xref: /linux/kernel/cgroup/cpuset.c (revision 345f40166694e60db6d5cf02233814bb27ac5dec)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  *  kernel/cpuset.c
4  *
5  *  Processor and Memory placement constraints for sets of tasks.
6  *
7  *  Copyright (C) 2003 BULL SA.
8  *  Copyright (C) 2004-2007 Silicon Graphics, Inc.
9  *  Copyright (C) 2006 Google, Inc
10  *
11  *  Portions derived from Patrick Mochel's sysfs code.
12  *  sysfs is Copyright (c) 2001-3 Patrick Mochel
13  *
14  *  2003-10-10 Written by Simon Derr.
15  *  2003-10-22 Updates by Stephen Hemminger.
16  *  2004 May-July Rework by Paul Jackson.
17  *  2006 Rework by Paul Menage to use generic cgroups
18  *  2008 Rework of the scheduler domains and CPU hotplug handling
19  *       by Max Krasnyansky
20  */
21 #include "cpuset-internal.h"
22 
23 #include <linux/init.h>
24 #include <linux/interrupt.h>
25 #include <linux/kernel.h>
26 #include <linux/mempolicy.h>
27 #include <linux/mm.h>
28 #include <linux/memory.h>
29 #include <linux/rcupdate.h>
30 #include <linux/sched.h>
31 #include <linux/sched/deadline.h>
32 #include <linux/sched/mm.h>
33 #include <linux/sched/task.h>
34 #include <linux/security.h>
35 #include <linux/oom.h>
36 #include <linux/sched/isolation.h>
37 #include <linux/wait.h>
38 #include <linux/workqueue.h>
39 #include <linux/task_work.h>
40 
41 DEFINE_STATIC_KEY_FALSE(cpusets_pre_enable_key);
42 DEFINE_STATIC_KEY_FALSE(cpusets_enabled_key);
43 
44 /*
45  * There could be abnormal cpuset configurations for cpu or memory
46  * node binding, add this key to provide a quick low-cost judgment
47  * of the situation.
48  */
49 DEFINE_STATIC_KEY_FALSE(cpusets_insane_config_key);
50 
51 static const char * const perr_strings[] = {
52 	[PERR_INVCPUS]   = "Invalid cpu list in cpuset.cpus.exclusive",
53 	[PERR_INVPARENT] = "Parent is an invalid partition root",
54 	[PERR_NOTPART]   = "Parent is not a partition root",
55 	[PERR_NOTEXCL]   = "Cpu list in cpuset.cpus not exclusive",
56 	[PERR_NOCPUS]    = "Parent unable to distribute cpu downstream",
57 	[PERR_HOTPLUG]   = "No cpu available due to hotplug",
58 	[PERR_CPUSEMPTY] = "cpuset.cpus and cpuset.cpus.exclusive are empty",
59 	[PERR_HKEEPING]  = "partition config conflicts with housekeeping setup",
60 	[PERR_ACCESS]    = "Enable partition not permitted",
61 	[PERR_REMOTE]    = "Have remote partition underneath",
62 };
63 
64 /*
65  * CPUSET Locking Convention
66  * -------------------------
67  *
68  * Below are the four global/local locks guarding cpuset structures in lock
69  * acquisition order:
70  *  - cpuset_top_mutex
71  *  - cpu_hotplug_lock (cpus_read_lock/cpus_write_lock)
72  *  - cpuset_mutex
73  *  - callback_lock (raw spinlock)
74  *
75  * As cpuset will now indirectly flush a number of different workqueues in
76  * housekeeping_update() to update housekeeping cpumasks when the set of
77  * isolated CPUs is going to be changed, it may be vulnerable to deadlock
78  * if we hold cpus_read_lock while calling into housekeeping_update().
79  *
80  * The first cpuset_top_mutex will be held except when calling into
81  * cpuset_handle_hotplug() from the CPU hotplug code where cpus_write_lock
82  * and cpuset_mutex will be held instead. The main purpose of this mutex
83  * is to prevent regular cpuset control file write actions from interfering
84  * with the call to housekeeping_update(), though CPU hotplug operation can
85  * still happen in parallel. This mutex also provides protection for some
86  * internal variables.
87  *
88  * A task must hold all the remaining three locks to modify externally visible
89  * or used fields of cpusets, though some of the internally used cpuset fields
90  * and internal variables can be modified without holding callback_lock. If only
91  * reliable read access of the externally used fields are needed, a task can
92  * hold either cpuset_mutex or callback_lock which are exposed to other
93  * external subsystems.
94  *
95  * If a task holds cpu_hotplug_lock and cpuset_mutex, it blocks others,
96  * ensuring that it is the only task able to also acquire callback_lock and
97  * be able to modify cpusets.  It can perform various checks on the cpuset
98  * structure first, knowing nothing will change. It can also allocate memory
99  * without holding callback_lock. While it is performing these checks, various
100  * callback routines can briefly acquire callback_lock to query cpusets.  Once
101  * it is ready to make the changes, it takes callback_lock, blocking everyone
102  * else.
103  *
104  * Calls to the kernel memory allocator cannot be made while holding
105  * callback_lock which is a spinlock, as the memory allocator may sleep or
106  * call back into cpuset code and acquire callback_lock.
107  *
108  * Now, the task_struct fields mems_allowed and mempolicy may be changed
109  * by other task, we use alloc_lock in the task_struct fields to protect
110  * them.
111  *
112  * The cpuset_common_seq_show() handlers only hold callback_lock across
113  * small pieces of code, such as when reading out possibly multi-word
114  * cpumasks and nodemasks.
115  */
116 
117 static DEFINE_MUTEX(cpuset_top_mutex);
118 static DEFINE_MUTEX(cpuset_mutex);
119 
120 /*
121  * File level internal variables below follow one of the following exclusion
122  * rules.
123  *
124  * RWCS: Read/write-able by holding either cpus_write_lock (and optionally
125  *	 cpuset_mutex) or both cpus_read_lock and cpuset_mutex.
126  *
127  * CSCB: Readable by holding either cpuset_mutex or callback_lock. Writable
128  *	 by holding both cpuset_mutex and callback_lock.
129  *
130  * T:	 Read/write-able by holding the cpuset_top_mutex.
131  */
132 
133 /*
134  * For local partitions, update to subpartitions_cpus & isolated_cpus is done
135  * in update_parent_effective_cpumask(). For remote partitions, it is done in
136  * the remote_partition_*() and remote_cpus_update() helpers.
137  */
138 /*
139  * Exclusive CPUs distributed out to local or remote sub-partitions of
140  * top_cpuset
141  */
142 static cpumask_var_t	subpartitions_cpus;	/* RWCS */
143 
144 /*
145  * Exclusive CPUs in isolated partitions (shown in cpuset.cpus.isolated)
146  */
147 static cpumask_var_t	isolated_cpus;		/* CSCB */
148 
149 /*
150  * Set if housekeeping cpumasks are to be updated.
151  */
152 static bool		update_housekeeping;	/* RWCS */
153 
154 /*
155  * Copy of isolated_cpus to be passed to housekeeping_update()
156  */
157 static cpumask_var_t	isolated_hk_cpus;	/* T */
158 
159 /*
160  * A flag to force sched domain rebuild at the end of an operation.
161  * It can be set in
162  *  - update_partition_sd_lb()
163  *  - update_cpumasks_hier()
164  *  - cpuset_update_flag()
165  *  - cpuset_hotplug_update_tasks()
166  *  - cpuset_handle_hotplug()
167  *
168  * Protected by cpuset_mutex (with cpus_read_lock held) or cpus_write_lock.
169  *
170  * Note that update_relax_domain_level() in cpuset-v1.c can still call
171  * rebuild_sched_domains_locked() directly without using this flag.
172  */
173 static bool force_sd_rebuild;			/* RWCS */
174 
175 /*
176  * Partition root states:
177  *
178  *   0 - member (not a partition root)
179  *   1 - partition root
180  *   2 - partition root without load balancing (isolated)
181  *  -1 - invalid partition root
182  *  -2 - invalid isolated partition root
183  *
184  *  There are 2 types of partitions - local or remote. Local partitions are
185  *  those whose parents are partition root themselves. Setting of
186  *  cpuset.cpus.exclusive are optional in setting up local partitions.
187  *  Remote partitions are those whose parents are not partition roots. Passing
188  *  down exclusive CPUs by setting cpuset.cpus.exclusive along its ancestor
189  *  nodes are mandatory in creating a remote partition.
190  *
191  *  For simplicity, a local partition can be created under a local or remote
192  *  partition but a remote partition cannot have any partition root in its
193  *  ancestor chain except the cgroup root.
194  *
195  *  A valid partition can be formed by setting exclusive_cpus or cpus_allowed
196  *  if exclusive_cpus is not set. In the case of partition with empty
197  *  exclusive_cpus, all the conflicting exclusive CPUs specified in the
198  *  following cpumasks of sibling cpusets will be removed from its
199  *  cpus_allowed in determining its effective_xcpus.
200  *  - effective_xcpus
201  *  - exclusive_cpus
202  *
203  *  The "cpuset.cpus.exclusive" control file should be used for setting up
204  *  partition if the users want to get as many CPUs as possible.
205  */
206 #define PRS_MEMBER		0
207 #define PRS_ROOT		1
208 #define PRS_ISOLATED		2
209 #define PRS_INVALID_ROOT	-1
210 #define PRS_INVALID_ISOLATED	-2
211 
212 /*
213  * Temporary cpumasks for working with partitions that are passed among
214  * functions to avoid memory allocation in inner functions.
215  */
216 struct tmpmasks {
217 	cpumask_var_t addmask, delmask;	/* For partition root */
218 	cpumask_var_t new_cpus;		/* For update_cpumasks_hier() */
219 };
220 
221 void inc_dl_tasks_cs(struct task_struct *p)
222 {
223 	struct cpuset *cs = task_cs(p);
224 
225 	cs->nr_deadline_tasks++;
226 }
227 
228 void dec_dl_tasks_cs(struct task_struct *p)
229 {
230 	struct cpuset *cs = task_cs(p);
231 
232 	cs->nr_deadline_tasks--;
233 }
234 
235 static inline bool is_partition_valid(const struct cpuset *cs)
236 {
237 	return cs->partition_root_state > 0;
238 }
239 
240 static inline bool is_partition_invalid(const struct cpuset *cs)
241 {
242 	return cs->partition_root_state < 0;
243 }
244 
245 static inline bool cs_is_member(const struct cpuset *cs)
246 {
247 	return cs->partition_root_state == PRS_MEMBER;
248 }
249 
250 /*
251  * Callers should hold callback_lock to modify partition_root_state.
252  */
253 static inline void make_partition_invalid(struct cpuset *cs)
254 {
255 	if (cs->partition_root_state > 0)
256 		cs->partition_root_state = -cs->partition_root_state;
257 }
258 
259 /*
260  * Send notification event of whenever partition_root_state changes.
261  */
262 static inline void notify_partition_change(struct cpuset *cs, int old_prs)
263 {
264 	if (old_prs == cs->partition_root_state)
265 		return;
266 	cgroup_file_notify(&cs->partition_file);
267 
268 	/* Reset prs_err if not invalid */
269 	if (is_partition_valid(cs))
270 		WRITE_ONCE(cs->prs_err, PERR_NONE);
271 }
272 
273 /*
274  * The top_cpuset is always synchronized to cpu_active_mask and we should avoid
275  * using cpu_online_mask as much as possible. An active CPU is always an online
276  * CPU, but not vice versa. cpu_active_mask and cpu_online_mask can differ
277  * during hotplug operations. A CPU is marked active at the last stage of CPU
278  * bringup (CPUHP_AP_ACTIVE). It is also the stage where cpuset hotplug code
279  * will be called to update the sched domains so that the scheduler can move
280  * a normal task to a newly active CPU or remove tasks away from a newly
281  * inactivated CPU. The online bit is set much earlier in the CPU bringup
282  * process and cleared much later in CPU teardown.
283  *
284  * If cpu_online_mask is used while a hotunplug operation is happening in
285  * parallel, we may leave an offline CPU in cpu_allowed or some other masks.
286  */
287 struct cpuset top_cpuset = {
288 	.flags = BIT(CS_CPU_EXCLUSIVE) |
289 		 BIT(CS_MEM_EXCLUSIVE) | BIT(CS_SCHED_LOAD_BALANCE),
290 	.partition_root_state = PRS_ROOT,
291 	.dl_bw_cpu = -1,
292 };
293 
294 /**
295  * cpuset_lock - Acquire the global cpuset mutex
296  *
297  * This locks the global cpuset mutex to prevent modifications to cpuset
298  * hierarchy and configurations. This helper is not enough to make modification.
299  */
300 void cpuset_lock(void)
301 {
302 	mutex_lock(&cpuset_mutex);
303 }
304 
305 void cpuset_unlock(void)
306 {
307 	mutex_unlock(&cpuset_mutex);
308 }
309 
310 void lockdep_assert_cpuset_lock_held(void)
311 {
312 	lockdep_assert_held(&cpuset_mutex);
313 }
314 
315 /**
316  * cpuset_full_lock - Acquire full protection for cpuset modification
317  *
318  * Takes both CPU hotplug read lock (cpus_read_lock()) and cpuset mutex
319  * to safely modify cpuset data.
320  */
321 void cpuset_full_lock(void)
322 {
323 	mutex_lock(&cpuset_top_mutex);
324 	cpus_read_lock();
325 	mutex_lock(&cpuset_mutex);
326 }
327 
328 void cpuset_full_unlock(void)
329 {
330 	mutex_unlock(&cpuset_mutex);
331 	cpus_read_unlock();
332 	mutex_unlock(&cpuset_top_mutex);
333 }
334 
335 #ifdef CONFIG_LOCKDEP
336 bool lockdep_is_cpuset_held(void)
337 {
338 	return lockdep_is_held(&cpuset_mutex) ||
339 	       lockdep_is_held(&cpuset_top_mutex);
340 }
341 #endif
342 
343 static DEFINE_SPINLOCK(callback_lock);
344 
345 void cpuset_callback_lock_irq(void)
346 {
347 	spin_lock_irq(&callback_lock);
348 }
349 
350 void cpuset_callback_unlock_irq(void)
351 {
352 	spin_unlock_irq(&callback_lock);
353 }
354 
355 static struct workqueue_struct *cpuset_migrate_mm_wq;
356 
357 static DECLARE_WAIT_QUEUE_HEAD(cpuset_attach_wq);
358 
359 static inline void check_insane_mems_config(nodemask_t *nodes)
360 {
361 	if (!cpusets_insane_config() &&
362 		movable_only_nodes(nodes)) {
363 		static_branch_enable_cpuslocked(&cpusets_insane_config_key);
364 		pr_info("Unsupported (movable nodes only) cpuset configuration detected (nmask=%*pbl)!\n"
365 			"Cpuset allocations might fail even with a lot of memory available.\n",
366 			nodemask_pr_args(nodes));
367 	}
368 }
369 
370 /*
371  * decrease cs->attach_in_progress.
372  * wake_up cpuset_attach_wq if cs->attach_in_progress==0.
373  */
374 static inline void dec_attach_in_progress_locked(struct cpuset *cs)
375 {
376 	lockdep_assert_cpuset_lock_held();
377 
378 	cs->attach_in_progress--;
379 	if (!cs->attach_in_progress)
380 		wake_up(&cpuset_attach_wq);
381 }
382 
383 static inline void dec_attach_in_progress(struct cpuset *cs)
384 {
385 	mutex_lock(&cpuset_mutex);
386 	dec_attach_in_progress_locked(cs);
387 	mutex_unlock(&cpuset_mutex);
388 }
389 
390 static inline bool cpuset_v2(void)
391 {
392 	return !IS_ENABLED(CONFIG_CPUSETS_V1) ||
393 		cgroup_subsys_on_dfl(cpuset_cgrp_subsys);
394 }
395 
396 /*
397  * Cgroup v2 behavior is used on the "cpus" and "mems" control files when
398  * on default hierarchy or when the cpuset_v2_mode flag is set by mounting
399  * the v1 cpuset cgroup filesystem with the "cpuset_v2_mode" mount option.
400  * With v2 behavior, "cpus" and "mems" are always what the users have
401  * requested and won't be changed by hotplug events. Only the effective
402  * cpus or mems will be affected.
403  */
404 static inline bool is_in_v2_mode(void)
405 {
406 	return cpuset_v2() ||
407 	      (cpuset_cgrp_subsys.root->flags & CGRP_ROOT_CPUSET_V2_MODE);
408 }
409 
410 /**
411  * partition_is_populated - check if partition has tasks
412  * @cs: partition root to be checked
413  * @excluded_child: a child cpuset to be excluded in task checking
414  * Return: true if there are tasks, false otherwise
415  *
416  * @cs should be a valid partition root or going to become a partition root.
417  * @excluded_child should be non-NULL when this cpuset is going to become a
418  * partition itself.
419  *
420  * Note that a remote partition is not allowed underneath a valid local
421  * or remote partition. So if a non-partition root child is populated,
422  * the whole partition is considered populated.
423  */
424 static inline bool partition_is_populated(struct cpuset *cs,
425 					  struct cpuset *excluded_child)
426 {
427 	struct cpuset *cp;
428 	struct cgroup_subsys_state *pos_css;
429 
430 	/*
431 	 * We cannot call cs_is_populated(cs) directly, as
432 	 * nr_populated_domain_children may include populated
433 	 * csets from descendants that are partitions.
434 	 */
435 	if (cs->css.cgroup->nr_populated_csets ||
436 	    cs->attach_in_progress)
437 		return true;
438 
439 	rcu_read_lock();
440 	cpuset_for_each_descendant_pre(cp, pos_css, cs) {
441 		if (cp == cs || cp == excluded_child)
442 			continue;
443 
444 		if (is_partition_valid(cp)) {
445 			pos_css = css_rightmost_descendant(pos_css);
446 			continue;
447 		}
448 
449 		if (cpuset_is_populated(cp)) {
450 			rcu_read_unlock();
451 			return true;
452 		}
453 	}
454 	rcu_read_unlock();
455 	return false;
456 }
457 
458 /*
459  * Return in pmask the portion of a task's cpusets's cpus_allowed that
460  * are online and are capable of running the task.  If none are found,
461  * walk up the cpuset hierarchy until we find one that does have some
462  * appropriate cpus.
463  *
464  * One way or another, we guarantee to return some non-empty subset
465  * of cpu_active_mask.
466  *
467  * Call with callback_lock or cpuset_mutex held.
468  */
469 static void guarantee_active_cpus(struct task_struct *tsk,
470 				  struct cpumask *pmask)
471 {
472 	const struct cpumask *possible_mask = task_cpu_possible_mask(tsk);
473 	struct cpuset *cs;
474 
475 	if (WARN_ON(!cpumask_and(pmask, possible_mask, cpu_active_mask)))
476 		cpumask_copy(pmask, cpu_active_mask);
477 
478 	rcu_read_lock();
479 	cs = task_cs(tsk);
480 
481 	while (!cpumask_intersects(cs->effective_cpus, pmask))
482 		cs = parent_cs(cs);
483 
484 	cpumask_and(pmask, pmask, cs->effective_cpus);
485 	rcu_read_unlock();
486 }
487 
488 /*
489  * Return in *pmask the portion of a cpusets's mems_allowed that
490  * are online, with memory.  If none are online with memory, walk
491  * up the cpuset hierarchy until we find one that does have some
492  * online mems.  The top cpuset always has some mems online.
493  *
494  * One way or another, we guarantee to return some non-empty subset
495  * of node_states[N_MEMORY].
496  *
497  * Call with callback_lock or cpuset_mutex held.
498  */
499 static void guarantee_online_mems(struct cpuset *cs, nodemask_t *pmask)
500 {
501 	while (!nodes_and(*pmask, cs->effective_mems, node_states[N_MEMORY]))
502 		cs = parent_cs(cs);
503 }
504 
505 /**
506  * alloc_cpumasks - Allocate an array of cpumask variables
507  * @pmasks: Pointer to array of cpumask_var_t pointers
508  * @size: Number of cpumasks to allocate
509  * Return: 0 if successful, -ENOMEM otherwise.
510  *
511  * Allocates @size cpumasks and initializes them to empty. Returns 0 on
512  * success, -ENOMEM on allocation failure. On failure, any previously
513  * allocated cpumasks are freed.
514  */
515 static inline int alloc_cpumasks(cpumask_var_t *pmasks[], u32 size)
516 {
517 	int i;
518 
519 	for (i = 0; i < size; i++) {
520 		if (!zalloc_cpumask_var(pmasks[i], GFP_KERNEL)) {
521 			while (--i >= 0)
522 				free_cpumask_var(*pmasks[i]);
523 			return -ENOMEM;
524 		}
525 	}
526 	return 0;
527 }
528 
529 /**
530  * alloc_tmpmasks - Allocate temporary cpumasks for cpuset operations.
531  * @tmp: Pointer to tmpmasks structure to populate
532  * Return: 0 on success, -ENOMEM on allocation failure
533  */
534 static inline int alloc_tmpmasks(struct tmpmasks *tmp)
535 {
536 	/*
537 	 * Array of pointers to the three cpumask_var_t fields in tmpmasks.
