1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Generic process-grouping system.
4 *
5 * Based originally on the cpuset system, extracted by Paul Menage
6 * Copyright (C) 2006 Google, Inc
7 *
8 * Notifications support
9 * Copyright (C) 2009 Nokia Corporation
10 * Author: Kirill A. Shutemov
11 *
12 * Copyright notices from the original cpuset code:
13 * --------------------------------------------------
14 * Copyright (C) 2003 BULL SA.
15 * Copyright (C) 2004-2006 Silicon Graphics, Inc.
16 *
17 * Portions derived from Patrick Mochel's sysfs code.
18 * sysfs is Copyright (c) 2001-3 Patrick Mochel
19 *
20 * 2003-10-10 Written by Simon Derr.
21 * 2003-10-22 Updates by Stephen Hemminger.
22 * 2004 May-July Rework by Paul Jackson.
23 * ---------------------------------------------------
24 */
25
26 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
27
28 #include "cgroup-internal.h"
29
30 #include <linux/bpf-cgroup.h>
31 #include <linux/cred.h>
32 #include <linux/errno.h>
33 #include <linux/init_task.h>
34 #include <linux/kernel.h>
35 #include <linux/magic.h>
36 #include <linux/mutex.h>
37 #include <linux/mount.h>
38 #include <linux/pagemap.h>
39 #include <linux/proc_fs.h>
40 #include <linux/rcupdate.h>
41 #include <linux/sched.h>
42 #include <linux/sched/task.h>
43 #include <linux/slab.h>
44 #include <linux/spinlock.h>
45 #include <linux/percpu-rwsem.h>
46 #include <linux/string.h>
47 #include <linux/hashtable.h>
48 #include <linux/idr.h>
49 #include <linux/kthread.h>
50 #include <linux/atomic.h>
51 #include <linux/cpuset.h>
52 #include <linux/proc_ns.h>
53 #include <linux/nsproxy.h>
54 #include <linux/file.h>
55 #include <linux/fs_parser.h>
56 #include <linux/sched/cputime.h>
57 #include <linux/sched/deadline.h>
58 #include <linux/psi.h>
59 #include <linux/nstree.h>
60 #include <linux/irq_work.h>
61 #include <net/sock.h>
62
63 #define CREATE_TRACE_POINTS
64 #include <trace/events/cgroup.h>
65
66 #define CGROUP_FILE_NAME_MAX (MAX_CGROUP_TYPE_NAMELEN + \
67 MAX_CFTYPE_NAME + 2)
68 /* let's not notify more than 100 times per second */
69 #define CGROUP_FILE_NOTIFY_MIN_INTV DIV_ROUND_UP(HZ, 100)
70
71 /*
72 * To avoid confusing the compiler (and generating warnings) with code
73 * that attempts to access what would be a 0-element array (i.e. sized
74 * to a potentially empty array when CGROUP_SUBSYS_COUNT == 0), this
75 * constant expression can be added.
76 */
77 #define CGROUP_HAS_SUBSYS_CONFIG (CGROUP_SUBSYS_COUNT > 0)
78
79 /*
80 * cgroup_mutex is the master lock. Any modification to cgroup or its
81 * hierarchy must be performed while holding it.
82 *
83 * css_set_lock protects task->cgroups pointer, the list of css_set
84 * objects, and the chain of tasks off each css_set.
85 *
86 * These locks are exported if CONFIG_PROVE_RCU so that accessors in
87 * cgroup.h can use them for lockdep annotations.
88 */
89 DEFINE_MUTEX(cgroup_mutex);
90 DEFINE_SPINLOCK(css_set_lock);
91
92 #if (defined CONFIG_PROVE_RCU || defined CONFIG_LOCKDEP)
93 EXPORT_SYMBOL_GPL(cgroup_mutex);
94 EXPORT_SYMBOL_GPL(css_set_lock);
95 #endif
96
97 struct blocking_notifier_head cgroup_lifetime_notifier =
98 BLOCKING_NOTIFIER_INIT(cgroup_lifetime_notifier);
99
100 DEFINE_SPINLOCK(trace_cgroup_path_lock);
101 char trace_cgroup_path[TRACE_CGROUP_PATH_LEN];
102 static bool cgroup_debug __read_mostly;
103
104 /*
105 * Protects cgroup_idr and css_idr so that IDs can be released without
106 * grabbing cgroup_mutex.
107 */
108 static DEFINE_SPINLOCK(cgroup_idr_lock);
109
110 /*
111 * Protects cgroup_file->kn for !self csses. It synchronizes notifications
112 * against file removal/re-creation across css hiding.
113 */
114 static DEFINE_SPINLOCK(cgroup_file_kn_lock);
115
116 DEFINE_PERCPU_RWSEM(cgroup_threadgroup_rwsem);
117
118 #define cgroup_assert_mutex_or_rcu_locked() \
119 RCU_LOCKDEP_WARN(!rcu_read_lock_held() && \
120 !lockdep_is_held(&cgroup_mutex), \
121 "cgroup_mutex or RCU read lock required");
122
123 /*
124 * cgroup destruction makes heavy use of work items and there can be a lot
125 * of concurrent destructions. Use a separate workqueue so that cgroup
126 * destruction work items don't end up filling up max_active of system_percpu_wq
127 * which may lead to deadlock.
128 *
129 * A cgroup destruction should enqueue work sequentially to:
130 * cgroup_offline_wq: use for css offline work
131 * cgroup_release_wq: use for css release work
132 * cgroup_free_wq: use for free work
133 *
134 * Rationale for using separate workqueues:
135 * The cgroup root free work may depend on completion of other css offline
136 * operations. If all tasks were enqueued to a single workqueue, this could
137 * create a deadlock scenario where:
138 * - Free work waits for other css offline work to complete.
139 * - But other css offline work is queued after free work in the same queue.
140 *
141 * Example deadlock scenario with single workqueue (cgroup_destroy_wq):
142 * 1. umount net_prio
143 * 2. net_prio root destruction enqueues work to cgroup_destroy_wq (CPUx)
144 * 3. perf_event CSS A offline enqueues work to same cgroup_destroy_wq (CPUx)
145 * 4. net_prio cgroup_destroy_root->cgroup_lock_and_drain_offline.
146 * 5. net_prio root destruction blocks waiting for perf_event CSS A offline,
147 * which can never complete as it's behind in the same queue and
148 * workqueue's max_active is 1.
149 */
150 static struct workqueue_struct *cgroup_offline_wq;
151 static struct workqueue_struct *cgroup_release_wq;
152 static struct workqueue_struct *cgroup_free_wq;
153
154 /* generate an array of cgroup subsystem pointers */
155 #define SUBSYS(_x) [_x ## _cgrp_id] = &_x ## _cgrp_subsys,
156 struct cgroup_subsys *cgroup_subsys[] = {
157 #include <linux/cgroup_subsys.h>
158 };
159 #undef SUBSYS
160
161 /* array of cgroup subsystem names */
162 #define SUBSYS(_x) [_x ## _cgrp_id] = #_x,
163 static const char *cgroup_subsys_name[] = {
164 #include <linux/cgroup_subsys.h>
165 };
166 #undef SUBSYS
167
168 /* array of static_keys for cgroup_subsys_enabled() and cgroup_subsys_on_dfl() */
169 #define SUBSYS(_x) \
170 DEFINE_STATIC_KEY_TRUE(_x ## _cgrp_subsys_enabled_key); \
171 DEFINE_STATIC_KEY_TRUE(_x ## _cgrp_subsys_on_dfl_key); \
172 EXPORT_SYMBOL_GPL(_x ## _cgrp_subsys_enabled_key); \
173 EXPORT_SYMBOL_GPL(_x ## _cgrp_subsys_on_dfl_key);
174 #include <linux/cgroup_subsys.h>
175 #undef SUBSYS
176
177 #define SUBSYS(_x) [_x ## _cgrp_id] = &_x ## _cgrp_subsys_enabled_key,
178 static struct static_key_true *cgroup_subsys_enabled_key[] = {
179 #include <linux/cgroup_subsys.h>
180 };
181 #undef SUBSYS
182
183 #define SUBSYS(_x) [_x ## _cgrp_id] = &_x ## _cgrp_subsys_on_dfl_key,
184 static struct static_key_true *cgroup_subsys_on_dfl_key[] = {
185 #include <linux/cgroup_subsys.h>
186 };
187 #undef SUBSYS
188
189 static DEFINE_PER_CPU(struct css_rstat_cpu, root_rstat_cpu);
190 static DEFINE_PER_CPU(struct cgroup_rstat_base_cpu, root_rstat_base_cpu);
191
192 /* the default hierarchy */
193 struct cgroup_root cgrp_dfl_root = {
194 .cgrp.self.rstat_cpu = &root_rstat_cpu,
195 .cgrp.rstat_base_cpu = &root_rstat_base_cpu,
196 };
197 EXPORT_SYMBOL_GPL(cgrp_dfl_root);
198
199 /*
200 * The default hierarchy always exists but is hidden until mounted for the
201 * first time. This is for backward compatibility.
202 */
203 bool cgrp_dfl_visible;
204
205 /* some controllers are not supported in the default hierarchy */
206 static u32 cgrp_dfl_inhibit_ss_mask;
207
208 /* some controllers are implicitly enabled on the default hierarchy */
209 static u32 cgrp_dfl_implicit_ss_mask;
210
211 /* some controllers can be threaded on the default hierarchy */
212 static u32 cgrp_dfl_threaded_ss_mask;
213
214 /* The list of hierarchy roots */
215 LIST_HEAD(cgroup_roots);
216 static int cgroup_root_count;
217
218 /* hierarchy ID allocation and mapping, protected by cgroup_mutex */
219 static DEFINE_IDR(cgroup_hierarchy_idr);
220
221 /*
222 * Assign a monotonically increasing serial number to csses. It guarantees
223 * cgroups with bigger numbers are newer than those with smaller numbers.
224 * Also, as csses are always appended to the parent's ->children list, it
225 * guarantees that sibling csses are always sorted in the ascending serial
226 * number order on the list. Protected by cgroup_mutex.
227 */
228 static u64 css_serial_nr_next = 1;
229
230 /*
231 * These bitmasks identify subsystems with specific features to avoid
232 * having to do iterative checks repeatedly.
233 */
234 static u32 have_fork_callback __read_mostly;
235 static u32 have_exit_callback __read_mostly;
236 static u32 have_release_callback __read_mostly;
237 static u32 have_canfork_callback __read_mostly;
238
239 static bool have_favordynmods __ro_after_init = IS_ENABLED(CONFIG_CGROUP_FAVOR_DYNMODS);
240
241 /*
242 * Write protected by cgroup_mutex and write-lock of cgroup_threadgroup_rwsem,
243 * read protected by either.
244 *
245 * Can only be turned on, but not turned off.
246 */
247 bool cgroup_enable_per_threadgroup_rwsem __read_mostly;
248
249 /* cgroup namespace for init task */
250 struct cgroup_namespace init_cgroup_ns = {
251 .ns = NS_COMMON_INIT(init_cgroup_ns),
252 .user_ns = &init_user_ns,
253 .root_cset = &init_css_set,
254 };
255
256 static struct file_system_type cgroup2_fs_type;
257 static struct cftype cgroup_base_files[];
258 static struct cftype cgroup_psi_files[];
259
260 /* cgroup optional features */
261 enum cgroup_opt_features {
262 #ifdef CONFIG_PSI
263 OPT_FEATURE_PRESSURE,
264 #endif
265 OPT_FEATURE_COUNT
266 };
267
268 static const char *cgroup_opt_feature_names[OPT_FEATURE_COUNT] = {
269 #ifdef CONFIG_PSI
270 "pressure",
271 #endif
272 };
273
274 static u16 cgroup_feature_disable_mask __read_mostly;
275
276 static int cgroup_apply_control(struct cgroup *cgrp);
277 static void cgroup_finalize_control(struct cgroup *cgrp, int ret);
278 static void css_task_iter_skip(struct css_task_iter *it,
279 struct task_struct *task);
280 static int cgroup_destroy_locked(struct cgroup *cgrp);
281 static struct cgroup_subsys_state *css_create(struct cgroup *cgrp,
282 struct cgroup_subsys *ss);
283 static void css_release(struct percpu_ref *ref);
284 static void kill_css(struct cgroup_subsys_state *css);
285 static int cgroup_addrm_files(struct cgroup_subsys_state *css,
286 struct cgroup *cgrp, struct cftype cfts[],
287 bool is_add);
288 static void cgroup_rt_init(void);
289
290 #ifdef CONFIG_DEBUG_CGROUP_REF
291 #define CGROUP_REF_FN_ATTRS noinline
292 #define CGROUP_REF_EXPORT(fn) EXPORT_SYMBOL_GPL(fn);
293 #include <linux/cgroup_refcnt.h>
294 #endif
295
296 /**
297 * cgroup_ssid_enabled - cgroup subsys enabled test by subsys ID
298 * @ssid: subsys ID of interest
299 *
300 * cgroup_subsys_enabled() can only be used with literal subsys names which
301 * is fine for individual subsystems but unsuitable for cgroup core. This
302 * is slower static_key_enabled() based test indexed by @ssid.
303 */
cgroup_ssid_enabled(int ssid)304 bool cgroup_ssid_enabled(int ssid)
305 {
306 if (!CGROUP_HAS_SUBSYS_CONFIG)
307 return false;
308
309 return static_key_enabled(cgroup_subsys_enabled_key[ssid]);
310 }
311
312 /**
313 * cgroup_on_dfl - test whether a cgroup is on the default hierarchy
314 * @cgrp: the cgroup of interest
315 *
316 * The default hierarchy is the v2 interface of cgroup and this function
317 * can be used to test whether a cgroup is on the default hierarchy for
318 * cases where a subsystem should behave differently depending on the
319 * interface version.
320 *
321 * List of changed behaviors:
322 *
323 * - Mount options "noprefix", "xattr", "clone_children", "release_agent"
324 * and "name" are disallowed.
325 *
326 * - When mounting an existing superblock, mount options should match.
327 *
328 * - rename(2) is disallowed.
329 *
330 * - "tasks" is removed. Everything should be at process granularity. Use
331 * "cgroup.procs" instead.
332 *
333 * - "cgroup.procs" is not sorted. pids will be unique unless they got
334 * recycled in-between reads.
335 *
336 * - "release_agent" and "notify_on_release" are removed. Replacement
337 * notification mechanism will be implemented.
338 *
339 * - "cgroup.clone_children" is removed.
340 *
341 * - "cgroup.subtree_populated" is available. Its value is 0 if the cgroup
342 * and its descendants contain no task; otherwise, 1. The file also
343 * generates kernfs notification which can be monitored through poll and
344 * [di]notify when the value of the file changes.
345 *
346 * - cpuset: tasks will be kept in empty cpusets when hotplug happens and
347 * take masks of ancestors with non-empty cpus/mems, instead of being
348 * moved to an ancestor.
349 *
350 * - cpuset: a task can be moved into an empty cpuset, and again it takes
351 * masks of ancestors.
352 *
353 * - blkcg: blk-throttle becomes properly hierarchical.
354 */
cgroup_on_dfl(const struct cgroup * cgrp)355 bool cgroup_on_dfl(const struct cgroup *cgrp)
356 {
357 return cgrp->root == &cgrp_dfl_root;
358 }
359
360 /* IDR wrappers which synchronize using cgroup_idr_lock */
cgroup_idr_alloc(struct idr * idr,void * ptr,int start,int end,gfp_t gfp_mask)361 static int cgroup_idr_alloc(struct idr *idr, void *ptr, int start, int end,
362 gfp_t gfp_mask)
363 {
364 int ret;
365
366 idr_preload(gfp_mask);
367 spin_lock_bh(&cgroup_idr_lock);
368 ret = idr_alloc(idr, ptr, start, end, gfp_mask & ~__GFP_DIRECT_RECLAIM);
369 spin_unlock_bh(&cgroup_idr_lock);
370 idr_preload_end();
371 return ret;
372 }
373
cgroup_idr_replace(struct idr * idr,void * ptr,int id)374 static void *cgroup_idr_replace(struct idr *idr, void *ptr, int id)
375 {
376 void *ret;
377
378 spin_lock_bh(&cgroup_idr_lock);
379 ret = idr_replace(idr, ptr, id);
380 spin_unlock_bh(&cgroup_idr_lock);
381 return ret;
382 }
383
cgroup_idr_remove(struct idr * idr,int id)384 static void cgroup_idr_remove(struct idr *idr, int id)
385 {
386 spin_lock_bh(&cgroup_idr_lock);
387 idr_remove(idr, id);
388 spin_unlock_bh(&cgroup_idr_lock);
389 }
390
cgroup_has_tasks(struct cgroup * cgrp)391 static bool cgroup_has_tasks(struct cgroup *cgrp)
392 {
393 return cgrp->nr_populated_csets;
394 }
395
cgroup_is_threaded(struct cgroup * cgrp)396 static bool cgroup_is_threaded(struct cgroup *cgrp)
397 {
398 return cgrp->dom_cgrp != cgrp;
399 }
400
401 /* can @cgrp host both domain and threaded children? */
cgroup_is_mixable(struct cgroup * cgrp)402 static bool cgroup_is_mixable(struct cgroup *cgrp)
403 {
404 /*
405 * Root isn't under domain level resource control exempting it from
406 * the no-internal-process constraint, so it can serve as a thread
407 * root and a parent of resource domains at the same time.
408 */
409 return !cgroup_parent(cgrp);
410 }
411
412 /* can @cgrp become a thread root? Should always be true for a thread root */
cgroup_can_be_thread_root(struct cgroup * cgrp)413 static bool cgroup_can_be_thread_root(struct cgroup *cgrp)
414 {
415 /* mixables don't care */
416 if (cgroup_is_mixable(cgrp))
417 return true;
418
419 /* domain roots can't be nested under threaded */
420 if (cgroup_is_threaded(cgrp))
421 return false;
422
423 /* can only have either domain or threaded children */
424 if (cgrp->nr_populated_domain_children)
425 return false;
426
427 /* and no domain controllers can be enabled */
428 if (cgrp->subtree_control & ~cgrp_dfl_threaded_ss_mask)
429 return false;
430
431 return true;
432 }
433
434 /* is @cgrp root of a threaded subtree? */
cgroup_is_thread_root(struct cgroup * cgrp)435 static bool cgroup_is_thread_root(struct cgroup *cgrp)
436 {
437 /* thread root should be a domain */
438 if (cgroup_is_threaded(cgrp))
439 return false;
440
441 /* a domain w/ threaded children is a thread root */
442 if (cgrp->nr_threaded_children)
443 return true;
444
445 /*
446 * A domain which has tasks and explicit threaded controllers
447 * enabled is a thread root.
448 */
449 if (cgroup_has_tasks(cgrp) &&
450 (cgrp->subtree_control & cgrp_dfl_threaded_ss_mask))
451 return true;
452
453 return false;
454 }
455
456 /* a domain which isn't connected to the root w/o brekage can't be used */
cgroup_is_valid_domain(struct cgroup * cgrp)457 static bool cgroup_is_valid_domain(struct cgroup *cgrp)
458 {
459 /* the cgroup itself can be a thread root */
460 if (cgroup_is_threaded(cgrp))
461 return false;
462
463 /* but the ancestors can't be unless mixable */
464 while ((cgrp = cgroup_parent(cgrp))) {
465 if (!cgroup_is_mixable(cgrp) && cgroup_is_thread_root(cgrp))
466 return false;
467 if (cgroup_is_threaded(cgrp))
468 return false;
469 }
470
471 return true;
472 }
473
474 /* subsystems visibly enabled on a cgroup */
cgroup_control(struct cgroup * cgrp)475 static u32 cgroup_control(struct cgroup *cgrp)
476 {
477 struct cgroup *parent = cgroup_parent(cgrp);
478 u32 root_ss_mask = cgrp->root->subsys_mask;
479
480 if (parent) {
481 u32 ss_mask = parent->subtree_control;
482
483 /* threaded cgroups can only have threaded controllers */
484 if (cgroup_is_threaded(cgrp))
485 ss_mask &= cgrp_dfl_threaded_ss_mask;
486 return ss_mask;
487 }
488
489 if (cgroup_on_dfl(cgrp))
490 root_ss_mask &= ~(cgrp_dfl_inhibit_ss_mask |
491 cgrp_dfl_implicit_ss_mask);
492 return root_ss_mask;
493 }
494
495 /* subsystems enabled on a cgroup */
cgroup_ss_mask(struct cgroup * cgrp)496 static u32 cgroup_ss_mask(struct cgroup *cgrp)
497 {
498 struct cgroup *parent = cgroup_parent(cgrp);
499
500 if (parent) {
501 u32 ss_mask = parent->subtree_ss_mask;
502
503 /* threaded cgroups can only have threaded controllers */
504 if (cgroup_is_threaded(cgrp))
505 ss_mask &= cgrp_dfl_threaded_ss_mask;
506 return ss_mask;
507 }
508
509 return cgrp->root->subsys_mask;
510 }
511
512 /**
513 * cgroup_css - obtain a cgroup's css for the specified subsystem
514 * @cgrp: the cgroup of interest
515 * @ss: the subsystem of interest (%NULL returns @cgrp->self)
516 *
517 * Return @cgrp's css (cgroup_subsys_state) associated with @ss. This
518 * function must be called either under cgroup_mutex or rcu_read_lock() and
519 * the caller is responsible for pinning the returned css if it wants to
520 * keep accessing it outside the said locks. This function may return
521 * %NULL if @cgrp doesn't have @subsys_id enabled.
522 */
cgroup_css(struct cgroup * cgrp,struct cgroup_subsys * ss)523 static struct cgroup_subsys_state *cgroup_css(struct cgroup *cgrp,
524 struct cgroup_subsys *ss)
525 {
526 if (CGROUP_HAS_SUBSYS_CONFIG && ss)
527 return rcu_dereference_check(cgrp->subsys[ss->id],
528 lockdep_is_held(&cgroup_mutex));
529 else
530 return &cgrp->self;
531 }
532
533 /**
534 * cgroup_e_css_by_mask - obtain a cgroup's effective css for the specified ss
535 * @cgrp: the cgroup of interest
536 * @ss: the subsystem of interest (%NULL returns @cgrp->self)
537 *
538 * Similar to cgroup_css() but returns the effective css, which is defined
539 * as the matching css of the nearest ancestor including self which has @ss
540 * enabled. If @ss is associated with the hierarchy @cgrp is on, this
541 * function is guaranteed to return non-NULL css.
542 */
cgroup_e_css_by_mask(struct cgroup * cgrp,struct cgroup_subsys * ss)543 static struct cgroup_subsys_state *cgroup_e_css_by_mask(struct cgroup *cgrp,
544 struct cgroup_subsys *ss)
545 {
546 lockdep_assert_held(&cgroup_mutex);
547
548 if (!ss)
549 return &cgrp->self;
550
551 /*
552 * This function is used while updating css associations and thus
553 * can't test the csses directly. Test ss_mask.
554 */
555 while (!(cgroup_ss_mask(cgrp) & (1 << ss->id))) {
556 cgrp = cgroup_parent(cgrp);
557 if (!cgrp)
558 return NULL;
559 }
560
561 return cgroup_css(cgrp, ss);
562 }
563
564 /**
565 * cgroup_e_css - obtain a cgroup's effective css for the specified subsystem
566 * @cgrp: the cgroup of interest
567 * @ss: the subsystem of interest
568 *
569 * Find and get the effective css of @cgrp for @ss. The effective css is
570 * defined as the matching css of the nearest ancestor including self which
571 * has @ss enabled. If @ss is not mounted on the hierarchy @cgrp is on,
572 * the root css is returned, so this function always returns a valid css.
573 *
574 * The returned css is not guaranteed to be online, and therefore it is the
575 * callers responsibility to try get a reference for it.
576 */
cgroup_e_css(struct cgroup * cgrp,struct cgroup_subsys * ss)577 struct cgroup_subsys_state *cgroup_e_css(struct cgroup *cgrp,
578 struct cgroup_subsys *ss)
579 {
580 struct cgroup_subsys_state *css;
581
582 if (!CGROUP_HAS_SUBSYS_CONFIG)
583 return NULL;
584
585 do {
586 css = cgroup_css(cgrp, ss);
587
588 if (css)
589 return css;
590 cgrp = cgroup_parent(cgrp);
591 } while (cgrp);
592
593 return init_css_set.subsys[ss->id];
594 }
595
596 /**
597 * cgroup_get_e_css - get a cgroup's effective css for the specified subsystem
598 * @cgrp: the cgroup of interest
599 * @ss: the subsystem of interest
600 *
601 * Find and get the effective css of @cgrp for @ss. The effective css is
602 * defined as the matching css of the nearest ancestor including self which
603 * has @ss enabled. If @ss is not mounted on the hierarchy @cgrp is on,
604 * the root css is returned, so this function always returns a valid css.
605 * The returned css must be put using css_put().
606 */
cgroup_get_e_css(struct cgroup * cgrp,struct cgroup_subsys * ss)607 struct cgroup_subsys_state *cgroup_get_e_css(struct cgroup *cgrp,
608 struct cgroup_subsys *ss)
609 {
610 struct cgroup_subsys_state *css;
611
612 if (!CGROUP_HAS_SUBSYS_CONFIG)
613 return NULL;
614
615 rcu_read_lock();
616
617 do {
618 css = cgroup_css(cgrp, ss);
619
620 if (css && css_tryget_online(css))
621 goto out_unlock;
622 cgrp = cgroup_parent(cgrp);
623 } while (cgrp);
624
625 css = init_css_set.subsys[ss->id];
626 css_get(css);
627 out_unlock:
628 rcu_read_unlock();
629 return css;
630 }
631 EXPORT_SYMBOL_GPL(cgroup_get_e_css);
632
cgroup_get_live(struct cgroup * cgrp)633 static void cgroup_get_live(struct cgroup *cgrp)
634 {
635 WARN_ON_ONCE(cgroup_is_dead(cgrp));
636 cgroup_get(cgrp);
637 }
638
639 /**
640 * __cgroup_task_count - count the number of tasks in a cgroup. The caller
641 * is responsible for taking the css_set_lock.
642 * @cgrp: the cgroup in question
643 */
__cgroup_task_count(const struct cgroup * cgrp)644 int __cgroup_task_count(const struct cgroup *cgrp)
645 {
646 int count = 0;
647 struct cgrp_cset_link *link;
648
649 lockdep_assert_held(&css_set_lock);
650
651 list_for_each_entry(link, &cgrp->cset_links, cset_link)
652 count += link->cset->nr_tasks;
653
654 return count;
655 }
656
657 /**
658 * cgroup_task_count - count the number of tasks in a cgroup.
659 * @cgrp: the cgroup in question
660 */
cgroup_task_count(const struct cgroup * cgrp)661 int cgroup_task_count(const struct cgroup *cgrp)
662 {
663 int count;
664
665 spin_lock_irq(&css_set_lock);
666 count = __cgroup_task_count(cgrp);
667 spin_unlock_irq(&css_set_lock);
668
669 return count;
670 }
671
kn_priv(struct kernfs_node * kn)672 static struct cgroup *kn_priv(struct kernfs_node *kn)
673 {
674 struct kernfs_node *parent;
675 /*
676 * The parent can not be replaced due to KERNFS_ROOT_INVARIANT_PARENT.
677 * Therefore it is always safe to dereference this pointer outside of a
678 * RCU section.
679 */
680 parent = rcu_dereference_check(kn->__parent,
681 kernfs_root_flags(kn) & KERNFS_ROOT_INVARIANT_PARENT);
682 return parent->priv;
683 }
684
of_css(struct kernfs_open_file * of)685 struct cgroup_subsys_state *of_css(struct kernfs_open_file *of)
686 {
687 struct cgroup *cgrp = kn_priv(of->kn);
688 struct cftype *cft = of_cft(of);
689
690 /*
691 * This is open and unprotected implementation of cgroup_css().
692 * seq_css() is only called from a kernfs file operation which has
693 * an active reference on the file. Because all the subsystem
694 * files are drained before a css is disassociated with a cgroup,
695 * the matching css from the cgroup's subsys table is guaranteed to
696 * be and stay valid until the enclosing operation is complete.
697 */
698 if (CGROUP_HAS_SUBSYS_CONFIG && cft->ss)
699 return rcu_dereference_raw(cgrp->subsys[cft->ss->id]);
700 else
701 return &cgrp->self;
702 }
703 EXPORT_SYMBOL_GPL(of_css);
704
705 /**
706 * for_each_css - iterate all css's of a cgroup
707 * @css: the iteration cursor
708 * @ssid: the index of the subsystem, CGROUP_SUBSYS_COUNT after reaching the end
709 * @cgrp: the target cgroup to iterate css's of
710 *
711 * Should be called under cgroup_mutex.
712 */
713 #define for_each_css(css, ssid, cgrp) \
714 for ((ssid) = 0; (ssid) < CGROUP_SUBSYS_COUNT; (ssid)++) \
715 if (!((css) = rcu_dereference_check( \
716 (cgrp)->subsys[(ssid)], \
717 lockdep_is_held(&cgroup_mutex)))) { } \
718 else
719
720 /**
721 * do_each_subsys_mask - filter for_each_subsys with a bitmask
722 * @ss: the iteration cursor
723 * @ssid: the index of @ss, CGROUP_SUBSYS_COUNT after reaching the end
724 * @ss_mask: the bitmask
725 *
726 * The block will only run for cases where the ssid-th bit (1 << ssid) of
727 * @ss_mask is set.
728 */
729 #define do_each_subsys_mask(ss, ssid, ss_mask) do { \
730 unsigned long __ss_mask = (ss_mask); \
731 if (!CGROUP_HAS_SUBSYS_CONFIG) { \
732 (ssid) = 0; \
733 break; \
734 } \
735 for_each_set_bit(ssid, &__ss_mask, CGROUP_SUBSYS_COUNT) { \
736 (ss) = cgroup_subsys[ssid]; \
737 {
738
739 #define while_each_subsys_mask() \
740 } \
741 } \
742 } while (false)
743
744 /* iterate over child cgrps, lock should be held throughout iteration */
745 #define cgroup_for_each_live_child(child, cgrp) \
746 list_for_each_entry((child), &(cgrp)->self.children, self.sibling) \
747 if (({ lockdep_assert_held(&cgroup_mutex); \
748 cgroup_is_dead(child); })) \
749 ; \
750 else
751
752 /* walk live descendants in pre order */
753 #define cgroup_for_each_live_descendant_pre(dsct, d_css, cgrp) \
754 css_for_each_descendant_pre((d_css), cgroup_css((cgrp), NULL)) \
755 if (({ lockdep_assert_held(&cgroup_mutex); \
756 (dsct) = (d_css)->cgroup; \
757 cgroup_is_dead(dsct); })) \
758 ; \
759 else
760
761 /* walk live descendants in postorder */
762 #define cgroup_for_each_live_descendant_post(dsct, d_css, cgrp) \
763 css_for_each_descendant_post((d_css), cgroup_css((cgrp), NULL)) \
764 if (({ lockdep_assert_held(&cgroup_mutex); \
765 (dsct) = (d_css)->cgroup; \
766 cgroup_is_dead(dsct); })) \
767 ; \
768 else
769
770 /*
771 * The default css_set - used by init and its children prior to any
772 * hierarchies being mounted. It contains a pointer to the root state
773 * for each subsystem. Also used to anchor the list of css_sets. Not
774 * reference-counted, to improve performance when child cgroups
775 * haven't been created.
776 */
777 struct css_set init_css_set = {
778 .refcount = REFCOUNT_INIT(1),
779 .dom_cset = &init_css_set,
780 .tasks = LIST_HEAD_INIT(init_css_set.tasks),
781 .mg_tasks = LIST_HEAD_INIT(init_css_set.mg_tasks),
782 .dying_tasks = LIST_HEAD_INIT(init_css_set.dying_tasks),
783 .task_iters = LIST_HEAD_INIT(init_css_set.task_iters),
784 .threaded_csets = LIST_HEAD_INIT(init_css_set.threaded_csets),
785 .cgrp_links = LIST_HEAD_INIT(init_css_set.cgrp_links),
786 .mg_src_preload_node = LIST_HEAD_INIT(init_css_set.mg_src_preload_node),
787 .mg_dst_preload_node = LIST_HEAD_INIT(init_css_set.mg_dst_preload_node),
788 .mg_node = LIST_HEAD_INIT(init_css_set.mg_node),
789
790 /*
791 * The following field is re-initialized when this cset gets linked
792 * in cgroup_init(). However, let's initialize the field
793 * statically too so that the default cgroup can be accessed safely
794 * early during boot.
795 */
796 .dfl_cgrp = &cgrp_dfl_root.cgrp,
797 };
798
799 static int css_set_count = 1; /* 1 for init_css_set */
800
css_set_threaded(struct css_set * cset)801 static bool css_set_threaded(struct css_set *cset)
802 {
803 return cset->dom_cset != cset;
804 }
805
806 /**
807 * css_set_populated - does a css_set contain any tasks?
808 * @cset: target css_set
809 *
810 * css_set_populated() should be the same as !!cset->nr_tasks at steady
811 * state. However, css_set_populated() can be called while a task is being
812 * added to or removed from the linked list before the nr_tasks is
813 * properly updated. Hence, we can't just look at ->nr_tasks here.
814 */
css_set_populated(struct css_set * cset)815 static bool css_set_populated(struct css_set *cset)
816 {
817 lockdep_assert_held(&css_set_lock);
818
819 return !list_empty(&cset->tasks) || !list_empty(&cset->mg_tasks);
820 }
821
822 /**
823 * cgroup_update_populated - update the populated count of a cgroup
824 * @cgrp: the target cgroup
825 * @populated: inc or dec populated count
826 *
827 * One of the css_sets associated with @cgrp is either getting its first
828 * task or losing the last. Update @cgrp->nr_populated_* accordingly. The
829 * count is propagated towards root so that a given cgroup's
830 * nr_populated_children is zero iff none of its descendants contain any
831 * tasks.
832 *
833 * @cgrp's interface file "cgroup.populated" is zero if both
834 * @cgrp->nr_populated_csets and @cgrp->nr_populated_children are zero and
835 * 1 otherwise. When the sum changes from or to zero, userland is notified
836 * that the content of the interface file has changed. This can be used to
837 * detect when @cgrp and its descendants become populated or empty.
838 */
cgroup_update_populated(struct cgroup * cgrp,bool populated)839 static void cgroup_update_populated(struct cgroup *cgrp, bool populated)
840 {
841 struct cgroup *child = NULL;
842 int adj = populated ? 1 : -1;
843
844 lockdep_assert_held(&css_set_lock);
845
846 do {
847 bool was_populated = cgroup_is_populated(cgrp);
848
849 if (!child) {
850 cgrp->nr_populated_csets += adj;
851 } else {
852 if (cgroup_is_threaded(child))
853 cgrp->nr_populated_threaded_children += adj;
854 else
855 cgrp->nr_populated_domain_children += adj;
856 }
857
858 if (was_populated == cgroup_is_populated(cgrp))
859 break;
860
861 cgroup1_check_for_release(cgrp);
862 TRACE_CGROUP_PATH(notify_populated, cgrp,
863 cgroup_is_populated(cgrp));
864 cgroup_file_notify(&cgrp->events_file);
865
866 child = cgrp;
867 cgrp = cgroup_parent(cgrp);
868 } while (cgrp);
869 }
870
871 /**
872 * css_set_update_populated - update populated state of a css_set
873 * @cset: target css_set
874 * @populated: whether @cset is populated or depopulated
875 *
876 * @cset is either getting the first task or losing the last. Update the
877 * populated counters of all associated cgroups accordingly.
878 */
css_set_update_populated(struct css_set * cset,bool populated)879 static void css_set_update_populated(struct css_set *cset, bool populated)
880 {
881 struct cgrp_cset_link *link;
882
883 lockdep_assert_held(&css_set_lock);
884
885 list_for_each_entry(link, &cset->cgrp_links, cgrp_link)
886 cgroup_update_populated(link->cgrp, populated);
887 }
888
889 /*
890 * @task is leaving, advance task iterators which are pointing to it so
891 * that they can resume at the next position. Advancing an iterator might
892 * remove it from the list, use safe walk. See css_task_iter_skip() for
893 * details.
894 */
css_set_skip_task_iters(struct css_set * cset,struct task_struct * task)895 static void css_set_skip_task_iters(struct css_set *cset,
896 struct task_struct *task)
897 {
898 struct css_task_iter *it, *pos;
899
900 list_for_each_entry_safe(it, pos, &cset->task_iters, iters_node)
901 css_task_iter_skip(it, task);
902 }
903
904 /**
905 * css_set_move_task - move a task from one css_set to another
906 * @task: task being moved
907 * @from_cset: css_set @task currently belongs to (may be NULL)
908 * @to_cset: new css_set @task is being moved to (may be NULL)
909 * @use_mg_tasks: move to @to_cset->mg_tasks instead of ->tasks
910 *
911 * Move @task from @from_cset to @to_cset. If @task didn't belong to any
912 * css_set, @from_cset can be NULL. If @task is being disassociated
913 * instead of moved, @to_cset can be NULL.
914 *
915 * This function automatically handles populated counter updates and
916 * css_task_iter adjustments but the caller is responsible for managing
917 * @from_cset and @to_cset's reference counts.
