cpuset: allow writing offlined masks to cpuset.cpus/mems
[linux-2.6-block.git] / kernel / cpuset.c
CommitLineData
1da177e4
LT
1/*
2 * kernel/cpuset.c
3 *
4 * Processor and Memory placement constraints for sets of tasks.
5 *
6 * Copyright (C) 2003 BULL SA.
029190c5 7 * Copyright (C) 2004-2007 Silicon Graphics, Inc.
8793d854 8 * Copyright (C) 2006 Google, Inc
1da177e4
LT
9 *
10 * Portions derived from Patrick Mochel's sysfs code.
11 * sysfs is Copyright (c) 2001-3 Patrick Mochel
1da177e4 12 *
825a46af 13 * 2003-10-10 Written by Simon Derr.
1da177e4 14 * 2003-10-22 Updates by Stephen Hemminger.
825a46af 15 * 2004 May-July Rework by Paul Jackson.
8793d854 16 * 2006 Rework by Paul Menage to use generic cgroups
cf417141
MK
17 * 2008 Rework of the scheduler domains and CPU hotplug handling
18 * by Max Krasnyansky
1da177e4
LT
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
1da177e4
LT
25#include <linux/cpu.h>
26#include <linux/cpumask.h>
27#include <linux/cpuset.h>
28#include <linux/err.h>
29#include <linux/errno.h>
30#include <linux/file.h>
31#include <linux/fs.h>
32#include <linux/init.h>
33#include <linux/interrupt.h>
34#include <linux/kernel.h>
35#include <linux/kmod.h>
36#include <linux/list.h>
68860ec1 37#include <linux/mempolicy.h>
1da177e4 38#include <linux/mm.h>
f481891f 39#include <linux/memory.h>
9984de1a 40#include <linux/export.h>
1da177e4
LT
41#include <linux/mount.h>
42#include <linux/namei.h>
43#include <linux/pagemap.h>
44#include <linux/proc_fs.h>
6b9c2603 45#include <linux/rcupdate.h>
1da177e4
LT
46#include <linux/sched.h>
47#include <linux/seq_file.h>
22fb52dd 48#include <linux/security.h>
1da177e4 49#include <linux/slab.h>
1da177e4
LT
50#include <linux/spinlock.h>
51#include <linux/stat.h>
52#include <linux/string.h>
53#include <linux/time.h>
54#include <linux/backing-dev.h>
55#include <linux/sort.h>
56
57#include <asm/uaccess.h>
60063497 58#include <linux/atomic.h>
3d3f26a7 59#include <linux/mutex.h>
956db3ca
CW
60#include <linux/workqueue.h>
61#include <linux/cgroup.h>
e44193d3 62#include <linux/wait.h>
1da177e4 63
664eedde 64struct static_key cpusets_enabled_key __read_mostly = STATIC_KEY_INIT_FALSE;
202f72d5 65
3e0d98b9
PJ
66/* See "Frequency meter" comments, below. */
67
68struct fmeter {
69 int cnt; /* unprocessed events count */
70 int val; /* most recent output value */
71 time_t time; /* clock (secs) when val computed */
72 spinlock_t lock; /* guards read or write of above */
73};
74
1da177e4 75struct cpuset {
8793d854
PM
76 struct cgroup_subsys_state css;
77
1da177e4 78 unsigned long flags; /* "unsigned long" so bitops work */
e2b9a3d7 79
7e88291b
LZ
80 /*
81 * On default hierarchy:
82 *
83 * The user-configured masks can only be changed by writing to
84 * cpuset.cpus and cpuset.mems, and won't be limited by the
85 * parent masks.
86 *
87 * The effective masks is the real masks that apply to the tasks
88 * in the cpuset. They may be changed if the configured masks are
89 * changed or hotplug happens.
90 *
91 * effective_mask == configured_mask & parent's effective_mask,
92 * and if it ends up empty, it will inherit the parent's mask.
93 *
94 *
95 * On legacy hierachy:
96 *
97 * The user-configured masks are always the same with effective masks.
98 */
99
e2b9a3d7
LZ
100 /* user-configured CPUs and Memory Nodes allow to tasks */
101 cpumask_var_t cpus_allowed;
102 nodemask_t mems_allowed;
103
104 /* effective CPUs and Memory Nodes allow to tasks */
105 cpumask_var_t effective_cpus;
106 nodemask_t effective_mems;
1da177e4 107
33ad801d
LZ
108 /*
109 * This is old Memory Nodes tasks took on.
110 *
111 * - top_cpuset.old_mems_allowed is initialized to mems_allowed.
112 * - A new cpuset's old_mems_allowed is initialized when some
113 * task is moved into it.
114 * - old_mems_allowed is used in cpuset_migrate_mm() when we change
115 * cpuset.mems_allowed and have tasks' nodemask updated, and
116 * then old_mems_allowed is updated to mems_allowed.
117 */
118 nodemask_t old_mems_allowed;
119
3e0d98b9 120 struct fmeter fmeter; /* memory_pressure filter */
029190c5 121
452477fa
TH
122 /*
123 * Tasks are being attached to this cpuset. Used to prevent
124 * zeroing cpus/mems_allowed between ->can_attach() and ->attach().
125 */
126 int attach_in_progress;
127
029190c5
PJ
128 /* partition number for rebuild_sched_domains() */
129 int pn;
956db3ca 130
1d3504fc
HS
131 /* for custom sched domain */
132 int relax_domain_level;
1da177e4
LT
133};
134
a7c6d554 135static inline struct cpuset *css_cs(struct cgroup_subsys_state *css)
8793d854 136{
a7c6d554 137 return css ? container_of(css, struct cpuset, css) : NULL;
8793d854
PM
138}
139
140/* Retrieve the cpuset for a task */
141static inline struct cpuset *task_cs(struct task_struct *task)
142{
073219e9 143 return css_cs(task_css(task, cpuset_cgrp_id));
8793d854 144}
8793d854 145
c9710d80 146static inline struct cpuset *parent_cs(struct cpuset *cs)
c431069f 147{
5c9d535b 148 return css_cs(cs->css.parent);
c431069f
TH
149}
150
b246272e
DR
151#ifdef CONFIG_NUMA
152static inline bool task_has_mempolicy(struct task_struct *task)
153{
154 return task->mempolicy;
155}
156#else
157static inline bool task_has_mempolicy(struct task_struct *task)
158{
159 return false;
160}
161#endif
162
163
1da177e4
LT
164/* bits in struct cpuset flags field */
165typedef enum {
efeb77b2 166 CS_ONLINE,
1da177e4
LT
167 CS_CPU_EXCLUSIVE,
168 CS_MEM_EXCLUSIVE,
78608366 169 CS_MEM_HARDWALL,
45b07ef3 170 CS_MEMORY_MIGRATE,
029190c5 171 CS_SCHED_LOAD_BALANCE,
825a46af
PJ
172 CS_SPREAD_PAGE,
173 CS_SPREAD_SLAB,
1da177e4
LT
174} cpuset_flagbits_t;
175
176/* convenient tests for these bits */
efeb77b2
TH
177static inline bool is_cpuset_online(const struct cpuset *cs)
178{
179 return test_bit(CS_ONLINE, &cs->flags);
180}
181
1da177e4
LT
182static inline int is_cpu_exclusive(const struct cpuset *cs)
183{
7b5b9ef0 184 return test_bit(CS_CPU_EXCLUSIVE, &cs->flags);
1da177e4
LT
185}
186
187static inline int is_mem_exclusive(const struct cpuset *cs)
188{
7b5b9ef0 189 return test_bit(CS_MEM_EXCLUSIVE, &cs->flags);
1da177e4
LT
190}
191
78608366
PM
192static inline int is_mem_hardwall(const struct cpuset *cs)
193{
194 return test_bit(CS_MEM_HARDWALL, &cs->flags);
195}
196
029190c5
PJ
197static inline int is_sched_load_balance(const struct cpuset *cs)
198{
199 return test_bit(CS_SCHED_LOAD_BALANCE, &cs->flags);
200}
201
45b07ef3
PJ
202static inline int is_memory_migrate(const struct cpuset *cs)
203{
7b5b9ef0 204 return test_bit(CS_MEMORY_MIGRATE, &cs->flags);
45b07ef3
PJ
205}
206
825a46af
PJ
207static inline int is_spread_page(const struct cpuset *cs)
208{
209 return test_bit(CS_SPREAD_PAGE, &cs->flags);
210}
211
212static inline int is_spread_slab(const struct cpuset *cs)
213{
214 return test_bit(CS_SPREAD_SLAB, &cs->flags);
215}
216
1da177e4 217static struct cpuset top_cpuset = {
efeb77b2
TH
218 .flags = ((1 << CS_ONLINE) | (1 << CS_CPU_EXCLUSIVE) |
219 (1 << CS_MEM_EXCLUSIVE)),
1da177e4
LT
220};
221
ae8086ce
TH
222/**
223 * cpuset_for_each_child - traverse online children of a cpuset
224 * @child_cs: loop cursor pointing to the current child
492eb21b 225 * @pos_css: used for iteration
ae8086ce
TH
226 * @parent_cs: target cpuset to walk children of
227 *
228 * Walk @child_cs through the online children of @parent_cs. Must be used
229 * with RCU read locked.
230 */
492eb21b
TH
231#define cpuset_for_each_child(child_cs, pos_css, parent_cs) \
232 css_for_each_child((pos_css), &(parent_cs)->css) \
233 if (is_cpuset_online(((child_cs) = css_cs((pos_css)))))
ae8086ce 234
fc560a26
TH
235/**
236 * cpuset_for_each_descendant_pre - pre-order walk of a cpuset's descendants
237 * @des_cs: loop cursor pointing to the current descendant
492eb21b 238 * @pos_css: used for iteration
fc560a26
TH
239 * @root_cs: target cpuset to walk ancestor of
240 *
241 * Walk @des_cs through the online descendants of @root_cs. Must be used
492eb21b 242 * with RCU read locked. The caller may modify @pos_css by calling
bd8815a6
TH
243 * css_rightmost_descendant() to skip subtree. @root_cs is included in the
244 * iteration and the first node to be visited.
fc560a26 245 */
492eb21b
TH
246#define cpuset_for_each_descendant_pre(des_cs, pos_css, root_cs) \
247 css_for_each_descendant_pre((pos_css), &(root_cs)->css) \
248 if (is_cpuset_online(((des_cs) = css_cs((pos_css)))))
fc560a26 249
1da177e4 250/*
5d21cc2d
TH
251 * There are two global mutexes guarding cpuset structures - cpuset_mutex
252 * and callback_mutex. The latter may nest inside the former. We also
253 * require taking task_lock() when dereferencing a task's cpuset pointer.
254 * See "The task_lock() exception", at the end of this comment.
255 *
256 * A task must hold both mutexes to modify cpusets. If a task holds
257 * cpuset_mutex, then it blocks others wanting that mutex, ensuring that it
258 * is the only task able to also acquire callback_mutex and be able to
259 * modify cpusets. It can perform various checks on the cpuset structure
260 * first, knowing nothing will change. It can also allocate memory while
261 * just holding cpuset_mutex. While it is performing these checks, various
262 * callback routines can briefly acquire callback_mutex to query cpusets.
263 * Once it is ready to make the changes, it takes callback_mutex, blocking
264 * everyone else.
053199ed
PJ
265 *
266 * Calls to the kernel memory allocator can not be made while holding
3d3f26a7 267 * callback_mutex, as that would risk double tripping on callback_mutex
053199ed
PJ
268 * from one of the callbacks into the cpuset code from within
269 * __alloc_pages().
270 *
3d3f26a7 271 * If a task is only holding callback_mutex, then it has read-only
053199ed
PJ
272 * access to cpusets.
273 *
58568d2a
MX
274 * Now, the task_struct fields mems_allowed and mempolicy may be changed
275 * by other task, we use alloc_lock in the task_struct fields to protect
276 * them.
053199ed 277 *
3d3f26a7 278 * The cpuset_common_file_read() handlers only hold callback_mutex across
053199ed
PJ
279 * small pieces of code, such as when reading out possibly multi-word
280 * cpumasks and nodemasks.
281 *
2df167a3
PM
282 * Accessing a task's cpuset should be done in accordance with the
283 * guidelines for accessing subsystem state in kernel/cgroup.c
1da177e4
LT
284 */
285
5d21cc2d 286static DEFINE_MUTEX(cpuset_mutex);
3d3f26a7 287static DEFINE_MUTEX(callback_mutex);
4247bdc6 288
3a5a6d0c
TH
289/*
290 * CPU / memory hotplug is handled asynchronously.
291 */
292static void cpuset_hotplug_workfn(struct work_struct *work);
3a5a6d0c
TH
293static DECLARE_WORK(cpuset_hotplug_work, cpuset_hotplug_workfn);
294
e44193d3
LZ
295static DECLARE_WAIT_QUEUE_HEAD(cpuset_attach_wq);
296
cf417141
MK
297/*
298 * This is ugly, but preserves the userspace API for existing cpuset
8793d854 299 * users. If someone tries to mount the "cpuset" filesystem, we
cf417141
MK
300 * silently switch it to mount "cgroup" instead
301 */
f7e83571
AV
302static struct dentry *cpuset_mount(struct file_system_type *fs_type,
303 int flags, const char *unused_dev_name, void *data)
1da177e4 304{
8793d854 305 struct file_system_type *cgroup_fs = get_fs_type("cgroup");
f7e83571 306 struct dentry *ret = ERR_PTR(-ENODEV);
8793d854
PM
307 if (cgroup_fs) {
308 char mountopts[] =
309 "cpuset,noprefix,"
310 "release_agent=/sbin/cpuset_release_agent";
f7e83571
AV
311 ret = cgroup_fs->mount(cgroup_fs, flags,
312 unused_dev_name, mountopts);
8793d854
PM
313 put_filesystem(cgroup_fs);
314 }
315 return ret;
1da177e4
LT
316}
317
318static struct file_system_type cpuset_fs_type = {
319 .name = "cpuset",
f7e83571 320 .mount = cpuset_mount,
1da177e4
LT
321};
322
1da177e4 323/*
300ed6cb 324 * Return in pmask the portion of a cpusets's cpus_allowed that
1da177e4 325 * are online. If none are online, walk up the cpuset hierarchy
40df2deb
LZ
326 * until we find one that does have some online cpus. The top
327 * cpuset always has some cpus online.
1da177e4
LT
328 *
329 * One way or another, we guarantee to return some non-empty subset
5f054e31 330 * of cpu_online_mask.
1da177e4 331 *
3d3f26a7 332 * Call with callback_mutex held.
1da177e4 333 */
c9710d80 334static void guarantee_online_cpus(struct cpuset *cs, struct cpumask *pmask)
1da177e4 335{
ae1c8023 336 while (!cpumask_intersects(cs->effective_cpus, cpu_online_mask))
c431069f 337 cs = parent_cs(cs);
ae1c8023 338 cpumask_and(pmask, cs->effective_cpus, cpu_online_mask);
1da177e4
LT
339}
340
341/*
342 * Return in *pmask the portion of a cpusets's mems_allowed that
0e1e7c7a
CL
343 * are online, with memory. If none are online with memory, walk
344 * up the cpuset hierarchy until we find one that does have some
40df2deb 345 * online mems. The top cpuset always has some mems online.
1da177e4
LT
346 *
347 * One way or another, we guarantee to return some non-empty subset
38d7bee9 348 * of node_states[N_MEMORY].
1da177e4 349 *
3d3f26a7 350 * Call with callback_mutex held.