538 	 * Note: Array size must match actual number of masks (3)
539 	 */
540 	cpumask_var_t *pmask[3] = {
541 		&tmp->new_cpus,
542 		&tmp->addmask,
543 		&tmp->delmask
544 	};
545 
546 	return alloc_cpumasks(pmask, ARRAY_SIZE(pmask));
547 }
548 
549 /**
550  * free_tmpmasks - free cpumasks in a tmpmasks structure
551  * @tmp: the tmpmasks structure pointer
552  */
553 static inline void free_tmpmasks(struct tmpmasks *tmp)
554 {
555 	if (!tmp)
556 		return;
557 
558 	free_cpumask_var(tmp->new_cpus);
559 	free_cpumask_var(tmp->addmask);
560 	free_cpumask_var(tmp->delmask);
561 }
562 
563 /**
564  * dup_or_alloc_cpuset - Duplicate or allocate a new cpuset
565  * @cs: Source cpuset to duplicate (NULL for a fresh allocation)
566  *
567  * Creates a new cpuset by either:
568  * 1. Duplicating an existing cpuset (if @cs is non-NULL), or
569  * 2. Allocating a fresh cpuset with zero-initialized masks (if @cs is NULL)
570  *
571  * Return: Pointer to newly allocated cpuset on success, NULL on failure
572  */
573 static struct cpuset *dup_or_alloc_cpuset(struct cpuset *cs)
574 {
575 	struct cpuset *trial;
576 
577 	/* Allocate base structure */
578 	trial = cs ? kmemdup(cs, sizeof(*cs), GFP_KERNEL) :
579 		     kzalloc_obj(*cs);
580 	if (!trial)
581 		return NULL;
582 
583 	trial->dl_bw_cpu = -1;
584 
585 	/* Setup cpumask pointer array */
586 	cpumask_var_t *pmask[4] = {
587 		&trial->cpus_allowed,
588 		&trial->effective_cpus,
589 		&trial->effective_xcpus,
590 		&trial->exclusive_cpus
591 	};
592 
593 	if (alloc_cpumasks(pmask, ARRAY_SIZE(pmask))) {
594 		kfree(trial);
595 		return NULL;
596 	}
597 
598 	/* Copy masks if duplicating */
599 	if (cs) {
600 		cpumask_copy(trial->cpus_allowed, cs->cpus_allowed);
601 		cpumask_copy(trial->effective_cpus, cs->effective_cpus);
602 		cpumask_copy(trial->effective_xcpus, cs->effective_xcpus);
603 		cpumask_copy(trial->exclusive_cpus, cs->exclusive_cpus);
604 	}
605 
606 	return trial;
607 }
608 
609 /**
610  * free_cpuset - free the cpuset
611  * @cs: the cpuset to be freed
612  */
613 static inline void free_cpuset(struct cpuset *cs)
614 {
615 	free_cpumask_var(cs->cpus_allowed);
616 	free_cpumask_var(cs->effective_cpus);
617 	free_cpumask_var(cs->effective_xcpus);
618 	free_cpumask_var(cs->exclusive_cpus);
619 	kfree(cs);
620 }
621 
622 /* Return user specified exclusive CPUs */
623 static inline struct cpumask *user_xcpus(struct cpuset *cs)
624 {
625 	return cpumask_empty(cs->exclusive_cpus) ? cs->cpus_allowed
626 						 : cs->exclusive_cpus;
627 }
628 
629 static inline bool xcpus_empty(struct cpuset *cs)
630 {
631 	return cpumask_empty(cs->cpus_allowed) &&
632 	       cpumask_empty(cs->exclusive_cpus);
633 }
634 
635 /*
636  * cpusets_are_exclusive() - check if two cpusets are exclusive
637  *
638  * Return true if exclusive, false if not
639  */
640 static inline bool cpusets_are_exclusive(struct cpuset *cs1, struct cpuset *cs2)
641 {
642 	struct cpumask *xcpus1 = user_xcpus(cs1);
643 	struct cpumask *xcpus2 = user_xcpus(cs2);
644 
645 	if (cpumask_intersects(xcpus1, xcpus2))
646 		return false;
647 	return true;
648 }
649 
650 /**
651  * cpus_excl_conflict - Check if two cpusets have exclusive CPU conflicts
652  * @trial:	the trial cpuset to be checked
653  * @sibling:	a sibling cpuset to be checked against
654  * @xcpus_changed: set if exclusive_cpus has been set
655  *
656  * Returns: true if CPU exclusivity conflict exists, false otherwise
657  *
658  * Conflict detection rules:
659  *  o cgroup v1
660  *    See cpuset1_cpus_excl_conflict()
661  *  o cgroup v2
662  *    - The exclusive_cpus values cannot overlap.
663  *    - New exclusive_cpus cannot be a superset of a sibling's cpus_allowed.
664  */
665 static inline bool cpus_excl_conflict(struct cpuset *trial, struct cpuset *sibling,
666 				      bool xcpus_changed)
667 {
668 	if (!cpuset_v2())
669 		return cpuset1_cpus_excl_conflict(trial, sibling);
670 
671 	/* The cpus_allowed of a sibling cpuset cannot be a subset of the new exclusive_cpus */
672 	if (xcpus_changed && !cpumask_empty(sibling->cpus_allowed) &&
673 	    cpumask_subset(sibling->cpus_allowed, trial->exclusive_cpus))
674 		return true;
675 
676 	/* Exclusive_cpus cannot intersect */
677 	return cpumask_intersects(trial->exclusive_cpus, sibling->exclusive_cpus);
678 }
679 
680 static inline bool mems_excl_conflict(struct cpuset *cs1, struct cpuset *cs2)
681 {
682 	if ((is_mem_exclusive(cs1) || is_mem_exclusive(cs2)))
683 		return nodes_intersects(cs1->mems_allowed, cs2->mems_allowed);
684 	return false;
685 }
686 
687 /*
688  * validate_change() - Used to validate that any proposed cpuset change
689  *		       follows the structural rules for cpusets.
690  *
691  * If we replaced the flag and mask values of the current cpuset
692  * (cur) with those values in the trial cpuset (trial), would
693  * our various subset and exclusive rules still be valid?  Presumes
694  * cpuset_mutex held.
695  *
696  * 'cur' is the address of an actual, in-use cpuset.  Operations
697  * such as list traversal that depend on the actual address of the
698  * cpuset in the list must use cur below, not trial.
699  *
700  * 'trial' is the address of bulk structure copy of cur, with
701  * perhaps one or more of the fields cpus_allowed, mems_allowed,
702  * or flags changed to new, trial values.
703  *
704  * Return 0 if valid, -errno if not.
705  */
706 
707 static int validate_change(struct cpuset *cur, struct cpuset *trial)
708 {
709 	struct cgroup_subsys_state *css;
710 	struct cpuset *c, *par;
711 	bool xcpus_changed;
712 	int ret = 0;
713 
714 	rcu_read_lock();
715 
716 	if (!is_in_v2_mode())
717 		ret = cpuset1_validate_change(cur, trial);
718 	if (ret)
719 		goto out;
720 
721 	/* Remaining checks don't apply to root cpuset */
722 	if (cur == &top_cpuset)
723 		goto out;
724 
725 	par = parent_cs(cur);
726 
727 	/*
728 	 * We can't shrink if we won't have enough room for SCHED_DEADLINE
729 	 * tasks. This check is not done when scheduling is disabled as the
730 	 * users should know what they are doing.
731 	 *
732 	 * For v1, effective_cpus == cpus_allowed & user_xcpus() returns
733 	 * cpus_allowed.
734 	 *
735 	 * For v2, is_cpu_exclusive() & is_sched_load_balance() are true only
736 	 * for non-isolated partition root. At this point, the target
737 	 * effective_cpus isn't computed yet. user_xcpus() is the best
738 	 * approximation.
739 	 *
740 	 * TBD: May need to precompute the real effective_cpus here in case
741 	 * incorrect scheduling of SCHED_DEADLINE tasks in a partition
742 	 * becomes an issue.
743 	 */
744 	ret = -EBUSY;
745 	if (is_cpu_exclusive(cur) && is_sched_load_balance(cur) &&
746 	    !cpuset_cpumask_can_shrink(cur->effective_cpus, user_xcpus(trial)))
747 		goto out;
748 
749 	/*
750 	 * If either I or some sibling (!= me) is exclusive, we can't
751 	 * overlap. exclusive_cpus cannot overlap with each other if set.
752 	 */
753 	ret = -EINVAL;
754 	xcpus_changed = !cpumask_equal(cur->exclusive_cpus, trial->exclusive_cpus);
755 	cpuset_for_each_child(c, css, par) {
756 		if (c == cur)
757 			continue;
758 		if (cpus_excl_conflict(trial, c, xcpus_changed))
759 			goto out;
760 		if (mems_excl_conflict(trial, c))
761 			goto out;
762 	}
763 
764 	ret = 0;
765 out:
766 	rcu_read_unlock();
767 	return ret;
768 }
769 
770 #ifdef CONFIG_SMP
771 
772 /*
773  * generate_sched_domains()
774  *
775  * This function builds a partial partition of the systems CPUs
776  * A 'partial partition' is a set of non-overlapping subsets whose
777  * union is a subset of that set.
778  * The output of this function needs to be passed to kernel/sched/core.c
779  * partition_sched_domains() routine, which will rebuild the scheduler's
780  * load balancing domains (sched domains) as specified by that partial
781  * partition.
782  *
783  * See "What is sched_load_balance" in Documentation/admin-guide/cgroup-v1/cpusets.rst
784  * for a background explanation of this.
785  *
786  * Does not return errors, on the theory that the callers of this
787  * routine would rather not worry about failures to rebuild sched
788  * domains when operating in the severe memory shortage situations
789  * that could cause allocation failures below.
790  *
791  * Must be called with cpuset_mutex held.
792  *
793  * The three key local variables below are:
794  *    cp - cpuset pointer, used (together with pos_css) to perform a
795  *	   top-down scan of all cpusets. For our purposes, rebuilding
796  *	   the schedulers sched domains, we can ignore !is_sched_load_
797  *	   balance cpusets.
798  *  csa  - (for CpuSet Array) Array of pointers to all the cpusets
799  *	   that need to be load balanced, for convenient iterative
800  *	   access by the subsequent code that finds the best partition,
801  *	   i.e the set of domains (subsets) of CPUs such that the
802  *	   cpus_allowed of every cpuset marked is_sched_load_balance
803  *	   is a subset of one of these domains, while there are as
804  *	   many such domains as possible, each as small as possible.
805  * doms  - Conversion of 'csa' to an array of cpumasks, for passing to
806  *	   the kernel/sched/core.c routine partition_sched_domains() in a
807  *	   convenient format, that can be easily compared to the prior
808  *	   value to determine what partition elements (sched domains)
809  *	   were changed (added or removed.)
810  */
811 static int generate_sched_domains(cpumask_var_t **domains,
812 			struct sched_domain_attr **attributes)
813 {
814 	struct cpuset *cp;	/* top-down scan of cpusets */
815 	struct cpuset **csa;	/* array of all cpuset ptrs */
816 	int i, j;		/* indices for partition finding loops */
817 	cpumask_var_t *doms;	/* resulting partition; i.e. sched domains */
818 	struct sched_domain_attr *dattr;  /* attributes for custom domains */
819 	int ndoms = 0;		/* number of sched domains in result */
820 	struct cgroup_subsys_state *pos_css;
821 
822 	if (!cpuset_v2())
823 		return cpuset1_generate_sched_domains(domains, attributes);
824 
825 	doms = NULL;
826 	dattr = NULL;
827 	csa = NULL;
828 
829 	/* Special case for the 99% of systems with one, full, sched domain */
830 	if (cpumask_empty(subpartitions_cpus)) {
831 		ndoms = 1;
832 		/* !csa will be checked and can be correctly handled */
833 		goto generate_doms;
834 	}
835 
836 	csa = kmalloc_objs(cp, nr_cpusets());
837 	if (!csa)
838 		goto done;
839 
840 	/* Find how many partitions and cache them to csa[] */
841 	rcu_read_lock();
842 	cpuset_for_each_descendant_pre(cp, pos_css, &top_cpuset) {
843 		/*
844 		 * Only valid partition roots that are not isolated and with
845 		 * non-empty effective_cpus will be saved into csa[].
846 		 */
847 		if ((cp->partition_root_state == PRS_ROOT) &&
848 		    !cpumask_empty(cp->effective_cpus))
849 			csa[ndoms++] = cp;
850 
851 		/*
852 		 * Skip @cp's subtree if not a partition root and has no
853 		 * exclusive CPUs to be granted to child cpusets.
854 		 */
855 		if (!is_partition_valid(cp) && cpumask_empty(cp->exclusive_cpus))
856 			pos_css = css_rightmost_descendant(pos_css);
857 	}
858 	rcu_read_unlock();
859 
860 	for (i = 0; i < ndoms; i++) {
861 		for (j = i + 1; j < ndoms; j++) {
862 			if (cpusets_overlap(csa[i], csa[j]))
863 				/*
864 				 * Cgroup v2 shouldn't pass down overlapping
865 				 * partition root cpusets.
866 				 */
867 				WARN_ON_ONCE(1);
868 		}
869 	}
870 
871 generate_doms:
872 	doms = alloc_sched_domains(ndoms);
873 	if (!doms)
874 		goto done;
875 
876 	/*
877 	 * The rest of the code, including the scheduler, can deal with
878 	 * dattr==NULL case. No need to abort if alloc fails.
879 	 */
880 	dattr = kmalloc_objs(struct sched_domain_attr, ndoms);
881 
882 	/*
883 	 * Cgroup v2 doesn't support domain attributes, just set all of them
884 	 * to SD_ATTR_INIT. Also non-isolating partition root CPUs are a
885 	 * subset of HK_TYPE_DOMAIN_BOOT housekeeping CPUs.
886 	 */
887 	for (i = 0; i < ndoms; i++) {
888 		/*
889 		 * The top cpuset may contain some boot time isolated
890 		 * CPUs that need to be excluded from the sched domain.
891 		 */
892 		if (!csa || csa[i] == &top_cpuset)
893 			cpumask_and(doms[i], top_cpuset.effective_cpus,
894 				    housekeeping_cpumask(HK_TYPE_DOMAIN_BOOT));
895 		else
896 			cpumask_copy(doms[i], csa[i]->effective_cpus);
897 		if (dattr)
898 			dattr[i] = SD_ATTR_INIT;
899 	}
900 
901 done:
902 	kfree(csa);
903 
904 	/*
905 	 * Fallback to the default domain if kmalloc() failed.
906 	 * See comments in partition_sched_domains().
907 	 */
908 	if (doms == NULL)
909 		ndoms = 1;
910 
911 	*domains    = doms;
912 	*attributes = dattr;
913 	return ndoms;
914 }
915 
916 static void dl_update_tasks_root_domain(struct cpuset *cs)
917 {
918 	struct css_task_iter it;
919 	struct task_struct *task;
920 
921 	if (cs->nr_deadline_tasks == 0)
922 		return;
923 
924 	css_task_iter_start(&cs->css, 0, &it);
925 
926 	while ((task = css_task_iter_next(&it)))
927 		dl_add_task_root_domain(task);
928 
929 	css_task_iter_end(&it);
930 }
931 
932 void dl_rebuild_rd_accounting(void)
933 {
934 	struct cpuset *cs = NULL;
935 	struct cgroup_subsys_state *pos_css;
936 	int cpu;
937 	u64 cookie = ++dl_cookie;
938 
939 	lockdep_assert_cpuset_lock_held();
940 	lockdep_assert_cpus_held();
941 	lockdep_assert_held(&sched_domains_mutex);
942 
943 	rcu_read_lock();
944 
945 	for_each_possible_cpu(cpu) {
946 		if (dl_bw_visited(cpu, cookie))
947 			continue;
948 
949 		dl_clear_root_domain_cpu(cpu);
950 	}
951 
952 	cpuset_for_each_descendant_pre(cs, pos_css, &top_cpuset) {
953 
954 		if (cpumask_empty(cs->effective_cpus)) {
955 			pos_css = css_rightmost_descendant(pos_css);
956 			continue;
957 		}
958 
959 		css_get(&cs->css);
960 
961 		rcu_read_unlock();
962 
963 		dl_update_tasks_root_domain(cs);
964 
965 		rcu_read_lock();
966 		css_put(&cs->css);
967 	}
968 	rcu_read_unlock();
969 }
970 
971 /*
972  * Rebuild scheduler domains.
973  *
974  * If the flag 'sched_load_balance' of any cpuset with non-empty
975  * 'cpus' changes, or if the 'cpus' allowed changes in any cpuset
976  * which has that flag enabled, or if any cpuset with a non-empty
977  * 'cpus' is removed, then call this routine to rebuild the
978  * scheduler's dynamic sched domains.
979  *
980  * Call with cpuset_mutex held.  Takes cpus_read_lock().
981  */
982 void rebuild_sched_domains_locked(void)
983 {
984 	struct sched_domain_attr *attr;
985 	cpumask_var_t *doms;
986 	int ndoms;
987 	int i;
988 
989 	lockdep_assert_cpus_held();
990 	lockdep_assert_cpuset_lock_held();
991 	force_sd_rebuild = false;
992 
993 	/* Generate domain masks and attrs */
994 	ndoms = generate_sched_domains(&doms, &attr);
995 
996 	/*
997 	* cpuset_hotplug_workfn is invoked synchronously now, thus this
998 	* function should not race with CPU hotplug. And the effective CPUs
999 	* must not include any offline CPUs. Passing an offline CPU in the
1000 	* doms to partition_sched_domains() will trigger a kernel panic.
1001 	*
1002 	* We perform a final check here: if the doms contains any
1003 	* offline CPUs, a warning is emitted and we return directly to
1004 	* prevent the panic.
1005 	*/
1006 	for (i = 0; doms && i < ndoms; i++) {
1007 		if (WARN_ON_ONCE(!cpumask_subset(doms[i], cpu_active_mask)))
1008 			return;
1009 	}
1010 
1011 	/* Have scheduler rebuild the domains */
1012 	partition_sched_domains(ndoms, doms, attr);
1013 }
1014 #else /* !CONFIG_SMP */
1015 void rebuild_sched_domains_locked(void)
1016 {
1017 }
1018 #endif /* CONFIG_SMP */
1019 
1020 static void rebuild_sched_domains_cpuslocked(void)
1021 {
1022 	mutex_lock(&cpuset_mutex);
1023 	rebuild_sched_domains_locked();
1024 	mutex_unlock(&cpuset_mutex);
1025 }
1026 
1027 void rebuild_sched_domains(void)
1028 {
1029 	cpus_read_lock();
1030 	rebuild_sched_domains_cpuslocked();
1031 	cpus_read_unlock();
1032 }
1033 
1034 void cpuset_reset_sched_domains(void)
1035 {
1036 	mutex_lock(&cpuset_mutex);
1037 	partition_sched_domains(1, NULL, NULL);
1038 	mutex_unlock(&cpuset_mutex);
1039 }
1040 
1041 /**
1042  * cpuset_update_tasks_cpumask - Update the cpumasks of tasks in the cpuset.
1043  * @cs: the cpuset in which each task's cpus_allowed mask needs to be changed
1044  * @new_cpus: the temp variable for the new effective_cpus mask
1045  *
1046  * Iterate through each task of @cs updating its cpus_allowed to the
1047  * effective cpuset's.  As this function is called with cpuset_mutex held,
1048  * cpuset membership stays stable.
1049  *
1050  * For top_cpuset, task_cpu_possible_mask() is used instead of effective_cpus
1051  * to make sure all offline CPUs are also included as hotplug code won't
1052  * update cpumasks for tasks in top_cpuset.
1053  *
1054  * As task_cpu_possible_mask() can be task dependent in arm64, we have to
1055  * do cpu masking per task instead of doing it once for all.
1056  */
1057 void cpuset_update_tasks_cpumask(struct cpuset *cs, struct cpumask *new_cpus)
1058 {
1059 	struct css_task_iter it;
1060 	struct task_struct *task;
1061 	bool top_cs = cs == &top_cpuset;
1062 
1063 	css_task_iter_start(&cs->css, 0, &it);
1064 	while ((task = css_task_iter_next(&it))) {
1065 		const struct cpumask *possible_mask = task_cpu_possible_mask(task);
1066 
1067 		if (top_cs) {
1068 			/*
1069 			 * PF_KTHREAD tasks are handled by housekeeping.
1070 			 * PF_NO_SETAFFINITY tasks are ignored.
1071 			 */
1072 			if (task->flags & (PF_KTHREAD | PF_NO_SETAFFINITY))
1073 				continue;
1074 			cpumask_andnot(new_cpus, possible_mask, subpartitions_cpus);
1075 		} else {
1076 			cpumask_and(new_cpus, possible_mask, cs->effective_cpus);
1077 		}
1078 		set_cpus_allowed_ptr(task, new_cpus);
1079 	}
1080 	css_task_iter_end(&it);
1081 }
1082 
1083 /**
1084  * compute_effective_cpumask - Compute the effective cpumask of the cpuset
1085  * @new_cpus: the temp variable for the new effective_cpus mask
1086  * @cs: the cpuset the need to recompute the new effective_cpus mask
1087  * @parent: the parent cpuset
1088  *
1089  * The result is valid only if the given cpuset isn't a partition root.
1090  */
1091 static void compute_effective_cpumask(struct cpumask *new_cpus,
1092 				      struct cpuset *cs, struct cpuset *parent)
1093 {
1094 	cpumask_and(new_cpus, cs->cpus_allowed, parent->effective_cpus);
1095 }
1096 
1097 /*
1098  * Commands for update_parent_effective_cpumask
1099  */
1100 enum partition_cmd {
1101 	partcmd_enable,		/* Enable partition root	  */
1102 	partcmd_enablei,	/* Enable isolated partition root */
1103 	partcmd_disable,	/* Disable partition root	  */
1104 	partcmd_update,		/* Update parent's effective_cpus */
1105 	partcmd_invalidate,	/* Make partition invalid	  */
1106 };
1107 
1108 static void update_sibling_cpumasks(struct cpuset *parent, struct cpuset *cs,
1109 				    struct tmpmasks *tmp);
1110 
1111 /*
1112  * Update partition exclusive flag
1113  *
1114  * Return: 0 if successful, an error code otherwise
1115  */
1116 static int update_partition_exclusive_flag(struct cpuset *cs, int new_prs)
1117 {
1118 	bool exclusive = (new_prs > PRS_MEMBER);
1119 
1120 	if (exclusive && !is_cpu_exclusive(cs)) {
1121 		if (cpuset_update_flag(CS_CPU_EXCLUSIVE, cs, 1))
1122 			return PERR_NOTEXCL;
1123 	} else if (!exclusive && is_cpu_exclusive(cs)) {
1124 		/* Turning off CS_CPU_EXCLUSIVE will not return error */
1125 		cpuset_update_flag(CS_CPU_EXCLUSIVE, cs, 0);
1126 	}
1127 	return 0;
1128 }
1129 
1130 /*
1131  * Update partition load balance flag and/or rebuild sched domain
1132  *
1133  * Changing load balance flag will automatically call
1134  * rebuild_sched_domains_locked().
1135  * This function is for cgroup v2 only.
1136  */
1137 static void update_partition_sd_lb(struct cpuset *cs, int old_prs)
1138 {
1139 	int new_prs = cs->partition_root_state;
1140 	bool rebuild_domains = (new_prs > 0) || (old_prs > 0);
1141 	bool new_lb;
1142 
1143 	/*
1144 	 * If cs is not a valid partition root, the load balance state
1145 	 * will follow its parent.