918 */
css_set_move_task(struct task_struct * task,struct css_set * from_cset,struct css_set * to_cset,bool use_mg_tasks)919 static void css_set_move_task(struct task_struct *task,
920 struct css_set *from_cset, struct css_set *to_cset,
921 bool use_mg_tasks)
922 {
923 lockdep_assert_held(&css_set_lock);
924
925 if (to_cset && !css_set_populated(to_cset))
926 css_set_update_populated(to_cset, true);
927
928 if (from_cset) {
929 WARN_ON_ONCE(list_empty(&task->cg_list));
930
931 css_set_skip_task_iters(from_cset, task);
932 list_del_init(&task->cg_list);
933 if (!css_set_populated(from_cset))
934 css_set_update_populated(from_cset, false);
935 } else {
936 WARN_ON_ONCE(!list_empty(&task->cg_list));
937 }
938
939 if (to_cset) {
940 /*
941 * We are synchronized through cgroup_threadgroup_rwsem
942 * against PF_EXITING setting such that we can't race
943 * against cgroup_task_dead()/cgroup_task_free() dropping
944 * the css_set.
945 */
946 WARN_ON_ONCE(task->flags & PF_EXITING);
947
948 cgroup_move_task(task, to_cset);
949 list_add_tail(&task->cg_list, use_mg_tasks ? &to_cset->mg_tasks :
950 &to_cset->tasks);
951 }
952 }
953
954 /*
955 * hash table for cgroup groups. This improves the performance to find
956 * an existing css_set. This hash doesn't (currently) take into
957 * account cgroups in empty hierarchies.
958 */
959 #define CSS_SET_HASH_BITS 7
960 static DEFINE_HASHTABLE(css_set_table, CSS_SET_HASH_BITS);
961
css_set_hash(struct cgroup_subsys_state ** css)962 static unsigned long css_set_hash(struct cgroup_subsys_state **css)
963 {
964 unsigned long key = 0UL;
965 struct cgroup_subsys *ss;
966 int i;
967
968 for_each_subsys(ss, i)
969 key += (unsigned long)css[i];
970 key = (key >> 16) ^ key;
971
972 return key;
973 }
974
put_css_set_locked(struct css_set * cset)975 void put_css_set_locked(struct css_set *cset)
976 {
977 struct cgrp_cset_link *link, *tmp_link;
978 struct cgroup_subsys *ss;
979 int ssid;
980
981 lockdep_assert_held(&css_set_lock);
982
983 if (!refcount_dec_and_test(&cset->refcount))
984 return;
985
986 WARN_ON_ONCE(!list_empty(&cset->threaded_csets));
987
988 /* This css_set is dead. Unlink it and release cgroup and css refs */
989 for_each_subsys(ss, ssid) {
990 list_del(&cset->e_cset_node[ssid]);
991 css_put(cset->subsys[ssid]);
992 }
993 hash_del(&cset->hlist);
994 css_set_count--;
995
996 list_for_each_entry_safe(link, tmp_link, &cset->cgrp_links, cgrp_link) {
997 list_del(&link->cset_link);
998 list_del(&link->cgrp_link);
999 if (cgroup_parent(link->cgrp))
1000 cgroup_put(link->cgrp);
1001 kfree(link);
1002 }
1003
1004 if (css_set_threaded(cset)) {
1005 list_del(&cset->threaded_csets_node);
1006 put_css_set_locked(cset->dom_cset);
1007 }
1008
1009 kfree_rcu(cset, rcu_head);
1010 }
1011
1012 /**
1013 * compare_css_sets - helper function for find_existing_css_set().
1014 * @cset: candidate css_set being tested
1015 * @old_cset: existing css_set for a task
1016 * @new_cgrp: cgroup that's being entered by the task
1017 * @template: desired set of css pointers in css_set (pre-calculated)
1018 *
1019 * Returns true if "cset" matches "old_cset" except for the hierarchy
1020 * which "new_cgrp" belongs to, for which it should match "new_cgrp".
1021 */
compare_css_sets(struct css_set * cset,struct css_set * old_cset,struct cgroup * new_cgrp,struct cgroup_subsys_state * template[])1022 static bool compare_css_sets(struct css_set *cset,
1023 struct css_set *old_cset,
1024 struct cgroup *new_cgrp,
1025 struct cgroup_subsys_state *template[])
1026 {
1027 struct cgroup *new_dfl_cgrp;
1028 struct list_head *l1, *l2;
1029
1030 /*
1031 * On the default hierarchy, there can be csets which are
1032 * associated with the same set of cgroups but different csses.
1033 * Let's first ensure that csses match.
1034 */
1035 if (memcmp(template, cset->subsys, sizeof(cset->subsys)))
1036 return false;
1037
1038
1039 /* @cset's domain should match the default cgroup's */
1040 if (cgroup_on_dfl(new_cgrp))
1041 new_dfl_cgrp = new_cgrp;
1042 else
1043 new_dfl_cgrp = old_cset->dfl_cgrp;
1044
1045 if (new_dfl_cgrp->dom_cgrp != cset->dom_cset->dfl_cgrp)
1046 return false;
1047
1048 /*
1049 * Compare cgroup pointers in order to distinguish between
1050 * different cgroups in hierarchies. As different cgroups may
1051 * share the same effective css, this comparison is always
1052 * necessary.
1053 */
1054 l1 = &cset->cgrp_links;
1055 l2 = &old_cset->cgrp_links;
1056 while (1) {
1057 struct cgrp_cset_link *link1, *link2;
1058 struct cgroup *cgrp1, *cgrp2;
1059
1060 l1 = l1->next;
1061 l2 = l2->next;
1062 /* See if we reached the end - both lists are equal length. */
1063 if (l1 == &cset->cgrp_links) {
1064 BUG_ON(l2 != &old_cset->cgrp_links);
1065 break;
1066 } else {
1067 BUG_ON(l2 == &old_cset->cgrp_links);
1068 }
1069 /* Locate the cgroups associated with these links. */
1070 link1 = list_entry(l1, struct cgrp_cset_link, cgrp_link);
1071 link2 = list_entry(l2, struct cgrp_cset_link, cgrp_link);
1072 cgrp1 = link1->cgrp;
1073 cgrp2 = link2->cgrp;
1074 /* Hierarchies should be linked in the same order. */
1075 BUG_ON(cgrp1->root != cgrp2->root);
1076
1077 /*
1078 * If this hierarchy is the hierarchy of the cgroup
1079 * that's changing, then we need to check that this
1080 * css_set points to the new cgroup; if it's any other
1081 * hierarchy, then this css_set should point to the
1082 * same cgroup as the old css_set.
1083 */
1084 if (cgrp1->root == new_cgrp->root) {
1085 if (cgrp1 != new_cgrp)
1086 return false;
1087 } else {
1088 if (cgrp1 != cgrp2)
1089 return false;
1090 }
1091 }
1092 return true;
1093 }
1094
1095 /**
1096 * find_existing_css_set - init css array and find the matching css_set
1097 * @old_cset: the css_set that we're using before the cgroup transition
1098 * @cgrp: the cgroup that we're moving into
1099 * @template: out param for the new set of csses, should be clear on entry
1100 */
find_existing_css_set(struct css_set * old_cset,struct cgroup * cgrp,struct cgroup_subsys_state ** template)1101 static struct css_set *find_existing_css_set(struct css_set *old_cset,
1102 struct cgroup *cgrp,
1103 struct cgroup_subsys_state **template)
1104 {
1105 struct cgroup_root *root = cgrp->root;
1106 struct cgroup_subsys *ss;
1107 struct css_set *cset;
1108 unsigned long key;
1109 int i;
1110
1111 /*
1112 * Build the set of subsystem state objects that we want to see in the
1113 * new css_set. While subsystems can change globally, the entries here
1114 * won't change, so no need for locking.
1115 */
1116 for_each_subsys(ss, i) {
1117 if (root->subsys_mask & (1UL << i)) {
1118 /*
1119 * @ss is in this hierarchy, so we want the
1120 * effective css from @cgrp.
1121 */
1122 template[i] = cgroup_e_css_by_mask(cgrp, ss);
1123 } else {
1124 /*
1125 * @ss is not in this hierarchy, so we don't want
1126 * to change the css.
1127 */
1128 template[i] = old_cset->subsys[i];
1129 }
1130 }
1131
1132 key = css_set_hash(template);
1133 hash_for_each_possible(css_set_table, cset, hlist, key) {
1134 if (!compare_css_sets(cset, old_cset, cgrp, template))
1135 continue;
1136
1137 /* This css_set matches what we need */
1138 return cset;
1139 }
1140
1141 /* No existing cgroup group matched */
1142 return NULL;
1143 }
1144
free_cgrp_cset_links(struct list_head * links_to_free)1145 static void free_cgrp_cset_links(struct list_head *links_to_free)
1146 {
1147 struct cgrp_cset_link *link, *tmp_link;
1148
1149 list_for_each_entry_safe(link, tmp_link, links_to_free, cset_link) {
1150 list_del(&link->cset_link);
1151 kfree(link);
1152 }
1153 }
1154
1155 /**
1156 * allocate_cgrp_cset_links - allocate cgrp_cset_links
1157 * @count: the number of links to allocate
1158 * @tmp_links: list_head the allocated links are put on
1159 *
1160 * Allocate @count cgrp_cset_link structures and chain them on @tmp_links
1161 * through ->cset_link. Returns 0 on success or -errno.
1162 */
allocate_cgrp_cset_links(int count,struct list_head * tmp_links)1163 static int allocate_cgrp_cset_links(int count, struct list_head *tmp_links)
1164 {
1165 struct cgrp_cset_link *link;
1166 int i;
1167
1168 INIT_LIST_HEAD(tmp_links);
1169
1170 for (i = 0; i < count; i++) {
1171 link = kzalloc_obj(*link);
1172 if (!link) {
1173 free_cgrp_cset_links(tmp_links);
1174 return -ENOMEM;
1175 }
1176 list_add(&link->cset_link, tmp_links);
1177 }
1178 return 0;
1179 }
1180
1181 /**
1182 * link_css_set - a helper function to link a css_set to a cgroup
1183 * @tmp_links: cgrp_cset_link objects allocated by allocate_cgrp_cset_links()
1184 * @cset: the css_set to be linked
1185 * @cgrp: the destination cgroup
1186 */
link_css_set(struct list_head * tmp_links,struct css_set * cset,struct cgroup * cgrp)1187 static void link_css_set(struct list_head *tmp_links, struct css_set *cset,
1188 struct cgroup *cgrp)
1189 {
1190 struct cgrp_cset_link *link;
1191
1192 BUG_ON(list_empty(tmp_links));
1193
1194 if (cgroup_on_dfl(cgrp))
1195 cset->dfl_cgrp = cgrp;
1196
1197 link = list_first_entry(tmp_links, struct cgrp_cset_link, cset_link);
1198 link->cset = cset;
1199 link->cgrp = cgrp;
1200
1201 /*
1202 * Always add links to the tail of the lists so that the lists are
1203 * in chronological order.
1204 */
1205 list_move_tail(&link->cset_link, &cgrp->cset_links);
1206 list_add_tail(&link->cgrp_link, &cset->cgrp_links);
1207
1208 if (cgroup_parent(cgrp))
1209 cgroup_get_live(cgrp);
1210 }
1211
1212 /**
1213 * find_css_set - return a new css_set with one cgroup updated
1214 * @old_cset: the baseline css_set
1215 * @cgrp: the cgroup to be updated
1216 *
1217 * Return a new css_set that's equivalent to @old_cset, but with @cgrp
1218 * substituted into the appropriate hierarchy.
1219 */
find_css_set(struct css_set * old_cset,struct cgroup * cgrp)1220 static struct css_set *find_css_set(struct css_set *old_cset,
1221 struct cgroup *cgrp)
1222 {
1223 struct cgroup_subsys_state *template[CGROUP_SUBSYS_COUNT] = { };
1224 struct css_set *cset;
1225 struct list_head tmp_links;
1226 struct cgrp_cset_link *link;
1227 struct cgroup_subsys *ss;
1228 unsigned long key;
1229 int ssid;
1230
1231 lockdep_assert_held(&cgroup_mutex);
1232
1233 /* First see if we already have a cgroup group that matches
1234 * the desired set */
1235 spin_lock_irq(&css_set_lock);
1236 cset = find_existing_css_set(old_cset, cgrp, template);
1237 if (cset)
1238 get_css_set(cset);
1239 spin_unlock_irq(&css_set_lock);
1240
1241 if (cset)
1242 return cset;
1243
1244 cset = kzalloc_obj(*cset);
1245 if (!cset)
1246 return NULL;
1247
1248 /* Allocate all the cgrp_cset_link objects that we'll need */
1249 if (allocate_cgrp_cset_links(cgroup_root_count, &tmp_links) < 0) {
1250 kfree(cset);
1251 return NULL;
1252 }
1253
1254 refcount_set(&cset->refcount, 1);
1255 cset->dom_cset = cset;
1256 INIT_LIST_HEAD(&cset->tasks);
1257 INIT_LIST_HEAD(&cset->mg_tasks);
1258 INIT_LIST_HEAD(&cset->dying_tasks);
1259 INIT_LIST_HEAD(&cset->task_iters);
1260 INIT_LIST_HEAD(&cset->threaded_csets);
1261 INIT_HLIST_NODE(&cset->hlist);
1262 INIT_LIST_HEAD(&cset->cgrp_links);
1263 INIT_LIST_HEAD(&cset->mg_src_preload_node);
1264 INIT_LIST_HEAD(&cset->mg_dst_preload_node);
1265 INIT_LIST_HEAD(&cset->mg_node);
1266
1267 /* Copy the set of subsystem state objects generated in
1268 * find_existing_css_set() */
1269 memcpy(cset->subsys, template, sizeof(cset->subsys));
1270
1271 spin_lock_irq(&css_set_lock);
1272 /* Add reference counts and links from the new css_set. */
1273 list_for_each_entry(link, &old_cset->cgrp_links, cgrp_link) {
1274 struct cgroup *c = link->cgrp;
1275
1276 if (c->root == cgrp->root)
1277 c = cgrp;
1278 link_css_set(&tmp_links, cset, c);
1279 }
1280
1281 BUG_ON(!list_empty(&tmp_links));
1282
1283 css_set_count++;
1284
1285 /* Add @cset to the hash table */
1286 key = css_set_hash(cset->subsys);
1287 hash_add(css_set_table, &cset->hlist, key);
1288
1289 for_each_subsys(ss, ssid) {
1290 struct cgroup_subsys_state *css = cset->subsys[ssid];
1291
1292 list_add_tail(&cset->e_cset_node[ssid],
1293 &css->cgroup->e_csets[ssid]);
1294 css_get(css);
1295 }
1296
1297 spin_unlock_irq(&css_set_lock);
1298
1299 /*
1300 * If @cset should be threaded, look up the matching dom_cset and
1301 * link them up. We first fully initialize @cset then look for the
1302 * dom_cset. It's simpler this way and safe as @cset is guaranteed
1303 * to stay empty until we return.
1304 */
1305 if (cgroup_is_threaded(cset->dfl_cgrp)) {
1306 struct css_set *dcset;
1307
1308 dcset = find_css_set(cset, cset->dfl_cgrp->dom_cgrp);
1309 if (!dcset) {
1310 put_css_set(cset);
1311 return NULL;
1312 }
1313
1314 spin_lock_irq(&css_set_lock);
1315 cset->dom_cset = dcset;
1316 list_add_tail(&cset->threaded_csets_node,
1317 &dcset->threaded_csets);
1318 spin_unlock_irq(&css_set_lock);
1319 }
1320
1321 return cset;
1322 }
1323
cgroup_root_from_kf(struct kernfs_root * kf_root)1324 struct cgroup_root *cgroup_root_from_kf(struct kernfs_root *kf_root)
1325 {
1326 struct cgroup *root_cgrp = kernfs_root_to_node(kf_root)->priv;
1327
1328 return root_cgrp->root;
1329 }
1330
cgroup_favor_dynmods(struct cgroup_root * root,bool favor)1331 void cgroup_favor_dynmods(struct cgroup_root *root, bool favor)
1332 {
1333 bool favoring = root->flags & CGRP_ROOT_FAVOR_DYNMODS;
1334
1335 /*
1336 * see the comment above CGRP_ROOT_FAVOR_DYNMODS definition.
1337 * favordynmods can flip while task is between
1338 * cgroup_threadgroup_change_begin() and end(), so down_write global
1339 * cgroup_threadgroup_rwsem to synchronize them.
1340 *
1341 * Once cgroup_enable_per_threadgroup_rwsem is enabled, holding
1342 * cgroup_threadgroup_rwsem doesn't exlude tasks between
1343 * cgroup_thread_group_change_begin() and end() and thus it's unsafe to
1344 * turn off. As the scenario is unlikely, simply disallow disabling once
1345 * enabled and print out a warning.
1346 */
1347 percpu_down_write(&cgroup_threadgroup_rwsem);
1348 if (favor && !favoring) {
1349 cgroup_enable_per_threadgroup_rwsem = true;
1350 rcu_sync_enter(&cgroup_threadgroup_rwsem.rss);
1351 root->flags |= CGRP_ROOT_FAVOR_DYNMODS;
1352 } else if (!favor && favoring) {
1353 if (cgroup_enable_per_threadgroup_rwsem)
1354 pr_warn_once("cgroup favordynmods: per threadgroup rwsem mechanism can't be disabled\n");
1355 rcu_sync_exit(&cgroup_threadgroup_rwsem.rss);
1356 root->flags &= ~CGRP_ROOT_FAVOR_DYNMODS;
1357 }
1358 percpu_up_write(&cgroup_threadgroup_rwsem);
1359 }
1360
cgroup_init_root_id(struct cgroup_root * root)1361 static int cgroup_init_root_id(struct cgroup_root *root)
1362 {
1363 int id;
1364
1365 lockdep_assert_held(&cgroup_mutex);
1366
1367 id = idr_alloc_cyclic(&cgroup_hierarchy_idr, root, 0, 0, GFP_KERNEL);
1368 if (id < 0)
1369 return id;
1370
1371 root->hierarchy_id = id;
1372 return 0;
1373 }
1374
cgroup_exit_root_id(struct cgroup_root * root)1375 static void cgroup_exit_root_id(struct cgroup_root *root)
1376 {
1377 lockdep_assert_held(&cgroup_mutex);
1378
1379 idr_remove(&cgroup_hierarchy_idr, root->hierarchy_id);
1380 }
1381
cgroup_free_root(struct cgroup_root * root)1382 void cgroup_free_root(struct cgroup_root *root)
1383 {
1384 kfree_rcu(root, rcu);
1385 }
1386
cgroup_destroy_root(struct cgroup_root * root)1387 static void cgroup_destroy_root(struct cgroup_root *root)
1388 {
1389 struct cgroup *cgrp = &root->cgrp;
1390 struct cgrp_cset_link *link, *tmp_link;
1391 int ret;
1392
1393 trace_cgroup_destroy_root(root);
1394
1395 cgroup_lock_and_drain_offline(&cgrp_dfl_root.cgrp);
1396
1397 BUG_ON(atomic_read(&root->nr_cgrps));
1398 BUG_ON(!list_empty(&cgrp->self.children));
1399
1400 ret = blocking_notifier_call_chain(&cgroup_lifetime_notifier,
1401 CGROUP_LIFETIME_OFFLINE, cgrp);
1402 WARN_ON_ONCE(notifier_to_errno(ret));
1403
1404 /* Rebind all subsystems back to the default hierarchy */
1405 WARN_ON(rebind_subsystems(&cgrp_dfl_root, root->subsys_mask));
1406
1407 /*
1408 * Release all the links from cset_links to this hierarchy's
1409 * root cgroup
1410 */
1411 spin_lock_irq(&css_set_lock);
1412
1413 list_for_each_entry_safe(link, tmp_link, &cgrp->cset_links, cset_link) {
1414 list_del(&link->cset_link);
1415 list_del(&link->cgrp_link);
1416 kfree(link);
1417 }
1418
1419 spin_unlock_irq(&css_set_lock);
1420
1421 WARN_ON_ONCE(list_empty(&root->root_list));
1422 list_del_rcu(&root->root_list);
1423 cgroup_root_count--;
1424
1425 if (!have_favordynmods)
1426 cgroup_favor_dynmods(root, false);
1427
1428 cgroup_exit_root_id(root);
1429
1430 cgroup_unlock();
1431
1432 kernfs_destroy_root(root->kf_root);
1433 cgroup_free_root(root);
1434 }
1435
1436 /*
1437 * Returned cgroup is without refcount but it's valid as long as cset pins it.
1438 */
__cset_cgroup_from_root(struct css_set * cset,struct cgroup_root * root)1439 static inline struct cgroup *__cset_cgroup_from_root(struct css_set *cset,
1440 struct cgroup_root *root)
1441 {
1442 struct cgroup *res_cgroup = NULL;
1443
1444 if (cset == &init_css_set) {
1445 res_cgroup = &root->cgrp;
1446 } else if (root == &cgrp_dfl_root) {
1447 res_cgroup = cset->dfl_cgrp;
1448 } else {
1449 struct cgrp_cset_link *link;
1450 lockdep_assert_held(&css_set_lock);
1451
1452 list_for_each_entry(link, &cset->cgrp_links, cgrp_link) {
1453 struct cgroup *c = link->cgrp;
1454
1455 if (c->root == root) {
1456 res_cgroup = c;
1457 break;
1458 }
1459 }
1460 }
1461
1462 /*
1463 * If cgroup_mutex is not held, the cgrp_cset_link will be freed
1464 * before we remove the cgroup root from the root_list. Consequently,
1465 * when accessing a cgroup root, the cset_link may have already been
1466 * freed, resulting in a NULL res_cgroup. However, by holding the
1467 * cgroup_mutex, we ensure that res_cgroup can't be NULL.
1468 * If we don't hold cgroup_mutex in the caller, we must do the NULL
1469 * check.
1470 */
1471 return res_cgroup;
1472 }
1473
1474 /*
1475 * look up cgroup associated with current task's cgroup namespace on the
1476 * specified hierarchy
1477 */
1478 static struct cgroup *
current_cgns_cgroup_from_root(struct cgroup_root * root)1479 current_cgns_cgroup_from_root(struct cgroup_root *root)
1480 {
1481 struct cgroup *res = NULL;
1482 struct css_set *cset;
1483
1484 lockdep_assert_held(&css_set_lock);
1485
1486 rcu_read_lock();
1487
1488 cset = current->nsproxy->cgroup_ns->root_cset;
1489 res = __cset_cgroup_from_root(cset, root);
1490
1491 rcu_read_unlock();
1492
1493 /*
1494 * The namespace_sem is held by current, so the root cgroup can't
1495 * be umounted. Therefore, we can ensure that the res is non-NULL.
1496 */
1497 WARN_ON_ONCE(!res);
1498 return res;
1499 }
1500
1501 /*
1502 * Look up cgroup associated with current task's cgroup namespace on the default
1503 * hierarchy.
1504 *
1505 * Unlike current_cgns_cgroup_from_root(), this doesn't need locks:
1506 * - Internal rcu_read_lock is unnecessary because we don't dereference any rcu
1507 * pointers.
1508 * - css_set_lock is not needed because we just read cset->dfl_cgrp.
1509 * - As a bonus returned cgrp is pinned with the current because it cannot
1510 * switch cgroup_ns asynchronously.
1511 */
current_cgns_cgroup_dfl(void)1512 static struct cgroup *current_cgns_cgroup_dfl(void)
1513 {
1514 struct css_set *cset;
1515
1516 if (current->nsproxy) {
1517 cset = current->nsproxy->cgroup_ns->root_cset;
1518 return __cset_cgroup_from_root(cset, &cgrp_dfl_root);
1519 } else {
1520 /*
1521 * NOTE: This function may be called from bpf_cgroup_from_id()
1522 * on a task which has already passed exit_nsproxy_namespaces()
1523 * and nsproxy == NULL. Fall back to cgrp_dfl_root which will
1524 * make all cgroups visible for lookups.
1525 */
1526 return &cgrp_dfl_root.cgrp;
1527 }
1528 }
1529
1530 /* look up cgroup associated with given css_set on the specified hierarchy */
cset_cgroup_from_root(struct css_set * cset,struct cgroup_root * root)1531 static struct cgroup *cset_cgroup_from_root(struct css_set *cset,
1532 struct cgroup_root *root)
1533 {
1534 lockdep_assert_held(&css_set_lock);
1535
1536 return __cset_cgroup_from_root(cset, root);
1537 }
1538
1539 /*
1540 * Return the cgroup for "task" from the given hierarchy. Must be
1541 * called with css_set_lock held to prevent task's groups from being modified.
1542 * Must be called with either cgroup_mutex or rcu read lock to prevent the
1543 * cgroup root from being destroyed.
1544 */
task_cgroup_from_root(struct task_struct * task,struct cgroup_root * root)1545 struct cgroup *task_cgroup_from_root(struct task_struct *task,
1546 struct cgroup_root *root)
1547 {
1548 /*
1549 * No need to lock the task - since we hold css_set_lock the
1550 * task can't change groups.
1551 */
1552 return cset_cgroup_from_root(task_css_set(task), root);
1553 }
1554
1555 /*
1556 * A task must hold cgroup_mutex to modify cgroups.
1557 *
1558 * Any task can increment and decrement the count field without lock.
1559 * So in general, code holding cgroup_mutex can't rely on the count
1560 * field not changing. However, if the count goes to zero, then only
1561 * cgroup_attach_task() can increment it again. Because a count of zero
1562 * means that no tasks are currently attached, therefore there is no
1563 * way a task attached to that cgroup can fork (the other way to
1564 * increment the count). So code holding cgroup_mutex can safely
1565 * assume that if the count is zero, it will stay zero. Similarly, if
1566 * a task holds cgroup_mutex on a cgroup with zero count, it
1567 * knows that the cgroup won't be removed, as cgroup_rmdir()
1568 * needs that mutex.
1569 *
1570 * A cgroup can only be deleted if both its 'count' of using tasks
1571 * is zero, and its list of 'children' cgroups is empty. Since all
1572 * tasks in the system use _some_ cgroup, and since there is always at
1573 * least one task in the system (init, pid == 1), therefore, root cgroup
1574 * always has either children cgroups and/or using tasks. So we don't
1575 * need a special hack to ensure that root cgroup cannot be deleted.
1576 *
1577 * P.S. One more locking exception. RCU is used to guard the
1578 * update of a tasks cgroup pointer by cgroup_attach_task()
1579 */
1580
1581 static struct kernfs_syscall_ops cgroup_kf_syscall_ops;
1582
cgroup_file_name(struct cgroup * cgrp,const struct cftype * cft,char * buf)1583 static char *cgroup_file_name(struct cgroup *cgrp, const struct cftype *cft,
1584 char *buf)
1585 {
1586 struct cgroup_subsys *ss = cft->ss;
1587
1588 if (cft->ss && !(cft->flags & CFTYPE_NO_PREFIX) &&
1589 !(cgrp->root->flags & CGRP_ROOT_NOPREFIX)) {
1590 const char *dbg = (cft->flags & CFTYPE_DEBUG) ? ".__DEBUG__." : "";
1591
1592 snprintf(buf, CGROUP_FILE_NAME_MAX, "%s%s.%s",
1593 dbg, cgroup_on_dfl(cgrp) ? ss->name : ss->legacy_name,
1594 cft->name);
1595 } else {
1596 strscpy(buf, cft->name, CGROUP_FILE_NAME_MAX);
1597 }
1598 return buf;
1599 }
1600
1601 /**
1602 * cgroup_file_mode - deduce file mode of a control file
1603 * @cft: the control file in question
1604 *
1605 * S_IRUGO for read, S_IWUSR for write.
1606 */
cgroup_file_mode(const struct cftype * cft)1607 static umode_t cgroup_file_mode(const struct cftype *cft)
1608 {
1609 umode_t mode = 0;
1610
1611 if (cft->read_u64 || cft->read_s64 || cft->seq_show)
1612 mode |= S_IRUGO;
1613
1614 if (cft->write_u64 || cft->write_s64 || cft->write) {
1615 if (cft->flags & CFTYPE_WORLD_WRITABLE)
1616 mode |= S_IWUGO;
1617 else
1618 mode |= S_IWUSR;
1619 }
1620
1621 return mode;
1622 }
1623
1624 /**
1625 * cgroup_calc_subtree_ss_mask - calculate subtree_ss_mask
1626 * @subtree_control: the new subtree_control mask to consider
1627 * @this_ss_mask: available subsystems
1628 *
1629 * On the default hierarchy, a subsystem may request other subsystems to be
1630 * enabled together through its ->depends_on mask. In such cases, more
1631 * subsystems than specified in "cgroup.subtree_control" may be enabled.
1632 *
1633 * This function calculates which subsystems need to be enabled if
1634 * @subtree_control is to be applied while restricted to @this_ss_mask.
1635 */
cgroup_calc_subtree_ss_mask(u32 subtree_control,u32 this_ss_mask)1636 static u32 cgroup_calc_subtree_ss_mask(u32 subtree_control, u32 this_ss_mask)
1637 {
1638 u32 cur_ss_mask = subtree_control;
1639 struct cgroup_subsys *ss;
1640 int ssid;
1641
1642 lockdep_assert_held(&cgroup_mutex);
1643
1644 cur_ss_mask |= cgrp_dfl_implicit_ss_mask;
1645
1646 while (true) {
1647 u32 new_ss_mask = cur_ss_mask;
1648
1649 do_each_subsys_mask(ss, ssid, cur_ss_mask) {
1650 new_ss_mask |= ss->depends_on;
1651 } while_each_subsys_mask();
1652
1653 /*
1654 * Mask out subsystems which aren't available. This can
1655 * happen only if some depended-upon subsystems were bound
1656 * to non-default hierarchies.
1657 */
1658 new_ss_mask &= this_ss_mask;
1659
1660 if (new_ss_mask == cur_ss_mask)
1661 break;
1662 cur_ss_mask = new_ss_mask;
1663 }
1664
1665 return cur_ss_mask;
1666 }
1667
1668 /**
1669 * cgroup_kn_unlock - unlocking helper for cgroup kernfs methods
1670 * @kn: the kernfs_node being serviced
1671 *
1672 * This helper undoes cgroup_kn_lock_live() and should be invoked before
1673 * the method finishes if locking succeeded. Note that once this function
1674 * returns the cgroup returned by cgroup_kn_lock_live() may become
1675 * inaccessible any time. If the caller intends to continue to access the
1676 * cgroup, it should pin it before invoking this function.
1677 */
cgroup_kn_unlock(struct kernfs_node * kn)1678 void cgroup_kn_unlock(struct kernfs_node *kn)
1679 {
1680 struct cgroup *cgrp;
1681
1682 if (kernfs_type(kn) == KERNFS_DIR)
1683 cgrp = kn->priv;
1684 else
1685 cgrp = kn_priv(kn);
1686
1687 cgroup_unlock();
1688
1689 kernfs_unbreak_active_protection(kn);
1690 cgroup_put(cgrp);
1691 }
1692
1693 /**
1694 * cgroup_kn_lock_live - locking helper for cgroup kernfs methods
1695 * @kn: the kernfs_node being serviced
1696 * @drain_offline: perform offline draining on the cgroup
1697 *
1698 * This helper is to be used by a cgroup kernfs method currently servicing
1699 * @kn. It breaks the active protection, performs cgroup locking and
1700 * verifies that the associated cgroup is alive. Returns the cgroup if
1701 * alive; otherwise, %NULL. A successful return should be undone by a
1702 * matching cgroup_kn_unlock() invocation. If @drain_offline is %true, the
1703 * cgroup is drained of offlining csses before return.
1704 *
1705 * Any cgroup kernfs method implementation which requires locking the
1706 * associated cgroup should use this helper. It avoids nesting cgroup
1707 * locking under kernfs active protection and allows all kernfs operations
1708 * including self-removal.
1709 */
cgroup_kn_lock_live(struct kernfs_node * kn,bool drain_offline)1710 struct cgroup *cgroup_kn_lock_live(struct kernfs_node *kn, bool drain_offline)
1711 {
1712 struct cgroup *cgrp;
1713
1714 if (kernfs_type(kn) == KERNFS_DIR)
1715 cgrp = kn->priv;
1716 else
1717 cgrp = kn_priv(kn);
1718
1719 /*
1720 * We're gonna grab cgroup_mutex which nests outside kernfs
1721 * active_ref. cgroup liveliness check alone provides enough
1722 * protection against removal. Ensure @cgrp stays accessible and
1723 * break the active_ref protection.
1724 */
1725 if (!cgroup_tryget(cgrp))
1726 return NULL;
1727 kernfs_break_active_protection(kn);
1728
1729 if (drain_offline)
1730 cgroup_lock_and_drain_offline(cgrp);
1731 else
1732 cgroup_lock();
1733
1734 if (!cgroup_is_dead(cgrp))
1735 return cgrp;
1736
1737 cgroup_kn_unlock(kn);
1738 return NULL;
1739 }
1740
cgroup_rm_file(struct cgroup * cgrp,const struct cftype * cft)1741 static void cgroup_rm_file(struct cgroup *cgrp, const struct cftype *cft)
1742 {
1743 char name[CGROUP_FILE_NAME_MAX];
1744
1745 lockdep_assert_held(&cgroup_mutex);
1746
1747 if (cft->file_offset) {
1748 struct cgroup_subsys_state *css = cgroup_css(cgrp, cft->ss);
1749 struct cgroup_file *cfile = (void *)css + cft->file_offset;
1750
1751 spin_lock_irq(&cgroup_file_kn_lock);
1752 cfile->kn = NULL;
1753 spin_unlock_irq(&cgroup_file_kn_lock);
1754
1755 timer_delete_sync(&cfile->notify_timer);
1756 }
1757
1758 kernfs_remove_by_name(cgrp->kn, cgroup_file_name(cgrp, cft, name));
1759 }
1760
1761 /**
1762 * css_clear_dir - remove subsys files in a cgroup directory
1763 * @css: target css
1764 */
css_clear_dir(struct cgroup_subsys_state * css)1765 static void css_clear_dir(struct cgroup_subsys_state *css)
1766 {
1767 struct cgroup *cgrp = css->cgroup;
1768 struct cftype *cfts;
1769
1770 if (!(css->flags & CSS_VISIBLE))
1771 return;
1772
1773 css->flags &= ~CSS_VISIBLE;
1774
1775 if (css_is_self(css)) {
1776 if (cgroup_on_dfl(cgrp)) {
1777 cgroup_addrm_files(css, cgrp,
1778 cgroup_base_files, false);
1779 if (cgroup_psi_enabled())
1780 cgroup_addrm_files(css, cgrp,
1781 cgroup_psi_files, false);
1782 } else {
1783 cgroup_addrm_files(css, cgrp,
1784 cgroup1_base_files, false);
1785 }
1786 } else {
1787 list_for_each_entry(cfts, &css->ss->cfts, node)
1788 cgroup_addrm_files(css, cgrp, cfts, false);
1789 }
1790 }
1791
1792 /**
1793 * css_populate_dir - create subsys files in a cgroup directory
1794 * @css: target css
1795 *
1796 * On failure, no file is added.
1797 */
css_populate_dir(struct cgroup_subsys_state * css)1798 static int css_populate_dir(struct cgroup_subsys_state *css)
1799 {
1800 struct cgroup *cgrp = css->cgroup;
1801 struct cftype *cfts, *failed_cfts;
1802 int ret;
1803
1804 if (css->flags & CSS_VISIBLE)
1805 return 0;
1806
1807 if (css_is_self(css)) {
1808 if (cgroup_on_dfl(cgrp)) {
1809 ret = cgroup_addrm_files(css, cgrp,
1810 cgroup_base_files, true);
1811 if (ret < 0)
1812 return ret;
1813
1814 if (cgroup_psi_enabled()) {
1815 ret = cgroup_addrm_files(css, cgrp,
1816 cgroup_psi_files, true);
1817 if (ret < 0) {
1818 cgroup_addrm_files(css, cgrp,
1819 cgroup_base_files, false);
1820 return ret;
1821 }
1822 }
1823 } else {
1824 ret = cgroup_addrm_files(css, cgrp,
1825 cgroup1_base_files, true);
1826 if (ret < 0)
1827 return ret;
1828 }
1829 } else {
1830 list_for_each_entry(cfts, &css->ss->cfts, node) {
1831 ret = cgroup_addrm_files(css, cgrp, cfts, true);
1832 if (ret < 0) {
1833 failed_cfts = cfts;
1834 goto err;
1835 }
1836 }
1837 }
1838
1839 css->flags |= CSS_VISIBLE;
1840
1841 return 0;
1842 err:
1843 list_for_each_entry(cfts, &css->ss->cfts, node) {
1844 if (cfts == failed_cfts)
1845 break;
1846 cgroup_addrm_files(css, cgrp, cfts, false);
1847 }
1848 return ret;
1849 }
1850
rebind_subsystems(struct cgroup_root * dst_root,u32 ss_mask)1851 int rebind_subsystems(struct cgroup_root *dst_root, u32 ss_mask)
1852 {
1853 struct cgroup *dcgrp = &dst_root->cgrp;
1854 struct cgroup_subsys *ss;
1855 int ssid, ret;
1856 u32 dfl_disable_ss_mask = 0;
1857
1858 lockdep_assert_held(&cgroup_mutex);
1859
1860 do_each_subsys_mask(ss, ssid, ss_mask) {
1861 /*
1862 * If @ss has non-root csses attached to it, can't move.
