blob: 531b235e546f2af14dc79231124f22b446906039 [file] [log] [blame]
Linus Torvalds1da177e2005-04-16 15:20:36 -07001/*
2 * kernel/cpuset.c
3 *
4 * Processor and Memory placement constraints for sets of tasks.
5 *
6 * Copyright (C) 2003 BULL SA.
Paul Jackson029190c2007-10-18 23:40:20 -07007 * Copyright (C) 2004-2007 Silicon Graphics, Inc.
Paul Menage8793d852007-10-18 23:39:39 -07008 * Copyright (C) 2006 Google, Inc
Linus Torvalds1da177e2005-04-16 15:20:36 -07009 *
10 * Portions derived from Patrick Mochel's sysfs code.
11 * sysfs is Copyright (c) 2001-3 Patrick Mochel
Linus Torvalds1da177e2005-04-16 15:20:36 -070012 *
Paul Jackson825a46a2006-03-24 03:16:03 -080013 * 2003-10-10 Written by Simon Derr.
Linus Torvalds1da177e2005-04-16 15:20:36 -070014 * 2003-10-22 Updates by Stephen Hemminger.
Paul Jackson825a46a2006-03-24 03:16:03 -080015 * 2004 May-July Rework by Paul Jackson.
Paul Menage8793d852007-10-18 23:39:39 -070016 * 2006 Rework by Paul Menage to use generic cgroups
Linus Torvalds1da177e2005-04-16 15:20:36 -070017 *
18 * This file is subject to the terms and conditions of the GNU General Public
19 * License. See the file COPYING in the main directory of the Linux
20 * distribution for more details.
21 */
22
Linus Torvalds1da177e2005-04-16 15:20:36 -070023#include <linux/cpu.h>
24#include <linux/cpumask.h>
25#include <linux/cpuset.h>
26#include <linux/err.h>
27#include <linux/errno.h>
28#include <linux/file.h>
29#include <linux/fs.h>
30#include <linux/init.h>
31#include <linux/interrupt.h>
32#include <linux/kernel.h>
33#include <linux/kmod.h>
34#include <linux/list.h>
Paul Jackson68860ec2005-10-30 15:02:36 -080035#include <linux/mempolicy.h>
Linus Torvalds1da177e2005-04-16 15:20:36 -070036#include <linux/mm.h>
37#include <linux/module.h>
38#include <linux/mount.h>
39#include <linux/namei.h>
40#include <linux/pagemap.h>
41#include <linux/proc_fs.h>
Paul Jackson6b9c2602006-01-08 01:02:02 -080042#include <linux/rcupdate.h>
Linus Torvalds1da177e2005-04-16 15:20:36 -070043#include <linux/sched.h>
44#include <linux/seq_file.h>
David Quigley22fb52d2006-06-23 02:04:00 -070045#include <linux/security.h>
Linus Torvalds1da177e2005-04-16 15:20:36 -070046#include <linux/slab.h>
Linus Torvalds1da177e2005-04-16 15:20:36 -070047#include <linux/spinlock.h>
48#include <linux/stat.h>
49#include <linux/string.h>
50#include <linux/time.h>
51#include <linux/backing-dev.h>
52#include <linux/sort.h>
53
54#include <asm/uaccess.h>
55#include <asm/atomic.h>
Ingo Molnar3d3f26a2006-03-23 03:00:18 -080056#include <linux/mutex.h>
Paul Jackson029190c2007-10-18 23:40:20 -070057#include <linux/kfifo.h>
Cliff Wickman956db3c2008-02-07 00:14:43 -080058#include <linux/workqueue.h>
59#include <linux/cgroup.h>
Linus Torvalds1da177e2005-04-16 15:20:36 -070060
Paul Jackson202f72d2006-01-08 01:01:57 -080061/*
62 * Tracks how many cpusets are currently defined in system.
63 * When there is only one cpuset (the root cpuset) we can
64 * short circuit some hooks.
65 */
Paul Jackson7edc5962006-01-08 01:02:03 -080066int number_of_cpusets __read_mostly;
Paul Jackson202f72d2006-01-08 01:01:57 -080067
Paul Menage2df167a2008-02-07 00:14:45 -080068/* Forward declare cgroup structures */
Paul Menage8793d852007-10-18 23:39:39 -070069struct cgroup_subsys cpuset_subsys;
70struct cpuset;
71
Paul Jackson3e0d98b2006-01-08 01:01:49 -080072/* See "Frequency meter" comments, below. */
73
74struct fmeter {
75 int cnt; /* unprocessed events count */
76 int val; /* most recent output value */
77 time_t time; /* clock (secs) when val computed */
78 spinlock_t lock; /* guards read or write of above */
79};
80
Linus Torvalds1da177e2005-04-16 15:20:36 -070081struct cpuset {
Paul Menage8793d852007-10-18 23:39:39 -070082 struct cgroup_subsys_state css;
83
Linus Torvalds1da177e2005-04-16 15:20:36 -070084 unsigned long flags; /* "unsigned long" so bitops work */
85 cpumask_t cpus_allowed; /* CPUs allowed to tasks in cpuset */
86 nodemask_t mems_allowed; /* Memory Nodes allowed to tasks */
87
Linus Torvalds1da177e2005-04-16 15:20:36 -070088 struct cpuset *parent; /* my parent */
Linus Torvalds1da177e2005-04-16 15:20:36 -070089
90 /*
91 * Copy of global cpuset_mems_generation as of the most
92 * recent time this cpuset changed its mems_allowed.
93 */
Paul Jackson3e0d98b2006-01-08 01:01:49 -080094 int mems_generation;
95
96 struct fmeter fmeter; /* memory_pressure filter */
Paul Jackson029190c2007-10-18 23:40:20 -070097
98 /* partition number for rebuild_sched_domains() */
99 int pn;
Cliff Wickman956db3c2008-02-07 00:14:43 -0800100
Hidetoshi Seto1d3504f2008-04-15 14:04:23 +0900101 /* for custom sched domain */
102 int relax_domain_level;
103
Cliff Wickman956db3c2008-02-07 00:14:43 -0800104 /* used for walking a cpuset heirarchy */
105 struct list_head stack_list;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700106};
107
Paul Menage8793d852007-10-18 23:39:39 -0700108/* Retrieve the cpuset for a cgroup */
109static inline struct cpuset *cgroup_cs(struct cgroup *cont)
110{
111 return container_of(cgroup_subsys_state(cont, cpuset_subsys_id),
112 struct cpuset, css);
113}
114
115/* Retrieve the cpuset for a task */
116static inline struct cpuset *task_cs(struct task_struct *task)
117{
118 return container_of(task_subsys_state(task, cpuset_subsys_id),
119 struct cpuset, css);
120}
Cliff Wickman956db3c2008-02-07 00:14:43 -0800121struct cpuset_hotplug_scanner {
122 struct cgroup_scanner scan;
123 struct cgroup *to;
124};
Paul Menage8793d852007-10-18 23:39:39 -0700125
Linus Torvalds1da177e2005-04-16 15:20:36 -0700126/* bits in struct cpuset flags field */
127typedef enum {
128 CS_CPU_EXCLUSIVE,
129 CS_MEM_EXCLUSIVE,
Paul Menage78608362008-04-29 01:00:26 -0700130 CS_MEM_HARDWALL,
Paul Jackson45b07ef2006-01-08 01:00:56 -0800131 CS_MEMORY_MIGRATE,
Paul Jackson029190c2007-10-18 23:40:20 -0700132 CS_SCHED_LOAD_BALANCE,
Paul Jackson825a46a2006-03-24 03:16:03 -0800133 CS_SPREAD_PAGE,
134 CS_SPREAD_SLAB,
Linus Torvalds1da177e2005-04-16 15:20:36 -0700135} cpuset_flagbits_t;
136
137/* convenient tests for these bits */
138static inline int is_cpu_exclusive(const struct cpuset *cs)
139{
Paul Jackson7b5b9ef2006-03-24 03:16:00 -0800140 return test_bit(CS_CPU_EXCLUSIVE, &cs->flags);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700141}
142
143static inline int is_mem_exclusive(const struct cpuset *cs)
144{
Paul Jackson7b5b9ef2006-03-24 03:16:00 -0800145 return test_bit(CS_MEM_EXCLUSIVE, &cs->flags);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700146}
147
Paul Menage78608362008-04-29 01:00:26 -0700148static inline int is_mem_hardwall(const struct cpuset *cs)
149{
150 return test_bit(CS_MEM_HARDWALL, &cs->flags);
151}
152
Paul Jackson029190c2007-10-18 23:40:20 -0700153static inline int is_sched_load_balance(const struct cpuset *cs)
154{
155 return test_bit(CS_SCHED_LOAD_BALANCE, &cs->flags);
156}
157
Paul Jackson45b07ef2006-01-08 01:00:56 -0800158static inline int is_memory_migrate(const struct cpuset *cs)
159{
Paul Jackson7b5b9ef2006-03-24 03:16:00 -0800160 return test_bit(CS_MEMORY_MIGRATE, &cs->flags);
Paul Jackson45b07ef2006-01-08 01:00:56 -0800161}
162
Paul Jackson825a46a2006-03-24 03:16:03 -0800163static inline int is_spread_page(const struct cpuset *cs)
164{
165 return test_bit(CS_SPREAD_PAGE, &cs->flags);
166}
167
168static inline int is_spread_slab(const struct cpuset *cs)
169{
170 return test_bit(CS_SPREAD_SLAB, &cs->flags);
171}
172
Linus Torvalds1da177e2005-04-16 15:20:36 -0700173/*
Paul Jackson151a4422006-03-24 03:16:11 -0800174 * Increment this integer everytime any cpuset changes its
Linus Torvalds1da177e2005-04-16 15:20:36 -0700175 * mems_allowed value. Users of cpusets can track this generation
176 * number, and avoid having to lock and reload mems_allowed unless
177 * the cpuset they're using changes generation.
178 *
Paul Menage2df167a2008-02-07 00:14:45 -0800179 * A single, global generation is needed because cpuset_attach_task() could
Linus Torvalds1da177e2005-04-16 15:20:36 -0700180 * reattach a task to a different cpuset, which must not have its
181 * generation numbers aliased with those of that tasks previous cpuset.
182 *
183 * Generations are needed for mems_allowed because one task cannot
Paul Menage2df167a2008-02-07 00:14:45 -0800184 * modify another's memory placement. So we must enable every task,
Linus Torvalds1da177e2005-04-16 15:20:36 -0700185 * on every visit to __alloc_pages(), to efficiently check whether
186 * its current->cpuset->mems_allowed has changed, requiring an update
187 * of its current->mems_allowed.
Paul Jackson151a4422006-03-24 03:16:11 -0800188 *
Paul Menage2df167a2008-02-07 00:14:45 -0800189 * Since writes to cpuset_mems_generation are guarded by the cgroup lock
Paul Jackson151a4422006-03-24 03:16:11 -0800190 * there is no need to mark it atomic.
Linus Torvalds1da177e2005-04-16 15:20:36 -0700191 */
Paul Jackson151a4422006-03-24 03:16:11 -0800192static int cpuset_mems_generation;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700193
194static struct cpuset top_cpuset = {
195 .flags = ((1 << CS_CPU_EXCLUSIVE) | (1 << CS_MEM_EXCLUSIVE)),
196 .cpus_allowed = CPU_MASK_ALL,
197 .mems_allowed = NODE_MASK_ALL,
Linus Torvalds1da177e2005-04-16 15:20:36 -0700198};
199
Linus Torvalds1da177e2005-04-16 15:20:36 -0700200/*
Paul Menage2df167a2008-02-07 00:14:45 -0800201 * There are two global mutexes guarding cpuset structures. The first
202 * is the main control groups cgroup_mutex, accessed via
203 * cgroup_lock()/cgroup_unlock(). The second is the cpuset-specific
204 * callback_mutex, below. They can nest. It is ok to first take
205 * cgroup_mutex, then nest callback_mutex. We also require taking
206 * task_lock() when dereferencing a task's cpuset pointer. See "The
207 * task_lock() exception", at the end of this comment.
Linus Torvalds1da177e2005-04-16 15:20:36 -0700208 *
Ingo Molnar3d3f26a2006-03-23 03:00:18 -0800209 * A task must hold both mutexes to modify cpusets. If a task
Paul Menage2df167a2008-02-07 00:14:45 -0800210 * holds cgroup_mutex, then it blocks others wanting that mutex,
Ingo Molnar3d3f26a2006-03-23 03:00:18 -0800211 * ensuring that it is the only task able to also acquire callback_mutex
Paul Jackson053199e2005-10-30 15:02:30 -0800212 * and be able to modify cpusets. It can perform various checks on
213 * the cpuset structure first, knowing nothing will change. It can
Paul Menage2df167a2008-02-07 00:14:45 -0800214 * also allocate memory while just holding cgroup_mutex. While it is
Paul Jackson053199e2005-10-30 15:02:30 -0800215 * performing these checks, various callback routines can briefly
Ingo Molnar3d3f26a2006-03-23 03:00:18 -0800216 * acquire callback_mutex to query cpusets. Once it is ready to make
217 * the changes, it takes callback_mutex, blocking everyone else.
Linus Torvalds1da177e2005-04-16 15:20:36 -0700218 *
Paul Jackson053199e2005-10-30 15:02:30 -0800219 * Calls to the kernel memory allocator can not be made while holding
Ingo Molnar3d3f26a2006-03-23 03:00:18 -0800220 * callback_mutex, as that would risk double tripping on callback_mutex
Paul Jackson053199e2005-10-30 15:02:30 -0800221 * from one of the callbacks into the cpuset code from within
222 * __alloc_pages().
Linus Torvalds1da177e2005-04-16 15:20:36 -0700223 *
Ingo Molnar3d3f26a2006-03-23 03:00:18 -0800224 * If a task is only holding callback_mutex, then it has read-only
Paul Jackson053199e2005-10-30 15:02:30 -0800225 * access to cpusets.
226 *
227 * The task_struct fields mems_allowed and mems_generation may only
228 * be accessed in the context of that task, so require no locks.
229 *
Ingo Molnar3d3f26a2006-03-23 03:00:18 -0800230 * The cpuset_common_file_read() handlers only hold callback_mutex across
Paul Jackson053199e2005-10-30 15:02:30 -0800231 * small pieces of code, such as when reading out possibly multi-word
232 * cpumasks and nodemasks.
233 *
Paul Menage2df167a2008-02-07 00:14:45 -0800234 * Accessing a task's cpuset should be done in accordance with the
235 * guidelines for accessing subsystem state in kernel/cgroup.c
Linus Torvalds1da177e2005-04-16 15:20:36 -0700236 */
237
Ingo Molnar3d3f26a2006-03-23 03:00:18 -0800238static DEFINE_MUTEX(callback_mutex);
Paul Jackson4247bdc2005-09-10 00:26:06 -0700239
Paul Menage8793d852007-10-18 23:39:39 -0700240/* This is ugly, but preserves the userspace API for existing cpuset
241 * users. If someone tries to mount the "cpuset" filesystem, we
242 * silently switch it to mount "cgroup" instead */
David Howells454e2392006-06-23 02:02:57 -0700243static int cpuset_get_sb(struct file_system_type *fs_type,
244 int flags, const char *unused_dev_name,
245 void *data, struct vfsmount *mnt)
Linus Torvalds1da177e2005-04-16 15:20:36 -0700246{
Paul Menage8793d852007-10-18 23:39:39 -0700247 struct file_system_type *cgroup_fs = get_fs_type("cgroup");
248 int ret = -ENODEV;
249 if (cgroup_fs) {
250 char mountopts[] =
251 "cpuset,noprefix,"
252 "release_agent=/sbin/cpuset_release_agent";
253 ret = cgroup_fs->get_sb(cgroup_fs, flags,
254 unused_dev_name, mountopts, mnt);
255 put_filesystem(cgroup_fs);
256 }
257 return ret;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700258}
259
260static struct file_system_type cpuset_fs_type = {
261 .name = "cpuset",
262 .get_sb = cpuset_get_sb,
Linus Torvalds1da177e2005-04-16 15:20:36 -0700263};
264
Linus Torvalds1da177e2005-04-16 15:20:36 -0700265/*
266 * Return in *pmask the portion of a cpusets's cpus_allowed that
267 * are online. If none are online, walk up the cpuset hierarchy
268 * until we find one that does have some online cpus. If we get
269 * all the way to the top and still haven't found any online cpus,
270 * return cpu_online_map. Or if passed a NULL cs from an exit'ing
271 * task, return cpu_online_map.
272 *
273 * One way or another, we guarantee to return some non-empty subset
274 * of cpu_online_map.
275 *
Ingo Molnar3d3f26a2006-03-23 03:00:18 -0800276 * Call with callback_mutex held.
Linus Torvalds1da177e2005-04-16 15:20:36 -0700277 */
278
279static void guarantee_online_cpus(const struct cpuset *cs, cpumask_t *pmask)
280{
281 while (cs && !cpus_intersects(cs->cpus_allowed, cpu_online_map))
282 cs = cs->parent;
283 if (cs)
284 cpus_and(*pmask, cs->cpus_allowed, cpu_online_map);
285 else
286 *pmask = cpu_online_map;
287 BUG_ON(!cpus_intersects(*pmask, cpu_online_map));
288}
289
290/*
291 * Return in *pmask the portion of a cpusets's mems_allowed that
Christoph Lameter0e1e7c72007-10-16 01:25:38 -0700292 * are online, with memory. If none are online with memory, walk
293 * up the cpuset hierarchy until we find one that does have some
294 * online mems. If we get all the way to the top and still haven't
295 * found any online mems, return node_states[N_HIGH_MEMORY].
