1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * BPF extensible scheduler class: Documentation/scheduler/sched-ext.rst 4 * 5 * Sub-scheduler hierarchy support. 6 * 7 * A sub-scheduler is an scx_sched attached to a cgroup subtree under another 8 * scx_sched. This file holds the sub-scheduler implementation: the scheduler 9 * tree walk, capability delegation, per-shard cap state and its sync, and the 10 * sub-scheduler enable/disable paths. The core dispatch/enqueue machinery it 11 * builds on lives in ext.c. 12 * 13 * Copyright (c) 2026 Meta Platforms, Inc. and affiliates. 14 * Copyright (c) 2026 Tejun Heo <tj@kernel.org> 15 */ 16 #include <linux/rhashtable.h> 17 #include "internal.h" 18 #include "cid.h" 19 #include "arena.h" 20 #include "sub.h" 21 #include "inlines.h" 22 23 #ifdef CONFIG_EXT_SUB_SCHED 24 25 /* 26 * On while any sub-scheduler exists so that a root-only system doesn't pay for 27 * the sub-sched portions of hot paths. See scx_has_subs(). 28 */ 29 DEFINE_STATIC_KEY_FALSE(__scx_has_subs); 30 31 /* latched at root enable before any rescue runs */ 32 static s32 scx_rescue_bw_1024; 33 static s64 scx_rescue_quantum_ns; 34 static s64 scx_rescue_sat_delta_ns; 35 static unsigned long scx_rescue_decay_halflife; 36 static unsigned long scx_rescue_overload_after; 37 38 /** 39 * scx_skip_subtree_pre - Skip @pos's subtree in a pre-order walk 40 * @pos: current position 41 * @root: walk root 42 * 43 * In a walk started by scx_next_descendant_pre(), continue past @pos's subtree: 44 * return @pos's next sibling, or the closest ancestor's next sibling, or NULL 45 * if @pos's subtree is the last under @root. Same locking rules. 46 */ 47 struct scx_sched *scx_skip_subtree_pre(struct scx_sched *pos, struct scx_sched *root) 48 { 49 struct scx_sched *next; 50 51 lockdep_assert(lockdep_is_held(&scx_enable_mutex) || 52 lockdep_is_held(&scx_sched_lock) || 53 rcu_read_lock_any_held()); 54 55 while (pos != root) { 56 next = list_next_or_null_rcu(&scx_parent(pos)->children, &pos->sibling, 57 struct scx_sched, sibling); 58 if (next) 59 return next; 60 pos = scx_parent(pos); 61 } 62 return NULL; 63 } 64 65 /** 66 * scx_next_descendant_pre - find the next descendant for pre-order walk 67 * @pos: the current position (%NULL to initiate traversal) 68 * @root: sched whose descendants to walk 69 * 70 * To be used by scx_for_each_descendant_pre(). Find the next descendant to 71 * visit for pre-order traversal of @root's descendants. @root is included in 72 * the iteration and the first node to be visited. 73 */ 74 struct scx_sched *scx_next_descendant_pre(struct scx_sched *pos, struct scx_sched *root) 75 { 76 struct scx_sched *next; 77 78 lockdep_assert(lockdep_is_held(&scx_enable_mutex) || 79 lockdep_is_held(&scx_sched_lock) || 80 rcu_read_lock_any_held()); 81 82 /* if first iteration, visit @root */ 83 if (!pos) 84 return root; 85 86 /* visit the first child if exists */ 87 next = list_first_or_null_rcu(&pos->children, struct scx_sched, sibling); 88 if (next) 89 return next; 90 91 /* no child, visit my or the closest ancestor's next sibling */ 92 return scx_skip_subtree_pre(pos, root); 93 } 94 95 static struct scx_sched *scx_find_sub_sched(u64 cgroup_id) 96 { 97 return rhashtable_lookup(&scx_sched_hash, &cgroup_id, 98 scx_sched_hash_params); 99 } 100 101 void scx_set_task_sched(struct task_struct *p, struct scx_sched *sch) 102 { 103 rcu_assign_pointer(p->scx.sched, sch); 104 } 105 106 struct cgroup *sch_cgroup(struct scx_sched *sch) 107 { 108 return sch->cgrp; 109 } 110 111 /* for each descendant of @cgrp including self, set ->scx_sched to @sch */ 112 void set_cgroup_sched(struct cgroup *cgrp, struct scx_sched *sch) 113 { 114 struct cgroup *pos; 115 struct cgroup_subsys_state *css; 116 117 cgroup_for_each_live_descendant_pre(pos, css, cgrp) 118 rcu_assign_pointer(pos->scx_sched, sch); 119 } 120 121 static void free_pshard(struct scx_pshard *pshard) 122 { 123 struct scx_caps_updated *cu; 124 125 if (!pshard) 126 return; 127 cu = &pshard->caps_updated; 128 if (cu->cmask_arena_out) 129 scx_arena_free(pshard->sch, cu->cmask_arena_out, 130 struct_size_t(struct scx_cmask, bits, 131 SCX_CMASK_NR_WORDS(pshard->nr_cids))); 132 kfree(pshard); 133 } 134 135 void scx_free_pshards(struct scx_sched *sch) 136 { 137 s32 si; 138 139 if (!sch->pshard) 140 return; 141 for (si = 0; si < sch->nr_pshards; si++) 142 free_pshard(sch->pshard[si]); 143 kfree(sch->pshard); 144 } 145 146 static struct scx_pshard *alloc_pshard(struct scx_sched *sch, s32 shard_idx, s32 node) 147 { 148 const struct scx_cid_shard *shard = 149 &rcu_dereference_protected(scx_cid_shard_ranges, 150 lockdep_is_held(&scx_enable_mutex))[shard_idx]; 151 size_t cmask_size = struct_size_t(struct scx_cmask, bits, 152 SCX_CMASK_NR_WORDS(shard->nr_cids)); 153 struct scx_pshard *pshard; 154 struct scx_caps_updated *cu; 155 s32 i; 156 157 pshard = kzalloc_node(sizeof(*pshard), GFP_KERNEL, node); 158 if (!pshard) 159 return NULL; 160 161 raw_spin_lock_init(&pshard->lock); 162 pshard->sch = sch; 163 pshard->base = shard->base_cid; 164 pshard->nr_cids = shard->nr_cids; 165 166 for (i = 0; i < __SCX_NR_CAPS; i++) 167 scx_cmask_init(&pshard->caps[i].cmask, shard->base_cid, shard->nr_cids); 168 169 cu = &pshard->caps_updated; 170 raw_spin_lock_init(&cu->lock); 171 INIT_LIST_HEAD(&cu->node_in_flight); 172 __scx_cmask_init(&cu->cmask, shard->base_cid, shard->nr_cids, SCX_CID_SHARD_MAX_CPUS); 173 174 cu->cmask_arena_out = scx_arena_alloc(sch, cmask_size); 175 if (!cu->cmask_arena_out) { 176 free_pshard(pshard); 177 return NULL; 178 } 179 180 scx_cmask_init(cu->cmask_arena_out, shard->base_cid, shard->nr_cids); 181 182 return pshard; 183 } 184 185 s32 scx_alloc_pshards(struct scx_sched *sch) 186 { 187 struct scx_pshard **pshard; 188 s32 *shard_node; 189 s32 si; 190 191 if (!sch->is_cid_type || !sch->arena_pool) 192 return 0; 193 194 shard_node = rcu_dereference_protected(scx_shard_node, 195 lockdep_is_held(&scx_enable_mutex)); 196 197 pshard = kzalloc_objs(pshard[0], scx_nr_cid_shards); 198 if (!pshard) 199 return -ENOMEM; 200 201 for (si = 0; si < scx_nr_cid_shards; si++) { 202 pshard[si] = alloc_pshard(sch, si, shard_node[si]); 203 if (!pshard[si]) { 204 while (--si >= 0) 205 free_pshard(pshard[si]); 206 kfree(pshard); 207 return -ENOMEM; 208 } 209 } 210 211 sch->nr_pshards = scx_nr_cid_shards; 212 /* 213 * Publish only after every entry is built so a reader observing 214 * @sch->pshard never sees a partially-filled array or unpublished cid 215 * tables. Pair the store with a barrier and an acquire load on the 216 * read side. 217 */ 218 smp_wmb(); 219 WRITE_ONCE(sch->pshard, pshard); 220 return 0; 221 } 222 223 /* 224 * Seed the root's caps fully. Root owns all cids on all caps at enable time. 225 * Children acquire caps via scx_bpf_sub_grant(). 226 */ 227 void scx_init_root_caps(struct scx_sched *sch) 228 { 229 s32 si, i; 230 231 for (si = 0; si < sch->nr_pshards; si++) { 232 struct scx_pshard *ps = sch->pshard[si]; 233 234 for (i = 0; i < __SCX_NR_CAPS; i++) 235 scx_cmask_fill(&ps->caps[i].cmask); 236 } 237 } 238 239 /* unserved remainder of @rq's rescuee's admitted slice, 0 once fully served */ 240 static s64 scx_rescue_slice_remaining(struct rq *rq) 241 { 242 s64 served = rq->scx.rescue.curr->se.sum_exec_runtime - rq->scx.rescue.exec_snap; 243 244 return max(rq->scx.rescue.slice - served, 0); 245 } 246 247 /* 248 * Decay @pcpu's rescue usage average in place, halving per the knob-derived 249 * halflife, see scx_rescue_set_knobs(). The timestamp advances only by whole 250 * halflives. 251 */ 252 static u64 scx_rescue_decay_avg(struct scx_sched_pcpu *pcpu) 253 { 254 unsigned long halflife = scx_rescue_decay_halflife; 255 u64 n = div_u64(get_jiffies_64() - pcpu->rescue_avg_at, halflife); 256 257 if (n) { 258 pcpu->rescue_avg = n < 64 ? pcpu->rescue_avg >> n : 0; 259 pcpu->rescue_avg_at += n * halflife; 260 } 261 return pcpu->rescue_avg; 262 } 263 264 /** 265 * scx_rescue_charge - Charge the rescuee's runtime 266 * @rq: rq the rescuee is running on 267 * @delta_exec: runtime being charged 268 * 269 * Also ends the rescue once the admitted slice has been served in full. Ending 270 * on served time rather than slice exhaustion bounds both the rescue and the 271 * charging when a scheduler extends the rescuee's slice. 272 */ 273 void scx_rescue_charge(struct rq *rq, s64 delta_exec) 274 { 275 struct scx_sched_pcpu *pcpu; 276 277 lockdep_assert_rq_held(rq); 278 279 /* 280 * A rescue slice is bounded by one quantum and tick-driven expiry can 281 * overshoot by up to a tick. Clamp to avoid wild over-charges on VMs. 282 */ 283 delta_exec = min_t(s64, delta_exec, scx_rescue_quantum_ns + TICK_NSEC); 284 285 rq->scx.rescue.budget -= delta_exec; 286 287 /* per-cpu usage average feeds the overload victim pick */ 288 pcpu = per_cpu_ptr(scx_task_sched(rq->curr)->pcpu, cpu_of(rq)); 289 pcpu->rescue_avg = scx_rescue_decay_avg(pcpu) + delta_exec; 290 291 if (!scx_rescue_slice_remaining(rq)) 292 scx_task_slice_ended(rq, rq->scx.rescue.curr); 293 } 294 295 /** 296 * scx_rescue_end - End the rescue execution on @rq 297 * @rq: rq of interest 298 * 299 * When no rescuee is left pending, the session is over and the balance above 300 * one quantum dies with it - it would otherwise become a banked license to 301 * preempt the cid owner long after the starvation ended. While waiters remain, 302 * the accrued deficit belongs to the queue and carries into the next rescue. 303 */ 304 void scx_rescue_end(struct rq *rq) 305 { 306 lockdep_assert_rq_held(rq); 307 308 rq->scx.rescue.curr = NULL; 309 if (list_empty(&rq->scx.rescue.dsq.list)) 310 rq->scx.rescue.budget = min(rq->scx.rescue.budget, scx_rescue_quantum_ns); 311 } 312 313 /** 314 * scx_rescue_keep - Keep the rescue going for a preempted-out rescuee 315 * @rq: rq @p is running on 316 * @p: task under rescue whose slice is exhausted 317 * 318 * Called from put_prev_task_scx() to decide what an exhausted slice means for 319 * the rescuee. scx_rescue_charge() ends the rescue the moment the admitted 320 * slice is fully served, so arriving here with the rescue still open means @p 321 * was preempted. Restore the unserved remainder and return %true - @p stays the 322 * rescuee and the caller reinserts it at the tail of the local DSQ, behind 323 * whatever preempted the rescuee. 324 * 325 * Return %false to end the rescue instead - the slice is already fully served, 326 * @p is leaving the rq or bypass is dismantling rescues. 327 */ 328 bool scx_rescue_keep(struct rq *rq, struct task_struct *p) 329 { 330 s64 remaining = scx_rescue_slice_remaining(rq); 331 332 lockdep_assert_rq_held(rq); 333 334 if (!remaining || !(p->scx.flags & SCX_TASK_QUEUED) || 335 scx_bypassing(scx_task_sched(p), cpu_of(rq))) 336 return false; 337 338 scx_set_task_slice(p, remaining); 339 return true; 340 } 341 342 /** 343 * scx_rescue_accrue - Accrue budget at the configured fraction of elapsed time 344 * @rq: rq of interest 345 * 346 * A session spans from the first arrival until no rescuee is left, pending or 347 * admitted. While one is active the cap is three quanta and the balance drives 348 * escalation, see scx_rescue_timerfn(). Outside a session the cap is one 349 * quantum, so an idle gap funds the next arrival's admission but never an 350 * escalation. 