1146 	 */
1147 	if (new_prs > 0) {
1148 		new_lb = (new_prs != PRS_ISOLATED);
1149 	} else {
1150 		new_lb = is_sched_load_balance(parent_cs(cs));
1151 	}
1152 	if (new_lb != !!is_sched_load_balance(cs)) {
1153 		rebuild_domains = true;
1154 		if (new_lb)
1155 			set_bit(CS_SCHED_LOAD_BALANCE, &cs->flags);
1156 		else
1157 			clear_bit(CS_SCHED_LOAD_BALANCE, &cs->flags);
1158 	}
1159 
1160 	if (rebuild_domains)
1161 		cpuset_force_rebuild();
1162 }
1163 
1164 /*
1165  * tasks_nocpu_error - Return true if tasks will have no effective_cpus
1166  */
1167 static bool tasks_nocpu_error(struct cpuset *parent, struct cpuset *cs,
1168 			      struct cpumask *xcpus)
1169 {
1170 	/*
1171 	 * A populated partition (cs or parent) can't have empty effective_cpus
1172 	 */
1173 	return (cpumask_subset(parent->effective_cpus, xcpus) &&
1174 		partition_is_populated(parent, cs)) ||
1175 	       (!cpumask_intersects(xcpus, cpu_active_mask) &&
1176 		partition_is_populated(cs, NULL));
1177 }
1178 
1179 static void reset_partition_data(struct cpuset *cs)
1180 {
1181 	struct cpuset *parent = parent_cs(cs);
1182 
1183 	if (!cpuset_v2())
1184 		return;
1185 
1186 	lockdep_assert_held(&callback_lock);
1187 
1188 	if (cpumask_empty(cs->exclusive_cpus)) {
1189 		cpumask_clear(cs->effective_xcpus);
1190 		if (is_cpu_exclusive(cs))
1191 			clear_bit(CS_CPU_EXCLUSIVE, &cs->flags);
1192 	}
1193 	if (!cpumask_and(cs->effective_cpus, parent->effective_cpus, cs->cpus_allowed))
1194 		cpumask_copy(cs->effective_cpus, parent->effective_cpus);
1195 }
1196 
1197 /*
1198  * isolated_cpus_update - Update the isolated_cpus mask
1199  * @old_prs: old partition_root_state
1200  * @new_prs: new partition_root_state
1201  * @xcpus: exclusive CPUs with state change
1202  */
1203 static void isolated_cpus_update(int old_prs, int new_prs, struct cpumask *xcpus)
1204 {
1205 	WARN_ON_ONCE(old_prs == new_prs);
1206 	lockdep_assert_held(&callback_lock);
1207 	lockdep_assert_held(&cpuset_mutex);
1208 	if (new_prs == PRS_ISOLATED) {
1209 		if (cpumask_subset(xcpus, isolated_cpus))
1210 			return;
1211 		cpumask_or(isolated_cpus, isolated_cpus, xcpus);
1212 	} else {
1213 		if (!cpumask_intersects(xcpus, isolated_cpus))
1214 			return;
1215 		cpumask_andnot(isolated_cpus, isolated_cpus, xcpus);
1216 	}
1217 	update_housekeeping = true;
1218 }
1219 
1220 /*
1221  * partition_xcpus_add - Add new exclusive CPUs to partition
1222  * @new_prs: new partition_root_state
1223  * @parent: parent cpuset
1224  * @xcpus: exclusive CPUs to be added
1225  *
1226  * Remote partition if parent == NULL
1227  */
1228 static void partition_xcpus_add(int new_prs, struct cpuset *parent,
1229 				struct cpumask *xcpus)
1230 {
1231 	WARN_ON_ONCE(new_prs < 0);
1232 	lockdep_assert_held(&callback_lock);
1233 	if (!parent)
1234 		parent = &top_cpuset;
1235 
1236 
1237 	if (parent == &top_cpuset)
1238 		cpumask_or(subpartitions_cpus, subpartitions_cpus, xcpus);
1239 
1240 	if (new_prs != parent->partition_root_state)
1241 		isolated_cpus_update(parent->partition_root_state, new_prs,
1242 				     xcpus);
1243 
1244 	cpumask_andnot(parent->effective_cpus, parent->effective_cpus, xcpus);
1245 }
1246 
1247 /*
1248  * partition_xcpus_del - Remove exclusive CPUs from partition
1249  * @old_prs: old partition_root_state
1250  * @parent: parent cpuset
1251  * @xcpus: exclusive CPUs to be removed
1252  *
1253  * Remote partition if parent == NULL
1254  */
1255 static void partition_xcpus_del(int old_prs, struct cpuset *parent,
1256 				struct cpumask *xcpus)
1257 {
1258 	WARN_ON_ONCE(old_prs < 0);
1259 	lockdep_assert_held(&callback_lock);
1260 	if (!parent)
1261 		parent = &top_cpuset;
1262 
1263 	if (parent == &top_cpuset)
1264 		cpumask_andnot(subpartitions_cpus, subpartitions_cpus, xcpus);
1265 
1266 	if (old_prs != parent->partition_root_state)
1267 		isolated_cpus_update(old_prs, parent->partition_root_state,
1268 				     xcpus);
1269 
1270 	cpumask_or(parent->effective_cpus, parent->effective_cpus, xcpus);
1271 	cpumask_and(parent->effective_cpus, parent->effective_cpus, cpu_active_mask);
1272 }
1273 
1274 /*
1275  * isolated_cpus_can_update - check for isolated & nohz_full conflicts
1276  * @add_cpus: cpu mask for cpus that are going to be isolated
1277  * @del_cpus: cpu mask for cpus that are no longer isolated, can be NULL
1278  * Return: false if there is conflict, true otherwise
1279  *
1280  * If nohz_full is enabled and we have isolated CPUs, their combination must
1281  * still leave housekeeping CPUs.
1282  *
1283  * TBD: Should consider merging this function into
1284  *      prstate_housekeeping_conflict().
1285  */
1286 static bool isolated_cpus_can_update(struct cpumask *add_cpus,
1287 				     struct cpumask *del_cpus)
1288 {
1289 	cpumask_var_t full_hk_cpus;
1290 	int res = true;
1291 
1292 	if (!housekeeping_enabled(HK_TYPE_KERNEL_NOISE))
1293 		return true;
1294 
1295 	if (del_cpus && cpumask_weight_and(del_cpus,
1296 			housekeeping_cpumask(HK_TYPE_KERNEL_NOISE)))
1297 		return true;
1298 
1299 	if (!alloc_cpumask_var(&full_hk_cpus, GFP_KERNEL))
1300 		return false;
1301 
1302 	cpumask_and(full_hk_cpus, housekeeping_cpumask(HK_TYPE_KERNEL_NOISE),
1303 		    housekeeping_cpumask(HK_TYPE_DOMAIN));
1304 	cpumask_andnot(full_hk_cpus, full_hk_cpus, isolated_cpus);
1305 	cpumask_and(full_hk_cpus, full_hk_cpus, cpu_active_mask);
1306 	if (!cpumask_weight_andnot(full_hk_cpus, add_cpus))
1307 		res = false;
1308 
1309 	free_cpumask_var(full_hk_cpus);
1310 	return res;
1311 }
1312 
1313 /*
1314  * prstate_housekeeping_conflict - check for partition & housekeeping conflicts
1315  * @prstate: partition root state to be checked
1316  * @new_cpus: cpu mask
1317  * Return: true if there is conflict, false otherwise
1318  *
1319  * CPUs outside of HK_TYPE_DOMAIN_BOOT, if defined, can only be used in an
1320  * isolated partition.
1321  */
1322 static bool prstate_housekeeping_conflict(int prstate, struct cpumask *new_cpus)
1323 {
1324 	if (!housekeeping_enabled(HK_TYPE_DOMAIN_BOOT))
1325 		return false;
1326 
1327 	if ((prstate != PRS_ISOLATED) &&
1328 	    !cpumask_subset(new_cpus, housekeeping_cpumask(HK_TYPE_DOMAIN_BOOT)))
1329 		return true;
1330 
1331 	return false;
1332 }
1333 
1334 /*
1335  * cpuset_update_sd_hk_unlock - Rebuild sched domains, update HK & unlock
1336  *
1337  * Update housekeeping cpumasks and rebuild sched domains if necessary and
1338  * then do a cpuset_full_unlock().
1339  * This should be called at the end of cpuset operation.
1340  */
1341 static void cpuset_update_sd_hk_unlock(void)
1342 	__releases(&cpuset_mutex)
1343 	__releases(&cpuset_top_mutex)
1344 {
1345 	/* force_sd_rebuild will be cleared in rebuild_sched_domains_locked() */
1346 	if (force_sd_rebuild)
1347 		rebuild_sched_domains_locked();
1348 
1349 	if (update_housekeeping) {
1350 		update_housekeeping = false;
1351 		cpumask_copy(isolated_hk_cpus, isolated_cpus);
1352 
1353 		/*
1354 		 * housekeeping_update() is now called without holding
1355 		 * cpus_read_lock and cpuset_mutex. Only cpuset_top_mutex
1356 		 * is still being held for mutual exclusion.
1357 		 */
1358 		mutex_unlock(&cpuset_mutex);
1359 		cpus_read_unlock();
1360 		WARN_ON_ONCE(housekeeping_update(isolated_hk_cpus));
1361 		mutex_unlock(&cpuset_top_mutex);
1362 	} else {
1363 		cpuset_full_unlock();
1364 	}
1365 }
1366 
1367 /*
1368  * Work function to invoke cpuset_update_sd_hk_unlock()
1369  */
1370 static void hk_sd_workfn(struct work_struct *work)
1371 {
1372 	cpuset_full_lock();
1373 	cpuset_update_sd_hk_unlock();
1374 }
1375 
1376 /**
1377  * rm_siblings_excl_cpus - Remove exclusive CPUs that are used by sibling cpusets
1378  * @parent: Parent cpuset containing all siblings
1379  * @cs: Current cpuset (will be skipped)
1380  * @excpus:  exclusive effective CPU mask to modify
1381  *
1382  * This function ensures the given @excpus mask doesn't include any CPUs that
1383  * are exclusively allocated to sibling cpusets. It walks through all siblings
1384  * of @cs under @parent and removes their exclusive CPUs from @excpus.
1385  */
1386 static int rm_siblings_excl_cpus(struct cpuset *parent, struct cpuset *cs,
1387 					struct cpumask *excpus)
1388 {
1389 	struct cgroup_subsys_state *css;
1390 	struct cpuset *sibling;
1391 	int retval = 0;
1392 
1393 	if (cpumask_empty(excpus))
1394 		return 0;
1395 
1396 	/*
1397 	 * Remove exclusive CPUs from siblings
1398 	 */
1399 	rcu_read_lock();
1400 	cpuset_for_each_child(sibling, css, parent) {
1401 		struct cpumask *sibling_xcpus;
1402 
1403 		if (sibling == cs)
1404 			continue;
1405 
1406 		/*
1407 		 * If exclusive_cpus is defined, effective_xcpus will always
1408 		 * be a subset. Otherwise, effective_xcpus will only be set
1409 		 * in a valid partition root.
1410 		 */
1411 		sibling_xcpus = cpumask_empty(sibling->exclusive_cpus)
1412 			      ? sibling->effective_xcpus
1413 			      : sibling->exclusive_cpus;
1414 
1415 		if (cpumask_intersects(excpus, sibling_xcpus)) {
1416 			cpumask_andnot(excpus, excpus, sibling_xcpus);
1417 			retval++;
1418 		}
1419 	}
1420 	rcu_read_unlock();
1421 
1422 	return retval;
1423 }
1424 
1425 /*
1426  * compute_excpus - compute effective exclusive CPUs
1427  * @cs: cpuset
1428  * @xcpus: effective exclusive CPUs value to be set
1429  * Return: 0 if there is no sibling conflict, > 0 otherwise
1430  *
1431  * If exclusive_cpus isn't explicitly set , we have to scan the sibling cpusets
1432  * and exclude their exclusive_cpus or effective_xcpus as well.
1433  */
1434 static int compute_excpus(struct cpuset *cs, struct cpumask *excpus)
1435 {
1436 	struct cpuset *parent = parent_cs(cs);
1437 
1438 	cpumask_and(excpus, user_xcpus(cs), parent->effective_xcpus);
1439 
1440 	if (!cpumask_empty(cs->exclusive_cpus))
1441 		return 0;
1442 
1443 	return rm_siblings_excl_cpus(parent, cs, excpus);
1444 }
1445 
1446 /*
1447  * compute_trialcs_excpus - Compute effective exclusive CPUs for a trial cpuset
1448  * @trialcs: The trial cpuset containing the proposed new configuration
1449  * @cs: The original cpuset that the trial configuration is based on
1450  * Return: 0 if successful with no sibling conflict, >0 if a conflict is found
1451  *
1452  * Computes the effective_xcpus for a trial configuration. @cs is provided to represent
1453  * the real cs.
1454  */
1455 static int compute_trialcs_excpus(struct cpuset *trialcs, struct cpuset *cs)
1456 {
1457 	struct cpuset *parent = parent_cs(trialcs);
1458 	struct cpumask *excpus = trialcs->effective_xcpus;
1459 
1460 	/* trialcs is member, cpuset.cpus has no impact to excpus */
1461 	if (cs_is_member(cs))
1462 		cpumask_and(excpus, trialcs->exclusive_cpus,
1463 				parent->effective_xcpus);
1464 	else
1465 		cpumask_and(excpus, user_xcpus(trialcs), parent->effective_xcpus);
1466 
1467 	return rm_siblings_excl_cpus(parent, cs, excpus);
1468 }
1469 
1470 static inline bool is_remote_partition(struct cpuset *cs)
1471 {
1472 	return cs->remote_partition;
1473 }
1474 
1475 static inline bool is_local_partition(struct cpuset *cs)
1476 {
1477 	return is_partition_valid(cs) && !is_remote_partition(cs);
1478 }
1479 
1480 /*
1481  * remote_partition_enable - Enable current cpuset as a remote partition root
1482  * @cs: the cpuset to update
1483  * @new_prs: new partition_root_state
1484  * @tmp: temporary masks
1485  * Return: 0 if successful, errcode if error
1486  *
1487  * Enable the current cpuset to become a remote partition root taking CPUs
1488  * directly from the top cpuset. cpuset_mutex must be held by the caller.
1489  */
1490 static int remote_partition_enable(struct cpuset *cs, int new_prs,
1491 				   struct tmpmasks *tmp)
1492 {
1493 	/*
1494 	 * The user must have sysadmin privilege.
1495 	 */
1496 	if (!capable(CAP_SYS_ADMIN))
1497 		return PERR_ACCESS;
1498 
1499 	/*
1500 	 * The requested exclusive_cpus must not be allocated to other
1501 	 * partitions and it can't use up all the root's effective_cpus.
1502 	 *
1503 	 * The effective_xcpus mask can contain offline CPUs, but there must
1504 	 * be at least one or more online CPUs present before it can be enabled.
1505 	 *
1506 	 * Note that creating a remote partition with any local partition root
1507 	 * above it or remote partition root underneath it is not allowed.
1508 	 */
1509 	compute_excpus(cs, tmp->new_cpus);
1510 	WARN_ON_ONCE(cpumask_intersects(tmp->new_cpus, subpartitions_cpus));
1511 	if (!cpumask_intersects(tmp->new_cpus, cpu_active_mask) ||
1512 	    cpumask_subset(top_cpuset.effective_cpus, tmp->new_cpus))
1513 		return PERR_INVCPUS;
1514 	if (((new_prs == PRS_ISOLATED) &&
1515 	     !isolated_cpus_can_update(tmp->new_cpus, NULL)) ||
1516 	    prstate_housekeeping_conflict(new_prs, tmp->new_cpus))
1517 		return PERR_HKEEPING;
1518 
1519 	spin_lock_irq(&callback_lock);
1520 	partition_xcpus_add(new_prs, NULL, tmp->new_cpus);
1521 	cs->remote_partition = true;
1522 	cpumask_copy(cs->effective_xcpus, tmp->new_cpus);
1523 	spin_unlock_irq(&callback_lock);
1524 	cpuset_force_rebuild();
1525 	cs->prs_err = 0;
1526 
1527 	/*
1528 	 * Propagate changes in top_cpuset's effective_cpus down the hierarchy.
1529 	 */
1530 	cpuset_update_tasks_cpumask(&top_cpuset, tmp->new_cpus);
1531 	update_sibling_cpumasks(&top_cpuset, NULL, tmp);
1532 	return 0;
1533 }
1534 
1535 /*
1536  * remote_partition_disable - Remove current cpuset from remote partition list
1537  * @cs: the cpuset to update
1538  * @tmp: temporary masks
1539  *
1540  * The effective_cpus is also updated.
1541  *
1542  * cpuset_mutex must be held by the caller.
1543  */
1544 static void remote_partition_disable(struct cpuset *cs, struct tmpmasks *tmp)
1545 {
1546 	WARN_ON_ONCE(!is_remote_partition(cs));
1547 	/*
1548 	 * When a CPU is offlined, top_cpuset may end up with no available CPUs,
1549 	 * which should clear subpartitions_cpus. We should not emit a warning for this
1550 	 * scenario: the hierarchy is updated from top to bottom, so subpartitions_cpus
1551 	 * may already be cleared when disabling the partition.
1552 	 */
1553 	WARN_ON_ONCE(!cpumask_subset(cs->effective_xcpus, subpartitions_cpus) &&
1554 		     !cpumask_empty(subpartitions_cpus));
1555 
1556 	spin_lock_irq(&callback_lock);
1557 	cs->remote_partition = false;
1558 	partition_xcpus_del(cs->partition_root_state, NULL, cs->effective_xcpus);
1559 	if (cs->prs_err)
1560 		cs->partition_root_state = -cs->partition_root_state;
1561 	else
1562 		cs->partition_root_state = PRS_MEMBER;
1563 
1564 	/* effective_xcpus may need to be changed */
1565 	compute_excpus(cs, cs->effective_xcpus);
1566 	reset_partition_data(cs);
1567 	spin_unlock_irq(&callback_lock);
1568 	cpuset_force_rebuild();
1569 
1570 	/*
1571 	 * Propagate changes in top_cpuset's effective_cpus down the hierarchy.
1572 	 */
1573 	cpuset_update_tasks_cpumask(&top_cpuset, tmp->new_cpus);
1574 	update_sibling_cpumasks(&top_cpuset, NULL, tmp);
1575 }
1576 
1577 /*
1578  * remote_cpus_update - cpus_exclusive change of remote partition
1579  * @cs: the cpuset to be updated
1580  * @xcpus: the new exclusive_cpus mask, if non-NULL
1581  * @excpus: the new effective_xcpus mask
1582  * @tmp: temporary masks
1583  *
1584  * top_cpuset and subpartitions_cpus will be updated or partition can be
1585  * invalidated.
1586  */
1587 static void remote_cpus_update(struct cpuset *cs, struct cpumask *xcpus,
1588 			       struct cpumask *excpus, struct tmpmasks *tmp)
1589 {
1590 	bool adding, deleting;
1591 	int prs = cs->partition_root_state;
1592 
1593 	if (WARN_ON_ONCE(!is_remote_partition(cs)))
1594 		return;
1595 
1596 	WARN_ON_ONCE(!cpumask_subset(cs->effective_xcpus, subpartitions_cpus));
1597 
1598 	if (cpumask_empty(excpus)) {
1599 		cs->prs_err = PERR_CPUSEMPTY;
1600 		goto invalidate;
1601 	}
1602 
1603 	adding   = cpumask_andnot(tmp->addmask, excpus, cs->effective_xcpus);
1604 	deleting = cpumask_andnot(tmp->delmask, cs->effective_xcpus, excpus);
1605 
1606 	/*
1607 	 * Additions of remote CPUs is only allowed if those CPUs are
1608 	 * not allocated to other partitions and there are effective_cpus
1609 	 * left in the top cpuset.
1610 	 */
1611 	if (adding) {
1612 		WARN_ON_ONCE(cpumask_intersects(tmp->addmask, subpartitions_cpus));
1613 		if (!capable(CAP_SYS_ADMIN))
1614 			cs->prs_err = PERR_ACCESS;
1615 		else if (cpumask_intersects(tmp->addmask, subpartitions_cpus) ||
1616 			 cpumask_subset(top_cpuset.effective_cpus, tmp->addmask))
1617 			cs->prs_err = PERR_NOCPUS;
1618 		else if ((prs == PRS_ISOLATED) &&
1619 			 !isolated_cpus_can_update(tmp->addmask, tmp->delmask))
1620 			cs->prs_err = PERR_HKEEPING;
1621 		if (cs->prs_err)
1622 			goto invalidate;
1623 	}
1624 
1625 	spin_lock_irq(&callback_lock);
1626 	if (adding)
1627 		partition_xcpus_add(prs, NULL, tmp->addmask);
1628 	if (deleting)
1629 		partition_xcpus_del(prs, NULL, tmp->delmask);
1630 	/*
1631 	 * Need to update effective_xcpus and exclusive_cpus now as
1632 	 * update_sibling_cpumasks() below may iterate back to the same cs.
1633 	 */
1634 	cpumask_copy(cs->effective_xcpus, excpus);
1635 	if (xcpus)
1636 		cpumask_copy(cs->exclusive_cpus, xcpus);
1637 	spin_unlock_irq(&callback_lock);
1638 	if (adding || deleting)
1639 		cpuset_force_rebuild();
1640 
1641 	/*
1642 	 * Propagate changes in top_cpuset's effective_cpus down the hierarchy.
1643 	 */
1644 	cpuset_update_tasks_cpumask(&top_cpuset, tmp->new_cpus);
1645 	update_sibling_cpumasks(&top_cpuset, NULL, tmp);
1646 	return;
1647 
1648 invalidate:
1649 	remote_partition_disable(cs, tmp);
1650 }
1651 
1652 /**
1653  * update_parent_effective_cpumask - update effective_cpus mask of parent cpuset
1654  * @cs:      The cpuset that requests change in partition root state
1655  * @cmd:     Partition root state change command
1656  * @newmask: Optional new cpumask for partcmd_update
1657  * @tmp:     Temporary addmask and delmask
1658  * Return:   0 or a partition root state error code
1659  *
1660  * For partcmd_enable*, the cpuset is being transformed from a non-partition
1661  * root to a partition root. The effective_xcpus (cpus_allowed if
1662  * effective_xcpus not set) mask of the given cpuset will be taken away from
1663  * parent's effective_cpus. The function will return 0 if all the CPUs listed
1664  * in effective_xcpus can be granted or an error code will be returned.
1665  *
1666  * For partcmd_disable, the cpuset is being transformed from a partition
1667  * root back to a non-partition root. Any CPUs in effective_xcpus will be
1668  * given back to parent's effective_cpus. 0 will always be returned.