1863 * If @ss is an implicit controller, it is exempt from this
1864 * rule and can be stolen.
1865 */
1866 if (css_next_child(NULL, cgroup_css(&ss->root->cgrp, ss)) &&
1867 !ss->implicit_on_dfl)
1868 return -EBUSY;
1869
1870 /* can't move between two non-dummy roots either */
1871 if (ss->root != &cgrp_dfl_root && dst_root != &cgrp_dfl_root)
1872 return -EBUSY;
1873
1874 /*
1875 * Collect ssid's that need to be disabled from default
1876 * hierarchy.
1877 */
1878 if (ss->root == &cgrp_dfl_root)
1879 dfl_disable_ss_mask |= 1 << ssid;
1880
1881 } while_each_subsys_mask();
1882
1883 if (dfl_disable_ss_mask) {
1884 struct cgroup *scgrp = &cgrp_dfl_root.cgrp;
1885
1886 /*
1887 * Controllers from default hierarchy that need to be rebound
1888 * are all disabled together in one go.
1889 */
1890 cgrp_dfl_root.subsys_mask &= ~dfl_disable_ss_mask;
1891 WARN_ON(cgroup_apply_control(scgrp));
1892 cgroup_finalize_control(scgrp, 0);
1893 }
1894
1895 do_each_subsys_mask(ss, ssid, ss_mask) {
1896 struct cgroup_root *src_root = ss->root;
1897 struct cgroup *scgrp = &src_root->cgrp;
1898 struct cgroup_subsys_state *css = cgroup_css(scgrp, ss);
1899 struct css_set *cset, *cset_pos;
1900 struct css_task_iter *it;
1901
1902 WARN_ON(!css || cgroup_css(dcgrp, ss));
1903
1904 if (src_root != &cgrp_dfl_root) {
1905 /* disable from the source */
1906 src_root->subsys_mask &= ~(1 << ssid);
1907 WARN_ON(cgroup_apply_control(scgrp));
1908 cgroup_finalize_control(scgrp, 0);
1909 }
1910
1911 /* rebind */
1912 RCU_INIT_POINTER(scgrp->subsys[ssid], NULL);
1913 rcu_assign_pointer(dcgrp->subsys[ssid], css);
1914 ss->root = dst_root;
1915
1916 spin_lock_irq(&css_set_lock);
1917 css->cgroup = dcgrp;
1918 WARN_ON(!list_empty(&dcgrp->e_csets[ss->id]));
1919 list_for_each_entry_safe(cset, cset_pos, &scgrp->e_csets[ss->id],
1920 e_cset_node[ss->id]) {
1921 list_move_tail(&cset->e_cset_node[ss->id],
1922 &dcgrp->e_csets[ss->id]);
1923 /*
1924 * all css_sets of scgrp together in same order to dcgrp,
1925 * patch in-flight iterators to preserve correct iteration.
1926 * since the iterator is always advanced right away and
1927 * finished when it->cset_pos meets it->cset_head, so only
1928 * update it->cset_head is enough here.
1929 */
1930 list_for_each_entry(it, &cset->task_iters, iters_node)
1931 if (it->cset_head == &scgrp->e_csets[ss->id])
1932 it->cset_head = &dcgrp->e_csets[ss->id];
1933 }
1934 spin_unlock_irq(&css_set_lock);
1935
1936 /* default hierarchy doesn't enable controllers by default */
1937 dst_root->subsys_mask |= 1 << ssid;
1938 if (dst_root == &cgrp_dfl_root) {
1939 static_branch_enable(cgroup_subsys_on_dfl_key[ssid]);
1940 } else {
1941 dcgrp->subtree_control |= 1 << ssid;
1942 static_branch_disable(cgroup_subsys_on_dfl_key[ssid]);
1943 }
1944
1945 ret = cgroup_apply_control(dcgrp);
1946 if (ret)
1947 pr_warn("partial failure to rebind %s controller (err=%d)\n",
1948 ss->name, ret);
1949
1950 if (ss->bind)
1951 ss->bind(css);
1952 } while_each_subsys_mask();
1953
1954 kernfs_activate(dcgrp->kn);
1955 return 0;
1956 }
1957
cgroup_show_path(struct seq_file * sf,struct kernfs_node * kf_node,struct kernfs_root * kf_root)1958 int cgroup_show_path(struct seq_file *sf, struct kernfs_node *kf_node,
1959 struct kernfs_root *kf_root)
1960 {
1961 int len = 0;
1962 char *buf = NULL;
1963 struct cgroup_root *kf_cgroot = cgroup_root_from_kf(kf_root);
1964 struct cgroup *ns_cgroup;
1965
1966 buf = kmalloc(PATH_MAX, GFP_KERNEL);
1967 if (!buf)
1968 return -ENOMEM;
1969
1970 spin_lock_irq(&css_set_lock);
1971 ns_cgroup = current_cgns_cgroup_from_root(kf_cgroot);
1972 len = kernfs_path_from_node(kf_node, ns_cgroup->kn, buf, PATH_MAX);
1973 spin_unlock_irq(&css_set_lock);
1974
1975 if (len == -E2BIG)
1976 len = -ERANGE;
1977 else if (len > 0) {
1978 seq_escape(sf, buf, " \t\n\\");
1979 len = 0;
1980 }
1981 kfree(buf);
1982 return len;
1983 }
1984
1985 enum cgroup2_param {
1986 Opt_nsdelegate,
1987 Opt_favordynmods,
1988 Opt_memory_localevents,
1989 Opt_memory_recursiveprot,
1990 Opt_memory_hugetlb_accounting,
1991 Opt_pids_localevents,
1992 nr__cgroup2_params
1993 };
1994
1995 static const struct fs_parameter_spec cgroup2_fs_parameters[] = {
1996 fsparam_flag("nsdelegate", Opt_nsdelegate),
1997 fsparam_flag("favordynmods", Opt_favordynmods),
1998 fsparam_flag("memory_localevents", Opt_memory_localevents),
1999 fsparam_flag("memory_recursiveprot", Opt_memory_recursiveprot),
2000 fsparam_flag("memory_hugetlb_accounting", Opt_memory_hugetlb_accounting),
2001 fsparam_flag("pids_localevents", Opt_pids_localevents),
2002 {}
2003 };
2004
cgroup2_parse_param(struct fs_context * fc,struct fs_parameter * param)2005 static int cgroup2_parse_param(struct fs_context *fc, struct fs_parameter *param)
2006 {
2007 struct cgroup_fs_context *ctx = cgroup_fc2context(fc);
2008 struct fs_parse_result result;
2009 int opt;
2010
2011 opt = fs_parse(fc, cgroup2_fs_parameters, param, &result);
2012 if (opt < 0)
2013 return opt;
2014
2015 switch (opt) {
2016 case Opt_nsdelegate:
2017 ctx->flags |= CGRP_ROOT_NS_DELEGATE;
2018 return 0;
2019 case Opt_favordynmods:
2020 ctx->flags |= CGRP_ROOT_FAVOR_DYNMODS;
2021 return 0;
2022 case Opt_memory_localevents:
2023 ctx->flags |= CGRP_ROOT_MEMORY_LOCAL_EVENTS;
2024 return 0;
2025 case Opt_memory_recursiveprot:
2026 ctx->flags |= CGRP_ROOT_MEMORY_RECURSIVE_PROT;
2027 return 0;
2028 case Opt_memory_hugetlb_accounting:
2029 ctx->flags |= CGRP_ROOT_MEMORY_HUGETLB_ACCOUNTING;
2030 return 0;
2031 case Opt_pids_localevents:
2032 ctx->flags |= CGRP_ROOT_PIDS_LOCAL_EVENTS;
2033 return 0;
2034 }
2035 return -EINVAL;
2036 }
2037
of_peak(struct kernfs_open_file * of)2038 struct cgroup_of_peak *of_peak(struct kernfs_open_file *of)
2039 {
2040 struct cgroup_file_ctx *ctx = of->priv;
2041
2042 return &ctx->peak;
2043 }
2044
apply_cgroup_root_flags(unsigned int root_flags)2045 static void apply_cgroup_root_flags(unsigned int root_flags)
2046 {
2047 if (current->nsproxy->cgroup_ns == &init_cgroup_ns) {
2048 if (root_flags & CGRP_ROOT_NS_DELEGATE)
2049 cgrp_dfl_root.flags |= CGRP_ROOT_NS_DELEGATE;
2050 else
2051 cgrp_dfl_root.flags &= ~CGRP_ROOT_NS_DELEGATE;
2052
2053 cgroup_favor_dynmods(&cgrp_dfl_root,
2054 root_flags & CGRP_ROOT_FAVOR_DYNMODS);
2055
2056 if (root_flags & CGRP_ROOT_MEMORY_LOCAL_EVENTS)
2057 cgrp_dfl_root.flags |= CGRP_ROOT_MEMORY_LOCAL_EVENTS;
2058 else
2059 cgrp_dfl_root.flags &= ~CGRP_ROOT_MEMORY_LOCAL_EVENTS;
2060
2061 if (root_flags & CGRP_ROOT_MEMORY_RECURSIVE_PROT)
2062 cgrp_dfl_root.flags |= CGRP_ROOT_MEMORY_RECURSIVE_PROT;
2063 else
2064 cgrp_dfl_root.flags &= ~CGRP_ROOT_MEMORY_RECURSIVE_PROT;
2065
2066 if (root_flags & CGRP_ROOT_MEMORY_HUGETLB_ACCOUNTING)
2067 cgrp_dfl_root.flags |= CGRP_ROOT_MEMORY_HUGETLB_ACCOUNTING;
2068 else
2069 cgrp_dfl_root.flags &= ~CGRP_ROOT_MEMORY_HUGETLB_ACCOUNTING;
2070
2071 if (root_flags & CGRP_ROOT_PIDS_LOCAL_EVENTS)
2072 cgrp_dfl_root.flags |= CGRP_ROOT_PIDS_LOCAL_EVENTS;
2073 else
2074 cgrp_dfl_root.flags &= ~CGRP_ROOT_PIDS_LOCAL_EVENTS;
2075 }
2076 }
2077
cgroup_show_options(struct seq_file * seq,struct kernfs_root * kf_root)2078 static int cgroup_show_options(struct seq_file *seq, struct kernfs_root *kf_root)
2079 {
2080 if (cgrp_dfl_root.flags & CGRP_ROOT_NS_DELEGATE)
2081 seq_puts(seq, ",nsdelegate");
2082 if (cgrp_dfl_root.flags & CGRP_ROOT_FAVOR_DYNMODS)
2083 seq_puts(seq, ",favordynmods");
2084 if (cgrp_dfl_root.flags & CGRP_ROOT_MEMORY_LOCAL_EVENTS)
2085 seq_puts(seq, ",memory_localevents");
2086 if (cgrp_dfl_root.flags & CGRP_ROOT_MEMORY_RECURSIVE_PROT)
2087 seq_puts(seq, ",memory_recursiveprot");
2088 if (cgrp_dfl_root.flags & CGRP_ROOT_MEMORY_HUGETLB_ACCOUNTING)
2089 seq_puts(seq, ",memory_hugetlb_accounting");
2090 if (cgrp_dfl_root.flags & CGRP_ROOT_PIDS_LOCAL_EVENTS)
2091 seq_puts(seq, ",pids_localevents");
2092 return 0;
2093 }
2094
cgroup_reconfigure(struct fs_context * fc)2095 static int cgroup_reconfigure(struct fs_context *fc)
2096 {
2097 struct cgroup_fs_context *ctx = cgroup_fc2context(fc);
2098
2099 apply_cgroup_root_flags(ctx->flags);
2100 return 0;
2101 }
2102
init_cgroup_housekeeping(struct cgroup * cgrp)2103 static void init_cgroup_housekeeping(struct cgroup *cgrp)
2104 {
2105 struct cgroup_subsys *ss;
2106 int ssid;
2107
2108 INIT_LIST_HEAD(&cgrp->self.sibling);
2109 INIT_LIST_HEAD(&cgrp->self.children);
2110 INIT_LIST_HEAD(&cgrp->cset_links);
2111 INIT_LIST_HEAD(&cgrp->pidlists);
2112 mutex_init(&cgrp->pidlist_mutex);
2113 cgrp->self.cgroup = cgrp;
2114 cgrp->self.flags |= CSS_ONLINE;
2115 cgrp->dom_cgrp = cgrp;
2116 cgrp->max_descendants = INT_MAX;
2117 cgrp->max_depth = INT_MAX;
2118 prev_cputime_init(&cgrp->prev_cputime);
2119
2120 for_each_subsys(ss, ssid)
2121 INIT_LIST_HEAD(&cgrp->e_csets[ssid]);
2122
2123 #ifdef CONFIG_CGROUP_BPF
2124 for (int i = 0; i < ARRAY_SIZE(cgrp->bpf.revisions); i++)
2125 cgrp->bpf.revisions[i] = 1;
2126 #endif
2127
2128 init_waitqueue_head(&cgrp->offline_waitq);
2129 INIT_WORK(&cgrp->release_agent_work, cgroup1_release_agent);
2130 }
2131
init_cgroup_root(struct cgroup_fs_context * ctx)2132 void init_cgroup_root(struct cgroup_fs_context *ctx)
2133 {
2134 struct cgroup_root *root = ctx->root;
2135 struct cgroup *cgrp = &root->cgrp;
2136
2137 INIT_LIST_HEAD_RCU(&root->root_list);
2138 atomic_set(&root->nr_cgrps, 1);
2139 cgrp->root = root;
2140 init_cgroup_housekeeping(cgrp);
2141
2142 /* DYNMODS must be modified through cgroup_favor_dynmods() */
2143 root->flags = ctx->flags & ~CGRP_ROOT_FAVOR_DYNMODS;
2144 if (ctx->release_agent)
2145 strscpy(root->release_agent_path, ctx->release_agent, PATH_MAX);
2146 if (ctx->name)
2147 strscpy(root->name, ctx->name, MAX_CGROUP_ROOT_NAMELEN);
2148 if (ctx->cpuset_clone_children)
2149 set_bit(CGRP_CPUSET_CLONE_CHILDREN, &root->cgrp.flags);
2150 }
2151
cgroup_setup_root(struct cgroup_root * root,u32 ss_mask)2152 int cgroup_setup_root(struct cgroup_root *root, u32 ss_mask)
2153 {
2154 LIST_HEAD(tmp_links);
2155 struct cgroup *root_cgrp = &root->cgrp;
2156 struct kernfs_syscall_ops *kf_sops;
2157 struct css_set *cset;
2158 int i, ret;
2159
2160 lockdep_assert_held(&cgroup_mutex);
2161
2162 ret = percpu_ref_init(&root_cgrp->self.refcnt, css_release,
2163 0, GFP_KERNEL);
2164 if (ret)
2165 goto out;
2166
2167 /*
2168 * We're accessing css_set_count without locking css_set_lock here,
2169 * but that's OK - it can only be increased by someone holding
2170 * cgroup_lock, and that's us. Later rebinding may disable
2171 * controllers on the default hierarchy and thus create new csets,
2172 * which can't be more than the existing ones. Allocate 2x.
2173 */
2174 ret = allocate_cgrp_cset_links(2 * css_set_count, &tmp_links);
2175 if (ret)
2176 goto cancel_ref;
2177
2178 ret = cgroup_init_root_id(root);
2179 if (ret)
2180 goto cancel_ref;
2181
2182 kf_sops = root == &cgrp_dfl_root ?
2183 &cgroup_kf_syscall_ops : &cgroup1_kf_syscall_ops;
2184
2185 root->kf_root = kernfs_create_root(kf_sops,
2186 KERNFS_ROOT_CREATE_DEACTIVATED |
2187 KERNFS_ROOT_SUPPORT_EXPORTOP |
2188 KERNFS_ROOT_SUPPORT_USER_XATTR |
2189 KERNFS_ROOT_INVARIANT_PARENT,
2190 root_cgrp);
2191 if (IS_ERR(root->kf_root)) {
2192 ret = PTR_ERR(root->kf_root);
2193 goto exit_root_id;
2194 }
2195 root_cgrp->kn = kernfs_root_to_node(root->kf_root);
2196 WARN_ON_ONCE(cgroup_ino(root_cgrp) != 1);
2197 root_cgrp->ancestors[0] = root_cgrp;
2198
2199 ret = css_populate_dir(&root_cgrp->self);
2200 if (ret)
2201 goto destroy_root;
2202
2203 ret = css_rstat_init(&root_cgrp->self);
2204 if (ret)
2205 goto destroy_root;
2206
2207 ret = rebind_subsystems(root, ss_mask);
2208 if (ret)
2209 goto exit_stats;
2210
2211 ret = blocking_notifier_call_chain(&cgroup_lifetime_notifier,
2212 CGROUP_LIFETIME_ONLINE, root_cgrp);
2213 WARN_ON_ONCE(notifier_to_errno(ret));
2214
2215 trace_cgroup_setup_root(root);
2216
2217 /*
2218 * There must be no failure case after here, since rebinding takes
2219 * care of subsystems' refcounts, which are explicitly dropped in
2220 * the failure exit path.
2221 */
2222 list_add_rcu(&root->root_list, &cgroup_roots);
2223 cgroup_root_count++;
2224
2225 /*
2226 * Link the root cgroup in this hierarchy into all the css_set
2227 * objects.
2228 */
2229 spin_lock_irq(&css_set_lock);
2230 hash_for_each(css_set_table, i, cset, hlist) {
2231 link_css_set(&tmp_links, cset, root_cgrp);
2232 if (css_set_populated(cset))
2233 cgroup_update_populated(root_cgrp, true);
2234 }
2235 spin_unlock_irq(&css_set_lock);
2236
2237 BUG_ON(!list_empty(&root_cgrp->self.children));
2238 BUG_ON(atomic_read(&root->nr_cgrps) != 1);
2239
2240 ret = 0;
2241 goto out;
2242
2243 exit_stats:
2244 css_rstat_exit(&root_cgrp->self);
2245 destroy_root:
2246 kernfs_destroy_root(root->kf_root);
2247 root->kf_root = NULL;
2248 exit_root_id:
2249 cgroup_exit_root_id(root);
2250 cancel_ref:
2251 percpu_ref_exit(&root_cgrp->self.refcnt);
2252 out:
2253 free_cgrp_cset_links(&tmp_links);
2254 return ret;
2255 }
2256
cgroup_do_get_tree(struct fs_context * fc)2257 int cgroup_do_get_tree(struct fs_context *fc)
2258 {
2259 struct cgroup_fs_context *ctx = cgroup_fc2context(fc);
2260 int ret;
2261
2262 ctx->kfc.root = ctx->root->kf_root;
2263 if (fc->fs_type == &cgroup2_fs_type)
2264 ctx->kfc.magic = CGROUP2_SUPER_MAGIC;
2265 else
2266 ctx->kfc.magic = CGROUP_SUPER_MAGIC;
2267 ret = kernfs_get_tree(fc);
2268
2269 /*
2270 * In non-init cgroup namespace, instead of root cgroup's dentry,
2271 * we return the dentry corresponding to the cgroupns->root_cgrp.
2272 */
2273 if (!ret && ctx->ns != &init_cgroup_ns) {
2274 struct dentry *nsdentry;
2275 struct super_block *sb = fc->root->d_sb;
2276 struct cgroup *cgrp;
2277
2278 cgroup_lock();
2279 spin_lock_irq(&css_set_lock);
2280
2281 cgrp = cset_cgroup_from_root(ctx->ns->root_cset, ctx->root);
2282
2283 spin_unlock_irq(&css_set_lock);
2284 cgroup_unlock();
2285
2286 nsdentry = kernfs_node_dentry(cgrp->kn, sb);
2287 dput(fc->root);
2288 if (IS_ERR(nsdentry)) {
2289 deactivate_locked_super(sb);
2290 ret = PTR_ERR(nsdentry);
2291 nsdentry = NULL;
2292 }
2293 fc->root = nsdentry;
2294 }
2295
2296 if (!ctx->kfc.new_sb_created)
2297 cgroup_put(&ctx->root->cgrp);
2298
2299 return ret;
2300 }
2301
2302 /*
2303 * Destroy a cgroup filesystem context.
2304 */
cgroup_fs_context_free(struct fs_context * fc)2305 static void cgroup_fs_context_free(struct fs_context *fc)
2306 {
2307 struct cgroup_fs_context *ctx = cgroup_fc2context(fc);
2308
2309 kfree(ctx->name);
2310 kfree(ctx->release_agent);
2311 put_cgroup_ns(ctx->ns);
2312 kernfs_free_fs_context(fc);
2313 kfree(ctx);
2314 }
2315
cgroup_get_tree(struct fs_context * fc)2316 static int cgroup_get_tree(struct fs_context *fc)
2317 {
2318 struct cgroup_fs_context *ctx = cgroup_fc2context(fc);
2319 int ret;
2320
2321 WRITE_ONCE(cgrp_dfl_visible, true);
2322 cgroup_get_live(&cgrp_dfl_root.cgrp);
2323 ctx->root = &cgrp_dfl_root;
2324
2325 ret = cgroup_do_get_tree(fc);
2326 if (!ret)
2327 apply_cgroup_root_flags(ctx->flags);
2328 return ret;
2329 }
2330
2331 static const struct fs_context_operations cgroup_fs_context_ops = {
2332 .free = cgroup_fs_context_free,
2333 .parse_param = cgroup2_parse_param,
2334 .get_tree = cgroup_get_tree,
2335 .reconfigure = cgroup_reconfigure,
2336 };
2337
2338 static const struct fs_context_operations cgroup1_fs_context_ops = {
2339 .free = cgroup_fs_context_free,
2340 .parse_param = cgroup1_parse_param,
2341 .get_tree = cgroup1_get_tree,
2342 .reconfigure = cgroup1_reconfigure,
2343 };
2344
2345 /*
2346 * Initialise the cgroup filesystem creation/reconfiguration context. Notably,
2347 * we select the namespace we're going to use.
2348 */
cgroup_init_fs_context(struct fs_context * fc)2349 static int cgroup_init_fs_context(struct fs_context *fc)
2350 {
2351 struct cgroup_fs_context *ctx;
2352
2353 ctx = kzalloc_obj(struct cgroup_fs_context);
2354 if (!ctx)
2355 return -ENOMEM;
2356
2357 ctx->ns = current->nsproxy->cgroup_ns;
2358 get_cgroup_ns(ctx->ns);
2359 fc->fs_private = &ctx->kfc;
2360 if (fc->fs_type == &cgroup2_fs_type)
2361 fc->ops = &cgroup_fs_context_ops;
2362 else
2363 fc->ops = &cgroup1_fs_context_ops;
2364 put_user_ns(fc->user_ns);
2365 fc->user_ns = get_user_ns(ctx->ns->user_ns);
2366 fc->global = true;
2367
2368 if (have_favordynmods)
2369 ctx->flags |= CGRP_ROOT_FAVOR_DYNMODS;
2370
2371 return 0;
2372 }
2373
cgroup_kill_sb(struct super_block * sb)2374 static void cgroup_kill_sb(struct super_block *sb)
2375 {
2376 struct kernfs_root *kf_root = kernfs_root_from_sb(sb);
2377 struct cgroup_root *root = cgroup_root_from_kf(kf_root);
2378
2379 /*
2380 * If @root doesn't have any children, start killing it.
2381 * This prevents new mounts by disabling percpu_ref_tryget_live().
2382 *
2383 * And don't kill the default root.
2384 */
2385 if (list_empty(&root->cgrp.self.children) && root != &cgrp_dfl_root &&
2386 !percpu_ref_is_dying(&root->cgrp.self.refcnt))
2387 percpu_ref_kill(&root->cgrp.self.refcnt);
2388 cgroup_put(&root->cgrp);
2389 kernfs_kill_sb(sb);
2390 }
2391
2392 struct file_system_type cgroup_fs_type = {
2393 .name = "cgroup",
2394 .init_fs_context = cgroup_init_fs_context,
2395 .parameters = cgroup1_fs_parameters,
2396 .kill_sb = cgroup_kill_sb,
2397 .fs_flags = FS_USERNS_MOUNT,
2398 };
2399
2400 static struct file_system_type cgroup2_fs_type = {
2401 .name = "cgroup2",
2402 .init_fs_context = cgroup_init_fs_context,
2403 .parameters = cgroup2_fs_parameters,
2404 .kill_sb = cgroup_kill_sb,
2405 .fs_flags = FS_USERNS_MOUNT,
2406 };
2407
2408 #ifdef CONFIG_CPUSETS_V1
2409 enum cpuset_param {
2410 Opt_cpuset_v2_mode,
2411 };
2412
2413 static const struct fs_parameter_spec cpuset_fs_parameters[] = {
2414 fsparam_flag ("cpuset_v2_mode", Opt_cpuset_v2_mode),
2415 {}
2416 };
2417
cpuset_parse_param(struct fs_context * fc,struct fs_parameter * param)2418 static int cpuset_parse_param(struct fs_context *fc, struct fs_parameter *param)
2419 {
2420 struct cgroup_fs_context *ctx = cgroup_fc2context(fc);
2421 struct fs_parse_result result;
2422 int opt;
2423
2424 opt = fs_parse(fc, cpuset_fs_parameters, param, &result);
2425 if (opt < 0)
2426 return opt;
2427
2428 switch (opt) {
2429 case Opt_cpuset_v2_mode:
2430 ctx->flags |= CGRP_ROOT_CPUSET_V2_MODE;
2431 return 0;
2432 }
2433 return -EINVAL;
2434 }
2435
2436 static const struct fs_context_operations cpuset_fs_context_ops = {
2437 .get_tree = cgroup1_get_tree,
2438 .free = cgroup_fs_context_free,
2439 .parse_param = cpuset_parse_param,
2440 };
2441
2442 /*
2443 * This is ugly, but preserves the userspace API for existing cpuset
2444 * users. If someone tries to mount the "cpuset" filesystem, we
2445 * silently switch it to mount "cgroup" instead
2446 */
cpuset_init_fs_context(struct fs_context * fc)2447 static int cpuset_init_fs_context(struct fs_context *fc)
2448 {
2449 char *agent = kstrdup("/sbin/cpuset_release_agent", GFP_USER);
2450 struct cgroup_fs_context *ctx;
2451 int err;
2452
2453 err = cgroup_init_fs_context(fc);
2454 if (err) {
2455 kfree(agent);
2456 return err;
2457 }
2458
2459 fc->ops = &cpuset_fs_context_ops;
2460
2461 ctx = cgroup_fc2context(fc);
2462 ctx->subsys_mask = 1 << cpuset_cgrp_id;
2463 ctx->flags |= CGRP_ROOT_NOPREFIX;
2464 ctx->release_agent = agent;
2465
2466 get_filesystem(&cgroup_fs_type);
2467 put_filesystem(fc->fs_type);
2468 fc->fs_type = &cgroup_fs_type;
2469
2470 return 0;
2471 }
2472
2473 static struct file_system_type cpuset_fs_type = {
2474 .name = "cpuset",
2475 .init_fs_context = cpuset_init_fs_context,
2476 .parameters = cpuset_fs_parameters,
2477 .fs_flags = FS_USERNS_MOUNT,
2478 };
2479 #endif
2480
cgroup_path_ns_locked(struct cgroup * cgrp,char * buf,size_t buflen,struct cgroup_namespace * ns)2481 int cgroup_path_ns_locked(struct cgroup *cgrp, char *buf, size_t buflen,
2482 struct cgroup_namespace *ns)
2483 {
2484 struct cgroup *root = cset_cgroup_from_root(ns->root_cset, cgrp->root);
2485
2486 return kernfs_path_from_node(cgrp->kn, root->kn, buf, buflen);
2487 }
2488
cgroup_path_ns(struct cgroup * cgrp,char * buf,size_t buflen,struct cgroup_namespace * ns)2489 int cgroup_path_ns(struct cgroup *cgrp, char *buf, size_t buflen,
2490 struct cgroup_namespace *ns)
2491 {
2492 int ret;
2493
2494 cgroup_lock();
2495 spin_lock_irq(&css_set_lock);
2496
2497 ret = cgroup_path_ns_locked(cgrp, buf, buflen, ns);
2498
2499 spin_unlock_irq(&css_set_lock);
2500 cgroup_unlock();
2501
2502 return ret;
2503 }
2504 EXPORT_SYMBOL_GPL(cgroup_path_ns);
2505
2506 /**
2507 * cgroup_attach_lock - Lock for ->attach()
2508 * @lock_mode: whether acquire and acquire which rwsem
2509 * @tsk: thread group to lock
2510 *
2511 * cgroup migration sometimes needs to stabilize threadgroups against forks and
2512 * exits by write-locking cgroup_threadgroup_rwsem. However, some ->attach()
2513 * implementations (e.g. cpuset), also need to disable CPU hotplug.
2514 * Unfortunately, letting ->attach() operations acquire cpus_read_lock() can
2515 * lead to deadlocks.
2516 *
2517 * Bringing up a CPU may involve creating and destroying tasks which requires
2518 * read-locking threadgroup_rwsem, so threadgroup_rwsem nests inside
2519 * cpus_read_lock(). If we call an ->attach() which acquires the cpus lock while
2520 * write-locking threadgroup_rwsem, the locking order is reversed and we end up
2521 * waiting for an on-going CPU hotplug operation which in turn is waiting for
2522 * the threadgroup_rwsem to be released to create new tasks. For more details:
2523 *
2524 * http://lkml.kernel.org/r/20220711174629.uehfmqegcwn2lqzu@wubuntu
2525 *
2526 * Resolve the situation by always acquiring cpus_read_lock() before optionally
2527 * write-locking cgroup_threadgroup_rwsem. This allows ->attach() to assume that
2528 * CPU hotplug is disabled on entry.
2529 *
2530 * When favordynmods is enabled, take per threadgroup rwsem to reduce overhead
2531 * on dynamic cgroup modifications. see the comment above
2532 * CGRP_ROOT_FAVOR_DYNMODS definition.
2533 *
2534 * tsk is not NULL only when writing to cgroup.procs.
2535 */
cgroup_attach_lock(enum cgroup_attach_lock_mode lock_mode,struct task_struct * tsk)2536 void cgroup_attach_lock(enum cgroup_attach_lock_mode lock_mode,
2537 struct task_struct *tsk)
2538 {
2539 cpus_read_lock();
2540
2541 switch (lock_mode) {
2542 case CGRP_ATTACH_LOCK_NONE:
2543 break;
2544 case CGRP_ATTACH_LOCK_GLOBAL:
2545 percpu_down_write(&cgroup_threadgroup_rwsem);
2546 break;
2547 case CGRP_ATTACH_LOCK_PER_THREADGROUP:
2548 down_write(&tsk->signal->cgroup_threadgroup_rwsem);
2549 break;
2550 default:
2551 pr_warn("cgroup: Unexpected attach lock mode.");
2552 break;
2553 }
2554 }
2555
2556 /**
2557 * cgroup_attach_unlock - Undo cgroup_attach_lock()
2558 * @lock_mode: whether release and release which rwsem
2559 * @tsk: thread group to lock
2560 */
cgroup_attach_unlock(enum cgroup_attach_lock_mode lock_mode,struct task_struct * tsk)2561 void cgroup_attach_unlock(enum cgroup_attach_lock_mode lock_mode,
2562 struct task_struct *tsk)
2563 {
2564 switch (lock_mode) {
2565 case CGRP_ATTACH_LOCK_NONE:
2566 break;
2567 case CGRP_ATTACH_LOCK_GLOBAL:
2568 percpu_up_write(&cgroup_threadgroup_rwsem);
2569 break;
2570 case CGRP_ATTACH_LOCK_PER_THREADGROUP:
2571 up_write(&tsk->signal->cgroup_threadgroup_rwsem);
2572 break;
2573 default:
2574 pr_warn("cgroup: Unexpected attach lock mode.");
2575 break;
2576 }
2577
2578 cpus_read_unlock();
2579 }
2580
2581 /**
2582 * cgroup_migrate_add_task - add a migration target task to a migration context
2583 * @task: target task
2584 * @mgctx: target migration context
2585 *
2586 * Add @task, which is a migration target, to @mgctx->tset. This function
2587 * becomes noop if @task doesn't need to be migrated. @task's css_set
2588 * should have been added as a migration source and @task->cg_list will be
2589 * moved from the css_set's tasks list to mg_tasks one.
2590 */
cgroup_migrate_add_task(struct task_struct * task,struct cgroup_mgctx * mgctx)2591 static void cgroup_migrate_add_task(struct task_struct *task,
2592 struct cgroup_mgctx *mgctx)
2593 {
2594 struct css_set *cset;
2595
2596 lockdep_assert_held(&css_set_lock);
2597
2598 /* @task either already exited or can't exit until the end */
2599 if (task->flags & PF_EXITING)
2600 return;
2601
2602 /* cgroup_threadgroup_rwsem protects racing against forks */
2603 WARN_ON_ONCE(list_empty(&task->cg_list));
2604
2605 cset = task_css_set(task);
2606 if (!cset->mg_src_cgrp)
2607 return;
2608
2609 mgctx->tset.nr_tasks++;
2610
2611 css_set_skip_task_iters(cset, task);
2612 list_move_tail(&task->cg_list, &cset->mg_tasks);
2613 if (list_empty(&cset->mg_node))
2614 list_add_tail(&cset->mg_node,
2615 &mgctx->tset.src_csets);
2616 if (list_empty(&cset->mg_dst_cset->mg_node))
2617 list_add_tail(&cset->mg_dst_cset->mg_node,
2618 &mgctx->tset.dst_csets);
2619 }
2620
2621 /**
2622 * cgroup_taskset_first - reset taskset and return the first task
2623 * @tset: taskset of interest
2624 * @dst_cssp: output variable for the destination css
2625 *
2626 * @tset iteration is initialized and the first task is returned.
2627 */
cgroup_taskset_first(struct cgroup_taskset * tset,struct cgroup_subsys_state ** dst_cssp)2628 struct task_struct *cgroup_taskset_first(struct cgroup_taskset *tset,
2629 struct cgroup_subsys_state **dst_cssp)
2630 {
2631 tset->cur_cset = list_first_entry(tset->csets, struct css_set, mg_node);
2632 tset->cur_task = NULL;
2633
2634 return cgroup_taskset_next(tset, dst_cssp);
2635 }
2636
2637 /**
2638 * cgroup_taskset_next - iterate to the next task in taskset
2639 * @tset: taskset of interest
2640 * @dst_cssp: output variable for the destination css
2641 *
2642 * Return the next task in @tset. Iteration must have been initialized
2643 * with cgroup_taskset_first().
2644 */
cgroup_taskset_next(struct cgroup_taskset * tset,struct cgroup_subsys_state ** dst_cssp)2645 struct task_struct *cgroup_taskset_next(struct cgroup_taskset *tset,
2646 struct cgroup_subsys_state **dst_cssp)
2647 {
2648 struct css_set *cset = tset->cur_cset;
2649 struct task_struct *task = tset->cur_task;
2650
2651 while (CGROUP_HAS_SUBSYS_CONFIG && &cset->mg_node != tset->csets) {
2652 if (!task)
2653 task = list_first_entry(&cset->mg_tasks,
2654 struct task_struct, cg_list);
2655 else
2656 task = list_next_entry(task, cg_list);
2657
2658 if (&task->cg_list != &cset->mg_tasks) {
2659 tset->cur_cset = cset;
2660 tset->cur_task = task;
2661
2662 /*
2663 * This function may be called both before and
2664 * after cgroup_migrate_execute(). The two cases
2665 * can be distinguished by looking at whether @cset
2666 * has its ->mg_dst_cset set.
2667 */
2668 if (cset->mg_dst_cset)
2669 *dst_cssp = cset->mg_dst_cset->subsys[tset->ssid];
2670 else
2671 *dst_cssp = cset->subsys[tset->ssid];
2672
2673 return task;
2674 }
2675
2676 cset = list_next_entry(cset, mg_node);
2677 task = NULL;
2678 }
2679
2680 return NULL;
2681 }
2682
2683 /**
2684 * cgroup_migrate_execute - migrate a taskset
2685 * @mgctx: migration context
2686 *
2687 * Migrate tasks in @mgctx as setup by migration preparation functions.
2688 * This function fails iff one of the ->can_attach callbacks fails and
2689 * guarantees that either all or none of the tasks in @mgctx are migrated.
2690 * @mgctx is consumed regardless of success.
2691 */
cgroup_migrate_execute(struct cgroup_mgctx * mgctx)2692 static int cgroup_migrate_execute(struct cgroup_mgctx *mgctx)
2693 {
2694 struct cgroup_taskset *tset = &mgctx->tset;
2695 struct cgroup_subsys *ss;
2696 struct task_struct *task, *tmp_task;
2697 struct css_set *cset, *tmp_cset;
2698 int ssid, failed_ssid, ret;
2699
2700 /* check that we can legitimately attach to the cgroup */
2701 if (tset->nr_tasks) {
2702 do_each_subsys_mask(ss, ssid, mgctx->ss_mask) {
2703 if (ss->can_attach) {
2704 tset->ssid = ssid;
2705 ret = ss->can_attach(tset);
2706 if (ret) {
2707 failed_ssid = ssid;
2708 goto out_cancel_attach;
2709 }
2710 }
2711 } while_each_subsys_mask();
2712 }
2713
2714 /*
2715 * Now that we're guaranteed success, proceed to move all tasks to
2716 * the new cgroup. There are no failure cases after here, so this
2717 * is the commit point.