351 */ 352 static void scx_rescue_accrue(struct rq *rq) 353 { 354 bool in_session = rq->scx.rescue.curr || !list_empty(&rq->scx.rescue.dsq.list); 355 s64 cap = in_session ? 3 * scx_rescue_quantum_ns : scx_rescue_quantum_ns; 356 s64 delta; 357 u64 now; 358 359 lockdep_assert_rq_held(rq); 360 361 /* not every path here holds an updated rq clock, use __scx_bpf_now() */ 362 now = __scx_bpf_now(rq); 363 delta = now - rq->scx.rescue.clock; 364 rq->scx.rescue.clock = now; 365 366 /* 367 * Avoid multiplication overflows by taking a shortcut when the gap is 368 * large enough to fill the budget. 369 */ 370 if (delta >= scx_rescue_sat_delta_ns) 371 rq->scx.rescue.budget = cap; 372 else 373 rq->scx.rescue.budget = 374 min(cap, rq->scx.rescue.budget + 375 ((delta * scx_rescue_bw_1024) >> SCHED_CAPACITY_SHIFT)); 376 } 377 378 /* 379 * The slice for the next admission - the quantum divided across the stranded 380 * tasks so that a crowded queue round-robins on shorter slices. 381 */ 382 static s64 scx_rescue_next_slice(struct rq *rq) 383 { 384 s64 min_slice = max_t(s64, SCX_RESCUE_MIN_SLICE_US * NSEC_PER_USEC, TICK_NSEC); 385 u32 depth = rq->scx.rescue.dsq.nr ?: 1; 386 387 return clamp(div_s64(scx_rescue_quantum_ns, depth), min_slice, scx_rescue_quantum_ns); 388 } 389 390 static void scx_rescue_timer_arm(struct rq *rq) 391 { 392 struct timer_list *timer = &rq->scx.rescue.timer; 393 s64 delay = scx_rescue_quantum_ns / 4; /* should be granular enough */ 394 395 if (timer_pending(timer)) 396 return; 397 398 /* 399 * While the head waiter can't be admitted because the bucket is short 400 * of a full quantum, stretch to the full funding delay. 401 */ 402 if (!rq->scx.rescue.curr && rq->scx.rescue.budget < scx_rescue_quantum_ns) { 403 s64 deficit = scx_rescue_quantum_ns - rq->scx.rescue.budget; 404 405 delay = max(delay, 406 div_s64(deficit << SCHED_CAPACITY_SHIFT, scx_rescue_bw_1024)); 407 } 408 409 /* +1 rounds up so the beat is due by the time the timer fires */ 410 timer->expires = jiffies + nsecs_to_jiffies(delay) + 1; 411 add_timer_on(timer, cpu_of(rq)); 412 } 413 414 /** 415 * scx_rescue_admit - Start rescuing @p on @rq 416 * @rq: rq @p is being admitted on 417 * @p: task being admitted, off any DSQ 418 * @slice: CPU time to grant 419 * 420 * The schedulers keep their normal control over @p and may preempt or reslice 421 * it. @slice is measured on served CPU time against the snapshot taken here, so 422 * neither shortens the rescue, see scx_rescue_charge() and scx_rescue_keep(). 423 * Prolonged denial escalates into protected execution, see 424 * scx_rescue_timerfn(). 425 */ 426 static void scx_rescue_admit(struct rq *rq, struct task_struct *p, s64 slice) 427 { 428 lockdep_assert_rq_held(rq); 429 WARN_ON_ONCE(rq->scx.rescue.curr); 430 431 rq->scx.rescue.curr = p; 432 rq->scx.rescue.slice = slice; 433 rq->scx.rescue.exec_snap = p->se.sum_exec_runtime; 434 scx_set_task_slice(p, slice); 435 scx_rescue_timer_arm(rq); 436 } 437 438 /** 439 * scx_rescue_try_admit - Try to admit a freshly stranded task 440 * @rq: rq @p is being inserted on 441 * @p: stranded task being diverted to rescue 442 * 443 * One rescue at a time and earlier arrivals go first. Admission needs a full 444 * quantum of budget, spent as the rescue runs. Return %true if @p was admitted 445 * and should be inserted at the tail of @rq's local DSQ, %false if it has to 446 * park on the rescue DSQ, with the timer armed to admit it later. 447 */ 448 static bool scx_rescue_try_admit(struct rq *rq, struct task_struct *p) 449 { 450 scx_rescue_accrue(rq); 451 452 if (!rq->scx.rescue.curr && list_empty(&rq->scx.rescue.dsq.list) && 453 rq->scx.rescue.budget >= scx_rescue_quantum_ns) { 454 scx_rescue_admit(rq, p, scx_rescue_quantum_ns); 455 return true; 456 } 457 458 scx_rescue_timer_arm(rq); 459 return false; 460 } 461 462 /** 463 * scx_rescue_check_overload - Eject the top rescue consumer on a stuck rescue 464 * @rq: rq whose rescue timer fired 465 * 466 * If the oldest waiter on @rq's rescue DSQ has been queued for too long, rescue 467 * demand on this cpu persistently exceeds the configured bandwidth. Eject the 468 * sub with the highest recent rescue consumption instead of letting the 469 * scheduler stall path blame the waiter's owner, who may just be crowded out. 470 */ 471 static void scx_rescue_check_overload(struct rq *rq) 472 { 473 struct scx_sched *victim = NULL, *pos; 474 struct task_struct *p; 475 int cpu = cpu_of(rq); 476 u64 max_avg = 0; 477 u32 dur_ms; 478 479 lockdep_assert_rq_held(rq); 480 481 p = list_first_entry_or_null(&rq->scx.rescue.dsq.list, struct task_struct, 482 scx.dsq_list.node); 483 if (!p) 484 return; 485 486 /* has the head waiter been queued for longer than the threshold? */ 487 if (time_before(jiffies, p->scx.rescue_at + scx_rescue_overload_after)) 488 return; 489 490 /* 491 * Grace period after the last ejection on this cpu - the freed 492 * bandwidth gets one threshold's worth of time to drain the backlog 493 * before another sub is judged. 494 */ 495 if (time_before64(get_jiffies_64(), rq->scx.rescue.kill_at + 496 scx_rescue_overload_after)) 497 return; 498 499 list_for_each_entry_rcu(pos, &scx_sched_all, all) { 500 u64 avg = scx_rescue_decay_avg(per_cpu_ptr(pos->pcpu, cpu)); 501 502 /* skip an already-exiting sub, else the ejection is wasted */ 503 if (pos->level && avg > max_avg && 504 atomic_read(&pos->exit_kind) == SCX_EXIT_NONE) { 505 max_avg = avg; 506 victim = pos; 507 } 508 } 509 if (!victim) 510 return; 511 512 rq->scx.rescue.kill_at = get_jiffies_64(); 513 dur_ms = jiffies_to_msecs(jiffies - p->scx.rescue_at); 514 __scx_exit(victim, SCX_EXIT_ERROR_RESCUE, 0, cpu, 515 "used too much rescue CPU time (%llums) while %s[%d] waited %u.%03us to be rescued", 516 div_u64(max_avg, NSEC_PER_MSEC), p->comm, p->pid, dur_ms / 1000, 517 dur_ms % 1000); 518 } 519 520 /** 521 * scx_rescue_timerfn - Drive and pace rescue execution 522 * @timer: rq->scx.rescue.timer 523 * 524 * Runs every quarter quantum while a rescuee exists, pending or admitted, see 525 * scx_rescue_timer_arm(). The head waiter is admitted once the bucket holds a 526 * full quantum and granted its slice, see scx_rescue_next_slice(). A session 527 * whose budget accumulates over two quanta with the admitted rescuee still 528 * waiting escalates - the rescuee's remaining slice turns into protected 529 * execution and it preempts the current task. An overloaded rescue queue ejects 530 * the top consumer, see scx_rescue_check_overload(). 531 */ 532 static void scx_rescue_timerfn(struct timer_list *timer) 533 { 534 struct rq *rq = timer_container_of(rq, timer, scx.rescue.timer); 535 struct task_struct *p; 536 537 guard(rq_lock_irqsave)(rq); 538 539 p = rq->scx.rescue.curr; 540 if (!p && list_empty(&rq->scx.rescue.dsq.list)) 541 return; 542 543 scx_rescue_accrue(rq); 544 scx_rescue_check_overload(rq); 545 546 if (!p) { 547 s64 slice = scx_rescue_next_slice(rq); 548 549 /* no rescue in progress */ 550 if (rq->scx.rescue.budget < scx_rescue_quantum_ns) 551 goto out_arm; 552 553 /* there's enough budget to start rescuing the next one */ 554 p = list_first_entry(&rq->scx.rescue.dsq.list, struct task_struct, 555 scx.dsq_list.node); 556 scx_task_unlink_from_dsq(p, &rq->scx.rescue.dsq); 557 scx_rescue_admit(rq, p, slice); 558 scx_move_local_task_to_local_dsq(scx_task_sched(p), p, 559 SCX_ENQ_IGNORE_CAPS, rq); 560 if (sched_class_above(&ext_sched_class, rq->curr->sched_class)) 561 resched_curr(rq); 562 } else if (p->scx.dsq && rq->scx.rescue.budget > 2 * scx_rescue_quantum_ns) { 563 /* 564 * The rescuee waited for the CPU for too long. Escalate - grant 565 * the unserved remainder, protect it from the schedulers and 566 * preempt the current task. The slice is set before the 567 * protection. Repeat beats only repeat the head move - the 568 * slice write is refused on a protected task. 569 */ 570 scx_set_task_slice(p, scx_rescue_slice_remaining(rq)); 571 p->scx.flags |= SCX_TASK_PROTECTED; 572 scx_task_unlink_from_dsq(p, &rq->scx.local_dsq); 573 scx_move_local_task_to_local_dsq(scx_task_sched(p), p, 574 SCX_ENQ_HEAD | SCX_ENQ_PREEMPT | SCX_ENQ_IGNORE_CAPS, 575 rq); 576 } 577 out_arm: 578 scx_rescue_timer_arm(rq); 579 } 580 581 /* flush out tasks waiting for rescue before a CPU goes down */ 582 void scx_rescue_flush(struct rq *rq) 583 { 584 struct task_struct *p, *n; 585 586 lockdep_assert_rq_held(rq); 587 588 /* sched domain rebuilds call rq_offline with the CPU staying alive */ 589 if (cpu_active(cpu_of(rq))) 590 return; 591 592 /* end the current rescue */ 593 if (rq->scx.rescue.curr) 594 scx_task_slice_ended(rq, rq->scx.rescue.curr); 595 596 /* and flush out all pending ones */ 597 list_for_each_entry_safe(p, n, &rq->scx.rescue.dsq.list, scx.dsq_list.node) { 598 scx_task_unlink_from_dsq(p, &rq->scx.rescue.dsq); 599 scx_move_local_task_to_local_dsq(scx_task_sched(p), p, 600 SCX_ENQ_IGNORE_CAPS, rq); 601 } 602 603 timer_delete(&rq->scx.rescue.timer); 604 } 605 606 void scx_rescue_dump(struct seq_buf *s, struct rq *rq) 607 { 608 struct task_struct *p = rq->scx.rescue.curr; 609 610 scx_dump_line(s, " rescue=%u budget=%lldus rescuing=%s[%d]", 611 rq->scx.rescue.dsq.nr, 612 div_s64(rq->scx.rescue.budget, NSEC_PER_USEC), 613 p ? p->comm : "none", p ? p->pid : -1); 614 } 615 616 /* 617 * A scheduler whose stall watchdog is shorter than the overload threshold gets 618 * stall-killed over its parked waiters before the overload check can eject the 619 * actual top consumer. The root's knobs set the threshold, warn on any 620 * scheduler that doesn't fit it. 621 */ 622 static void scx_rescue_check_timeout(struct scx_sched *sch) 623 { 624 if (!scx_rescue_bw_1024 || sch->watchdog_timeout > scx_rescue_overload_after) 625 return; 626 627 pr_warn("sched_ext: %s: watchdog timeout %ums <= rescue overload threshold %ums\n", 628 sch->ops.name, jiffies_to_msecs(sch->watchdog_timeout), 629 jiffies_to_msecs(scx_rescue_overload_after)); 630 } 631 632 /* latch the rescue parameters on root scheduler enable */ 633 void scx_rescue_set_knobs(struct scx_sched *sch) 634 { 635 s32 bw_ppt = sch->ops.rescue_bandwidth_ppt ?: SCX_RESCUE_DFL_BW_PPT; 636 s64 quantum_us = sch->ops.rescue_quantum_us ?: SCX_RESCUE_DFL_QUANTUM_US; 637 s64 period_ns; 638 639 if (sch->ops.rescue_bandwidth_ppt == SCX_RESCUE_DISABLE) { 640 scx_rescue_bw_1024 = 0; 641 return; 642 } 643 644 scx_rescue_bw_1024 = bw_ppt * SCHED_CAPACITY_SCALE / 1000; 645 scx_rescue_quantum_ns = max(quantum_us * NSEC_PER_USEC, TICK_NSEC); 646 scx_rescue_sat_delta_ns = 647 div_s64((4 * scx_rescue_quantum_ns + TICK_NSEC) << SCHED_CAPACITY_SHIFT, 648 scx_rescue_bw_1024); 649 650 /* 651 * The overload threshold and the decay halflife scale with the funding 652 * period - the time the bucket takes to fund one full quantum. 