1da177e4 351 */
c9710d80 352static void guarantee_online_mems(struct cpuset *cs, nodemask_t *pmask)
1da177e4 353{
ae1c8023 354 while (!nodes_intersects(cs->effective_mems, node_states[N_MEMORY]))
c431069f 355 cs = parent_cs(cs);
ae1c8023 356 nodes_and(*pmask, cs->effective_mems, node_states[N_MEMORY]);
1da177e4
LT
357}
358
f3b39d47
MX
359/*
360 * update task's spread flag if cpuset's page/slab spread flag is set
361 *
5d21cc2d 362 * Called with callback_mutex/cpuset_mutex held
f3b39d47
MX
363 */
364static void cpuset_update_task_spread_flag(struct cpuset *cs,
365 struct task_struct *tsk)
366{
367 if (is_spread_page(cs))
368 tsk->flags |= PF_SPREAD_PAGE;
369 else
370 tsk->flags &= ~PF_SPREAD_PAGE;
371 if (is_spread_slab(cs))
372 tsk->flags |= PF_SPREAD_SLAB;
373 else
374 tsk->flags &= ~PF_SPREAD_SLAB;
375}
376
1da177e4
LT
377/*
378 * is_cpuset_subset(p, q) - Is cpuset p a subset of cpuset q?
379 *
380 * One cpuset is a subset of another if all its allowed CPUs and
381 * Memory Nodes are a subset of the other, and its exclusive flags
5d21cc2d 382 * are only set if the other's are set. Call holding cpuset_mutex.
1da177e4
LT
383 */
384
385static int is_cpuset_subset(const struct cpuset *p, const struct cpuset *q)
386{
300ed6cb 387 return cpumask_subset(p->cpus_allowed, q->cpus_allowed) &&
1da177e4
LT
388 nodes_subset(p->mems_allowed, q->mems_allowed) &&
389 is_cpu_exclusive(p) <= is_cpu_exclusive(q) &&
390 is_mem_exclusive(p) <= is_mem_exclusive(q);
391}
392
645fcc9d
LZ
393/**
394 * alloc_trial_cpuset - allocate a trial cpuset
395 * @cs: the cpuset that the trial cpuset duplicates
396 */
c9710d80 397static struct cpuset *alloc_trial_cpuset(struct cpuset *cs)
645fcc9d 398{
300ed6cb
LZ
399 struct cpuset *trial;
400
401 trial = kmemdup(cs, sizeof(*cs), GFP_KERNEL);
402 if (!trial)
403 return NULL;
404
e2b9a3d7
LZ
405 if (!alloc_cpumask_var(&trial->cpus_allowed, GFP_KERNEL))
406 goto free_cs;
407 if (!alloc_cpumask_var(&trial->effective_cpus, GFP_KERNEL))
408 goto free_cpus;
300ed6cb 409
e2b9a3d7
LZ
410 cpumask_copy(trial->cpus_allowed, cs->cpus_allowed);
411 cpumask_copy(trial->effective_cpus, cs->effective_cpus);
300ed6cb 412 return trial;
e2b9a3d7
LZ
413
414free_cpus:
415 free_cpumask_var(trial->cpus_allowed);
416free_cs:
417 kfree(trial);
418 return NULL;
645fcc9d
LZ
419}
420
421/**
422 * free_trial_cpuset - free the trial cpuset
423 * @trial: the trial cpuset to be freed
424 */
425static void free_trial_cpuset(struct cpuset *trial)
426{
e2b9a3d7 427 free_cpumask_var(trial->effective_cpus);
300ed6cb 428 free_cpumask_var(trial->cpus_allowed);
645fcc9d
LZ
429 kfree(trial);
430}
431
1da177e4
LT
432/*
433 * validate_change() - Used to validate that any proposed cpuset change
434 * follows the structural rules for cpusets.
435 *
436 * If we replaced the flag and mask values of the current cpuset
437 * (cur) with those values in the trial cpuset (trial), would
438 * our various subset and exclusive rules still be valid? Presumes
5d21cc2d 439 * cpuset_mutex held.
1da177e4
LT
440 *
441 * 'cur' is the address of an actual, in-use cpuset. Operations
442 * such as list traversal that depend on the actual address of the
443 * cpuset in the list must use cur below, not trial.
444 *
445 * 'trial' is the address of bulk structure copy of cur, with
446 * perhaps one or more of the fields cpus_allowed, mems_allowed,
447 * or flags changed to new, trial values.
448 *
449 * Return 0 if valid, -errno if not.
450 */
451
c9710d80 452static int validate_change(struct cpuset *cur, struct cpuset *trial)
1da177e4 453{
492eb21b 454 struct cgroup_subsys_state *css;
1da177e4 455 struct cpuset *c, *par;
ae8086ce
TH
456 int ret;
457
458 rcu_read_lock();
1da177e4
LT
459
460 /* Each of our child cpusets must be a subset of us */
ae8086ce 461 ret = -EBUSY;
492eb21b 462 cpuset_for_each_child(c, css, cur)
ae8086ce
TH
463 if (!is_cpuset_subset(c, trial))
464 goto out;
1da177e4
LT
465
466 /* Remaining checks don't apply to root cpuset */
ae8086ce 467 ret = 0;
69604067 468 if (cur == &top_cpuset)
ae8086ce 469 goto out;
1da177e4 470
c431069f 471 par = parent_cs(cur);
69604067 472
7e88291b 473 /* On legacy hiearchy, we must be a subset of our parent cpuset. */
ae8086ce 474 ret = -EACCES;
7e88291b 475 if (!cgroup_on_dfl(cur->css.cgroup) && !is_cpuset_subset(trial, par))
ae8086ce 476 goto out;
1da177e4 477
2df167a3
PM
478 /*
479 * If either I or some sibling (!= me) is exclusive, we can't
480 * overlap
481 */
ae8086ce 482 ret = -EINVAL;
492eb21b 483 cpuset_for_each_child(c, css, par) {
1da177e4
LT
484 if ((is_cpu_exclusive(trial) || is_cpu_exclusive(c)) &&
485 c != cur &&
300ed6cb 486 cpumask_intersects(trial->cpus_allowed, c->cpus_allowed))
ae8086ce 487 goto out;
1da177e4
LT
488 if ((is_mem_exclusive(trial) || is_mem_exclusive(c)) &&
489 c != cur &&
490 nodes_intersects(trial->mems_allowed, c->mems_allowed))
ae8086ce 491 goto out;
1da177e4
LT
492 }
493
452477fa
TH
494 /*
495 * Cpusets with tasks - existing or newly being attached - can't
1c09b195 496 * be changed to have empty cpus_allowed or mems_allowed.
452477fa 497 */
ae8086ce 498 ret = -ENOSPC;
07bc356e 499 if ((cgroup_has_tasks(cur->css.cgroup) || cur->attach_in_progress)) {
1c09b195
LZ
500 if (!cpumask_empty(cur->cpus_allowed) &&
501 cpumask_empty(trial->cpus_allowed))
502 goto out;
503 if (!nodes_empty(cur->mems_allowed) &&
504 nodes_empty(trial->mems_allowed))
505 goto out;
506 }
020958b6 507
ae8086ce
TH
508 ret = 0;
509out:
510 rcu_read_unlock();
511 return ret;
1da177e4
LT
512}
513
db7f47cf 514#ifdef CONFIG_SMP
029190c5 515/*
cf417141 516 * Helper routine for generate_sched_domains().
8b5f1c52 517 * Do cpusets a, b have overlapping effective cpus_allowed masks?
029190c5 518 */
029190c5
PJ
519static int cpusets_overlap(struct cpuset *a, struct cpuset *b)
520{
8b5f1c52 521 return cpumask_intersects(a->effective_cpus, b->effective_cpus);
029190c5
PJ
522}
523
1d3504fc
HS
524static void
525update_domain_attr(struct sched_domain_attr *dattr, struct cpuset *c)
526{
1d3504fc
HS
527 if (dattr->relax_domain_level < c->relax_domain_level)
528 dattr->relax_domain_level = c->relax_domain_level;
529 return;
530}
531
fc560a26
TH
532static void update_domain_attr_tree(struct sched_domain_attr *dattr,
533 struct cpuset *root_cs)
f5393693 534{
fc560a26 535 struct cpuset *cp;
492eb21b 536 struct cgroup_subsys_state *pos_css;
f5393693 537
fc560a26 538 rcu_read_lock();
492eb21b 539 cpuset_for_each_descendant_pre(cp, pos_css, root_cs) {
bd8815a6
TH
540 if (cp == root_cs)
541 continue;
542
fc560a26
TH
543 /* skip the whole subtree if @cp doesn't have any CPU */
544 if (cpumask_empty(cp->cpus_allowed)) {
492eb21b 545 pos_css = css_rightmost_descendant(pos_css);
f5393693 546 continue;
fc560a26 547 }
f5393693
LJ
548
549 if (is_sched_load_balance(cp))
550 update_domain_attr(dattr, cp);
f5393693 551 }
fc560a26 552 rcu_read_unlock();
f5393693
LJ
553}
554
029190c5 555/*
cf417141
MK
556 * generate_sched_domains()
557 *
558 * This function builds a partial partition of the systems CPUs
559 * A 'partial partition' is a set of non-overlapping subsets whose
560 * union is a subset of that set.
0a0fca9d 561 * The output of this function needs to be passed to kernel/sched/core.c
cf417141
MK
562 * partition_sched_domains() routine, which will rebuild the scheduler's
563 * load balancing domains (sched domains) as specified by that partial
564 * partition.
029190c5 565 *
45ce80fb 566 * See "What is sched_load_balance" in Documentation/cgroups/cpusets.txt
029190c5
PJ
567 * for a background explanation of this.
568 *
569 * Does not return errors, on the theory that the callers of this
570 * routine would rather not worry about failures to rebuild sched
571 * domains when operating in the severe memory shortage situations
572 * that could cause allocation failures below.
573 *
5d21cc2d 574 * Must be called with cpuset_mutex held.
029190c5
PJ
575 *
576 * The three key local variables below are:
aeed6824 577 * q - a linked-list queue of cpuset pointers, used to implement a
029190c5
PJ
578 * top-down scan of all cpusets. This scan loads a pointer
579 * to each cpuset marked is_sched_load_balance into the
580 * array 'csa'. For our purposes, rebuilding the schedulers
581 * sched domains, we can ignore !is_sched_load_balance cpusets.
582 * csa - (for CpuSet Array) Array of pointers to all the cpusets
583 * that need to be load balanced, for convenient iterative
584 * access by the subsequent code that finds the best partition,
585 * i.e the set of domains (subsets) of CPUs such that the
586 * cpus_allowed of every cpuset marked is_sched_load_balance
587 * is a subset of one of these domains, while there are as
588 * many such domains as possible, each as small as possible.
589 * doms - Conversion of 'csa' to an array of cpumasks, for passing to
0a0fca9d 590 * the kernel/sched/core.c routine partition_sched_domains() in a
029190c5
PJ
591 * convenient format, that can be easily compared to the prior
592 * value to determine what partition elements (sched domains)
593 * were changed (added or removed.)
594 *
595 * Finding the best partition (set of domains):
596 * The triple nested loops below over i, j, k scan over the
597 * load balanced cpusets (using the array of cpuset pointers in
598 * csa[]) looking for pairs of cpusets that have overlapping
599 * cpus_allowed, but which don't have the same 'pn' partition
600 * number and gives them in the same partition number. It keeps
601 * looping on the 'restart' label until it can no longer find
602 * any such pairs.
603 *
604 * The union of the cpus_allowed masks from the set of
605 * all cpusets having the same 'pn' value then form the one
606 * element of the partition (one sched domain) to be passed to
607 * partition_sched_domains().
608 */
acc3f5d7 609static int generate_sched_domains(cpumask_var_t **domains,
cf417141 610 struct sched_domain_attr **attributes)
029190c5 611{
029190c5
PJ
612 struct cpuset *cp; /* scans q */
613 struct cpuset **csa; /* array of all cpuset ptrs */
614 int csn; /* how many cpuset ptrs in csa so far */
615 int i, j, k; /* indices for partition finding loops */
acc3f5d7 616 cpumask_var_t *doms; /* resulting partition; i.e. sched domains */
1d3504fc 617 struct sched_domain_attr *dattr; /* attributes for custom domains */
1583715d 618 int ndoms = 0; /* number of sched domains in result */
6af866af 619 int nslot; /* next empty doms[] struct cpumask slot */
492eb21b 620 struct cgroup_subsys_state *pos_css;
029190c5 621
029190c5 622 doms = NULL;
1d3504fc 623 dattr = NULL;
cf417141 624 csa = NULL;
029190c5
PJ
625
626 /* Special case for the 99% of systems with one, full, sched domain */
627 if (is_sched_load_balance(&top_cpuset)) {
acc3f5d7
RR
628 ndoms = 1;
629 doms = alloc_sched_domains(ndoms);
029190c5 630 if (!doms)
cf417141
MK
631 goto done;
632
1d3504fc
HS
633 dattr = kmalloc(sizeof(struct sched_domain_attr), GFP_KERNEL);
634 if (dattr) {
635 *dattr = SD_ATTR_INIT;
93a65575 636 update_domain_attr_tree(dattr, &top_cpuset);
1d3504fc 637 }
8b5f1c52 638 cpumask_copy(doms[0], top_cpuset.effective_cpus);
cf417141 639
cf417141 640 goto done;
029190c5
PJ
641 }
642
664eedde 643 csa = kmalloc(nr_cpusets() * sizeof(cp), GFP_KERNEL);
029190c5
PJ
644 if (!csa)
645 goto done;
646 csn = 0;
647
fc560a26 648 rcu_read_lock();
492eb21b 649 cpuset_for_each_descendant_pre(cp, pos_css, &top_cpuset) {
bd8815a6
TH
650 if (cp == &top_cpuset)
651 continue;
f5393693 652 /*
fc560a26
TH
653 * Continue traversing beyond @cp iff @cp has some CPUs and
654 * isn't load balancing. The former is obvious. The
655 * latter: All child cpusets contain a subset of the
656 * parent's cpus, so just skip them, and then we call
657 * update_domain_attr_tree() to calc relax_domain_level of
658 * the corresponding sched domain.
f5393693 659 */
fc560a26
TH
660 if (!cpumask_empty(cp->cpus_allowed) &&
661 !is_sched_load_balance(cp))
f5393693 662 continue;
489a5393 663
fc560a26
TH
664 if (is_sched_load_balance(cp))
665 csa[csn++] = cp;
666
667 /* skip @cp's subtree */
492eb21b 668 pos_css = css_rightmost_descendant(pos_css);
fc560a26
TH
669 }
670 rcu_read_unlock();
029190c5
PJ
671
672 for (i = 0; i < csn; i++)
673 csa[i]->pn = i;
674 ndoms = csn;
675
676restart:
677 /* Find the best partition (set of sched domains) */
678 for (i = 0; i < csn; i++) {
679 struct cpuset *a = csa[i];
680 int apn = a->pn;
681
682 for (j = 0; j < csn; j++) {
683 struct cpuset *b = csa[j];
684 int bpn = b->pn;
685
686 if (apn != bpn && cpusets_overlap(a, b)) {
687 for (k = 0; k < csn; k++) {
688 struct cpuset *c = csa[k];
689
690 if (c->pn == bpn)
691 c->pn = apn;
692 }
693 ndoms--; /* one less element */
694 goto restart;
695 }
696 }
697 }
698
cf417141
MK
699 /*
700 * Now we know how many domains to create.
701 * Convert <csn, csa> to <ndoms, doms> and populate cpu masks.
702 */
acc3f5d7 703 doms = alloc_sched_domains(ndoms);
700018e0 704 if (!doms)
cf417141 705 goto done;
cf417141
MK
706
707 /*
708 * The rest of the code, including the scheduler, can deal with
709 * dattr==NULL case. No need to abort if alloc fails.
