * 6038 * Bypassing guarantees that all runnable tasks make forward progress without 6039 * trusting the BPF scheduler. We can't grab any mutexes or rwsems as they might 6040 * be held by tasks that the BPF scheduler is forgetting to run, which 6041 * unfortunately also excludes toggling the static branches. 6042 * 6043 * Let's work around by overriding a couple ops and modifying behaviors based on 6044 * the DISABLING state and then cycling the queued tasks through dequeue/enqueue 6045 * to force global FIFO scheduling. 6046 * 6047 * - ops.select_cpu() is ignored and the default select_cpu() is used. 6048 * 6049 * - ops.enqueue() is ignored and tasks are queued in simple global FIFO order. 6050 * %SCX_OPS_ENQ_LAST is also ignored. 6051 * 6052 * - ops.dispatch() is ignored. 6053 * 6054 * - dispatch_one() does not report %SCX_DSP_PREV on non-zero slice as slice 6055 * can't be trusted. Whenever a tick triggers, the running task is rotated to 6056 * the tail of the queue. 6057 * 6058 * - pick_next_task() suppresses zero slice warning. 6059 * 6060 * - scx_kick_cpu() is disabled to avoid irq_work malfunction during PM 6061 * operations. 6062 * 6063 * - scx_prio_less() reverts to the default runnable_at order. 6064 */ 6065 void scx_bypass(struct scx_sched *sch, bool bypass) 6066 { 6067 struct scx_sched *pos; 6068 unsigned long flags; 6069 int cpu; 6070 6071 raw_spin_lock_irqsave(&scx_bypass_lock, flags); 6072 6073 if (bypass) { 6074 if (!inc_bypass_depth(sch)) 6075 goto unlock; 6076 6077 enable_bypass_dsp(sch); 6078 } else { 6079 if (!dec_bypass_depth(sch)) 6080 goto unlock; 6081 } 6082 6083 /* 6084 * Bypass state is propagated to all descendants - an scx_sched bypasses 6085 * if itself or any of its ancestors are in bypass mode. 6086 */ 6087 raw_spin_lock(&scx_sched_lock); 6088 scx_for_each_descendant_pre(pos, sch) { 6089 if (pos == sch) 6090 continue; 6091 if (bypass) 6092 inc_bypass_depth(pos); 6093 else 6094 dec_bypass_depth(pos); 6095 } 6096 raw_spin_unlock(&scx_sched_lock); 6097 6098 /* 6099 * No task property is changing. We just need to make sure all currently 6100 * queued tasks are re-queued according to the new scx_bypassing() 6101 * state. As an optimization, walk each rq's runnable_list instead of 6102 * the scx_tasks list. 6103 * 6104 * This function can't trust the scheduler and thus can't use 6105 * cpus_read_lock(). Walk all possible CPUs instead of online. 6106 */ 6107 for_each_possible_cpu(cpu) { 6108 struct rq *rq = cpu_rq(cpu); 6109 struct task_struct *p, *n; 6110 6111 raw_spin_rq_lock(rq); 6112 raw_spin_lock(&scx_sched_lock); 6113 6114 scx_for_each_descendant_pre(pos, sch) { 6115 struct scx_sched_pcpu *pcpu = per_cpu_ptr(pos->pcpu, cpu); 6116 bool was_bypassing = pcpu->flags & SCX_SCHED_PCPU_BYPASSING; 6117 6118 if (pos->bypass_depth) { 6119 pcpu->flags |= SCX_SCHED_PCPU_BYPASSING; 6120 } else { 6121 pcpu->flags &= ~SCX_SCHED_PCPU_BYPASSING; 6122 if (was_bypassing) { 6123 unbypass_renotify_idle(rq, pos, pcpu); 6124 scx_unbypass_replay_ecaps(rq, pos); 6125 } 6126 } 6127 } 6128 6129 raw_spin_unlock(&scx_sched_lock); 6130 6131 /* 6132 * We need to guarantee that no tasks are on the BPF scheduler 6133 * while bypassing. Either we see enabled or the enable path 6134 * sees scx_bypassing() before moving tasks to SCX. 6135 */ 6136 if (!scx_enabled()) { 6137 scx_rq_lock_drop(rq); 6138 raw_spin_rq_unlock(rq); 6139 continue; 6140 } 6141 6142 /* 6143 * The use of list_for_each_entry_safe_reverse() is required 6144 * because each task is going to be removed from and added back 6145 * to the runnable_list during iteration. Because they're added 6146 * to the tail of the list, safe reverse iteration can still 6147 * visit all nodes. 6148 */ 6149 list_for_each_entry_safe_reverse(p, n, &rq->scx.runnable_list, 6150 scx.runnable_node) { 6151 if (!scx_is_descendant(scx_task_sched(p), sch)) 6152 continue; 6153 6154 /* 6155 * Bypass trumps protection. Cycling clears for queued 6156 * tasks but current task needs explicit stripping. 6157 */ 6158 if (bypass && task_current(rq, p)) 6159 scx_task_slice_ended(rq, p); 6160 6161 /* cycling deq/enq is enough, see the function comment */ 6162 scoped_guard (sched_change, p, DEQUEUE_SAVE | DEQUEUE_MOVE) { 6163 /* nothing */ ; 6164 } 6165 } 6166 6167 /* resched to restore ticks and idle state */ 6168 if (cpu_online(cpu) || cpu == smp_processor_id()) 6169 resched_curr(rq); 6170 6171 scx_rq_lock_drop(rq); 6172 raw_spin_rq_unlock(rq); 6173 } 6174 6175 /* disarming must come after moving all tasks out of the bypass DSQs */ 6176 if (!bypass) 6177 scx_disable_bypass_dsp(sch); 6178 unlock: 6179 raw_spin_unlock_irqrestore(&scx_bypass_lock, flags); 6180 } 6181 6182 static void free_exit_info(struct scx_exit_info *ei) 6183 { 6184 kvfree(ei->dump); 6185 kfree(ei->msg); 6186 kfree(ei->bt); 6187 kfree(ei); 6188 } 6189 6190 static struct scx_exit_info *alloc_exit_info(size_t exit_dump_len) 6191 { 6192 struct scx_exit_info *ei; 6193 6194 ei = kzalloc_obj(*ei); 6195 if (!ei) 6196 return NULL; 6197 6198 ei->exit_cpu = -1; 6199 ei->bt = kzalloc_objs(ei->bt[0], SCX_EXIT_BT_LEN); 6200 ei->msg = kzalloc(SCX_EXIT_MSG_LEN, GFP_KERNEL); 6201 ei->dump = kvzalloc(exit_dump_len, GFP_KERNEL); 6202 6203 if (!ei->bt || !ei->msg || !ei->dump) { 6204 free_exit_info(ei); 6205 return NULL; 6206 } 6207 6208 return ei; 6209 } 6210 6211 static const char *scx_exit_reason(enum scx_exit_kind kind) 6212 { 6213 switch (kind) { 6214 case SCX_EXIT_UNREG: 6215 return "unregistered from user space"; 6216 case SCX_EXIT_UNREG_BPF: 6217 return "unregistered from BPF"; 6218 case SCX_EXIT_UNREG_KERN: 6219 return "unregistered from the main kernel"; 6220 case SCX_EXIT_SYSRQ: 6221 return "disabled by sysrq-S"; 6222 case SCX_EXIT_PARENT: 6223 return "parent exiting"; 6224 case SCX_EXIT_PARENT_KILL: 6225 return "killed by parent scheduler"; 6226 case SCX_EXIT_ERROR: 6227 return "runtime error"; 6228 case SCX_EXIT_ERROR_BPF: 6229 return "scx_bpf_error"; 6230 case SCX_EXIT_ERROR_STALL: 6231 return "runnable task stall"; 6232 case SCX_EXIT_ERROR_REENQ: 6233 return "reenqueue limit"; 6234 case SCX_EXIT_ERROR_RESCUE: 6235 return "rescue bandwidth overload"; 6236 default: 6237 return "<UNKNOWN>"; 6238 } 6239 } 6240 6241 static void free_kick_syncs(void) 6242 { 6243 int cpu; 6244 6245 for_each_possible_cpu(cpu) { 6246 struct scx_kick_syncs __rcu **ksyncs = per_cpu_ptr(&scx_kick_syncs, cpu); 6247 struct scx_kick_syncs *to_free; 6248 6249 /* flush the pending kick before freeing @ksyncs */ 6250 irq_work_sync(&cpu_rq(cpu)->scx.kick_cpus_irq_work); 6251 to_free = rcu_replace_pointer(*ksyncs, NULL, true); 6252 if (to_free) 6253 kvfree_rcu(to_free, rcu); 6254 } 6255 } 6256 6257 static void refresh_watchdog(void) 6258 { 6259 struct scx_sched *sch; 6260 unsigned long intv = ULONG_MAX; 6261 6262 /* take the shortest timeout and use its half for watchdog interval */ 6263 rcu_read_lock(); 6264 list_for_each_entry_rcu(sch, &scx_sched_all, all) 6265 intv = max(min(intv, sch->watchdog_timeout / 2), 1); 6266 rcu_read_unlock(); 6267 6268 WRITE_ONCE(scx_watchdog_timestamp, jiffies); 6269 WRITE_ONCE(scx_watchdog_interval, intv); 6270 6271 if (intv < ULONG_MAX) 6272 mod_delayed_work(system_dfl_wq, &scx_watchdog_work, intv); 6273 else 6274 cancel_delayed_work_sync(&scx_watchdog_work); 6275 } 6276 6277 s32 scx_link_sched(struct scx_sched *sch) 6278 { 6279 scoped_guard(raw_spinlock_irqsave, &scx_bypass_lock) /* for the parent bypass check */ 6280 scoped_guard(raw_spinlock, &scx_sched_lock) { 6281 #ifdef CONFIG_EXT_SUB_SCHED 6282 struct scx_sched *parent = scx_parent(sch); 6283 6284 if (parent) { 6285 s32 ret; 6286 6287 /* 6288 * Bypass state is spread across per-cpu flags and a 6289 * depth count, so inheriting it is tricky and has no 6290 * valid use case. Refuse it. 6291 */ 6292 if (READ_ONCE(parent->bypass_depth)) { 6293 scx_error(sch, "parent bypassing (%d)", -EBUSY); 6294 return -EBUSY; 6295 } 6296 6297 ret = rhashtable_lookup_insert_fast(&scx_sched_hash, 6298 &sch->hash_node, scx_sched_hash_params); 6299 if (ret) { 6300 scx_error(sch, "failed to insert into scx_sched_hash (%d)", 6301 ret); 6302 return ret; 6303 } 6304 6305 list_add_tail_rcu(&sch->sibling, &parent->children); 6306 6307 /* 6308 * Pairs with the mb after the ->aborting assertion in 6309 * scx_claim_exit(). Either we see ->aborting and back 6310 * out, or the exit path sees us and exits us. 6311 */ 6312 smp_mb(); 6313 if (unlikely(READ_ONCE(parent->aborting))) { 6314 rhashtable_remove_fast(&scx_sched_hash, &sch->hash_node, 6315 scx_sched_hash_params); 6316 list_del_rcu(&sch->sibling); 6317 scx_error(sch, "parent disabled (%d)", -ENOENT); 6318 return -ENOENT; 6319 } 6320 6321 sch->linked = true; 6322 } 6323 #endif /* CONFIG_EXT_SUB_SCHED */ 6324 6325 list_add_tail_rcu(&sch->all, &scx_sched_all); 6326 } 6327 6328 refresh_watchdog(); 6329 return 0; 6330 } 6331 6332 void scx_unlink_sched(struct scx_sched *sch) 6333 { 6334 scoped_guard(raw_spinlock_irq, &scx_sched_lock) { 6335 #ifdef CONFIG_EXT_SUB_SCHED 6336 if (sch->linked) { 6337 rhashtable_remove_fast(&scx_sched_hash, &sch->hash_node, 6338 scx_sched_hash_params); 6339 list_del_rcu(&sch->sibling); 6340 sch->linked = false; 6341 } 6342 #endif /* CONFIG_EXT_SUB_SCHED */ 6343 list_del_rcu(&sch->all); 6344 } 6345 6346 refresh_watchdog(); 6347 } 6348 6349 /* 6350 * Called to disable future dumps and wait for in-progress one while disabling 6351 * @sch. Once @sch becomes empty during disable, there's no point in dumping it. 6352 * This prevents calling dump ops on a dead sch. 6353 */ 6354 void scx_disable_dump(struct scx_sched *sch) 6355 { 6356 guard(raw_spinlock_irqsave)(&scx_dump_lock); 6357 sch->dump_disabled = true; 6358 } 6359 6360 void scx_log_sched_disable(struct scx_sched *sch) 6361 { 6362 struct scx_exit_info *ei = sch->exit_info; 6363 const char *type = scx_parent(sch) ? "sub-scheduler" : "scheduler"; 6364 6365 if (ei->kind >= SCX_EXIT_ERROR) { 6366 pr_err("sched_ext: BPF %s \"%s\" disabled (%s)\n", type, 6367 sch->ops.name, ei->reason); 6368 6369 if (ei->msg[0] != '\0') 6370 pr_err("sched_ext: %s: %s\n", sch->ops.name, ei->msg); 6371 #ifdef CONFIG_STACKTRACE 6372 stack_trace_print(ei->bt, ei->bt_len, 2); 6373 #endif 6374 } else { 6375 pr_info("sched_ext: BPF %s \"%s\" disabled (%s)\n", type, 6376 sch->ops.name, ei->reason); 6377 } 6378 } 6379 6380 static void scx_root_disable(struct scx_sched *sch) 6381 { 6382 struct scx_task_iter sti; 6383 struct task_struct *p; 6384 bool was_switched_all; 6385 int cpu; 6386 6387 /* guarantee forward progress and wait for descendants to be disabled */ 6388 scx_bypass(sch, true); 6389 drain_descendants(sch); 6390 6391 switch (scx_set_enable_state(SCX_DISABLING)) { 6392 case SCX_DISABLING: 6393 WARN_ONCE(true, "sched_ext: duplicate disabling instance?"); 6394 break; 6395 case SCX_DISABLED: 6396 pr_warn("sched_ext: ops error detected without ops (%s)\n", 6397 sch->exit_info->msg); 6398 WARN_ON_ONCE(scx_set_enable_state(SCX_DISABLED) != SCX_DISABLING); 6399 goto done; 6400 default: 6401 break; 6402 } 6403 6404 /* 6405 * Here, every runnable task is guaranteed to make forward progress and 6406 * we can safely use blocking synchronization constructs. Actually 6407 * disable ops. 6408 */ 6409 mutex_lock(&scx_enable_mutex); 6410 6411 was_switched_all = scx_switched_all(); 6412 6413 static_branch_disable(&__scx_switched_all); 6414 WRITE_ONCE(scx_switching_all, false); 6415 6416 /* 6417 * Shut down cgroup support before tasks so that the cgroup attach and 6418 * migration paths don't race against scx_disable_and_exit_task(). 6419 */ 6420 scx_cgroup_lock(); 6421 scx_cgroup_enabled = false; 6422 scx_cgroup_exit(sch); 6423 scx_cgroup_unlock(); 6424 6425 /* 6426 * The BPF scheduler is going away. All tasks including %TASK_DEAD ones 6427 * must be switched out and exited synchronously. 6428 */ 6429 percpu_down_write(&scx_fork_rwsem); 6430 6431 scx_init_task_enabled = false; 6432 6433 scx_task_iter_start(&sti, NULL); 6434 while ((p = scx_task_iter_next_locked(&sti))) { 6435 unsigned int queue_flags = DEQUEUE_SAVE | DEQUEUE_MOVE | DEQUEUE_NOCLOCK; 6436 const struct sched_class *old_class = p->sched_class; 6437 const struct sched_class *new_class = scx_setscheduler_class(p); 6438 6439 update_rq_clock(task_rq(p)); 6440 6441 if (old_class != new_class) 6442 queue_flags |= DEQUEUE_CLASS; 6443 6444 scoped_guard (sched_change, p, queue_flags) { 6445 p->sched_class = new_class; 6446 } 6447 6448 scx_disable_and_exit_task(scx_task_sched(p), p); 6449 } 6450 scx_task_iter_stop(&sti); 6451 6452 scx_disable_dump(sch); 6453 6454 scx_cgroup_lock(); 6455 set_cgroup_sched(sch_cgroup(sch), NULL); 6456 scx_cgroup_unlock(); 6457 6458 percpu_up_write(&scx_fork_rwsem); 6459 6460 /* 6461 * Re-balance the dl_server bandwidth reservations: detach ext_server 6462 * (no more sched_ext tasks) and reinstate fair_server if it was 6463 * previously detached because we were running in full mode. 6464 * 6465 * Unlike the enable path, this runs on a recovery path that cannot 6466 * fail, so we use dl_server_swap_bw() to atomically free ext_server's 6467 * bandwidth and reclaim it for fair_server under the same dl_b lock. 6468 * 6469 * The swap can still fail with -EBUSY if someone bumped ext_server's 6470 * runtime via debugfs between enable and disable; in that narrow case 6471 * both servers end up detached and we just WARN. 6472 */ 6473 for_each_possible_cpu(cpu) { 6474 struct rq *rq = cpu_rq(cpu); 6475 6476 scoped_guard(rq_lock_irqsave, rq) { 6477 update_rq_clock(rq); 6478 if (was_switched_all) { 6479 if (WARN_ON_ONCE(dl_server_swap_bw(&rq->ext_server, 6480 &rq->fair_server))) 6481 pr_warn("failed to re-attach fair_server on CPU %d\n", cpu); 6482 } else { 6483 dl_server_detach_bw(&rq->ext_server); 6484 } 6485 } 6486 } 6487 6488 /* no task is on scx, turn off all the switches and flush in-progress calls */ 6489 static_branch_disable(&__scx_enabled); 6490 static_branch_disable(&__scx_is_cid_type); 6491 if (sch->ops.flags & SCX_OPS_TID_TO_TASK) 6492 static_branch_disable(&__scx_tid_to_task_enabled); 6493 bitmap_zero(sch->has_op, SCX_OPI_END); 6494 scx_idle_disable(); 6495 synchronize_rcu(); 6496 if (sch->ops.flags & SCX_OPS_TID_TO_TASK) 6497 rhashtable_free_and_destroy(&scx_tid_hash, NULL, NULL); 6498 6499 scx_log_sched_disable(sch); 6500 6501 if (sch->ops.exit) 6502 SCX_CALL_OP(sch, exit, NULL, sch->exit_info); 6503 6504 /* 6505 * @sch's non-ops programs such as timers and tracers can fire after 6506 * ops.exit(). Now that exit is complete, stop scx_prog_sched() from 6507 * resolving to @sch and drain in-flight resolvers. 6508 */ 6509 WRITE_ONCE(sch->dead, true); 6510 synchronize_rcu(); 6511 6512 scx_unlink_sched(sch); 6513 6514 /* 6515 * scx_root clearing and cid table retirement must be inside 6516 * cpus_read_lock(). See handle_hotplug(). 6517 */ 6518 cpus_read_lock(); 6519 RCU_INIT_POINTER(scx_root, NULL); 6520 scx_cid_retire_tables(); 6521 cpus_read_unlock(); 6522 6523 /* 6524 * Delete the kobject from the hierarchy synchronously. Otherwise, sysfs 6525 * could observe an object of the same name still in the hierarchy when 6526 * the next scheduler is loaded. 6527 */ 6528 #ifdef CONFIG_EXT_SUB_SCHED 6529 if (sch->sub_kset) 6530 kobject_del(&sch->sub_kset->kobj); 6531 #endif 6532 /* not added if enable failed before scx_sched_sysfs_add() */ 6533 if (sch->kobj.state_in_sysfs) 6534 kobject_del(&sch->kobj); 6535 6536 free_kick_syncs(); 6537 6538 mutex_unlock(&scx_enable_mutex); 6539 6540 WARN_ON_ONCE(scx_set_enable_state(SCX_DISABLED) != SCX_DISABLING); 6541 done: 6542 scx_bypass(sch, false); 6543 } 6544 6545 /** 6546 * scx_propagate_exit_irq_workfn - Claim SCX_EXIT_PARENT on the exiting subtree 6547 * @irq_work: &scx_sched.propagate_exit_irq_work 6548 * 6549 * Queued by scx_claim_exit() after a non-PARENT claim. Claims SCX_EXIT_PARENT 6550 * on each descendant, giving every one its own disable work - most of disabling 6551 * is serialized but ops.exit() can take arbitrarily long and running them in 6552 * separate helper kthreads parallelizes it. No recursion as only non-PARENT 6553 * claims propagate. 6554 */ 6555 static void scx_propagate_exit_irq_workfn(struct irq_work *irq_work) 6556 { 6557 struct scx_sched *sch = container_of(irq_work, struct scx_sched, 6558 propagate_exit_irq_work); 6559 struct scx_sched *pos; 6560 6561 scoped_guard (raw_spinlock_irqsave, &scx_sched_lock) { 6562 scx_for_each_descendant_pre(pos, sch) 6563 scx_disable(pos, SCX_EXIT_PARENT); 6564 } 6565 } 6566 6567 /* 6568 * Claim the exit on @sch. The caller must ensure that the helper kthread work 6569 * is kicked before the current task can be preempted. Once exit_kind is 6570 * claimed, scx_error() can no longer trigger, so if the current task gets 6571 * preempted and the BPF scheduler fails to schedule it back, the helper work 6572 * will never be kicked and the whole system can wedge. 6573 * 6574 * Lock-free and safe to call from any context including NMI. 6575 */ 6576 static bool scx_claim_exit(struct scx_sched *sch, enum scx_exit_kind kind) 6577 { 6578 int none = SCX_EXIT_NONE; 6579 6580 lockdep_assert_preemption_disabled(); 6581 6582 if (WARN_ON_ONCE(kind == SCX_EXIT_NONE || kind == SCX_EXIT_DONE)) 6583 kind = SCX_EXIT_ERROR; 6584 6585 if (!atomic_try_cmpxchg(&sch->exit_kind, &none, kind)) 6586 return false; 6587 6588 if (kind == SCX_EXIT_PARENT) { 6589 /* an ancestor is already sweeping the subtree */ 6590 WRITE_ONCE(sch->aborting, true); 6591 } else { 6592 struct scx_sched *pos; 6593 6594 /* 6595 * CPUs may be live-locked in the dispatch paths of @sch or its 6596 * descendants, which ->aborting breaks. Sweep the subtree 6597 * locklessly so that this works from NMI. smp_store_mb() orders 6598 * each node's ->aborting store before its children are walked - 6599 * either we see a racing scx_link_sched() on ->children or it 6600 * sees ->aborting. 6601 */ 6602 scoped_guard (rcu) { 6603 scx_for_each_descendant_pre(pos, sch) 6604 smp_store_mb(pos->aborting, true); 6605 } 6606 6607 irq_work_queue(&sch->propagate_exit_irq_work); 6608 } 6609 6610 /* fired after ->aborting is set so callbacks can't delay recovery */ 6611 trace_sched_ext_exit(sch, kind); 6612 6613 return true; 6614 } 6615 6616 static void scx_disable_workfn(struct kthread_work *work) 6617 { 6618 struct scx_sched *sch = container_of(work, struct scx_sched, disable_work); 6619 struct scx_exit_info *ei = sch->exit_info; 6620 int kind; 6621 6622 kind = atomic_read(&sch->exit_kind); 6623 while (true) { 6624 if (kind == SCX_EXIT_DONE) /* already disabled? */ 6625 return; 6626 WARN_ON_ONCE(kind == SCX_EXIT_NONE); 6627 if (atomic_try_cmpxchg(&sch->exit_kind, &kind, SCX_EXIT_DONE)) 6628 break; 6629 } 6630 ei->kind = kind; 6631 ei->reason = scx_exit_reason(ei->kind); 6632 6633 if (scx_parent(sch)) 6634 scx_sub_disable(sch); 6635 else 6636 scx_root_disable(sch); 6637 } 6638 6639 static void scx_disable(struct scx_sched *sch, enum scx_exit_kind kind) 6640 { 6641 guard(preempt)(); 6642 if (scx_claim_exit(sch, kind)) 6643 irq_work_queue(&sch->disable_irq_work); 6644 } 6645 6646 /** 6647 * scx_flush_disable_work - flush the disable work and wait for it to finish 6648 * @sch: the scheduler 6649 * 6650 * sch->disable_work might still not queued, causing kthread_flush_work() 6651 * as a noop. Syncing the irq_work first is required to guarantee the 6652 * kthread work has been queued before waiting for it. 6653 */ 6654 void scx_flush_disable_work(struct scx_sched *sch) 6655 { 6656 int kind; 6657 6658 do { 6659 irq_work_sync(&sch->disable_irq_work); 6660 kthread_flush_work(&sch->disable_work); 6661 kind = atomic_read(&sch->exit_kind); 6662 } while (kind != SCX_EXIT_NONE && kind != SCX_EXIT_DONE); 6663 } 6664 6665 static void dump_newline(struct seq_buf *s) 6666 { 6667 trace_sched_ext_dump(""); 6668 6669 /* @s may be zero sized and seq_buf triggers WARN if so */ 6670 if (s->size) 6671 seq_buf_putc(s, '\n'); 6672 } 6673 6674 __printf(2, 3) void scx_dump_line(struct seq_buf *s, const char *fmt, ...) 6675 { 6676 va_list args; 6677 6678 #ifdef CONFIG_TRACEPOINTS 6679 if (trace_sched_ext_dump_enabled()) { 6680 /* protected by scx_dump_lock */ 6681 static char line_buf[SCX_EXIT_MSG_LEN]; 6682 6683 va_start(args, fmt); 6684 vscnprintf(line_buf, sizeof(line_buf), fmt, args); 6685 va_end(args); 6686 6687 trace_call__sched_ext_dump(line_buf); 6688 } 6689 #endif 6690 /* @s may be zero sized and seq_buf triggers WARN if so */ 6691 if (s->size) { 6692 va_start(args, fmt); 6693 seq_buf_vprintf(s, fmt, args); 6694 va_end(args); 6695 6696 seq_buf_putc(s, '\n'); 6697 } 6698 } 6699 6700 static void dump_stack_trace(struct seq_buf *s, const char *prefix, 6701 const unsigned long *bt, unsigned int len) 6702 { 6703 unsigned int i; 6704 6705 for (i = 0; i < len; i++) 6706 scx_dump_line(s, "%s%pS", prefix, (void *)bt[i]); 6707 } 6708 6709 static void ops_dump_init(struct seq_buf *s, const char *prefix) 6710 { 6711 struct scx_dump_data *dd = &scx_dump_data; 6712 6713 lockdep_assert_irqs_disabled(); 6714 6715 dd->cpu = smp_processor_id(); /* allow scx_bpf_dump() */ 6716 dd->first = true; 6717 dd->cursor = 0; 6718 dd->s = s; 6719 dd->prefix = prefix; 6720 } 6721 6722 static void ops_dump_flush(void) 6723 { 6724 struct scx_dump_data *dd = &scx_dump_data; 6725 char *line = dd->buf.line; 6726 6727 if (!dd->cursor) 6728 return; 6729 6730 /* 6731 * There's something to flush and this is the first line. Insert a blank 6732 * line to distinguish ops dump. 6733 */ 6734 if (dd->first) { 6735 dump_newline(dd->s); 6736 dd->first = false; 6737 } 6738 6739 /* 6740 * There may be multiple lines in $line. Scan and emit each line 6741 * separately. 