mirror of
https://git.kernel.org/pub/scm/linux/kernel/git/torvalds/linux.git
synced 2026-08-30 13:23:02 -04:00
Pull to receive the __arena argument conversion:67f1f4a48c("sched_ext: Pass kernel arena pointers to ops_cid callbacks")a8dc810968("sched_ext: Convert sub-cap kfuncs to __arena cmask arguments")a05c5b5cb5("sched_ext: Convert scx_bpf_cid_override() to __arena array arguments") along with the bpf-next branch carrying the __arena argument support they depend on. Conflict in kernel/sched/ext/ext.c between:c384ab8a0b("sched_ext: Move the config-off sub-cap kfunc stubs into sub.c") and:a8dc810968("sched_ext: Convert sub-cap kfuncs to __arena cmask arguments") which updated the stubs in their old ext.c location. Resolved by keeping ext.c without the stubs and applying the prototype conversion to the relocated stubs in sub.c. Signed-off-by: Tejun Heo <tj@kernel.org>
2682 lines
79 KiB
C
2682 lines
79 KiB
C
// SPDX-License-Identifier: GPL-2.0
|
|
/*
|
|
* BPF extensible scheduler class: Documentation/scheduler/sched-ext.rst
|
|
*
|
|
* Sub-scheduler hierarchy support.
|
|
*
|
|
* A sub-scheduler is an scx_sched attached to a cgroup subtree under another
|
|
* scx_sched. This file holds the sub-scheduler implementation: the scheduler
|
|
* tree walk, capability delegation, per-shard cap state and its sync, and the
|
|
* sub-scheduler enable/disable paths. The core dispatch/enqueue machinery it
|
|
* builds on lives in ext.c.
|
|
*
|
|
* Copyright (c) 2026 Meta Platforms, Inc. and affiliates.
|
|
* Copyright (c) 2026 Tejun Heo <tj@kernel.org>
|
|
*/
|
|
#include <linux/rhashtable.h>
|
|
#include "internal.h"
|
|
#include "cid.h"
|
|
#include "arena.h"
|
|
#include "sub.h"
|
|
#include "inlines.h"
|
|
|
|
#ifdef CONFIG_EXT_SUB_SCHED
|
|
|
|
/*
|
|
* On while any sub-scheduler exists so that a root-only system doesn't pay for
|
|
* the sub-sched portions of hot paths. See scx_has_subs().
|
|
*/
|
|
DEFINE_STATIC_KEY_FALSE(__scx_has_subs);
|
|
|
|
/* latched at root enable before any rescue runs */
|
|
static s32 scx_rescue_bw_1024;
|
|
static s64 scx_rescue_quantum_ns;
|
|
static s64 scx_rescue_sat_delta_ns;
|
|
static unsigned long scx_rescue_decay_halflife;
|
|
static unsigned long scx_rescue_overload_after;
|
|
|
|
/**
|
|
* scx_skip_subtree_pre - Skip @pos's subtree in a pre-order walk
|
|
* @pos: current position
|
|
* @root: walk root
|
|
*
|
|
* In a walk started by scx_next_descendant_pre(), continue past @pos's subtree:
|
|
* return @pos's next sibling, or the closest ancestor's next sibling, or NULL
|
|
* if @pos's subtree is the last under @root. Same locking rules.
|
|
*/
|
|
struct scx_sched *scx_skip_subtree_pre(struct scx_sched *pos, struct scx_sched *root)
|
|
{
|
|
struct scx_sched *next;
|
|
|
|
lockdep_assert(lockdep_is_held(&scx_enable_mutex) ||
|
|
lockdep_is_held(&scx_sched_lock) ||
|
|
rcu_read_lock_any_held());
|
|
|
|
while (pos != root) {
|
|
next = list_next_or_null_rcu(&scx_parent(pos)->children, &pos->sibling,
|
|
struct scx_sched, sibling);
|
|
if (next)
|
|
return next;
|
|
pos = scx_parent(pos);
|
|
}
|
|
return NULL;
|
|
}
|
|
|
|
/**
|
|
* scx_next_descendant_pre - find the next descendant for pre-order walk
|
|
* @pos: the current position (%NULL to initiate traversal)
|
|
* @root: sched whose descendants to walk
|
|
*
|
|
* To be used by scx_for_each_descendant_pre(). Find the next descendant to
|
|
* visit for pre-order traversal of @root's descendants. @root is included in
|
|
* the iteration and the first node to be visited.
