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cpuset reads cs->css.cgroup->nr_populated_csets directly in two places to test whether a cgroup has tasks. cgroup.c already has a matching helper, cgroup_has_tasks(). Move it to cgroup.h as static inline and use that instead. This is to prepare for relocation of cgroup->nr_populated_csets. No semantic change. Signed-off-by: Tejun Heo <tj@kernel.org>
876 lines
23 KiB
C
876 lines
23 KiB
C
// SPDX-License-Identifier: GPL-2.0-or-later
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#include "cgroup-internal.h"
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#include "cpuset-internal.h"
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/*
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* Legacy hierarchy call to cgroup_transfer_tasks() is handled asynchrously
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*/
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struct cpuset_remove_tasks_struct {
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struct work_struct work;
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struct cpuset *cs;
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};
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/*
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* Frequency meter - How fast is some event occurring?
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*
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* These routines manage a digitally filtered, constant time based,
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* event frequency meter. There are four routines:
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* fmeter_init() - initialize a frequency meter.
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* fmeter_markevent() - called each time the event happens.
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* fmeter_getrate() - returns the recent rate of such events.
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* fmeter_update() - internal routine used to update fmeter.
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*
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* A common data structure is passed to each of these routines,
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* which is used to keep track of the state required to manage the
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* frequency meter and its digital filter.
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*
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* The filter works on the number of events marked per unit time.
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* The filter is single-pole low-pass recursive (IIR). The time unit
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* is 1 second. Arithmetic is done using 32-bit integers scaled to
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* simulate 3 decimal digits of precision (multiplied by 1000).
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*
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* With an FM_COEF of 933, and a time base of 1 second, the filter
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* has a half-life of 10 seconds, meaning that if the events quit
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* happening, then the rate returned from the fmeter_getrate()
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* will be cut in half each 10 seconds, until it converges to zero.
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*
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* It is not worth doing a real infinitely recursive filter. If more
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* than FM_MAXTICKS ticks have elapsed since the last filter event,
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* just compute FM_MAXTICKS ticks worth, by which point the level
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* will be stable.
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*
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* Limit the count of unprocessed events to FM_MAXCNT, so as to avoid
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* arithmetic overflow in the fmeter_update() routine.
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*
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* Given the simple 32 bit integer arithmetic used, this meter works
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* best for reporting rates between one per millisecond (msec) and
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* one per 32 (approx) seconds. At constant rates faster than one
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* per msec it maxes out at values just under 1,000,000. At constant
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* rates between one per msec, and one per second it will stabilize
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* to a value N*1000, where N is the rate of events per second.
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* At constant rates between one per second and one per 32 seconds,
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* it will be choppy, moving up on the seconds that have an event,
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* and then decaying until the next event. At rates slower than
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* about one in 32 seconds, it decays all the way back to zero between
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* each event.
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*/
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#define FM_COEF 933 /* coefficient for half-life of 10 secs */
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#define FM_MAXTICKS ((u32)99) /* useless computing more ticks than this */
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#define FM_MAXCNT 1000000 /* limit cnt to avoid overflow */
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#define FM_SCALE 1000 /* faux fixed point scale */
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/* Initialize a frequency meter */
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static void fmeter_init(struct fmeter *fmp)
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{
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fmp->cnt = 0;
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fmp->val = 0;
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fmp->time = 0;
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spin_lock_init(&fmp->lock);
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}
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/* Internal meter update - process cnt events and update value */
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static void fmeter_update(struct fmeter *fmp)
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{
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time64_t now;
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u32 ticks;
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now = ktime_get_seconds();
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ticks = now - fmp->time;
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if (ticks == 0)
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return;
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ticks = min(FM_MAXTICKS, ticks);
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while (ticks-- > 0)
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fmp->val = (FM_COEF * fmp->val) / FM_SCALE;
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fmp->time = now;
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fmp->val += ((FM_SCALE - FM_COEF) * fmp->cnt) / FM_SCALE;
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fmp->cnt = 0;
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}
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/* Process any previous ticks, then bump cnt by one (times scale). */
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static void fmeter_markevent(struct fmeter *fmp)
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{
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spin_lock(&fmp->lock);
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fmeter_update(fmp);
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fmp->cnt = min(FM_MAXCNT, fmp->cnt + FM_SCALE);
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spin_unlock(&fmp->lock);
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}
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/* Process any previous ticks, then return current value. */
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static int fmeter_getrate(struct fmeter *fmp)
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{
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int val;
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spin_lock(&fmp->lock);
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fmeter_update(fmp);
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val = fmp->val;
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spin_unlock(&fmp->lock);
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return val;
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}
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/*
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* Collection of memory_pressure is suppressed unless
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* this flag is enabled by writing "1" to the special
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* cpuset file 'memory_pressure_enabled' in the root cpuset.