6742 */ 6743 while (true) { 6744 char *end = line; 6745 char c; 6746 6747 while (*end != '\n' && *end != '\0') 6748 end++; 6749 6750 /* 6751 * If $line overflowed, it may not have newline at the end. 6752 * Always emit with a newline. 6753 */ 6754 c = *end; 6755 *end = '\0'; 6756 scx_dump_line(dd->s, "%s%s", dd->prefix, line); 6757 if (c == '\0') 6758 break; 6759 6760 /* move to the next line */ 6761 end++; 6762 if (*end == '\0') 6763 break; 6764 line = end; 6765 } 6766 6767 dd->cursor = 0; 6768 } 6769 6770 static void ops_dump_exit(void) 6771 { 6772 ops_dump_flush(); 6773 scx_dump_data.cpu = -1; 6774 } 6775 6776 static void scx_dump_task(struct scx_sched *sch, struct seq_buf *s, struct scx_dump_ctx *dctx, 6777 struct rq *rq, struct task_struct *p, char marker) 6778 { 6779 static unsigned long bt[SCX_EXIT_BT_LEN]; 6780 struct scx_sched *task_sch = scx_task_sched(p); 6781 const char *own_marker; 6782 char sch_id_buf[32]; 6783 char dsq_id_buf[19] = "(n/a)"; 6784 unsigned long ops_state = atomic_long_read(&p->scx.ops_state); 6785 unsigned int bt_len = 0; 6786 6787 own_marker = task_sch == sch ? "*" : ""; 6788 6789 if (task_sch->level == 0) 6790 scnprintf(sch_id_buf, sizeof(sch_id_buf), "root"); 6791 else 6792 scnprintf(sch_id_buf, sizeof(sch_id_buf), "sub%d-%llu", 6793 task_sch->level, task_sch->ops.sub_cgroup_id); 6794 6795 if (p->scx.dsq) 6796 scnprintf(dsq_id_buf, sizeof(dsq_id_buf), "0x%llx", 6797 (unsigned long long)p->scx.dsq->id); 6798 6799 dump_newline(s); 6800 scx_dump_line(s, " %c%c %s[%d] %s%s %+ldms", 6801 marker, task_state_to_char(p), p->comm, p->pid, own_marker, sch_id_buf, 6802 jiffies_delta_msecs(p->scx.runnable_at, dctx->at_jiffies)); 6803 scx_dump_line(s, " scx_state/flags=%u/0x%x dsq_flags=0x%x ops_state/qseq=%lu/%lu", 6804 scx_get_task_state(p) >> SCX_TASK_STATE_SHIFT, 6805 p->scx.flags & ~SCX_TASK_STATE_MASK, p->scx.dsq_flags, 6806 ops_state & SCX_OPSS_STATE_MASK, ops_state >> SCX_OPSS_QSEQ_SHIFT); 6807 scx_dump_line(s, " sticky/holding_cpu=%d/%d dsq_id=%s", 6808 p->scx.sticky_cpu, p->scx.holding_cpu, dsq_id_buf); 6809 scx_dump_line(s, " dsq_vtime=%llu slice=%llu weight=%u", 6810 p->scx.dsq_vtime, p->scx.slice, p->scx.weight); 6811 scx_dump_line(s, " cpus=%*pb no_mig=%u", cpumask_pr_args(p->cpus_ptr), 6812 p->migration_disabled); 6813 6814 if (SCX_HAS_OP(sch, dump_task)) { 6815 ops_dump_init(s, " "); 6816 SCX_CALL_OP(sch, dump_task, rq, dctx, p); 6817 ops_dump_exit(); 6818 } 6819 6820 #ifdef CONFIG_STACKTRACE 6821 bt_len = stack_trace_save_tsk(p, bt, SCX_EXIT_BT_LEN, 1); 6822 #endif 6823 if (bt_len) { 6824 dump_newline(s); 6825 dump_stack_trace(s, " ", bt, bt_len); 6826 } 6827 } 6828 6829 static void scx_dump_cpu(struct scx_sched *sch, struct seq_buf *s, 6830 struct scx_dump_ctx *dctx, int cpu, 6831 bool dump_all_tasks) 6832 { 6833 struct rq *rq = cpu_rq(cpu); 6834 struct scx_sched_pcpu *pcpu = per_cpu_ptr(sch->pcpu, cpu); 6835 struct rq_flags rf; 6836 struct task_struct *p; 6837 struct seq_buf ns; 6838 size_t avail, used; 6839 char *buf; 6840 bool idle; 6841 6842 rq_lock_irqsave(rq, &rf); 6843 6844 idle = list_empty(&rq->scx.runnable_list) && 6845 rq->curr->sched_class == &idle_sched_class; 6846 6847 if (idle && !SCX_HAS_OP(sch, dump_cpu)) 6848 goto next; 6849 6850 /* 6851 * We don't yet know whether ops.dump_cpu() will produce output 6852 * and we may want to skip the default CPU dump if it doesn't. 6853 * Use a nested seq_buf to generate the standard dump so that we 6854 * can decide whether to commit later. 6855 */ 6856 avail = seq_buf_get_buf(s, &buf); 6857 seq_buf_init(&ns, buf, avail); 6858 6859 dump_newline(&ns); 6860 scx_dump_line(&ns, "CPU %-4d: nr_run=%u flags=0x%x cpu_rel=%d ops_qseq=%lu ksync=%lu", 6861 cpu, rq->scx.nr_running, rq->scx.flags, rq->scx.cpu_released, 6862 rq->scx.ops_qseq, rq->scx.kick_sync); 6863 scx_rescue_dump(&ns, rq); 6864 scx_dump_line(&ns, " curr=%s[%d] class=%ps", 6865 rq->curr->comm, rq->curr->pid, rq->curr->sched_class); 6866 if (!cpumask_empty(pcpu->cpus_to_kick)) 6867 scx_dump_line(&ns, " cpus_to_kick : %*pb", 6868 cpumask_pr_args(pcpu->cpus_to_kick)); 6869 if (!cpumask_empty(pcpu->cpus_to_kick_if_idle)) 6870 scx_dump_line(&ns, " idle_to_kick : %*pb", 6871 cpumask_pr_args(pcpu->cpus_to_kick_if_idle)); 6872 if (!cpumask_empty(pcpu->cpus_to_preempt)) 6873 scx_dump_line(&ns, " cpus_to_preempt: %*pb", 6874 cpumask_pr_args(pcpu->cpus_to_preempt)); 6875 if (!cpumask_empty(pcpu->cpus_to_wait)) 6876 scx_dump_line(&ns, " cpus_to_wait : %*pb", 6877 cpumask_pr_args(pcpu->cpus_to_wait)); 6878 if (!cpumask_empty(rq->scx.cpus_to_sync)) 6879 scx_dump_line(&ns, " cpus_to_sync : %*pb", 6880 cpumask_pr_args(rq->scx.cpus_to_sync)); 6881 6882 used = seq_buf_used(&ns); 6883 if (SCX_HAS_OP(sch, dump_cpu)) { 6884 ops_dump_init(&ns, " "); 6885 SCX_CALL_OP(sch, dump_cpu, rq, dctx, scx_cpu_arg(cpu), idle); 6886 ops_dump_exit(); 6887 } 6888 6889 /* 6890 * If idle && nothing generated by ops.dump_cpu(), there's 6891 * nothing interesting. Skip. 6892 */ 6893 if (idle && used == seq_buf_used(&ns)) 6894 goto next; 6895 6896 /* 6897 * $s may already have overflowed when $ns was created. If so, 6898 * calling commit on it will trigger BUG. 6899 */ 6900 if (avail) { 6901 seq_buf_commit(s, seq_buf_used(&ns)); 6902 if (seq_buf_has_overflowed(&ns)) 6903 seq_buf_set_overflow(s); 6904 } 6905 6906 if (rq->curr->sched_class == &ext_sched_class && 6907 (dump_all_tasks || scx_task_on_sched(sch, rq->curr))) 6908 scx_dump_task(sch, s, dctx, rq, rq->curr, '*'); 6909 6910 list_for_each_entry(p, &rq->scx.runnable_list, scx.runnable_node) 6911 if (dump_all_tasks || scx_task_on_sched(sch, p)) 6912 scx_dump_task(sch, s, dctx, rq, p, ' '); 6913 next: 6914 rq_unlock_irqrestore(rq, &rf); 6915 } 6916 6917 /* 6918 * Dump scheduler state. If @dump_all_tasks is true, dump all tasks regardless 6919 * of which scheduler they belong to. If false, only dump tasks owned by @sch. 6920 * For SysRq-D dumps, @dump_all_tasks=false since all schedulers are dumped 6921 * separately. For error dumps, @dump_all_tasks=true since only the failing 6922 * scheduler is dumped. 6923 */ 6924 static void scx_dump_state(struct scx_sched *sch, struct scx_exit_info *ei, 6925 size_t dump_len, bool dump_all_tasks) 6926 { 6927 static const char trunc_marker[] = "\n\n~~~~ TRUNCATED ~~~~\n"; 6928 struct scx_dump_ctx dctx = { 6929 .kind = ei->kind, 6930 .exit_code = ei->exit_code, 6931 .reason = ei->reason, 6932 .at_ns = ktime_get_ns(), 6933 .at_jiffies = jiffies, 6934 }; 6935 struct seq_buf s; 6936 struct scx_event_stats events; 6937 int cpu; 6938 6939 guard(raw_spinlock_irqsave)(&scx_dump_lock); 6940 6941 if (sch->dump_disabled) 6942 return; 6943 6944 seq_buf_init(&s, ei->dump, dump_len); 6945 6946 #ifdef CONFIG_EXT_SUB_SCHED 6947 if (sch->level == 0) 6948 scx_dump_line(&s, "%s: root", sch->ops.name); 6949 else 6950 scx_dump_line(&s, "%s: sub%d-%llu %s", 6951 sch->ops.name, sch->level, sch->ops.sub_cgroup_id, 6952 sch->cgrp_path); 6953 #endif 6954 if (ei->kind == SCX_EXIT_NONE) { 6955 scx_dump_line(&s, "Debug dump triggered by %s", ei->reason); 6956 } else { 6957 if (ei->exit_cpu >= 0) 6958 scx_dump_line(&s, "%s[%d] triggered exit kind %d on CPU %d:", 6959 current->comm, current->pid, ei->kind, 6960 ei->exit_cpu); 6961 else 6962 scx_dump_line(&s, "%s[%d] triggered exit kind %d:", 6963 current->comm, current->pid, ei->kind); 6964 scx_dump_line(&s, " %s (%s)", ei->reason, ei->msg); 6965 dump_newline(&s); 6966 scx_dump_line(&s, "Backtrace:"); 6967 dump_stack_trace(&s, " ", ei->bt, ei->bt_len); 6968 } 6969 6970 if (SCX_HAS_OP(sch, dump)) { 6971 ops_dump_init(&s, ""); 6972 SCX_CALL_OP(sch, dump, NULL, &dctx); 6973 ops_dump_exit(); 6974 } 6975 6976 dump_newline(&s); 6977 scx_dump_line(&s, "CPU states"); 6978 scx_dump_line(&s, "----------"); 6979 6980 /* 6981 * Dump stalled CPUs first so they aren't lost to dump truncation, then 6982 * walk the rest in order. Fall back to exit_cpu if no stall mask set. 6983 */ 6984 if (!cpumask_empty(sch->stall_cpus)) { 6985 for_each_cpu(cpu, sch->stall_cpus) 6986 scx_dump_cpu(sch, &s, &dctx, cpu, dump_all_tasks); 6987 for_each_possible_cpu(cpu) { 6988 if (!cpumask_test_cpu(cpu, sch->stall_cpus)) 6989 scx_dump_cpu(sch, &s, &dctx, cpu, dump_all_tasks); 6990 } 6991 } else { 6992 if (ei->exit_cpu >= 0) 6993 scx_dump_cpu(sch, &s, &dctx, ei->exit_cpu, dump_all_tasks); 6994 for_each_possible_cpu(cpu) { 6995 if (cpu != ei->exit_cpu) 6996 scx_dump_cpu(sch, &s, &dctx, cpu, dump_all_tasks); 6997 } 6998 } 6999 7000 dump_newline(&s); 7001 scx_dump_line(&s, "Event counters"); 7002 scx_dump_line(&s, "--------------"); 7003 7004 scx_read_events(sch, &events); 7005 #define SCX_EVENT(name) scx_dump_event(s, &events, name) 7006 SCX_EVENTS_LIST(SCX_EVENT); 7007 #undef SCX_EVENT 7008 7009 if (seq_buf_has_overflowed(&s) && dump_len >= sizeof(trunc_marker)) 7010 memcpy(ei->dump + dump_len - sizeof(trunc_marker), 7011 trunc_marker, sizeof(trunc_marker)); 7012 } 7013 7014 static void scx_disable_irq_workfn(struct irq_work *irq_work) 7015 { 7016 struct scx_sched *sch = container_of(irq_work, struct scx_sched, disable_irq_work); 7017 struct scx_exit_info *ei = sch->exit_info; 7018 7019 if (ei->kind >= SCX_EXIT_ERROR) 7020 scx_dump_state(sch, ei, sch->ops.exit_dump_len, true); 7021 7022 kthread_queue_work(sch->helper, &sch->disable_work); 7023 } 7024 7025 /* finish exit_info and kick the disable work, ei->msg must already be set */ 7026 static void scx_finish_exit(struct scx_sched *sch, enum scx_exit_kind kind, 7027 s64 exit_code, s32 exit_cpu) 7028 { 7029 struct scx_exit_info *ei = sch->exit_info; 7030 7031 ei->exit_code = exit_code; 7032 #ifdef CONFIG_STACKTRACE 7033 /* 7034 * stack_trace_save()'s NMI-safety is arch-dependent and undocumented. 7035 * Skip the backtrace when exiting from NMI. 7036 */ 7037 if (kind >= SCX_EXIT_ERROR && !in_nmi()) 7038 ei->bt_len = stack_trace_save(ei->bt, SCX_EXIT_BT_LEN, 1); 7039 #endif 7040 /* 7041 * Set ei->kind and ->reason for scx_dump_state(). They'll be set again 7042 * in scx_disable_workfn(). 7043 */ 7044 ei->kind = kind; 7045 ei->reason = scx_exit_reason(ei->kind); 7046 ei->exit_cpu = exit_cpu; 7047 7048 irq_work_queue(&sch->disable_irq_work); 7049 } 7050 7051 bool scx_vexit(struct scx_sched *sch, 7052 enum scx_exit_kind kind, s64 exit_code, s32 exit_cpu, 7053 const char *fmt, va_list args) 7054 { 7055 struct scx_exit_info *ei = sch->exit_info; 7056 7057 guard(preempt)(); 7058 7059 if (!scx_claim_exit(sch, kind)) 7060 return false; 7061 7062 vscnprintf(ei->msg, SCX_EXIT_MSG_LEN, fmt, args); 7063 7064 scx_finish_exit(sch, kind, exit_code, exit_cpu); 7065 return true; 7066 } 7067 7068 static int alloc_kick_syncs(void) 7069 { 7070 int cpu; 7071 7072 /* 7073 * Allocate per-CPU arrays sized by nr_cpu_ids. Use kvzalloc as size 7074 * can exceed percpu allocator limits on large machines. 7075 */ 7076 for_each_possible_cpu(cpu) { 7077 struct scx_kick_syncs __rcu **ksyncs = per_cpu_ptr(&scx_kick_syncs, cpu); 7078 struct scx_kick_syncs *new_ksyncs; 7079 7080 WARN_ON_ONCE(rcu_access_pointer(*ksyncs)); 7081 7082 new_ksyncs = kvzalloc_node(struct_size(new_ksyncs, syncs, nr_cpu_ids), 7083 GFP_KERNEL, cpu_to_node(cpu)); 7084 if (!new_ksyncs) { 7085 free_kick_syncs(); 7086 return -ENOMEM; 7087 } 7088 7089 rcu_assign_pointer(*ksyncs, new_ksyncs); 7090 } 7091 7092 return 0; 7093 } 7094 7095 static void free_pnode(struct scx_sched_pnode *pnode) 7096 { 7097 if (!pnode) 7098 return; 7099 exit_dsq(&pnode->global_dsq); 7100 kfree(pnode); 7101 } 7102 7103 static struct scx_sched_pnode *alloc_pnode(struct scx_sched *sch, int node) 7104 { 7105 struct scx_sched_pnode *pnode; 7106 7107 pnode = kzalloc_node(sizeof(*pnode), GFP_KERNEL, node); 7108 if (!pnode) 7109 return NULL; 7110 7111 if (scx_init_dsq(&pnode->global_dsq, SCX_DSQ_GLOBAL, sch)) { 7112 kfree(pnode); 7113 return NULL; 7114 } 7115 7116 return pnode; 7117 } 7118 7119 /* 7120 * Allocate and initialize a new scx_sched. @cgrp's reference is always 7121 * consumed whether the function succeeds or fails. 7122 */ 7123 struct scx_sched *scx_alloc_and_add_sched(struct scx_enable_cmd *cmd, 7124 struct cgroup *cgrp, 7125 struct scx_sched *parent) 7126 { 7127 struct sched_ext_ops *ops = cmd->ops; 7128 struct scx_sched *sch; 7129 s32 level = parent ? parent->level + 1 : 0; 7130 s32 node, cpu, ret, bypass_fail_cpu = nr_cpu_ids; 7131 7132 sch = kzalloc_flex(*sch, ancestors, level + 1); 7133 if (!sch) { 7134 ret = -ENOMEM; 7135 goto err_put_cgrp; 7136 } 7137 7138 sch->exit_info = alloc_exit_info(ops->exit_dump_len); 7139 if (!sch->exit_info) { 7140 ret = -ENOMEM; 7141 goto err_free_sch; 7142 } 7143 7144 ret = rhashtable_init(&sch->dsq_hash, &dsq_hash_params); 7145 if (ret < 0) 7146 goto err_free_ei; 7147 7148 sch->pnode = kzalloc_objs(sch->pnode[0], nr_node_ids); 7149 if (!sch->pnode) { 7150 ret = -ENOMEM; 7151 goto err_free_hash; 7152 } 7153 7154 for_each_node_state(node, N_POSSIBLE) { 7155 sch->pnode[node] = alloc_pnode(sch, node); 7156 if (!sch->pnode[node]) { 7157 ret = -ENOMEM; 7158 goto err_free_pnode; 7159 } 7160 } 7161 7162 sch->dsp_max_batch = ops->dispatch_max_batch ?: SCX_DSP_DFL_MAX_BATCH; 7163 sch->pcpu = __alloc_percpu(struct_size_t(struct scx_sched_pcpu, 7164 dsp_ctx.buf, sch->dsp_max_batch), 7165 __alignof__(struct scx_sched_pcpu)); 7166 if (!sch->pcpu) { 7167 ret = -ENOMEM; 7168 goto err_free_pnode; 7169 } 7170 7171 for_each_possible_cpu(cpu) { 7172 ret = scx_init_dsq(scx_bypass_dsq(sch, cpu), SCX_DSQ_BYPASS, sch); 7173 if (ret) { 7174 bypass_fail_cpu = cpu; 7175 goto err_free_pcpu; 7176 } 7177 } 7178 7179 for_each_possible_cpu(cpu) { 7180 struct scx_sched_pcpu *pcpu = per_cpu_ptr(sch->pcpu, cpu); 7181 7182 node = cpu_to_node(cpu); 7183 pcpu->sch = sch; 7184 INIT_LIST_HEAD(&pcpu->deferred_reenq_local.node); 7185 #ifdef CONFIG_EXT_SUB_SCHED 7186 init_llist_node(&pcpu->ecaps_to_sync_node); 7187 #endif 7188 INIT_LIST_HEAD(&pcpu->to_kick_node); 7189 if (!zalloc_cpumask_var_node(&pcpu->cpus_to_kick, GFP_KERNEL, node) || 7190 !zalloc_cpumask_var_node(&pcpu->cpus_to_kick_if_idle, GFP_KERNEL, node) || 7191 !zalloc_cpumask_var_node(&pcpu->cpus_to_preempt, GFP_KERNEL, node) || 7192 !zalloc_cpumask_var_node(&pcpu->cpus_to_wait, GFP_KERNEL, node)) { 7193 ret = -ENOMEM; 7194 goto err_free_pcpu; 7195 } 7196 } 7197 7198 sch->helper = kthread_run_worker(0, "sched_ext_helper"); 7199 if (IS_ERR(sch->helper)) { 7200 ret = PTR_ERR(sch->helper); 7201 goto err_free_pcpu; 7202 } 7203 7204 sched_set_fifo(sch->helper->task); 7205 7206 if (parent) 7207 memcpy(sch->ancestors, parent->ancestors, 7208 level * sizeof(parent->ancestors[0])); 7209 sch->ancestors[level] = sch; 7210 sch->level = level; 7211 sch->id = atomic64_inc_return(&scx_sched_id_cursor); 7212 7213 if (ops->timeout_ms) 7214 sch->watchdog_timeout = msecs_to_jiffies(ops->timeout_ms); 7215 else 7216 sch->watchdog_timeout = SCX_WATCHDOG_MAX_TIMEOUT; 7217 7218 sch->slice_dfl = SCX_SLICE_DFL; 7219 atomic_set(&sch->exit_kind, SCX_EXIT_NONE); 7220 sch->disable_irq_work = IRQ_WORK_INIT_HARD(scx_disable_irq_workfn); 7221 sch->propagate_exit_irq_work = IRQ_WORK_INIT_HARD(scx_propagate_exit_irq_workfn); 7222 kthread_init_work(&sch->disable_work, scx_disable_workfn); 7223 timer_setup(&sch->bypass_lb_timer, scx_bypass_lb_timerfn, 0); 7224 7225 if (!alloc_cpumask_var(&sch->bypass_lb_donee_cpumask, GFP_KERNEL)) { 7226 ret = -ENOMEM; 7227 goto err_stop_helper; 7228 } 7229 if (!alloc_cpumask_var(&sch->bypass_lb_resched_cpumask, GFP_KERNEL)) { 7230 ret = -ENOMEM; 7231 goto err_free_lb_cpumask; 7232 } 7233 if (!zalloc_cpumask_var(&sch->stall_cpus, GFP_KERNEL)) { 7234 ret = -ENOMEM; 7235 goto err_free_lb_resched_cpumask; 7236 } 7237 /* 7238 * Copy ops through the right union view. For cid-form the source is 7239 * struct sched_ext_ops_cid which lacks the trailing cpu_acquire/ 7240 * cpu_release; those stay zero from kzalloc. 7241 */ 7242 if (cmd->is_cid_type) { 7243 sch->ops_cid = *cmd->ops_cid; 7244 sch->is_cid_type = true; 7245 } else { 7246 sch->ops = *cmd->ops; 7247 } 7248 7249 #ifdef CONFIG_EXT_SUB_SCHED 7250 char *buf = kzalloc(PATH_MAX, GFP_KERNEL); 7251 if (!buf) { 7252 ret = -ENOMEM; 7253 goto err_free_lb_resched; 7254 } 7255 cgroup_path(cgrp, buf, PATH_MAX); 7256 sch->cgrp_path = kstrdup(buf, GFP_KERNEL); 7257 kfree(buf); 7258 if (!sch->cgrp_path) { 7259 ret = -ENOMEM; 7260 goto err_free_lb_resched; 7261 } 7262 7263 sch->cgrp = cgrp; 7264 INIT_LIST_HEAD(&sch->children); 7265 INIT_LIST_HEAD(&sch->sibling); 7266 #endif /* CONFIG_EXT_SUB_SCHED */ 7267 7268 /* 7269 * Publishing makes @sch visible to scx_prog_sched() readers. Failure 7270 * paths after this point must free @sch through kobject_put() whose 7271 * release path defers the actual freeing by an RCU grace period. 7272 */ 7273 rcu_assign_pointer(ops->priv, sch); 7274 7275 sch->kobj.kset = scx_kset; 7276 INIT_LIST_HEAD(&sch->all); 7277 7278 #ifdef CONFIG_EXT_SUB_SCHED 7279 if (parent) { 7280 /* 7281 * Pin @parent for @sch's lifetime. The kobject hierarchy pins 7282 * it only via @parent->sub_kset, which is dropped during 7283 * disable. Released in scx_sched_free_rcu_work(). 7284 */ 7285 kobject_get(&parent->kobj); 7286 } 7287 #endif /* CONFIG_EXT_SUB_SCHED */ 7288 7289 /* 7290 * Init the kobj but don't add to sysfs yet. The enable path calls 7291 * scx_sched_sysfs_add() once @sch's sysfs-visible state is initialized. 7292 */ 7293 kobject_init(&sch->kobj, &scx_ktype); 7294 7295 /* 7296 * Consume the arena_map ref bpf_scx_reg_cid() took. Defer to here so 7297 * earlier failure paths leave cmd->arena_map set and bpf_scx_reg_cid 7298 * drops the ref. After this point, sch owns the ref and any cleanup 7299 * runs through scx_sched_free_rcu_work() which puts it. 7300 */ 7301 sch->arena_map = cmd->arena_map; 7302 /* BPF arena is only available on MMU && 64BIT */ 7303 #if defined(CONFIG_MMU) && defined(CONFIG_64BIT) 7304 if (sch->arena_map) 7305 sch->arena_kern_base = bpf_arena_map_kern_vm_start(sch->arena_map); 7306 #endif 7307 cmd->arena_map = NULL; 7308 return sch; 7309 7310 #ifdef CONFIG_EXT_SUB_SCHED 7311 err_free_lb_resched: 7312 free_cpumask_var(sch->stall_cpus); 7313 #endif 7314 err_free_lb_resched_cpumask: 7315 free_cpumask_var(sch->bypass_lb_resched_cpumask); 7316 err_free_lb_cpumask: 7317 free_cpumask_var(sch->bypass_lb_donee_cpumask); 7318 err_stop_helper: 7319 kthread_destroy_worker(sch->helper); 7320 err_free_pcpu: 7321 for_each_possible_cpu(cpu) { 7322 struct scx_sched_pcpu *pcpu = per_cpu_ptr(sch->pcpu, cpu); 7323 7324 free_cpumask_var(pcpu->cpus_to_kick); 7325 free_cpumask_var(pcpu->cpus_to_kick_if_idle); 7326 free_cpumask_var(pcpu->cpus_to_preempt); 7327 free_cpumask_var(pcpu->cpus_to_wait); 7328 } 7329 for_each_possible_cpu(cpu) { 7330 if (cpu == bypass_fail_cpu) 7331 break; 7332 exit_dsq(scx_bypass_dsq(sch, cpu)); 7333 } 7334 free_percpu(sch->pcpu); 7335 err_free_pnode: 7336 for_each_node_state(node, N_POSSIBLE) 7337 free_pnode(sch->pnode[node]); 7338 kfree(sch->pnode); 7339 err_free_hash: 7340 rhashtable_free_and_destroy(&sch->dsq_hash, NULL, NULL); 7341 err_free_ei: 7342 free_exit_info(sch->exit_info); 7343 err_free_sch: 7344 kfree(sch); 7345 err_put_cgrp: 7346 #ifdef CONFIG_EXT_SUB_SCHED 7347 cgroup_put(cgrp); 7348 #endif 7349 return ERR_PTR(ret); 7350 } 7351 7352 /* 7353 * Add @sch's kobject to sysfs, and create its sub_kset if the scheduler 7354 * implements ops.sub_attach. Called by the enable workfns once @sch's 7355 * sysfs-visible state is initialized. 7356 */ 7357 int scx_sched_sysfs_add(struct scx_sched *sch) 7358 { 7359 #ifdef CONFIG_EXT_SUB_SCHED 7360 struct scx_sched *parent = scx_parent(sch); 7361 int ret; 7362 7363 if (parent) 7364 ret = kobject_add(&sch->kobj, &parent->sub_kset->kobj, 7365 "sub-%llu", cgroup_id(sch_cgroup(sch))); 7366 else 7367 ret = kobject_add(&sch->kobj, NULL, "root"); 7368 if (ret < 0) 7369 return ret; 7370 7371 if (sch->ops.sub_attach) { 7372 sch->sub_kset = kset_create_and_add("sub", NULL, &sch->kobj); 7373 if (!sch->sub_kset) 7374 return -ENOMEM; 7375 } 7376 return 0; 7377 #else 7378 return kobject_add(&sch->kobj, NULL, "root"); 7379 #endif 7380 } 7381 7382 static int check_hotplug_seq(struct scx_sched *sch, 7383 const struct sched_ext_ops *ops) 7384 { 7385 unsigned long long global_hotplug_seq; 7386 7387 /* 7388 * If a hotplug event has occurred between when a scheduler was 7389 * initialized, and when we were able to attach, exit and notify user 7390 * space about it. 7391 */ 7392 if (ops->hotplug_seq) { 7393 global_hotplug_seq = atomic_long_read(&scx_hotplug_seq); 7394 if (ops->hotplug_seq != global_hotplug_seq) { 7395 scx_exit(sch, SCX_EXIT_UNREG_KERN, 7396 SCX_ECODE_ACT_RESTART | SCX_ECODE_RSN_HOTPLUG, 7397 "expected hotplug seq %llu did not match actual %llu", 7398 ops->hotplug_seq, global_hotplug_seq); 7399 return -EBUSY; 7400 } 7401 } 7402 7403 return 0; 7404 } 7405 7406 int scx_validate_ops(struct scx_sched *sch, const struct sched_ext_ops *ops) 7407 { 7408 /* 7409 * It doesn't make sense to specify the SCX_OPS_ENQ_LAST flag if the 7410 * ops.enqueue() callback isn't implemented. 7411 */ 7412 if ((ops->flags & SCX_OPS_ENQ_LAST) && !ops->enqueue) { 7413 scx_error(sch, "SCX_OPS_ENQ_LAST requires ops.enqueue() to be implemented"); 7414 return -EINVAL; 7415 } 7416 7417 /* 7418 * SCX_OPS_TID_TO_TASK is enabled by the root scheduler. A sub-sched 7419 * may set it to declare a dependency; reject if the root hasn't 7420 * enabled it. 7421 */ 7422 if ((ops->flags & SCX_OPS_TID_TO_TASK) && scx_parent(sch) && 7423 !