|
|
*/
|
|
struct scx_sched *scx_next_descendant_pre(struct scx_sched *pos, struct scx_sched *root)
|
|
{
|
|
struct scx_sched *next;
|
|
|
|
lockdep_assert(lockdep_is_held(&scx_enable_mutex) ||
|
|
lockdep_is_held(&scx_sched_lock) ||
|
|
rcu_read_lock_any_held());
|
|
|
|
/* if first iteration, visit @root */
|
|
if (!pos)
|
|
return root;
|
|
|
|
/* visit the first child if exists */
|
|
next = list_first_or_null_rcu(&pos->children, struct scx_sched, sibling);
|
|
if (next)
|
|
return next;
|
|
|
|
/* no child, visit my or the closest ancestor's next sibling */
|
|
return scx_skip_subtree_pre(pos, root);
|
|
}
|
|
|
|
static struct scx_sched *scx_find_sub_sched(u64 cgroup_id)
|
|
{
|
|
return rhashtable_lookup(&scx_sched_hash, &cgroup_id,
|
|
scx_sched_hash_params);
|
|
}
|
|
|
|
void scx_set_task_sched(struct task_struct *p, struct scx_sched *sch)
|
|
{
|
|
rcu_assign_pointer(p->scx.sched, sch);
|
|
}
|
|
|
|
struct cgroup *sch_cgroup(struct scx_sched *sch)
|
|
{
|
|
return sch->cgrp;
|
|
}
|
|
|
|
/* for each descendant of @cgrp including self, set ->scx_sched to @sch */
|
|
void set_cgroup_sched(struct cgroup *cgrp, struct scx_sched *sch)
|
|
{
|
|
struct cgroup *pos;
|
|
struct cgroup_subsys_state *css;
|
|
|
|
cgroup_for_each_live_descendant_pre(pos, css, cgrp)
|
|
rcu_assign_pointer(pos->scx_sched, sch);
|
|
}
|
|
|
|
static void free_pshard(struct scx_pshard *pshard)
|
|
{
|
|
struct scx_caps_updated *cu;
|
|
|
|
if (!pshard)
|
|
return;
|
|
cu = &pshard->caps_updated;
|
|
if (cu->cmask_arena_out)
|
|
scx_arena_free(pshard->sch, cu->cmask_arena_out,
|
|
struct_size_t(struct scx_cmask, bits,
|
|
SCX_CMASK_NR_WORDS(pshard->nr_cids)));
|
|
kfree(pshard);
|
|
}
|
|
|
|
void scx_free_pshards(struct scx_sched *sch)
|
|
{
|
|
s32 si;
|
|
|
|
if (!sch->pshard)
|
|
return;
|
|
for (si = 0; si < sch->nr_pshards; si++)
|
|
free_pshard(sch->pshard[si]);
|
|
kfree(sch->pshard);
|
|
}
|
|
|
|
static struct scx_pshard *alloc_pshard(struct scx_sched *sch, s32 shard_idx, s32 node)
|
|
{
|
|
const struct scx_cid_shard *shard =
|
|
&rcu_dereference_protected(scx_cid_shard_ranges,
|
|
lockdep_is_held(&scx_enable_mutex))[shard_idx];
|
|
size_t cmask_size = struct_size_t(struct scx_cmask, bits,
|
|
SCX_CMASK_NR_WORDS(shard->nr_cids));
|
|
struct scx_pshard *pshard;
|
|
struct scx_caps_updated *cu;
|
|
s32 i;
|
|
|
|
pshard = kzalloc_node(sizeof(*pshard), GFP_KERNEL, node);
|
|
if (!pshard)
|
|
return NULL;
|
|
|
|
raw_spin_lock_init(&pshard->lock);
|
|
pshard->sch = sch;
|
|
pshard->base = shard->base_cid;
|
|
pshard->nr_cids = shard->nr_cids;
|
|
|
|
for (i = 0; i < __SCX_NR_CAPS; i++)
|
|
scx_cmask_init(&pshard->caps[i].cmask, shard->base_cid, shard->nr_cids);
|
|
|
|
cu = &pshard->caps_updated;
|
|
raw_spin_lock_init(&cu->lock);
|
|
INIT_LIST_HEAD(&cu->node_in_flight);
|
|
__scx_cmask_init(&cu->cmask, shard->base_cid, shard->nr_cids, SCX_CID_SHARD_MAX_CPUS);
|
|
|
|
cu->cmask_arena_out = scx_arena_alloc(sch, cmask_size);
|
|
if (!cu->cmask_arena_out) {
|
|
free_pshard(pshard);
|
|
return NULL;
|
|
}
|
