cgroups: use task_lock() for access tsk->cgroups safe in cgroup_clone()
[linux-2.6-block.git] / kernel / cgroup.c
CommitLineData
ddbcc7e8 1/*
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2 * Generic process-grouping system.
3 *
4 * Based originally on the cpuset system, extracted by Paul Menage
5 * Copyright (C) 2006 Google, Inc
6 *
7 * Copyright notices from the original cpuset code:
8 * --------------------------------------------------
9 * Copyright (C) 2003 BULL SA.
10 * Copyright (C) 2004-2006 Silicon Graphics, Inc.
11 *
12 * Portions derived from Patrick Mochel's sysfs code.
13 * sysfs is Copyright (c) 2001-3 Patrick Mochel
14 *
15 * 2003-10-10 Written by Simon Derr.
16 * 2003-10-22 Updates by Stephen Hemminger.
17 * 2004 May-July Rework by Paul Jackson.
18 * ---------------------------------------------------
19 *
20 * This file is subject to the terms and conditions of the GNU General Public
21 * License. See the file COPYING in the main directory of the Linux
22 * distribution for more details.
23 */
24
25#include <linux/cgroup.h>
26#include <linux/errno.h>
27#include <linux/fs.h>
28#include <linux/kernel.h>
29#include <linux/list.h>
30#include <linux/mm.h>
31#include <linux/mutex.h>
32#include <linux/mount.h>
33#include <linux/pagemap.h>
a424316c 34#include <linux/proc_fs.h>
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35#include <linux/rcupdate.h>
36#include <linux/sched.h>
817929ec 37#include <linux/backing-dev.h>
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38#include <linux/seq_file.h>
39#include <linux/slab.h>
40#include <linux/magic.h>
41#include <linux/spinlock.h>
42#include <linux/string.h>
bbcb81d0 43#include <linux/sort.h>
81a6a5cd 44#include <linux/kmod.h>
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45#include <linux/delayacct.h>
46#include <linux/cgroupstats.h>
472b1053 47#include <linux/hash.h>
3f8206d4 48#include <linux/namei.h>
846c7bb0 49
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50#include <asm/atomic.h>
51
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52static DEFINE_MUTEX(cgroup_mutex);
53
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54/* Generate an array of cgroup subsystem pointers */
55#define SUBSYS(_x) &_x ## _subsys,
56
57static struct cgroup_subsys *subsys[] = {
58#include <linux/cgroup_subsys.h>
59};
60
61/*
62 * A cgroupfs_root represents the root of a cgroup hierarchy,
63 * and may be associated with a superblock to form an active
64 * hierarchy
65 */
66struct cgroupfs_root {
67 struct super_block *sb;
68
69 /*
70 * The bitmask of subsystems intended to be attached to this
71 * hierarchy
72 */
73 unsigned long subsys_bits;
74
75 /* The bitmask of subsystems currently attached to this hierarchy */
76 unsigned long actual_subsys_bits;
77
78 /* A list running through the attached subsystems */
79 struct list_head subsys_list;
80
81 /* The root cgroup for this hierarchy */
82 struct cgroup top_cgroup;
83
84 /* Tracks how many cgroups are currently defined in hierarchy.*/
85 int number_of_cgroups;
86
87 /* A list running through the mounted hierarchies */
88 struct list_head root_list;
89
90 /* Hierarchy-specific flags */
91 unsigned long flags;
81a6a5cd 92
e788e066 93 /* The path to use for release notifications. */
81a6a5cd 94 char release_agent_path[PATH_MAX];
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95};
96
97
98/*
99 * The "rootnode" hierarchy is the "dummy hierarchy", reserved for the
100 * subsystems that are otherwise unattached - it never has more than a
101 * single cgroup, and all tasks are part of that cgroup.
102 */
103static struct cgroupfs_root rootnode;
104
105/* The list of hierarchy roots */
106
107static LIST_HEAD(roots);
817929ec 108static int root_count;
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109
110/* dummytop is a shorthand for the dummy hierarchy's top cgroup */
111#define dummytop (&rootnode.top_cgroup)
112
113/* This flag indicates whether tasks in the fork and exit paths should
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114 * check for fork/exit handlers to call. This avoids us having to do
115 * extra work in the fork/exit path if none of the subsystems need to
116 * be called.
ddbcc7e8 117 */
8947f9d5 118static int need_forkexit_callback __read_mostly;
ddbcc7e8 119
ddbcc7e8 120/* convenient tests for these bits */
bd89aabc 121inline int cgroup_is_removed(const struct cgroup *cgrp)
ddbcc7e8 122{
bd89aabc 123 return test_bit(CGRP_REMOVED, &cgrp->flags);
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124}
125
126/* bits in struct cgroupfs_root flags field */
127enum {
128 ROOT_NOPREFIX, /* mounted subsystems have no named prefix */
129};
130
e9685a03 131static int cgroup_is_releasable(const struct cgroup *cgrp)
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132{
133 const int bits =
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134 (1 << CGRP_RELEASABLE) |
135 (1 << CGRP_NOTIFY_ON_RELEASE);
136 return (cgrp->flags & bits) == bits;
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137}
138
e9685a03 139static int notify_on_release(const struct cgroup *cgrp)
81a6a5cd 140{
bd89aabc 141 return test_bit(CGRP_NOTIFY_ON_RELEASE, &cgrp->flags);
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142}
143
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144/*
145 * for_each_subsys() allows you to iterate on each subsystem attached to
146 * an active hierarchy
147 */
148#define for_each_subsys(_root, _ss) \
149list_for_each_entry(_ss, &_root->subsys_list, sibling)
150
151/* for_each_root() allows you to iterate across the active hierarchies */
152#define for_each_root(_root) \
153list_for_each_entry(_root, &roots, root_list)
154
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155/* the list of cgroups eligible for automatic release. Protected by
156 * release_list_lock */
157static LIST_HEAD(release_list);
158static DEFINE_SPINLOCK(release_list_lock);
159static void cgroup_release_agent(struct work_struct *work);
160static DECLARE_WORK(release_agent_work, cgroup_release_agent);
bd89aabc 161static void check_for_release(struct cgroup *cgrp);
81a6a5cd 162
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163/* Link structure for associating css_set objects with cgroups */
164struct cg_cgroup_link {
165 /*
166 * List running through cg_cgroup_links associated with a
167 * cgroup, anchored on cgroup->css_sets
168 */
bd89aabc 169 struct list_head cgrp_link_list;
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170 /*
171 * List running through cg_cgroup_links pointing at a
172 * single css_set object, anchored on css_set->cg_links
173 */
174 struct list_head cg_link_list;
175 struct css_set *cg;
176};
177
178/* The default css_set - used by init and its children prior to any
179 * hierarchies being mounted. It contains a pointer to the root state
180 * for each subsystem. Also used to anchor the list of css_sets. Not
181 * reference-counted, to improve performance when child cgroups
182 * haven't been created.
183 */
184
185static struct css_set init_css_set;
186static struct cg_cgroup_link init_css_set_link;
187
188/* css_set_lock protects the list of css_set objects, and the
189 * chain of tasks off each css_set. Nests outside task->alloc_lock
190 * due to cgroup_iter_start() */
191static DEFINE_RWLOCK(css_set_lock);
192static int css_set_count;
193
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194/* hash table for cgroup groups. This improves the performance to
195 * find an existing css_set */
196#define CSS_SET_HASH_BITS 7
197#define CSS_SET_TABLE_SIZE (1 << CSS_SET_HASH_BITS)
198static struct hlist_head css_set_table[CSS_SET_TABLE_SIZE];
199
200static struct hlist_head *css_set_hash(struct cgroup_subsys_state *css[])
201{
202 int i;
203 int index;
204 unsigned long tmp = 0UL;
205
206 for (i = 0; i < CGROUP_SUBSYS_COUNT; i++)
207 tmp += (unsigned long)css[i];
208 tmp = (tmp >> 16) ^ tmp;
209
210 index = hash_long(tmp, CSS_SET_HASH_BITS);
211
212 return &css_set_table[index];
213}
214
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215/* We don't maintain the lists running through each css_set to its
216 * task until after the first call to cgroup_iter_start(). This
217 * reduces the fork()/exit() overhead for people who have cgroups
218 * compiled into their kernel but not actually in use */
8947f9d5 219static int use_task_css_set_links __read_mostly;
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220
221/* When we create or destroy a css_set, the operation simply
222 * takes/releases a reference count on all the cgroups referenced
223 * by subsystems in this css_set. This can end up multiple-counting
224 * some cgroups, but that's OK - the ref-count is just a
225 * busy/not-busy indicator; ensuring that we only count each cgroup
226 * once would require taking a global lock to ensure that no
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227 * subsystems moved between hierarchies while we were doing so.
228 *
229 * Possible TODO: decide at boot time based on the number of
230 * registered subsystems and the number of CPUs or NUMA nodes whether
231 * it's better for performance to ref-count every subsystem, or to
232 * take a global lock and only add one ref count to each hierarchy.
233 */
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234
235/*
236 * unlink a css_set from the list and free it
237 */
81a6a5cd 238static void unlink_css_set(struct css_set *cg)
b4f48b63 239{
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240 struct cg_cgroup_link *link;
241 struct cg_cgroup_link *saved_link;
242
472b1053 243 hlist_del(&cg->hlist);
817929ec 244 css_set_count--;
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245
246 list_for_each_entry_safe(link, saved_link, &cg->cg_links,
247 cg_link_list) {
817929ec 248 list_del(&link->cg_link_list);
bd89aabc 249 list_del(&link->cgrp_link_list);
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250 kfree(link);
251 }
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252}
253
146aa1bd 254static void __put_css_set(struct css_set *cg, int taskexit)
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255{
256 int i;
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257 /*
258 * Ensure that the refcount doesn't hit zero while any readers
259 * can see it. Similar to atomic_dec_and_lock(), but for an
260 * rwlock
261 */
262 if (atomic_add_unless(&cg->refcount, -1, 1))
263 return;
264 write_lock(&css_set_lock);
265 if (!atomic_dec_and_test(&cg->refcount)) {
266 write_unlock(&css_set_lock);
267 return;
268 }
81a6a5cd 269 unlink_css_set(cg);
146aa1bd 270 write_unlock(&css_set_lock);
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271
272 rcu_read_lock();
273 for (i = 0; i < CGROUP_SUBSYS_COUNT; i++) {
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274 struct cgroup *cgrp = cg->subsys[i]->cgroup;
275 if (atomic_dec_and_test(&cgrp->count) &&
276 notify_on_release(cgrp)) {
81a6a5cd 277 if (taskexit)
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278 set_bit(CGRP_RELEASABLE, &cgrp->flags);
279 check_for_release(cgrp);
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280 }
281 }
282 rcu_read_unlock();
817929ec 283 kfree(cg);
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284}
285
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286/*
287 * refcounted get/put for css_set objects
288 */
289static inline void get_css_set(struct css_set *cg)
290{
146aa1bd 291 atomic_inc(&cg->refcount);
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292}
293
294static inline void put_css_set(struct css_set *cg)
295{
146aa1bd 296 __put_css_set(cg, 0);
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297}
298
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299static inline void put_css_set_taskexit(struct css_set *cg)
300{
146aa1bd 301 __put_css_set(cg, 1);
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302}
303
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304/*
305 * find_existing_css_set() is a helper for
306 * find_css_set(), and checks to see whether an existing
472b1053 307 * css_set is suitable.
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308 *
309 * oldcg: the cgroup group that we're using before the cgroup
310 * transition
311 *
bd89aabc 312 * cgrp: the cgroup that we're moving into
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313 *
314 * template: location in which to build the desired set of subsystem
315 * state objects for the new cgroup group
316 */
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317static struct css_set *find_existing_css_set(
318 struct css_set *oldcg,
bd89aabc 319 struct cgroup *cgrp,
817929ec 320 struct cgroup_subsys_state *template[])
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321{
322 int i;
bd89aabc 323 struct cgroupfs_root *root = cgrp->root;
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324 struct hlist_head *hhead;
325 struct hlist_node *node;
326 struct css_set *cg;
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327
328 /* Built the set of subsystem state objects that we want to
329 * see in the new css_set */
330 for (i = 0; i < CGROUP_SUBSYS_COUNT; i++) {
8d53d55d 331 if (root->subsys_bits & (1UL << i)) {
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332 /* Subsystem is in this hierarchy. So we want
333 * the subsystem state from the new
334 * cgroup */
bd89aabc 335 template[i] = cgrp->subsys[i];
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336 } else {
337 /* Subsystem is not in this hierarchy, so we
338 * don't want to change the subsystem state */
339 template[i] = oldcg->subsys[i];
340 }
341 }
342
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343 hhead = css_set_hash(template);
344 hlist_for_each_entry(cg, node, hhead, hlist) {
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345 if (!memcmp(template, cg->subsys, sizeof(cg->subsys))) {
346 /* All subsystems matched */
347 return cg;
348 }
472b1053 349 }
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350
351 /* No existing cgroup group matched */
352 return NULL;
353}
354
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355static void free_cg_links(struct list_head *tmp)
356{
357 struct cg_cgroup_link *link;
358 struct cg_cgroup_link *saved_link;
359
360 list_for_each_entry_safe(link, saved_link, tmp, cgrp_link_list) {
361 list_del(&link->cgrp_link_list);
362 kfree(link);
363 }
364}
365
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366/*
367 * allocate_cg_links() allocates "count" cg_cgroup_link structures
bd89aabc 368 * and chains them on tmp through their cgrp_link_list fields. Returns 0 on
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369 * success or a negative error
370 */
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371static int allocate_cg_links(int count, struct list_head *tmp)
372{
373 struct cg_cgroup_link *link;
374 int i;
375 INIT_LIST_HEAD(tmp);
376 for (i = 0; i < count; i++) {
377 link = kmalloc(sizeof(*link), GFP_KERNEL);
378 if (!link) {
36553434 379 free_cg_links(tmp);
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380 return -ENOMEM;
381 }
bd89aabc 382 list_add(&link->cgrp_link_list, tmp);
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383 }
384 return 0;
385}
386
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387/*
388 * find_css_set() takes an existing cgroup group and a
389 * cgroup object, and returns a css_set object that's
390 * equivalent to the old group, but with the given cgroup
391 * substituted into the appropriate hierarchy. Must be called with
392 * cgroup_mutex held
393 */
817929ec 394static struct css_set *find_css_set(
bd89aabc 395 struct css_set *oldcg, struct cgroup *cgrp)
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396{
397 struct css_set *res;
398 struct cgroup_subsys_state *template[CGROUP_SUBSYS_COUNT];
399 int i;
400
401 struct list_head tmp_cg_links;
402 struct cg_cgroup_link *link;
403
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404 struct hlist_head *hhead;
405
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406 /* First see if we already have a cgroup group that matches
407 * the desired set */
7e9abd89 408 read_lock(&css_set_lock);
bd89aabc 409 res = find_existing_css_set(oldcg, cgrp, template);
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410 if (res)
411 get_css_set(res);
7e9abd89 412 read_unlock(&css_set_lock);
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413
414 if (res)
415 return res;
416
417 res = kmalloc(sizeof(*res), GFP_KERNEL);
418 if (!res)
419 return NULL;
420
421 /* Allocate all the cg_cgroup_link objects that we'll need */
422 if (allocate_cg_links(root_count, &tmp_cg_links) < 0) {
423 kfree(res);
424 return NULL;
425 }
426
146aa1bd 427 atomic_set(&res->refcount, 1);
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428 INIT_LIST_HEAD(&res->cg_links);
429 INIT_LIST_HEAD(&res->tasks);
472b1053 430 INIT_HLIST_NODE(&res->hlist);
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431
432 /* Copy the set of subsystem state objects generated in
433 * find_existing_css_set() */
434 memcpy(res->subsys, template, sizeof(res->subsys));
435
436 write_lock(&css_set_lock);
437 /* Add reference counts and links from the new css_set. */
438 for (i = 0; i < CGROUP_SUBSYS_COUNT; i++) {
bd89aabc 439 struct cgroup *cgrp = res->subsys[i]->cgroup;
817929ec 440 struct cgroup_subsys *ss = subsys[i];
bd89aabc 441 atomic_inc(&cgrp->count);
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442 /*
443 * We want to add a link once per cgroup, so we
444 * only do it for the first subsystem in each
445 * hierarchy
446 */
447 if (ss->root->subsys_list.next == &ss->sibling) {
448 BUG_ON(list_empty(&tmp_cg_links));
449 link = list_entry(tmp_cg_links.next,
450 struct cg_cgroup_link,
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451 cgrp_link_list);
452 list_del(&link->cgrp_link_list);
453 list_add(&link->cgrp_link_list, &cgrp->css_sets);
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454 link->cg = res;
455 list_add(&link->cg_link_list, &res->cg_links);
456 }
457 }
458 if (list_empty(&rootnode.subsys_list)) {
459 link = list_entry(tmp_cg_links.next,
460 struct cg_cgroup_link,
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461 cgrp_link_list);
462 list_del(&link->cgrp_link_list);
463 list_add(&link->cgrp_link_list, &dummytop->css_sets);
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464 link->cg = res;
465 list_add(&link->cg_link_list, &res->cg_links);
466 }
467
468 BUG_ON(!list_empty(&tmp_cg_links));
469
817929ec 470 css_set_count++;
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471
472 /* Add this cgroup group to the hash table */
473 hhead = css_set_hash(res->subsys);
474 hlist_add_head(&res->hlist, hhead);
475
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476 write_unlock(&css_set_lock);
477
478 return res;
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479}
480
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481/*
482 * There is one global cgroup mutex. We also require taking
483 * task_lock() when dereferencing a task's cgroup subsys pointers.