(sch->ancestors[0]->ops.flags & SCX_OPS_TID_TO_TASK)) { 7424 scx_error(sch, "SCX_OPS_TID_TO_TASK requires root scheduler to enable it"); 7425 return -EINVAL; 7426 } 7427 7428 /* 7429 * SCX_OPS_BUILTIN_IDLE_PER_NODE requires built-in CPU idle 7430 * selection policy to be enabled. 7431 */ 7432 if ((ops->flags & SCX_OPS_BUILTIN_IDLE_PER_NODE) && 7433 (ops->update_idle && !(ops->flags & SCX_OPS_KEEP_BUILTIN_IDLE))) { 7434 scx_error(sch, "SCX_OPS_BUILTIN_IDLE_PER_NODE requires CPU idle selection enabled"); 7435 return -EINVAL; 7436 } 7437 7438 /* 7439 * cid-form's struct is shorter and doesn't include the cpu_acquire / 7440 * cpu_release tail; reading those fields off a cid-form @ops would 7441 * run past the BPF allocation. Skip for cid-form. 7442 */ 7443 if (!sch->is_cid_type && (ops->cpu_acquire || ops->cpu_release)) 7444 pr_warn_ratelimited("ops->cpu_acquire/release() are deprecated, use sched_switch TP instead\n"); 7445 7446 /* 7447 * Sub-scheduler support is tied to the cid-form struct_ops. A sub-sched 7448 * attaches through a cid-form-only interface (sub_attach/sub_detach), 7449 * and a root that accepts sub-scheds must expose cid-form state to 7450 * them. Reject cpu-form schedulers on either side. 7451 */ 7452 if (!sch->is_cid_type) { 7453 if (scx_parent(sch)) { 7454 scx_error(sch, "sub-sched requires cid-form struct_ops"); 7455 return -EINVAL; 7456 } 7457 if (ops->sub_attach || ops->sub_detach) { 7458 scx_error(sch, "sub_attach/sub_detach requires cid-form struct_ops"); 7459 return -EINVAL; 7460 } 7461 } 7462 7463 return 0; 7464 } 7465 7466 static void scx_root_enable_workfn(struct kthread_work *work) 7467 { 7468 struct scx_enable_cmd *cmd = container_of(work, struct scx_enable_cmd, work); 7469 struct sched_ext_ops *ops = cmd->ops; 7470 struct cgroup *cgrp = root_cgroup(); 7471 struct scx_sched *sch; 7472 struct scx_task_iter sti; 7473 struct task_struct *p; 7474 int i, cpu, ret; 7475 7476 mutex_lock(&scx_enable_mutex); 7477 7478 if (scx_enable_state() != SCX_DISABLED) { 7479 ret = -EBUSY; 7480 goto err_unlock; 7481 } 7482 7483 /* 7484 * @ops->priv binds @ops to its scx_sched instance. It is set here by 7485 * scx_alloc_and_add_sched() and cleared at the tail of bpf_scx_unreg(), 7486 * which runs after scx_root_disable() has dropped scx_enable_mutex. If 7487 * it's still non-NULL here, a previous attachment on @ops has not 7488 * finished tearing down; proceeding would let the in-flight unreg's 7489 * RCU_INIT_POINTER(NULL) clobber the @ops->priv we are about to assign. 7490 */ 7491 if (rcu_access_pointer(ops->priv)) { 7492 ret = -EBUSY; 7493 goto err_unlock; 7494 } 7495 7496 ret = alloc_kick_syncs(); 7497 if (ret) 7498 goto err_unlock; 7499 7500 if (ops->flags & SCX_OPS_TID_TO_TASK) { 7501 ret = rhashtable_init(&scx_tid_hash, &scx_tid_hash_params); 7502 if (ret) 7503 goto err_free_ksyncs; 7504 } 7505 7506 #ifdef CONFIG_EXT_SUB_SCHED 7507 cgroup_get(cgrp); 7508 #endif 7509 sch = scx_alloc_and_add_sched(cmd, cgrp, NULL); 7510 if (IS_ERR(sch)) { 7511 ret = PTR_ERR(sch); 7512 goto err_free_tid_hash; 7513 } 7514 7515 if (sch->is_cid_type) 7516 static_branch_enable(&__scx_is_cid_type); 7517 7518 /* 7519 * Transition to ENABLING and clear exit info to arm the disable path. 7520 * Failure triggers full disabling from here on. 7521 */ 7522 WARN_ON_ONCE(scx_set_enable_state(SCX_ENABLING) != SCX_DISABLED); 7523 WARN_ON_ONCE(scx_root); 7524 7525 atomic_long_set(&scx_nr_rejected, 0); 7526 7527 for_each_possible_cpu(cpu) { 7528 struct rq *rq = cpu_rq(cpu); 7529 7530 rq->scx.local_dsq.sched = sch; 7531 rq->scx.cpuperf_target = SCX_CPUPERF_ONE; 7532 } 7533 7534 scx_discard_stale_ecaps_syncs(); 7535 scx_rescue_set_knobs(sch); 7536 7537 /* 7538 * Keep CPUs stable during enable so that the BPF scheduler can track 7539 * online CPUs by watching ->on/offline_cpu() after ->init(). 7540 */ 7541 cpus_read_lock(); 7542 7543 /* 7544 * Build the cid mapping into a private under-construction set. It 7545 * becomes visible to readers only through scx_cid_publish_tables() once 7546 * ops.init_cids() has finalized the layout. 7547 */ 7548 ret = scx_cid_init(sch); 7549 if (ret) { 7550 cpus_read_unlock(); 7551 goto err_disable; 7552 } 7553 7554 /* 7555 * Make the scheduler instance visible. Must be inside cpus_read_lock(). 7556 * See handle_hotplug(). 7557 */ 7558 rcu_assign_pointer(scx_root, sch); 7559 7560 ret = scx_link_sched(sch); 7561 if (ret) { 7562 cpus_read_unlock(); 7563 goto err_disable; 7564 } 7565 7566 scx_idle_enable(ops); 7567 7568 /* 7569 * A cid-form scheduler finalizes its cid layout in ops.init_cids(), 7570 * which may call scx_bpf_cid_override(). Run it before the caps and 7571 * shard state are built so the final layout is in effect. 7572 */ 7573 if (sch->is_cid_type && sch->ops_cid.init_cids) { 7574 ret = SCX_CALL_OP_RET(sch, init_cids, NULL); 7575 if (ret) { 7576 ret = scx_ops_sanitize_err(sch, "init_cids", ret); 7577 cpus_read_unlock(); 7578 scx_error(sch, "ops.init_cids() failed (%d)", ret); 7579 goto err_disable; 7580 } 7581 } 7582 7583 /* the cid layout is final, expose it to readers */ 7584 scx_cid_publish_tables(); 7585 7586 ret = scx_arena_pool_init(sch); 7587 if (ret) { 7588 cpus_read_unlock(); 7589 goto err_disable; 7590 } 7591 7592 ret = scx_set_cmask_scratch_alloc(sch); 7593 if (ret) { 7594 cpus_read_unlock(); 7595 goto err_disable; 7596 } 7597 7598 ret = scx_alloc_pshards(sch); 7599 if (ret) { 7600 cpus_read_unlock(); 7601 goto err_disable; 7602 } 7603 7604 scx_init_root_caps(sch); 7605 7606 /* the cid caps and shards are live now, so ops.init() can query them */ 7607 if (sch->ops.init) { 7608 ret = SCX_CALL_OP_RET(sch, init, NULL); 7609 if (ret) { 7610 ret = scx_ops_sanitize_err(sch, "init", ret); 7611 cpus_read_unlock(); 7612 scx_error(sch, "ops.init() failed (%d)", ret); 7613 goto err_disable; 7614 } 7615 sch->exit_info->flags |= SCX_EFLAG_INITIALIZED; 7616 } 7617 7618 ret = scx_sched_sysfs_add(sch); 7619 if (ret) { 7620 cpus_read_unlock(); 7621 goto err_disable; 7622 } 7623 7624 for (i = SCX_OPI_CPU_HOTPLUG_BEGIN; i < SCX_OPI_CPU_HOTPLUG_END; i++) 7625 if (((void (**)(void))ops)[i]) 7626 set_bit(i, sch->has_op); 7627 7628 ret = check_hotplug_seq(sch, ops); 7629 if (ret) { 7630 cpus_read_unlock(); 7631 goto err_disable; 7632 } 7633 scx_idle_update_selcpu_topology(ops); 7634 7635 cpus_read_unlock(); 7636 7637 ret = scx_validate_ops(sch, ops); 7638 if (ret) 7639 goto err_disable; 7640 7641 /* 7642 * Attach the ext_server bandwidth reservation before anything is 7643 * committed so that we can fail the enable if the root domain cannot 7644 * accommodate it. The matching fair_server detach is deferred to the 7645 * tail of this function, after the switch is fully committed and can no 7646 * longer fail. 7647 * 7648 * On failure, err_disable funnels into scx_root_disable() which 7649 * detaches ext_server, so partially-attached state is cleaned up 7650 * automatically. 7651 */ 7652 for_each_possible_cpu(cpu) { 7653 struct rq *rq = cpu_rq(cpu); 7654 7655 scoped_guard(rq_lock_irqsave, rq) { 7656 update_rq_clock(rq); 7657 ret = dl_server_attach_bw(&rq->ext_server); 7658 } 7659 if (ret) { 7660 pr_warn("sched_ext: failed to attach ext_server on CPU %d (%d)\n", 7661 cpu, ret); 7662 goto err_disable; 7663 } 7664 } 7665 7666 /* 7667 * Once __scx_enabled is set, %current can be switched to SCX anytime. 7668 * This can lead to stalls as some BPF schedulers (e.g. userspace 7669 * scheduling) may not function correctly before all tasks are switched. 7670 * Init in bypass mode to guarantee forward progress. 7671 */ 7672 scx_bypass(sch, true); 7673 7674 for (i = SCX_OPI_NORMAL_BEGIN; i < SCX_OPI_NORMAL_END; i++) 7675 if (((void (**)(void))ops)[i]) 7676 set_bit(i, sch->has_op); 7677 7678 if (sch->ops.cpu_acquire || sch->ops.cpu_release) 7679 sch->ops.flags |= SCX_OPS_HAS_CPU_PREEMPT; 7680 7681 /* 7682 * Lock out forks, cgroup on/offlining and moves before opening the 7683 * floodgate so that they don't wander into the operations prematurely. 7684 */ 7685 percpu_down_write(&scx_fork_rwsem); 7686 7687 WARN_ON_ONCE(scx_init_task_enabled); 7688 scx_init_task_enabled = true; 7689 7690 /* flip under fork_rwsem; the iter below covers existing tasks */ 7691 if (ops->flags & SCX_OPS_TID_TO_TASK) 7692 static_branch_enable(&__scx_tid_to_task_enabled); 7693 7694 /* 7695 * Enable ops for every task. Fork is excluded by scx_fork_rwsem 7696 * preventing new tasks from being added. No need to exclude tasks 7697 * leaving as sched_ext_free() can handle both prepped and enabled 7698 * tasks. Prep all tasks first and then enable them with preemption 7699 * disabled. 7700 * 7701 * All cgroups should be initialized before scx_init_task() so that the 7702 * BPF scheduler can reliably track each task's cgroup membership from 7703 * scx_init_task(). Lock out cgroup on/offlining and task migrations 7704 * while tasks are being initialized so that scx_cgroup_can_attach() 7705 * never sees uninitialized tasks. 7706 */ 7707 scx_cgroup_lock(); 7708 set_cgroup_sched(sch_cgroup(sch), sch); 7709 ret = scx_cgroup_init(sch); 7710 if (ret) 7711 goto err_disable_unlock_all; 7712 7713 WARN_ON_ONCE(scx_cgroup_enabled); 7714 scx_cgroup_enabled = true; 7715 7716 scx_task_iter_start(&sti, NULL); 7717 while ((p = scx_task_iter_next_locked(&sti))) { 7718 /* 7719 * @p is in scx_tasks under scx_tasks_lock, and SCX_TASK_DEAD 7720 * tasks are filtered by scx_task_iter_next_locked(). 7721 * sched_ext_dead() removes @p from scx_tasks under the same 7722 * lock before put_task_struct_rcu_user() runs, so @p->usage 7723 * is guaranteed > 0 here. 7724 */ 7725 get_task_struct(p); 7726 7727 /* 7728 * Set %INIT_BEGIN under the iter's rq lock so that a concurrent 7729 * sched_ext_dead() does not call ops.exit_task() on @p while 7730 * ops.init_task() is running. If sched_ext_dead() runs before 7731 * this store, it has already removed @p from scx_tasks and the 7732 * iter won't visit @p; if it runs after, it observes 7733 * %INIT_BEGIN and transitions to %DEAD without calling ops, 7734 * leaving the post-init recheck below to unwind. 7735 */ 7736 scx_set_task_state(p, SCX_TASK_INIT_BEGIN); 7737 scx_task_iter_unlock(&sti); 7738 7739 ret = __scx_init_task(sch, p, NULL, false); 7740 7741 scx_task_iter_relock(&sti, p); 7742 7743 if (unlikely(ret)) { 7744 if (scx_get_task_state(p) != SCX_TASK_DEAD) 7745 scx_set_task_state(p, SCX_TASK_NONE); 7746 scx_task_iter_stop(&sti); 7747 scx_error(sch, "ops.init_task() failed (%d) for %s[%d]", 7748 ret, p->comm, p->pid); 7749 put_task_struct(p); 7750 goto err_disable_unlock_all; 7751 } 7752 7753 if (scx_get_task_state(p) == SCX_TASK_DEAD) { 7754 /* 7755 * sched_ext_dead() observed %INIT_BEGIN and set %DEAD. 7756 * ops.exit_task() is owed to the sched __scx_init_task() 7757 * ran against; call it now. 7758 */ 7759 scx_sub_init_cancel_task(sch, p); 7760 } else { 7761 scx_set_task_state(p, SCX_TASK_INIT); 7762 scx_set_task_sched(p, sch); 7763 scx_set_task_state(p, SCX_TASK_READY); 7764 } 7765 7766 /* 7767 * Insert into the tid hash. scx_tasks_lock is held by the iter; 7768 * list_empty() guards against sched_ext_dead() having taken @p 7769 * off the list while init ran unlocked. 7770 */ 7771 if (scx_tid_to_task_enabled() && !list_empty(&p->scx.tasks_node)) 7772 scx_tid_hash_insert(p); 7773 7774 put_task_struct(p); 7775 } 7776 scx_task_iter_stop(&sti); 7777 scx_cgroup_unlock(); 7778 percpu_up_write(&scx_fork_rwsem); 7779 7780 /* 7781 * All tasks are READY. It's safe to turn on scx_enabled() and switch 7782 * all eligible tasks. 7783 */ 7784 WRITE_ONCE(scx_switching_all, !(ops->flags & SCX_OPS_SWITCH_PARTIAL)); 7785 static_branch_enable(&__scx_enabled); 7786 7787 /* 7788 * We're fully committed and can't fail. The task READY -> ENABLED 7789 * transitions here are synchronized against sched_ext_free() through 7790 * scx_tasks_lock. 7791 */ 7792 percpu_down_write(&scx_fork_rwsem); 7793 scx_task_iter_start(&sti, NULL); 7794 while ((p = scx_task_iter_next_locked(&sti))) { 7795 unsigned int queue_flags = DEQUEUE_SAVE | DEQUEUE_MOVE; 7796 const struct sched_class *old_class = p->sched_class; 7797 const struct sched_class *new_class = scx_setscheduler_class(p); 7798 7799 if (scx_get_task_state(p) != SCX_TASK_READY) 7800 continue; 7801 7802 if (old_class != new_class) 7803 queue_flags |= DEQUEUE_CLASS; 7804 7805 scoped_guard (sched_change, p, queue_flags) { 7806 scx_set_task_slice(p, READ_ONCE(sch->slice_dfl)); 7807 p->sched_class = new_class; 7808 } 7809 } 7810 scx_task_iter_stop(&sti); 7811 percpu_up_write(&scx_fork_rwsem); 7812 7813 scx_bypass(sch, false); 7814 7815 if (!scx_tryset_enable_state(SCX_ENABLED, SCX_ENABLING)) { 7816 WARN_ON_ONCE(atomic_read(&sch->exit_kind) == SCX_EXIT_NONE); 7817 ret = -EBUSY; 7818 goto err_disable; 7819 } 7820 7821 if (!(ops->flags & SCX_OPS_SWITCH_PARTIAL)) 7822 static_branch_enable(&__scx_switched_all); 7823 7824 /* 7825 * Detach the fair_server bandwidth reservation now that the switch 7826 * is fully committed. In full mode (!SCX_OPS_SWITCH_PARTIAL) no 7827 * task will ever run in the fair class, so give that bandwidth 7828 * back to the RT class. The matching ext_server attach already 7829 * happened earlier; this only releases bandwidth and cannot fail. 7830 * 7831 * In partial mode keep fair_server attached. 7832 */ 7833 if (scx_switched_all()) { 7834 for_each_possible_cpu(cpu) { 7835 struct rq *rq = cpu_rq(cpu); 7836 7837 guard(rq_lock_irqsave)(rq); 7838 update_rq_clock(rq); 7839 dl_server_detach_bw(&rq->fair_server); 7840 } 7841 } 7842 7843 pr_info("sched_ext: BPF scheduler \"%s\" enabled%s\n", 7844 sch->ops.name, scx_switched_all() ? "" : " (partial)"); 7845 kobject_uevent(&sch->kobj, KOBJ_ADD); 7846 mutex_unlock(&scx_enable_mutex); 7847 7848 atomic_long_inc(&scx_enable_seq); 7849 7850 cmd->ret = 0; 7851 return; 7852 7853 err_free_tid_hash: 7854 if (ops->flags & SCX_OPS_TID_TO_TASK) 7855 rhashtable_free_and_destroy(&scx_tid_hash, NULL, NULL); 7856 err_free_ksyncs: 7857 free_kick_syncs(); 7858 err_unlock: 7859 mutex_unlock(&scx_enable_mutex); 7860 cmd->ret = ret; 7861 return; 7862 7863 err_disable_unlock_all: 7864 scx_cgroup_unlock(); 7865 percpu_up_write(&scx_fork_rwsem); 7866 /* we'll soon enter disable path, keep bypass on */ 7867 err_disable: 7868 mutex_unlock(&scx_enable_mutex); 7869 /* 7870 * Returning an error code here would not pass all the error information 7871 * to userspace. Record errno using scx_error() for cases scx_error() 7872 * wasn't already invoked and exit indicating success so that the error 7873 * is notified through ops.exit() with all the details. 7874 * 7875 * Flush scx_disable_work to ensure that error is reported before init 7876 * completion. sch's base reference will be put by bpf_scx_unreg(). 7877 */ 7878 scx_error(sch, "scx_root_enable() failed (%d)", ret); 7879 scx_flush_disable_work(sch); 7880 cmd->ret = 0; 7881 } 7882 7883 static s32 scx_enable(struct scx_enable_cmd *cmd, struct bpf_link *link) 7884 { 7885 static struct kthread_worker *helper; 7886 static DEFINE_MUTEX(helper_mutex); 7887 7888 if (housekeeping_enabled(HK_TYPE_DOMAIN_BOOT)) { 7889 pr_err("sched_ext: Not compatible with \"isolcpus=\" domain isolation\n"); 7890 return -EINVAL; 7891 } 7892 7893 if (!READ_ONCE(helper)) { 7894 mutex_lock(&helper_mutex); 7895 if (!helper) { 7896 struct kthread_worker *w = 7897 kthread_run_worker(0, "scx_enable_helper"); 7898 if (IS_ERR_OR_NULL(w)) { 7899 mutex_unlock(&helper_mutex); 7900 return -ENOMEM; 7901 } 7902 sched_set_fifo(w->task); 7903 WRITE_ONCE(helper, w); 7904 } 7905 mutex_unlock(&helper_mutex); 7906 } 7907 7908 #ifdef CONFIG_EXT_SUB_SCHED 7909 if (cmd->ops->sub_cgroup_id > 1) 7910 kthread_init_work(&cmd->work, scx_sub_enable_workfn); 7911 else 7912 #endif /* CONFIG_EXT_SUB_SCHED */ 7913 kthread_init_work(&cmd->work, scx_root_enable_workfn); 7914 7915 kthread_queue_work(READ_ONCE(helper), &cmd->work); 7916 kthread_flush_work(&cmd->work); 7917 return cmd->ret; 7918 } 7919 7920 7921 /******************************************************************************** 7922 * bpf_struct_ops plumbing. 7923 */ 7924 #include <linux/bpf_verifier.h> 7925 #include <linux/bpf.h> 7926 #include <linux/btf.h> 7927 7928 static const struct btf_type *task_struct_type; 7929 7930 static bool bpf_scx_is_valid_access(int off, int size, 7931 enum bpf_access_type type, 7932 const struct bpf_prog *prog, 7933 struct bpf_insn_access_aux *info) 7934 { 7935 if (type != BPF_READ) 7936 return false; 7937 if (off < 0 || off >= sizeof(__u64) * MAX_BPF_FUNC_ARGS) 7938 return false; 7939 if (off % size != 0) 7940 return false; 7941 7942 return btf_ctx_access(off, size, type, prog, info); 7943 } 7944 7945 /* common to both forms: only scx.disallow is writable */ 7946 static int bpf_scx_btf_struct_access_common(const struct bpf_reg_state *reg, 7947 int off, int size) 7948 { 7949 const struct btf_type *t; 7950 7951 t = btf_type_by_id(reg->btf, reg->btf_id); 7952 if (t == task_struct_type && 7953 off >= offsetof(struct task_struct, scx.disallow) && 7954 off + size <= offsetofend(struct task_struct, scx.disallow)) 7955 return SCALAR_VALUE; 7956 7957 return -EACCES; 7958 } 7959 7960 static int bpf_scx_btf_struct_access(struct bpf_verifier_log *log, 7961 const struct bpf_reg_state *reg, int off, 7962 int size) 7963 { 7964 const struct btf_type *t; 7965 7966 t = btf_type_by_id(reg->btf, reg->btf_id); 7967 if (t == task_struct_type) { 7968 if ((off >= offsetof(struct task_struct, scx.slice) && 7969 off + size <= offsetofend(struct task_struct, scx.slice)) || 7970 (off >= offsetof(struct task_struct, scx.dsq_vtime) && 7971 off + size <= offsetofend(struct task_struct, scx.dsq_vtime))) 7972 return SCALAR_VALUE; 7973 } 7974 7975 return bpf_scx_btf_struct_access_common(reg, off, size); 7976 } 7977 7978 /* cid-form rejects direct slice and dsq_vtime writes in favor of the kfuncs */ 7979 static int bpf_scx_cid_btf_struct_access(struct bpf_verifier_log *log, 7980 const struct bpf_reg_state *reg, int off, 7981 int size) 7982 { 7983 return bpf_scx_btf_struct_access_common(reg, off, size); 7984 } 7985 7986 static const struct bpf_verifier_ops bpf_scx_verifier_ops = { 7987 .get_func_proto = bpf_base_func_proto, 7988 .is_valid_access = bpf_scx_is_valid_access, 7989 .btf_struct_access = bpf_scx_btf_struct_access, 7990 }; 7991 7992 static const struct bpf_verifier_ops bpf_scx_cid_verifier_ops = { 7993 .get_func_proto = bpf_base_func_proto, 7994 .is_valid_access = bpf_scx_is_valid_access, 7995 .btf_struct_access = bpf_scx_cid_btf_struct_access, 7996 }; 7997 7998 static int bpf_scx_init_member(const struct btf_type *t, 7999 const struct btf_member *member, 8000 void *kdata, const void *udata) 8001 { 8002 const struct sched_ext_ops *uops = udata; 8003 struct sched_ext_ops *ops = kdata; 8004 u32 moff = __btf_member_bit_offset(t, member) / 8; 8005 int ret; 8006 8007 switch (moff) { 8008 case offsetof(struct sched_ext_ops, dispatch_max_batch): 8009 if (*(u32 *)(udata + moff) > INT_MAX) 8010 return -E2BIG; 8011 ops->dispatch_max_batch = *(u32 *)(udata + moff); 8012 return 1; 8013 case offsetof(struct sched_ext_ops, flags): 8014 if (*(u64 *)(udata + moff) & ~SCX_OPS_ALL_FLAGS) 8015 return -EINVAL; 8016 ops->flags = *(u64 *)(udata + moff); 8017 return 1; 8018 case offsetof(struct sched_ext_ops, name): 8019 ret = bpf_obj_name_cpy(ops->name, uops->name, 8020 sizeof(ops->name)); 8021 if (ret < 0) 8022 return ret; 8023 if (ret == 0) 8024 return -EINVAL; 8025 return 1; 8026 case offsetof(struct sched_ext_ops, timeout_ms): 8027 if (msecs_to_jiffies(*(u32 *)(udata + moff)) > 8028 SCX_WATCHDOG_MAX_TIMEOUT) 8029 return -E2BIG; 8030 ops->timeout_ms = *(u32 *)(udata + moff); 8031 return 1; 8032 case offsetof(struct sched_ext_ops, exit_dump_len): 8033 ops->exit_dump_len = 8034 *(u32 *)(udata + moff) ?: SCX_EXIT_DUMP_DFL_LEN; 8035 return 1; 8036 case offsetof(struct sched_ext_ops, hotplug_seq): 8037 ops->hotplug_seq = *(u64 *)(udata + moff); 8038 return 1; 8039 case offsetof(struct sched_ext_ops, cid_shard_size): 8040 ops->cid_shard_size = *(u32 *)(udata + moff); 8041 return 1; 8042 case offsetof(struct sched_ext_ops, rescue_bandwidth_ppt): { 8043 u32 bw_ppt = *(u32 *)(udata + moff); 8044 8045 if (bw_ppt > SCX_RESCUE_MAX_BW_PPT && bw_ppt != SCX_RESCUE_DISABLE) 8046 return -E2BIG; 8047 ops->rescue_bandwidth_ppt = bw_ppt; 8048 return 1; 8049 } 8050 case offsetof(struct sched_ext_ops, rescue_quantum_us): { 8051 u32 quantum_us = *(u32 *)(udata + moff); 8052 8053 if (quantum_us > SCX_RESCUE_MAX_QUANTUM_US) 8054 return -E2BIG; 8055 if (quantum_us && quantum_us < SCX_RESCUE_MIN_QUANTUM_US) 8056 return -EINVAL; 8057 ops->rescue_quantum_us = quantum_us; 8058 return 1; 8059 } 8060 #ifdef CONFIG_EXT_SUB_SCHED 8061 case offsetof(struct sched_ext_ops, sub_cgroup_id): 8062 ops->sub_cgroup_id = *(u64 *)(udata + moff); 8063 return 1; 8064 #endif /* CONFIG_EXT_SUB_SCHED */ 8065 } 8066 8067 return 0; 8068 } 8069 8070 static int bpf_scx_check_member(const struct btf_type *t, 8071 const struct btf_member *member, 8072 const struct bpf_prog *prog) 8073 { 8074 u32 moff = __btf_member_bit_offset(t, member) / 8; 8075 8076 switch (moff) { 8077 case offsetof(struct sched_ext_ops, init_task): 8078 #ifdef CONFIG_EXT_GROUP_SCHED 8079 case offsetof(struct sched_ext_ops, cgroup_init): 8080 case offsetof(struct sched_ext_ops, cgroup_exit): 8081 case offsetof(struct sched_ext_ops, cgroup_prep_move): 8082 #endif 8083 case offsetof(struct sched_ext_ops, cpu_online): 8084 case offsetof(struct sched_ext_ops, cpu_offline): 8085 case offsetof(struct sched_ext_ops, init_cids): 8086 case offsetof(struct sched_ext_ops, init): 8087 case offsetof(struct sched_ext_ops, exit): 8088 case offsetof(struct sched_ext_ops, sub_attach): 8089 case offsetof(struct sched_ext_ops, sub_detach): 8090 break; 8091 default: 8092 if (prog->sleepable) 8093 return -EINVAL; 8094 } 8095 8096 #ifdef CONFIG_EXT_SUB_SCHED 8097 /* 8098 * Enable private stack for operations that can nest along the 8099 * hierarchy. 