|
|
|
scx_cmask_init(cu->cmask_arena_out, shard->base_cid, shard->nr_cids);
|
|
|
|
return pshard;
|
|
}
|
|
|
|
s32 scx_alloc_pshards(struct scx_sched *sch)
|
|
{
|
|
struct scx_pshard **pshard;
|
|
s32 *shard_node;
|
|
s32 si;
|
|
|
|
if (!sch->is_cid_type || !sch->arena_pool)
|
|
return 0;
|
|
|
|
shard_node = rcu_dereference_protected(scx_shard_node,
|
|
lockdep_is_held(&scx_enable_mutex));
|
|
|
|
pshard = kzalloc_objs(pshard[0], scx_nr_cid_shards, GFP_KERNEL);
|
|
if (!pshard)
|
|
return -ENOMEM;
|
|
|
|
for (si = 0; si < scx_nr_cid_shards; si++) {
|
|
pshard[si] = alloc_pshard(sch, si, shard_node[si]);
|
|
if (!pshard[si]) {
|
|
while (--si >= 0)
|
|
free_pshard(pshard[si]);
|
|
kfree(pshard);
|
|
return -ENOMEM;
|
|
}
|
|
}
|
|
|
|
sch->nr_pshards = scx_nr_cid_shards;
|
|
/*
|
|
* Publish only after every entry is built so a reader observing
|
|
* @sch->pshard never sees a partially-filled array or unpublished cid
|
|
* tables. Pair the store with a barrier and an acquire load on the
|
|
* read side.
|
|
*/
|
|
smp_wmb();
|
|
WRITE_ONCE(sch->pshard, pshard);
|
|
return 0;
|
|
}
|
|
|
|
/*
|
|
* Seed the root's caps fully. Root owns all cids on all caps at enable time.
|
|
* Children acquire caps via scx_bpf_sub_grant().
|
|
*/
|
|
void scx_init_root_caps(struct scx_sched *sch)
|
|
{
|
|
s32 si, i;
|
|
|
|
for (si = 0; si < sch->nr_pshards; si++) {
|
|
struct scx_pshard *ps = sch->pshard[si];
|
|
|
|
for (i = 0; i < __SCX_NR_CAPS; i++)
|
|
scx_cmask_fill(&ps->caps[i].cmask);
|
|
}
|
|
}
|
|
|
|
/* unserved remainder of @rq's rescuee's admitted slice, 0 once fully served */
|
|
static s64 scx_rescue_slice_remaining(struct rq *rq)
|
|
{
|
|
s64 served = rq->scx.rescue.curr->se.sum_exec_runtime - rq->scx.rescue.exec_snap;
|
|
|
|
return max(rq->scx.rescue.slice - served, 0);
|
|
}
|
|
|
|
/*
|
|
* Decay @pcpu's rescue usage average in place, halving per the knob-derived
|
|
* halflife, see scx_rescue_set_knobs(). The timestamp advances only by whole
|
|
* halflives.
|
|
*/
|
|
static u64 scx_rescue_decay_avg(struct scx_sched_pcpu *pcpu)
|
|
{
|
|
unsigned long halflife = scx_rescue_decay_halflife;
|
|
u64 n = div_u64(get_jiffies_64() - pcpu->rescue_avg_at, halflife);
|
|
|
|
if (n) {
|
|
pcpu->rescue_avg = n < 64 ? pcpu->rescue_avg >> n : 0;
|
|
pcpu->rescue_avg_at += n * halflife;
|
|
}
|
|
return pcpu->rescue_avg;
|
|
}
|
|
|
|
/**
|
|
* scx_rescue_charge - Charge the rescuee's runtime
|
|
* @rq: rq the rescuee is running on
|
|
* @delta_exec: runtime being charged
|
|
*
|
|
* Also ends the rescue once the admitted slice has been served in full. Ending
|
|
* on served time rather than slice exhaustion bounds both the rescue and the
|
|
* charging when a scheduler extends the rescuee's slice.
|
|
*/
|
|
void scx_rescue_charge(struct rq *rq, s64 delta_exec)
|
|
{
|
|
struct scx_sched_pcpu *pcpu;
|
|
|
|
lockdep_assert_rq_held(rq);
|
|
|
|
/*
|
|
* A rescue slice is bounded by one quantum and tick-driven expiry can
|
|
* overshoot by up to a tick. Clamp to avoid wild over-charges on VMs.