Linus Torvalds1da177e2005-04-16 15:20:36 -0700296 *
297 * One way or another, we guarantee to return some non-empty subset
Christoph Lameter0e1e7c72007-10-16 01:25:38 -0700298 * of node_states[N_HIGH_MEMORY].
Linus Torvalds1da177e2005-04-16 15:20:36 -0700299 *
Ingo Molnar3d3f26a2006-03-23 03:00:18 -0800300 * Call with callback_mutex held.
Linus Torvalds1da177e2005-04-16 15:20:36 -0700301 */
302
303static void guarantee_online_mems(const struct cpuset *cs, nodemask_t *pmask)
304{
Christoph Lameter0e1e7c72007-10-16 01:25:38 -0700305 while (cs && !nodes_intersects(cs->mems_allowed,
306 node_states[N_HIGH_MEMORY]))
Linus Torvalds1da177e2005-04-16 15:20:36 -0700307 cs = cs->parent;
308 if (cs)
Christoph Lameter0e1e7c72007-10-16 01:25:38 -0700309 nodes_and(*pmask, cs->mems_allowed,
310 node_states[N_HIGH_MEMORY]);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700311 else
Christoph Lameter0e1e7c72007-10-16 01:25:38 -0700312 *pmask = node_states[N_HIGH_MEMORY];
313 BUG_ON(!nodes_intersects(*pmask, node_states[N_HIGH_MEMORY]));
Linus Torvalds1da177e2005-04-16 15:20:36 -0700314}
315
Paul Jacksoncf2a4732006-01-08 01:01:54 -0800316/**
317 * cpuset_update_task_memory_state - update task memory placement
Linus Torvalds1da177e2005-04-16 15:20:36 -0700318 *
Paul Jacksoncf2a4732006-01-08 01:01:54 -0800319 * If the current tasks cpusets mems_allowed changed behind our
320 * backs, update current->mems_allowed, mems_generation and task NUMA
321 * mempolicy to the new value.
322 *
323 * Task mempolicy is updated by rebinding it relative to the
324 * current->cpuset if a task has its memory placement changed.
325 * Do not call this routine if in_interrupt().
326 *
Paul Jackson4a01c8d2006-03-31 02:30:50 -0800327 * Call without callback_mutex or task_lock() held. May be
Paul Menage2df167a2008-02-07 00:14:45 -0800328 * called with or without cgroup_mutex held. Thanks in part to
329 * 'the_top_cpuset_hack', the task's cpuset pointer will never
David Rientjes41f7f602008-03-04 23:32:38 -0800330 * be NULL. This routine also might acquire callback_mutex during
331 * call.
Paul Jackson5aa15b52005-10-30 15:02:28 -0800332 *
Paul Jackson6b9c2602006-01-08 01:02:02 -0800333 * Reading current->cpuset->mems_generation doesn't need task_lock
334 * to guard the current->cpuset derefence, because it is guarded
Paul Menage2df167a2008-02-07 00:14:45 -0800335 * from concurrent freeing of current->cpuset using RCU.
Paul Jackson6b9c2602006-01-08 01:02:02 -0800336 *
337 * The rcu_dereference() is technically probably not needed,
338 * as I don't actually mind if I see a new cpuset pointer but
339 * an old value of mems_generation. However this really only
340 * matters on alpha systems using cpusets heavily. If I dropped
341 * that rcu_dereference(), it would save them a memory barrier.
342 * For all other arch's, rcu_dereference is a no-op anyway, and for
343 * alpha systems not using cpusets, another planned optimization,
344 * avoiding the rcu critical section for tasks in the root cpuset
345 * which is statically allocated, so can't vanish, will make this
346 * irrelevant. Better to use RCU as intended, than to engage in
347 * some cute trick to save a memory barrier that is impossible to
348 * test, for alpha systems using cpusets heavily, which might not
349 * even exist.
Paul Jackson053199e2005-10-30 15:02:30 -0800350 *
351 * This routine is needed to update the per-task mems_allowed data,
352 * within the tasks context, when it is trying to allocate memory
353 * (in various mm/mempolicy.c routines) and notices that some other
354 * task has been modifying its cpuset.
Linus Torvalds1da177e2005-04-16 15:20:36 -0700355 */
356
Randy Dunlapfe85a992006-02-03 03:04:23 -0800357void cpuset_update_task_memory_state(void)
Linus Torvalds1da177e2005-04-16 15:20:36 -0700358{
Paul Jackson053199e2005-10-30 15:02:30 -0800359 int my_cpusets_mem_gen;
Paul Jacksoncf2a4732006-01-08 01:01:54 -0800360 struct task_struct *tsk = current;
Paul Jackson6b9c2602006-01-08 01:02:02 -0800361 struct cpuset *cs;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700362
Paul Menage8793d852007-10-18 23:39:39 -0700363 if (task_cs(tsk) == &top_cpuset) {
Paul Jackson03a285f2006-01-08 01:02:04 -0800364 /* Don't need rcu for top_cpuset. It's never freed. */
365 my_cpusets_mem_gen = top_cpuset.mems_generation;
366 } else {
367 rcu_read_lock();
Paul Menage8793d852007-10-18 23:39:39 -0700368 my_cpusets_mem_gen = task_cs(current)->mems_generation;
Paul Jackson03a285f2006-01-08 01:02:04 -0800369 rcu_read_unlock();
370 }
Paul Jacksoncf2a4732006-01-08 01:01:54 -0800371
372 if (my_cpusets_mem_gen != tsk->cpuset_mems_generation) {
Ingo Molnar3d3f26a2006-03-23 03:00:18 -0800373 mutex_lock(&callback_mutex);
Paul Jacksoncf2a4732006-01-08 01:01:54 -0800374 task_lock(tsk);
Paul Menage8793d852007-10-18 23:39:39 -0700375 cs = task_cs(tsk); /* Maybe changed when task not locked */
Paul Jacksoncf2a4732006-01-08 01:01:54 -0800376 guarantee_online_mems(cs, &tsk->mems_allowed);
377 tsk->cpuset_mems_generation = cs->mems_generation;
Paul Jackson825a46a2006-03-24 03:16:03 -0800378 if (is_spread_page(cs))
379 tsk->flags |= PF_SPREAD_PAGE;
380 else
381 tsk->flags &= ~PF_SPREAD_PAGE;
382 if (is_spread_slab(cs))
383 tsk->flags |= PF_SPREAD_SLAB;
384 else
385 tsk->flags &= ~PF_SPREAD_SLAB;
Paul Jacksoncf2a4732006-01-08 01:01:54 -0800386 task_unlock(tsk);
Ingo Molnar3d3f26a2006-03-23 03:00:18 -0800387 mutex_unlock(&callback_mutex);
Paul Jackson74cb2152006-01-08 01:01:56 -0800388 mpol_rebind_task(tsk, &tsk->mems_allowed);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700389 }
390}
391
392/*
393 * is_cpuset_subset(p, q) - Is cpuset p a subset of cpuset q?
394 *
395 * One cpuset is a subset of another if all its allowed CPUs and
396 * Memory Nodes are a subset of the other, and its exclusive flags
Paul Menage2df167a2008-02-07 00:14:45 -0800397 * are only set if the other's are set. Call holding cgroup_mutex.
Linus Torvalds1da177e2005-04-16 15:20:36 -0700398 */
399
400static int is_cpuset_subset(const struct cpuset *p, const struct cpuset *q)
401{
402 return cpus_subset(p->cpus_allowed, q->cpus_allowed) &&
403 nodes_subset(p->mems_allowed, q->mems_allowed) &&
404 is_cpu_exclusive(p) <= is_cpu_exclusive(q) &&
405 is_mem_exclusive(p) <= is_mem_exclusive(q);
406}
407
408/*
409 * validate_change() - Used to validate that any proposed cpuset change
410 * follows the structural rules for cpusets.
411 *
412 * If we replaced the flag and mask values of the current cpuset
413 * (cur) with those values in the trial cpuset (trial), would
414 * our various subset and exclusive rules still be valid? Presumes
Paul Menage2df167a2008-02-07 00:14:45 -0800415 * cgroup_mutex held.
Linus Torvalds1da177e2005-04-16 15:20:36 -0700416 *
417 * 'cur' is the address of an actual, in-use cpuset. Operations
418 * such as list traversal that depend on the actual address of the
419 * cpuset in the list must use cur below, not trial.
420 *
421 * 'trial' is the address of bulk structure copy of cur, with
422 * perhaps one or more of the fields cpus_allowed, mems_allowed,
423 * or flags changed to new, trial values.
424 *
425 * Return 0 if valid, -errno if not.
426 */
427
428static int validate_change(const struct cpuset *cur, const struct cpuset *trial)
429{
Paul Menage8793d852007-10-18 23:39:39 -0700430 struct cgroup *cont;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700431 struct cpuset *c, *par;
432
433 /* Each of our child cpusets must be a subset of us */
Paul Menage8793d852007-10-18 23:39:39 -0700434 list_for_each_entry(cont, &cur->css.cgroup->children, sibling) {
435 if (!is_cpuset_subset(cgroup_cs(cont), trial))
Linus Torvalds1da177e2005-04-16 15:20:36 -0700436 return -EBUSY;
437 }
438
439 /* Remaining checks don't apply to root cpuset */
Paul Jackson69604062006-12-06 20:36:15 -0800440 if (cur == &top_cpuset)
Linus Torvalds1da177e2005-04-16 15:20:36 -0700441 return 0;
442
Paul Jackson69604062006-12-06 20:36:15 -0800443 par = cur->parent;
444
Linus Torvalds1da177e2005-04-16 15:20:36 -0700445 /* We must be a subset of our parent cpuset */
446 if (!is_cpuset_subset(trial, par))
447 return -EACCES;
448
Paul Menage2df167a2008-02-07 00:14:45 -0800449 /*
450 * If either I or some sibling (!= me) is exclusive, we can't
451 * overlap
452 */
Paul Menage8793d852007-10-18 23:39:39 -0700453 list_for_each_entry(cont, &par->css.cgroup->children, sibling) {
454 c = cgroup_cs(cont);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700455 if ((is_cpu_exclusive(trial) || is_cpu_exclusive(c)) &&
456 c != cur &&
457 cpus_intersects(trial->cpus_allowed, c->cpus_allowed))
458 return -EINVAL;
459 if ((is_mem_exclusive(trial) || is_mem_exclusive(c)) &&
460 c != cur &&
461 nodes_intersects(trial->mems_allowed, c->mems_allowed))
462 return -EINVAL;
463 }
464
Paul Jackson020958b2007-10-18 23:40:21 -0700465 /* Cpusets with tasks can't have empty cpus_allowed or mems_allowed */
466 if (cgroup_task_count(cur->css.cgroup)) {
467 if (cpus_empty(trial->cpus_allowed) ||
468 nodes_empty(trial->mems_allowed)) {
469 return -ENOSPC;
470 }
471 }
472
Linus Torvalds1da177e2005-04-16 15:20:36 -0700473 return 0;
474}
475
Dinakar Guniguntala85d7b942005-06-25 14:57:34 -0700476/*
Paul Jackson029190c2007-10-18 23:40:20 -0700477 * Helper routine for rebuild_sched_domains().
478 * Do cpusets a, b have overlapping cpus_allowed masks?
479 */
480
481static int cpusets_overlap(struct cpuset *a, struct cpuset *b)
482{
483 return cpus_intersects(a->cpus_allowed, b->cpus_allowed);
484}
485
Hidetoshi Seto1d3504f2008-04-15 14:04:23 +0900486static void
487update_domain_attr(struct sched_domain_attr *dattr, struct cpuset *c)
488{
489 if (!dattr)
490 return;
491 if (dattr->relax_domain_level < c->relax_domain_level)
492 dattr->relax_domain_level = c->relax_domain_level;
493 return;
494}
495
Paul Jackson029190c2007-10-18 23:40:20 -0700496/*
497 * rebuild_sched_domains()
498 *
Li Zefanc372e812008-07-25 01:47:23 -0700499 * This routine will be called to rebuild the scheduler's dynamic
500 * sched domains:
501 * - if the flag 'sched_load_balance' of any cpuset with non-empty
502 * 'cpus' changes,
503 * - or if the 'cpus' allowed changes in any cpuset which has that
504 * flag enabled,
505 * - or if the 'sched_relax_domain_level' of any cpuset which has
506 * that flag enabled and with non-empty 'cpus' changes,
507 * - or if any cpuset with non-empty 'cpus' is removed,
508 * - or if a cpu gets offlined.
Paul Jackson029190c2007-10-18 23:40:20 -0700509 *
510 * This routine builds a partial partition of the systems CPUs
511 * (the set of non-overlappping cpumask_t's in the array 'part'
512 * below), and passes that partial partition to the kernel/sched.c
513 * partition_sched_domains() routine, which will rebuild the
514 * schedulers load balancing domains (sched domains) as specified
515 * by that partial partition. A 'partial partition' is a set of
516 * non-overlapping subsets whose union is a subset of that set.
517 *
518 * See "What is sched_load_balance" in Documentation/cpusets.txt
519 * for a background explanation of this.
520 *
521 * Does not return errors, on the theory that the callers of this
522 * routine would rather not worry about failures to rebuild sched
523 * domains when operating in the severe memory shortage situations
524 * that could cause allocation failures below.
525 *
526 * Call with cgroup_mutex held. May take callback_mutex during
527 * call due to the kfifo_alloc() and kmalloc() calls. May nest
Gautham R Shenoy86ef5c92008-01-25 21:08:02 +0100528 * a call to the get_online_cpus()/put_online_cpus() pair.
Paul Jackson029190c2007-10-18 23:40:20 -0700529 * Must not be called holding callback_mutex, because we must not
Gautham R Shenoy86ef5c92008-01-25 21:08:02 +0100530 * call get_online_cpus() while holding callback_mutex. Elsewhere
531 * the kernel nests callback_mutex inside get_online_cpus() calls.
Paul Jackson029190c2007-10-18 23:40:20 -0700532 * So the reverse nesting would risk an ABBA deadlock.
533 *
534 * The three key local variables below are:
535 * q - a kfifo queue of cpuset pointers, used to implement a
536 * top-down scan of all cpusets. This scan loads a pointer
537 * to each cpuset marked is_sched_load_balance into the
538 * array 'csa'. For our purposes, rebuilding the schedulers
539 * sched domains, we can ignore !is_sched_load_balance cpusets.
540 * csa - (for CpuSet Array) Array of pointers to all the cpusets
541 * that need to be load balanced, for convenient iterative
542 * access by the subsequent code that finds the best partition,
543 * i.e the set of domains (subsets) of CPUs such that the
544 * cpus_allowed of every cpuset marked is_sched_load_balance
545 * is a subset of one of these domains, while there are as
546 * many such domains as possible, each as small as possible.
547 * doms - Conversion of 'csa' to an array of cpumasks, for passing to
548 * the kernel/sched.c routine partition_sched_domains() in a
549 * convenient format, that can be easily compared to the prior
550 * value to determine what partition elements (sched domains)
551 * were changed (added or removed.)
552 *
553 * Finding the best partition (set of domains):
554 * The triple nested loops below over i, j, k scan over the
555 * load balanced cpusets (using the array of cpuset pointers in
556 * csa[]) looking for pairs of cpusets that have overlapping
557 * cpus_allowed, but which don't have the same 'pn' partition
558 * number and gives them in the same partition number. It keeps
559 * looping on the 'restart' label until it can no longer find
560 * any such pairs.
561 *
562 * The union of the cpus_allowed masks from the set of
563 * all cpusets having the same 'pn' value then form the one
564 * element of the partition (one sched domain) to be passed to
565 * partition_sched_domains().