484 * See "The task_lock() exception", at the end of this comment.
485 *
486 * A task must hold cgroup_mutex to modify cgroups.
487 *
488 * Any task can increment and decrement the count field without lock.
489 * So in general, code holding cgroup_mutex can't rely on the count
490 * field not changing. However, if the count goes to zero, then only
956db3ca 491 * cgroup_attach_task() can increment it again. Because a count of zero
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492 * means that no tasks are currently attached, therefore there is no
493 * way a task attached to that cgroup can fork (the other way to
494 * increment the count). So code holding cgroup_mutex can safely
495 * assume that if the count is zero, it will stay zero. Similarly, if
496 * a task holds cgroup_mutex on a cgroup with zero count, it
497 * knows that the cgroup won't be removed, as cgroup_rmdir()
498 * needs that mutex.
499 *
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500 * The fork and exit callbacks cgroup_fork() and cgroup_exit(), don't
501 * (usually) take cgroup_mutex. These are the two most performance
502 * critical pieces of code here. The exception occurs on cgroup_exit(),
503 * when a task in a notify_on_release cgroup exits. Then cgroup_mutex
504 * is taken, and if the cgroup count is zero, a usermode call made
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505 * to the release agent with the name of the cgroup (path relative to
506 * the root of cgroup file system) as the argument.
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507 *
508 * A cgroup can only be deleted if both its 'count' of using tasks
509 * is zero, and its list of 'children' cgroups is empty. Since all
510 * tasks in the system use _some_ cgroup, and since there is always at
511 * least one task in the system (init, pid == 1), therefore, top_cgroup
512 * always has either children cgroups and/or using tasks. So we don't
513 * need a special hack to ensure that top_cgroup cannot be deleted.
514 *
515 * The task_lock() exception
516 *
517 * The need for this exception arises from the action of
956db3ca 518 * cgroup_attach_task(), which overwrites one tasks cgroup pointer with
a043e3b2 519 * another. It does so using cgroup_mutex, however there are
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520 * several performance critical places that need to reference
521 * task->cgroup without the expense of grabbing a system global
522 * mutex. Therefore except as noted below, when dereferencing or, as
956db3ca 523 * in cgroup_attach_task(), modifying a task'ss cgroup pointer we use
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524 * task_lock(), which acts on a spinlock (task->alloc_lock) already in
525 * the task_struct routinely used for such matters.
526 *
527 * P.S. One more locking exception. RCU is used to guard the
956db3ca 528 * update of a tasks cgroup pointer by cgroup_attach_task()
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529 */
530
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531/**
532 * cgroup_lock - lock out any changes to cgroup structures
533 *
534 */
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535void cgroup_lock(void)
536{
537 mutex_lock(&cgroup_mutex);
538}
539
540/**
541 * cgroup_unlock - release lock on cgroup changes
542 *
543 * Undo the lock taken in a previous cgroup_lock() call.
544 */
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545void cgroup_unlock(void)
546{
547 mutex_unlock(&cgroup_mutex);
548}
549
550/*
551 * A couple of forward declarations required, due to cyclic reference loop:
552 * cgroup_mkdir -> cgroup_create -> cgroup_populate_dir ->
553 * cgroup_add_file -> cgroup_create_file -> cgroup_dir_inode_operations
554 * -> cgroup_mkdir.
555 */
556
557static int cgroup_mkdir(struct inode *dir, struct dentry *dentry, int mode);
558static int cgroup_rmdir(struct inode *unused_dir, struct dentry *dentry);
bd89aabc 559static int cgroup_populate_dir(struct cgroup *cgrp);
ddbcc7e8 560static struct inode_operations cgroup_dir_inode_operations;
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561static struct file_operations proc_cgroupstats_operations;
562
563static struct backing_dev_info cgroup_backing_dev_info = {
e4ad08fe 564 .capabilities = BDI_CAP_NO_ACCT_AND_WRITEBACK,
a424316c 565};
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566
567static struct inode *cgroup_new_inode(mode_t mode, struct super_block *sb)
568{
569 struct inode *inode = new_inode(sb);
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570
571 if (inode) {
572 inode->i_mode = mode;
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573 inode->i_uid = current_fsuid();
574 inode->i_gid = current_fsgid();
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575 inode->i_atime = inode->i_mtime = inode->i_ctime = CURRENT_TIME;
576 inode->i_mapping->backing_dev_info = &cgroup_backing_dev_info;
577 }
578 return inode;
579}
580
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581/*
582 * Call subsys's pre_destroy handler.
583 * This is called before css refcnt check.
584 */
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585static void cgroup_call_pre_destroy(struct cgroup *cgrp)
586{
587 struct cgroup_subsys *ss;
588 for_each_subsys(cgrp->root, ss)
75139b82 589 if (ss->pre_destroy)
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590 ss->pre_destroy(ss, cgrp);
591 return;
592}
593
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594static void cgroup_diput(struct dentry *dentry, struct inode *inode)
595{
596 /* is dentry a directory ? if so, kfree() associated cgroup */
597 if (S_ISDIR(inode->i_mode)) {
bd89aabc 598 struct cgroup *cgrp = dentry->d_fsdata;
8dc4f3e1 599 struct cgroup_subsys *ss;
bd89aabc 600 BUG_ON(!(cgroup_is_removed(cgrp)));
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601 /* It's possible for external users to be holding css
602 * reference counts on a cgroup; css_put() needs to
603 * be able to access the cgroup after decrementing
604 * the reference count in order to know if it needs to
605 * queue the cgroup to be handled by the release
606 * agent */
607 synchronize_rcu();
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608
609 mutex_lock(&cgroup_mutex);
610 /*
611 * Release the subsystem state objects.
612 */
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613 for_each_subsys(cgrp->root, ss)
614 ss->destroy(ss, cgrp);
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615
616 cgrp->root->number_of_cgroups--;
617 mutex_unlock(&cgroup_mutex);
618
619 /* Drop the active superblock reference that we took when we
620 * created the cgroup */
621 deactivate_super(cgrp->root->sb);
622
bd89aabc 623 kfree(cgrp);
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624 }
625 iput(inode);
626}
627
628static void remove_dir(struct dentry *d)
629{
630 struct dentry *parent = dget(d->d_parent);
631
632 d_delete(d);
633 simple_rmdir(parent->d_inode, d);
634 dput(parent);
635}
636
637static void cgroup_clear_directory(struct dentry *dentry)
638{
639 struct list_head *node;
640
641 BUG_ON(!mutex_is_locked(&dentry->d_inode->i_mutex));
642 spin_lock(&dcache_lock);
643 node = dentry->d_subdirs.next;
644 while (node != &dentry->d_subdirs) {
645 struct dentry *d = list_entry(node, struct dentry, d_u.d_child);
646 list_del_init(node);
647 if (d->d_inode) {
648 /* This should never be called on a cgroup
649 * directory with child cgroups */
650 BUG_ON(d->d_inode->i_mode & S_IFDIR);
651 d = dget_locked(d);
652 spin_unlock(&dcache_lock);
653 d_delete(d);
654 simple_unlink(dentry->d_inode, d);
655 dput(d);
656 spin_lock(&dcache_lock);
657 }
658 node = dentry->d_subdirs.next;
659 }
660 spin_unlock(&dcache_lock);
661}
662
663/*
664 * NOTE : the dentry must have been dget()'ed
665 */
666static void cgroup_d_remove_dir(struct dentry *dentry)
667{
668 cgroup_clear_directory(dentry);
669
670 spin_lock(&dcache_lock);
671 list_del_init(&dentry->d_u.d_child);
672 spin_unlock(&dcache_lock);
673 remove_dir(dentry);
674}
675
676static int rebind_subsystems(struct cgroupfs_root *root,
677 unsigned long final_bits)
678{
679 unsigned long added_bits, removed_bits;
bd89aabc 680 struct cgroup *cgrp = &root->top_cgroup;
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681 int i;
682
683 removed_bits = root->actual_subsys_bits & ~final_bits;
684 added_bits = final_bits & ~root->actual_subsys_bits;
685 /* Check that any added subsystems are currently free */
686 for (i = 0; i < CGROUP_SUBSYS_COUNT; i++) {
8d53d55d 687 unsigned long bit = 1UL << i;
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688 struct cgroup_subsys *ss = subsys[i];
689 if (!(bit & added_bits))
690 continue;
691 if (ss->root != &rootnode) {
692 /* Subsystem isn't free */
693 return -EBUSY;
694 }
695 }
696
697 /* Currently we don't handle adding/removing subsystems when
698 * any child cgroups exist. This is theoretically supportable
699 * but involves complex error handling, so it's being left until
700 * later */
307257cf 701 if (root->number_of_cgroups > 1)
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702 return -EBUSY;
703
704 /* Process each subsystem */
705 for (i = 0; i < CGROUP_SUBSYS_COUNT; i++) {
706 struct cgroup_subsys *ss = subsys[i];
707 unsigned long bit = 1UL << i;
708 if (bit & added_bits) {
709 /* We're binding this subsystem to this hierarchy */
bd89aabc 710 BUG_ON(cgrp->subsys[i]);
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711 BUG_ON(!dummytop->subsys[i]);
712 BUG_ON(dummytop->subsys[i]->cgroup != dummytop);
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713 cgrp->subsys[i] = dummytop->subsys[i];
714 cgrp->subsys[i]->cgroup = cgrp;
ddbcc7e8 715 list_add(&ss->sibling, &root->subsys_list);
b2aa30f7 716 ss->root = root;
ddbcc7e8 717 if (ss->bind)
bd89aabc 718 ss->bind(ss, cgrp);
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719
720 } else if (bit & removed_bits) {
721 /* We're removing this subsystem */
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722 BUG_ON(cgrp->subsys[i] != dummytop->subsys[i]);
723 BUG_ON(cgrp->subsys[i]->cgroup != cgrp);
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724 if (ss->bind)
725 ss->bind(ss, dummytop);
726 dummytop->subsys[i]->cgroup = dummytop;
bd89aabc 727 cgrp->subsys[i] = NULL;
b2aa30f7 728 subsys[i]->root = &rootnode;
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729 list_del(&ss->sibling);
730 } else if (bit & final_bits) {
731 /* Subsystem state should already exist */
bd89aabc 732 BUG_ON(!cgrp->subsys[i]);
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733 } else {
734 /* Subsystem state shouldn't exist */
bd89aabc 735 BUG_ON(cgrp->subsys[i]);
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736 }
737 }
738 root->subsys_bits = root->actual_subsys_bits = final_bits;
739 synchronize_rcu();
740
741 return 0;
742}
743
744static int cgroup_show_options(struct seq_file *seq, struct vfsmount *vfs)
745{
746 struct cgroupfs_root *root = vfs->mnt_sb->s_fs_info;
747 struct cgroup_subsys *ss;
748
749 mutex_lock(&cgroup_mutex);
750 for_each_subsys(root, ss)
751 seq_printf(seq, ",%s", ss->name);
752 if (test_bit(ROOT_NOPREFIX, &root->flags))
753 seq_puts(seq, ",noprefix");
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754 if (strlen(root->release_agent_path))
755 seq_printf(seq, ",release_agent=%s", root->release_agent_path);
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756 mutex_unlock(&cgroup_mutex);
757 return 0;
758}
759
760struct cgroup_sb_opts {
761 unsigned long subsys_bits;
762 unsigned long flags;
81a6a5cd 763 char *release_agent;
ddbcc7e8
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764};
765
766/* Convert a hierarchy specifier into a bitmask of subsystems and
767 * flags. */
768static int parse_cgroupfs_options(char *data,
769 struct cgroup_sb_opts *opts)
770{
771 char *token, *o = data ?: "all";
772
773 opts->subsys_bits = 0;
774 opts->flags = 0;
81a6a5cd 775 opts->release_agent = NULL;
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776
777 while ((token = strsep(&o, ",")) != NULL) {
778 if (!*token)
779 return -EINVAL;
780 if (!strcmp(token, "all")) {
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781 /* Add all non-disabled subsystems */
782 int i;
783 opts->subsys_bits = 0;
784 for (i = 0; i < CGROUP_SUBSYS_COUNT; i++) {
785 struct cgroup_subsys *ss = subsys[i];
786 if (!ss->disabled)
787 opts->subsys_bits |= 1ul << i;
788 }
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789 } else if (!strcmp(token, "noprefix")) {
790 set_bit(ROOT_NOPREFIX, &opts->flags);
81a6a5cd
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791 } else if (!strncmp(token, "release_agent=", 14)) {
792 /* Specifying two release agents is forbidden */
793 if (opts->release_agent)
794 return -EINVAL;
795 opts->release_agent = kzalloc(PATH_MAX, GFP_KERNEL);
796 if (!opts->release_agent)
797 return -ENOMEM;
798 strncpy(opts->release_agent, token + 14, PATH_MAX - 1);
799 opts->release_agent[PATH_MAX - 1] = 0;
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800 } else {
801 struct cgroup_subsys *ss;
802 int i;
803 for (i = 0; i < CGROUP_SUBSYS_COUNT; i++) {
804 ss = subsys[i];
805 if (!strcmp(token, ss->name)) {
8bab8dde
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806 if (!ss->disabled)
807 set_bit(i, &opts->subsys_bits);
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808 break;
809 }
810 }
811 if (i == CGROUP_SUBSYS_COUNT)
812 return -ENOENT;
813 }
814 }
815
816 /* We can't have an empty hierarchy */
817 if (!opts->subsys_bits)