653 */ 654 period_ns = div_s64(scx_rescue_quantum_ns << SCHED_CAPACITY_SHIFT, scx_rescue_bw_1024); 655 scx_rescue_overload_after = 656 clamp(nsecs_to_jiffies(SCX_RESCUE_OVERLOAD_MULT * period_ns), 657 msecs_to_jiffies(SCX_RESCUE_MIN_OVERLOAD_MS), 658 msecs_to_jiffies(SCX_RESCUE_MAX_OVERLOAD_MS)); 659 scx_rescue_decay_halflife = scx_rescue_overload_after / 4; 660 661 /* a single in-budget wait must not cross the overload trigger */ 662 if (nsecs_to_jiffies(period_ns) > scx_rescue_overload_after / 2) 663 pr_warn("sched_ext: %s: rescue funding period %lldms > overload threshold %ums / 2\n", 664 sch->ops.name, div_s64(period_ns, NSEC_PER_MSEC), 665 jiffies_to_msecs(scx_rescue_overload_after)); 666 667 scx_rescue_check_timeout(sch); 668 } 669 670 void scx_rescue_init(struct rq *rq) 671 { 672 BUG_ON(scx_init_dsq(&rq->scx.rescue.dsq, SCX_DSQ_RESCUE, NULL)); 673 timer_setup(&rq->scx.rescue.timer, scx_rescue_timerfn, TIMER_PINNED); 674 rq->scx.rescue.kill_at = get_jiffies_64(); 675 } 676 677 /** 678 * scx_resolve_local_dsq - Pick the local, rescue or reject DSQ for an insert 679 * @sch: enqueuing sub-sched 680 * @rq: rq whose local DSQ @p targets 681 * @p: task being inserted 682 * @enq_flags: in/out, unhonored flags are cleared 683 * 684 * Return @rq's local DSQ if @sch holds the required caps on @rq's cid. 685 * Otherwise, return @rq's rescue DSQ if the insert carries %SCX_ENQ_RESCUE and 686 * rescue is enabled, or @rq's reject DSQ after recording the reenq reason on 687 * @p. 688 * 689 * %SCX_ENQ_IMMED, %SCX_ENQ_PREEMPT and %SCX_ENQ_HEAD are cleared when diverting 690 * to rescue or reject. %SCX_ENQ_PREEMPT is also cleared on a fallback 691 * migration-disabled admission. 692 * 693 * Bypass doesn't need special-casing as a bypassing sched's tasks are enqueued 694 * to and run by its nearest non-bypassing ancestor. If root is bypassing, it 695 * always holds all caps. 696 */ 697 struct scx_dispatch_q *scx_resolve_local_dsq(struct scx_sched *sch, struct rq *rq, 698 struct task_struct *p, u64 *enq_flags) 699 { 700 if (!scx_has_subs()) 701 return &rq->scx.local_dsq; 702 703 s32 cid = __scx_cpu_to_cid(cpu_of(rq)); 704 struct scx_sched *asch = rq->scx.remote_activate_sch ?: sch; 705 u64 needed = scx_caps_for_enq(*enq_flags); 706 u64 missing; 707 708 /* 709 * On a remote activation the scheduling sched (@asch) differs from 710 * @p's owner (@sch). Check caps against the scheduling sched. 711 */ 712 if (*enq_flags & SCX_ENQ_PREEMPT) 713 needed |= scx_caps_for_preempt(asch, rq, *enq_flags); 714 missing = scx_missing_caps(asch, cpu_of(rq), needed); 715 716 /* requirements met */ 717 if (likely(!missing)) 718 return &rq->scx.local_dsq; 719 720 /* 721 * The task must run on this CPU regardless of caps: the rq is draining 722 * offline (BPF scheduler bypassed), the task is migration-disabled, or a 723 * migration is pending. Admit despite the missing caps and count it. 724 * Refuse preemptions. 725 */ 726 if (unlikely(!scx_rq_online(rq) || is_migration_disabled(p) || 727 p->migration_pending)) { 728 __scx_add_event(sch, SCX_EV_SUB_FORCED_ADMIT, 1); 729 *enq_flags &= ~SCX_ENQ_PREEMPT; 730 return &rq->scx.local_dsq; 731 } 732 733 /* 734 * Diverting to rescue or reject, neither of which honors IMMED, PREEMPT 735 * or HEAD - a diversion has no priority and IMMED is not allowed on 736 * non-local DSQs. Strip the enq and task flags along with the slice. 737 */ 738 *enq_flags &= ~(SCX_ENQ_IMMED | SCX_ENQ_PREEMPT | SCX_ENQ_HEAD | 739 SCX_ENQ_APPLY_SLICE | SCX_ENQ_SLICE_DFL); 740 p->scx.flags &= ~SCX_TASK_IMMED; 741 742 /* the enqueuer opted for rescue instead of rejection and reenqueue */ 743 if ((*enq_flags & SCX_ENQ_RESCUE) && likely(scx_rescue_bw_1024)) { 744 __scx_add_event(sch, SCX_EV_SUB_RESCUE, 1); 745 if (scx_rescue_try_admit(rq, p)) 746 return &rq->scx.local_dsq; 747 748 /* queueing, the overload trigger measures the wait from here */ 749 p->scx.rescue_at = jiffies; 750 return &rq->scx.rescue.dsq; 751 } 752 753 p->scx.reenq_reason_caps = missing; 754 p->scx.reenq_reason_cid = cid; 755 756 return &rq->scx.reject_dsq; 757 } 758 759 /* @p lost the caps needed to stay on @rq's local DSQ? Record reason if so. */ 760 bool scx_task_reenq_on_cap_revoke(struct rq *rq, struct task_struct *p) 761 { 762 u64 missing; 763 764 /* migration-disabled tasks and the rescuee are admitted capless */ 765 if (is_migration_disabled(p) || p == scx_rescuee(rq)) 766 return false; 767 768 missing = scx_missing_caps(scx_task_sched(p), cpu_of(rq), scx_caps_for_task(p)); 769 if (likely(!missing)) 770 return false; 771 772 p->scx.reenq_reason_caps = missing; 773 p->scx.reenq_reason_cid = __scx_cpu_to_cid(cpu_of(rq)); 774 return true; 775 } 776 777 /* 778 * Drain @rq->scx.reject_dsq, reenqueueing each task so the BPF re-decides 779 * from p->scx.reenq_reason_*. 780 * 781 * A task can be re-rejected repeatedly. The reenqueue is bounded per task in 782 * scx_do_enqueue_task(), which ejects the owning sub past SCX_REENQ_MAX_REPEAT. 783 * Rejection can't happen for root. 784 */ 785 void scx_reenq_reject(struct rq *rq) 786 { 787 LIST_HEAD(tasks); 788 struct task_struct *p, *n; 789 790 lockdep_assert_rq_held(rq); 791 792 if (!scx_has_subs() || list_empty(&rq->scx.reject_dsq.list)) 793 return; 794 795 /* 796 * Move to a private list so a task re-rejected by the 797 * scx_do_enqueue_task() below isn't revisited this round. 798 */ 799 list_for_each_entry_safe(p, n, &rq->scx.reject_dsq.list, scx.dsq_list.node) { 800 /* migration_pending tasks should have bypassed to local DSQ */ 801 if (WARN_ON_ONCE(p->migration_pending)) 802 continue; 803 804 scx_reenq_wait_dispatching(p); 805 scx_dispatch_dequeue(rq, p); 806 807 if (WARN_ON_ONCE(p->scx.flags & SCX_TASK_REENQ_REASON_MASK)) 808 p->scx.flags &= ~SCX_TASK_REENQ_REASON_MASK; 809 p->scx.flags |= SCX_TASK_REENQ_CAP; 810 811 list_add_tail(&p->scx.dsq_list.node, &tasks); 812 } 813 814 list_for_each_entry_safe(p, n, &tasks, scx.dsq_list.node) { 815 list_del_init(&p->scx.dsq_list.node); 816 817 scx_do_enqueue_task(rq, p, SCX_ENQ_REENQ, -1); 818 819 p->scx.flags &= ~SCX_TASK_REENQ_REASON_MASK; 820 } 821 } 822 823 /* record a caps change, see struct scx_caps_updated */ 824 static void caps_updated_record(struct scx_pshard *ps, const struct scx_cmask *cids, u64 caps, 825 struct list_head *to_deliver) 826 { 827 struct scx_caps_updated *cu = &ps->caps_updated; 828 829 guard(raw_spinlock)(&cu->lock); 830 scx_cmask_or(&cu->cmask, cids); 831 cu->caps |= caps; 832 if (list_empty(&cu->node_in_flight)) 833 list_add_tail(&cu->node_in_flight, to_deliver); 834 } 835 836 /* deliver queued caps_updated callbacks, see struct scx_caps_updated */ 837 static void caps_updated_deliver(struct list_head *to_deliver) 838 { 839 struct scx_caps_updated *cu, *tmp; 840 841 list_for_each_entry_safe(cu, tmp, to_deliver, node_in_flight) { 842 struct scx_pshard *ps = container_of(cu, struct scx_pshard, caps_updated); 843 struct scx_sched *sch = ps->sch; 844 845 while (true) { 846 u64 caps = 0; 847 848 /* 849 * During enable, has_op is set after ops.sub_attach(), 850 * so !has_op means the op is absent or the sched isn't 851 * live yet - e.g. caps grant from ops.sub_attach(). 852 * Either way don't consume - leave for 853 * scx_sub_seed_caps() to deliver once live. 854 */ 855 scoped_guard (raw_spinlock, &cu->lock) { 856 if (cu->caps && SCX_HAS_OP(sch, sub_caps_updated) && 857 likely(!READ_ONCE(sch->aborting))) { 858 struct scx_cmask_ref ref; 859 860 caps = cu->caps; 861 scx_cmask_ref_init_kern(sch, cu->cmask_arena_out, 862 ps->base, ps->nr_cids, &ref); 863 scx_cmask_ref_copy(&ref, &cu->cmask); 864 scx_cmask_clear(&cu->cmask); 865 cu->caps = 0; 866 } else { 867 list_del_init(&cu->node_in_flight); 868 } 869 } 870 if (!caps) 871 break; 872 873 /* caps != 0 only when deliverable (has_op, above) */ 874 SCX_CALL_OP(sch, sub_caps_updated, NULL, cu->cmask_arena_out, caps); 875 } 876 } 877 } 878 879 /* 880 * Deliver caps owed to @sch that couldn't be delivered earlier (e.g. a grant 881 * taken during its sub_attach(), before has_op was set). Called once @sch is 882 * enabled. 883 */ 884 static void scx_sub_seed_caps(struct scx_sched *sch) 885 { 886 LIST_HEAD(to_deliver); 887 s32 si; 888 889 guard(irqsave)(); 890 891 for (si = 0; si < sch->nr_pshards; si++) { 892 struct scx_pshard *ps = sch->pshard[si]; 893 struct scx_caps_updated *cu = &ps->caps_updated; 894 895 scoped_guard (raw_spinlock, &cu->lock) { 896 if (cu->caps && list_empty(&cu->node_in_flight)) 897 list_add_tail(&cu->node_in_flight, &to_deliver); 898 } 899 } 900 caps_updated_deliver(&to_deliver); 901 } 902 903 static u64 calc_effective_caps(struct scx_pshard *ps, s32 cid) 904 { 905 u64 ecaps = 0; 906 u32 cap_bit; 907 908 for (cap_bit = 0; cap_bit < __SCX_NR_CAPS; cap_bit++) 909 if (scx_cmask_test(cid, &ps->caps[cap_bit].cmask)) 910 ecaps |= BIT_U64(cap_bit) | scx_caps_implied(BIT_U64(cap_bit)); 911 return ecaps; 912 } 913 914 /** 915 * queue_sync_ecaps - Queue ecaps update for a (sch, cid) pair 916 * @sch: sched to update 917 * @cid: cid to update 918 * 919 * Queue an ecaps update for @sch's @cid and kick the cpu so that it syncs in 920 * dispatch_one(). 921 */ 922 static void queue_sync_ecaps(struct scx_sched *sch, s32 cid) 923 { 924 s32 cpu = __scx_cid_to_cpu(cid); 925 struct scx_sched_pcpu *pcpu = per_cpu_ptr(sch->pcpu, cpu); 926 927 /* 928 * Pairs with smp_mb() in scx_process_sync_ecaps(). Either the check 929 * below sees the node off the list and queues it, or the in-flight sync 930 * sees the caps[] update made before this call. 931 */ 932 smp_mb(); 933 934 /* @cid's pshard->lock excludes concurrent queueing attempts */ 935 if (llist_on_list(&pcpu->ecaps_to_sync_node)) 936 return; 937 if (llist_add(&pcpu->ecaps_to_sync_node, &cpu_rq(cpu)->scx.ecaps_to_sync)) 938 scx_kick_cpu(sch->ancestors[0], cpu, 0); 939 } 940 941 /* discard @rq's queued ecaps syncs */ 942 static void discard_queued_syncs(struct rq *rq) 943 { 944 struct llist_node *pos, *tmp; 945 946 lockdep_assert_rq_held(rq); 947 948 llist_for_each_safe(pos, tmp, llist_del_all(&rq->scx.ecaps_to_sync)) 949 init_llist_node(pos); 950 } 951 952 /** 953 * scx_process_sync_ecaps - Sync this cpu's ecaps to pshard->caps[] 954 * @rq: the cid's cpu rq 955 * @prev: @rq's previous task from the in-progress dispatch 956 * 957 * pshard->caps[] is the target configuration. pcpu->ecaps is the effective 958 * transposed copy owned by the cid's cpu and written only here under @rq's 959 * lock. 960 * 961 * A sched that newly gains baseline access here is owed an update_idle() so it 962 * learns the cid's idle state. Such a gain arms the per-rq 963 * %SCX_RQ_SUB_IDLE_RENOTIFY gate so the next idle pick delivers it. 964 */ 965 void scx_process_sync_ecaps(struct rq *rq, struct task_struct *prev) 966 { 967 s32 cpu = cpu_of(rq); 968 s32 cid, shard; 969 struct llist_node *batch, *pos, *tmp; 970 u64 lost_all = 0; 971 972 lockdep_assert_rq_held(rq); 973 974 if (!scx_has_subs() || likely(llist_empty(&rq->scx.ecaps_to_sync))) 975 return; 976 977 /* 978 * ecaps are zeroed while the cpu is inactive and must stay zero. 979 * Discard queued syncs instead of processing them - the 980 * scx_online_ecaps() reseed re-syncs every sched on activation. 