xref: /linux/kernel/sched/ext/internal.h (revision 3bd46666cfe51e2bd333fb46a0234694ca594230)
1 /* SPDX-License-Identifier: GPL-2.0 */
2 /*
3  * BPF extensible scheduler class: Documentation/scheduler/sched-ext.rst
4  *
5  * Copyright (c) 2025 Meta Platforms, Inc. and affiliates.
6  * Copyright (c) 2025 Tejun Heo <tj@kernel.org>
7  */
8 #ifndef _KERNEL_SCHED_EXT_INTERNAL_H
9 #define _KERNEL_SCHED_EXT_INTERNAL_H
10 
11 #include "../sched.h"
12 #include "types.h"
13 
14 #include <trace/events/sched_ext.h>
15 
16 /**
17  * scx_add_event - Increase an event counter for 'name' by 'cnt'
18  * @sch: scx_sched to account events for
19  * @name: an event name defined in struct scx_event_stats
20  * @cnt: the number of the event occurred
21  *
22  * This can be used when preemption is not disabled.
23  */
24 #define scx_add_event(sch, name, cnt) do {					\
25 	this_cpu_add((sch)->pcpu->event_stats.name, (cnt));			\
26 	trace_sched_ext_event(#name, (cnt));					\
27 } while(0)
28 
29 /**
30  * __scx_add_event - Increase an event counter for 'name' by 'cnt'
31  * @sch: scx_sched to account events for
32  * @name: an event name defined in struct scx_event_stats
33  * @cnt: the number of the event occurred
34  *
35  * This should be used only when preemption is disabled.
36  */
37 #define __scx_add_event(sch, name, cnt) do {					\
38 	__this_cpu_add((sch)->pcpu->event_stats.name, (cnt));			\
39 	trace_sched_ext_event(#name, cnt);					\
40 } while(0)
41 
42 #define SCX_OP_IDX(op)		(offsetof(struct sched_ext_ops, op) / sizeof(void (*)(void)))
43 #define SCX_MOFF_IDX(moff)	((moff) / sizeof(void (*)(void)))
44 
45 enum scx_exit_kind {
46 	SCX_EXIT_NONE,
47 	SCX_EXIT_DONE,
48 
49 	SCX_EXIT_UNREG = 64,	/* user-space initiated unregistration */
50 	SCX_EXIT_UNREG_BPF,	/* BPF-initiated unregistration */
51 	SCX_EXIT_UNREG_KERN,	/* kernel-initiated unregistration */
52 	SCX_EXIT_SYSRQ,		/* requested by 'S' sysrq */
53 	SCX_EXIT_PARENT,	/* parent exiting */
54 	SCX_EXIT_PARENT_KILL,	/* killed by parent scheduler */
55 
56 	SCX_EXIT_ERROR = 1024,	/* runtime error, error msg contains details */
57 	SCX_EXIT_ERROR_BPF,	/* ERROR but triggered through scx_bpf_error() */
58 	SCX_EXIT_ERROR_STALL,	/* watchdog detected stalled runnable tasks */
59 	SCX_EXIT_ERROR_REENQ,	/* task hit reenqueue limit without running */
60 	SCX_EXIT_ERROR_RESCUE,	/* ejected for overloading rescue execution */
61 };
62 
63 /*
64  * An exit code can be specified when exiting with scx_bpf_exit() or scx_exit(),
65  * corresponding to exit_kind UNREG_BPF and UNREG_KERN respectively. The codes
66  * are 64bit of the format:
67  *
68  *   Bits: [63  ..  48 47   ..  32 31 .. 0]
69  *         [ SYS ACT ] [ SYS RSN ] [ USR  ]
70  *
71  *   SYS ACT: System-defined exit actions
72  *   SYS RSN: System-defined exit reasons
73  *   USR    : User-defined exit codes and reasons
74  *
75  * Using the above, users may communicate intention and context by ORing system
76  * actions and/or system reasons with a user-defined exit code.
77  */
78 enum scx_exit_code {
79 	/* Reasons */
80 	SCX_ECODE_RSN_HOTPLUG	= 1LLU << 32,
81 	SCX_ECODE_RSN_CGROUP_OFFLINE = 2LLU << 32,
82 
83 	/* Actions */
84 	SCX_ECODE_ACT_RESTART	= 1LLU << 48,
85 };
86 
87 enum scx_exit_flags {
88 	/*
89 	 * ops.exit() may be called even if the loading failed before ops.init()
90 	 * finishes successfully. This is because ops.exit() allows rich exit
91 	 * info communication. The following flag indicates whether ops.init()
92 	 * finished successfully.
93 	 */
94 	SCX_EFLAG_INITIALIZED   = 1LLU << 0,
95 };
96 
97 /*
98  * scx_exit_info is passed to ops.exit() to describe why the BPF scheduler is
99  * being disabled.
100  */
101 struct scx_exit_info {
102 	/* %SCX_EXIT_* - broad category of the exit reason */
103 	enum scx_exit_kind	kind;
104 
105 	/*
106 	 * CPU that initiated the exit, valid once @kind has been set.
107 	 * Negative if the exit path didn't identify a CPU.
108 	 */
109 	s32			exit_cpu;
110 
111 	/* exit code if gracefully exiting */
112 	s64			exit_code;
113 
114 	/* %SCX_EFLAG_* */
115 	u64			flags;
116 
117 	/* textual representation of the above */
118 	const char		*reason;
119 
120 	/* backtrace if exiting due to an error */
121 	unsigned long		*bt;
122 	u32			bt_len;
123 
124 	/* informational message */
125 	char			*msg;
126 
127 	/* debug dump */
128 	char			*dump;
129 };
130 
131 /* sched_ext_ops.flags */
132 enum scx_ops_flags {
133 	/*
134 	 * Keep built-in idle tracking even if ops.update_idle() is implemented.
135 	 */
136 	SCX_OPS_KEEP_BUILTIN_IDLE	= 1LLU << 0,
137 
138 	/*
139 	 * By default, if there are no other task to run on the CPU, ext core
140 	 * keeps running the current task even after its slice expires. If this
141 	 * flag is specified, such tasks are passed to ops.enqueue() with
142 	 * %SCX_ENQ_LAST. See the comment above %SCX_ENQ_LAST for more info.
143 	 */
144 	SCX_OPS_ENQ_LAST		= 1LLU << 1,
145 
146 	/*
147 	 * An exiting task may schedule after PF_EXITING is set. In such cases,
148 	 * bpf_task_from_pid() may not be able to find the task and if the BPF
149 	 * scheduler depends on pid lookup for dispatching, the task will be
150 	 * lost leading to various issues including RCU grace period stalls.
151 	 *
152 	 * To mask this problem, by default, unhashed tasks are automatically
153 	 * dispatched to the local DSQ on enqueue. If the BPF scheduler doesn't
154 	 * depend on pid lookups and wants to handle these tasks directly, the
155 	 * following flag can be used. With %SCX_OPS_TID_TO_TASK,
156 	 * scx_bpf_tid_to_task() can find exiting tasks reliably.
157 	 */
158 	SCX_OPS_ENQ_EXITING		= 1LLU << 2,
159 
160 	/*
161 	 * If set, only tasks with policy set to SCHED_EXT are attached to
162 	 * sched_ext. If clear, SCHED_NORMAL tasks are also included.
163 	 */
164 	SCX_OPS_SWITCH_PARTIAL		= 1LLU << 3,
165 
166 	/*
167 	 * A migration disabled task can only execute on its current CPU. By
168 	 * default, such tasks are automatically put on the CPU's local DSQ with
169 	 * the default slice on enqueue. If this ops flag is set, they also go
170 	 * through ops.enqueue().
171 	 *
172 	 * A migration disabled task never invokes ops.select_cpu() as it can
173 	 * only select the current CPU. Also, p->cpus_ptr will only contain its
174 	 * current CPU while p->nr_cpus_allowed keeps tracking p->user_cpus_ptr
175 	 * and thus may disagree with cpumask_weight(p->cpus_ptr).
176 	 */
177 	SCX_OPS_ENQ_MIGRATION_DISABLED	= 1LLU << 4,
178 
179 	/*
180 	 * Queued wakeup (ttwu_queue) is a wakeup optimization that invokes
181 	 * ops.enqueue() on the ops.select_cpu() selected or the wakee's
182 	 * previous CPU via IPI (inter-processor interrupt) to reduce cacheline
183 	 * transfers. When this optimization is enabled, ops.select_cpu() is
184 	 * skipped in some cases (when racing against the wakee switching out).
185 	 * As the BPF scheduler may depend on ops.select_cpu() being invoked
186 	 * during wakeups, queued wakeup is disabled by default.
187 	 *
188 	 * If this ops flag is set, queued wakeup optimization is enabled and
189 	 * the BPF scheduler must be able to handle ops.enqueue() invoked on the
190 	 * wakee's CPU without preceding ops.select_cpu() even for tasks which
191 	 * may be executed on multiple CPUs.
192 	 */
193 	SCX_OPS_ALLOW_QUEUED_WAKEUP	= 1LLU << 5,
194 
195 	/*
196 	 * If set, enable per-node idle cpumasks. If clear, use a single global
197 	 * flat idle cpumask.
198 	 */
199 	SCX_OPS_BUILTIN_IDLE_PER_NODE	= 1LLU << 6,
200 
201 	/*
202 	 * If set, %SCX_ENQ_IMMED is assumed to be set on all local DSQ
203 	 * enqueues.
204 	 */
205 	SCX_OPS_ALWAYS_ENQ_IMMED	= 1LLU << 7,
206 
207 	/*
208 	 * Maintain a mapping from p->scx.tid to task_struct so the BPF
209 	 * scheduler can recover task pointers from stored tids via
210 	 * scx_bpf_tid_to_task().
211 	 *
212 	 * Only the root scheduler turns this on. A sub-sched may set the flag
213 	 * to declare a dependency on the lookup; if the root scheduler hasn't
214 	 * enabled it, attaching the sub-sched is rejected.
215 	 */
216 	SCX_OPS_TID_TO_TASK		= 1LLU << 8,
217 
218 	SCX_OPS_ALL_FLAGS		= SCX_OPS_KEEP_BUILTIN_IDLE |
219 					  SCX_OPS_ENQ_LAST |
220 					  SCX_OPS_ENQ_EXITING |
221 					  SCX_OPS_ENQ_MIGRATION_DISABLED |
222 					  SCX_OPS_ALLOW_QUEUED_WAKEUP |
223 					  SCX_OPS_SWITCH_PARTIAL |
224 					  SCX_OPS_BUILTIN_IDLE_PER_NODE |
225 					  SCX_OPS_ALWAYS_ENQ_IMMED |
226 					  SCX_OPS_TID_TO_TASK,
227 
228 	/* high 8 bits are internal, don't include in SCX_OPS_ALL_FLAGS */
229 	__SCX_OPS_INTERNAL_MASK		= 0xffLLU << 56,
230 
231 	SCX_OPS_HAS_CPU_PREEMPT		= 1LLU << 56,
232 };
233 
234 /* argument container for ops.init_task() */
235 struct scx_init_task_args {
236 	/*
237 	 * Set if ops.init_task() is being invoked on the fork path, as opposed
238 	 * to the scheduler transition path.
239 	 */
240 	bool			fork;
241 #ifdef CONFIG_EXT_GROUP_SCHED
242 	/* the cgroup the task is joining */
243 	struct cgroup		*cgroup;
244 #endif
245 };
246 
247 /* argument container for ops.exit_task() */
248 struct scx_exit_task_args {
249 	/* Whether the task exited before running on sched_ext. */
250 	bool cancelled;
251 };
252 
253 /**
254  * struct scx_enable_args - Argument container for cid-form ops.enable()
255  * @cmask_arena_addr: BPF arena address of the cmask of cids the task may run on
256  *
257  * @cmask_arena_addr is the task's affinity as it enters the scheduler.
258  * set_cmask() delivers the same mask right after enable(), before set_weight()
259  * and the first enqueue, then every affinity change afterwards, and is never
260  * called before enable(). A scheduler may therefore track affinity in
261  * set_cmask() alone.
262  *
263  * The kernel builds the mask in the scheduler arena from its own geometry, so
264  * the header is valid regardless of what the scheduler last wrote there. The
265  * memory is per-cpu scratch reused once the callback returns: copy the bits
266  * out, don't keep the address. The set_cmask() argument follows the same rules.
267  *
268  * The address is a plain value rather than a typed pointer because BTF can't
269  * mark a struct member as an arena pointer yet and a pointer member would reach
270  * the program typed as a kernel pointer. Cast it to struct scx_cmask __arena *
271  * before use. Once arena members can be typed, a typed alias will join this
272  * field in an anonymous union at the same offset.
273  */
274 struct scx_enable_args {
275 	u64	cmask_arena_addr;
276 };
277 
278 /* argument container for ops.cgroup_init() */
279 struct scx_cgroup_init_args {
280 	/* the weight of the cgroup [1..10000] */
281 	u32			weight;
282 
283 	/* bandwidth control parameters from cpu.max and cpu.max.burst */
284 	u64			bw_period_us;
285 	u64			bw_quota_us;
286 	u64			bw_burst_us;
287 
288 	/* whether the cgroup is configured SCHED_IDLE via cpu.idle */
289 	bool			sched_idle;
290 };
291 
292 enum scx_cpu_preempt_reason {
293 	/* next task is being scheduled by &sched_class_rt */
294 	SCX_CPU_PREEMPT_RT,
295 	/* next task is being scheduled by &sched_class_dl */
296 	SCX_CPU_PREEMPT_DL,
297 	/* next task is being scheduled by &sched_class_stop */
298 	SCX_CPU_PREEMPT_STOP,
299 	/* unknown reason for SCX being preempted */
300 	SCX_CPU_PREEMPT_UNKNOWN,
301 };
302 
303 /*
304  * Argument container for ops.cpu_acquire(). Currently empty, but may be
305  * expanded in the future.
306  */
307 struct scx_cpu_acquire_args {};
308 
309 /* argument container for ops.cpu_release() */
310 struct scx_cpu_release_args {
311 	/* the reason the CPU was preempted */
312 	enum scx_cpu_preempt_reason reason;
313 
314 	/* the task that's going to be scheduled on the CPU */
315 	struct task_struct	*task;
316 };
317 
318 /* informational context provided to dump operations */
319 struct scx_dump_ctx {
320 	enum scx_exit_kind	kind;
321 	s64			exit_code;
322 	const char		*reason;
323 	u64			at_ns;
324 	u64			at_jiffies;
325 };
326 
327 /* argument container for ops.sub_attach() */
328 struct scx_sub_attach_args {
329 	struct sched_ext_ops	*ops;
330 	char			*cgroup_path;
331 };
332 
333 /* argument container for ops.sub_detach() */
334 struct scx_sub_detach_args {
335 	struct sched_ext_ops	*ops;
336 	char			*cgroup_path;
337 };
338 
339 /**
340  * struct sched_ext_ops - Operation table for BPF scheduler implementation
341  *
342  * A BPF scheduler can implement an arbitrary scheduling policy by
343  * implementing and loading operations in this table. Note that a userland
344  * scheduling policy can also be implemented using the BPF scheduler
345  * as a shim layer.