1669  *
1670  * For partcmd_update, if the optional newmask is specified, the cpu list is
1671  * to be changed from effective_xcpus to newmask. Otherwise, effective_xcpus is
1672  * assumed to remain the same. The cpuset should either be a valid or invalid
1673  * partition root. The partition root state may change from valid to invalid
1674  * or vice versa. An error code will be returned if transitioning from
1675  * invalid to valid violates the exclusivity rule.
1676  *
1677  * For partcmd_invalidate, the current partition will be made invalid.
1678  *
1679  * The partcmd_enable* and partcmd_disable commands are used by
1680  * update_prstate(). An error code may be returned and the caller will check
1681  * for error.
1682  *
1683  * The partcmd_update command is used by update_cpumasks_hier() with newmask
1684  * NULL and update_cpumask() with newmask set. The partcmd_invalidate is used
1685  * by update_cpumask() with NULL newmask. In both cases, the callers won't
1686  * check for error and so partition_root_state and prs_err will be updated
1687  * directly.
1688  */
1689 static int update_parent_effective_cpumask(struct cpuset *cs, int cmd,
1690 					   struct cpumask *newmask,
1691 					   struct tmpmasks *tmp)
1692 {
1693 	struct cpuset *parent = parent_cs(cs);
1694 	int adding;	/* Adding cpus to parent's effective_cpus	*/
1695 	int deleting;	/* Deleting cpus from parent's effective_cpus	*/
1696 	int old_prs, new_prs;
1697 	int part_error = PERR_NONE;	/* Partition error? */
1698 	struct cpumask *xcpus = user_xcpus(cs);
1699 	int parent_prs = parent->partition_root_state;
1700 	bool nocpu;
1701 
1702 	lockdep_assert_cpuset_lock_held();
1703 	WARN_ON_ONCE(is_remote_partition(cs));	/* For local partition only */
1704 
1705 	/*
1706 	 * new_prs will only be changed for the partcmd_update and
1707 	 * partcmd_invalidate commands.
1708 	 */
1709 	adding = deleting = false;
1710 	old_prs = new_prs = cs->partition_root_state;
1711 
1712 	if (cmd == partcmd_invalidate) {
1713 		if (is_partition_invalid(cs))
1714 			return 0;
1715 
1716 		/*
1717 		 * Make the current partition invalid.
1718 		 */
1719 		if (is_partition_valid(parent))
1720 			adding = cpumask_and(tmp->addmask,
1721 					     cs->effective_xcpus,
1722 					     parent->effective_xcpus);
1723 		if (old_prs > 0)
1724 			new_prs = -old_prs;
1725 
1726 		goto write_error;
1727 	}
1728 
1729 	/*
1730 	 * The parent must be a partition root.
1731 	 * The new cpumask, if present, or the current cpus_allowed must
1732 	 * not be empty.
1733 	 */
1734 	if (!is_partition_valid(parent)) {
1735 		return is_partition_invalid(parent)
1736 		       ? PERR_INVPARENT : PERR_NOTPART;
1737 	}
1738 	if (!newmask && xcpus_empty(cs))
1739 		return PERR_CPUSEMPTY;
1740 
1741 	nocpu = tasks_nocpu_error(parent, cs, xcpus);
1742 
1743 	if ((cmd == partcmd_enable) || (cmd == partcmd_enablei)) {
1744 		/*
1745 		 * Need to call compute_excpus() in case
1746 		 * exclusive_cpus not set. Sibling conflict should only happen
1747 		 * if exclusive_cpus isn't set.
1748 		 */
1749 		xcpus = tmp->delmask;
1750 		if (compute_excpus(cs, xcpus))
1751 			WARN_ON_ONCE(!cpumask_empty(cs->exclusive_cpus));
1752 		new_prs = (cmd == partcmd_enable) ? PRS_ROOT : PRS_ISOLATED;
1753 
1754 		/*
1755 		 * Enabling partition root is not allowed if its
1756 		 * effective_xcpus is empty.
1757 		 */
1758 		if (cpumask_empty(xcpus))
1759 			return PERR_INVCPUS;
1760 
1761 		if (prstate_housekeeping_conflict(new_prs, xcpus))
1762 			return PERR_HKEEPING;
1763 
1764 		if ((new_prs == PRS_ISOLATED) && (new_prs != parent_prs) &&
1765 		    !isolated_cpus_can_update(xcpus, NULL))
1766 			return PERR_HKEEPING;
1767 
1768 		if (tasks_nocpu_error(parent, cs, xcpus))
1769 			return PERR_NOCPUS;
1770 
1771 		/*
1772 		 * This function will only be called when all the preliminary
1773 		 * checks have passed. At this point, the following condition
1774 		 * should hold.
1775 		 *
1776 		 * (cs->effective_xcpus & cpu_active_mask) ⊆ parent->effective_cpus
1777 		 *
1778 		 * Warn if it is not the case.
1779 		 */
1780 		cpumask_and(tmp->new_cpus, xcpus, cpu_active_mask);
1781 		WARN_ON_ONCE(!cpumask_subset(tmp->new_cpus, parent->effective_cpus));
1782 
1783 		deleting = true;
1784 	} else if (cmd == partcmd_disable) {
1785 		/*
1786 		 * May need to add cpus back to parent's effective_cpus
1787 		 * (and maybe removed from subpartitions_cpus/isolated_cpus)
1788 		 * for valid partition root. xcpus may contain CPUs that
1789 		 * shouldn't be removed from the two global cpumasks.
1790 		 */
1791 		if (is_partition_valid(cs)) {
1792 			cpumask_copy(tmp->addmask, cs->effective_xcpus);
1793 			adding = true;
1794 		}
1795 		new_prs = PRS_MEMBER;
1796 	} else if (newmask) {
1797 		/*
1798 		 * Empty cpumask is not allowed
1799 		 */
1800 		if (cpumask_empty(newmask)) {
1801 			part_error = PERR_CPUSEMPTY;
1802 			goto write_error;
1803 		}
1804 
1805 		/* Check newmask again, whether cpus are available for parent/cs */
1806 		nocpu |= tasks_nocpu_error(parent, cs, newmask);
1807 
1808 		/*
1809 		 * partcmd_update with newmask:
1810 		 *
1811 		 * Compute add/delete mask to/from effective_cpus
1812 		 *
1813 		 * For valid partition:
1814 		 *   addmask = exclusive_cpus & ~newmask
1815 		 *			      & parent->effective_xcpus
1816 		 *   delmask = newmask & ~exclusive_cpus
1817 		 *		       & parent->effective_xcpus
1818 		 *
1819 		 * For invalid partition:
1820 		 *   delmask = newmask & parent->effective_xcpus
1821 		 *   The partition may become valid soon.
1822 		 */
1823 		if (is_partition_invalid(cs)) {
1824 			adding = false;
1825 			deleting = cpumask_and(tmp->delmask,
1826 					newmask, parent->effective_xcpus);
1827 		} else {
1828 			cpumask_andnot(tmp->addmask, xcpus, newmask);
1829 			adding = cpumask_and(tmp->addmask, tmp->addmask,
1830 					     parent->effective_xcpus);
1831 
1832 			cpumask_andnot(tmp->delmask, newmask, xcpus);
1833 			deleting = cpumask_and(tmp->delmask, tmp->delmask,
1834 					       parent->effective_xcpus);
1835 		}
1836 
1837 		/*
1838 		 * TBD: Invalidate a currently valid child root partition may
1839 		 * still break isolated_cpus_can_update() rule if parent is an
1840 		 * isolated partition.
1841 		 */
1842 		if (is_partition_valid(cs) && (old_prs != parent_prs)) {
1843 			if ((parent_prs == PRS_ROOT) &&
1844 			    /* Adding to parent means removing isolated CPUs */
1845 			    !isolated_cpus_can_update(tmp->delmask, tmp->addmask))
1846 				part_error = PERR_HKEEPING;
1847 			if ((parent_prs == PRS_ISOLATED) &&
1848 			    /* Adding to parent means adding isolated CPUs */
1849 			    !isolated_cpus_can_update(tmp->addmask, tmp->delmask))
1850 				part_error = PERR_HKEEPING;
1851 		}
1852 
1853 		/*
1854 		 * The new CPUs to be removed from parent's effective CPUs
1855 		 * must be present.
1856 		 */
1857 		if (deleting) {
1858 			cpumask_and(tmp->new_cpus, tmp->delmask, cpu_active_mask);
1859 			WARN_ON_ONCE(!cpumask_subset(tmp->new_cpus, parent->effective_cpus));
1860 		}
1861 
1862 		/*
1863 		 * Make partition invalid if parent's effective_cpus could
1864 		 * become empty and there are tasks in the parent.
1865 		 */
1866 		if (nocpu && (!adding ||
1867 		    !cpumask_intersects(tmp->addmask, cpu_active_mask))) {
1868 			part_error = PERR_NOCPUS;
1869 			deleting = false;
1870 			adding = cpumask_and(tmp->addmask,
1871 					     xcpus, parent->effective_xcpus);
1872 		}
1873 	} else {
1874 		/*
1875 		 * partcmd_update w/o newmask
1876 		 *
1877 		 * delmask = effective_xcpus & parent->effective_cpus
1878 		 *
1879 		 * This can be called from:
1880 		 * 1) update_cpumasks_hier()
1881 		 * 2) cpuset_hotplug_update_tasks()
1882 		 *
1883 		 * Check to see if it can be transitioned from valid to
1884 		 * invalid partition or vice versa.
1885 		 *
1886 		 * A partition error happens when parent has tasks and all
1887 		 * its effective CPUs will have to be distributed out.
1888 		 */
1889 		if (nocpu) {
1890 			part_error = PERR_NOCPUS;
1891 			if (is_partition_valid(cs))
1892 				adding = cpumask_and(tmp->addmask,
1893 						xcpus, parent->effective_xcpus);
1894 		} else if (is_partition_invalid(cs) && !cpumask_empty(xcpus) &&
1895 			   cpumask_subset(xcpus, parent->effective_xcpus)) {
1896 			struct cgroup_subsys_state *css;
1897 			struct cpuset *child;
1898 			bool exclusive = true;
1899 
1900 			/*
1901 			 * Convert invalid partition to valid has to
1902 			 * pass the cpu exclusivity test.
1903 			 */
1904 			rcu_read_lock();
1905 			cpuset_for_each_child(child, css, parent) {
1906 				if (child == cs)
1907 					continue;
1908 				if (!cpusets_are_exclusive(cs, child)) {
1909 					exclusive = false;
1910 					break;
1911 				}
1912 			}
1913 			rcu_read_unlock();
1914 			if (exclusive)
1915 				deleting = cpumask_and(tmp->delmask,
1916 						xcpus, parent->effective_cpus);
1917 			else
1918 				part_error = PERR_NOTEXCL;
1919 		}
1920 	}
1921 
1922 write_error:
1923 	if (part_error)
1924 		WRITE_ONCE(cs->prs_err, part_error);
1925 
1926 	if (cmd == partcmd_update) {
1927 		/*
1928 		 * Check for possible transition between valid and invalid
1929 		 * partition root.
1930 		 */
1931 		switch (cs->partition_root_state) {
1932 		case PRS_ROOT:
1933 		case PRS_ISOLATED:
1934 			if (part_error)
1935 				new_prs = -old_prs;
1936 			break;
1937 		case PRS_INVALID_ROOT:
1938 		case PRS_INVALID_ISOLATED:
1939 			if (!part_error)
1940 				new_prs = -old_prs;
1941 			break;
1942 		}
1943 	}
1944 
1945 	if (!adding && !deleting && (new_prs == old_prs))
1946 		return 0;
1947 
1948 	/*
1949 	 * Transitioning between invalid to valid or vice versa may require
1950 	 * changing CS_CPU_EXCLUSIVE. In the case of partcmd_update,
1951 	 * validate_change() has already been successfully called and
1952 	 * CPU lists in cs haven't been updated yet. So defer it to later.
1953 	 */
1954 	if ((old_prs != new_prs) && (cmd != partcmd_update))  {
1955 		int err = update_partition_exclusive_flag(cs, new_prs);
1956 
1957 		if (err)
1958 			return err;
1959 	}
1960 
1961 	/*
1962 	 * Change the parent's effective_cpus & effective_xcpus (top cpuset
1963 	 * only).
1964 	 *
1965 	 * Newly added CPUs will be removed from effective_cpus and
1966 	 * newly deleted ones will be added back to effective_cpus.
1967 	 */
1968 	spin_lock_irq(&callback_lock);
1969 	if (old_prs != new_prs)
1970 		cs->partition_root_state = new_prs;
1971 
1972 	/*
1973 	 * Adding to parent's effective_cpus means deletion CPUs from cs
1974 	 * and vice versa.
1975 	 */
1976 	if (adding)
1977 		partition_xcpus_del(old_prs, parent, tmp->addmask);
1978 	if (deleting)
1979 		partition_xcpus_add(new_prs, parent, tmp->delmask);
1980 
1981 	spin_unlock_irq(&callback_lock);
1982 
1983 	if ((old_prs != new_prs) && (cmd == partcmd_update))
1984 		update_partition_exclusive_flag(cs, new_prs);
1985 
1986 	if (adding || deleting) {
1987 		cpuset_update_tasks_cpumask(parent, tmp->addmask);
1988 		update_sibling_cpumasks(parent, cs, tmp);
1989 	}
1990 
1991 	/*
1992 	 * For partcmd_update without newmask, it is being called from
1993 	 * cpuset_handle_hotplug(). Update the load balance flag and
1994 	 * scheduling domain accordingly.
1995 	 */
1996 	if ((cmd == partcmd_update) && !newmask)
1997 		update_partition_sd_lb(cs, old_prs);
1998 
1999 	notify_partition_change(cs, old_prs);
2000 	return 0;
2001 }
2002 
2003 /**
2004  * compute_partition_effective_cpumask - compute effective_cpus for partition
2005  * @cs: partition root cpuset
2006  * @new_ecpus: previously computed effective_cpus to be updated
2007  *
2008  * Compute the effective_cpus of a partition root by scanning effective_xcpus
2009  * of child partition roots and excluding their effective_xcpus.
2010  *
2011  * This has the side effect of invalidating valid child partition roots,
2012  * if necessary. Since it is called from either cpuset_hotplug_update_tasks()
2013  * or update_cpumasks_hier() where parent and children are modified
2014  * successively, we don't need to call update_parent_effective_cpumask()
2015  * and the child's effective_cpus will be updated in later iterations.
2016  *
2017  * Note that rcu_read_lock() is assumed to be held.
2018  */
2019 static void compute_partition_effective_cpumask(struct cpuset *cs,
2020 						struct cpumask *new_ecpus)
2021 {
2022 	struct cgroup_subsys_state *css;
2023 	struct cpuset *child;
2024 	bool populated = partition_is_populated(cs, NULL);
2025 
2026 	/*
2027 	 * Check child partition roots to see if they should be
2028 	 * invalidated when
2029 	 *  1) child effective_xcpus not a subset of new
2030 	 *     excluisve_cpus
2031 	 *  2) All the effective_cpus will be used up and cp
2032 	 *     has tasks
2033 	 */
2034 	compute_excpus(cs, new_ecpus);
2035 	cpumask_and(new_ecpus, new_ecpus, cpu_active_mask);
2036 
2037 	rcu_read_lock();
2038 	cpuset_for_each_child(child, css, cs) {
2039 		if (!is_partition_valid(child))
2040 			continue;
2041 
2042 		/*
2043 		 * There shouldn't be a remote partition underneath another
2044 		 * partition root.
2045 		 */
2046 		WARN_ON_ONCE(is_remote_partition(child));
2047 		child->prs_err = 0;
2048 		if (!cpumask_subset(child->effective_xcpus,
2049 				    cs->effective_xcpus))
2050 			child->prs_err = PERR_INVCPUS;
2051 		else if (populated &&
2052 			 cpumask_subset(new_ecpus, child->effective_xcpus))
2053 			child->prs_err = PERR_NOCPUS;
2054 
2055 		if (child->prs_err) {
2056 			int old_prs = child->partition_root_state;
2057 
2058 			/*
2059 			 * Invalidate child partition
2060 			 */
2061 			spin_lock_irq(&callback_lock);
2062 			make_partition_invalid(child);
2063 			spin_unlock_irq(&callback_lock);
2064 			notify_partition_change(child, old_prs);
2065 			continue;
2066 		}
2067 		cpumask_andnot(new_ecpus, new_ecpus,
2068 			       child->effective_xcpus);
2069 	}
2070 	rcu_read_unlock();
2071 }
2072 
2073 /*
2074  * update_cpumasks_hier - Update effective cpumasks and tasks in the subtree
2075  * @cs:  the cpuset to consider
2076  * @tmp: temp variables for calculating effective_cpus & partition setup
2077  * @force: don't skip any descendant cpusets if set
2078  *
2079  * When configured cpumask is changed, the effective cpumasks of this cpuset
2080  * and all its descendants need to be updated.
2081  *
2082  * On legacy hierarchy, effective_cpus will be the same with cpu_allowed.
2083  *
2084  * Called with cpuset_mutex held
2085  */
2086 static void update_cpumasks_hier(struct cpuset *cs, struct tmpmasks *tmp,
2087 				 bool force)
2088 {
2089 	struct cpuset *cp;
2090 	struct cgroup_subsys_state *pos_css;
2091 	int old_prs, new_prs;
2092 
2093 	rcu_read_lock();
2094 	cpuset_for_each_descendant_pre(cp, pos_css, cs) {
2095 		struct cpuset *parent = parent_cs(cp);
2096 		bool remote = is_remote_partition(cp);
2097 		bool update_parent = false;
2098 
2099 		old_prs = new_prs = cp->partition_root_state;
2100 
2101 		/*
2102 		 * For child remote partition root (!= cs), we need to call
2103 		 * remote_cpus_update() if effective_xcpus will be changed.
2104 		 * Otherwise, we can skip the whole subtree.
2105 		 *
2106 		 * remote_cpus_update() will reuse tmp->new_cpus only after
2107 		 * its value is being processed.
2108 		 */
2109 		if (remote && (cp != cs)) {
2110 			compute_excpus(cp, tmp->new_cpus);
2111 			if (cpumask_equal(cp->effective_xcpus, tmp->new_cpus)) {
2112 				pos_css = css_rightmost_descendant(pos_css);
2113 				continue;
2114 			}
2115 			rcu_read_unlock();
2116 			remote_cpus_update(cp, NULL, tmp->new_cpus, tmp);
2117 			rcu_read_lock();
2118 
2119 			/* Remote partition may be invalidated */
2120 			new_prs = cp->partition_root_state;
2121 			remote = (new_prs == old_prs);
2122 		}
2123 
2124 		if (remote || (is_partition_valid(parent) && is_partition_valid(cp)))
2125 			compute_partition_effective_cpumask(cp, tmp->new_cpus);
2126 		else
2127 			compute_effective_cpumask(tmp->new_cpus, cp, parent);
2128 
2129 		if (remote)
2130 			goto get_css;	/* Ready to update cpuset data */
2131 
2132 		/*
2133 		 * A partition with no effective_cpus is allowed as long as
2134 		 * there is no task associated with it. Call
2135 		 * update_parent_effective_cpumask() to check it.
2136 		 */
2137 		if (is_partition_valid(cp) && cpumask_empty(tmp->new_cpus)) {
2138 			update_parent = true;
2139 			goto update_parent_effective;
2140 		}
2141 
2142 		/*
2143 		 * If it becomes empty, inherit the effective mask of the
2144 		 * parent, which is guaranteed to have some CPUs unless
2145 		 * it is a partition root that has explicitly distributed
2146 		 * out all its CPUs.
2147 		 */
2148 		if (is_in_v2_mode() && !remote && cpumask_empty(tmp->new_cpus))
2149 			cpumask_copy(tmp->new_cpus, parent->effective_cpus);
2150 
2151 		/*
2152 		 * Skip the whole subtree if
2153 		 * 1) the cpumask remains the same,
2154 		 * 2) has no partition root state,
2155 		 * 3) force flag not set, and
2156 		 * 4) for v2 load balance state same as its parent.
2157 		 */
2158 		if (!cp->partition_root_state && !force &&
2159 		    cpumask_equal(tmp->new_cpus, cp->effective_cpus) &&
2160 		    (!cpuset_v2() ||
2161 		    (is_sched_load_balance(parent) == is_sched_load_balance(cp)))) {
2162 			pos_css = css_rightmost_descendant(pos_css);
2163 			continue;
2164 		}
2165 
2166 update_parent_effective:
2167 		/*
2168 		 * update_parent_effective_cpumask() should have been called
2169 		 * for cs already in update_cpumask(). We should also call
2170 		 * cpuset_update_tasks_cpumask() again for tasks in the parent
2171 		 * cpuset if the parent's effective_cpus changes.
2172 		 */
2173 		if ((cp != cs) && old_prs) {
2174 			switch (parent->partition_root_state) {
2175 			case PRS_ROOT:
2176 			case PRS_ISOLATED:
2177 				update_parent = true;
2178 				break;
2179 
2180 			default:
2181 				/*
2182 				 * When parent is not a partition root or is
2183 				 * invalid, child partition roots become
2184 				 * invalid too.
2185 				 */
2186 				if (is_partition_valid(cp))
2187 					new_prs = -cp->partition_root_state;
2188 				WRITE_ONCE(cp->prs_err,
2189 					   is_partition_invalid(parent)
2190 					   ? PERR_INVPARENT : PERR_NOTPART);
2191 				break;
2192 			}
2193 		}
2194 get_css:
2195 		if (!css_tryget_online(&cp->css))
2196 			continue;
2197 		rcu_read_unlock();
2198 
2199 		if (update_parent) {
2200 			update_parent_effective_cpumask(cp, partcmd_update, NULL, tmp);
2201 			/*
2202 			 * The cpuset partition_root_state may become
2203 			 * invalid. Capture it.
2204 			 */
2205 			new_prs = cp->partition_root_state;
2206 		}
2207 
2208 		spin_lock_irq(&callback_lock);
2209 		cpumask_copy(cp->effective_cpus, tmp->new_cpus);
2210 		cp->partition_root_state = new_prs;
2211 		/*
2212 		 * Need to compute effective_xcpus if either exclusive_cpus
2213 		 * is non-empty or it is a valid partition root.