|
|
*/
|
|
delta_exec = min_t(s64, delta_exec, scx_rescue_quantum_ns + TICK_NSEC);
|
|
|
|
rq->scx.rescue.budget -= delta_exec;
|
|
|
|
/* per-cpu usage average feeds the overload victim pick */
|
|
pcpu = per_cpu_ptr(scx_task_sched(rq->curr)->pcpu, cpu_of(rq));
|
|
pcpu->rescue_avg = scx_rescue_decay_avg(pcpu) + delta_exec;
|
|
|
|
if (!scx_rescue_slice_remaining(rq))
|
|
scx_task_slice_ended(rq, rq->scx.rescue.curr);
|
|
}
|
|
|
|
/**
|
|
* scx_rescue_end - End the rescue execution on @rq
|
|
* @rq: rq of interest
|
|
*
|
|
* When no rescuee is left pending, the session is over and the balance above
|
|
* one quantum dies with it - it would otherwise become a banked license to
|
|
* preempt the cid owner long after the starvation ended. While waiters remain,
|
|
* the accrued deficit belongs to the queue and carries into the next rescue.
|
|
*/
|
|
void scx_rescue_end(struct rq *rq)
|
|
{
|
|
lockdep_assert_rq_held(rq);
|
|
|
|
rq->scx.rescue.curr = NULL;
|
|
if (list_empty(&rq->scx.rescue.dsq.list))
|
|
rq->scx.rescue.budget = min(rq->scx.rescue.budget, scx_rescue_quantum_ns);
|
|
}
|
|
|
|
/**
|
|
* scx_rescue_keep - Keep the rescue going for a preempted-out rescuee
|
|
* @rq: rq @p is running on
|
|
* @p: task under rescue whose slice is exhausted
|
|
*
|
|
* Called from put_prev_task_scx() to decide what an exhausted slice means for
|
|
* the rescuee. scx_rescue_charge() ends the rescue the moment the admitted
|
|
* slice is fully served, so arriving here with the rescue still open means @p
|
|
* was preempted. Restore the unserved remainder and return %true - @p stays the
|
|
* rescuee and the caller reinserts it at the tail of the local DSQ, behind
|
|
* whatever preempted the rescuee.
|
|
*
|
|
* Return %false to end the rescue instead - the slice is already fully served,
|
|
* @p is leaving the rq or bypass is dismantling rescues.
|
|
*/
|
|
bool scx_rescue_keep(struct rq *rq, struct task_struct *p)
|
|
{
|
|
s64 remaining = scx_rescue_slice_remaining(rq);
|
|
|
|
lockdep_assert_rq_held(rq);
|
|
|
|
if (!remaining || !(p->scx.flags & SCX_TASK_QUEUED) ||
|
|
scx_bypassing(scx_task_sched(p), cpu_of(rq)))
|
|
return false;
|
|
|
|
scx_set_task_slice(p, remaining);
|
|
return true;
|
|
}
|
|
|
|
/**
|
|
* scx_rescue_accrue - Accrue budget at the configured fraction of elapsed time
|
|
* @rq: rq of interest
|
|
*
|
|
* A session spans from the first arrival until no rescuee is left, pending or
|
|
* admitted. While one is active the cap is three quanta and the balance drives
|
|
* escalation, see scx_rescue_timerfn(). Outside a session the cap is one
|
|
* quantum, so an idle gap funds the next arrival's admission but never an
|
|
* escalation.
|
|
*/
|
|
static void scx_rescue_accrue(struct rq *rq)
|
|
{
|
|
bool in_session = rq->scx.rescue.curr || !list_empty(&rq->scx.rescue.dsq.list);
|
|
s64 cap = in_session ? 3 * scx_rescue_quantum_ns : scx_rescue_quantum_ns;
|
|
s64 delta;
|
|
u64 now;
|
|
|
|
lockdep_assert_rq_held(rq);
|
|
|
|
/* not every path here holds an updated rq clock, use __scx_bpf_now() */
|
|
now = __scx_bpf_now(rq);
|
|
delta = now - rq->scx.rescue.clock;
|
|
rq->scx.rescue.clock = now;
|
|
|
|
/*
|
|
* Avoid multiplication overflows by taking a shortcut when the gap is
|
|
* large enough to fill the budget.