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*/
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int cpuset_memory_pressure_enabled __read_mostly;
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/*
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* __cpuset_memory_pressure_bump - keep stats of per-cpuset reclaims.
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*
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* Keep a running average of the rate of synchronous (direct)
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* page reclaim efforts initiated by tasks in each cpuset.
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*
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* This represents the rate at which some task in the cpuset
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* ran low on memory on all nodes it was allowed to use, and
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* had to enter the kernels page reclaim code in an effort to
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* create more free memory by tossing clean pages or swapping
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* or writing dirty pages.
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*
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* Display to user space in the per-cpuset read-only file
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* "memory_pressure". Value displayed is an integer
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* representing the recent rate of entry into the synchronous
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* (direct) page reclaim by any task attached to the cpuset.
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*/
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void __cpuset_memory_pressure_bump(void)
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{
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rcu_read_lock();
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fmeter_markevent(&task_cs(current)->fmeter);
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rcu_read_unlock();
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}
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static int update_relax_domain_level(struct cpuset *cs, s64 val)
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{
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#ifdef CONFIG_SMP
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if (val < -1 || val > sched_domain_level_max + 1)
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return -EINVAL;
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#endif
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if (val != cs->relax_domain_level) {
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cs->relax_domain_level = val;
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if (!cpumask_empty(cs->cpus_allowed) &&
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is_sched_load_balance(cs))
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rebuild_sched_domains_locked();
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}
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return 0;
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}
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static int cpuset_write_s64(struct cgroup_subsys_state *css, struct cftype *cft,
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s64 val)
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{
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struct cpuset *cs = css_cs(css);
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cpuset_filetype_t type = cft->private;
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int retval = -ENODEV;
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cpuset_full_lock();
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if (!is_cpuset_online(cs))
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goto out_unlock;
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switch (type) {
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case FILE_SCHED_RELAX_DOMAIN_LEVEL:
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pr_info_once("cpuset.%s is deprecated\n", cft->name);
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retval = update_relax_domain_level(cs, val);
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break;
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default:
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retval = -EINVAL;
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break;
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}
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out_unlock:
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cpuset_full_unlock();
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return retval;
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}
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static s64 cpuset_read_s64(struct cgroup_subsys_state *css, struct cftype *cft)
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{
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struct cpuset *cs = css_cs(css);
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cpuset_filetype_t type = cft->private;
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switch (type) {
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case FILE_SCHED_RELAX_DOMAIN_LEVEL:
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return cs->relax_domain_level;
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default:
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BUG();
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}
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/* Unreachable but makes gcc happy */
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return 0;
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}
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/*
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* update task's spread flag if cpuset's page/slab spread flag is set
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*
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* Call with callback_lock or cpuset_mutex held. The check can be skipped
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* if on default hierarchy.
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*/
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void cpuset1_update_task_spread_flags(struct cpuset *cs,
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struct task_struct *tsk)
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{
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if (cgroup_subsys_on_dfl(cpuset_cgrp_subsys))
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return;
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if (is_spread_page(cs))
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task_set_spread_page(tsk);
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else
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task_clear_spread_page(tsk);
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if (is_spread_slab(cs))
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task_set_spread_slab(tsk);
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else
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task_clear_spread_slab(tsk);
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}
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/**
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* cpuset1_update_tasks_flags - update the spread flags of tasks in the cpuset.
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* @cs: the cpuset in which each task's spread flags needs to be changed
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*
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* Iterate through each task of @cs updating its spread flags. As this
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* function is called with cpuset_mutex held, cpuset membership stays
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* stable.