566 */
567
Max Krasnyanskye761b772008-07-15 04:43:49 -0700568void rebuild_sched_domains(void)
Paul Jackson029190c2007-10-18 23:40:20 -0700569{
570 struct kfifo *q; /* queue of cpusets to be scanned */
571 struct cpuset *cp; /* scans q */
572 struct cpuset **csa; /* array of all cpuset ptrs */
573 int csn; /* how many cpuset ptrs in csa so far */
574 int i, j, k; /* indices for partition finding loops */
575 cpumask_t *doms; /* resulting partition; i.e. sched domains */
Hidetoshi Seto1d3504f2008-04-15 14:04:23 +0900576 struct sched_domain_attr *dattr; /* attributes for custom domains */
Paul Jackson029190c2007-10-18 23:40:20 -0700577 int ndoms; /* number of sched domains in result */
578 int nslot; /* next empty doms[] cpumask_t slot */
579
580 q = NULL;
581 csa = NULL;
582 doms = NULL;
Hidetoshi Seto1d3504f2008-04-15 14:04:23 +0900583 dattr = NULL;
Paul Jackson029190c2007-10-18 23:40:20 -0700584
585 /* Special case for the 99% of systems with one, full, sched domain */
586 if (is_sched_load_balance(&top_cpuset)) {
587 ndoms = 1;
588 doms = kmalloc(sizeof(cpumask_t), GFP_KERNEL);
589 if (!doms)
590 goto rebuild;
Hidetoshi Seto1d3504f2008-04-15 14:04:23 +0900591 dattr = kmalloc(sizeof(struct sched_domain_attr), GFP_KERNEL);
592 if (dattr) {
593 *dattr = SD_ATTR_INIT;
594 update_domain_attr(dattr, &top_cpuset);
595 }
Paul Jackson029190c2007-10-18 23:40:20 -0700596 *doms = top_cpuset.cpus_allowed;
597 goto rebuild;
598 }
599
600 q = kfifo_alloc(number_of_cpusets * sizeof(cp), GFP_KERNEL, NULL);
601 if (IS_ERR(q))
602 goto done;
603 csa = kmalloc(number_of_cpusets * sizeof(cp), GFP_KERNEL);
604 if (!csa)
605 goto done;
606 csn = 0;
607
608 cp = &top_cpuset;
609 __kfifo_put(q, (void *)&cp, sizeof(cp));
610 while (__kfifo_get(q, (void *)&cp, sizeof(cp))) {
611 struct cgroup *cont;
612 struct cpuset *child; /* scans child cpusets of cp */
Lai Jiangshan489a5392008-07-25 01:47:23 -0700613
614 if (cpus_empty(cp->cpus_allowed))
615 continue;
616
Paul Jackson029190c2007-10-18 23:40:20 -0700617 if (is_sched_load_balance(cp))
618 csa[csn++] = cp;
Lai Jiangshan489a5392008-07-25 01:47:23 -0700619
Paul Jackson029190c2007-10-18 23:40:20 -0700620 list_for_each_entry(cont, &cp->css.cgroup->children, sibling) {
621 child = cgroup_cs(cont);
622 __kfifo_put(q, (void *)&child, sizeof(cp));
623 }
624 }
625
626 for (i = 0; i < csn; i++)
627 csa[i]->pn = i;
628 ndoms = csn;
629
630restart:
631 /* Find the best partition (set of sched domains) */
632 for (i = 0; i < csn; i++) {
633 struct cpuset *a = csa[i];
634 int apn = a->pn;
635
636 for (j = 0; j < csn; j++) {
637 struct cpuset *b = csa[j];
638 int bpn = b->pn;
639
640 if (apn != bpn && cpusets_overlap(a, b)) {
641 for (k = 0; k < csn; k++) {
642 struct cpuset *c = csa[k];
643
644 if (c->pn == bpn)
645 c->pn = apn;
646 }
647 ndoms--; /* one less element */
648 goto restart;
649 }
650 }
651 }
652
653 /* Convert <csn, csa> to <ndoms, doms> */
654 doms = kmalloc(ndoms * sizeof(cpumask_t), GFP_KERNEL);
655 if (!doms)
656 goto rebuild;
Hidetoshi Seto1d3504f2008-04-15 14:04:23 +0900657 dattr = kmalloc(ndoms * sizeof(struct sched_domain_attr), GFP_KERNEL);
Paul Jackson029190c2007-10-18 23:40:20 -0700658
659 for (nslot = 0, i = 0; i < csn; i++) {
660 struct cpuset *a = csa[i];
661 int apn = a->pn;
662
663 if (apn >= 0) {
664 cpumask_t *dp = doms + nslot;
665
666 if (nslot == ndoms) {
667 static int warnings = 10;
668 if (warnings) {
669 printk(KERN_WARNING
670 "rebuild_sched_domains confused:"
671 " nslot %d, ndoms %d, csn %d, i %d,"
672 " apn %d\n",
673 nslot, ndoms, csn, i, apn);
674 warnings--;
675 }
676 continue;
677 }
678
679 cpus_clear(*dp);
Hidetoshi Seto1d3504f2008-04-15 14:04:23 +0900680 if (dattr)
681 *(dattr + nslot) = SD_ATTR_INIT;
Paul Jackson029190c2007-10-18 23:40:20 -0700682 for (j = i; j < csn; j++) {
683 struct cpuset *b = csa[j];
684
685 if (apn == b->pn) {
686 cpus_or(*dp, *dp, b->cpus_allowed);
687 b->pn = -1;
Miao Xie91cd4d62008-07-21 14:21:35 -0700688 if (dattr)
689 update_domain_attr(dattr
690 + nslot, b);
Paul Jackson029190c2007-10-18 23:40:20 -0700691 }
692 }
693 nslot++;
694 }
695 }
696 BUG_ON(nslot != ndoms);
697
698rebuild:
699 /* Have scheduler rebuild sched domains */
Gautham R Shenoy86ef5c92008-01-25 21:08:02 +0100700 get_online_cpus();
Hidetoshi Seto1d3504f2008-04-15 14:04:23 +0900701 partition_sched_domains(ndoms, doms, dattr);
Gautham R Shenoy86ef5c92008-01-25 21:08:02 +0100702 put_online_cpus();
Paul Jackson029190c2007-10-18 23:40:20 -0700703
704done:
705 if (q && !IS_ERR(q))
706 kfifo_free(q);
707 kfree(csa);
708 /* Don't kfree(doms) -- partition_sched_domains() does that. */
Hidetoshi Seto1d3504f2008-04-15 14:04:23 +0900709 /* Don't kfree(dattr) -- partition_sched_domains() does that. */
Paul Jackson029190c2007-10-18 23:40:20 -0700710}
711
Paul Menage8707d8b2007-10-18 23:40:22 -0700712static inline int started_after_time(struct task_struct *t1,
713 struct timespec *time,
714 struct task_struct *t2)
715{
716 int start_diff = timespec_compare(&t1->start_time, time);
717 if (start_diff > 0) {
718 return 1;
719 } else if (start_diff < 0) {
720 return 0;
721 } else {
722 /*
723 * Arbitrarily, if two processes started at the same
724 * time, we'll say that the lower pointer value
725 * started first. Note that t2 may have exited by now
726 * so this may not be a valid pointer any longer, but
727 * that's fine - it still serves to distinguish
728 * between two tasks started (effectively)
729 * simultaneously.
730 */
731 return t1 > t2;
732 }
733}
734
735static inline int started_after(void *p1, void *p2)
736{
737 struct task_struct *t1 = p1;
738 struct task_struct *t2 = p2;
739 return started_after_time(t1, &t2->start_time, t2);
740}
741
Cliff Wickman58f47902008-02-07 00:14:44 -0800742/**
743 * cpuset_test_cpumask - test a task's cpus_allowed versus its cpuset's
744 * @tsk: task to test
745 * @scan: struct cgroup_scanner contained in its struct cpuset_hotplug_scanner
746 *
Paul Menage2df167a2008-02-07 00:14:45 -0800747 * Call with cgroup_mutex held. May take callback_mutex during call.
Cliff Wickman58f47902008-02-07 00:14:44 -0800748 * Called for each task in a cgroup by cgroup_scan_tasks().
749 * Return nonzero if this tasks's cpus_allowed mask should be changed (in other
750 * words, if its mask is not equal to its cpuset's mask).
Paul Jackson053199e2005-10-30 15:02:30 -0800751 */
Adrian Bunk9e0c9142008-04-29 01:00:25 -0700752static int cpuset_test_cpumask(struct task_struct *tsk,
753 struct cgroup_scanner *scan)
Cliff Wickman58f47902008-02-07 00:14:44 -0800754{
755 return !cpus_equal(tsk->cpus_allowed,
756 (cgroup_cs(scan->cg))->cpus_allowed);
757}
Paul Jackson053199e2005-10-30 15:02:30 -0800758
Cliff Wickman58f47902008-02-07 00:14:44 -0800759/**
760 * cpuset_change_cpumask - make a task's cpus_allowed the same as its cpuset's
761 * @tsk: task to test
762 * @scan: struct cgroup_scanner containing the cgroup of the task
763 *
764 * Called by cgroup_scan_tasks() for each task in a cgroup whose
765 * cpus_allowed mask needs to be changed.
766 *
767 * We don't need to re-check for the cgroup/cpuset membership, since we're
768 * holding cgroup_lock() at this point.
769 */
Adrian Bunk9e0c9142008-04-29 01:00:25 -0700770static void cpuset_change_cpumask(struct task_struct *tsk,
771 struct cgroup_scanner *scan)
Cliff Wickman58f47902008-02-07 00:14:44 -0800772{
Mike Travisf9a86fc2008-04-04 18:11:07 -0700773 set_cpus_allowed_ptr(tsk, &((cgroup_cs(scan->cg))->cpus_allowed));
Cliff Wickman58f47902008-02-07 00:14:44 -0800774}
775
776/**
Miao Xie0b2f6302008-07-25 01:47:21 -0700777 * update_tasks_cpumask - Update the cpumasks of tasks in the cpuset.
778 * @cs: the cpuset in which each task's cpus_allowed mask needs to be changed
779 *
780 * Called with cgroup_mutex held
781 *
782 * The cgroup_scan_tasks() function will scan all the tasks in a cgroup,
783 * calling callback functions for each.
784 *
785 * Return 0 if successful, -errno if not.
786 */
787static int update_tasks_cpumask(struct cpuset *cs)
788{
789 struct cgroup_scanner scan;
790 struct ptr_heap heap;
791 int retval;
792
793 retval = heap_init(&heap, PAGE_SIZE, GFP_KERNEL, &started_after);
794 if (retval)
795 return retval;
796
797 scan.cg = cs->css.cgroup;
798 scan.test_task = cpuset_test_cpumask;
799 scan.process_task = cpuset_change_cpumask;
800 scan.heap = &heap;
801 retval = cgroup_scan_tasks(&scan);
802
803 heap_free(&heap);
804 return retval;
805}
806
807/**
Cliff Wickman58f47902008-02-07 00:14:44 -0800808 * update_cpumask - update the cpus_allowed mask of a cpuset and all tasks in it
809 * @cs: the cpuset to consider
810 * @buf: buffer of cpu numbers written to this cpuset
811 */
Paul Menagee3712392008-07-25 01:47:02 -0700812static int update_cpumask(struct cpuset *cs, const char *buf)
Linus Torvalds1da177e2005-04-16 15:20:36 -0700813{
814 struct cpuset trialcs;
Cliff Wickman58f47902008-02-07 00:14:44 -0800815 int retval;
816 int is_load_balanced;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700817
Paul Jackson4c4d50f2006-08-27 01:23:51 -0700818 /* top_cpuset.cpus_allowed tracks cpu_online_map; it's read-only */
819 if (cs == &top_cpuset)
820 return -EACCES;
821
Linus Torvalds1da177e2005-04-16 15:20:36 -0700822 trialcs = *cs;
David Rientjes6f7f02e2007-05-08 00:31:43 -0700823
824 /*
Paul Jacksonc8d9c902008-02-07 00:14:46 -0800825 * An empty cpus_allowed is ok only if the cpuset has no tasks.
Paul Jackson020958b2007-10-18 23:40:21 -0700826 * Since cpulist_parse() fails on an empty mask, we special case
827 * that parsing. The validate_change() call ensures that cpusets
828 * with tasks have cpus.
David Rientjes6f7f02e2007-05-08 00:31:43 -0700829 */
Paul Jackson020958b2007-10-18 23:40:21 -0700830 if (!*buf) {
David Rientjes6f7f02e2007-05-08 00:31:43 -0700831 cpus_clear(trialcs.cpus_allowed);
832 } else {
833 retval = cpulist_parse(buf, trialcs.cpus_allowed);
834 if (retval < 0)
835 return retval;
Lai Jiangshan37340742008-06-05 22:46:32 -0700836
837 if (!cpus_subset(trialcs.cpus_allowed, cpu_online_map))
838 return -EINVAL;
David Rientjes6f7f02e2007-05-08 00:31:43 -0700839 }
Linus Torvalds1da177e2005-04-16 15:20:36 -0700840 retval = validate_change(cs, &trialcs);
Dinakar Guniguntala85d7b942005-06-25 14:57:34 -0700841 if (retval < 0)
842 return retval;
Paul Jackson029190c2007-10-18 23:40:20 -0700843
Paul Menage8707d8b2007-10-18 23:40:22 -0700844 /* Nothing to do if the cpus didn't change */
845 if (cpus_equal(cs->cpus_allowed, trialcs.cpus_allowed))
846 return 0;
Cliff Wickman58f47902008-02-07 00:14:44 -0800847
Paul Jackson029190c2007-10-18 23:40:20 -0700848 is_load_balanced = is_sched_load_balance(&trialcs);
849
Ingo Molnar3d3f26a2006-03-23 03:00:18 -0800850 mutex_lock(&callback_mutex);
Dinakar Guniguntala85d7b942005-06-25 14:57:34 -0700851 cs->cpus_allowed = trialcs.cpus_allowed;
Ingo Molnar3d3f26a2006-03-23 03:00:18 -0800852 mutex_unlock(&callback_mutex);
Paul Jackson029190c2007-10-18 23:40:20 -0700853
Paul Menage8707d8b2007-10-18 23:40:22 -0700854 /*
855 * Scan tasks in the cpuset, and update the cpumasks of any
Cliff Wickman58f47902008-02-07 00:14:44 -0800856 * that need an update.
Paul Menage8707d8b2007-10-18 23:40:22 -0700857 */
Miao Xie0b2f6302008-07-25 01:47:21 -0700858 retval = update_tasks_cpumask(cs);
859 if (retval < 0)
860 return retval;
Cliff Wickman58f47902008-02-07 00:14:44 -0800861
Paul Menage8707d8b2007-10-18 23:40:22 -0700862 if (is_load_balanced)
Paul Jackson029190c2007-10-18 23:40:20 -0700863 rebuild_sched_domains();
Dinakar Guniguntala85d7b942005-06-25 14:57:34 -0700864 return 0;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700865}
866
Paul Jackson053199e2005-10-30 15:02:30 -0800867/*
Paul Jacksone4e364e2006-03-31 02:30:52 -0800868 * cpuset_migrate_mm
869 *
870 * Migrate memory region from one set of nodes to another.
871 *
872 * Temporarilly set tasks mems_allowed to target nodes of migration,
873 * so that the migration code can allocate pages on these nodes.
874 *
Paul Menage2df167a2008-02-07 00:14:45 -0800875 * Call holding cgroup_mutex, so current's cpuset won't change
Paul Jacksonc8d9c902008-02-07 00:14:46 -0800876 * during this call, as manage_mutex holds off any cpuset_attach()
Paul Jacksone4e364e2006-03-31 02:30:52 -0800877 * calls. Therefore we don't need to take task_lock around the
878 * call to guarantee_online_mems(), as we know no one is changing
Paul Menage2df167a2008-02-07 00:14:45 -0800879 * our task's cpuset.
Paul Jacksone4e364e2006-03-31 02:30:52 -0800880 *
881 * Hold callback_mutex around the two modifications of our tasks
882 * mems_allowed to synchronize with cpuset_mems_allowed().
883 *
884 * While the mm_struct we are migrating is typically from some
885 * other task, the task_struct mems_allowed that we are hacking
886 * is for our current task, which must allocate new pages for that
887 * migrating memory region.
888 *
889 * We call cpuset_update_task_memory_state() before hacking
890 * our tasks mems_allowed, so that we are assured of being in
891 * sync with our tasks cpuset, and in particular, callbacks to
892 * cpuset_update_task_memory_state() from nested page allocations
893 * won't see any mismatch of our cpuset and task mems_generation
894 * values, so won't overwrite our hacked tasks mems_allowed
895 * nodemask.
896 */
897
898static void cpuset_migrate_mm(struct mm_struct *mm, const nodemask_t *from,
899 const nodemask_t *to)
900{
901 struct task_struct *tsk = current;
902
903 cpuset_update_task_memory_state();
904
905 mutex_lock(&callback_mutex);
906 tsk->mems_allowed = *to;
907 mutex_unlock(&callback_mutex);
908
909 do_migrate_pages(mm, from, to, MPOL_MF_MOVE_ALL);
910
911 mutex_lock(&callback_mutex);
Paul Menage8793d852007-10-18 23:39:39 -0700912 guarantee_online_mems(task_cs(tsk),&tsk->mems_allowed);
Paul Jacksone4e364e2006-03-31 02:30:52 -0800913 mutex_unlock(&callback_mutex);
914}
915
Paul Menage8793d852007-10-18 23:39:39 -0700916static void *cpuset_being_rebound;
917
Miao Xie0b2f6302008-07-25 01:47:21 -0700918/**
919 * update_tasks_nodemask - Update the nodemasks of tasks in the cpuset.
920 * @cs: the cpuset in which each task's mems_allowed mask needs to be changed
921 * @oldmem: old mems_allowed of cpuset cs
922 *
923 * Called with cgroup_mutex held
924 * Return 0 if successful, -errno if not.