8100 * 8101 * XXX - Ideally, we should only do this for scheds that allow 8102 * sub-scheds and sub-scheds themselves but I don't know how to access 8103 * struct_ops from here. 8104 */ 8105 switch (moff) { 8106 case offsetof(struct sched_ext_ops, dispatch): 8107 prog->aux->priv_stack_requested = true; 8108 prog->aux->recursion_detected = scx_pstack_recursion_on_dispatch; 8109 break; 8110 case offsetof(struct sched_ext_ops, sub_caps_updated): 8111 prog->aux->priv_stack_requested = true; 8112 prog->aux->recursion_detected = scx_pstack_recursion_on_caps_updated; 8113 break; 8114 } 8115 #endif /* CONFIG_EXT_SUB_SCHED */ 8116 8117 return 0; 8118 } 8119 8120 static int bpf_scx_reg(void *kdata, struct bpf_link *link) 8121 { 8122 struct scx_enable_cmd cmd = { .ops = kdata }; 8123 8124 return scx_enable(&cmd, link); 8125 } 8126 8127 struct scx_arena_scan { 8128 struct bpf_map *arena; 8129 int err; 8130 }; 8131 8132 /* 8133 * The verifier enforces one arena per BPF program, so each struct_ops 8134 * member prog contributes at most one arena via bpf_prog_arena(). 8135 * Require all non-NULL contributions to match. 8136 */ 8137 static int scx_arena_scan_prog(struct bpf_prog *prog, void *data) 8138 { 8139 struct scx_arena_scan *s = data; 8140 struct bpf_map *arena = NULL; 8141 8142 /* arena.o, which defines these, is built only on MMU && 64BIT */ 8143 #if defined(CONFIG_MMU) && defined(CONFIG_64BIT) 8144 arena = bpf_prog_arena(prog); 8145 #endif 8146 if (!arena) 8147 return 0; 8148 if (s->arena && s->arena != arena) { 8149 s->err = -EINVAL; 8150 return 1; 8151 } 8152 s->arena = arena; 8153 return 0; 8154 } 8155 8156 static int bpf_scx_reg_cid(void *kdata, struct bpf_link *link) 8157 { 8158 struct scx_enable_cmd cmd = { .ops_cid = kdata, .is_cid_type = true }; 8159 struct scx_arena_scan scan = {}; 8160 int ret; 8161 8162 bpf_struct_ops_for_each_prog(kdata, scx_arena_scan_prog, &scan); 8163 if (scan.err) { 8164 pr_err("sched_ext: cid-form scheduler uses multiple arena maps\n"); 8165 return scan.err; 8166 } 8167 if (!scan.arena) { 8168 pr_err("sched_ext: cid-form scheduler must use a BPF arena map\n"); 8169 return -EINVAL; 8170 } 8171 8172 bpf_map_inc(scan.arena); 8173 cmd.arena_map = scan.arena; 8174 ret = scx_enable(&cmd, link); 8175 if (cmd.arena_map) /* not consumed by scx_alloc_and_add_sched() */ 8176 bpf_map_put(cmd.arena_map); 8177 return ret; 8178 } 8179 8180 static void bpf_scx_unreg(void *kdata, struct bpf_link *link) 8181 { 8182 struct sched_ext_ops *ops = kdata; 8183 struct scx_sched *sch = rcu_dereference_protected(ops->priv, true); 8184 8185 scx_disable(sch, SCX_EXIT_UNREG); 8186 scx_flush_disable_work(sch); 8187 RCU_INIT_POINTER(ops->priv, NULL); 8188 kobject_put(&sch->kobj); 8189 } 8190 8191 static int bpf_scx_init(struct btf *btf) 8192 { 8193 task_struct_type = btf_type_by_id(btf, btf_tracing_ids[BTF_TRACING_TYPE_TASK]); 8194 8195 return 0; 8196 } 8197 8198 static int bpf_scx_update(void *kdata, void *old_kdata, struct bpf_link *link) 8199 { 8200 /* 8201 * sched_ext does not support updating the actively-loaded BPF 8202 * scheduler, as registering a BPF scheduler can always fail if the 8203 * scheduler returns an error code for e.g. ops.init(), ops.init_task(), 8204 * etc. Similarly, we can always race with unregistration happening 8205 * elsewhere, such as with sysrq. 8206 */ 8207 return -EOPNOTSUPP; 8208 } 8209 8210 static int bpf_scx_validate(void *kdata) 8211 { 8212 return 0; 8213 } 8214 8215 static s32 sched_ext_ops__select_cpu(struct task_struct *p, s32 prev_cpu, u64 wake_flags) { return -EINVAL; } 8216 static void sched_ext_ops__enqueue(struct task_struct *p, u64 enq_flags) {} 8217 static void sched_ext_ops__dequeue(struct task_struct *p, u64 enq_flags) {} 8218 static void sched_ext_ops__dispatch(s32 prev_cpu, struct task_struct *prev__nullable) {} 8219 static void sched_ext_ops__tick(struct task_struct *p) {} 8220 static void sched_ext_ops__runnable(struct task_struct *p, u64 enq_flags) {} 8221 static void sched_ext_ops__running(struct task_struct *p) {} 8222 static void sched_ext_ops__stopping(struct task_struct *p, bool runnable) {} 8223 static void sched_ext_ops__quiescent(struct task_struct *p, u64 deq_flags) {} 8224 static bool sched_ext_ops__yield(struct task_struct *from, struct task_struct *to__nullable) { return false; } 8225 static bool sched_ext_ops__core_sched_before(struct task_struct *a, struct task_struct *b) { return false; } 8226 static void sched_ext_ops__set_weight(struct task_struct *p, u32 weight) {} 8227 static void sched_ext_ops__set_cpumask(struct task_struct *p, const struct cpumask *mask) {} 8228 static void sched_ext_ops__update_idle(s32 cpu, bool idle) {} 8229 static void sched_ext_ops__cpu_acquire(s32 cpu, struct scx_cpu_acquire_args *args) {} 8230 static void sched_ext_ops__cpu_release(s32 cpu, struct scx_cpu_release_args *args) {} 8231 static s32 sched_ext_ops__init_task(struct task_struct *p, struct scx_init_task_args *args) { return -EINVAL; } 8232 static void sched_ext_ops__exit_task(struct task_struct *p, struct scx_exit_task_args *args) {} 8233 static void sched_ext_ops__enable(struct task_struct *p) {} 8234 static void sched_ext_ops__disable(struct task_struct *p) {} 8235 #ifdef CONFIG_EXT_GROUP_SCHED 8236 static s32 sched_ext_ops__cgroup_init(struct cgroup *cgrp, struct scx_cgroup_init_args *args) { return -EINVAL; } 8237 static void sched_ext_ops__cgroup_exit(struct cgroup *cgrp) {} 8238 static s32 sched_ext_ops__cgroup_prep_move(struct task_struct *p, struct cgroup *from, struct cgroup *to) { return -EINVAL; } 8239 static void sched_ext_ops__cgroup_move(struct task_struct *p, struct cgroup *from, struct cgroup *to) {} 8240 static void sched_ext_ops__cgroup_cancel_move(struct task_struct *p, struct cgroup *from, struct cgroup *to) {} 8241 static void sched_ext_ops__cgroup_set_weight(struct cgroup *cgrp, u32 weight) {} 8242 static void sched_ext_ops__cgroup_set_bandwidth(struct cgroup *cgrp, u64 period_us, u64 quota_us, u64 burst_us) {} 8243 static void sched_ext_ops__cgroup_set_idle(struct cgroup *cgrp, bool idle) {} 8244 #endif /* CONFIG_EXT_GROUP_SCHED */ 8245 static s32 sched_ext_ops__sub_attach(struct scx_sub_attach_args *args) { return -EINVAL; } 8246 static void sched_ext_ops__sub_detach(struct scx_sub_detach_args *args) {} 8247 static void sched_ext_ops__cpu_online(s32 cpu) {} 8248 static void sched_ext_ops__cpu_offline(s32 cpu) {} 8249 static s32 sched_ext_ops__init_cids(void) { return -EINVAL; } 8250 static s32 sched_ext_ops__init(void) { return -EINVAL; } 8251 static void sched_ext_ops__exit(struct scx_exit_info *info) {} 8252 static void sched_ext_ops__dump(struct scx_dump_ctx *ctx) {} 8253 static void sched_ext_ops__dump_cpu(struct scx_dump_ctx *ctx, s32 cpu, bool idle) {} 8254 static void sched_ext_ops__dump_task(struct scx_dump_ctx *ctx, struct task_struct *p) {} 8255 8256 static struct sched_ext_ops __bpf_ops_sched_ext_ops = { 8257 .select_cpu = sched_ext_ops__select_cpu, 8258 .enqueue = sched_ext_ops__enqueue, 8259 .dequeue = sched_ext_ops__dequeue, 8260 .dispatch = sched_ext_ops__dispatch, 8261 .tick = sched_ext_ops__tick, 8262 .runnable = sched_ext_ops__runnable, 8263 .running = sched_ext_ops__running, 8264 .stopping = sched_ext_ops__stopping, 8265 .quiescent = sched_ext_ops__quiescent, 8266 .yield = sched_ext_ops__yield, 8267 .core_sched_before = sched_ext_ops__core_sched_before, 8268 .set_weight = sched_ext_ops__set_weight, 8269 .set_cpumask = sched_ext_ops__set_cpumask, 8270 .update_idle = sched_ext_ops__update_idle, 8271 .cpu_acquire = sched_ext_ops__cpu_acquire, 8272 .cpu_release = sched_ext_ops__cpu_release, 8273 .init_task = sched_ext_ops__init_task, 8274 .exit_task = sched_ext_ops__exit_task, 8275 .enable = sched_ext_ops__enable, 8276 .disable = sched_ext_ops__disable, 8277 #ifdef CONFIG_EXT_GROUP_SCHED 8278 .cgroup_init = sched_ext_ops__cgroup_init, 8279 .cgroup_exit = sched_ext_ops__cgroup_exit, 8280 .cgroup_prep_move = sched_ext_ops__cgroup_prep_move, 8281 .cgroup_move = sched_ext_ops__cgroup_move, 8282 .cgroup_cancel_move = sched_ext_ops__cgroup_cancel_move, 8283 .cgroup_set_weight = sched_ext_ops__cgroup_set_weight, 8284 .cgroup_set_bandwidth = sched_ext_ops__cgroup_set_bandwidth, 8285 .cgroup_set_idle = sched_ext_ops__cgroup_set_idle, 8286 #endif 8287 .sub_attach = sched_ext_ops__sub_attach, 8288 .sub_detach = sched_ext_ops__sub_detach, 8289 .cpu_online = sched_ext_ops__cpu_online, 8290 .cpu_offline = sched_ext_ops__cpu_offline, 8291 .init_cids = sched_ext_ops__init_cids, 8292 .init = sched_ext_ops__init, 8293 .exit = sched_ext_ops__exit, 8294 .dump = sched_ext_ops__dump, 8295 .dump_cpu = sched_ext_ops__dump_cpu, 8296 .dump_task = sched_ext_ops__dump_task, 8297 }; 8298 8299 static struct bpf_struct_ops bpf_sched_ext_ops = { 8300 .verifier_ops = &bpf_scx_verifier_ops, 8301 .reg = bpf_scx_reg, 8302 .unreg = bpf_scx_unreg, 8303 .check_member = bpf_scx_check_member, 8304 .init_member = bpf_scx_init_member, 8305 .init = bpf_scx_init, 8306 .update = bpf_scx_update, 8307 .validate = bpf_scx_validate, 8308 .name = "sched_ext_ops", 8309 .owner = THIS_MODULE, 8310 .cfi_stubs = &__bpf_ops_sched_ext_ops 8311 }; 8312 8313 /* 8314 * cid-form cfi stubs. Stubs whose signatures match the cpu-form (param types 8315 * identical, only param names differ across structs) are reused. Some need 8316 * fresh stubs, set_cmask due to an argument type difference and the sub-sched 8317 * notifiers because no cpu-form stub exists to reuse. 8318 */ 8319 static void sched_ext_ops_cid__set_cmask(struct task_struct *p, const struct scx_cmask *cmask__arena) {} 8320 static void sched_ext_ops__sub_caps_updated(const struct scx_cmask *cmask__arena, u64 caps) {} 8321 static void sched_ext_ops__sub_ecaps_updated(s32 cid, u64 before, u64 after) {} 8322 8323 static struct sched_ext_ops_cid __bpf_ops_sched_ext_ops_cid = { 8324 .select_cid = sched_ext_ops__select_cpu, 8325 .enqueue = sched_ext_ops__enqueue, 8326 .dequeue = sched_ext_ops__dequeue, 8327 .dispatch = sched_ext_ops__dispatch, 8328 .tick = sched_ext_ops__tick, 8329 .runnable = sched_ext_ops__runnable, 8330 .running = sched_ext_ops__running, 8331 .stopping = sched_ext_ops__stopping, 8332 .quiescent = sched_ext_ops__quiescent, 8333 .yield = sched_ext_ops__yield, 8334 .core_sched_before = sched_ext_ops__core_sched_before, 8335 .set_weight = sched_ext_ops__set_weight, 8336 .set_cmask = sched_ext_ops_cid__set_cmask, 8337 .update_idle = sched_ext_ops__update_idle, 8338 .init_task = sched_ext_ops__init_task, 8339 .exit_task = sched_ext_ops__exit_task, 8340 .enable = sched_ext_ops__enable, 8341 .disable = sched_ext_ops__disable, 8342 #ifdef CONFIG_EXT_GROUP_SCHED 8343 .cpuctl_init = sched_ext_ops__cgroup_init, 8344 .cpuctl_exit = sched_ext_ops__cgroup_exit, 8345 .cpuctl_prep_move = sched_ext_ops__cgroup_prep_move, 8346 .cpuctl_move = sched_ext_ops__cgroup_move, 8347 .cpuctl_cancel_move = sched_ext_ops__cgroup_cancel_move, 8348 .cpuctl_set_weight = sched_ext_ops__cgroup_set_weight, 8349 .cpuctl_set_bandwidth = sched_ext_ops__cgroup_set_bandwidth, 8350 .cpuctl_set_idle = sched_ext_ops__cgroup_set_idle, 8351 #endif 8352 .sub_attach = sched_ext_ops__sub_attach, 8353 .sub_detach = sched_ext_ops__sub_detach, 8354 .sub_caps_updated = sched_ext_ops__sub_caps_updated, 8355 .sub_ecaps_updated = sched_ext_ops__sub_ecaps_updated, 8356 .cid_online = sched_ext_ops__cpu_online, 8357 .cid_offline = sched_ext_ops__cpu_offline, 8358 .init_cids = sched_ext_ops__init_cids, 8359 .init = sched_ext_ops__init, 8360 .exit = sched_ext_ops__exit, 8361 .dump = sched_ext_ops__dump, 8362 .dump_cid = sched_ext_ops__dump_cpu, 8363 .dump_task = sched_ext_ops__dump_task, 8364 }; 8365 8366 /* 8367 * The cid-form struct_ops shares all bpf_struct_ops hooks with the cpu form. 8368 * init_member, check_member, reg, unreg, etc. process kdata as the byte block 8369 * verified to match by the BUILD_BUG_ON checks in scx_init(). 8370 */ 8371 static struct bpf_struct_ops bpf_sched_ext_ops_cid = { 8372 .verifier_ops = &bpf_scx_cid_verifier_ops, 8373 .reg = bpf_scx_reg_cid, 8374 .unreg = bpf_scx_unreg, 8375 .check_member = bpf_scx_check_member, 8376 .init_member = bpf_scx_init_member, 8377 .init = bpf_scx_init, 8378 .update = bpf_scx_update, 8379 .validate = bpf_scx_validate, 8380 .name = "sched_ext_ops_cid", 8381 .owner = THIS_MODULE, 8382 .cfi_stubs = &__bpf_ops_sched_ext_ops_cid 8383 }; 8384 8385 8386 /******************************************************************************** 8387 * System integration and init. 8388 */ 8389 8390 static void sysrq_handle_sched_ext_reset(u8 key) 8391 { 8392 struct scx_sched *sch; 8393 8394 sch = rcu_dereference(scx_root); 8395 if (likely(sch)) 8396 scx_disable(sch, SCX_EXIT_SYSRQ); 8397 else 8398 pr_info("sched_ext: BPF schedulers not loaded\n"); 8399 } 8400 8401 static const struct sysrq_key_op sysrq_sched_ext_reset_op = { 8402 .handler = sysrq_handle_sched_ext_reset, 8403 .help_msg = "reset-sched-ext(S)", 8404 .action_msg = "Disable sched_ext and revert all tasks to CFS", 8405 .enable_mask = SYSRQ_ENABLE_RTNICE, 8406 }; 8407 8408 static void sysrq_handle_sched_ext_dump(u8 key) 8409 { 8410 struct scx_exit_info ei = { 8411 .kind = SCX_EXIT_NONE, 8412 .exit_cpu = -1, 8413 .reason = "SysRq-D", 8414 }; 8415 struct scx_sched *sch; 8416 8417 list_for_each_entry_rcu(sch, &scx_sched_all, all) 8418 scx_dump_state(sch, &ei, 0, false); 8419 } 8420 8421 static const struct sysrq_key_op sysrq_sched_ext_dump_op = { 8422 .handler = sysrq_handle_sched_ext_dump, 8423 .help_msg = "dump-sched-ext(D)", 8424 .action_msg = "Trigger sched_ext debug dump", 8425 .enable_mask = SYSRQ_ENABLE_RTNICE, 8426 }; 8427 8428 static bool can_skip_idle_kick(struct rq *rq) 8429 { 8430 lockdep_assert_rq_held(rq); 8431 8432 /* 8433 * We can skip idle kicking if @rq is going to go through at least one 8434 * full SCX scheduling cycle before going idle. Just checking whether 8435 * curr is not idle is insufficient because we could be racing 8436 * dispatch_one() trying to pull the next task from a remote rq, which 8437 * may fail, and @rq may become idle afterwards. 8438 * 8439 * The race window is small and we don't and can't guarantee that @rq is 8440 * only kicked while idle anyway. Skip only when sure. 8441 */ 8442 return !is_idle_task(rq->curr) && !(rq->scx.flags & SCX_RQ_IN_DISPATCH); 8443 } 8444 8445 static bool kick_one_cpu(s32 cpu, struct scx_sched_pcpu *pcpu, struct rq *this_rq, 8446 unsigned long *ksyncs) 8447 { 8448 struct rq *rq = cpu_rq(cpu); 8449 struct scx_rq *this_scx = &this_rq->scx; 8450 const struct sched_class *cur_class; 8451 bool should_wait = false; 8452 bool kickable; 8453 unsigned long flags; 8454 8455 raw_spin_rq_lock_irqsave(rq, flags); 8456 cur_class = rq->curr->sched_class; 8457 8458 /* 8459 * During CPU hotplug, a CPU may depend on kicking itself to make 8460 * forward progress. Allow kicking self regardless of online state. If 8461 * @cpu is running a higher class task, we have no control over @cpu. 8462 * Skip kicking. A sub-sched lacking baseline access on @cid has no 8463 * business forcing a reschedule there - skip. This is the authoritative 8464 * cap check: ecaps is read here under @rq's lock. 8465 */ 8466 kickable = (cpu_online(cpu) || cpu == cpu_of(this_rq)) && 8467 !sched_class_above(cur_class, &ext_sched_class); 8468 8469 if (kickable && !scx_missing_caps(pcpu->sch, cpu, SCX_CAP_BASE)) { 8470 if (cpumask_test_cpu(cpu, pcpu->cpus_to_preempt)) { 8471 if (cur_class == &ext_sched_class) { 8472 u64 caps = scx_caps_for_preempt(pcpu->sch, rq, 0); 8473 8474 if (unlikely(scx_missing_caps(pcpu->sch, cpu, caps))) 8475 __scx_add_event(pcpu->sch, SCX_EV_SUB_PREEMPT_DENIED, 1); 8476 else if (unlikely(!scx_set_task_slice(rq->curr, 0))) 8477 __scx_add_event(pcpu->sch, SCX_EV_SLICE_DENIED, 1); 8478 } 8479 cpumask_clear_cpu(cpu, pcpu->cpus_to_preempt); 8480 } 8481 8482 if (cpumask_test_cpu(cpu, pcpu->cpus_to_wait)) { 8483 if (cur_class == &ext_sched_class) { 8484 cpumask_set_cpu(cpu, this_scx->cpus_to_sync); 8485 ksyncs[cpu] = rq->scx.kick_sync; 8486 should_wait = true; 8487 } 8488 cpumask_clear_cpu(cpu, pcpu->cpus_to_wait); 8489 } 8490 8491 resched_curr(rq); 8492 } else { 8493 /* a kickable cpu was skipped solely for the missing caps */ 8494 if (kickable) 8495 __scx_add_event(pcpu->sch, SCX_EV_SUB_KICK_DENIED, 1); 8496 cpumask_clear_cpu(cpu, pcpu->cpus_to_preempt); 8497 cpumask_clear_cpu(cpu, pcpu->cpus_to_wait); 8498 } 8499 8500 scx_rq_lock_drop(rq); 8501 raw_spin_rq_unlock_irqrestore(rq, flags); 8502 8503 return should_wait; 8504 } 8505 8506 static void kick_one_cpu_if_idle(s32 cpu, struct scx_sched_pcpu *pcpu, 8507 struct rq *this_rq) 8508 { 8509 struct rq *rq = cpu_rq(cpu); 8510 unsigned long flags; 8511 8512 raw_spin_rq_lock_irqsave(rq, flags); 8513 8514 /* idle kicks need baseline access too, see kick_one_cpu() */ 8515 if (!can_skip_idle_kick(rq) && 8516 (cpu_online(cpu) || cpu == cpu_of(this_rq))) { 8517 if (likely(!scx_missing_caps(pcpu->sch, cpu, SCX_CAP_BASE))) 8518 resched_curr(rq); 8519 else 8520 __scx_add_event(pcpu->sch, SCX_EV_SUB_KICK_DENIED, 1); 8521 } 8522 8523 scx_rq_lock_drop(rq); 8524 raw_spin_rq_unlock_irqrestore(rq, flags); 8525 } 8526 8527 static void kick_cpus_irq_workfn(struct irq_work *irq_work) 8528 { 8529 struct rq *this_rq = this_rq(); 8530 struct scx_rq *this_scx = &this_rq->scx; 8531 struct scx_kick_syncs __rcu *ksyncs_pcpu = __this_cpu_read(scx_kick_syncs); 8532 struct scx_sched_pcpu *pcpu, *tmp; 8533 bool should_wait = false; 8534 unsigned long *ksyncs; 8535 s32 cpu; 8536 8537 /* can race with free_kick_syncs() during scheduler disable */ 8538 if (unlikely(!ksyncs_pcpu)) 8539 return; 8540 8541 ksyncs = rcu_dereference_bh(ksyncs_pcpu)->syncs; 8542 8543 /* 8544 * Walk scheds with pending kicks on this cpu. scx_kick_cpu() adds to 8545 * the list under local_irq_save() and only this irq_work consumes it. 8546 * A plain list without locking is sufficient. 8547 */ 8548 list_for_each_entry_safe(pcpu, tmp, &this_scx->sched_pcpus_to_kick, to_kick_node) { 8549 list_del_init(&pcpu->to_kick_node); 8550 8551 for_each_cpu(cpu, pcpu->cpus_to_kick) { 8552 should_wait |= kick_one_cpu(cpu, pcpu, this_rq, ksyncs); 8553 cpumask_clear_cpu(cpu, pcpu->cpus_to_kick); 8554 cpumask_clear_cpu(cpu, pcpu->cpus_to_kick_if_idle); 8555 } 8556 8557 for_each_cpu(cpu, pcpu->cpus_to_kick_if_idle) { 8558 kick_one_cpu_if_idle(cpu, pcpu, this_rq); 8559 cpumask_clear_cpu(cpu, pcpu->cpus_to_kick_if_idle); 8560 } 8561 } 8562 8563 /* 8564 * Can't wait in hardirq — kick_sync can't advance, deadlocking if 8565 * CPUs wait for each other. Defer to kick_sync_wait_bal_cb(). 8566 */ 8567 if (should_wait) { 8568 raw_spin_rq_lock(this_rq); 8569 this_scx->kick_sync_pending = true; 8570 resched_curr(this_rq); 8571 scx_rq_lock_drop(this_rq); 8572 raw_spin_rq_unlock(this_rq); 8573 } 8574 } 8575 8576 /** 8577 * print_scx_info - print out sched_ext scheduler state 8578 * @log_lvl: the log level to use when printing 8579 * @p: target task 8580 * 8581 * If a sched_ext scheduler is enabled, print the name and state of the 8582 * scheduler. If @p is on sched_ext, print further information about the task. 8583 * 8584 * This function can be safely called on any task as long as the task_struct 8585 * itself is accessible. While safe, this function isn't synchronized and may 8586 * print out mixups or garbages of limited length. 8587 */ 8588 void print_scx_info(const char *log_lvl, struct task_struct *p) 8589 { 8590 struct scx_sched *sch; 8591 enum scx_enable_state state = scx_enable_state(); 8592 const char *all = READ_ONCE(scx_switching_all) ? "+all" : ""; 8593 char runnable_at_buf[22] = "?"; 8594 struct sched_class *class; 8595 unsigned long runnable_at; 8596 8597 guard(rcu)(); 8598 8599 sch = scx_task_sched_rcu(p); 8600 8601 if (!sch) 8602 return; 8603 8604 /* 8605 * Carefully check if the task was running on sched_ext, and then 8606 * carefully copy the time it's been runnable, and its state. 8607 */ 8608 if (copy_from_kernel_nofault(&class, &p->sched_class, sizeof(class)) || 8609 class != &ext_sched_class) { 8610 printk("%sSched_ext: %s (%s%s)", log_lvl, sch->ops.name, 8611 scx_enable_state_str[state], all); 8612 return; 8613 } 8614 8615 if (!copy_from_kernel_nofault(&runnable_at, &p->scx.runnable_at, 8616 sizeof(runnable_at))) 8617 scnprintf(runnable_at_buf, sizeof(runnable_at_buf), "%+ldms", 8618 jiffies_delta_msecs(runnable_at, jiffies)); 8619 8620 /* print everything onto one line to conserve console space */ 8621 printk("%sSched_ext: %s (%s%s), task: runnable_at=%s", 8622 log_lvl, sch->ops.name, scx_enable_state_str[state], all, 8623 runnable_at_buf); 8624 } 8625 8626 static int scx_pm_handler(struct notifier_block *nb, unsigned long event, void *ptr) 8627 { 8628 struct scx_sched *sch; 8629 8630 guard(rcu)(); 8631 8632 sch = rcu_dereference(scx_root); 8633 if (!sch) 8634 return NOTIFY_OK; 8635 8636 /* 8637 * SCX schedulers often have userspace components which are sometimes 8638 * involved in critial scheduling paths. PM operations involve freezing 8639 * userspace which can lead to scheduling misbehaviors including stalls. 8640 * Let's bypass while PM operations are in progress. 