2214 		 */
2215 		if ((new_prs > 0) || !cpumask_empty(cp->exclusive_cpus))
2216 			compute_excpus(cp, cp->effective_xcpus);
2217 		if (new_prs <= 0)
2218 			reset_partition_data(cp);
2219 		spin_unlock_irq(&callback_lock);
2220 
2221 		notify_partition_change(cp, old_prs);
2222 
2223 		WARN_ON(!is_in_v2_mode() &&
2224 			!cpumask_equal(cp->cpus_allowed, cp->effective_cpus));
2225 
2226 		cpuset_update_tasks_cpumask(cp, tmp->new_cpus);
2227 
2228 		/*
2229 		 * On default hierarchy, inherit the CS_SCHED_LOAD_BALANCE
2230 		 * from parent if current cpuset isn't a valid partition root
2231 		 * and their load balance states differ.
2232 		 */
2233 		if (cpuset_v2() && !is_partition_valid(cp) &&
2234 		    (is_sched_load_balance(parent) != is_sched_load_balance(cp))) {
2235 			if (is_sched_load_balance(parent))
2236 				set_bit(CS_SCHED_LOAD_BALANCE, &cp->flags);
2237 			else
2238 				clear_bit(CS_SCHED_LOAD_BALANCE, &cp->flags);
2239 		}
2240 
2241 		/*
2242 		 * On legacy hierarchy, if the effective cpumask of any non-
2243 		 * empty cpuset is changed, we need to rebuild sched domains.
2244 		 * On default hierarchy, the cpuset needs to be a partition
2245 		 * root as well.
2246 		 */
2247 		if (!cpumask_empty(cp->cpus_allowed) &&
2248 		    is_sched_load_balance(cp) &&
2249 		   (!cpuset_v2() || is_partition_valid(cp)))
2250 			cpuset_force_rebuild();
2251 
2252 		rcu_read_lock();
2253 		css_put(&cp->css);
2254 	}
2255 	rcu_read_unlock();
2256 }
2257 
2258 /**
2259  * update_sibling_cpumasks - Update siblings cpumasks
2260  * @parent:  Parent cpuset
2261  * @cs:      Current cpuset
2262  * @tmp:     Temp variables
2263  */
2264 static void update_sibling_cpumasks(struct cpuset *parent, struct cpuset *cs,
2265 				    struct tmpmasks *tmp)
2266 {
2267 	struct cpuset *sibling;
2268 	struct cgroup_subsys_state *pos_css;
2269 
2270 	lockdep_assert_cpuset_lock_held();
2271 
2272 	/*
2273 	 * Check all its siblings and call update_cpumasks_hier()
2274 	 * if their effective_cpus will need to be changed.
2275 	 *
2276 	 * It is possible a change in parent's effective_cpus
2277 	 * due to a change in a child partition's effective_xcpus will impact
2278 	 * its siblings even if they do not inherit parent's effective_cpus
2279 	 * directly. It should not impact valid partition.
2280 	 *
2281 	 * The update_cpumasks_hier() function may sleep. So we have to
2282 	 * release the RCU read lock before calling it.
2283 	 */
2284 	rcu_read_lock();
2285 	cpuset_for_each_child(sibling, pos_css, parent) {
2286 		if (sibling == cs || is_partition_valid(sibling))
2287 			continue;
2288 
2289 		compute_effective_cpumask(tmp->new_cpus, sibling,
2290 					  parent);
2291 		if (cpumask_equal(tmp->new_cpus, sibling->effective_cpus))
2292 			continue;
2293 
2294 		if (!css_tryget_online(&sibling->css))
2295 			continue;
2296 
2297 		rcu_read_unlock();
2298 		update_cpumasks_hier(sibling, tmp, false);
2299 		rcu_read_lock();
2300 		css_put(&sibling->css);
2301 	}
2302 	rcu_read_unlock();
2303 }
2304 
2305 static int parse_cpuset_cpulist(const char *buf, struct cpumask *out_mask)
2306 {
2307 	int retval;
2308 
2309 	retval = cpulist_parse(buf, out_mask);
2310 	if (retval < 0)
2311 		return retval;
2312 	if (!cpumask_subset(out_mask, top_cpuset.cpus_allowed))
2313 		return -EINVAL;
2314 
2315 	return 0;
2316 }
2317 
2318 /**
2319  * validate_partition - Validate a cpuset partition configuration
2320  * @cs: The cpuset to validate
2321  * @trialcs: The trial cpuset containing proposed configuration changes
2322  *
2323  * If any validation check fails, the appropriate error code is set in the
2324  * cpuset's prs_err field.
2325  *
2326  * Return: PRS error code (0 if valid, non-zero error code if invalid)
2327  */
2328 static enum prs_errcode validate_partition(struct cpuset *cs, struct cpuset *trialcs)
2329 {
2330 	struct cpuset *parent = parent_cs(cs);
2331 
2332 	if (cs_is_member(trialcs))
2333 		return PERR_NONE;
2334 
2335 	if (cpumask_empty(trialcs->effective_xcpus))
2336 		return PERR_INVCPUS;
2337 
2338 	if (prstate_housekeeping_conflict(trialcs->partition_root_state,
2339 					  trialcs->effective_xcpus))
2340 		return PERR_HKEEPING;
2341 
2342 	if (tasks_nocpu_error(parent, cs, trialcs->effective_xcpus))
2343 		return PERR_NOCPUS;
2344 
2345 	return PERR_NONE;
2346 }
2347 
2348 /**
2349  * partition_cpus_change - Handle partition state changes due to CPU mask updates
2350  * @cs: The target cpuset being modified
2351  * @trialcs: The trial cpuset containing proposed configuration changes
2352  * @tmp: Temporary masks for intermediate calculations
2353  *
2354  * This function handles partition state transitions triggered by CPU mask changes.
2355  * CPU modifications may cause a partition to be disabled or require state updates.
2356  */
2357 static void partition_cpus_change(struct cpuset *cs, struct cpuset *trialcs,
2358 					struct tmpmasks *tmp)
2359 {
2360 	enum prs_errcode prs_err;
2361 
2362 	if (cs_is_member(cs))
2363 		return;
2364 
2365 	prs_err = validate_partition(cs, trialcs);
2366 	if (prs_err)
2367 		trialcs->prs_err = cs->prs_err = prs_err;
2368 
2369 	if (is_remote_partition(cs)) {
2370 		if (trialcs->prs_err)
2371 			remote_partition_disable(cs, tmp);
2372 		else
2373 			remote_cpus_update(cs, trialcs->exclusive_cpus,
2374 					   trialcs->effective_xcpus, tmp);
2375 	} else {
2376 		if (trialcs->prs_err)
2377 			update_parent_effective_cpumask(cs, partcmd_invalidate,
2378 							NULL, tmp);
2379 		else
2380 			update_parent_effective_cpumask(cs, partcmd_update,
2381 							trialcs->effective_xcpus, tmp);
2382 	}
2383 }
2384 
2385 /**
2386  * update_cpumask - update the cpus_allowed mask of a cpuset and all tasks in it
2387  * @cs: the cpuset to consider
2388  * @trialcs: trial cpuset
2389  * @buf: buffer of cpu numbers written to this cpuset
2390  */
2391 static int update_cpumask(struct cpuset *cs, struct cpuset *trialcs,
2392 			  const char *buf)
2393 {
2394 	int retval;
2395 	struct tmpmasks tmp;
2396 	bool force = false;
2397 	int old_prs = cs->partition_root_state;
2398 
2399 	retval = parse_cpuset_cpulist(buf, trialcs->cpus_allowed);
2400 	if (retval < 0)
2401 		return retval;
2402 
2403 	/* Nothing to do if the cpus didn't change */
2404 	if (cpumask_equal(cs->cpus_allowed, trialcs->cpus_allowed))
2405 		return 0;
2406 
2407 	compute_trialcs_excpus(trialcs, cs);
2408 	trialcs->prs_err = PERR_NONE;
2409 
2410 	retval = validate_change(cs, trialcs);
2411 	if (retval < 0)
2412 		return retval;
2413 
2414 	if (alloc_tmpmasks(&tmp))
2415 		return -ENOMEM;
2416 
2417 	/*
2418 	 * Check all the descendants in update_cpumasks_hier() if
2419 	 * effective_xcpus is to be changed.
2420 	 */
2421 	force = !cpumask_equal(cs->effective_xcpus, trialcs->effective_xcpus);
2422 
2423 	partition_cpus_change(cs, trialcs, &tmp);
2424 
2425 	spin_lock_irq(&callback_lock);
2426 	cpumask_copy(cs->cpus_allowed, trialcs->cpus_allowed);
2427 	cpumask_copy(cs->effective_xcpus, trialcs->effective_xcpus);
2428 	if ((old_prs > 0) && !is_partition_valid(cs))
2429 		reset_partition_data(cs);
2430 	spin_unlock_irq(&callback_lock);
2431 
2432 	/* effective_cpus/effective_xcpus will be updated here */
2433 	update_cpumasks_hier(cs, &tmp, force);
2434 
2435 	/* Update CS_SCHED_LOAD_BALANCE and/or sched_domains, if necessary */
2436 	if (cs->partition_root_state)
2437 		update_partition_sd_lb(cs, old_prs);
2438 
2439 	free_tmpmasks(&tmp);
2440 	return retval;
2441 }
2442 
2443 /**
2444  * update_exclusive_cpumask - update the exclusive_cpus mask of a cpuset
2445  * @cs: the cpuset to consider
2446  * @trialcs: trial cpuset
2447  * @buf: buffer of cpu numbers written to this cpuset
2448  *
2449  * The tasks' cpumask will be updated if cs is a valid partition root.
2450  */
2451 static int update_exclusive_cpumask(struct cpuset *cs, struct cpuset *trialcs,
2452 				    const char *buf)
2453 {
2454 	int retval;
2455 	struct tmpmasks tmp;
2456 	bool force = false;
2457 	int old_prs = cs->partition_root_state;
2458 
2459 	retval = parse_cpuset_cpulist(buf, trialcs->exclusive_cpus);
2460 	if (retval < 0)
2461 		return retval;
2462 
2463 	/* Nothing to do if the CPUs didn't change */
2464 	if (cpumask_equal(cs->exclusive_cpus, trialcs->exclusive_cpus))
2465 		return 0;
2466 
2467 	/*
2468 	 * Reject the change if there is exclusive CPUs conflict with
2469 	 * the siblings.
2470 	 */
2471 	if (compute_trialcs_excpus(trialcs, cs))
2472 		return -EINVAL;
2473 
2474 	/*
2475 	 * Check all the descendants in update_cpumasks_hier() if
2476 	 * effective_xcpus is to be changed.
2477 	 */
2478 	force = !cpumask_equal(cs->effective_xcpus, trialcs->effective_xcpus);
2479 
2480 	retval = validate_change(cs, trialcs);
2481 	if (retval)
2482 		return retval;
2483 
2484 	if (alloc_tmpmasks(&tmp))
2485 		return -ENOMEM;
2486 
2487 	trialcs->prs_err = PERR_NONE;
2488 	partition_cpus_change(cs, trialcs, &tmp);
2489 
2490 	spin_lock_irq(&callback_lock);
2491 	cpumask_copy(cs->exclusive_cpus, trialcs->exclusive_cpus);
2492 	cpumask_copy(cs->effective_xcpus, trialcs->effective_xcpus);
2493 	if ((old_prs > 0) && !is_partition_valid(cs))
2494 		reset_partition_data(cs);
2495 	spin_unlock_irq(&callback_lock);
2496 
2497 	/*
2498 	 * Call update_cpumasks_hier() to update effective_cpus/effective_xcpus
2499 	 * of the subtree when it is a valid partition root or effective_xcpus
2500 	 * is updated.
2501 	 */
2502 	if (is_partition_valid(cs) || force)
2503 		update_cpumasks_hier(cs, &tmp, force);
2504 
2505 	/* Update CS_SCHED_LOAD_BALANCE and/or sched_domains, if necessary */
2506 	if (cs->partition_root_state)
2507 		update_partition_sd_lb(cs, old_prs);
2508 
2509 	free_tmpmasks(&tmp);
2510 	return 0;
2511 }
2512 
2513 /*
2514  * Migrate memory region from one set of nodes to another.  This is
2515  * performed asynchronously as it can be called from process migration path
2516  * holding locks involved in process management.  All mm migrations are
2517  * performed in the queued order and can be waited for by flushing
2518  * cpuset_migrate_mm_wq.
2519  */
2520 
2521 struct cpuset_migrate_mm_work {
2522 	struct work_struct	work;
2523 	struct mm_struct	*mm;
2524 	nodemask_t		from;
2525 	nodemask_t		to;
2526 };
2527 
2528 static void cpuset_migrate_mm_workfn(struct work_struct *work)
2529 {
2530 	struct cpuset_migrate_mm_work *mwork =
2531 		container_of(work, struct cpuset_migrate_mm_work, work);
2532 
2533 	/* on a wq worker, no need to worry about %current's mems_allowed */
2534 	do_migrate_pages(mwork->mm, &mwork->from, &mwork->to, MPOL_MF_MOVE_ALL);
2535 	mmput(mwork->mm);
2536 	kfree(mwork);
2537 }
2538 
2539 static void cpuset_migrate_mm(struct mm_struct *mm, const nodemask_t *from,
2540 							const nodemask_t *to)
2541 {
2542 	struct cpuset_migrate_mm_work *mwork;
2543 
2544 	if (nodes_equal(*from, *to)) {
2545 		mmput(mm);
2546 		return;
2547 	}
2548 
2549 	mwork = kzalloc_obj(*mwork);
2550 	if (mwork) {
2551 		mwork->mm = mm;
2552 		mwork->from = *from;
2553 		mwork->to = *to;
2554 		INIT_WORK(&mwork->work, cpuset_migrate_mm_workfn);
2555 		queue_work(cpuset_migrate_mm_wq, &mwork->work);
2556 	} else {
2557 		mmput(mm);
2558 	}
2559 }
2560 
2561 static void flush_migrate_mm_task_workfn(struct callback_head *head)
2562 {
2563 	flush_workqueue(cpuset_migrate_mm_wq);
2564 	kfree(head);
2565 }
2566 
2567 static void schedule_flush_migrate_mm(void)
2568 {
2569 	struct callback_head *flush_cb;
2570 
2571 	flush_cb = kzalloc_obj(struct callback_head);
2572 	if (!flush_cb)
2573 		return;
2574 
2575 	init_task_work(flush_cb, flush_migrate_mm_task_workfn);
2576 
2577 	if (task_work_add(current, flush_cb, TWA_RESUME))
2578 		kfree(flush_cb);
2579 }
2580 
2581 /*
2582  * cpuset_change_task_nodemask - change task's mems_allowed and mempolicy
2583  * @tsk: the task to change
2584  * @newmems: new nodes that the task will be set
2585  *
2586  * We use the mems_allowed_seq seqlock to safely update both tsk->mems_allowed
2587  * and rebind an eventual tasks' mempolicy. If the task is allocating in
2588  * parallel, it might temporarily see an empty intersection, which results in
2589  * a seqlock check and retry before OOM or allocation failure.
2590  */
2591 static void cpuset_change_task_nodemask(struct task_struct *tsk,
2592 					nodemask_t *newmems)
2593 {
2594 	task_lock(tsk);
2595 
2596 	local_irq_disable();
2597 	write_seqcount_begin(&tsk->mems_allowed_seq);
2598 
2599 	nodes_or(tsk->mems_allowed, tsk->mems_allowed, *newmems);
2600 	mpol_rebind_task(tsk, newmems);
2601 	tsk->mems_allowed = *newmems;
2602 
2603 	write_seqcount_end(&tsk->mems_allowed_seq);
2604 	local_irq_enable();
2605 
2606 	task_unlock(tsk);
2607 }
2608 
2609 static void *cpuset_being_rebound;
2610 
2611 /**
2612  * cpuset_update_tasks_nodemask - Update the nodemasks of tasks in the cpuset.
2613  * @cs: the cpuset in which each task's mems_allowed mask needs to be changed
2614  *
2615  * Iterate through each task of @cs updating its mems_allowed to the
2616  * effective cpuset's.  As this function is called with cpuset_mutex held,
2617  * cpuset membership stays stable.
2618  */
2619 void cpuset_update_tasks_nodemask(struct cpuset *cs)
2620 {
2621 	static nodemask_t newmems;	/* protected by cpuset_mutex */
2622 	struct css_task_iter it;
2623 	struct task_struct *task;
2624 
2625 	cpuset_being_rebound = cs;		/* causes mpol_dup() rebind */
2626 
2627 	guarantee_online_mems(cs, &newmems);
2628 
2629 	/*
2630 	 * The mpol_rebind_mm() call takes mmap_lock, which we couldn't
2631 	 * take while holding tasklist_lock.  Forks can happen - the
2632 	 * mpol_dup() cpuset_being_rebound check will catch such forks,
2633 	 * and rebind their vma mempolicies too.  Because we still hold
2634 	 * the global cpuset_mutex, we know that no other rebind effort
2635 	 * will be contending for the global variable cpuset_being_rebound.
2636 	 * It's ok if we rebind the same mm twice; mpol_rebind_mm()
2637 	 * is idempotent.  Also migrate pages in each mm to new nodes.
2638 	 */
2639 	css_task_iter_start(&cs->css, 0, &it);
2640 	while ((task = css_task_iter_next(&it))) {
2641 		struct mm_struct *mm;
2642 		bool migrate;
2643 
2644 		cpuset_change_task_nodemask(task, &newmems);
2645 
2646 		mm = get_task_mm(task);
2647 		if (!mm)
2648 			continue;
2649 
2650 		migrate = is_memory_migrate(cs);
2651 
2652 		mpol_rebind_mm(mm, &cs->mems_allowed);
2653 		if (migrate)
2654 			cpuset_migrate_mm(mm, &cs->old_mems_allowed, &newmems);
2655 		else
2656 			mmput(mm);
2657 	}
2658 	css_task_iter_end(&it);
2659 
2660 	/*
2661 	 * All the tasks' nodemasks have been updated, update
2662 	 * cs->old_mems_allowed.
2663 	 */
2664 	cs->old_mems_allowed = newmems;
2665 
2666 	/* We're done rebinding vmas to this cpuset's new mems_allowed. */
2667 	cpuset_being_rebound = NULL;
2668 }
2669 
2670 /*
2671  * update_nodemasks_hier - Update effective nodemasks and tasks in the subtree
2672  * @cs: the cpuset to consider
2673  * @new_mems: a temp variable for calculating new effective_mems
2674  *
2675  * When configured nodemask is changed, the effective nodemasks of this cpuset
2676  * and all its descendants need to be updated.
2677  *
2678  * On legacy hierarchy, effective_mems will be the same with mems_allowed.
2679  *
2680  * Called with cpuset_mutex held
2681  */
2682 static void update_nodemasks_hier(struct cpuset *cs, nodemask_t *new_mems)
2683 {
2684 	struct cpuset *cp;
2685 	struct cgroup_subsys_state *pos_css;
2686 
2687 	rcu_read_lock();
2688 	cpuset_for_each_descendant_pre(cp, pos_css, cs) {
2689 		struct cpuset *parent = parent_cs(cp);
2690 
2691 		bool has_mems = nodes_and(*new_mems, cp->mems_allowed, parent->effective_mems);
2692 
2693 		/*
2694 		 * If it becomes empty, inherit the effective mask of the
2695 		 * parent, which is guaranteed to have some MEMs.
2696 		 */
2697 		if (is_in_v2_mode() && !has_mems)
2698 			*new_mems = parent->effective_mems;
2699 
2700 		/* Skip the whole subtree if the nodemask remains the same. */
2701 		if (nodes_equal(*new_mems, cp->effective_mems)) {
2702 			pos_css = css_rightmost_descendant(pos_css);
2703 			continue;
2704 		}
2705 
2706 		if (!css_tryget_online(&cp->css))
2707 			continue;
2708 		rcu_read_unlock();
2709 
2710 		spin_lock_irq(&callback_lock);
2711 		cp->effective_mems = *new_mems;
2712 		spin_unlock_irq(&callback_lock);
2713 
2714 		WARN_ON(!is_in_v2_mode() &&
2715 			!nodes_equal(cp->mems_allowed, cp->effective_mems));
2716 
2717 		cpuset_update_tasks_nodemask(cp);
2718 
2719 		rcu_read_lock();
2720 		css_put(&cp->css);
2721 	}
2722 	rcu_read_unlock();
2723 }
2724 
2725 /*
2726  * Handle user request to change the 'mems' memory placement
2727  * of a cpuset.  Needs to validate the request, update the
2728  * cpusets mems_allowed, and for each task in the cpuset,
2729  * update mems_allowed and rebind task's mempolicy and any vma
2730  * mempolicies and if the cpuset is marked 'memory_migrate',
2731  * migrate the tasks pages to the new memory.
2732  *
2733  * Call with cpuset_mutex held. May take callback_lock during call.
2734  * Will take tasklist_lock, scan tasklist for tasks in cpuset cs,
2735  * lock each such tasks mm->mmap_lock, scan its vma's and rebind
2736  * their mempolicies to the cpusets new mems_allowed.
2737  */
2738 static int update_nodemask(struct cpuset *cs, struct cpuset *trialcs,
2739 			   const char *buf)
2740 {
2741 	int retval;
2742 
2743 	/*
2744 	 * An empty mems_allowed is ok iff there are no tasks in the cpuset.
2745 	 * The validate_change() call ensures that cpusets with tasks have memory.
2746 	 */
2747 	retval = nodelist_parse(buf, trialcs->mems_allowed);
2748 	if (retval < 0)
2749 		return retval;
2750 
2751 	if (!nodes_subset(trialcs->mems_allowed,
2752 			  top_cpuset.mems_allowed))
2753 		return -EINVAL;
2754 
2755 	/* No change? nothing to do */
2756 	if (nodes_equal(cs->mems_allowed, trialcs->mems_allowed))
2757 		return 0;
2758 
2759 	retval = validate_change(cs, trialcs);
2760 	if (retval < 0)
2761 		return retval;
2762 
2763 	check_insane_mems_config(&trialcs->mems_allowed);
2764 
2765 	spin_lock_irq(&callback_lock);
2766 	cs->mems_allowed = trialcs->mems_allowed;
2767 	spin_unlock_irq(&callback_lock);
2768 
2769 	/* use trialcs->mems_allowed as a temp variable */
2770 	update_nodemasks_hier(cs, &trialcs->mems_allowed);
2771 	return 0;
2772 }
2773 
2774 bool current_cpuset_is_being_rebound(void)
2775 {
2776 	bool ret;
2777 
2778 	rcu_read_lock();
2779 	ret = task_cs(current) == cpuset_being_rebound;
2780 	rcu_read_unlock();
2781 
2782 	return ret;
2783 }
2784 
2785 /*
2786  * cpuset_update_flag - read a 0 or a 1 in a file and update associated flag
2787  * bit:		the bit to update (see cpuset_flagbits_t)
2788  * cs:		the cpuset to update
2789  * turning_on: 	whether the flag is being set or cleared
2790  *
2791  * Call with cpuset_mutex held.