981 * cpu_active() clears before the offline zeroing and sets before the 982 * reseed is queued, so this test can neither miss a racing sync nor 983 * eat the reseed. 984 */ 985 if (unlikely(!cpu_active(cpu))) { 986 discard_queued_syncs(rq); 987 return; 988 } 989 990 /* @cid is valid here: the cpu is active with queued syncs */ 991 cid = __scx_cpu_to_cid(cpu); 992 shard = rcu_dereference_all(scx_cid_to_shard)[cid]; 993 994 batch = llist_del_all(&rq->scx.ecaps_to_sync); 995 llist_for_each_safe(pos, tmp, batch) { 996 struct scx_sched_pcpu *pcpu = 997 container_of(pos, struct scx_sched_pcpu, ecaps_to_sync_node); 998 struct scx_pshard *ps = pcpu->sch->pshard[shard]; 999 u64 old, ecaps, lost, gained; 1000 1001 init_llist_node(pos); 1002 1003 /* pairs with smp_mb() in queue_sync_ecaps(), see there */ 1004 smp_mb(); 1005 1006 old = READ_ONCE(pcpu->ecaps); 1007 ecaps = calc_effective_caps(ps, cid); 1008 WRITE_ONCE(pcpu->ecaps, ecaps); 1009 1010 lost = old & ~ecaps; 1011 gained = ecaps & ~old; 1012 lost_all |= lost; 1013 1014 /* 1015 * Tell the sched its effective caps on this cid changed. The 1016 * invocation is equivalent to the dispatch path and may drop 1017 * and re-acquire the rq lock temporarily while the rest of 1018 * @batch is held privately, see scx_discard_ecaps_to_sync(). 1019 * The dispatch kfuncs resolve their context on the executing 1020 * cpu, which under core scheduling can differ from @rq's cpu, 1021 * so the context is set up there. The rq recorded in it keeps 1022 * the dispatches targeting @rq. 1023 */ 1024 if (ecaps != pcpu->reported_ecaps && 1025 SCX_HAS_OP(pcpu->sch, sub_ecaps_updated) && 1026 !scx_bypassing(pcpu->sch, cpu)) { 1027 struct scx_dsp_ctx *dspc = &this_cpu_ptr(pcpu->sch->pcpu)->dsp_ctx; 1028 1029 dspc->rq = rq; 1030 /* stash @prev so nested dispatches can access it */ 1031 rq->scx.sub_dispatch_prev = prev; 1032 SCX_CALL_OP(pcpu->sch, sub_ecaps_updated, rq, scx_cpu_arg(cpu), 1033 pcpu->reported_ecaps, ecaps); 1034 rq->scx.sub_dispatch_prev = NULL; 1035 scx_flush_dispatch_buf(pcpu->sch, rq); 1036 pcpu->reported_ecaps = ecaps; 1037 } 1038 1039 /* 1040 * Gaining baseline access owes an update_idle() so the sched 1041 * learns the cpu's idle state. Arm the per-rq gate so the next 1042 * idle pick flushes it. Losing access drops any pending notify. 1043 */ 1044 if (gained & SCX_CAP_BASE) { 1045 pcpu->idle_renotify = true; 1046 rq->scx.flags |= SCX_RQ_SUB_IDLE_RENOTIFY; 1047 } else if (lost & SCX_CAP_BASE) { 1048 pcpu->idle_renotify = false; 1049 } 1050 } 1051 1052 /* 1053 * Losing a cap can strand already-queued tasks. Schedule a reenq scan 1054 * to move the now-capless ones off the local DSQ. The scan tests 1055 * against the effective caps and thus must come after the ecaps sync. 1056 */ 1057 if (lost_all & SCX_CAPS_REENQ_ON_LOSS) 1058 scx_schedule_reenq_local(rq, SCX_REENQ_CAP_REVOKE); 1059 } 1060 1061 /** 1062 * scx_unbypass_replay_ecaps - Replay a bypass-suppressed ecaps notification 1063 * @rq: rq of the cpu leaving bypass 1064 * @sch: scheduler that just left bypass on @rq's cpu 1065 * 1066 * scx_process_sync_ecaps() consumes syncs while bypassing without delivering 1067 * ops.sub_ecaps_updated(), leaving reported_ecaps stale. Nothing re-queues a 1068 * sync when bypass lifts, so without a replay a cid that never changes again 1069 * would never be notified. The attach-time initial grants are the acute case 1070 * as they are consumed during the enable bypass window. Re-queue a sync for 1071 * any undelivered delta so the next dispatch delivers it. 1072 */ 1073 void scx_unbypass_replay_ecaps(struct rq *rq, struct scx_sched *sch) 1074 { 1075 s32 cpu = cpu_of(rq); 1076 struct scx_sched_pcpu *pcpu = per_cpu_ptr(sch->pcpu, cpu); 1077 struct scx_pshard *ps; 1078 s32 cid; 1079 1080 lockdep_assert_rq_held(rq); 1081 1082 /* root holds every cap and never uses ecaps */ 1083 if (!sch->level) 1084 return; 1085 1086 if (READ_ONCE(pcpu->ecaps) == pcpu->reported_ecaps) 1087 return; 1088 1089 cid = __scx_cpu_to_cid(cpu); 1090 ps = sch->pshard[rcu_dereference_all(scx_cid_to_shard)[cid]]; 1091 1092 guard(raw_spinlock)(&ps->lock); 1093 queue_sync_ecaps(sch, cid); 1094 } 1095 1096 /* 1097 * A cpu came back. Re-seed each sub-sched's ecaps on the cpu's cid. The sync 1098 * recomputes effective caps from the pshard and fires ops.sub_ecaps_updated() 1099 * only on a real change since offline. 1100 */ 1101 void scx_online_ecaps(struct rq *rq) 1102 { 1103 struct scx_sched *root, *pos; 1104 s32 cid, shard; 1105 1106 /* 1107 * Only a live hierarchy can have ecaps to reseed. This also keeps the 1108 * table reads below away from an enable that failed before publishing 1109 * the tables. A concurrent disable can't retire them, see 1110 * handle_hotplug(). 1111 */ 1112 if (!scx_enabled()) 1113 return; 1114 1115 guard(rq_lock_irqsave)(rq); 1116 1117 root = scx_root_protected(); 1118 cid = __scx_cpu_to_cid(cpu_of(rq)); 1119 shard = rcu_dereference_all(scx_cid_to_shard)[cid]; 1120 1121 scx_for_each_descendant_pre(pos, root) { 1122 struct scx_pshard *ps; 1123 1124 /* root holds every cap and never uses ecaps */ 1125 if (!pos->level) 1126 continue; 1127 1128 ps = pos->pshard[shard]; 1129 guard(raw_spinlock)(&ps->lock); 1130 queue_sync_ecaps(pos, cid); 1131 } 1132 } 1133 1134 /* 1135 * A cpu is going down. Zero each sub-sched's in-effect ecaps so cap checks 1136 * treat the cpu as capless while offline. Pending and late-queued syncs are 1137 * discarded at consumption by scx_process_sync_ecaps() while the cpu is 1138 * inactive. Leave reported_ecaps. Ownership is unchanged, so the 1139 * scx_online_ecaps() reseed reports only a genuine delta. No callback fires 1140 * here. 1141 */ 1142 void scx_offline_ecaps(struct rq *rq) 1143 { 1144 s32 cpu = cpu_of(rq); 1145 struct scx_sched *root, *pos; 1146 1147 guard(rq_lock_irqsave)(rq); 1148 1149 root = scx_root_protected(); 1150 1151 scx_for_each_descendant_pre(pos, root) { 1152 /* root holds every cap and never uses ecaps */ 1153 if (!pos->level) 1154 continue; 1155 1156 WRITE_ONCE(per_cpu_ptr(pos->pcpu, cpu)->ecaps, 0); 1157 } 1158 } 1159 1160 /* 1161 * @pcpu's sched was unhashed before the grace period, so nothing re-queues its 1162 * sync node. Remove the node from @rq's pending list so the pcpu can be freed. 1163 */ 1164 void scx_discard_ecaps_to_sync(s32 cpu, struct scx_sched_pcpu *pcpu) 1165 { 1166 struct rq *rq = cpu_rq(cpu); 1167 struct llist_node *head = NULL, *tail = NULL; 1168 struct llist_node *pos, *tmp; 1169 1170 /* 1171 * llist can't unlink a single node. Take all queued nodes, drop @pcpu's 1172 * and resplice the rest. Nodes in the taken batch read as on-list 1173 * throughout, so queue_sync_ecaps() stays correct. 1174 */ 1175 if (llist_on_list(&pcpu->ecaps_to_sync_node)) { 1176 scoped_guard (rq_lock_irqsave, rq) { 1177 llist_for_each_safe(pos, tmp, llist_del_all(&rq->scx.ecaps_to_sync)) { 1178 if (pos == &pcpu->ecaps_to_sync_node) { 1179 init_llist_node(pos); 1180 } else { 1181 pos->next = head; 1182 head = pos; 1183 if (!tail) 1184 tail = pos; 1185 } 1186 } 1187 if (head) 1188 llist_add_batch(head, tail, &rq->scx.ecaps_to_sync); 1189 } 1190 } 1191 1192 /* 1193 * An in-flight scx_process_sync_ecaps() batch may still hold the node 1194 * privately across dispatch-induced rq unlocks, reading as on-list. 1195 * 1196 * Because a bypassing sched gets no op call, init_llist_node() and all 1197 * @pcpu accesses share one contiguous lock hold, off-list under the rq 1198 * lock means @pcpu won't be accessed again. 1199 */ 1200 while (true) { 1201 scoped_guard (rq_lock_irqsave, rq) { 1202 if (!llist_on_list(&pcpu->ecaps_to_sync_node)) 1203 return; 1204 } 1205 cpu_relax(); 1206 } 1207 } 1208 1209 /** 1210 * scx_discard_stale_ecaps_syncs - Discard ecaps syncs from earlier schedulers 1211 * 1212 * To be called during root enable before the scheduler goes live. An earlier 1213 * root's sub-sched may not have gone through its RCU free path yet (e.g. a 1214 * still-open link fd defers it) and can leave queued ecaps syncs behind. 1215 * Processing them would decode the dead sched's pshards with the current cid 1216 * layout. Discard them instead. The backing scx_sched_pcpu's are still 1217 * allocated as the free path removes ecaps_to_sync_node before freeing. 1218 */ 1219 void scx_discard_stale_ecaps_syncs(void) 1220 { 1221 s32 cpu; 1222 1223 for_each_possible_cpu(cpu) { 1224 struct rq *rq = cpu_rq(cpu); 1225 1226 guard(rq_lock_irqsave)(rq); 1227 discard_queued_syncs(rq); 1228 } 1229 } 1230 1231 static DECLARE_WAIT_QUEUE_HEAD(scx_unlink_waitq); 1232 1233 void drain_descendants(struct scx_sched *sch) 1234 { 1235 /* 1236 * Child scheds that finished the critical part of disabling will take 1237 * themselves off @sch->children. Wait for it to drain. As propagation 1238 * is recursive, empty @sch->children means that all proper descendant 1239 * scheds reached unlinking stage. 1240 */ 1241 wait_event(scx_unlink_waitq, list_empty(&sch->children)); 1242 } 1243 1244 /** 1245 * scx_rehome_task - Move a task to a sched it has been initialized for 1246 * @to: sched taking over @p, @p's init on it already complete 1247 * @p: task to re-home 1248 * 1249 * Exit @p from its current sched and switch it over to @to, overriding the 1250 * state to %SCX_TASK_READY to account for the already completed init. A task 1251 * on a non-ext class, possible under an %SCX_OPS_SWITCH_PARTIAL root, stays 1252 * %READY and is enabled by switching_to_scx() if it switches over. 1253 */ 1254 static void scx_rehome_task(struct scx_sched *to, struct task_struct *p) 1255 { 1256 lockdep_assert_held(&p->pi_lock); 1257 lockdep_assert_rq_held(task_rq(p)); 1258 1259 scoped_guard (sched_change, p, DEQUEUE_SAVE | DEQUEUE_MOVE) { 1260 scx_disable_and_exit_task(scx_task_sched(p), p); 1261 scx_set_task_state(p, SCX_TASK_INIT_BEGIN); 1262 scx_set_task_state(p, SCX_TASK_INIT); 1263 scx_set_task_sched(p, to); 1264 scx_set_task_state(p, SCX_TASK_READY); 1265 if (p->sched_class == &ext_sched_class) 1266 scx_enable_task(to, p); 1267 } 1268 } 1269 1270 /** 1271 * scx_punt_task - Hand a task to a failed sched without initialization 1272 * @to: failed and bypassed sched taking custody of @p 1273 * @p: task to punt 1274 * 1275 * Take @p off its current sched and put it on @to at %SCX_TASK_NONE. @to is 1276 * dying and its teardown will re-home @p properly. 1277 * 1278 * Used when @to must take over @p but failed to initialize it. Bypass keeps 1279 * scheduling decisions away from @to but @p can still trigger its task ops, 1280 * which may confuse the BPF side. @to is dying anyway. The exit paths skip 1281 * %NONE tasks (see __scx_disable_and_exit_task() and switched_from_scx()). 1282 */ 1283 static void scx_punt_task(struct scx_sched *to, struct task_struct *p) 1284 { 1285 lockdep_assert_held(&p->pi_lock); 1286 lockdep_assert_rq_held(task_rq(p)); 1287 WARN_ON_ONCE(!READ_ONCE(to->bypass_depth)); 1288 1289 scoped_guard (sched_change, p, DEQUEUE_SAVE | DEQUEUE_MOVE) { 1290 scx_disable_and_exit_task(scx_task_sched(p), p); 1291 scx_set_task_sched(p, to); 1292 } 1293 } 1294 1295 static void scx_fail_parent(struct scx_sched *sch, 1296 struct task_struct *failed, s32 fail_code) 1297 { 1298 struct scx_sched *parent = scx_parent(sch); 1299 struct scx_task_iter sti; 1300 struct task_struct *p; 1301 1302 scx_error(parent, "ops.init_task() failed (%d) for %s[%d] while disabling a sub-scheduler", 1303 fail_code, failed->comm, failed->pid); 1304 1305 /* 1306 * Once $parent is bypassed, tasks can be punted into it. This may 1307 * cause downstream failures on the BPF side but $parent is dying 1308 * anyway. 