710 */
1d3504fc 711 dattr = kmalloc(ndoms * sizeof(struct sched_domain_attr), GFP_KERNEL);
029190c5
PJ
712
713 for (nslot = 0, i = 0; i < csn; i++) {
714 struct cpuset *a = csa[i];
6af866af 715 struct cpumask *dp;
029190c5
PJ
716 int apn = a->pn;
717
cf417141
MK
718 if (apn < 0) {
719 /* Skip completed partitions */
720 continue;
721 }
722
acc3f5d7 723 dp = doms[nslot];
cf417141
MK
724
725 if (nslot == ndoms) {
726 static int warnings = 10;
727 if (warnings) {
12d3089c
FF
728 pr_warn("rebuild_sched_domains confused: nslot %d, ndoms %d, csn %d, i %d, apn %d\n",
729 nslot, ndoms, csn, i, apn);
cf417141 730 warnings--;
029190c5 731 }
cf417141
MK
732 continue;
733 }
029190c5 734
6af866af 735 cpumask_clear(dp);
cf417141
MK
736 if (dattr)
737 *(dattr + nslot) = SD_ATTR_INIT;
738 for (j = i; j < csn; j++) {
739 struct cpuset *b = csa[j];
740
741 if (apn == b->pn) {
8b5f1c52 742 cpumask_or(dp, dp, b->effective_cpus);
cf417141
MK
743 if (dattr)
744 update_domain_attr_tree(dattr + nslot, b);
745
746 /* Done with this partition */
747 b->pn = -1;
029190c5 748 }
029190c5 749 }
cf417141 750 nslot++;
029190c5
PJ
751 }
752 BUG_ON(nslot != ndoms);
753
cf417141
MK
754done:
755 kfree(csa);
756
700018e0
LZ
757 /*
758 * Fallback to the default domain if kmalloc() failed.
759 * See comments in partition_sched_domains().
760 */
761 if (doms == NULL)
762 ndoms = 1;
763
cf417141
MK
764 *domains = doms;
765 *attributes = dattr;
766 return ndoms;
767}
768
769/*
770 * Rebuild scheduler domains.
771 *
699140ba
TH
772 * If the flag 'sched_load_balance' of any cpuset with non-empty
773 * 'cpus' changes, or if the 'cpus' allowed changes in any cpuset
774 * which has that flag enabled, or if any cpuset with a non-empty
775 * 'cpus' is removed, then call this routine to rebuild the
776 * scheduler's dynamic sched domains.
cf417141 777 *
5d21cc2d 778 * Call with cpuset_mutex held. Takes get_online_cpus().
cf417141 779 */
699140ba 780static void rebuild_sched_domains_locked(void)
cf417141
MK
781{
782 struct sched_domain_attr *attr;
acc3f5d7 783 cpumask_var_t *doms;
cf417141
MK
784 int ndoms;
785
5d21cc2d 786 lockdep_assert_held(&cpuset_mutex);
86ef5c9a 787 get_online_cpus();
cf417141 788
5b16c2a4
LZ
789 /*
790 * We have raced with CPU hotplug. Don't do anything to avoid
791 * passing doms with offlined cpu to partition_sched_domains().
792 * Anyways, hotplug work item will rebuild sched domains.
793 */
8b5f1c52 794 if (!cpumask_equal(top_cpuset.effective_cpus, cpu_active_mask))
5b16c2a4
LZ
795 goto out;
796
cf417141 797 /* Generate domain masks and attrs */
cf417141 798 ndoms = generate_sched_domains(&doms, &attr);
cf417141
MK
799
800 /* Have scheduler rebuild the domains */
801 partition_sched_domains(ndoms, doms, attr);
5b16c2a4 802out:
86ef5c9a 803 put_online_cpus();
cf417141 804}
db7f47cf 805#else /* !CONFIG_SMP */
699140ba 806static void rebuild_sched_domains_locked(void)
db7f47cf
PM
807{
808}
db7f47cf 809#endif /* CONFIG_SMP */
029190c5 810
cf417141
MK
811void rebuild_sched_domains(void)
812{
5d21cc2d 813 mutex_lock(&cpuset_mutex);
699140ba 814 rebuild_sched_domains_locked();
5d21cc2d 815 mutex_unlock(&cpuset_mutex);
029190c5
PJ
816}
817
0b2f630a
MX
818/**
819 * update_tasks_cpumask - Update the cpumasks of tasks in the cpuset.
820 * @cs: the cpuset in which each task's cpus_allowed mask needs to be changed
0b2f630a 821 *
d66393e5
TH
822 * Iterate through each task of @cs updating its cpus_allowed to the
823 * effective cpuset's. As this function is called with cpuset_mutex held,
824 * cpuset membership stays stable.
0b2f630a 825 */
d66393e5 826static void update_tasks_cpumask(struct cpuset *cs)
0b2f630a 827{
d66393e5
TH
828 struct css_task_iter it;
829 struct task_struct *task;
830
831 css_task_iter_start(&cs->css, &it);
832 while ((task = css_task_iter_next(&it)))
ae1c8023 833 set_cpus_allowed_ptr(task, cs->effective_cpus);
d66393e5 834 css_task_iter_end(&it);
0b2f630a
MX
835}
836
5c5cc623 837/*
734d4513
LZ
838 * update_cpumasks_hier - Update effective cpumasks and tasks in the subtree
839 * @cs: the cpuset to consider
840 * @new_cpus: temp variable for calculating new effective_cpus
841 *
842 * When congifured cpumask is changed, the effective cpumasks of this cpuset
843 * and all its descendants need to be updated.
5c5cc623 844 *
734d4513 845 * On legacy hierachy, effective_cpus will be the same with cpu_allowed.
5c5cc623
LZ
846 *
847 * Called with cpuset_mutex held
848 */
734d4513 849static void update_cpumasks_hier(struct cpuset *cs, struct cpumask *new_cpus)
5c5cc623
LZ
850{
851 struct cpuset *cp;
492eb21b 852 struct cgroup_subsys_state *pos_css;
8b5f1c52 853 bool need_rebuild_sched_domains = false;
5c5cc623
LZ
854
855 rcu_read_lock();
734d4513
LZ
856 cpuset_for_each_descendant_pre(cp, pos_css, cs) {
857 struct cpuset *parent = parent_cs(cp);
858
859 cpumask_and(new_cpus, cp->cpus_allowed, parent->effective_cpus);
860
554b0d1c
LZ
861 /*
862 * If it becomes empty, inherit the effective mask of the
863 * parent, which is guaranteed to have some CPUs.
864 */
865 if (cpumask_empty(new_cpus))
866 cpumask_copy(new_cpus, parent->effective_cpus);
867
734d4513
LZ
868 /* Skip the whole subtree if the cpumask remains the same. */
869 if (cpumask_equal(new_cpus, cp->effective_cpus)) {
870 pos_css = css_rightmost_descendant(pos_css);
871 continue;
5c5cc623 872 }
734d4513 873
ec903c0c 874 if (!css_tryget_online(&cp->css))
5c5cc623
LZ
875 continue;
876 rcu_read_unlock();
877
734d4513
LZ
878 mutex_lock(&callback_mutex);
879 cpumask_copy(cp->effective_cpus, new_cpus);
880 mutex_unlock(&callback_mutex);
881
882 WARN_ON(!cgroup_on_dfl(cp->css.cgroup) &&
883 !cpumask_equal(cp->cpus_allowed, cp->effective_cpus));
884
d66393e5 885 update_tasks_cpumask(cp);
5c5cc623 886
8b5f1c52
LZ
887 /*
888 * If the effective cpumask of any non-empty cpuset is changed,
889 * we need to rebuild sched domains.
890 */
891 if (!cpumask_empty(cp->cpus_allowed) &&
892 is_sched_load_balance(cp))
893 need_rebuild_sched_domains = true;
894
5c5cc623
LZ
895 rcu_read_lock();
896 css_put(&cp->css);
897 }
898 rcu_read_unlock();
8b5f1c52
LZ
899
900 if (need_rebuild_sched_domains)
901 rebuild_sched_domains_locked();
5c5cc623
LZ
902}
903
58f4790b
CW
904/**
905 * update_cpumask - update the cpus_allowed mask of a cpuset and all tasks in it
906 * @cs: the cpuset to consider
fc34ac1d 907 * @trialcs: trial cpuset
58f4790b
CW
908 * @buf: buffer of cpu numbers written to this cpuset
909 */
645fcc9d
LZ
910static int update_cpumask(struct cpuset *cs, struct cpuset *trialcs,
911 const char *buf)
1da177e4 912{
58f4790b 913 int retval;
1da177e4 914
5f054e31 915 /* top_cpuset.cpus_allowed tracks cpu_online_mask; it's read-only */
4c4d50f7
PJ
916 if (cs == &top_cpuset)
917 return -EACCES;
918
6f7f02e7 919 /*
c8d9c90c 920 * An empty cpus_allowed is ok only if the cpuset has no tasks.
020958b6
PJ
921 * Since cpulist_parse() fails on an empty mask, we special case
922 * that parsing. The validate_change() call ensures that cpusets
923 * with tasks have cpus.
6f7f02e7 924 */
020958b6 925 if (!*buf) {
300ed6cb 926 cpumask_clear(trialcs->cpus_allowed);
6f7f02e7 927 } else {
300ed6cb 928 retval = cpulist_parse(buf, trialcs->cpus_allowed);
6f7f02e7
DR
929 if (retval < 0)
930 return retval;
37340746 931
5d8ba82c
LZ
932 if (!cpumask_subset(trialcs->cpus_allowed,
933 top_cpuset.cpus_allowed))
37340746 934 return -EINVAL;
6f7f02e7 935 }
029190c5 936
8707d8b8 937 /* Nothing to do if the cpus didn't change */
300ed6cb 938 if (cpumask_equal(cs->cpus_allowed, trialcs->cpus_allowed))
8707d8b8 939 return 0;
58f4790b 940
a73456f3
LZ
941 retval = validate_change(cs, trialcs);
942 if (retval < 0)
943 return retval;
944
3d3f26a7 945 mutex_lock(&callback_mutex);
300ed6cb 946 cpumask_copy(cs->cpus_allowed, trialcs->cpus_allowed);
3d3f26a7 947 mutex_unlock(&callback_mutex);
029190c5 948
734d4513
LZ
949 /* use trialcs->cpus_allowed as a temp variable */
950 update_cpumasks_hier(cs, trialcs->cpus_allowed);
85d7b949 951 return 0;
1da177e4
LT
952}
953
e4e364e8
PJ
954/*
955 * cpuset_migrate_mm
956 *
957 * Migrate memory region from one set of nodes to another.
958 *
959 * Temporarilly set tasks mems_allowed to target nodes of migration,
960 * so that the migration code can allocate pages on these nodes.
961 *
e4e364e8
PJ
962 * While the mm_struct we are migrating is typically from some
963 * other task, the task_struct mems_allowed that we are hacking
964 * is for our current task, which must allocate new pages for that
965 * migrating memory region.
e4e364e8
PJ
966 */
967
968static void cpuset_migrate_mm(struct mm_struct *mm, const nodemask_t *from,
969 const nodemask_t *to)
970{
971 struct task_struct *tsk = current;
972
e4e364e8 973 tsk->mems_allowed = *to;
e4e364e8
PJ
974
975 do_migrate_pages(mm, from, to, MPOL_MF_MOVE_ALL);
976
47295830 977 rcu_read_lock();
ae1c8023 978 guarantee_online_mems(task_cs(tsk), &tsk->mems_allowed);
47295830 979 rcu_read_unlock();
e4e364e8
PJ
980}
981
3b6766fe 982/*
58568d2a
MX
983 * cpuset_change_task_nodemask - change task's mems_allowed and mempolicy
984 * @tsk: the task to change
985 * @newmems: new nodes that the task will be set
986 *
987 * In order to avoid seeing no nodes if the old and new nodes are disjoint,
988 * we structure updates as setting all new allowed nodes, then clearing newly
989 * disallowed ones.
58568d2a
MX
990 */
991static void cpuset_change_task_nodemask(struct task_struct *tsk,
992 nodemask_t *newmems)
993{
b246272e 994 bool need_loop;
89e8a244 995
c0ff7453
MX
996 /*
997 * Allow tasks that have access to memory reserves because they have
998 * been OOM killed to get memory anywhere.
999 */
1000 if (unlikely(test_thread_flag(TIF_MEMDIE)))
1001 return;
1002 if (current->flags & PF_EXITING) /* Let dying task have memory */
1003 return;
1004
1005 task_lock(tsk);
b246272e
DR
1006 /*
1007 * Determine if a loop is necessary if another thread is doing
d26914d1 1008 * read_mems_allowed_begin(). If at least one node remains unchanged and
b246272e
DR
1009 * tsk does not have a mempolicy, then an empty nodemask will not be
1010 * possible when mems_allowed is larger than a word.
1011 */
1012 need_loop = task_has_mempolicy(tsk) ||
1013 !nodes_intersects(*newmems, tsk->mems_allowed);
c0ff7453 1014
0fc0287c
PZ
1015 if (need_loop) {
1016 local_irq_disable();
cc9a6c87 1017 write_seqcount_begin(&tsk->mems_allowed_seq);
0fc0287c 1018 }
c0ff7453 1019
cc9a6c87
MG
1020 nodes_or(tsk->mems_allowed, tsk->mems_allowed, *newmems);
1021 mpol_rebind_task(tsk, newmems, MPOL_REBIND_STEP1);
c0ff7453
MX
1022
1023 mpol_rebind_task(tsk, newmems, MPOL_REBIND_STEP2);
58568d2a 1024 tsk->mems_allowed = *newmems;
cc9a6c87 1025
0fc0287c 1026 if (need_loop) {
cc9a6c87 1027 write_seqcount_end(&tsk->mems_allowed_seq);
0fc0287c
PZ
1028 local_irq_enable();
1029 }
cc9a6c87 1030
c0ff7453 1031 task_unlock(tsk);
58568d2a
MX
1032}
1033
8793d854
PM
1034static void *cpuset_being_rebound;
1035
0b2f630a
MX
1036/**
1037 * update_tasks_nodemask - Update the nodemasks of tasks in the cpuset.
1038 * @cs: the cpuset in which each task's mems_allowed mask needs to be changed
0b2f630a 1039 *
d66393e5
TH
1040 * Iterate through each task of @cs updating its mems_allowed to the
1041 * effective cpuset's. As this function is called with cpuset_mutex held,
1042 * cpuset membership stays stable.
0b2f630a 1043 */
d66393e5 1044static void update_tasks_nodemask(struct cpuset *cs)
1da177e4 1045{
33ad801d 1046 static nodemask_t newmems; /* protected by cpuset_mutex */
d66393e5
TH
1047 struct css_task_iter it;
1048 struct task_struct *task;
59dac16f 1049
846a16bf 1050 cpuset_being_rebound = cs; /* causes mpol_dup() rebind */
4225399a 1051
ae1c8023 1052 guarantee_online_mems(cs, &newmems);
33ad801d 1053
4225399a 1054 /*
3b6766fe
LZ
1055 * The mpol_rebind_mm() call takes mmap_sem, which we couldn't
1056 * take while holding tasklist_lock. Forks can happen - the
1057 * mpol_dup() cpuset_being_rebound check will catch such forks,
1058 * and rebind their vma mempolicies too. Because we still hold
5d21cc2d 1059 * the global cpuset_mutex, we know that no other rebind effort
3b6766fe 1060 * will be contending for the global variable cpuset_being_rebound.
4225399a 1061 * It's ok if we rebind the same mm twice; mpol_rebind_mm()
04c19fa6 1062 * is idempotent. Also migrate pages in each mm to new nodes.
4225399a 1063 */
d66393e5
TH
1064 css_task_iter_start(&cs->css, &it);
1065 while ((task = css_task_iter_next(&it))) {
1066 struct mm_struct *mm;
1067 bool migrate;
1068
1069 cpuset_change_task_nodemask(task, &newmems);
1070
1071 mm = get_task_mm(task);
1072 if (!mm)
1073 continue;
1074
1075 migrate = is_memory_migrate(cs);
1076
1077 mpol_rebind_mm(mm, &cs->mems_allowed);
1078 if (migrate)
1079 cpuset_migrate_mm(mm, &cs->old_mems_allowed, &newmems);
1080 mmput(mm);
1081 }
1082 css_task_iter_end(&it);
4225399a 1083
33ad801d
LZ
1084 /*
1085 * All the tasks' nodemasks have been updated, update
1086 * cs->old_mems_allowed.