8641 */ 8642 switch (event) { 8643 case PM_HIBERNATION_PREPARE: 8644 case PM_SUSPEND_PREPARE: 8645 case PM_RESTORE_PREPARE: 8646 scx_bypass(sch, true); 8647 break; 8648 case PM_POST_HIBERNATION: 8649 case PM_POST_SUSPEND: 8650 case PM_POST_RESTORE: 8651 scx_bypass(sch, false); 8652 break; 8653 } 8654 8655 return NOTIFY_OK; 8656 } 8657 8658 static struct notifier_block scx_pm_notifier = { 8659 .notifier_call = scx_pm_handler, 8660 }; 8661 8662 void __init init_sched_ext_class(void) 8663 { 8664 s32 cpu, v; 8665 8666 /* 8667 * The following is to prevent the compiler from optimizing out the enum 8668 * definitions so that BPF scheduler implementations can use them 8669 * through the generated vmlinux.h. 8670 */ 8671 WRITE_ONCE(v, SCX_ENQ_WAKEUP | SCX_DEQ_SLEEP | SCX_KICK_PREEMPT | 8672 SCX_TG_ONLINE); 8673 8674 scx_idle_init_masks(); 8675 8676 for_each_possible_cpu(cpu) { 8677 struct rq *rq = cpu_rq(cpu); 8678 int n = cpu_to_node(cpu); 8679 8680 /* local_dsq's sch will be set during scx_root_enable() */ 8681 BUG_ON(scx_init_dsq(&rq->scx.local_dsq, SCX_DSQ_LOCAL, NULL)); 8682 #ifdef CONFIG_EXT_SUB_SCHED 8683 BUG_ON(scx_init_dsq(&rq->scx.reject_dsq, SCX_DSQ_REJECT, NULL)); 8684 scx_rescue_init(rq); 8685 #endif 8686 8687 INIT_LIST_HEAD(&rq->scx.runnable_list); 8688 INIT_LIST_HEAD(&rq->scx.ddsp_deferred_locals); 8689 8690 BUG_ON(!zalloc_cpumask_var_node(&rq->scx.cpus_to_sync, GFP_KERNEL, n)); 8691 INIT_LIST_HEAD(&rq->scx.sched_pcpus_to_kick); 8692 raw_spin_lock_init(&rq->scx.deferred_reenq_lock); 8693 INIT_LIST_HEAD(&rq->scx.deferred_reenq_locals); 8694 INIT_LIST_HEAD(&rq->scx.deferred_reenq_users); 8695 rq->scx.deferred_irq_work = IRQ_WORK_INIT_HARD(deferred_irq_workfn); 8696 rq->scx.kick_cpus_irq_work = IRQ_WORK_INIT_HARD(kick_cpus_irq_workfn); 8697 8698 if (cpu_online(cpu)) 8699 cpu_rq(cpu)->scx.flags |= SCX_RQ_ONLINE; 8700 } 8701 8702 register_sysrq_key('S', &sysrq_sched_ext_reset_op); 8703 register_sysrq_key('D', &sysrq_sched_ext_dump_op); 8704 INIT_DELAYED_WORK(&scx_watchdog_work, scx_watchdog_workfn); 8705 8706 #ifdef CONFIG_EXT_SUB_SCHED 8707 BUG_ON(rhashtable_init(&scx_sched_hash, &scx_sched_hash_params)); 8708 #endif /* CONFIG_EXT_SUB_SCHED */ 8709 } 8710 8711 8712 /******************************************************************************** 8713 * Helpers that can be called from the BPF scheduler. 8714 */ 8715 static bool scx_vet_enq_flags(struct scx_sched *sch, u64 dsq_id, u64 *enq_flags) 8716 { 8717 bool is_local = dsq_id == SCX_DSQ_LOCAL || 8718 (dsq_id & SCX_DSQ_LOCAL_ON) == SCX_DSQ_LOCAL_ON; 8719 8720 if (unlikely(*enq_flags & __SCX_ENQ_INTERNAL_MASK)) { 8721 scx_error(sch, "invalid enq_flags 0x%llx", *enq_flags); 8722 return false; 8723 } 8724 8725 if (*enq_flags & SCX_ENQ_IMMED) { 8726 if (unlikely(!is_local)) { 8727 scx_error(sch, "SCX_ENQ_IMMED on a non-local DSQ 0x%llx", dsq_id); 8728 return false; 8729 } 8730 } else if ((sch->ops.flags & SCX_OPS_ALWAYS_ENQ_IMMED) && is_local) { 8731 *enq_flags |= SCX_ENQ_IMMED; 8732 } 8733 8734 if (unlikely((*enq_flags & SCX_ENQ_RESCUE) && !is_local)) { 8735 scx_error(sch, "SCX_ENQ_RESCUE on a non-local DSQ 0x%llx", dsq_id); 8736 return false; 8737 } 8738 8739 return true; 8740 } 8741 8742 static bool scx_dsq_insert_preamble(struct scx_sched *sch, struct task_struct *p, 8743 u64 dsq_id, u64 *enq_flags) 8744 { 8745 lockdep_assert_irqs_disabled(); 8746 8747 if (unlikely(!p)) { 8748 scx_error(sch, "called with NULL task"); 8749 return false; 8750 } 8751 8752 /* see SCX_EV_INSERT_NOT_OWNED definition */ 8753 if (unlikely(!scx_task_on_sched(sch, p))) { 8754 __scx_add_event(sch, SCX_EV_INSERT_NOT_OWNED, 1); 8755 return false; 8756 } 8757 8758 if (!scx_vet_enq_flags(sch, dsq_id, enq_flags)) 8759 return false; 8760 8761 return true; 8762 } 8763 8764 static void scx_dsq_insert_commit(struct scx_sched *sch, struct task_struct *p, 8765 u64 dsq_id, u64 slice, u64 vtime, u64 enq_flags) 8766 { 8767 struct scx_dsp_ctx *dspc = &this_cpu_ptr(sch->pcpu)->dsp_ctx; 8768 struct task_struct *ddsp_task; 8769 8770 ddsp_task = __this_cpu_read(direct_dispatch_task); 8771 if (ddsp_task) { 8772 mark_direct_dispatch(sch, ddsp_task, p, dsq_id, slice, vtime, enq_flags); 8773 return; 8774 } 8775 8776 if (unlikely(dspc->cursor >= sch->dsp_max_batch)) { 8777 scx_error(sch, "dispatch buffer overflow"); 8778 return; 8779 } 8780 8781 dspc->buf[dspc->cursor++] = (struct scx_dsp_buf_ent){ 8782 .task = p, 8783 .qseq = atomic_long_read(&p->scx.ops_state) & SCX_OPSS_QSEQ_MASK, 8784 .dsq_id = dsq_id, 8785 .slice = slice, 8786 .vtime = vtime, 8787 .enq_flags = enq_flags, 8788 }; 8789 } 8790 8791 __bpf_kfunc_start_defs(); 8792 8793 /** 8794 * scx_bpf_dsq_insert___v2 - Insert a task into the FIFO queue of a DSQ 8795 * @p: task_struct to insert 8796 * @dsq_id: DSQ to insert into 8797 * @slice: duration @p can run for in nsecs, 0 to keep the current value 8798 * @enq_flags: SCX_ENQ_* 8799 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 8800 * 8801 * Insert @p into the FIFO queue of the DSQ identified by @dsq_id. It is safe to 8802 * call this function spuriously. Can be called from ops.enqueue(), 8803 * ops.select_cpu(), and ops.dispatch(). 8804 * 8805 * When called from ops.select_cpu() or ops.enqueue(), it's for direct dispatch 8806 * and @p must match the task being enqueued. 8807 * 8808 * When called from ops.select_cpu(), @enq_flags and @dsq_id are stored, and @p 8809 * will be directly inserted into the corresponding dispatch queue after 8810 * ops.select_cpu() returns. If @p is inserted into SCX_DSQ_LOCAL, it will be 8811 * inserted into the local DSQ of the CPU returned by ops.select_cpu(). 8812 * @enq_flags are OR'd with the enqueue flags on the enqueue path before the 8813 * task is inserted. 8814 * 8815 * When called from ops.dispatch(), there are no restrictions on @p or @dsq_id 8816 * and this function can be called upto ops.dispatch_max_batch times to insert 8817 * multiple tasks. scx_bpf_dispatch_nr_slots() returns the number of the 8818 * remaining slots. scx_bpf_dsq_move_to_local() flushes the batch and resets the 8819 * counter. 8820 * 8821 * This function doesn't have any locking restrictions and may be called under 8822 * BPF locks (in the future when BPF introduces more flexible locking). 8823 * 8824 * @p is allowed to run for @slice. The scheduling path is triggered on slice 8825 * exhaustion. If zero, the current residual slice is maintained. If 8826 * %SCX_SLICE_INF, @p never expires and the BPF scheduler must kick the CPU with 8827 * scx_bpf_kick_cpu() to trigger scheduling. 8828 * 8829 * Returns %true on successful insertion, %false on failure. On the root 8830 * scheduler, %false return triggers scheduler abort and the caller doesn't need 8831 * to check the return value. 8832 */ 8833 __bpf_kfunc bool scx_bpf_dsq_insert___v2(struct task_struct *p, u64 dsq_id, 8834 u64 slice, u64 enq_flags, 8835 const struct bpf_prog_aux *aux) 8836 { 8837 struct scx_sched *sch; 8838 8839 guard(rcu)(); 8840 sch = scx_prog_sched(aux); 8841 if (unlikely(!sch)) 8842 return false; 8843 8844 if (!scx_dsq_insert_preamble(sch, p, dsq_id, &enq_flags)) 8845 return false; 8846 8847 scx_dsq_insert_commit(sch, p, dsq_id, slice, 0, enq_flags); 8848 8849 return true; 8850 } 8851 8852 /* 8853 * COMPAT: Will be removed in v6.23 along with the ___v2 suffix. 8854 */ 8855 __bpf_kfunc void scx_bpf_dsq_insert(struct task_struct *p, u64 dsq_id, 8856 u64 slice, u64 enq_flags, 8857 const struct bpf_prog_aux *aux) 8858 { 8859 scx_bpf_dsq_insert___v2(p, dsq_id, slice, enq_flags, aux); 8860 } 8861 8862 static bool scx_dsq_insert_vtime(struct scx_sched *sch, struct task_struct *p, 8863 u64 dsq_id, u64 slice, u64 vtime, u64 enq_flags) 8864 { 8865 if (!scx_dsq_insert_preamble(sch, p, dsq_id, &enq_flags)) 8866 return false; 8867 8868 scx_dsq_insert_commit(sch, p, dsq_id, slice, vtime, enq_flags | SCX_ENQ_DSQ_PRIQ); 8869 8870 return true; 8871 } 8872 8873 struct scx_bpf_dsq_insert_vtime_args { 8874 /* @p can't be packed together as KF_RCU is not transitive */ 8875 u64 dsq_id; 8876 u64 slice; 8877 u64 vtime; 8878 u64 enq_flags; 8879 }; 8880 8881 /** 8882 * __scx_bpf_dsq_insert_vtime - Arg-wrapped vtime DSQ insertion 8883 * @p: task_struct to insert 8884 * @args: struct containing the rest of the arguments 8885 * @args->dsq_id: DSQ to insert into 8886 * @args->slice: duration @p can run for in nsecs, 0 to keep the current value 8887 * @args->vtime: @p's ordering inside the vtime-sorted queue of the target DSQ 8888 * @args->enq_flags: SCX_ENQ_* 8889 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 8890 * 8891 * Wrapper kfunc that takes arguments via struct to work around BPF's 5 argument 8892 * limit. BPF programs should use scx_bpf_dsq_insert_vtime() which is provided 8893 * as an inline wrapper in common.bpf.h. 8894 * 8895 * Insert @p into the vtime priority queue of the DSQ identified by 8896 * @args->dsq_id. Tasks queued into the priority queue are ordered by 8897 * @args->vtime. All other aspects are identical to scx_bpf_dsq_insert(). 8898 * 8899 * @args->vtime ordering is according to time_before64() which considers 8900 * wrapping. A numerically larger vtime may indicate an earlier position in the 8901 * ordering and vice-versa. 8902 * 8903 * A DSQ can only be used as a FIFO or priority queue at any given time and this 8904 * function must not be called on a DSQ which already has one or more FIFO tasks 8905 * queued and vice-versa. Also, the built-in DSQs (SCX_DSQ_LOCAL and 8906 * SCX_DSQ_GLOBAL) cannot be used as priority queues. 8907 * 8908 * Returns %true on successful insertion, %false on failure. On the root 8909 * scheduler, %false return triggers scheduler abort and the caller doesn't need 8910 * to check the return value. 8911 */ 8912 __bpf_kfunc bool 8913 __scx_bpf_dsq_insert_vtime(struct task_struct *p, 8914 struct scx_bpf_dsq_insert_vtime_args *args, 8915 const struct bpf_prog_aux *aux) 8916 { 8917 struct scx_sched *sch; 8918 8919 guard(rcu)(); 8920 8921 sch = scx_prog_sched(aux); 8922 if (unlikely(!sch)) 8923 return false; 8924 8925 return scx_dsq_insert_vtime(sch, p, args->dsq_id, args->slice, 8926 args->vtime, args->enq_flags); 8927 } 8928 8929 /* 8930 * COMPAT: Will be removed in v6.23. 8931 */ 8932 __bpf_kfunc void scx_bpf_dsq_insert_vtime(struct task_struct *p, u64 dsq_id, 8933 u64 slice, u64 vtime, u64 enq_flags) 8934 { 8935 struct scx_sched *sch; 8936 8937 guard(rcu)(); 8938 8939 sch = rcu_dereference(scx_root); 8940 if (unlikely(!sch)) 8941 return; 8942 8943 #ifdef CONFIG_EXT_SUB_SCHED 8944 /* 8945 * Disallow if any sub-scheds are attached. There is no way to tell 8946 * which scheduler called us, just error out @p's scheduler. 8947 */ 8948 if (unlikely(!list_empty(&sch->children))) { 8949 scx_error(scx_task_sched(p), "__scx_bpf_dsq_insert_vtime() must be used"); 8950 return; 8951 } 8952 #endif 8953 8954 scx_dsq_insert_vtime(sch, p, dsq_id, slice, vtime, enq_flags); 8955 } 8956 8957 __bpf_kfunc_end_defs(); 8958 8959 BTF_KFUNCS_START(scx_kfunc_ids_enqueue_dispatch) 8960 BTF_ID_FLAGS(func, scx_bpf_dsq_insert, KF_IMPLICIT_ARGS | KF_RCU) 8961 BTF_ID_FLAGS(func, scx_bpf_dsq_insert___v2, KF_IMPLICIT_ARGS | KF_RCU) 8962 BTF_ID_FLAGS(func, __scx_bpf_dsq_insert_vtime, KF_IMPLICIT_ARGS | KF_RCU) 8963 BTF_ID_FLAGS(func, scx_bpf_dsq_insert_vtime, KF_RCU) 8964 BTF_KFUNCS_END(scx_kfunc_ids_enqueue_dispatch) 8965 8966 static const struct btf_kfunc_id_set scx_kfunc_set_enqueue_dispatch = { 8967 .owner = THIS_MODULE, 8968 .set = &scx_kfunc_ids_enqueue_dispatch, 8969 .filter = scx_kfunc_context_filter, 8970 }; 8971 8972 static bool scx_dsq_move(struct bpf_iter_scx_dsq_kern *kit, 8973 struct task_struct *p, u64 dsq_id, u64 enq_flags, 8974 bool priq) 8975 { 8976 struct scx_dispatch_q *src_dsq = kit->dsq, *dst_dsq; 8977 struct scx_sched *sch; 8978 struct rq *p_rq, *src_rq, *locked_rq; 8979 bool dispatched = false; 8980 unsigned long flags; 8981 8982 /* 8983 * The verifier considers an iterator slot initialized on any 8984 * KF_ITER_NEW return, so a BPF program may legally reach here after 8985 * bpf_iter_scx_dsq_new() failed and left @kit->dsq NULL. 8986 */ 8987 if (unlikely(!src_dsq)) 8988 return false; 8989 8990 sch = src_dsq->sched; 8991 8992 if (!scx_vet_enq_flags(sch, dsq_id, &enq_flags)) 8993 return false; 8994 8995 /* internal bit, can only go in after @enq_flags is vetted */ 8996 if (priq) 8997 enq_flags |= SCX_ENQ_DSQ_PRIQ; 8998 8999 /* 9000 * If the BPF scheduler keeps calling this function repeatedly, it can 9001 * cause similar live-lock conditions as scx_consume_dispatch_q(). 9002 */ 9003 if (unlikely(READ_ONCE(sch->aborting))) 9004 return false; 9005 9006 if (unlikely(!scx_task_on_sched(sch, p))) { 9007 scx_error(sch, "scx_bpf_dsq_move[_vtime]() on %s[%d] but the task belongs to a different scheduler", 9008 p->comm, p->pid); 9009 return false; 9010 } 9011 9012 /* 9013 * Can be called from either ops.dispatch() holding the dispatched rq's 9014 * lock or any context where no rq lock is held. If latter, lock @p's 9015 * task_rq which we'll likely need anyway. 9016 */ 9017 src_rq = task_rq(p); 9018 9019 local_irq_save(flags); 9020 9021 /* 9022 * Under core scheduling, dispatch can run for a sibling rq, so the 9023 * locked rq is not necessarily this CPU's. 9024 */ 9025 locked_rq = scx_locked_rq(); 9026 9027 if (locked_rq) { 9028 if (locked_rq != src_rq) 9029 switch_rq_lock(locked_rq, src_rq); 9030 } else { 9031 raw_spin_rq_lock(src_rq); 9032 } 9033 9034 p_rq = src_rq; 9035 raw_spin_lock(&src_dsq->lock); 9036 9037 /* did someone else get to it while we dropped the locks? */ 9038 if (nldsq_cursor_lost_task(&kit->cursor, src_rq, src_dsq, p)) { 9039 raw_spin_unlock(&src_dsq->lock); 9040 goto out; 9041 } 9042 9043 /* @p is still on $src_dsq and stable, determine the destination */ 9044 dst_dsq = find_dsq_for_dispatch(sch, locked_rq ?: this_rq(), dsq_id, task_cpu(p)); 9045 9046 /* 9047 * Apply vtime and slice updates before moving. @p is still on $src_dsq 9048 * with both $src_dsq and its task_rq locked, satisfying the write 9049 * rules, and the PRIQ insertion into $dst_dsq reads the new vtime. 9050 */ 9051 if (kit->cursor.flags & __SCX_DSQ_ITER_HAS_VTIME) 9052 p->scx.dsq_vtime = kit->vtime; 9053 if (kit->cursor.flags & __SCX_DSQ_ITER_HAS_SLICE) 9054 scx_set_task_slice(p, kit->slice); 9055 9056 /* execute move */ 9057 p_rq = move_task_between_dsqs(sch, p, enq_flags, src_dsq, dst_dsq); 9058 dispatched = true; 9059 out: 9060 if (locked_rq) { 9061 if (locked_rq != p_rq) 9062 switch_rq_lock(p_rq, locked_rq); 9063 } else { 9064 scx_rq_lock_drop(p_rq); 9065 raw_spin_rq_unlock_irqrestore(p_rq, flags); 9066 } 9067 9068 kit->cursor.flags &= ~(__SCX_DSQ_ITER_HAS_SLICE | 9069 __SCX_DSQ_ITER_HAS_VTIME); 9070 return dispatched; 9071 } 9072 9073 __bpf_kfunc_start_defs(); 9074 9075 /** 9076 * scx_bpf_dispatch_nr_slots - Return the number of remaining dispatch slots 9077 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9078 * 9079 * Can only be called from ops.dispatch(). 9080 */ 9081 __bpf_kfunc u32 scx_bpf_dispatch_nr_slots(const struct bpf_prog_aux *aux) 9082 { 9083 struct scx_sched *sch; 9084 9085 guard(rcu)(); 9086 9087 sch = scx_prog_sched(aux); 9088 if (unlikely(!sch)) 9089 return 0; 9090 9091 return sch->dsp_max_batch - __this_cpu_read(sch->pcpu->dsp_ctx.cursor); 9092 } 9093 9094 /** 9095 * scx_bpf_dispatch_cancel - Cancel the latest dispatch 9096 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9097 * 9098 * Cancel the latest dispatch. Can be called multiple times to cancel further 9099 * dispatches. Can only be called from ops.dispatch(). 9100 */ 9101 __bpf_kfunc void scx_bpf_dispatch_cancel(const struct bpf_prog_aux *aux) 9102 { 9103 struct scx_sched *sch; 9104 struct scx_dsp_ctx *dspc; 9105 9106 guard(rcu)(); 9107 9108 sch = scx_prog_sched(aux); 9109 if (unlikely(!sch)) 9110 return; 9111 9112 dspc = &this_cpu_ptr(sch->pcpu)->dsp_ctx; 9113 9114 if (dspc->cursor > 0) 9115 dspc->cursor--; 9116 else 9117 scx_error(sch, "dispatch buffer underflow"); 9118 } 9119 9120 /** 9121 * scx_bpf_dsq_move_to_local___v2 - move a task from a DSQ to the current CPU's local DSQ 9122 * @dsq_id: DSQ to move task from. Must be a user-created DSQ 9123 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9124 * @enq_flags: %SCX_ENQ_* 9125 * 9126 * Move a task from the non-local DSQ identified by @dsq_id to the current CPU's 9127 * local DSQ for execution with @enq_flags applied. Can only be called from 9128 * ops.dispatch(). 9129 * 9130 * Built-in DSQs (%SCX_DSQ_GLOBAL and %SCX_DSQ_LOCAL*) are not supported as 9131 * sources. Local DSQs support reenqueueing (a task can be picked up for 9132 * execution, dequeued for property changes, or reenqueued), but the BPF 9133 * scheduler cannot directly iterate or move tasks from them. %SCX_DSQ_GLOBAL 9134 * is similar but also doesn't support reenqueueing, as it maps to multiple 9135 * per-node DSQs making the scope difficult to define; this may change in the 9136 * future. 9137 * 9138 * This function flushes the in-flight dispatches from scx_bpf_dsq_insert() 9139 * before trying to move from the specified DSQ. It may also grab rq locks and 9140 * thus can't be called under any BPF locks. 9141 * 9142 * Returns %true if a task has been moved, %false if there isn't any task to 9143 * move. 9144 */ 9145 __bpf_kfunc bool scx_bpf_dsq_move_to_local___v2(u64 dsq_id, u64 enq_flags, 9146 const struct bpf_prog_aux *aux) 9147 { 9148 struct scx_dispatch_q *dsq; 9149 struct scx_sched *sch; 9150 struct scx_dsp_ctx *dspc; 9151 9152 guard(rcu)(); 9153 9154 sch = scx_prog_sched(aux); 9155 if (unlikely(!sch)) 9156 return false; 9157 9158 if (!scx_vet_enq_flags(sch, SCX_DSQ_LOCAL, &enq_flags)) 9159 return false; 9160 9161 dspc = &this_cpu_ptr(sch->pcpu)->dsp_ctx; 9162 9163 scx_flush_dispatch_buf(sch, dspc->rq); 9164 9165 dsq = find_user_dsq(sch, dsq_id); 9166 if (unlikely(!dsq)) { 9167 scx_error(sch, "invalid DSQ ID 0x%016llx", dsq_id); 9168 return false; 9169 } 9170 9171 if (scx_consume_dispatch_q(sch, dspc->rq, dsq, enq_flags)) { 9172 /* 9173 * A successfully consumed task can be dequeued before it starts 9174 * running while the CPU is trying to migrate other dispatched 9175 * tasks. Bump nr_tasks to tell dispatch_one() to retry on empty 9176 * local DSQ. 9177 */ 9178 dspc->nr_tasks++; 9179 return true; 9180 } else { 9181 return false; 9182 } 9183 } 9184 9185 /* 9186 * COMPAT: ___v2 was introduced in v7.1. Remove this and ___v2 tag in the future. 9187 */ 9188 __bpf_kfunc bool scx_bpf_dsq_move_to_local(u64 dsq_id, const struct bpf_prog_aux *aux) 9189 { 9190 return scx_bpf_dsq_move_to_local___v2(dsq_id, 0, aux); 9191 } 9192 9193 /** 9194 * scx_bpf_dsq_move_set_slice - Override slice when moving between DSQs 9195 * @it__iter: DSQ iterator in progress 9196 * @slice: duration the moved task can run for in nsecs 9197 * 9198 * Override the slice of the next task that will be moved from @it__iter using 9199 * scx_bpf_dsq_move[_vtime](). If this function is not called, the previous 9200 * slice duration is kept. 9201 */ 9202 __bpf_kfunc void scx_bpf_dsq_move_set_slice(struct bpf_iter_scx_dsq *it__iter, 9203 u64 slice) 9204 { 9205 struct bpf_iter_scx_dsq_kern *kit = (void *)it__iter; 9206 9207 kit->slice = slice; 9208 kit->cursor.flags |= __SCX_DSQ_ITER_HAS_SLICE; 9209 } 9210 9211 /** 9212 * scx_bpf_dsq_move_set_vtime - Override vtime when moving between DSQs 9213 * @it__iter: DSQ iterator in progress 9214 * @vtime: task's ordering inside the vtime-sorted queue of the target DSQ 9215 * 9216 * Override the vtime of the next task that will be moved from @it__iter using 9217 * scx_bpf_dsq_move_vtime(). If this function is not called, the previous slice 9218 * vtime is kept. If scx_bpf_dsq_move() is used to dispatch the next task, the 9219 * override is ignored and cleared. 9220 */ 9221 __bpf_kfunc void scx_bpf_dsq_move_set_vtime(struct bpf_iter_scx_dsq *it__iter, 9222 u64 vtime) 9223 { 9224 struct bpf_iter_scx_dsq_kern *kit = (void *)it__iter; 9225 9226 kit->vtime = vtime; 9227 kit->cursor.flags |= __SCX_DSQ_ITER_HAS_VTIME; 9228 } 9229 9230 /** 9231 * scx_bpf_dsq_move - Move a task from DSQ iteration to a DSQ 9232 * @it__iter: DSQ iterator in progress 9233 * @p: task to transfer 9234 * @dsq_id: DSQ to move @p to 9235 * @enq_flags: SCX_ENQ_* 9236 * 9237 * Transfer @p which is on the DSQ currently iterated by @it__iter to the DSQ 9238 * specified by @dsq_id. All DSQs - local DSQs, global DSQ and user DSQs - can 9239 * be the destination. 9240 * 9241 * For the transfer to be successful, @p must still be on the DSQ and have been 9242 * queued before the DSQ iteration started. This function doesn't care whether 9243 * @p was obtained from the DSQ iteration. @p just has to be on the DSQ and have 9244 * been queued before the iteration started. 9245 * 9246 * @p's slice is kept by default. Use scx_bpf_dsq_move_set_slice() to update. 9247 * 9248 * Can be called from ops.dispatch() or any BPF context which doesn't hold a rq 9249 * lock (e.g. BPF timers or SYSCALL programs). 9250 * 9251 * Returns %true if @p has been consumed, %false if @p had already been 9252 * consumed, dequeued, or, for sub-scheds, @dsq_id points to a disallowed local 9253 * DSQ. 9254 */ 9255 __bpf_kfunc bool scx_bpf_dsq_move(struct bpf_iter_scx_dsq *it__iter, 9256 struct task_struct *p, u64 dsq_id, 9257 u64 enq_flags) 9258 { 9259 return scx_dsq_move((struct bpf_iter_scx_dsq_kern *)it__iter, 9260 p, dsq_id, enq_flags, false); 9261 } 9262 9263 /** 9264 * scx_bpf_dsq_move_vtime - Move a task from DSQ iteration to a PRIQ DSQ 9265 * @it__iter: DSQ iterator in progress 9266 * @p: task to transfer 9267 * @dsq_id: DSQ to move @p to 9268 * @enq_flags: SCX_ENQ_* 9269 * 9270 * Transfer @p which is on the DSQ currently iterated by @it__iter to the 9271 * priority queue of the DSQ specified by @dsq_id. The destination must be a 9272 * user DSQ as only user DSQs support priority queue. 