818 return -EINVAL;
819
820 return 0;
821}
822
823static int cgroup_remount(struct super_block *sb, int *flags, char *data)
824{
825 int ret = 0;
826 struct cgroupfs_root *root = sb->s_fs_info;
bd89aabc 827 struct cgroup *cgrp = &root->top_cgroup;
ddbcc7e8
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828 struct cgroup_sb_opts opts;
829
bd89aabc 830 mutex_lock(&cgrp->dentry->d_inode->i_mutex);
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831 mutex_lock(&cgroup_mutex);
832
833 /* See what subsystems are wanted */
834 ret = parse_cgroupfs_options(data, &opts);
835 if (ret)
836 goto out_unlock;
837
838 /* Don't allow flags to change at remount */
839 if (opts.flags != root->flags) {
840 ret = -EINVAL;
841 goto out_unlock;
842 }
843
844 ret = rebind_subsystems(root, opts.subsys_bits);
845
846 /* (re)populate subsystem files */
847 if (!ret)
bd89aabc 848 cgroup_populate_dir(cgrp);
ddbcc7e8 849
81a6a5cd
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850 if (opts.release_agent)
851 strcpy(root->release_agent_path, opts.release_agent);
ddbcc7e8 852 out_unlock:
81a6a5cd
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853 if (opts.release_agent)
854 kfree(opts.release_agent);
ddbcc7e8 855 mutex_unlock(&cgroup_mutex);
bd89aabc 856 mutex_unlock(&cgrp->dentry->d_inode->i_mutex);
ddbcc7e8
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857 return ret;
858}
859
860static struct super_operations cgroup_ops = {
861 .statfs = simple_statfs,
862 .drop_inode = generic_delete_inode,
863 .show_options = cgroup_show_options,
864 .remount_fs = cgroup_remount,
865};
866
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867static void init_cgroup_housekeeping(struct cgroup *cgrp)
868{
869 INIT_LIST_HEAD(&cgrp->sibling);
870 INIT_LIST_HEAD(&cgrp->children);
871 INIT_LIST_HEAD(&cgrp->css_sets);
872 INIT_LIST_HEAD(&cgrp->release_list);
873 init_rwsem(&cgrp->pids_mutex);
874}
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875static void init_cgroup_root(struct cgroupfs_root *root)
876{
bd89aabc 877 struct cgroup *cgrp = &root->top_cgroup;
ddbcc7e8
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878 INIT_LIST_HEAD(&root->subsys_list);
879 INIT_LIST_HEAD(&root->root_list);
880 root->number_of_cgroups = 1;
bd89aabc
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881 cgrp->root = root;
882 cgrp->top_cgroup = cgrp;
cc31edce 883 init_cgroup_housekeeping(cgrp);
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884}
885
886static int cgroup_test_super(struct super_block *sb, void *data)
887{
888 struct cgroupfs_root *new = data;
889 struct cgroupfs_root *root = sb->s_fs_info;
890
891 /* First check subsystems */
892 if (new->subsys_bits != root->subsys_bits)
893 return 0;
894
895 /* Next check flags */
896 if (new->flags != root->flags)
897 return 0;
898
899 return 1;
900}
901
902static int cgroup_set_super(struct super_block *sb, void *data)
903{
904 int ret;
905 struct cgroupfs_root *root = data;
906
907 ret = set_anon_super(sb, NULL);
908 if (ret)
909 return ret;
910
911 sb->s_fs_info = root;
912 root->sb = sb;
913
914 sb->s_blocksize = PAGE_CACHE_SIZE;
915 sb->s_blocksize_bits = PAGE_CACHE_SHIFT;
916 sb->s_magic = CGROUP_SUPER_MAGIC;
917 sb->s_op = &cgroup_ops;
918
919 return 0;
920}
921
922static int cgroup_get_rootdir(struct super_block *sb)
923{
924 struct inode *inode =
925 cgroup_new_inode(S_IFDIR | S_IRUGO | S_IXUGO | S_IWUSR, sb);
926 struct dentry *dentry;
927
928 if (!inode)
929 return -ENOMEM;
930
ddbcc7e8
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931 inode->i_fop = &simple_dir_operations;
932 inode->i_op = &cgroup_dir_inode_operations;
933 /* directories start off with i_nlink == 2 (for "." entry) */
934 inc_nlink(inode);
935 dentry = d_alloc_root(inode);
936 if (!dentry) {
937 iput(inode);
938 return -ENOMEM;
939 }
940 sb->s_root = dentry;
941 return 0;
942}
943
944static int cgroup_get_sb(struct file_system_type *fs_type,
945 int flags, const char *unused_dev_name,
946 void *data, struct vfsmount *mnt)
947{
948 struct cgroup_sb_opts opts;
949 int ret = 0;
950 struct super_block *sb;
951 struct cgroupfs_root *root;
28fd5dfc 952 struct list_head tmp_cg_links;
ddbcc7e8
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953
954 /* First find the desired set of subsystems */
955 ret = parse_cgroupfs_options(data, &opts);
81a6a5cd
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956 if (ret) {
957 if (opts.release_agent)
958 kfree(opts.release_agent);
ddbcc7e8 959 return ret;
81a6a5cd 960 }
ddbcc7e8
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961
962 root = kzalloc(sizeof(*root), GFP_KERNEL);
f7770738
LZ
963 if (!root) {
964 if (opts.release_agent)
965 kfree(opts.release_agent);
ddbcc7e8 966 return -ENOMEM;
f7770738 967 }
ddbcc7e8
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968
969 init_cgroup_root(root);
970 root->subsys_bits = opts.subsys_bits;
971 root->flags = opts.flags;
81a6a5cd
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972 if (opts.release_agent) {
973 strcpy(root->release_agent_path, opts.release_agent);
974 kfree(opts.release_agent);
975 }
ddbcc7e8
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976
977 sb = sget(fs_type, cgroup_test_super, cgroup_set_super, root);
978
979 if (IS_ERR(sb)) {
980 kfree(root);
981 return PTR_ERR(sb);
982 }
983
984 if (sb->s_fs_info != root) {
985 /* Reusing an existing superblock */
986 BUG_ON(sb->s_root == NULL);
987 kfree(root);
988 root = NULL;
989 } else {
990 /* New superblock */
bd89aabc 991 struct cgroup *cgrp = &root->top_cgroup;
817929ec 992 struct inode *inode;
28fd5dfc 993 int i;
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994
995 BUG_ON(sb->s_root != NULL);
996
997 ret = cgroup_get_rootdir(sb);
998 if (ret)
999 goto drop_new_super;
817929ec 1000 inode = sb->s_root->d_inode;
ddbcc7e8 1001
817929ec 1002 mutex_lock(&inode->i_mutex);
ddbcc7e8
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1003 mutex_lock(&cgroup_mutex);
1004
817929ec
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1005 /*
1006 * We're accessing css_set_count without locking
1007 * css_set_lock here, but that's OK - it can only be
1008 * increased by someone holding cgroup_lock, and
1009 * that's us. The worst that can happen is that we
1010 * have some link structures left over
1011 */
1012 ret = allocate_cg_links(css_set_count, &tmp_cg_links);
1013 if (ret) {
1014 mutex_unlock(&cgroup_mutex);
1015 mutex_unlock(&inode->i_mutex);
1016 goto drop_new_super;
1017 }
1018
ddbcc7e8
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1019 ret = rebind_subsystems(root, root->subsys_bits);
1020 if (ret == -EBUSY) {
1021 mutex_unlock(&cgroup_mutex);
817929ec 1022 mutex_unlock(&inode->i_mutex);
20ca9b3f 1023 goto free_cg_links;
ddbcc7e8
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1024 }
1025
1026 /* EBUSY should be the only error here */
1027 BUG_ON(ret);
1028
1029 list_add(&root->root_list, &roots);
817929ec 1030 root_count++;
ddbcc7e8
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1031
1032 sb->s_root->d_fsdata = &root->top_cgroup;
1033 root->top_cgroup.dentry = sb->s_root;
1034
817929ec
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1035 /* Link the top cgroup in this hierarchy into all
1036 * the css_set objects */
1037 write_lock(&css_set_lock);
28fd5dfc
LZ
1038 for (i = 0; i < CSS_SET_TABLE_SIZE; i++) {
1039 struct hlist_head *hhead = &css_set_table[i];
1040 struct hlist_node *node;
817929ec 1041 struct css_set *cg;
28fd5dfc
LZ
1042
1043 hlist_for_each_entry(cg, node, hhead, hlist) {
1044 struct cg_cgroup_link *link;
1045
1046 BUG_ON(list_empty(&tmp_cg_links));
1047 link = list_entry(tmp_cg_links.next,
1048 struct cg_cgroup_link,
1049 cgrp_link_list);
1050 list_del(&link->cgrp_link_list);
1051 link->cg = cg;
1052 list_add(&link->cgrp_link_list,
1053 &root->top_cgroup.css_sets);
1054 list_add(&link->cg_link_list, &cg->cg_links);
1055 }
1056 }
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1057 write_unlock(&css_set_lock);
1058
1059 free_cg_links(&tmp_cg_links);
1060
bd89aabc
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1061 BUG_ON(!list_empty(&cgrp->sibling));
1062 BUG_ON(!list_empty(&cgrp->children));
ddbcc7e8
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1063 BUG_ON(root->number_of_cgroups != 1);
1064
bd89aabc 1065 cgroup_populate_dir(cgrp);
817929ec 1066 mutex_unlock(&inode->i_mutex);
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1067 mutex_unlock(&cgroup_mutex);
1068 }
1069
1070 return simple_set_mnt(mnt, sb);
1071
20ca9b3f
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1072 free_cg_links:
1073 free_cg_links(&tmp_cg_links);
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1074 drop_new_super:
1075 up_write(&sb->s_umount);
1076 deactivate_super(sb);
1077 return ret;
1078}
1079
1080static void cgroup_kill_sb(struct super_block *sb) {
1081 struct cgroupfs_root *root = sb->s_fs_info;
bd89aabc 1082 struct cgroup *cgrp = &root->top_cgroup;
ddbcc7e8 1083 int ret;
71cbb949
KM
1084 struct cg_cgroup_link *link;
1085 struct cg_cgroup_link *saved_link;
ddbcc7e8
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1086
1087 BUG_ON(!root);
1088
1089 BUG_ON(root->number_of_cgroups != 1);
bd89aabc
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1090 BUG_ON(!list_empty(&cgrp->children));
1091 BUG_ON(!list_empty(&cgrp->sibling));
ddbcc7e8
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1092
1093 mutex_lock(&cgroup_mutex);
1094
1095 /* Rebind all subsystems back to the default hierarchy */
1096 ret = rebind_subsystems(root, 0);
1097 /* Shouldn't be able to fail ... */
1098 BUG_ON(ret);
1099
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1100 /*
1101 * Release all the links from css_sets to this hierarchy's
1102 * root cgroup
1103 */
1104 write_lock(&css_set_lock);
71cbb949
KM
1105
1106 list_for_each_entry_safe(link, saved_link, &cgrp->css_sets,
1107 cgrp_link_list) {
817929ec 1108 list_del(&link->cg_link_list);
bd89aabc 1109 list_del(&link->cgrp_link_list);
817929ec
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1110 kfree(link);
1111 }
1112 write_unlock(&css_set_lock);
1113
1114 if (!list_empty(&root->root_list)) {
ddbcc7e8 1115 list_del(&root->root_list);
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1116 root_count--;
1117 }
ddbcc7e8
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1118 mutex_unlock(&cgroup_mutex);
1119
1120 kfree(root);
1121 kill_litter_super(sb);
1122}
1123
1124static struct file_system_type cgroup_fs_type = {
1125 .name = "cgroup",
1126 .get_sb = cgroup_get_sb,
1127 .kill_sb = cgroup_kill_sb,
1128};
1129
bd89aabc 1130static inline struct cgroup *__d_cgrp(struct dentry *dentry)
ddbcc7e8
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1131{
1132 return dentry->d_fsdata;
1133}
1134
1135static inline struct cftype *__d_cft(struct dentry *dentry)
1136{
1137 return dentry->d_fsdata;
1138}
1139
a043e3b2
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1140/**
1141 * cgroup_path - generate the path of a cgroup
1142 * @cgrp: the cgroup in question
1143 * @buf: the buffer to write the path into
1144 * @buflen: the length of the buffer
1145 *
1146 * Called with cgroup_mutex held. Writes path of cgroup into buf.
ddbcc7e8
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1147 * Returns 0 on success, -errno on error.
1148 */
bd89aabc 1149int cgroup_path(const struct cgroup *cgrp, char *buf, int buflen)
ddbcc7e8
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1150{
1151 char *start;
1152
bd89aabc 1153 if (cgrp == dummytop) {
ddbcc7e8
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1154 /*
1155 * Inactive subsystems have no dentry for their root
1156 * cgroup
1157 */
1158 strcpy(buf, "/");
1159 return 0;
1160 }
1161
1162 start = buf + buflen;
1163
1164 *--start = '\0';
1165 for (;;) {
bd89aabc 1166 int len = cgrp->dentry->d_name.len;
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1167 if ((start -= len) < buf)
1168 return -ENAMETOOLONG;
bd89aabc
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1169 memcpy(start, cgrp->dentry->d_name.name, len);
1170 cgrp = cgrp->parent;
1171 if (!cgrp)
ddbcc7e8 1172 break;
bd89aabc 1173 if (!cgrp->parent)
ddbcc7e8
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1174 continue;
1175 if (--start < buf)
1176 return -ENAMETOOLONG;
1177 *start = '/';
1178 }
1179 memmove(buf, start, buf + buflen - start);
1180 return 0;
1181}
1182
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1183/*
1184 * Return the first subsystem attached to a cgroup's hierarchy, and
1185 * its subsystem id.
1186 */
1187
bd89aabc 1188static void get_first_subsys(const struct cgroup *cgrp,
bbcb81d0
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1189 struct cgroup_subsys_state **css, int *subsys_id)
1190{
bd89aabc 1191 const struct cgroupfs_root *root = cgrp->root;
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1192 const struct cgroup_subsys *test_ss;
1193 BUG_ON(list_empty(&root->subsys_list));
1194 test_ss = list_entry(root->subsys_list.next,
1195 struct cgroup_subsys, sibling);
1196 if (css) {
bd89aabc 1197 *css = cgrp->subsys[test_ss->subsys_id];
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1198 BUG_ON(!*css);
1199 }
1200 if (subsys_id)
1201 *subsys_id = test_ss->subsys_id;
1202}
1203
a043e3b2
LZ
1204/**
1205 * cgroup_attach_task - attach task 'tsk' to cgroup 'cgrp'
1206 * @cgrp: the cgroup the task is attaching to
1207 * @tsk: the task to be attached
bbcb81d0 1208 *
a043e3b2
LZ
1209 * Call holding cgroup_mutex. May take task_lock of
1210 * the task 'tsk' during call.