1087 */
1088 cs->old_mems_allowed = newmems;
1089
2df167a3 1090 /* We're done rebinding vmas to this cpuset's new mems_allowed. */
8793d854 1091 cpuset_being_rebound = NULL;
1da177e4
LT
1092}
1093
5c5cc623 1094/*
734d4513
LZ
1095 * update_nodemasks_hier - Update effective nodemasks and tasks in the subtree
1096 * @cs: the cpuset to consider
1097 * @new_mems: a temp variable for calculating new effective_mems
1098 *
1099 * When configured nodemask is changed, the effective nodemasks of this cpuset
1100 * and all its descendants need to be updated.
5c5cc623 1101 *
734d4513 1102 * On legacy hiearchy, effective_mems will be the same with mems_allowed.
5c5cc623
LZ
1103 *
1104 * Called with cpuset_mutex held
1105 */
734d4513 1106static void update_nodemasks_hier(struct cpuset *cs, nodemask_t *new_mems)
5c5cc623
LZ
1107{
1108 struct cpuset *cp;
492eb21b 1109 struct cgroup_subsys_state *pos_css;
5c5cc623
LZ
1110
1111 rcu_read_lock();
734d4513
LZ
1112 cpuset_for_each_descendant_pre(cp, pos_css, cs) {
1113 struct cpuset *parent = parent_cs(cp);
1114
1115 nodes_and(*new_mems, cp->mems_allowed, parent->effective_mems);
1116
554b0d1c
LZ
1117 /*
1118 * If it becomes empty, inherit the effective mask of the
1119 * parent, which is guaranteed to have some MEMs.
1120 */
1121 if (nodes_empty(*new_mems))
1122 *new_mems = parent->effective_mems;
1123
734d4513
LZ
1124 /* Skip the whole subtree if the nodemask remains the same. */
1125 if (nodes_equal(*new_mems, cp->effective_mems)) {
1126 pos_css = css_rightmost_descendant(pos_css);
1127 continue;
5c5cc623 1128 }
734d4513 1129
ec903c0c 1130 if (!css_tryget_online(&cp->css))
5c5cc623
LZ
1131 continue;
1132 rcu_read_unlock();
1133
734d4513
LZ
1134 mutex_lock(&callback_mutex);
1135 cp->effective_mems = *new_mems;
1136 mutex_unlock(&callback_mutex);
1137
1138 WARN_ON(!cgroup_on_dfl(cp->css.cgroup) &&
1139 nodes_equal(cp->mems_allowed, cp->effective_mems));
1140
d66393e5 1141 update_tasks_nodemask(cp);
5c5cc623
LZ
1142
1143 rcu_read_lock();
1144 css_put(&cp->css);
1145 }
1146 rcu_read_unlock();
1147}
1148
0b2f630a
MX
1149/*
1150 * Handle user request to change the 'mems' memory placement
1151 * of a cpuset. Needs to validate the request, update the
58568d2a
MX
1152 * cpusets mems_allowed, and for each task in the cpuset,
1153 * update mems_allowed and rebind task's mempolicy and any vma
1154 * mempolicies and if the cpuset is marked 'memory_migrate',
1155 * migrate the tasks pages to the new memory.
0b2f630a 1156 *
5d21cc2d 1157 * Call with cpuset_mutex held. May take callback_mutex during call.
0b2f630a
MX
1158 * Will take tasklist_lock, scan tasklist for tasks in cpuset cs,
1159 * lock each such tasks mm->mmap_sem, scan its vma's and rebind
1160 * their mempolicies to the cpusets new mems_allowed.
1161 */
645fcc9d
LZ
1162static int update_nodemask(struct cpuset *cs, struct cpuset *trialcs,
1163 const char *buf)
0b2f630a 1164{
0b2f630a
MX
1165 int retval;
1166
1167 /*
38d7bee9 1168 * top_cpuset.mems_allowed tracks node_stats[N_MEMORY];
0b2f630a
MX
1169 * it's read-only
1170 */
53feb297
MX
1171 if (cs == &top_cpuset) {
1172 retval = -EACCES;
1173 goto done;
1174 }
0b2f630a 1175
0b2f630a
MX
1176 /*
1177 * An empty mems_allowed is ok iff there are no tasks in the cpuset.
1178 * Since nodelist_parse() fails on an empty mask, we special case
1179 * that parsing. The validate_change() call ensures that cpusets
1180 * with tasks have memory.
1181 */
1182 if (!*buf) {
645fcc9d 1183 nodes_clear(trialcs->mems_allowed);
0b2f630a 1184 } else {
645fcc9d 1185 retval = nodelist_parse(buf, trialcs->mems_allowed);
0b2f630a
MX
1186 if (retval < 0)
1187 goto done;
1188
645fcc9d 1189 if (!nodes_subset(trialcs->mems_allowed,
5d8ba82c
LZ
1190 top_cpuset.mems_allowed)) {
1191 retval = -EINVAL;
53feb297
MX
1192 goto done;
1193 }
0b2f630a 1194 }
33ad801d
LZ
1195
1196 if (nodes_equal(cs->mems_allowed, trialcs->mems_allowed)) {
0b2f630a
MX
1197 retval = 0; /* Too easy - nothing to do */
1198 goto done;
1199 }
645fcc9d 1200 retval = validate_change(cs, trialcs);
0b2f630a
MX
1201 if (retval < 0)
1202 goto done;
1203
1204 mutex_lock(&callback_mutex);
645fcc9d 1205 cs->mems_allowed = trialcs->mems_allowed;
0b2f630a
MX
1206 mutex_unlock(&callback_mutex);
1207
734d4513
LZ
1208 /* use trialcs->mems_allowed as a temp variable */
1209 update_nodemasks_hier(cs, &cs->mems_allowed);
0b2f630a
MX
1210done:
1211 return retval;
1212}
1213
8793d854
PM
1214int current_cpuset_is_being_rebound(void)
1215{
1216 return task_cs(current) == cpuset_being_rebound;
1217}
1218
5be7a479 1219static int update_relax_domain_level(struct cpuset *cs, s64 val)
1d3504fc 1220{
db7f47cf 1221#ifdef CONFIG_SMP
60495e77 1222 if (val < -1 || val >= sched_domain_level_max)
30e0e178 1223 return -EINVAL;
db7f47cf 1224#endif
1d3504fc
HS
1225
1226 if (val != cs->relax_domain_level) {
1227 cs->relax_domain_level = val;
300ed6cb
LZ
1228 if (!cpumask_empty(cs->cpus_allowed) &&
1229 is_sched_load_balance(cs))
699140ba 1230 rebuild_sched_domains_locked();
1d3504fc
HS
1231 }
1232
1233 return 0;
1234}
1235
72ec7029 1236/**
950592f7
MX
1237 * update_tasks_flags - update the spread flags of tasks in the cpuset.
1238 * @cs: the cpuset in which each task's spread flags needs to be changed
950592f7 1239 *
d66393e5
TH
1240 * Iterate through each task of @cs updating its spread flags. As this
1241 * function is called with cpuset_mutex held, cpuset membership stays
1242 * stable.
950592f7 1243 */
d66393e5 1244static void update_tasks_flags(struct cpuset *cs)
950592f7 1245{
d66393e5
TH
1246 struct css_task_iter it;
1247 struct task_struct *task;
1248
1249 css_task_iter_start(&cs->css, &it);
1250 while ((task = css_task_iter_next(&it)))
1251 cpuset_update_task_spread_flag(cs, task);
1252 css_task_iter_end(&it);
950592f7
MX
1253}
1254
1da177e4
LT
1255/*
1256 * update_flag - read a 0 or a 1 in a file and update associated flag
78608366
PM
1257 * bit: the bit to update (see cpuset_flagbits_t)
1258 * cs: the cpuset to update
1259 * turning_on: whether the flag is being set or cleared
053199ed 1260 *
5d21cc2d 1261 * Call with cpuset_mutex held.
1da177e4
LT
1262 */
1263
700fe1ab
PM
1264static int update_flag(cpuset_flagbits_t bit, struct cpuset *cs,
1265 int turning_on)
1da177e4 1266{
645fcc9d 1267 struct cpuset *trialcs;
40b6a762 1268 int balance_flag_changed;
950592f7 1269 int spread_flag_changed;
950592f7 1270 int err;
1da177e4 1271
645fcc9d
LZ
1272 trialcs = alloc_trial_cpuset(cs);
1273 if (!trialcs)
1274 return -ENOMEM;
1275
1da177e4 1276 if (turning_on)
645fcc9d 1277 set_bit(bit, &trialcs->flags);
1da177e4 1278 else
645fcc9d 1279 clear_bit(bit, &trialcs->flags);
1da177e4 1280
645fcc9d 1281 err = validate_change(cs, trialcs);
85d7b949 1282 if (err < 0)
645fcc9d 1283 goto out;
029190c5 1284
029190c5 1285 balance_flag_changed = (is_sched_load_balance(cs) !=
645fcc9d 1286 is_sched_load_balance(trialcs));
029190c5 1287
950592f7
MX
1288 spread_flag_changed = ((is_spread_slab(cs) != is_spread_slab(trialcs))
1289 || (is_spread_page(cs) != is_spread_page(trialcs)));
1290
3d3f26a7 1291 mutex_lock(&callback_mutex);
645fcc9d 1292 cs->flags = trialcs->flags;
3d3f26a7 1293 mutex_unlock(&callback_mutex);
85d7b949 1294
300ed6cb 1295 if (!cpumask_empty(trialcs->cpus_allowed) && balance_flag_changed)
699140ba 1296 rebuild_sched_domains_locked();
029190c5 1297
950592f7 1298 if (spread_flag_changed)
d66393e5 1299 update_tasks_flags(cs);
645fcc9d
LZ
1300out:
1301 free_trial_cpuset(trialcs);
1302 return err;
1da177e4
LT
1303}
1304
3e0d98b9 1305/*
80f7228b 1306 * Frequency meter - How fast is some event occurring?
3e0d98b9
PJ
1307 *
1308 * These routines manage a digitally filtered, constant time based,
1309 * event frequency meter. There are four routines:
1310 * fmeter_init() - initialize a frequency meter.
1311 * fmeter_markevent() - called each time the event happens.
1312 * fmeter_getrate() - returns the recent rate of such events.
1313 * fmeter_update() - internal routine used to update fmeter.
1314 *
1315 * A common data structure is passed to each of these routines,
1316 * which is used to keep track of the state required to manage the
1317 * frequency meter and its digital filter.
1318 *
1319 * The filter works on the number of events marked per unit time.
1320 * The filter is single-pole low-pass recursive (IIR). The time unit
1321 * is 1 second. Arithmetic is done using 32-bit integers scaled to
1322 * simulate 3 decimal digits of precision (multiplied by 1000).
1323 *
1324 * With an FM_COEF of 933, and a time base of 1 second, the filter
1325 * has a half-life of 10 seconds, meaning that if the events quit
1326 * happening, then the rate returned from the fmeter_getrate()
1327 * will be cut in half each 10 seconds, until it converges to zero.
1328 *
1329 * It is not worth doing a real infinitely recursive filter. If more
1330 * than FM_MAXTICKS ticks have elapsed since the last filter event,
1331 * just compute FM_MAXTICKS ticks worth, by which point the level
1332 * will be stable.
1333 *
1334 * Limit the count of unprocessed events to FM_MAXCNT, so as to avoid
1335 * arithmetic overflow in the fmeter_update() routine.
1336 *
1337 * Given the simple 32 bit integer arithmetic used, this meter works
1338 * best for reporting rates between one per millisecond (msec) and
1339 * one per 32 (approx) seconds. At constant rates faster than one
1340 * per msec it maxes out at values just under 1,000,000. At constant
1341 * rates between one per msec, and one per second it will stabilize
1342 * to a value N*1000, where N is the rate of events per second.
1343 * At constant rates between one per second and one per 32 seconds,
1344 * it will be choppy, moving up on the seconds that have an event,
1345 * and then decaying until the next event. At rates slower than
1346 * about one in 32 seconds, it decays all the way back to zero between
1347 * each event.
1348 */
1349
1350#define FM_COEF 933 /* coefficient for half-life of 10 secs */
1351#define FM_MAXTICKS ((time_t)99) /* useless computing more ticks than this */
1352#define FM_MAXCNT 1000000 /* limit cnt to avoid overflow */
1353#define FM_SCALE 1000 /* faux fixed point scale */
1354
1355/* Initialize a frequency meter */
1356static void fmeter_init(struct fmeter *fmp)
1357{
1358 fmp->cnt = 0;
1359 fmp->val = 0;
1360 fmp->time = 0;
1361 spin_lock_init(&fmp->lock);
1362}
1363
1364/* Internal meter update - process cnt events and update value */
1365static void fmeter_update(struct fmeter *fmp)
1366{
1367 time_t now = get_seconds();
1368 time_t ticks = now - fmp->time;
1369
1370 if (ticks == 0)
1371 return;
1372
1373 ticks = min(FM_MAXTICKS, ticks);
1374 while (ticks-- > 0)
1375 fmp->val = (FM_COEF * fmp->val) / FM_SCALE;
1376 fmp->time = now;
1377
1378 fmp->val += ((FM_SCALE - FM_COEF) * fmp->cnt) / FM_SCALE;
1379 fmp->cnt = 0;
1380}
1381
1382/* Process any previous ticks, then bump cnt by one (times scale). */
1383static void fmeter_markevent(struct fmeter *fmp)
1384{
1385 spin_lock(&fmp->lock);
1386 fmeter_update(fmp);
1387 fmp->cnt = min(FM_MAXCNT, fmp->cnt + FM_SCALE);
1388 spin_unlock(&fmp->lock);
1389}
1390
1391/* Process any previous ticks, then return current value. */
1392static int fmeter_getrate(struct fmeter *fmp)
1393{
1394 int val;
1395
1396 spin_lock(&fmp->lock);
1397 fmeter_update(fmp);
1398 val = fmp->val;
1399 spin_unlock(&fmp->lock);
1400 return val;
1401}
1402
57fce0a6
TH
1403static struct cpuset *cpuset_attach_old_cs;
1404
5d21cc2d 1405/* Called by cgroups to determine if a cpuset is usable; cpuset_mutex held */
eb95419b
TH
1406static int cpuset_can_attach(struct cgroup_subsys_state *css,
1407 struct cgroup_taskset *tset)
f780bdb7 1408{
eb95419b 1409 struct cpuset *cs = css_cs(css);
bb9d97b6
TH
1410 struct task_struct *task;
1411 int ret;
1da177e4 1412
57fce0a6
TH
1413 /* used later by cpuset_attach() */
1414 cpuset_attach_old_cs = task_cs(cgroup_taskset_first(tset));
1415
5d21cc2d
TH
1416 mutex_lock(&cpuset_mutex);
1417
aa6ec29b 1418 /* allow moving tasks into an empty cpuset if on default hierarchy */
5d21cc2d 1419 ret = -ENOSPC;
aa6ec29b 1420 if (!cgroup_on_dfl(css->cgroup) &&
88fa523b 1421 (cpumask_empty(cs->cpus_allowed) || nodes_empty(cs->mems_allowed)))
5d21cc2d 1422 goto out_unlock;
9985b0ba 1423
924f0d9a 1424 cgroup_taskset_for_each(task, tset) {
bb9d97b6 1425 /*
14a40ffc
TH
1426 * Kthreads which disallow setaffinity shouldn't be moved
1427 * to a new cpuset; we don't want to change their cpu
1428 * affinity and isolating such threads by their set of
1429 * allowed nodes is unnecessary. Thus, cpusets are not
1430 * applicable for such threads. This prevents checking for
1431 * success of set_cpus_allowed_ptr() on all attached tasks
1432 * before cpus_allowed may be changed.
bb9d97b6 1433 */
5d21cc2d 1434 ret = -EINVAL;
14a40ffc 1435 if (task->flags & PF_NO_SETAFFINITY)
5d21cc2d
TH
1436 goto out_unlock;
1437 ret = security_task_setscheduler(task);
1438 if (ret)
1439 goto out_unlock;
bb9d97b6 1440 }
f780bdb7 1441
452477fa
TH
1442 /*
1443 * Mark attach is in progress. This makes validate_change() fail
1444 * changes which zero cpus/mems_allowed.