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*/
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void cpuset1_update_tasks_flags(struct cpuset *cs)
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{
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struct css_task_iter it;
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struct task_struct *task;
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css_task_iter_start(&cs->css, 0, &it);
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while ((task = css_task_iter_next(&it)))
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cpuset1_update_task_spread_flags(cs, task);
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css_task_iter_end(&it);
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}
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/*
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* If CPU and/or memory hotplug handlers, below, unplug any CPUs
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* or memory nodes, we need to walk over the cpuset hierarchy,
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* removing that CPU or node from all cpusets. If this removes the
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* last CPU or node from a cpuset, then move the tasks in the empty
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* cpuset to its next-highest non-empty parent.
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*/
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static void remove_tasks_in_empty_cpuset(struct cpuset *cs)
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{
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struct cpuset *parent;
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/*
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* Find its next-highest non-empty parent, (top cpuset
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* has online cpus, so can't be empty).
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*/
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parent = parent_cs(cs);
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while (cpumask_empty(parent->cpus_allowed) ||
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nodes_empty(parent->mems_allowed))
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parent = parent_cs(parent);
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if (cgroup_transfer_tasks(parent->css.cgroup, cs->css.cgroup)) {
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pr_err("cpuset: failed to transfer tasks out of empty cpuset ");
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pr_cont_cgroup_name(cs->css.cgroup);
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pr_cont("\n");
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}
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}
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static void cpuset_migrate_tasks_workfn(struct work_struct *work)
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{
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struct cpuset_remove_tasks_struct *s;
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s = container_of(work, struct cpuset_remove_tasks_struct, work);
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remove_tasks_in_empty_cpuset(s->cs);
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css_put(&s->cs->css);
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kfree(s);
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}
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void cpuset1_hotplug_update_tasks(struct cpuset *cs,
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struct cpumask *new_cpus, nodemask_t *new_mems,
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bool cpus_updated, bool mems_updated)
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{
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bool is_empty;
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cpuset_callback_lock_irq();
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cpumask_copy(cs->cpus_allowed, new_cpus);
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cpumask_copy(cs->effective_cpus, new_cpus);
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cs->mems_allowed = *new_mems;
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cs->effective_mems = *new_mems;
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cpuset_callback_unlock_irq();
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/*
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* Don't call cpuset_update_tasks_cpumask() if the cpuset becomes empty,
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* as the tasks will be migrated to an ancestor.
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*/
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if (cpus_updated && !cpumask_empty(cs->cpus_allowed))
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cpuset_update_tasks_cpumask(cs, new_cpus);
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if (mems_updated && !nodes_empty(cs->mems_allowed))
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cpuset_update_tasks_nodemask(cs);
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is_empty = cpumask_empty(cs->cpus_allowed) ||
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nodes_empty(cs->mems_allowed);
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/*
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* Move tasks to the nearest ancestor with execution resources,
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* This is full cgroup operation which will also call back into
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* cpuset. Execute it asynchronously using workqueue.
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*/
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if (is_empty && cgroup_has_tasks(cs->css.cgroup) &&
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css_tryget_online(&cs->css)) {
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struct cpuset_remove_tasks_struct *s;
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s = kzalloc_obj(*s);
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if (WARN_ON_ONCE(!s)) {
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css_put(&cs->css);
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return;
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}
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s->cs = cs;
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INIT_WORK(&s->work, cpuset_migrate_tasks_workfn);
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schedule_work(&s->work);
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}
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}
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/*
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* is_cpuset_subset(p, q) - Is cpuset p a subset of cpuset q?
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*
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* One cpuset is a subset of another if all its allowed CPUs and
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* Memory Nodes are a subset of the other, and its exclusive flags
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* are only set if the other's are set. Call holding cpuset_mutex.
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*/
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static int is_cpuset_subset(const struct cpuset *p, const struct cpuset *q)
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{
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return cpumask_subset(p->cpus_allowed, q->cpus_allowed) &&
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nodes_subset(p->mems_allowed, q->mems_allowed) &&
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is_cpu_exclusive(p) <= is_cpu_exclusive(q) &&
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is_mem_exclusive(p) <= is_mem_exclusive(q);
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}
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/*
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* cpuset1_validate_change() - Validate conditions specific to legacy (v1)
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* behavior.