346  */
347 struct sched_ext_ops {
348 	/**
349 	 * @select_cpu: Pick the target CPU for a task which is being woken up
350 	 * @p: task being woken up
351 	 * @prev_cpu: the cpu @p was on before sleeping
352 	 * @wake_flags: SCX_WAKE_*
353 	 *
354 	 * Decision made here isn't final. @p may be moved to any CPU while it
355 	 * is getting dispatched for execution later. However, as @p is not on
356 	 * the rq at this point, getting the eventual execution CPU right here
357 	 * saves a small bit of overhead down the line.
358 	 *
359 	 * If an idle CPU is returned, the CPU is kicked and will try to
360 	 * dispatch. While an explicit custom mechanism can be added,
361 	 * select_cpu() serves as the default way to wake up idle CPUs.
362 	 *
363 	 * @p may be inserted into a DSQ directly by calling
364 	 * scx_bpf_dsq_insert(). If so, the ops.enqueue() will be skipped.
365 	 * Directly inserting into %SCX_DSQ_LOCAL will put @p in the local DSQ
366 	 * of the CPU returned by this operation.
367 	 *
368 	 * Note that select_cpu() is never called for tasks that can only run
369 	 * on a single CPU or tasks with migration disabled, as they don't have
370 	 * the option to select a different CPU. See select_task_rq() for
371 	 * details.
372 	 */
373 	s32 (*select_cpu)(struct task_struct *p, s32 prev_cpu, u64 wake_flags);
374 
375 	/**
376 	 * @enqueue: Enqueue a task on the BPF scheduler
377 	 * @p: task being enqueued
378 	 * @enq_flags: %SCX_ENQ_*
379 	 *
380 	 * @p is ready to run. Insert directly into a DSQ by calling
381 	 * scx_bpf_dsq_insert() or enqueue on the BPF scheduler. If not directly
382 	 * inserted, the bpf scheduler owns @p and if it fails to dispatch @p,
383 	 * the task will stall.
384 	 *
385 	 * If @p was inserted into a DSQ from ops.select_cpu(), this callback is
386 	 * skipped.
387 	 */
388 	void (*enqueue)(struct task_struct *p, u64 enq_flags);
389 
390 	/**
391 	 * @dequeue: Remove a task from the BPF scheduler
392 	 * @p: task being dequeued
393 	 * @deq_flags: %SCX_DEQ_*
394 	 *
395 	 * Remove @p from the BPF scheduler. This is usually called to isolate
396 	 * the task while updating its scheduling properties (e.g. priority).
397 	 *
398 	 * The ext core keeps track of whether the BPF side owns a given task or
399 	 * not and can gracefully ignore spurious dispatches from BPF side,
400 	 * which makes it safe to not implement this method. However, depending
401 	 * on the scheduling logic, this can lead to confusing behaviors - e.g.
402 	 * scheduling position not being updated across a priority change.
403 	 */
404 	void (*dequeue)(struct task_struct *p, u64 deq_flags);
405 
406 	/**
407 	 * @dispatch: Dispatch tasks from the BPF scheduler and/or user DSQs
408 	 * @cpu: CPU to dispatch tasks for
409 	 * @prev: previous task being switched out
410 	 *
411 	 * Called when a CPU's local dsq is empty. The operation should dispatch
412 	 * one or more tasks from the BPF scheduler into the DSQs using
413 	 * scx_bpf_dsq_insert() and/or move from user DSQs into the local DSQ
414 	 * using scx_bpf_dsq_move_to_local().
415 	 *
416 	 * The maximum number of times scx_bpf_dsq_insert() can be called
417 	 * without an intervening scx_bpf_dsq_move_to_local() is specified by
418 	 * ops.dispatch_max_batch. See the comments on top of the two functions
419 	 * for more details.
420 	 *
421 	 * When not %NULL, @prev is an SCX task with its slice depleted. If
422 	 * @prev is still runnable as indicated by set %SCX_TASK_QUEUED in
423 	 * @prev->scx.flags, it is not enqueued yet and will be enqueued after
424 	 * ops.dispatch() returns. To keep executing @prev, return without
425 	 * dispatching or moving any tasks. Also see %SCX_OPS_ENQ_LAST.
426 	 */
427 	void (*dispatch)(s32 cpu, struct task_struct *prev);
428 
429 	/**
430 	 * @tick: Periodic tick
431 	 * @p: task running currently
432 	 *
433 	 * This operation is called every 1/HZ seconds on CPUs which are
434 	 * executing an SCX task. Setting a slice of 0 for @p with
435 	 * scx_bpf_task_set_slice() will trigger an immediate dispatch cycle on
436 	 * the CPU.
437 	 */
438 	void (*tick)(struct task_struct *p);
439 
440 	/**
441 	 * @runnable: A task is becoming runnable on its associated CPU
442 	 * @p: task becoming runnable
443 	 * @enq_flags: %SCX_ENQ_*
444 	 *
445 	 * This and the following three functions can be used to track a task's
446 	 * execution state transitions. A task becomes ->runnable() on a CPU,
447 	 * and then goes through one or more ->running() and ->stopping() pairs
448 	 * as it runs on the CPU, and eventually becomes ->quiescent() when it's
449 	 * done running on the CPU.
450 	 *
451 	 * @p is becoming runnable on the CPU because it's
452 	 *
453 	 * - waking up (%SCX_ENQ_WAKEUP)
454 	 * - being moved from another CPU
455 	 * - being restored after temporarily taken off the queue for an
456 	 *   attribute change.
457 	 *
458 	 * This and ->enqueue() are related but not coupled. This operation
459 	 * notifies @p's state transition and may not be followed by ->enqueue()
460 	 * e.g. when @p is being dispatched to a remote CPU, or when @p is
461 	 * being enqueued on a CPU experiencing a hotplug event. Likewise, a
462 	 * task may be ->enqueue()'d without being preceded by this operation
463 	 * e.g. after exhausting its slice.
464 	 */
465 	void (*runnable)(struct task_struct *p, u64 enq_flags);
466 
467 	/**
468 	 * @running: A task is starting to run on its associated CPU
469 	 * @p: task starting to run
470 	 *
471 	 * Note that this callback may be called from a CPU other than the
472 	 * one the task is going to run on. This can happen when a task
473 	 * property is changed (i.e., affinity), since set_next_task_scx(),
474 	 * which triggers this callback, may run on a CPU different from
475 	 * the task's assigned CPU.
476 	 *
477 	 * Therefore, always use scx_bpf_task_cpu(@p) to determine the
478 	 * target CPU the task is going to use.
479 	 *
480 	 * See ->runnable() for explanation on the task state notifiers.
481 	 */
482 	void (*running)(struct task_struct *p);
483 
484 	/**
485 	 * @stopping: A task is stopping execution
486 	 * @p: task stopping to run
487 	 * @runnable: is task @p still runnable?
488 	 *
489 	 * Note that this callback may be called from a CPU other than the
490 	 * one the task was running on. This can happen when a task
491 	 * property is changed (i.e., affinity), since dequeue_task_scx(),
492 	 * which triggers this callback, may run on a CPU different from
493 	 * the task's assigned CPU.
494 	 *
495 	 * Therefore, always use scx_bpf_task_cpu(@p) to retrieve the CPU
496 	 * the task was running on.
497 	 *
498 	 * See ->runnable() for explanation on the task state notifiers. If
499 	 * !@runnable, ->quiescent() will be invoked after this operation
500 	 * returns.
501 	 */
502 	void (*stopping)(struct task_struct *p, bool runnable);
503 
504 	/**
505 	 * @quiescent: A task is becoming not runnable on its associated CPU
506 	 * @p: task becoming not runnable
507 	 * @deq_flags: %SCX_DEQ_*
508 	 *
509 	 * See ->runnable() for explanation on the task state notifiers.
510 	 *
511 	 * @p is becoming quiescent on the CPU because it's
512 	 *
513 	 * - sleeping (%SCX_DEQ_SLEEP)
514 	 * - being moved to another CPU
515 	 * - being temporarily taken off the queue for an attribute change
516 	 *   (%SCX_DEQ_SCHED_CHANGE)
517 	 *
518 	 * This and ->dequeue() are related but not coupled. This operation
519 	 * notifies @p's state transition and may not be preceded by ->dequeue()
520 	 * e.g. when @p is being dispatched to a remote CPU.
521 	 */
522 	void (*quiescent)(struct task_struct *p, u64 deq_flags);
523 
524 	/**
525 	 * @yield: Yield CPU
526 	 * @from: yielding task
527 	 * @to: optional yield target task
528 	 *
529 	 * If @to is NULL, @from is yielding the CPU to other runnable tasks.
530 	 * The BPF scheduler should ensure that other available tasks are
531 	 * dispatched before the yielding task. Return value is ignored in this
532 	 * case.
533 	 *
534 	 * If @to is not-NULL, @from wants to yield the CPU to @to. If the bpf
535 	 * scheduler can implement the request, return %true; otherwise, %false.
536 	 */
537 	bool (*yield)(struct task_struct *from, struct task_struct *to);
538 
539 	/**
540 	 * @core_sched_before: Task ordering for core-sched
541 	 * @a: task A
542 	 * @b: task B
543 	 *
544 	 * Used by core-sched to determine the ordering between two tasks. See
545 	 * Documentation/admin-guide/hw-vuln/core-scheduling.rst for details on
546 	 * core-sched.
547 	 *
548 	 * Both @a and @b are runnable and may or may not currently be queued on
549 	 * the BPF scheduler. Should return %true if @a should run before @b.
550 	 * %false if there's no required ordering or @b should run before @a.
551 	 *
552 	 * In a scheduler hierarchy, a pair spanning two schedulers is ordered
553 	 * by the nearest common ancestor implementing this op, so the op may be
554 	 * called on tasks that the scheduler delegated to its sub-schedulers
555 	 * and is not scheduling anymore. See scx_prio_less().
556 	 *
557 	 * If not specified, the default is ordering them according to when they
558 	 * became runnable.
559 	 */
560 	bool (*core_sched_before)(struct task_struct *a, struct task_struct *b);
561 
562 	/**
563 	 * @set_weight: Set task weight
564 	 * @p: task to set weight for
565 	 * @weight: new weight [1..10000]
566 	 *
567 	 * Update @p's weight to @weight.
568 	 */
569 	void (*set_weight)(struct task_struct *p, u32 weight);
570 
571 	/**
572 	 * @set_cpumask: Set CPU affinity
573 	 * @p: task to set CPU affinity for
574 	 * @cpumask: cpumask of cpus that @p can run on
575 	 *
576 	 * Update @p's CPU affinity to @cpumask.
577 	 */
578 	void (*set_cpumask)(struct task_struct *p,
579 			    const struct cpumask *cpumask);
580 
581 	/**
582 	 * @update_idle: Update the idle state of a CPU
583 	 * @cpu: CPU to update the idle state for
584 	 * @idle: whether entering or exiting the idle state
585 	 *
586 	 * This operation is called when @rq's CPU goes or leaves the idle
587 	 * state. By default, implementing this operation disables the built-in
588 	 * idle CPU tracking and the following helpers become unavailable:
589 	 *
590 	 * - scx_bpf_select_cpu_dfl()
591 	 * - scx_bpf_select_cpu_and()
592 	 * - scx_bpf_test_and_clear_cpu_idle()
593 	 * - scx_bpf_pick_idle_cpu()
594 	 *
595 	 * The user also must implement ops.select_cpu() as the default
596 	 * implementation relies on scx_bpf_select_cpu_dfl().
597 	 *
598 	 * Specify the %SCX_OPS_KEEP_BUILTIN_IDLE flag to keep the built-in idle
599 	 * tracking.
600 	 *
601 	 * Only actual transitions are reported. A CPU that is claimed with an
602 	 * idle pick and kicked but dispatches no task returns to idle without a
603 	 * transition. A scheduler tracking idle CPUs itself must restore the
604 	 * idle state from ops.dispatch() when it returns without the next task
605 	 * to run.
606 	 */
607 	void (*update_idle)(s32 cpu, bool idle);
608 
609 	/**
610 	 * @init_task: Initialize a task to run in a BPF scheduler
611 	 * @p: task to initialize for BPF scheduling
612 	 * @args: init arguments, see the struct definition
613 	 *
614 	 * Either we're loading a BPF scheduler or a new task is being forked.
615 	 * Initialize @p for BPF scheduling. This operation may block and can
616 	 * be used for allocations, and is called exactly once for a task.
617 	 *
618 	 * Return 0 for success, -errno for failure. An error return while
619 	 * loading will abort loading of the BPF scheduler. During a fork, it
620 	 * will abort that specific fork.
621 	 */
622 	s32 (*init_task)(struct task_struct *p, struct scx_init_task_args *args);
623 
624 	/**
625 	 * @exit_task: Exit a previously-running task from the system
626 	 * @p: task to exit
627 	 * @args: exit arguments, see the struct definition
628 	 *
629 	 * @p is exiting or the BPF scheduler is being unloaded. Perform any
630 	 * necessary cleanup for @p.
631 	 */
632 	void (*exit_task)(struct task_struct *p, struct scx_exit_task_args *args);
633 
634 	/**
635 	 * @enable: Enable BPF scheduling for a task
636 	 * @p: task to enable BPF scheduling for
637 	 *
638 	 * Enable @p for BPF scheduling. enable() is called on @p any time it
639 	 * enters SCX, and is always paired with a matching disable().
640 	 */
641 	void (*enable)(struct task_struct *p);
642 
643 	/**
644 	 * @disable: Disable BPF scheduling for a task
645 	 * @p: task to disable BPF scheduling for
646 	 *
647 	 * @p is exiting, leaving SCX or the BPF scheduler is being unloaded.
648 	 * Disable BPF scheduling for @p. A disable() call is always matched
649 	 * with a prior enable() call.
650 	 */
651 	void (*disable)(struct task_struct *p);
652 
653 	/**
654 	 * @dump: Dump BPF scheduler state on error
655 	 * @ctx: debug dump context
656 	 *
657 	 * Use scx_bpf_dump() to generate BPF scheduler specific debug dump.
658 	 */
659 	void (*dump)(struct scx_dump_ctx *ctx);
660 
661 	/**
662 	 * @dump_cpu: Dump BPF scheduler state for a CPU on error
663 	 * @ctx: debug dump context
664 	 * @cpu: CPU to generate debug dump for
665 	 * @idle: @cpu is currently idle without any runnable tasks
666 	 *
667 	 * Use scx_bpf_dump() to generate BPF scheduler specific debug dump for
668 	 * @cpu. If @idle is %true and this operation doesn't produce any
669 	 * output, @cpu is skipped for dump.
670 	 */
671 	void (*dump_cpu)(struct scx_dump_ctx *ctx, s32 cpu, bool idle);
672 
673 	/**
674 	 * @dump_task: Dump BPF scheduler state for a runnable task on error
675 	 * @ctx: debug dump context
676 	 * @p: runnable task to generate debug dump for
677 	 *
678 	 * Use scx_bpf_dump() to generate BPF scheduler specific debug dump for
679 	 * @p.