1445 */
1446 cs->attach_in_progress++;
5d21cc2d
TH
1447 ret = 0;
1448out_unlock:
1449 mutex_unlock(&cpuset_mutex);
1450 return ret;
8793d854 1451}
f780bdb7 1452
eb95419b 1453static void cpuset_cancel_attach(struct cgroup_subsys_state *css,
452477fa
TH
1454 struct cgroup_taskset *tset)
1455{
5d21cc2d 1456 mutex_lock(&cpuset_mutex);
eb95419b 1457 css_cs(css)->attach_in_progress--;
5d21cc2d 1458 mutex_unlock(&cpuset_mutex);
8793d854 1459}
1da177e4 1460
4e4c9a14 1461/*
5d21cc2d 1462 * Protected by cpuset_mutex. cpus_attach is used only by cpuset_attach()
4e4c9a14
TH
1463 * but we can't allocate it dynamically there. Define it global and
1464 * allocate from cpuset_init().
1465 */
1466static cpumask_var_t cpus_attach;
1467
eb95419b
TH
1468static void cpuset_attach(struct cgroup_subsys_state *css,
1469 struct cgroup_taskset *tset)
8793d854 1470{
67bd2c59 1471 /* static buf protected by cpuset_mutex */
4e4c9a14 1472 static nodemask_t cpuset_attach_nodemask_to;
8793d854 1473 struct mm_struct *mm;
bb9d97b6
TH
1474 struct task_struct *task;
1475 struct task_struct *leader = cgroup_taskset_first(tset);
eb95419b 1476 struct cpuset *cs = css_cs(css);
57fce0a6 1477 struct cpuset *oldcs = cpuset_attach_old_cs;
22fb52dd 1478
5d21cc2d
TH
1479 mutex_lock(&cpuset_mutex);
1480
4e4c9a14
TH
1481 /* prepare for attach */
1482 if (cs == &top_cpuset)
1483 cpumask_copy(cpus_attach, cpu_possible_mask);
1484 else
ae1c8023 1485 guarantee_online_cpus(cs, cpus_attach);
4e4c9a14 1486
ae1c8023 1487 guarantee_online_mems(cs, &cpuset_attach_nodemask_to);
4e4c9a14 1488
924f0d9a 1489 cgroup_taskset_for_each(task, tset) {
bb9d97b6
TH
1490 /*
1491 * can_attach beforehand should guarantee that this doesn't
1492 * fail. TODO: have a better way to handle failure here
1493 */
1494 WARN_ON_ONCE(set_cpus_allowed_ptr(task, cpus_attach));
1495
1496 cpuset_change_task_nodemask(task, &cpuset_attach_nodemask_to);
1497 cpuset_update_task_spread_flag(cs, task);
1498 }
22fb52dd 1499
f780bdb7
BB
1500 /*
1501 * Change mm, possibly for multiple threads in a threadgroup. This is
1502 * expensive and may sleep.
1503 */
ae1c8023 1504 cpuset_attach_nodemask_to = cs->effective_mems;
bb9d97b6 1505 mm = get_task_mm(leader);
4225399a 1506 if (mm) {
f780bdb7 1507 mpol_rebind_mm(mm, &cpuset_attach_nodemask_to);
f047cecf
LZ
1508
1509 /*
1510 * old_mems_allowed is the same with mems_allowed here, except
1511 * if this task is being moved automatically due to hotplug.
1512 * In that case @mems_allowed has been updated and is empty,
1513 * so @old_mems_allowed is the right nodesets that we migrate
1514 * mm from.
1515 */
1516 if (is_memory_migrate(cs)) {
ae1c8023 1517 cpuset_migrate_mm(mm, &oldcs->old_mems_allowed,
f780bdb7 1518 &cpuset_attach_nodemask_to);
f047cecf 1519 }
4225399a
PJ
1520 mmput(mm);
1521 }
452477fa 1522
33ad801d 1523 cs->old_mems_allowed = cpuset_attach_nodemask_to;
02bb5863 1524
452477fa 1525 cs->attach_in_progress--;
e44193d3
LZ
1526 if (!cs->attach_in_progress)
1527 wake_up(&cpuset_attach_wq);
5d21cc2d
TH
1528
1529 mutex_unlock(&cpuset_mutex);
1da177e4
LT
1530}
1531
1532/* The various types of files and directories in a cpuset file system */
1533
1534typedef enum {
45b07ef3 1535 FILE_MEMORY_MIGRATE,
1da177e4
LT
1536 FILE_CPULIST,
1537 FILE_MEMLIST,
1538 FILE_CPU_EXCLUSIVE,
1539 FILE_MEM_EXCLUSIVE,
78608366 1540 FILE_MEM_HARDWALL,
029190c5 1541 FILE_SCHED_LOAD_BALANCE,
1d3504fc 1542 FILE_SCHED_RELAX_DOMAIN_LEVEL,
3e0d98b9
PJ
1543 FILE_MEMORY_PRESSURE_ENABLED,
1544 FILE_MEMORY_PRESSURE,
825a46af
PJ
1545 FILE_SPREAD_PAGE,
1546 FILE_SPREAD_SLAB,
1da177e4
LT
1547} cpuset_filetype_t;
1548
182446d0
TH
1549static int cpuset_write_u64(struct cgroup_subsys_state *css, struct cftype *cft,
1550 u64 val)
700fe1ab 1551{
182446d0 1552 struct cpuset *cs = css_cs(css);
700fe1ab 1553 cpuset_filetype_t type = cft->private;
a903f086 1554 int retval = 0;
700fe1ab 1555
5d21cc2d 1556 mutex_lock(&cpuset_mutex);
a903f086
LZ
1557 if (!is_cpuset_online(cs)) {
1558 retval = -ENODEV;
5d21cc2d 1559 goto out_unlock;
a903f086 1560 }
700fe1ab
PM
1561
1562 switch (type) {
1da177e4 1563 case FILE_CPU_EXCLUSIVE:
700fe1ab 1564 retval = update_flag(CS_CPU_EXCLUSIVE, cs, val);
1da177e4
LT
1565 break;
1566 case FILE_MEM_EXCLUSIVE:
700fe1ab 1567 retval = update_flag(CS_MEM_EXCLUSIVE, cs, val);
1da177e4 1568 break;
78608366
PM
1569 case FILE_MEM_HARDWALL:
1570 retval = update_flag(CS_MEM_HARDWALL, cs, val);
1571 break;
029190c5 1572 case FILE_SCHED_LOAD_BALANCE:
700fe1ab 1573 retval = update_flag(CS_SCHED_LOAD_BALANCE, cs, val);
1d3504fc 1574 break;
45b07ef3 1575 case FILE_MEMORY_MIGRATE:
700fe1ab 1576 retval = update_flag(CS_MEMORY_MIGRATE, cs, val);
45b07ef3 1577 break;
3e0d98b9 1578 case FILE_MEMORY_PRESSURE_ENABLED:
700fe1ab 1579 cpuset_memory_pressure_enabled = !!val;
3e0d98b9
PJ
1580 break;
1581 case FILE_MEMORY_PRESSURE:
1582 retval = -EACCES;
1583 break;
825a46af 1584 case FILE_SPREAD_PAGE:
700fe1ab 1585 retval = update_flag(CS_SPREAD_PAGE, cs, val);
825a46af
PJ
1586 break;
1587 case FILE_SPREAD_SLAB:
700fe1ab 1588 retval = update_flag(CS_SPREAD_SLAB, cs, val);
825a46af 1589 break;
1da177e4
LT
1590 default:
1591 retval = -EINVAL;
700fe1ab 1592 break;
1da177e4 1593 }
5d21cc2d
TH
1594out_unlock:
1595 mutex_unlock(&cpuset_mutex);
1da177e4
LT
1596 return retval;
1597}
1598
182446d0
TH
1599static int cpuset_write_s64(struct cgroup_subsys_state *css, struct cftype *cft,
1600 s64 val)
5be7a479 1601{
182446d0 1602 struct cpuset *cs = css_cs(css);
5be7a479 1603 cpuset_filetype_t type = cft->private;
5d21cc2d 1604 int retval = -ENODEV;
5be7a479 1605
5d21cc2d
TH
1606 mutex_lock(&cpuset_mutex);
1607 if (!is_cpuset_online(cs))
1608 goto out_unlock;
e3712395 1609
5be7a479
PM
1610 switch (type) {
1611 case FILE_SCHED_RELAX_DOMAIN_LEVEL:
1612 retval = update_relax_domain_level(cs, val);
1613 break;
1614 default:
1615 retval = -EINVAL;
1616 break;
1617 }
5d21cc2d
TH
1618out_unlock:
1619 mutex_unlock(&cpuset_mutex);
5be7a479
PM
1620 return retval;
1621}
1622
e3712395
PM
1623/*
1624 * Common handling for a write to a "cpus" or "mems" file.
1625 */
451af504
TH
1626static ssize_t cpuset_write_resmask(struct kernfs_open_file *of,
1627 char *buf, size_t nbytes, loff_t off)
e3712395 1628{
451af504 1629 struct cpuset *cs = css_cs(of_css(of));
645fcc9d 1630 struct cpuset *trialcs;
5d21cc2d 1631 int retval = -ENODEV;
e3712395 1632
451af504
TH
1633 buf = strstrip(buf);
1634
3a5a6d0c
TH
1635 /*
1636 * CPU or memory hotunplug may leave @cs w/o any execution
1637 * resources, in which case the hotplug code asynchronously updates
1638 * configuration and transfers all tasks to the nearest ancestor
1639 * which can execute.
1640 *
1641 * As writes to "cpus" or "mems" may restore @cs's execution
1642 * resources, wait for the previously scheduled operations before
1643 * proceeding, so that we don't end up keep removing tasks added
1644 * after execution capability is restored.
1645 */
1646 flush_work(&cpuset_hotplug_work);
1647
5d21cc2d
TH
1648 mutex_lock(&cpuset_mutex);
1649 if (!is_cpuset_online(cs))
1650 goto out_unlock;
e3712395 1651
645fcc9d 1652 trialcs = alloc_trial_cpuset(cs);
b75f38d6
LZ
1653 if (!trialcs) {
1654 retval = -ENOMEM;
5d21cc2d 1655 goto out_unlock;
b75f38d6 1656 }
645fcc9d 1657
451af504 1658 switch (of_cft(of)->private) {
e3712395 1659 case FILE_CPULIST:
645fcc9d 1660 retval = update_cpumask(cs, trialcs, buf);
e3712395
PM
1661 break;
1662 case FILE_MEMLIST:
645fcc9d 1663 retval = update_nodemask(cs, trialcs, buf);
e3712395
PM
1664 break;
1665 default:
1666 retval = -EINVAL;
1667 break;
1668 }
645fcc9d
LZ
1669
1670 free_trial_cpuset(trialcs);
5d21cc2d
TH
1671out_unlock:
1672 mutex_unlock(&cpuset_mutex);
451af504 1673 return retval ?: nbytes;
e3712395
PM
1674}
1675
1da177e4
LT
1676/*
1677 * These ascii lists should be read in a single call, by using a user
1678 * buffer large enough to hold the entire map. If read in smaller
1679 * chunks, there is no guarantee of atomicity. Since the display format
1680 * used, list of ranges of sequential numbers, is variable length,
1681 * and since these maps can change value dynamically, one could read
1682 * gibberish by doing partial reads while a list was changing.