2718 */
2719 spin_lock_irq(&css_set_lock);
2720 list_for_each_entry(cset, &tset->src_csets, mg_node) {
2721 list_for_each_entry_safe(task, tmp_task, &cset->mg_tasks, cg_list) {
2722 struct css_set *from_cset = task_css_set(task);
2723 struct css_set *to_cset = cset->mg_dst_cset;
2724
2725 get_css_set(to_cset);
2726 to_cset->nr_tasks++;
2727 css_set_move_task(task, from_cset, to_cset, true);
2728 from_cset->nr_tasks--;
2729 /*
2730 * If the source or destination cgroup is frozen,
2731 * the task might require to change its state.
2732 */
2733 cgroup_freezer_migrate_task(task, from_cset->dfl_cgrp,
2734 to_cset->dfl_cgrp);
2735 put_css_set_locked(from_cset);
2736
2737 }
2738 }
2739 spin_unlock_irq(&css_set_lock);
2740
2741 /*
2742 * Migration is committed, all target tasks are now on dst_csets.
2743 * Nothing is sensitive to fork() after this point. Notify
2744 * controllers that migration is complete.
2745 */
2746 tset->csets = &tset->dst_csets;
2747
2748 if (tset->nr_tasks) {
2749 do_each_subsys_mask(ss, ssid, mgctx->ss_mask) {
2750 if (ss->attach) {
2751 tset->ssid = ssid;
2752 ss->attach(tset);
2753 }
2754 } while_each_subsys_mask();
2755 }
2756
2757 ret = 0;
2758 goto out_release_tset;
2759
2760 out_cancel_attach:
2761 if (tset->nr_tasks) {
2762 do_each_subsys_mask(ss, ssid, mgctx->ss_mask) {
2763 if (ssid == failed_ssid)
2764 break;
2765 if (ss->cancel_attach) {
2766 tset->ssid = ssid;
2767 ss->cancel_attach(tset);
2768 }
2769 } while_each_subsys_mask();
2770 }
2771 out_release_tset:
2772 spin_lock_irq(&css_set_lock);
2773 list_splice_init(&tset->dst_csets, &tset->src_csets);
2774 list_for_each_entry_safe(cset, tmp_cset, &tset->src_csets, mg_node) {
2775 list_splice_tail_init(&cset->mg_tasks, &cset->tasks);
2776 list_del_init(&cset->mg_node);
2777 }
2778 spin_unlock_irq(&css_set_lock);
2779
2780 /*
2781 * Re-initialize the cgroup_taskset structure in case it is reused
2782 * again in another cgroup_migrate_add_task()/cgroup_migrate_execute()
2783 * iteration.
2784 */
2785 tset->nr_tasks = 0;
2786 tset->csets = &tset->src_csets;
2787 return ret;
2788 }
2789
2790 /**
2791 * cgroup_migrate_vet_dst - verify whether a cgroup can be migration destination
2792 * @dst_cgrp: destination cgroup to test
2793 *
2794 * On the default hierarchy, except for the mixable, (possible) thread root
2795 * and threaded cgroups, subtree_control must be zero for migration
2796 * destination cgroups with tasks so that child cgroups don't compete
2797 * against tasks.
2798 */
cgroup_migrate_vet_dst(struct cgroup * dst_cgrp)2799 int cgroup_migrate_vet_dst(struct cgroup *dst_cgrp)
2800 {
2801 /* v1 doesn't have any restriction */
2802 if (!cgroup_on_dfl(dst_cgrp))
2803 return 0;
2804
2805 /* verify @dst_cgrp can host resources */
2806 if (!cgroup_is_valid_domain(dst_cgrp->dom_cgrp))
2807 return -EOPNOTSUPP;
2808
2809 /*
2810 * If @dst_cgrp is already or can become a thread root or is
2811 * threaded, it doesn't matter.
2812 */
2813 if (cgroup_can_be_thread_root(dst_cgrp) || cgroup_is_threaded(dst_cgrp))
2814 return 0;
2815
2816 /* apply no-internal-process constraint */
2817 if (dst_cgrp->subtree_control)
2818 return -EBUSY;
2819
2820 return 0;
2821 }
2822
2823 /**
2824 * cgroup_migrate_finish - cleanup after attach
2825 * @mgctx: migration context
2826 *
2827 * Undo cgroup_migrate_add_src() and cgroup_migrate_prepare_dst(). See
2828 * those functions for details.
2829 */
cgroup_migrate_finish(struct cgroup_mgctx * mgctx)2830 void cgroup_migrate_finish(struct cgroup_mgctx *mgctx)
2831 {
2832 struct css_set *cset, *tmp_cset;
2833
2834 lockdep_assert_held(&cgroup_mutex);
2835
2836 spin_lock_irq(&css_set_lock);
2837
2838 list_for_each_entry_safe(cset, tmp_cset, &mgctx->preloaded_src_csets,
2839 mg_src_preload_node) {
2840 cset->mg_src_cgrp = NULL;
2841 cset->mg_dst_cgrp = NULL;
2842 cset->mg_dst_cset = NULL;
2843 list_del_init(&cset->mg_src_preload_node);
2844 put_css_set_locked(cset);
2845 }
2846
2847 list_for_each_entry_safe(cset, tmp_cset, &mgctx->preloaded_dst_csets,
2848 mg_dst_preload_node) {
2849 cset->mg_src_cgrp = NULL;
2850 cset->mg_dst_cgrp = NULL;
2851 cset->mg_dst_cset = NULL;
2852 list_del_init(&cset->mg_dst_preload_node);
2853 put_css_set_locked(cset);
2854 }
2855
2856 spin_unlock_irq(&css_set_lock);
2857 }
2858
2859 /**
2860 * cgroup_migrate_add_src - add a migration source css_set
2861 * @src_cset: the source css_set to add
2862 * @dst_cgrp: the destination cgroup
2863 * @mgctx: migration context
2864 *
2865 * Tasks belonging to @src_cset are about to be migrated to @dst_cgrp. Pin
2866 * @src_cset and add it to @mgctx->src_csets, which should later be cleaned
2867 * up by cgroup_migrate_finish().
2868 *
2869 * This function may be called without holding cgroup_threadgroup_rwsem
2870 * even if the target is a process. Threads may be created and destroyed
2871 * but as long as cgroup_mutex is not dropped, no new css_set can be put
2872 * into play and the preloaded css_sets are guaranteed to cover all
2873 * migrations.
2874 */
cgroup_migrate_add_src(struct css_set * src_cset,struct cgroup * dst_cgrp,struct cgroup_mgctx * mgctx)2875 void cgroup_migrate_add_src(struct css_set *src_cset,
2876 struct cgroup *dst_cgrp,
2877 struct cgroup_mgctx *mgctx)
2878 {
2879 struct cgroup *src_cgrp;
2880
2881 lockdep_assert_held(&cgroup_mutex);
2882 lockdep_assert_held(&css_set_lock);
2883
2884 /*
2885 * If ->dead, @src_set is associated with one or more dead cgroups
2886 * and doesn't contain any migratable tasks. Ignore it early so
2887 * that the rest of migration path doesn't get confused by it.
2888 */
2889 if (src_cset->dead)
2890 return;
2891
2892 if (!list_empty(&src_cset->mg_src_preload_node))
2893 return;
2894
2895 src_cgrp = cset_cgroup_from_root(src_cset, dst_cgrp->root);
2896
2897 WARN_ON(src_cset->mg_src_cgrp);
2898 WARN_ON(src_cset->mg_dst_cgrp);
2899 WARN_ON(!list_empty(&src_cset->mg_tasks));
2900 WARN_ON(!list_empty(&src_cset->mg_node));
2901
2902 src_cset->mg_src_cgrp = src_cgrp;
2903 src_cset->mg_dst_cgrp = dst_cgrp;
2904 get_css_set(src_cset);
2905 list_add_tail(&src_cset->mg_src_preload_node, &mgctx->preloaded_src_csets);
2906 }
2907
2908 /**
2909 * cgroup_migrate_prepare_dst - prepare destination css_sets for migration
2910 * @mgctx: migration context
2911 *
2912 * Tasks are about to be moved and all the source css_sets have been
2913 * preloaded to @mgctx->preloaded_src_csets. This function looks up and
2914 * pins all destination css_sets, links each to its source, and append them
2915 * to @mgctx->preloaded_dst_csets.
2916 *
2917 * This function must be called after cgroup_migrate_add_src() has been
2918 * called on each migration source css_set. After migration is performed
2919 * using cgroup_migrate(), cgroup_migrate_finish() must be called on
2920 * @mgctx.
2921 */
cgroup_migrate_prepare_dst(struct cgroup_mgctx * mgctx)2922 int cgroup_migrate_prepare_dst(struct cgroup_mgctx *mgctx)
2923 {
2924 struct css_set *src_cset, *tmp_cset;
2925
2926 lockdep_assert_held(&cgroup_mutex);
2927
2928 /* look up the dst cset for each src cset and link it to src */
2929 list_for_each_entry_safe(src_cset, tmp_cset, &mgctx->preloaded_src_csets,
2930 mg_src_preload_node) {
2931 struct css_set *dst_cset;
2932 struct cgroup_subsys *ss;
2933 int ssid;
2934
2935 dst_cset = find_css_set(src_cset, src_cset->mg_dst_cgrp);
2936 if (!dst_cset)
2937 return -ENOMEM;
2938
2939 WARN_ON_ONCE(src_cset->mg_dst_cset || dst_cset->mg_dst_cset);
2940
2941 /*
2942 * If src cset equals dst, it's noop. Drop the src.
2943 * cgroup_migrate() will skip the cset too. Note that we
2944 * can't handle src == dst as some nodes are used by both.
2945 */
2946 if (src_cset == dst_cset) {
2947 src_cset->mg_src_cgrp = NULL;
2948 src_cset->mg_dst_cgrp = NULL;
2949 list_del_init(&src_cset->mg_src_preload_node);
2950 put_css_set(src_cset);
2951 put_css_set(dst_cset);
2952 continue;
2953 }
2954
2955 src_cset->mg_dst_cset = dst_cset;
2956
2957 if (list_empty(&dst_cset->mg_dst_preload_node))
2958 list_add_tail(&dst_cset->mg_dst_preload_node,
2959 &mgctx->preloaded_dst_csets);
2960 else
2961 put_css_set(dst_cset);
2962
2963 for_each_subsys(ss, ssid)
2964 if (src_cset->subsys[ssid] != dst_cset->subsys[ssid])
2965 mgctx->ss_mask |= 1 << ssid;
2966 }
2967
2968 return 0;
2969 }
2970
2971 /**
2972 * cgroup_migrate - migrate a process or task to a cgroup
2973 * @leader: the leader of the process or the task to migrate
2974 * @threadgroup: whether @leader points to the whole process or a single task
2975 * @mgctx: migration context
2976 *
2977 * Migrate a process or task denoted by @leader. If migrating a process,
2978 * the caller must be holding cgroup_threadgroup_rwsem. The caller is also
2979 * responsible for invoking cgroup_migrate_add_src() and
2980 * cgroup_migrate_prepare_dst() on the targets before invoking this
2981 * function and following up with cgroup_migrate_finish().
2982 *
2983 * As long as a controller's ->can_attach() doesn't fail, this function is
2984 * guaranteed to succeed. This means that, excluding ->can_attach()
2985 * failure, when migrating multiple targets, the success or failure can be
2986 * decided for all targets by invoking group_migrate_prepare_dst() before
2987 * actually starting migrating.
2988 */
cgroup_migrate(struct task_struct * leader,bool threadgroup,struct cgroup_mgctx * mgctx)2989 int cgroup_migrate(struct task_struct *leader, bool threadgroup,
2990 struct cgroup_mgctx *mgctx)
2991 {
2992 struct task_struct *task;
2993
2994 /*
2995 * The following thread iteration should be inside an RCU critical
2996 * section to prevent tasks from being freed while taking the snapshot.
2997 * spin_lock_irq() implies RCU critical section here.
2998 */
2999 spin_lock_irq(&css_set_lock);
3000 task = leader;
3001 do {
3002 cgroup_migrate_add_task(task, mgctx);
3003 if (!threadgroup)
3004 break;
3005 } while_each_thread(leader, task);
3006 spin_unlock_irq(&css_set_lock);
3007
3008 return cgroup_migrate_execute(mgctx);
3009 }
3010
3011 /**
3012 * cgroup_attach_task - attach a task or a whole threadgroup to a cgroup
3013 * @dst_cgrp: the cgroup to attach to
3014 * @leader: the task or the leader of the threadgroup to be attached
3015 * @threadgroup: attach the whole threadgroup?
3016 *
3017 * Call holding cgroup_mutex and cgroup_threadgroup_rwsem.
3018 */
cgroup_attach_task(struct cgroup * dst_cgrp,struct task_struct * leader,bool threadgroup)3019 int cgroup_attach_task(struct cgroup *dst_cgrp, struct task_struct *leader,
3020 bool threadgroup)
3021 {
3022 DEFINE_CGROUP_MGCTX(mgctx);
3023 struct task_struct *task;
3024 int ret = 0;
3025
3026 /* look up all src csets */
3027 spin_lock_irq(&css_set_lock);
3028 task = leader;
3029 do {
3030 cgroup_migrate_add_src(task_css_set(task), dst_cgrp, &mgctx);
3031 if (!threadgroup)
3032 break;
3033 } while_each_thread(leader, task);
3034 spin_unlock_irq(&css_set_lock);
3035
3036 /* prepare dst csets and commit */
3037 ret = cgroup_migrate_prepare_dst(&mgctx);
3038 if (!ret)
3039 ret = cgroup_migrate(leader, threadgroup, &mgctx);
3040
3041 cgroup_migrate_finish(&mgctx);
3042
3043 if (!ret)
3044 TRACE_CGROUP_PATH(attach_task, dst_cgrp, leader, threadgroup);
3045
3046 return ret;
3047 }
3048
cgroup_procs_write_start(char * buf,bool threadgroup,enum cgroup_attach_lock_mode * lock_mode)3049 struct task_struct *cgroup_procs_write_start(char *buf, bool threadgroup,
3050 enum cgroup_attach_lock_mode *lock_mode)
3051 {
3052 struct task_struct *tsk;
3053 pid_t pid;
3054
3055 if (kstrtoint(strstrip(buf), 0, &pid) || pid < 0)
3056 return ERR_PTR(-EINVAL);
3057
3058 retry_find_task:
3059 rcu_read_lock();
3060 if (pid) {
3061 tsk = find_task_by_vpid(pid);
3062 if (!tsk) {
3063 tsk = ERR_PTR(-ESRCH);
3064 goto out_unlock_rcu;
3065 }
3066 } else {
3067 tsk = current;
3068 }
3069
3070 if (threadgroup)
3071 tsk = tsk->group_leader;
3072
3073 /*
3074 * kthreads may acquire PF_NO_SETAFFINITY during initialization.
3075 * If userland migrates such a kthread to a non-root cgroup, it can
3076 * become trapped in a cpuset, or RT kthread may be born in a
3077 * cgroup with no rt_runtime allocated. Just say no.
3078 */
3079 if (tsk->no_cgroup_migration || (tsk->flags & PF_NO_SETAFFINITY)) {
3080 tsk = ERR_PTR(-EINVAL);
3081 goto out_unlock_rcu;
3082 }
3083 get_task_struct(tsk);
3084 rcu_read_unlock();
3085
3086 /*
3087 * If we migrate a single thread, we don't care about threadgroup
3088 * stability. If the thread is `current`, it won't exit(2) under our
3089 * hands or change PID through exec(2). We exclude
3090 * cgroup_update_dfl_csses and other cgroup_{proc,thread}s_write callers
3091 * by cgroup_mutex. Therefore, we can skip the global lock.
3092 */
3093 lockdep_assert_held(&cgroup_mutex);
3094
3095 if (pid || threadgroup) {
3096 if (cgroup_enable_per_threadgroup_rwsem)
3097 *lock_mode = CGRP_ATTACH_LOCK_PER_THREADGROUP;
3098 else
3099 *lock_mode = CGRP_ATTACH_LOCK_GLOBAL;
3100 } else {
3101 *lock_mode = CGRP_ATTACH_LOCK_NONE;
3102 }
3103
3104 cgroup_attach_lock(*lock_mode, tsk);
3105
3106 if (threadgroup) {
3107 if (!thread_group_leader(tsk)) {
3108 /*
3109 * A race with de_thread from another thread's exec()
3110 * may strip us of our leadership. If this happens,
3111 * throw this task away and try again.
3112 */
3113 cgroup_attach_unlock(*lock_mode, tsk);
3114 put_task_struct(tsk);
3115 goto retry_find_task;
3116 }
3117 }
3118
3119 return tsk;
3120
3121 out_unlock_rcu:
3122 rcu_read_unlock();
3123 return tsk;
3124 }
3125
cgroup_procs_write_finish(struct task_struct * task,enum cgroup_attach_lock_mode lock_mode)3126 void cgroup_procs_write_finish(struct task_struct *task,
3127 enum cgroup_attach_lock_mode lock_mode)
3128 {
3129 cgroup_attach_unlock(lock_mode, task);
3130
3131 /* release reference from cgroup_procs_write_start() */
3132 put_task_struct(task);
3133 }
3134
cgroup_print_ss_mask(struct seq_file * seq,u32 ss_mask)3135 static void cgroup_print_ss_mask(struct seq_file *seq, u32 ss_mask)
3136 {
3137 struct cgroup_subsys *ss;
3138 bool printed = false;
3139 int ssid;
3140
3141 do_each_subsys_mask(ss, ssid, ss_mask) {
3142 if (printed)
3143 seq_putc(seq, ' ');
3144 seq_puts(seq, ss->name);
3145 printed = true;
3146 } while_each_subsys_mask();
3147 if (printed)
3148 seq_putc(seq, '\n');
3149 }
3150
3151 /* show controllers which are enabled from the parent */
cgroup_controllers_show(struct seq_file * seq,void * v)3152 static int cgroup_controllers_show(struct seq_file *seq, void *v)
3153 {
3154 struct cgroup *cgrp = seq_css(seq)->cgroup;
3155
3156 cgroup_print_ss_mask(seq, cgroup_control(cgrp));
3157 return 0;
3158 }
3159
3160 /* show controllers which are enabled for a given cgroup's children */
cgroup_subtree_control_show(struct seq_file * seq,void * v)3161 static int cgroup_subtree_control_show(struct seq_file *seq, void *v)
3162 {
3163 struct cgroup *cgrp = seq_css(seq)->cgroup;
3164
3165 cgroup_print_ss_mask(seq, cgrp->subtree_control);
3166 return 0;
3167 }
3168
3169 /**
3170 * cgroup_update_dfl_csses - update css assoc of a subtree in default hierarchy
3171 * @cgrp: root of the subtree to update csses for
3172 *
3173 * @cgrp's control masks have changed and its subtree's css associations
3174 * need to be updated accordingly. This function looks up all css_sets
3175 * which are attached to the subtree, creates the matching updated css_sets
3176 * and migrates the tasks to the new ones.
3177 */
cgroup_update_dfl_csses(struct cgroup * cgrp)3178 static int cgroup_update_dfl_csses(struct cgroup *cgrp)
3179 {
3180 DEFINE_CGROUP_MGCTX(mgctx);
3181 struct cgroup_subsys_state *d_css;
3182 struct cgroup *dsct;
3183 struct css_set *src_cset;
3184 enum cgroup_attach_lock_mode lock_mode;
3185 bool has_tasks;
3186 int ret;
3187
3188 lockdep_assert_held(&cgroup_mutex);
3189
3190 /* look up all csses currently attached to @cgrp's subtree */
3191 spin_lock_irq(&css_set_lock);
3192 cgroup_for_each_live_descendant_pre(dsct, d_css, cgrp) {
3193 struct cgrp_cset_link *link;
3194
3195 /*
3196 * As cgroup_update_dfl_csses() is only called by
3197 * cgroup_apply_control(). The csses associated with the
3198 * given cgrp will not be affected by changes made to
3199 * its subtree_control file. We can skip them.
3200 */
3201 if (dsct == cgrp)
3202 continue;
3203
3204 list_for_each_entry(link, &dsct->cset_links, cset_link)
3205 cgroup_migrate_add_src(link->cset, dsct, &mgctx);
3206 }
3207 spin_unlock_irq(&css_set_lock);
3208
3209 /*
3210 * We need to write-lock threadgroup_rwsem while migrating tasks.
3211 * However, if there are no source csets for @cgrp, changing its
3212 * controllers isn't gonna produce any task migrations and the
3213 * write-locking can be skipped safely.
3214 */
3215 has_tasks = !list_empty(&mgctx.preloaded_src_csets);
3216
3217 if (has_tasks)
3218 lock_mode = CGRP_ATTACH_LOCK_GLOBAL;
3219 else
3220 lock_mode = CGRP_ATTACH_LOCK_NONE;
3221
3222 cgroup_attach_lock(lock_mode, NULL);
3223
3224 /* NULL dst indicates self on default hierarchy */
3225 ret = cgroup_migrate_prepare_dst(&mgctx);
3226 if (ret)
3227 goto out_finish;
3228
3229 spin_lock_irq(&css_set_lock);
3230 list_for_each_entry(src_cset, &mgctx.preloaded_src_csets,
3231 mg_src_preload_node) {
3232 struct task_struct *task, *ntask;
3233
3234 /* all tasks in src_csets need to be migrated */
3235 list_for_each_entry_safe(task, ntask, &src_cset->tasks, cg_list)
3236 cgroup_migrate_add_task(task, &mgctx);
3237 }
3238 spin_unlock_irq(&css_set_lock);
3239
3240 ret = cgroup_migrate_execute(&mgctx);
3241 out_finish:
3242 cgroup_migrate_finish(&mgctx);
3243 cgroup_attach_unlock(lock_mode, NULL);
3244 return ret;
3245 }
3246
3247 /**
3248 * cgroup_lock_and_drain_offline - lock cgroup_mutex and drain offlined csses
3249 * @cgrp: root of the target subtree
3250 *
3251 * Because css offlining is asynchronous, userland may try to re-enable a
3252 * controller while the previous css is still around. This function grabs
3253 * cgroup_mutex and drains the previous css instances of @cgrp's subtree.
3254 */
cgroup_lock_and_drain_offline(struct cgroup * cgrp)3255 void cgroup_lock_and_drain_offline(struct cgroup *cgrp)
3256 __acquires(&cgroup_mutex)
3257 {
3258 struct cgroup *dsct;
3259 struct cgroup_subsys_state *d_css;
3260 struct cgroup_subsys *ss;
3261 int ssid;
3262
3263 restart:
3264 cgroup_lock();
3265
3266 cgroup_for_each_live_descendant_post(dsct, d_css, cgrp) {
3267 for_each_subsys(ss, ssid) {
3268 struct cgroup_subsys_state *css = cgroup_css(dsct, ss);
3269 DEFINE_WAIT(wait);
3270
3271 if (!css || !percpu_ref_is_dying(&css->refcnt))
3272 continue;
3273
3274 cgroup_get_live(dsct);
3275 prepare_to_wait(&dsct->offline_waitq, &wait,
3276 TASK_UNINTERRUPTIBLE);
3277
3278 cgroup_unlock();
3279 schedule();
3280 finish_wait(&dsct->offline_waitq, &wait);
3281
3282 cgroup_put(dsct);
3283 goto restart;
3284 }
3285 }
3286 }
3287
3288 /**
3289 * cgroup_save_control - save control masks and dom_cgrp of a subtree
3290 * @cgrp: root of the target subtree
3291 *
3292 * Save ->subtree_control, ->subtree_ss_mask and ->dom_cgrp to the
3293 * respective old_ prefixed fields for @cgrp's subtree including @cgrp
3294 * itself.
3295 */
cgroup_save_control(struct cgroup * cgrp)3296 static void cgroup_save_control(struct cgroup *cgrp)
3297 {
3298 struct cgroup *dsct;
3299 struct cgroup_subsys_state *d_css;
3300
3301 cgroup_for_each_live_descendant_pre(dsct, d_css, cgrp) {
3302 dsct->old_subtree_control = dsct->subtree_control;
3303 dsct->old_subtree_ss_mask = dsct->subtree_ss_mask;
3304 dsct->old_dom_cgrp = dsct->dom_cgrp;
3305 }
3306 }
3307
3308 /**
3309 * cgroup_propagate_control - refresh control masks of a subtree
3310 * @cgrp: root of the target subtree
3311 *
3312 * For @cgrp and its subtree, ensure ->subtree_ss_mask matches
3313 * ->subtree_control and propagate controller availability through the
3314 * subtree so that descendants don't have unavailable controllers enabled.
3315 */
cgroup_propagate_control(struct cgroup * cgrp)3316 static void cgroup_propagate_control(struct cgroup *cgrp)
3317 {
3318 struct cgroup *dsct;
3319 struct cgroup_subsys_state *d_css;
3320
3321 cgroup_for_each_live_descendant_pre(dsct, d_css, cgrp) {
3322 dsct->subtree_control &= cgroup_control(dsct);
3323 dsct->subtree_ss_mask =
3324 cgroup_calc_subtree_ss_mask(dsct->subtree_control,
3325 cgroup_ss_mask(dsct));
3326 }
3327 }
3328
3329 /**
3330 * cgroup_restore_control - restore control masks and dom_cgrp of a subtree
3331 * @cgrp: root of the target subtree
3332 *
3333 * Restore ->subtree_control, ->subtree_ss_mask and ->dom_cgrp from the
3334 * respective old_ prefixed fields for @cgrp's subtree including @cgrp
3335 * itself.
3336 */
cgroup_restore_control(struct cgroup * cgrp)3337 static void cgroup_restore_control(struct cgroup *cgrp)
3338 {
3339 struct cgroup *dsct;
3340 struct cgroup_subsys_state *d_css;
3341
3342 cgroup_for_each_live_descendant_post(dsct, d_css, cgrp) {
3343 dsct->subtree_control = dsct->old_subtree_control;
3344 dsct->subtree_ss_mask = dsct->old_subtree_ss_mask;
3345 dsct->dom_cgrp = dsct->old_dom_cgrp;
3346 }
3347 }
3348
css_visible(struct cgroup_subsys_state * css)3349 static bool css_visible(struct cgroup_subsys_state *css)
3350 {
3351 struct cgroup_subsys *ss = css->ss;
3352 struct cgroup *cgrp = css->cgroup;
3353
3354 if (cgroup_control(cgrp) & (1 << ss->id))
3355 return true;
3356 if (!(cgroup_ss_mask(cgrp) & (1 << ss->id)))
3357 return false;
3358 return cgroup_on_dfl(cgrp) && ss->implicit_on_dfl;
3359 }
3360
3361 /**
3362 * cgroup_apply_control_enable - enable or show csses according to control
3363 * @cgrp: root of the target subtree
3364 *
3365 * Walk @cgrp's subtree and create new csses or make the existing ones
3366 * visible. A css is created invisible if it's being implicitly enabled
3367 * through dependency. An invisible css is made visible when the userland
3368 * explicitly enables it.
3369 *
3370 * Returns 0 on success, -errno on failure. On failure, csses which have
3371 * been processed already aren't cleaned up. The caller is responsible for
3372 * cleaning up with cgroup_apply_control_disable().
3373 */
cgroup_apply_control_enable(struct cgroup * cgrp)3374 static int cgroup_apply_control_enable(struct cgroup *cgrp)
3375 {
3376 struct cgroup *dsct;
3377 struct cgroup_subsys_state *d_css;
3378 struct cgroup_subsys *ss;
3379 int ssid, ret;
3380
3381 cgroup_for_each_live_descendant_pre(dsct, d_css, cgrp) {
3382 for_each_subsys(ss, ssid) {
3383 struct cgroup_subsys_state *css = cgroup_css(dsct, ss);
3384
3385 if (!(cgroup_ss_mask(dsct) & (1 << ss->id)))
3386 continue;
3387
3388 if (!css) {
3389 css = css_create(dsct, ss);
3390 if (IS_ERR(css))
3391 return PTR_ERR(css);
3392 }
3393
3394 WARN_ON_ONCE(percpu_ref_is_dying(&css->refcnt));
3395
3396 if (css_visible(css)) {
3397 ret = css_populate_dir(css);
3398 if (ret)
3399 return ret;
3400 }
3401 }
3402 }
3403
3404 return 0;
3405 }
3406
3407 /**
3408 * cgroup_apply_control_disable - kill or hide csses according to control
3409 * @cgrp: root of the target subtree
3410 *
3411 * Walk @cgrp's subtree and kill and hide csses so that they match
3412 * cgroup_ss_mask() and cgroup_visible_mask().
3413 *
3414 * A css is hidden when the userland requests it to be disabled while other
3415 * subsystems are still depending on it. The css must not actively control
3416 * resources and be in the vanilla state if it's made visible again later.
3417 * Controllers which may be depended upon should provide ->css_reset() for
3418 * this purpose.
3419 */
cgroup_apply_control_disable(struct cgroup * cgrp)3420 static void cgroup_apply_control_disable(struct cgroup *cgrp)
3421 {
3422 struct cgroup *dsct;
3423 struct cgroup_subsys_state *d_css;
3424 struct cgroup_subsys *ss;
3425 int ssid;
3426
3427 cgroup_for_each_live_descendant_post(dsct, d_css, cgrp) {
3428 for_each_subsys(ss, ssid) {
3429 struct cgroup_subsys_state *css = cgroup_css(dsct, ss);
3430
3431 if (!css)
3432 continue;
3433
3434 WARN_ON_ONCE(percpu_ref_is_dying(&css->refcnt));
3435
3436 if (css->parent &&
3437 !(cgroup_ss_mask(dsct) & (1 << ss->id))) {
3438 kill_css(css);
3439 } else if (!css_visible(css)) {
3440 css_clear_dir(css);
3441 if (ss->css_reset)
3442 ss->css_reset(css);
3443 }
3444 }
3445 }
3446 }
3447
3448 /**
3449 * cgroup_apply_control - apply control mask updates to the subtree
3450 * @cgrp: root of the target subtree
3451 *
3452 * subsystems can be enabled and disabled in a subtree using the following
3453 * steps.
3454 *
3455 * 1. Call cgroup_save_control() to stash the current state.
3456 * 2. Update ->subtree_control masks in the subtree as desired.
3457 * 3. Call cgroup_apply_control() to apply the changes.
3458 * 4. Optionally perform other related operations.
3459 * 5. Call cgroup_finalize_control() to finish up.
3460 *
3461 * This function implements step 3 and propagates the mask changes
3462 * throughout @cgrp's subtree, updates csses accordingly and perform
3463 * process migrations.
3464 */
cgroup_apply_control(struct cgroup * cgrp)3465 static int cgroup_apply_control(struct cgroup *cgrp)
3466 {
3467 int ret;
3468
3469 cgroup_propagate_control(cgrp);
3470
3471 ret = cgroup_apply_control_enable(cgrp);
3472 if (ret)
3473 return ret;
3474
3475 /*
3476 * At this point, cgroup_e_css_by_mask() results reflect the new csses
3477 * making the following cgroup_update_dfl_csses() properly update
3478 * css associations of all tasks in the subtree.
3479 */
3480 return cgroup_update_dfl_csses(cgrp);
3481 }
3482
3483 /**
3484 * cgroup_finalize_control - finalize control mask update
3485 * @cgrp: root of the target subtree
3486 * @ret: the result of the update
3487 *
3488 * Finalize control mask update. See cgroup_apply_control() for more info.
3489 */
cgroup_finalize_control(struct cgroup * cgrp,int ret)3490 static void cgroup_finalize_control(struct cgroup *cgrp, int ret)
3491 {
3492 if (ret) {
3493 cgroup_restore_control(cgrp);
3494 cgroup_propagate_control(cgrp);
3495 }
3496
3497 cgroup_apply_control_disable(cgrp);
3498 }
3499
cgroup_vet_subtree_control_enable(struct cgroup * cgrp,u32 enable)3500 static int cgroup_vet_subtree_control_enable(struct cgroup *cgrp, u32 enable)
3501 {
3502 u32 domain_enable = enable & ~cgrp_dfl_threaded_ss_mask;
3503
3504 /* if nothing is getting enabled, nothing to worry about */
3505 if (!enable)
3506 return 0;
3507
3508 /* can @cgrp host any resources? */
3509 if (!cgroup_is_valid_domain(cgrp->dom_cgrp))
3510 return -EOPNOTSUPP;
3511
3512 /* mixables don't care */
3513 if (cgroup_is_mixable(cgrp))
3514 return 0;
3515
3516 if (domain_enable) {
3517 /* can't enable domain controllers inside a thread subtree */
3518 if (cgroup_is_thread_root(cgrp) || cgroup_is_threaded(cgrp))
3519 return -EOPNOTSUPP;
3520 } else {
3521 /*
3522 * Threaded controllers can handle internal competitions
3523 * and are always allowed inside a (prospective) thread
3524 * subtree.
3525 */
3526 if (cgroup_can_be_thread_root(cgrp) || cgroup_is_threaded(cgrp))
3527 return 0;
3528 }
3529
3530 /*
3531 * Controllers can't be enabled for a cgroup with tasks to avoid
3532 * child cgroups competing against tasks.
3533 */
3534 if (cgroup_has_tasks(cgrp))
3535 return -EBUSY;
3536
3537 return 0;
3538 }
3539
3540 /* change the enabled child controllers for a cgroup in the default hierarchy */
cgroup_subtree_control_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)3541 static ssize_t cgroup_subtree_control_write(struct kernfs_open_file *of,
3542 char *buf, size_t nbytes,
3543 loff_t off)
3544 {
3545 u32 enable = 0, disable = 0;
3546 struct cgroup *cgrp, *child;
3547 struct cgroup_subsys *ss;
3548 char *tok;
3549 int ssid, ret;
3550
3551 /*
3552 * Parse input - space separated list of subsystem names prefixed
3553 * with either + or -.
3554 */
3555 buf = strstrip(buf);
3556 while ((tok = strsep(&buf, " "))) {
3557 if (tok[0] == '\0')
3558 continue;
3559 do_each_subsys_mask(ss, ssid, ~cgrp_dfl_inhibit_ss_mask) {
3560 if (!cgroup_ssid_enabled(ssid) ||
3561 strcmp(tok + 1, ss->name))
3562 continue;
3563
3564 if (*tok == '+') {
3565 enable |= 1 << ssid;
3566 disable &= ~(1 << ssid);
3567 } else if (*tok == '-') {
3568 disable |= 1 << ssid;
3569 enable &= ~(1 << ssid);
3570 } else {
3571 return -EINVAL;
3572 }
3573 break;
3574 } while_each_subsys_mask();
3575 if (ssid == CGROUP_SUBSYS_COUNT)
3576 return -EINVAL;
3577 }
3578
3579 cgrp = cgroup_kn_lock_live(of->kn, true);
3580 if (!cgrp)
3581 return -ENODEV;
3582
3583 for_each_subsys(ss, ssid) {
3584 if (enable & (1 << ssid)) {
3585 if (cgrp->subtree_control & (1 << ssid)) {
3586 enable &= ~(1 << ssid);
3587 continue;
3588 }
3589
3590 if (!(cgroup_control(cgrp) & (1 << ssid))) {
3591 ret = -ENOENT;
3592 goto out_unlock;
3593 }
3594 } else if (disable & (1 << ssid)) {
3595 if (!(cgrp->subtree_control & (1 << ssid))) {
3596 disable &= ~(1 << ssid);
3597 continue;
3598 }
3599
3600 /* a child has it enabled? */
3601 cgroup_for_each_live_child(child, cgrp) {
3602 if (child->subtree_control & (1 << ssid)) {
3603 ret = -EBUSY;
3604 goto out_unlock;
3605 }
3606 }
3607 }
3608 }
3609
3610 if (!enable && !disable) {
3611 ret = 0;
3612 goto out_unlock;
3613 }
3614
3615 ret = cgroup_vet_subtree_control_enable(cgrp, enable);
3616 if (ret)
3617 goto out_unlock;
3618
3619 /* save and update control masks and prepare csses */
3620 cgroup_save_control(cgrp);
3621
3622 cgrp->subtree_control |= enable;
3623 cgrp->subtree_control &= ~disable;
3624
3625 ret = cgroup_apply_control(cgrp);
3626 cgroup_finalize_control(cgrp, ret);
3627 if (ret)
3628 goto out_unlock;
3629
3630 kernfs_activate(cgrp->kn);
3631 out_unlock:
3632 cgroup_kn_unlock(of->kn);
3633 return ret ?: nbytes;
3634 }
3635
3636 /**
3637 * cgroup_enable_threaded - make @cgrp threaded
3638 * @cgrp: the target cgroup
3639 *
3640 * Called when "threaded" is written to the cgroup.type interface file and
3641 * tries to make @cgrp threaded and join the parent's resource domain.
3642 * This function is never called on the root cgroup as cgroup.type doesn't
3643 * exist on it.
3644 */
cgroup_enable_threaded(struct cgroup * cgrp)3645 static int cgroup_enable_threaded(struct cgroup *cgrp)
3646 {
3647 struct cgroup *parent = cgroup_parent(cgrp);
3648 struct cgroup *dom_cgrp = parent->dom_cgrp;
3649 struct cgroup *dsct;
3650 struct cgroup_subsys_state *d_css;
3651 int ret;
3652
3653 lockdep_assert_held(&cgroup_mutex);
3654
3655 /* noop if already threaded */
3656 if (cgroup_is_threaded(cgrp))
3657 return 0;
3658
3659 /*
3660 * If @cgroup is populated or has domain controllers enabled, it
3661 * can't be switched. While the below cgroup_can_be_thread_root()
3662 * test can catch the same conditions, that's only when @parent is
3663 * not mixable, so let's check it explicitly.