680 	 */
681 	void (*dump_task)(struct scx_dump_ctx *ctx, struct task_struct *p);
682 
683 #ifdef CONFIG_EXT_GROUP_SCHED
684 	/**
685 	 * @cgroup_init: Initialize a cgroup
686 	 * @cgrp: cgroup being initialized
687 	 * @args: init arguments, see the struct definition
688 	 *
689 	 * Initialize @cgrp for sched_ext, delivered to @cgrp's sched either
690 	 * when the BPF scheduler is being loaded or when @cgrp is created. This
691 	 * operation may block.
692 	 *
693 	 * Cgroup handovers also generate these ops: an enabling sub-scheduler
694 	 * receives ops.cgroup_init() for every cgroup in its subtree while the
695 	 * previous sched receives ops.cgroup_exit(), and disabling reverses the
696 	 * two.
697 	 *
698 	 * When the BPF scheduler is being loaded or cgroups are being handed
699 	 * over, @cgrp may already have been removed by userspace: a removed
700 	 * cgroup stays schedulable until its dying tasks finish their final
701 	 * context switches.
702 	 *
703 	 * Return 0 for success, -errno for failure. An error return while
704 	 * loading will abort loading of the BPF scheduler. During cgroup
705 	 * creation, it will abort the specific cgroup creation.
706 	 */
707 	s32 (*cgroup_init)(struct cgroup *cgrp,
708 			   struct scx_cgroup_init_args *args);
709 
710 	/**
711 	 * @cgroup_exit: Exit a cgroup
712 	 * @cgrp: cgroup being exited
713 	 *
714 	 * Exit @cgrp for sched_ext, delivered to the sched whose
715 	 * ops.cgroup_init() it pairs with, either when the BPF scheduler is
716 	 * being unloaded or when @cgrp is destroyed. This operation may block.
717 	 *
718 	 * For a destroyed @cgrp, delivery follows the last scheduling event on
719 	 * it: a removed cgroup stays schedulable until its dying tasks finish
720 	 * their final context switches.
721 	 */
722 	void (*cgroup_exit)(struct cgroup *cgrp);
723 
724 	/**
725 	 * @cgroup_prep_move: Prepare a task to be moved to a different cgroup
726 	 * @p: task being moved
727 	 * @from: cgroup @p is being moved from
728 	 * @to: cgroup @p is being moved to
729 	 *
730 	 * Prepare @p for move from cgroup @from to @to. This operation may
731 	 * block and can be used for allocations.
732 	 *
733 	 * The cgroup_move ops are delivered to @p's sched, and only for moves
734 	 * that don't re-home @p. A re-homing move is reported through
735 	 * ops.exit_task() and ops.init_task() instead. @from and @to can
736 	 * reference cgroups the sched never received ops.cgroup_init() for, as
737 	 * the cpu controller can be coarser than the sub-scheduler topology.
738 	 *
739 	 * Return 0 for success, -errno for failure. An error return aborts the
740 	 * migration.
741 	 */
742 	s32 (*cgroup_prep_move)(struct task_struct *p,
743 				struct cgroup *from, struct cgroup *to);
744 
745 	/**
746 	 * @cgroup_move: Commit cgroup move
747 	 * @p: task being moved
748 	 * @from: cgroup @p is being moved from
749 	 * @to: cgroup @p is being moved to
750 	 *
751 	 * Commit the move. @p is dequeued during this operation.
752 	 */
753 	void (*cgroup_move)(struct task_struct *p,
754 			    struct cgroup *from, struct cgroup *to);
755 
756 	/**
757 	 * @cgroup_cancel_move: Cancel cgroup move
758 	 * @p: task whose cgroup move is being canceled
759 	 * @from: cgroup @p was being moved from
760 	 * @to: cgroup @p was being moved to
761 	 *
762 	 * @p was cgroup_prep_move()'d but failed before reaching cgroup_move().
763 	 * Undo the preparation.
764 	 */
765 	void (*cgroup_cancel_move)(struct task_struct *p,
766 				   struct cgroup *from, struct cgroup *to);
767 
768 	/**
769 	 * @cgroup_set_weight: A cgroup's weight is being changed
770 	 * @cgrp: cgroup whose weight is being updated
771 	 * @weight: new weight [1..10000]
772 	 *
773 	 * Update @cgrp's weight to @weight.
774 	 *
775 	 * Knobs of a cgroup belong to the parent, so the set_* ops are
776 	 * delivered to @cgrp's parent's sched. That sched may never have seen
777 	 * ops.cgroup_init() for @cgrp - at a sub-scheduler attach point, the
778 	 * parent sched tracks @cgrp through ops.sub_attach() instead.
779 	 */
780 	void (*cgroup_set_weight)(struct cgroup *cgrp, u32 weight);
781 
782 	/**
783 	 * @cgroup_set_bandwidth: A cgroup's bandwidth is being changed
784 	 * @cgrp: cgroup whose bandwidth is being updated
785 	 * @period_us: bandwidth control period
786 	 * @quota_us: bandwidth control quota
787 	 * @burst_us: bandwidth control burst
788 	 *
789 	 * Update @cgrp's bandwidth control parameters. This is from the cpu.max
790 	 * cgroup interface. This operation may block.
791 	 *
792 	 * @quota_us / @period_us determines the CPU bandwidth @cgrp is entitled
793 	 * to. For example, if @period_us is 1_000_000 and @quota_us is
794 	 * 2_500_000. @cgrp is entitled to 2.5 CPUs. @burst_us can be
795 	 * interpreted in the same fashion and specifies how much @cgrp can
796 	 * burst temporarily. The specific control mechanism and thus the
797 	 * interpretation of @period_us and burstiness is up to the BPF
798 	 * scheduler.
799 	 *
800 	 * Delivery follows the same rule as cgroup_set_weight().
801 	 */
802 	void (*cgroup_set_bandwidth)(struct cgroup *cgrp,
803 				     u64 period_us, u64 quota_us, u64 burst_us);
804 
805 	/**
806 	 * @cgroup_set_idle: A cgroup's idle state is being changed
807 	 * @cgrp: cgroup whose idle state is being updated
808 	 * @idle: whether the cgroup is entering or exiting idle state
809 	 *
810 	 * Update @cgrp's idle state to @idle. This callback is invoked when
811 	 * a cgroup transitions between idle and non-idle states, allowing the
812 	 * BPF scheduler to adjust its behavior accordingly.
813 	 *
814 	 * Delivery follows the same rule as cgroup_set_weight().
815 	 */
816 	void (*cgroup_set_idle)(struct cgroup *cgrp, bool idle);
817 
818 #endif	/* CONFIG_EXT_GROUP_SCHED */
819 
820 	/**
821 	 * @sub_attach: Attach a sub-scheduler
822 	 * @args: argument container, see the struct definition
823 	 *
824 	 * Return 0 to accept the sub-scheduler. -errno to reject.
825 	 */
826 	s32 (*sub_attach)(struct scx_sub_attach_args *args);
827 
828 	/**
829 	 * @sub_detach: Detach a sub-scheduler
830 	 * @args: argument container, see the struct definition
831 	 */
832 	void (*sub_detach)(struct scx_sub_detach_args *args);
833 
834 	/**
835 	 * @sub_caps_updated: Caps on this sub-sched's shard changed
836 	 * @cmask: cids whose caps changed (cmask->base identifies the shard)
837 	 * @caps: SCX_CAP_* that changed
838 	 *
839 	 * Invoked after grant or revoke modifies caps on a shard. There can be
840 	 * only one in-flight invocation per shard. @cmask and @caps coalesce
841 	 * all changes since the last delivery. Direction (set vs cleared) isn't
842 	 * encoded. Query current state with scx_bpf_sub_caps().
843 	 *
844 	 * Delivered asynchronously after the change is recorded, and may run
845 	 * before it takes effect on any given cpu. Use it to track which caps
846 	 * the sub-sched holds and propagate to its own children, not to decide
847 	 * if a task can run on a cpu now. sub_ecaps_updated() reports that per
848 	 * cpu, once it is in effect.
849 	 *
850 	 * May call scx_bpf_sub_grant() / scx_bpf_sub_revoke() on children.
851 	 */
852 	void (*sub_caps_updated)(const struct scx_cmask *cmask, u64 caps);
853 
854 	/**
855 	 * @sub_ecaps_updated: This sub-sched's effective caps on a cid changed
856 	 * @cid: the cid whose effective caps changed
857 	 * @before: effective caps as of the last delivery
858 	 * @after: effective caps now
859 	 *
860 	 * Invoked when this sub-sched's effective caps on @cid change, once the
861 	 * change is in effect on the cpu. Runs in dispatch context with rq lock
862 	 * held, and can perform all operations allowed in ops.dispatch()
863 	 * including inserting/moving tasks.
864 	 */
865 	void (*sub_ecaps_updated)(s32 cid, u64 before, u64 after);
866 
867 	/*
868 	 * All online ops must come before ops.cpu_online().
869 	 */
870 
871 	/**
872 	 * @cpu_online: A CPU became online
873 	 * @cpu: CPU which just came up
874 	 *
875 	 * @cpu just came online. @cpu will not call ops.enqueue() or
876 	 * ops.dispatch(), nor run tasks associated with other CPUs beforehand.
877 	 */
878 	void (*cpu_online)(s32 cpu);
879 
880 	/**
881 	 * @cpu_offline: A CPU is going offline
882 	 * @cpu: CPU which is going offline
883 	 *
884 	 * @cpu is going offline. @cpu will not call ops.enqueue() or
885 	 * ops.dispatch(), nor run tasks associated with other CPUs afterwards.
886 	 */
887 	void (*cpu_offline)(s32 cpu);
888 
889 	/*
890 	 * All CPU hotplug ops must come before ops.init_cids().
891 	 */
892 
893 	/**
894 	 * @init_cids: Finalize the cid layout (cid-form only)
895 	 *
896 	 * Runs after the default cid layout is built, before caps and shards
897 	 * are finalized. A cid-form scheduler may call scx_bpf_cid_override()
898 	 * here for a custom layout. Ignored for cpu-form schedulers.
899 	 */
900 	s32 (*init_cids)(void);
901 
902 	/**
903 	 * @init: Initialize the BPF scheduler
904 	 */
905 	s32 (*init)(void);
906 
907 	/**
908 	 * @exit: Clean up after the BPF scheduler
909 	 * @info: Exit info
910 	 *
911 	 * ops.exit() is also called on ops.init() failure, which is a bit
912 	 * unusual. This is to allow rich reporting through @info on how
913 	 * ops.init() failed.
914 	 */
915 	void (*exit)(struct scx_exit_info *info);
916 
917 	/*
918 	 * Data fields must comes after all ops fields.
919 	 */
920 
921 	/**
922 	 * @dispatch_max_batch: Max nr of tasks that dispatch() can dispatch
923 	 */
924 	u32 dispatch_max_batch;
925 
926 	/**
927 	 * @flags: %SCX_OPS_* flags
928 	 */
929 	u64 flags;
930 
931 	/**
932 	 * @timeout_ms: The maximum amount of time, in milliseconds, that a
933 	 * runnable task should be able to wait before being scheduled. The
934 	 * maximum timeout may not exceed the default timeout of 30 seconds.
935 	 *
936 	 * Defaults to the maximum allowed timeout value of 30 seconds.
937 	 */
938 	u32 timeout_ms;
939 
940 	/**
941 	 * @exit_dump_len: scx_exit_info.dump buffer length. If 0, the default
942 	 * value of 32768 is used.
943 	 */
944 	u32 exit_dump_len;
945 
946 	/**
947 	 * @hotplug_seq: A sequence number that may be set by the scheduler to
948 	 * detect when a hotplug event has occurred during the loading process.
949 	 * If 0, no detection occurs. Otherwise, the scheduler will fail to
950 	 * load if the sequence number does not match @scx_hotplug_seq on the
951 	 * enable path.
952 	 */
953 	u64 hotplug_seq;
954 
955 	/**
956 	 * @cid_shard_size: Target number of CIDs per shard
957 	 *
958 	 * Shards are contiguous CID ranges used as operation and locking
959 	 * domains for sub-scheduling. Each LLC is divided into ceil(nr_cpus /
960 	 * @cid_shard_size) shards, then cores are distributed across them
961 	 * evenly. If one core has more logical CPUs than @cid_shard_size, its
962 	 * shard will become larger than @cid_shard_size. Values above
963 	 * SCX_CID_SHARD_MAX_CPUS are capped. 0 means use the default (24).
964 	 */
965 	u32 cid_shard_size;
966 
967 	/**
968 	 * @rescue_bandwidth_ppt: Rescue execution bandwidth in parts per thousand
969 	 *
970 	 * The fraction of each CPU's time that may be consumed running tasks
971 	 * from its rescue DSQ. A higher bandwidth admits and escalates rescues
972 	 * faster, see @rescue_quantum_us.
973 	 *
974 	 * Only the root scheduler's value is used. 0 means the default of 20
975 	 * (2%). May not exceed 250 (25%). %SCX_RESCUE_DISABLE disables rescue -
976 	 * %SCX_ENQ_RESCUE inserts are then rejected like any other insert
977 	 * lacking the caps.
978 	 */
979 	u32 rescue_bandwidth_ppt;
980 
981 	/**
982 	 * @rescue_quantum_us: Rescue execution quantum in microseconds
983 	 *
984 	 * How much CPU time each rescue gets. Rescues run one at a time per CPU
985 	 * and admissions are paced to keep rescue execution within
986 	 * @rescue_bandwidth_ppt - with the defaults, one 5ms rescue every
987 	 * 250ms. A crowded queue round-robins on the quantum divided across the
988 	 * waiters, floored at 1ms. A stuck rescue eventually escalates to
989 	 * forced execution. A larger quantum interrupts the CPU less often but
990 	 * for longer and spaces rescues further apart.
991 	 *
992 	 * Only the root scheduler's value is used. 0 means the default (5000).
993 	 * Non-zero values must be within [1000, 100000]. Values too short for
994 	 * the kernel to meter are lifted silently.
995 	 */
996 	u32 rescue_quantum_us;
997 
998 	/**
999 	 * @sub_cgroup_id: When >1, attach the scheduler as a sub-scheduler
1000 	 * on the specified cgroup.
1001 	 */
1002 	u64 sub_cgroup_id;
1003 
1004 	/**
1005 	 * @name: BPF scheduler's name
1006 	 *
1007 	 * Must be a non-zero valid BPF object name including only isalnum(),
1008 	 * '_' and '.' chars. Exposed via the ops file in the scheduler's sysfs
1009 	 * directory, /sys/kernel/sched_ext/root/ops for the root scheduler,
1010 	 * while the BPF scheduler is enabled.