1309 */ 1310 scx_bypass(parent, true); 1311 1312 scx_task_iter_start(&sti, sch->cgrp); 1313 while ((p = scx_task_iter_next_locked(&sti))) { 1314 if (scx_task_on_sched(parent, p)) 1315 continue; 1316 1317 scx_punt_task(parent, p); 1318 } 1319 scx_task_iter_stop(&sti); 1320 } 1321 1322 #ifdef CONFIG_EXT_GROUP_SCHED 1323 /** 1324 * scx_cgroup_claim_subtree - Claim the subtree's cgroups for an enabling sub 1325 * @sch: sub-scheduler being enabled 1326 * 1327 * Called while enabling @sch, after the subtree's cgrp->scx_sched's are pointed 1328 * at @sch and before any task is claimed. This mirrors root enable's 1329 * cgroups-before-tasks order. The ops.init_task() args are task_group-granular 1330 * and can still reference a cgroup outside the handed-over set when the cpu 1331 * controller is coarser than the sub topology or mounted on cgroup1. 1332 * 1333 * First init each of the parent sched's subtree cgroups on @sch, and only then 1334 * exit them from the parent, so that a failed init can be unwound with the 1335 * parent untouched. The both-inited transient is invisible outside 1336 * scx_cgroup_lock(). %SCX_TG_SUB_INIT tracks the first pass's progress. 1337 * %SCX_TG_INITED stays set throughout, except for a task_group whose 1338 * ops.cgroup_init() failed on the parent (see scx_cgroup_return_subtree()): 1339 * there is nothing to exit from the parent and %SCX_TG_INITED is set back with 1340 * the transfer. 1341 * 1342 * Dying but not yet offlined task_groups are included: a removed cgroup keeps 1343 * hosting scheduling events until its dying tasks finish their final context 1344 * switches, so it still needs to be inited on a sched, and its offline-time 1345 * ops.cgroup_exit() follows the last of those events. 1346 * 1347 * Return 0 on success, -errno on failure. On failure, @sch has been 1348 * scx_error()'d and is left with no cgroups. 1349 */ 1350 static s32 scx_cgroup_claim_subtree(struct scx_sched *sch) 1351 { 1352 struct cgroup *sub_cgrp = sch_cgroup(sch); 1353 struct cgroup_subsys_state *ecss = cgroup_e_css(sub_cgrp, &cpu_cgrp_subsys); 1354 struct scx_sched *parent = scx_parent(sch); 1355 struct cgroup_subsys_state *css; 1356 int ret; 1357 1358 css_for_each_descendant_pre(css, ecss) { 1359 struct task_group *tg = css_tg(css); 1360 struct scx_cgroup_init_args args = { 1361 .weight = tg->scx.weight, 1362 .bw_period_us = tg->scx.bw_period_us, 1363 .bw_quota_us = tg->scx.bw_quota_us, 1364 .bw_burst_us = tg->scx.bw_burst_us, 1365 .sched_idle = tg->scx.idle, 1366 }; 1367 1368 if (tg->scx.sched != parent || 1369 !cgroup_is_descendant(css->cgroup, sub_cgrp)) 1370 continue; 1371 1372 if (SCX_HAS_OP(sch, cgroup_init)) { 1373 ret = SCX_CALL_OP_RET(sch, cgroup_init, NULL, css->cgroup, &args); 1374 if (ret) { 1375 scx_error(sch, "ops.cgroup_init() failed (%d)", ret); 1376 goto err; 1377 } 1378 } 1379 tg->scx.flags |= SCX_TG_SUB_INIT; 1380 } 1381 1382 css_for_each_descendant_post(css, ecss) { 1383 struct task_group *tg = css_tg(css); 1384 1385 /* 1386 * SUB_INIT is pass 1's progress mark: pass 2 and the err path 1387 * must visit exactly the tgs pass 1 inited. 1388 */ 1389 if (!(tg->scx.flags & SCX_TG_SUB_INIT)) 1390 continue; 1391 1392 /* skip the exit if the parent's ops.cgroup_init() failed */ 1393 if ((tg->scx.flags & SCX_TG_INITED) && SCX_HAS_OP(parent, cgroup_exit)) 1394 SCX_CALL_OP(parent, cgroup_exit, NULL, css->cgroup); 1395 tg->scx.sched = sch; 1396 tg->scx.flags |= SCX_TG_INITED; 1397 tg->scx.flags &= ~SCX_TG_SUB_INIT; 1398 } 1399 1400 return 0; 1401 1402 err: 1403 css_for_each_descendant_post(css, ecss) { 1404 struct task_group *tg = css_tg(css); 1405 1406 if (!(tg->scx.flags & SCX_TG_SUB_INIT)) 1407 continue; 1408 1409 if (SCX_HAS_OP(sch, cgroup_exit)) 1410 SCX_CALL_OP(sch, cgroup_exit, NULL, css->cgroup); 1411 tg->scx.flags &= ~SCX_TG_SUB_INIT; 1412 } 1413 return ret; 1414 } 1415 1416 /** 1417 * scx_cgroup_return_subtree - Return the subtree's cgroups to the parent sched 1418 * @sch: sub-scheduler being disabled 1419 * 1420 * Called while disabling @sch, after the subtree's cgrp->scx_sched's are reset 1421 * to the parent sched and before tasks are re-homed, mirroring root disable's 1422 * cgroups-before-tasks teardown order. The reverse of 1423 * scx_cgroup_claim_subtree(): exit @sch's cgroups from @sch, then init them on 1424 * the parent with the current tg->scx.* values, resyncing settings that changed 1425 * while @sch had them. 1426 * 1427 * When an init on the parent fails, the parent is failed - the same policy as 1428 * task re-homing. The remaining task_groups are punted: they move to the parent 1429 * anyway with %SCX_TG_INITED cleared, as ops.cgroup_init() failed or never ran 1430 * for them. A punted task_group gets no cgroup ops. The dying parent's own 1431 * disable moves it one sched up, initing it there. Root ends the chain: root 1432 * teardown drops cgroup ops entirely and the next enable's bulk init re-inits 1433 * every online task_group. 1434 * 1435 * The task re-home that follows still delivers ops.init_task() to the dying 1436 * parent, including for tasks in punted cgroups it never inited - tolerated 1437 * like the downstream failures of task punting (see scx_punt_task()). 1438 */ 1439 static void scx_cgroup_return_subtree(struct scx_sched *sch) 1440 { 1441 struct cgroup *sub_cgrp = sch_cgroup(sch); 1442 struct cgroup_subsys_state *ecss = cgroup_e_css(sub_cgrp, &cpu_cgrp_subsys); 1443 struct scx_sched *parent = scx_parent(sch); 1444 struct cgroup_subsys_state *css; 1445 bool parent_failed = false; 1446 int ret; 1447 1448 css_for_each_descendant_post(css, ecss) { 1449 struct task_group *tg = css_tg(css); 1450 1451 if (tg->scx.sched != sch || 1452 !cgroup_is_descendant(css->cgroup, sub_cgrp)) 1453 continue; 1454 1455 /* skip the exit if @sch's ops.cgroup_init() failed for the tg */ 1456 if ((tg->scx.flags & SCX_TG_INITED) && SCX_HAS_OP(sch, cgroup_exit)) 1457 SCX_CALL_OP(sch, cgroup_exit, NULL, css->cgroup); 1458 tg->scx.sched = parent; 1459 tg->scx.flags |= SCX_TG_SUB_INIT; 1460 } 1461 1462 css_for_each_descendant_pre(css, ecss) { 1463 struct task_group *tg = css_tg(css); 1464 struct scx_cgroup_init_args args = { 1465 .weight = tg->scx.weight, 1466 .bw_period_us = tg->scx.bw_period_us, 1467 .bw_quota_us = tg->scx.bw_quota_us, 1468 .bw_burst_us = tg->scx.bw_burst_us, 1469 .sched_idle = tg->scx.idle, 1470 }; 1471 1472 /* the first pass must have transferred everything */ 1473 WARN_ON_ONCE(tg->scx.sched == sch); 1474 1475 /* 1476 * SUB_INIT distinguishes the tgs pass 1 moved. The sched test 1477 * can't: a tg punted to the parent by an earlier failure would 1478 * also match. 1479 */ 1480 if (!(tg->scx.flags & SCX_TG_SUB_INIT)) 1481 continue; 1482 tg->scx.flags &= ~(SCX_TG_SUB_INIT | SCX_TG_INITED); 1483 1484 /* 1485 * A re-init on $parent failed. The task_groups from here on are 1486 * punted: they stay on the dying $parent with INITED clear and 1487 * move onward when it disables. 1488 */ 1489 if (parent_failed) 1490 continue; 1491 1492 if (SCX_HAS_OP(parent, cgroup_init)) { 1493 ret = SCX_CALL_OP_RET(parent, cgroup_init, NULL, css->cgroup, &args); 1494 if (ret) { 1495 scx_error(parent, "ops.cgroup_init() failed (%d) while disabling a sub-scheduler", 1496 ret); 1497 parent_failed = true; 1498 continue; 1499 } 1500 } 1501 tg->scx.flags |= SCX_TG_INITED; 1502 } 1503 } 1504 #else 1505 static inline s32 scx_cgroup_claim_subtree(struct scx_sched *sch) { return 0; } 1506 static inline void scx_cgroup_return_subtree(struct scx_sched *sch) {} 1507 #endif 1508 1509 void scx_sub_disable(struct scx_sched *sch) 1510 { 1511 struct scx_sched *parent = scx_parent(sch); 1512 struct scx_task_iter sti; 1513 struct task_struct *p; 1514 int ret; 1515 1516 /* 1517 * Guarantee forward progress and wait for descendants to be disabled. 1518 * To limit disruptions, $parent is not bypassed. Tasks are fully 1519 * prepped and then inserted back into $parent. 1520 */ 1521 scx_bypass(sch, true); 1522 drain_descendants(sch); 1523 1524 /* 1525 * Here, every runnable task is guaranteed to make forward progress and 1526 * we can safely use blocking synchronization constructs. Actually 1527 * disable ops. 1528 */ 1529 mutex_lock(&scx_enable_mutex); 1530 percpu_down_write(&scx_fork_rwsem); 1531 scx_cgroup_lock(); 1532 1533 /* 1534 * An enable that failed before scx_link_sched() succeeded never owned a 1535 * cgroup or task and won't be waited on by an ancestor's 1536 * drain_descendants(). Nothing to reparent and walking the tasks can 1537 * misbehave as the task ownership invariant (either owned by self or 1538 * parent) does not hold. ->sibling can't identify this case - an undone 1539 * link leaves it non-empty. 1540 */ 1541 if (!sch->linked) 1542 goto dump; 1543 1544 set_cgroup_sched(sch_cgroup(sch), parent); 1545 1546 /* 1547 * Return the subtree's cgroups before re-homing tasks so that any 1548 * ops.init_task() on $parent only sees cgroups it has initialized. 1549 */ 1550 scx_cgroup_return_subtree(sch); 1551 1552 scx_task_iter_start(&sti, sch->cgrp); 1553 while ((p = scx_task_iter_next_locked(&sti))) { 1554 struct rq *rq; 1555 struct rq_flags rf; 1556 1557 /* filter out duplicate visits */ 1558 if (scx_task_on_sched(parent, p)) 1559 continue; 1560 1561 /* 1562 * By the time control reaches here, all linked descendant 1563 * schedulers should have been disabled. 1564 */ 1565 WARN_ON_ONCE(!scx_task_on_sched(sch, p)); 1566 1567 /* 1568 * @p is pinned by the iter: css_task_iter_next() takes a 1569 * reference and holds it until the next iter_next() call, so 1570 * @p->usage is guaranteed > 0. 1571 */ 1572 get_task_struct(p); 1573 1574 scx_task_iter_unlock(&sti); 1575 1576 /* 1577 * $p is READY or ENABLED on @sch. Initialize for $parent, 1578 * disable and exit from @sch, and then switch over to $parent. 1579 * 1580 * If a task fails to initialize for $parent, the only available 1581 * action is disabling $parent too. While this allows disabling 1582 * of a child sched to cause the parent scheduler to fail, the 1583 * failure can only originate from ops.init_task() of the 1584 * parent. A child can't directly affect the parent through its 1585 * own failures. 1586 */ 1587 ret = __scx_init_task(parent, p, NULL, false); 1588 if (ret) { 1589 scx_fail_parent(sch, p, ret); 1590 put_task_struct(p); 1591 break; 1592 } 1593 1594 rq = task_rq_lock(p, &rf); 1595 1596 if (scx_get_task_state(p) == SCX_TASK_DEAD) { 1597 /* 1598 * sched_ext_dead() raced us between __scx_init_task() 1599 * and this rq lock and ran exit_task() on @sch (the 1600 * sched @p was on at that point), not on $parent. 