|
|
*/
|
|
if (delta >= scx_rescue_sat_delta_ns)
|
|
rq->scx.rescue.budget = cap;
|
|
else
|
|
rq->scx.rescue.budget =
|
|
min(cap, rq->scx.rescue.budget +
|
|
((delta * scx_rescue_bw_1024) >> SCHED_CAPACITY_SHIFT));
|
|
}
|
|
|
|
/*
|
|
* The slice for the next admission - the quantum divided across the stranded
|
|
* tasks so that a crowded queue round-robins on shorter slices.
|
|
*/
|
|
static s64 scx_rescue_next_slice(struct rq *rq)
|
|
{
|
|
s64 min_slice = max_t(s64, SCX_RESCUE_MIN_SLICE_US * NSEC_PER_USEC, TICK_NSEC);
|
|
u32 depth = rq->scx.rescue.dsq.nr ?: 1;
|
|
|
|
return clamp(div_s64(scx_rescue_quantum_ns, depth), min_slice, scx_rescue_quantum_ns);
|
|
}
|
|
|
|
static void scx_rescue_timer_arm(struct rq *rq)
|
|
{
|
|
struct timer_list *timer = &rq->scx.rescue.timer;
|
|
s64 delay = scx_rescue_quantum_ns / 4; /* should be granular enough */
|
|
|
|
if (timer_pending(timer))
|
|
return;
|
|
|
|
/*
|
|
* While the head waiter can't be admitted because the bucket is short
|
|
* of a full quantum, stretch to the full funding delay.
|
|
*/
|
|
if (!rq->scx.rescue.curr && rq->scx.rescue.budget < scx_rescue_quantum_ns) {
|
|
s64 deficit = scx_rescue_quantum_ns - rq->scx.rescue.budget;
|
|
|
|
delay = max(delay,
|
|
div_s64(deficit << SCHED_CAPACITY_SHIFT, scx_rescue_bw_1024));
|
|
}
|
|
|
|
/* +1 rounds up so the beat is due by the time the timer fires */
|
|
timer->expires = jiffies + nsecs_to_jiffies(delay) + 1;
|
|
add_timer_on(timer, cpu_of(rq));
|
|
}
|
|
|
|
/**
|
|
* scx_rescue_admit - Start rescuing @p on @rq
|
|
* @rq: rq @p is being admitted on
|
|
* @p: task being admitted, off any DSQ
|
|
* @slice: CPU time to grant
|
|
*
|
|
* The schedulers keep their normal control over @p and may preempt or reslice
|
|
* it. @slice is measured on served CPU time against the snapshot taken here, so
|
|
* neither shortens the rescue, see scx_rescue_charge() and scx_rescue_keep().
|
|
* Prolonged denial escalates into protected execution, see
|
|
* scx_rescue_timerfn().
|
|
*/
|
|
static void scx_rescue_admit(struct rq *rq, struct task_struct *p, s64 slice)
|
|
{
|
|
lockdep_assert_rq_held(rq);
|
|
WARN_ON_ONCE(rq->scx.rescue.curr);
|
|
|
|
rq->scx.rescue.curr = p;
|
|
rq->scx.rescue.slice = slice;
|
|
rq->scx.rescue.exec_snap = p->se.sum_exec_runtime;
|
|
scx_set_task_slice(p, slice);
|
|
scx_rescue_timer_arm(rq);
|
|
}
|
|
|
|
/**
|
|
* scx_rescue_try_admit - Try to admit a freshly stranded task
|
|
* @rq: rq @p is being inserted on
|
|
* @p: stranded task being diverted to rescue
|
|
*
|
|
* One rescue at a time and earlier arrivals go first. Admission needs a full
|
|
* quantum of budget, spent as the rescue runs. Return %true if @p was admitted
|
|
* and should be inserted at the tail of @rq's local DSQ, %false if it has to
|
|
* park on the rescue DSQ, with the timer armed to admit it later.
|
|
*/
|
|
static bool scx_rescue_try_admit(struct rq *rq, struct task_struct *p)
|
|
{
|
|
scx_rescue_accrue(rq);
|
|
|
|
if (!rq->scx.rescue.curr && list_empty(&rq->scx.rescue.dsq.list) &&
|
|
rq->scx.rescue.budget >= scx_rescue_quantum_ns) {
|
|
scx_rescue_admit(rq, p, scx_rescue_quantum_ns);
|
|
return true;
|
|
}
|
|
|
|
scx_rescue_timer_arm(rq);
|
|
return false;
|
|
}
|
|
|
|
/**
|
|
* scx_rescue_check_overload - Eject the top rescue consumer on a stuck rescue
|
|
* @rq: rq whose rescue timer fired
|
|
*
|
|
* If the oldest waiter on @rq's rescue DSQ has been queued for too long, rescue
|
|
* demand on this cpu persistently exceeds the configured bandwidth. Eject the
|
|
* sub with the highest recent rescue consumption instead of letting the
|
|
* scheduler stall path blame the waiter's owner, who may just be crowded out.