1011 	 */
1012 	char name[SCX_OPS_NAME_LEN];
1013 
1014 	/* internal use only, must be NULL */
1015 	void __rcu *priv;
1016 
1017 	/*
1018 	 * Deprecated callbacks. Kept at the end of the struct so the cid-form
1019 	 * struct (sched_ext_ops_cid) can omit them without affecting the
1020 	 * shared field offsets. Use SCX_ENQ_IMMED instead. Sitting past
1021 	 * SCX_OPI_END means has_op doesn't cover them, so SCX_HAS_OP() cannot
1022 	 * be used; callers must test sch->ops.cpu_acquire / cpu_release
1023 	 * directly.
1024 	 */
1025 
1026 	/**
1027 	 * @cpu_acquire: A CPU is becoming available to the BPF scheduler
1028 	 * @cpu: The CPU being acquired by the BPF scheduler.
1029 	 * @args: Acquire arguments, see the struct definition.
1030 	 *
1031 	 * A CPU that was previously released from the BPF scheduler is now once
1032 	 * again under its control. Deprecated; use SCX_ENQ_IMMED instead.
1033 	 */
1034 	void (*cpu_acquire)(s32 cpu, struct scx_cpu_acquire_args *args);
1035 
1036 	/**
1037 	 * @cpu_release: A CPU is taken away from the BPF scheduler
1038 	 * @cpu: The CPU being released by the BPF scheduler.
1039 	 * @args: Release arguments, see the struct definition.
1040 	 *
1041 	 * The specified CPU is no longer under the control of the BPF
1042 	 * scheduler. This could be because it was preempted by a higher
1043 	 * priority sched_class, though there may be other reasons as well. The
1044 	 * caller should consult @args->reason to determine the cause.
1045 	 * Deprecated; use SCX_ENQ_IMMED instead.
1046 	 */
1047 	void (*cpu_release)(s32 cpu, struct scx_cpu_release_args *args);
1048 };
1049 
1050 /**
1051  * struct sched_ext_ops_cid - cid-form alternative to struct sched_ext_ops
1052  *
1053  * Mirrors struct sched_ext_ops with cpu/cpumask substituted with cid/cmask
1054  * where applicable. Layout up to and including @priv matches sched_ext_ops
1055  * byte-for-byte (verified by BUILD_BUG_ON checks at scx_init() time) so
1056  * shared field offsets work for both struct types in bpf_scx_init_member()
1057  * and bpf_scx_check_member(). The deprecated cpu_acquire/cpu_release
1058  * callbacks at the tail of sched_ext_ops are omitted here entirely.
1059  *
1060  * Differences from sched_ext_ops:
1061  *   - select_cpu       -> select_cid (returns cid)
1062  *   - dispatch         -> dispatch (cpu arg is now cid)
1063  *   - update_idle      -> update_idle (cpu arg is now cid)
1064  *   - set_cpumask      -> set_cmask (cmask instead of cpumask)
1065  *   - enable           -> enable (takes struct scx_enable_args)
1066  *   - cpu_online       -> cid_online
1067  *   - cpu_offline      -> cid_offline
1068  *   - dump_cpu         -> dump_cid
1069  *   - cgroup_*         -> cpuctl_* (they track the cgroup cpu controller)
1070  *   - cpu_acquire/cpu_release  -> not present (deprecated in sched_ext_ops)
1071  *
1072  * BPF schedulers using this type cannot call cpu-form scx_bpf_* kfuncs;
1073  * use the cid-form variants instead. Enforced at BPF verifier time via
1074  * scx_kfunc_context_filter() branching on prog->aux->st_ops.
1075  *
1076  * See sched_ext_ops for callback documentation.
1077  */
1078 struct sched_ext_ops_cid {
1079 	s32 (*select_cid)(struct task_struct *p, s32 prev_cid, u64 wake_flags);
1080 	void (*enqueue)(struct task_struct *p, u64 enq_flags);
1081 	void (*dequeue)(struct task_struct *p, u64 deq_flags);
1082 	void (*dispatch)(s32 cid, struct task_struct *prev);
1083 	void (*tick)(struct task_struct *p);
1084 	void (*runnable)(struct task_struct *p, u64 enq_flags);
1085 	void (*running)(struct task_struct *p);
1086 	void (*stopping)(struct task_struct *p, bool runnable);
1087 	void (*quiescent)(struct task_struct *p, u64 deq_flags);
1088 	bool (*yield)(struct task_struct *from, struct task_struct *to);
1089 	bool (*core_sched_before)(struct task_struct *a,
1090 				   struct task_struct *b);
1091 	void (*set_weight)(struct task_struct *p, u32 weight);
1092 	void (*set_cmask)(struct task_struct *p,
1093 			   const struct scx_cmask *cmask__arena);
1094 	void (*update_idle)(s32 cid, bool idle);
1095 	s32 (*init_task)(struct task_struct *p,
1096 			  struct scx_init_task_args *args);
1097 	void (*exit_task)(struct task_struct *p,
1098 			   struct scx_exit_task_args *args);
1099 	void (*enable)(struct task_struct *p, struct scx_enable_args *args);
1100 	void (*disable)(struct task_struct *p);
1101 	void (*dump)(struct scx_dump_ctx *ctx);
1102 	void (*dump_cid)(struct scx_dump_ctx *ctx, s32 cid, bool idle);
1103 	void (*dump_task)(struct scx_dump_ctx *ctx, struct task_struct *p);
1104 #ifdef CONFIG_EXT_GROUP_SCHED
1105 	s32 (*cpuctl_init)(struct cgroup *cgrp, struct scx_cgroup_init_args *args);
1106 	void (*cpuctl_exit)(struct cgroup *cgrp);
1107 	s32 (*cpuctl_prep_move)(struct task_struct *p, struct cgroup *from,
1108 				struct cgroup *to);
1109 	void (*cpuctl_move)(struct task_struct *p, struct cgroup *from, struct cgroup *to);
1110 	void (*cpuctl_cancel_move)(struct task_struct *p, struct cgroup *from,
1111 				   struct cgroup *to);
1112 	void (*cpuctl_set_weight)(struct cgroup *cgrp, u32 weight);
1113 	void (*cpuctl_set_bandwidth)(struct cgroup *cgrp, u64 period_us, u64 quota_us,
1114 				     u64 burst_us);
1115 	void (*cpuctl_set_idle)(struct cgroup *cgrp, bool idle);
1116 #endif	/* CONFIG_EXT_GROUP_SCHED */
1117 	s32 (*sub_attach)(struct scx_sub_attach_args *args);
1118 	void (*sub_detach)(struct scx_sub_detach_args *args);
1119 	void (*sub_caps_updated)(const struct scx_cmask *cmask__arena, u64 caps);
1120 	void (*sub_ecaps_updated)(s32 cid, u64 before, u64 after);
1121 	void (*cid_online)(s32 cid);
1122 	void (*cid_offline)(s32 cid);
1123 	s32 (*init_cids)(void);
1124 	s32 (*init)(void);
1125 	void (*exit)(struct scx_exit_info *info);
1126 
1127 	/* Data fields - must match sched_ext_ops layout exactly */
1128 	u32 dispatch_max_batch;
1129 	u64 flags;
1130 	u32 timeout_ms;
1131 	u32 exit_dump_len;
1132 	u64 hotplug_seq;
1133 	u32 cid_shard_size;
1134 	u32 rescue_bandwidth_ppt;
1135 	u32 rescue_quantum_us;
1136 	u64 sub_cgroup_id;
1137 	char name[SCX_OPS_NAME_LEN];
1138 
1139 	/* internal use only, must be NULL */
1140 	void __rcu *priv;
1141 
1142 	/* layout end anchor for the BUILD_BUG_ON in scx_init(); keep last */
1143 	char __end[0];
1144 };
1145 
1146 enum scx_opi {
1147 	SCX_OPI_BEGIN			= 0,
1148 	SCX_OPI_NORMAL_BEGIN		= 0,
1149 	SCX_OPI_NORMAL_END		= SCX_OP_IDX(cpu_online),
1150 	SCX_OPI_CPU_HOTPLUG_BEGIN	= SCX_OP_IDX(cpu_online),
1151 	SCX_OPI_CPU_HOTPLUG_END		= SCX_OP_IDX(init_cids),
1152 	SCX_OPI_END			= SCX_OP_IDX(init_cids),
1153 };
1154 
1155 /*
1156  * Collection of event counters. Event types are placed in descending order.
1157  */
1158 struct scx_event_stats {
1159 	/*
1160 	 * If ops.select_cpu() returns a CPU which can't be used by the task,
1161 	 * the core scheduler code silently picks a fallback CPU.
1162 	 */
1163 	s64		SCX_EV_SELECT_CPU_FALLBACK;
1164 
1165 	/*
1166 	 * When dispatching to a local DSQ, the CPU may have gone offline in
1167 	 * the meantime. In this case, the task is bounced to the global DSQ.
1168 	 */
1169 	s64		SCX_EV_DISPATCH_LOCAL_DSQ_OFFLINE;
1170 
1171 	/*
1172 	 * If SCX_OPS_ENQ_LAST is not set, the number of times that a task
1173 	 * continued to run because there were no other tasks on the CPU.
1174 	 */
1175 	s64		SCX_EV_DISPATCH_KEEP_LAST;
1176 
1177 	/*
1178 	 * If SCX_OPS_ENQ_EXITING is not set, the number of times that a task
1179 	 * is dispatched to a local DSQ when exiting.
1180 	 */
1181 	s64		SCX_EV_ENQ_SKIP_EXITING;
1182 
1183 	/*
1184 	 * If SCX_OPS_ENQ_MIGRATION_DISABLED is not set, the number of times a
1185 	 * migration disabled task skips ops.enqueue() and is dispatched to its
1186 	 * local DSQ.
1187 	 */
1188 	s64		SCX_EV_ENQ_SKIP_MIGRATION_DISABLED;
1189 
1190 	/*
1191 	 * The number of times a task, enqueued on a local DSQ with
1192 	 * SCX_ENQ_IMMED, was re-enqueued because the CPU was not available for
1193 	 * immediate execution.
1194 	 */
1195 	s64		SCX_EV_REENQ_IMMED;
1196 
1197 	/*
1198 	 * The number of times a reenqueue (%SCX_ENQ_REENQ) led to another
1199 	 * reenqueue without the task running in between. This count climbing
1200 	 * rapidly indicates that the BPF scheduler keeps re-deciding placements
1201 	 * it can't honor. A single task reenqueued more than
1202 	 * %SCX_REENQ_MAX_REPEAT times gets its owning scheduler ejected.
1203 	 */
1204 	s64		SCX_EV_REENQ_REPEAT;
1205 
1206 	/*
1207 	 * Total number of times a task's time slice was refilled with the
1208 	 * default value (SCX_SLICE_DFL).
1209 	 */
1210 	s64		SCX_EV_REFILL_SLICE_DFL;
1211 
1212 	/*
1213 	 * The number of times an out-of-band slice request exceeded the maximum
1214 	 * representable value and was clamped.
1215 	 */
1216 	s64		SCX_EV_SLICE_CLAMPED;
1217 
1218 	/*
1219 	 * The number of times a slice extension was denied because the
1220 	 * scheduler lacked baseline cpu access on the task's cpu.
1221 	 */
1222 	s64		SCX_EV_SLICE_DENIED;
1223 
1224 	/*
1225 	 * The total duration of bypass modes in nanoseconds.
1226 	 */
1227 	s64		SCX_EV_BYPASS_DURATION;
1228 
1229 	/*
1230 	 * The number of tasks dispatched in the bypassing mode.
1231 	 */
1232 	s64		SCX_EV_BYPASS_DISPATCH;
1233 
1234 	/*
1235 	 * The number of times the bypassing mode has been activated.
1236 	 */
1237 	s64		SCX_EV_BYPASS_ACTIVATE;
1238 
1239 	/*
1240 	 * The number of times the scheduler attempted to insert a task that it
1241 	 * doesn't own into a DSQ. Such attempts are ignored.
1242 	 *
1243 	 * As BPF schedulers are allowed to ignore dequeues, it's difficult to
1244 	 * tell whether such an attempt is from a scheduler malfunction or an
1245 	 * ignored dequeue around sub-sched enabling. If this count keeps going
1246 	 * up regardless of sub-sched enabling, it likely indicates a bug in the
1247 	 * scheduler.
1248 	 */
1249 	s64		SCX_EV_INSERT_NOT_OWNED;
1250 
1251 	/*
1252 	 * The number of times tasks from bypassing descendants are scheduled
1253 	 * from sub_bypass_dsq's.
1254 	 */
1255 	s64		SCX_EV_SUB_BYPASS_DISPATCH;
1256 
1257 	/*
1258 	 * The number of times a migration-disabled task lacking the cap for its
1259 	 * cid was allowed onto the local DSQ. It must run on its pinned CPU, so
1260 	 * it can't be rejected. The violation is counted here.
1261 	 */
1262 	s64		SCX_EV_SUB_FORCED_ADMIT;
1263 
1264 	/*
1265 	 * The number of times a preempting kick was refused because the
1266 	 * sub-sched lacked SCX_CAP_PREEMPT for a task outside its subtree. The
1267 	 * kick degrades to a plain reschedule.
1268 	 */
1269 	s64		SCX_EV_SUB_PREEMPT_DENIED;
1270 
1271 	/*
1272 	 * The number of times a kick was skipped because the sub-sched lacked
1273 	 * baseline access on the target cid. The preempt-part degradation of a
1274 	 * delivered kick is counted in SCX_EV_SUB_PREEMPT_DENIED instead.
1275 	 */
1276 	s64		SCX_EV_SUB_KICK_DENIED;
1277 
1278 	/*
1279 	 * The number of times a local DSQ reenq was dropped because the
1280 	 * sub-sched lacked baseline access on the target cid.
1281 	 */
1282 	s64		SCX_EV_SUB_REENQ_DENIED;
1283 
1284 	/*
1285 	 * The number of times scx_bpf_cidperf_set() was denied because the
1286 	 * sub-sched lacked SCX_CAP_PERF on the target cid.
1287 	 */
1288 	s64		SCX_EV_SUB_CIDPERF_DENIED;
1289 
1290 	/*
1291 	 * The number of times an insert carrying %SCX_ENQ_RESCUE lacked the
1292 	 * caps for its cid and the task entered the rescue path.