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*/
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int cpuset1_validate_change(struct cpuset *cur, struct cpuset *trial)
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{
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struct cgroup_subsys_state *css;
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struct cpuset *c, *par;
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int ret;
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WARN_ON_ONCE(!rcu_read_lock_held());
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/* Each of our child cpusets must be a subset of us */
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ret = -EBUSY;
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cpuset_for_each_child(c, css, cur)
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if (!is_cpuset_subset(c, trial))
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goto out;
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/* On legacy hierarchy, we must be a subset of our parent cpuset. */
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ret = -EACCES;
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par = parent_cs(cur);
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if (par && !is_cpuset_subset(trial, par))
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goto out;
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/*
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* Cpusets with tasks - existing or newly being attached - can't
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* be changed to have empty cpus_allowed or mems_allowed.
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*/
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ret = -ENOSPC;
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if (cpuset_is_populated(cur)) {
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if (!cpumask_empty(cur->cpus_allowed) &&
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cpumask_empty(trial->cpus_allowed))
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goto out;
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if (!nodes_empty(cur->mems_allowed) &&
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nodes_empty(trial->mems_allowed))
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goto out;
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}
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ret = 0;
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out:
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return ret;
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}
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/*
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* cpuset1_cpus_excl_conflict() - Check if two cpusets have exclusive CPU conflicts
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* to legacy (v1)
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* @cs1: first cpuset to check
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* @cs2: second cpuset to check
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*
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* Returns: true if CPU exclusivity conflict exists, false otherwise
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*
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* If either cpuset is CPU exclusive, their allowed CPUs cannot intersect.
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*/
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bool cpuset1_cpus_excl_conflict(struct cpuset *cs1, struct cpuset *cs2)
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{
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if (is_cpu_exclusive(cs1) || is_cpu_exclusive(cs2))
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return cpumask_intersects(cs1->cpus_allowed,
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cs2->cpus_allowed);
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return false;
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}
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#ifdef CONFIG_PROC_PID_CPUSET
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/*
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* proc_cpuset_show()
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* - Print tasks cpuset path into seq_file.
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* - Used for /proc/<pid>/cpuset.
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*/
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int proc_cpuset_show(struct seq_file *m, struct pid_namespace *ns,
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struct pid *pid, struct task_struct *tsk)
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{
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char *buf;
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struct cgroup_subsys_state *css;
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int retval;
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retval = -ENOMEM;
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buf = kmalloc(PATH_MAX, GFP_KERNEL);
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if (!buf)
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goto out;
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rcu_read_lock();
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spin_lock_irq(&css_set_lock);
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css = task_css(tsk, cpuset_cgrp_id);
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retval = cgroup_path_ns_locked(css->cgroup, buf, PATH_MAX,
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current->nsproxy->cgroup_ns);
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spin_unlock_irq(&css_set_lock);
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rcu_read_unlock();
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if (retval == -E2BIG)
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retval = -ENAMETOOLONG;
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if (retval < 0)