|
|
*/
|
|
static void scx_rescue_check_overload(struct rq *rq)
|
|
{
|
|
struct scx_sched *victim = NULL, *pos;
|
|
struct task_struct *p;
|
|
int cpu = cpu_of(rq);
|
|
u64 max_avg = 0;
|
|
u32 dur_ms;
|
|
|
|
lockdep_assert_rq_held(rq);
|
|
|
|
p = list_first_entry_or_null(&rq->scx.rescue.dsq.list, struct task_struct,
|
|
scx.dsq_list.node);
|
|
if (!p)
|
|
return;
|
|
|
|
/* has the head waiter been queued for longer than the threshold? */
|
|
if (time_before(jiffies, p->scx.rescue_at + scx_rescue_overload_after))
|
|
return;
|
|
|
|
/*
|
|
* Grace period after the last ejection on this cpu - the freed
|
|
* bandwidth gets one threshold's worth of time to drain the backlog
|
|
* before another sub is judged.
|
|
*/
|
|
if (time_before64(get_jiffies_64(), rq->scx.rescue.kill_at +
|
|
scx_rescue_overload_after))
|
|
return;
|
|
|
|
list_for_each_entry_rcu(pos, &scx_sched_all, all) {
|
|
u64 avg = scx_rescue_decay_avg(per_cpu_ptr(pos->pcpu, cpu));
|
|
|
|
/* skip an already-exiting sub, else the ejection is wasted */
|
|
if (pos->level && avg > max_avg &&
|
|
atomic_read(&pos->exit_kind) == SCX_EXIT_NONE) {
|
|
max_avg = avg;
|
|
victim = pos;
|
|
}
|
|
}
|
|
if (!victim)
|
|
return;
|
|
|
|
rq->scx.rescue.kill_at = get_jiffies_64();
|
|
dur_ms = jiffies_to_msecs(jiffies - p->scx.rescue_at);
|
|
__scx_exit(victim, SCX_EXIT_ERROR_RESCUE, 0, cpu,
|
|
"used too much rescue CPU time (%llums) while %s[%d] waited %u.%03us to be rescued",
|
|
div_u64(max_avg, NSEC_PER_MSEC), p->comm, p->pid, dur_ms / 1000,
|
|
dur_ms % 1000);
|
|
}
|
|
|
|
/**
|
|
* scx_rescue_timerfn - Drive and pace rescue execution
|
|
* @timer: rq->scx.rescue.timer
|
|
*
|
|
* Runs every quarter quantum while a rescuee exists, pending or admitted, see
|
|
* scx_rescue_timer_arm(). The head waiter is admitted once the bucket holds a
|
|
* full quantum and granted its slice, see scx_rescue_next_slice(). A session
|
|
* whose budget accumulates over two quanta with the admitted rescuee still
|
|
* waiting escalates - the rescuee's remaining slice turns into protected
|
|
* execution and it preempts the current task. An overloaded rescue queue ejects
|
|
* the top consumer, see scx_rescue_check_overload().
|
|
*/
|
|
static void scx_rescue_timerfn(struct timer_list *timer)
|
|
{
|
|
struct rq *rq = timer_container_of(rq, timer, scx.rescue.timer);
|
|
struct task_struct *p;
|
|
|
|
guard(rq_lock_irqsave)(rq);
|
|
|
|
p = rq->scx.rescue.curr;
|
|
if (!p && list_empty(&rq->scx.rescue.dsq.list))
|
|
return;
|
|
|
|
scx_rescue_accrue(rq);
|
|
scx_rescue_check_overload(rq);
|
|
|
|
if (!p) {
|
|
s64 slice = scx_rescue_next_slice(rq);
|
|
|
|
/* no rescue in progress */
|
|
if (rq->scx.rescue.budget < scx_rescue_quantum_ns)
|
|
goto out_arm;
|
|
|
|
/* there's enough budget to start rescuing the next one */
|
|
p = list_first_entry(&rq->scx.rescue.dsq.list, struct task_struct,
|
|
scx.dsq_list.node);
|
|
scx_task_unlink_from_dsq(p, &rq->scx.rescue.dsq);
|
|
scx_rescue_admit(rq, p, slice);
|
|
scx_move_local_task_to_local_dsq(scx_task_sched(p), p, SCX_ENQ_IGNORE_CAPS,
|
|
&rq->scx.rescue.dsq, rq);
|
|
if (sched_class_above(&ext_sched_class, rq->curr->sched_class))
|
|
resched_curr(rq);
|
|
} else if (p->scx.dsq && rq->scx.rescue.budget > 2 * scx_rescue_quantum_ns) {
|
|
/*
|
|
* The rescuee waited for the CPU for too long. Escalate - grant
|
|
* the unserved remainder, protect it from the schedulers and
|
|
* preempt the current task. The slice is set before the
|
|
* protection. Repeat beats only repeat the head move - the
|
|
* slice write is refused on a protected task.