3664 */
3665 if (cgroup_is_populated(cgrp) ||
3666 cgrp->subtree_control & ~cgrp_dfl_threaded_ss_mask)
3667 return -EOPNOTSUPP;
3668
3669 /* we're joining the parent's domain, ensure its validity */
3670 if (!cgroup_is_valid_domain(dom_cgrp) ||
3671 !cgroup_can_be_thread_root(dom_cgrp))
3672 return -EOPNOTSUPP;
3673
3674 /*
3675 * The following shouldn't cause actual migrations and should
3676 * always succeed.
3677 */
3678 cgroup_save_control(cgrp);
3679
3680 cgroup_for_each_live_descendant_pre(dsct, d_css, cgrp)
3681 if (dsct == cgrp || cgroup_is_threaded(dsct))
3682 dsct->dom_cgrp = dom_cgrp;
3683
3684 ret = cgroup_apply_control(cgrp);
3685 if (!ret)
3686 parent->nr_threaded_children++;
3687
3688 cgroup_finalize_control(cgrp, ret);
3689 return ret;
3690 }
3691
cgroup_type_show(struct seq_file * seq,void * v)3692 static int cgroup_type_show(struct seq_file *seq, void *v)
3693 {
3694 struct cgroup *cgrp = seq_css(seq)->cgroup;
3695
3696 if (cgroup_is_threaded(cgrp))
3697 seq_puts(seq, "threaded\n");
3698 else if (!cgroup_is_valid_domain(cgrp))
3699 seq_puts(seq, "domain invalid\n");
3700 else if (cgroup_is_thread_root(cgrp))
3701 seq_puts(seq, "domain threaded\n");
3702 else
3703 seq_puts(seq, "domain\n");
3704
3705 return 0;
3706 }
3707
cgroup_type_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)3708 static ssize_t cgroup_type_write(struct kernfs_open_file *of, char *buf,
3709 size_t nbytes, loff_t off)
3710 {
3711 struct cgroup *cgrp;
3712 int ret;
3713
3714 /* only switching to threaded mode is supported */
3715 if (strcmp(strstrip(buf), "threaded"))
3716 return -EINVAL;
3717
3718 /* drain dying csses before we re-apply (threaded) subtree control */
3719 cgrp = cgroup_kn_lock_live(of->kn, true);
3720 if (!cgrp)
3721 return -ENOENT;
3722
3723 /* threaded can only be enabled */
3724 ret = cgroup_enable_threaded(cgrp);
3725
3726 cgroup_kn_unlock(of->kn);
3727 return ret ?: nbytes;
3728 }
3729
cgroup_max_descendants_show(struct seq_file * seq,void * v)3730 static int cgroup_max_descendants_show(struct seq_file *seq, void *v)
3731 {
3732 struct cgroup *cgrp = seq_css(seq)->cgroup;
3733 int descendants = READ_ONCE(cgrp->max_descendants);
3734
3735 if (descendants == INT_MAX)
3736 seq_puts(seq, "max\n");
3737 else
3738 seq_printf(seq, "%d\n", descendants);
3739
3740 return 0;
3741 }
3742
cgroup_max_descendants_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)3743 static ssize_t cgroup_max_descendants_write(struct kernfs_open_file *of,
3744 char *buf, size_t nbytes, loff_t off)
3745 {
3746 struct cgroup *cgrp;
3747 int descendants;
3748 ssize_t ret;
3749
3750 buf = strstrip(buf);
3751 if (!strcmp(buf, "max")) {
3752 descendants = INT_MAX;
3753 } else {
3754 ret = kstrtoint(buf, 0, &descendants);
3755 if (ret)
3756 return ret;
3757 }
3758
3759 if (descendants < 0)
3760 return -ERANGE;
3761
3762 cgrp = cgroup_kn_lock_live(of->kn, false);
3763 if (!cgrp)
3764 return -ENOENT;
3765
3766 cgrp->max_descendants = descendants;
3767
3768 cgroup_kn_unlock(of->kn);
3769
3770 return nbytes;
3771 }
3772
cgroup_max_depth_show(struct seq_file * seq,void * v)3773 static int cgroup_max_depth_show(struct seq_file *seq, void *v)
3774 {
3775 struct cgroup *cgrp = seq_css(seq)->cgroup;
3776 int depth = READ_ONCE(cgrp->max_depth);
3777
3778 if (depth == INT_MAX)
3779 seq_puts(seq, "max\n");
3780 else
3781 seq_printf(seq, "%d\n", depth);
3782
3783 return 0;
3784 }
3785
cgroup_max_depth_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)3786 static ssize_t cgroup_max_depth_write(struct kernfs_open_file *of,
3787 char *buf, size_t nbytes, loff_t off)
3788 {
3789 struct cgroup *cgrp;
3790 ssize_t ret;
3791 int depth;
3792
3793 buf = strstrip(buf);
3794 if (!strcmp(buf, "max")) {
3795 depth = INT_MAX;
3796 } else {
3797 ret = kstrtoint(buf, 0, &depth);
3798 if (ret)
3799 return ret;
3800 }
3801
3802 if (depth < 0)
3803 return -ERANGE;
3804
3805 cgrp = cgroup_kn_lock_live(of->kn, false);
3806 if (!cgrp)
3807 return -ENOENT;
3808
3809 cgrp->max_depth = depth;
3810
3811 cgroup_kn_unlock(of->kn);
3812
3813 return nbytes;
3814 }
3815
cgroup_events_show(struct seq_file * seq,void * v)3816 static int cgroup_events_show(struct seq_file *seq, void *v)
3817 {
3818 struct cgroup *cgrp = seq_css(seq)->cgroup;
3819
3820 seq_printf(seq, "populated %d\n", cgroup_is_populated(cgrp));
3821 seq_printf(seq, "frozen %d\n", test_bit(CGRP_FROZEN, &cgrp->flags));
3822
3823 return 0;
3824 }
3825
cgroup_stat_show(struct seq_file * seq,void * v)3826 static int cgroup_stat_show(struct seq_file *seq, void *v)
3827 {
3828 struct cgroup *cgroup = seq_css(seq)->cgroup;
3829 struct cgroup_subsys_state *css;
3830 int dying_cnt[CGROUP_SUBSYS_COUNT];
3831 int ssid;
3832
3833 seq_printf(seq, "nr_descendants %d\n",
3834 cgroup->nr_descendants);
3835
3836 /*
3837 * Show the number of live and dying csses associated with each of
3838 * non-inhibited cgroup subsystems that is bound to cgroup v2.
3839 *
3840 * Without proper lock protection, racing is possible. So the
3841 * numbers may not be consistent when that happens.
3842 */
3843 rcu_read_lock();
3844 for (ssid = 0; ssid < CGROUP_SUBSYS_COUNT; ssid++) {
3845 dying_cnt[ssid] = -1;
3846 if ((BIT(ssid) & cgrp_dfl_inhibit_ss_mask) ||
3847 (cgroup_subsys[ssid]->root != &cgrp_dfl_root))
3848 continue;
3849 css = rcu_dereference_raw(cgroup->subsys[ssid]);
3850 dying_cnt[ssid] = cgroup->nr_dying_subsys[ssid];
3851 seq_printf(seq, "nr_subsys_%s %d\n", cgroup_subsys[ssid]->name,
3852 css ? (css->nr_descendants + 1) : 0);
3853 }
3854
3855 seq_printf(seq, "nr_dying_descendants %d\n",
3856 cgroup->nr_dying_descendants);
3857 for (ssid = 0; ssid < CGROUP_SUBSYS_COUNT; ssid++) {
3858 if (dying_cnt[ssid] >= 0)
3859 seq_printf(seq, "nr_dying_subsys_%s %d\n",
3860 cgroup_subsys[ssid]->name, dying_cnt[ssid]);
3861 }
3862 rcu_read_unlock();
3863 return 0;
3864 }
3865
cgroup_core_local_stat_show(struct seq_file * seq,void * v)3866 static int cgroup_core_local_stat_show(struct seq_file *seq, void *v)
3867 {
3868 struct cgroup *cgrp = seq_css(seq)->cgroup;
3869 unsigned int sequence;
3870 u64 freeze_time;
3871
3872 do {
3873 sequence = read_seqcount_begin(&cgrp->freezer.freeze_seq);
3874 freeze_time = cgrp->freezer.frozen_nsec;
3875 /* Add in current freezer interval if the cgroup is freezing. */
3876 if (test_bit(CGRP_FREEZE, &cgrp->flags))
3877 freeze_time += (ktime_get_ns() -
3878 cgrp->freezer.freeze_start_nsec);
3879 } while (read_seqcount_retry(&cgrp->freezer.freeze_seq, sequence));
3880
3881 do_div(freeze_time, NSEC_PER_USEC);
3882 seq_printf(seq, "frozen_usec %llu\n", freeze_time);
3883
3884 return 0;
3885 }
3886
3887 #ifdef CONFIG_CGROUP_SCHED
3888 /**
3889 * cgroup_tryget_css - try to get a cgroup's css for the specified subsystem
3890 * @cgrp: the cgroup of interest
3891 * @ss: the subsystem of interest
3892 *
3893 * Find and get @cgrp's css associated with @ss. If the css doesn't exist
3894 * or is offline, %NULL is returned.
3895 */
cgroup_tryget_css(struct cgroup * cgrp,struct cgroup_subsys * ss)3896 static struct cgroup_subsys_state *cgroup_tryget_css(struct cgroup *cgrp,
3897 struct cgroup_subsys *ss)
3898 {
3899 struct cgroup_subsys_state *css;
3900
3901 rcu_read_lock();
3902 css = cgroup_css(cgrp, ss);
3903 if (css && !css_tryget_online(css))
3904 css = NULL;
3905 rcu_read_unlock();
3906
3907 return css;
3908 }
3909
cgroup_extra_stat_show(struct seq_file * seq,int ssid)3910 static int cgroup_extra_stat_show(struct seq_file *seq, int ssid)
3911 {
3912 struct cgroup *cgrp = seq_css(seq)->cgroup;
3913 struct cgroup_subsys *ss = cgroup_subsys[ssid];
3914 struct cgroup_subsys_state *css;
3915 int ret;
3916
3917 if (!ss->css_extra_stat_show)
3918 return 0;
3919
3920 css = cgroup_tryget_css(cgrp, ss);
3921 if (!css)
3922 return 0;
3923
3924 ret = ss->css_extra_stat_show(seq, css);
3925 css_put(css);
3926 return ret;
3927 }
3928
cgroup_local_stat_show(struct seq_file * seq,struct cgroup * cgrp,int ssid)3929 static int cgroup_local_stat_show(struct seq_file *seq,
3930 struct cgroup *cgrp, int ssid)
3931 {
3932 struct cgroup_subsys *ss = cgroup_subsys[ssid];
3933 struct cgroup_subsys_state *css;
3934 int ret;
3935
3936 if (!ss->css_local_stat_show)
3937 return 0;
3938
3939 css = cgroup_tryget_css(cgrp, ss);
3940 if (!css)
3941 return 0;
3942
3943 ret = ss->css_local_stat_show(seq, css);
3944 css_put(css);
3945 return ret;
3946 }
3947 #endif
3948
cpu_stat_show(struct seq_file * seq,void * v)3949 static int cpu_stat_show(struct seq_file *seq, void *v)
3950 {
3951 int ret = 0;
3952
3953 cgroup_base_stat_cputime_show(seq);
3954 #ifdef CONFIG_CGROUP_SCHED
3955 ret = cgroup_extra_stat_show(seq, cpu_cgrp_id);
3956 #endif
3957 return ret;
3958 }
3959
cpu_local_stat_show(struct seq_file * seq,void * v)3960 static int cpu_local_stat_show(struct seq_file *seq, void *v)
3961 {
3962 struct cgroup __maybe_unused *cgrp = seq_css(seq)->cgroup;
3963 int ret = 0;
3964
3965 #ifdef CONFIG_CGROUP_SCHED
3966 ret = cgroup_local_stat_show(seq, cgrp, cpu_cgrp_id);
3967 #endif
3968 return ret;
3969 }
3970
3971 #ifdef CONFIG_PSI
cgroup_io_pressure_show(struct seq_file * seq,void * v)3972 static int cgroup_io_pressure_show(struct seq_file *seq, void *v)
3973 {
3974 struct cgroup *cgrp = seq_css(seq)->cgroup;
3975 struct psi_group *psi = cgroup_psi(cgrp);
3976
3977 return psi_show(seq, psi, PSI_IO);
3978 }
cgroup_memory_pressure_show(struct seq_file * seq,void * v)3979 static int cgroup_memory_pressure_show(struct seq_file *seq, void *v)
3980 {
3981 struct cgroup *cgrp = seq_css(seq)->cgroup;
3982 struct psi_group *psi = cgroup_psi(cgrp);
3983
3984 return psi_show(seq, psi, PSI_MEM);
3985 }
cgroup_cpu_pressure_show(struct seq_file * seq,void * v)3986 static int cgroup_cpu_pressure_show(struct seq_file *seq, void *v)
3987 {
3988 struct cgroup *cgrp = seq_css(seq)->cgroup;
3989 struct psi_group *psi = cgroup_psi(cgrp);
3990
3991 return psi_show(seq, psi, PSI_CPU);
3992 }
3993
pressure_write(struct kernfs_open_file * of,char * buf,size_t nbytes,enum psi_res res)3994 static ssize_t pressure_write(struct kernfs_open_file *of, char *buf,
3995 size_t nbytes, enum psi_res res)
3996 {
3997 struct cgroup_file_ctx *ctx = of->priv;
3998 struct psi_trigger *new;
3999 struct cgroup *cgrp;
4000 struct psi_group *psi;
4001
4002 cgrp = cgroup_kn_lock_live(of->kn, false);
4003 if (!cgrp)
4004 return -ENODEV;
4005
4006 cgroup_get(cgrp);
4007 cgroup_kn_unlock(of->kn);
4008
4009 /* Allow only one trigger per file descriptor */
4010 if (ctx->psi.trigger) {
4011 cgroup_put(cgrp);
4012 return -EBUSY;
4013 }
4014
4015 psi = cgroup_psi(cgrp);
4016 new = psi_trigger_create(psi, buf, res, of->file, of);
4017 if (IS_ERR(new)) {
4018 cgroup_put(cgrp);
4019 return PTR_ERR(new);
4020 }
4021
4022 smp_store_release(&ctx->psi.trigger, new);
4023 cgroup_put(cgrp);
4024
4025 return nbytes;
4026 }
4027
cgroup_io_pressure_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)4028 static ssize_t cgroup_io_pressure_write(struct kernfs_open_file *of,
4029 char *buf, size_t nbytes,
4030 loff_t off)
4031 {
4032 return pressure_write(of, buf, nbytes, PSI_IO);
4033 }
4034
cgroup_memory_pressure_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)4035 static ssize_t cgroup_memory_pressure_write(struct kernfs_open_file *of,
4036 char *buf, size_t nbytes,
4037 loff_t off)
4038 {
4039 return pressure_write(of, buf, nbytes, PSI_MEM);
4040 }
4041
cgroup_cpu_pressure_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)4042 static ssize_t cgroup_cpu_pressure_write(struct kernfs_open_file *of,
4043 char *buf, size_t nbytes,
4044 loff_t off)
4045 {
4046 return pressure_write(of, buf, nbytes, PSI_CPU);
4047 }
4048
4049 #ifdef CONFIG_IRQ_TIME_ACCOUNTING
cgroup_irq_pressure_show(struct seq_file * seq,void * v)4050 static int cgroup_irq_pressure_show(struct seq_file *seq, void *v)
4051 {
4052 struct cgroup *cgrp = seq_css(seq)->cgroup;
4053 struct psi_group *psi = cgroup_psi(cgrp);
4054
4055 return psi_show(seq, psi, PSI_IRQ);
4056 }
4057
cgroup_irq_pressure_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)4058 static ssize_t cgroup_irq_pressure_write(struct kernfs_open_file *of,
4059 char *buf, size_t nbytes,
4060 loff_t off)
4061 {
4062 return pressure_write(of, buf, nbytes, PSI_IRQ);
4063 }
4064 #endif
4065
cgroup_pressure_show(struct seq_file * seq,void * v)4066 static int cgroup_pressure_show(struct seq_file *seq, void *v)
4067 {
4068 struct cgroup *cgrp = seq_css(seq)->cgroup;
4069 struct psi_group *psi = cgroup_psi(cgrp);
4070
4071 seq_printf(seq, "%d\n", psi->enabled);
4072
4073 return 0;
4074 }
4075
cgroup_pressure_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)4076 static ssize_t cgroup_pressure_write(struct kernfs_open_file *of,
4077 char *buf, size_t nbytes,
4078 loff_t off)
4079 {
4080 ssize_t ret;
4081 int enable;
4082 struct cgroup *cgrp;
4083 struct psi_group *psi;
4084
4085 ret = kstrtoint(strstrip(buf), 0, &enable);
4086 if (ret)
4087 return ret;
4088
4089 if (enable < 0 || enable > 1)
4090 return -ERANGE;
4091
4092 cgrp = cgroup_kn_lock_live(of->kn, false);
4093 if (!cgrp)
4094 return -ENOENT;
4095
4096 psi = cgroup_psi(cgrp);
4097 if (psi->enabled != enable) {
4098 int i;
4099
4100 /* show or hide {cpu,memory,io,irq}.pressure files */
4101 for (i = 0; i < NR_PSI_RESOURCES; i++)
4102 cgroup_file_show(&cgrp->psi_files[i], enable);
4103
4104 psi->enabled = enable;
4105 if (enable)
4106 psi_cgroup_restart(psi);
4107 }
4108
4109 cgroup_kn_unlock(of->kn);
4110
4111 return nbytes;
4112 }
4113
cgroup_pressure_poll(struct kernfs_open_file * of,poll_table * pt)4114 static __poll_t cgroup_pressure_poll(struct kernfs_open_file *of,
4115 poll_table *pt)
4116 {
4117 struct cgroup_file_ctx *ctx = of->priv;
4118
4119 return psi_trigger_poll(&ctx->psi.trigger, of->file, pt);
4120 }
4121
cgroup_pressure_release(struct kernfs_open_file * of)4122 static void cgroup_pressure_release(struct kernfs_open_file *of)
4123 {
4124 struct cgroup_file_ctx *ctx = of->priv;
4125
4126 psi_trigger_destroy(ctx->psi.trigger);
4127 }
4128
cgroup_psi_enabled(void)4129 bool cgroup_psi_enabled(void)
4130 {
4131 if (static_branch_likely(&psi_disabled))
4132 return false;
4133
4134 return (cgroup_feature_disable_mask & (1 << OPT_FEATURE_PRESSURE)) == 0;
4135 }
4136
4137 #else /* CONFIG_PSI */
cgroup_psi_enabled(void)4138 bool cgroup_psi_enabled(void)
4139 {
4140 return false;
4141 }
4142
4143 #endif /* CONFIG_PSI */
4144
cgroup_freeze_show(struct seq_file * seq,void * v)4145 static int cgroup_freeze_show(struct seq_file *seq, void *v)
4146 {
4147 struct cgroup *cgrp = seq_css(seq)->cgroup;
4148
4149 seq_printf(seq, "%d\n", cgrp->freezer.freeze);
4150
4151 return 0;
4152 }
4153
cgroup_freeze_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)4154 static ssize_t cgroup_freeze_write(struct kernfs_open_file *of,
4155 char *buf, size_t nbytes, loff_t off)
4156 {
4157 struct cgroup *cgrp;
4158 ssize_t ret;
4159 int freeze;
4160
4161 ret = kstrtoint(strstrip(buf), 0, &freeze);
4162 if (ret)
4163 return ret;
4164
4165 if (freeze < 0 || freeze > 1)
4166 return -ERANGE;
4167
4168 cgrp = cgroup_kn_lock_live(of->kn, false);
4169 if (!cgrp)
4170 return -ENOENT;
4171
4172 cgroup_freeze(cgrp, freeze);
4173
4174 cgroup_kn_unlock(of->kn);
4175
4176 return nbytes;
4177 }
4178
__cgroup_kill(struct cgroup * cgrp)4179 static void __cgroup_kill(struct cgroup *cgrp)
4180 {
4181 struct css_task_iter it;
4182 struct task_struct *task;
4183
4184 lockdep_assert_held(&cgroup_mutex);
4185
4186 spin_lock_irq(&css_set_lock);
4187 cgrp->kill_seq++;
4188 spin_unlock_irq(&css_set_lock);
4189
4190 css_task_iter_start(&cgrp->self, CSS_TASK_ITER_PROCS | CSS_TASK_ITER_THREADED, &it);
4191 while ((task = css_task_iter_next(&it))) {
4192 /* Ignore kernel threads here. */
4193 if (task->flags & PF_KTHREAD)
4194 continue;
4195
4196 /* Skip tasks that are already dying. */
4197 if (__fatal_signal_pending(task))
4198 continue;
4199
4200 send_sig(SIGKILL, task, 0);
4201 }
4202 css_task_iter_end(&it);
4203 }
4204
cgroup_kill(struct cgroup * cgrp)4205 static void cgroup_kill(struct cgroup *cgrp)
4206 {
4207 struct cgroup_subsys_state *css;
4208 struct cgroup *dsct;
4209
4210 lockdep_assert_held(&cgroup_mutex);
4211
4212 cgroup_for_each_live_descendant_pre(dsct, css, cgrp)
4213 __cgroup_kill(dsct);
4214 }
4215
cgroup_kill_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)4216 static ssize_t cgroup_kill_write(struct kernfs_open_file *of, char *buf,
4217 size_t nbytes, loff_t off)
4218 {
4219 ssize_t ret = 0;
4220 int kill;
4221 struct cgroup *cgrp;
4222
4223 ret = kstrtoint(strstrip(buf), 0, &kill);
4224 if (ret)
4225 return ret;
4226
4227 if (kill != 1)
4228 return -ERANGE;
4229
4230 cgrp = cgroup_kn_lock_live(of->kn, false);
4231 if (!cgrp)
4232 return -ENOENT;
4233
4234 /*
4235 * Killing is a process directed operation, i.e. the whole thread-group
4236 * is taken down so act like we do for cgroup.procs and only make this
4237 * writable in non-threaded cgroups.
4238 */
4239 if (cgroup_is_threaded(cgrp))
4240 ret = -EOPNOTSUPP;
4241 else
4242 cgroup_kill(cgrp);
4243
4244 cgroup_kn_unlock(of->kn);
4245
4246 return ret ?: nbytes;
4247 }
4248
cgroup_file_open(struct kernfs_open_file * of)4249 static int cgroup_file_open(struct kernfs_open_file *of)
4250 {
4251 struct cftype *cft = of_cft(of);
4252 struct cgroup_file_ctx *ctx;
4253 int ret;
4254
4255 ctx = kzalloc_obj(*ctx);
4256 if (!ctx)
4257 return -ENOMEM;
4258
4259 ctx->ns = current->nsproxy->cgroup_ns;
4260 get_cgroup_ns(ctx->ns);
4261 of->priv = ctx;
4262
4263 if (!cft->open)
4264 return 0;
4265
4266 ret = cft->open(of);
4267 if (ret) {
4268 put_cgroup_ns(ctx->ns);
4269 kfree(ctx);
4270 }
4271 return ret;
4272 }
4273
cgroup_file_release(struct kernfs_open_file * of)4274 static void cgroup_file_release(struct kernfs_open_file *of)
4275 {
4276 struct cftype *cft = of_cft(of);
4277 struct cgroup_file_ctx *ctx = of->priv;
4278
4279 if (cft->release)
4280 cft->release(of);
4281 put_cgroup_ns(ctx->ns);
4282 kfree(ctx);
4283 of->priv = NULL;
4284 }
4285
cgroup_file_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)4286 static ssize_t cgroup_file_write(struct kernfs_open_file *of, char *buf,
4287 size_t nbytes, loff_t off)
4288 {
4289 struct cgroup_file_ctx *ctx = of->priv;
4290 struct cgroup *cgrp = kn_priv(of->kn);
4291 struct cftype *cft = of_cft(of);
4292 struct cgroup_subsys_state *css;
4293 int ret;
4294
4295 if (!nbytes)
4296 return 0;
4297
4298 /*
4299 * If namespaces are delegation boundaries, disallow writes to
4300 * files in an non-init namespace root from inside the namespace
4301 * except for the files explicitly marked delegatable -
4302 * eg. cgroup.procs, cgroup.threads and cgroup.subtree_control.
4303 */
4304 if ((cgrp->root->flags & CGRP_ROOT_NS_DELEGATE) &&
4305 !(cft->flags & CFTYPE_NS_DELEGATABLE) &&
4306 ctx->ns != &init_cgroup_ns && ctx->ns->root_cset->dfl_cgrp == cgrp)
4307 return -EPERM;
4308
4309 if (cft->write)
4310 return cft->write(of, buf, nbytes, off);
4311
4312 /*
4313 * kernfs guarantees that a file isn't deleted with operations in
4314 * flight, which means that the matching css is and stays alive and
4315 * doesn't need to be pinned. The RCU locking is not necessary
4316 * either. It's just for the convenience of using cgroup_css().
4317 */
4318 rcu_read_lock();
4319 css = cgroup_css(cgrp, cft->ss);
4320 rcu_read_unlock();
4321
4322 if (cft->write_u64) {
4323 unsigned long long v;
4324 ret = kstrtoull(buf, 0, &v);
4325 if (!ret)
4326 ret = cft->write_u64(css, cft, v);
4327 } else if (cft->write_s64) {
4328 long long v;
4329 ret = kstrtoll(buf, 0, &v);
4330 if (!ret)
4331 ret = cft->write_s64(css, cft, v);
4332 } else {
4333 ret = -EINVAL;
4334 }
4335
4336 return ret ?: nbytes;
4337 }
4338
cgroup_file_poll(struct kernfs_open_file * of,poll_table * pt)4339 static __poll_t cgroup_file_poll(struct kernfs_open_file *of, poll_table *pt)
4340 {
4341 struct cftype *cft = of_cft(of);
4342
4343 if (cft->poll)
4344 return cft->poll(of, pt);
4345
4346 return kernfs_generic_poll(of, pt);
4347 }
4348
cgroup_seqfile_start(struct seq_file * seq,loff_t * ppos)4349 static void *cgroup_seqfile_start(struct seq_file *seq, loff_t *ppos)
4350 {
4351 return seq_cft(seq)->seq_start(seq, ppos);
4352 }
4353
cgroup_seqfile_next(struct seq_file * seq,void * v,loff_t * ppos)4354 static void *cgroup_seqfile_next(struct seq_file *seq, void *v, loff_t *ppos)
4355 {
4356 return seq_cft(seq)->seq_next(seq, v, ppos);
4357 }
4358
cgroup_seqfile_stop(struct seq_file * seq,void * v)4359 static void cgroup_seqfile_stop(struct seq_file *seq, void *v)
4360 {
4361 if (seq_cft(seq)->seq_stop)
4362 seq_cft(seq)->seq_stop(seq, v);
4363 }
4364
cgroup_seqfile_show(struct seq_file * m,void * arg)4365 static int cgroup_seqfile_show(struct seq_file *m, void *arg)
4366 {
4367 struct cftype *cft = seq_cft(m);
4368 struct cgroup_subsys_state *css = seq_css(m);
4369
4370 if (cft->seq_show)
4371 return cft->seq_show(m, arg);
4372
4373 if (cft->read_u64)
4374 seq_printf(m, "%llu\n", cft->read_u64(css, cft));
4375 else if (cft->read_s64)
4376 seq_printf(m, "%lld\n", cft->read_s64(css, cft));
4377 else
4378 return -EINVAL;
4379 return 0;
4380 }
4381
4382 static struct kernfs_ops cgroup_kf_single_ops = {
4383 .atomic_write_len = PAGE_SIZE,
4384 .open = cgroup_file_open,
4385 .release = cgroup_file_release,
4386 .write = cgroup_file_write,
4387 .poll = cgroup_file_poll,
4388 .seq_show = cgroup_seqfile_show,
4389 };
4390
4391 static struct kernfs_ops cgroup_kf_ops = {
4392 .atomic_write_len = PAGE_SIZE,
4393 .open = cgroup_file_open,
4394 .release = cgroup_file_release,
4395 .write = cgroup_file_write,
4396 .poll = cgroup_file_poll,
4397 .seq_start = cgroup_seqfile_start,
4398 .seq_next = cgroup_seqfile_next,
4399 .seq_stop = cgroup_seqfile_stop,
4400 .seq_show = cgroup_seqfile_show,
4401 };
4402
cgroup_file_notify_timer(struct timer_list * timer)4403 static void cgroup_file_notify_timer(struct timer_list *timer)
4404 {
4405 cgroup_file_notify(container_of(timer, struct cgroup_file,
4406 notify_timer));
4407 }
4408
cgroup_add_file(struct cgroup_subsys_state * css,struct cgroup * cgrp,struct cftype * cft)4409 static int cgroup_add_file(struct cgroup_subsys_state *css, struct cgroup *cgrp,
4410 struct cftype *cft)
4411 {
4412 char name[CGROUP_FILE_NAME_MAX];
4413 struct kernfs_node *kn;
4414 struct lock_class_key *key = NULL;
4415
4416 #ifdef CONFIG_DEBUG_LOCK_ALLOC
4417 key = &cft->lockdep_key;
4418 #endif
4419 kn = __kernfs_create_file(cgrp->kn, cgroup_file_name(cgrp, cft, name),
4420 cgroup_file_mode(cft),
4421 current_fsuid(), current_fsgid(),
4422 0, cft->kf_ops, cft,
4423 NULL, key);
4424 if (IS_ERR(kn))
4425 return PTR_ERR(kn);
4426
4427 if (cft->file_offset) {
4428 struct cgroup_file *cfile = (void *)css + cft->file_offset;
4429
4430 timer_setup(&cfile->notify_timer, cgroup_file_notify_timer, 0);
4431
4432 spin_lock_irq(&cgroup_file_kn_lock);
4433 cfile->kn = kn;
4434 spin_unlock_irq(&cgroup_file_kn_lock);
4435 }
4436
4437 return 0;
4438 }
4439
4440 /**
4441 * cgroup_addrm_files - add or remove files to a cgroup directory
4442 * @css: the target css
4443 * @cgrp: the target cgroup (usually css->cgroup)
4444 * @cfts: array of cftypes to be added
4445 * @is_add: whether to add or remove
4446 *
4447 * Depending on @is_add, add or remove files defined by @cfts on @cgrp.
4448 * For removals, this function never fails.
4449 */
cgroup_addrm_files(struct cgroup_subsys_state * css,struct cgroup * cgrp,struct cftype cfts[],bool is_add)4450 static int cgroup_addrm_files(struct cgroup_subsys_state *css,
4451 struct cgroup *cgrp, struct cftype cfts[],
4452 bool is_add)
4453 {
4454 struct cftype *cft, *cft_end = NULL;
4455 int ret = 0;
4456
4457 lockdep_assert_held(&cgroup_mutex);
4458
4459 restart:
4460 for (cft = cfts; cft != cft_end && cft->name[0] != '\0'; cft++) {
4461 /* does cft->flags tell us to skip this file on @cgrp? */
4462 if ((cft->flags & __CFTYPE_ONLY_ON_DFL) && !cgroup_on_dfl(cgrp))
4463 continue;
4464 if ((cft->flags & __CFTYPE_NOT_ON_DFL) && cgroup_on_dfl(cgrp))
4465 continue;
4466 if ((cft->flags & CFTYPE_NOT_ON_ROOT) && !cgroup_parent(cgrp))
4467 continue;
4468 if ((cft->flags & CFTYPE_ONLY_ON_ROOT) && cgroup_parent(cgrp))
4469 continue;
4470 if ((cft->flags & CFTYPE_DEBUG) && !cgroup_debug)
4471 continue;
4472 if (is_add) {
4473 ret = cgroup_add_file(css, cgrp, cft);
4474 if (ret) {
4475 pr_warn("%s: failed to add %s, err=%d\n",
4476 __func__, cft->name, ret);
4477 cft_end = cft;
4478 is_add = false;
4479 goto restart;
4480 }
4481 } else {
4482 cgroup_rm_file(cgrp, cft);
4483 }
4484 }
4485 return ret;
4486 }
4487
cgroup_apply_cftypes(struct cftype * cfts,bool is_add)4488 static int cgroup_apply_cftypes(struct cftype *cfts, bool is_add)
4489 {
4490 struct cgroup_subsys *ss = cfts[0].ss;
4491 struct cgroup *root = &ss->root->cgrp;
4492 struct cgroup_subsys_state *css;
4493 int ret = 0;
4494
4495 lockdep_assert_held(&cgroup_mutex);
4496
4497 /* add/rm files for all cgroups created before */
4498 css_for_each_descendant_pre(css, cgroup_css(root, ss)) {
4499 struct cgroup *cgrp = css->cgroup;
4500
4501 if (!(css->flags & CSS_VISIBLE))
4502 continue;
4503
4504 ret = cgroup_addrm_files(css, cgrp, cfts, is_add);
4505 if (ret)
4506 break;
4507 }
4508
4509 if (is_add && !ret)
4510 kernfs_activate(root->kn);
4511 return ret;
4512 }
4513
cgroup_exit_cftypes(struct cftype * cfts)4514 static void cgroup_exit_cftypes(struct cftype *cfts)
4515 {
4516 struct cftype *cft;
4517
4518 for (cft = cfts; cft->name[0] != '\0'; cft++) {
4519 /* free copy for custom atomic_write_len, see init_cftypes() */
4520 if (cft->max_write_len && cft->max_write_len != PAGE_SIZE)
4521 kfree(cft->kf_ops);
4522 cft->kf_ops = NULL;
4523 cft->ss = NULL;
4524
4525 /* revert flags set by cgroup core while adding @cfts */
4526 cft->flags &= ~(__CFTYPE_ONLY_ON_DFL | __CFTYPE_NOT_ON_DFL |
4527 __CFTYPE_ADDED);
4528 }
4529 }
4530
cgroup_init_cftypes(struct cgroup_subsys * ss,struct cftype * cfts)4531 static int cgroup_init_cftypes(struct cgroup_subsys *ss, struct cftype *cfts)
4532 {
4533 struct cftype *cft;
4534 int ret = 0;
4535
4536 for (cft = cfts; cft->name[0] != '\0'; cft++) {
4537 struct kernfs_ops *kf_ops;
4538
4539 WARN_ON(cft->ss || cft->kf_ops);
4540
4541 if (cft->flags & __CFTYPE_ADDED) {
4542 ret = -EBUSY;
4543 break;
4544 }
4545
4546 if (cft->seq_start)
4547 kf_ops = &cgroup_kf_ops;
4548 else
4549 kf_ops = &cgroup_kf_single_ops;
4550
4551 /*
4552 * Ugh... if @cft wants a custom max_write_len, we need to
4553 * make a copy of kf_ops to set its atomic_write_len.
4554 */
4555 if (cft->max_write_len && cft->max_write_len != PAGE_SIZE) {
4556 kf_ops = kmemdup(kf_ops, sizeof(*kf_ops), GFP_KERNEL);
4557 if (!kf_ops) {
4558 ret = -ENOMEM;
4559 break;
4560 }
4561 kf_ops->atomic_write_len = cft->max_write_len;
4562 }
4563
4564 cft->kf_ops = kf_ops;
4565 cft->ss = ss;
4566 cft->flags |= __CFTYPE_ADDED;
4567 }
4568
4569 if (ret)
4570 cgroup_exit_cftypes(cfts);
4571 return ret;
4572 }
4573
cgroup_rm_cftypes_locked(struct cftype * cfts)4574 static void cgroup_rm_cftypes_locked(struct cftype *cfts)
4575 {
4576 lockdep_assert_held(&cgroup_mutex);
4577
4578 list_del(&cfts->node);
4579 cgroup_apply_cftypes(cfts, false);
4580 cgroup_exit_cftypes(cfts);
4581 }
4582
4583 /**
4584 * cgroup_rm_cftypes - remove an array of cftypes from a subsystem
4585 * @cfts: zero-length name terminated array of cftypes
4586 *
4587 * Unregister @cfts. Files described by @cfts are removed from all
4588 * existing cgroups and all future cgroups won't have them either. This
4589 * function can be called anytime whether @cfts' subsys is attached or not.
4590 *
4591 * Returns 0 on successful unregistration, -ENOENT if @cfts is not
4592 * registered.
4593 */
cgroup_rm_cftypes(struct cftype * cfts)4594 int cgroup_rm_cftypes(struct cftype *cfts)
4595 {
4596 if (!cfts || cfts[0].name[0] == '\0')
4597 return 0;
4598
4599 if (!(cfts[0].flags & __CFTYPE_ADDED))
4600 return -ENOENT;
4601
4602 cgroup_lock();
4603 cgroup_rm_cftypes_locked(cfts);
4604 cgroup_unlock();
4605 return 0;
4606 }
4607
4608 /**
4609 * cgroup_add_cftypes - add an array of cftypes to a subsystem
4610 * @ss: target cgroup subsystem
4611 * @cfts: zero-length name terminated array of cftypes
4612 *
4613 * Register @cfts to @ss. Files described by @cfts are created for all
4614 * existing cgroups to which @ss is attached and all future cgroups will
4615 * have them too. This function can be called anytime whether @ss is
4616 * attached or not.