bbcb81d0 1211 */
956db3ca 1212int cgroup_attach_task(struct cgroup *cgrp, struct task_struct *tsk)
bbcb81d0
PM
1213{
1214 int retval = 0;
1215 struct cgroup_subsys *ss;
bd89aabc 1216 struct cgroup *oldcgrp;
817929ec
PM
1217 struct css_set *cg = tsk->cgroups;
1218 struct css_set *newcg;
bd89aabc 1219 struct cgroupfs_root *root = cgrp->root;
bbcb81d0
PM
1220 int subsys_id;
1221
bd89aabc 1222 get_first_subsys(cgrp, NULL, &subsys_id);
bbcb81d0
PM
1223
1224 /* Nothing to do if the task is already in that cgroup */
bd89aabc
PM
1225 oldcgrp = task_cgroup(tsk, subsys_id);
1226 if (cgrp == oldcgrp)
bbcb81d0
PM
1227 return 0;
1228
1229 for_each_subsys(root, ss) {
1230 if (ss->can_attach) {
bd89aabc 1231 retval = ss->can_attach(ss, cgrp, tsk);
e18f6318 1232 if (retval)
bbcb81d0 1233 return retval;
bbcb81d0
PM
1234 }
1235 }
1236
817929ec
PM
1237 /*
1238 * Locate or allocate a new css_set for this task,
1239 * based on its final set of cgroups
1240 */
bd89aabc 1241 newcg = find_css_set(cg, cgrp);
e18f6318 1242 if (!newcg)
817929ec 1243 return -ENOMEM;
817929ec 1244
bbcb81d0
PM
1245 task_lock(tsk);
1246 if (tsk->flags & PF_EXITING) {
1247 task_unlock(tsk);
817929ec 1248 put_css_set(newcg);
bbcb81d0
PM
1249 return -ESRCH;
1250 }
817929ec 1251 rcu_assign_pointer(tsk->cgroups, newcg);
bbcb81d0
PM
1252 task_unlock(tsk);
1253
817929ec
PM
1254 /* Update the css_set linked lists if we're using them */
1255 write_lock(&css_set_lock);
1256 if (!list_empty(&tsk->cg_list)) {
1257 list_del(&tsk->cg_list);
1258 list_add(&tsk->cg_list, &newcg->tasks);
1259 }
1260 write_unlock(&css_set_lock);
1261
bbcb81d0 1262 for_each_subsys(root, ss) {
e18f6318 1263 if (ss->attach)
bd89aabc 1264 ss->attach(ss, cgrp, oldcgrp, tsk);
bbcb81d0 1265 }
bd89aabc 1266 set_bit(CGRP_RELEASABLE, &oldcgrp->flags);
bbcb81d0 1267 synchronize_rcu();
817929ec 1268 put_css_set(cg);
bbcb81d0
PM
1269 return 0;
1270}
1271
1272/*
af351026
PM
1273 * Attach task with pid 'pid' to cgroup 'cgrp'. Call with cgroup_mutex
1274 * held. May take task_lock of task
bbcb81d0 1275 */
af351026 1276static int attach_task_by_pid(struct cgroup *cgrp, u64 pid)
bbcb81d0 1277{
bbcb81d0 1278 struct task_struct *tsk;
c69e8d9c 1279 const struct cred *cred = current_cred(), *tcred;
bbcb81d0
PM
1280 int ret;
1281
bbcb81d0
PM
1282 if (pid) {
1283 rcu_read_lock();
73507f33 1284 tsk = find_task_by_vpid(pid);
bbcb81d0
PM
1285 if (!tsk || tsk->flags & PF_EXITING) {
1286 rcu_read_unlock();
1287 return -ESRCH;
1288 }
bbcb81d0 1289
c69e8d9c
DH
1290 tcred = __task_cred(tsk);
1291 if (cred->euid &&
1292 cred->euid != tcred->uid &&
1293 cred->euid != tcred->suid) {
1294 rcu_read_unlock();
bbcb81d0
PM
1295 return -EACCES;
1296 }
c69e8d9c
DH
1297 get_task_struct(tsk);
1298 rcu_read_unlock();
bbcb81d0
PM
1299 } else {
1300 tsk = current;
1301 get_task_struct(tsk);
1302 }
1303
956db3ca 1304 ret = cgroup_attach_task(cgrp, tsk);
bbcb81d0
PM
1305 put_task_struct(tsk);
1306 return ret;
1307}
1308
af351026
PM
1309static int cgroup_tasks_write(struct cgroup *cgrp, struct cftype *cft, u64 pid)
1310{
1311 int ret;
1312 if (!cgroup_lock_live_group(cgrp))
1313 return -ENODEV;
1314 ret = attach_task_by_pid(cgrp, pid);
1315 cgroup_unlock();
1316 return ret;
1317}
1318
ddbcc7e8 1319/* The various types of files and directories in a cgroup file system */
ddbcc7e8
PM
1320enum cgroup_filetype {
1321 FILE_ROOT,
1322 FILE_DIR,
1323 FILE_TASKLIST,
81a6a5cd 1324 FILE_NOTIFY_ON_RELEASE,
81a6a5cd 1325 FILE_RELEASE_AGENT,
ddbcc7e8
PM
1326};
1327
e788e066
PM
1328/**
1329 * cgroup_lock_live_group - take cgroup_mutex and check that cgrp is alive.
1330 * @cgrp: the cgroup to be checked for liveness
1331 *
84eea842
PM
1332 * On success, returns true; the lock should be later released with
1333 * cgroup_unlock(). On failure returns false with no lock held.
e788e066 1334 */
84eea842 1335bool cgroup_lock_live_group(struct cgroup *cgrp)
e788e066
PM
1336{
1337 mutex_lock(&cgroup_mutex);
1338 if (cgroup_is_removed(cgrp)) {
1339 mutex_unlock(&cgroup_mutex);
1340 return false;
1341 }
1342 return true;
1343}
1344
1345static int cgroup_release_agent_write(struct cgroup *cgrp, struct cftype *cft,
1346 const char *buffer)
1347{
1348 BUILD_BUG_ON(sizeof(cgrp->root->release_agent_path) < PATH_MAX);
1349 if (!cgroup_lock_live_group(cgrp))
1350 return -ENODEV;
1351 strcpy(cgrp->root->release_agent_path, buffer);
84eea842 1352 cgroup_unlock();
e788e066
PM
1353 return 0;
1354}
1355
1356static int cgroup_release_agent_show(struct cgroup *cgrp, struct cftype *cft,
1357 struct seq_file *seq)
1358{
1359 if (!cgroup_lock_live_group(cgrp))
1360 return -ENODEV;
1361 seq_puts(seq, cgrp->root->release_agent_path);
1362 seq_putc(seq, '\n');
84eea842 1363 cgroup_unlock();
e788e066
PM
1364 return 0;
1365}
1366
84eea842
PM
1367/* A buffer size big enough for numbers or short strings */
1368#define CGROUP_LOCAL_BUFFER_SIZE 64
1369
e73d2c61 1370static ssize_t cgroup_write_X64(struct cgroup *cgrp, struct cftype *cft,
f4c753b7
PM
1371 struct file *file,
1372 const char __user *userbuf,
1373 size_t nbytes, loff_t *unused_ppos)
355e0c48 1374{
84eea842 1375 char buffer[CGROUP_LOCAL_BUFFER_SIZE];
355e0c48 1376 int retval = 0;
355e0c48
PM
1377 char *end;
1378
1379 if (!nbytes)
1380 return -EINVAL;
1381 if (nbytes >= sizeof(buffer))
1382 return -E2BIG;
1383 if (copy_from_user(buffer, userbuf, nbytes))
1384 return -EFAULT;
1385
1386 buffer[nbytes] = 0; /* nul-terminate */
b7269dfc 1387 strstrip(buffer);
e73d2c61
PM
1388 if (cft->write_u64) {
1389 u64 val = simple_strtoull(buffer, &end, 0);
1390 if (*end)
1391 return -EINVAL;
1392 retval = cft->write_u64(cgrp, cft, val);
1393 } else {
1394 s64 val = simple_strtoll(buffer, &end, 0);
1395 if (*end)
1396 return -EINVAL;
1397 retval = cft->write_s64(cgrp, cft, val);
1398 }
355e0c48
PM
1399 if (!retval)
1400 retval = nbytes;
1401 return retval;
1402}
1403
db3b1497
PM
1404static ssize_t cgroup_write_string(struct cgroup *cgrp, struct cftype *cft,
1405 struct file *file,
1406 const char __user *userbuf,
1407 size_t nbytes, loff_t *unused_ppos)
1408{
84eea842 1409 char local_buffer[CGROUP_LOCAL_BUFFER_SIZE];
db3b1497
PM
1410 int retval = 0;
1411 size_t max_bytes = cft->max_write_len;
1412 char *buffer = local_buffer;
1413
1414 if (!max_bytes)
1415 max_bytes = sizeof(local_buffer) - 1;
1416 if (nbytes >= max_bytes)
1417 return -E2BIG;
1418 /* Allocate a dynamic buffer if we need one */
1419 if (nbytes >= sizeof(local_buffer)) {
1420 buffer = kmalloc(nbytes + 1, GFP_KERNEL);
1421 if (buffer == NULL)
1422 return -ENOMEM;
1423 }
5a3eb9f6
LZ
1424 if (nbytes && copy_from_user(buffer, userbuf, nbytes)) {
1425 retval = -EFAULT;
1426 goto out;
1427 }
db3b1497
PM
1428
1429 buffer[nbytes] = 0; /* nul-terminate */
1430 strstrip(buffer);
1431 retval = cft->write_string(cgrp, cft, buffer);
1432 if (!retval)
1433 retval = nbytes;
5a3eb9f6 1434out:
db3b1497
PM
1435 if (buffer != local_buffer)
1436 kfree(buffer);
1437 return retval;
1438}
1439
ddbcc7e8
PM
1440static ssize_t cgroup_file_write(struct file *file, const char __user *buf,
1441 size_t nbytes, loff_t *ppos)
1442{
1443 struct cftype *cft = __d_cft(file->f_dentry);
bd89aabc 1444 struct cgroup *cgrp = __d_cgrp(file->f_dentry->d_parent);
ddbcc7e8 1445
75139b82 1446 if (cgroup_is_removed(cgrp))
ddbcc7e8 1447 return -ENODEV;
355e0c48 1448 if (cft->write)
bd89aabc 1449 return cft->write(cgrp, cft, file, buf, nbytes, ppos);
e73d2c61
PM
1450 if (cft->write_u64 || cft->write_s64)
1451 return cgroup_write_X64(cgrp, cft, file, buf, nbytes, ppos);
db3b1497
PM
1452 if (cft->write_string)
1453 return cgroup_write_string(cgrp, cft, file, buf, nbytes, ppos);
d447ea2f
PE
1454 if (cft->trigger) {
1455 int ret = cft->trigger(cgrp, (unsigned int)cft->private);
1456 return ret ? ret : nbytes;
1457 }
355e0c48 1458 return -EINVAL;
ddbcc7e8
PM
1459}
1460
f4c753b7
PM
1461static ssize_t cgroup_read_u64(struct cgroup *cgrp, struct cftype *cft,
1462 struct file *file,
1463 char __user *buf, size_t nbytes,
1464 loff_t *ppos)
ddbcc7e8 1465{
84eea842 1466 char tmp[CGROUP_LOCAL_BUFFER_SIZE];
f4c753b7 1467 u64 val = cft->read_u64(cgrp, cft);
ddbcc7e8
PM
1468 int len = sprintf(tmp, "%llu\n", (unsigned long long) val);
1469
1470 return simple_read_from_buffer(buf, nbytes, ppos, tmp, len);
1471}
1472
e73d2c61
PM
1473static ssize_t cgroup_read_s64(struct cgroup *cgrp, struct cftype *cft,
1474 struct file *file,
1475 char __user *buf, size_t nbytes,
1476 loff_t *ppos)
1477{
84eea842 1478 char tmp[CGROUP_LOCAL_BUFFER_SIZE];
e73d2c61
PM
1479 s64 val = cft->read_s64(cgrp, cft);
1480 int len = sprintf(tmp, "%lld\n", (long long) val);
1481
1482 return simple_read_from_buffer(buf, nbytes, ppos, tmp, len);
1483}
1484
ddbcc7e8
PM
1485static ssize_t cgroup_file_read(struct file *file, char __user *buf,
1486 size_t nbytes, loff_t *ppos)
1487{
1488 struct cftype *cft = __d_cft(file->f_dentry);
bd89aabc 1489 struct cgroup *cgrp = __d_cgrp(file->f_dentry->d_parent);
ddbcc7e8 1490
75139b82 1491 if (cgroup_is_removed(cgrp))
ddbcc7e8
PM
1492 return -ENODEV;
1493
1494 if (cft->read)
bd89aabc 1495 return cft->read(cgrp, cft, file, buf, nbytes, ppos);
f4c753b7
PM
1496 if (cft->read_u64)
1497 return cgroup_read_u64(cgrp, cft, file, buf, nbytes, ppos);
e73d2c61
PM
1498 if (cft->read_s64)
1499 return cgroup_read_s64(cgrp, cft, file, buf, nbytes, ppos);
ddbcc7e8
PM
1500 return -EINVAL;
1501}
1502
91796569
PM
1503/*
1504 * seqfile ops/methods for returning structured data. Currently just
1505 * supports string->u64 maps, but can be extended in future.
1506 */
1507
1508struct cgroup_seqfile_state {
1509 struct cftype *cft;
1510 struct cgroup *cgroup;
1511};
1512
1513static int cgroup_map_add(struct cgroup_map_cb *cb, const char *key, u64 value)
1514{
1515 struct seq_file *sf = cb->state;
1516 return seq_printf(sf, "%s %llu\n", key, (unsigned long long)value);
1517}
1518
1519static int cgroup_seqfile_show(struct seq_file *m, void *arg)
1520{
1521 struct cgroup_seqfile_state *state = m->private;
1522 struct cftype *cft = state->cft;
29486df3
SH
1523 if (cft->read_map) {
1524 struct cgroup_map_cb cb = {
1525 .fill = cgroup_map_add,
1526 .state = m,
1527 };
1528 return cft->read_map(state->cgroup, cft, &cb);
1529 }
1530 return cft->read_seq_string(state->cgroup, cft, m);
91796569
PM
1531}
1532
96930a63 1533static int cgroup_seqfile_release(struct inode *inode, struct file *file)
91796569
PM
1534{
1535 struct seq_file *seq = file->private_data;
1536 kfree(seq->private);
1537 return single_release(inode, file);
1538}
1539
1540static struct file_operations cgroup_seqfile_operations = {
1541 .read = seq_read,
e788e066 1542 .write = cgroup_file_write,
91796569
PM
1543 .llseek = seq_lseek,
1544 .release = cgroup_seqfile_release,
1545};
1546
ddbcc7e8
PM
1547static int cgroup_file_open(struct inode *inode, struct file *file)
1548{
1549 int err;
1550 struct cftype *cft;
1551
1552 err = generic_file_open(inode, file);
1553 if (err)
1554 return err;
ddbcc7e8 1555 cft = __d_cft(file->f_dentry);
75139b82 1556
29486df3 1557 if (cft->read_map || cft->read_seq_string) {
91796569
PM
1558 struct cgroup_seqfile_state *state =
1559 kzalloc(sizeof(*state), GFP_USER);
1560 if (!state)
1561 return -ENOMEM;
1562 state->cft = cft;
1563 state->cgroup = __d_cgrp(file->f_dentry->d_parent);
1564 file->f_op = &cgroup_seqfile_operations;
1565 err = single_open(file, cgroup_seqfile_show, state);
1566 if (err < 0)
1567 kfree(state);
1568 } else if (cft->open)
ddbcc7e8
PM
1569 err = cft->open(inode, file);
1570 else
1571 err = 0;
1572
1573 return err;
1574}
1575
1576static int cgroup_file_release(struct inode *inode, struct file *file)
1577{
1578 struct cftype *cft = __d_cft(file->f_dentry);
1579 if (cft->release)
1580 return cft->release(inode, file);
1581 return 0;
1582}
1583
1584/*
1585 * cgroup_rename - Only allow simple rename of directories in place.
1586 */
1587static int cgroup_rename(struct inode *old_dir, struct dentry *old_dentry,
1588 struct inode *new_dir, struct dentry *new_dentry)
1589{
1590 if (!S_ISDIR(old_dentry->d_inode->i_mode))
1591 return -ENOTDIR;
1592 if (new_dentry->d_inode)
1593 return -EEXIST;
1594 if (old_dir != new_dir)
1595 return -EIO;
1596 return simple_rename(old_dir, old_dentry, new_dir, new_dentry);
1597}
1598
1599static struct file_operations cgroup_file_operations = {
1600 .read = cgroup_file_read,
1601 .write = cgroup_file_write,
1602 .llseek = generic_file_llseek,
1603 .open = cgroup_file_open,
1604 .release = cgroup_file_release,
1605};
1606
1607static struct inode_operations cgroup_dir_inode_operations = {
1608 .lookup = simple_lookup,
1609 .mkdir = cgroup_mkdir,
1610 .rmdir = cgroup_rmdir,
1611 .rename = cgroup_rename,
1612};
1613
1614static int cgroup_create_file(struct dentry *dentry, int mode,
1615 struct super_block *sb)
1616{
1617 static struct dentry_operations cgroup_dops = {
1618 .d_iput = cgroup_diput,
1619 };
1620
1621 struct inode *inode;
1622
1623 if (!dentry)
1624 return -ENOENT;
1625 if (dentry->d_inode)
1626 return -EEXIST;
1627
1628 inode = cgroup_new_inode(mode, sb);
1629 if (!inode)
1630 return -ENOMEM;
1631
1632 if (S_ISDIR(mode)) {
1633 inode->i_op = &cgroup_dir_inode_operations;
1634 inode->i_fop = &simple_dir_operations;
1635
1636 /* start off with i_nlink == 2 (for "." entry) */
1637 inc_nlink(inode);
1638
1639 /* start with the directory inode held, so that we can
1640 * populate it without racing with another mkdir */
817929ec 1641 mutex_lock_nested(&inode->i_mutex, I_MUTEX_CHILD);
ddbcc7e8
PM
1642 } else if (S_ISREG(mode)) {
1643 inode->i_size = 0;
1644 inode->i_fop = &cgroup_file_operations;
1645 }
1646 dentry->d_op = &cgroup_dops;
1647 d_instantiate(dentry, inode);
1648 dget(dentry); /* Extra count - pin the dentry in core */
1649 return 0;
1650}
1651
1652/*
a043e3b2
LZ
1653 * cgroup_create_dir - create a directory for an object.