9273 * 9274 * @p's slice and vtime are kept by default. Use scx_bpf_dsq_move_set_slice() 9275 * and scx_bpf_dsq_move_set_vtime() to update. 9276 * 9277 * All other aspects are identical to scx_bpf_dsq_move(). See 9278 * scx_bpf_dsq_insert_vtime() for more information on @vtime. 9279 */ 9280 __bpf_kfunc bool scx_bpf_dsq_move_vtime(struct bpf_iter_scx_dsq *it__iter, 9281 struct task_struct *p, u64 dsq_id, 9282 u64 enq_flags) 9283 { 9284 return scx_dsq_move((struct bpf_iter_scx_dsq_kern *)it__iter, 9285 p, dsq_id, enq_flags, true); 9286 } 9287 9288 __bpf_kfunc_end_defs(); 9289 9290 BTF_KFUNCS_START(scx_kfunc_ids_dispatch) 9291 BTF_ID_FLAGS(func, scx_bpf_dispatch_nr_slots, KF_IMPLICIT_ARGS) 9292 BTF_ID_FLAGS(func, scx_bpf_dispatch_cancel, KF_IMPLICIT_ARGS) 9293 BTF_ID_FLAGS(func, scx_bpf_dsq_move_to_local, KF_IMPLICIT_ARGS) 9294 BTF_ID_FLAGS(func, scx_bpf_dsq_move_to_local___v2, KF_IMPLICIT_ARGS) 9295 /* scx_bpf_dsq_move*() also in scx_kfunc_ids_unlocked: callable from unlocked contexts */ 9296 BTF_ID_FLAGS(func, scx_bpf_dsq_move_set_slice, KF_RCU) 9297 BTF_ID_FLAGS(func, scx_bpf_dsq_move_set_vtime, KF_RCU) 9298 BTF_ID_FLAGS(func, scx_bpf_dsq_move, KF_RCU) 9299 BTF_ID_FLAGS(func, scx_bpf_dsq_move_vtime, KF_RCU) 9300 #ifdef CONFIG_EXT_SUB_SCHED 9301 BTF_ID_FLAGS(func, scx_bpf_sub_dispatch, KF_IMPLICIT_ARGS) 9302 #endif 9303 BTF_KFUNCS_END(scx_kfunc_ids_dispatch) 9304 9305 static const struct btf_kfunc_id_set scx_kfunc_set_dispatch = { 9306 .owner = THIS_MODULE, 9307 .set = &scx_kfunc_ids_dispatch, 9308 .filter = scx_kfunc_context_filter, 9309 }; 9310 9311 __bpf_kfunc_start_defs(); 9312 9313 /** 9314 * scx_bpf_reenqueue_local - Re-enqueue tasks on a local DSQ 9315 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9316 * 9317 * Iterate over all of the tasks currently enqueued on the local DSQ of the 9318 * caller's CPU, and re-enqueue them in the BPF scheduler. Returns the number of 9319 * processed tasks. Can only be called from ops.cpu_release(). 9320 */ 9321 __bpf_kfunc u32 scx_bpf_reenqueue_local(const struct bpf_prog_aux *aux) 9322 { 9323 struct scx_sched *sch; 9324 struct rq *rq; 9325 9326 guard(rcu)(); 9327 sch = scx_prog_sched(aux); 9328 if (unlikely(!sch)) 9329 return 0; 9330 9331 rq = cpu_rq(smp_processor_id()); 9332 lockdep_assert_rq_held(rq); 9333 9334 return reenq_local(sch, rq, SCX_REENQ_ANY); 9335 } 9336 9337 __bpf_kfunc_end_defs(); 9338 9339 BTF_KFUNCS_START(scx_kfunc_ids_cpu_release) 9340 BTF_ID_FLAGS(func, scx_bpf_reenqueue_local, KF_IMPLICIT_ARGS) 9341 BTF_KFUNCS_END(scx_kfunc_ids_cpu_release) 9342 9343 static const struct btf_kfunc_id_set scx_kfunc_set_cpu_release = { 9344 .owner = THIS_MODULE, 9345 .set = &scx_kfunc_ids_cpu_release, 9346 .filter = scx_kfunc_context_filter, 9347 }; 9348 9349 __bpf_kfunc_start_defs(); 9350 9351 /** 9352 * scx_bpf_create_dsq - Create a custom DSQ 9353 * @dsq_id: DSQ to create 9354 * @node: NUMA node to allocate from 9355 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9356 * 9357 * Create a custom DSQ identified by @dsq_id. Can be called from any sleepable 9358 * scx callback, and any BPF_PROG_TYPE_SYSCALL prog. 9359 */ 9360 __bpf_kfunc s32 scx_bpf_create_dsq(u64 dsq_id, s32 node, const struct bpf_prog_aux *aux) 9361 { 9362 struct scx_dispatch_q *dsq; 9363 struct scx_sched *sch; 9364 s32 ret; 9365 9366 if (unlikely(node >= (int)nr_node_ids || 9367 (node < 0 && node != NUMA_NO_NODE))) 9368 return -EINVAL; 9369 9370 if (unlikely(dsq_id & SCX_DSQ_FLAG_BUILTIN)) 9371 return -EINVAL; 9372 9373 dsq = kmalloc_node(sizeof(*dsq), GFP_KERNEL, node); 9374 if (!dsq) 9375 return -ENOMEM; 9376 9377 /* 9378 * scx_init_dsq() must be called in GFP_KERNEL context. Init it with 9379 * NULL @sch and update afterwards. 9380 */ 9381 ret = scx_init_dsq(dsq, dsq_id, NULL); 9382 if (ret) { 9383 kfree(dsq); 9384 return ret; 9385 } 9386 9387 rcu_read_lock(); 9388 9389 sch = scx_prog_sched(aux); 9390 if (sch) { 9391 dsq->sched = sch; 9392 ret = rhashtable_lookup_insert_fast(&sch->dsq_hash, &dsq->hash_node, 9393 dsq_hash_params); 9394 } else { 9395 ret = -ENODEV; 9396 } 9397 9398 rcu_read_unlock(); 9399 if (ret) { 9400 exit_dsq(dsq); 9401 kfree(dsq); 9402 } 9403 return ret; 9404 } 9405 9406 __bpf_kfunc_end_defs(); 9407 9408 BTF_KFUNCS_START(scx_kfunc_ids_unlocked) 9409 BTF_ID_FLAGS(func, scx_bpf_create_dsq, KF_IMPLICIT_ARGS | KF_SLEEPABLE) 9410 /* also in scx_kfunc_ids_dispatch: also callable from ops.dispatch() */ 9411 BTF_ID_FLAGS(func, scx_bpf_dsq_move_set_slice, KF_RCU) 9412 BTF_ID_FLAGS(func, scx_bpf_dsq_move_set_vtime, KF_RCU) 9413 BTF_ID_FLAGS(func, scx_bpf_dsq_move, KF_RCU) 9414 BTF_ID_FLAGS(func, scx_bpf_dsq_move_vtime, KF_RCU) 9415 /* also in scx_kfunc_ids_select_cpu: also callable from ops.select_cpu()/ops.enqueue() */ 9416 BTF_ID_FLAGS(func, __scx_bpf_select_cpu_and, KF_IMPLICIT_ARGS | KF_RCU) 9417 BTF_ID_FLAGS(func, scx_bpf_select_cpu_and, KF_RCU) 9418 BTF_ID_FLAGS(func, scx_bpf_select_cpu_dfl, KF_IMPLICIT_ARGS | KF_RCU) 9419 BTF_KFUNCS_END(scx_kfunc_ids_unlocked) 9420 9421 static const struct btf_kfunc_id_set scx_kfunc_set_unlocked = { 9422 .owner = THIS_MODULE, 9423 .set = &scx_kfunc_ids_unlocked, 9424 .filter = scx_kfunc_context_filter, 9425 }; 9426 9427 __bpf_kfunc_start_defs(); 9428 9429 /** 9430 * scx_bpf_task_set_slice - Set task's time slice 9431 * @p: task of interest 9432 * @slice: time slice to set in nsecs 9433 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9434 * 9435 * Set @p's time slice. @p must be on the calling scheduler. The value is 9436 * applied whether or not the caller holds @p's rq lock - see the slice write 9437 * rules above for the ownership model. 9438 * 9439 * Raising the slice is honored only while the scheduler holds %SCX_CAP_BASE on 9440 * @p's cpu, otherwise it is counted in %SCX_EV_SLICE_DENIED. Shortening is 9441 * always allowed. On the stashed path the slice is packed into an atomic64_t 9442 * with the scheduler id and a flag bit, so a slice too large to fit is clamped 9443 * and counted in %SCX_EV_SLICE_CLAMPED. %SCX_SLICE_INF is preserved. 9444 * 9445 * Return %true on success, %false if @p is not on the calling scheduler. 9446 */ 9447 __bpf_kfunc bool scx_bpf_task_set_slice(struct task_struct *p, u64 slice, 9448 const struct bpf_prog_aux *aux) 9449 { 9450 struct scx_sched *sch; 9451 struct rq *locked_rq; 9452 9453 guard(rcu)(); 9454 sch = scx_prog_sched(aux); 9455 if (unlikely(!sch || !scx_task_on_sched(sch, p))) 9456 return false; 9457 9458 /* 9459 * Directly write only when we hold the lock of the rq @p is queued or 9460 * running on. See the write rules above. 9461 * 9462 * While @p is queued on a user DSQ or in the BPF scheduler, 9463 * synchronization is the scheduler's responsibility. This write can 9464 * race a concurrent dispatch's commit, see apply_slice_vtime(). 9465 * 9466 * Making this kfunc always go through the oob stash would leave the 9467 * commit as the only direct writer and close the race, but that would 9468 * require two more oob application points - the dispatch keep-prev test 9469 * and the tick-time expiry check. 9470 */ 9471 locked_rq = scx_locked_rq(); 9472 if (!locked_rq || 9473 (READ_ONCE(p->scx.runnable_cpu) != cpu_of(locked_rq) && 9474 !task_current(locked_rq, p))) { 9475 set_task_slice_oob(sch, p, slice); 9476 return true; 9477 } 9478 9479 /* under the rq lock: apply now, extensions gated on baseline access */ 9480 if (slice > p->scx.slice && 9481 unlikely(scx_missing_caps(sch, cpu_of(locked_rq), SCX_CAP_BASE))) { 9482 __scx_add_event(sch, SCX_EV_SLICE_DENIED, 1); 9483 return true; 9484 } 9485 9486 if (unlikely(!scx_set_task_slice(p, slice))) 9487 __scx_add_event(sch, SCX_EV_SLICE_DENIED, 1); 9488 9489 return true; 9490 } 9491 9492 /** 9493 * scx_bpf_task_set_dsq_vtime - Set task's virtual time for DSQ ordering 9494 * @p: task of interest 9495 * @vtime: virtual time to set 9496 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9497 * 9498 * Set @p's virtual time to @vtime. Returns %true on success, %false if the 9499 * calling scheduler doesn't have authority over @p. 9500 */ 9501 __bpf_kfunc bool scx_bpf_task_set_dsq_vtime(struct task_struct *p, u64 vtime, 9502 const struct bpf_prog_aux *aux) 9503 { 9504 struct scx_sched *sch; 9505 9506 guard(rcu)(); 9507 sch = scx_prog_sched(aux); 9508 if (unlikely(!sch || !scx_task_on_sched(sch, p))) 9509 return false; 9510 9511 p->scx.dsq_vtime = vtime; 9512 return true; 9513 } 9514 9515 void scx_kick_cpu(struct scx_sched *sch, s32 cpu, u64 flags) 9516 { 9517 struct scx_sched_pcpu *pcpu; 9518 struct rq *this_rq; 9519 unsigned long irq_flags; 9520 9521 /* 9522 * The per-cpu kick list is guarded only by local_irq_save(), which does 9523 * not mask NMIs, so kicking from NMI could corrupt it and is unsupported. 9524 */ 9525 if (unlikely(in_nmi())) { 9526 scx_error(sch, "scx_bpf_kick_cpu() called from NMI"); 9527 return; 9528 } 9529 9530 local_irq_save(irq_flags); 9531 9532 this_rq = this_rq(); 9533 pcpu = this_cpu_ptr(sch->pcpu); 9534 9535 /* 9536 * While bypassing for PM ops, IRQ handling may not be online which can 9537 * lead to irq_work_queue() malfunction such as infinite busy wait for 9538 * IRQ status update. Suppress kicking. 9539 */ 9540 if (scx_bypassing(sch, cpu_of(this_rq))) 9541 goto out; 9542 9543 /* 9544 * Actual kicking is bounced to kick_cpus_irq_workfn() to avoid nesting 9545 * rq locks. We can probably be smarter and avoid bouncing if called 9546 * from ops which don't hold a rq lock. 9547 * 9548 * The kick masks are owned by @sch->pcpu, so that a preempt kick can be 9549 * attributed to @sch. 9550 */ 9551 if (flags & SCX_KICK_IDLE) { 9552 struct rq *target_rq = cpu_rq(cpu); 9553 9554 if (unlikely(flags & (SCX_KICK_PREEMPT | SCX_KICK_WAIT))) 9555 scx_error(sch, "PREEMPT/WAIT cannot be used with SCX_KICK_IDLE"); 9556 9557 if (raw_spin_rq_trylock(target_rq)) { 9558 if (can_skip_idle_kick(target_rq)) { 9559 scx_rq_lock_drop(target_rq); 9560 raw_spin_rq_unlock(target_rq); 9561 goto out; 9562 } 9563 scx_rq_lock_drop(target_rq); 9564 raw_spin_rq_unlock(target_rq); 9565 } 9566 cpumask_set_cpu(cpu, pcpu->cpus_to_kick_if_idle); 9567 } else { 9568 cpumask_set_cpu(cpu, pcpu->cpus_to_kick); 9569 9570 if (flags & SCX_KICK_PREEMPT) 9571 cpumask_set_cpu(cpu, pcpu->cpus_to_preempt); 9572 if (flags & SCX_KICK_WAIT) 9573 cpumask_set_cpu(cpu, pcpu->cpus_to_wait); 9574 } 9575 9576 if (list_empty(&pcpu->to_kick_node)) 9577 list_add_tail(&pcpu->to_kick_node, &this_rq->scx.sched_pcpus_to_kick); 9578 irq_work_queue(&this_rq->scx.kick_cpus_irq_work); 9579 out: 9580 local_irq_restore(irq_flags); 9581 } 9582 9583 /** 9584 * scx_bpf_kick_cpu - Trigger reschedule on a CPU 9585 * @cpu: cpu to kick 9586 * @flags: %SCX_KICK_* flags 9587 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9588 * 9589 * Kick @cpu into rescheduling. This can be used to wake up an idle CPU or 9590 * trigger rescheduling on a busy CPU. This can be called from any online 9591 * scx_ops operation and the actual kicking is performed asynchronously through 9592 * an irq work. 9593 */ 9594 __bpf_kfunc void scx_bpf_kick_cpu(s32 cpu, u64 flags, const struct bpf_prog_aux *aux) 9595 { 9596 struct scx_sched *sch; 9597 9598 guard(rcu)(); 9599 sch = scx_prog_sched(aux); 9600 if (likely(sch) && scx_cpu_valid(sch, cpu, NULL)) 9601 scx_kick_cpu(sch, cpu, flags); 9602 } 9603 9604 /** 9605 * scx_bpf_kick_cid - Trigger reschedule on the CPU mapped to @cid 9606 * @cid: cid to kick 9607 * @flags: %SCX_KICK_* flags 9608 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9609 * 9610 * cid-addressed equivalent of scx_bpf_kick_cpu(). An invalid @cid aborts the 9611 * scheduler via scx_cid_to_cpu(). Caps are enforced on the delivery path: a 9612 * kick is dropped if the caller lacks baseline access on @cid, and a 9613 * %SCX_KICK_PREEMPT degrades to a plain reschedule if the caller lacks 9614 * %SCX_CAP_PREEMPT for a task outside its subtree. 9615 */ 9616 __bpf_kfunc void scx_bpf_kick_cid(s32 cid, u64 flags, const struct bpf_prog_aux *aux) 9617 { 9618 struct scx_sched *sch; 9619 s32 cpu; 9620 9621 guard(rcu)(); 9622 sch = scx_prog_sched(aux); 9623 if (unlikely(!sch)) 9624 return; 9625 cpu = scx_cid_to_cpu(sch, cid); 9626 if (cpu < 0) 9627 return; 9628 scx_kick_cpu(sch, cpu, flags); 9629 } 9630 9631 /** 9632 * scx_bpf_dsq_nr_queued - Return the number of queued tasks 9633 * @dsq_id: id of the DSQ 9634 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9635 * 9636 * Return the number of tasks in the DSQ matching @dsq_id. If not found, 9637 * -%ENOENT is returned. 9638 * 9639 * %SCX_DSQ_LOCAL resolves to the local DSQ of the rq the current scheduler 9640 * operation is locked to - e.g. the rq being dispatched for in ops.dispatch() - 9641 * or the calling CPU's when no rq is locked. 9642 */ 9643 __bpf_kfunc s32 scx_bpf_dsq_nr_queued(u64 dsq_id, const struct bpf_prog_aux *aux) 9644 { 9645 struct scx_sched *sch; 9646 struct scx_dispatch_q *dsq; 9647 s32 ret; 9648 9649 preempt_disable(); 9650 9651 sch = scx_prog_sched(aux); 9652 if (unlikely(!sch)) { 9653 ret = -ENODEV; 9654 goto out; 9655 } 9656 9657 if (dsq_id == SCX_DSQ_LOCAL) { 9658 ret = READ_ONCE((scx_locked_rq() ?: this_rq())->scx.local_dsq.nr); 9659 goto out; 9660 } else if ((dsq_id & SCX_DSQ_LOCAL_ON) == SCX_DSQ_LOCAL_ON) { 9661 s32 cpu = scx_cpu_ret(sch, dsq_id & SCX_DSQ_LOCAL_CPU_MASK); 9662 9663 if (scx_cpu_valid(sch, cpu, NULL)) { 9664 ret = READ_ONCE(cpu_rq(cpu)->scx.local_dsq.nr); 9665 goto out; 9666 } 9667 } else { 9668 dsq = find_user_dsq(sch, dsq_id); 9669 if (dsq) { 9670 ret = READ_ONCE(dsq->nr); 9671 goto out; 9672 } 9673 } 9674 ret = -ENOENT; 9675 out: 9676 preempt_enable(); 9677 return ret; 9678 } 9679 9680 /** 9681 * scx_bpf_destroy_dsq - Destroy a custom DSQ 9682 * @dsq_id: DSQ to destroy 9683 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9684 * 9685 * Destroy the custom DSQ identified by @dsq_id. Only DSQs created with 9686 * scx_bpf_create_dsq() can be destroyed. The caller must ensure that the DSQ is 9687 * empty and no further tasks are dispatched to it. Ignored if called on a DSQ 9688 * which doesn't exist. Can be called from any online scx_ops operations. 9689 */ 9690 __bpf_kfunc void scx_bpf_destroy_dsq(u64 dsq_id, const struct bpf_prog_aux *aux) 9691 { 9692 struct scx_sched *sch; 9693 9694 guard(rcu)(); 9695 sch = scx_prog_sched(aux); 9696 if (sch) 9697 destroy_dsq(sch, dsq_id); 9698 } 9699 9700 /** 9701 * bpf_iter_scx_dsq_new - Create a DSQ iterator 9702 * @it: iterator to initialize 9703 * @dsq_id: DSQ to iterate 9704 * @flags: %SCX_DSQ_ITER_* 9705 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9706 * 9707 * Initialize BPF iterator @it which can be used with bpf_for_each() to walk 9708 * tasks in the DSQ specified by @dsq_id. Iteration using @it only includes 9709 * tasks which are already queued when this function is invoked. 9710 */ 9711 __bpf_kfunc int bpf_iter_scx_dsq_new(struct bpf_iter_scx_dsq *it, u64 dsq_id, 9712 u64 flags, const struct bpf_prog_aux *aux) 9713 { 9714 struct bpf_iter_scx_dsq_kern *kit = (void *)it; 9715 struct scx_sched *sch; 9716 9717 BUILD_BUG_ON(sizeof(struct bpf_iter_scx_dsq_kern) > 9718 sizeof(struct bpf_iter_scx_dsq)); 9719 BUILD_BUG_ON(__alignof__(struct bpf_iter_scx_dsq_kern) != 9720 __alignof__(struct bpf_iter_scx_dsq)); 9721 BUILD_BUG_ON(__SCX_DSQ_ITER_ALL_FLAGS & 9722 ((1U << __SCX_DSQ_LNODE_PRIV_SHIFT) - 1)); 9723 9724 /* 9725 * next() and destroy() will be called regardless of the return value. 9726 * Always clear $kit->dsq. 9727 */ 9728 kit->dsq = NULL; 9729 9730 sch = scx_prog_sched(aux); 9731 if (unlikely(!sch)) 9732 return -ENODEV; 9733 9734 if (flags & ~__SCX_DSQ_ITER_USER_FLAGS) 9735 return -EINVAL; 9736 9737 kit->dsq = find_user_dsq(sch, dsq_id); 9738 if (!kit->dsq) 9739 return -ENOENT; 9740 9741 kit->cursor = INIT_DSQ_LIST_CURSOR(kit->cursor, kit->dsq, flags); 9742 9743 return 0; 9744 } 9745 9746 /** 9747 * bpf_iter_scx_dsq_next - Progress a DSQ iterator 9748 * @it: iterator to progress 9749 * 9750 * Return the next task. See bpf_iter_scx_dsq_new(). 9751 */ 9752 __bpf_kfunc struct task_struct *bpf_iter_scx_dsq_next(struct bpf_iter_scx_dsq *it) 9753 { 9754 struct bpf_iter_scx_dsq_kern *kit = (void *)it; 9755 9756 if (!kit->dsq) 9757 return NULL; 9758 9759 guard(raw_spinlock_irqsave)(&kit->dsq->lock); 9760 9761 return nldsq_cursor_next_task(&kit->cursor, kit->dsq); 9762 } 9763 9764 /** 9765 * bpf_iter_scx_dsq_destroy - Destroy a DSQ iterator 9766 * @it: iterator to destroy 9767 * 9768 * Undo scx_iter_scx_dsq_new(). 9769 */ 9770 __bpf_kfunc void bpf_iter_scx_dsq_destroy(struct bpf_iter_scx_dsq *it) 9771 { 9772 struct bpf_iter_scx_dsq_kern *kit = (void *)it; 9773 9774 if (!kit->dsq) 9775 return; 9776 9777 if (!list_empty(&kit->cursor.node)) { 9778 unsigned long flags; 9779 9780 raw_spin_lock_irqsave(&kit->dsq->lock, flags); 9781 list_del_init(&kit->cursor.node); 9782 raw_spin_unlock_irqrestore(&kit->dsq->lock, flags); 9783 } 9784 kit->dsq = NULL; 9785 } 9786 9787 /** 9788 * scx_bpf_dsq_peek - Lockless peek at the first element. 9789 * @dsq_id: DSQ to examine. 9790 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9791 * 9792 * Read the first element in the DSQ. This is semantically equivalent to using 9793 * the DSQ iterator, but is lockfree. Of course, like any lockless operation, 9794 * this provides only a point-in-time snapshot, and the contents may change 9795 * by the time any subsequent locking operation reads the queue. 9796 * 9797 * Returns the pointer, or NULL indicates an empty queue OR internal error. 9798 */ 9799 __bpf_kfunc struct task_struct *scx_bpf_dsq_peek(u64 dsq_id, 9800 const struct bpf_prog_aux *aux) 9801 { 9802 struct scx_sched *sch; 9803 struct scx_dispatch_q *dsq; 9804 9805 sch = scx_prog_sched(aux); 9806 if (unlikely(!sch)) 9807 return NULL; 9808 9809 if (unlikely(dsq_id & SCX_DSQ_FLAG_BUILTIN)) { 9810 scx_error(sch, "peek disallowed on builtin DSQ 0x%llx", dsq_id); 9811 return NULL; 9812 } 9813 9814 dsq = find_user_dsq(sch, dsq_id); 9815 if (unlikely(!dsq)) { 9816 scx_error(sch, "peek on non-existent DSQ 0x%llx", dsq_id); 9817 return NULL; 9818 } 9819 9820 return rcu_dereference(dsq->first_task); 9821 } 9822 9823 /** 9824 * scx_bpf_dsq_reenq - Re-enqueue tasks on a DSQ 9825 * @dsq_id: DSQ to re-enqueue 9826 * @reenq_flags: %SCX_RENQ_* 9827 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9828 * 9829 * Iterate over all of the tasks currently enqueued on the DSQ identified by 9830 * @dsq_id, and re-enqueue them in the BPF scheduler. The following DSQs are 9831 * supported: 9832 * 9833 * - Local DSQs (%SCX_DSQ_LOCAL or %SCX_DSQ_LOCAL_ON | $cpu) 9834 * - User DSQs 9835 * 9836 * Re-enqueues are performed asynchronously. Can be called from anywhere. 9837 * 9838 * %SCX_DSQ_LOCAL resolves to the local DSQ of the rq the current scheduler 9839 * operation is locked to - e.g. the rq being dispatched for in ops.dispatch() - 9840 * or the calling CPU's when no rq is locked. 9841 */ 9842 __bpf_kfunc void scx_bpf_dsq_reenq(u64 dsq_id, u64 reenq_flags, 9843 const struct bpf_prog_aux *aux) 9844 { 9845 struct rq *locked_rq = scx_locked_rq(); 9846 struct scx_sched *sch; 9847 struct scx_dispatch_q *dsq; 9848 9849 guard(preempt)(); 9850 9851 sch = scx_prog_sched(aux); 9852 if (unlikely(!sch)) 9853 return; 9854 9855 if (unlikely(reenq_flags & ~__SCX_REENQ_USER_MASK)) { 9856 scx_error(sch, "invalid SCX_REENQ flags 0x%llx", reenq_flags); 9857 return; 9858 } 9859 9860 /* not specifying any filter bits is the same as %SCX_REENQ_ANY */ 9861 if (!(reenq_flags & __SCX_REENQ_FILTER_MASK)) 9862 reenq_flags |= SCX_REENQ_ANY; 9863 9864 dsq = find_dsq_for_dispatch(sch, locked_rq ?: this_rq(), dsq_id, smp_processor_id()); 9865 schedule_dsq_reenq(sch, dsq, reenq_flags, locked_rq); 9866 } 9867 9868 /** 9869 * scx_bpf_reenqueue_local___v2 - Re-enqueue tasks on a local DSQ 9870 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9871 * 9872 * Iterate over all of the tasks currently enqueued on the local DSQ of the 9873 * caller's CPU, and re-enqueue them in the BPF scheduler. Can be called from 9874 * anywhere. 9875 * 9876 * This is now a special case of scx_bpf_dsq_reenq() and may be removed in the 9877 * future. 9878 */ 9879 __bpf_kfunc void scx_bpf_reenqueue_local___v2(const struct bpf_prog_aux *aux) 9880 { 9881 scx_bpf_dsq_reenq(SCX_DSQ_LOCAL, 0, aux); 9882 } 9883 9884 __bpf_kfunc_end_defs(); 9885 9886 __printf(5, 0) 9887 static s32 __bstr_format(struct scx_sched *sch, u64 *data_buf, char *line_buf, 9888 size_t line_size, char *fmt, unsigned long long *data, 9889 u32 data__sz) 9890 { 9891 struct bpf_bprintf_data bprintf_data = { .get_bin_args = true }; 9892 s32 ret; 9893 9894 if (data__sz % 8 || data__sz > MAX_BPRINTF_VARARGS * 8 || 9895 (data__sz && !data)) { 9896 scx_error(sch, "invalid data=%p and data__sz=%u", (void *)data, data__sz); 9897 return -EINVAL; 9898 } 9899 9900 ret = copy_from_kernel_nofault(data_buf, data, data__sz); 9901 if (ret < 0) { 9902 scx_error(sch, "failed to read data fields (%d)", ret); 9903 return ret; 9904 } 9905 9906 ret = bpf_bprintf_prepare(fmt, UINT_MAX, data_buf, data__sz / 8, 9907 &bprintf_data); 9908 if (ret < 0) { 9909 scx_error(sch, "format preparation failed (%d)", ret); 9910 return ret; 9911 } 9912 9913 ret = bstr_printf(line_buf, line_size, fmt, 9914 bprintf_data.bin_args); 9915 bpf_bprintf_cleanup(&bprintf_data); 9916 if (ret < 0) { 9917 scx_error(sch, "(\"%s\", %p, %u) failed to format", fmt, data, data__sz); 9918 return ret; 9919 } 9920 9921 return ret; 9922 } 9923 9924 /* 9925 * Exit @sch with the reason formatted from a BPF-supplied bstr format. The exit 9926 * is claimed first and the reason is formatted directly into the winner-owned 9927 * exit_info buffer, which allows use from any context including NMI. 9928 * 9929 * @fmt_blame is the sched blamed for formatting failures through the 9930 * scx_error() calls in __bstr_format() and differs from @sch when a parent 9931 * supplies the kill reason for a child. A formatting failure doesn't revert the 9932 * claim - @sch still exits with the claimed kind and a fallback message. 