4617 *
4618 * Returns 0 on successful registration, -errno on failure. Note that this
4619 * function currently returns 0 as long as @cfts registration is successful
4620 * even if some file creation attempts on existing cgroups fail.
4621 */
cgroup_add_cftypes(struct cgroup_subsys * ss,struct cftype * cfts)4622 int cgroup_add_cftypes(struct cgroup_subsys *ss, struct cftype *cfts)
4623 {
4624 int ret;
4625
4626 if (!cgroup_ssid_enabled(ss->id))
4627 return 0;
4628
4629 if (!cfts || cfts[0].name[0] == '\0')
4630 return 0;
4631
4632 ret = cgroup_init_cftypes(ss, cfts);
4633 if (ret)
4634 return ret;
4635
4636 cgroup_lock();
4637
4638 list_add_tail(&cfts->node, &ss->cfts);
4639 ret = cgroup_apply_cftypes(cfts, true);
4640 if (ret)
4641 cgroup_rm_cftypes_locked(cfts);
4642
4643 cgroup_unlock();
4644 return ret;
4645 }
4646
4647 /**
4648 * cgroup_add_dfl_cftypes - add an array of cftypes for default hierarchy
4649 * @ss: target cgroup subsystem
4650 * @cfts: zero-length name terminated array of cftypes
4651 *
4652 * Similar to cgroup_add_cftypes() but the added files are only used for
4653 * the default hierarchy.
4654 */
cgroup_add_dfl_cftypes(struct cgroup_subsys * ss,struct cftype * cfts)4655 int cgroup_add_dfl_cftypes(struct cgroup_subsys *ss, struct cftype *cfts)
4656 {
4657 struct cftype *cft;
4658
4659 for (cft = cfts; cft && cft->name[0] != '\0'; cft++)
4660 cft->flags |= __CFTYPE_ONLY_ON_DFL;
4661 return cgroup_add_cftypes(ss, cfts);
4662 }
4663
4664 /**
4665 * cgroup_add_legacy_cftypes - add an array of cftypes for legacy hierarchies
4666 * @ss: target cgroup subsystem
4667 * @cfts: zero-length name terminated array of cftypes
4668 *
4669 * Similar to cgroup_add_cftypes() but the added files are only used for
4670 * the legacy hierarchies.
4671 */
cgroup_add_legacy_cftypes(struct cgroup_subsys * ss,struct cftype * cfts)4672 int cgroup_add_legacy_cftypes(struct cgroup_subsys *ss, struct cftype *cfts)
4673 {
4674 struct cftype *cft;
4675
4676 for (cft = cfts; cft && cft->name[0] != '\0'; cft++)
4677 cft->flags |= __CFTYPE_NOT_ON_DFL;
4678 return cgroup_add_cftypes(ss, cfts);
4679 }
4680
4681 /**
4682 * cgroup_file_notify - generate a file modified event for a cgroup_file
4683 * @cfile: target cgroup_file
4684 *
4685 * @cfile must have been obtained by setting cftype->file_offset.
4686 */
cgroup_file_notify(struct cgroup_file * cfile)4687 void cgroup_file_notify(struct cgroup_file *cfile)
4688 {
4689 unsigned long flags;
4690
4691 spin_lock_irqsave(&cgroup_file_kn_lock, flags);
4692 if (cfile->kn) {
4693 unsigned long last = cfile->notified_at;
4694 unsigned long next = last + CGROUP_FILE_NOTIFY_MIN_INTV;
4695
4696 if (time_in_range(jiffies, last, next)) {
4697 timer_reduce(&cfile->notify_timer, next);
4698 } else {
4699 kernfs_notify(cfile->kn);
4700 cfile->notified_at = jiffies;
4701 }
4702 }
4703 spin_unlock_irqrestore(&cgroup_file_kn_lock, flags);
4704 }
4705 EXPORT_SYMBOL_GPL(cgroup_file_notify);
4706
4707 /**
4708 * cgroup_file_show - show or hide a hidden cgroup file
4709 * @cfile: target cgroup_file obtained by setting cftype->file_offset
4710 * @show: whether to show or hide
4711 */
cgroup_file_show(struct cgroup_file * cfile,bool show)4712 void cgroup_file_show(struct cgroup_file *cfile, bool show)
4713 {
4714 struct kernfs_node *kn;
4715
4716 spin_lock_irq(&cgroup_file_kn_lock);
4717 kn = cfile->kn;
4718 kernfs_get(kn);
4719 spin_unlock_irq(&cgroup_file_kn_lock);
4720
4721 if (kn)
4722 kernfs_show(kn, show);
4723
4724 kernfs_put(kn);
4725 }
4726
4727 /**
4728 * css_next_child - find the next child of a given css
4729 * @pos: the current position (%NULL to initiate traversal)
4730 * @parent: css whose children to walk
4731 *
4732 * This function returns the next child of @parent and should be called
4733 * under either cgroup_mutex or RCU read lock. The only requirement is
4734 * that @parent and @pos are accessible. The next sibling is guaranteed to
4735 * be returned regardless of their states.
4736 *
4737 * If a subsystem synchronizes ->css_online() and the start of iteration, a
4738 * css which finished ->css_online() is guaranteed to be visible in the
4739 * future iterations and will stay visible until the last reference is put.
4740 * A css which hasn't finished ->css_online() or already finished
4741 * ->css_offline() may show up during traversal. It's each subsystem's
4742 * responsibility to synchronize against on/offlining.
4743 */
css_next_child(struct cgroup_subsys_state * pos,struct cgroup_subsys_state * parent)4744 struct cgroup_subsys_state *css_next_child(struct cgroup_subsys_state *pos,
4745 struct cgroup_subsys_state *parent)
4746 {
4747 struct cgroup_subsys_state *next;
4748
4749 cgroup_assert_mutex_or_rcu_locked();
4750
4751 /*
4752 * @pos could already have been unlinked from the sibling list.
4753 * Once a cgroup is removed, its ->sibling.next is no longer
4754 * updated when its next sibling changes. CSS_RELEASED is set when
4755 * @pos is taken off list, at which time its next pointer is valid,
4756 * and, as releases are serialized, the one pointed to by the next
4757 * pointer is guaranteed to not have started release yet. This
4758 * implies that if we observe !CSS_RELEASED on @pos in this RCU
4759 * critical section, the one pointed to by its next pointer is
4760 * guaranteed to not have finished its RCU grace period even if we
4761 * have dropped rcu_read_lock() in-between iterations.
4762 *
4763 * If @pos has CSS_RELEASED set, its next pointer can't be
4764 * dereferenced; however, as each css is given a monotonically
4765 * increasing unique serial number and always appended to the
4766 * sibling list, the next one can be found by walking the parent's
4767 * children until the first css with higher serial number than
4768 * @pos's. While this path can be slower, it happens iff iteration
4769 * races against release and the race window is very small.
4770 */
4771 if (!pos) {
4772 next = list_entry_rcu(parent->children.next, struct cgroup_subsys_state, sibling);
4773 } else if (likely(!(pos->flags & CSS_RELEASED))) {
4774 next = list_entry_rcu(pos->sibling.next, struct cgroup_subsys_state, sibling);
4775 } else {
4776 list_for_each_entry_rcu(next, &parent->children, sibling,
4777 lockdep_is_held(&cgroup_mutex))
4778 if (next->serial_nr > pos->serial_nr)
4779 break;
4780 }
4781
4782 /*
4783 * @next, if not pointing to the head, can be dereferenced and is
4784 * the next sibling.
4785 */
4786 if (&next->sibling != &parent->children)
4787 return next;
4788 return NULL;
4789 }
4790
4791 /**
4792 * css_next_descendant_pre - find the next descendant for pre-order walk
4793 * @pos: the current position (%NULL to initiate traversal)
4794 * @root: css whose descendants to walk
4795 *
4796 * To be used by css_for_each_descendant_pre(). Find the next descendant
4797 * to visit for pre-order traversal of @root's descendants. @root is
4798 * included in the iteration and the first node to be visited.
4799 *
4800 * While this function requires cgroup_mutex or RCU read locking, it
4801 * doesn't require the whole traversal to be contained in a single critical
4802 * section. Additionally, it isn't necessary to hold onto a reference to @pos.
4803 * This function will return the correct next descendant as long as both @pos
4804 * and @root are accessible and @pos is a descendant of @root.
4805 *
4806 * If a subsystem synchronizes ->css_online() and the start of iteration, a
4807 * css which finished ->css_online() is guaranteed to be visible in the
4808 * future iterations and will stay visible until the last reference is put.
4809 * A css which hasn't finished ->css_online() or already finished
4810 * ->css_offline() may show up during traversal. It's each subsystem's
4811 * responsibility to synchronize against on/offlining.
4812 */
4813 struct cgroup_subsys_state *
css_next_descendant_pre(struct cgroup_subsys_state * pos,struct cgroup_subsys_state * root)4814 css_next_descendant_pre(struct cgroup_subsys_state *pos,
4815 struct cgroup_subsys_state *root)
4816 {
4817 struct cgroup_subsys_state *next;
4818
4819 cgroup_assert_mutex_or_rcu_locked();
4820
4821 /* if first iteration, visit @root */
4822 if (!pos)
4823 return root;
4824
4825 /* visit the first child if exists */
4826 next = css_next_child(NULL, pos);
4827 if (next)
4828 return next;
4829
4830 /* no child, visit my or the closest ancestor's next sibling */
4831 while (pos != root) {
4832 next = css_next_child(pos, pos->parent);
4833 if (next)
4834 return next;
4835 pos = pos->parent;
4836 }
4837
4838 return NULL;
4839 }
4840 EXPORT_SYMBOL_GPL(css_next_descendant_pre);
4841
4842 /**
4843 * css_rightmost_descendant - return the rightmost descendant of a css
4844 * @pos: css of interest
4845 *
4846 * Return the rightmost descendant of @pos. If there's no descendant, @pos
4847 * is returned. This can be used during pre-order traversal to skip
4848 * subtree of @pos.
4849 *
4850 * While this function requires cgroup_mutex or RCU read locking, it
4851 * doesn't require the whole traversal to be contained in a single critical
4852 * section. Additionally, it isn't necessary to hold onto a reference to @pos.
4853 * This function will return the correct rightmost descendant as long as @pos
4854 * is accessible.
4855 */
4856 struct cgroup_subsys_state *
css_rightmost_descendant(struct cgroup_subsys_state * pos)4857 css_rightmost_descendant(struct cgroup_subsys_state *pos)
4858 {
4859 struct cgroup_subsys_state *last, *tmp;
4860
4861 cgroup_assert_mutex_or_rcu_locked();
4862
4863 do {
4864 last = pos;
4865 /* ->prev isn't RCU safe, walk ->next till the end */
4866 pos = NULL;
4867 css_for_each_child(tmp, last)
4868 pos = tmp;
4869 } while (pos);
4870
4871 return last;
4872 }
4873
4874 static struct cgroup_subsys_state *
css_leftmost_descendant(struct cgroup_subsys_state * pos)4875 css_leftmost_descendant(struct cgroup_subsys_state *pos)
4876 {
4877 struct cgroup_subsys_state *last;
4878
4879 do {
4880 last = pos;
4881 pos = css_next_child(NULL, pos);
4882 } while (pos);
4883
4884 return last;
4885 }
4886
4887 /**
4888 * css_next_descendant_post - find the next descendant for post-order walk
4889 * @pos: the current position (%NULL to initiate traversal)
4890 * @root: css whose descendants to walk
4891 *
4892 * To be used by css_for_each_descendant_post(). Find the next descendant
4893 * to visit for post-order traversal of @root's descendants. @root is
4894 * included in the iteration and the last node to be visited.
4895 *
4896 * While this function requires cgroup_mutex or RCU read locking, it
4897 * doesn't require the whole traversal to be contained in a single critical
4898 * section. Additionally, it isn't necessary to hold onto a reference to @pos.
4899 * This function will return the correct next descendant as long as both @pos
4900 * and @cgroup are accessible and @pos is a descendant of @cgroup.
4901 *
4902 * If a subsystem synchronizes ->css_online() and the start of iteration, a
4903 * css which finished ->css_online() is guaranteed to be visible in the
4904 * future iterations and will stay visible until the last reference is put.
4905 * A css which hasn't finished ->css_online() or already finished
4906 * ->css_offline() may show up during traversal. It's each subsystem's
4907 * responsibility to synchronize against on/offlining.
4908 */
4909 struct cgroup_subsys_state *
css_next_descendant_post(struct cgroup_subsys_state * pos,struct cgroup_subsys_state * root)4910 css_next_descendant_post(struct cgroup_subsys_state *pos,
4911 struct cgroup_subsys_state *root)
4912 {
4913 struct cgroup_subsys_state *next;
4914
4915 cgroup_assert_mutex_or_rcu_locked();
4916
4917 /* if first iteration, visit leftmost descendant which may be @root */
4918 if (!pos)
4919 return css_leftmost_descendant(root);
4920
4921 /* if we visited @root, we're done */
4922 if (pos == root)
4923 return NULL;
4924
4925 /* if there's an unvisited sibling, visit its leftmost descendant */
4926 next = css_next_child(pos, pos->parent);
4927 if (next)
4928 return css_leftmost_descendant(next);
4929
4930 /* no sibling left, visit parent */
4931 return pos->parent;
4932 }
4933
4934 /**
4935 * css_has_online_children - does a css have online children
4936 * @css: the target css
4937 *
4938 * Returns %true if @css has any online children; otherwise, %false. This
4939 * function can be called from any context but the caller is responsible
4940 * for synchronizing against on/offlining as necessary.
4941 */
css_has_online_children(struct cgroup_subsys_state * css)4942 bool css_has_online_children(struct cgroup_subsys_state *css)
4943 {
4944 struct cgroup_subsys_state *child;
4945 bool ret = false;
4946
4947 rcu_read_lock();
4948 css_for_each_child(child, css) {
4949 if (css_is_online(child)) {
4950 ret = true;
4951 break;
4952 }
4953 }
4954 rcu_read_unlock();
4955 return ret;
4956 }
4957
css_task_iter_next_css_set(struct css_task_iter * it)4958 static struct css_set *css_task_iter_next_css_set(struct css_task_iter *it)
4959 {
4960 struct list_head *l;
4961 struct cgrp_cset_link *link;
4962 struct css_set *cset;
4963
4964 lockdep_assert_held(&css_set_lock);
4965
4966 /* find the next threaded cset */
4967 if (it->tcset_pos) {
4968 l = it->tcset_pos->next;
4969
4970 if (l != it->tcset_head) {
4971 it->tcset_pos = l;
4972 return container_of(l, struct css_set,
4973 threaded_csets_node);
4974 }
4975
4976 it->tcset_pos = NULL;
4977 }
4978
4979 /* find the next cset */
4980 l = it->cset_pos;
4981 l = l->next;
4982 if (l == it->cset_head) {
4983 it->cset_pos = NULL;
4984 return NULL;
4985 }
4986
4987 if (it->ss) {
4988 cset = container_of(l, struct css_set, e_cset_node[it->ss->id]);
4989 } else {
4990 link = list_entry(l, struct cgrp_cset_link, cset_link);
4991 cset = link->cset;
4992 }
4993
4994 it->cset_pos = l;
4995
4996 /* initialize threaded css_set walking */
4997 if (it->flags & CSS_TASK_ITER_THREADED) {
4998 if (it->cur_dcset)
4999 put_css_set_locked(it->cur_dcset);
5000 it->cur_dcset = cset;
5001 get_css_set(cset);
5002
5003 it->tcset_head = &cset->threaded_csets;
5004 it->tcset_pos = &cset->threaded_csets;
5005 }
5006
5007 return cset;
5008 }
5009
5010 /**
5011 * css_task_iter_advance_css_set - advance a task iterator to the next css_set
5012 * @it: the iterator to advance
5013 *
5014 * Advance @it to the next css_set to walk.
5015 */
css_task_iter_advance_css_set(struct css_task_iter * it)5016 static void css_task_iter_advance_css_set(struct css_task_iter *it)
5017 {
5018 struct css_set *cset;
5019
5020 lockdep_assert_held(&css_set_lock);
5021
5022 /* Advance to the next non-empty css_set and find first non-empty tasks list*/
5023 while ((cset = css_task_iter_next_css_set(it))) {
5024 if (!list_empty(&cset->tasks)) {
5025 it->cur_tasks_head = &cset->tasks;
5026 break;
5027 } else if (!list_empty(&cset->mg_tasks)) {
5028 it->cur_tasks_head = &cset->mg_tasks;
5029 break;
5030 } else if (!list_empty(&cset->dying_tasks)) {
5031 it->cur_tasks_head = &cset->dying_tasks;
5032 break;
5033 }
5034 }
5035 if (!cset) {
5036 it->task_pos = NULL;
5037 return;
5038 }
5039 it->task_pos = it->cur_tasks_head->next;
5040
5041 /*
5042 * We don't keep css_sets locked across iteration steps and thus
5043 * need to take steps to ensure that iteration can be resumed after
5044 * the lock is re-acquired. Iteration is performed at two levels -
5045 * css_sets and tasks in them.
5046 *
5047 * Once created, a css_set never leaves its cgroup lists, so a
5048 * pinned css_set is guaranteed to stay put and we can resume
5049 * iteration afterwards.
5050 *
5051 * Tasks may leave @cset across iteration steps. This is resolved
5052 * by registering each iterator with the css_set currently being
5053 * walked and making css_set_move_task() advance iterators whose
5054 * next task is leaving.
5055 */
5056 if (it->cur_cset) {
5057 list_del(&it->iters_node);
5058 put_css_set_locked(it->cur_cset);
5059 }
5060 get_css_set(cset);
5061 it->cur_cset = cset;
5062 list_add(&it->iters_node, &cset->task_iters);
5063 }
5064
css_task_iter_skip(struct css_task_iter * it,struct task_struct * task)5065 static void css_task_iter_skip(struct css_task_iter *it,
5066 struct task_struct *task)
5067 {
5068 lockdep_assert_held(&css_set_lock);
5069
5070 if (it->task_pos == &task->cg_list) {
5071 it->task_pos = it->task_pos->next;
5072 it->flags |= CSS_TASK_ITER_SKIPPED;
5073 }
5074 }
5075
css_task_iter_advance(struct css_task_iter * it)5076 static void css_task_iter_advance(struct css_task_iter *it)
5077 {
5078 struct task_struct *task;
5079
5080 lockdep_assert_held(&css_set_lock);
5081 repeat:
5082 if (it->task_pos) {
5083 /*
5084 * Advance iterator to find next entry. We go through cset
5085 * tasks, mg_tasks and dying_tasks, when consumed we move onto
5086 * the next cset.
5087 */
5088 if (it->flags & CSS_TASK_ITER_SKIPPED)
5089 it->flags &= ~CSS_TASK_ITER_SKIPPED;
5090 else
5091 it->task_pos = it->task_pos->next;
5092
5093 if (it->task_pos == &it->cur_cset->tasks) {
5094 it->cur_tasks_head = &it->cur_cset->mg_tasks;
5095 it->task_pos = it->cur_tasks_head->next;
5096 }
5097 if (it->task_pos == &it->cur_cset->mg_tasks) {
5098 it->cur_tasks_head = &it->cur_cset->dying_tasks;
5099 it->task_pos = it->cur_tasks_head->next;
5100 }
5101 if (it->task_pos == &it->cur_cset->dying_tasks)
5102 css_task_iter_advance_css_set(it);
5103 } else {
5104 /* called from start, proceed to the first cset */
5105 css_task_iter_advance_css_set(it);
5106 }
5107
5108 if (!it->task_pos)
5109 return;
5110
5111 task = list_entry(it->task_pos, struct task_struct, cg_list);
5112
5113 if (it->flags & CSS_TASK_ITER_PROCS) {
5114 /* if PROCS, skip over tasks which aren't group leaders */
5115 if (!thread_group_leader(task))
5116 goto repeat;
5117
5118 /* and dying leaders w/o live member threads */
5119 if (it->cur_tasks_head == &it->cur_cset->dying_tasks &&
5120 !atomic_read(&task->signal->live))
5121 goto repeat;
5122 } else {
5123 /* skip all dying ones */
5124 if (it->cur_tasks_head == &it->cur_cset->dying_tasks)
5125 goto repeat;
5126 }
5127 }
5128
5129 /**
5130 * css_task_iter_start - initiate task iteration
5131 * @css: the css to walk tasks of
5132 * @flags: CSS_TASK_ITER_* flags
5133 * @it: the task iterator to use
5134 *
5135 * Initiate iteration through the tasks of @css. The caller can call
5136 * css_task_iter_next() to walk through the tasks until the function
5137 * returns NULL. On completion of iteration, css_task_iter_end() must be
5138 * called.
5139 */
css_task_iter_start(struct cgroup_subsys_state * css,unsigned int flags,struct css_task_iter * it)5140 void css_task_iter_start(struct cgroup_subsys_state *css, unsigned int flags,
5141 struct css_task_iter *it)
5142 {
5143 unsigned long irqflags;
5144
5145 memset(it, 0, sizeof(*it));
5146
5147 spin_lock_irqsave(&css_set_lock, irqflags);
5148
5149 it->ss = css->ss;
5150 it->flags = flags;
5151
5152 if (CGROUP_HAS_SUBSYS_CONFIG && it->ss)
5153 it->cset_pos = &css->cgroup->e_csets[css->ss->id];
5154 else
5155 it->cset_pos = &css->cgroup->cset_links;
5156
5157 it->cset_head = it->cset_pos;
5158
5159 css_task_iter_advance(it);
5160
5161 spin_unlock_irqrestore(&css_set_lock, irqflags);
5162 }
5163
5164 /**
5165 * css_task_iter_next - return the next task for the iterator
5166 * @it: the task iterator being iterated
5167 *
5168 * The "next" function for task iteration. @it should have been
5169 * initialized via css_task_iter_start(). Returns NULL when the iteration
5170 * reaches the end.
5171 */
css_task_iter_next(struct css_task_iter * it)5172 struct task_struct *css_task_iter_next(struct css_task_iter *it)
5173 {
5174 unsigned long irqflags;
5175
5176 if (it->cur_task) {
5177 put_task_struct(it->cur_task);
5178 it->cur_task = NULL;
5179 }
5180
5181 spin_lock_irqsave(&css_set_lock, irqflags);
5182
5183 /* @it may be half-advanced by skips, finish advancing */
5184 if (it->flags & CSS_TASK_ITER_SKIPPED)
5185 css_task_iter_advance(it);
5186
5187 if (it->task_pos) {
5188 it->cur_task = list_entry(it->task_pos, struct task_struct,
5189 cg_list);
5190 get_task_struct(it->cur_task);
5191 css_task_iter_advance(it);
5192 }
5193
5194 spin_unlock_irqrestore(&css_set_lock, irqflags);
5195
5196 return it->cur_task;
5197 }
5198
5199 /**
5200 * css_task_iter_end - finish task iteration
5201 * @it: the task iterator to finish
5202 *
5203 * Finish task iteration started by css_task_iter_start().
5204 */
css_task_iter_end(struct css_task_iter * it)5205 void css_task_iter_end(struct css_task_iter *it)
5206 {
5207 unsigned long irqflags;
5208
5209 if (it->cur_cset) {
5210 spin_lock_irqsave(&css_set_lock, irqflags);
5211 list_del(&it->iters_node);
5212 put_css_set_locked(it->cur_cset);
5213 spin_unlock_irqrestore(&css_set_lock, irqflags);
5214 }
5215
5216 if (it->cur_dcset)
5217 put_css_set(it->cur_dcset);
5218
5219 if (it->cur_task)
5220 put_task_struct(it->cur_task);
5221 }
5222
cgroup_procs_release(struct kernfs_open_file * of)5223 static void cgroup_procs_release(struct kernfs_open_file *of)
5224 {
5225 struct cgroup_file_ctx *ctx = of->priv;
5226
5227 if (ctx->procs.started)
5228 css_task_iter_end(&ctx->procs.iter);
5229 }
5230
cgroup_procs_next(struct seq_file * s,void * v,loff_t * pos)5231 static void *cgroup_procs_next(struct seq_file *s, void *v, loff_t *pos)
5232 {
5233 struct kernfs_open_file *of = s->private;
5234 struct cgroup_file_ctx *ctx = of->priv;
5235
5236 if (pos)
5237 (*pos)++;
5238
5239 return css_task_iter_next(&ctx->procs.iter);
5240 }
5241
__cgroup_procs_start(struct seq_file * s,loff_t * pos,unsigned int iter_flags)5242 static void *__cgroup_procs_start(struct seq_file *s, loff_t *pos,
5243 unsigned int iter_flags)
5244 {
5245 struct kernfs_open_file *of = s->private;
5246 struct cgroup *cgrp = seq_css(s)->cgroup;
5247 struct cgroup_file_ctx *ctx = of->priv;
5248 struct css_task_iter *it = &ctx->procs.iter;
5249
5250 /*
5251 * When a seq_file is seeked, it's always traversed sequentially
5252 * from position 0, so we can simply keep iterating on !0 *pos.
5253 */
5254 if (!ctx->procs.started) {
5255 if (WARN_ON_ONCE((*pos)))
5256 return ERR_PTR(-EINVAL);
5257 css_task_iter_start(&cgrp->self, iter_flags, it);
5258 ctx->procs.started = true;
5259 } else if (!(*pos)) {
5260 css_task_iter_end(it);
5261 css_task_iter_start(&cgrp->self, iter_flags, it);
5262 } else
5263 return it->cur_task;
5264
5265 return cgroup_procs_next(s, NULL, NULL);
5266 }
5267
cgroup_procs_start(struct seq_file * s,loff_t * pos)5268 static void *cgroup_procs_start(struct seq_file *s, loff_t *pos)
5269 {
5270 struct cgroup *cgrp = seq_css(s)->cgroup;
5271
5272 /*
5273 * All processes of a threaded subtree belong to the domain cgroup
5274 * of the subtree. Only threads can be distributed across the
5275 * subtree. Reject reads on cgroup.procs in the subtree proper.
5276 * They're always empty anyway.
5277 */
5278 if (cgroup_is_threaded(cgrp))
5279 return ERR_PTR(-EOPNOTSUPP);
5280
5281 return __cgroup_procs_start(s, pos, CSS_TASK_ITER_PROCS |
5282 CSS_TASK_ITER_THREADED);
5283 }
5284
cgroup_procs_show(struct seq_file * s,void * v)5285 static int cgroup_procs_show(struct seq_file *s, void *v)
5286 {
5287 seq_printf(s, "%d\n", task_pid_vnr(v));
5288 return 0;
5289 }
5290
cgroup_may_write(const struct cgroup * cgrp,struct super_block * sb)5291 static int cgroup_may_write(const struct cgroup *cgrp, struct super_block *sb)
5292 {
5293 int ret;
5294 struct inode *inode;
5295
5296 lockdep_assert_held(&cgroup_mutex);
5297
5298 inode = kernfs_get_inode(sb, cgrp->procs_file.kn);
5299 if (!inode)
5300 return -ENOMEM;
5301
5302 ret = inode_permission(&nop_mnt_idmap, inode, MAY_WRITE);
5303 iput(inode);
5304 return ret;
5305 }
5306
cgroup_procs_write_permission(struct cgroup * src_cgrp,struct cgroup * dst_cgrp,struct super_block * sb,struct cgroup_namespace * ns)5307 static int cgroup_procs_write_permission(struct cgroup *src_cgrp,
5308 struct cgroup *dst_cgrp,
5309 struct super_block *sb,
5310 struct cgroup_namespace *ns)
5311 {
5312 struct cgroup *com_cgrp = src_cgrp;
5313 int ret;
5314
5315 lockdep_assert_held(&cgroup_mutex);
5316
5317 /* find the common ancestor */
5318 while (!cgroup_is_descendant(dst_cgrp, com_cgrp))
5319 com_cgrp = cgroup_parent(com_cgrp);
5320
5321 /* %current should be authorized to migrate to the common ancestor */
5322 ret = cgroup_may_write(com_cgrp, sb);
5323 if (ret)
5324 return ret;
5325
5326 /*
5327 * If namespaces are delegation boundaries, %current must be able
5328 * to see both source and destination cgroups from its namespace.
5329 */
5330 if ((cgrp_dfl_root.flags & CGRP_ROOT_NS_DELEGATE) &&
5331 (!cgroup_is_descendant(src_cgrp, ns->root_cset->dfl_cgrp) ||
5332 !cgroup_is_descendant(dst_cgrp, ns->root_cset->dfl_cgrp)))
5333 return -ENOENT;
5334
5335 return 0;
5336 }
5337
cgroup_attach_permissions(struct cgroup * src_cgrp,struct cgroup * dst_cgrp,struct super_block * sb,bool threadgroup,struct cgroup_namespace * ns)5338 static int cgroup_attach_permissions(struct cgroup *src_cgrp,
5339 struct cgroup *dst_cgrp,
5340 struct super_block *sb, bool threadgroup,
5341 struct cgroup_namespace *ns)
5342 {
5343 int ret = 0;
5344
5345 ret = cgroup_procs_write_permission(src_cgrp, dst_cgrp, sb, ns);
5346 if (ret)
5347 return ret;
5348
5349 ret = cgroup_migrate_vet_dst(dst_cgrp);
5350 if (ret)
5351 return ret;
5352
5353 if (!threadgroup && (src_cgrp->dom_cgrp != dst_cgrp->dom_cgrp))
5354 ret = -EOPNOTSUPP;
5355
5356 return ret;
5357 }
5358
__cgroup_procs_write(struct kernfs_open_file * of,char * buf,bool threadgroup)5359 static ssize_t __cgroup_procs_write(struct kernfs_open_file *of, char *buf,
5360 bool threadgroup)
5361 {
5362 struct cgroup_file_ctx *ctx = of->priv;
5363 struct cgroup *src_cgrp, *dst_cgrp;
5364 struct task_struct *task;
5365 ssize_t ret;
5366 enum cgroup_attach_lock_mode lock_mode;
5367
5368 dst_cgrp = cgroup_kn_lock_live(of->kn, false);
5369 if (!dst_cgrp)
5370 return -ENODEV;
5371
5372 task = cgroup_procs_write_start(buf, threadgroup, &lock_mode);
5373 ret = PTR_ERR_OR_ZERO(task);
5374 if (ret)
5375 goto out_unlock;
5376
5377 /* find the source cgroup */
5378 spin_lock_irq(&css_set_lock);
5379 src_cgrp = task_cgroup_from_root(task, &cgrp_dfl_root);
5380 spin_unlock_irq(&css_set_lock);
5381
5382 /*
5383 * Process and thread migrations follow same delegation rule. Check
5384 * permissions using the credentials from file open to protect against
5385 * inherited fd attacks.
5386 */
5387 scoped_with_creds(of->file->f_cred)
5388 ret = cgroup_attach_permissions(src_cgrp, dst_cgrp,
5389 of->file->f_path.dentry->d_sb,
5390 threadgroup, ctx->ns);
5391 if (ret)
5392 goto out_finish;
5393
5394 ret = cgroup_attach_task(dst_cgrp, task, threadgroup);
5395
5396 out_finish:
5397 cgroup_procs_write_finish(task, lock_mode);
5398 out_unlock:
5399 cgroup_kn_unlock(of->kn);
5400
5401 return ret;
5402 }
5403
cgroup_procs_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)5404 static ssize_t cgroup_procs_write(struct kernfs_open_file *of,
5405 char *buf, size_t nbytes, loff_t off)
5406 {
5407 return __cgroup_procs_write(of, buf, true) ?: nbytes;
5408 }
5409
cgroup_threads_start(struct seq_file * s,loff_t * pos)5410 static void *cgroup_threads_start(struct seq_file *s, loff_t *pos)
5411 {
5412 return __cgroup_procs_start(s, pos, 0);
5413 }
5414
cgroup_threads_write(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)5415 static ssize_t cgroup_threads_write(struct kernfs_open_file *of,
5416 char *buf, size_t nbytes, loff_t off)
5417 {
5418 return __cgroup_procs_write(of, buf, false) ?: nbytes;
5419 }
5420
5421 /* cgroup core interface files for the default hierarchy */
5422 static struct cftype cgroup_base_files[] = {
5423 {
5424 .name = "cgroup.type",
5425 .flags = CFTYPE_NOT_ON_ROOT,
5426 .seq_show = cgroup_type_show,
5427 .write = cgroup_type_write,
5428 },
5429 {
5430 .name = "cgroup.procs",
5431 .flags = CFTYPE_NS_DELEGATABLE,
5432 .file_offset = offsetof(struct cgroup, procs_file),
5433 .release = cgroup_procs_release,
5434 .seq_start = cgroup_procs_start,
5435 .seq_next = cgroup_procs_next,
5436 .seq_show = cgroup_procs_show,
5437 .write = cgroup_procs_write,
5438 },
5439 {
5440 .name = "cgroup.threads",
5441 .flags = CFTYPE_NS_DELEGATABLE,
5442 .release = cgroup_procs_release,
5443 .seq_start = cgroup_threads_start,
5444 .seq_next = cgroup_procs_next,
5445 .seq_show = cgroup_procs_show,
5446 .write = cgroup_threads_write,
5447 },
5448 {
5449 .name = "cgroup.controllers",
5450 .seq_show = cgroup_controllers_show,
5451 },
5452 {
5453 .name = "cgroup.subtree_control",
5454 .flags = CFTYPE_NS_DELEGATABLE,
5455 .seq_show = cgroup_subtree_control_show,
5456 .write = cgroup_subtree_control_write,
5457 },
5458 {
5459 .name = "cgroup.events",
5460 .flags = CFTYPE_NOT_ON_ROOT,
5461 .file_offset = offsetof(struct cgroup, events_file),
5462 .seq_show = cgroup_events_show,
5463 },
5464 {
5465 .name = "cgroup.max.descendants",
5466 .seq_show = cgroup_max_descendants_show,
5467 .write = cgroup_max_descendants_write,
5468 },
5469 {
5470 .name = "cgroup.max.depth",
5471 .seq_show = cgroup_max_depth_show,
5472 .write = cgroup_max_depth_write,
5473 },
5474 {
5475 .name = "cgroup.stat",
5476 .seq_show = cgroup_stat_show,
5477 },
5478 {
5479 .name = "cgroup.stat.local",
5480 .flags = CFTYPE_NOT_ON_ROOT,
5481 .seq_show = cgroup_core_local_stat_show,
5482 },
5483 {
5484 .name = "cgroup.freeze",
5485 .flags = CFTYPE_NOT_ON_ROOT,
5486 .seq_show = cgroup_freeze_show,
5487 .write = cgroup_freeze_write,
5488 },
5489 {
5490 .name = "cgroup.kill",
5491 .flags = CFTYPE_NOT_ON_ROOT,
5492 .write = cgroup_kill_write,
5493 },
5494 {
5495 .name = "cpu.stat",
5496 .seq_show = cpu_stat_show,
5497 },
5498 {
5499 .name = "cpu.stat.local",
5500 .seq_show = cpu_local_stat_show,
5501 },
5502 { } /* terminate */
5503 };
5504
5505 static struct cftype cgroup_psi_files[] = {
5506 #ifdef CONFIG_PSI
5507 {
5508 .name = "io.pressure",
5509 .file_offset = offsetof(struct cgroup, psi_files[PSI_IO]),
5510 .seq_show = cgroup_io_pressure_show,
5511 .write = cgroup_io_pressure_write,
5512 .poll = cgroup_pressure_poll,
5513 .release = cgroup_pressure_release,
5514 },
5515 {
5516 .name = "memory.pressure",
5517 .file_offset = offsetof(struct cgroup, psi_files[PSI_MEM]),
5518 .seq_show = cgroup_memory_pressure_show,
5519 .write = cgroup_memory_pressure_write,
5520 .poll = cgroup_pressure_poll,
5521 .release = cgroup_pressure_release,
5522 },
5523 {
5524 .name = "cpu.pressure",
5525 .file_offset = offsetof(struct cgroup, psi_files[PSI_CPU]),
5526 .seq_show = cgroup_cpu_pressure_show,
5527 .write = cgroup_cpu_pressure_write,
5528 .poll = cgroup_pressure_poll,
5529 .release = cgroup_pressure_release,
5530 },
5531 #ifdef CONFIG_IRQ_TIME_ACCOUNTING
5532 {
5533 .name = "irq.pressure",
5534 .file_offset = offsetof(struct cgroup, psi_files[PSI_IRQ]),
5535 .seq_show = cgroup_irq_pressure_show,
5536 .write = cgroup_irq_pressure_write,
5537 .poll = cgroup_pressure_poll,
5538 .release = cgroup_pressure_release,
5539 },
5540 #endif
5541 {
5542 .name = "cgroup.pressure",
5543 .seq_show = cgroup_pressure_show,
5544 .write = cgroup_pressure_write,
5545 },
5546 #endif /* CONFIG_PSI */
5547 { } /* terminate */
5548 };
5549
5550 /*
5551 * css destruction is four-stage process.
5552 *
5553 * 1. Destruction starts. Killing of the percpu_ref is initiated.
5554 * Implemented in kill_css().