2792  */
2793 
2794 int cpuset_update_flag(cpuset_flagbits_t bit, struct cpuset *cs,
2795 		       int turning_on)
2796 {
2797 	struct cpuset *trialcs;
2798 	int balance_flag_changed;
2799 	int spread_flag_changed;
2800 	int err;
2801 
2802 	trialcs = dup_or_alloc_cpuset(cs);
2803 	if (!trialcs)
2804 		return -ENOMEM;
2805 
2806 	if (turning_on)
2807 		set_bit(bit, &trialcs->flags);
2808 	else
2809 		clear_bit(bit, &trialcs->flags);
2810 
2811 	err = validate_change(cs, trialcs);
2812 	if (err < 0)
2813 		goto out;
2814 
2815 	balance_flag_changed = (is_sched_load_balance(cs) !=
2816 				is_sched_load_balance(trialcs));
2817 
2818 	spread_flag_changed = ((is_spread_slab(cs) != is_spread_slab(trialcs))
2819 			|| (is_spread_page(cs) != is_spread_page(trialcs)));
2820 
2821 	spin_lock_irq(&callback_lock);
2822 	cs->flags = trialcs->flags;
2823 	spin_unlock_irq(&callback_lock);
2824 
2825 	if (!cpumask_empty(trialcs->cpus_allowed) && balance_flag_changed) {
2826 		if (cpuset_v2())
2827 			cpuset_force_rebuild();
2828 		else
2829 			rebuild_sched_domains_locked();
2830 	}
2831 
2832 	if (spread_flag_changed)
2833 		cpuset1_update_tasks_flags(cs);
2834 out:
2835 	free_cpuset(trialcs);
2836 	return err;
2837 }
2838 
2839 /**
2840  * update_prstate - update partition_root_state
2841  * @cs: the cpuset to update
2842  * @new_prs: new partition root state
2843  * Return: 0 if successful, != 0 if error
2844  *
2845  * Call with cpuset_mutex held.
2846  */
2847 static int update_prstate(struct cpuset *cs, int new_prs)
2848 {
2849 	int err = PERR_NONE, old_prs = cs->partition_root_state;
2850 	struct cpuset *parent = parent_cs(cs);
2851 	struct tmpmasks tmpmask;
2852 	bool isolcpus_updated = false;
2853 
2854 	if (old_prs == new_prs)
2855 		return 0;
2856 
2857 	/*
2858 	 * Treat a previously invalid partition root as if it is a "member".
2859 	 */
2860 	if (new_prs && is_partition_invalid(cs))
2861 		old_prs = PRS_MEMBER;
2862 
2863 	if (alloc_tmpmasks(&tmpmask))
2864 		return -ENOMEM;
2865 
2866 	err = update_partition_exclusive_flag(cs, new_prs);
2867 	if (err)
2868 		goto out;
2869 
2870 	if (!old_prs) {
2871 		/*
2872 		 * cpus_allowed and exclusive_cpus cannot be both empty.
2873 		 */
2874 		if (xcpus_empty(cs)) {
2875 			err = PERR_CPUSEMPTY;
2876 			goto out;
2877 		}
2878 
2879 		/*
2880 		 * We don't support the creation of a new local partition with
2881 		 * a remote partition underneath it. This unsupported
2882 		 * setting can happen only if parent is the top_cpuset because
2883 		 * a remote partition cannot be created underneath an existing
2884 		 * local or remote partition.
2885 		 */
2886 		if ((parent == &top_cpuset) &&
2887 		    cpumask_intersects(cs->exclusive_cpus, subpartitions_cpus)) {
2888 			err = PERR_REMOTE;
2889 			goto out;
2890 		}
2891 
2892 		/*
2893 		 * If parent is valid partition, enable local partiion.
2894 		 * Otherwise, enable a remote partition.
2895 		 */
2896 		if (is_partition_valid(parent)) {
2897 			enum partition_cmd cmd = (new_prs == PRS_ROOT)
2898 					       ? partcmd_enable : partcmd_enablei;
2899 
2900 			err = update_parent_effective_cpumask(cs, cmd, NULL, &tmpmask);
2901 		} else {
2902 			err = remote_partition_enable(cs, new_prs, &tmpmask);
2903 		}
2904 	} else if (old_prs && new_prs) {
2905 		/*
2906 		 * A change in load balance state only, no change in cpumasks.
2907 		 * Need to update isolated_cpus.
2908 		 */
2909 		if (((new_prs == PRS_ISOLATED) &&
2910 		     !isolated_cpus_can_update(cs->effective_xcpus, NULL)) ||
2911 		    prstate_housekeeping_conflict(new_prs, cs->effective_xcpus))
2912 			err = PERR_HKEEPING;
2913 		else
2914 			isolcpus_updated = true;
2915 	} else {
2916 		/*
2917 		 * Switching back to member is always allowed even if it
2918 		 * disables child partitions.
2919 		 */
2920 		if (is_remote_partition(cs))
2921 			remote_partition_disable(cs, &tmpmask);
2922 		else
2923 			update_parent_effective_cpumask(cs, partcmd_disable,
2924 							NULL, &tmpmask);
2925 
2926 		/*
2927 		 * Invalidation of child partitions will be done in
2928 		 * update_cpumasks_hier().
2929 		 */
2930 	}
2931 out:
2932 	/*
2933 	 * Make partition invalid & disable CS_CPU_EXCLUSIVE if an error
2934 	 * happens.
2935 	 */
2936 	if (err) {
2937 		new_prs = -new_prs;
2938 		update_partition_exclusive_flag(cs, new_prs);
2939 	}
2940 
2941 	spin_lock_irq(&callback_lock);
2942 	cs->partition_root_state = new_prs;
2943 	WRITE_ONCE(cs->prs_err, err);
2944 	if (!is_partition_valid(cs))
2945 		reset_partition_data(cs);
2946 	else if (isolcpus_updated)
2947 		isolated_cpus_update(old_prs, new_prs, cs->effective_xcpus);
2948 	spin_unlock_irq(&callback_lock);
2949 
2950 	/* Force update if switching back to member & update effective_xcpus */
2951 	update_cpumasks_hier(cs, &tmpmask, !new_prs);
2952 
2953 	/* A newly created partition must have effective_xcpus set */
2954 	WARN_ON_ONCE(!old_prs && (new_prs > 0)
2955 			      && cpumask_empty(cs->effective_xcpus));
2956 
2957 	/* Update sched domains and load balance flag */
2958 	update_partition_sd_lb(cs, old_prs);
2959 
2960 	notify_partition_change(cs, old_prs);
2961 	if (force_sd_rebuild)
2962 		rebuild_sched_domains_locked();
2963 	free_tmpmasks(&tmpmask);
2964 	return 0;
2965 }
2966 
2967 static struct cpuset *cpuset_attach_old_cs;
2968 
2969 /*
2970  * Check to see if a cpuset can accept a new task
2971  * For v1, cpus_allowed and mems_allowed can't be empty.
2972  * For v2, effective_cpus can't be empty.
2973  * Note that in v1, effective_cpus = cpus_allowed.
2974  */
2975 static int cpuset_can_attach_check(struct cpuset *cs)
2976 {
2977 	if (cpumask_empty(cs->effective_cpus) ||
2978 	   (!is_in_v2_mode() && nodes_empty(cs->mems_allowed)))
2979 		return -ENOSPC;
2980 	return 0;
2981 }
2982 
2983 static void reset_migrate_dl_data(struct cpuset *cs)
2984 {
2985 	cs->nr_migrate_dl_tasks = 0;
2986 	cs->sum_migrate_dl_bw = 0;
2987 	cs->dl_bw_cpu = -1;
2988 }
2989 
2990 /* Called by cgroups to determine if a cpuset is usable; cpuset_mutex held */
2991 static int cpuset_can_attach(struct cgroup_taskset *tset)
2992 {
2993 	struct cgroup_subsys_state *css;
2994 	struct cpuset *cs, *oldcs;
2995 	struct task_struct *task;
2996 	bool setsched_check;
2997 	int cpu, ret;
2998 
2999 	/* used later by cpuset_attach() */
3000 	cpuset_attach_old_cs = task_cs(cgroup_taskset_first(tset, &css));
3001 	oldcs = cpuset_attach_old_cs;
3002 	cs = css_cs(css);
3003 
3004 	mutex_lock(&cpuset_mutex);
3005 
3006 	/* Check to see if task is allowed in the cpuset */
3007 	ret = cpuset_can_attach_check(cs);
3008 	if (ret)
3009 		goto out_unlock;
3010 
3011 	/*
3012 	 * Skip rights over task setsched check in v2 when nothing changes,
3013 	 * migration permission derives from hierarchy ownership in
3014 	 * cgroup_procs_write_permission()).
3015 	 */
3016 	setsched_check = !cpuset_v2() ||
3017 		!cpumask_equal(cs->effective_cpus, oldcs->effective_cpus) ||
3018 		!nodes_equal(cs->effective_mems, oldcs->effective_mems);
3019 
3020 	/*
3021 	 * A v1 cpuset with tasks will have no CPU left only when CPU hotplug
3022 	 * brings the last online CPU offline as users are not allowed to empty
3023 	 * cpuset.cpus when there are active tasks inside. When that happens,
3024 	 * we should allow tasks to migrate out without security check to make
3025 	 * sure they will be able to run after migration.
3026 	 */
3027 	if (!is_in_v2_mode() && cpumask_empty(oldcs->effective_cpus))
3028 		setsched_check = false;
3029 
3030 	cgroup_taskset_for_each(task, css, tset) {
3031 		ret = task_can_attach(task);
3032 		if (ret)
3033 			goto out_unlock;
3034 
3035 		if (setsched_check) {
3036 			ret = security_task_setscheduler(task);
3037 			if (ret)
3038 				goto out_unlock;
3039 		}
3040 
3041 		if (dl_task(task)) {
3042 			/*
3043 			 * Count all migrating DL tasks for cpuset task accounting.
3044 			 * Only tasks that need a root-domain bandwidth move
3045 			 * contribute to sum_migrate_dl_bw.
3046 			 */
3047 			cs->nr_migrate_dl_tasks++;
3048 			if (dl_task_needs_bw_move(task, cs->effective_cpus))
3049 				cs->sum_migrate_dl_bw += task->dl.dl_bw;
3050 		}
3051 	}
3052 
3053 	if (!cs->sum_migrate_dl_bw)
3054 		goto out_success;
3055 
3056 	cpu = cpumask_any_and(cpu_active_mask, cs->effective_cpus);
3057 	if (unlikely(cpu >= nr_cpu_ids)) {
3058 		ret = -EINVAL;
3059 		goto out_unlock;
3060 	}
3061 
3062 	ret = dl_bw_alloc(cpu, cs->sum_migrate_dl_bw);
3063 	if (ret)
3064 		goto out_unlock;
3065 
3066 	cs->dl_bw_cpu = cpu;
3067 
3068 out_success:
3069 	/*
3070 	 * Mark attach is in progress.  This makes validate_change() fail
3071 	 * changes which zero cpus/mems_allowed.
3072 	 */
3073 	cs->attach_in_progress++;
3074 
3075 out_unlock:
3076 	if (ret)
3077 		reset_migrate_dl_data(cs);
3078 	mutex_unlock(&cpuset_mutex);
3079 	return ret;
3080 }
3081 
3082 static void cpuset_cancel_attach(struct cgroup_taskset *tset)
3083 {
3084 	struct cgroup_subsys_state *css;
3085 	struct cpuset *cs;
3086 
3087 	cgroup_taskset_first(tset, &css);
3088 	cs = css_cs(css);
3089 
3090 	mutex_lock(&cpuset_mutex);
3091 	dec_attach_in_progress_locked(cs);
3092 
3093 	if (cs->dl_bw_cpu >= 0)
3094 		dl_bw_free(cs->dl_bw_cpu, cs->sum_migrate_dl_bw);
3095 
3096 	if (cs->nr_migrate_dl_tasks)
3097 		reset_migrate_dl_data(cs);
3098 
3099 	mutex_unlock(&cpuset_mutex);
3100 }
3101 
3102 /*
3103  * Protected by cpuset_mutex. cpus_attach is used only by cpuset_attach_task()
3104  * but we can't allocate it dynamically there.  Define it global and
3105  * allocate from cpuset_init().
3106  */
3107 static cpumask_var_t cpus_attach;
3108 static nodemask_t cpuset_attach_nodemask_to;
3109 
3110 static void cpuset_attach_task(struct cpuset *cs, struct task_struct *task)
3111 {
3112 	lockdep_assert_cpuset_lock_held();
3113 
3114 	if (cs != &top_cpuset)
3115 		guarantee_active_cpus(task, cpus_attach);
3116 	else
3117 		cpumask_andnot(cpus_attach, task_cpu_possible_mask(task),
3118 			       subpartitions_cpus);
3119 	/*
3120 	 * can_attach beforehand should guarantee that this doesn't
3121 	 * fail.  TODO: have a better way to handle failure here
3122 	 */
3123 	WARN_ON_ONCE(set_cpus_allowed_ptr(task, cpus_attach));
3124 
3125 	cpuset_change_task_nodemask(task, &cpuset_attach_nodemask_to);
3126 	cpuset1_update_task_spread_flags(cs, task);
3127 }
3128 
3129 static void cpuset_attach(struct cgroup_taskset *tset)
3130 {
3131 	struct task_struct *task;
3132 	struct task_struct *leader;
3133 	struct cgroup_subsys_state *css;
3134 	struct cpuset *cs;
3135 	struct cpuset *oldcs = cpuset_attach_old_cs;
3136 	bool cpus_updated, mems_updated;
3137 	bool queue_task_work = false;
3138 
3139 	cgroup_taskset_first(tset, &css);
3140 	cs = css_cs(css);
3141 
3142 	lockdep_assert_cpus_held();	/* see cgroup_attach_lock() */
3143 	mutex_lock(&cpuset_mutex);
3144 	cpus_updated = !cpumask_equal(cs->effective_cpus,
3145 				      oldcs->effective_cpus);
3146 	mems_updated = !nodes_equal(cs->effective_mems, oldcs->effective_mems);
3147 
3148 	/*
3149 	 * In the default hierarchy, enabling cpuset in the child cgroups
3150 	 * will trigger a number of cpuset_attach() calls with no change
3151 	 * in effective cpus and mems. In that case, we can optimize out
3152 	 * by skipping the task iteration and update.
3153 	 */
3154 	if (cpuset_v2() && !cpus_updated && !mems_updated) {
3155 		cpuset_attach_nodemask_to = cs->effective_mems;
3156 		goto out;
3157 	}
3158 
3159 	guarantee_online_mems(cs, &cpuset_attach_nodemask_to);
3160 
3161 	cgroup_taskset_for_each(task, css, tset)
3162 		cpuset_attach_task(cs, task);
3163 
3164 	/*
3165 	 * Change mm for all threadgroup leaders. This is expensive and may
3166 	 * sleep and should be moved outside migration path proper. Skip it
3167 	 * if there is no change in effective_mems and CS_MEMORY_MIGRATE is
3168 	 * not set.
3169 	 */
3170 	cpuset_attach_nodemask_to = cs->effective_mems;
3171 	if (!is_memory_migrate(cs) && !mems_updated)
3172 		goto out;
3173 
3174 	cgroup_taskset_for_each_leader(leader, css, tset) {
3175 		struct mm_struct *mm = get_task_mm(leader);
3176 
3177 		if (mm) {
3178 			mpol_rebind_mm(mm, &cpuset_attach_nodemask_to);
3179 
3180 			/*
3181 			 * old_mems_allowed is the same with mems_allowed
3182 			 * here, except if this task is being moved
3183 			 * automatically due to hotplug.  In that case
3184 			 * @mems_allowed has been updated and is empty, so
3185 			 * @old_mems_allowed is the right nodesets that we
3186 			 * migrate mm from.
3187 			 */
3188 			if (is_memory_migrate(cs)) {
3189 				cpuset_migrate_mm(mm, &oldcs->old_mems_allowed,
3190 						  &cpuset_attach_nodemask_to);
3191 				queue_task_work = true;
3192 			} else
3193 				mmput(mm);
3194 		}
3195 	}
3196 
3197 out:
3198 	if (queue_task_work)
3199 		schedule_flush_migrate_mm();
3200 	cs->old_mems_allowed = cpuset_attach_nodemask_to;
3201 
3202 	if (cs->nr_migrate_dl_tasks) {
3203 		cs->nr_deadline_tasks += cs->nr_migrate_dl_tasks;
3204 		oldcs->nr_deadline_tasks -= cs->nr_migrate_dl_tasks;
3205 		reset_migrate_dl_data(cs);
3206 	}
3207 
3208 	dec_attach_in_progress_locked(cs);
3209 
3210 	mutex_unlock(&cpuset_mutex);
3211 }
3212 
3213 /*
3214  * Common handling for a write to a "cpus" or "mems" file.
3215  */
3216 ssize_t cpuset_write_resmask(struct kernfs_open_file *of,
3217 				    char *buf, size_t nbytes, loff_t off)
3218 {
3219 	struct cpuset *cs = css_cs(of_css(of));
3220 	struct cpuset *trialcs;
3221 	int retval = -ENODEV;
3222 
3223 	/* root is read-only */
3224 	if (cs == &top_cpuset)
3225 		return -EACCES;
3226 
3227 	buf = strstrip(buf);
3228 	cpuset_full_lock();
3229 	if (!is_cpuset_online(cs))
3230 		goto out_unlock;
3231 
3232 	trialcs = dup_or_alloc_cpuset(cs);
3233 	if (!trialcs) {
3234 		retval = -ENOMEM;
3235 		goto out_unlock;
3236 	}
3237 
3238 	switch (of_cft(of)->private) {
3239 	case FILE_CPULIST:
3240 		retval = update_cpumask(cs, trialcs, buf);
3241 		break;
3242 	case FILE_EXCLUSIVE_CPULIST:
3243 		retval = update_exclusive_cpumask(cs, trialcs, buf);
3244 		break;
3245 	case FILE_MEMLIST:
3246 		retval = update_nodemask(cs, trialcs, buf);
3247 		break;
3248 	default:
3249 		retval = -EINVAL;
3250 		break;
3251 	}
3252 
3253 	free_cpuset(trialcs);
3254 out_unlock:
3255 	cpuset_update_sd_hk_unlock();
3256 	if (of_cft(of)->private == FILE_MEMLIST)
3257 		schedule_flush_migrate_mm();
3258 	return retval ?: nbytes;
3259 }
3260 
3261 /*
3262  * These ascii lists should be read in a single call, by using a user
3263  * buffer large enough to hold the entire map.  If read in smaller
3264  * chunks, there is no guarantee of atomicity.  Since the display format
3265  * used, list of ranges of sequential numbers, is variable length,
3266  * and since these maps can change value dynamically, one could read
3267  * gibberish by doing partial reads while a list was changing.
3268  */
3269 int cpuset_common_seq_show(struct seq_file *sf, void *v)
3270 {
3271 	struct cpuset *cs = css_cs(seq_css(sf));
3272 	cpuset_filetype_t type = seq_cft(sf)->private;
3273 	int ret = 0;
3274 
3275 	spin_lock_irq(&callback_lock);
3276 
3277 	switch (type) {
3278 	case FILE_CPULIST:
3279 		seq_printf(sf, "%*pbl\n", cpumask_pr_args(cs->cpus_allowed));
3280 		break;
3281 	case FILE_MEMLIST:
3282 		seq_printf(sf, "%*pbl\n", nodemask_pr_args(&cs->mems_allowed));
3283 		break;
3284 	case FILE_EFFECTIVE_CPULIST:
3285 		seq_printf(sf, "%*pbl\n", cpumask_pr_args(cs->effective_cpus));
3286 		break;
3287 	case FILE_EFFECTIVE_MEMLIST:
3288 		seq_printf(sf, "%*pbl\n", nodemask_pr_args(&cs->effective_mems));
3289 		break;
3290 	case FILE_EXCLUSIVE_CPULIST:
3291 		seq_printf(sf, "%*pbl\n", cpumask_pr_args(cs->exclusive_cpus));
3292 		break;
3293 	case FILE_EFFECTIVE_XCPULIST:
3294 		seq_printf(sf, "%*pbl\n", cpumask_pr_args(cs->effective_xcpus));
3295 		break;
3296 	case FILE_SUBPARTS_CPULIST:
3297 		seq_printf(sf, "%*pbl\n", cpumask_pr_args(subpartitions_cpus));
3298 		break;
3299 	case FILE_ISOLATED_CPULIST:
3300 		seq_printf(sf, "%*pbl\n", cpumask_pr_args(isolated_cpus));
3301 		break;
3302 	default:
3303 		ret = -EINVAL;
3304 	}
3305 
3306 	spin_unlock_irq(&callback_lock);
3307 	return ret;
3308 }
3309 
3310 static int cpuset_partition_show(struct seq_file *seq, void *v)
3311 {
3312 	struct cpuset *cs = css_cs(seq_css(seq));
3313 	const char *err, *type = NULL;
3314 
3315 	switch (cs->partition_root_state) {
3316 	case PRS_ROOT:
3317 		seq_puts(seq, "root\n");
3318 		break;
3319 	case PRS_ISOLATED:
3320 		seq_puts(seq, "isolated\n");
3321 		break;
3322 	case PRS_MEMBER:
3323 		seq_puts(seq, "member\n");
3324 		break;
3325 	case PRS_INVALID_ROOT:
3326 		type = "root";
3327 		fallthrough;
3328 	case PRS_INVALID_ISOLATED:
3329 		if (!type)
3330 			type = "isolated";
3331 		err = perr_strings[READ_ONCE(cs->prs_err)];
3332 		if (err)
3333 			seq_printf(seq, "%s invalid (%s)\n", type, err);
3334 		else
3335 			seq_printf(seq, "%s invalid\n", type);
3336 		break;
3337 	}
3338 	return 0;
3339 }
3340 
3341 static ssize_t cpuset_partition_write(struct kernfs_open_file *of, char *buf,
3342 				     size_t nbytes, loff_t off)
3343 {
3344 	struct cpuset *cs = css_cs(of_css(of));
3345 	int val;
3346 	int retval = -ENODEV;
3347 
3348 	buf = strstrip(buf);
3349 
3350 	if (!strcmp(buf, "root"))
3351 		val = PRS_ROOT;
3352 	else if (!strcmp(buf, "member"))
3353 		val = PRS_MEMBER;
3354 	else if (!strcmp(buf, "isolated"))
3355 		val = PRS_ISOLATED;
3356 	else
3357 		return -EINVAL;
3358 
3359 	cpuset_full_lock();
3360 	if (is_cpuset_online(cs))
3361 		retval = update_prstate(cs, val);
3362 	cpuset_update_sd_hk_unlock();
3363 	return retval ?: nbytes;
3364 }
3365 
3366 /*
3367  * This is currently a minimal set for the default hierarchy. It can be
3368  * expanded later on by migrating more features and control files from v1.