|
|
*/
|
|
scx_set_task_slice(p, scx_rescue_slice_remaining(rq));
|
|
p->scx.flags |= SCX_TASK_PROTECTED;
|
|
scx_task_unlink_from_dsq(p, &rq->scx.local_dsq);
|
|
scx_move_local_task_to_local_dsq(scx_task_sched(p), p,
|
|
SCX_ENQ_HEAD | SCX_ENQ_PREEMPT | SCX_ENQ_IGNORE_CAPS,
|
|
&rq->scx.local_dsq, rq);
|
|
}
|
|
out_arm:
|
|
scx_rescue_timer_arm(rq);
|
|
}
|
|
|
|
/* flush out tasks waiting for rescue before a CPU goes down */
|
|
void scx_rescue_flush(struct rq *rq)
|
|
{
|
|
struct task_struct *p, *n;
|
|
|
|
lockdep_assert_rq_held(rq);
|
|
|
|
/* sched domain rebuilds call rq_offline with the CPU staying alive */
|
|
if (cpu_active(cpu_of(rq)))
|
|
return;
|
|
|
|
/* end the current rescue */
|
|
if (rq->scx.rescue.curr)
|
|
scx_task_slice_ended(rq, rq->scx.rescue.curr);
|
|
|
|
/* and flush out all pending ones */
|
|
list_for_each_entry_safe(p, n, &rq->scx.rescue.dsq.list, scx.dsq_list.node) {
|
|
scx_task_unlink_from_dsq(p, &rq->scx.rescue.dsq);
|
|
scx_move_local_task_to_local_dsq(scx_task_sched(p), p, SCX_ENQ_IGNORE_CAPS,
|
|
&rq->scx.rescue.dsq, rq);
|
|
}
|
|
|
|
timer_delete(&rq->scx.rescue.timer);
|
|
}
|
|
|
|
void scx_rescue_dump(struct seq_buf *s, struct rq *rq)
|
|
{
|
|
struct task_struct *p = rq->scx.rescue.curr;
|
|
|
|
scx_dump_line(s, " rescue=%u budget=%lldus rescuing=%s[%d]",
|
|
rq->scx.rescue.dsq.nr,
|
|
div_s64(rq->scx.rescue.budget, NSEC_PER_USEC),
|
|
p ? p->comm : "none", p ? p->pid : -1);
|
|
}
|
|
|
|
/*
|
|
* A scheduler whose stall watchdog is shorter than the overload threshold gets
|
|
* stall-killed over its parked waiters before the overload check can eject the
|
|
* actual top consumer. The root's knobs set the threshold, warn on any
|
|
* scheduler that doesn't fit it.
|
|
*/
|
|
static void scx_rescue_check_timeout(struct scx_sched *sch)
|
|
{
|
|
if (!scx_rescue_bw_1024 || sch->watchdog_timeout > scx_rescue_overload_after)
|
|
return;
|
|
|
|
pr_warn("sched_ext: %s: watchdog timeout %ums <= rescue overload threshold %ums\n",
|
|
sch->ops.name, jiffies_to_msecs(sch->watchdog_timeout),
|
|
jiffies_to_msecs(scx_rescue_overload_after));
|
|
}
|
|
|
|
/* latch the rescue parameters on root scheduler enable */
|
|
void scx_rescue_set_knobs(struct scx_sched *sch)
|
|
{
|
|
s32 bw_ppt = sch->ops.rescue_bandwidth_ppt ?: SCX_RESCUE_DFL_BW_PPT;
|
|
s64 quantum_us = sch->ops.rescue_quantum_us ?: SCX_RESCUE_DFL_QUANTUM_US;
|
|
s64 period_ns;
|
|
|
|
if (sch->ops.rescue_bandwidth_ppt == SCX_RESCUE_DISABLE) {
|
|
scx_rescue_bw_1024 = 0;
|
|
return;
|
|
}
|
|
|
|
scx_rescue_bw_1024 = bw_ppt * SCHED_CAPACITY_SCALE / 1000;
|
|
scx_rescue_quantum_ns = max(quantum_us * NSEC_PER_USEC, TICK_NSEC);
|
|
scx_rescue_sat_delta_ns =
|
|
div_s64((4 * scx_rescue_quantum_ns + TICK_NSEC) << SCHED_CAPACITY_SHIFT,
|
|
scx_rescue_bw_1024);
|
|
|
|
/*
|
|
* The overload threshold and the decay halflife scale with the funding
|
|
* period - the time the bucket takes to fund one full quantum.