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goto out_free;
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seq_puts(m, buf);
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seq_putc(m, '\n');
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retval = 0;
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out_free:
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kfree(buf);
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out:
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return retval;
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}
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#endif /* CONFIG_PROC_PID_CPUSET */
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static u64 cpuset_read_u64(struct cgroup_subsys_state *css, struct cftype *cft)
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{
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struct cpuset *cs = css_cs(css);
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cpuset_filetype_t type = cft->private;
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switch (type) {
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case FILE_CPU_EXCLUSIVE:
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return is_cpu_exclusive(cs);
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case FILE_MEM_EXCLUSIVE:
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return is_mem_exclusive(cs);
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case FILE_MEM_HARDWALL:
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return is_mem_hardwall(cs);
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case FILE_SCHED_LOAD_BALANCE:
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return is_sched_load_balance(cs);
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case FILE_MEMORY_MIGRATE:
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return is_memory_migrate(cs);
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case FILE_MEMORY_PRESSURE_ENABLED:
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return cpuset_memory_pressure_enabled;
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case FILE_MEMORY_PRESSURE:
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return fmeter_getrate(&cs->fmeter);
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case FILE_SPREAD_PAGE:
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return is_spread_page(cs);
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case FILE_SPREAD_SLAB:
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return is_spread_slab(cs);
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default:
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BUG();
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}
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/* Unreachable but makes gcc happy */
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return 0;
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}
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static int cpuset_write_u64(struct cgroup_subsys_state *css, struct cftype *cft,
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u64 val)
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{
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struct cpuset *cs = css_cs(css);
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cpuset_filetype_t type = cft->private;
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int retval = 0;
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cpuset_full_lock();
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if (!is_cpuset_online(cs)) {
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retval = -ENODEV;
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goto out_unlock;
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}
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switch (type) {
|
|
case FILE_CPU_EXCLUSIVE:
|
|
retval = cpuset_update_flag(CS_CPU_EXCLUSIVE, cs, val);
|
|
break;
|
|
case FILE_MEM_EXCLUSIVE:
|
|
pr_info_once("cpuset.%s is deprecated\n", cft->name);
|
|
retval = cpuset_update_flag(CS_MEM_EXCLUSIVE, cs, val);
|
|
break;
|
|
case FILE_MEM_HARDWALL:
|
|
pr_info_once("cpuset.%s is deprecated\n", cft->name);
|
|
retval = cpuset_update_flag(CS_MEM_HARDWALL, cs, val);
|
|
break;
|
|
case FILE_SCHED_LOAD_BALANCE:
|
|
pr_info_once("cpuset.%s is deprecated, use cpuset.cpus.partition instead\n", cft->name);
|
|
retval = cpuset_update_flag(CS_SCHED_LOAD_BALANCE, cs, val);
|
|
break;
|
|
case FILE_MEMORY_MIGRATE:
|
|
pr_info_once("cpuset.%s is deprecated\n", cft->name);
|
|
retval = cpuset_update_flag(CS_MEMORY_MIGRATE, cs, val);
|
|
break;
|
|
case FILE_MEMORY_PRESSURE_ENABLED:
|
|
pr_info_once("cpuset.%s is deprecated, use memory.pressure with CONFIG_PSI instead\n", cft->name);
|
|
cpuset_memory_pressure_enabled = !!val;
|
|
break;
|
|
case FILE_SPREAD_PAGE:
|
|
pr_info_once("cpuset.%s is deprecated\n", cft->name);
|
|
retval = cpuset_update_flag(CS_SPREAD_PAGE, cs, val);
|
|
break;
|
|
case FILE_SPREAD_SLAB:
|
|
pr_warn_once("cpuset.%s is deprecated\n", cft->name);
|
|
retval = cpuset_update_flag(CS_SPREAD_SLAB, cs, val);
|
|
break;
|
|
default:
|
|
retval = -EINVAL;
|
|
break;
|
|
}
|
|
out_unlock:
|
|
cpuset_full_unlock();
|
|
return retval;
|
|
}
|
|
|
|
void cpuset1_init(struct cpuset *cs)
|
|
{
|
|
fmeter_init(&cs->fmeter);
|
|
cs->relax_domain_level = -1;
|
|
}
|
|
|
|
void cpuset1_online_css(struct cgroup_subsys_state *css)
|
|
{
|
|
struct cpuset *tmp_cs;
|
|
struct cgroup_subsys_state *pos_css;
|
|
struct cpuset *cs = css_cs(css);
|
|
struct cpuset *parent = parent_cs(cs);
|
|
|
|
lockdep_assert_cpus_held();
|
|
lockdep_assert_cpuset_lock_held();
|
|
|
|
if (is_spread_page(parent))
|
|
set_bit(CS_SPREAD_PAGE, &cs->flags);
|
|
if (is_spread_slab(parent))
|
|
set_bit(CS_SPREAD_SLAB, &cs->flags);
|
|
|
|
if (!test_bit(CGRP_CPUSET_CLONE_CHILDREN, &css->cgroup->flags))
|
|
return;
|
|
|
|
/*
|
|
* Clone @parent's configuration if CGRP_CPUSET_CLONE_CHILDREN is
|
|
* set. This flag handling is implemented in cgroup core for
|
|
* historical reasons - the flag may be specified during mount.