1da177e4 1683 */
2da8ca82 1684static int cpuset_common_seq_show(struct seq_file *sf, void *v)
1da177e4 1685{
2da8ca82
TH
1686 struct cpuset *cs = css_cs(seq_css(sf));
1687 cpuset_filetype_t type = seq_cft(sf)->private;
51ffe411
TH
1688 ssize_t count;
1689 char *buf, *s;
1690 int ret = 0;
1da177e4 1691
51ffe411
TH
1692 count = seq_get_buf(sf, &buf);
1693 s = buf;
1da177e4 1694
51ffe411 1695 mutex_lock(&callback_mutex);
1da177e4
LT
1696
1697 switch (type) {
1698 case FILE_CPULIST:
51ffe411 1699 s += cpulist_scnprintf(s, count, cs->cpus_allowed);
1da177e4
LT
1700 break;
1701 case FILE_MEMLIST:
51ffe411 1702 s += nodelist_scnprintf(s, count, cs->mems_allowed);
1da177e4 1703 break;
1da177e4 1704 default:
51ffe411
TH
1705 ret = -EINVAL;
1706 goto out_unlock;
1da177e4 1707 }
1da177e4 1708
51ffe411
TH
1709 if (s < buf + count - 1) {
1710 *s++ = '\n';
1711 seq_commit(sf, s - buf);
1712 } else {
1713 seq_commit(sf, -1);
1714 }
1715out_unlock:
1716 mutex_unlock(&callback_mutex);
1717 return ret;
1da177e4
LT
1718}
1719
182446d0 1720static u64 cpuset_read_u64(struct cgroup_subsys_state *css, struct cftype *cft)
700fe1ab 1721{
182446d0 1722 struct cpuset *cs = css_cs(css);
700fe1ab
PM
1723 cpuset_filetype_t type = cft->private;
1724 switch (type) {
1725 case FILE_CPU_EXCLUSIVE:
1726 return is_cpu_exclusive(cs);
1727 case FILE_MEM_EXCLUSIVE:
1728 return is_mem_exclusive(cs);
78608366
PM
1729 case FILE_MEM_HARDWALL:
1730 return is_mem_hardwall(cs);
700fe1ab
PM
1731 case FILE_SCHED_LOAD_BALANCE:
1732 return is_sched_load_balance(cs);
1733 case FILE_MEMORY_MIGRATE:
1734 return is_memory_migrate(cs);
1735 case FILE_MEMORY_PRESSURE_ENABLED:
1736 return cpuset_memory_pressure_enabled;
1737 case FILE_MEMORY_PRESSURE:
1738 return fmeter_getrate(&cs->fmeter);
1739 case FILE_SPREAD_PAGE:
1740 return is_spread_page(cs);
1741 case FILE_SPREAD_SLAB:
1742 return is_spread_slab(cs);
1743 default:
1744 BUG();
1745 }
cf417141
MK
1746
1747 /* Unreachable but makes gcc happy */
1748 return 0;
700fe1ab 1749}
1da177e4 1750
182446d0 1751static s64 cpuset_read_s64(struct cgroup_subsys_state *css, struct cftype *cft)
5be7a479 1752{
182446d0 1753 struct cpuset *cs = css_cs(css);
5be7a479
PM
1754 cpuset_filetype_t type = cft->private;
1755 switch (type) {
1756 case FILE_SCHED_RELAX_DOMAIN_LEVEL:
1757 return cs->relax_domain_level;
1758 default:
1759 BUG();
1760 }
cf417141
MK
1761
1762 /* Unrechable but makes gcc happy */
1763 return 0;
5be7a479
PM
1764}
1765
1da177e4
LT
1766
1767/*
1768 * for the common functions, 'private' gives the type of file
1769 */
1770
addf2c73
PM
1771static struct cftype files[] = {
1772 {
1773 .name = "cpus",
2da8ca82 1774 .seq_show = cpuset_common_seq_show,
451af504 1775 .write = cpuset_write_resmask,
e3712395 1776 .max_write_len = (100U + 6 * NR_CPUS),
addf2c73
PM
1777 .private = FILE_CPULIST,
1778 },
1779
1780 {
1781 .name = "mems",
2da8ca82 1782 .seq_show = cpuset_common_seq_show,
451af504 1783 .write = cpuset_write_resmask,
e3712395 1784 .max_write_len = (100U + 6 * MAX_NUMNODES),
addf2c73
PM
1785 .private = FILE_MEMLIST,
1786 },
1787
1788 {
1789 .name = "cpu_exclusive",
1790 .read_u64 = cpuset_read_u64,
1791 .write_u64 = cpuset_write_u64,
1792 .private = FILE_CPU_EXCLUSIVE,
1793 },
1794
1795 {
1796 .name = "mem_exclusive",
1797 .read_u64 = cpuset_read_u64,
1798 .write_u64 = cpuset_write_u64,
1799 .private = FILE_MEM_EXCLUSIVE,
1800 },
1801
78608366
PM
1802 {
1803 .name = "mem_hardwall",
1804 .read_u64 = cpuset_read_u64,
1805 .write_u64 = cpuset_write_u64,
1806 .private = FILE_MEM_HARDWALL,
1807 },
1808
addf2c73
PM
1809 {
1810 .name = "sched_load_balance",
1811 .read_u64 = cpuset_read_u64,
1812 .write_u64 = cpuset_write_u64,
1813 .private = FILE_SCHED_LOAD_BALANCE,
1814 },
1815
1816 {
1817 .name = "sched_relax_domain_level",
5be7a479
PM
1818 .read_s64 = cpuset_read_s64,
1819 .write_s64 = cpuset_write_s64,
addf2c73
PM
1820 .private = FILE_SCHED_RELAX_DOMAIN_LEVEL,
1821 },
1822
1823 {
1824 .name = "memory_migrate",
1825 .read_u64 = cpuset_read_u64,
1826 .write_u64 = cpuset_write_u64,
1827 .private = FILE_MEMORY_MIGRATE,
1828 },
1829
1830 {
1831 .name = "memory_pressure",
1832 .read_u64 = cpuset_read_u64,
1833 .write_u64 = cpuset_write_u64,
1834 .private = FILE_MEMORY_PRESSURE,
099fca32 1835 .mode = S_IRUGO,
addf2c73
PM
1836 },
1837
1838 {
1839 .name = "memory_spread_page",
1840 .read_u64 = cpuset_read_u64,
1841 .write_u64 = cpuset_write_u64,
1842 .private = FILE_SPREAD_PAGE,
1843 },
1844
1845 {
1846 .name = "memory_spread_slab",
1847 .read_u64 = cpuset_read_u64,
1848 .write_u64 = cpuset_write_u64,
1849 .private = FILE_SPREAD_SLAB,
1850 },
3e0d98b9 1851
4baf6e33
TH
1852 {
1853 .name = "memory_pressure_enabled",
1854 .flags = CFTYPE_ONLY_ON_ROOT,
1855 .read_u64 = cpuset_read_u64,
1856 .write_u64 = cpuset_write_u64,
1857 .private = FILE_MEMORY_PRESSURE_ENABLED,
1858 },
1da177e4 1859
4baf6e33
TH
1860 { } /* terminate */
1861};
1da177e4
LT
1862
1863/*
92fb9748 1864 * cpuset_css_alloc - allocate a cpuset css
c9e5fe66 1865 * cgrp: control group that the new cpuset will be part of
1da177e4
LT
1866 */
1867
eb95419b
TH
1868static struct cgroup_subsys_state *
1869cpuset_css_alloc(struct cgroup_subsys_state *parent_css)
1da177e4 1870{
c8f699bb 1871 struct cpuset *cs;
1da177e4 1872
eb95419b 1873 if (!parent_css)
8793d854 1874 return &top_cpuset.css;
033fa1c5 1875
c8f699bb 1876 cs = kzalloc(sizeof(*cs), GFP_KERNEL);
1da177e4 1877 if (!cs)
8793d854 1878 return ERR_PTR(-ENOMEM);
e2b9a3d7
LZ
1879 if (!alloc_cpumask_var(&cs->cpus_allowed, GFP_KERNEL))
1880 goto free_cs;
1881 if (!alloc_cpumask_var(&cs->effective_cpus, GFP_KERNEL))
1882 goto free_cpus;
1da177e4 1883
029190c5 1884 set_bit(CS_SCHED_LOAD_BALANCE, &cs->flags);
300ed6cb 1885 cpumask_clear(cs->cpus_allowed);
f9a86fcb 1886 nodes_clear(cs->mems_allowed);
e2b9a3d7
LZ
1887 cpumask_clear(cs->effective_cpus);
1888 nodes_clear(cs->effective_mems);
3e0d98b9 1889 fmeter_init(&cs->fmeter);
1d3504fc 1890 cs->relax_domain_level = -1;
1da177e4 1891
c8f699bb 1892 return &cs->css;
e2b9a3d7
LZ
1893
1894free_cpus:
1895 free_cpumask_var(cs->cpus_allowed);
1896free_cs:
1897 kfree(cs);
1898 return ERR_PTR(-ENOMEM);
c8f699bb
TH
1899}
1900
eb95419b 1901static int cpuset_css_online(struct cgroup_subsys_state *css)
c8f699bb 1902{
eb95419b 1903 struct cpuset *cs = css_cs(css);
c431069f 1904 struct cpuset *parent = parent_cs(cs);
ae8086ce 1905 struct cpuset *tmp_cs;
492eb21b 1906 struct cgroup_subsys_state *pos_css;
c8f699bb
TH
1907
1908 if (!parent)
1909 return 0;
1910
5d21cc2d
TH
1911 mutex_lock(&cpuset_mutex);
1912
efeb77b2 1913 set_bit(CS_ONLINE, &cs->flags);
c8f699bb
TH
1914 if (is_spread_page(parent))
1915 set_bit(CS_SPREAD_PAGE, &cs->flags);
1916 if (is_spread_slab(parent))
1917 set_bit(CS_SPREAD_SLAB, &cs->flags);
1da177e4 1918
664eedde 1919 cpuset_inc();
033fa1c5 1920
e2b9a3d7
LZ
1921 mutex_lock(&callback_mutex);
1922 if (cgroup_on_dfl(cs->css.cgroup)) {
1923 cpumask_copy(cs->effective_cpus, parent->effective_cpus);
1924 cs->effective_mems = parent->effective_mems;
1925 }
1926 mutex_unlock(&callback_mutex);
1927
eb95419b 1928 if (!test_bit(CGRP_CPUSET_CLONE_CHILDREN, &css->cgroup->flags))
5d21cc2d 1929 goto out_unlock;
033fa1c5
TH
1930
1931 /*
1932 * Clone @parent's configuration if CGRP_CPUSET_CLONE_CHILDREN is
1933 * set. This flag handling is implemented in cgroup core for
1934 * histrical reasons - the flag may be specified during mount.
1935 *
1936 * Currently, if any sibling cpusets have exclusive cpus or mem, we
1937 * refuse to clone the configuration - thereby refusing the task to
1938 * be entered, and as a result refusing the sys_unshare() or
1939 * clone() which initiated it. If this becomes a problem for some
1940 * users who wish to allow that scenario, then this could be
1941 * changed to grant parent->cpus_allowed-sibling_cpus_exclusive
1942 * (and likewise for mems) to the new cgroup.
1943 */
ae8086ce 1944 rcu_read_lock();
492eb21b 1945 cpuset_for_each_child(tmp_cs, pos_css, parent) {
ae8086ce
TH
1946 if (is_mem_exclusive(tmp_cs) || is_cpu_exclusive(tmp_cs)) {
1947 rcu_read_unlock();
5d21cc2d 1948 goto out_unlock;
ae8086ce 1949 }
033fa1c5 1950 }
ae8086ce 1951 rcu_read_unlock();
033fa1c5
TH
1952
1953 mutex_lock(&callback_mutex);
1954 cs->mems_allowed = parent->mems_allowed;
1955 cpumask_copy(cs->cpus_allowed, parent->cpus_allowed);
1956 mutex_unlock(&callback_mutex);
5d21cc2d
TH
1957out_unlock:
1958 mutex_unlock(&cpuset_mutex);
c8f699bb
TH
1959 return 0;
1960}
1961
0b9e6965
ZH
1962/*
1963 * If the cpuset being removed has its flag 'sched_load_balance'
1964 * enabled, then simulate turning sched_load_balance off, which
1965 * will call rebuild_sched_domains_locked().
1966 */
1967
eb95419b 1968static void cpuset_css_offline(struct cgroup_subsys_state *css)
c8f699bb 1969{
eb95419b 1970 struct cpuset *cs = css_cs(css);
c8f699bb 1971
5d21cc2d 1972 mutex_lock(&cpuset_mutex);
c8f699bb
TH
1973
1974 if (is_sched_load_balance(cs))
1975 update_flag(CS_SCHED_LOAD_BALANCE, cs, 0);
1976
664eedde 1977 cpuset_dec();
efeb77b2 1978 clear_bit(CS_ONLINE, &cs->flags);
c8f699bb 1979
5d21cc2d 1980 mutex_unlock(&cpuset_mutex);
1da177e4
LT
1981}
1982
eb95419b 1983static void cpuset_css_free(struct cgroup_subsys_state *css)
1da177e4 1984{
eb95419b 1985 struct cpuset *cs = css_cs(css);
1da177e4 1986
e2b9a3d7 1987 free_cpumask_var(cs->effective_cpus);
300ed6cb 1988 free_cpumask_var(cs->cpus_allowed);
8793d854 1989 kfree(cs);
1da177e4
LT
1990}
1991
39bd0d15
LZ
1992static void cpuset_bind(struct cgroup_subsys_state *root_css)
1993{
1994 mutex_lock(&cpuset_mutex);
1995 mutex_lock(&callback_mutex);
1996
1997 if (cgroup_on_dfl(root_css->cgroup)) {
1998 cpumask_copy(top_cpuset.cpus_allowed, cpu_possible_mask);
1999 top_cpuset.mems_allowed = node_possible_map;
2000 } else {
2001 cpumask_copy(top_cpuset.cpus_allowed,
2002 top_cpuset.effective_cpus);
2003 top_cpuset.mems_allowed = top_cpuset.effective_mems;
2004 }
2005
2006 mutex_unlock(&callback_mutex);
2007 mutex_unlock(&cpuset_mutex);
2008}
2009
073219e9 2010struct cgroup_subsys cpuset_cgrp_subsys = {
39bd0d15
LZ
2011 .css_alloc = cpuset_css_alloc,
2012 .css_online = cpuset_css_online,
2013 .css_offline = cpuset_css_offline,
2014 .css_free = cpuset_css_free,
2015 .can_attach = cpuset_can_attach,
2016 .cancel_attach = cpuset_cancel_attach,
2017 .attach = cpuset_attach,
2018 .bind = cpuset_bind,
2019 .base_cftypes = files,
2020 .early_init = 1,
8793d854
PM
2021};
2022
1da177e4
LT
2023/**
2024 * cpuset_init - initialize cpusets at system boot
2025 *
2026 * Description: Initialize top_cpuset and the cpuset internal file system,
2027 **/
2028
2029int __init cpuset_init(void)
2030{
8793d854 2031 int err = 0;
1da177e4 2032
58568d2a
MX
2033 if (!alloc_cpumask_var(&top_cpuset.cpus_allowed, GFP_KERNEL))
2034 BUG();
e2b9a3d7
LZ
2035 if (!alloc_cpumask_var(&top_cpuset.effective_cpus, GFP_KERNEL))
2036 BUG();
58568d2a 2037
300ed6cb 2038 cpumask_setall(top_cpuset.cpus_allowed);
f9a86fcb 2039 nodes_setall(top_cpuset.mems_allowed);
e2b9a3d7
LZ
2040 cpumask_setall(top_cpuset.effective_cpus);
2041 nodes_setall(top_cpuset.effective_mems);
1da177e4 2042
3e0d98b9 2043 fmeter_init(&top_cpuset.fmeter);
029190c5 2044 set_bit(CS_SCHED_LOAD_BALANCE, &top_cpuset.flags);
1d3504fc 2045 top_cpuset.relax_domain_level = -1;
1da177e4 2046
1da177e4
LT
2047 err = register_filesystem(&cpuset_fs_type);
2048 if (err < 0)
8793d854
PM
2049 return err;
2050
2341d1b6
LZ
2051 if (!alloc_cpumask_var(&cpus_attach, GFP_KERNEL))
2052 BUG();
2053
8793d854 2054 return 0;
1da177e4
LT
2055}
2056
b1aac8bb 2057/*
cf417141 2058 * If CPU and/or memory hotplug handlers, below, unplug any CPUs
b1aac8bb
PJ
2059 * or memory nodes, we need to walk over the cpuset hierarchy,
2060 * removing that CPU or node from all cpusets. If this removes the
956db3ca
CW
2061 * last CPU or node from a cpuset, then move the tasks in the empty
2062 * cpuset to its next-highest non-empty parent.
b1aac8bb 2063 */
956db3ca
CW
2064static void remove_tasks_in_empty_cpuset(struct cpuset *cs)
2065{
2066 struct cpuset *parent;
2067
956db3ca
CW
2068 /*
2069 * Find its next-highest non-empty parent, (top cpuset
2070 * has online cpus, so can't be empty).
2071 */
c431069f 2072 parent = parent_cs(cs);
300ed6cb 2073 while (cpumask_empty(parent->cpus_allowed) ||
b4501295 2074 nodes_empty(parent->mems_allowed))
c431069f 2075 parent = parent_cs(parent);
956db3ca 2076
8cc99345 2077 if (cgroup_transfer_tasks(parent->css.cgroup, cs->css.cgroup)) {
12d3089c 2078 pr_err("cpuset: failed to transfer tasks out of empty cpuset ");
e61734c5
TH
2079 pr_cont_cgroup_name(cs->css.cgroup);
2080 pr_cont("\n");
8cc99345 2081 }
956db3ca
CW
2082}
2083
be4c9dd7
LZ
2084static void
2085hotplug_update_tasks_legacy(struct cpuset *cs,
2086 struct cpumask *new_cpus, nodemask_t *new_mems,
2087 bool cpus_updated, bool mems_updated)
390a36aa
LZ
2088{
2089 bool is_empty;
2090
2091 mutex_lock(&callback_mutex);
be4c9dd7
LZ
2092 cpumask_copy(cs->cpus_allowed, new_cpus);
2093 cpumask_copy(cs->effective_cpus, new_cpus);
2094 cs->mems_allowed = *new_mems;
2095 cs->effective_mems = *new_mems;
390a36aa
LZ
2096 mutex_unlock(&callback_mutex);
2097
2098 /*
2099 * Don't call update_tasks_cpumask() if the cpuset becomes empty,
2100 * as the tasks will be migratecd to an ancestor.
2101 */
be4c9dd7 2102 if (cpus_updated && !cpumask_empty(cs->cpus_allowed))
390a36aa 2103 update_tasks_cpumask(cs);
be4c9dd7 2104 if (mems_updated && !nodes_empty(cs->mems_allowed))
390a36aa
LZ
2105 update_tasks_nodemask(cs);
2106
2107 is_empty = cpumask_empty(cs->cpus_allowed) ||
2108 nodes_empty(cs->mems_allowed);
2109
2110 mutex_unlock(&cpuset_mutex);
2111
2112 /*
2113 * Move tasks to the nearest ancestor with execution resources,
2114 * This is full cgroup operation which will also call back into
2115 * cpuset. Should be done outside any lock.
2116 */
2117 if (is_empty)
2118 remove_tasks_in_empty_cpuset(cs);
2119
2120 mutex_lock(&cpuset_mutex);
2121}
2122
be4c9dd7
LZ
2123static void
2124hotplug_update_tasks(struct cpuset *cs,
2125 struct cpumask *new_cpus, nodemask_t *new_mems,
2126 bool cpus_updated, bool mems_updated)
390a36aa 2127{
be4c9dd7
LZ
2128 if (cpumask_empty(new_cpus))
2129 cpumask_copy(new_cpus, parent_cs(cs)->effective_cpus);
2130 if (nodes_empty(*new_mems))
2131 *new_mems = parent_cs(cs)->effective_mems;
2132
390a36aa 2133 mutex_lock(&callback_mutex);
be4c9dd7
LZ
2134 cpumask_copy(cs->effective_cpus, new_cpus);
2135 cs->effective_mems = *new_mems;
390a36aa
LZ
2136 mutex_unlock(&callback_mutex);
2137
be4c9dd7 2138 if (cpus_updated)
390a36aa 2139 update_tasks_cpumask(cs);
be4c9dd7 2140 if (mems_updated)
390a36aa
LZ
2141 update_tasks_nodemask(cs);
2142}
2143
deb7aa30 2144/**
388afd85 2145 * cpuset_hotplug_update_tasks - update tasks in a cpuset for hotunplug
deb7aa30 2146 * @cs: cpuset in interest
956db3ca 2147 *
deb7aa30
TH
2148 * Compare @cs's cpu and mem masks against top_cpuset and if some have gone
2149 * offline, update @cs accordingly. If @cs ends up with no CPU or memory,
2150 * all its tasks are moved to the nearest ancestor with both resources.