9933 */ 9934 __printf(5, 0) 9935 bool scx_exit_bstr(struct scx_sched *sch, enum scx_exit_kind kind, 9936 s64 exit_code, struct scx_sched *fmt_blame, char *fmt, 9937 unsigned long long *data, u32 data__sz) 9938 { 9939 struct scx_exit_info *ei = sch->exit_info; 9940 u64 data_buf[MAX_BPRINTF_VARARGS]; 9941 s32 ret; 9942 9943 guard(preempt)(); 9944 9945 if (!scx_claim_exit(sch, kind)) 9946 return false; 9947 9948 ret = __bstr_format(fmt_blame, data_buf, ei->msg, SCX_EXIT_MSG_LEN, 9949 fmt, data, data__sz); 9950 if (ret < 0) 9951 scnprintf(ei->msg, SCX_EXIT_MSG_LEN, 9952 "exit message formatting failed (%d)", ret); 9953 9954 scx_finish_exit(sch, kind, exit_code, raw_smp_processor_id()); 9955 return true; 9956 } 9957 9958 __bpf_kfunc_start_defs(); 9959 9960 /** 9961 * scx_bpf_exit_bstr - Gracefully exit the BPF scheduler. 9962 * @exit_code: Exit value to pass to user space via struct scx_exit_info. 9963 * @fmt: error message format string 9964 * @data: format string parameters packaged using ___bpf_fill() macro 9965 * @data__sz: @data len, must end in '__sz' for the verifier 9966 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9967 * 9968 * Indicate that the BPF scheduler wants to exit gracefully, and initiate ops 9969 * disabling. 9970 */ 9971 __printf(2, 0) 9972 __bpf_kfunc void scx_bpf_exit_bstr(s64 exit_code, char *fmt, 9973 unsigned long long *data, u32 data__sz, 9974 const struct bpf_prog_aux *aux) 9975 { 9976 struct scx_sched *sch; 9977 9978 guard(rcu)(); 9979 9980 sch = scx_prog_sched(aux); 9981 if (likely(sch)) 9982 scx_exit_bstr(sch, SCX_EXIT_UNREG_BPF, exit_code, sch, fmt, 9983 data, data__sz); 9984 } 9985 9986 /** 9987 * scx_bpf_error_bstr - Indicate fatal error 9988 * @fmt: error message format string 9989 * @data: format string parameters packaged using ___bpf_fill() macro 9990 * @data__sz: @data len, must end in '__sz' for the verifier 9991 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 9992 * 9993 * Indicate that the BPF scheduler encountered a fatal error and initiate ops 9994 * disabling. 9995 */ 9996 __printf(1, 0) 9997 __bpf_kfunc void scx_bpf_error_bstr(char *fmt, unsigned long long *data, 9998 u32 data__sz, const struct bpf_prog_aux *aux) 9999 { 10000 struct scx_sched *sch; 10001 10002 guard(rcu)(); 10003 10004 sch = scx_prog_sched(aux); 10005 if (likely(sch)) 10006 scx_exit_bstr(sch, SCX_EXIT_ERROR_BPF, 0, sch, fmt, data, 10007 data__sz); 10008 } 10009 10010 /** 10011 * scx_bpf_dump_bstr - Generate extra debug dump specific to the BPF scheduler 10012 * @fmt: format string 10013 * @data: format string parameters packaged using ___bpf_fill() macro 10014 * @data__sz: @data len, must end in '__sz' for the verifier 10015 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 10016 * 10017 * To be called through scx_bpf_dump() helper from ops.dump(), dump_cpu() and 10018 * dump_task() to generate extra debug dump specific to the BPF scheduler. 10019 * 10020 * The extra dump may be multiple lines. A single line may be split over 10021 * multiple calls. The last line is automatically terminated. 10022 */ 10023 __printf(1, 0) 10024 __bpf_kfunc void scx_bpf_dump_bstr(char *fmt, unsigned long long *data, 10025 u32 data__sz, const struct bpf_prog_aux *aux) 10026 { 10027 struct scx_sched *sch; 10028 struct scx_dump_data *dd = &scx_dump_data; 10029 struct scx_bstr_buf *buf = &dd->buf; 10030 s32 ret; 10031 10032 guard(rcu)(); 10033 10034 sch = scx_prog_sched(aux); 10035 if (unlikely(!sch)) 10036 return; 10037 10038 if (raw_smp_processor_id() != dd->cpu) { 10039 scx_error(sch, "scx_bpf_dump() must only be called from ops.dump() and friends"); 10040 return; 10041 } 10042 10043 /* append the formatted string to the line buf */ 10044 ret = __bstr_format(sch, buf->data, buf->line + dd->cursor, 10045 sizeof(buf->line) - dd->cursor, fmt, data, data__sz); 10046 if (ret < 0) { 10047 scx_dump_line(dd->s, "%s[!] (\"%s\", %p, %u) failed to format (%d)", 10048 dd->prefix, fmt, data, data__sz, ret); 10049 return; 10050 } 10051 10052 dd->cursor += ret; 10053 dd->cursor = min_t(s32, dd->cursor, sizeof(buf->line)); 10054 10055 if (!dd->cursor) 10056 return; 10057 10058 /* 10059 * If the line buf overflowed or ends in a newline, flush it into the 10060 * dump. This is to allow the caller to generate a single line over 10061 * multiple calls. As ops_dump_flush() can also handle multiple lines in 10062 * the line buf, the only case which can lead to an unexpected 10063 * truncation is when the caller keeps generating newlines in the middle 10064 * instead of the end consecutively. Don't do that. 10065 */ 10066 if (dd->cursor >= sizeof(buf->line) || buf->line[dd->cursor - 1] == '\n') 10067 ops_dump_flush(); 10068 } 10069 10070 /** 10071 * scx_bpf_cpuperf_cap - Query the maximum relative capacity of a CPU 10072 * @cpu: CPU of interest 10073 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 10074 * 10075 * Return the maximum relative capacity of @cpu in relation to the most 10076 * performant CPU in the system. The return value is in the range [1, 10077 * %SCX_CPUPERF_ONE]. See scx_bpf_cpuperf_cur(). 10078 */ 10079 __bpf_kfunc u32 scx_bpf_cpuperf_cap(s32 cpu, const struct bpf_prog_aux *aux) 10080 { 10081 struct scx_sched *sch; 10082 10083 guard(rcu)(); 10084 10085 sch = scx_prog_sched(aux); 10086 if (likely(sch) && scx_cpu_valid(sch, cpu, NULL)) 10087 return arch_scale_cpu_capacity(cpu); 10088 else 10089 return SCX_CPUPERF_ONE; 10090 } 10091 10092 /** 10093 * scx_bpf_cidperf_cap - Query the maximum relative capacity of the CPU at @cid 10094 * @cid: cid of the CPU to query 10095 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 10096 * 10097 * cid-addressed equivalent of scx_bpf_cpuperf_cap(). 10098 */ 10099 __bpf_kfunc u32 scx_bpf_cidperf_cap(s32 cid, const struct bpf_prog_aux *aux) 10100 { 10101 struct scx_sched *sch; 10102 s32 cpu; 10103 10104 guard(rcu)(); 10105 10106 sch = scx_prog_sched(aux); 10107 if (unlikely(!sch)) 10108 return SCX_CPUPERF_ONE; 10109 cpu = scx_cid_to_cpu(sch, cid); 10110 if (cpu < 0) 10111 return SCX_CPUPERF_ONE; 10112 return arch_scale_cpu_capacity(cpu); 10113 } 10114 10115 /** 10116 * scx_bpf_cpuperf_cur - Query the current relative performance of a CPU 10117 * @cpu: CPU of interest 10118 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 10119 * 10120 * Return the current relative performance of @cpu in relation to its maximum. 10121 * The return value is in the range [1, %SCX_CPUPERF_ONE]. 10122 * 10123 * The current performance level of a CPU in relation to the maximum performance 10124 * available in the system can be calculated as follows: 10125 * 10126 * scx_bpf_cpuperf_cap() * scx_bpf_cpuperf_cur() / %SCX_CPUPERF_ONE 10127 * 10128 * The result is in the range [1, %SCX_CPUPERF_ONE]. 10129 */ 10130 __bpf_kfunc u32 scx_bpf_cpuperf_cur(s32 cpu, const struct bpf_prog_aux *aux) 10131 { 10132 struct scx_sched *sch; 10133 10134 guard(rcu)(); 10135 10136 sch = scx_prog_sched(aux); 10137 if (likely(sch) && scx_cpu_valid(sch, cpu, NULL)) 10138 return arch_scale_freq_capacity(cpu); 10139 else 10140 return SCX_CPUPERF_ONE; 10141 } 10142 10143 /** 10144 * scx_bpf_cidperf_cur - Query the current performance of the CPU at @cid 10145 * @cid: cid of the CPU to query 10146 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 10147 * 10148 * cid-addressed equivalent of scx_bpf_cpuperf_cur(). 10149 */ 10150 __bpf_kfunc u32 scx_bpf_cidperf_cur(s32 cid, const struct bpf_prog_aux *aux) 10151 { 10152 struct scx_sched *sch; 10153 s32 cpu; 10154 10155 guard(rcu)(); 10156 10157 sch = scx_prog_sched(aux); 10158 if (unlikely(!sch)) 10159 return SCX_CPUPERF_ONE; 10160 cpu = scx_cid_to_cpu(sch, cid); 10161 if (cpu < 0) 10162 return SCX_CPUPERF_ONE; 10163 return arch_scale_freq_capacity(cpu); 10164 } 10165 10166 /* validate and apply a cpuperf target, see scx_bpf_cpuperf_set() */ 10167 static s32 scx_cpuperf_set(struct scx_sched *sch, s32 cpu, u32 perf) 10168 { 10169 struct rq *rq, *locked_rq; 10170 struct rq_flags rf; 10171 s32 ret; 10172 10173 if (unlikely(perf > SCX_CPUPERF_ONE)) { 10174 scx_error(sch, "Invalid cpuperf target %u for CPU %d", perf, cpu); 10175 return -EINVAL; 10176 } 10177 10178 if (!scx_cpu_valid(sch, cpu, NULL)) 10179 return -EINVAL; 10180 10181 rq = cpu_rq(cpu); 10182 locked_rq = scx_locked_rq(); 10183 10184 /* 10185 * When called with an rq lock held, restrict the operation to the 10186 * corresponding CPU to prevent ABBA deadlocks. 10187 */ 10188 if (locked_rq && rq != locked_rq) { 10189 scx_error(sch, "Invalid target CPU %d", cpu); 10190 return -EINVAL; 10191 } 10192 10193 /* 10194 * If no rq lock is held, allow to operate on any CPU by acquiring 10195 * the corresponding rq lock. 10196 */ 10197 if (!locked_rq) { 10198 rq_lock_irqsave(rq, &rf); 10199 update_rq_clock(rq); 10200 } 10201 10202 /* 10203 * ecaps updates are folded under the rq lock, making this test 10204 * authoritative: a write can never land after a revoke has taken 10205 * effect on @cpu. 10206 */ 10207 if (likely(!scx_missing_caps(sch, cpu, SCX_CAP_PERF))) { 10208 rq->scx.cpuperf_target = perf; 10209 cpufreq_update_util(rq, 0); 10210 ret = 0; 10211 } else { 10212 __scx_add_event(sch, SCX_EV_SUB_CIDPERF_DENIED, 1); 10213 ret = -EACCES; 10214 } 10215 10216 if (!locked_rq) 10217 rq_unlock_irqrestore(rq, &rf); 10218 10219 return ret; 10220 } 10221 10222 /** 10223 * scx_bpf_cpuperf_set - Set the relative performance target of a CPU 10224 * @cpu: CPU of interest 10225 * @perf: target performance level [0, %SCX_CPUPERF_ONE] 10226 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 10227 * 10228 * Set the target performance level of @cpu to @perf. @perf is in linear 10229 * relative scale between 0 and %SCX_CPUPERF_ONE. This determines how the 10230 * schedutil cpufreq governor chooses the target frequency. 10231 * 10232 * The actual performance level chosen, CPU grouping, and the overhead and 10233 * latency of the operations are dependent on the hardware and cpufreq driver in 10234 * use. Consult hardware and cpufreq documentation for more information. The 10235 * current performance level can be monitored using scx_bpf_cpuperf_cur(). 10236 */ 10237 __bpf_kfunc void scx_bpf_cpuperf_set(s32 cpu, u32 perf, const struct bpf_prog_aux *aux) 10238 { 10239 struct scx_sched *sch; 10240 10241 guard(rcu)(); 10242 10243 sch = scx_prog_sched(aux); 10244 if (unlikely(!sch)) 10245 return; 10246 10247 scx_cpuperf_set(sch, cpu, perf); 10248 } 10249 10250 /** 10251 * scx_bpf_cidperf_set - Set the performance target of the CPU at @cid 10252 * @cid: cid of the CPU to target 10253 * @perf: target performance level [0, %SCX_CPUPERF_ONE] 10254 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 10255 * 10256 * cid-addressed equivalent of scx_bpf_cpuperf_set(). A sub-sched needs 10257 * SCX_CAP_PERF on @cid. Returns 0 if the target was applied, -%EACCES if 10258 * the write was denied for missing caps, other -errnos if @cid didn't 10259 * resolve. 10260 */ 10261 __bpf_kfunc s32 scx_bpf_cidperf_set(s32 cid, u32 perf, 10262 const struct bpf_prog_aux *aux) 10263 { 10264 struct scx_sched *sch; 10265 s32 cpu; 10266 10267 guard(rcu)(); 10268 10269 sch = scx_prog_sched(aux); 10270 if (unlikely(!sch)) 10271 return -ENODEV; 10272 cpu = scx_cid_to_cpu(sch, cid); 10273 if (cpu < 0) 10274 return cpu; 10275 10276 return scx_cpuperf_set(sch, cpu, perf); 10277 } 10278 10279 /** 10280 * scx_bpf_nr_node_ids - Return the number of possible node IDs 10281 * 10282 * All valid node IDs in the system are smaller than the returned value. 10283 */ 10284 __bpf_kfunc u32 scx_bpf_nr_node_ids(void) 10285 { 10286 return nr_node_ids; 10287 } 10288 10289 /** 10290 * scx_bpf_nr_cpu_ids - Return the number of possible CPU IDs 10291 * 10292 * All valid CPU IDs in the system are smaller than the returned value. 10293 */ 10294 __bpf_kfunc u32 scx_bpf_nr_cpu_ids(void) 10295 { 10296 return nr_cpu_ids; 10297 } 10298 10299 /** 10300 * scx_bpf_nr_cids - Return the size of the cid space 10301 * 10302 * Equals num_possible_cpus(). All valid cids are in [0, return value). 10303 */ 10304 __bpf_kfunc u32 scx_bpf_nr_cids(void) 10305 { 10306 return num_possible_cpus(); 10307 } 10308 10309 /** 10310 * scx_bpf_nr_online_cids - Return current count of online CPUs in cid space 10311 * 10312 * Return num_online_cpus(). The standard model restarts the scheduler on 10313 * hotplug, which lets schedulers treat [0, nr_online_cids) as the online 10314 * range. Schedulers that prefer to handle hotplug without a restart should 10315 * install a custom mapping via scx_bpf_cid_override() and track onlining 10316 * through the ops.cid_online / ops.cid_offline callbacks. 10317 */ 10318 __bpf_kfunc u32 scx_bpf_nr_online_cids(void) 10319 { 10320 return num_online_cpus(); 10321 } 10322 10323 /** 10324 * scx_bpf_this_cid - Return the cid of the CPU this program is running on 10325 * 10326 * cid-addressed equivalent of bpf_get_smp_processor_id() for scx programs. 10327 * The current cpu is trivially valid, so this is just a table lookup. Return 10328 * -EINVAL if called before any scheduler has ever published its cid tables. 10329 */ 10330 __bpf_kfunc s32 scx_bpf_this_cid(void) 10331 { 10332 s16 *tbl; 10333 10334 guard(rcu)(); 10335 10336 tbl = rcu_dereference(scx_cpu_to_cid_tbl); 10337 if (!tbl) 10338 return -EINVAL; 10339 return tbl[raw_smp_processor_id()]; 10340 } 10341 10342 /** 10343 * scx_bpf_get_possible_cpumask - Get a referenced kptr to cpu_possible_mask 10344 */ 10345 __bpf_kfunc const struct cpumask *scx_bpf_get_possible_cpumask(void) 10346 { 10347 return cpu_possible_mask; 10348 } 10349 10350 /** 10351 * scx_bpf_get_online_cpumask - Get a referenced kptr to cpu_online_mask 10352 */ 10353 __bpf_kfunc const struct cpumask *scx_bpf_get_online_cpumask(void) 10354 { 10355 return cpu_online_mask; 10356 } 10357 10358 /** 10359 * scx_bpf_put_cpumask - Release a possible/online cpumask 10360 * @cpumask: cpumask to release 10361 */ 10362 __bpf_kfunc void scx_bpf_put_cpumask(const struct cpumask *cpumask) 10363 { 10364 /* 10365 * Empty function body because we aren't actually acquiring or releasing 10366 * a reference to a global cpumask, which is read-only in the caller and 10367 * is never released. The acquire / release semantics here are just used 10368 * to make the cpumask is a trusted pointer in the caller. 10369 */ 10370 } 10371 10372 /** 10373 * scx_bpf_task_running - Is task currently running? 10374 * @p: task of interest 10375 */ 10376 __bpf_kfunc bool scx_bpf_task_running(const struct task_struct *p) 10377 { 10378 return task_rq(p)->curr == p; 10379 } 10380 10381 /** 10382 * scx_bpf_task_cpu - CPU a task is currently associated with 10383 * @p: task of interest 10384 */ 10385 __bpf_kfunc s32 scx_bpf_task_cpu(const struct task_struct *p) 10386 { 10387 return task_cpu(p); 10388 } 10389 10390 /** 10391 * scx_bpf_task_cid - cid a task is currently associated with 10392 * @p: task of interest 10393 * 10394 * cid-addressed equivalent of scx_bpf_task_cpu(). task_cpu(p) is always a 10395 * valid cpu, so this is just a table lookup. Return -EINVAL if called before 10396 * any scheduler has ever published its cid tables. 10397 */ 10398 __bpf_kfunc s32 scx_bpf_task_cid(const struct task_struct *p) 10399 { 10400 s16 *tbl; 10401 10402 /* KF_RCU covers only @p - a sleepable program holds no RCU lock */ 10403 guard(rcu)(); 10404 10405 tbl = rcu_dereference(scx_cpu_to_cid_tbl); 10406 if (!tbl) 10407 return -EINVAL; 10408 return tbl[task_cpu(p)]; 10409 } 10410 10411 /** 10412 * scx_bpf_locked_rq - Return the rq currently locked by SCX 10413 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 10414 * 10415 * Returns the rq if a rq lock is currently held by SCX. 10416 * Otherwise emits an error and returns NULL. 10417 */ 10418 __bpf_kfunc struct rq *scx_bpf_locked_rq(const struct bpf_prog_aux *aux) 10419 { 10420 struct scx_sched *sch; 10421 struct rq *rq; 10422 10423 guard(preempt)(); 10424 10425 sch = scx_prog_sched(aux); 10426 if (unlikely(!sch)) 10427 return NULL; 10428 10429 rq = scx_locked_rq(); 10430 if (!rq) { 10431 scx_error(sch, "accessing rq without holding rq lock"); 10432 return NULL; 10433 } 10434 10435 return rq; 10436 } 10437 10438 /** 10439 * scx_bpf_cpu_curr - Return remote CPU's curr task 10440 * @cpu: CPU of interest 10441 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 10442 * 10443 * Callers must hold RCU read lock (KF_RCU). 10444 */ 10445 __bpf_kfunc struct task_struct *scx_bpf_cpu_curr(s32 cpu, const struct bpf_prog_aux *aux) 10446 { 10447 struct scx_sched *sch; 10448 10449 guard(rcu)(); 10450 10451 sch = scx_prog_sched(aux); 10452 if (unlikely(!sch)) 10453 return NULL; 10454 10455 if (!scx_cpu_valid(sch, cpu, NULL)) 10456 return NULL; 10457 10458 return rcu_dereference(cpu_rq(cpu)->curr); 10459 } 10460 10461 /** 10462 * scx_bpf_cid_curr - Return the curr task on the CPU at @cid 10463 * @cid: cid of interest 10464 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 10465 * 10466 * cid-addressed equivalent of scx_bpf_cpu_curr(). Callers must hold RCU 10467 * read lock (KF_RCU). 10468 */ 10469 __bpf_kfunc struct task_struct *scx_bpf_cid_curr(s32 cid, const struct bpf_prog_aux *aux) 10470 { 10471 struct scx_sched *sch; 10472 s32 cpu; 10473 10474 guard(rcu)(); 10475 10476 sch = scx_prog_sched(aux); 10477 if (unlikely(!sch)) 10478 return NULL; 10479 cpu = scx_cid_to_cpu(sch, cid); 10480 if (cpu < 0) 10481 return NULL; 10482 return rcu_dereference(cpu_rq(cpu)->curr); 10483 } 10484 10485 /** 10486 * scx_bpf_tid_to_task - Look up a task by its scx tid 10487 * @tid: task ID previously read from p->scx.tid 10488 * 10489 * Returns the task with the given tid, or NULL if no such task exists. The 10490 * returned pointer is valid until the end of the current RCU read section 10491 * (KF_RCU_PROTECTED). Requires SCX_OPS_TID_TO_TASK to be set on the root 10492 * scheduler; otherwise an error is raised and NULL returned. 10493 */ 10494 __bpf_kfunc struct task_struct *scx_bpf_tid_to_task(u64 tid) 10495 { 10496 struct sched_ext_entity *scx; 10497 10498 if (!scx_tid_to_task_enabled()) { 10499 struct scx_sched *sch = rcu_dereference(scx_root); 10500 10501 if (sch) 10502 scx_error(sch, "scx_bpf_tid_to_task() called without SCX_OPS_TID_TO_TASK"); 10503 return NULL; 10504 } 10505 10506 scx = rhashtable_lookup(&scx_tid_hash, &tid, scx_tid_hash_params); 10507 if (!scx) 10508 return NULL; 10509 10510 return container_of(scx, struct task_struct, scx); 10511 } 10512 10513 u64 __scx_bpf_now(struct rq *rq) 10514 { 10515 /* the caller must be on @rq's cpu or hold its lock */ 10516 lockdep_assert((rq == this_rq() && !preemptible()) || 10517 lockdep_is_held(__rq_lockp(rq))); 10518 10519 if (smp_load_acquire(&rq->scx.flags) & SCX_RQ_CLK_VALID) { 10520 /* if the rq clock is valid, use the cached rq clock */ 10521 return READ_ONCE(rq->scx.clock); 10522 } else { 10523 /* 10524 * Otherwise, return a fresh rq clock. 10525 * 10526 * The rq clock is updated outside of the rq lock. 10527 * In this case, keep the updated rq clock invalid so the next 10528 * read outside the rq lock gets a fresh rq clock. 10529 */ 10530 return sched_clock_cpu(cpu_of(rq)); 10531 } 10532 } 10533 10534 /** 10535 * scx_bpf_now - Returns a high-performance monotonically non-decreasing 10536 * clock for the current CPU. The clock returned is in nanoseconds. 10537 * 10538 * It provides the following properties: 10539 * 10540 * 1) High performance: Many BPF schedulers call bpf_ktime_get_ns() frequently 10541 * to account for execution time and track tasks' runtime properties. 10542 * Unfortunately, in some hardware platforms, bpf_ktime_get_ns() -- which 10543 * eventually reads a hardware timestamp counter -- is neither performant nor 10544 * scalable. scx_bpf_now() aims to provide a high-performance clock by 10545 * using the rq clock in the scheduler core whenever possible. 10546 * 10547 * 2) High enough resolution for the BPF scheduler use cases: In most BPF 10548 * scheduler use cases, the required clock resolution is lower than the most 10549 * accurate hardware clock (e.g., rdtsc in x86). scx_bpf_now() basically 10550 * uses the rq clock in the scheduler core whenever it is valid. It considers 10551 * that the rq clock is valid from the time the rq clock is updated 10552 * (update_rq_clock) until the rq is unlocked (rq_unpin_lock). 10553 * 10554 * 3) Monotonically non-decreasing clock for the same CPU: scx_bpf_now() 10555 * guarantees the clock never goes backward when comparing them in the same 10556 * CPU. On the other hand, when comparing clocks in different CPUs, there 10557 * is no such guarantee -- the clock can go backward. It provides a 10558 * monotonically *non-decreasing* clock so that it would provide the same 10559 * clock values in two different scx_bpf_now() calls in the same CPU 10560 * during the same period of when the rq clock is valid. 