1654 * @cgrp: the cgroup we create the directory for. It must have a valid
1655 * ->parent field. And we are going to fill its ->dentry field.
1656 * @dentry: dentry of the new cgroup
1657 * @mode: mode to set on new directory.
ddbcc7e8 1658 */
bd89aabc 1659static int cgroup_create_dir(struct cgroup *cgrp, struct dentry *dentry,
ddbcc7e8
PM
1660 int mode)
1661{
1662 struct dentry *parent;
1663 int error = 0;
1664
bd89aabc
PM
1665 parent = cgrp->parent->dentry;
1666 error = cgroup_create_file(dentry, S_IFDIR | mode, cgrp->root->sb);
ddbcc7e8 1667 if (!error) {
bd89aabc 1668 dentry->d_fsdata = cgrp;
ddbcc7e8 1669 inc_nlink(parent->d_inode);
bd89aabc 1670 cgrp->dentry = dentry;
ddbcc7e8
PM
1671 dget(dentry);
1672 }
1673 dput(dentry);
1674
1675 return error;
1676}
1677
bd89aabc 1678int cgroup_add_file(struct cgroup *cgrp,
ddbcc7e8
PM
1679 struct cgroup_subsys *subsys,
1680 const struct cftype *cft)
1681{
bd89aabc 1682 struct dentry *dir = cgrp->dentry;
ddbcc7e8
PM
1683 struct dentry *dentry;
1684 int error;
1685
1686 char name[MAX_CGROUP_TYPE_NAMELEN + MAX_CFTYPE_NAME + 2] = { 0 };
bd89aabc 1687 if (subsys && !test_bit(ROOT_NOPREFIX, &cgrp->root->flags)) {
ddbcc7e8
PM
1688 strcpy(name, subsys->name);
1689 strcat(name, ".");
1690 }
1691 strcat(name, cft->name);
1692 BUG_ON(!mutex_is_locked(&dir->d_inode->i_mutex));
1693 dentry = lookup_one_len(name, dir, strlen(name));
1694 if (!IS_ERR(dentry)) {
1695 error = cgroup_create_file(dentry, 0644 | S_IFREG,
bd89aabc 1696 cgrp->root->sb);
ddbcc7e8
PM
1697 if (!error)
1698 dentry->d_fsdata = (void *)cft;
1699 dput(dentry);
1700 } else
1701 error = PTR_ERR(dentry);
1702 return error;
1703}
1704
bd89aabc 1705int cgroup_add_files(struct cgroup *cgrp,
ddbcc7e8
PM
1706 struct cgroup_subsys *subsys,
1707 const struct cftype cft[],
1708 int count)
1709{
1710 int i, err;
1711 for (i = 0; i < count; i++) {
bd89aabc 1712 err = cgroup_add_file(cgrp, subsys, &cft[i]);
ddbcc7e8
PM
1713 if (err)
1714 return err;
1715 }
1716 return 0;
1717}
1718
a043e3b2
LZ
1719/**
1720 * cgroup_task_count - count the number of tasks in a cgroup.
1721 * @cgrp: the cgroup in question
1722 *
1723 * Return the number of tasks in the cgroup.
1724 */
bd89aabc 1725int cgroup_task_count(const struct cgroup *cgrp)
bbcb81d0
PM
1726{
1727 int count = 0;
71cbb949 1728 struct cg_cgroup_link *link;
817929ec
PM
1729
1730 read_lock(&css_set_lock);
71cbb949 1731 list_for_each_entry(link, &cgrp->css_sets, cgrp_link_list) {
146aa1bd 1732 count += atomic_read(&link->cg->refcount);
817929ec
PM
1733 }
1734 read_unlock(&css_set_lock);
bbcb81d0
PM
1735 return count;
1736}
1737
817929ec
PM
1738/*
1739 * Advance a list_head iterator. The iterator should be positioned at
1740 * the start of a css_set
1741 */
bd89aabc 1742static void cgroup_advance_iter(struct cgroup *cgrp,
817929ec
PM
1743 struct cgroup_iter *it)
1744{
1745 struct list_head *l = it->cg_link;
1746 struct cg_cgroup_link *link;
1747 struct css_set *cg;
1748
1749 /* Advance to the next non-empty css_set */
1750 do {
1751 l = l->next;
bd89aabc 1752 if (l == &cgrp->css_sets) {
817929ec
PM
1753 it->cg_link = NULL;
1754 return;
1755 }
bd89aabc 1756 link = list_entry(l, struct cg_cgroup_link, cgrp_link_list);
817929ec
PM
1757 cg = link->cg;
1758 } while (list_empty(&cg->tasks));
1759 it->cg_link = l;
1760 it->task = cg->tasks.next;
1761}
1762
31a7df01
CW
1763/*
1764 * To reduce the fork() overhead for systems that are not actually
1765 * using their cgroups capability, we don't maintain the lists running
1766 * through each css_set to its tasks until we see the list actually
1767 * used - in other words after the first call to cgroup_iter_start().
1768 *
1769 * The tasklist_lock is not held here, as do_each_thread() and
1770 * while_each_thread() are protected by RCU.
1771 */
3df91fe3 1772static void cgroup_enable_task_cg_lists(void)
31a7df01
CW
1773{
1774 struct task_struct *p, *g;
1775 write_lock(&css_set_lock);
1776 use_task_css_set_links = 1;
1777 do_each_thread(g, p) {
1778 task_lock(p);
0e04388f
LZ
1779 /*
1780 * We should check if the process is exiting, otherwise
1781 * it will race with cgroup_exit() in that the list
1782 * entry won't be deleted though the process has exited.
1783 */
1784 if (!(p->flags & PF_EXITING) && list_empty(&p->cg_list))
31a7df01
CW
1785 list_add(&p->cg_list, &p->cgroups->tasks);
1786 task_unlock(p);
1787 } while_each_thread(g, p);
1788 write_unlock(&css_set_lock);
1789}
1790
bd89aabc 1791void cgroup_iter_start(struct cgroup *cgrp, struct cgroup_iter *it)
817929ec
PM
1792{
1793 /*
1794 * The first time anyone tries to iterate across a cgroup,
1795 * we need to enable the list linking each css_set to its
1796 * tasks, and fix up all existing tasks.
1797 */
31a7df01
CW
1798 if (!use_task_css_set_links)
1799 cgroup_enable_task_cg_lists();
1800
817929ec 1801 read_lock(&css_set_lock);
bd89aabc
PM
1802 it->cg_link = &cgrp->css_sets;
1803 cgroup_advance_iter(cgrp, it);
817929ec
PM
1804}
1805
bd89aabc 1806struct task_struct *cgroup_iter_next(struct cgroup *cgrp,
817929ec
PM
1807 struct cgroup_iter *it)
1808{
1809 struct task_struct *res;
1810 struct list_head *l = it->task;
2019f634 1811 struct cg_cgroup_link *link;
817929ec
PM
1812
1813 /* If the iterator cg is NULL, we have no tasks */
1814 if (!it->cg_link)
1815 return NULL;
1816 res = list_entry(l, struct task_struct, cg_list);
1817 /* Advance iterator to find next entry */
1818 l = l->next;
2019f634
LJ
1819 link = list_entry(it->cg_link, struct cg_cgroup_link, cgrp_link_list);
1820 if (l == &link->cg->tasks) {
817929ec
PM
1821 /* We reached the end of this task list - move on to
1822 * the next cg_cgroup_link */
bd89aabc 1823 cgroup_advance_iter(cgrp, it);
817929ec
PM
1824 } else {
1825 it->task = l;
1826 }
1827 return res;
1828}
1829
bd89aabc 1830void cgroup_iter_end(struct cgroup *cgrp, struct cgroup_iter *it)
817929ec
PM
1831{
1832 read_unlock(&css_set_lock);
1833}
1834
31a7df01
CW
1835static inline int started_after_time(struct task_struct *t1,
1836 struct timespec *time,
1837 struct task_struct *t2)
1838{
1839 int start_diff = timespec_compare(&t1->start_time, time);
1840 if (start_diff > 0) {
1841 return 1;
1842 } else if (start_diff < 0) {
1843 return 0;
1844 } else {
1845 /*
1846 * Arbitrarily, if two processes started at the same
1847 * time, we'll say that the lower pointer value
1848 * started first. Note that t2 may have exited by now
1849 * so this may not be a valid pointer any longer, but
1850 * that's fine - it still serves to distinguish
1851 * between two tasks started (effectively) simultaneously.
1852 */
1853 return t1 > t2;
1854 }
1855}
1856
1857/*
1858 * This function is a callback from heap_insert() and is used to order
1859 * the heap.
1860 * In this case we order the heap in descending task start time.
1861 */
1862static inline int started_after(void *p1, void *p2)
1863{
1864 struct task_struct *t1 = p1;
1865 struct task_struct *t2 = p2;
1866 return started_after_time(t1, &t2->start_time, t2);
1867}
1868
1869/**
1870 * cgroup_scan_tasks - iterate though all the tasks in a cgroup
1871 * @scan: struct cgroup_scanner containing arguments for the scan
1872 *
1873 * Arguments include pointers to callback functions test_task() and
1874 * process_task().
1875 * Iterate through all the tasks in a cgroup, calling test_task() for each,
1876 * and if it returns true, call process_task() for it also.
1877 * The test_task pointer may be NULL, meaning always true (select all tasks).
1878 * Effectively duplicates cgroup_iter_{start,next,end}()
1879 * but does not lock css_set_lock for the call to process_task().
1880 * The struct cgroup_scanner may be embedded in any structure of the caller's
1881 * creation.
1882 * It is guaranteed that process_task() will act on every task that
1883 * is a member of the cgroup for the duration of this call. This
1884 * function may or may not call process_task() for tasks that exit
1885 * or move to a different cgroup during the call, or are forked or
1886 * move into the cgroup during the call.
1887 *
1888 * Note that test_task() may be called with locks held, and may in some
1889 * situations be called multiple times for the same task, so it should
1890 * be cheap.
1891 * If the heap pointer in the struct cgroup_scanner is non-NULL, a heap has been
1892 * pre-allocated and will be used for heap operations (and its "gt" member will
1893 * be overwritten), else a temporary heap will be used (allocation of which
1894 * may cause this function to fail).
1895 */
1896int cgroup_scan_tasks(struct cgroup_scanner *scan)
1897{
1898 int retval, i;
1899 struct cgroup_iter it;
1900 struct task_struct *p, *dropped;
1901 /* Never dereference latest_task, since it's not refcounted */
1902 struct task_struct *latest_task = NULL;
1903 struct ptr_heap tmp_heap;
1904 struct ptr_heap *heap;
1905 struct timespec latest_time = { 0, 0 };
1906
1907 if (scan->heap) {
1908 /* The caller supplied our heap and pre-allocated its memory */
1909 heap = scan->heap;
1910 heap->gt = &started_after;
1911 } else {
1912 /* We need to allocate our own heap memory */
1913 heap = &tmp_heap;
1914 retval = heap_init(heap, PAGE_SIZE, GFP_KERNEL, &started_after);
1915 if (retval)
1916 /* cannot allocate the heap */
1917 return retval;
1918 }
1919
1920 again:
1921 /*
1922 * Scan tasks in the cgroup, using the scanner's "test_task" callback
1923 * to determine which are of interest, and using the scanner's
1924 * "process_task" callback to process any of them that need an update.
1925 * Since we don't want to hold any locks during the task updates,
1926 * gather tasks to be processed in a heap structure.
1927 * The heap is sorted by descending task start time.
1928 * If the statically-sized heap fills up, we overflow tasks that
1929 * started later, and in future iterations only consider tasks that
1930 * started after the latest task in the previous pass. This
1931 * guarantees forward progress and that we don't miss any tasks.
1932 */
1933 heap->size = 0;
1934 cgroup_iter_start(scan->cg, &it);
1935 while ((p = cgroup_iter_next(scan->cg, &it))) {
1936 /*
1937 * Only affect tasks that qualify per the caller's callback,
1938 * if he provided one
1939 */
1940 if (scan->test_task && !scan->test_task(p, scan))
1941 continue;
1942 /*
1943 * Only process tasks that started after the last task
1944 * we processed
1945 */
1946 if (!started_after_time(p, &latest_time, latest_task))
1947 continue;
1948 dropped = heap_insert(heap, p);
1949 if (dropped == NULL) {
1950 /*
1951 * The new task was inserted; the heap wasn't
1952 * previously full
1953 */
1954 get_task_struct(p);
1955 } else if (dropped != p) {
1956 /*
1957 * The new task was inserted, and pushed out a
1958 * different task
1959 */
1960 get_task_struct(p);
1961 put_task_struct(dropped);
1962 }
1963 /*
1964 * Else the new task was newer than anything already in
1965 * the heap and wasn't inserted
1966 */
1967 }
1968 cgroup_iter_end(scan->cg, &it);
1969
1970 if (heap->size) {
1971 for (i = 0; i < heap->size; i++) {
4fe91d51 1972 struct task_struct *q = heap->ptrs[i];
31a7df01 1973 if (i == 0) {
4fe91d51
PJ
1974 latest_time = q->start_time;
1975 latest_task = q;
31a7df01
CW
1976 }
1977 /* Process the task per the caller's callback */
4fe91d51
PJ
1978 scan->process_task(q, scan);
1979 put_task_struct(q);
31a7df01
CW
1980 }
1981 /*
1982 * If we had to process any tasks at all, scan again
1983 * in case some of them were in the middle of forking
1984 * children that didn't get processed.
1985 * Not the most efficient way to do it, but it avoids
1986 * having to take callback_mutex in the fork path
1987 */
1988 goto again;
1989 }
1990 if (heap == &tmp_heap)
1991 heap_free(&tmp_heap);
1992 return 0;
1993}
1994
bbcb81d0
PM
1995/*
1996 * Stuff for reading the 'tasks' file.
1997 *
1998 * Reading this file can return large amounts of data if a cgroup has
1999 * *lots* of attached tasks. So it may need several calls to read(),
2000 * but we cannot guarantee that the information we produce is correct
2001 * unless we produce it entirely atomically.
2002 *
bbcb81d0 2003 */
bbcb81d0
PM
2004
2005/*
2006 * Load into 'pidarray' up to 'npids' of the tasks using cgroup
bd89aabc 2007 * 'cgrp'. Return actual number of pids loaded. No need to
bbcb81d0
PM
2008 * task_lock(p) when reading out p->cgroup, since we're in an RCU
2009 * read section, so the css_set can't go away, and is
2010 * immutable after creation.
2011 */
bd89aabc 2012static int pid_array_load(pid_t *pidarray, int npids, struct cgroup *cgrp)
bbcb81d0
PM
2013{
2014 int n = 0;
817929ec
PM
2015 struct cgroup_iter it;
2016 struct task_struct *tsk;
bd89aabc
PM
2017 cgroup_iter_start(cgrp, &it);
2018 while ((tsk = cgroup_iter_next(cgrp, &it))) {
817929ec
PM
2019 if (unlikely(n == npids))
2020 break;
73507f33 2021 pidarray[n++] = task_pid_vnr(tsk);
817929ec 2022 }
bd89aabc 2023 cgroup_iter_end(cgrp, &it);
bbcb81d0
PM
2024 return n;
2025}
2026
846c7bb0 2027/**
a043e3b2 2028 * cgroupstats_build - build and fill cgroupstats
846c7bb0
BS
2029 * @stats: cgroupstats to fill information into
2030 * @dentry: A dentry entry belonging to the cgroup for which stats have
2031 * been requested.
a043e3b2
LZ
2032 *
2033 * Build and fill cgroupstats so that taskstats can export it to user
2034 * space.