925 */
926static int update_tasks_nodemask(struct cpuset *cs, const nodemask_t *oldmem)
Linus Torvalds1da177e2005-04-16 15:20:36 -0700927{
Paul Menage8793d852007-10-18 23:39:39 -0700928 struct task_struct *p;
Paul Jackson42253992006-01-08 01:01:59 -0800929 struct mm_struct **mmarray;
930 int i, n, ntasks;
Paul Jackson04c19fa2006-01-08 01:02:00 -0800931 int migrate;
Paul Jackson42253992006-01-08 01:01:59 -0800932 int fudge;
Paul Menage8793d852007-10-18 23:39:39 -0700933 struct cgroup_iter it;
Miao Xie0b2f6302008-07-25 01:47:21 -0700934 int retval;
Paul Jackson59dac162006-01-08 01:01:52 -0800935
Lee Schermerhorn846a16b2008-04-28 02:13:09 -0700936 cpuset_being_rebound = cs; /* causes mpol_dup() rebind */
Paul Jackson42253992006-01-08 01:01:59 -0800937
938 fudge = 10; /* spare mmarray[] slots */
939 fudge += cpus_weight(cs->cpus_allowed); /* imagine one fork-bomb/cpu */
940 retval = -ENOMEM;
941
942 /*
943 * Allocate mmarray[] to hold mm reference for each task
944 * in cpuset cs. Can't kmalloc GFP_KERNEL while holding
945 * tasklist_lock. We could use GFP_ATOMIC, but with a
946 * few more lines of code, we can retry until we get a big
947 * enough mmarray[] w/o using GFP_ATOMIC.
948 */
949 while (1) {
Paul Menage8793d852007-10-18 23:39:39 -0700950 ntasks = cgroup_task_count(cs->css.cgroup); /* guess */
Paul Jackson42253992006-01-08 01:01:59 -0800951 ntasks += fudge;
952 mmarray = kmalloc(ntasks * sizeof(*mmarray), GFP_KERNEL);
953 if (!mmarray)
954 goto done;
Paul Menagec2aef332007-07-15 23:40:11 -0700955 read_lock(&tasklist_lock); /* block fork */
Paul Menage8793d852007-10-18 23:39:39 -0700956 if (cgroup_task_count(cs->css.cgroup) <= ntasks)
Paul Jackson42253992006-01-08 01:01:59 -0800957 break; /* got enough */
Paul Menagec2aef332007-07-15 23:40:11 -0700958 read_unlock(&tasklist_lock); /* try again */
Paul Jackson42253992006-01-08 01:01:59 -0800959 kfree(mmarray);
960 }
961
962 n = 0;
963
964 /* Load up mmarray[] with mm reference for each task in cpuset. */
Paul Menage8793d852007-10-18 23:39:39 -0700965 cgroup_iter_start(cs->css.cgroup, &it);
966 while ((p = cgroup_iter_next(cs->css.cgroup, &it))) {
Paul Jackson42253992006-01-08 01:01:59 -0800967 struct mm_struct *mm;
968
969 if (n >= ntasks) {
970 printk(KERN_WARNING
971 "Cpuset mempolicy rebind incomplete.\n");
Paul Menage8793d852007-10-18 23:39:39 -0700972 break;
Paul Jackson42253992006-01-08 01:01:59 -0800973 }
Paul Jackson42253992006-01-08 01:01:59 -0800974 mm = get_task_mm(p);
975 if (!mm)
976 continue;
977 mmarray[n++] = mm;
Paul Menage8793d852007-10-18 23:39:39 -0700978 }
979 cgroup_iter_end(cs->css.cgroup, &it);
Paul Menagec2aef332007-07-15 23:40:11 -0700980 read_unlock(&tasklist_lock);
Paul Jackson42253992006-01-08 01:01:59 -0800981
982 /*
983 * Now that we've dropped the tasklist spinlock, we can
984 * rebind the vma mempolicies of each mm in mmarray[] to their
985 * new cpuset, and release that mm. The mpol_rebind_mm()
986 * call takes mmap_sem, which we couldn't take while holding
Lee Schermerhorn846a16b2008-04-28 02:13:09 -0700987 * tasklist_lock. Forks can happen again now - the mpol_dup()
Paul Jackson42253992006-01-08 01:01:59 -0800988 * cpuset_being_rebound check will catch such forks, and rebind
989 * their vma mempolicies too. Because we still hold the global
Paul Menage2df167a2008-02-07 00:14:45 -0800990 * cgroup_mutex, we know that no other rebind effort will
Paul Jackson42253992006-01-08 01:01:59 -0800991 * be contending for the global variable cpuset_being_rebound.
992 * It's ok if we rebind the same mm twice; mpol_rebind_mm()
Paul Jackson04c19fa2006-01-08 01:02:00 -0800993 * is idempotent. Also migrate pages in each mm to new nodes.
Paul Jackson42253992006-01-08 01:01:59 -0800994 */
Paul Jackson04c19fa2006-01-08 01:02:00 -0800995 migrate = is_memory_migrate(cs);
Paul Jackson42253992006-01-08 01:01:59 -0800996 for (i = 0; i < n; i++) {
997 struct mm_struct *mm = mmarray[i];
998
999 mpol_rebind_mm(mm, &cs->mems_allowed);
Paul Jacksone4e364e2006-03-31 02:30:52 -08001000 if (migrate)
Miao Xie0b2f6302008-07-25 01:47:21 -07001001 cpuset_migrate_mm(mm, oldmem, &cs->mems_allowed);
Paul Jackson42253992006-01-08 01:01:59 -08001002 mmput(mm);
1003 }
1004
Paul Menage2df167a2008-02-07 00:14:45 -08001005 /* We're done rebinding vmas to this cpuset's new mems_allowed. */
Paul Jackson42253992006-01-08 01:01:59 -08001006 kfree(mmarray);
Paul Menage8793d852007-10-18 23:39:39 -07001007 cpuset_being_rebound = NULL;
Paul Jackson42253992006-01-08 01:01:59 -08001008 retval = 0;
Paul Jackson59dac162006-01-08 01:01:52 -08001009done:
Linus Torvalds1da177e2005-04-16 15:20:36 -07001010 return retval;
1011}
1012
Miao Xie0b2f6302008-07-25 01:47:21 -07001013/*
1014 * Handle user request to change the 'mems' memory placement
1015 * of a cpuset. Needs to validate the request, update the
1016 * cpusets mems_allowed and mems_generation, and for each
1017 * task in the cpuset, rebind any vma mempolicies and if
1018 * the cpuset is marked 'memory_migrate', migrate the tasks
1019 * pages to the new memory.
1020 *
1021 * Call with cgroup_mutex held. May take callback_mutex during call.
1022 * Will take tasklist_lock, scan tasklist for tasks in cpuset cs,
1023 * lock each such tasks mm->mmap_sem, scan its vma's and rebind
1024 * their mempolicies to the cpusets new mems_allowed.
1025 */
1026static int update_nodemask(struct cpuset *cs, const char *buf)
1027{
1028 struct cpuset trialcs;
1029 nodemask_t oldmem;
1030 int retval;
1031
1032 /*
1033 * top_cpuset.mems_allowed tracks node_stats[N_HIGH_MEMORY];
1034 * it's read-only
1035 */
1036 if (cs == &top_cpuset)
1037 return -EACCES;
1038
1039 trialcs = *cs;
1040
1041 /*
1042 * An empty mems_allowed is ok iff there are no tasks in the cpuset.
1043 * Since nodelist_parse() fails on an empty mask, we special case
1044 * that parsing. The validate_change() call ensures that cpusets
1045 * with tasks have memory.
1046 */
1047 if (!*buf) {
1048 nodes_clear(trialcs.mems_allowed);
1049 } else {
1050 retval = nodelist_parse(buf, trialcs.mems_allowed);
1051 if (retval < 0)
1052 goto done;
1053
1054 if (!nodes_subset(trialcs.mems_allowed,
1055 node_states[N_HIGH_MEMORY]))
1056 return -EINVAL;
1057 }
1058 oldmem = cs->mems_allowed;
1059 if (nodes_equal(oldmem, trialcs.mems_allowed)) {
1060 retval = 0; /* Too easy - nothing to do */
1061 goto done;
1062 }
1063 retval = validate_change(cs, &trialcs);
1064 if (retval < 0)
1065 goto done;
1066
1067 mutex_lock(&callback_mutex);
1068 cs->mems_allowed = trialcs.mems_allowed;
1069 cs->mems_generation = cpuset_mems_generation++;
1070 mutex_unlock(&callback_mutex);
1071
1072 retval = update_tasks_nodemask(cs, &oldmem);
1073done:
1074 return retval;
1075}
1076
Paul Menage8793d852007-10-18 23:39:39 -07001077int current_cpuset_is_being_rebound(void)
1078{
1079 return task_cs(current) == cpuset_being_rebound;
1080}
1081
Paul Menage5be7a472008-05-06 20:42:41 -07001082static int update_relax_domain_level(struct cpuset *cs, s64 val)
Hidetoshi Seto1d3504f2008-04-15 14:04:23 +09001083{
Li Zefan30e0e172008-05-13 10:27:17 +08001084 if (val < -1 || val >= SD_LV_MAX)
1085 return -EINVAL;
Hidetoshi Seto1d3504f2008-04-15 14:04:23 +09001086
1087 if (val != cs->relax_domain_level) {
1088 cs->relax_domain_level = val;
Li Zefanc372e812008-07-25 01:47:23 -07001089 if (!cpus_empty(cs->cpus_allowed) && is_sched_load_balance(cs))
1090 rebuild_sched_domains();
Hidetoshi Seto1d3504f2008-04-15 14:04:23 +09001091 }
1092
1093 return 0;
1094}
1095
Paul Jackson3e0d98b2006-01-08 01:01:49 -08001096/*
Linus Torvalds1da177e2005-04-16 15:20:36 -07001097 * update_flag - read a 0 or a 1 in a file and update associated flag
Paul Menage78608362008-04-29 01:00:26 -07001098 * bit: the bit to update (see cpuset_flagbits_t)
1099 * cs: the cpuset to update
1100 * turning_on: whether the flag is being set or cleared
Paul Jackson053199e2005-10-30 15:02:30 -08001101 *
Paul Menage2df167a2008-02-07 00:14:45 -08001102 * Call with cgroup_mutex held.
Linus Torvalds1da177e2005-04-16 15:20:36 -07001103 */
1104
Paul Menage700fe1a2008-04-29 01:00:00 -07001105static int update_flag(cpuset_flagbits_t bit, struct cpuset *cs,
1106 int turning_on)
Linus Torvalds1da177e2005-04-16 15:20:36 -07001107{
Linus Torvalds1da177e2005-04-16 15:20:36 -07001108 struct cpuset trialcs;
Paul Jackson607717a2007-10-16 01:27:43 -07001109 int err;
Paul Jackson029190c2007-10-18 23:40:20 -07001110 int cpus_nonempty, balance_flag_changed;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001111
Linus Torvalds1da177e2005-04-16 15:20:36 -07001112 trialcs = *cs;
1113 if (turning_on)
1114 set_bit(bit, &trialcs.flags);
1115 else
1116 clear_bit(bit, &trialcs.flags);
1117
1118 err = validate_change(cs, &trialcs);
Dinakar Guniguntala85d7b942005-06-25 14:57:34 -07001119 if (err < 0)
1120 return err;
Paul Jackson029190c2007-10-18 23:40:20 -07001121
1122 cpus_nonempty = !cpus_empty(trialcs.cpus_allowed);
1123 balance_flag_changed = (is_sched_load_balance(cs) !=
1124 is_sched_load_balance(&trialcs));
1125
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08001126 mutex_lock(&callback_mutex);
Paul Jackson69604062006-12-06 20:36:15 -08001127 cs->flags = trialcs.flags;
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08001128 mutex_unlock(&callback_mutex);
Dinakar Guniguntala85d7b942005-06-25 14:57:34 -07001129
Paul Jackson029190c2007-10-18 23:40:20 -07001130 if (cpus_nonempty && balance_flag_changed)
1131 rebuild_sched_domains();
1132
Dinakar Guniguntala85d7b942005-06-25 14:57:34 -07001133 return 0;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001134}
1135
Paul Jackson053199e2005-10-30 15:02:30 -08001136/*
Adrian Bunk80f72282006-06-30 18:27:16 +02001137 * Frequency meter - How fast is some event occurring?
Paul Jackson3e0d98b2006-01-08 01:01:49 -08001138 *
1139 * These routines manage a digitally filtered, constant time based,
1140 * event frequency meter. There are four routines:
1141 * fmeter_init() - initialize a frequency meter.
1142 * fmeter_markevent() - called each time the event happens.
1143 * fmeter_getrate() - returns the recent rate of such events.
1144 * fmeter_update() - internal routine used to update fmeter.
1145 *
1146 * A common data structure is passed to each of these routines,
1147 * which is used to keep track of the state required to manage the
1148 * frequency meter and its digital filter.
1149 *
1150 * The filter works on the number of events marked per unit time.
1151 * The filter is single-pole low-pass recursive (IIR). The time unit
1152 * is 1 second. Arithmetic is done using 32-bit integers scaled to
1153 * simulate 3 decimal digits of precision (multiplied by 1000).
1154 *
1155 * With an FM_COEF of 933, and a time base of 1 second, the filter
1156 * has a half-life of 10 seconds, meaning that if the events quit
1157 * happening, then the rate returned from the fmeter_getrate()
1158 * will be cut in half each 10 seconds, until it converges to zero.
1159 *
1160 * It is not worth doing a real infinitely recursive filter. If more
1161 * than FM_MAXTICKS ticks have elapsed since the last filter event,
1162 * just compute FM_MAXTICKS ticks worth, by which point the level
1163 * will be stable.
1164 *
1165 * Limit the count of unprocessed events to FM_MAXCNT, so as to avoid
1166 * arithmetic overflow in the fmeter_update() routine.
1167 *
1168 * Given the simple 32 bit integer arithmetic used, this meter works
1169 * best for reporting rates between one per millisecond (msec) and
1170 * one per 32 (approx) seconds. At constant rates faster than one
1171 * per msec it maxes out at values just under 1,000,000. At constant
1172 * rates between one per msec, and one per second it will stabilize
1173 * to a value N*1000, where N is the rate of events per second.
1174 * At constant rates between one per second and one per 32 seconds,
1175 * it will be choppy, moving up on the seconds that have an event,
1176 * and then decaying until the next event. At rates slower than
1177 * about one in 32 seconds, it decays all the way back to zero between
1178 * each event.