1293 	 */
1294 	s64		SCX_EV_SUB_RESCUE;
1295 };
1296 
1297 #define SCX_EVENTS_LIST(SCX_EVENT)					\
1298 	SCX_EVENT(SCX_EV_SELECT_CPU_FALLBACK);				\
1299 	SCX_EVENT(SCX_EV_DISPATCH_LOCAL_DSQ_OFFLINE);			\
1300 	SCX_EVENT(SCX_EV_DISPATCH_KEEP_LAST);				\
1301 	SCX_EVENT(SCX_EV_ENQ_SKIP_EXITING);				\
1302 	SCX_EVENT(SCX_EV_ENQ_SKIP_MIGRATION_DISABLED);			\
1303 	SCX_EVENT(SCX_EV_REENQ_IMMED);					\
1304 	SCX_EVENT(SCX_EV_REENQ_REPEAT);					\
1305 	SCX_EVENT(SCX_EV_REFILL_SLICE_DFL);				\
1306 	SCX_EVENT(SCX_EV_SLICE_CLAMPED);				\
1307 	SCX_EVENT(SCX_EV_SLICE_DENIED);					\
1308 	SCX_EVENT(SCX_EV_BYPASS_DURATION);				\
1309 	SCX_EVENT(SCX_EV_BYPASS_DISPATCH);				\
1310 	SCX_EVENT(SCX_EV_BYPASS_ACTIVATE);				\
1311 	SCX_EVENT(SCX_EV_INSERT_NOT_OWNED);				\
1312 	SCX_EVENT(SCX_EV_SUB_BYPASS_DISPATCH);				\
1313 	SCX_EVENT(SCX_EV_SUB_FORCED_ADMIT);				\
1314 	SCX_EVENT(SCX_EV_SUB_PREEMPT_DENIED);				\
1315 	SCX_EVENT(SCX_EV_SUB_KICK_DENIED);				\
1316 	SCX_EVENT(SCX_EV_SUB_REENQ_DENIED);				\
1317 	SCX_EVENT(SCX_EV_SUB_CIDPERF_DENIED);				\
1318 	SCX_EVENT(SCX_EV_SUB_RESCUE)
1319 
1320 struct scx_sched;
1321 
1322 enum scx_sched_pcpu_flags {
1323 	SCX_SCHED_PCPU_BYPASSING	= 1LLU << 0,
1324 };
1325 
1326 /* dispatch buf */
1327 struct scx_dsp_buf_ent {
1328 	struct task_struct	*task;
1329 	unsigned long		qseq;
1330 	u64			dsq_id;
1331 	u64			slice;
1332 	u64			vtime;
1333 	u64			enq_flags;
1334 };
1335 
1336 struct scx_dsp_ctx {
1337 	struct rq		*rq;
1338 	u32			cursor;
1339 	u32			nr_tasks;
1340 	struct scx_dsp_buf_ent	buf[];
1341 };
1342 
1343 struct scx_deferred_reenq_local {
1344 	struct list_head	node;
1345 	u64			flags;
1346 };
1347 
1348 struct scx_sched_pcpu {
1349 	struct scx_sched	*sch;
1350 	u64			flags;	/* protected by rq lock */
1351 
1352 	/*
1353 	 * Kick state owned by this cpu for this sched. scx_kick_cpu() records
1354 	 * targets here and links @to_kick_node onto the cpu's
1355 	 * rq->scx.sched_pcpus_to_kick. The cpu's single kick irq_work walks
1356 	 * that list and kicks each sched's targets on its behalf. Per-sched so
1357 	 * a kick stays attributed to its scheduler.
1358 	 */
1359 	cpumask_var_t		cpus_to_kick;
1360 	cpumask_var_t		cpus_to_kick_if_idle;
1361 	cpumask_var_t		cpus_to_preempt;
1362 	cpumask_var_t		cpus_to_wait;
1363 	struct list_head	to_kick_node;
1364 
1365 #ifdef CONFIG_EXT_SUB_SCHED
1366 	/*
1367 	 * pshard->caps[cap_bit] is the set of cids the sched holds that one
1368 	 * cap on. ecaps is its transpose: the set of SCX_CAP_* bits the sched
1369 	 * effectively holds on this cpu, with implied caps folded in, so that
1370 	 * the hot-path check is a single read.
1371 	 *
1372 	 * While pshard->caps[] under pshard->lock is the target configuration,
1373 	 * ecaps is the effective copy owned by the cpu. It is written under the
1374 	 * rq lock while processing rq->ecaps_to_sync. Can also be read with
1375 	 * READ_ONCE() outside rq lock.
1376 	 *
1377 	 * See queue_sync_ecaps() and scx_process_sync_ecaps().
1378 	 */
1379 	u64			ecaps;
1380 	struct llist_node	ecaps_to_sync_node;
1381 	/* owed a forced update_idle() re-notify on this cpu */
1382 	bool			idle_renotify;
1383 	/* effective caps as of the last sub_ecaps_updated() delivery */
1384 	u64			reported_ecaps;
1385 
1386 	/*
1387 	 * Decaying rescue runtime consumed on this cpu, see
1388 	 * scx_rescue_decay_avg(). Overload on this cpu ejects the sub with the
1389 	 * largest value. Accessed only under this cpu's rq lock.
1390 	 */
1391 	u64			rescue_avg;
1392 	u64			rescue_avg_at;	/* last decay, jiffies_64 */
1393 #endif
1394 
1395 	/*
1396 	 * The event counters are in a per-CPU variable to minimize the
1397 	 * accounting overhead. A system-wide view on the event counter is
1398 	 * constructed when requested by scx_bpf_events().
1399 	 */
1400 	struct scx_event_stats	event_stats;
1401 
1402 	struct scx_deferred_reenq_local deferred_reenq_local;
1403 	struct scx_dispatch_q	bypass_dsq;
1404 #ifdef CONFIG_EXT_SUB_SCHED
1405 	u32			bypass_host_seq;
1406 #endif
1407 
1408 	/* must be the last entry - contains flex array */
1409 	struct scx_dsp_ctx	dsp_ctx;
1410 };
1411 
1412 struct scx_sched_pnode {
1413 	struct scx_dispatch_q	global_dsq;
1414 };
1415 
1416 /*
1417  * Sub-sched capability delegation.
1418  *
1419  * Caps are per-cid permissions parents delegate to direct children via
1420  * scx_bpf_sub_grant() / scx_bpf_sub_revoke(). A child's cap set is always a
1421  * subset of its parent's. A sub-sched checks its caps locally, and cross-sched
1422  * communication is needed only when the delegation set itself changes.
1423  *
1424  * Caps are used to implement sub-sched scheduling on the enqueue path. Picking
1425  * a cid for a task at a leaf depends on which cids the leaf is allowed to use.
1426  * Resolving that programmatically on every enqueue would mean a cross-sched
1427  * round-trip call chain, possibly retrying if the request can't be granted
1428  * as-is.
1429  *
1430  * The dispatch path is different - it runs as top-down recursion via
1431  * scx_bpf_sub_dispatch(): a sched's dispatch op invokes a child's dispatch op
1432  * on the local rq, and the subtree dispatches in a single pass.
1433  *
1434  * Locking is per shard. cid space is split into shards, and each sub-sched has
1435  * its own pshard->lock for each shard. Operations are broken up on shard
1436  * boundaries. Different shards never contend. Shards are expected to be
1437  * topology-aligned and likely to serve as the locality unit when cids are
1438  * allocated to schedulers, so per-shard lock granularity scales naturally with
1439  * the allocation pattern.
1440  *
1441  * ENQ_IMMED  insert an IMMED task onto the cid's local DSQ
1442  *            - kick the cid's cpu (except SCX_KICK_PREEMPT)
1443  *
1444  * ENQ        insert any task onto the cid's local DSQ (implies ENQ_IMMED)
1445  *
1446  * PREEMPT    preempt any task running on the cid regardless of the owning
1447  *            sched (implies ENQ). Preempting a task in the sched's own subtree
1448  *            doesn't require any cap.
1449  *            - SCX_ENQ_PREEMPT inserts
1450  *            - SCX_KICK_PREEMPT kicks
1451  *
1452  * PERF       control the cid's cpu power/perf management state, currently the
1453  *            cpufreq target set through scx_bpf_cidperf_set(). Hardware
1454  *            control is a separate axis from queue access: PERF neither
1455  *            implies nor is implied by the caps above.
1456  *
1457  * Implied caps apply to the holder's own use of a cid, not to delegation.
1458  * scx_bpf_sub_grant() delegates literally-held caps, so a cap held only through
1459  * implication is usable but cannot be re-delegated to a child. When granting a
1460  * cap, it usually makes sense to delegate its implied caps explicitly alongside
1461  * it.
1462  */
1463 enum scx_cap_flags {
1464 	__SCX_CAP_ENQ_IMMED		= 0,
1465 	__SCX_CAP_ENQ			= 1,
1466 	__SCX_CAP_PREEMPT		= 2,
1467 	__SCX_CAP_PERF			= 3,
1468 
1469 	__SCX_NR_CAPS,
1470 	__SCX_CAP_ALL			= BIT_U64(__SCX_NR_CAPS) - 1,
1471 
1472 	SCX_CAP_ENQ_IMMED		= BIT_U64(__SCX_CAP_ENQ_IMMED),
1473 	SCX_CAP_ENQ			= BIT_U64(__SCX_CAP_ENQ),
1474 	SCX_CAP_PREEMPT			= BIT_U64(__SCX_CAP_PREEMPT),
1475 	SCX_CAP_PERF			= BIT_U64(__SCX_CAP_PERF),
1476 
1477 	/* alias for minimal cap to make any use of a cpu */
1478 	SCX_CAP_BASE			= SCX_CAP_ENQ_IMMED,
1479 
1480 	/* caps whose loss strands queued tasks, see scx_process_sync_ecaps() */
1481 	SCX_CAPS_REENQ_ON_LOSS		= SCX_CAP_ENQ_IMMED | SCX_CAP_ENQ,
1482 };
1483 
1484 #ifdef CONFIG_EXT_SUB_SCHED
1485 /* iterate set bits in a u64 cap mask */
1486 #define scx_for_each_cap_bit(cap_bit, caps)				\
1487 	for (u64 __caps = (caps);					\
1488 	     __caps && ((cap_bit) = __ffs64(__caps), true);		\
1489 	     __caps &= __caps - 1)
1490 
1491 /*
1492  * Sub-cap update notifier.
1493  *
1494  * ops_cid.sub_caps_updated() notifies sub-scheds when their cap state changes
1495  * so they can refresh internal state without polling scx_bpf_sub_caps() per
1496  * enqueue.
1497  *
1498  * Three constraints shape the design:
1499  *
1500  *   1. Static memory. Deliveries use a fixed-size buffer, both for runtime
1501  *      efficiency and so notifications can't be lost under memory pressure.
1502  *
1503  *   2. High-frequency updates. Grant/revoke can mutate caps in bursts, and the
1504  *      notifier path must absorb that without amplifying it.
1505  *
1506  *   3. Recursive grant/revoke from the callback. A child receiving a
1507  *      notification can call grant/revoke on its own children, which can
1508  *      cascade recursively down its subtree.
1509  *
1510  * (1) and (2) lead to coalescing into a fixed payload. Each delivery carries a
1511  * single (cmask, caps) pair covering every change since the previous one.
1512  * Direction (set vs cleared) isn't encoded as it doesn't fit in the fixed-size
1513  * summary. The callback queries scx_bpf_sub_caps() for current state. Only one
1514  * delivery is in flight per shard. Further changes fold into the same buffer
1515  * and ship as the next callback, so a shard's callbacks fire in order.
1516  *
1517  * (3) leads to deferred delivery. Events accumulate during grant/revoke and are
1518  * delivered after the shard lock is released.
1519  */
1520 struct scx_caps_updated {
1521 	raw_spinlock_t		lock;
1522 	u64			caps;
1523 	struct scx_cmask	*cmask_arena_out;
1524 	struct list_head	node_in_flight;
1525 	/* Kernel-side accumulator. Access as &cu->cmask. */
1526 	TRAILING_OVERLAP(struct scx_cmask, cmask, bits,
1527 			 u64 _bits[SCX_CMASK_NR_WORDS(SCX_CID_SHARD_MAX_CPUS)];
1528 	);
1529 };
1530 
1531 struct scx_pshard {
1532 	raw_spinlock_t		lock;		/* serializes caps */
1533 	struct scx_sched	*sch;		/* backpointer */
1534 	struct scx_caps_updated	caps_updated;
1535 
1536 	/*
1537 	 * Per-cap cmask, inline via TRAILING_OVERLAP so cmask.bits[] overlaps
1538 	 * the trailing _bits[] storage. Access as &caps[i].cmask. See
1539 	 * scx_sched_pcpu->ecaps.
1540 	 */
1541 	TRAILING_OVERLAP(struct scx_cmask, cmask, bits,
1542 			 u64 _bits[SCX_CMASK_NR_WORDS(SCX_CID_SHARD_MAX_CPUS)];
1543 	) caps[__SCX_NR_CAPS];
1544 
1545 	/*
1546 	 * Shard geometry captured at alloc. cmask_arena_out's own header is
1547 	 * bpf-writable and the live shard range can change before the
1548 	 * rcu-deferred free, so re-init and size cmask_arena_out from these
1549 	 * trusted copies instead.
1550 	 */
1551 	u32			base;
1552 	u32			nr_cids;
1553 };
1554 #endif
1555 
1556 struct scx_sched {
1557 	/*
1558 	 * cpu-form and cid-form ops share field offsets up to .priv (verified
1559 	 * by BUILD_BUG_ON in scx_init()). The anonymous union lets the kernel
1560 	 * access either view of the same storage without function-pointer
1561 	 * casts: use .ops for cpu-form and shared fields, .ops_cid for the
1562 	 * callbacks whose cid-form signature differs (set_cmask, enable,
1563 	 * select_cid, cid_online, ...).
1564 	 */
1565 	union {
1566 		struct sched_ext_ops		ops;
1567 		struct sched_ext_ops_cid	ops_cid;
1568 	};
1569 	bool			is_cid_type;	/* true if registered via bpf_sched_ext_ops_cid */
1570 	bool			dead;		/* set after ops.exit(), gates scx_prog_sched() */
1571 
1572 	/*
1573 	 * Arena map auto-discovered from member progs at struct_ops attach.
1574 	 * cid-form schedulers must use exactly one arena across all member
1575 	 * progs. NULL on cpu-form.
1576 	 *
1577 	 * @arena_pool sub-allocates @arena_map. Each gen_pool chunk is added
1578 	 * at the kernel-side mapping address. @arena_kern_base is the start
1579 	 * of the arena's kern_vm range. See scx_arena_to_kaddr().
1580 	 */
1581 	struct bpf_map		*arena_map;
1582 	struct gen_pool		*arena_pool;
1583 	uintptr_t		arena_kern_base;
1584 
1585 	/*
1586 	 * Per-CPU arena cmask the kernel fills from a task's cpumask and hands
1587 	 * to ops_cid.enable() and ops_cid.set_cmask(). The stored pointers are
1588 	 * the kernel addresses.
1589 	 */
1590 	struct scx_cmask * __percpu *set_cmask_scratch;
1591 	struct scx_cmask *online_cmask;
1592 
1593 	DECLARE_BITMAP(has_op, SCX_OPI_END);
1594 
1595 	/*
1596 	 * Dispatch queues.
1597 	 *
1598 	 * The global DSQ (%SCX_DSQ_GLOBAL) is split per-node for scalability.
1599 	 * This is to avoid live-locking in bypass mode where all tasks are
1600 	 * dispatched to %SCX_DSQ_GLOBAL and all CPUs consume from it. If
1601 	 * per-node split isn't sufficient, it can be further split.