3369  */
3370 static struct cftype dfl_files[] = {
3371 	{
3372 		.name = "cpus",
3373 		.seq_show = cpuset_common_seq_show,
3374 		.write = cpuset_write_resmask,
3375 		.max_write_len = (100U + 6 * NR_CPUS),
3376 		.private = FILE_CPULIST,
3377 		.flags = CFTYPE_NOT_ON_ROOT,
3378 	},
3379 
3380 	{
3381 		.name = "mems",
3382 		.seq_show = cpuset_common_seq_show,
3383 		.write = cpuset_write_resmask,
3384 		.max_write_len = (100U + 6 * MAX_NUMNODES),
3385 		.private = FILE_MEMLIST,
3386 		.flags = CFTYPE_NOT_ON_ROOT,
3387 	},
3388 
3389 	{
3390 		.name = "cpus.effective",
3391 		.seq_show = cpuset_common_seq_show,
3392 		.private = FILE_EFFECTIVE_CPULIST,
3393 	},
3394 
3395 	{
3396 		.name = "mems.effective",
3397 		.seq_show = cpuset_common_seq_show,
3398 		.private = FILE_EFFECTIVE_MEMLIST,
3399 	},
3400 
3401 	{
3402 		.name = "cpus.partition",
3403 		.seq_show = cpuset_partition_show,
3404 		.write = cpuset_partition_write,
3405 		.private = FILE_PARTITION_ROOT,
3406 		.flags = CFTYPE_NOT_ON_ROOT,
3407 		.file_offset = offsetof(struct cpuset, partition_file),
3408 	},
3409 
3410 	{
3411 		.name = "cpus.exclusive",
3412 		.seq_show = cpuset_common_seq_show,
3413 		.write = cpuset_write_resmask,
3414 		.max_write_len = (100U + 6 * NR_CPUS),
3415 		.private = FILE_EXCLUSIVE_CPULIST,
3416 		.flags = CFTYPE_NOT_ON_ROOT,
3417 	},
3418 
3419 	{
3420 		.name = "cpus.exclusive.effective",
3421 		.seq_show = cpuset_common_seq_show,
3422 		.private = FILE_EFFECTIVE_XCPULIST,
3423 		.flags = CFTYPE_NOT_ON_ROOT,
3424 	},
3425 
3426 	{
3427 		.name = "cpus.subpartitions",
3428 		.seq_show = cpuset_common_seq_show,
3429 		.private = FILE_SUBPARTS_CPULIST,
3430 		.flags = CFTYPE_ONLY_ON_ROOT | CFTYPE_DEBUG,
3431 	},
3432 
3433 	{
3434 		.name = "cpus.isolated",
3435 		.seq_show = cpuset_common_seq_show,
3436 		.private = FILE_ISOLATED_CPULIST,
3437 		.flags = CFTYPE_ONLY_ON_ROOT,
3438 	},
3439 
3440 	{ }	/* terminate */
3441 };
3442 
3443 
3444 /**
3445  * cpuset_css_alloc - Allocate a cpuset css
3446  * @parent_css: Parent css of the control group that the new cpuset will be
3447  *              part of
3448  * Return: cpuset css on success, -ENOMEM on failure.
3449  *
3450  * Allocate and initialize a new cpuset css, for non-NULL @parent_css, return
3451  * top cpuset css otherwise.
3452  */
3453 static struct cgroup_subsys_state *
3454 cpuset_css_alloc(struct cgroup_subsys_state *parent_css)
3455 {
3456 	struct cpuset *cs;
3457 
3458 	if (!parent_css)
3459 		return &top_cpuset.css;
3460 
3461 	cs = dup_or_alloc_cpuset(NULL);
3462 	if (!cs)
3463 		return ERR_PTR(-ENOMEM);
3464 
3465 	__set_bit(CS_SCHED_LOAD_BALANCE, &cs->flags);
3466 	cpuset1_init(cs);
3467 
3468 	/* Set CS_MEMORY_MIGRATE for default hierarchy */
3469 	if (cpuset_v2())
3470 		__set_bit(CS_MEMORY_MIGRATE, &cs->flags);
3471 
3472 	return &cs->css;
3473 }
3474 
3475 static int cpuset_css_online(struct cgroup_subsys_state *css)
3476 {
3477 	struct cpuset *cs = css_cs(css);
3478 	struct cpuset *parent = parent_cs(cs);
3479 
3480 	if (!parent)
3481 		return 0;
3482 
3483 	cpuset_full_lock();
3484 	/*
3485 	 * For v2, clear CS_SCHED_LOAD_BALANCE if parent is isolated
3486 	 */
3487 	if (cpuset_v2() && !is_sched_load_balance(parent))
3488 		clear_bit(CS_SCHED_LOAD_BALANCE, &cs->flags);
3489 
3490 	cpuset_inc();
3491 
3492 	spin_lock_irq(&callback_lock);
3493 	if (is_in_v2_mode()) {
3494 		cpumask_copy(cs->effective_cpus, parent->effective_cpus);
3495 		cs->effective_mems = parent->effective_mems;
3496 	}
3497 	spin_unlock_irq(&callback_lock);
3498 	cpuset1_online_css(css);
3499 
3500 	cpuset_full_unlock();
3501 	return 0;
3502 }
3503 
3504 /*
3505  * If the cpuset being removed has its flag 'sched_load_balance'
3506  * enabled, then simulate turning sched_load_balance off, which
3507  * will call rebuild_sched_domains_locked(). That is not needed
3508  * in the default hierarchy where only changes in partition
3509  * will cause repartitioning.
3510  */
3511 static void cpuset_css_offline(struct cgroup_subsys_state *css)
3512 {
3513 	struct cpuset *cs = css_cs(css);
3514 
3515 	cpuset_full_lock();
3516 	if (!cpuset_v2() && is_sched_load_balance(cs))
3517 		cpuset_update_flag(CS_SCHED_LOAD_BALANCE, cs, 0);
3518 
3519 	cpuset_dec();
3520 	cpuset_full_unlock();
3521 }
3522 
3523 /*
3524  * If a dying cpuset has the 'cpus.partition' enabled, turn it off by
3525  * changing it back to member to free its exclusive CPUs back to the pool to
3526  * be used by other online cpusets.
3527  */
3528 static void cpuset_css_killed(struct cgroup_subsys_state *css)
3529 {
3530 	struct cpuset *cs = css_cs(css);
3531 
3532 	cpuset_full_lock();
3533 	/* Reset valid partition back to member */
3534 	if (is_partition_valid(cs))
3535 		update_prstate(cs, PRS_MEMBER);
3536 	cpuset_update_sd_hk_unlock();
3537 }
3538 
3539 static void cpuset_css_free(struct cgroup_subsys_state *css)
3540 {
3541 	struct cpuset *cs = css_cs(css);
3542 
3543 	free_cpuset(cs);
3544 }
3545 
3546 static void cpuset_bind(struct cgroup_subsys_state *root_css)
3547 {
3548 	mutex_lock(&cpuset_mutex);
3549 	spin_lock_irq(&callback_lock);
3550 
3551 	if (is_in_v2_mode()) {
3552 		cpumask_copy(top_cpuset.cpus_allowed, cpu_possible_mask);
3553 		cpumask_copy(top_cpuset.effective_xcpus, cpu_possible_mask);
3554 		top_cpuset.mems_allowed = node_possible_map;
3555 	} else {
3556 		cpumask_copy(top_cpuset.cpus_allowed,
3557 			     top_cpuset.effective_cpus);
3558 		top_cpuset.mems_allowed = top_cpuset.effective_mems;
3559 	}
3560 
3561 	spin_unlock_irq(&callback_lock);
3562 	mutex_unlock(&cpuset_mutex);
3563 }
3564 
3565 /*
3566  * In case the child is cloned into a cpuset different from its parent,
3567  * additional checks are done to see if the move is allowed.
3568  */
3569 static int cpuset_can_fork(struct task_struct *task, struct css_set *cset)
3570 {
3571 	struct cpuset *cs = css_cs(cset->subsys[cpuset_cgrp_id]);
3572 	bool same_cs;
3573 	int ret;
3574 
3575 	rcu_read_lock();
3576 	same_cs = (cs == task_cs(current));
3577 	rcu_read_unlock();
3578 
3579 	if (same_cs)
3580 		return 0;
3581 
3582 	lockdep_assert_held(&cgroup_mutex);
3583 	mutex_lock(&cpuset_mutex);
3584 
3585 	/* Check to see if task is allowed in the cpuset */
3586 	ret = cpuset_can_attach_check(cs);
3587 	if (ret)
3588 		goto out_unlock;
3589 
3590 	ret = task_can_attach(task);
3591 	if (ret)
3592 		goto out_unlock;
3593 
3594 	ret = security_task_setscheduler(task);
3595 	if (ret)
3596 		goto out_unlock;
3597 
3598 	/*
3599 	 * Mark attach is in progress.  This makes validate_change() fail
3600 	 * changes which zero cpus/mems_allowed.
3601 	 */
3602 	cs->attach_in_progress++;
3603 out_unlock:
3604 	mutex_unlock(&cpuset_mutex);
3605 	return ret;
3606 }
3607 
3608 static void cpuset_cancel_fork(struct task_struct *task, struct css_set *cset)
3609 {
3610 	struct cpuset *cs = css_cs(cset->subsys[cpuset_cgrp_id]);
3611 	bool same_cs;
3612 
3613 	rcu_read_lock();
3614 	same_cs = (cs == task_cs(current));
3615 	rcu_read_unlock();
3616 
3617 	if (same_cs)
3618 		return;
3619 
3620 	dec_attach_in_progress(cs);
3621 }
3622 
3623 /*
3624  * Make sure the new task conform to the current state of its parent,
3625  * which could have been changed by cpuset just after it inherits the
3626  * state from the parent and before it sits on the cgroup's task list.
3627  */
3628 static void cpuset_fork(struct task_struct *task)
3629 {
3630 	struct cpuset *cs;
3631 	bool same_cs;
3632 
3633 	rcu_read_lock();
3634 	cs = task_cs(task);
3635 	same_cs = (cs == task_cs(current));
3636 	rcu_read_unlock();
3637 
3638 	if (same_cs) {
3639 		if (cs == &top_cpuset)
3640 			return;
3641 
3642 		set_cpus_allowed_ptr(task, current->cpus_ptr);
3643 		task->mems_allowed = current->mems_allowed;
3644 		return;
3645 	}
3646 
3647 	/* CLONE_INTO_CGROUP */
3648 	mutex_lock(&cpuset_mutex);
3649 	guarantee_online_mems(cs, &cpuset_attach_nodemask_to);
3650 	cpuset_attach_task(cs, task);
3651 
3652 	dec_attach_in_progress_locked(cs);
3653 	mutex_unlock(&cpuset_mutex);
3654 }
3655 
3656 struct cgroup_subsys cpuset_cgrp_subsys = {
3657 	.css_alloc	= cpuset_css_alloc,
3658 	.css_online	= cpuset_css_online,
3659 	.css_offline	= cpuset_css_offline,
3660 	.css_killed	= cpuset_css_killed,
3661 	.css_free	= cpuset_css_free,
3662 	.can_attach	= cpuset_can_attach,
3663 	.cancel_attach	= cpuset_cancel_attach,
3664 	.attach		= cpuset_attach,
3665 	.bind		= cpuset_bind,
3666 	.can_fork	= cpuset_can_fork,
3667 	.cancel_fork	= cpuset_cancel_fork,
3668 	.fork		= cpuset_fork,
3669 #ifdef CONFIG_CPUSETS_V1
3670 	.legacy_cftypes	= cpuset1_files,
3671 #endif
3672 	.dfl_cftypes	= dfl_files,
3673 	.early_init	= true,
3674 	.threaded	= true,
3675 };
3676 
3677 /**
3678  * cpuset_init - initialize cpusets at system boot
3679  *
3680  * Description: Initialize top_cpuset
3681  **/
3682 
3683 int __init cpuset_init(void)
3684 {
3685 	BUG_ON(!alloc_cpumask_var(&top_cpuset.cpus_allowed, GFP_KERNEL));
3686 	BUG_ON(!alloc_cpumask_var(&top_cpuset.effective_cpus, GFP_KERNEL));
3687 	BUG_ON(!alloc_cpumask_var(&top_cpuset.effective_xcpus, GFP_KERNEL));
3688 	BUG_ON(!alloc_cpumask_var(&top_cpuset.exclusive_cpus, GFP_KERNEL));
3689 	BUG_ON(!zalloc_cpumask_var(&subpartitions_cpus, GFP_KERNEL));
3690 	BUG_ON(!zalloc_cpumask_var(&isolated_cpus, GFP_KERNEL));
3691 	BUG_ON(!zalloc_cpumask_var(&isolated_hk_cpus, GFP_KERNEL));
3692 
3693 	cpumask_setall(top_cpuset.cpus_allowed);
3694 	nodes_setall(top_cpuset.mems_allowed);
3695 	cpumask_setall(top_cpuset.effective_cpus);
3696 	cpumask_setall(top_cpuset.effective_xcpus);
3697 	cpumask_setall(top_cpuset.exclusive_cpus);
3698 	nodes_setall(top_cpuset.effective_mems);
3699 
3700 	cpuset1_init(&top_cpuset);
3701 
3702 	BUG_ON(!alloc_cpumask_var(&cpus_attach, GFP_KERNEL));
3703 
3704 	if (housekeeping_enabled(HK_TYPE_DOMAIN_BOOT))
3705 		cpumask_andnot(isolated_cpus, cpu_possible_mask,
3706 			       housekeeping_cpumask(HK_TYPE_DOMAIN_BOOT));
3707 
3708 	return 0;
3709 }
3710 
3711 static void
3712 hotplug_update_tasks(struct cpuset *cs,
3713 		     struct cpumask *new_cpus, nodemask_t *new_mems,
3714 		     bool cpus_updated, bool mems_updated)
3715 {
3716 	/* A partition root is allowed to have empty effective cpus */
3717 	if (cpumask_empty(new_cpus) && !is_partition_valid(cs))
3718 		cpumask_copy(new_cpus, parent_cs(cs)->effective_cpus);
3719 	if (nodes_empty(*new_mems))
3720 		*new_mems = parent_cs(cs)->effective_mems;
3721 
3722 	spin_lock_irq(&callback_lock);
3723 	cpumask_copy(cs->effective_cpus, new_cpus);
3724 	cs->effective_mems = *new_mems;
3725 	spin_unlock_irq(&callback_lock);
3726 
3727 	if (cpus_updated)
3728 		cpuset_update_tasks_cpumask(cs, new_cpus);
3729 	if (mems_updated)
3730 		cpuset_update_tasks_nodemask(cs);
3731 }
3732 
3733 void cpuset_force_rebuild(void)
3734 {
3735 	force_sd_rebuild = true;
3736 }
3737 
3738 /**
3739  * cpuset_hotplug_update_tasks - update tasks in a cpuset for hotunplug
3740  * @cs: cpuset in interest
3741  * @tmp: the tmpmasks structure pointer
3742  *
3743  * Compare @cs's cpu and mem masks against top_cpuset and if some have gone
3744  * offline, update @cs accordingly.  If @cs ends up with no CPU or memory,
3745  * all its tasks are moved to the nearest ancestor with both resources.
3746  */
3747 static void cpuset_hotplug_update_tasks(struct cpuset *cs, struct tmpmasks *tmp)
3748 {
3749 	static cpumask_t new_cpus;
3750 	static nodemask_t new_mems;
3751 	bool cpus_updated;
3752 	bool mems_updated;
3753 	bool remote;
3754 	int partcmd = -1;
3755 	struct cpuset *parent;
3756 retry:
3757 	wait_event(cpuset_attach_wq, cs->attach_in_progress == 0);
3758 
3759 	mutex_lock(&cpuset_mutex);
3760 
3761 	/*
3762 	 * We have raced with task attaching. We wait until attaching
3763 	 * is finished, so we won't attach a task to an empty cpuset.
3764 	 */
3765 	if (cs->attach_in_progress) {
3766 		mutex_unlock(&cpuset_mutex);
3767 		goto retry;
3768 	}
3769 
3770 	parent = parent_cs(cs);
3771 	compute_effective_cpumask(&new_cpus, cs, parent);
3772 	nodes_and(new_mems, cs->mems_allowed, parent->effective_mems);
3773 
3774 	if (!tmp || !cs->partition_root_state)
3775 		goto update_tasks;
3776 
3777 	/*
3778 	 * Compute effective_cpus for valid partition root, may invalidate
3779 	 * child partition roots if necessary.
3780 	 */
3781 	remote = is_remote_partition(cs);
3782 	if (remote || (is_partition_valid(cs) && is_partition_valid(parent)))
3783 		compute_partition_effective_cpumask(cs, &new_cpus);
3784 
3785 	if (remote && (cpumask_empty(subpartitions_cpus) ||
3786 			(cpumask_empty(&new_cpus) &&
3787 			 partition_is_populated(cs, NULL)))) {
3788 		cs->prs_err = PERR_HOTPLUG;
3789 		remote_partition_disable(cs, tmp);
3790 		compute_effective_cpumask(&new_cpus, cs, parent);
3791 		remote = false;
3792 	}
3793 
3794 	/*
3795 	 * Force the partition to become invalid if either one of
3796 	 * the following conditions hold:
3797 	 * 1) empty effective cpus but not valid empty partition.
3798 	 * 2) parent is invalid or doesn't grant any cpus to child
3799 	 *    partitions.
3800 	 * 3) subpartitions_cpus is empty.
3801 	 */
3802 	if (is_local_partition(cs) &&
3803 	    (!is_partition_valid(parent) ||
3804 	     tasks_nocpu_error(parent, cs, &new_cpus) ||
3805 	     cpumask_empty(subpartitions_cpus)))
3806 		partcmd = partcmd_invalidate;
3807 	/*
3808 	 * On the other hand, an invalid partition root may be transitioned
3809 	 * back to a regular one with a non-empty effective xcpus.
3810 	 */
3811 	else if (is_partition_valid(parent) && is_partition_invalid(cs) &&
3812 		 !cpumask_empty(cs->effective_xcpus))
3813 		partcmd = partcmd_update;
3814 
3815 	if (partcmd >= 0) {
3816 		update_parent_effective_cpumask(cs, partcmd, NULL, tmp);
3817 		if ((partcmd == partcmd_invalidate) || is_partition_valid(cs)) {
3818 			compute_partition_effective_cpumask(cs, &new_cpus);
3819 			cpuset_force_rebuild();
3820 		}
3821 	}
3822 
3823 update_tasks:
3824 	cpus_updated = !cpumask_equal(&new_cpus, cs->effective_cpus);
3825 	mems_updated = !nodes_equal(new_mems, cs->effective_mems);
3826 	if (!cpus_updated && !mems_updated)
3827 		goto unlock;	/* Hotplug doesn't affect this cpuset */
3828 
3829 	if (mems_updated)
3830 		check_insane_mems_config(&new_mems);
3831 
3832 	if (is_in_v2_mode())
3833 		hotplug_update_tasks(cs, &new_cpus, &new_mems,
3834 				     cpus_updated, mems_updated);
3835 	else
3836 		cpuset1_hotplug_update_tasks(cs, &new_cpus, &new_mems,
3837 					    cpus_updated, mems_updated);
3838 
3839 unlock:
3840 	mutex_unlock(&cpuset_mutex);
3841 }
3842 
3843 /**
3844  * cpuset_handle_hotplug - handle CPU/memory hot{,un}plug for a cpuset
3845  *
3846  * This function is called after either CPU or memory configuration has
3847  * changed and updates cpuset accordingly.  The top_cpuset is always
3848  * synchronized to cpu_active_mask and N_MEMORY, which is necessary in
3849  * order to make cpusets transparent (of no affect) on systems that are
3850  * actively using CPU hotplug but making no active use of cpusets.
3851  *
3852  * Non-root cpusets are only affected by offlining.  If any CPUs or memory
3853  * nodes have been taken down, cpuset_hotplug_update_tasks() is invoked on
3854  * all descendants.
3855  *
3856  * Note that CPU offlining during suspend is ignored.  We don't modify
3857  * cpusets across suspend/resume cycles at all.
3858  *
3859  * CPU / memory hotplug is handled synchronously.
3860  */
3861 static void cpuset_handle_hotplug(void)
3862 {
3863 	static DECLARE_WORK(hk_sd_work, hk_sd_workfn);
3864 	static cpumask_t new_cpus;
3865 	static nodemask_t new_mems;
3866 	bool cpus_updated, mems_updated;
3867 	bool on_dfl = is_in_v2_mode();
3868 	struct tmpmasks tmp, *ptmp = NULL;
3869 
3870 	if (on_dfl && !alloc_tmpmasks(&tmp))
3871 		ptmp = &tmp;
3872 
3873 	lockdep_assert_cpus_held();
3874 	mutex_lock(&cpuset_mutex);
3875 
3876 	/* fetch the available cpus/mems and find out which changed how */
3877 	cpumask_copy(&new_cpus, cpu_active_mask);
3878 	new_mems = node_states[N_MEMORY];
3879 
3880 	/*
3881 	 * If subpartitions_cpus is populated, it is likely that the check
3882 	 * below will produce a false positive on cpus_updated when the cpu
3883 	 * list isn't changed. It is extra work, but it is better to be safe.
3884 	 */
3885 	cpus_updated = !cpumask_equal(top_cpuset.effective_cpus, &new_cpus) ||
3886 		       !cpumask_empty(subpartitions_cpus);
3887 	mems_updated = !nodes_equal(top_cpuset.effective_mems, new_mems);
3888 
3889 	/* For v1, synchronize cpus_allowed to cpu_active_mask */
3890 	if (cpus_updated) {
3891 		cpuset_force_rebuild();
3892 		spin_lock_irq(&callback_lock);
3893 		if (!on_dfl)
3894 			cpumask_copy(top_cpuset.cpus_allowed, &new_cpus);
3895 		/*
3896 		 * Make sure that CPUs allocated to child partitions
3897 		 * do not show up in effective_cpus. If no CPU is left,
3898 		 * we clear the subpartitions_cpus & let the child partitions
3899 		 * fight for the CPUs again.