1179 */
1180
1181#define FM_COEF 933 /* coefficient for half-life of 10 secs */
1182#define FM_MAXTICKS ((time_t)99) /* useless computing more ticks than this */
1183#define FM_MAXCNT 1000000 /* limit cnt to avoid overflow */
1184#define FM_SCALE 1000 /* faux fixed point scale */
1185
1186/* Initialize a frequency meter */
1187static void fmeter_init(struct fmeter *fmp)
1188{
1189 fmp->cnt = 0;
1190 fmp->val = 0;
1191 fmp->time = 0;
1192 spin_lock_init(&fmp->lock);
1193}
1194
1195/* Internal meter update - process cnt events and update value */
1196static void fmeter_update(struct fmeter *fmp)
1197{
1198 time_t now = get_seconds();
1199 time_t ticks = now - fmp->time;
1200
1201 if (ticks == 0)
1202 return;
1203
1204 ticks = min(FM_MAXTICKS, ticks);
1205 while (ticks-- > 0)
1206 fmp->val = (FM_COEF * fmp->val) / FM_SCALE;
1207 fmp->time = now;
1208
1209 fmp->val += ((FM_SCALE - FM_COEF) * fmp->cnt) / FM_SCALE;
1210 fmp->cnt = 0;
1211}
1212
1213/* Process any previous ticks, then bump cnt by one (times scale). */
1214static void fmeter_markevent(struct fmeter *fmp)
1215{
1216 spin_lock(&fmp->lock);
1217 fmeter_update(fmp);
1218 fmp->cnt = min(FM_MAXCNT, fmp->cnt + FM_SCALE);
1219 spin_unlock(&fmp->lock);
1220}
1221
1222/* Process any previous ticks, then return current value. */
1223static int fmeter_getrate(struct fmeter *fmp)
1224{
1225 int val;
1226
1227 spin_lock(&fmp->lock);
1228 fmeter_update(fmp);
1229 val = fmp->val;
1230 spin_unlock(&fmp->lock);
1231 return val;
1232}
1233
Paul Menage2df167a2008-02-07 00:14:45 -08001234/* Called by cgroups to determine if a cpuset is usable; cgroup_mutex held */
Paul Menage8793d852007-10-18 23:39:39 -07001235static int cpuset_can_attach(struct cgroup_subsys *ss,
1236 struct cgroup *cont, struct task_struct *tsk)
Linus Torvalds1da177e2005-04-16 15:20:36 -07001237{
Paul Menage8793d852007-10-18 23:39:39 -07001238 struct cpuset *cs = cgroup_cs(cont);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001239
Linus Torvalds1da177e2005-04-16 15:20:36 -07001240 if (cpus_empty(cs->cpus_allowed) || nodes_empty(cs->mems_allowed))
1241 return -ENOSPC;
David Rientjes9985b0b2008-06-05 12:57:11 -07001242 if (tsk->flags & PF_THREAD_BOUND) {
1243 cpumask_t mask;
1244
1245 mutex_lock(&callback_mutex);
1246 mask = cs->cpus_allowed;
1247 mutex_unlock(&callback_mutex);
1248 if (!cpus_equal(tsk->cpus_allowed, mask))
1249 return -EINVAL;
1250 }
Linus Torvalds1da177e2005-04-16 15:20:36 -07001251
Paul Menage8793d852007-10-18 23:39:39 -07001252 return security_task_setscheduler(tsk, 0, NULL);
1253}
Linus Torvalds1da177e2005-04-16 15:20:36 -07001254
Paul Menage8793d852007-10-18 23:39:39 -07001255static void cpuset_attach(struct cgroup_subsys *ss,
1256 struct cgroup *cont, struct cgroup *oldcont,
1257 struct task_struct *tsk)
1258{
1259 cpumask_t cpus;
1260 nodemask_t from, to;
1261 struct mm_struct *mm;
1262 struct cpuset *cs = cgroup_cs(cont);
1263 struct cpuset *oldcs = cgroup_cs(oldcont);
David Rientjes9985b0b2008-06-05 12:57:11 -07001264 int err;
David Quigley22fb52d2006-06-23 02:04:00 -07001265
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08001266 mutex_lock(&callback_mutex);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001267 guarantee_online_cpus(cs, &cpus);
David Rientjes9985b0b2008-06-05 12:57:11 -07001268 err = set_cpus_allowed_ptr(tsk, &cpus);
Paul Menage8793d852007-10-18 23:39:39 -07001269 mutex_unlock(&callback_mutex);
David Rientjes9985b0b2008-06-05 12:57:11 -07001270 if (err)
1271 return;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001272
Paul Jackson45b07ef2006-01-08 01:00:56 -08001273 from = oldcs->mems_allowed;
1274 to = cs->mems_allowed;
Paul Jackson42253992006-01-08 01:01:59 -08001275 mm = get_task_mm(tsk);
1276 if (mm) {
1277 mpol_rebind_mm(mm, &to);
Paul Jackson2741a552006-03-31 02:30:51 -08001278 if (is_memory_migrate(cs))
Paul Jacksone4e364e2006-03-31 02:30:52 -08001279 cpuset_migrate_mm(mm, &from, &to);
Paul Jackson42253992006-01-08 01:01:59 -08001280 mmput(mm);
1281 }
1282
Linus Torvalds1da177e2005-04-16 15:20:36 -07001283}
1284
1285/* The various types of files and directories in a cpuset file system */
1286
1287typedef enum {
Paul Jackson45b07ef2006-01-08 01:00:56 -08001288 FILE_MEMORY_MIGRATE,
Linus Torvalds1da177e2005-04-16 15:20:36 -07001289 FILE_CPULIST,
1290 FILE_MEMLIST,
1291 FILE_CPU_EXCLUSIVE,
1292 FILE_MEM_EXCLUSIVE,
Paul Menage78608362008-04-29 01:00:26 -07001293 FILE_MEM_HARDWALL,
Paul Jackson029190c2007-10-18 23:40:20 -07001294 FILE_SCHED_LOAD_BALANCE,
Hidetoshi Seto1d3504f2008-04-15 14:04:23 +09001295 FILE_SCHED_RELAX_DOMAIN_LEVEL,
Paul Jackson3e0d98b2006-01-08 01:01:49 -08001296 FILE_MEMORY_PRESSURE_ENABLED,
1297 FILE_MEMORY_PRESSURE,
Paul Jackson825a46a2006-03-24 03:16:03 -08001298 FILE_SPREAD_PAGE,
1299 FILE_SPREAD_SLAB,
Linus Torvalds1da177e2005-04-16 15:20:36 -07001300} cpuset_filetype_t;
1301
Paul Menage700fe1a2008-04-29 01:00:00 -07001302static int cpuset_write_u64(struct cgroup *cgrp, struct cftype *cft, u64 val)
1303{
1304 int retval = 0;
1305 struct cpuset *cs = cgroup_cs(cgrp);
1306 cpuset_filetype_t type = cft->private;
1307
Paul Menagee3712392008-07-25 01:47:02 -07001308 if (!cgroup_lock_live_group(cgrp))
Paul Menage700fe1a2008-04-29 01:00:00 -07001309 return -ENODEV;
Paul Menage700fe1a2008-04-29 01:00:00 -07001310
1311 switch (type) {
1312 case FILE_CPU_EXCLUSIVE:
1313 retval = update_flag(CS_CPU_EXCLUSIVE, cs, val);
1314 break;
1315 case FILE_MEM_EXCLUSIVE:
1316 retval = update_flag(CS_MEM_EXCLUSIVE, cs, val);
1317 break;
Paul Menage78608362008-04-29 01:00:26 -07001318 case FILE_MEM_HARDWALL:
1319 retval = update_flag(CS_MEM_HARDWALL, cs, val);
1320 break;
Paul Menage700fe1a2008-04-29 01:00:00 -07001321 case FILE_SCHED_LOAD_BALANCE:
1322 retval = update_flag(CS_SCHED_LOAD_BALANCE, cs, val);
1323 break;
1324 case FILE_MEMORY_MIGRATE:
1325 retval = update_flag(CS_MEMORY_MIGRATE, cs, val);
1326 break;
1327 case FILE_MEMORY_PRESSURE_ENABLED:
1328 cpuset_memory_pressure_enabled = !!val;
1329 break;
1330 case FILE_MEMORY_PRESSURE:
1331 retval = -EACCES;
1332 break;
1333 case FILE_SPREAD_PAGE:
1334 retval = update_flag(CS_SPREAD_PAGE, cs, val);
1335 cs->mems_generation = cpuset_mems_generation++;
1336 break;
1337 case FILE_SPREAD_SLAB:
1338 retval = update_flag(CS_SPREAD_SLAB, cs, val);
1339 cs->mems_generation = cpuset_mems_generation++;
1340 break;
1341 default:
1342 retval = -EINVAL;
1343 break;
1344 }
1345 cgroup_unlock();
1346 return retval;
1347}
1348
Paul Menage5be7a472008-05-06 20:42:41 -07001349static int cpuset_write_s64(struct cgroup *cgrp, struct cftype *cft, s64 val)
1350{
1351 int retval = 0;
1352 struct cpuset *cs = cgroup_cs(cgrp);
1353 cpuset_filetype_t type = cft->private;
1354
Paul Menagee3712392008-07-25 01:47:02 -07001355 if (!cgroup_lock_live_group(cgrp))
Paul Menage5be7a472008-05-06 20:42:41 -07001356 return -ENODEV;
Paul Menagee3712392008-07-25 01:47:02 -07001357
Paul Menage5be7a472008-05-06 20:42:41 -07001358 switch (type) {
1359 case FILE_SCHED_RELAX_DOMAIN_LEVEL:
1360 retval = update_relax_domain_level(cs, val);
1361 break;
1362 default:
1363 retval = -EINVAL;
1364 break;
1365 }
1366 cgroup_unlock();
1367 return retval;
1368}
1369
Linus Torvalds1da177e2005-04-16 15:20:36 -07001370/*
Paul Menagee3712392008-07-25 01:47:02 -07001371 * Common handling for a write to a "cpus" or "mems" file.
1372 */
1373static int cpuset_write_resmask(struct cgroup *cgrp, struct cftype *cft,
1374 const char *buf)
1375{
1376 int retval = 0;
1377
1378 if (!cgroup_lock_live_group(cgrp))
1379 return -ENODEV;
1380
1381 switch (cft->private) {
1382 case FILE_CPULIST:
1383 retval = update_cpumask(cgroup_cs(cgrp), buf);
1384 break;
1385 case FILE_MEMLIST:
1386 retval = update_nodemask(cgroup_cs(cgrp), buf);
1387 break;
1388 default:
1389 retval = -EINVAL;
1390 break;
1391 }
1392 cgroup_unlock();
1393 return retval;
1394}
1395
1396/*
Linus Torvalds1da177e2005-04-16 15:20:36 -07001397 * These ascii lists should be read in a single call, by using a user
1398 * buffer large enough to hold the entire map. If read in smaller
1399 * chunks, there is no guarantee of atomicity. Since the display format
1400 * used, list of ranges of sequential numbers, is variable length,
1401 * and since these maps can change value dynamically, one could read
1402 * gibberish by doing partial reads while a list was changing.
1403 * A single large read to a buffer that crosses a page boundary is
1404 * ok, because the result being copied to user land is not recomputed
1405 * across a page fault.
1406 */
1407
1408static int cpuset_sprintf_cpulist(char *page, struct cpuset *cs)
1409{
1410 cpumask_t mask;
1411
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08001412 mutex_lock(&callback_mutex);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001413 mask = cs->cpus_allowed;
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08001414 mutex_unlock(&callback_mutex);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001415
1416 return cpulist_scnprintf(page, PAGE_SIZE, mask);
1417}
1418
1419static int cpuset_sprintf_memlist(char *page, struct cpuset *cs)
1420{
1421 nodemask_t mask;
1422
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08001423 mutex_lock(&callback_mutex);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001424 mask = cs->mems_allowed;
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08001425 mutex_unlock(&callback_mutex);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001426
1427 return nodelist_scnprintf(page, PAGE_SIZE, mask);
1428}
1429
Paul Menage8793d852007-10-18 23:39:39 -07001430static ssize_t cpuset_common_file_read(struct cgroup *cont,
1431 struct cftype *cft,
1432 struct file *file,
1433 char __user *buf,
1434 size_t nbytes, loff_t *ppos)
Linus Torvalds1da177e2005-04-16 15:20:36 -07001435{
Paul Menage8793d852007-10-18 23:39:39 -07001436 struct cpuset *cs = cgroup_cs(cont);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001437 cpuset_filetype_t type = cft->private;
1438 char *page;
1439 ssize_t retval = 0;
1440 char *s;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001441
Mel Gormane12ba742007-10-16 01:25:52 -07001442 if (!(page = (char *)__get_free_page(GFP_TEMPORARY)))
Linus Torvalds1da177e2005-04-16 15:20:36 -07001443 return -ENOMEM;
1444
1445 s = page;
1446
1447 switch (type) {
1448 case FILE_CPULIST:
1449 s += cpuset_sprintf_cpulist(s, cs);
1450 break;
1451 case FILE_MEMLIST:
1452 s += cpuset_sprintf_memlist(s, cs);
1453 break;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001454 default:
1455 retval = -EINVAL;
1456 goto out;
1457 }
1458 *s++ = '\n';
Linus Torvalds1da177e2005-04-16 15:20:36 -07001459
Al Viroeacaa1f2005-09-30 03:26:43 +01001460 retval = simple_read_from_buffer(buf, nbytes, ppos, page, s - page);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001461out:
1462 free_page((unsigned long)page);
1463 return retval;
1464}
1465
Paul Menage700fe1a2008-04-29 01:00:00 -07001466static u64 cpuset_read_u64(struct cgroup *cont, struct cftype *cft)
1467{
1468 struct cpuset *cs = cgroup_cs(cont);
1469 cpuset_filetype_t type = cft->private;
1470 switch (type) {
1471 case FILE_CPU_EXCLUSIVE:
1472 return is_cpu_exclusive(cs);
1473 case FILE_MEM_EXCLUSIVE:
1474 return is_mem_exclusive(cs);
Paul Menage78608362008-04-29 01:00:26 -07001475 case FILE_MEM_HARDWALL:
1476 return is_mem_hardwall(cs);
Paul Menage700fe1a2008-04-29 01:00:00 -07001477 case FILE_SCHED_LOAD_BALANCE:
1478 return is_sched_load_balance(cs);
1479 case FILE_MEMORY_MIGRATE:
1480 return is_memory_migrate(cs);
1481 case FILE_MEMORY_PRESSURE_ENABLED:
1482 return cpuset_memory_pressure_enabled;
1483 case FILE_MEMORY_PRESSURE:
1484 return fmeter_getrate(&cs->fmeter);
1485 case FILE_SPREAD_PAGE:
1486 return is_spread_page(cs);
1487 case FILE_SPREAD_SLAB:
1488 return is_spread_slab(cs);
1489 default:
1490 BUG();
1491 }
1492}
Linus Torvalds1da177e2005-04-16 15:20:36 -07001493
Paul Menage5be7a472008-05-06 20:42:41 -07001494static s64 cpuset_read_s64(struct cgroup *cont, struct cftype *cft)
1495{
1496 struct cpuset *cs = cgroup_cs(cont);
1497 cpuset_filetype_t type = cft->private;
1498 switch (type) {
1499 case FILE_SCHED_RELAX_DOMAIN_LEVEL:
1500 return cs->relax_domain_level;
1501 default:
1502 BUG();
1503 }
1504}
1505
Linus Torvalds1da177e2005-04-16 15:20:36 -07001506
1507/*
1508 * for the common functions, 'private' gives the type of file
1509 */
1510
Paul Menageaddf2c72008-04-29 01:00:26 -07001511static struct cftype files[] = {
1512 {
1513 .name = "cpus",
1514 .read = cpuset_common_file_read,
Paul Menagee3712392008-07-25 01:47:02 -07001515 .write_string = cpuset_write_resmask,
1516 .max_write_len = (100U + 6 * NR_CPUS),
Paul Menageaddf2c72008-04-29 01:00:26 -07001517 .private = FILE_CPULIST,
1518 },
Linus Torvalds1da177e2005-04-16 15:20:36 -07001519
Paul Menageaddf2c72008-04-29 01:00:26 -07001520 {
1521 .name = "mems",
1522 .read = cpuset_common_file_read,
Paul Menagee3712392008-07-25 01:47:02 -07001523 .write_string = cpuset_write_resmask,
1524 .max_write_len = (100U + 6 * MAX_NUMNODES),
Paul Menageaddf2c72008-04-29 01:00:26 -07001525 .private = FILE_MEMLIST,
1526 },
Linus Torvalds1da177e2005-04-16 15:20:36 -07001527
Paul Menageaddf2c72008-04-29 01:00:26 -07001528 {
1529 .name = "cpu_exclusive",
1530 .read_u64 = cpuset_read_u64,
1531 .write_u64 = cpuset_write_u64,
1532 .private = FILE_CPU_EXCLUSIVE,
1533 },
Linus Torvalds1da177e2005-04-16 15:20:36 -07001534
Paul Menageaddf2c72008-04-29 01:00:26 -07001535 {
1536 .name = "mem_exclusive",
1537 .read_u64 = cpuset_read_u64,
1538 .write_u64 = cpuset_write_u64,
1539 .private = FILE_MEM_EXCLUSIVE,
1540 },
Linus Torvalds1da177e2005-04-16 15:20:36 -07001541
Paul Menageaddf2c72008-04-29 01:00:26 -07001542 {
Paul Menage78608362008-04-29 01:00:26 -07001543 .name = "mem_hardwall",
1544 .read_u64 = cpuset_read_u64,
1545 .write_u64 = cpuset_write_u64,
1546 .private = FILE_MEM_HARDWALL,
1547 },
1548
1549 {
Paul Menageaddf2c72008-04-29 01:00:26 -07001550 .name = "sched_load_balance",
1551 .read_u64 = cpuset_read_u64,
1552 .write_u64 = cpuset_write_u64,
1553 .private = FILE_SCHED_LOAD_BALANCE,
1554 },
Paul Jackson029190c2007-10-18 23:40:20 -07001555
Paul Menageaddf2c72008-04-29 01:00:26 -07001556 {
1557 .name = "sched_relax_domain_level",
Paul Menage5be7a472008-05-06 20:42:41 -07001558 .read_s64 = cpuset_read_s64,
1559 .write_s64 = cpuset_write_s64,
Paul Menageaddf2c72008-04-29 01:00:26 -07001560 .private = FILE_SCHED_RELAX_DOMAIN_LEVEL,
1561 },
Hidetoshi Seto1d3504f2008-04-15 14:04:23 +09001562
Paul Menageaddf2c72008-04-29 01:00:26 -07001563 {
1564 .name = "memory_migrate",
1565 .read_u64 = cpuset_read_u64,
1566 .write_u64 = cpuset_write_u64,
1567 .private = FILE_MEMORY_MIGRATE,
1568 },
1569
1570 {
1571 .name = "memory_pressure",
1572 .read_u64 = cpuset_read_u64,
1573 .write_u64 = cpuset_write_u64,
1574 .private = FILE_MEMORY_PRESSURE,
1575 },
1576
1577 {
1578 .name = "memory_spread_page",
1579 .read_u64 = cpuset_read_u64,
1580 .write_u64 = cpuset_write_u64,
1581 .private = FILE_SPREAD_PAGE,
1582 },
1583
1584 {
1585 .name = "memory_spread_slab",
1586 .read_u64 = cpuset_read_u64,
1587 .write_u64 = cpuset_write_u64,
1588 .private = FILE_SPREAD_SLAB,
1589 },
Paul Jackson45b07ef2006-01-08 01:00:56 -08001590};
1591
Paul Jackson3e0d98b2006-01-08 01:01:49 -08001592static struct cftype cft_memory_pressure_enabled = {
1593 .name = "memory_pressure_enabled",
Paul Menage700fe1a2008-04-29 01:00:00 -07001594 .read_u64 = cpuset_read_u64,
1595 .write_u64 = cpuset_write_u64,
Paul Jackson3e0d98b2006-01-08 01:01:49 -08001596 .private = FILE_MEMORY_PRESSURE_ENABLED,
1597};
1598
Paul Menage8793d852007-10-18 23:39:39 -07001599static int cpuset_populate(struct cgroup_subsys *ss, struct cgroup *cont)
Linus Torvalds1da177e2005-04-16 15:20:36 -07001600{
1601 int err;
1602
Paul Menageaddf2c72008-04-29 01:00:26 -07001603 err = cgroup_add_files(cont, ss, files, ARRAY_SIZE(files));
1604 if (err)
Paul Jackson825a46a2006-03-24 03:16:03 -08001605 return err;
Paul Menage8793d852007-10-18 23:39:39 -07001606 /* memory_pressure_enabled is in root cpuset only */
Paul Menageaddf2c72008-04-29 01:00:26 -07001607 if (!cont->parent)
Paul Menage8793d852007-10-18 23:39:39 -07001608 err = cgroup_add_file(cont, ss,
Paul Menageaddf2c72008-04-29 01:00:26 -07001609 &cft_memory_pressure_enabled);
1610 return err;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001611}
1612
1613/*
Paul Menage8793d852007-10-18 23:39:39 -07001614 * post_clone() is called at the end of cgroup_clone().