1602 	 */
1603 	struct rhashtable	dsq_hash;
1604 	struct scx_sched_pnode	**pnode;
1605 #ifdef CONFIG_EXT_SUB_SCHED
1606 	struct scx_pshard	**pshard;	/* indexed by shard_idx */
1607 #endif
1608 	struct scx_sched_pcpu __percpu *pcpu;
1609 
1610 	u64			slice_dfl;
1611 	u64			bypass_timestamp;
1612 	s32			bypass_depth;
1613 
1614 	/* bypass dispatch path enable state, see scx_bypass_dsp_enabled() */
1615 	unsigned long		bypass_dsp_claim;
1616 	atomic_t		bypass_dsp_enable_depth;
1617 
1618 	bool			aborting;
1619 	bool			dump_disabled;	/* protected by scx_dump_lock */
1620 	u32			dsp_max_batch;
1621 	s32			level;
1622 
1623 #ifdef CONFIG_EXT_SUB_SCHED
1624 	/*
1625 	 * pshard[] size captured at enable for the async RCU free path -
1626 	 * scx_nr_cid_shards may be rewritten by a later enable's
1627 	 * scx_cid_publish_tables() before free runs. While sch is active, use
1628 	 * the global.
1629 	 */
1630 	u32			nr_pshards;
1631 #endif
1632 
1633 	/*
1634 	 * Updates to the following warned bitfields can race causing RMW issues
1635 	 * but it doesn't really matter.
1636 	 */
1637 	bool			warned_zero_slice:1;
1638 	bool			warned_unassoc_progs:1;
1639 
1640 	struct list_head	all;
1641 
1642 	/* unique instance id, monotonic and never reused */
1643 	u64			id;
1644 
1645 #ifdef CONFIG_EXT_SUB_SCHED
1646 	struct rhash_head	hash_node;
1647 
1648 	struct list_head	children;
1649 	struct list_head	sibling;
1650 	struct cgroup		*cgrp;
1651 	char			*cgrp_path;
1652 	struct kset		*sub_kset;
1653 
1654 	bool			linked;		/* on ->children, see scx_link_sched() */
1655 	bool			sub_attached;
1656 #endif	/* CONFIG_EXT_SUB_SCHED */
1657 
1658 	/*
1659 	 * The maximum amount of time in jiffies that a task may be runnable
1660 	 * without being scheduled on a CPU. If this timeout is exceeded, it
1661 	 * will trigger scx_error().
1662 	 */
1663 	unsigned long		watchdog_timeout;
1664 
1665 	atomic_t		exit_kind;
1666 	struct scx_exit_info	*exit_info;
1667 
1668 	struct kobject		kobj;
1669 
1670 	struct kthread_worker	*helper;
1671 	struct irq_work		disable_irq_work;
1672 	struct kthread_work	disable_work;
1673 	struct irq_work		propagate_exit_irq_work; /* see scx_claim_exit() */
1674 	struct timer_list	bypass_lb_timer;
1675 	cpumask_var_t		bypass_lb_donee_cpumask;
1676 	cpumask_var_t		bypass_lb_resched_cpumask;
1677 	cpumask_var_t		stall_cpus;
1678 	struct rcu_work		rcu_work;
1679 
1680 	/* all ancestors including self */
1681 	struct scx_sched	*ancestors[];
1682 };
1683 
1684 /**
1685  * scx_arena_to_kaddr - Translate a BPF-arena pointer to its kernel address
1686  * @sch: scheduler whose arena hosts @bpf_ptr
1687  * @bpf_ptr: BPF-arena pointer, only the low 32 bits are used
1688  *
1689  * The (u32) cast normalizes any input into the arena's 4 GiB kern_vm range,
1690  * which combined with scratch-page fault recovery makes the returned pointer
1691  * safe to dereference up to GUARD_SZ / 2 past the intended object. Accesses
1692  * larger than GUARD_SZ / 2 must be explicitly bounds-checked.
1693  */
1694 static inline void *scx_arena_to_kaddr(struct scx_sched *sch, const void *bpf_ptr)
1695 {
1696 	return (void *)(sch->arena_kern_base + (u32)(uintptr_t)bpf_ptr);
1697 }
1698 
1699 /**
1700  * scx_kaddr_to_arena - Translate a kernel arena address to the BPF form
1701  * @sch: scheduler whose arena hosts @kaddr
1702  * @kaddr: kernel address inside @sch's arena
1703  *
1704  * __arena callback arguments need no translation. Addresses handed to BPF any
1705  * other way, such as struct fields and kfunc return values, go through this.
1706  */
1707 static inline uintptr_t scx_kaddr_to_arena(struct scx_sched *sch, const void *kaddr)
1708 {
1709 	return (uintptr_t)kaddr - sch->arena_kern_base;
1710 }
1711 
1712 enum scx_wake_flags {
1713 	/* expose select WF_* flags as enums */
1714 	SCX_WAKE_FORK		= WF_FORK,
1715 	SCX_WAKE_TTWU		= WF_TTWU,
1716 	SCX_WAKE_SYNC		= WF_SYNC,
1717 };
1718 
1719 enum scx_enq_flags {
1720 	/* expose select ENQUEUE_* flags as enums */
1721 	SCX_ENQ_WAKEUP		= ENQUEUE_WAKEUP,
1722 	SCX_ENQ_HEAD		= ENQUEUE_HEAD,
1723 	SCX_ENQ_CPU_SELECTED	= ENQUEUE_RQ_SELECTED,
1724 
1725 	/* high 32bits are SCX specific */
1726 
1727 	/*
1728 	 * Set the following to trigger preemption when calling
1729 	 * scx_bpf_dsq_insert() with a local dsq as the target. The slice of the
1730 	 * current task is cleared to zero and the CPU is kicked into the
1731 	 * scheduling path. Implies %SCX_ENQ_HEAD.
1732 	 */
1733 	SCX_ENQ_PREEMPT		= 1LLU << 32,
1734 
1735 	/*
1736 	 * Only allowed on local DSQs. Guarantees that the task either gets
1737 	 * on the CPU immediately and stays on it, or gets reenqueued back
1738 	 * to the BPF scheduler. It will never linger on a local DSQ or be
1739 	 * silently put back after preemption.
1740 	 *
1741 	 * The protection persists until the next fresh enqueue - it
1742 	 * survives SAVE/RESTORE cycles, slice extensions and preemption.
1743 	 * If the task can't stay on the CPU for any reason, it gets
1744 	 * reenqueued back to the BPF scheduler.
1745 	 *
1746 	 * Exiting and migration-disabled tasks bypass ops.enqueue() and
1747 	 * are placed directly on a local DSQ without IMMED protection
1748 	 * unless %SCX_OPS_ENQ_EXITING and %SCX_OPS_ENQ_MIGRATION_DISABLED
1749 	 * are set respectively.
1750 	 */
1751 	SCX_ENQ_IMMED		= 1LLU << 33,
1752 
1753 	/*
1754 	 * Only allowed on local DSQs. If the insert lacks the caps for the
1755 	 * target cid, divert the task to the CPU's rescue path instead of
1756 	 * rejecting and reenqueueing, e.g. when the task's affinity is
1757 	 * restricted to cids the scheduler doesn't hold. The kernel runs
1758 	 * rescued tasks on the target CPU. Rescue execution is guaranteed to
1759 	 * make forward progress and is bandwidth-limited, see the
1760 	 * rescue_bandwidth_ppt and rescue_quantum_us ops fields.
1761 	 */
1762 	SCX_ENQ_RESCUE		= 1LLU << 34,
1763 
1764 	/*
1765 	 * The task being enqueued was previously enqueued on a DSQ, but was
1766 	 * removed and is being re-enqueued. See SCX_TASK_REENQ_* flags to find
1767 	 * out why a given task is being reenqueued.
1768 	 */
1769 	SCX_ENQ_REENQ		= 1LLU << 40,
1770 
1771 	/*
1772 	 * The task being enqueued is the only task available for the cpu. By
1773 	 * default, ext core keeps executing such tasks but when
1774 	 * %SCX_OPS_ENQ_LAST is specified, they're ops.enqueue()'d with the
1775 	 * %SCX_ENQ_LAST flag set.
1776 	 *
1777 	 * The BPF scheduler is responsible for triggering a follow-up
1778 	 * scheduling event. Otherwise, Execution may stall.
1779 	 */
1780 	SCX_ENQ_LAST		= 1LLU << 41,
1781 
1782 	/* high 8 bits are internal */
1783 	__SCX_ENQ_INTERNAL_MASK	= 0xffLLU << 56,
1784 
1785 	SCX_ENQ_CLEAR_OPSS	= 1LLU << 56,
1786 	SCX_ENQ_DSQ_PRIQ	= 1LLU << 57,
1787 	SCX_ENQ_NESTED		= 1LLU << 58,
1788 	SCX_ENQ_GDSQ_FALLBACK	= 1LLU << 59,	/* fell back to global DSQ */
1789 	SCX_ENQ_IGNORE_CAPS	= 1LLU << 60,	/* admit to local DSQ ignoring caps */
1790 	SCX_ENQ_APPLY_SLICE	= 1LLU << 61,	/* apply carried slice/vtime at insertion */
1791 	SCX_ENQ_SLICE_DFL	= 1LLU << 62,	/* carried slice is a default refill */
1792 };
1793 
1794 enum scx_deq_flags {
1795 	/* expose select DEQUEUE_* flags as enums */
1796 	SCX_DEQ_SLEEP		= DEQUEUE_SLEEP,
1797 
1798 	/* high 32bits are SCX specific */
1799 
1800 	/*
1801 	 * The generic core-sched layer decided to execute the task even though
1802 	 * it hasn't been dispatched yet. Dequeue from the BPF side.
1803 	 */
1804 	SCX_DEQ_CORE_SCHED_EXEC	= 1LLU << 32,
1805 
1806 	/*
1807 	 * The task is being dequeued due to a property change (e.g.,
1808 	 * sched_setaffinity(), sched_setscheduler(), set_user_nice(),
1809 	 * etc.).
1810 	 */
1811 	SCX_DEQ_SCHED_CHANGE	= 1LLU << 33,
1812 };
1813 
1814 enum scx_reenq_flags {
1815 	/* low 16bits determine which tasks should be reenqueued */
1816 	SCX_REENQ_ANY		= 1LLU << 0,	/* all tasks */
1817 
1818 	/* internal: kernel-issued on cap revoke, not accepted from BPF */
1819 	SCX_REENQ_CAP_REVOKE	= 1LLU << 1,
1820 
1821 	__SCX_REENQ_FILTER_MASK	= 0xffffLLU,
1822 
1823 	__SCX_REENQ_USER_MASK	= SCX_REENQ_ANY,
1824 
1825 	/* bits 32-35 used by task_should_reenq() */
1826 	SCX_REENQ_TSR_RQ_OPEN	= 1LLU << 32,
1827 	SCX_REENQ_TSR_NOT_FIRST	= 1LLU << 33,
1828 
1829 	__SCX_REENQ_TSR_MASK	= 0xfLLU << 32,
1830 };
1831 
1832 enum scx_pick_idle_cpu_flags {
1833 	SCX_PICK_IDLE_CORE	= 1LLU << 0,	/* pick a CPU whose SMT siblings are also idle */
1834 	SCX_PICK_IDLE_IN_NODE	= 1LLU << 1,	/* pick a CPU in the same target NUMA node */
1835 };
1836 
1837 enum scx_kick_flags {
1838 	/*
1839 	 * Kick the target CPU if idle. Guarantees that the target CPU goes
1840 	 * through at least one full scheduling cycle before going idle. If the
1841 	 * target CPU can be determined to be currently not idle and going to go
1842 	 * through a scheduling cycle before going idle, noop.
1843 	 */
1844 	SCX_KICK_IDLE		= 1LLU << 0,
1845 
1846 	/*
1847 	 * Preempt the current task and execute the dispatch path. If the
1848 	 * current task of the target CPU is an SCX task, its ->scx.slice is
1849 	 * cleared to zero before the scheduling path is invoked so that the
1850 	 * task expires and the dispatch path is invoked.
1851 	 */
1852 	SCX_KICK_PREEMPT	= 1LLU << 1,
1853 
1854 	/*
1855 	 * The scx_bpf_kick_cpu() call will return after the current SCX task of
1856 	 * the target CPU switches out. This can be used to implement e.g. core
1857 	 * scheduling. This has no effect if the current task on the target CPU
1858 	 * is not on SCX.
1859 	 */
1860 	SCX_KICK_WAIT		= 1LLU << 2,
1861 };
1862 
1863 enum scx_tg_flags {
1864 	SCX_TG_ONLINE		= 1U << 0,
1865 	SCX_TG_INITED		= 1U << 1,
1866 	SCX_TG_SUB_INIT		= 1U << 2,	/* see scx_cgroup_claim_subtree() */
1867 };
1868 
1869 enum scx_enable_state {
1870 	SCX_ENABLING,
1871 	SCX_ENABLED,
1872 	SCX_DISABLING,
1873 	SCX_DISABLED,
1874 };
1875 
1876 static const char *scx_enable_state_str[] = {
1877 	[SCX_ENABLING]		= "enabling",
1878 	[SCX_ENABLED]		= "enabled",
1879 	[SCX_DISABLING]		= "disabling",
1880 	[SCX_DISABLED]		= "disabled",
1881 };
1882 
1883 /*
1884  * Task Ownership State Machine (sched_ext_entity->ops_state)
1885  *
1886  * The sched_ext core uses this state machine to track task ownership
1887  * between the SCX core and the BPF scheduler. This allows the BPF
1888  * scheduler to dispatch tasks without strict ordering requirements, while
1889  * the SCX core safely rejects invalid dispatches.
1890  *
1891  * State Transitions
1892  *
1893  *       .------------> NONE (owned by SCX core)
1894  *       |               |           ^
1895  *       |       enqueue |           | direct dispatch
1896  *       |               v           |
1897  *       |           QUEUEING -------'
1898  *       |               |
1899  *       |       enqueue |
1900  *       |     completes |
1901  *       |               v
1902  *       |            QUEUED (owned by BPF scheduler)
1903  *       |               |
1904  *       |      dispatch |
1905  *       |               |
1906  *       |               v
1907  *       |          DISPATCHING
1908  *       |               |
1909  *       |      dispatch |
1910  *       |     completes |
1911  *       `---------------'
1912  *
1913  * State Descriptions
1914  *
1915  * - %SCX_OPSS_NONE:
1916  *     Task is owned by the SCX core. It's either on a run queue, running,
1917  *     or being manipulated by the core scheduler. The BPF scheduler has no
1918  *     claim on this task.
1919  *
1920  * - %SCX_OPSS_QUEUEING:
1921  *     Transitional state while transferring a task from the SCX core to
1922  *     the BPF scheduler. The task's rq lock is held during this state.
1923  *     Since QUEUEING is both entered and exited under the rq lock, dequeue
1924  *     can never observe this state (it would be a BUG). When finishing a
1925  *     dispatch, if the task is still in %SCX_OPSS_QUEUEING the completion
1926  *     path busy-waits for it to leave this state (via wait_ops_state())
1927  *     before retrying.