5555 *
5556 * 2. When the percpu_ref is confirmed to be visible as killed on all CPUs
5557 * and thus css_tryget_online() is guaranteed to fail, the css can be
5558 * offlined by invoking offline_css(). After offlining, the base ref is
5559 * put. Implemented in css_killed_work_fn().
5560 *
5561 * 3. When the percpu_ref reaches zero, the only possible remaining
5562 * accessors are inside RCU read sections. css_release() schedules the
5563 * RCU callback.
5564 *
5565 * 4. After the grace period, the css can be freed. Implemented in
5566 * css_free_rwork_fn().
5567 *
5568 * It is actually hairier because both step 2 and 4 require process context
5569 * and thus involve punting to css->destroy_work adding two additional
5570 * steps to the already complex sequence.
5571 */
css_free_rwork_fn(struct work_struct * work)5572 static void css_free_rwork_fn(struct work_struct *work)
5573 {
5574 struct cgroup_subsys_state *css = container_of(to_rcu_work(work),
5575 struct cgroup_subsys_state, destroy_rwork);
5576 struct cgroup_subsys *ss = css->ss;
5577 struct cgroup *cgrp = css->cgroup;
5578
5579 percpu_ref_exit(&css->refcnt);
5580 css_rstat_exit(css);
5581
5582 if (!css_is_self(css)) {
5583 /* css free path */
5584 struct cgroup_subsys_state *parent = css->parent;
5585 int id = css->id;
5586
5587 ss->css_free(css);
5588 cgroup_idr_remove(&ss->css_idr, id);
5589 cgroup_put(cgrp);
5590
5591 if (parent)
5592 css_put(parent);
5593 } else {
5594 /* cgroup free path */
5595 atomic_dec(&cgrp->root->nr_cgrps);
5596 if (!cgroup_on_dfl(cgrp))
5597 cgroup1_pidlist_destroy_all(cgrp);
5598 cancel_work_sync(&cgrp->release_agent_work);
5599 bpf_cgrp_storage_free(cgrp);
5600
5601 if (cgroup_parent(cgrp)) {
5602 /*
5603 * We get a ref to the parent, and put the ref when
5604 * this cgroup is being freed, so it's guaranteed
5605 * that the parent won't be destroyed before its
5606 * children.
5607 */
5608 cgroup_put(cgroup_parent(cgrp));
5609 kernfs_put(cgrp->kn);
5610 psi_cgroup_free(cgrp);
5611 kfree(cgrp);
5612 } else {
5613 /*
5614 * This is root cgroup's refcnt reaching zero,
5615 * which indicates that the root should be
5616 * released.
5617 */
5618 cgroup_destroy_root(cgrp->root);
5619 }
5620 }
5621 }
5622
css_release_work_fn(struct work_struct * work)5623 static void css_release_work_fn(struct work_struct *work)
5624 {
5625 struct cgroup_subsys_state *css =
5626 container_of(work, struct cgroup_subsys_state, destroy_work);
5627 struct cgroup_subsys *ss = css->ss;
5628 struct cgroup *cgrp = css->cgroup;
5629
5630 cgroup_lock();
5631
5632 css->flags |= CSS_RELEASED;
5633 list_del_rcu(&css->sibling);
5634
5635 if (!css_is_self(css)) {
5636 struct cgroup *parent_cgrp;
5637
5638 css_rstat_flush(css);
5639
5640 cgroup_idr_replace(&ss->css_idr, NULL, css->id);
5641 if (ss->css_released)
5642 ss->css_released(css);
5643
5644 cgrp->nr_dying_subsys[ss->id]--;
5645 /*
5646 * When a css is released and ready to be freed, its
5647 * nr_descendants must be zero. However, the corresponding
5648 * cgrp->nr_dying_subsys[ss->id] may not be 0 if a subsystem
5649 * is activated and deactivated multiple times with one or
5650 * more of its previous activation leaving behind dying csses.
5651 */
5652 WARN_ON_ONCE(css->nr_descendants);
5653 parent_cgrp = cgroup_parent(cgrp);
5654 while (parent_cgrp) {
5655 parent_cgrp->nr_dying_subsys[ss->id]--;
5656 parent_cgrp = cgroup_parent(parent_cgrp);
5657 }
5658 } else {
5659 struct cgroup *tcgrp;
5660
5661 /* cgroup release path */
5662 TRACE_CGROUP_PATH(release, cgrp);
5663
5664 css_rstat_flush(&cgrp->self);
5665
5666 spin_lock_irq(&css_set_lock);
5667 for (tcgrp = cgroup_parent(cgrp); tcgrp;
5668 tcgrp = cgroup_parent(tcgrp))
5669 tcgrp->nr_dying_descendants--;
5670 spin_unlock_irq(&css_set_lock);
5671
5672 /*
5673 * There are two control paths which try to determine
5674 * cgroup from dentry without going through kernfs -
5675 * cgroupstats_build() and css_tryget_online_from_dir().
5676 * Those are supported by RCU protecting clearing of
5677 * cgrp->kn->priv backpointer.
5678 */
5679 if (cgrp->kn)
5680 RCU_INIT_POINTER(*(void __rcu __force **)&cgrp->kn->priv,
5681 NULL);
5682 }
5683
5684 cgroup_unlock();
5685
5686 INIT_RCU_WORK(&css->destroy_rwork, css_free_rwork_fn);
5687 queue_rcu_work(cgroup_free_wq, &css->destroy_rwork);
5688 }
5689
css_release(struct percpu_ref * ref)5690 static void css_release(struct percpu_ref *ref)
5691 {
5692 struct cgroup_subsys_state *css =
5693 container_of(ref, struct cgroup_subsys_state, refcnt);
5694
5695 INIT_WORK(&css->destroy_work, css_release_work_fn);
5696 queue_work(cgroup_release_wq, &css->destroy_work);
5697 }
5698
init_and_link_css(struct cgroup_subsys_state * css,struct cgroup_subsys * ss,struct cgroup * cgrp)5699 static void init_and_link_css(struct cgroup_subsys_state *css,
5700 struct cgroup_subsys *ss, struct cgroup *cgrp)
5701 {
5702 lockdep_assert_held(&cgroup_mutex);
5703
5704 cgroup_get_live(cgrp);
5705
5706 memset(css, 0, sizeof(*css));
5707 css->cgroup = cgrp;
5708 css->ss = ss;
5709 css->id = -1;
5710 INIT_LIST_HEAD(&css->sibling);
5711 INIT_LIST_HEAD(&css->children);
5712 css->serial_nr = css_serial_nr_next++;
5713 atomic_set(&css->online_cnt, 0);
5714
5715 if (cgroup_parent(cgrp)) {
5716 css->parent = cgroup_css(cgroup_parent(cgrp), ss);
5717 css_get(css->parent);
5718 }
5719
5720 BUG_ON(cgroup_css(cgrp, ss));
5721 }
5722
5723 /* invoke ->css_online() on a new CSS and mark it online if successful */
online_css(struct cgroup_subsys_state * css)5724 static int online_css(struct cgroup_subsys_state *css)
5725 {
5726 struct cgroup_subsys *ss = css->ss;
5727 int ret = 0;
5728
5729 lockdep_assert_held(&cgroup_mutex);
5730
5731 if (ss->css_online)
5732 ret = ss->css_online(css);
5733 if (!ret) {
5734 css->flags |= CSS_ONLINE;
5735 rcu_assign_pointer(css->cgroup->subsys[ss->id], css);
5736
5737 atomic_inc(&css->online_cnt);
5738 if (css->parent) {
5739 atomic_inc(&css->parent->online_cnt);
5740 while ((css = css->parent))
5741 css->nr_descendants++;
5742 }
5743 }
5744 return ret;
5745 }
5746
5747 /* if the CSS is online, invoke ->css_offline() on it and mark it offline */
offline_css(struct cgroup_subsys_state * css)5748 static void offline_css(struct cgroup_subsys_state *css)
5749 {
5750 struct cgroup_subsys *ss = css->ss;
5751
5752 lockdep_assert_held(&cgroup_mutex);
5753
5754 if (!css_is_online(css))
5755 return;
5756
5757 if (ss->css_offline)
5758 ss->css_offline(css);
5759
5760 css->flags &= ~CSS_ONLINE;
5761 RCU_INIT_POINTER(css->cgroup->subsys[ss->id], NULL);
5762
5763 wake_up_all(&css->cgroup->offline_waitq);
5764
5765 css->cgroup->nr_dying_subsys[ss->id]++;
5766 /*
5767 * Parent css and cgroup cannot be freed until after the freeing
5768 * of child css, see css_free_rwork_fn().
5769 */
5770 while ((css = css->parent)) {
5771 css->nr_descendants--;
5772 css->cgroup->nr_dying_subsys[ss->id]++;
5773 }
5774 }
5775
5776 /**
5777 * css_create - create a cgroup_subsys_state
5778 * @cgrp: the cgroup new css will be associated with
5779 * @ss: the subsys of new css
5780 *
5781 * Create a new css associated with @cgrp - @ss pair. On success, the new
5782 * css is online and installed in @cgrp. This function doesn't create the
5783 * interface files. Returns 0 on success, -errno on failure.
5784 */
css_create(struct cgroup * cgrp,struct cgroup_subsys * ss)5785 static struct cgroup_subsys_state *css_create(struct cgroup *cgrp,
5786 struct cgroup_subsys *ss)
5787 {
5788 struct cgroup *parent = cgroup_parent(cgrp);
5789 struct cgroup_subsys_state *parent_css = cgroup_css(parent, ss);
5790 struct cgroup_subsys_state *css;
5791 int err;
5792
5793 lockdep_assert_held(&cgroup_mutex);
5794
5795 css = ss->css_alloc(parent_css);
5796 if (!css)
5797 css = ERR_PTR(-ENOMEM);
5798 if (IS_ERR(css))
5799 return css;
5800
5801 init_and_link_css(css, ss, cgrp);
5802
5803 err = percpu_ref_init(&css->refcnt, css_release, 0, GFP_KERNEL);
5804 if (err)
5805 goto err_free_css;
5806
5807 err = cgroup_idr_alloc(&ss->css_idr, NULL, 2, 0, GFP_KERNEL);
5808 if (err < 0)
5809 goto err_free_css;
5810 css->id = err;
5811
5812 err = css_rstat_init(css);
5813 if (err)
5814 goto err_free_css;
5815
5816 /* @css is ready to be brought online now, make it visible */
5817 list_add_tail_rcu(&css->sibling, &parent_css->children);
5818 cgroup_idr_replace(&ss->css_idr, css, css->id);
5819
5820 err = online_css(css);
5821 if (err)
5822 goto err_list_del;
5823
5824 return css;
5825
5826 err_list_del:
5827 list_del_rcu(&css->sibling);
5828 err_free_css:
5829 INIT_RCU_WORK(&css->destroy_rwork, css_free_rwork_fn);
5830 queue_rcu_work(cgroup_free_wq, &css->destroy_rwork);
5831 return ERR_PTR(err);
5832 }
5833
5834 /*
5835 * The returned cgroup is fully initialized including its control mask, but
5836 * it doesn't have the control mask applied.
5837 */
cgroup_create(struct cgroup * parent,const char * name,umode_t mode)5838 static struct cgroup *cgroup_create(struct cgroup *parent, const char *name,
5839 umode_t mode)
5840 {
5841 struct cgroup_root *root = parent->root;
5842 struct cgroup *cgrp, *tcgrp;
5843 struct kernfs_node *kn;
5844 int i, level = parent->level + 1;
5845 int ret;
5846
5847 /* allocate the cgroup and its ID, 0 is reserved for the root */
5848 cgrp = kzalloc_flex(*cgrp, _low_ancestors, level);
5849 if (!cgrp)
5850 return ERR_PTR(-ENOMEM);
5851
5852 ret = percpu_ref_init(&cgrp->self.refcnt, css_release, 0, GFP_KERNEL);
5853 if (ret)
5854 goto out_free_cgrp;
5855
5856 /* create the directory */
5857 kn = kernfs_create_dir_ns(parent->kn, name, mode,
5858 current_fsuid(), current_fsgid(),
5859 cgrp, NULL);
5860 if (IS_ERR(kn)) {
5861 ret = PTR_ERR(kn);
5862 goto out_cancel_ref;
5863 }
5864 cgrp->kn = kn;
5865
5866 init_cgroup_housekeeping(cgrp);
5867
5868 cgrp->self.parent = &parent->self;
5869 cgrp->root = root;
5870 cgrp->level = level;
5871
5872 /*
5873 * Now that init_cgroup_housekeeping() has been called and cgrp->self
5874 * is setup, it is safe to perform rstat initialization on it.
5875 */
5876 ret = css_rstat_init(&cgrp->self);
5877 if (ret)
5878 goto out_kernfs_remove;
5879
5880 ret = psi_cgroup_alloc(cgrp);
5881 if (ret)
5882 goto out_stat_exit;
5883
5884 for (tcgrp = cgrp; tcgrp; tcgrp = cgroup_parent(tcgrp))
5885 cgrp->ancestors[tcgrp->level] = tcgrp;
5886
5887 /*
5888 * New cgroup inherits effective freeze counter, and
5889 * if the parent has to be frozen, the child has too.
5890 */
5891 cgrp->freezer.e_freeze = parent->freezer.e_freeze;
5892 seqcount_spinlock_init(&cgrp->freezer.freeze_seq, &css_set_lock);
5893 if (cgrp->freezer.e_freeze) {
5894 /*
5895 * Set the CGRP_FREEZE flag, so when a process will be
5896 * attached to the child cgroup, it will become frozen.
5897 * At this point the new cgroup is unpopulated, so we can
5898 * consider it frozen immediately.
5899 */
5900 set_bit(CGRP_FREEZE, &cgrp->flags);
5901 cgrp->freezer.freeze_start_nsec = ktime_get_ns();
5902 set_bit(CGRP_FROZEN, &cgrp->flags);
5903 }
5904
5905 if (notify_on_release(parent))
5906 set_bit(CGRP_NOTIFY_ON_RELEASE, &cgrp->flags);
5907
5908 if (test_bit(CGRP_CPUSET_CLONE_CHILDREN, &parent->flags))
5909 set_bit(CGRP_CPUSET_CLONE_CHILDREN, &cgrp->flags);
5910
5911 cgrp->self.serial_nr = css_serial_nr_next++;
5912
5913 ret = blocking_notifier_call_chain_robust(&cgroup_lifetime_notifier,
5914 CGROUP_LIFETIME_ONLINE,
5915 CGROUP_LIFETIME_OFFLINE, cgrp);
5916 ret = notifier_to_errno(ret);
5917 if (ret)
5918 goto out_psi_free;
5919
5920 /* allocation complete, commit to creation */
5921 spin_lock_irq(&css_set_lock);
5922 for (i = 0; i < level; i++) {
5923 tcgrp = cgrp->ancestors[i];
5924 tcgrp->nr_descendants++;
5925
5926 /*
5927 * If the new cgroup is frozen, all ancestor cgroups get a new
5928 * frozen descendant, but their state can't change because of
5929 * this.
5930 */
5931 if (cgrp->freezer.e_freeze)
5932 tcgrp->freezer.nr_frozen_descendants++;
5933 }
5934 spin_unlock_irq(&css_set_lock);
5935
5936 list_add_tail_rcu(&cgrp->self.sibling, &cgroup_parent(cgrp)->self.children);
5937 atomic_inc(&root->nr_cgrps);
5938 cgroup_get_live(parent);
5939
5940 /*
5941 * On the default hierarchy, a child doesn't automatically inherit
5942 * subtree_control from the parent. Each is configured manually.
5943 */
5944 if (!cgroup_on_dfl(cgrp))
5945 cgrp->subtree_control = cgroup_control(cgrp);
5946
5947 cgroup_propagate_control(cgrp);
5948
5949 return cgrp;
5950
5951 out_psi_free:
5952 psi_cgroup_free(cgrp);
5953 out_stat_exit:
5954 css_rstat_exit(&cgrp->self);
5955 out_kernfs_remove:
5956 kernfs_remove(cgrp->kn);
5957 out_cancel_ref:
5958 percpu_ref_exit(&cgrp->self.refcnt);
5959 out_free_cgrp:
5960 kfree(cgrp);
5961 return ERR_PTR(ret);
5962 }
5963
cgroup_check_hierarchy_limits(struct cgroup * parent)5964 static bool cgroup_check_hierarchy_limits(struct cgroup *parent)
5965 {
5966 struct cgroup *cgroup;
5967 int ret = false;
5968 int level = 0;
5969
5970 lockdep_assert_held(&cgroup_mutex);
5971
5972 for (cgroup = parent; cgroup; cgroup = cgroup_parent(cgroup)) {
5973 if (cgroup->nr_descendants >= cgroup->max_descendants)
5974 goto fail;
5975
5976 if (level >= cgroup->max_depth)
5977 goto fail;
5978
5979 level++;
5980 }
5981
5982 ret = true;
5983 fail:
5984 return ret;
5985 }
5986
cgroup_mkdir(struct kernfs_node * parent_kn,const char * name,umode_t mode)5987 int cgroup_mkdir(struct kernfs_node *parent_kn, const char *name, umode_t mode)
5988 {
5989 struct cgroup *parent, *cgrp;
5990 int ret;
5991
5992 /* do not accept '\n' to prevent making /proc/<pid>/cgroup unparsable */
5993 if (strchr(name, '\n'))
5994 return -EINVAL;
5995
5996 parent = cgroup_kn_lock_live(parent_kn, false);
5997 if (!parent)
5998 return -ENODEV;
5999
6000 if (!cgroup_check_hierarchy_limits(parent)) {
6001 ret = -EAGAIN;
6002 goto out_unlock;
6003 }
6004
6005 cgrp = cgroup_create(parent, name, mode);
6006 if (IS_ERR(cgrp)) {
6007 ret = PTR_ERR(cgrp);
6008 goto out_unlock;
6009 }
6010
6011 /*
6012 * This extra ref will be put in css_free_rwork_fn() and guarantees
6013 * that @cgrp->kn is always accessible.
6014 */
6015 kernfs_get(cgrp->kn);
6016
6017 ret = css_populate_dir(&cgrp->self);
6018 if (ret)
6019 goto out_destroy;
6020
6021 ret = cgroup_apply_control_enable(cgrp);
6022 if (ret)
6023 goto out_destroy;
6024
6025 TRACE_CGROUP_PATH(mkdir, cgrp);
6026
6027 /* let's create and online css's */
6028 kernfs_activate(cgrp->kn);
6029
6030 ret = 0;
6031 goto out_unlock;
6032
6033 out_destroy:
6034 cgroup_destroy_locked(cgrp);
6035 out_unlock:
6036 cgroup_kn_unlock(parent_kn);
6037 return ret;
6038 }
6039
6040 /*
6041 * This is called when the refcnt of a css is confirmed to be killed.
6042 * css_tryget_online() is now guaranteed to fail. Tell the subsystem to
6043 * initiate destruction and put the css ref from kill_css().
6044 */
css_killed_work_fn(struct work_struct * work)6045 static void css_killed_work_fn(struct work_struct *work)
6046 {
6047 struct cgroup_subsys_state *css =
6048 container_of(work, struct cgroup_subsys_state, destroy_work);
6049
6050 cgroup_lock();
6051
6052 do {
6053 offline_css(css);
6054 css_put(css);
6055 /* @css can't go away while we're holding cgroup_mutex */
6056 css = css->parent;
6057 } while (css && atomic_dec_and_test(&css->online_cnt));
6058
6059 cgroup_unlock();
6060 }
6061
6062 /* css kill confirmation processing requires process context, bounce */
css_killed_ref_fn(struct percpu_ref * ref)6063 static void css_killed_ref_fn(struct percpu_ref *ref)
6064 {
6065 struct cgroup_subsys_state *css =
6066 container_of(ref, struct cgroup_subsys_state, refcnt);
6067
6068 if (atomic_dec_and_test(&css->online_cnt)) {
6069 INIT_WORK(&css->destroy_work, css_killed_work_fn);
6070 queue_work(cgroup_offline_wq, &css->destroy_work);
6071 }
6072 }
6073
6074 /**
6075 * kill_css - destroy a css
6076 * @css: css to destroy
6077 *
6078 * This function initiates destruction of @css by removing cgroup interface
6079 * files and putting its base reference. ->css_offline() will be invoked
6080 * asynchronously once css_tryget_online() is guaranteed to fail and when
6081 * the reference count reaches zero, @css will be released.
6082 */
kill_css(struct cgroup_subsys_state * css)6083 static void kill_css(struct cgroup_subsys_state *css)
6084 {
6085 lockdep_assert_held(&cgroup_mutex);
6086
6087 if (css->flags & CSS_DYING)
6088 return;
6089
6090 /*
6091 * Call css_killed(), if defined, before setting the CSS_DYING flag
6092 */
6093 if (css->ss->css_killed)
6094 css->ss->css_killed(css);
6095
6096 css->flags |= CSS_DYING;
6097
6098 /*
6099 * This must happen before css is disassociated with its cgroup.
6100 * See seq_css() for details.
6101 */
6102 css_clear_dir(css);
6103
6104 /*
6105 * Killing would put the base ref, but we need to keep it alive
6106 * until after ->css_offline().
6107 */
6108 css_get(css);
6109
6110 /*
6111 * cgroup core guarantees that, by the time ->css_offline() is
6112 * invoked, no new css reference will be given out via
6113 * css_tryget_online(). We can't simply call percpu_ref_kill() and
6114 * proceed to offlining css's because percpu_ref_kill() doesn't
6115 * guarantee that the ref is seen as killed on all CPUs on return.
6116 *
6117 * Use percpu_ref_kill_and_confirm() to get notifications as each
6118 * css is confirmed to be seen as killed on all CPUs.
6119 */
6120 percpu_ref_kill_and_confirm(&css->refcnt, css_killed_ref_fn);
6121 }
6122
6123 /**
6124 * cgroup_destroy_locked - the first stage of cgroup destruction
6125 * @cgrp: cgroup to be destroyed
6126 *
6127 * css's make use of percpu refcnts whose killing latency shouldn't be
6128 * exposed to userland and are RCU protected. Also, cgroup core needs to
6129 * guarantee that css_tryget_online() won't succeed by the time
6130 * ->css_offline() is invoked. To satisfy all the requirements,
6131 * destruction is implemented in the following two steps.
6132 *
6133 * s1. Verify @cgrp can be destroyed and mark it dying. Remove all
6134 * userland visible parts and start killing the percpu refcnts of
6135 * css's. Set up so that the next stage will be kicked off once all
6136 * the percpu refcnts are confirmed to be killed.
6137 *
6138 * s2. Invoke ->css_offline(), mark the cgroup dead and proceed with the
6139 * rest of destruction. Once all cgroup references are gone, the
6140 * cgroup is RCU-freed.
6141 *
6142 * This function implements s1. After this step, @cgrp is gone as far as
6143 * the userland is concerned and a new cgroup with the same name may be
6144 * created. As cgroup doesn't care about the names internally, this
6145 * doesn't cause any problem.
6146 */
cgroup_destroy_locked(struct cgroup * cgrp)6147 static int cgroup_destroy_locked(struct cgroup *cgrp)
6148 __releases(&cgroup_mutex) __acquires(&cgroup_mutex)
6149 {
6150 struct cgroup *tcgrp, *parent = cgroup_parent(cgrp);
6151 struct cgroup_subsys_state *css;
6152 struct cgrp_cset_link *link;
6153 int ssid, ret;
6154
6155 lockdep_assert_held(&cgroup_mutex);
6156
6157 /*
6158 * Only migration can raise populated from zero and we're already
6159 * holding cgroup_mutex.
6160 */
6161 if (cgroup_is_populated(cgrp))
6162 return -EBUSY;
6163
6164 /*
6165 * Make sure there's no live children. We can't test emptiness of
6166 * ->self.children as dead children linger on it while being
6167 * drained; otherwise, "rmdir parent/child parent" may fail.
6168 */
6169 if (css_has_online_children(&cgrp->self))
6170 return -EBUSY;
6171
6172 /*
6173 * Mark @cgrp and the associated csets dead. The former prevents
6174 * further task migration and child creation by disabling
6175 * cgroup_kn_lock_live(). The latter makes the csets ignored by
6176 * the migration path.
6177 */
6178 cgrp->self.flags &= ~CSS_ONLINE;
6179
6180 spin_lock_irq(&css_set_lock);
6181 list_for_each_entry(link, &cgrp->cset_links, cset_link)
6182 link->cset->dead = true;
6183 spin_unlock_irq(&css_set_lock);
6184
6185 /* initiate massacre of all css's */
6186 for_each_css(css, ssid, cgrp)
6187 kill_css(css);
6188
6189 /* clear and remove @cgrp dir, @cgrp has an extra ref on its kn */
6190 css_clear_dir(&cgrp->self);
6191 kernfs_remove(cgrp->kn);
6192
6193 if (cgroup_is_threaded(cgrp))
6194 parent->nr_threaded_children--;
6195
6196 spin_lock_irq(&css_set_lock);
6197 for (tcgrp = parent; tcgrp; tcgrp = cgroup_parent(tcgrp)) {
6198 tcgrp->nr_descendants--;
6199 tcgrp->nr_dying_descendants++;
6200 /*
6201 * If the dying cgroup is frozen, decrease frozen descendants
6202 * counters of ancestor cgroups.
6203 */
6204 if (test_bit(CGRP_FROZEN, &cgrp->flags))
6205 tcgrp->freezer.nr_frozen_descendants--;
6206 }
6207 spin_unlock_irq(&css_set_lock);
6208
6209 cgroup1_check_for_release(parent);
6210
6211 ret = blocking_notifier_call_chain(&cgroup_lifetime_notifier,
6212 CGROUP_LIFETIME_OFFLINE, cgrp);
6213 WARN_ON_ONCE(notifier_to_errno(ret));
6214
6215 /* put the base reference */
6216 percpu_ref_kill(&cgrp->self.refcnt);
6217
6218 return 0;
6219 };
6220
cgroup_rmdir(struct kernfs_node * kn)6221 int cgroup_rmdir(struct kernfs_node *kn)
6222 {
6223 struct cgroup *cgrp;
6224 int ret = 0;
6225
6226 cgrp = cgroup_kn_lock_live(kn, false);
6227 if (!cgrp)
6228 return 0;
6229
6230 ret = cgroup_destroy_locked(cgrp);
6231 if (!ret)
6232 TRACE_CGROUP_PATH(rmdir, cgrp);
6233
6234 cgroup_kn_unlock(kn);
6235 return ret;
6236 }
6237
6238 static struct kernfs_syscall_ops cgroup_kf_syscall_ops = {
6239 .show_options = cgroup_show_options,
6240 .mkdir = cgroup_mkdir,
6241 .rmdir = cgroup_rmdir,
6242 .show_path = cgroup_show_path,
6243 };
6244
cgroup_init_subsys(struct cgroup_subsys * ss,bool early)6245 static void __init cgroup_init_subsys(struct cgroup_subsys *ss, bool early)
6246 {
6247 struct cgroup_subsys_state *css;
6248
6249 pr_debug("Initializing cgroup subsys %s\n", ss->name);
6250
6251 cgroup_lock();
6252
6253 idr_init(&ss->css_idr);
6254 INIT_LIST_HEAD(&ss->cfts);
6255
6256 /* Create the root cgroup state for this subsystem */
6257 ss->root = &cgrp_dfl_root;
6258 css = ss->css_alloc(NULL);
6259 /* We don't handle early failures gracefully */
6260 BUG_ON(IS_ERR(css));
6261 init_and_link_css(css, ss, &cgrp_dfl_root.cgrp);
6262
6263 /*
6264 * Root csses are never destroyed and we can't initialize
6265 * percpu_ref during early init. Disable refcnting.
6266 */
6267 css->flags |= CSS_NO_REF;
6268
6269 if (early) {
6270 /* allocation can't be done safely during early init */
6271 css->id = 1;
6272 } else {
6273 css->id = cgroup_idr_alloc(&ss->css_idr, css, 1, 2, GFP_KERNEL);
6274 BUG_ON(css->id < 0);
6275
6276 BUG_ON(ss_rstat_init(ss));
6277 BUG_ON(css_rstat_init(css));
6278 }
6279
6280 /* Update the init_css_set to contain a subsys
6281 * pointer to this state - since the subsystem is
6282 * newly registered, all tasks and hence the
6283 * init_css_set is in the subsystem's root cgroup. */
6284 init_css_set.subsys[ss->id] = css;
6285
6286 have_fork_callback |= (bool)ss->fork << ss->id;
6287 have_exit_callback |= (bool)ss->exit << ss->id;
6288 have_release_callback |= (bool)ss->release << ss->id;
6289 have_canfork_callback |= (bool)ss->can_fork << ss->id;
6290
6291 /* At system boot, before all subsystems have been
6292 * registered, no tasks have been forked, so we don't
6293 * need to invoke fork callbacks here. */
6294 BUG_ON(!list_empty(&init_task.tasks));
6295
6296 BUG_ON(online_css(css));
6297
6298 cgroup_unlock();
6299 }
6300
6301 /**
6302 * cgroup_init_early - cgroup initialization at system boot
6303 *
6304 * Initialize cgroups at system boot, and initialize any
6305 * subsystems that request early init.
6306 */
cgroup_init_early(void)6307 int __init cgroup_init_early(void)
6308 {
6309 static struct cgroup_fs_context __initdata ctx;
6310 struct cgroup_subsys *ss;
6311 int i;
6312
6313 ctx.root = &cgrp_dfl_root;
6314 init_cgroup_root(&ctx);
6315 cgrp_dfl_root.cgrp.self.flags |= CSS_NO_REF;
6316
6317 RCU_INIT_POINTER(init_task.cgroups, &init_css_set);
6318
6319 for_each_subsys(ss, i) {
6320 WARN(!ss->css_alloc || !ss->css_free || ss->name || ss->id,
6321 "invalid cgroup_subsys %d:%s css_alloc=%p css_free=%p id:name=%d:%s\n",
6322 i, cgroup_subsys_name[i], ss->css_alloc, ss->css_free,
6323 ss->id, ss->name);
6324 WARN(strlen(cgroup_subsys_name[i]) > MAX_CGROUP_TYPE_NAMELEN,
6325 "cgroup_subsys_name %s too long\n", cgroup_subsys_name[i]);
6326 WARN(ss->early_init && ss->css_rstat_flush,
6327 "cgroup rstat cannot be used with early init subsystem\n");
6328
6329 ss->id = i;
6330 ss->name = cgroup_subsys_name[i];
6331 if (!ss->legacy_name)
6332 ss->legacy_name = cgroup_subsys_name[i];
6333
6334 if (ss->early_init)
6335 cgroup_init_subsys(ss, true);
6336 }
6337 return 0;
6338 }
6339
6340 /**
6341 * cgroup_init - cgroup initialization
6342 *
6343 * Register cgroup filesystem and /proc file, and initialize
6344 * any subsystems that didn't request early init.
6345 */
cgroup_init(void)6346 int __init cgroup_init(void)
6347 {
6348 struct cgroup_subsys *ss;
6349 int ssid;
6350
6351 BUILD_BUG_ON(CGROUP_SUBSYS_COUNT > 32);
6352 BUG_ON(cgroup_init_cftypes(NULL, cgroup_base_files));
6353 BUG_ON(cgroup_init_cftypes(NULL, cgroup_psi_files));
6354 BUG_ON(cgroup_init_cftypes(NULL, cgroup1_base_files));
6355
6356 BUG_ON(ss_rstat_init(NULL));
6357
6358 get_user_ns(init_cgroup_ns.user_ns);
6359 cgroup_rt_init();
6360
6361 cgroup_lock();
6362
6363 /*
6364 * Add init_css_set to the hash table so that dfl_root can link to
6365 * it during init.
6366 */
6367 hash_add(css_set_table, &init_css_set.hlist,
6368 css_set_hash(init_css_set.subsys));
6369
6370 cgroup_bpf_lifetime_notifier_init();
6371
6372 BUG_ON(cgroup_setup_root(&cgrp_dfl_root, 0));
6373
6374 cgroup_unlock();
6375
6376 for_each_subsys(ss, ssid) {
6377 if (ss->early_init) {
6378 struct cgroup_subsys_state *css =
6379 init_css_set.subsys[ss->id];
6380
6381 css->id = cgroup_idr_alloc(&ss->css_idr, css, 1, 2,
6382 GFP_KERNEL);
6383 BUG_ON(css->id < 0);
6384 } else {
6385 cgroup_init_subsys(ss, false);
6386 }
6387
6388 list_add_tail(&init_css_set.e_cset_node[ssid],
6389 &cgrp_dfl_root.cgrp.e_csets[ssid]);
6390
6391 /*
6392 * Setting dfl_root subsys_mask needs to consider the
6393 * disabled flag and cftype registration needs kmalloc,
6394 * both of which aren't available during early_init.
6395 */
6396 if (!cgroup_ssid_enabled(ssid))
6397 continue;
6398
6399 if (cgroup1_ssid_disabled(ssid))
6400 pr_info("Disabling %s control group subsystem in v1 mounts\n",
6401 ss->legacy_name);
6402
6403 cgrp_dfl_root.subsys_mask |= 1 << ss->id;
6404
6405 /* implicit controllers must be threaded too */
6406 WARN_ON(ss->implicit_on_dfl && !ss->threaded);
6407
6408 if (ss->implicit_on_dfl)
6409 cgrp_dfl_implicit_ss_mask |= 1 << ss->id;
6410 else if (!ss->dfl_cftypes)
6411 cgrp_dfl_inhibit_ss_mask |= 1 << ss->id;
6412
6413 if (ss->threaded)
6414 cgrp_dfl_threaded_ss_mask |= 1 << ss->id;
6415
6416 if (ss->dfl_cftypes == ss->legacy_cftypes) {
6417 WARN_ON(cgroup_add_cftypes(ss, ss->dfl_cftypes));
6418 } else {
6419 WARN_ON(cgroup_add_dfl_cftypes(ss, ss->dfl_cftypes));
6420 WARN_ON(cgroup_add_legacy_cftypes(ss, ss->legacy_cftypes));
6421 }
6422
6423 if (ss->bind)
6424 ss->bind(init_css_set.subsys[ssid]);
6425
6426 cgroup_lock();
6427 css_populate_dir(init_css_set.subsys[ssid]);
6428 cgroup_unlock();
6429 }
6430
6431 /* init_css_set.subsys[] has been updated, re-hash */
6432 hash_del(&init_css_set.hlist);
6433 hash_add(css_set_table, &init_css_set.hlist,
6434 css_set_hash(init_css_set.subsys));
6435
6436 WARN_ON(sysfs_create_mount_point(fs_kobj, "cgroup"));
6437 WARN_ON(register_filesystem(&cgroup_fs_type));
6438 WARN_ON(register_filesystem(&cgroup2_fs_type));
6439 WARN_ON(!proc_create_single("cgroups", 0, NULL, proc_cgroupstats_show));
6440 #ifdef CONFIG_CPUSETS_V1
6441 WARN_ON(register_filesystem(&cpuset_fs_type));
6442 #endif
6443
6444 ns_tree_add(&init_cgroup_ns);
6445 return 0;
6446 }
6447
cgroup_wq_init(void)6448 static int __init cgroup_wq_init(void)
6449 {
6450 /*
6451 * There isn't much point in executing destruction path in
6452 * parallel. Good chunk is serialized with cgroup_mutex anyway.
6453 * Use 1 for @max_active.
6454 *
6455 * We would prefer to do this in cgroup_init() above, but that
6456 * is called before init_workqueues(): so leave this until after.
6457 */
6458 cgroup_offline_wq = alloc_workqueue("cgroup_offline", WQ_PERCPU, 1);
6459 BUG_ON(!cgroup_offline_wq);
6460
6461 cgroup_release_wq = alloc_workqueue("cgroup_release", WQ_PERCPU, 1);
6462 BUG_ON(!cgroup_release_wq);
6463
6464 cgroup_free_wq = alloc_workqueue("cgroup_free", WQ_PERCPU, 1);
6465 BUG_ON(!cgroup_free_wq);
6466 return 0;
6467 }
6468 core_initcall(cgroup_wq_init);
6469
cgroup_path_from_kernfs_id(u64 id,char * buf,size_t buflen)6470 void cgroup_path_from_kernfs_id(u64 id, char *buf, size_t buflen)
6471 {
6472 struct kernfs_node *kn;
6473
6474 kn = kernfs_find_and_get_node_by_id(cgrp_dfl_root.kf_root, id);
6475 if (!kn)
6476 return;
6477 kernfs_path(kn, buf, buflen);
6478 kernfs_put(kn);
6479 }
6480
6481 /*
6482 * __cgroup_get_from_id : get the cgroup associated with cgroup id
6483 * @id: cgroup id
6484 * On success return the cgrp or ERR_PTR on failure
6485 * There are no cgroup NS restrictions.
6486 */
__cgroup_get_from_id(u64 id)6487 struct cgroup *__cgroup_get_from_id(u64 id)
6488 {
6489 struct kernfs_node *kn;
6490 struct cgroup *cgrp;
6491
6492 kn = kernfs_find_and_get_node_by_id(cgrp_dfl_root.kf_root, id);
6493 if (!kn)
6494 return ERR_PTR(-ENOENT);
6495
6496 if (kernfs_type(kn) != KERNFS_DIR) {
6497 kernfs_put(kn);
6498 return ERR_PTR(-ENOENT);
6499 }
6500
6501 rcu_read_lock();
6502
6503 cgrp = rcu_dereference(*(void __rcu __force **)&kn->priv);
6504 if (cgrp && !cgroup_tryget(cgrp))
6505 cgrp = NULL;
6506
6507 rcu_read_unlock();
6508 kernfs_put(kn);
6509
6510 if (!cgrp)
6511 return ERR_PTR(-ENOENT);
6512 return cgrp;
6513 }
6514
6515 /*
6516 * cgroup_get_from_id : get the cgroup associated with cgroup id
6517 * @id: cgroup id
6518 * On success return the cgrp or ERR_PTR on failure
6519 * Only cgroups within current task's cgroup NS are valid.