1615 * 'cgroup' was just created automatically as a result of
1616 * a cgroup_clone(), and the current task is about to
1617 * be moved into 'cgroup'.
1618 *
1619 * Currently we refuse to set up the cgroup - thereby
1620 * refusing the task to be entered, and as a result refusing
1621 * the sys_unshare() or clone() which initiated it - if any
1622 * sibling cpusets have exclusive cpus or mem.
1623 *
1624 * If this becomes a problem for some users who wish to
1625 * allow that scenario, then cpuset_post_clone() could be
1626 * changed to grant parent->cpus_allowed-sibling_cpus_exclusive
Paul Menage2df167a2008-02-07 00:14:45 -08001627 * (and likewise for mems) to the new cgroup. Called with cgroup_mutex
1628 * held.
Paul Menage8793d852007-10-18 23:39:39 -07001629 */
1630static void cpuset_post_clone(struct cgroup_subsys *ss,
1631 struct cgroup *cgroup)
1632{
1633 struct cgroup *parent, *child;
1634 struct cpuset *cs, *parent_cs;
1635
1636 parent = cgroup->parent;
1637 list_for_each_entry(child, &parent->children, sibling) {
1638 cs = cgroup_cs(child);
1639 if (is_mem_exclusive(cs) || is_cpu_exclusive(cs))
1640 return;
1641 }
1642 cs = cgroup_cs(cgroup);
1643 parent_cs = cgroup_cs(parent);
1644
1645 cs->mems_allowed = parent_cs->mems_allowed;
1646 cs->cpus_allowed = parent_cs->cpus_allowed;
1647 return;
1648}
1649
1650/*
Linus Torvalds1da177e2005-04-16 15:20:36 -07001651 * cpuset_create - create a cpuset
Paul Menage2df167a2008-02-07 00:14:45 -08001652 * ss: cpuset cgroup subsystem
1653 * cont: control group that the new cpuset will be part of
Linus Torvalds1da177e2005-04-16 15:20:36 -07001654 */
1655
Paul Menage8793d852007-10-18 23:39:39 -07001656static struct cgroup_subsys_state *cpuset_create(
1657 struct cgroup_subsys *ss,
1658 struct cgroup *cont)
Linus Torvalds1da177e2005-04-16 15:20:36 -07001659{
1660 struct cpuset *cs;
Paul Menage8793d852007-10-18 23:39:39 -07001661 struct cpuset *parent;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001662
Paul Menage8793d852007-10-18 23:39:39 -07001663 if (!cont->parent) {
1664 /* This is early initialization for the top cgroup */
1665 top_cpuset.mems_generation = cpuset_mems_generation++;
1666 return &top_cpuset.css;
1667 }
1668 parent = cgroup_cs(cont->parent);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001669 cs = kmalloc(sizeof(*cs), GFP_KERNEL);
1670 if (!cs)
Paul Menage8793d852007-10-18 23:39:39 -07001671 return ERR_PTR(-ENOMEM);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001672
Paul Jacksoncf2a4732006-01-08 01:01:54 -08001673 cpuset_update_task_memory_state();
Linus Torvalds1da177e2005-04-16 15:20:36 -07001674 cs->flags = 0;
Paul Jackson825a46a2006-03-24 03:16:03 -08001675 if (is_spread_page(parent))
1676 set_bit(CS_SPREAD_PAGE, &cs->flags);
1677 if (is_spread_slab(parent))
1678 set_bit(CS_SPREAD_SLAB, &cs->flags);
Paul Jackson029190c2007-10-18 23:40:20 -07001679 set_bit(CS_SCHED_LOAD_BALANCE, &cs->flags);
Mike Travisf9a86fc2008-04-04 18:11:07 -07001680 cpus_clear(cs->cpus_allowed);
1681 nodes_clear(cs->mems_allowed);
Paul Jackson151a4422006-03-24 03:16:11 -08001682 cs->mems_generation = cpuset_mems_generation++;
Paul Jackson3e0d98b2006-01-08 01:01:49 -08001683 fmeter_init(&cs->fmeter);
Hidetoshi Seto1d3504f2008-04-15 14:04:23 +09001684 cs->relax_domain_level = -1;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001685
1686 cs->parent = parent;
Paul Jackson202f72d2006-01-08 01:01:57 -08001687 number_of_cpusets++;
Paul Menage8793d852007-10-18 23:39:39 -07001688 return &cs->css ;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001689}
1690
Paul Jackson029190c2007-10-18 23:40:20 -07001691/*
1692 * Locking note on the strange update_flag() call below:
1693 *
1694 * If the cpuset being removed has its flag 'sched_load_balance'
1695 * enabled, then simulate turning sched_load_balance off, which
Gautham R Shenoy86ef5c92008-01-25 21:08:02 +01001696 * will call rebuild_sched_domains(). The get_online_cpus()
Paul Jackson029190c2007-10-18 23:40:20 -07001697 * call in rebuild_sched_domains() must not be made while holding
1698 * callback_mutex. Elsewhere the kernel nests callback_mutex inside
Gautham R Shenoy86ef5c92008-01-25 21:08:02 +01001699 * get_online_cpus() calls. So the reverse nesting would risk an
Paul Jackson029190c2007-10-18 23:40:20 -07001700 * ABBA deadlock.
1701 */
1702
Paul Menage8793d852007-10-18 23:39:39 -07001703static void cpuset_destroy(struct cgroup_subsys *ss, struct cgroup *cont)
Linus Torvalds1da177e2005-04-16 15:20:36 -07001704{
Paul Menage8793d852007-10-18 23:39:39 -07001705 struct cpuset *cs = cgroup_cs(cont);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001706
Paul Jacksoncf2a4732006-01-08 01:01:54 -08001707 cpuset_update_task_memory_state();
Paul Jackson029190c2007-10-18 23:40:20 -07001708
1709 if (is_sched_load_balance(cs))
Paul Menage700fe1a2008-04-29 01:00:00 -07001710 update_flag(CS_SCHED_LOAD_BALANCE, cs, 0);
Paul Jackson029190c2007-10-18 23:40:20 -07001711
Paul Jackson202f72d2006-01-08 01:01:57 -08001712 number_of_cpusets--;
Paul Menage8793d852007-10-18 23:39:39 -07001713 kfree(cs);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001714}
1715
Paul Menage8793d852007-10-18 23:39:39 -07001716struct cgroup_subsys cpuset_subsys = {
1717 .name = "cpuset",
1718 .create = cpuset_create,
1719 .destroy = cpuset_destroy,
1720 .can_attach = cpuset_can_attach,
1721 .attach = cpuset_attach,
1722 .populate = cpuset_populate,
1723 .post_clone = cpuset_post_clone,
1724 .subsys_id = cpuset_subsys_id,
1725 .early_init = 1,
1726};
1727
Paul Jacksonc417f022006-01-08 01:02:01 -08001728/*
1729 * cpuset_init_early - just enough so that the calls to
1730 * cpuset_update_task_memory_state() in early init code
1731 * are harmless.
1732 */
1733
1734int __init cpuset_init_early(void)
1735{
Paul Menage8793d852007-10-18 23:39:39 -07001736 top_cpuset.mems_generation = cpuset_mems_generation++;
Paul Jacksonc417f022006-01-08 01:02:01 -08001737 return 0;
1738}
1739
Paul Menage8793d852007-10-18 23:39:39 -07001740
Linus Torvalds1da177e2005-04-16 15:20:36 -07001741/**
1742 * cpuset_init - initialize cpusets at system boot
1743 *
1744 * Description: Initialize top_cpuset and the cpuset internal file system,
1745 **/
1746
1747int __init cpuset_init(void)
1748{
Paul Menage8793d852007-10-18 23:39:39 -07001749 int err = 0;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001750
Mike Travisf9a86fc2008-04-04 18:11:07 -07001751 cpus_setall(top_cpuset.cpus_allowed);
1752 nodes_setall(top_cpuset.mems_allowed);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001753
Paul Jackson3e0d98b2006-01-08 01:01:49 -08001754 fmeter_init(&top_cpuset.fmeter);
Paul Jackson151a4422006-03-24 03:16:11 -08001755 top_cpuset.mems_generation = cpuset_mems_generation++;
Paul Jackson029190c2007-10-18 23:40:20 -07001756 set_bit(CS_SCHED_LOAD_BALANCE, &top_cpuset.flags);
Hidetoshi Seto1d3504f2008-04-15 14:04:23 +09001757 top_cpuset.relax_domain_level = -1;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001758
Linus Torvalds1da177e2005-04-16 15:20:36 -07001759 err = register_filesystem(&cpuset_fs_type);
1760 if (err < 0)
Paul Menage8793d852007-10-18 23:39:39 -07001761 return err;
1762
Paul Jackson202f72d2006-01-08 01:01:57 -08001763 number_of_cpusets = 1;
Paul Menage8793d852007-10-18 23:39:39 -07001764 return 0;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001765}
1766
Cliff Wickman956db3c2008-02-07 00:14:43 -08001767/**
1768 * cpuset_do_move_task - move a given task to another cpuset
1769 * @tsk: pointer to task_struct the task to move
1770 * @scan: struct cgroup_scanner contained in its struct cpuset_hotplug_scanner
1771 *
1772 * Called by cgroup_scan_tasks() for each task in a cgroup.
1773 * Return nonzero to stop the walk through the tasks.
1774 */
Adrian Bunk9e0c9142008-04-29 01:00:25 -07001775static void cpuset_do_move_task(struct task_struct *tsk,
1776 struct cgroup_scanner *scan)
Cliff Wickman956db3c2008-02-07 00:14:43 -08001777{
1778 struct cpuset_hotplug_scanner *chsp;
1779
1780 chsp = container_of(scan, struct cpuset_hotplug_scanner, scan);
1781 cgroup_attach_task(chsp->to, tsk);
1782}
1783
1784/**
1785 * move_member_tasks_to_cpuset - move tasks from one cpuset to another
1786 * @from: cpuset in which the tasks currently reside
1787 * @to: cpuset to which the tasks will be moved
1788 *
Paul Jacksonc8d9c902008-02-07 00:14:46 -08001789 * Called with cgroup_mutex held
1790 * callback_mutex must not be held, as cpuset_attach() will take it.
Cliff Wickman956db3c2008-02-07 00:14:43 -08001791 *
1792 * The cgroup_scan_tasks() function will scan all the tasks in a cgroup,
1793 * calling callback functions for each.
1794 */
1795static void move_member_tasks_to_cpuset(struct cpuset *from, struct cpuset *to)
1796{
1797 struct cpuset_hotplug_scanner scan;
1798
1799 scan.scan.cg = from->css.cgroup;
1800 scan.scan.test_task = NULL; /* select all tasks in cgroup */
1801 scan.scan.process_task = cpuset_do_move_task;
1802 scan.scan.heap = NULL;
1803 scan.to = to->css.cgroup;
1804
1805 if (cgroup_scan_tasks((struct cgroup_scanner *)&scan))
1806 printk(KERN_ERR "move_member_tasks_to_cpuset: "
1807 "cgroup_scan_tasks failed\n");
1808}
1809
Paul Jacksonb1aac8b2006-09-29 02:01:17 -07001810/*
1811 * If common_cpu_mem_hotplug_unplug(), below, unplugs any CPUs
1812 * or memory nodes, we need to walk over the cpuset hierarchy,
1813 * removing that CPU or node from all cpusets. If this removes the
Cliff Wickman956db3c2008-02-07 00:14:43 -08001814 * last CPU or node from a cpuset, then move the tasks in the empty
1815 * cpuset to its next-highest non-empty parent.
Paul Jacksonb1aac8b2006-09-29 02:01:17 -07001816 *
Paul Jacksonc8d9c902008-02-07 00:14:46 -08001817 * Called with cgroup_mutex held
1818 * callback_mutex must not be held, as cpuset_attach() will take it.
Paul Jacksonb1aac8b2006-09-29 02:01:17 -07001819 */
Cliff Wickman956db3c2008-02-07 00:14:43 -08001820static void remove_tasks_in_empty_cpuset(struct cpuset *cs)
Paul Jacksonb1aac8b2006-09-29 02:01:17 -07001821{
Cliff Wickman956db3c2008-02-07 00:14:43 -08001822 struct cpuset *parent;
Paul Jacksonb1aac8b2006-09-29 02:01:17 -07001823
Paul Jacksonc8d9c902008-02-07 00:14:46 -08001824 /*
1825 * The cgroup's css_sets list is in use if there are tasks
1826 * in the cpuset; the list is empty if there are none;
1827 * the cs->css.refcnt seems always 0.
1828 */
Cliff Wickman956db3c2008-02-07 00:14:43 -08001829 if (list_empty(&cs->css.cgroup->css_sets))
1830 return;
1831
1832 /*
1833 * Find its next-highest non-empty parent, (top cpuset
1834 * has online cpus, so can't be empty).
1835 */
1836 parent = cs->parent;
Paul Jacksonb4501292008-02-07 00:14:47 -08001837 while (cpus_empty(parent->cpus_allowed) ||
1838 nodes_empty(parent->mems_allowed))
Cliff Wickman956db3c2008-02-07 00:14:43 -08001839 parent = parent->parent;
Cliff Wickman956db3c2008-02-07 00:14:43 -08001840
1841 move_member_tasks_to_cpuset(cs, parent);
1842}
1843
1844/*
1845 * Walk the specified cpuset subtree and look for empty cpusets.
1846 * The tasks of such cpuset must be moved to a parent cpuset.
1847 *
Paul Menage2df167a2008-02-07 00:14:45 -08001848 * Called with cgroup_mutex held. We take callback_mutex to modify
Cliff Wickman956db3c2008-02-07 00:14:43 -08001849 * cpus_allowed and mems_allowed.
1850 *
1851 * This walk processes the tree from top to bottom, completing one layer
1852 * before dropping down to the next. It always processes a node before
1853 * any of its children.
1854 *
1855 * For now, since we lack memory hot unplug, we'll never see a cpuset
1856 * that has tasks along with an empty 'mems'. But if we did see such
1857 * a cpuset, we'd handle it just like we do if its 'cpus' was empty.
1858 */
1859static void scan_for_empty_cpusets(const struct cpuset *root)
1860{
1861 struct cpuset *cp; /* scans cpusets being updated */
1862 struct cpuset *child; /* scans child cpusets of cp */
1863 struct list_head queue;
1864 struct cgroup *cont;
Miao Xief9b4fb82008-07-25 01:47:22 -07001865 nodemask_t oldmems;
Cliff Wickman956db3c2008-02-07 00:14:43 -08001866
1867 INIT_LIST_HEAD(&queue);
1868
1869 list_add_tail((struct list_head *)&root->stack_list, &queue);
1870
Cliff Wickman956db3c2008-02-07 00:14:43 -08001871 while (!list_empty(&queue)) {
1872 cp = container_of(queue.next, struct cpuset, stack_list);
1873 list_del(queue.next);
1874 list_for_each_entry(cont, &cp->css.cgroup->children, sibling) {
1875 child = cgroup_cs(cont);
1876 list_add_tail(&child->stack_list, &queue);
1877 }
1878 cont = cp->css.cgroup;
Paul Jacksonb4501292008-02-07 00:14:47 -08001879
1880 /* Continue past cpusets with all cpus, mems online */
1881 if (cpus_subset(cp->cpus_allowed, cpu_online_map) &&
1882 nodes_subset(cp->mems_allowed, node_states[N_HIGH_MEMORY]))
1883 continue;
1884
Miao Xief9b4fb82008-07-25 01:47:22 -07001885 oldmems = cp->mems_allowed;
1886
Cliff Wickman956db3c2008-02-07 00:14:43 -08001887 /* Remove offline cpus and mems from this cpuset. */
Paul Jacksonb4501292008-02-07 00:14:47 -08001888 mutex_lock(&callback_mutex);
Cliff Wickman956db3c2008-02-07 00:14:43 -08001889 cpus_and(cp->cpus_allowed, cp->cpus_allowed, cpu_online_map);
1890 nodes_and(cp->mems_allowed, cp->mems_allowed,
1891 node_states[N_HIGH_MEMORY]);
Paul Jacksonb4501292008-02-07 00:14:47 -08001892 mutex_unlock(&callback_mutex);
1893
1894 /* Move tasks from the empty cpuset to a parent */
Paul Jacksonc8d9c902008-02-07 00:14:46 -08001895 if (cpus_empty(cp->cpus_allowed) ||
Paul Jacksonb4501292008-02-07 00:14:47 -08001896 nodes_empty(cp->mems_allowed))
Cliff Wickman956db3c2008-02-07 00:14:43 -08001897 remove_tasks_in_empty_cpuset(cp);
Miao Xief9b4fb82008-07-25 01:47:22 -07001898 else {
1899 update_tasks_cpumask(cp);
1900 update_tasks_nodemask(cp, &oldmems);
1901 }
Cliff Wickman956db3c2008-02-07 00:14:43 -08001902 }
Paul Jacksonb1aac8b2006-09-29 02:01:17 -07001903}
1904
1905/*
1906 * The cpus_allowed and mems_allowed nodemasks in the top_cpuset track
Christoph Lameter0e1e7c72007-10-16 01:25:38 -07001907 * cpu_online_map and node_states[N_HIGH_MEMORY]. Force the top cpuset to
Cliff Wickman956db3c2008-02-07 00:14:43 -08001908 * track what's online after any CPU or memory node hotplug or unplug event.