1601 * $parent's just-completed init is owed an exit_task() 1602 * and we issue it here. 1603 */ 1604 scx_sub_init_cancel_task(parent, p); 1605 task_rq_unlock(rq, p, &rf); 1606 put_task_struct(p); 1607 continue; 1608 } 1609 1610 scx_rehome_task(parent, p); 1611 1612 task_rq_unlock(rq, p, &rf); 1613 put_task_struct(p); 1614 } 1615 scx_task_iter_stop(&sti); 1616 1617 dump: 1618 scx_disable_dump(sch); 1619 1620 scx_cgroup_unlock(); 1621 percpu_up_write(&scx_fork_rwsem); 1622 1623 /* 1624 * All tasks are moved off of @sch but there may still be on-going 1625 * operations (e.g. ops.select_cpu()). Drain them by flushing RCU. Use 1626 * the expedited version as ancestors may be waiting in bypass mode. 1627 * Also, tell the parent that there is no need to keep running bypass 1628 * DSQs for us. 1629 */ 1630 synchronize_rcu_expedited(); 1631 scx_disable_bypass_dsp(sch); 1632 1633 scx_unlink_sched(sch); 1634 1635 mutex_unlock(&scx_enable_mutex); 1636 1637 /* 1638 * @sch is now unlinked from the parent's children list. Notify and call 1639 * ops.sub_detach/exit(). Note that ops.sub_detach/exit() must be called 1640 * after unlinking and releasing all locks. See scx_claim_exit(). 1641 */ 1642 wake_up_all(&scx_unlink_waitq); 1643 1644 if (parent->ops.sub_detach && sch->sub_attached) { 1645 struct scx_sub_detach_args sub_detach_args = { 1646 .ops = &sch->ops, 1647 .cgroup_path = sch->cgrp_path, 1648 }; 1649 SCX_CALL_OP(parent, sub_detach, NULL, 1650 &sub_detach_args); 1651 } 1652 1653 scx_log_sched_disable(sch); 1654 1655 if (sch->ops.exit) 1656 SCX_CALL_OP(sch, exit, NULL, sch->exit_info); 1657 1658 /* 1659 * @sch's non-ops programs such as timers and tracers can fire after 1660 * ops.exit(). Now that exit is complete, stop scx_prog_sched() from 1661 * resolving to @sch and drain in-flight resolvers. 1662 */ 1663 WRITE_ONCE(sch->dead, true); 1664 synchronize_rcu(); 1665 1666 if (sch->sub_kset) 1667 kobject_del(&sch->sub_kset->kobj); 1668 /* not added if enable failed before scx_sched_sysfs_add() */ 1669 if (sch->kobj.state_in_sysfs) 1670 kobject_del(&sch->kobj); 1671 } 1672 1673 /* verify that a scheduler can be attached to @cgrp and return the parent */ 1674 static struct scx_sched *find_parent_sched(struct cgroup *cgrp) 1675 { 1676 struct scx_sched *parent = scx_cgroup_sched(cgrp); 1677 struct scx_sched *pos; 1678 1679 lockdep_assert_held(&scx_sched_lock); 1680 1681 /* can't attach twice to the same cgroup */ 1682 if (parent->cgrp == cgrp) 1683 return ERR_PTR(-EBUSY); 1684 1685 /* does $parent allow sub-scheds? */ 1686 if (!parent->ops.sub_attach) 1687 return ERR_PTR(-EOPNOTSUPP); 1688 1689 /* can't insert between $parent and its exiting children */ 1690 list_for_each_entry(pos, &parent->children, sibling) 1691 if (cgroup_is_descendant(pos->cgrp, cgrp)) 1692 return ERR_PTR(-EBUSY); 1693 1694 return parent; 1695 } 1696 1697 static bool assert_task_ready_or_enabled(struct task_struct *p) 1698 { 1699 u32 state = scx_get_task_state(p); 1700 1701 switch (state) { 1702 case SCX_TASK_READY: 1703 case SCX_TASK_ENABLED: 1704 return true; 1705 default: 1706 WARN_ONCE(true, "sched_ext: Invalid task state %d for %s[%d] during enabling sub sched", 1707 state, p->comm, p->pid); 1708 return false; 1709 } 1710 } 1711 1712 void scx_sub_enable_workfn(struct kthread_work *work) 1713 { 1714 struct scx_enable_cmd *cmd = container_of(work, struct scx_enable_cmd, work); 1715 struct sched_ext_ops *ops = cmd->ops; 1716 struct cgroup *cgrp; 1717 struct scx_sched *parent, *sch; 1718 struct scx_task_iter sti; 1719 struct task_struct *p; 1720 s32 i, ret; 1721 1722 mutex_lock(&scx_enable_mutex); 1723 1724 if (!scx_enabled()) { 1725 ret = -ENODEV; 1726 goto out_unlock; 1727 } 1728 1729 /* See scx_root_enable_workfn() for the @ops->priv check. */ 1730 if (rcu_access_pointer(ops->priv)) { 1731 ret = -EBUSY; 1732 goto out_unlock; 1733 } 1734 1735 cgrp = cgroup_get_from_id(ops->sub_cgroup_id); 1736 if (IS_ERR(cgrp)) { 1737 ret = PTR_ERR(cgrp); 1738 goto out_unlock; 1739 } 1740 1741 raw_spin_lock_irq(&scx_sched_lock); 1742 parent = find_parent_sched(cgrp); 1743 if (IS_ERR(parent)) { 1744 raw_spin_unlock_irq(&scx_sched_lock); 1745 ret = PTR_ERR(parent); 1746 goto out_put_cgrp; 1747 } 1748 kobject_get(&parent->kobj); 1749 raw_spin_unlock_irq(&scx_sched_lock); 1750 1751 /* 1752 * Flip the hot-path gates before ops->priv is published - the sub's 1753 * programs can e.g. kick cpus from that point on. The matching dec is 1754 * at the end of scx_sched_free_rcu_work(). 1755 */ 1756 static_branch_inc(&__scx_has_subs); 1757 1758 /* scx_alloc_and_add_sched() consumes @cgrp whether it succeeds or not */ 1759 sch = scx_alloc_and_add_sched(cmd, cgrp, parent); 1760 kobject_put(&parent->kobj); 1761 if (IS_ERR(sch)) { 1762 static_branch_dec(&__scx_has_subs); 1763 ret = PTR_ERR(sch); 1764 goto out_unlock; 1765 } 1766 1767 /* 1768 * Validate before scx_link_sched() publishes @sch, so an invalid sub 1769 * never becomes visible with an unallocated pshard. 1770 */ 1771 ret = scx_validate_ops(sch, ops); 1772 if (ret) 1773 goto err_disable; 1774 1775 scx_rescue_check_timeout(sch); 1776 1777 /* 1778 * Allocate pshard[] before scx_link_sched() publishes @sch into the 1779 * parent's RCU children list. A concurrent revoke walking the tree 1780 * would otherwise dereference sch->pshard[si] while it's still NULL. 1781 * Unlike the root path, the cid shard layout is stable at this point. 1782 * 1783 * scx_alloc_pshards() skips allocation when @sch's arena pool isn't 1784 * initialized, so scx_arena_pool_init() must run first. 1785 */ 1786 ret = scx_arena_pool_init(sch); 1787 if (ret) 1788 goto err_disable; 1789 1790 ret = scx_alloc_pshards(sch); 1791 if (ret) 1792 goto err_disable; 1793 1794 ret = scx_link_sched(sch); 1795 if (ret) 1796 goto err_disable; 1797 1798 ret = scx_sched_sysfs_add(sch); 1799 if (ret) 1800 goto err_disable; 1801 1802 if (sch->level >= SCX_SUB_MAX_DEPTH) { 1803 scx_error(sch, "max nesting depth %d violated", 1804 SCX_SUB_MAX_DEPTH); 1805 ret = -EINVAL; 1806 goto err_disable; 1807 } 1808 1809 scoped_guard(cpus_read_lock) { 1810 ret = scx_alloc_kern_arena_objs(sch); 1811 if (ret) 1812 goto err_disable; 1813 } 1814 1815 if (sch->ops.init) { 1816 ret = SCX_CALL_OP_RET(sch, init, NULL); 1817 if (ret) { 1818 ret = scx_ops_sanitize_err(sch, "init", ret); 1819 scx_error(sch, "ops.init() failed (%d)", ret); 1820 goto err_disable; 1821 } 1822 sch->exit_info->flags |= SCX_EFLAG_INITIALIZED; 1823 } 1824 1825 struct scx_sub_attach_args sub_attach_args = { 1826 .ops = &sch->ops, 1827 .cgroup_path = sch->cgrp_path, 1828 }; 1829 1830 ret = SCX_CALL_OP_RET(parent, sub_attach, NULL, 1831 &sub_attach_args); 1832 if (ret) { 1833 ret = scx_ops_sanitize_err(sch, "sub_attach", ret); 1834 scx_error(sch, "parent rejected (%d)", ret); 1835 goto err_disable; 1836 } 1837 sch->sub_attached = true; 1838 1839 scx_bypass(sch, true); 1840 1841 for (i = SCX_OPI_BEGIN; i < SCX_OPI_END; i++) 1842 if (((void (**)(void))ops)[i]) 1843 set_bit(i, sch->has_op); 1844 1845 percpu_down_write(&scx_fork_rwsem); 1846 scx_cgroup_lock(); 1847 1848 /* 1849 * Set cgroup->scx_sched's and check CSS_ONLINE. Either we see 1850 * !CSS_ONLINE or scx_cgroup_lifetime_notify() sees and shoots us down. 1851 */ 1852 set_cgroup_sched(sch_cgroup(sch), sch); 1853 if (!(cgrp->self.flags & CSS_ONLINE)) { 1854 scx_error(sch, "cgroup is not online"); 1855 ret = -ENODEV; 1856 goto err_unlock_and_disable; 1857 } 1858 1859 /* 1860 * Take over the subtree's cgroups before any task is claimed, 1861 * mirroring root enable's cgroups-before-tasks order. 1862 */ 1863 ret = scx_cgroup_claim_subtree(sch); 1864 if (ret) 1865 goto err_unlock_and_disable; 1866 1867 /* 1868 * Initialize tasks for the new child $sch without exiting them for 1869 * $parent so that the tasks can always be reverted back to $parent 1870 * sched on child init failure. 1871 */ 1872 WARN_ON_ONCE(scx_enabling_sub_sched); 1873 scx_enabling_sub_sched = sch; 1874 1875 scx_task_iter_start(&sti, sch->cgrp); 1876 while ((p = scx_task_iter_next_locked(&sti))) { 1877 struct rq *rq; 1878 struct rq_flags rf; 1879 1880 /* 1881 * Task iteration may visit the same task twice when racing 1882 * against exiting. Use %SCX_TASK_SUB_INIT to mark tasks which 1883 * finished __scx_init_task() and skip if set. 1884 * 1885 * A task may exit and get freed between __scx_init_task() 1886 * completion and scx_enable_task(). In such cases, 1887 * scx_disable_and_exit_task() must exit the task for both the 1888 * parent and child scheds. 1889 */ 1890 if (p->scx.flags & SCX_TASK_SUB_INIT) 1891 continue; 1892 1893 /* @p is pinned by the iter; see scx_sub_disable() */ 1894 get_task_struct(p); 1895 1896 if (!assert_task_ready_or_enabled(p)) { 1897 ret = -EINVAL; 1898 goto abort; 1899 } 1900 1901 scx_task_iter_unlock(&sti); 1902 1903 /* 1904 * As $p is still on $parent, it can't be transitioned to INIT. 1905 * Let's worry about task state later. Use __scx_init_task(). 1906 */ 1907 ret = __scx_init_task(sch, p, NULL, false); 1908 if (ret) 1909 goto abort; 1910 1911 rq = task_rq_lock(p, &rf); 1912 1913 if (scx_get_task_state(p) == SCX_TASK_DEAD) { 1914 /* 1915 * sched_ext_dead() raced us between __scx_init_task() 1916 * and this rq lock and ran exit_task() on $parent (the 1917 * sched @p was on at that point), not on @sch. @sch's 1918 * just-completed init is owed an exit_task() and we 1919 * issue it here. 1920 */ 1921 scx_sub_init_cancel_task(sch, p); 1922 task_rq_unlock(rq, p, &rf); 1923 put_task_struct(p); 1924 continue; 1925 } 1926 1927 p->scx.flags |= SCX_TASK_SUB_INIT; 1928 task_rq_unlock(rq, p, &rf); 1929 1930 put_task_struct(p); 1931 } 1932 scx_task_iter_stop(&sti); 1933 1934 /* 1935 * All tasks are prepped. Disable/exit tasks for $parent and enable for 1936 * the new @sch. 1937 */ 1938 scx_task_iter_start(&sti, sch->cgrp); 1939 while ((p = scx_task_iter_next_locked(&sti))) { 1940 /* 1941 * Use clearing of %SCX_TASK_SUB_INIT to detect and skip 1942 * duplicate iterations. 1943 */ 1944 if (!(p->scx.flags & SCX_TASK_SUB_INIT)) 1945 continue; 1946 1947 scoped_guard (sched_change, p, DEQUEUE_SAVE | DEQUEUE_MOVE) { 1948 /* 1949 * $p must be either READY or ENABLED. If ENABLED, 1950 * __scx_disabled_and_exit_task() first disables and 1951 * makes it READY. However, after exiting $p, it will 1952 * leave $p as READY. 1953 */ 1954 assert_task_ready_or_enabled(p); 1955 __scx_disable_and_exit_task(parent, p); 1956 1957 /* 1958 * $p is now only initialized for @sch and READY, which 1959 * is what we want. Assign it to @sch and, if it's on 1960 * the ext class, enable. A non-ext task, possible under 1961 * an %SCX_OPS_SWITCH_PARTIAL root, stays READY and is 1962 * enabled by switching_to_scx() if it switches over. 1963 */ 1964 scx_set_task_sched(p, sch); 1965 if (p->sched_class == &ext_sched_class) 1966 scx_enable_task(sch, p); 1967 1968 p->scx.flags &= ~SCX_TASK_SUB_INIT; 1969 } 1970 } 1971 scx_task_iter_stop(&sti); 1972 1973 scx_enabling_sub_sched = NULL; 1974 1975 scx_cgroup_unlock(); 1976 percpu_up_write(&scx_fork_rwsem); 1977 1978 scx_bypass(sch, false); 1979 1980 /* @sch is enabled; deliver any caps owed since its sub_attach() */ 1981 scx_sub_seed_caps(sch); 1982 1983 pr_info("sched_ext: BPF sub-scheduler \"%s\" enabled\n", sch->ops.name); 1984 kobject_uevent(&sch->kobj, KOBJ_ADD); 1985 ret = 0; 1986 goto out_unlock; 1987 1988 out_put_cgrp: 1989 cgroup_put(cgrp); 1990 out_unlock: 1991 mutex_unlock(&scx_enable_mutex); 1992 cmd->ret = ret; 1993 return; 1994 1995 abort: 1996 put_task_struct(p); 1997 scx_task_iter_stop(&sti); 1998 1999 /* 2000 * Undo __scx_init_task() for tasks we marked. scx_enable_task() never 2001 * ran for @sch on them, so calling scx_disable_task() here would invoke 2002 * ops.disable() without a matching ops.enable(). scx_enabling_sub_sched 2003 * must stay set until SUB_INIT is cleared from every marked task - 2004 * scx_disable_and_exit_task() reads it when a task exits concurrently. 