846c7bb0
BS
2035 */
2036int cgroupstats_build(struct cgroupstats *stats, struct dentry *dentry)
2037{
2038 int ret = -EINVAL;
bd89aabc 2039 struct cgroup *cgrp;
846c7bb0
BS
2040 struct cgroup_iter it;
2041 struct task_struct *tsk;
33d283be 2042
846c7bb0 2043 /*
33d283be
LZ
2044 * Validate dentry by checking the superblock operations,
2045 * and make sure it's a directory.
846c7bb0 2046 */
33d283be
LZ
2047 if (dentry->d_sb->s_op != &cgroup_ops ||
2048 !S_ISDIR(dentry->d_inode->i_mode))
846c7bb0
BS
2049 goto err;
2050
2051 ret = 0;
bd89aabc 2052 cgrp = dentry->d_fsdata;
846c7bb0
BS
2053 rcu_read_lock();
2054
bd89aabc
PM
2055 cgroup_iter_start(cgrp, &it);
2056 while ((tsk = cgroup_iter_next(cgrp, &it))) {
846c7bb0
BS
2057 switch (tsk->state) {
2058 case TASK_RUNNING:
2059 stats->nr_running++;
2060 break;
2061 case TASK_INTERRUPTIBLE:
2062 stats->nr_sleeping++;
2063 break;
2064 case TASK_UNINTERRUPTIBLE:
2065 stats->nr_uninterruptible++;
2066 break;
2067 case TASK_STOPPED:
2068 stats->nr_stopped++;
2069 break;
2070 default:
2071 if (delayacct_is_task_waiting_on_io(tsk))
2072 stats->nr_io_wait++;
2073 break;
2074 }
2075 }
bd89aabc 2076 cgroup_iter_end(cgrp, &it);
846c7bb0
BS
2077
2078 rcu_read_unlock();
2079err:
2080 return ret;
2081}
2082
bbcb81d0
PM
2083static int cmppid(const void *a, const void *b)
2084{
2085 return *(pid_t *)a - *(pid_t *)b;
2086}
2087
cc31edce 2088
bbcb81d0 2089/*
cc31edce
PM
2090 * seq_file methods for the "tasks" file. The seq_file position is the
2091 * next pid to display; the seq_file iterator is a pointer to the pid
2092 * in the cgroup->tasks_pids array.
bbcb81d0 2093 */
cc31edce
PM
2094
2095static void *cgroup_tasks_start(struct seq_file *s, loff_t *pos)
bbcb81d0 2096{
cc31edce
PM
2097 /*
2098 * Initially we receive a position value that corresponds to
2099 * one more than the last pid shown (or 0 on the first call or
2100 * after a seek to the start). Use a binary-search to find the
2101 * next pid to display, if any
2102 */
2103 struct cgroup *cgrp = s->private;
2104 int index = 0, pid = *pos;
2105 int *iter;
2106
2107 down_read(&cgrp->pids_mutex);
2108 if (pid) {
2109 int end = cgrp->pids_length;
20777766 2110
cc31edce
PM
2111 while (index < end) {
2112 int mid = (index + end) / 2;
2113 if (cgrp->tasks_pids[mid] == pid) {
2114 index = mid;
2115 break;
2116 } else if (cgrp->tasks_pids[mid] <= pid)
2117 index = mid + 1;
2118 else
2119 end = mid;
2120 }
2121 }
2122 /* If we're off the end of the array, we're done */
2123 if (index >= cgrp->pids_length)
2124 return NULL;
2125 /* Update the abstract position to be the actual pid that we found */
2126 iter = cgrp->tasks_pids + index;
2127 *pos = *iter;
2128 return iter;
2129}
2130
2131static void cgroup_tasks_stop(struct seq_file *s, void *v)
2132{
2133 struct cgroup *cgrp = s->private;
2134 up_read(&cgrp->pids_mutex);
2135}
2136
2137static void *cgroup_tasks_next(struct seq_file *s, void *v, loff_t *pos)
2138{
2139 struct cgroup *cgrp = s->private;
2140 int *p = v;
2141 int *end = cgrp->tasks_pids + cgrp->pids_length;
2142
2143 /*
2144 * Advance to the next pid in the array. If this goes off the
2145 * end, we're done
2146 */
2147 p++;
2148 if (p >= end) {
2149 return NULL;
2150 } else {
2151 *pos = *p;
2152 return p;
2153 }
2154}
2155
2156static int cgroup_tasks_show(struct seq_file *s, void *v)
2157{
2158 return seq_printf(s, "%d\n", *(int *)v);
2159}
bbcb81d0 2160
cc31edce
PM
2161static struct seq_operations cgroup_tasks_seq_operations = {
2162 .start = cgroup_tasks_start,
2163 .stop = cgroup_tasks_stop,
2164 .next = cgroup_tasks_next,
2165 .show = cgroup_tasks_show,
2166};
2167
2168static void release_cgroup_pid_array(struct cgroup *cgrp)
2169{
2170 down_write(&cgrp->pids_mutex);
2171 BUG_ON(!cgrp->pids_use_count);
2172 if (!--cgrp->pids_use_count) {
2173 kfree(cgrp->tasks_pids);
2174 cgrp->tasks_pids = NULL;
2175 cgrp->pids_length = 0;
2176 }
2177 up_write(&cgrp->pids_mutex);
bbcb81d0
PM
2178}
2179
cc31edce
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2180static int cgroup_tasks_release(struct inode *inode, struct file *file)
2181{
2182 struct cgroup *cgrp = __d_cgrp(file->f_dentry->d_parent);
2183
2184 if (!(file->f_mode & FMODE_READ))
2185 return 0;
2186
2187 release_cgroup_pid_array(cgrp);
2188 return seq_release(inode, file);
2189}
2190
2191static struct file_operations cgroup_tasks_operations = {
2192 .read = seq_read,
2193 .llseek = seq_lseek,
2194 .write = cgroup_file_write,
2195 .release = cgroup_tasks_release,
2196};
2197
bbcb81d0 2198/*
cc31edce 2199 * Handle an open on 'tasks' file. Prepare an array containing the
bbcb81d0 2200 * process id's of tasks currently attached to the cgroup being opened.
bbcb81d0 2201 */
cc31edce 2202
bbcb81d0
PM
2203static int cgroup_tasks_open(struct inode *unused, struct file *file)
2204{
bd89aabc 2205 struct cgroup *cgrp = __d_cgrp(file->f_dentry->d_parent);
bbcb81d0
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2206 pid_t *pidarray;
2207 int npids;
cc31edce 2208 int retval;
bbcb81d0 2209
cc31edce 2210 /* Nothing to do for write-only files */
bbcb81d0
PM
2211 if (!(file->f_mode & FMODE_READ))
2212 return 0;
2213
bbcb81d0
PM
2214 /*
2215 * If cgroup gets more users after we read count, we won't have
2216 * enough space - tough. This race is indistinguishable to the
2217 * caller from the case that the additional cgroup users didn't
2218 * show up until sometime later on.
2219 */
bd89aabc 2220 npids = cgroup_task_count(cgrp);
cc31edce
PM
2221 pidarray = kmalloc(npids * sizeof(pid_t), GFP_KERNEL);
2222 if (!pidarray)
2223 return -ENOMEM;
2224 npids = pid_array_load(pidarray, npids, cgrp);
2225 sort(pidarray, npids, sizeof(pid_t), cmppid, NULL);
bbcb81d0 2226
cc31edce
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2227 /*
2228 * Store the array in the cgroup, freeing the old
2229 * array if necessary
2230 */
2231 down_write(&cgrp->pids_mutex);
2232 kfree(cgrp->tasks_pids);
2233 cgrp->tasks_pids = pidarray;
2234 cgrp->pids_length = npids;
2235 cgrp->pids_use_count++;
2236 up_write(&cgrp->pids_mutex);
2237
2238 file->f_op = &cgroup_tasks_operations;
2239
2240 retval = seq_open(file, &cgroup_tasks_seq_operations);
2241 if (retval) {
2242 release_cgroup_pid_array(cgrp);
2243 return retval;
bbcb81d0 2244 }
cc31edce 2245 ((struct seq_file *)file->private_data)->private = cgrp;
bbcb81d0
PM
2246 return 0;
2247}
2248
bd89aabc 2249static u64 cgroup_read_notify_on_release(struct cgroup *cgrp,
81a6a5cd
PM
2250 struct cftype *cft)
2251{
bd89aabc 2252 return notify_on_release(cgrp);
81a6a5cd
PM
2253}
2254
6379c106
PM
2255static int cgroup_write_notify_on_release(struct cgroup *cgrp,
2256 struct cftype *cft,
2257 u64 val)
2258{
2259 clear_bit(CGRP_RELEASABLE, &cgrp->flags);
2260 if (val)
2261 set_bit(CGRP_NOTIFY_ON_RELEASE, &cgrp->flags);
2262 else
2263 clear_bit(CGRP_NOTIFY_ON_RELEASE, &cgrp->flags);
2264 return 0;
2265}
2266
bbcb81d0
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2267/*
2268 * for the common functions, 'private' gives the type of file
2269 */
81a6a5cd
PM
2270static struct cftype files[] = {
2271 {
2272 .name = "tasks",
2273 .open = cgroup_tasks_open,
af351026 2274 .write_u64 = cgroup_tasks_write,
81a6a5cd
PM
2275 .release = cgroup_tasks_release,
2276 .private = FILE_TASKLIST,
2277 },
2278
2279 {
2280 .name = "notify_on_release",
f4c753b7 2281 .read_u64 = cgroup_read_notify_on_release,
6379c106 2282 .write_u64 = cgroup_write_notify_on_release,
81a6a5cd
PM
2283 .private = FILE_NOTIFY_ON_RELEASE,
2284 },
81a6a5cd
PM
2285};
2286
2287static struct cftype cft_release_agent = {
2288 .name = "release_agent",
e788e066
PM
2289 .read_seq_string = cgroup_release_agent_show,
2290 .write_string = cgroup_release_agent_write,
2291 .max_write_len = PATH_MAX,
81a6a5cd 2292 .private = FILE_RELEASE_AGENT,
bbcb81d0
PM
2293};
2294
bd89aabc 2295static int cgroup_populate_dir(struct cgroup *cgrp)
ddbcc7e8
PM
2296{
2297 int err;
2298 struct cgroup_subsys *ss;
2299
2300 /* First clear out any existing files */
bd89aabc 2301 cgroup_clear_directory(cgrp->dentry);
ddbcc7e8 2302
bd89aabc 2303 err = cgroup_add_files(cgrp, NULL, files, ARRAY_SIZE(files));
bbcb81d0
PM
2304 if (err < 0)
2305 return err;
2306
bd89aabc
PM
2307 if (cgrp == cgrp->top_cgroup) {
2308 if ((err = cgroup_add_file(cgrp, NULL, &cft_release_agent)) < 0)
81a6a5cd
PM
2309 return err;
2310 }
2311
bd89aabc
PM
2312 for_each_subsys(cgrp->root, ss) {
2313 if (ss->populate && (err = ss->populate(ss, cgrp)) < 0)
ddbcc7e8
PM
2314 return err;
2315 }
2316
2317 return 0;
2318}
2319
2320static void init_cgroup_css(struct cgroup_subsys_state *css,
2321 struct cgroup_subsys *ss,
bd89aabc 2322 struct cgroup *cgrp)
ddbcc7e8 2323{
bd89aabc 2324 css->cgroup = cgrp;
ddbcc7e8
PM
2325 atomic_set(&css->refcnt, 0);
2326 css->flags = 0;
bd89aabc 2327 if (cgrp == dummytop)
ddbcc7e8 2328 set_bit(CSS_ROOT, &css->flags);
bd89aabc
PM
2329 BUG_ON(cgrp->subsys[ss->subsys_id]);
2330 cgrp->subsys[ss->subsys_id] = css;
ddbcc7e8
PM
2331}
2332
2333/*
a043e3b2
LZ
2334 * cgroup_create - create a cgroup
2335 * @parent: cgroup that will be parent of the new cgroup
2336 * @dentry: dentry of the new cgroup
2337 * @mode: mode to set on new inode
ddbcc7e8 2338 *
a043e3b2 2339 * Must be called with the mutex on the parent inode held
ddbcc7e8 2340 */
ddbcc7e8
PM
2341static long cgroup_create(struct cgroup *parent, struct dentry *dentry,
2342 int mode)
2343{
bd89aabc 2344 struct cgroup *cgrp;
ddbcc7e8
PM
2345 struct cgroupfs_root *root = parent->root;
2346 int err = 0;
2347 struct cgroup_subsys *ss;
2348 struct super_block *sb = root->sb;
2349
bd89aabc
PM
2350 cgrp = kzalloc(sizeof(*cgrp), GFP_KERNEL);
2351 if (!cgrp)
ddbcc7e8
PM
2352 return -ENOMEM;
2353
2354 /* Grab a reference on the superblock so the hierarchy doesn't
2355 * get deleted on unmount if there are child cgroups. This
2356 * can be done outside cgroup_mutex, since the sb can't
2357 * disappear while someone has an open control file on the
2358 * fs */
2359 atomic_inc(&sb->s_active);
2360
2361 mutex_lock(&cgroup_mutex);
2362
cc31edce 2363 init_cgroup_housekeeping(cgrp);
ddbcc7e8 2364
bd89aabc
PM
2365 cgrp->parent = parent;
2366 cgrp->root = parent->root;
2367 cgrp->top_cgroup = parent->top_cgroup;
ddbcc7e8 2368
b6abdb0e
LZ
2369 if (notify_on_release(parent))
2370 set_bit(CGRP_NOTIFY_ON_RELEASE, &cgrp->flags);
2371
ddbcc7e8 2372 for_each_subsys(root, ss) {
bd89aabc 2373 struct cgroup_subsys_state *css = ss->create(ss, cgrp);
ddbcc7e8
PM
2374 if (IS_ERR(css)) {
2375 err = PTR_ERR(css);
2376 goto err_destroy;
2377 }
bd89aabc 2378 init_cgroup_css(css, ss, cgrp);
ddbcc7e8
PM
2379 }
2380
bd89aabc 2381 list_add(&cgrp->sibling, &cgrp->parent->children);
ddbcc7e8
PM
2382 root->number_of_cgroups++;
2383
bd89aabc 2384 err = cgroup_create_dir(cgrp, dentry, mode);
ddbcc7e8
PM
2385 if (err < 0)
2386 goto err_remove;
2387
2388 /* The cgroup directory was pre-locked for us */
bd89aabc 2389 BUG_ON(!mutex_is_locked(&cgrp->dentry->d_inode->i_mutex));
ddbcc7e8 2390
bd89aabc 2391 err = cgroup_populate_dir(cgrp);
ddbcc7e8
PM
2392 /* If err < 0, we have a half-filled directory - oh well ;) */
2393
2394 mutex_unlock(&cgroup_mutex);
bd89aabc 2395 mutex_unlock(&cgrp->dentry->d_inode->i_mutex);
ddbcc7e8
PM
2396
2397 return 0;
2398
2399 err_remove:
2400
bd89aabc 2401 list_del(&cgrp->sibling);
ddbcc7e8
PM
2402 root->number_of_cgroups--;
2403
2404 err_destroy:
2405
2406 for_each_subsys(root, ss) {
bd89aabc
PM
2407 if (cgrp->subsys[ss->subsys_id])
2408 ss->destroy(ss, cgrp);
ddbcc7e8
PM
2409 }
2410
2411 mutex_unlock(&cgroup_mutex);
2412
2413 /* Release the reference count that we took on the superblock */
2414 deactivate_super(sb);
2415
bd89aabc 2416 kfree(cgrp);
ddbcc7e8
PM
2417 return err;
2418}
2419
2420static int cgroup_mkdir(struct inode *dir, struct dentry *dentry, int mode)
2421{
2422 struct cgroup *c_parent = dentry->d_parent->d_fsdata;
2423
2424 /* the vfs holds inode->i_mutex already */
2425 return cgroup_create(c_parent, dentry, mode | S_IFDIR);
2426}
2427
55b6fd01 2428static int cgroup_has_css_refs(struct cgroup *cgrp)
81a6a5cd
PM
2429{
2430 /* Check the reference count on each subsystem. Since we
2431 * already established that there are no tasks in the
2432 * cgroup, if the css refcount is also 0, then there should
2433 * be no outstanding references, so the subsystem is safe to
2434 * destroy. We scan across all subsystems rather than using
2435 * the per-hierarchy linked list of mounted subsystems since
2436 * we can be called via check_for_release() with no
2437 * synchronization other than RCU, and the subsystem linked
2438 * list isn't RCU-safe */
2439 int i;
2440 for (i = 0; i < CGROUP_SUBSYS_COUNT; i++) {
2441 struct cgroup_subsys *ss = subsys[i];
2442 struct cgroup_subsys_state *css;
2443 /* Skip subsystems not in this hierarchy */
bd89aabc 2444 if (ss->root != cgrp->root)
81a6a5cd 2445 continue;
bd89aabc 2446 css = cgrp->subsys[ss->subsys_id];
81a6a5cd
PM
2447 /* When called from check_for_release() it's possible
2448 * that by this point the cgroup has been removed
2449 * and the css deleted. But a false-positive doesn't
2450 * matter, since it can only happen if the cgroup
2451 * has been deleted and hence no longer needs the
2452 * release agent to be called anyway. */
e18f6318 2453 if (css && atomic_read(&css->refcnt))
81a6a5cd 2454 return 1;
81a6a5cd
PM
2455 }
2456 return 0;
2457}
2458
ddbcc7e8
PM
2459static int cgroup_rmdir(struct inode *unused_dir, struct dentry *dentry)
2460{
bd89aabc 2461 struct cgroup *cgrp = dentry->d_fsdata;
ddbcc7e8
PM
2462 struct dentry *d;
2463 struct cgroup *parent;
ddbcc7e8
PM
2464
2465 /* the vfs holds both inode->i_mutex already */
2466
2467 mutex_lock(&cgroup_mutex);
bd89aabc 2468 if (atomic_read(&cgrp->count) != 0) {
ddbcc7e8
PM
2469 mutex_unlock(&cgroup_mutex);
2470 return -EBUSY;
2471 }
bd89aabc 2472 if (!list_empty(&cgrp->children)) {
ddbcc7e8
PM
2473 mutex_unlock(&cgroup_mutex);
2474 return -EBUSY;
2475 }
3fa59dfb 2476 mutex_unlock(&cgroup_mutex);
a043e3b2 2477
4fca88c8 2478 /*
a043e3b2
LZ
2479 * Call pre_destroy handlers of subsys. Notify subsystems
2480 * that rmdir() request comes.