Paul Jacksonb1aac8b2006-09-29 02:01:17 -07001909 *
1910 * Since there are two callers of this routine, one for CPU hotplug
1911 * events and one for memory node hotplug events, we could have coded
1912 * two separate routines here. We code it as a single common routine
1913 * in order to minimize text size.
1914 */
1915
Dmitry Adamushko3e840502008-07-13 02:10:29 +02001916static void common_cpu_mem_hotplug_unplug(int rebuild_sd)
Paul Jacksonb1aac8b2006-09-29 02:01:17 -07001917{
Paul Menage8793d852007-10-18 23:39:39 -07001918 cgroup_lock();
Paul Jacksonb1aac8b2006-09-29 02:01:17 -07001919
Paul Jacksonb1aac8b2006-09-29 02:01:17 -07001920 top_cpuset.cpus_allowed = cpu_online_map;
Christoph Lameter0e1e7c72007-10-16 01:25:38 -07001921 top_cpuset.mems_allowed = node_states[N_HIGH_MEMORY];
Cliff Wickman956db3c2008-02-07 00:14:43 -08001922 scan_for_empty_cpusets(&top_cpuset);
Paul Jacksonb1aac8b2006-09-29 02:01:17 -07001923
Max Krasnyansky5c8e1ed2008-05-29 11:17:01 -07001924 /*
1925 * Scheduler destroys domains on hotplug events.
1926 * Rebuild them based on the current settings.
1927 */
Dmitry Adamushko3e840502008-07-13 02:10:29 +02001928 if (rebuild_sd)
1929 rebuild_sched_domains();
Max Krasnyansky5c8e1ed2008-05-29 11:17:01 -07001930
Paul Menage8793d852007-10-18 23:39:39 -07001931 cgroup_unlock();
Paul Jacksonb1aac8b2006-09-29 02:01:17 -07001932}
Paul Jacksonb1aac8b2006-09-29 02:01:17 -07001933
Paul Jackson4c4d50f2006-08-27 01:23:51 -07001934/*
1935 * The top_cpuset tracks what CPUs and Memory Nodes are online,
1936 * period. This is necessary in order to make cpusets transparent
1937 * (of no affect) on systems that are actively using CPU hotplug
1938 * but making no active use of cpusets.
1939 *
Paul Jackson38837fc2006-09-29 02:01:16 -07001940 * This routine ensures that top_cpuset.cpus_allowed tracks
1941 * cpu_online_map on each CPU hotplug (cpuhp) event.
Paul Jackson4c4d50f2006-08-27 01:23:51 -07001942 */
1943
Paul Jackson029190c2007-10-18 23:40:20 -07001944static int cpuset_handle_cpuhp(struct notifier_block *unused_nb,
1945 unsigned long phase, void *unused_cpu)
Paul Jackson4c4d50f2006-08-27 01:23:51 -07001946{
Dmitry Adamushko3e840502008-07-13 02:10:29 +02001947 switch (phase) {
1948 case CPU_UP_CANCELED:
1949 case CPU_UP_CANCELED_FROZEN:
1950 case CPU_DOWN_FAILED:
1951 case CPU_DOWN_FAILED_FROZEN:
1952 case CPU_ONLINE:
1953 case CPU_ONLINE_FROZEN:
1954 case CPU_DEAD:
1955 case CPU_DEAD_FROZEN:
1956 common_cpu_mem_hotplug_unplug(1);
1957 break;
1958 default:
Avi Kivityac076752007-05-24 12:33:15 +03001959 return NOTIFY_DONE;
Dmitry Adamushko3e840502008-07-13 02:10:29 +02001960 }
Avi Kivityac076752007-05-24 12:33:15 +03001961
Dmitry Adamushko3e840502008-07-13 02:10:29 +02001962 return NOTIFY_OK;
Paul Jackson4c4d50f2006-08-27 01:23:51 -07001963}
Paul Jackson4c4d50f2006-08-27 01:23:51 -07001964
Paul Jacksonb1aac8b2006-09-29 02:01:17 -07001965#ifdef CONFIG_MEMORY_HOTPLUG
Paul Jackson38837fc2006-09-29 02:01:16 -07001966/*
Christoph Lameter0e1e7c72007-10-16 01:25:38 -07001967 * Keep top_cpuset.mems_allowed tracking node_states[N_HIGH_MEMORY].
1968 * Call this routine anytime after you change
1969 * node_states[N_HIGH_MEMORY].
Paul Jackson38837fc2006-09-29 02:01:16 -07001970 * See also the previous routine cpuset_handle_cpuhp().
1971 */
1972
Al Viro1af98922006-10-10 22:48:57 +01001973void cpuset_track_online_nodes(void)
Paul Jackson38837fc2006-09-29 02:01:16 -07001974{
Dmitry Adamushko3e840502008-07-13 02:10:29 +02001975 common_cpu_mem_hotplug_unplug(0);
Paul Jackson38837fc2006-09-29 02:01:16 -07001976}
1977#endif
1978
Linus Torvalds1da177e2005-04-16 15:20:36 -07001979/**
1980 * cpuset_init_smp - initialize cpus_allowed
1981 *
1982 * Description: Finish top cpuset after cpu, node maps are initialized
1983 **/
1984
1985void __init cpuset_init_smp(void)
1986{
1987 top_cpuset.cpus_allowed = cpu_online_map;
Christoph Lameter0e1e7c72007-10-16 01:25:38 -07001988 top_cpuset.mems_allowed = node_states[N_HIGH_MEMORY];
Paul Jackson4c4d50f2006-08-27 01:23:51 -07001989
1990 hotcpu_notifier(cpuset_handle_cpuhp, 0);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001991}
1992
1993/**
Linus Torvalds1da177e2005-04-16 15:20:36 -07001994 * cpuset_cpus_allowed - return cpus_allowed mask from a tasks cpuset.
1995 * @tsk: pointer to task_struct from which to obtain cpuset->cpus_allowed.
Mike Travisf9a86fc2008-04-04 18:11:07 -07001996 * @pmask: pointer to cpumask_t variable to receive cpus_allowed set.
Linus Torvalds1da177e2005-04-16 15:20:36 -07001997 *
1998 * Description: Returns the cpumask_t cpus_allowed of the cpuset
1999 * attached to the specified @tsk. Guaranteed to return some non-empty
2000 * subset of cpu_online_map, even if this means going outside the
2001 * tasks cpuset.
2002 **/
2003
Mike Travisf9a86fc2008-04-04 18:11:07 -07002004void cpuset_cpus_allowed(struct task_struct *tsk, cpumask_t *pmask)
Linus Torvalds1da177e2005-04-16 15:20:36 -07002005{
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08002006 mutex_lock(&callback_mutex);
Mike Travisf9a86fc2008-04-04 18:11:07 -07002007 cpuset_cpus_allowed_locked(tsk, pmask);
Cliff Wickman470fd642007-10-18 23:40:46 -07002008 mutex_unlock(&callback_mutex);
Cliff Wickman470fd642007-10-18 23:40:46 -07002009}
2010
2011/**
2012 * cpuset_cpus_allowed_locked - return cpus_allowed mask from a tasks cpuset.
Paul Menage2df167a2008-02-07 00:14:45 -08002013 * Must be called with callback_mutex held.
Cliff Wickman470fd642007-10-18 23:40:46 -07002014 **/
Mike Travisf9a86fc2008-04-04 18:11:07 -07002015void cpuset_cpus_allowed_locked(struct task_struct *tsk, cpumask_t *pmask)
Cliff Wickman470fd642007-10-18 23:40:46 -07002016{
Paul Jackson909d75a2006-01-08 01:01:55 -08002017 task_lock(tsk);
Mike Travisf9a86fc2008-04-04 18:11:07 -07002018 guarantee_online_cpus(task_cs(tsk), pmask);
Paul Jackson909d75a2006-01-08 01:01:55 -08002019 task_unlock(tsk);
Linus Torvalds1da177e2005-04-16 15:20:36 -07002020}
2021
2022void cpuset_init_current_mems_allowed(void)
2023{
Mike Travisf9a86fc2008-04-04 18:11:07 -07002024 nodes_setall(current->mems_allowed);
Linus Torvalds1da177e2005-04-16 15:20:36 -07002025}
2026
Randy Dunlapd9fd8a62005-07-27 11:45:11 -07002027/**
Paul Jackson909d75a2006-01-08 01:01:55 -08002028 * cpuset_mems_allowed - return mems_allowed mask from a tasks cpuset.
2029 * @tsk: pointer to task_struct from which to obtain cpuset->mems_allowed.
2030 *
2031 * Description: Returns the nodemask_t mems_allowed of the cpuset
2032 * attached to the specified @tsk. Guaranteed to return some non-empty
Christoph Lameter0e1e7c72007-10-16 01:25:38 -07002033 * subset of node_states[N_HIGH_MEMORY], even if this means going outside the
Paul Jackson909d75a2006-01-08 01:01:55 -08002034 * tasks cpuset.
2035 **/
2036
2037nodemask_t cpuset_mems_allowed(struct task_struct *tsk)
2038{
2039 nodemask_t mask;
2040
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08002041 mutex_lock(&callback_mutex);
Paul Jackson909d75a2006-01-08 01:01:55 -08002042 task_lock(tsk);
Paul Menage8793d852007-10-18 23:39:39 -07002043 guarantee_online_mems(task_cs(tsk), &mask);
Paul Jackson909d75a2006-01-08 01:01:55 -08002044 task_unlock(tsk);
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08002045 mutex_unlock(&callback_mutex);
Paul Jackson909d75a2006-01-08 01:01:55 -08002046
2047 return mask;
2048}
2049
2050/**
Mel Gorman19770b32008-04-28 02:12:18 -07002051 * cpuset_nodemask_valid_mems_allowed - check nodemask vs. curremt mems_allowed
2052 * @nodemask: the nodemask to be checked
Randy Dunlapd9fd8a62005-07-27 11:45:11 -07002053 *
Mel Gorman19770b32008-04-28 02:12:18 -07002054 * Are any of the nodes in the nodemask allowed in current->mems_allowed?
Linus Torvalds1da177e2005-04-16 15:20:36 -07002055 */
Mel Gorman19770b32008-04-28 02:12:18 -07002056int cpuset_nodemask_valid_mems_allowed(nodemask_t *nodemask)
Linus Torvalds1da177e2005-04-16 15:20:36 -07002057{
Mel Gorman19770b32008-04-28 02:12:18 -07002058 return nodes_intersects(*nodemask, current->mems_allowed);
Linus Torvalds1da177e2005-04-16 15:20:36 -07002059}
2060
Paul Jackson9bf22292005-09-06 15:18:12 -07002061/*
Paul Menage78608362008-04-29 01:00:26 -07002062 * nearest_hardwall_ancestor() - Returns the nearest mem_exclusive or
2063 * mem_hardwall ancestor to the specified cpuset. Call holding
2064 * callback_mutex. If no ancestor is mem_exclusive or mem_hardwall
2065 * (an unusual configuration), then returns the root cpuset.
Linus Torvalds1da177e2005-04-16 15:20:36 -07002066 */
Paul Menage78608362008-04-29 01:00:26 -07002067static const struct cpuset *nearest_hardwall_ancestor(const struct cpuset *cs)
Linus Torvalds1da177e2005-04-16 15:20:36 -07002068{
Paul Menage78608362008-04-29 01:00:26 -07002069 while (!(is_mem_exclusive(cs) || is_mem_hardwall(cs)) && cs->parent)
Paul Jackson9bf22292005-09-06 15:18:12 -07002070 cs = cs->parent;
2071 return cs;
2072}
2073
2074/**
Paul Jackson02a0e532006-12-13 00:34:25 -08002075 * cpuset_zone_allowed_softwall - Can we allocate on zone z's memory node?
Paul Jackson9bf22292005-09-06 15:18:12 -07002076 * @z: is this zone on an allowed node?
Paul Jackson02a0e532006-12-13 00:34:25 -08002077 * @gfp_mask: memory allocation flags
Paul Jackson9bf22292005-09-06 15:18:12 -07002078 *
Paul Jackson02a0e532006-12-13 00:34:25 -08002079 * If we're in interrupt, yes, we can always allocate. If
2080 * __GFP_THISNODE is set, yes, we can always allocate. If zone
Paul Jackson9bf22292005-09-06 15:18:12 -07002081 * z's node is in our tasks mems_allowed, yes. If it's not a
2082 * __GFP_HARDWALL request and this zone's nodes is in the nearest
Paul Menage78608362008-04-29 01:00:26 -07002083 * hardwalled cpuset ancestor to this tasks cpuset, yes.
David Rientjesc596d9f2007-05-06 14:49:32 -07002084 * If the task has been OOM killed and has access to memory reserves
2085 * as specified by the TIF_MEMDIE flag, yes.
Paul Jackson9bf22292005-09-06 15:18:12 -07002086 * Otherwise, no.
2087 *
Paul Jackson02a0e532006-12-13 00:34:25 -08002088 * If __GFP_HARDWALL is set, cpuset_zone_allowed_softwall()
2089 * reduces to cpuset_zone_allowed_hardwall(). Otherwise,
2090 * cpuset_zone_allowed_softwall() might sleep, and might allow a zone
2091 * from an enclosing cpuset.
2092 *
2093 * cpuset_zone_allowed_hardwall() only handles the simpler case of
2094 * hardwall cpusets, and never sleeps.
2095 *
2096 * The __GFP_THISNODE placement logic is really handled elsewhere,
2097 * by forcibly using a zonelist starting at a specified node, and by
2098 * (in get_page_from_freelist()) refusing to consider the zones for
2099 * any node on the zonelist except the first. By the time any such
2100 * calls get to this routine, we should just shut up and say 'yes'.
2101 *
Paul Jackson9bf22292005-09-06 15:18:12 -07002102 * GFP_USER allocations are marked with the __GFP_HARDWALL bit,
David Rientjesc596d9f2007-05-06 14:49:32 -07002103 * and do not allow allocations outside the current tasks cpuset
2104 * unless the task has been OOM killed as is marked TIF_MEMDIE.
Paul Jackson9bf22292005-09-06 15:18:12 -07002105 * GFP_KERNEL allocations are not so marked, so can escape to the
Paul Menage78608362008-04-29 01:00:26 -07002106 * nearest enclosing hardwalled ancestor cpuset.
Paul Jackson9bf22292005-09-06 15:18:12 -07002107 *
Paul Jackson02a0e532006-12-13 00:34:25 -08002108 * Scanning up parent cpusets requires callback_mutex. The
2109 * __alloc_pages() routine only calls here with __GFP_HARDWALL bit
2110 * _not_ set if it's a GFP_KERNEL allocation, and all nodes in the
2111 * current tasks mems_allowed came up empty on the first pass over
2112 * the zonelist. So only GFP_KERNEL allocations, if all nodes in the
2113 * cpuset are short of memory, might require taking the callback_mutex
2114 * mutex.
Paul Jackson9bf22292005-09-06 15:18:12 -07002115 *
Paul Jackson36be57f2006-05-20 15:00:10 -07002116 * The first call here from mm/page_alloc:get_page_from_freelist()
Paul Jackson02a0e532006-12-13 00:34:25 -08002117 * has __GFP_HARDWALL set in gfp_mask, enforcing hardwall cpusets,
2118 * so no allocation on a node outside the cpuset is allowed (unless
2119 * in interrupt, of course).
Paul Jackson9bf22292005-09-06 15:18:12 -07002120 *
Paul Jackson36be57f2006-05-20 15:00:10 -07002121 * The second pass through get_page_from_freelist() doesn't even call
2122 * here for GFP_ATOMIC calls. For those calls, the __alloc_pages()
2123 * variable 'wait' is not set, and the bit ALLOC_CPUSET is not set
2124 * in alloc_flags. That logic and the checks below have the combined
2125 * affect that:
Paul Jackson9bf22292005-09-06 15:18:12 -07002126 * in_interrupt - any node ok (current task context irrelevant)
2127 * GFP_ATOMIC - any node ok
David Rientjesc596d9f2007-05-06 14:49:32 -07002128 * TIF_MEMDIE - any node ok
Paul Menage78608362008-04-29 01:00:26 -07002129 * GFP_KERNEL - any node in enclosing hardwalled cpuset ok
Paul Jackson9bf22292005-09-06 15:18:12 -07002130 * GFP_USER - only nodes in current tasks mems allowed ok.