|
|
*
|
|
* Currently, if any sibling cpusets have exclusive cpus or mem, we
|
|
* refuse to clone the configuration - thereby refusing the task to
|
|
* be entered, and as a result refusing the sys_unshare() or
|
|
* clone() which initiated it. If this becomes a problem for some
|
|
* users who wish to allow that scenario, then this could be
|
|
* changed to grant parent->cpus_allowed-sibling_cpus_exclusive
|
|
* (and likewise for mems) to the new cgroup.
|
|
*/
|
|
rcu_read_lock();
|
|
cpuset_for_each_child(tmp_cs, pos_css, parent) {
|
|
if (is_mem_exclusive(tmp_cs) || is_cpu_exclusive(tmp_cs)) {
|
|
rcu_read_unlock();
|
|
return;
|
|
}
|
|
}
|
|
rcu_read_unlock();
|
|
|
|
cpuset_callback_lock_irq();
|
|
cs->mems_allowed = parent->mems_allowed;
|
|
cs->effective_mems = parent->mems_allowed;
|
|
cpumask_copy(cs->cpus_allowed, parent->cpus_allowed);
|
|
cpumask_copy(cs->effective_cpus, parent->cpus_allowed);
|
|
cpuset_callback_unlock_irq();
|
|
}
|
|
|
|
static void
|
|
update_domain_attr(struct sched_domain_attr *dattr, struct cpuset *c)
|
|
{
|
|
if (dattr->relax_domain_level < c->relax_domain_level)
|
|
dattr->relax_domain_level = c->relax_domain_level;
|
|
}
|
|
|
|
static void update_domain_attr_tree(struct sched_domain_attr *dattr,
|
|
struct cpuset *root_cs)
|
|
{
|
|
struct cpuset *cp;
|
|
struct cgroup_subsys_state *pos_css;
|
|
|
|
rcu_read_lock();
|
|
cpuset_for_each_descendant_pre(cp, pos_css, root_cs) {
|
|
/* skip the whole subtree if @cp doesn't have any CPU */
|
|
if (cpumask_empty(cp->cpus_allowed)) {
|
|
pos_css = css_rightmost_descendant(pos_css);
|
|
continue;
|
|
}
|
|
|
|
if (is_sched_load_balance(cp))
|
|
update_domain_attr(dattr, cp);
|
|
}
|
|
rcu_read_unlock();
|
|
}
|
|
|
|
/*
|
|
* cpuset1_generate_sched_domains()
|
|
*
|
|
* Finding the best partition (set of domains):
|
|
* The double nested loops below over i, j scan over the load
|
|
* balanced cpusets (using the array of cpuset pointers in csa[])
|
|
* looking for pairs of cpusets that have overlapping cpus_allowed
|
|
* and merging them using a union-find algorithm.
|
|
*
|
|
* The union of the cpus_allowed masks from the set of all cpusets
|
|
* having the same root then form the one element of the partition
|
|
* (one sched domain) to be passed to partition_sched_domains().
|
|
*/
|
|
int cpuset1_generate_sched_domains(cpumask_var_t **domains,
|
|
struct sched_domain_attr **attributes)
|
|
{
|
|
struct cpuset *cp; /* top-down scan of cpusets */
|
|
struct cpuset **csa; /* array of all cpuset ptrs */
|
|
int csn; /* how many cpuset ptrs in csa so far */
|
|
int i, j; /* indices for partition finding loops */
|
|
cpumask_var_t *doms; /* resulting partition; i.e. sched domains */
|
|
struct sched_domain_attr *dattr; /* attributes for custom domains */
|
|
int ndoms = 0; /* number of sched domains in result */
|
|
int nslot; /* next empty doms[] struct cpumask slot */
|
|
struct cgroup_subsys_state *pos_css;
|
|
int nslot_update;
|
|
|
|
lockdep_assert_cpuset_lock_held();
|
|
|
|
doms = NULL;
|
|
dattr = NULL;
|
|
csa = NULL;
|
|
|
|
/* Special case for the 99% of systems with one, full, sched domain */
|
|
if (is_sched_load_balance(&top_cpuset)) {
|
|
ndoms = 1;
|
|
doms = alloc_sched_domains(ndoms);
|
|
if (!doms)
|
|
goto done;
|
|
|
|
dattr = kmalloc_obj(struct sched_domain_attr);
|
|
if (dattr) {
|
|
*dattr = SD_ATTR_INIT;
|
|
update_domain_attr_tree(dattr, &top_cpuset);
|
|
}
|
|
cpumask_and(doms[0], top_cpuset.effective_cpus,
|
|
housekeeping_cpumask(HK_TYPE_DOMAIN));
|
|
|
|
goto done;
|
|
}
|
|
|
|
csa = kmalloc_objs(cp, nr_cpusets());
|
|
if (!csa)
|
|
goto done;
|
|
csn = 0;
|
|
|
|
rcu_read_lock();
|
|
cpuset_for_each_descendant_pre(cp, pos_css, &top_cpuset) {
|
|
if (cp == &top_cpuset)
|
|
continue;
|
|
|
|
/*
|
|
* Continue traversing beyond @cp iff @cp has some CPUs and
|
|
* isn't load balancing. The former is obvious. The
|
|
* latter: All child cpusets contain a subset of the
|
|
* parent's cpus, so just skip them, and then we call
|
|
* update_domain_attr_tree() to calc relax_domain_level of
|
|
* the corresponding sched domain.