80d1fa64 2151 */
388afd85 2152static void cpuset_hotplug_update_tasks(struct cpuset *cs)
80d1fa64 2153{
be4c9dd7
LZ
2154 static cpumask_t new_cpus;
2155 static nodemask_t new_mems;
2156 bool cpus_updated;
2157 bool mems_updated;
e44193d3
LZ
2158retry:
2159 wait_event(cpuset_attach_wq, cs->attach_in_progress == 0);
80d1fa64 2160
5d21cc2d 2161 mutex_lock(&cpuset_mutex);
7ddf96b0 2162
e44193d3
LZ
2163 /*
2164 * We have raced with task attaching. We wait until attaching
2165 * is finished, so we won't attach a task to an empty cpuset.
2166 */
2167 if (cs->attach_in_progress) {
2168 mutex_unlock(&cpuset_mutex);
2169 goto retry;
2170 }
2171
be4c9dd7
LZ
2172 cpumask_and(&new_cpus, cs->cpus_allowed, parent_cs(cs)->effective_cpus);
2173 nodes_and(new_mems, cs->mems_allowed, parent_cs(cs)->effective_mems);
2174
2175 cpus_updated = !cpumask_equal(&new_cpus, cs->effective_cpus);
2176 mems_updated = !nodes_equal(new_mems, cs->effective_mems);
554b0d1c 2177
390a36aa 2178 if (cgroup_on_dfl(cs->css.cgroup))
be4c9dd7
LZ
2179 hotplug_update_tasks(cs, &new_cpus, &new_mems,
2180 cpus_updated, mems_updated);
390a36aa 2181 else
be4c9dd7
LZ
2182 hotplug_update_tasks_legacy(cs, &new_cpus, &new_mems,
2183 cpus_updated, mems_updated);
8d033948 2184
5d21cc2d 2185 mutex_unlock(&cpuset_mutex);
b1aac8bb
PJ
2186}
2187
deb7aa30 2188/**
3a5a6d0c 2189 * cpuset_hotplug_workfn - handle CPU/memory hotunplug for a cpuset
956db3ca 2190 *
deb7aa30
TH
2191 * This function is called after either CPU or memory configuration has
2192 * changed and updates cpuset accordingly. The top_cpuset is always
2193 * synchronized to cpu_active_mask and N_MEMORY, which is necessary in
2194 * order to make cpusets transparent (of no affect) on systems that are
2195 * actively using CPU hotplug but making no active use of cpusets.
956db3ca 2196 *
deb7aa30 2197 * Non-root cpusets are only affected by offlining. If any CPUs or memory
388afd85
LZ
2198 * nodes have been taken down, cpuset_hotplug_update_tasks() is invoked on
2199 * all descendants.
956db3ca 2200 *
deb7aa30
TH
2201 * Note that CPU offlining during suspend is ignored. We don't modify
2202 * cpusets across suspend/resume cycles at all.
956db3ca 2203 */
3a5a6d0c 2204static void cpuset_hotplug_workfn(struct work_struct *work)
b1aac8bb 2205{
5c5cc623
LZ
2206 static cpumask_t new_cpus;
2207 static nodemask_t new_mems;
deb7aa30 2208 bool cpus_updated, mems_updated;
7e88291b 2209 bool on_dfl = cgroup_on_dfl(top_cpuset.css.cgroup);
b1aac8bb 2210
5d21cc2d 2211 mutex_lock(&cpuset_mutex);
956db3ca 2212
deb7aa30
TH
2213 /* fetch the available cpus/mems and find out which changed how */
2214 cpumask_copy(&new_cpus, cpu_active_mask);
2215 new_mems = node_states[N_MEMORY];
7ddf96b0 2216
7e88291b
LZ
2217 cpus_updated = !cpumask_equal(top_cpuset.effective_cpus, &new_cpus);
2218 mems_updated = !nodes_equal(top_cpuset.effective_mems, new_mems);
7ddf96b0 2219
deb7aa30
TH
2220 /* synchronize cpus_allowed to cpu_active_mask */
2221 if (cpus_updated) {
2222 mutex_lock(&callback_mutex);
7e88291b
LZ
2223 if (!on_dfl)
2224 cpumask_copy(top_cpuset.cpus_allowed, &new_cpus);
1344ab9c 2225 cpumask_copy(top_cpuset.effective_cpus, &new_cpus);
deb7aa30
TH
2226 mutex_unlock(&callback_mutex);
2227 /* we don't mess with cpumasks of tasks in top_cpuset */
2228 }
b4501295 2229
deb7aa30
TH
2230 /* synchronize mems_allowed to N_MEMORY */
2231 if (mems_updated) {
deb7aa30 2232 mutex_lock(&callback_mutex);
7e88291b
LZ
2233 if (!on_dfl)
2234 top_cpuset.mems_allowed = new_mems;
1344ab9c 2235 top_cpuset.effective_mems = new_mems;
deb7aa30 2236 mutex_unlock(&callback_mutex);
d66393e5 2237 update_tasks_nodemask(&top_cpuset);
deb7aa30 2238 }
b4501295 2239
388afd85
LZ
2240 mutex_unlock(&cpuset_mutex);
2241
5c5cc623
LZ
2242 /* if cpus or mems changed, we need to propagate to descendants */
2243 if (cpus_updated || mems_updated) {
deb7aa30 2244 struct cpuset *cs;
492eb21b 2245 struct cgroup_subsys_state *pos_css;
f9b4fb8d 2246
fc560a26 2247 rcu_read_lock();
492eb21b 2248 cpuset_for_each_descendant_pre(cs, pos_css, &top_cpuset) {
ec903c0c 2249 if (cs == &top_cpuset || !css_tryget_online(&cs->css))
388afd85
LZ
2250 continue;
2251 rcu_read_unlock();
7ddf96b0 2252
388afd85 2253 cpuset_hotplug_update_tasks(cs);
b4501295 2254
388afd85
LZ
2255 rcu_read_lock();
2256 css_put(&cs->css);
2257 }
2258 rcu_read_unlock();
2259 }
8d033948 2260
deb7aa30 2261 /* rebuild sched domains if cpus_allowed has changed */
e0e80a02
LZ
2262 if (cpus_updated)
2263 rebuild_sched_domains();
b1aac8bb
PJ
2264}
2265
7ddf96b0 2266void cpuset_update_active_cpus(bool cpu_online)
4c4d50f7 2267{
3a5a6d0c
TH
2268 /*
2269 * We're inside cpu hotplug critical region which usually nests
2270 * inside cgroup synchronization. Bounce actual hotplug processing
2271 * to a work item to avoid reverse locking order.
2272 *
2273 * We still need to do partition_sched_domains() synchronously;
2274 * otherwise, the scheduler will get confused and put tasks to the
2275 * dead CPU. Fall back to the default single domain.
2276 * cpuset_hotplug_workfn() will rebuild it as necessary.
2277 */
2278 partition_sched_domains(1, NULL, NULL);
2279 schedule_work(&cpuset_hotplug_work);
4c4d50f7 2280}
4c4d50f7 2281
38837fc7 2282/*
38d7bee9
LJ
2283 * Keep top_cpuset.mems_allowed tracking node_states[N_MEMORY].
2284 * Call this routine anytime after node_states[N_MEMORY] changes.
a1cd2b13 2285 * See cpuset_update_active_cpus() for CPU hotplug handling.
38837fc7 2286 */
f481891f
MX
2287static int cpuset_track_online_nodes(struct notifier_block *self,
2288 unsigned long action, void *arg)
38837fc7 2289{
3a5a6d0c 2290 schedule_work(&cpuset_hotplug_work);
f481891f 2291 return NOTIFY_OK;
38837fc7 2292}
d8f10cb3
AM
2293
2294static struct notifier_block cpuset_track_online_nodes_nb = {
2295 .notifier_call = cpuset_track_online_nodes,
2296 .priority = 10, /* ??! */
2297};
38837fc7 2298
1da177e4
LT
2299/**
2300 * cpuset_init_smp - initialize cpus_allowed
2301 *
2302 * Description: Finish top cpuset after cpu, node maps are initialized
d8f10cb3 2303 */
1da177e4
LT
2304void __init cpuset_init_smp(void)
2305{
6ad4c188 2306 cpumask_copy(top_cpuset.cpus_allowed, cpu_active_mask);
38d7bee9 2307 top_cpuset.mems_allowed = node_states[N_MEMORY];
33ad801d 2308 top_cpuset.old_mems_allowed = top_cpuset.mems_allowed;
4c4d50f7 2309
e2b9a3d7
LZ
2310 cpumask_copy(top_cpuset.effective_cpus, cpu_active_mask);
2311 top_cpuset.effective_mems = node_states[N_MEMORY];
2312
d8f10cb3 2313 register_hotmemory_notifier(&cpuset_track_online_nodes_nb);
1da177e4
LT
2314}
2315
2316/**
1da177e4
LT
2317 * cpuset_cpus_allowed - return cpus_allowed mask from a tasks cpuset.
2318 * @tsk: pointer to task_struct from which to obtain cpuset->cpus_allowed.
6af866af 2319 * @pmask: pointer to struct cpumask variable to receive cpus_allowed set.
1da177e4 2320 *
300ed6cb 2321 * Description: Returns the cpumask_var_t cpus_allowed of the cpuset
1da177e4 2322 * attached to the specified @tsk. Guaranteed to return some non-empty
5f054e31 2323 * subset of cpu_online_mask, even if this means going outside the
1da177e4
LT
2324 * tasks cpuset.
2325 **/
2326
6af866af 2327void cpuset_cpus_allowed(struct task_struct *tsk, struct cpumask *pmask)
1da177e4 2328{
3d3f26a7 2329 mutex_lock(&callback_mutex);
b8dadcb5 2330 rcu_read_lock();
ae1c8023 2331 guarantee_online_cpus(task_cs(tsk), pmask);
b8dadcb5 2332 rcu_read_unlock();
897f0b3c 2333 mutex_unlock(&callback_mutex);
1da177e4
LT
2334}
2335
2baab4e9 2336void cpuset_cpus_allowed_fallback(struct task_struct *tsk)
9084bb82 2337{
9084bb82 2338 rcu_read_lock();
ae1c8023 2339 do_set_cpus_allowed(tsk, task_cs(tsk)->effective_cpus);
9084bb82
ON
2340 rcu_read_unlock();
2341
2342 /*
2343 * We own tsk->cpus_allowed, nobody can change it under us.
2344 *
2345 * But we used cs && cs->cpus_allowed lockless and thus can
2346 * race with cgroup_attach_task() or update_cpumask() and get
2347 * the wrong tsk->cpus_allowed. However, both cases imply the
2348 * subsequent cpuset_change_cpumask()->set_cpus_allowed_ptr()
2349 * which takes task_rq_lock().
2350 *
2351 * If we are called after it dropped the lock we must see all
2352 * changes in tsk_cs()->cpus_allowed. Otherwise we can temporary
2353 * set any mask even if it is not right from task_cs() pov,
2354 * the pending set_cpus_allowed_ptr() will fix things.
2baab4e9
PZ
2355 *
2356 * select_fallback_rq() will fix things ups and set cpu_possible_mask
2357 * if required.
9084bb82 2358 */
9084bb82
ON
2359}
2360
1da177e4
LT
2361void cpuset_init_current_mems_allowed(void)
2362{
f9a86fcb 2363 nodes_setall(current->mems_allowed);
1da177e4
LT
2364}
2365
909d75a3
PJ
2366/**
2367 * cpuset_mems_allowed - return mems_allowed mask from a tasks cpuset.
2368 * @tsk: pointer to task_struct from which to obtain cpuset->mems_allowed.
2369 *
2370 * Description: Returns the nodemask_t mems_allowed of the cpuset
2371 * attached to the specified @tsk. Guaranteed to return some non-empty
38d7bee9 2372 * subset of node_states[N_MEMORY], even if this means going outside the
909d75a3
PJ
2373 * tasks cpuset.
2374 **/
2375
2376nodemask_t cpuset_mems_allowed(struct task_struct *tsk)
2377{
2378 nodemask_t mask;
2379
3d3f26a7 2380 mutex_lock(&callback_mutex);
b8dadcb5 2381 rcu_read_lock();
ae1c8023 2382 guarantee_online_mems(task_cs(tsk), &mask);
b8dadcb5 2383 rcu_read_unlock();
3d3f26a7 2384 mutex_unlock(&callback_mutex);
909d75a3
PJ
2385
2386 return mask;
2387}
2388
d9fd8a6d 2389/**
19770b32
MG
2390 * cpuset_nodemask_valid_mems_allowed - check nodemask vs. curremt mems_allowed
2391 * @nodemask: the nodemask to be checked
d9fd8a6d 2392 *
19770b32 2393 * Are any of the nodes in the nodemask allowed in current->mems_allowed?
1da177e4 2394 */
19770b32 2395int cpuset_nodemask_valid_mems_allowed(nodemask_t *nodemask)
1da177e4 2396{
19770b32 2397 return nodes_intersects(*nodemask, current->mems_allowed);
1da177e4
LT
2398}
2399
9bf2229f 2400/*
78608366
PM
2401 * nearest_hardwall_ancestor() - Returns the nearest mem_exclusive or
2402 * mem_hardwall ancestor to the specified cpuset. Call holding
2403 * callback_mutex. If no ancestor is mem_exclusive or mem_hardwall
2404 * (an unusual configuration), then returns the root cpuset.
9bf2229f 2405 */
c9710d80 2406static struct cpuset *nearest_hardwall_ancestor(struct cpuset *cs)
9bf2229f 2407{
c431069f
TH
2408 while (!(is_mem_exclusive(cs) || is_mem_hardwall(cs)) && parent_cs(cs))
2409 cs = parent_cs(cs);
9bf2229f
PJ
2410 return cs;
2411}
2412
d9fd8a6d 2413/**
a1bc5a4e
DR
2414 * cpuset_node_allowed_softwall - Can we allocate on a memory node?
2415 * @node: is this an allowed node?
02a0e53d 2416 * @gfp_mask: memory allocation flags
d9fd8a6d 2417 *
a1bc5a4e
DR
2418 * If we're in interrupt, yes, we can always allocate. If __GFP_THISNODE is
2419 * set, yes, we can always allocate. If node is in our task's mems_allowed,
2420 * yes. If it's not a __GFP_HARDWALL request and this node is in the nearest
2421 * hardwalled cpuset ancestor to this task's cpuset, yes. If the task has been
2422 * OOM killed and has access to memory reserves as specified by the TIF_MEMDIE
2423 * flag, yes.
9bf2229f
PJ
2424 * Otherwise, no.
2425 *
a1bc5a4e
DR
2426 * If __GFP_HARDWALL is set, cpuset_node_allowed_softwall() reduces to
2427 * cpuset_node_allowed_hardwall(). Otherwise, cpuset_node_allowed_softwall()
2428 * might sleep, and might allow a node from an enclosing cpuset.
02a0e53d 2429 *
a1bc5a4e
DR
2430 * cpuset_node_allowed_hardwall() only handles the simpler case of hardwall
2431 * cpusets, and never sleeps.
02a0e53d
PJ
2432 *
2433 * The __GFP_THISNODE placement logic is really handled elsewhere,
2434 * by forcibly using a zonelist starting at a specified node, and by
2435 * (in get_page_from_freelist()) refusing to consider the zones for
2436 * any node on the zonelist except the first. By the time any such
2437 * calls get to this routine, we should just shut up and say 'yes'.