2005 */ 2006 scx_task_iter_start(&sti, sch->cgrp); 2007 while ((p = scx_task_iter_next_locked(&sti))) { 2008 if (p->scx.flags & SCX_TASK_SUB_INIT) { 2009 scx_sub_init_cancel_task(sch, p); 2010 p->scx.flags &= ~SCX_TASK_SUB_INIT; 2011 } 2012 } 2013 scx_task_iter_stop(&sti); 2014 scx_enabling_sub_sched = NULL; 2015 err_unlock_and_disable: 2016 /* we'll soon enter disable path, keep bypass on */ 2017 scx_cgroup_unlock(); 2018 percpu_up_write(&scx_fork_rwsem); 2019 err_disable: 2020 mutex_unlock(&scx_enable_mutex); 2021 /* 2022 * Some enable failures only return an errno (e.g. -ENOMEM from an 2023 * allocation) without calling scx_error(). Record it so 2024 * scx_flush_disable_work() runs the disable and ops.exit() fires. 2025 */ 2026 scx_error(sch, "scx_sub_enable() failed (%d)", ret); 2027 scx_flush_disable_work(sch); 2028 cmd->ret = 0; 2029 } 2030 2031 /** 2032 * scx_cgroup_task_migrating - Prepare a task for a cgroup migration 2033 * @ctx: migration being prepared 2034 * 2035 * A task's sched must match its cgroup's owner, so a migration that crosses a 2036 * sched boundary re-homes the task once committed. Run the fallible part here, 2037 * before the migration commits: initialize the task for the destination sched. 2038 * A rejection fails the cgroup.procs write. 2039 */ 2040 static s32 scx_cgroup_task_migrating(struct cgroup_task_migrate_ctx *ctx) 2041 { 2042 struct task_struct *p = ctx->task; 2043 struct scx_sched *to; 2044 int ret; 2045 2046 /* 2047 * Cleared under scx_cgroup_lock() before root disable starts tearing 2048 * down tasks. As cgroup_mutex is held, a set flag guarantees that the 2049 * teardown loop is not running concurrently. 2050 */ 2051 if (!scx_cgroup_enabled) 2052 return NOTIFY_OK; 2053 2054 to = scx_cgroup_sched(ctx->dst_dcgrp); 2055 if (scx_task_on_sched(to, p)) 2056 return NOTIFY_OK; 2057 2058 ret = __scx_init_task(to, p, ctx->dst_dcgrp, false); 2059 if (ret) 2060 return notifier_from_errno(ret); 2061 2062 return NOTIFY_OK; 2063 } 2064 2065 /** 2066 * scx_cgroup_task_migrated - Re-home a task that changed cgroups 2067 * @ctx: committed migration 2068 * 2069 * Move the task to its new cgroup's sched, which scx_cgroup_task_migrating() 2070 * already initialized it for. Can't fail. 2071 * 2072 * This is safe against all phases of the destination sched's destruction. A 2073 * disable resets cgroup ownership to the parent and re-homes tasks in one 2074 * scx_cgroup_lock() section. If that section already ran, the destination would 2075 * be the parent. Otherwise, the re-home loop is still ahead and guaranteed to 2076 * visit the task, now in the destination cgroup. 2077 */ 2078 static void scx_cgroup_task_migrated(struct cgroup_task_migrate_ctx *ctx) 2079 { 2080 struct task_struct *p = ctx->task; 2081 struct scx_sched *to; 2082 struct rq *rq; 2083 struct rq_flags rf; 2084 2085 if (!scx_cgroup_enabled) 2086 return; 2087 2088 to = scx_cgroup_sched(ctx->dst_dcgrp); 2089 if (scx_task_on_sched(to, p)) 2090 return; 2091 2092 rq = task_rq_lock(p, &rf); 2093 scx_rehome_task(to, p); 2094 task_rq_unlock(rq, p, &rf); 2095 } 2096 2097 /** 2098 * scx_cgroup_task_migrate_canceled - Undo migration preparation 2099 * @ctx: canceled migration 2100 * 2101 * The migration failed after scx_cgroup_task_migrating() initialized the task 2102 * for the destination sched. The task stays on its current sched in the source 2103 * cgroup. Undo the destination's init. 2104 */ 2105 static void scx_cgroup_task_migrate_canceled(struct cgroup_task_migrate_ctx *ctx) 2106 { 2107 struct task_struct *p = ctx->task; 2108 struct scx_sched *to; 2109 struct rq *rq; 2110 struct rq_flags rf; 2111 2112 if (!scx_cgroup_enabled) 2113 return; 2114 2115 to = scx_cgroup_sched(ctx->dst_dcgrp); 2116 if (scx_task_on_sched(to, p)) 2117 return; 2118 2119 rq = task_rq_lock(p, &rf); 2120 scx_sub_init_cancel_task(to, p); 2121 task_rq_unlock(rq, p, &rf); 2122 } 2123 2124 static s32 scx_cgroup_lifetime_notify(struct notifier_block *nb, 2125 unsigned long action, void *data) 2126 { 2127 struct cgroup *cgrp = data; 2128 struct cgroup *parent = cgroup_parent(cgrp); 2129 struct scx_sched *sch; 2130 2131 if (!cgroup_on_dfl(cgrp)) 2132 return NOTIFY_OK; 2133 2134 switch (action) { 2135 case CGROUP_LIFETIME_ONLINE: 2136 /* inherit ->scx_sched from $parent */ 2137 if (parent) 2138 rcu_assign_pointer(cgrp->scx_sched, scx_cgroup_sched(parent)); 2139 break; 2140 case CGROUP_LIFETIME_OFFLINE: 2141 /* if there is a sched attached, shoot it down */ 2142 sch = scx_cgroup_sched(cgrp); 2143 if (sch && sch->cgrp == cgrp) 2144 scx_exit(sch, SCX_EXIT_UNREG_KERN, 2145 SCX_ECODE_RSN_CGROUP_OFFLINE, 2146 "cgroup %llu going offline", cgroup_id(cgrp)); 2147 break; 2148 } 2149 2150 return NOTIFY_OK; 2151 } 2152 2153 static struct notifier_block scx_cgroup_lifetime_nb = { 2154 .notifier_call = scx_cgroup_lifetime_notify, 2155 }; 2156 2157 static s32 scx_cgroup_task_notify(struct notifier_block *nb, 2158 unsigned long action, void *data) 2159 { 2160 struct cgroup_task_migrate_ctx *ctx = data; 2161 2162 switch (action) { 2163 case CGROUP_TASK_MIGRATING: 2164 return scx_cgroup_task_migrating(ctx); 2165 case CGROUP_TASK_MIGRATED: 2166 scx_cgroup_task_migrated(ctx); 2167 break; 2168 case CGROUP_TASK_MIGRATE_CANCELED: 2169 scx_cgroup_task_migrate_canceled(ctx); 2170 break; 2171 } 2172 2173 return NOTIFY_OK; 2174 } 2175 2176 static struct notifier_block scx_cgroup_task_nb = { 2177 .notifier_call = scx_cgroup_task_notify, 2178 }; 2179 2180 static s32 __init scx_cgroup_notifier_init(void) 2181 { 2182 s32 ret; 2183 2184 ret = blocking_notifier_chain_register(&cgroup_lifetime_notifier, 2185 &scx_cgroup_lifetime_nb); 2186 if (ret) 2187 return ret; 2188 2189 return blocking_notifier_chain_register(&cgroup_task_notifier, 2190 &scx_cgroup_task_nb); 2191 } 2192 core_initcall(scx_cgroup_notifier_init); 2193 2194 static void scx_pstack_recursion(struct bpf_prog *prog, const char *op) 2195 { 2196 struct scx_sched *sch; 2197 2198 guard(rcu)(); 2199 sch = scx_prog_sched(prog->aux); 2200 if (unlikely(!sch)) 2201 return; 2202 2203 scx_error(sch, "%s recursion detected", op); 2204 } 2205 2206 void scx_pstack_recursion_on_dispatch(struct bpf_prog *prog) 2207 { 2208 scx_pstack_recursion(prog, "dispatch"); 2209 } 2210 2211 void scx_pstack_recursion_on_caps_updated(struct bpf_prog *prog) 2212 { 2213 scx_pstack_recursion(prog, "sub_caps_updated"); 2214 } 2215 2216 __bpf_kfunc_start_defs(); 2217 2218 /** 2219 * scx_bpf_sub_dispatch - Trigger dispatching on a child scheduler 2220 * @cgroup_id: cgroup ID of the child scheduler to dispatch 2221 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 2222 * 2223 * Allows a parent scheduler to trigger dispatching on one of its direct 2224 * child schedulers. The child scheduler runs its dispatch operation to 2225 * move tasks from dispatch queues to the local runqueue. 2226 * 2227 * Returns: true on success, false if cgroup_id is invalid, not a direct 2228 * child, or caller lacks dispatch permission. 2229 */ 2230 __bpf_kfunc bool scx_bpf_sub_dispatch(u64 cgroup_id, const struct bpf_prog_aux *aux) 2231 { 2232 struct rq *rq = scx_locked_rq(); 2233 struct scx_sched *parent, *child; 2234 2235 guard(rcu)(); 2236 parent = scx_prog_sched(aux); 2237 if (unlikely(!parent)) 2238 return false; 2239 2240 child = scx_find_sub_sched(cgroup_id); 2241 2242 if (unlikely(!child)) 2243 return false; 2244 2245 if (unlikely(scx_parent(child) != parent)) { 2246 scx_error(parent, "trying to dispatch a distant sub-sched on cgroup %llu", 2247 cgroup_id); 2248 return false; 2249 } 2250 2251 /* 2252 * Skip a child that does not effectively hold the base cap on this cpu: 2253 * its inserts would only be rejected. ecaps are synced at the top of 2254 * dispatch_one() before dispatch, so this reflects the in-effect state. 2255 */ 2256 if (scx_missing_caps(child, cpu_of(rq), SCX_CAP_BASE)) 2257 return false; 2258 2259 return scx_dispatch_sched(child, rq, rq->scx.sub_dispatch_prev, true) != 2260 SCX_DSP_NONE; 2261 } 2262 2263 /* Validate common inputs. On success, *parent_out and *child_out are set. */ 2264 static s32 sub_cap_preamble(u64 cgroup_id, u64 caps, const struct bpf_prog_aux *aux, 2265 struct scx_sched **parent_out, struct scx_sched **child_out) 2266 { 2267 struct scx_sched *parent, *child; 2268 2269 parent = scx_prog_sched(aux); 2270 if (unlikely(!parent)) 2271 return -ENODEV; 2272 2273 if (!scx_is_cid_type()) { 2274 scx_error(parent, "sub-cap kfuncs require a cid-form scheduler"); 2275 return -EOPNOTSUPP; 2276 } 2277 2278 child = scx_find_sub_sched(cgroup_id); 2279 if (unlikely(!child)) 2280 return -ENODEV; 2281 2282 if (unlikely(scx_parent(child) != parent)) { 2283 scx_error(parent, "%s: sub-%llu is not a direct child", 2284 parent->cgrp_path, cgroup_id); 2285 return -EINVAL; 2286 } 2287 2288 if (unlikely(caps & ~__SCX_CAP_ALL)) { 2289 scx_error(parent, "invalid caps 0x%llx", caps); 2290 return -EINVAL; 2291 } 2292 2293 *parent_out = parent; 2294 *child_out = child; 2295 return 0; 2296 } 2297 2298 /** 2299 * scx_bpf_sub_grant - Grant @caps on a cmask's cids to a direct child 2300 * @cgroup_id: cgroup id of the direct child sub-sched 2301 * @caps: bitmask of SCX_CAP_* to grant 2302 * @cmask__arena: cid cmask to grant @caps on 2303 * @denied_out__arena__nullable: optional cmask accumulating refused cids 2304 * @aux: implicit BPF argument 2305 * 2306 * A cid in @cmask__arena is granted to the child only if the parent holds every 2307 * requested cap on it. Refused cids are OR'd into the denied mask when 2308 * provided. Refusals outside the denied mask's range are not recorded. 2309 * 2310 * All-or-nothing keeps the caller-visible result binary per cid, so the denied 2311 * mask is one mask to interpret rather than a per-cap matrix. 2312 * 2313 * Return 0 on full success, -EPERM if any cid was refused, or a negative 2314 * errno on other failures. 