1928  *
1929  * - %SCX_OPSS_QUEUED:
1930  *     Task is owned by the BPF scheduler. It's on a DSQ (dispatch queue)
1931  *     and the BPF scheduler is responsible for dispatching it. A QSEQ
1932  *     (queue sequence number) is embedded in this state to detect
1933  *     dispatch/dequeue races: if a task is dequeued and re-enqueued, the
1934  *     QSEQ changes and any in-flight dispatch operations targeting the old
1935  *     QSEQ are safely ignored.
1936  *
1937  * - %SCX_OPSS_DISPATCHING:
1938  *     Transitional state while transferring a task from the BPF scheduler
1939  *     back to the SCX core. This state indicates the BPF scheduler has
1940  *     selected the task for execution. When dequeue needs to take the task
1941  *     off a DSQ and it is still in %SCX_OPSS_DISPATCHING, the dequeue path
1942  *     busy-waits for it to leave this state (via wait_ops_state()) before
1943  *     proceeding. Exits to %SCX_OPSS_NONE when dispatch completes.
1944  *
1945  * Memory Ordering
1946  *
1947  * Transitions out of %SCX_OPSS_QUEUEING and %SCX_OPSS_DISPATCHING into
1948  * %SCX_OPSS_NONE or %SCX_OPSS_QUEUED must use atomic_long_set_release()
1949  * and waiters must use atomic_long_read_acquire(). This ensures proper
1950  * synchronization between concurrent operations.
1951  *
1952  * Cross-CPU Task Migration
1953  *
1954  * When moving a task in the %SCX_OPSS_DISPATCHING state, we can't simply
1955  * grab the target CPU's rq lock because a concurrent dequeue might be
1956  * waiting on %SCX_OPSS_DISPATCHING while holding the source rq lock
1957  * (deadlock).
1958  *
1959  * The sched_ext core uses a "lock dancing" protocol coordinated by
1960  * p->scx.holding_cpu. When moving a task to a different rq:
1961  *
1962  *   1. Set p->scx.holding_cpu to the current CPU
1963  *   2. Set task state to %SCX_OPSS_NONE; dequeue waits while DISPATCHING
1964  *      is set, so clearing DISPATCHING first prevents the circular wait
1965  *      (safe to lock the rq we need)
1966  *   3. Unlock the current CPU's rq
1967  *   4. Lock src_rq (where the task currently lives)
1968  *   5. Verify p->scx.holding_cpu == current CPU, if not, dequeue won the
1969  *      race (dequeue clears holding_cpu to -1 when it takes the task), in
1970  *      this case migration is aborted
1971  *   6. If src_rq == dst_rq: clear holding_cpu and enqueue directly
1972  *      into dst_rq's local DSQ (no lock swap needed)
1973  *   7. Otherwise, verify under src_rq lock that the task can be moved to dst_rq
1974  *      (CPU affinity, migration_disabled, etc.). If not, clear holding_cpu,
1975  *      leave the task on src_rq, and enqueue it on the fallback DSQ.
1976  *   8. Otherwise (i.e. if the task can be moved to dst_rq), call
1977  *      move_remote_task_to_local_dsq(), which releases src_rq, locks dst_rq,
1978  *      and performs the deactivate/activate migration cycle
1979  *      (dst_rq is held on return)
1980  *   9. Unlock dst_rq and re-lock the current CPU's rq to restore
1981  *      the lock state expected by the caller
1982  *
1983  * If any verification fails, abort the migration.
1984  *
1985  * This state tracking allows the BPF scheduler to try to dispatch any task
1986  * at any time regardless of its state. The SCX core can safely
1987  * reject/ignore invalid dispatches, simplifying the BPF scheduler
1988  * implementation.
1989  */
1990 enum scx_ops_state {
1991 	SCX_OPSS_NONE,		/* owned by the SCX core */
1992 	SCX_OPSS_QUEUEING,	/* in transit to the BPF scheduler */
1993 	SCX_OPSS_QUEUED,	/* owned by the BPF scheduler */
1994 	SCX_OPSS_DISPATCHING,	/* in transit back to the SCX core */
1995 
1996 	/*
1997 	 * QSEQ brands each QUEUED instance so that, when dispatch races
1998 	 * dequeue/requeue, the dispatcher can tell whether it still has a claim
1999 	 * on the task being dispatched.
2000 	 *
2001 	 * As some 32bit archs can't do 64bit store_release/load_acquire,
2002 	 * p->scx.ops_state is atomic_long_t which leaves 30 bits for QSEQ on
2003 	 * 32bit machines. The dispatch race window QSEQ protects is very narrow
2004 	 * and runs with IRQ disabled. 30 bits should be sufficient.
2005 	 */
2006 	SCX_OPSS_QSEQ_SHIFT	= 2,
2007 };
2008 
2009 /* Use macros to ensure that the type is unsigned long for the masks */
2010 #define SCX_OPSS_STATE_MASK	((1LU << SCX_OPSS_QSEQ_SHIFT) - 1)
2011 #define SCX_OPSS_QSEQ_MASK	(~SCX_OPSS_STATE_MASK)
2012 
2013 /*
2014  * SCX task iterator.
2015  */
2016 struct scx_task_iter {
2017 	struct sched_ext_entity		cursor;
2018 	struct task_struct		*locked_task;
2019 	struct rq			*rq;
2020 	struct rq_flags			rf;
2021 	u32				cnt;
2022 	bool				list_locked;
2023 #ifdef CONFIG_EXT_SUB_SCHED
2024 	struct cgroup			*cgrp;
2025 	struct cgroup_subsys_state	*css_pos;
2026 	struct css_task_iter		css_iter;
2027 #endif
2028 };
2029 
2030 /*
2031  * scx_enable() is offloaded to a dedicated system-wide RT kthread to avoid
2032  * starvation. During the READY -> ENABLED task switching loop, the calling
2033  * thread's sched_class gets switched from fair to ext. As fair has higher
2034  * priority than ext, the calling thread can be indefinitely starved under
2035  * fair-class saturation, leading to a system hang.
2036  */
2037 struct scx_enable_cmd {
2038 	struct kthread_work	work;
2039 	union {
2040 		struct sched_ext_ops		*ops;
2041 		struct sched_ext_ops_cid	*ops_cid;
2042 	};
2043 	bool			is_cid_type;
2044 	struct bpf_map		*arena_map;	/* arena ref to transfer to sch */
2045 	int			ret;
2046 };
2047 
2048 /* string formatting from BPF */
2049 struct scx_bstr_buf {
2050 	u64			data[MAX_BPRINTF_VARARGS];
2051 	char			line[SCX_EXIT_MSG_LEN];
2052 };
2053 
2054 /* Internal helper for DEFINE_SCX_COMPAT_MARKER(). */
2055 #define DECLARE_SCX_COMPAT_MARKER(func)						\
2056 	extern void scx_compat_marker_##func(void)
2057 
2058 /**
2059  * DEFINE_SCX_COMPAT_MARKER() - define a userspace capability marker
2060  * @func: marker suffix; the defined symbol is scx_compat_marker_@func
2061  *
2062  * Emit an empty, callerless function that is retained in the kernel's BTF.
2063  * Its presence is part of the kernel<->userspace contract: userspace probes
2064  * scx_compat_marker_@func (e.g. via BTF) to detect that this kernel supports
2065  * the corresponding feature.
2066  *
2067  * The leading declaration suppresses the missing-prototype warning; the
2068  * trailing declaration consumes the semicolon at the use site.
2069  */
2070 #define DEFINE_SCX_COMPAT_MARKER(func)						\
2071 	DECLARE_SCX_COMPAT_MARKER(func);					\
2072 	__used __retain void scx_compat_marker_##func(void) {}			\
2073 	DECLARE_SCX_COMPAT_MARKER(func)
2074 
2075 extern struct scx_sched __rcu *scx_root;
2076 DECLARE_PER_CPU(struct rq *, scx_locked_rq_state);
2077 
2078 /*
2079  * True when the currently loaded scheduler hierarchy is cid-form. All scheds
2080  * in a hierarchy share one form, so this single key tells callsites which
2081  * view to use without per-sch dereferences. Use scx_is_cid_type() to test.
2082  */
2083 DECLARE_STATIC_KEY_FALSE(__scx_is_cid_type);
2084 
2085 int scx_kfunc_context_filter(const struct bpf_prog *prog, u32 kfunc_id);
2086 
2087 bool scx_cpu_valid(struct scx_sched *sch, s32 cpu, const char *where);
2088 
2089 __printf(5, 0) bool scx_vexit(struct scx_sched *sch, enum scx_exit_kind kind,
2090 			      s64 exit_code, s32 exit_cpu, const char *fmt,
2091 			      va_list args);
2092 __printf(5, 6) bool __scx_exit(struct scx_sched *sch, enum scx_exit_kind kind,
2093 			       s64 exit_code, s32 exit_cpu, const char *fmt, ...);
2094 
2095 u32 scx_get_task_state(const struct task_struct *p);
2096 void scx_set_task_state(struct task_struct *p, u32 state);
2097 void scx_task_iter_start(struct scx_task_iter *iter, struct cgroup *cgrp);
2098 void scx_task_iter_unlock(struct scx_task_iter *iter);
2099 void scx_task_iter_stop(struct scx_task_iter *iter);
2100 struct task_struct *scx_task_iter_next_locked(struct scx_task_iter *iter);
2101 bool scx_set_task_slice(struct task_struct *p, u64 slice);
2102 void scx_task_slice_ended(struct rq *rq, struct task_struct *p);
2103 void scx_task_unlink_from_dsq(struct task_struct *p, struct scx_dispatch_q *dsq);
2104 void scx_dispatch_dequeue(struct rq *rq, struct task_struct *p);
2105 void scx_do_enqueue_task(struct rq *rq, struct task_struct *p, u64 enq_flags,
2106 			 int sticky_cpu);
2107 void scx_move_local_task_to_local_dsq(struct scx_sched *sch, struct task_struct *p,
2108 				      u64 enq_flags, struct rq *dst_rq);
2109 bool scx_consume_dispatch_q(struct scx_sched *sch, struct rq *rq,
2110 			    struct scx_dispatch_q *dsq, u64 enq_flags);
2111 bool scx_consume_global_dsq(struct scx_sched *sch, struct rq *rq);
2112 bool scx_rq_online(struct rq *rq);
2113 void scx_flush_dispatch_buf(struct scx_sched *sch, struct rq *rq);
2114 s32 scx_init_dsq(struct scx_dispatch_q *dsq, u64 dsq_id, struct scx_sched *sch);
2115 __printf(2, 3) void scx_dump_line(struct seq_buf *s, const char *fmt, ...);
2116 void scx_kick_cpu(struct scx_sched *sch, s32 cpu, u64 flags);
2117 u64 __scx_bpf_now(struct rq *rq);
2118 void schedule_dsq_reenq(struct scx_sched *sch, struct scx_dispatch_q *dsq,
2119 			u64 reenq_flags, struct rq *locked_rq);
2120 void scx_reenq_wait_dispatching(struct task_struct *p);
2121 int __scx_init_task(struct scx_sched *sch, struct task_struct *p,
2122 		    struct cgroup *cgrp, bool fork);
2123 void scx_enable_task(struct scx_sched *sch, struct task_struct *p);
2124 void __scx_disable_and_exit_task(struct scx_sched *sch, struct task_struct *p);
2125 void scx_sub_init_cancel_task(struct scx_sched *sch, struct task_struct *p);
2126 void scx_disable_and_exit_task(struct scx_sched *sch, struct task_struct *p);
2127 #if defined(CONFIG_EXT_GROUP_SCHED) || defined(CONFIG_EXT_SUB_SCHED)
2128 void scx_cgroup_lock(void);
2129 void scx_cgroup_unlock(void);
2130 #endif
2131 s32 scx_alloc_kern_arena_objs(struct scx_sched *sch);
2132 void scx_disable_bypass_dsp(struct scx_sched *sch);
2133 void scx_bypass(struct scx_sched *sch, bool bypass);
2134 s32 scx_link_sched(struct scx_sched *sch);
2135 void scx_unlink_sched(struct scx_sched *sch);
2136 void scx_disable_dump(struct scx_sched *sch);
2137 void scx_log_sched_disable(struct scx_sched *sch);
2138 void scx_flush_disable_work(struct scx_sched *sch);
2139 struct scx_sched *scx_alloc_and_add_sched(struct scx_enable_cmd *cmd,
2140 					  struct cgroup *cgrp,
2141 					  struct scx_sched *parent);
2142 int scx_validate_ops(struct scx_sched *sch, const struct sched_ext_ops *ops);
2143 int scx_sched_sysfs_add(struct scx_sched *sch);
2144 bool scx_is_descendant(struct scx_sched *sch, struct scx_sched *ancestor);
2145 __printf(5, 0) bool scx_exit_bstr(struct scx_sched *sch, enum scx_exit_kind kind,
2146 				  s64 exit_code, struct scx_sched *fmt_blame,
2147 				  char *fmt, unsigned long long *data, u32 data__sz);
2148 
2149 extern raw_spinlock_t scx_sched_lock;
2150 extern struct mutex scx_enable_mutex;
2151 extern struct percpu_rw_semaphore scx_fork_rwsem;
2152 extern bool scx_cgroup_enabled;
2153 extern struct list_head scx_sched_all;
2154 #ifdef CONFIG_EXT_SUB_SCHED
2155 extern const struct rhashtable_params scx_sched_hash_params;
2156 extern struct rhashtable scx_sched_hash;
2157 extern struct scx_sched *scx_enabling_sub_sched;
2158 #endif
2159 
2160 #define scx_exit(sch, kind, exit_code, fmt, args...)				\
2161 	__scx_exit(sch, kind, exit_code, raw_smp_processor_id(), fmt, ##args)
2162 #define scx_error(sch, fmt, args...)						\
2163 	scx_exit((sch), SCX_EXIT_ERROR, 0, fmt, ##args)
2164 
2165 /**
2166  * scx_root_protected_live - Root sched for paths that only run while live
2167  *
2168  * scx_root is published before the scheduler goes live and cleared only after
2169  * it is fully drained, so a path that only executes while the scheduler is live
2170  * can never race an update. Return the root sched with a plain load, never
2171  * %NULL.
2172  */
2173 static inline struct scx_sched *scx_root_protected_live(void)
2174 {
2175 	return rcu_dereference_protected(scx_root, true);
2176 }
2177 
2178 /**
2179  * scx_root_protected - Root sched for contexts that exclude its updates
2180  *
2181  * Both scx_root updates run under the locks checked below, so holding one
2182  * excludes them. Return the root sched with a plain load, %NULL if no scheduler
2183  * is loaded.