|
|
*/
|
|
if (!cpumask_empty(cp->cpus_allowed) &&
|
|
!(is_sched_load_balance(cp) &&
|
|
cpumask_intersects(cp->cpus_allowed,
|
|
housekeeping_cpumask(HK_TYPE_DOMAIN))))
|
|
continue;
|
|
|
|
if (is_sched_load_balance(cp) &&
|
|
!cpumask_empty(cp->effective_cpus))
|
|
csa[csn++] = cp;
|
|
|
|
/* skip @cp's subtree */
|
|
pos_css = css_rightmost_descendant(pos_css);
|
|
continue;
|
|
}
|
|
rcu_read_unlock();
|
|
|
|
for (i = 0; i < csn; i++)
|
|
uf_node_init(&csa[i]->node);
|
|
|
|
/* Merge overlapping cpusets */
|
|
for (i = 0; i < csn; i++) {
|
|
for (j = i + 1; j < csn; j++) {
|
|
if (cpusets_overlap(csa[i], csa[j]))
|
|
uf_union(&csa[i]->node, &csa[j]->node);
|
|
}
|
|
}
|
|
|
|
/* Count the total number of domains */
|
|
for (i = 0; i < csn; i++) {
|
|
if (uf_find(&csa[i]->node) == &csa[i]->node)
|
|
ndoms++;
|
|
}
|
|
|
|
/*
|
|
* Now we know how many domains to create.
|
|
* Convert <csn, csa> to <ndoms, doms> and populate cpu masks.
|
|
*/
|
|
doms = alloc_sched_domains(ndoms);
|
|
if (!doms)
|
|
goto done;
|
|
|
|
/*
|
|
* The rest of the code, including the scheduler, can deal with
|
|
* dattr==NULL case. No need to abort if alloc fails.
|
|
*/
|
|
dattr = kmalloc_objs(struct sched_domain_attr, ndoms);
|
|
|
|
for (nslot = 0, i = 0; i < csn; i++) {
|
|
nslot_update = 0;
|
|
for (j = i; j < csn; j++) {
|
|
if (uf_find(&csa[j]->node) == &csa[i]->node) {
|
|
struct cpumask *dp = doms[nslot];
|
|
|
|
if (i == j) {
|
|
nslot_update = 1;
|
|
cpumask_clear(dp);
|
|
if (dattr)
|
|
*(dattr + nslot) = SD_ATTR_INIT;
|
|
}
|
|
cpumask_or(dp, dp, csa[j]->effective_cpus);
|
|
cpumask_and(dp, dp, housekeeping_cpumask(HK_TYPE_DOMAIN));
|
|
if (dattr)
|
|
update_domain_attr_tree(dattr + nslot, csa[j]);
|
|
}
|
|
}
|
|
if (nslot_update)
|
|
nslot++;
|
|
}
|
|
BUG_ON(nslot != ndoms);
|
|
|
|
done:
|
|
kfree(csa);
|
|
|
|
/*
|
|
* Fallback to the default domain if kmalloc() failed.