2315 */ 2316 __bpf_kfunc s32 scx_bpf_sub_grant(u64 cgroup_id, u64 caps, 2317 const struct scx_cmask *cmask__arena, 2318 struct scx_cmask *denied_out__arena__nullable, 2319 const struct bpf_prog_aux *aux) 2320 { 2321 struct scx_cmask_ref ref, denied_ref; 2322 struct scx_sched *parent, *child; 2323 bool any_denied = false; 2324 LIST_HEAD(to_deliver); 2325 s32 si, ret; 2326 2327 guard(irqsave)(); 2328 2329 ret = sub_cap_preamble(cgroup_id, caps, aux, &parent, &child); 2330 if (ret) 2331 return ret; 2332 2333 ret = scx_cmask_ref_init(parent, cmask__arena, &ref); 2334 if (ret) { 2335 scx_error(parent, "invalid cmask (%d)", ret); 2336 return ret; 2337 } 2338 2339 if (denied_out__arena__nullable) { 2340 ret = scx_cmask_ref_init(parent, denied_out__arena__nullable, &denied_ref); 2341 if (ret) { 2342 scx_error(parent, "invalid denied_out (%d)", ret); 2343 return ret; 2344 } 2345 } 2346 2347 /* apply the grant one shard at a time */ 2348 for (si = ref.shard_first; si < ref.shard_end; si++) { 2349 SCX_CMASK_DEFINE_SHARD(slice, 0, SCX_CID_SHARD_MAX_CPUS); 2350 struct scx_pshard *pps = parent->pshard[si]; 2351 struct scx_pshard *cps = child->pshard[si]; 2352 u64 granted_caps = 0; 2353 u32 cap_bit; 2354 2355 scx_cmask_ref_shard(&ref, si, slice); 2356 if (scx_cmask_empty(slice)) 2357 continue; 2358 2359 SCX_CMASK_DEFINE_SHARD(granted_cids, slice->base, slice->nr_cids); 2360 SCX_CMASK_DEFINE_SHARD(changed_cids, slice->base, slice->nr_cids); 2361 SCX_CMASK_DEFINE_SHARD(delta, slice->base, slice->nr_cids); 2362 2363 scx_cmask_copy(granted_cids, slice); 2364 2365 scoped_guard (raw_spinlock, &pps->lock) { 2366 guard(raw_spinlock_nested)(&cps->lock); 2367 2368 /* 2369 * Narrow granted_cids to cids the parent holds every 2370 * requested cap on. All-or-nothing per cid. 2371 */ 2372 scx_for_each_cap_bit(cap_bit, caps) 2373 scx_cmask_and(granted_cids, &pps->caps[cap_bit].cmask); 2374 2375 /* 2376 * For each requested cap, fold the newly-set cids into 2377 * the child and accumulate the delta. 2378 */ 2379 scx_for_each_cap_bit(cap_bit, caps) { 2380 struct scx_cmask *ccm = &cps->caps[cap_bit].cmask; 2381 2382 scx_cmask_copy(delta, granted_cids); 2383 scx_cmask_andnot(delta, ccm); 2384 if (scx_cmask_empty(delta)) 2385 continue; 2386 2387 scx_cmask_or(ccm, delta); 2388 scx_cmask_or(changed_cids, delta); 2389 granted_caps |= BIT_U64(cap_bit); 2390 } 2391 2392 if (granted_caps) { 2393 s32 cid; 2394 2395 caps_updated_record(cps, changed_cids, granted_caps, 2396 &to_deliver); 2397 /* 2398 * The sync arms an update_idle() re-notify if 2399 * the cid gains baseline access, so the holder 2400 * learns of an already-idle cid. 2401 */ 2402 scx_cmask_for_each_cid(cid, changed_cids) 2403 queue_sync_ecaps(child, cid); 2404 } 2405 } 2406 2407 /* record cids that didn't make it into the denied mask */ 2408 if (!scx_cmask_subset(slice, granted_cids)) { 2409 any_denied = true; 2410 if (denied_out__arena__nullable) { 2411 SCX_CMASK_DEFINE_SHARD(denied, slice->base, slice->nr_cids); 2412 2413 scx_cmask_copy(denied, slice); 2414 scx_cmask_andnot(denied, granted_cids); 2415 scx_cmask_ref_or(&denied_ref, denied); 2416 } 2417 } 2418 } 2419 2420 caps_updated_deliver(&to_deliver); 2421 2422 return any_denied ? -EPERM : 0; 2423 } 2424 2425 /** 2426 * scx_bpf_sub_revoke - Revoke @caps on a cmask's cids from a direct child 2427 * @cgroup_id: cgroup id of the direct child sub-sched 2428 * @caps: bitmask of SCX_CAP_* to revoke 2429 * @cmask__arena: cid cmask to revoke @caps on 2430 * @aux: implicit BPF argument 2431 * 2432 * Clear @caps bits on @cmask__arena from the child named by @cgroup_id and all 2433 * its descendants. The origin parent's pshard lock is held across the subtree 2434 * walk so a concurrent grant from the origin parent observes the revoked state. 2435 */ 2436 __bpf_kfunc void scx_bpf_sub_revoke(u64 cgroup_id, u64 caps, 2437 const struct scx_cmask *cmask__arena, 2438 const struct bpf_prog_aux *aux) 2439 { 2440 struct scx_cmask_ref ref; 2441 struct scx_sched *parent, *child, *pos; 2442 LIST_HEAD(to_deliver); 2443 s32 si, ret; 2444 2445 guard(irqsave)(); 2446 2447 if (sub_cap_preamble(cgroup_id, caps, aux, &parent, &child)) 2448 return; 2449 2450 ret = scx_cmask_ref_init(parent, cmask__arena, &ref); 2451 if (ret) { 2452 scx_error(parent, "invalid cmask (%d)", ret); 2453 return; 2454 } 2455 2456 /* per-shard, walk child's subtree and clear @caps */ 2457 for (si = ref.shard_first; si < ref.shard_end; si++) { 2458 SCX_CMASK_DEFINE_SHARD(slice, 0, SCX_CID_SHARD_MAX_CPUS); 2459 2460 scx_cmask_ref_shard(&ref, si, slice); 2461 if (scx_cmask_empty(slice)) 2462 continue; 2463 2464 /* 2465 * Pre-order with subtree skip: a descendant that cleared 2466 * nothing means no descendant of it can hold @caps on these 2467 * cids either. 2468 */ 2469 guard(raw_spinlock)(&parent->pshard[si]->lock); 2470 pos = scx_next_descendant_pre(NULL, child); 2471 while (pos) { 2472 struct scx_pshard *ps = pos->pshard[si]; 2473 SCX_CMASK_DEFINE_SHARD(changed_cids, slice->base, slice->nr_cids); 2474 SCX_CMASK_DEFINE_SHARD(delta, slice->base, slice->nr_cids); 2475 u64 revoked_caps = 0; 2476 u32 cap_bit; 2477 2478 scoped_guard (raw_spinlock_nested, &ps->lock) { 2479 /* 2480 * For each cap, clear lost cids and accumulate 2481 * the per-cap diff for notification. 2482 */ 2483 scx_for_each_cap_bit(cap_bit, caps) { 2484 struct scx_cmask *cm = &ps->caps[cap_bit].cmask; 2485 2486 scx_cmask_copy(delta, cm); 2487 scx_cmask_and(delta, slice); 2488 if (scx_cmask_empty(delta)) 2489 continue; 2490 2491 scx_cmask_andnot(cm, delta); 2492 scx_cmask_or(changed_cids, delta); 2493 revoked_caps |= BIT_U64(cap_bit); 2494 } 2495 2496 if (revoked_caps) { 2497 s32 cid; 2498 2499 caps_updated_record(ps, changed_cids, revoked_caps, 2500 &to_deliver); 2501 scx_cmask_for_each_cid(cid, changed_cids) 2502 queue_sync_ecaps(pos, cid); 2503 } 2504 } 2505 2506 if (revoked_caps) 2507 pos = scx_next_descendant_pre(pos, child); 2508 else 2509 pos = scx_skip_subtree_pre(pos, child); 2510 } 2511 } 2512 2513 caps_updated_deliver(&to_deliver); 2514 } 2515 2516 /** 2517 * scx_bpf_sub_caps - Read self's or a direct child's cap cmasks 2518 * @cgroup_id: 0 for self, or a direct child's cgroup id 2519 * @caps: one or more SCX_CAP_* bits 2520 * @out__arena: cmask to receive the union of @caps within its range 2521 * @aux: implicit BPF argument 2522 * 2523 * Read the cap cmasks granted on each cid for self (@cgroup_id 0) or a direct 2524 * child - the literal granted set. A sched can read only itself or a direct 2525 * child. 2526 * 2527 * Return 0, -ENODEV if @cgroup_id names no direct child, or -EINVAL on bad 2528 * inputs. 2529 */ 2530 __bpf_kfunc s32 scx_bpf_sub_caps(u64 cgroup_id, u64 caps, struct scx_cmask *out__arena, 2531 const struct bpf_prog_aux *aux) 2532 { 2533 struct scx_cmask_ref ref; 2534 struct scx_sched *sch, *target; 2535 struct scx_pshard **pshard; 2536 s32 si, ret; 2537 2538 guard(irqsave)(); 2539 2540 sch = scx_prog_sched(aux); 2541 if (unlikely(!sch)) 2542 return -ENODEV; 2543 2544 if (!scx_is_cid_type()) { 2545 scx_error(sch, "sub-cap kfuncs require a cid-form scheduler"); 2546 return -EOPNOTSUPP; 2547 } 2548 2549 if (unlikely(caps & ~__SCX_CAP_ALL)) { 2550 scx_error(sch, "invalid caps 0x%llx", caps); 2551 return -EINVAL; 2552 } 2553 2554 /* @cgroup_id 0 reads self, otherwise a direct child */ 2555 if (cgroup_id) { 2556 target = scx_find_sub_sched(cgroup_id); 2557 if (unlikely(!target)) 2558 return -ENODEV; 2559 if (unlikely(scx_parent(target) != sch)) { 2560 scx_error(sch, "%s: sub-%llu is not a direct child", 2561 sch->cgrp_path, cgroup_id); 2562 return -EINVAL; 2563 } 2564 } else { 2565 target = sch; 2566 } 2567 2568 /* 2569 * The target's caps storage may not be set up yet (e.g. a self-read 2570 * during ops.init_cids()). Pairs with the publish in 2571 * scx_alloc_pshards(): a non-NULL pshard has every element set and the 2572 * acquire also orders the cid table reads below against it. 2573 */ 2574 pshard = smp_load_acquire(&target->pshard); 2575 if (unlikely(!pshard)) { 2576 scx_error(sch, "scx_bpf_sub_caps() called before caps storage is initialized"); 2577 return -ENODEV; 2578 } 2579 2580 ret = scx_cmask_ref_init(sch, out__arena, &ref); 2581 if (ret) { 2582 scx_error(sch, "invalid out (%d)", ret); 2583 return ret; 2584 } 2585 2586 for (si = ref.shard_first; si < ref.shard_end; si++) { 2587 const struct scx_cid_shard *shard = 2588 &rcu_dereference_all(scx_cid_shard_ranges)[si]; 2589 SCX_CMASK_DEFINE_SHARD(local_out, shard->base_cid, shard->nr_cids); 2590 u32 cap_bit; 2591 2592 scx_for_each_cap_bit(cap_bit, caps) 2593 scx_cmask_or(local_out, &pshard[si]->caps[cap_bit].cmask); 2594 scx_cmask_ref_copy(&ref, local_out); 2595 } 2596 return 0; 2597 } 2598 2599 /** 2600 * scx_bpf_sub_kill_bstr - Kill a direct child sub-scheduler 2601 * @cgroup_id: cgroup id of the direct child to kill 2602 * @fmt: reason message format string 2603 * @data: format string parameters packaged using ___bpf_fill() macro 2604 * @data__sz: @data len, must end in '__sz' for the verifier 2605 * @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs 2606 * 2607 * Evict a direct child sub-scheduler, disabling it with the supplied reason. 2608 * The child and its subtree are torn down asynchronously through the usual 2609 * disable path. 2610 * 2611 * Unlike scx_bpf_exit(), no exit code is taken: the child is a separate 2612 * scheduler with its own exit-code semantics, so a code chosen by the parent 2613 * would have no defined meaning. The reason string carries the intent. 2614 * 2615 * Return 0 on success or -ENODEV if @cgroup_id names no sub-scheduler, which 2616 * can race with the child detaching on its own and so is not a scheduler error. 2617 * Naming a sched that exists but is not a direct child aborts the parent. 2618 */ 2619 __printf(2, 0) 2620 __bpf_kfunc s32 scx_bpf_sub_kill_bstr(u64 cgroup_id, char *fmt, 2621 unsigned long long *data, u32 data__sz, 2622 const struct bpf_prog_aux *aux) 2623 { 2624 struct scx_sched *parent, *child; 2625 2626 guard(rcu)(); 2627 2628 parent = scx_prog_sched(aux); 2629 if (unlikely(!parent)) 2630 return -ENODEV; 2631 2632 if (!scx_is_cid_type()) { 2633 scx_error(parent, "sub-cap kfuncs require a cid-form scheduler"); 2634 return -EOPNOTSUPP; 2635 } 2636 2637 child = scx_find_sub_sched(cgroup_id); 2638 if (unlikely(!child)) 2639 return -ENODEV; 2640 2641 if (unlikely(scx_parent(child) != parent)) { 2642 scx_error(parent, "%s: sub-%llu is not a direct child", 2643 parent->cgrp_path, cgroup_id); 2644 return -EINVAL; 2645 } 2646 2647 scx_exit_bstr(child, SCX_EXIT_PARENT_KILL, 0, parent, fmt, data, data__sz); 2648 return 0; 2649 } 2650 2651 __bpf_kfunc_end_defs(); 2652 2653 #else /* !CONFIG_EXT_SUB_SCHED */ 2654 2655 __bpf_kfunc_start_defs(); 2656 2657 __bpf_kfunc s32 scx_bpf_sub_grant(u64 cgroup_id, u64 caps, 2658 const struct scx_cmask *cmask__arena, 2659 struct scx_cmask *denied_out__arena__nullable, 2660 const struct bpf_prog_aux *aux) 2661 { 2662 return -EOPNOTSUPP; 2663 } 2664 2665 __bpf_kfunc void scx_bpf_sub_revoke(u64 cgroup_id, u64 caps, 2666 const struct scx_cmask *cmask__arena, 2667 const struct bpf_prog_aux *aux) 2668 { 2669 } 2670 2671 __bpf_kfunc s32 scx_bpf_sub_caps(u64 cgroup_id, u64 caps, struct scx_cmask *out__arena, 2672 const struct bpf_prog_aux *aux) 2673 { 2674 return -EOPNOTSUPP; 2675 } 2676 2677 __bpf_kfunc s32 scx_bpf_sub_kill_bstr(u64 cgroup_id, char *fmt, 2678 unsigned long long *data, u32 data__sz, 2679 const struct bpf_prog_aux *aux) 2680 { 2681 return -EOPNOTSUPP; 2682 } 2683 2684 __bpf_kfunc_end_defs(); 2685 2686 #endif /* CONFIG_EXT_SUB_SCHED */ 2687