2184  */
2185 static inline struct scx_sched *scx_root_protected(void)
2186 {
2187 	return rcu_dereference_protected(scx_root,
2188 					 lockdep_is_cpus_held() ||
2189 					 lockdep_is_held(&scx_enable_mutex));
2190 }
2191 
2192 static inline struct scx_dispatch_q *scx_bypass_dsq(struct scx_sched *sch, s32 cpu)
2193 {
2194 	return &per_cpu_ptr(sch->pcpu, cpu)->bypass_dsq;
2195 }
2196 
2197 /**
2198  * scx_bypass_dsp_enabled - Check if bypass dispatch path is enabled
2199  * @sch: scheduler to check
2200  *
2201  * When a descendant scheduler enters bypass mode, bypassed tasks are scheduled
2202  * by the nearest non-bypassing ancestor, or the root scheduler if all ancestors
2203  * are bypassing. In the former case, the ancestor is not itself bypassing but
2204  * its bypass DSQs will be populated with bypassed tasks from descendants. Thus,
2205  * the ancestor's bypass dispatch path must be active even though its own
2206  * bypass_depth remains zero.
2207  *
2208  * This function checks bypass_dsp_enable_depth which is managed separately from
2209  * bypass_depth to enable this decoupling. See enable_bypass_dsp() and
2210  * scx_disable_bypass_dsp().
2211  */
2212 static inline bool scx_bypass_dsp_enabled(struct scx_sched *sch)
2213 {
2214 	return unlikely(atomic_read(&sch->bypass_dsp_enable_depth));
2215 }
2216 
2217 /**
2218  * scx_ops_sanitize_err - Sanitize a -errno value
2219  * @sch: scx_sched to error out on error
2220  * @ops_name: operation to blame on failure
2221  * @err: -errno value to sanitize
2222  *
2223  * Verify @err is a valid -errno. If not, trigger scx_error() and return
2224  * -%EPROTO. This is necessary because returning a rogue -errno up the chain can
2225  * cause misbehaviors. For an example, a large negative return from
2226  * ops.init_task() triggers an oops when passed up the call chain because the
2227  * value fails IS_ERR() test after being encoded with ERR_PTR() and then is
2228  * handled as a pointer.
2229  */
2230 static inline int scx_ops_sanitize_err(struct scx_sched *sch, const char *ops_name, s32 err)
2231 {
2232 	if (err < 0 && err >= -MAX_ERRNO)
2233 		return err;
2234 
2235 	scx_error(sch, "ops.%s() returned an invalid errno %d", ops_name, err);
2236 	return -EPROTO;
2237 }
2238 
2239 static inline void scx_schedule_reenq_local(struct rq *rq, u64 reenq_flags)
2240 {
2241 	struct scx_sched *root = rcu_dereference_sched(scx_root);
2242 
2243 	if (WARN_ON_ONCE(!root))
2244 		return;
2245 
2246 	schedule_dsq_reenq(root, &rq->scx.local_dsq, reenq_flags, rq);
2247 }
2248 
2249 /*
2250  * Return the rq currently locked from an scx callback, or NULL if no rq is
2251  * locked.
2252  */
2253 static inline struct rq *scx_locked_rq(void)
2254 {
2255 	return __this_cpu_read(scx_locked_rq_state);
2256 }
2257 
2258 static inline void update_locked_rq(struct rq *rq)
2259 {
2260 	/*
2261 	 * Check whether @rq is actually locked. This can help expose bugs
2262 	 * or incorrect assumptions about the context in which a kfunc or
2263 	 * callback is executed.
2264 	 */
2265 	if (rq)
2266 		lockdep_assert_rq_held(rq);
2267 	__this_cpu_write(scx_locked_rq_state, rq);
2268 }
2269 
2270 #define SCX_HAS_OP(sch, op)	test_bit(SCX_OP_IDX(op), (sch)->has_op)
2271 
2272 /*
2273  * SCX ops can recurse via scx_bpf_sub_dispatch() - the inner call must not
2274  * clobber the outer's scx_locked_rq_state. Save it on entry, restore on exit.
2275  *
2276  * @ops is the ops table to dispatch through: ops for the cpu form, ops_cid
2277  * for the cid form.
2278  */
2279 #define __SCX_CALL_OP(sch, ops, op, locked_rq, args...)				\
2280 do {										\
2281 	struct rq *__prev_locked_rq;						\
2282 										\
2283 	if (locked_rq) {							\
2284 		__prev_locked_rq = scx_locked_rq();				\
2285 		update_locked_rq(locked_rq);					\
2286 	}									\
2287 	(sch)->ops.op(args);							\
2288 	if (locked_rq)								\
2289 		update_locked_rq(__prev_locked_rq);				\
2290 } while (0)
2291 
2292 #define SCX_CALL_OP(sch, op, locked_rq, args...)				\
2293 	__SCX_CALL_OP(sch, ops, op, locked_rq, ##args)
2294 
2295 #define SCX_CALL_OP_RET(sch, op, locked_rq, args...)				\
2296 ({										\
2297 	struct rq *__prev_locked_rq;						\
2298 	__typeof__((sch)->ops.op(args)) __ret;					\
2299 										\
2300 	if (locked_rq) {							\
2301 		__prev_locked_rq = scx_locked_rq();				\
2302 		update_locked_rq(locked_rq);					\
2303 	}									\
2304 	__ret = (sch)->ops.op(args);						\
2305 	if (locked_rq)								\
2306 		update_locked_rq(__prev_locked_rq);				\
2307 	__ret;									\
2308 })
2309 
2310 /*
2311  * SCX_CALL_OP_TASK*() invokes an SCX op that takes one or two task arguments
2312  * and records them in current->scx.kf_tasks[] for the duration of the call. A
2313  * kfunc invoked from inside such an op can then use
2314  * scx_kf_arg_task_ok() to verify that its task argument is one of
2315  * those subject tasks.
2316  *
2317  * Every SCX_CALL_OP_TASK*() call site invokes its op with @p's rq lock held -
2318  * either via the @locked_rq argument here, or (for ops.select_cpu()) via @p's
2319  * pi_lock held by try_to_wake_up() with rq tracking via scx_rq.in_select_cpu.
2320  * So if kf_tasks[] is set, @p's scheduler-protected fields are stable.
2321  *
2322  * kf_tasks[] can not stack, so task-based SCX ops must not nest. The
2323  * WARN_ON_ONCE() in each macro catches a re-entry of any of the three variants
2324  * while a previous one is still in progress.
2325  */
2326 #define __SCX_CALL_OP_TASK(sch, ops, op, locked_rq, task, args...)		\
2327 do {										\
2328 	WARN_ON_ONCE(current->scx.kf_tasks[0]);					\
2329 	current->scx.kf_tasks[0] = task;					\
2330 	__SCX_CALL_OP((sch), ops, op, locked_rq, task, ##args);			\
2331 	current->scx.kf_tasks[0] = NULL;					\
2332 } while (0)
2333 
2334 /*
2335  * A per-task op runs on @task's owner - WARN if @sch isn't it. Sites that must
2336  * target a different scheduler call __SCX_CALL_OP_TASK() directly.
2337  */
2338 #define SCX_CALL_OP_TASK(sch, op, locked_rq, task, args...)			\
2339 do {										\
2340 	WARN_ON_ONCE(scx_has_subs() && (sch) != scx_task_sched_rcu(task));	\
2341 	__SCX_CALL_OP_TASK((sch), ops, op, locked_rq, task, ##args);		\
2342 } while (0)
2343 
2344 /*
2345  * Dispatch a task op through the cid-form ops_cid table, for the ops whose
2346  * cid-form signature differs from the cpu-form slot: set_cmask() takes an arena
2347  * cmask instead of a cpumask and enable() takes scx_enable_args.
2348  */
2349 #define SCX_CALL_CID_OP_TASK(sch, op, locked_rq, task, args...)			\
2350 	__SCX_CALL_OP_TASK(sch, ops_cid, op, locked_rq, task, ##args)
2351 
2352 #define SCX_CALL_OP_TASK_RET(sch, op, locked_rq, task, args...)			\
2353 ({										\
2354 	__typeof__((sch)->ops.op(task, ##args)) __ret;				\
2355 	WARN_ON_ONCE(scx_has_subs() && (sch) != scx_task_sched_rcu(task));	\
2356 	WARN_ON_ONCE(current->scx.kf_tasks[0]);					\
2357 	current->scx.kf_tasks[0] = task;					\
2358 	__ret = SCX_CALL_OP_RET((sch), op, locked_rq, task, ##args);		\
2359 	current->scx.kf_tasks[0] = NULL;					\
2360 	__ret;									\
2361 })
2362 
2363 #define SCX_CALL_OP_2TASKS_RET(sch, op, locked_rq, task0, task1, args...)	\
2364 ({										\
2365 	__typeof__((sch)->ops.op(task0, task1, ##args)) __ret;			\
2366 	WARN_ON_ONCE(current->scx.kf_tasks[0]);					\
2367 	current->scx.kf_tasks[0] = task0;					\
2368 	current->scx.kf_tasks[1] = task1;					\
2369 	__ret = SCX_CALL_OP_RET((sch), op, locked_rq, task0, task1, ##args);	\
2370 	current->scx.kf_tasks[0] = NULL;					\
2371 	current->scx.kf_tasks[1] = NULL;					\
2372 	__ret;									\
2373 })
2374 
2375 /* see SCX_CALL_OP_TASK() */
2376 static __always_inline bool scx_kf_arg_task_ok(struct scx_sched *sch,
2377 					       struct task_struct *p)
2378 {
2379 	if (unlikely((p != current->scx.kf_tasks[0] &&
2380 		      p != current->scx.kf_tasks[1]))) {
2381 		scx_error(sch, "called on a task not being operated on");
2382 		return false;
2383 	}
2384 
2385 	return true;
2386 }
2387 
2388 static inline bool scx_bypassing(struct scx_sched *sch, s32 cpu)
2389 {
2390 	return unlikely(per_cpu_ptr(sch->pcpu, cpu)->flags &
2391 			SCX_SCHED_PCPU_BYPASSING);
2392 }
2393 
2394 #ifdef CONFIG_EXT_SUB_SCHED
2395 DECLARE_STATIC_KEY_FALSE(__scx_has_subs);
2396 
2397 /**
2398  * scx_has_subs - Whether any sub-scheduler exists
2399  *
2400  * Gates the sub-sched portions of hot paths so that a root-only system doesn't
2401  * pay for them. See scx_sub_enable_workfn() and scx_sched_free_rcu_work().
2402  */
2403 static inline bool scx_has_subs(void)
2404 {
2405 	return static_branch_unlikely(&__scx_has_subs);
2406 }
2407 
2408 /**
2409  * scx_task_sched - Find scx_sched scheduling a task
2410  * @p: task of interest
2411  *
2412  * Return @p's scheduler instance. Must be called with @p's pi_lock or rq lock
2413  * held.
2414  */
2415 static inline struct scx_sched *scx_task_sched(const struct task_struct *p)
2416 {
2417 	return rcu_dereference_protected(p->scx.sched,
2418 					 lockdep_is_held(&p->pi_lock) ||
2419 					 lockdep_is_held(__rq_lockp(task_rq(p))));
2420 }
2421 
2422 /**
2423  * scx_task_sched_rcu - Find scx_sched scheduling a task
2424  * @p: task of interest
2425  *
2426  * Return @p's scheduler instance. The returned scx_sched is RCU protected.
2427  */
2428 static inline struct scx_sched *scx_task_sched_rcu(const struct task_struct *p)
2429 {
2430 	return rcu_dereference_all(p->scx.sched);
2431 }
2432 
2433 /**
2434  * scx_task_on_sched - Is a task on the specified sched?
2435  * @sch: sched to test against
2436  * @p: task of interest
2437  *
2438  * Returns %true if @p is on @sch, %false otherwise.
2439  */
2440 static inline bool scx_task_on_sched(struct scx_sched *sch,
2441 				     const struct task_struct *p)
2442 {
2443 	return rcu_access_pointer(p->scx.sched) == sch;
2444 }
2445 
2446 /**
2447  * scx_prog_sched - Find scx_sched associated with a BPF prog
2448  * @aux: aux passed in from BPF to a kfunc
2449  *
2450  * To be called from kfuncs. Return the scheduler instance associated with the
2451  * BPF program given the implicit kfunc argument aux. The returned scx_sched is
2452  * RCU protected.
2453  */
2454 static inline struct scx_sched *scx_prog_sched(const struct bpf_prog_aux *aux)
2455 {
2456 	struct sched_ext_ops *ops;
2457 	struct scx_sched *sch, *root;
2458 
2459 	ops = bpf_prog_get_assoc_struct_ops(aux);
2460 	if (likely(ops)) {
2461 		sch = rcu_dereference_all(ops->priv);
2462 		if (sch && unlikely(READ_ONCE(sch->dead)))
2463 			return NULL;
2464 		return sch;
2465 	}
2466 
2467 	root = rcu_dereference_all(scx_root);
2468 	if (root) {
2469 		if (unlikely(READ_ONCE(root->dead)))
2470 			return NULL;
2471 		/*
2472 		 * COMPAT-v6.19: Schedulers built before sub-sched support was
2473 		 * introduced may have unassociated non-struct_ops programs.
2474 		 */
2475 		if (!root->ops.sub_attach)
2476 			return root;
2477 
2478 		if (!root->warned_unassoc_progs) {
2479 			printk_deferred(KERN_WARNING "sched_ext: Unassociated program %s (id %d)\n",
2480 					aux->name, aux->id);
2481 			root->warned_unassoc_progs = true;
2482 		}
2483 	}
2484 
2485 	return NULL;
2486 }
2487 
2488 /**
2489  * scx_parent - Find the parent sched
2490  * @sch: sched to find the parent of
2491  *
2492  * Returns the parent scheduler or %NULL if @sch is root.
2493  */
2494 static inline struct scx_sched *scx_parent(struct scx_sched *sch)
2495 {
2496 	if (sch->level)
2497 		return sch->ancestors[sch->level - 1];
2498 	else
2499 		return NULL;
2500 }
2501 
2502 #else	/* CONFIG_EXT_SUB_SCHED */
2503 static inline bool scx_has_subs(void) { return false; }
2504 
2505 static inline struct scx_sched *scx_task_sched(const struct task_struct *p)
2506 {
2507 	return rcu_dereference_protected(scx_root,
2508 					 lockdep_is_held(&p->pi_lock) ||
2509 					 lockdep_is_held(__rq_lockp(task_rq(p))));
2510 }
2511 
2512 static inline struct scx_sched *scx_task_sched_rcu(const struct task_struct *p)
2513 {
2514 	return rcu_dereference_all(scx_root);
2515 }
2516 
2517 static inline bool scx_task_on_sched(struct scx_sched *sch,
2518 				     const struct task_struct *p)
2519 {
2520 	return true;
2521 }
2522 
2523 static inline struct scx_sched *scx_prog_sched(const struct bpf_prog_aux *aux)
2524 {
2525 	struct scx_sched *root = rcu_dereference_all(scx_root);
2526 
2527 	if (root && unlikely(READ_ONCE(root->dead)))
2528 		return NULL;
2529 	return root;
2530 }
2531 
2532 static inline struct scx_sched *scx_parent(struct scx_sched *sch) { return NULL; }
2533 
2534 #endif	/* CONFIG_EXT_SUB_SCHED */
2535 
2536 #endif /* _KERNEL_SCHED_EXT_INTERNAL_H */
2537