|
|
* See comments in partition_sched_domains().
|
|
*/
|
|
if (doms == NULL)
|
|
ndoms = 1;
|
|
|
|
*domains = doms;
|
|
*attributes = dattr;
|
|
return ndoms;
|
|
}
|
|
|
|
/*
|
|
* for the common functions, 'private' gives the type of file
|
|
*/
|
|
|
|
struct cftype cpuset1_files[] = {
|
|
{
|
|
.name = "cpus",
|
|
.seq_show = cpuset_common_seq_show,
|
|
.write = cpuset_write_resmask,
|
|
.max_write_len = (100U + 6 * NR_CPUS),
|
|
.private = FILE_CPULIST,
|
|
},
|
|
|
|
{
|
|
.name = "mems",
|
|
.seq_show = cpuset_common_seq_show,
|
|
.write = cpuset_write_resmask,
|
|
.max_write_len = (100U + 6 * MAX_NUMNODES),
|
|
.private = FILE_MEMLIST,
|
|
},
|
|
|
|
{
|
|
.name = "effective_cpus",
|
|
.seq_show = cpuset_common_seq_show,
|
|
.private = FILE_EFFECTIVE_CPULIST,
|
|
},
|
|
|
|
{
|
|
.name = "effective_mems",
|
|
.seq_show = cpuset_common_seq_show,
|
|
.private = FILE_EFFECTIVE_MEMLIST,
|
|
},
|
|
|
|
{
|
|
.name = "cpu_exclusive",
|
|
.read_u64 = cpuset_read_u64,
|
|
.write_u64 = cpuset_write_u64,
|
|
.private = FILE_CPU_EXCLUSIVE,
|
|
},
|
|
|
|
{
|
|
.name = "mem_exclusive",
|
|
.read_u64 = cpuset_read_u64,
|
|
.write_u64 = cpuset_write_u64,
|
|
.private = FILE_MEM_EXCLUSIVE,
|
|
},
|
|
|
|
{
|
|
.name = "mem_hardwall",
|
|
.read_u64 = cpuset_read_u64,
|
|
.write_u64 = cpuset_write_u64,
|
|
.private = FILE_MEM_HARDWALL,
|
|
},
|
|
|
|
{
|
|
.name = "sched_load_balance",
|
|
.read_u64 = cpuset_read_u64,
|
|
.write_u64 = cpuset_write_u64,
|
|
.private = FILE_SCHED_LOAD_BALANCE,
|
|
},
|
|
|
|
{
|
|
.name = "sched_relax_domain_level",
|
|
.read_s64 = cpuset_read_s64,
|
|
.write_s64 = cpuset_write_s64,
|
|
.private = FILE_SCHED_RELAX_DOMAIN_LEVEL,
|
|
},
|
|
|
|
{
|
|
.name = "memory_migrate",
|
|
.read_u64 = cpuset_read_u64,
|
|
.write_u64 = cpuset_write_u64,
|
|
.private = FILE_MEMORY_MIGRATE,
|
|
},
|
|
|
|
{
|
|
.name = "memory_pressure",
|
|
.read_u64 = cpuset_read_u64,
|
|
.private = FILE_MEMORY_PRESSURE,
|
|
},
|
|
|
|
{
|
|
.name = "memory_spread_page",
|
|
.read_u64 = cpuset_read_u64,
|
|
.write_u64 = cpuset_write_u64,
|
|
.private = FILE_SPREAD_PAGE,
|
|
},
|
|
|
|
{
|
|
/* obsolete, may be removed in the future */
|
|
.name = "memory_spread_slab",
|
|
.read_u64 = cpuset_read_u64,
|
|
.write_u64 = cpuset_write_u64,
|
|
.private = FILE_SPREAD_SLAB,
|
|
},
|
|
|
|
{
|
|
.name = "memory_pressure_enabled",
|
|
.flags = CFTYPE_ONLY_ON_ROOT,
|
|
.read_u64 = cpuset_read_u64,
|
|
.write_u64 = cpuset_write_u64,
|
|
.private = FILE_MEMORY_PRESSURE_ENABLED,
|
|
},
|
|
|
|
{ } /* terminate */
|
|
};
|