Paul Jackson36be57f2006-05-20 15:00:10 -07002131 *
2132 * Rule:
Paul Jackson02a0e532006-12-13 00:34:25 -08002133 * Don't call cpuset_zone_allowed_softwall if you can't sleep, unless you
Paul Jackson36be57f2006-05-20 15:00:10 -07002134 * pass in the __GFP_HARDWALL flag set in gfp_flag, which disables
2135 * the code that might scan up ancestor cpusets and sleep.
Paul Jackson02a0e532006-12-13 00:34:25 -08002136 */
Paul Jackson9bf22292005-09-06 15:18:12 -07002137
Paul Jackson02a0e532006-12-13 00:34:25 -08002138int __cpuset_zone_allowed_softwall(struct zone *z, gfp_t gfp_mask)
Paul Jackson9bf22292005-09-06 15:18:12 -07002139{
2140 int node; /* node that zone z is on */
2141 const struct cpuset *cs; /* current cpuset ancestors */
Paul Jackson29afd492006-03-24 03:16:12 -08002142 int allowed; /* is allocation in zone z allowed? */
Paul Jackson9bf22292005-09-06 15:18:12 -07002143
Christoph Lameter9b819d22006-09-25 23:31:40 -07002144 if (in_interrupt() || (gfp_mask & __GFP_THISNODE))
Paul Jackson9bf22292005-09-06 15:18:12 -07002145 return 1;
Christoph Lameter89fa3022006-09-25 23:31:55 -07002146 node = zone_to_nid(z);
Paul Jackson92d1dbd2006-05-20 15:00:11 -07002147 might_sleep_if(!(gfp_mask & __GFP_HARDWALL));
Paul Jackson9bf22292005-09-06 15:18:12 -07002148 if (node_isset(node, current->mems_allowed))
2149 return 1;
David Rientjesc596d9f2007-05-06 14:49:32 -07002150 /*
2151 * Allow tasks that have access to memory reserves because they have
2152 * been OOM killed to get memory anywhere.
2153 */
2154 if (unlikely(test_thread_flag(TIF_MEMDIE)))
2155 return 1;
Paul Jackson9bf22292005-09-06 15:18:12 -07002156 if (gfp_mask & __GFP_HARDWALL) /* If hardwall request, stop here */
2157 return 0;
2158
Bob Picco5563e772005-11-13 16:06:35 -08002159 if (current->flags & PF_EXITING) /* Let dying task have memory */
2160 return 1;
2161
Paul Jackson9bf22292005-09-06 15:18:12 -07002162 /* Not hardwall and node outside mems_allowed: scan up cpusets */
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08002163 mutex_lock(&callback_mutex);
Paul Jackson053199e2005-10-30 15:02:30 -08002164
Paul Jackson053199e2005-10-30 15:02:30 -08002165 task_lock(current);
Paul Menage78608362008-04-29 01:00:26 -07002166 cs = nearest_hardwall_ancestor(task_cs(current));
Paul Jackson053199e2005-10-30 15:02:30 -08002167 task_unlock(current);
2168
Paul Jackson9bf22292005-09-06 15:18:12 -07002169 allowed = node_isset(node, cs->mems_allowed);
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08002170 mutex_unlock(&callback_mutex);
Paul Jackson9bf22292005-09-06 15:18:12 -07002171 return allowed;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002172}
2173
Paul Jackson02a0e532006-12-13 00:34:25 -08002174/*
2175 * cpuset_zone_allowed_hardwall - Can we allocate on zone z's memory node?
2176 * @z: is this zone on an allowed node?
2177 * @gfp_mask: memory allocation flags
2178 *
2179 * If we're in interrupt, yes, we can always allocate.
2180 * If __GFP_THISNODE is set, yes, we can always allocate. If zone
David Rientjesc596d9f2007-05-06 14:49:32 -07002181 * z's node is in our tasks mems_allowed, yes. If the task has been
2182 * OOM killed and has access to memory reserves as specified by the
2183 * TIF_MEMDIE flag, yes. Otherwise, no.
Paul Jackson02a0e532006-12-13 00:34:25 -08002184 *
2185 * The __GFP_THISNODE placement logic is really handled elsewhere,
2186 * by forcibly using a zonelist starting at a specified node, and by
2187 * (in get_page_from_freelist()) refusing to consider the zones for
2188 * any node on the zonelist except the first. By the time any such
2189 * calls get to this routine, we should just shut up and say 'yes'.
2190 *
2191 * Unlike the cpuset_zone_allowed_softwall() variant, above,
2192 * this variant requires that the zone be in the current tasks
2193 * mems_allowed or that we're in interrupt. It does not scan up the
2194 * cpuset hierarchy for the nearest enclosing mem_exclusive cpuset.
2195 * It never sleeps.
2196 */
2197
2198int __cpuset_zone_allowed_hardwall(struct zone *z, gfp_t gfp_mask)
2199{
2200 int node; /* node that zone z is on */
2201
2202 if (in_interrupt() || (gfp_mask & __GFP_THISNODE))
2203 return 1;
2204 node = zone_to_nid(z);
2205 if (node_isset(node, current->mems_allowed))
2206 return 1;
Daniel Walkerdedf8b72007-10-18 03:06:04 -07002207 /*
2208 * Allow tasks that have access to memory reserves because they have
2209 * been OOM killed to get memory anywhere.
2210 */
2211 if (unlikely(test_thread_flag(TIF_MEMDIE)))
2212 return 1;
Paul Jackson02a0e532006-12-13 00:34:25 -08002213 return 0;
2214}
2215
Paul Jacksonef08e3b2005-09-06 15:18:13 -07002216/**
Paul Jackson505970b2006-01-14 13:21:06 -08002217 * cpuset_lock - lock out any changes to cpuset structures
2218 *
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08002219 * The out of memory (oom) code needs to mutex_lock cpusets
Paul Jackson505970b2006-01-14 13:21:06 -08002220 * from being changed while it scans the tasklist looking for a
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08002221 * task in an overlapping cpuset. Expose callback_mutex via this
Paul Jackson505970b2006-01-14 13:21:06 -08002222 * cpuset_lock() routine, so the oom code can lock it, before
2223 * locking the task list. The tasklist_lock is a spinlock, so
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08002224 * must be taken inside callback_mutex.
Paul Jackson505970b2006-01-14 13:21:06 -08002225 */
2226
2227void cpuset_lock(void)
2228{
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08002229 mutex_lock(&callback_mutex);
Paul Jackson505970b2006-01-14 13:21:06 -08002230}
2231
2232/**
2233 * cpuset_unlock - release lock on cpuset changes
2234 *
2235 * Undo the lock taken in a previous cpuset_lock() call.
2236 */
2237
2238void cpuset_unlock(void)
2239{
Ingo Molnar3d3f26a2006-03-23 03:00:18 -08002240 mutex_unlock(&callback_mutex);
Paul Jackson505970b2006-01-14 13:21:06 -08002241}
2242
2243/**
Paul Jackson825a46a2006-03-24 03:16:03 -08002244 * cpuset_mem_spread_node() - On which node to begin search for a page
2245 *
2246 * If a task is marked PF_SPREAD_PAGE or PF_SPREAD_SLAB (as for
2247 * tasks in a cpuset with is_spread_page or is_spread_slab set),
2248 * and if the memory allocation used cpuset_mem_spread_node()
2249 * to determine on which node to start looking, as it will for
2250 * certain page cache or slab cache pages such as used for file
2251 * system buffers and inode caches, then instead of starting on the
2252 * local node to look for a free page, rather spread the starting
2253 * node around the tasks mems_allowed nodes.
2254 *
2255 * We don't have to worry about the returned node being offline
2256 * because "it can't happen", and even if it did, it would be ok.
2257 *
2258 * The routines calling guarantee_online_mems() are careful to
2259 * only set nodes in task->mems_allowed that are online. So it
2260 * should not be possible for the following code to return an
2261 * offline node. But if it did, that would be ok, as this routine
2262 * is not returning the node where the allocation must be, only
2263 * the node where the search should start. The zonelist passed to
2264 * __alloc_pages() will include all nodes. If the slab allocator
2265 * is passed an offline node, it will fall back to the local node.
2266 * See kmem_cache_alloc_node().
2267 */
2268
2269int cpuset_mem_spread_node(void)
2270{
2271 int node;
2272
2273 node = next_node(current->cpuset_mem_spread_rotor, current->mems_allowed);
2274 if (node == MAX_NUMNODES)
2275 node = first_node(current->mems_allowed);
2276 current->cpuset_mem_spread_rotor = node;
2277 return node;
2278}
2279EXPORT_SYMBOL_GPL(cpuset_mem_spread_node);
2280
2281/**
David Rientjesbbe373f2007-10-16 23:25:58 -07002282 * cpuset_mems_allowed_intersects - Does @tsk1's mems_allowed intersect @tsk2's?
2283 * @tsk1: pointer to task_struct of some task.
2284 * @tsk2: pointer to task_struct of some other task.
Paul Jacksonef08e3b2005-09-06 15:18:13 -07002285 *
David Rientjesbbe373f2007-10-16 23:25:58 -07002286 * Description: Return true if @tsk1's mems_allowed intersects the
2287 * mems_allowed of @tsk2. Used by the OOM killer to determine if
2288 * one of the task's memory usage might impact the memory available
2289 * to the other.
Paul Jacksonef08e3b2005-09-06 15:18:13 -07002290 **/
2291
David Rientjesbbe373f2007-10-16 23:25:58 -07002292int cpuset_mems_allowed_intersects(const struct task_struct *tsk1,
2293 const struct task_struct *tsk2)
Paul Jacksonef08e3b2005-09-06 15:18:13 -07002294{
David Rientjesbbe373f2007-10-16 23:25:58 -07002295 return nodes_intersects(tsk1->mems_allowed, tsk2->mems_allowed);
Paul Jacksonef08e3b2005-09-06 15:18:13 -07002296}
2297
Linus Torvalds1da177e2005-04-16 15:20:36 -07002298/*
Paul Jackson3e0d98b2006-01-08 01:01:49 -08002299 * Collection of memory_pressure is suppressed unless
2300 * this flag is enabled by writing "1" to the special
2301 * cpuset file 'memory_pressure_enabled' in the root cpuset.
2302 */
2303
Paul Jacksonc5b2aff2006-01-08 01:01:51 -08002304int cpuset_memory_pressure_enabled __read_mostly;
Paul Jackson3e0d98b2006-01-08 01:01:49 -08002305
2306/**
2307 * cpuset_memory_pressure_bump - keep stats of per-cpuset reclaims.
2308 *
2309 * Keep a running average of the rate of synchronous (direct)
2310 * page reclaim efforts initiated by tasks in each cpuset.
2311 *
2312 * This represents the rate at which some task in the cpuset
2313 * ran low on memory on all nodes it was allowed to use, and
2314 * had to enter the kernels page reclaim code in an effort to
2315 * create more free memory by tossing clean pages or swapping
2316 * or writing dirty pages.
2317 *
2318 * Display to user space in the per-cpuset read-only file
2319 * "memory_pressure". Value displayed is an integer
2320 * representing the recent rate of entry into the synchronous
2321 * (direct) page reclaim by any task attached to the cpuset.
2322 **/
2323
2324void __cpuset_memory_pressure_bump(void)
2325{
Paul Jackson3e0d98b2006-01-08 01:01:49 -08002326 task_lock(current);
Paul Menage8793d852007-10-18 23:39:39 -07002327 fmeter_markevent(&task_cs(current)->fmeter);
Paul Jackson3e0d98b2006-01-08 01:01:49 -08002328 task_unlock(current);
2329}
2330
Paul Menage8793d852007-10-18 23:39:39 -07002331#ifdef CONFIG_PROC_PID_CPUSET
Paul Jackson3e0d98b2006-01-08 01:01:49 -08002332/*
Linus Torvalds1da177e2005-04-16 15:20:36 -07002333 * proc_cpuset_show()
2334 * - Print tasks cpuset path into seq_file.
2335 * - Used for /proc/<pid>/cpuset.
Paul Jackson053199e2005-10-30 15:02:30 -08002336 * - No need to task_lock(tsk) on this tsk->cpuset reference, as it
2337 * doesn't really matter if tsk->cpuset changes after we read it,
Paul Jacksonc8d9c902008-02-07 00:14:46 -08002338 * and we take cgroup_mutex, keeping cpuset_attach() from changing it
Paul Menage2df167a2008-02-07 00:14:45 -08002339 * anyway.
Linus Torvalds1da177e2005-04-16 15:20:36 -07002340 */
Paul Jackson029190c2007-10-18 23:40:20 -07002341static int proc_cpuset_show(struct seq_file *m, void *unused_v)
Linus Torvalds1da177e2005-04-16 15:20:36 -07002342{
Eric W. Biederman13b41b02006-06-26 00:25:56 -07002343 struct pid *pid;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002344 struct task_struct *tsk;
2345 char *buf;
Paul Menage8793d852007-10-18 23:39:39 -07002346 struct cgroup_subsys_state *css;
Eric W. Biederman99f89552006-06-26 00:25:55 -07002347 int retval;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002348
Eric W. Biederman99f89552006-06-26 00:25:55 -07002349 retval = -ENOMEM;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002350 buf = kmalloc(PAGE_SIZE, GFP_KERNEL);
2351 if (!buf)
Eric W. Biederman99f89552006-06-26 00:25:55 -07002352 goto out;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002353
Eric W. Biederman99f89552006-06-26 00:25:55 -07002354 retval = -ESRCH;
Eric W. Biederman13b41b02006-06-26 00:25:56 -07002355 pid = m->private;
2356 tsk = get_pid_task(pid, PIDTYPE_PID);
Eric W. Biederman99f89552006-06-26 00:25:55 -07002357 if (!tsk)
2358 goto out_free;
2359
2360 retval = -EINVAL;
Paul Menage8793d852007-10-18 23:39:39 -07002361 cgroup_lock();
2362 css = task_subsys_state(tsk, cpuset_subsys_id);
2363 retval = cgroup_path(css->cgroup, buf, PAGE_SIZE);
Linus Torvalds1da177e2005-04-16 15:20:36 -07002364 if (retval < 0)
Eric W. Biederman99f89552006-06-26 00:25:55 -07002365 goto out_unlock;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002366 seq_puts(m, buf);
2367 seq_putc(m, '\n');
Eric W. Biederman99f89552006-06-26 00:25:55 -07002368out_unlock:
Paul Menage8793d852007-10-18 23:39:39 -07002369 cgroup_unlock();
Eric W. Biederman99f89552006-06-26 00:25:55 -07002370 put_task_struct(tsk);
2371out_free:
Linus Torvalds1da177e2005-04-16 15:20:36 -07002372 kfree(buf);
Eric W. Biederman99f89552006-06-26 00:25:55 -07002373out:
Linus Torvalds1da177e2005-04-16 15:20:36 -07002374 return retval;
2375}
2376
2377static int cpuset_open(struct inode *inode, struct file *file)
2378{
Eric W. Biederman13b41b02006-06-26 00:25:56 -07002379 struct pid *pid = PROC_I(inode)->pid;
2380 return single_open(file, proc_cpuset_show, pid);
Linus Torvalds1da177e2005-04-16 15:20:36 -07002381}
2382
Arjan van de Ven9a321442007-02-12 00:55:35 -08002383const struct file_operations proc_cpuset_operations = {
Linus Torvalds1da177e2005-04-16 15:20:36 -07002384 .open = cpuset_open,
2385 .read = seq_read,
2386 .llseek = seq_lseek,
2387 .release = single_release,
2388};
Paul Menage8793d852007-10-18 23:39:39 -07002389#endif /* CONFIG_PROC_PID_CPUSET */
Linus Torvalds1da177e2005-04-16 15:20:36 -07002390
2391/* Display task cpus_allowed, mems_allowed in /proc/<pid>/status file. */
Eric W. Biedermandf5f8312008-02-08 04:18:33 -08002392void cpuset_task_status_allowed(struct seq_file *m, struct task_struct *task)
Linus Torvalds1da177e2005-04-16 15:20:36 -07002393{
Eric W. Biedermandf5f8312008-02-08 04:18:33 -08002394 seq_printf(m, "Cpus_allowed:\t");
2395 m->count += cpumask_scnprintf(m->buf + m->count, m->size - m->count,
2396 task->cpus_allowed);
2397 seq_printf(m, "\n");
Mike Travis39106dc2008-04-08 11:43:03 -07002398 seq_printf(m, "Cpus_allowed_list:\t");
2399 m->count += cpulist_scnprintf(m->buf + m->count, m->size - m->count,
2400 task->cpus_allowed);
2401 seq_printf(m, "\n");
Eric W. Biedermandf5f8312008-02-08 04:18:33 -08002402 seq_printf(m, "Mems_allowed:\t");
2403 m->count += nodemask_scnprintf(m->buf + m->count, m->size - m->count,
2404 task->mems_allowed);
2405 seq_printf(m, "\n");
Mike Travis39106dc2008-04-08 11:43:03 -07002406 seq_printf(m, "Mems_allowed_list:\t");
2407 m->count += nodelist_scnprintf(m->buf + m->count, m->size - m->count,
2408 task->mems_allowed);
2409 seq_printf(m, "\n");
Linus Torvalds1da177e2005-04-16 15:20:36 -07002410}