4fca88c8
KH
2481 */
2482 cgroup_call_pre_destroy(cgrp);
ddbcc7e8 2483
3fa59dfb
KH
2484 mutex_lock(&cgroup_mutex);
2485 parent = cgrp->parent;
3fa59dfb
KH
2486
2487 if (atomic_read(&cgrp->count)
2488 || !list_empty(&cgrp->children)
2489 || cgroup_has_css_refs(cgrp)) {
ddbcc7e8
PM
2490 mutex_unlock(&cgroup_mutex);
2491 return -EBUSY;
2492 }
2493
81a6a5cd 2494 spin_lock(&release_list_lock);
bd89aabc
PM
2495 set_bit(CGRP_REMOVED, &cgrp->flags);
2496 if (!list_empty(&cgrp->release_list))
2497 list_del(&cgrp->release_list);
81a6a5cd 2498 spin_unlock(&release_list_lock);
ddbcc7e8 2499 /* delete my sibling from parent->children */
bd89aabc
PM
2500 list_del(&cgrp->sibling);
2501 spin_lock(&cgrp->dentry->d_lock);
2502 d = dget(cgrp->dentry);
ddbcc7e8
PM
2503 spin_unlock(&d->d_lock);
2504
2505 cgroup_d_remove_dir(d);
2506 dput(d);
ddbcc7e8 2507
bd89aabc 2508 set_bit(CGRP_RELEASABLE, &parent->flags);
81a6a5cd
PM
2509 check_for_release(parent);
2510
ddbcc7e8 2511 mutex_unlock(&cgroup_mutex);
ddbcc7e8
PM
2512 return 0;
2513}
2514
06a11920 2515static void __init cgroup_init_subsys(struct cgroup_subsys *ss)
ddbcc7e8 2516{
ddbcc7e8 2517 struct cgroup_subsys_state *css;
cfe36bde
DC
2518
2519 printk(KERN_INFO "Initializing cgroup subsys %s\n", ss->name);
ddbcc7e8
PM
2520
2521 /* Create the top cgroup state for this subsystem */
2522 ss->root = &rootnode;
2523 css = ss->create(ss, dummytop);
2524 /* We don't handle early failures gracefully */
2525 BUG_ON(IS_ERR(css));
2526 init_cgroup_css(css, ss, dummytop);
2527
e8d55fde 2528 /* Update the init_css_set to contain a subsys
817929ec 2529 * pointer to this state - since the subsystem is
e8d55fde
LZ
2530 * newly registered, all tasks and hence the
2531 * init_css_set is in the subsystem's top cgroup. */
2532 init_css_set.subsys[ss->subsys_id] = dummytop->subsys[ss->subsys_id];
ddbcc7e8
PM
2533
2534 need_forkexit_callback |= ss->fork || ss->exit;
2535
e8d55fde
LZ
2536 /* At system boot, before all subsystems have been
2537 * registered, no tasks have been forked, so we don't
2538 * need to invoke fork callbacks here. */
2539 BUG_ON(!list_empty(&init_task.tasks));
2540
ddbcc7e8
PM
2541 ss->active = 1;
2542}
2543
2544/**
a043e3b2
LZ
2545 * cgroup_init_early - cgroup initialization at system boot
2546 *
2547 * Initialize cgroups at system boot, and initialize any
2548 * subsystems that request early init.
ddbcc7e8
PM
2549 */
2550int __init cgroup_init_early(void)
2551{
2552 int i;
146aa1bd 2553 atomic_set(&init_css_set.refcount, 1);
817929ec
PM
2554 INIT_LIST_HEAD(&init_css_set.cg_links);
2555 INIT_LIST_HEAD(&init_css_set.tasks);
472b1053 2556 INIT_HLIST_NODE(&init_css_set.hlist);
817929ec 2557 css_set_count = 1;
ddbcc7e8
PM
2558 init_cgroup_root(&rootnode);
2559 list_add(&rootnode.root_list, &roots);
817929ec
PM
2560 root_count = 1;
2561 init_task.cgroups = &init_css_set;
2562
2563 init_css_set_link.cg = &init_css_set;
bd89aabc 2564 list_add(&init_css_set_link.cgrp_link_list,
817929ec
PM
2565 &rootnode.top_cgroup.css_sets);
2566 list_add(&init_css_set_link.cg_link_list,
2567 &init_css_set.cg_links);
ddbcc7e8 2568
472b1053
LZ
2569 for (i = 0; i < CSS_SET_TABLE_SIZE; i++)
2570 INIT_HLIST_HEAD(&css_set_table[i]);
2571
ddbcc7e8
PM
2572 for (i = 0; i < CGROUP_SUBSYS_COUNT; i++) {
2573 struct cgroup_subsys *ss = subsys[i];
2574
2575 BUG_ON(!ss->name);
2576 BUG_ON(strlen(ss->name) > MAX_CGROUP_TYPE_NAMELEN);
2577 BUG_ON(!ss->create);
2578 BUG_ON(!ss->destroy);
2579 if (ss->subsys_id != i) {
cfe36bde 2580 printk(KERN_ERR "cgroup: Subsys %s id == %d\n",
ddbcc7e8
PM
2581 ss->name, ss->subsys_id);
2582 BUG();
2583 }
2584
2585 if (ss->early_init)
2586 cgroup_init_subsys(ss);
2587 }
2588 return 0;
2589}
2590
2591/**
a043e3b2
LZ
2592 * cgroup_init - cgroup initialization
2593 *
2594 * Register cgroup filesystem and /proc file, and initialize
2595 * any subsystems that didn't request early init.
ddbcc7e8
PM
2596 */
2597int __init cgroup_init(void)
2598{
2599 int err;
2600 int i;
472b1053 2601 struct hlist_head *hhead;
a424316c
PM
2602
2603 err = bdi_init(&cgroup_backing_dev_info);
2604 if (err)
2605 return err;
ddbcc7e8
PM
2606
2607 for (i = 0; i < CGROUP_SUBSYS_COUNT; i++) {
2608 struct cgroup_subsys *ss = subsys[i];
2609 if (!ss->early_init)
2610 cgroup_init_subsys(ss);
2611 }
2612
472b1053
LZ
2613 /* Add init_css_set to the hash table */
2614 hhead = css_set_hash(init_css_set.subsys);
2615 hlist_add_head(&init_css_set.hlist, hhead);
2616
ddbcc7e8
PM
2617 err = register_filesystem(&cgroup_fs_type);
2618 if (err < 0)
2619 goto out;
2620
46ae220b 2621 proc_create("cgroups", 0, NULL, &proc_cgroupstats_operations);
a424316c 2622
ddbcc7e8 2623out:
a424316c
PM
2624 if (err)
2625 bdi_destroy(&cgroup_backing_dev_info);
2626
ddbcc7e8
PM
2627 return err;
2628}
b4f48b63 2629
a424316c
PM
2630/*
2631 * proc_cgroup_show()
2632 * - Print task's cgroup paths into seq_file, one line for each hierarchy
2633 * - Used for /proc/<pid>/cgroup.
2634 * - No need to task_lock(tsk) on this tsk->cgroup reference, as it
2635 * doesn't really matter if tsk->cgroup changes after we read it,
956db3ca 2636 * and we take cgroup_mutex, keeping cgroup_attach_task() from changing it
a424316c
PM
2637 * anyway. No need to check that tsk->cgroup != NULL, thanks to
2638 * the_top_cgroup_hack in cgroup_exit(), which sets an exiting tasks
2639 * cgroup to top_cgroup.
2640 */
2641
2642/* TODO: Use a proper seq_file iterator */
2643static int proc_cgroup_show(struct seq_file *m, void *v)
2644{
2645 struct pid *pid;
2646 struct task_struct *tsk;
2647 char *buf;
2648 int retval;
2649 struct cgroupfs_root *root;
2650
2651 retval = -ENOMEM;
2652 buf = kmalloc(PAGE_SIZE, GFP_KERNEL);
2653 if (!buf)
2654 goto out;
2655
2656 retval = -ESRCH;
2657 pid = m->private;
2658 tsk = get_pid_task(pid, PIDTYPE_PID);
2659 if (!tsk)
2660 goto out_free;
2661
2662 retval = 0;
2663
2664 mutex_lock(&cgroup_mutex);
2665
2666 for_each_root(root) {
2667 struct cgroup_subsys *ss;
bd89aabc 2668 struct cgroup *cgrp;
a424316c
PM
2669 int subsys_id;
2670 int count = 0;
2671
2672 /* Skip this hierarchy if it has no active subsystems */
2673 if (!root->actual_subsys_bits)
2674 continue;
b6c3006d 2675 seq_printf(m, "%lu:", root->subsys_bits);
a424316c
PM
2676 for_each_subsys(root, ss)
2677 seq_printf(m, "%s%s", count++ ? "," : "", ss->name);
2678 seq_putc(m, ':');
2679 get_first_subsys(&root->top_cgroup, NULL, &subsys_id);
bd89aabc
PM
2680 cgrp = task_cgroup(tsk, subsys_id);
2681 retval = cgroup_path(cgrp, buf, PAGE_SIZE);
a424316c
PM
2682 if (retval < 0)
2683 goto out_unlock;
2684 seq_puts(m, buf);
2685 seq_putc(m, '\n');
2686 }
2687
2688out_unlock:
2689 mutex_unlock(&cgroup_mutex);
2690 put_task_struct(tsk);
2691out_free:
2692 kfree(buf);
2693out:
2694 return retval;
2695}
2696
2697static int cgroup_open(struct inode *inode, struct file *file)
2698{
2699 struct pid *pid = PROC_I(inode)->pid;
2700 return single_open(file, proc_cgroup_show, pid);
2701}
2702
2703struct file_operations proc_cgroup_operations = {
2704 .open = cgroup_open,
2705 .read = seq_read,
2706 .llseek = seq_lseek,
2707 .release = single_release,
2708};
2709
2710/* Display information about each subsystem and each hierarchy */
2711static int proc_cgroupstats_show(struct seq_file *m, void *v)
2712{
2713 int i;
a424316c 2714
8bab8dde 2715 seq_puts(m, "#subsys_name\thierarchy\tnum_cgroups\tenabled\n");
a424316c 2716 mutex_lock(&cgroup_mutex);
a424316c
PM
2717 for (i = 0; i < CGROUP_SUBSYS_COUNT; i++) {
2718 struct cgroup_subsys *ss = subsys[i];
8bab8dde 2719 seq_printf(m, "%s\t%lu\t%d\t%d\n",
817929ec 2720 ss->name, ss->root->subsys_bits,
8bab8dde 2721 ss->root->number_of_cgroups, !ss->disabled);
a424316c
PM
2722 }
2723 mutex_unlock(&cgroup_mutex);
2724 return 0;
2725}
2726
2727static int cgroupstats_open(struct inode *inode, struct file *file)
2728{
9dce07f1 2729 return single_open(file, proc_cgroupstats_show, NULL);
a424316c
PM
2730}
2731
2732static struct file_operations proc_cgroupstats_operations = {
2733 .open = cgroupstats_open,
2734 .read = seq_read,
2735 .llseek = seq_lseek,
2736 .release = single_release,
2737};
2738
b4f48b63
PM
2739/**
2740 * cgroup_fork - attach newly forked task to its parents cgroup.
a043e3b2 2741 * @child: pointer to task_struct of forking parent process.
b4f48b63
PM
2742 *
2743 * Description: A task inherits its parent's cgroup at fork().
2744 *
2745 * A pointer to the shared css_set was automatically copied in
2746 * fork.c by dup_task_struct(). However, we ignore that copy, since
2747 * it was not made under the protection of RCU or cgroup_mutex, so
956db3ca 2748 * might no longer be a valid cgroup pointer. cgroup_attach_task() might
817929ec
PM
2749 * have already changed current->cgroups, allowing the previously
2750 * referenced cgroup group to be removed and freed.
b4f48b63
PM
2751 *
2752 * At the point that cgroup_fork() is called, 'current' is the parent
2753 * task, and the passed argument 'child' points to the child task.
2754 */
2755void cgroup_fork(struct task_struct *child)
2756{
817929ec
PM
2757 task_lock(current);
2758 child->cgroups = current->cgroups;
2759 get_css_set(child->cgroups);
2760 task_unlock(current);
2761 INIT_LIST_HEAD(&child->cg_list);
b4f48b63
PM
2762}
2763
2764/**
a043e3b2
LZ
2765 * cgroup_fork_callbacks - run fork callbacks
2766 * @child: the new task
2767 *
2768 * Called on a new task very soon before adding it to the
2769 * tasklist. No need to take any locks since no-one can
2770 * be operating on this task.
b4f48b63
PM
2771 */
2772void cgroup_fork_callbacks(struct task_struct *child)
2773{
2774 if (need_forkexit_callback) {
2775 int i;
2776 for (i = 0; i < CGROUP_SUBSYS_COUNT; i++) {
2777 struct cgroup_subsys *ss = subsys[i];
2778 if (ss->fork)
2779 ss->fork(ss, child);
2780 }
2781 }
2782}
2783
817929ec 2784/**
a043e3b2
LZ
2785 * cgroup_post_fork - called on a new task after adding it to the task list
2786 * @child: the task in question
2787 *
2788 * Adds the task to the list running through its css_set if necessary.