6520 */
cgroup_get_from_id(u64 id)6521 struct cgroup *cgroup_get_from_id(u64 id)
6522 {
6523 struct cgroup *cgrp, *root_cgrp;
6524
6525 cgrp = __cgroup_get_from_id(id);
6526 if (IS_ERR(cgrp))
6527 return cgrp;
6528
6529 root_cgrp = current_cgns_cgroup_dfl();
6530 if (!cgroup_is_descendant(cgrp, root_cgrp)) {
6531 cgroup_put(cgrp);
6532 return ERR_PTR(-ENOENT);
6533 }
6534
6535 return cgrp;
6536 }
6537 EXPORT_SYMBOL_GPL(cgroup_get_from_id);
6538
6539 /*
6540 * proc_cgroup_show()
6541 * - Print task's cgroup paths into seq_file, one line for each hierarchy
6542 * - Used for /proc/<pid>/cgroup.
6543 */
proc_cgroup_show(struct seq_file * m,struct pid_namespace * ns,struct pid * pid,struct task_struct * tsk)6544 int proc_cgroup_show(struct seq_file *m, struct pid_namespace *ns,
6545 struct pid *pid, struct task_struct *tsk)
6546 {
6547 char *buf;
6548 int retval;
6549 struct cgroup_root *root;
6550
6551 retval = -ENOMEM;
6552 buf = kmalloc(PATH_MAX, GFP_KERNEL);
6553 if (!buf)
6554 goto out;
6555
6556 rcu_read_lock();
6557 spin_lock_irq(&css_set_lock);
6558
6559 for_each_root(root) {
6560 struct cgroup_subsys *ss;
6561 struct cgroup *cgrp;
6562 int ssid, count = 0;
6563
6564 if (root == &cgrp_dfl_root && !READ_ONCE(cgrp_dfl_visible))
6565 continue;
6566
6567 cgrp = task_cgroup_from_root(tsk, root);
6568 /* The root has already been unmounted. */
6569 if (!cgrp)
6570 continue;
6571
6572 seq_printf(m, "%d:", root->hierarchy_id);
6573 if (root != &cgrp_dfl_root)
6574 for_each_subsys(ss, ssid)
6575 if (root->subsys_mask & (1 << ssid))
6576 seq_printf(m, "%s%s", count++ ? "," : "",
6577 ss->legacy_name);
6578 if (strlen(root->name))
6579 seq_printf(m, "%sname=%s", count ? "," : "",
6580 root->name);
6581 seq_putc(m, ':');
6582 /*
6583 * On traditional hierarchies, all zombie tasks show up as
6584 * belonging to the root cgroup. On the default hierarchy,
6585 * while a zombie doesn't show up in "cgroup.procs" and
6586 * thus can't be migrated, its /proc/PID/cgroup keeps
6587 * reporting the cgroup it belonged to before exiting. If
6588 * the cgroup is removed before the zombie is reaped,
6589 * " (deleted)" is appended to the cgroup path.
6590 */
6591 if (cgroup_on_dfl(cgrp) || !(tsk->flags & PF_EXITING)) {
6592 retval = cgroup_path_ns_locked(cgrp, buf, PATH_MAX,
6593 current->nsproxy->cgroup_ns);
6594 if (retval == -E2BIG)
6595 retval = -ENAMETOOLONG;
6596 if (retval < 0)
6597 goto out_unlock;
6598
6599 seq_puts(m, buf);
6600 } else {
6601 seq_puts(m, "/");
6602 }
6603
6604 if (cgroup_on_dfl(cgrp) && cgroup_is_dead(cgrp))
6605 seq_puts(m, " (deleted)\n");
6606 else
6607 seq_putc(m, '\n');
6608 }
6609
6610 retval = 0;
6611 out_unlock:
6612 spin_unlock_irq(&css_set_lock);
6613 rcu_read_unlock();
6614 kfree(buf);
6615 out:
6616 return retval;
6617 }
6618
6619 /**
6620 * cgroup_fork - initialize cgroup related fields during copy_process()
6621 * @child: pointer to task_struct of forking parent process.
6622 *
6623 * A task is associated with the init_css_set until cgroup_post_fork()
6624 * attaches it to the target css_set.
6625 */
cgroup_fork(struct task_struct * child)6626 void cgroup_fork(struct task_struct *child)
6627 {
6628 RCU_INIT_POINTER(child->cgroups, &init_css_set);
6629 INIT_LIST_HEAD(&child->cg_list);
6630 }
6631
6632 /**
6633 * cgroup_v1v2_get_from_file - get a cgroup pointer from a file pointer
6634 * @f: file corresponding to cgroup_dir
6635 *
6636 * Find the cgroup from a file pointer associated with a cgroup directory.
6637 * Returns a pointer to the cgroup on success. ERR_PTR is returned if the
6638 * cgroup cannot be found.
6639 */
cgroup_v1v2_get_from_file(struct file * f)6640 static struct cgroup *cgroup_v1v2_get_from_file(struct file *f)
6641 {
6642 struct cgroup_subsys_state *css;
6643
6644 css = css_tryget_online_from_dir(f->f_path.dentry, NULL);
6645 if (IS_ERR(css))
6646 return ERR_CAST(css);
6647
6648 return css->cgroup;
6649 }
6650
6651 /**
6652 * cgroup_get_from_file - same as cgroup_v1v2_get_from_file, but only supports
6653 * cgroup2.
6654 * @f: file corresponding to cgroup2_dir
6655 */
cgroup_get_from_file(struct file * f)6656 static struct cgroup *cgroup_get_from_file(struct file *f)
6657 {
6658 struct cgroup *cgrp = cgroup_v1v2_get_from_file(f);
6659
6660 if (IS_ERR(cgrp))
6661 return ERR_CAST(cgrp);
6662
6663 if (!cgroup_on_dfl(cgrp)) {
6664 cgroup_put(cgrp);
6665 return ERR_PTR(-EBADF);
6666 }
6667
6668 return cgrp;
6669 }
6670
6671 /**
6672 * cgroup_css_set_fork - find or create a css_set for a child process
6673 * @kargs: the arguments passed to create the child process
6674 *
6675 * This functions finds or creates a new css_set which the child
6676 * process will be attached to in cgroup_post_fork(). By default,
6677 * the child process will be given the same css_set as its parent.
6678 *
6679 * If CLONE_INTO_CGROUP is specified this function will try to find an
6680 * existing css_set which includes the requested cgroup and if not create
6681 * a new css_set that the child will be attached to later. If this function
6682 * succeeds it will hold cgroup_threadgroup_rwsem on return. If
6683 * CLONE_INTO_CGROUP is requested this function will grab cgroup mutex
6684 * before grabbing cgroup_threadgroup_rwsem and will hold a reference
6685 * to the target cgroup.
6686 */
cgroup_css_set_fork(struct kernel_clone_args * kargs)6687 static int cgroup_css_set_fork(struct kernel_clone_args *kargs)
6688 __acquires(&cgroup_mutex) __acquires(&cgroup_threadgroup_rwsem)
6689 {
6690 int ret;
6691 struct cgroup *dst_cgrp = NULL;
6692 struct css_set *cset;
6693 struct super_block *sb;
6694
6695 if (kargs->flags & CLONE_INTO_CGROUP)
6696 cgroup_lock();
6697
6698 cgroup_threadgroup_change_begin(current);
6699
6700 spin_lock_irq(&css_set_lock);
6701 cset = task_css_set(current);
6702 get_css_set(cset);
6703 if (kargs->cgrp)
6704 kargs->kill_seq = kargs->cgrp->kill_seq;
6705 else
6706 kargs->kill_seq = cset->dfl_cgrp->kill_seq;
6707 spin_unlock_irq(&css_set_lock);
6708
6709 if (!(kargs->flags & CLONE_INTO_CGROUP)) {
6710 kargs->cset = cset;
6711 return 0;
6712 }
6713
6714 CLASS(fd_raw, f)(kargs->cgroup);
6715 if (fd_empty(f)) {
6716 ret = -EBADF;
6717 goto err;
6718 }
6719 sb = fd_file(f)->f_path.dentry->d_sb;
6720
6721 dst_cgrp = cgroup_get_from_file(fd_file(f));
6722 if (IS_ERR(dst_cgrp)) {
6723 ret = PTR_ERR(dst_cgrp);
6724 dst_cgrp = NULL;
6725 goto err;
6726 }
6727
6728 if (cgroup_is_dead(dst_cgrp)) {
6729 ret = -ENODEV;
6730 goto err;
6731 }
6732
6733 /*
6734 * Verify that we the target cgroup is writable for us. This is
6735 * usually done by the vfs layer but since we're not going through
6736 * the vfs layer here we need to do it "manually".
6737 */
6738 ret = cgroup_may_write(dst_cgrp, sb);
6739 if (ret)
6740 goto err;
6741
6742 /*
6743 * Spawning a task directly into a cgroup works by passing a file
6744 * descriptor to the target cgroup directory. This can even be an O_PATH
6745 * file descriptor. But it can never be a cgroup.procs file descriptor.
6746 * This was done on purpose so spawning into a cgroup could be
6747 * conceptualized as an atomic
6748 *
6749 * fd = openat(dfd_cgroup, "cgroup.procs", ...);
6750 * write(fd, <child-pid>, ...);
6751 *
6752 * sequence, i.e. it's a shorthand for the caller opening and writing
6753 * cgroup.procs of the cgroup indicated by @dfd_cgroup. This allows us
6754 * to always use the caller's credentials.
6755 */
6756 ret = cgroup_attach_permissions(cset->dfl_cgrp, dst_cgrp, sb,
6757 !(kargs->flags & CLONE_THREAD),
6758 current->nsproxy->cgroup_ns);
6759 if (ret)
6760 goto err;
6761
6762 kargs->cset = find_css_set(cset, dst_cgrp);
6763 if (!kargs->cset) {
6764 ret = -ENOMEM;
6765 goto err;
6766 }
6767
6768 put_css_set(cset);
6769 kargs->cgrp = dst_cgrp;
6770 return ret;
6771
6772 err:
6773 cgroup_threadgroup_change_end(current);
6774 cgroup_unlock();
6775 if (dst_cgrp)
6776 cgroup_put(dst_cgrp);
6777 put_css_set(cset);
6778 if (kargs->cset)
6779 put_css_set(kargs->cset);
6780 return ret;
6781 }
6782
6783 /**
6784 * cgroup_css_set_put_fork - drop references we took during fork
6785 * @kargs: the arguments passed to create the child process
6786 *
6787 * Drop references to the prepared css_set and target cgroup if
6788 * CLONE_INTO_CGROUP was requested.
6789 */
cgroup_css_set_put_fork(struct kernel_clone_args * kargs)6790 static void cgroup_css_set_put_fork(struct kernel_clone_args *kargs)
6791 __releases(&cgroup_threadgroup_rwsem) __releases(&cgroup_mutex)
6792 {
6793 struct cgroup *cgrp = kargs->cgrp;
6794 struct css_set *cset = kargs->cset;
6795
6796 cgroup_threadgroup_change_end(current);
6797
6798 if (cset) {
6799 put_css_set(cset);
6800 kargs->cset = NULL;
6801 }
6802
6803 if (kargs->flags & CLONE_INTO_CGROUP) {
6804 cgroup_unlock();
6805 if (cgrp) {
6806 cgroup_put(cgrp);
6807 kargs->cgrp = NULL;
6808 }
6809 }
6810 }
6811
6812 /**
6813 * cgroup_can_fork - called on a new task before the process is exposed
6814 * @child: the child process
6815 * @kargs: the arguments passed to create the child process
6816 *
6817 * This prepares a new css_set for the child process which the child will
6818 * be attached to in cgroup_post_fork().
6819 * This calls the subsystem can_fork() callbacks. If the cgroup_can_fork()
6820 * callback returns an error, the fork aborts with that error code. This
6821 * allows for a cgroup subsystem to conditionally allow or deny new forks.
6822 */
cgroup_can_fork(struct task_struct * child,struct kernel_clone_args * kargs)6823 int cgroup_can_fork(struct task_struct *child, struct kernel_clone_args *kargs)
6824 {
6825 struct cgroup_subsys *ss;
6826 int i, j, ret;
6827
6828 ret = cgroup_css_set_fork(kargs);
6829 if (ret)
6830 return ret;
6831
6832 do_each_subsys_mask(ss, i, have_canfork_callback) {
6833 ret = ss->can_fork(child, kargs->cset);
6834 if (ret)
6835 goto out_revert;
6836 } while_each_subsys_mask();
6837
6838 return 0;
6839
6840 out_revert:
6841 for_each_subsys(ss, j) {
6842 if (j >= i)
6843 break;
6844 if (ss->cancel_fork)
6845 ss->cancel_fork(child, kargs->cset);
6846 }
6847
6848 cgroup_css_set_put_fork(kargs);
6849
6850 return ret;
6851 }
6852
6853 /**
6854 * cgroup_cancel_fork - called if a fork failed after cgroup_can_fork()
6855 * @child: the child process
6856 * @kargs: the arguments passed to create the child process
6857 *
6858 * This calls the cancel_fork() callbacks if a fork failed *after*
6859 * cgroup_can_fork() succeeded and cleans up references we took to
6860 * prepare a new css_set for the child process in cgroup_can_fork().
6861 */
cgroup_cancel_fork(struct task_struct * child,struct kernel_clone_args * kargs)6862 void cgroup_cancel_fork(struct task_struct *child,
6863 struct kernel_clone_args *kargs)
6864 {
6865 struct cgroup_subsys *ss;
6866 int i;
6867
6868 for_each_subsys(ss, i)
6869 if (ss->cancel_fork)
6870 ss->cancel_fork(child, kargs->cset);
6871
6872 cgroup_css_set_put_fork(kargs);
6873 }
6874
6875 /**
6876 * cgroup_post_fork - finalize cgroup setup for the child process
6877 * @child: the child process
6878 * @kargs: the arguments passed to create the child process
6879 *
6880 * Attach the child process to its css_set calling the subsystem fork()
6881 * callbacks.
6882 */
cgroup_post_fork(struct task_struct * child,struct kernel_clone_args * kargs)6883 void cgroup_post_fork(struct task_struct *child,
6884 struct kernel_clone_args *kargs)
6885 __releases(&cgroup_threadgroup_rwsem) __releases(&cgroup_mutex)
6886 {
6887 unsigned int cgrp_kill_seq = 0;
6888 unsigned long cgrp_flags = 0;
6889 bool kill = false;
6890 struct cgroup_subsys *ss;
6891 struct css_set *cset;
6892 int i;
6893
6894 cset = kargs->cset;
6895 kargs->cset = NULL;
6896
6897 spin_lock_irq(&css_set_lock);
6898
6899 /* init tasks are special, only link regular threads */
6900 if (likely(child->pid)) {
6901 if (kargs->cgrp) {
6902 cgrp_flags = kargs->cgrp->flags;
6903 cgrp_kill_seq = kargs->cgrp->kill_seq;
6904 } else {
6905 cgrp_flags = cset->dfl_cgrp->flags;
6906 cgrp_kill_seq = cset->dfl_cgrp->kill_seq;
6907 }
6908
6909 WARN_ON_ONCE(!list_empty(&child->cg_list));
6910 cset->nr_tasks++;
6911 css_set_move_task(child, NULL, cset, false);
6912 } else {
6913 put_css_set(cset);
6914 cset = NULL;
6915 }
6916
6917 if (!(child->flags & PF_KTHREAD)) {
6918 if (unlikely(test_bit(CGRP_FREEZE, &cgrp_flags))) {
6919 /*
6920 * If the cgroup has to be frozen, the new task has
6921 * too. Let's set the JOBCTL_TRAP_FREEZE jobctl bit to
6922 * get the task into the frozen state.
6923 */
6924 spin_lock(&child->sighand->siglock);
6925 WARN_ON_ONCE(child->frozen);
6926 child->jobctl |= JOBCTL_TRAP_FREEZE;
6927 spin_unlock(&child->sighand->siglock);
6928
6929 /*
6930 * Calling cgroup_update_frozen() isn't required here,
6931 * because it will be called anyway a bit later from
6932 * do_freezer_trap(). So we avoid cgroup's transient
6933 * switch from the frozen state and back.
6934 */
6935 }
6936
6937 /*
6938 * If the cgroup is to be killed notice it now and take the
6939 * child down right after we finished preparing it for
6940 * userspace.
6941 */
6942 kill = kargs->kill_seq != cgrp_kill_seq;
6943 }
6944
6945 spin_unlock_irq(&css_set_lock);
6946
6947 /*
6948 * Call ss->fork(). This must happen after @child is linked on
6949 * css_set; otherwise, @child might change state between ->fork()
6950 * and addition to css_set.
6951 */
6952 do_each_subsys_mask(ss, i, have_fork_callback) {
6953 ss->fork(child);
6954 } while_each_subsys_mask();
6955
6956 /* Make the new cset the root_cset of the new cgroup namespace. */
6957 if (kargs->flags & CLONE_NEWCGROUP) {
6958 struct css_set *rcset = child->nsproxy->cgroup_ns->root_cset;
6959
6960 get_css_set(cset);
6961 child->nsproxy->cgroup_ns->root_cset = cset;
6962 put_css_set(rcset);
6963 }
6964
6965 /* Cgroup has to be killed so take down child immediately. */
6966 if (unlikely(kill))
6967 do_send_sig_info(SIGKILL, SEND_SIG_NOINFO, child, PIDTYPE_TGID);
6968
6969 cgroup_css_set_put_fork(kargs);
6970 }
6971
6972 /**
6973 * cgroup_task_exit - detach cgroup from exiting task
6974 * @tsk: pointer to task_struct of exiting process
6975 *
6976 * Description: Detach cgroup from @tsk.
6977 *
6978 */
cgroup_task_exit(struct task_struct * tsk)6979 void cgroup_task_exit(struct task_struct *tsk)
6980 {
6981 struct cgroup_subsys *ss;
6982 int i;
6983
6984 /* see cgroup_post_fork() for details */
6985 do_each_subsys_mask(ss, i, have_exit_callback) {
6986 ss->exit(tsk);
6987 } while_each_subsys_mask();
6988 }
6989
do_cgroup_task_dead(struct task_struct * tsk)6990 static void do_cgroup_task_dead(struct task_struct *tsk)
6991 {
6992 struct css_set *cset;
6993 unsigned long flags;
6994
6995 spin_lock_irqsave(&css_set_lock, flags);
6996
6997 WARN_ON_ONCE(list_empty(&tsk->cg_list));
6998 cset = task_css_set(tsk);
6999 css_set_move_task(tsk, cset, NULL, false);
7000 cset->nr_tasks--;
7001 /* matches the signal->live check in css_task_iter_advance() */
7002 if (thread_group_leader(tsk) && atomic_read(&tsk->signal->live))
7003 list_add_tail(&tsk->cg_list, &cset->dying_tasks);
7004
7005 if (dl_task(tsk))
7006 dec_dl_tasks_cs(tsk);
7007
7008 WARN_ON_ONCE(cgroup_task_frozen(tsk));
7009 if (unlikely(!(tsk->flags & PF_KTHREAD) &&
7010 test_bit(CGRP_FREEZE, &task_dfl_cgroup(tsk)->flags)))
7011 cgroup_update_frozen(task_dfl_cgroup(tsk));
7012
7013 spin_unlock_irqrestore(&css_set_lock, flags);
7014 }
7015
7016 #ifdef CONFIG_PREEMPT_RT
7017 /*
7018 * cgroup_task_dead() is called from finish_task_switch() which doesn't allow
7019 * scheduling even in RT. As the task_dead path requires grabbing css_set_lock,
7020 * this lead to sleeping in the invalid context warning bug. css_set_lock is too
7021 * big to become a raw_spinlock. The task_dead path doesn't need to run
7022 * synchronously but can't be delayed indefinitely either as the dead task pins
7023 * the cgroup and task_struct can be pinned indefinitely. Bounce through lazy
7024 * irq_work to allow batching while ensuring timely completion.
7025 */
7026 static DEFINE_PER_CPU(struct llist_head, cgrp_dead_tasks);
7027 static DEFINE_PER_CPU(struct irq_work, cgrp_dead_tasks_iwork);
7028
cgrp_dead_tasks_iwork_fn(struct irq_work * iwork)7029 static void cgrp_dead_tasks_iwork_fn(struct irq_work *iwork)
7030 {
7031 struct llist_node *lnode;
7032 struct task_struct *task, *next;
7033
7034 lnode = llist_del_all(this_cpu_ptr(&cgrp_dead_tasks));
7035 llist_for_each_entry_safe(task, next, lnode, cg_dead_lnode) {
7036 do_cgroup_task_dead(task);
7037 put_task_struct(task);
7038 }
7039 }
7040
cgroup_rt_init(void)7041 static void __init cgroup_rt_init(void)
7042 {
7043 int cpu;
7044
7045 for_each_possible_cpu(cpu) {
7046 init_llist_head(per_cpu_ptr(&cgrp_dead_tasks, cpu));
7047 per_cpu(cgrp_dead_tasks_iwork, cpu) =
7048 IRQ_WORK_INIT_LAZY(cgrp_dead_tasks_iwork_fn);
7049 }
7050 }
7051
cgroup_task_dead(struct task_struct * task)7052 void cgroup_task_dead(struct task_struct *task)
7053 {
7054 get_task_struct(task);
7055 llist_add(&task->cg_dead_lnode, this_cpu_ptr(&cgrp_dead_tasks));
7056 irq_work_queue(this_cpu_ptr(&cgrp_dead_tasks_iwork));
7057 }
7058 #else /* CONFIG_PREEMPT_RT */
cgroup_rt_init(void)7059 static void __init cgroup_rt_init(void) {}
7060
cgroup_task_dead(struct task_struct * task)7061 void cgroup_task_dead(struct task_struct *task)
7062 {
7063 do_cgroup_task_dead(task);
7064 }
7065 #endif /* CONFIG_PREEMPT_RT */
7066
cgroup_task_release(struct task_struct * task)7067 void cgroup_task_release(struct task_struct *task)
7068 {
7069 struct cgroup_subsys *ss;
7070 int ssid;
7071
7072 do_each_subsys_mask(ss, ssid, have_release_callback) {
7073 ss->release(task);
7074 } while_each_subsys_mask();
7075 }
7076
cgroup_task_free(struct task_struct * task)7077 void cgroup_task_free(struct task_struct *task)
7078 {
7079 struct css_set *cset = task_css_set(task);
7080
7081 if (!list_empty(&task->cg_list)) {
7082 spin_lock_irq(&css_set_lock);
7083 css_set_skip_task_iters(task_css_set(task), task);
7084 list_del_init(&task->cg_list);
7085 spin_unlock_irq(&css_set_lock);
7086 }
7087
7088 put_css_set(cset);
7089 }
7090
cgroup_disable(char * str)7091 static int __init cgroup_disable(char *str)
7092 {
7093 struct cgroup_subsys *ss;
7094 char *token;
7095 int i;
7096
7097 while ((token = strsep(&str, ",")) != NULL) {
7098 if (!*token)
7099 continue;
7100
7101 for_each_subsys(ss, i) {
7102 if (strcmp(token, ss->name) &&
7103 strcmp(token, ss->legacy_name))
7104 continue;
7105
7106 static_branch_disable(cgroup_subsys_enabled_key[i]);
7107 pr_info("Disabling %s control group subsystem\n",
7108 ss->name);
7109 }
7110
7111 for (i = 0; i < OPT_FEATURE_COUNT; i++) {
7112 if (strcmp(token, cgroup_opt_feature_names[i]))
7113 continue;
7114 cgroup_feature_disable_mask |= 1 << i;
7115 pr_info("Disabling %s control group feature\n",
7116 cgroup_opt_feature_names[i]);
7117 break;
7118 }
7119 }
7120 return 1;
7121 }
7122 __setup("cgroup_disable=", cgroup_disable);
7123
enable_debug_cgroup(void)7124 void __init __weak enable_debug_cgroup(void) { }
7125
enable_cgroup_debug(char * str)7126 static int __init enable_cgroup_debug(char *str)
7127 {
7128 cgroup_debug = true;
7129 enable_debug_cgroup();
7130 return 1;
7131 }
7132 __setup("cgroup_debug", enable_cgroup_debug);
7133
cgroup_favordynmods_setup(char * str)7134 static int __init cgroup_favordynmods_setup(char *str)
7135 {
7136 return (kstrtobool(str, &have_favordynmods) == 0);
7137 }
7138 __setup("cgroup_favordynmods=", cgroup_favordynmods_setup);
7139
7140 /**
7141 * css_tryget_online_from_dir - get corresponding css from a cgroup dentry
7142 * @dentry: directory dentry of interest
7143 * @ss: subsystem of interest
7144 *
7145 * If @dentry is a directory for a cgroup which has @ss enabled on it, try
7146 * to get the corresponding css and return it. If such css doesn't exist
7147 * or can't be pinned, an ERR_PTR value is returned.
7148 */
css_tryget_online_from_dir(struct dentry * dentry,struct cgroup_subsys * ss)7149 struct cgroup_subsys_state *css_tryget_online_from_dir(struct dentry *dentry,
7150 struct cgroup_subsys *ss)
7151 {
7152 struct kernfs_node *kn = kernfs_node_from_dentry(dentry);
7153 struct file_system_type *s_type = dentry->d_sb->s_type;
7154 struct cgroup_subsys_state *css = NULL;
7155 struct cgroup *cgrp;
7156
7157 /* is @dentry a cgroup dir? */
7158 if ((s_type != &cgroup_fs_type && s_type != &cgroup2_fs_type) ||
7159 !kn || kernfs_type(kn) != KERNFS_DIR)
7160 return ERR_PTR(-EBADF);
7161
7162 rcu_read_lock();
7163
7164 /*
7165 * This path doesn't originate from kernfs and @kn could already
7166 * have been or be removed at any point. @kn->priv is RCU
7167 * protected for this access. See css_release_work_fn() for details.
7168 */
7169 cgrp = rcu_dereference(*(void __rcu __force **)&kn->priv);
7170 if (cgrp)
7171 css = cgroup_css(cgrp, ss);
7172
7173 if (!css || !css_tryget_online(css))
7174 css = ERR_PTR(-ENOENT);
7175
7176 rcu_read_unlock();
7177 return css;
7178 }
7179
7180 /**
7181 * css_from_id - lookup css by id
7182 * @id: the cgroup id
7183 * @ss: cgroup subsys to be looked into
7184 *
7185 * Returns the css if there's valid one with @id, otherwise returns NULL.
7186 * Should be called under rcu_read_lock().
7187 */
css_from_id(int id,struct cgroup_subsys * ss)7188 struct cgroup_subsys_state *css_from_id(int id, struct cgroup_subsys *ss)
7189 {
7190 WARN_ON_ONCE(!rcu_read_lock_held());
7191 return idr_find(&ss->css_idr, id);
7192 }
7193
7194 /**
7195 * cgroup_get_from_path - lookup and get a cgroup from its default hierarchy path
7196 * @path: path on the default hierarchy
7197 *
7198 * Find the cgroup at @path on the default hierarchy, increment its
7199 * reference count and return it. Returns pointer to the found cgroup on
7200 * success, ERR_PTR(-ENOENT) if @path doesn't exist or if the cgroup has already
7201 * been released and ERR_PTR(-ENOTDIR) if @path points to a non-directory.
7202 */
cgroup_get_from_path(const char * path)7203 struct cgroup *cgroup_get_from_path(const char *path)
7204 {
7205 struct kernfs_node *kn;
7206 struct cgroup *cgrp = ERR_PTR(-ENOENT);
7207 struct cgroup *root_cgrp;
7208
7209 root_cgrp = current_cgns_cgroup_dfl();
7210 kn = kernfs_walk_and_get(root_cgrp->kn, path);
7211 if (!kn)
7212 goto out;
7213
7214 if (kernfs_type(kn) != KERNFS_DIR) {
7215 cgrp = ERR_PTR(-ENOTDIR);
7216 goto out_kernfs;
7217 }
7218
7219 rcu_read_lock();
7220
7221 cgrp = rcu_dereference(*(void __rcu __force **)&kn->priv);
7222 if (!cgrp || !cgroup_tryget(cgrp))
7223 cgrp = ERR_PTR(-ENOENT);
7224
7225 rcu_read_unlock();
7226
7227 out_kernfs:
7228 kernfs_put(kn);
7229 out:
7230 return cgrp;
7231 }
7232 EXPORT_SYMBOL_GPL(cgroup_get_from_path);
7233
7234 /**
7235 * cgroup_v1v2_get_from_fd - get a cgroup pointer from a fd
7236 * @fd: fd obtained by open(cgroup_dir)
7237 *
7238 * Find the cgroup from a fd which should be obtained
7239 * by opening a cgroup directory. Returns a pointer to the
7240 * cgroup on success. ERR_PTR is returned if the cgroup
7241 * cannot be found.
7242 */
cgroup_v1v2_get_from_fd(int fd)7243 struct cgroup *cgroup_v1v2_get_from_fd(int fd)
7244 {
7245 CLASS(fd_raw, f)(fd);
7246 if (fd_empty(f))
7247 return ERR_PTR(-EBADF);
7248
7249 return cgroup_v1v2_get_from_file(fd_file(f));
7250 }
7251
7252 /**
7253 * cgroup_get_from_fd - same as cgroup_v1v2_get_from_fd, but only supports
7254 * cgroup2.
7255 * @fd: fd obtained by open(cgroup2_dir)
7256 */
cgroup_get_from_fd(int fd)7257 struct cgroup *cgroup_get_from_fd(int fd)
7258 {
7259 struct cgroup *cgrp = cgroup_v1v2_get_from_fd(fd);
7260
7261 if (IS_ERR(cgrp))
7262 return ERR_CAST(cgrp);
7263
7264 if (!cgroup_on_dfl(cgrp)) {
7265 cgroup_put(cgrp);
7266 return ERR_PTR(-EBADF);
7267 }
7268 return cgrp;
7269 }
7270 EXPORT_SYMBOL_GPL(cgroup_get_from_fd);
7271
power_of_ten(int power)7272 static u64 power_of_ten(int power)
7273 {
7274 u64 v = 1;
7275 while (power--)
7276 v *= 10;
7277 return v;
7278 }
7279
7280 /**
7281 * cgroup_parse_float - parse a floating number
7282 * @input: input string
7283 * @dec_shift: number of decimal digits to shift
7284 * @v: output
7285 *
7286 * Parse a decimal floating point number in @input and store the result in
7287 * @v with decimal point right shifted @dec_shift times. For example, if
7288 * @input is "12.3456" and @dec_shift is 3, *@v will be set to 12345.
7289 * Returns 0 on success, -errno otherwise.
7290 *
7291 * There's nothing cgroup specific about this function except that it's
7292 * currently the only user.
7293 */
cgroup_parse_float(const char * input,unsigned dec_shift,s64 * v)7294 int cgroup_parse_float(const char *input, unsigned dec_shift, s64 *v)
7295 {
7296 s64 whole, frac = 0;
7297 int fstart = 0, fend = 0, flen;
7298
7299 if (!sscanf(input, "%lld.%n%lld%n", &whole, &fstart, &frac, &fend))
7300 return -EINVAL;
7301 if (frac < 0)
7302 return -EINVAL;
7303
7304 flen = fend > fstart ? fend - fstart : 0;
7305 if (flen < dec_shift)
7306 frac *= power_of_ten(dec_shift - flen);
7307 else
7308 frac = DIV_ROUND_CLOSEST_ULL(frac, power_of_ten(flen - dec_shift));
7309
7310 *v = whole * power_of_ten(dec_shift) + frac;
7311 return 0;
7312 }
7313
7314 /*
7315 * sock->sk_cgrp_data handling. For more info, see sock_cgroup_data
7316 * definition in cgroup-defs.h.
7317 */
7318 #ifdef CONFIG_SOCK_CGROUP_DATA
7319
cgroup_sk_alloc(struct sock_cgroup_data * skcd)7320 void cgroup_sk_alloc(struct sock_cgroup_data *skcd)
7321 {
7322 struct cgroup *cgroup;
7323
7324 rcu_read_lock();
7325 /* Don't associate the sock with unrelated interrupted task's cgroup. */
7326 if (in_interrupt()) {
7327 cgroup = &cgrp_dfl_root.cgrp;
7328 cgroup_get(cgroup);
7329 goto out;
7330 }
7331
7332 while (true) {
7333 struct css_set *cset;
7334
7335 cset = task_css_set(current);
7336 if (likely(cgroup_tryget(cset->dfl_cgrp))) {
7337 cgroup = cset->dfl_cgrp;
7338 break;
7339 }
7340 cpu_relax();
7341 }
7342 out:
7343 skcd->cgroup = cgroup;
7344 cgroup_bpf_get(cgroup);
7345 rcu_read_unlock();
7346 }
7347
cgroup_sk_clone(struct sock_cgroup_data * skcd)7348 void cgroup_sk_clone(struct sock_cgroup_data *skcd)
7349 {
7350 struct cgroup *cgrp = sock_cgroup_ptr(skcd);
7351
7352 /*
7353 * We might be cloning a socket which is left in an empty
7354 * cgroup and the cgroup might have already been rmdir'd.
7355 * Don't use cgroup_get_live().
7356 */
7357 cgroup_get(cgrp);
7358 cgroup_bpf_get(cgrp);
7359 }
7360
cgroup_sk_free(struct sock_cgroup_data * skcd)7361 void cgroup_sk_free(struct sock_cgroup_data *skcd)
7362 {
7363 struct cgroup *cgrp = sock_cgroup_ptr(skcd);
7364
7365 cgroup_bpf_put(cgrp);
7366 cgroup_put(cgrp);
7367 }
7368
7369 #endif /* CONFIG_SOCK_CGROUP_DATA */
7370
7371 #ifdef CONFIG_SYSFS
show_delegatable_files(struct cftype * files,char * buf,ssize_t size,const char * prefix)7372 static ssize_t show_delegatable_files(struct cftype *files, char *buf,
7373 ssize_t size, const char *prefix)
7374 {
7375 struct cftype *cft;
7376 ssize_t ret = 0;
7377
7378 for (cft = files; cft && cft->name[0] != '\0'; cft++) {
7379 if (!(cft->flags & CFTYPE_NS_DELEGATABLE))
7380 continue;
7381
7382 if (prefix)
7383 ret += snprintf(buf + ret, size - ret, "%s.", prefix);
7384
7385 ret += snprintf(buf + ret, size - ret, "%s\n", cft->name);
7386
7387 if (WARN_ON(ret >= size))
7388 break;
7389 }
7390
7391 return ret;
7392 }
7393
delegate_show(struct kobject * kobj,struct kobj_attribute * attr,char * buf)7394 static ssize_t delegate_show(struct kobject *kobj, struct kobj_attribute *attr,
7395 char *buf)
7396 {
7397 struct cgroup_subsys *ss;
7398 int ssid;
7399 ssize_t ret = 0;
7400
7401 ret = show_delegatable_files(cgroup_base_files, buf + ret,
7402 PAGE_SIZE - ret, NULL);
7403 if (cgroup_psi_enabled())
7404 ret += show_delegatable_files(cgroup_psi_files, buf + ret,
7405 PAGE_SIZE - ret, NULL);
7406
7407 for_each_subsys(ss, ssid)
7408 ret += show_delegatable_files(ss->dfl_cftypes, buf + ret,
7409 PAGE_SIZE - ret,
7410 cgroup_subsys_name[ssid]);
7411
7412 return ret;
7413 }
7414 static struct kobj_attribute cgroup_delegate_attr = __ATTR_RO(delegate);
7415
features_show(struct kobject * kobj,struct kobj_attribute * attr,char * buf)7416 static ssize_t features_show(struct kobject *kobj, struct kobj_attribute *attr,
7417 char *buf)
7418 {
7419 return snprintf(buf, PAGE_SIZE,
7420 "nsdelegate\n"
7421 "favordynmods\n"
7422 "memory_localevents\n"
7423 "memory_recursiveprot\n"
7424 "memory_hugetlb_accounting\n"
7425 "pids_localevents\n");
7426 }
7427 static struct kobj_attribute cgroup_features_attr = __ATTR_RO(features);
7428
7429 static struct attribute *cgroup_sysfs_attrs[] = {
7430 &cgroup_delegate_attr.attr,
7431 &cgroup_features_attr.attr,
7432 NULL,
7433 };
7434
7435 static const struct attribute_group cgroup_sysfs_attr_group = {
7436 .attrs = cgroup_sysfs_attrs,
7437 .name = "cgroup",
7438 };
7439
cgroup_sysfs_init(void)7440 static int __init cgroup_sysfs_init(void)
7441 {
7442 return sysfs_create_group(kernel_kobj, &cgroup_sysfs_attr_group);
7443 }
7444 subsys_initcall(cgroup_sysfs_init);
7445
7446 #endif /* CONFIG_SYSFS */
7447