10561 */ 10562 __bpf_kfunc u64 scx_bpf_now(void) 10563 { 10564 /* 10565 * Note that scx_bpf_now() is re-entrant between a process context and 10566 * an interrupt context (e.g., timer interrupt). However, we don't need 10567 * to consider the race between them because such race is not observable 10568 * from a caller. 10569 */ 10570 guard(preempt)(); 10571 return __scx_bpf_now(this_rq()); 10572 } 10573 10574 static void scx_read_events(struct scx_sched *sch, struct scx_event_stats *events) 10575 { 10576 int cpu; 10577 10578 /* Aggregate per-CPU event counters into @events. */ 10579 memset(events, 0, sizeof(*events)); 10580 for_each_possible_cpu(cpu) { 10581 struct scx_event_stats *e_cpu = &per_cpu_ptr(sch->pcpu, cpu)->event_stats; 10582 #define SCX_EVENT(name) (events->name += READ_ONCE(e_cpu->name)) 10583 SCX_EVENTS_LIST(SCX_EVENT); 10584 #undef SCX_EVENT 10585 } 10586 } 10587 10588 /** 10589 * scx_bpf_events - Read the event counters of the calling scheduler 10590 * @events: output buffer from a BPF program 10591 * @events__sz: @events len, must end in '__sz' for the verifier 10592 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 10593 * 10594 * Read the event counters of the scheduler associated with the calling program. 10595 * @events is zeroed when no scheduler can be resolved. 10596 */ 10597 __bpf_kfunc void scx_bpf_events(struct scx_event_stats *events, size_t events__sz, 10598 const struct bpf_prog_aux *aux) 10599 { 10600 struct scx_sched *sch; 10601 struct scx_event_stats e_sys; 10602 10603 rcu_read_lock(); 10604 sch = scx_prog_sched(aux); 10605 if (sch) 10606 scx_read_events(sch, &e_sys); 10607 else 10608 memset(&e_sys, 0, sizeof(e_sys)); 10609 rcu_read_unlock(); 10610 10611 /* 10612 * We cannot entirely trust a BPF-provided size since a BPF program 10613 * might be compiled against a different vmlinux.h, of which 10614 * scx_event_stats would be larger (a newer vmlinux.h) or smaller 10615 * (an older vmlinux.h). Hence, we use the smaller size to avoid 10616 * memory corruption. 10617 */ 10618 events__sz = min(events__sz, sizeof(*events)); 10619 memcpy(events, &e_sys, events__sz); 10620 } 10621 10622 #ifdef CONFIG_CGROUP_SCHED 10623 /** 10624 * scx_bpf_task_cgroup - Return the sched cgroup of a task 10625 * @p: task of interest 10626 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 10627 * 10628 * @p->sched_task_group->css.cgroup represents the cgroup @p is associated with 10629 * from the scheduler's POV. SCX operations should use this function to 10630 * determine @p's current cgroup as, unlike following @p->cgroups, 10631 * @p->sched_task_group is stable for the duration of the SCX op. See 10632 * SCX_CALL_OP_TASK() for details. 10633 */ 10634 __bpf_kfunc struct cgroup *scx_bpf_task_cgroup(struct task_struct *p, 10635 const struct bpf_prog_aux *aux) 10636 { 10637 struct task_group *tg = p->sched_task_group; 10638 struct cgroup *cgrp = &cgrp_dfl_root.cgrp; 10639 struct scx_sched *sch; 10640 10641 guard(rcu)(); 10642 10643 sch = scx_prog_sched(aux); 10644 if (unlikely(!sch)) 10645 goto out; 10646 10647 if (!scx_kf_arg_task_ok(sch, p)) 10648 goto out; 10649 10650 cgrp = tg_cgrp(tg); 10651 10652 out: 10653 cgroup_get(cgrp); 10654 return cgrp; 10655 } 10656 #endif /* CONFIG_CGROUP_SCHED */ 10657 10658 __bpf_kfunc_end_defs(); 10659 10660 BTF_KFUNCS_START(scx_kfunc_ids_any) 10661 BTF_ID_FLAGS(func, scx_bpf_task_set_slice, KF_IMPLICIT_ARGS | KF_RCU); 10662 BTF_ID_FLAGS(func, scx_bpf_task_set_dsq_vtime, KF_IMPLICIT_ARGS | KF_RCU); 10663 BTF_ID_FLAGS(func, scx_bpf_kick_cpu, KF_IMPLICIT_ARGS) 10664 BTF_ID_FLAGS(func, scx_bpf_kick_cid, KF_IMPLICIT_ARGS) 10665 BTF_ID_FLAGS(func, scx_bpf_dsq_nr_queued, KF_IMPLICIT_ARGS) 10666 BTF_ID_FLAGS(func, scx_bpf_destroy_dsq, KF_IMPLICIT_ARGS) 10667 BTF_ID_FLAGS(func, scx_bpf_dsq_peek, KF_IMPLICIT_ARGS | KF_RCU_PROTECTED | KF_RET_NULL) 10668 BTF_ID_FLAGS(func, scx_bpf_dsq_reenq, KF_IMPLICIT_ARGS) 10669 BTF_ID_FLAGS(func, scx_bpf_reenqueue_local___v2, KF_IMPLICIT_ARGS) 10670 BTF_ID_FLAGS(func, bpf_iter_scx_dsq_new, KF_IMPLICIT_ARGS | KF_ITER_NEW | KF_RCU_PROTECTED) 10671 BTF_ID_FLAGS(func, bpf_iter_scx_dsq_next, KF_ITER_NEXT | KF_RET_NULL) 10672 BTF_ID_FLAGS(func, bpf_iter_scx_dsq_destroy, KF_ITER_DESTROY) 10673 BTF_ID_FLAGS(func, scx_bpf_exit_bstr, KF_IMPLICIT_ARGS) 10674 BTF_ID_FLAGS(func, scx_bpf_error_bstr, KF_IMPLICIT_ARGS) 10675 BTF_ID_FLAGS(func, scx_bpf_dump_bstr, KF_IMPLICIT_ARGS) 10676 BTF_ID_FLAGS(func, scx_bpf_cpuperf_cap, KF_IMPLICIT_ARGS) 10677 BTF_ID_FLAGS(func, scx_bpf_cpuperf_cur, KF_IMPLICIT_ARGS) 10678 BTF_ID_FLAGS(func, scx_bpf_cpuperf_set, KF_IMPLICIT_ARGS) 10679 BTF_ID_FLAGS(func, scx_bpf_cidperf_cap, KF_IMPLICIT_ARGS) 10680 BTF_ID_FLAGS(func, scx_bpf_cidperf_cur, KF_IMPLICIT_ARGS) 10681 BTF_ID_FLAGS(func, scx_bpf_cidperf_set, KF_IMPLICIT_ARGS) 10682 BTF_ID_FLAGS(func, scx_bpf_nr_node_ids) 10683 BTF_ID_FLAGS(func, scx_bpf_nr_cpu_ids) 10684 BTF_ID_FLAGS(func, scx_bpf_nr_cids) 10685 BTF_ID_FLAGS(func, scx_bpf_nr_online_cids) 10686 BTF_ID_FLAGS(func, scx_bpf_this_cid) 10687 BTF_ID_FLAGS(func, scx_bpf_get_possible_cpumask, KF_ACQUIRE) 10688 BTF_ID_FLAGS(func, scx_bpf_get_online_cpumask, KF_ACQUIRE) 10689 BTF_ID_FLAGS(func, scx_bpf_put_cpumask, KF_RELEASE) 10690 BTF_ID_FLAGS(func, scx_bpf_task_running, KF_RCU) 10691 BTF_ID_FLAGS(func, scx_bpf_task_cpu, KF_RCU) 10692 BTF_ID_FLAGS(func, scx_bpf_task_cid, KF_RCU) 10693 BTF_ID_FLAGS(func, scx_bpf_locked_rq, KF_IMPLICIT_ARGS | KF_RET_NULL) 10694 BTF_ID_FLAGS(func, scx_bpf_cpu_curr, KF_IMPLICIT_ARGS | KF_RET_NULL | KF_RCU_PROTECTED) 10695 BTF_ID_FLAGS(func, scx_bpf_cid_curr, KF_IMPLICIT_ARGS | KF_RET_NULL | KF_RCU_PROTECTED) 10696 BTF_ID_FLAGS(func, scx_bpf_tid_to_task, KF_RET_NULL | KF_RCU_PROTECTED) 10697 BTF_ID_FLAGS(func, scx_bpf_now) 10698 BTF_ID_FLAGS(func, scx_bpf_events, KF_IMPLICIT_ARGS) 10699 #ifdef CONFIG_CGROUP_SCHED 10700 BTF_ID_FLAGS(func, scx_bpf_task_cgroup, KF_IMPLICIT_ARGS | KF_RCU | KF_ACQUIRE) 10701 #endif 10702 BTF_ID_FLAGS(func, scx_bpf_sub_grant, KF_IMPLICIT_ARGS) 10703 BTF_ID_FLAGS(func, scx_bpf_sub_revoke, KF_IMPLICIT_ARGS) 10704 BTF_ID_FLAGS(func, scx_bpf_sub_caps, KF_IMPLICIT_ARGS) 10705 BTF_ID_FLAGS(func, scx_bpf_sub_kill_bstr, KF_IMPLICIT_ARGS) 10706 BTF_KFUNCS_END(scx_kfunc_ids_any) 10707 10708 static const struct btf_kfunc_id_set scx_kfunc_set_any = { 10709 .owner = THIS_MODULE, 10710 .set = &scx_kfunc_ids_any, 10711 .filter = scx_kfunc_context_filter, 10712 }; 10713 10714 /* 10715 * cpu-form kfuncs that are forbidden from cid-form schedulers 10716 * (bpf_sched_ext_ops_cid). Programs targeting the cid struct_ops type must 10717 * use the cid-form alternative (cid/cmask kfuncs). 10718 * 10719 * Membership overlaps with scx_kfunc_ids_{any,idle,select_cpu}; the filter 10720 * tests this set independently and rejects matches before the per-op 10721 * allow-list check runs. 10722 * 10723 * pahole/resolve_btfids scans every BTF_ID_FLAGS() at build time and 10724 * intersects flags across duplicate entries, so each entry must carry the 10725 * same flags as the kfunc's primary declaration; otherwise the flags get 10726 * dropped globally. 10727 */ 10728 BTF_KFUNCS_START(scx_kfunc_ids_cpu_only) 10729 BTF_ID_FLAGS(func, scx_bpf_kick_cpu, KF_IMPLICIT_ARGS) 10730 BTF_ID_FLAGS(func, scx_bpf_task_cpu, KF_RCU) 10731 BTF_ID_FLAGS(func, scx_bpf_cpu_curr, KF_IMPLICIT_ARGS | KF_RET_NULL | KF_RCU_PROTECTED) 10732 BTF_ID_FLAGS(func, scx_bpf_cpu_node, KF_IMPLICIT_ARGS) 10733 BTF_ID_FLAGS(func, scx_bpf_cpuperf_cap, KF_IMPLICIT_ARGS) 10734 BTF_ID_FLAGS(func, scx_bpf_cpuperf_cur, KF_IMPLICIT_ARGS) 10735 BTF_ID_FLAGS(func, scx_bpf_cpuperf_set, KF_IMPLICIT_ARGS) 10736 BTF_ID_FLAGS(func, scx_bpf_get_possible_cpumask, KF_ACQUIRE) 10737 BTF_ID_FLAGS(func, scx_bpf_get_online_cpumask, KF_ACQUIRE) 10738 BTF_ID_FLAGS(func, scx_bpf_put_cpumask, KF_RELEASE) 10739 BTF_ID_FLAGS(func, scx_bpf_select_cpu_dfl, KF_IMPLICIT_ARGS | KF_RCU) 10740 BTF_ID_FLAGS(func, __scx_bpf_select_cpu_and, KF_IMPLICIT_ARGS | KF_RCU) 10741 BTF_ID_FLAGS(func, scx_bpf_select_cpu_and, KF_RCU) 10742 BTF_ID_FLAGS(func, scx_bpf_get_idle_cpumask, KF_IMPLICIT_ARGS | KF_ACQUIRE) 10743 BTF_ID_FLAGS(func, scx_bpf_get_idle_cpumask_node, KF_IMPLICIT_ARGS | KF_ACQUIRE) 10744 BTF_ID_FLAGS(func, scx_bpf_get_idle_smtmask, KF_IMPLICIT_ARGS | KF_ACQUIRE) 10745 BTF_ID_FLAGS(func, scx_bpf_get_idle_smtmask_node, KF_IMPLICIT_ARGS | KF_ACQUIRE) 10746 BTF_ID_FLAGS(func, scx_bpf_put_idle_cpumask, KF_RELEASE) 10747 BTF_ID_FLAGS(func, scx_bpf_test_and_clear_cpu_idle, KF_IMPLICIT_ARGS) 10748 BTF_ID_FLAGS(func, scx_bpf_pick_idle_cpu, KF_IMPLICIT_ARGS | KF_RCU) 10749 BTF_ID_FLAGS(func, scx_bpf_pick_idle_cpu_node, KF_IMPLICIT_ARGS | KF_RCU) 10750 BTF_ID_FLAGS(func, scx_bpf_pick_any_cpu, KF_IMPLICIT_ARGS | KF_RCU) 10751 BTF_ID_FLAGS(func, scx_bpf_pick_any_cpu_node, KF_IMPLICIT_ARGS | KF_RCU) 10752 BTF_KFUNCS_END(scx_kfunc_ids_cpu_only) 10753 10754 /* 10755 * Per-op kfunc allow flags. Each bit corresponds to a context-sensitive kfunc 10756 * group; an op may permit zero or more groups, with the union expressed in 10757 * scx_kf_allow_flags[]. The verifier-time filter (scx_kfunc_context_filter()) 10758 * consults this table to decide whether a context-sensitive kfunc is callable 10759 * from a given SCX op. 10760 */ 10761 enum scx_kf_allow_flags { 10762 SCX_KF_ALLOW_UNLOCKED = 1 << 0, 10763 SCX_KF_ALLOW_INIT_CIDS = 1 << 1, 10764 SCX_KF_ALLOW_CPU_RELEASE = 1 << 2, 10765 SCX_KF_ALLOW_DISPATCH = 1 << 3, 10766 SCX_KF_ALLOW_ENQUEUE = 1 << 4, 10767 SCX_KF_ALLOW_SELECT_CPU = 1 << 5, 10768 }; 10769 10770 /* 10771 * Map each SCX op to the union of kfunc groups it permits, indexed by 10772 * SCX_OP_IDX(op). Ops not listed only permit kfuncs that are not 10773 * context-sensitive. 10774 */ 10775 static const u32 scx_kf_allow_flags[] = { 10776 [SCX_OP_IDX(select_cpu)] = SCX_KF_ALLOW_SELECT_CPU | SCX_KF_ALLOW_ENQUEUE, 10777 [SCX_OP_IDX(enqueue)] = SCX_KF_ALLOW_SELECT_CPU | SCX_KF_ALLOW_ENQUEUE, 10778 [SCX_OP_IDX(dispatch)] = SCX_KF_ALLOW_ENQUEUE | SCX_KF_ALLOW_DISPATCH, 10779 [SCX_OP_IDX(cpu_release)] = SCX_KF_ALLOW_CPU_RELEASE, 10780 [SCX_OP_IDX(init_task)] = SCX_KF_ALLOW_UNLOCKED, 10781 [SCX_OP_IDX(dump)] = SCX_KF_ALLOW_UNLOCKED, 10782 #ifdef CONFIG_EXT_GROUP_SCHED 10783 [SCX_OP_IDX(cgroup_init)] = SCX_KF_ALLOW_UNLOCKED, 10784 [SCX_OP_IDX(cgroup_exit)] = SCX_KF_ALLOW_UNLOCKED, 10785 [SCX_OP_IDX(cgroup_prep_move)] = SCX_KF_ALLOW_UNLOCKED, 10786 [SCX_OP_IDX(cgroup_cancel_move)] = SCX_KF_ALLOW_UNLOCKED, 10787 [SCX_OP_IDX(cgroup_set_weight)] = SCX_KF_ALLOW_UNLOCKED, 10788 [SCX_OP_IDX(cgroup_set_bandwidth)] = SCX_KF_ALLOW_UNLOCKED, 10789 [SCX_OP_IDX(cgroup_set_idle)] = SCX_KF_ALLOW_UNLOCKED, 10790 #endif /* CONFIG_EXT_GROUP_SCHED */ 10791 [SCX_OP_IDX(sub_attach)] = SCX_KF_ALLOW_UNLOCKED, 10792 [SCX_OP_IDX(sub_detach)] = SCX_KF_ALLOW_UNLOCKED, 10793 [SCX_OP_IDX(sub_ecaps_updated)] = SCX_KF_ALLOW_ENQUEUE | SCX_KF_ALLOW_DISPATCH, 10794 [SCX_OP_IDX(cpu_online)] = SCX_KF_ALLOW_UNLOCKED, 10795 [SCX_OP_IDX(cpu_offline)] = SCX_KF_ALLOW_UNLOCKED, 10796 [SCX_OP_IDX(init_cids)] = SCX_KF_ALLOW_UNLOCKED | SCX_KF_ALLOW_INIT_CIDS, 10797 [SCX_OP_IDX(init)] = SCX_KF_ALLOW_UNLOCKED, 10798 [SCX_OP_IDX(exit)] = SCX_KF_ALLOW_UNLOCKED, 10799 }; 10800 10801 /* 10802 * Verifier-time filter for SCX kfuncs. Registered via the .filter field on 10803 * each per-group btf_kfunc_id_set. The BPF core invokes this for every kfunc 10804 * call in the registered hook (BPF_PROG_TYPE_STRUCT_OPS or 10805 * BPF_PROG_TYPE_SYSCALL), regardless of which set originally introduced the 10806 * kfunc - so the filter must short-circuit on kfuncs it doesn't govern by 10807 * falling through to "allow" when none of the SCX sets contain the kfunc. 10808 */ 10809 int scx_kfunc_context_filter(const struct bpf_prog *prog, u32 kfunc_id) 10810 { 10811 bool in_unlocked = btf_id_set8_contains(&scx_kfunc_ids_unlocked, kfunc_id); 10812 bool in_init_cids = btf_id_set8_contains(&scx_kfunc_ids_init_cids, kfunc_id); 10813 bool in_select_cpu = btf_id_set8_contains(&scx_kfunc_ids_select_cpu, kfunc_id); 10814 bool in_enqueue = btf_id_set8_contains(&scx_kfunc_ids_enqueue_dispatch, kfunc_id); 10815 bool in_dispatch = btf_id_set8_contains(&scx_kfunc_ids_dispatch, kfunc_id); 10816 bool in_cpu_release = btf_id_set8_contains(&scx_kfunc_ids_cpu_release, kfunc_id); 10817 bool in_idle = btf_id_set8_contains(&scx_kfunc_ids_idle, kfunc_id); 10818 bool in_any = btf_id_set8_contains(&scx_kfunc_ids_any, kfunc_id); 10819 bool in_cpu_only = btf_id_set8_contains(&scx_kfunc_ids_cpu_only, kfunc_id); 10820 bool in_cid = btf_id_set8_contains(&scx_kfunc_ids_cid, kfunc_id); 10821 u32 moff, flags; 10822 10823 /* Not an SCX kfunc - allow. */ 10824 if (!(in_unlocked || in_init_cids || in_select_cpu || in_enqueue || in_dispatch || 10825 in_cpu_release || in_idle || in_any || in_cid)) 10826 return 0; 10827 10828 /* SYSCALL progs (e.g. BPF test_run()) may call unlocked and select_cpu kfuncs. */ 10829 if (prog->type == BPF_PROG_TYPE_SYSCALL) 10830 return (in_unlocked || in_select_cpu || in_idle || in_any || in_cid) ? 0 : -EACCES; 10831 10832 if (prog->type != BPF_PROG_TYPE_STRUCT_OPS) 10833 return (in_any || in_idle || in_cid) ? 0 : -EACCES; 10834 10835 /* 10836 * add_subprog_and_kfunc() collects all kfunc calls, including dead code 10837 * guarded by bpf_ksym_exists(), before check_attach_btf_id() sets 10838 * prog->aux->st_ops. Allow all kfuncs when st_ops is not yet set; 10839 * do_check_main() re-runs the filter with st_ops set and enforces the 10840 * actual restrictions. 10841 */ 10842 if (!prog->aux->st_ops) 10843 return 0; 10844 10845 /* 10846 * Non-SCX struct_ops: SCX kfuncs are not permitted. 10847 * 10848 * Both bpf_sched_ext_ops (cpu-form) and bpf_sched_ext_ops_cid 10849 * (cid-form) are valid SCX struct_ops. Member offsets match between 10850 * the two (verified by BUILD_BUG_ON in scx_init()), so the shared 10851 * scx_kf_allow_flags[] table indexed by SCX_MOFF_IDX(moff) applies to 10852 * both. 10853 */ 10854 if (prog->aux->st_ops != &bpf_sched_ext_ops && 10855 prog->aux->st_ops != &bpf_sched_ext_ops_cid) 10856 return -EACCES; 10857 10858 /* 10859 * cid-form schedulers must use cid/cmask kfuncs. cid and cpu are both 10860 * small s32s and trivially confused, so cpu-only kfuncs are rejected at 10861 * load time. The reverse (cpu-form calling cid-form kfuncs) is 10862 * intentionally permissive to ease gradual cpumask -> cid migration. 10863 */ 10864 if (prog->aux->st_ops == &bpf_sched_ext_ops_cid && in_cpu_only) 10865 return -EACCES; 10866 10867 /* SCX struct_ops: check the per-op allow list. */ 10868 if (in_any || in_idle || in_cid) 10869 return 0; 10870 10871 moff = prog->aux->attach_st_ops_member_off; 10872 flags = scx_kf_allow_flags[SCX_MOFF_IDX(moff)]; 10873 10874 if ((flags & SCX_KF_ALLOW_UNLOCKED) && in_unlocked) 10875 return 0; 10876 if ((flags & SCX_KF_ALLOW_INIT_CIDS) && in_init_cids) 10877 return 0; 10878 if ((flags & SCX_KF_ALLOW_CPU_RELEASE) && in_cpu_release) 10879 return 0; 10880 if ((flags & SCX_KF_ALLOW_DISPATCH) && in_dispatch) 10881 return 0; 10882 if ((flags & SCX_KF_ALLOW_ENQUEUE) && in_enqueue) 10883 return 0; 10884 if ((flags & SCX_KF_ALLOW_SELECT_CPU) && in_select_cpu) 10885 return 0; 10886 10887 return -EACCES; 10888 } 10889 10890 static int __init scx_init(void) 10891 { 10892 int ret; 10893 10894 /* 10895 * sched_ext_ops_cid mirrors sched_ext_ops up to and including @priv. 10896 * Both bpf_scx_init_member() and bpf_scx_check_member() use offsets 10897 * from struct sched_ext_ops; sched_ext_ops_cid relies on those offsets 10898 * matching for the shared fields. Catch any drift at boot. 10899 */ 10900 #define CID_OFFSET_MATCH(cpu_field, cid_field) \ 10901 BUILD_BUG_ON(offsetof(struct sched_ext_ops, cpu_field) != \ 10902 offsetof(struct sched_ext_ops_cid, cid_field)) 10903 /* data fields used by bpf_scx_init_member() */ 10904 CID_OFFSET_MATCH(dispatch_max_batch, dispatch_max_batch); 10905 CID_OFFSET_MATCH(flags, flags); 10906 CID_OFFSET_MATCH(name, name); 10907 CID_OFFSET_MATCH(timeout_ms, timeout_ms); 10908 CID_OFFSET_MATCH(exit_dump_len, exit_dump_len); 10909 CID_OFFSET_MATCH(hotplug_seq, hotplug_seq); 10910 CID_OFFSET_MATCH(cid_shard_size, cid_shard_size); 10911 CID_OFFSET_MATCH(rescue_bandwidth_ppt, rescue_bandwidth_ppt); 10912 CID_OFFSET_MATCH(rescue_quantum_us, rescue_quantum_us); 10913 CID_OFFSET_MATCH(sub_cgroup_id, sub_cgroup_id); 10914 /* shared callbacks: the union view requires byte-for-byte offset match */ 10915 CID_OFFSET_MATCH(enqueue, enqueue); 10916 CID_OFFSET_MATCH(dequeue, dequeue); 10917 CID_OFFSET_MATCH(dispatch, dispatch); 10918 CID_OFFSET_MATCH(tick, tick); 10919 CID_OFFSET_MATCH(runnable, runnable); 10920 CID_OFFSET_MATCH(running, running); 10921 CID_OFFSET_MATCH(stopping, stopping); 10922 CID_OFFSET_MATCH(quiescent, quiescent); 10923 CID_OFFSET_MATCH(yield, yield); 10924 CID_OFFSET_MATCH(core_sched_before, core_sched_before); 10925 CID_OFFSET_MATCH(set_weight, set_weight); 10926 CID_OFFSET_MATCH(update_idle, update_idle); 10927 CID_OFFSET_MATCH(init_task, init_task); 10928 CID_OFFSET_MATCH(exit_task, exit_task); 10929 CID_OFFSET_MATCH(enable, enable); 10930 CID_OFFSET_MATCH(disable, disable); 10931 CID_OFFSET_MATCH(dump, dump); 10932 CID_OFFSET_MATCH(dump_task, dump_task); 10933 CID_OFFSET_MATCH(sub_attach, sub_attach); 10934 CID_OFFSET_MATCH(sub_detach, sub_detach); 10935 CID_OFFSET_MATCH(sub_caps_updated, sub_caps_updated); 10936 CID_OFFSET_MATCH(sub_ecaps_updated, sub_ecaps_updated); 10937 CID_OFFSET_MATCH(init_cids, init_cids); 10938 CID_OFFSET_MATCH(init, init); 10939 CID_OFFSET_MATCH(exit, exit); 10940 /* renamed callbacks must occupy the same slot as their cpu-form sibling */ 10941 CID_OFFSET_MATCH(select_cpu, select_cid); 10942 CID_OFFSET_MATCH(set_cpumask, set_cmask); 10943 CID_OFFSET_MATCH(cpu_online, cid_online); 10944 CID_OFFSET_MATCH(cpu_offline, cid_offline); 10945 CID_OFFSET_MATCH(dump_cpu, dump_cid); 10946 #ifdef CONFIG_EXT_GROUP_SCHED 10947 CID_OFFSET_MATCH(cgroup_init, cpuctl_init); 10948 CID_OFFSET_MATCH(cgroup_exit, cpuctl_exit); 10949 CID_OFFSET_MATCH(cgroup_prep_move, cpuctl_prep_move); 10950 CID_OFFSET_MATCH(cgroup_move, cpuctl_move); 10951 CID_OFFSET_MATCH(cgroup_cancel_move, cpuctl_cancel_move); 10952 CID_OFFSET_MATCH(cgroup_set_weight, cpuctl_set_weight); 10953 CID_OFFSET_MATCH(cgroup_set_bandwidth, cpuctl_set_bandwidth); 10954 CID_OFFSET_MATCH(cgroup_set_idle, cpuctl_set_idle); 10955 #endif 10956 /* @priv tail must align since both share the same data block */ 10957 CID_OFFSET_MATCH(priv, priv); 10958 /* 10959 * cid-form must end exactly at @priv - scx_validate_ops() skips 10960 * cpu_acquire/cpu_release for cid-form because reading those fields 10961 * past the BPF allocation would be UB. 10962 */ 10963 BUILD_BUG_ON(offsetof(struct sched_ext_ops_cid, __end) != 10964 offsetofend(struct sched_ext_ops, priv)); 10965 #undef CID_OFFSET_MATCH 10966 10967 /* 10968 * kfunc registration can't be done from init_sched_ext_class() as 10969 * register_btf_kfunc_id_set() needs most of the system to be up. 10970 * 10971 * Some kfuncs are context-sensitive and can only be called from 10972 * specific SCX ops. They are grouped into per-context BTF sets, each 10973 * registered with scx_kfunc_context_filter as its .filter callback. The 10974 * BPF core dedups identical filter pointers per hook 10975 * (btf_populate_kfunc_set()), so the filter is invoked exactly once per 10976 * kfunc lookup; it consults scx_kf_allow_flags[] to enforce per-op 10977 * restrictions at verify time. 10978 */ 10979 if ((ret = register_btf_kfunc_id_set(BPF_PROG_TYPE_STRUCT_OPS, 10980 &scx_kfunc_set_enqueue_dispatch)) || 10981 (ret = register_btf_kfunc_id_set(BPF_PROG_TYPE_STRUCT_OPS, 10982 &scx_kfunc_set_dispatch)) || 10983 (ret = register_btf_kfunc_id_set(BPF_PROG_TYPE_STRUCT_OPS, 10984 &scx_kfunc_set_cpu_release)) || 10985 (ret = register_btf_kfunc_id_set(BPF_PROG_TYPE_STRUCT_OPS, 10986 &scx_kfunc_set_unlocked)) || 10987 (ret = register_btf_kfunc_id_set(BPF_PROG_TYPE_SYSCALL, 10988 &scx_kfunc_set_unlocked)) || 10989 (ret = register_btf_kfunc_id_set(BPF_PROG_TYPE_STRUCT_OPS, 10990 &scx_kfunc_set_any)) || 10991 (ret = register_btf_kfunc_id_set(BPF_PROG_TYPE_TRACING, 10992 &scx_kfunc_set_any)) || 10993 (ret = register_btf_kfunc_id_set(BPF_PROG_TYPE_SYSCALL, 10994 &scx_kfunc_set_any))) { 10995 pr_err("sched_ext: Failed to register kfunc sets (%d)\n", ret); 10996 return ret; 10997 } 10998 10999 ret = scx_idle_init(); 11000 if (ret) { 11001 pr_err("sched_ext: Failed to initialize idle tracking (%d)\n", ret); 11002 return ret; 11003 } 11004 11005 ret = scx_cid_kfunc_init(); 11006 if (ret) { 11007 pr_err("sched_ext: Failed to register cid kfuncs (%d)\n", ret); 11008 return ret; 11009 } 11010 11011 ret = register_bpf_struct_ops(&bpf_sched_ext_ops, sched_ext_ops); 11012 if (ret) { 11013 pr_err("sched_ext: Failed to register struct_ops (%d)\n", ret); 11014 return ret; 11015 } 11016 11017 ret = register_bpf_struct_ops(&bpf_sched_ext_ops_cid, sched_ext_ops_cid); 11018 if (ret) { 11019 pr_err("sched_ext: Failed to register cid struct_ops (%d)\n", ret); 11020 return ret; 11021 } 11022 11023 ret = register_pm_notifier(&scx_pm_notifier); 11024 if (ret) { 11025 pr_err("sched_ext: Failed to register PM notifier (%d)\n", ret); 11026 return ret; 11027 } 11028 11029 scx_kset = kset_create_and_add("sched_ext", &scx_uevent_ops, kernel_kobj); 11030 if (!scx_kset) { 11031 pr_err("sched_ext: Failed to create /sys/kernel/sched_ext\n"); 11032 return -ENOMEM; 11033 } 11034 11035 ret = sysfs_create_group(&scx_kset->kobj, &scx_global_attr_group); 11036 if (ret < 0) { 11037 pr_err("sched_ext: Failed to add global attributes\n"); 11038 return ret; 11039 } 11040 11041 return 0; 11042 } 11043 __initcall(scx_init); 11044