2789 * Has to be after the task is visible on the task list in case we race
2790 * with the first call to cgroup_iter_start() - to guarantee that the
2791 * new task ends up on its list.
2792 */
817929ec
PM
2793void cgroup_post_fork(struct task_struct *child)
2794{
2795 if (use_task_css_set_links) {
2796 write_lock(&css_set_lock);
b12b533f 2797 task_lock(child);
817929ec
PM
2798 if (list_empty(&child->cg_list))
2799 list_add(&child->cg_list, &child->cgroups->tasks);
b12b533f 2800 task_unlock(child);
817929ec
PM
2801 write_unlock(&css_set_lock);
2802 }
2803}
b4f48b63
PM
2804/**
2805 * cgroup_exit - detach cgroup from exiting task
2806 * @tsk: pointer to task_struct of exiting process
a043e3b2 2807 * @run_callback: run exit callbacks?
b4f48b63
PM
2808 *
2809 * Description: Detach cgroup from @tsk and release it.
2810 *
2811 * Note that cgroups marked notify_on_release force every task in
2812 * them to take the global cgroup_mutex mutex when exiting.
2813 * This could impact scaling on very large systems. Be reluctant to
2814 * use notify_on_release cgroups where very high task exit scaling
2815 * is required on large systems.
2816 *
2817 * the_top_cgroup_hack:
2818 *
2819 * Set the exiting tasks cgroup to the root cgroup (top_cgroup).
2820 *
2821 * We call cgroup_exit() while the task is still competent to
2822 * handle notify_on_release(), then leave the task attached to the
2823 * root cgroup in each hierarchy for the remainder of its exit.
2824 *
2825 * To do this properly, we would increment the reference count on
2826 * top_cgroup, and near the very end of the kernel/exit.c do_exit()
2827 * code we would add a second cgroup function call, to drop that
2828 * reference. This would just create an unnecessary hot spot on
2829 * the top_cgroup reference count, to no avail.
2830 *
2831 * Normally, holding a reference to a cgroup without bumping its
2832 * count is unsafe. The cgroup could go away, or someone could
2833 * attach us to a different cgroup, decrementing the count on
2834 * the first cgroup that we never incremented. But in this case,
2835 * top_cgroup isn't going away, and either task has PF_EXITING set,
956db3ca
CW
2836 * which wards off any cgroup_attach_task() attempts, or task is a failed
2837 * fork, never visible to cgroup_attach_task.
b4f48b63
PM
2838 */
2839void cgroup_exit(struct task_struct *tsk, int run_callbacks)
2840{
2841 int i;
817929ec 2842 struct css_set *cg;
b4f48b63
PM
2843
2844 if (run_callbacks && need_forkexit_callback) {
2845 for (i = 0; i < CGROUP_SUBSYS_COUNT; i++) {
2846 struct cgroup_subsys *ss = subsys[i];
2847 if (ss->exit)
2848 ss->exit(ss, tsk);
2849 }
2850 }
817929ec
PM
2851
2852 /*
2853 * Unlink from the css_set task list if necessary.
2854 * Optimistically check cg_list before taking
2855 * css_set_lock
2856 */
2857 if (!list_empty(&tsk->cg_list)) {
2858 write_lock(&css_set_lock);
2859 if (!list_empty(&tsk->cg_list))
2860 list_del(&tsk->cg_list);
2861 write_unlock(&css_set_lock);
2862 }
2863
b4f48b63
PM
2864 /* Reassign the task to the init_css_set. */
2865 task_lock(tsk);
817929ec
PM
2866 cg = tsk->cgroups;
2867 tsk->cgroups = &init_css_set;
b4f48b63 2868 task_unlock(tsk);
817929ec 2869 if (cg)
81a6a5cd 2870 put_css_set_taskexit(cg);
b4f48b63 2871}
697f4161
PM
2872
2873/**
a043e3b2
LZ
2874 * cgroup_clone - clone the cgroup the given subsystem is attached to
2875 * @tsk: the task to be moved
2876 * @subsys: the given subsystem
e885dcde 2877 * @nodename: the name for the new cgroup
a043e3b2
LZ
2878 *
2879 * Duplicate the current cgroup in the hierarchy that the given
2880 * subsystem is attached to, and move this task into the new
2881 * child.
697f4161 2882 */
e885dcde
SH
2883int cgroup_clone(struct task_struct *tsk, struct cgroup_subsys *subsys,
2884 char *nodename)
697f4161
PM
2885{
2886 struct dentry *dentry;
2887 int ret = 0;
697f4161
PM
2888 struct cgroup *parent, *child;
2889 struct inode *inode;
2890 struct css_set *cg;
2891 struct cgroupfs_root *root;
2892 struct cgroup_subsys *ss;
2893
2894 /* We shouldn't be called by an unregistered subsystem */
2895 BUG_ON(!subsys->active);
2896
2897 /* First figure out what hierarchy and cgroup we're dealing
2898 * with, and pin them so we can drop cgroup_mutex */
2899 mutex_lock(&cgroup_mutex);
2900 again:
2901 root = subsys->root;
2902 if (root == &rootnode) {
697f4161
PM
2903 mutex_unlock(&cgroup_mutex);
2904 return 0;
2905 }
104cbd55 2906 task_lock(tsk);
817929ec 2907 cg = tsk->cgroups;
697f4161
PM
2908 parent = task_cgroup(tsk, subsys->subsys_id);
2909
697f4161 2910 /* Pin the hierarchy */
7b574b7b
LZ
2911 if (!atomic_inc_not_zero(&parent->root->sb->s_active)) {
2912 /* We race with the final deactivate_super() */
2913 mutex_unlock(&cgroup_mutex);
2914 return 0;
2915 }
697f4161 2916
817929ec
PM
2917 /* Keep the cgroup alive */
2918 get_css_set(cg);
104cbd55 2919 task_unlock(tsk);
697f4161
PM
2920 mutex_unlock(&cgroup_mutex);
2921
2922 /* Now do the VFS work to create a cgroup */
2923 inode = parent->dentry->d_inode;
2924
2925 /* Hold the parent directory mutex across this operation to
2926 * stop anyone else deleting the new cgroup */
2927 mutex_lock(&inode->i_mutex);
2928 dentry = lookup_one_len(nodename, parent->dentry, strlen(nodename));
2929 if (IS_ERR(dentry)) {
2930 printk(KERN_INFO
cfe36bde 2931 "cgroup: Couldn't allocate dentry for %s: %ld\n", nodename,
697f4161
PM
2932 PTR_ERR(dentry));
2933 ret = PTR_ERR(dentry);
2934 goto out_release;
2935 }
2936
2937 /* Create the cgroup directory, which also creates the cgroup */
75139b82 2938 ret = vfs_mkdir(inode, dentry, 0755);
bd89aabc 2939 child = __d_cgrp(dentry);
697f4161
PM
2940 dput(dentry);
2941 if (ret) {
2942 printk(KERN_INFO
2943 "Failed to create cgroup %s: %d\n", nodename,
2944 ret);
2945 goto out_release;
2946 }
2947
697f4161
PM
2948 /* The cgroup now exists. Retake cgroup_mutex and check
2949 * that we're still in the same state that we thought we
2950 * were. */
2951 mutex_lock(&cgroup_mutex);
2952 if ((root != subsys->root) ||
2953 (parent != task_cgroup(tsk, subsys->subsys_id))) {
2954 /* Aargh, we raced ... */
2955 mutex_unlock(&inode->i_mutex);
817929ec 2956 put_css_set(cg);
697f4161
PM
2957
2958 deactivate_super(parent->root->sb);
2959 /* The cgroup is still accessible in the VFS, but
2960 * we're not going to try to rmdir() it at this
2961 * point. */
2962 printk(KERN_INFO
2963 "Race in cgroup_clone() - leaking cgroup %s\n",
2964 nodename);
2965 goto again;
2966 }
2967
2968 /* do any required auto-setup */
2969 for_each_subsys(root, ss) {
2970 if (ss->post_clone)
2971 ss->post_clone(ss, child);
2972 }
2973
2974 /* All seems fine. Finish by moving the task into the new cgroup */
956db3ca 2975 ret = cgroup_attach_task(child, tsk);
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PM
2976 mutex_unlock(&cgroup_mutex);
2977
2978 out_release:
2979 mutex_unlock(&inode->i_mutex);
81a6a5cd
PM
2980
2981 mutex_lock(&cgroup_mutex);
817929ec 2982 put_css_set(cg);
81a6a5cd 2983 mutex_unlock(&cgroup_mutex);
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PM
2984 deactivate_super(parent->root->sb);
2985 return ret;
2986}
2987
a043e3b2
LZ
2988/**
2989 * cgroup_is_descendant - see if @cgrp is a descendant of current task's cgrp
2990 * @cgrp: the cgroup in question
2991 *
2992 * See if @cgrp is a descendant of the current task's cgroup in
2993 * the appropriate hierarchy.
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PM
2994 *
2995 * If we are sending in dummytop, then presumably we are creating
2996 * the top cgroup in the subsystem.
2997 *
2998 * Called only by the ns (nsproxy) cgroup.
2999 */
bd89aabc 3000int cgroup_is_descendant(const struct cgroup *cgrp)
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PM
3001{
3002 int ret;
3003 struct cgroup *target;
3004 int subsys_id;
3005
bd89aabc 3006 if (cgrp == dummytop)
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PM
3007 return 1;
3008
bd89aabc 3009 get_first_subsys(cgrp, NULL, &subsys_id);
697f4161 3010 target = task_cgroup(current, subsys_id);
bd89aabc
PM
3011 while (cgrp != target && cgrp!= cgrp->top_cgroup)
3012 cgrp = cgrp->parent;
3013 ret = (cgrp == target);
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PM
3014 return ret;
3015}
81a6a5cd 3016
bd89aabc 3017static void check_for_release(struct cgroup *cgrp)
81a6a5cd
PM
3018{
3019 /* All of these checks rely on RCU to keep the cgroup
3020 * structure alive */
bd89aabc
PM
3021 if (cgroup_is_releasable(cgrp) && !atomic_read(&cgrp->count)
3022 && list_empty(&cgrp->children) && !cgroup_has_css_refs(cgrp)) {
81a6a5cd
PM
3023 /* Control Group is currently removeable. If it's not
3024 * already queued for a userspace notification, queue
3025 * it now */
3026 int need_schedule_work = 0;
3027 spin_lock(&release_list_lock);
bd89aabc
PM
3028 if (!cgroup_is_removed(cgrp) &&
3029 list_empty(&cgrp->release_list)) {
3030 list_add(&cgrp->release_list, &release_list);
81a6a5cd
PM
3031 need_schedule_work = 1;
3032 }
3033 spin_unlock(&release_list_lock);
3034 if (need_schedule_work)
3035 schedule_work(&release_agent_work);
3036 }
3037}
3038
3039void __css_put(struct cgroup_subsys_state *css)
3040{
bd89aabc 3041 struct cgroup *cgrp = css->cgroup;
81a6a5cd 3042 rcu_read_lock();
bd89aabc
PM
3043 if (atomic_dec_and_test(&css->refcnt) && notify_on_release(cgrp)) {
3044 set_bit(CGRP_RELEASABLE, &cgrp->flags);
3045 check_for_release(cgrp);
81a6a5cd
PM
3046 }
3047 rcu_read_unlock();
3048}
3049
3050/*
3051 * Notify userspace when a cgroup is released, by running the
3052 * configured release agent with the name of the cgroup (path
3053 * relative to the root of cgroup file system) as the argument.
3054 *
3055 * Most likely, this user command will try to rmdir this cgroup.
3056 *
3057 * This races with the possibility that some other task will be
3058 * attached to this cgroup before it is removed, or that some other
3059 * user task will 'mkdir' a child cgroup of this cgroup. That's ok.
3060 * The presumed 'rmdir' will fail quietly if this cgroup is no longer
3061 * unused, and this cgroup will be reprieved from its death sentence,
3062 * to continue to serve a useful existence. Next time it's released,
3063 * we will get notified again, if it still has 'notify_on_release' set.
3064 *
3065 * The final arg to call_usermodehelper() is UMH_WAIT_EXEC, which
3066 * means only wait until the task is successfully execve()'d. The
3067 * separate release agent task is forked by call_usermodehelper(),
3068 * then control in this thread returns here, without waiting for the
3069 * release agent task. We don't bother to wait because the caller of
3070 * this routine has no use for the exit status of the release agent
3071 * task, so no sense holding our caller up for that.
81a6a5cd 3072 */
81a6a5cd
PM
3073static void cgroup_release_agent(struct work_struct *work)
3074{
3075 BUG_ON(work != &release_agent_work);
3076 mutex_lock(&cgroup_mutex);
3077 spin_lock(&release_list_lock);
3078 while (!list_empty(&release_list)) {
3079 char *argv[3], *envp[3];
3080 int i;
e788e066 3081 char *pathbuf = NULL, *agentbuf = NULL;
bd89aabc 3082 struct cgroup *cgrp = list_entry(release_list.next,
81a6a5cd
PM
3083 struct cgroup,
3084 release_list);
bd89aabc 3085 list_del_init(&cgrp->release_list);
81a6a5cd
PM
3086 spin_unlock(&release_list_lock);
3087 pathbuf = kmalloc(PAGE_SIZE, GFP_KERNEL);
e788e066
PM
3088 if (!pathbuf)
3089 goto continue_free;
3090 if (cgroup_path(cgrp, pathbuf, PAGE_SIZE) < 0)
3091 goto continue_free;
3092 agentbuf = kstrdup(cgrp->root->release_agent_path, GFP_KERNEL);
3093 if (!agentbuf)
3094 goto continue_free;
81a6a5cd
PM
3095
3096 i = 0;
e788e066
PM
3097 argv[i++] = agentbuf;
3098 argv[i++] = pathbuf;
81a6a5cd
PM
3099 argv[i] = NULL;
3100
3101 i = 0;
3102 /* minimal command environment */
3103 envp[i++] = "HOME=/";
3104 envp[i++] = "PATH=/sbin:/bin:/usr/sbin:/usr/bin";
3105 envp[i] = NULL;
3106
3107 /* Drop the lock while we invoke the usermode helper,
3108 * since the exec could involve hitting disk and hence
3109 * be a slow process */
3110 mutex_unlock(&cgroup_mutex);
3111 call_usermodehelper(argv[0], argv, envp, UMH_WAIT_EXEC);
81a6a5cd 3112 mutex_lock(&cgroup_mutex);
e788e066
PM
3113 continue_free:
3114 kfree(pathbuf);
3115 kfree(agentbuf);
81a6a5cd
PM
3116 spin_lock(&release_list_lock);
3117 }
3118 spin_unlock(&release_list_lock);
3119 mutex_unlock(&cgroup_mutex);
3120}
8bab8dde
PM
3121
3122static int __init cgroup_disable(char *str)
3123{
3124 int i;
3125 char *token;
3126
3127 while ((token = strsep(&str, ",")) != NULL) {
3128 if (!*token)
3129 continue;
3130
3131 for (i = 0; i < CGROUP_SUBSYS_COUNT; i++) {
3132 struct cgroup_subsys *ss = subsys[i];
3133
3134 if (!strcmp(token, ss->name)) {
3135 ss->disabled = 1;
3136 printk(KERN_INFO "Disabling %s control group"
3137 " subsystem\n", ss->name);
3138 break;
3139 }
3140 }
3141 }
3142 return 1;
3143}
3144__setup("cgroup_disable=", cgroup_disable);