2438 *
9bf2229f 2439 * GFP_USER allocations are marked with the __GFP_HARDWALL bit,
c596d9f3
DR
2440 * and do not allow allocations outside the current tasks cpuset
2441 * unless the task has been OOM killed as is marked TIF_MEMDIE.
9bf2229f 2442 * GFP_KERNEL allocations are not so marked, so can escape to the
78608366 2443 * nearest enclosing hardwalled ancestor cpuset.
9bf2229f 2444 *
02a0e53d
PJ
2445 * Scanning up parent cpusets requires callback_mutex. The
2446 * __alloc_pages() routine only calls here with __GFP_HARDWALL bit
2447 * _not_ set if it's a GFP_KERNEL allocation, and all nodes in the
2448 * current tasks mems_allowed came up empty on the first pass over
2449 * the zonelist. So only GFP_KERNEL allocations, if all nodes in the
2450 * cpuset are short of memory, might require taking the callback_mutex
2451 * mutex.
9bf2229f 2452 *
36be57ff 2453 * The first call here from mm/page_alloc:get_page_from_freelist()
02a0e53d
PJ
2454 * has __GFP_HARDWALL set in gfp_mask, enforcing hardwall cpusets,
2455 * so no allocation on a node outside the cpuset is allowed (unless
2456 * in interrupt, of course).
36be57ff
PJ
2457 *
2458 * The second pass through get_page_from_freelist() doesn't even call
2459 * here for GFP_ATOMIC calls. For those calls, the __alloc_pages()
2460 * variable 'wait' is not set, and the bit ALLOC_CPUSET is not set
2461 * in alloc_flags. That logic and the checks below have the combined
2462 * affect that:
9bf2229f
PJ
2463 * in_interrupt - any node ok (current task context irrelevant)
2464 * GFP_ATOMIC - any node ok
c596d9f3 2465 * TIF_MEMDIE - any node ok
78608366 2466 * GFP_KERNEL - any node in enclosing hardwalled cpuset ok
9bf2229f 2467 * GFP_USER - only nodes in current tasks mems allowed ok.
36be57ff
PJ
2468 *
2469 * Rule:
a1bc5a4e 2470 * Don't call cpuset_node_allowed_softwall if you can't sleep, unless you
36be57ff
PJ
2471 * pass in the __GFP_HARDWALL flag set in gfp_flag, which disables
2472 * the code that might scan up ancestor cpusets and sleep.
02a0e53d 2473 */
a1bc5a4e 2474int __cpuset_node_allowed_softwall(int node, gfp_t gfp_mask)
1da177e4 2475{
c9710d80 2476 struct cpuset *cs; /* current cpuset ancestors */
29afd49b 2477 int allowed; /* is allocation in zone z allowed? */
9bf2229f 2478
9b819d20 2479 if (in_interrupt() || (gfp_mask & __GFP_THISNODE))
9bf2229f 2480 return 1;
92d1dbd2 2481 might_sleep_if(!(gfp_mask & __GFP_HARDWALL));
9bf2229f
PJ
2482 if (node_isset(node, current->mems_allowed))
2483 return 1;
c596d9f3
DR
2484 /*
2485 * Allow tasks that have access to memory reserves because they have
2486 * been OOM killed to get memory anywhere.
2487 */
2488 if (unlikely(test_thread_flag(TIF_MEMDIE)))
2489 return 1;
9bf2229f
PJ
2490 if (gfp_mask & __GFP_HARDWALL) /* If hardwall request, stop here */
2491 return 0;
2492
5563e770
BP
2493 if (current->flags & PF_EXITING) /* Let dying task have memory */
2494 return 1;
2495
9bf2229f 2496 /* Not hardwall and node outside mems_allowed: scan up cpusets */
3d3f26a7 2497 mutex_lock(&callback_mutex);
053199ed 2498
b8dadcb5 2499 rcu_read_lock();
78608366 2500 cs = nearest_hardwall_ancestor(task_cs(current));
99afb0fd 2501 allowed = node_isset(node, cs->mems_allowed);
b8dadcb5 2502 rcu_read_unlock();
053199ed 2503
3d3f26a7 2504 mutex_unlock(&callback_mutex);
9bf2229f 2505 return allowed;
1da177e4
LT
2506}
2507
02a0e53d 2508/*
a1bc5a4e
DR
2509 * cpuset_node_allowed_hardwall - Can we allocate on a memory node?
2510 * @node: is this an allowed node?
02a0e53d
PJ
2511 * @gfp_mask: memory allocation flags
2512 *
a1bc5a4e
DR
2513 * If we're in interrupt, yes, we can always allocate. If __GFP_THISNODE is
2514 * set, yes, we can always allocate. If node is in our task's mems_allowed,
2515 * yes. If the task has been OOM killed and has access to memory reserves as
2516 * specified by the TIF_MEMDIE flag, yes.
2517 * Otherwise, no.
02a0e53d
PJ
2518 *
2519 * The __GFP_THISNODE placement logic is really handled elsewhere,
2520 * by forcibly using a zonelist starting at a specified node, and by
2521 * (in get_page_from_freelist()) refusing to consider the zones for
2522 * any node on the zonelist except the first. By the time any such
2523 * calls get to this routine, we should just shut up and say 'yes'.
2524 *
a1bc5a4e
DR
2525 * Unlike the cpuset_node_allowed_softwall() variant, above,
2526 * this variant requires that the node be in the current task's
02a0e53d
PJ
2527 * mems_allowed or that we're in interrupt. It does not scan up the
2528 * cpuset hierarchy for the nearest enclosing mem_exclusive cpuset.
2529 * It never sleeps.
2530 */
a1bc5a4e 2531int __cpuset_node_allowed_hardwall(int node, gfp_t gfp_mask)
02a0e53d 2532{
02a0e53d
PJ
2533 if (in_interrupt() || (gfp_mask & __GFP_THISNODE))
2534 return 1;
02a0e53d
PJ
2535 if (node_isset(node, current->mems_allowed))
2536 return 1;
dedf8b79
DW
2537 /*
2538 * Allow tasks that have access to memory reserves because they have
2539 * been OOM killed to get memory anywhere.
2540 */
2541 if (unlikely(test_thread_flag(TIF_MEMDIE)))
2542 return 1;
02a0e53d
PJ
2543 return 0;
2544}
2545
825a46af 2546/**
6adef3eb
JS
2547 * cpuset_mem_spread_node() - On which node to begin search for a file page
2548 * cpuset_slab_spread_node() - On which node to begin search for a slab page
825a46af
PJ
2549 *
2550 * If a task is marked PF_SPREAD_PAGE or PF_SPREAD_SLAB (as for
2551 * tasks in a cpuset with is_spread_page or is_spread_slab set),
2552 * and if the memory allocation used cpuset_mem_spread_node()
2553 * to determine on which node to start looking, as it will for
2554 * certain page cache or slab cache pages such as used for file
2555 * system buffers and inode caches, then instead of starting on the
2556 * local node to look for a free page, rather spread the starting
2557 * node around the tasks mems_allowed nodes.
2558 *
2559 * We don't have to worry about the returned node being offline
2560 * because "it can't happen", and even if it did, it would be ok.
2561 *
2562 * The routines calling guarantee_online_mems() are careful to
2563 * only set nodes in task->mems_allowed that are online. So it
2564 * should not be possible for the following code to return an
2565 * offline node. But if it did, that would be ok, as this routine
2566 * is not returning the node where the allocation must be, only
2567 * the node where the search should start. The zonelist passed to
2568 * __alloc_pages() will include all nodes. If the slab allocator
2569 * is passed an offline node, it will fall back to the local node.
2570 * See kmem_cache_alloc_node().
2571 */
2572
6adef3eb 2573static int cpuset_spread_node(int *rotor)
825a46af
PJ
2574{
2575 int node;
2576
6adef3eb 2577 node = next_node(*rotor, current->mems_allowed);
825a46af
PJ
2578 if (node == MAX_NUMNODES)
2579 node = first_node(current->mems_allowed);
6adef3eb 2580 *rotor = node;
825a46af
PJ
2581 return node;
2582}
6adef3eb
JS
2583
2584int cpuset_mem_spread_node(void)
2585{
778d3b0f
MH
2586 if (current->cpuset_mem_spread_rotor == NUMA_NO_NODE)
2587 current->cpuset_mem_spread_rotor =
2588 node_random(&current->mems_allowed);
2589
6adef3eb
JS
2590 return cpuset_spread_node(&current->cpuset_mem_spread_rotor);
2591}
2592
2593int cpuset_slab_spread_node(void)
2594{
778d3b0f
MH
2595 if (current->cpuset_slab_spread_rotor == NUMA_NO_NODE)
2596 current->cpuset_slab_spread_rotor =
2597 node_random(&current->mems_allowed);
2598
6adef3eb
JS
2599 return cpuset_spread_node(&current->cpuset_slab_spread_rotor);
2600}
2601
825a46af
PJ
2602EXPORT_SYMBOL_GPL(cpuset_mem_spread_node);
2603
ef08e3b4 2604/**
bbe373f2
DR
2605 * cpuset_mems_allowed_intersects - Does @tsk1's mems_allowed intersect @tsk2's?
2606 * @tsk1: pointer to task_struct of some task.
2607 * @tsk2: pointer to task_struct of some other task.
2608 *
2609 * Description: Return true if @tsk1's mems_allowed intersects the
2610 * mems_allowed of @tsk2. Used by the OOM killer to determine if
2611 * one of the task's memory usage might impact the memory available
2612 * to the other.
ef08e3b4
PJ
2613 **/
2614
bbe373f2
DR
2615int cpuset_mems_allowed_intersects(const struct task_struct *tsk1,
2616 const struct task_struct *tsk2)
ef08e3b4 2617{
bbe373f2 2618 return nodes_intersects(tsk1->mems_allowed, tsk2->mems_allowed);
ef08e3b4
PJ
2619}
2620
f440d98f
LZ
2621#define CPUSET_NODELIST_LEN (256)
2622
75aa1994
DR
2623/**
2624 * cpuset_print_task_mems_allowed - prints task's cpuset and mems_allowed
fc34ac1d 2625 * @tsk: pointer to task_struct of some task.
75aa1994
DR
2626 *
2627 * Description: Prints @task's name, cpuset name, and cached copy of its
b8dadcb5 2628 * mems_allowed to the kernel log.
75aa1994
DR
2629 */
2630void cpuset_print_task_mems_allowed(struct task_struct *tsk)
2631{
f440d98f
LZ
2632 /* Statically allocated to prevent using excess stack. */
2633 static char cpuset_nodelist[CPUSET_NODELIST_LEN];
2634 static DEFINE_SPINLOCK(cpuset_buffer_lock);
b8dadcb5 2635 struct cgroup *cgrp;
75aa1994 2636
f440d98f 2637 spin_lock(&cpuset_buffer_lock);
b8dadcb5 2638 rcu_read_lock();
63f43f55 2639
b8dadcb5 2640 cgrp = task_cs(tsk)->css.cgroup;
75aa1994
DR
2641 nodelist_scnprintf(cpuset_nodelist, CPUSET_NODELIST_LEN,
2642 tsk->mems_allowed);
12d3089c 2643 pr_info("%s cpuset=", tsk->comm);
e61734c5
TH
2644 pr_cont_cgroup_name(cgrp);
2645 pr_cont(" mems_allowed=%s\n", cpuset_nodelist);
f440d98f 2646
cfb5966b 2647 rcu_read_unlock();
75aa1994
DR
2648 spin_unlock(&cpuset_buffer_lock);
2649}
2650
3e0d98b9
PJ
2651/*
2652 * Collection of memory_pressure is suppressed unless
2653 * this flag is enabled by writing "1" to the special
2654 * cpuset file 'memory_pressure_enabled' in the root cpuset.
2655 */
2656
c5b2aff8 2657int cpuset_memory_pressure_enabled __read_mostly;
3e0d98b9
PJ
2658
2659/**
2660 * cpuset_memory_pressure_bump - keep stats of per-cpuset reclaims.
2661 *
2662 * Keep a running average of the rate of synchronous (direct)
2663 * page reclaim efforts initiated by tasks in each cpuset.
2664 *
2665 * This represents the rate at which some task in the cpuset
2666 * ran low on memory on all nodes it was allowed to use, and
2667 * had to enter the kernels page reclaim code in an effort to
2668 * create more free memory by tossing clean pages or swapping
2669 * or writing dirty pages.
2670 *
2671 * Display to user space in the per-cpuset read-only file
2672 * "memory_pressure". Value displayed is an integer
2673 * representing the recent rate of entry into the synchronous
2674 * (direct) page reclaim by any task attached to the cpuset.
2675 **/
2676
2677void __cpuset_memory_pressure_bump(void)
2678{
b8dadcb5 2679 rcu_read_lock();
8793d854 2680 fmeter_markevent(&task_cs(current)->fmeter);
b8dadcb5 2681 rcu_read_unlock();
3e0d98b9
PJ
2682}
2683
8793d854 2684#ifdef CONFIG_PROC_PID_CPUSET
1da177e4
LT
2685/*
2686 * proc_cpuset_show()
2687 * - Print tasks cpuset path into seq_file.
2688 * - Used for /proc/<pid>/cpuset.
053199ed
PJ
2689 * - No need to task_lock(tsk) on this tsk->cpuset reference, as it
2690 * doesn't really matter if tsk->cpuset changes after we read it,
5d21cc2d 2691 * and we take cpuset_mutex, keeping cpuset_attach() from changing it
2df167a3 2692 * anyway.
1da177e4 2693 */
8d8b97ba 2694int proc_cpuset_show(struct seq_file *m, void *unused_v)
1da177e4 2695{
13b41b09 2696 struct pid *pid;
1da177e4 2697 struct task_struct *tsk;
e61734c5 2698 char *buf, *p;
8793d854 2699 struct cgroup_subsys_state *css;
99f89551 2700 int retval;
1da177e4 2701
99f89551 2702 retval = -ENOMEM;
e61734c5 2703 buf = kmalloc(PATH_MAX, GFP_KERNEL);
1da177e4 2704 if (!buf)
99f89551
EB
2705 goto out;
2706
2707 retval = -ESRCH;
13b41b09
EB
2708 pid = m->private;
2709 tsk = get_pid_task(pid, PIDTYPE_PID);
99f89551
EB
2710 if (!tsk)
2711 goto out_free;
1da177e4 2712
e61734c5 2713 retval = -ENAMETOOLONG;
27e89ae5 2714 rcu_read_lock();
073219e9 2715 css = task_css(tsk, cpuset_cgrp_id);
e61734c5 2716 p = cgroup_path(css->cgroup, buf, PATH_MAX);
27e89ae5 2717 rcu_read_unlock();
e61734c5 2718 if (!p)
27e89ae5 2719 goto out_put_task;
e61734c5 2720 seq_puts(m, p);
1da177e4 2721 seq_putc(m, '\n');
e61734c5 2722 retval = 0;
27e89ae5 2723out_put_task:
99f89551
EB
2724 put_task_struct(tsk);
2725out_free:
1da177e4 2726 kfree(buf);
99f89551 2727out:
1da177e4
LT
2728 return retval;
2729}
8793d854 2730#endif /* CONFIG_PROC_PID_CPUSET */
1da177e4 2731
d01d4827 2732/* Display task mems_allowed in /proc/<pid>/status file. */
df5f8314
EB
2733void cpuset_task_status_allowed(struct seq_file *m, struct task_struct *task)
2734{
fc34ac1d 2735 seq_puts(m, "Mems_allowed:\t");
30e8e136 2736 seq_nodemask(m, &task->mems_allowed);
fc34ac1d
FF
2737 seq_puts(m, "\n");
2738 seq_puts(m, "Mems_allowed_list:\t");
30e8e136 2739 seq_nodemask_list(m, &task->mems_allowed);
fc34ac1d 2740 seq_puts(m, "\n");
1da177e4 2741}