3900 		 */
3901 		if (!cpumask_empty(subpartitions_cpus)) {
3902 			if (cpumask_subset(&new_cpus, subpartitions_cpus)) {
3903 				cpumask_clear(subpartitions_cpus);
3904 			} else {
3905 				cpumask_andnot(&new_cpus, &new_cpus,
3906 					       subpartitions_cpus);
3907 			}
3908 		}
3909 		cpumask_copy(top_cpuset.effective_cpus, &new_cpus);
3910 		spin_unlock_irq(&callback_lock);
3911 		/* we don't mess with cpumasks of tasks in top_cpuset */
3912 	}
3913 
3914 	/* synchronize mems_allowed to N_MEMORY */
3915 	if (mems_updated) {
3916 		spin_lock_irq(&callback_lock);
3917 		if (!on_dfl)
3918 			top_cpuset.mems_allowed = new_mems;
3919 		top_cpuset.effective_mems = new_mems;
3920 		spin_unlock_irq(&callback_lock);
3921 		cpuset_update_tasks_nodemask(&top_cpuset);
3922 	}
3923 
3924 	mutex_unlock(&cpuset_mutex);
3925 
3926 	/* if cpus or mems changed, we need to propagate to descendants */
3927 	if (cpus_updated || mems_updated) {
3928 		struct cpuset *cs;
3929 		struct cgroup_subsys_state *pos_css;
3930 
3931 		rcu_read_lock();
3932 		cpuset_for_each_descendant_pre(cs, pos_css, &top_cpuset) {
3933 			if (cs == &top_cpuset || !css_tryget_online(&cs->css))
3934 				continue;
3935 			rcu_read_unlock();
3936 
3937 			cpuset_hotplug_update_tasks(cs, ptmp);
3938 
3939 			rcu_read_lock();
3940 			css_put(&cs->css);
3941 		}
3942 		rcu_read_unlock();
3943 	}
3944 
3945 	/*
3946 	 * rebuild_sched_domains() will always be called directly if needed
3947 	 * to make sure that newly added or removed CPU will be reflected in
3948 	 * the sched domains. However, if isolated partition invalidation
3949 	 * or recreation is being done (update_housekeeping set), a work item
3950 	 * will be queued to call housekeeping_update() to update the
3951 	 * corresponding housekeeping cpumasks after some slight delay.
3952 	 *
3953 	 * We rely on WORK_STRUCT_PENDING_BIT to not requeue a work item that
3954 	 * is still pending. Before the pending bit is cleared, the work data
3955 	 * is copied out and work item dequeued. So it is possible to queue
3956 	 * the work again before the hk_sd_workfn() is invoked to process the
3957 	 * previously queued work. Since hk_sd_workfn() doesn't use the work
3958 	 * item at all, this is not a problem.
3959 	 */
3960 	if (force_sd_rebuild)
3961 		rebuild_sched_domains_cpuslocked();
3962 	if (update_housekeeping)
3963 		queue_work(system_dfl_wq, &hk_sd_work);
3964 
3965 	free_tmpmasks(ptmp);
3966 }
3967 
3968 void cpuset_update_active_cpus(void)
3969 {
3970 	/*
3971 	 * We're inside cpu hotplug critical region which usually nests
3972 	 * inside cgroup synchronization.  Bounce actual hotplug processing
3973 	 * to a work item to avoid reverse locking order.
3974 	 */
3975 	cpuset_handle_hotplug();
3976 }
3977 
3978 /*
3979  * Keep top_cpuset.mems_allowed tracking node_states[N_MEMORY].
3980  * Call this routine anytime after node_states[N_MEMORY] changes.
3981  * See cpuset_update_active_cpus() for CPU hotplug handling.
3982  */
3983 static int cpuset_track_online_nodes(struct notifier_block *self,
3984 				unsigned long action, void *arg)
3985 {
3986 	cpuset_handle_hotplug();
3987 	return NOTIFY_OK;
3988 }
3989 
3990 /**
3991  * cpuset_init_smp - initialize cpus_allowed
3992  *
3993  * Description: Finish top cpuset after cpu, node maps are initialized
3994  */
3995 void __init cpuset_init_smp(void)
3996 {
3997 	/*
3998 	 * cpus_allowd/mems_allowed set to v2 values in the initial
3999 	 * cpuset_bind() call will be reset to v1 values in another
4000 	 * cpuset_bind() call when v1 cpuset is mounted.
4001 	 */
4002 	top_cpuset.old_mems_allowed = top_cpuset.mems_allowed;
4003 
4004 	cpumask_copy(top_cpuset.effective_cpus, cpu_active_mask);
4005 	top_cpuset.effective_mems = node_states[N_MEMORY];
4006 
4007 	hotplug_node_notifier(cpuset_track_online_nodes, CPUSET_CALLBACK_PRI);
4008 
4009 	cpuset_migrate_mm_wq = alloc_ordered_workqueue("cpuset_migrate_mm", 0);
4010 	BUG_ON(!cpuset_migrate_mm_wq);
4011 }
4012 
4013 /*
4014  * Return cpus_allowed mask from a task's cpuset.
4015  */
4016 static void __cpuset_cpus_allowed_locked(struct task_struct *tsk, struct cpumask *pmask)
4017 {
4018 	struct cpuset *cs;
4019 
4020 	cs = task_cs(tsk);
4021 	if (cs != &top_cpuset)
4022 		guarantee_active_cpus(tsk, pmask);
4023 	/*
4024 	 * Tasks in the top cpuset won't get update to their cpumasks
4025 	 * when a hotplug online/offline event happens. So we include all
4026 	 * offline cpus in the allowed cpu list.
4027 	 */
4028 	if ((cs == &top_cpuset) || cpumask_empty(pmask)) {
4029 		const struct cpumask *possible_mask = task_cpu_possible_mask(tsk);
4030 
4031 		/*
4032 		 * We first exclude cpus allocated to partitions. If there is no
4033 		 * allowable online cpu left, we fall back to all possible cpus.
4034 		 */
4035 		cpumask_andnot(pmask, possible_mask, subpartitions_cpus);
4036 		if (!cpumask_intersects(pmask, cpu_active_mask))
4037 			cpumask_copy(pmask, possible_mask);
4038 	}
4039 }
4040 
4041 /**
4042  * cpuset_cpus_allowed_locked - return cpus_allowed mask from a task's cpuset.
4043  * @tsk: pointer to task_struct from which to obtain cpuset->cpus_allowed.
4044  * @pmask: pointer to struct cpumask variable to receive cpus_allowed set.
4045  *
4046  * Similir to cpuset_cpus_allowed() except that the caller must have acquired
4047  * cpuset_mutex.
4048  */
4049 void cpuset_cpus_allowed_locked(struct task_struct *tsk, struct cpumask *pmask)
4050 {
4051 	lockdep_assert_cpuset_lock_held();
4052 	__cpuset_cpus_allowed_locked(tsk, pmask);
4053 }
4054 
4055 /**
4056  * cpuset_cpus_allowed - return cpus_allowed mask from a task's cpuset.
4057  * @tsk: pointer to task_struct from which to obtain cpuset->cpus_allowed.
4058  * @pmask: pointer to struct cpumask variable to receive cpus_allowed set.
4059  *
4060  * Description: Returns the cpumask_var_t cpus_allowed of the cpuset
4061  * attached to the specified @tsk.  Guaranteed to return some non-empty
4062  * subset of cpu_active_mask, even if this means going outside the
4063  * tasks cpuset, except when the task is in the top cpuset.
4064  **/
4065 
4066 void cpuset_cpus_allowed(struct task_struct *tsk, struct cpumask *pmask)
4067 {
4068 	unsigned long flags;
4069 
4070 	spin_lock_irqsave(&callback_lock, flags);
4071 	__cpuset_cpus_allowed_locked(tsk, pmask);
4072 	spin_unlock_irqrestore(&callback_lock, flags);
4073 }
4074 
4075 /**
4076  * cpuset_cpus_allowed_fallback - final fallback before complete catastrophe.
4077  * @tsk: pointer to task_struct with which the scheduler is struggling
4078  *
4079  * Description: In the case that the scheduler cannot find an allowed cpu in
4080  * tsk->cpus_allowed, we fall back to task_cs(tsk)->cpus_allowed. In legacy
4081  * mode however, this value is the same as task_cs(tsk)->effective_cpus,
4082  * which will not contain a sane cpumask during cases such as cpu hotplugging.
4083  * This is the absolute last resort for the scheduler and it is only used if
4084  * _every_ other avenue has been traveled.
4085  *
4086  * Returns true if the affinity of @tsk was changed, false otherwise.
4087  **/
4088 
4089 bool cpuset_cpus_allowed_fallback(struct task_struct *tsk)
4090 {
4091 	const struct cpumask *possible_mask = task_cpu_possible_mask(tsk);
4092 	const struct cpumask *cs_mask;
4093 	bool changed = false;
4094 
4095 	rcu_read_lock();
4096 	cs_mask = task_cs(tsk)->cpus_allowed;
4097 	if (is_in_v2_mode() && cpumask_subset(cs_mask, possible_mask)) {
4098 		set_cpus_allowed_force(tsk, cs_mask);
4099 		changed = true;
4100 	}
4101 	rcu_read_unlock();
4102 
4103 	/*
4104 	 * We own tsk->cpus_allowed, nobody can change it under us.
4105 	 *
4106 	 * But we used cs && cs->cpus_allowed lockless and thus can
4107 	 * race with cgroup_attach_task() or update_cpumask() and get
4108 	 * the wrong tsk->cpus_allowed. However, both cases imply the
4109 	 * subsequent cpuset_change_cpumask()->set_cpus_allowed_ptr()
4110 	 * which takes task_rq_lock().
4111 	 *
4112 	 * If we are called after it dropped the lock we must see all
4113 	 * changes in tsk_cs()->cpus_allowed. Otherwise we can temporary
4114 	 * set any mask even if it is not right from task_cs() pov,
4115 	 * the pending set_cpus_allowed_ptr() will fix things.
4116 	 *
4117 	 * select_fallback_rq() will fix things ups and set cpu_possible_mask
4118 	 * if required.
4119 	 */
4120 	return changed;
4121 }
4122 
4123 void __init cpuset_init_current_mems_allowed(void)
4124 {
4125 	nodes_setall(current->mems_allowed);
4126 }
4127 
4128 /**
4129  * cpuset_mems_allowed - return mems_allowed mask from a tasks cpuset.
4130  * @tsk: pointer to task_struct from which to obtain cpuset->mems_allowed.
4131  *
4132  * Description: Returns the nodemask_t mems_allowed of the cpuset
4133  * attached to the specified @tsk.  Guaranteed to return some non-empty
4134  * subset of node_states[N_MEMORY], even if this means going outside the
4135  * tasks cpuset.
4136  **/
4137 
4138 nodemask_t cpuset_mems_allowed(struct task_struct *tsk)
4139 {
4140 	nodemask_t mask;
4141 	unsigned long flags;
4142 
4143 	spin_lock_irqsave(&callback_lock, flags);
4144 	guarantee_online_mems(task_cs(tsk), &mask);
4145 	spin_unlock_irqrestore(&callback_lock, flags);
4146 
4147 	return mask;
4148 }
4149 
4150 /**
4151  * cpuset_nodemask_valid_mems_allowed - check nodemask vs. current mems_allowed
4152  * @nodemask: the nodemask to be checked
4153  *
4154  * Are any of the nodes in the nodemask allowed in current->mems_allowed?
4155  */
4156 int cpuset_nodemask_valid_mems_allowed(nodemask_t *nodemask)
4157 {
4158 	return nodes_intersects(*nodemask, current->mems_allowed);
4159 }
4160 
4161 /*
4162  * nearest_hardwall_ancestor() - Returns the nearest mem_exclusive or
4163  * mem_hardwall ancestor to the specified cpuset.  Call holding
4164  * callback_lock.  If no ancestor is mem_exclusive or mem_hardwall
4165  * (an unusual configuration), then returns the root cpuset.
4166  */
4167 static struct cpuset *nearest_hardwall_ancestor(struct cpuset *cs)
4168 {
4169 	while (!(is_mem_exclusive(cs) || is_mem_hardwall(cs)) && parent_cs(cs))
4170 		cs = parent_cs(cs);
4171 	return cs;
4172 }
4173 
4174 /*
4175  * cpuset_current_node_allowed - Can current task allocate on a memory node?
4176  * @node: is this an allowed node?
4177  * @gfp_mask: memory allocation flags
4178  *
4179  * If we're in interrupt, yes, we can always allocate.  If @node is set in
4180  * current's mems_allowed, yes.  If it's not a __GFP_HARDWALL request and this
4181  * node is set in the nearest hardwalled cpuset ancestor to current's cpuset,
4182  * yes.  If current has access to memory reserves as an oom victim, yes.
4183  * If the current task is PF_EXITING, yes. Otherwise, no.
4184  *
4185  * GFP_USER allocations are marked with the __GFP_HARDWALL bit,
4186  * and do not allow allocations outside the current tasks cpuset
4187  * unless the task has been OOM killed or is exiting.
4188  * GFP_KERNEL allocations are not so marked, so can escape to the
4189  * nearest enclosing hardwalled ancestor cpuset.
4190  *
4191  * Scanning up parent cpusets requires callback_lock.  The
4192  * __alloc_pages() routine only calls here with __GFP_HARDWALL bit
4193  * _not_ set if it's a GFP_KERNEL allocation, and all nodes in the
4194  * current tasks mems_allowed came up empty on the first pass over
4195  * the zonelist.  So only GFP_KERNEL allocations, if all nodes in the
4196  * cpuset are short of memory, might require taking the callback_lock.
4197  *
4198  * The first call here from mm/page_alloc:get_page_from_freelist()
4199  * has __GFP_HARDWALL set in gfp_mask, enforcing hardwall cpusets,
4200  * so no allocation on a node outside the cpuset is allowed (unless
4201  * in interrupt, of course).  The PF_EXITING check must therefore
4202  * come before the __GFP_HARDWALL check, otherwise a dying task
4203  * would be blocked on the fast path.
4204  *
4205  * The second pass through get_page_from_freelist() doesn't even call
4206  * here for GFP_ATOMIC calls.  For those calls, the __alloc_pages()
4207  * variable 'wait' is not set, and the bit ALLOC_CPUSET is not set
4208  * in alloc_flags.  That logic and the checks below have the combined
4209  * affect that:
4210  *	in_interrupt - any node ok (current task context irrelevant)
4211  *	GFP_ATOMIC   - any node ok
4212  *	tsk_is_oom_victim   - any node ok
4213  *	PF_EXITING   - any node ok (let dying task exit quickly)
4214  *	GFP_KERNEL   - any node in enclosing hardwalled cpuset ok
4215  *	GFP_USER     - only nodes in current tasks mems allowed ok.
4216  */
4217 bool cpuset_current_node_allowed(int node, gfp_t gfp_mask)
4218 {
4219 	struct cpuset *cs;		/* current cpuset ancestors */
4220 	bool allowed;			/* is allocation in zone z allowed? */
4221 	unsigned long flags;
4222 
4223 	if (in_interrupt())
4224 		return true;
4225 	if (node_isset(node, current->mems_allowed))
4226 		return true;
4227 	/*
4228 	 * Allow tasks that have access to memory reserves because they have
4229 	 * been OOM killed to get memory anywhere.
4230 	 */
4231 	if (unlikely(tsk_is_oom_victim(current)))
4232 		return true;
4233 	if (current->flags & PF_EXITING) /* Let dying task have memory */
4234 		return true;
4235 	if (gfp_mask & __GFP_HARDWALL)	/* If hardwall request, stop here */
4236 		return false;
4237 
4238 	/* Not hardwall and node outside mems_allowed: scan up cpusets */
4239 	spin_lock_irqsave(&callback_lock, flags);
4240 
4241 	cs = nearest_hardwall_ancestor(task_cs(current));
4242 	allowed = node_isset(node, cs->mems_allowed);
4243 
4244 	spin_unlock_irqrestore(&callback_lock, flags);
4245 	return allowed;
4246 }
4247 
4248 /**
4249  * cpuset_nodes_allowed - return effective_mems mask from a cgroup cpuset.
4250  * @cgroup: pointer to struct cgroup.
4251  * @mask: pointer to struct nodemask_t to be returned.
4252  *
4253  * Returns effective_mems mask from a cgroup cpuset if it is cgroup v2 and
4254  * has cpuset subsys. Otherwise, returns node_states[N_MEMORY].
4255  *
4256  * This function intentionally avoids taking the cpuset_mutex or callback_lock
4257  * when accessing effective_mems. This is because the obtained effective_mems
4258  * is stale immediately after the query anyway (e.g., effective_mems is updated
4259  * immediately after releasing the lock but before returning).
4260  *
4261  * As a result, returned @mask may be empty because cs->effective_mems can be
4262  * rebound during this call. Besides, nodes in @mask are not guaranteed to be
4263  * online due to hot plugins. Callers should check the mask for validity on
4264  * return based on its subsequent use.
4265  **/
4266 void cpuset_nodes_allowed(struct cgroup *cgroup, nodemask_t *mask)
4267 {
4268 	struct cgroup_subsys_state *css;
4269 	struct cpuset *cs;
4270 
4271 	/*
4272 	 * In v1, mem_cgroup and cpuset are unlikely in the same hierarchy
4273 	 * and mems_allowed is likely to be empty even if we could get to it,
4274 	 * so return directly to avoid taking a global lock on the empty check.
4275 	 */
4276 	if (!cgroup || !cpuset_v2()) {
4277 		nodes_copy(*mask, node_states[N_MEMORY]);
4278 		return;
4279 	}
4280 
4281 	css = cgroup_get_e_css(cgroup, &cpuset_cgrp_subsys);
4282 	if (!css) {
4283 		nodes_copy(*mask, node_states[N_MEMORY]);
4284 		return;
4285 	}
4286 
4287 	/*
4288 	 * The reference taken via cgroup_get_e_css is sufficient to
4289 	 * protect css, but it does not imply safe accesses to effective_mems.
4290 	 *
4291 	 * Normally, accessing effective_mems would require the cpuset_mutex
4292 	 * or callback_lock - but the correctness of this information is stale
4293 	 * immediately after the query anyway. We do not acquire the lock
4294 	 * during this process to save lock contention in exchange for racing
4295 	 * against mems_allowed rebinds.
4296 	 */
4297 	cs = container_of(css, struct cpuset, css);
4298 	nodes_copy(*mask, cs->effective_mems);
4299 	css_put(css);
4300 }
4301 
4302 /**
4303  * cpuset_spread_node() - On which node to begin search for a page
4304  * @rotor: round robin rotor
4305  *
4306  * If a task is marked PF_SPREAD_PAGE or PF_SPREAD_SLAB (as for
4307  * tasks in a cpuset with is_spread_page or is_spread_slab set),
4308  * and if the memory allocation used cpuset_mem_spread_node()
4309  * to determine on which node to start looking, as it will for
4310  * certain page cache or slab cache pages such as used for file
4311  * system buffers and inode caches, then instead of starting on the
4312  * local node to look for a free page, rather spread the starting
4313  * node around the tasks mems_allowed nodes.
4314  *
4315  * We don't have to worry about the returned node being offline
4316  * because "it can't happen", and even if it did, it would be ok.
4317  *
4318  * The routines calling guarantee_online_mems() are careful to
4319  * only set nodes in task->mems_allowed that are online.  So it
4320  * should not be possible for the following code to return an
4321  * offline node.  But if it did, that would be ok, as this routine
4322  * is not returning the node where the allocation must be, only
4323  * the node where the search should start.  The zonelist passed to
4324  * __alloc_pages() will include all nodes.  If the slab allocator
4325  * is passed an offline node, it will fall back to the local node.
4326  * See kmem_cache_alloc_node().
4327  */
4328 static int cpuset_spread_node(int *rotor)
4329 {
4330 	return *rotor = next_node_in(*rotor, current->mems_allowed);
4331 }
4332 
4333 /**
4334  * cpuset_mem_spread_node() - On which node to begin search for a file page
4335  */
4336 int cpuset_mem_spread_node(void)
4337 {
4338 	if (current->cpuset_mem_spread_rotor == NUMA_NO_NODE)
4339 		current->cpuset_mem_spread_rotor =
4340 			node_random(&current->mems_allowed);
4341 
4342 	return cpuset_spread_node(&current->cpuset_mem_spread_rotor);
4343 }
4344 
4345 /**
4346  * cpuset_mems_allowed_intersects - Does @tsk1's mems_allowed intersect @tsk2's?
4347  * @tsk1: pointer to task_struct of some task.
4348  * @tsk2: pointer to task_struct of some other task.
4349  *
4350  * Description: Return true if @tsk1's mems_allowed intersects the
4351  * mems_allowed of @tsk2.  Used by the OOM killer to determine if
4352  * one of the task's memory usage might impact the memory available
4353  * to the other.
4354  **/
4355 
4356 int cpuset_mems_allowed_intersects(const struct task_struct *tsk1,
4357 				   const struct task_struct *tsk2)
4358 {
4359 	return nodes_intersects(tsk1->mems_allowed, tsk2->mems_allowed);
4360 }
4361 
4362 /**
4363  * cpuset_print_current_mems_allowed - prints current's cpuset and mems_allowed
4364  *
4365  * Description: Prints current's name, cpuset name, and cached copy of its
4366  * mems_allowed to the kernel log.
4367  */
4368 void cpuset_print_current_mems_allowed(void)
4369 {
4370 	struct cgroup *cgrp;
4371 
4372 	rcu_read_lock();
4373 
4374 	cgrp = task_cs(current)->css.cgroup;
4375 	pr_cont(",cpuset=");
4376 	pr_cont_cgroup_name(cgrp);
4377 	pr_cont(",mems_allowed=%*pbl",
4378 		nodemask_pr_args(&current->mems_allowed));
4379 
4380 	rcu_read_unlock();
4381 }
4382 
4383 /* Display task mems_allowed in /proc/<pid>/status file. */
4384 void cpuset_task_status_allowed(struct seq_file *m, struct task_struct *task)
4385 {
4386 	seq_printf(m, "Mems_allowed:\t%*pb\n",
4387 		   nodemask_pr_args(&task->mems_allowed));
4388 	seq_printf(m, "Mems_allowed_list:\t%*pbl\n",
4389 		   nodemask_pr_args(&task->mems_allowed));
4390 }
4391