|
|
*/
|
|
period_ns = div_s64(scx_rescue_quantum_ns << SCHED_CAPACITY_SHIFT, scx_rescue_bw_1024);
|
|
scx_rescue_overload_after =
|
|
clamp(nsecs_to_jiffies(SCX_RESCUE_OVERLOAD_MULT * period_ns),
|
|
msecs_to_jiffies(SCX_RESCUE_MIN_OVERLOAD_MS),
|
|
msecs_to_jiffies(SCX_RESCUE_MAX_OVERLOAD_MS));
|
|
scx_rescue_decay_halflife = scx_rescue_overload_after / 4;
|
|
|
|
/* a single in-budget wait must not cross the overload trigger */
|
|
if (nsecs_to_jiffies(period_ns) > scx_rescue_overload_after / 2)
|
|
pr_warn("sched_ext: %s: rescue funding period %lldms > overload threshold %ums / 2\n",
|
|
sch->ops.name, div_s64(period_ns, NSEC_PER_MSEC),
|
|
jiffies_to_msecs(scx_rescue_overload_after));
|
|
|
|
scx_rescue_check_timeout(sch);
|
|
}
|
|
|
|
void scx_rescue_init(struct rq *rq)
|
|
{
|
|
BUG_ON(scx_init_dsq(&rq->scx.rescue.dsq, SCX_DSQ_RESCUE, NULL));
|
|
timer_setup(&rq->scx.rescue.timer, scx_rescue_timerfn, TIMER_PINNED);
|
|
rq->scx.rescue.kill_at = get_jiffies_64();
|
|
}
|
|
|
|
/**
|
|
* scx_resolve_local_dsq - Pick the local, rescue or reject DSQ for an insert
|
|
* @sch: enqueuing sub-sched
|
|
* @rq: rq whose local DSQ @p targets
|
|
* @p: task being inserted
|
|
* @enq_flags: in/out, unhonored flags are cleared
|
|
*
|
|
* Return @rq's local DSQ if @sch holds the required caps on @rq's cid.
|
|
* Otherwise, return @rq's rescue DSQ if the insert carries %SCX_ENQ_RESCUE and
|
|
* rescue is enabled, or @rq's reject DSQ after recording the reenq reason on
|
|
* @p.
|
|
*
|
|
* %SCX_ENQ_IMMED, %SCX_ENQ_PREEMPT and %SCX_ENQ_HEAD are cleared when diverting
|
|
* to rescue or reject. %SCX_ENQ_PREEMPT is also cleared on a fallback
|
|
* migration-disabled admission.
|
|
*
|
|
* Bypass doesn't need special-casing as a bypassing sched's tasks are enqueued
|
|
* to and run by its nearest non-bypassing ancestor. If root is bypassing, it
|
|
* always holds all caps.
|
|
*/
|
|
struct scx_dispatch_q *scx_resolve_local_dsq(struct scx_sched *sch, struct rq *rq,
|
|
struct task_struct *p, u64 *enq_flags)
|
|
{
|
|
if (!scx_has_subs())
|
|
return &rq->scx.local_dsq;
|
|
|
|
s32 cid = __scx_cpu_to_cid(cpu_of(rq));
|
|
struct scx_sched *asch = rq->scx.remote_activate_sch ?: sch;
|
|
u64 needed = scx_caps_for_enq(*enq_flags);
|
|
u64 missing;
|
|
|
|
/*
|
|
* On a remote activation the scheduling sched (@asch) differs from
|
|
* @p's owner (@sch). Check caps against the scheduling sched.
|
|
*/
|
|
if (*enq_flags & SCX_ENQ_PREEMPT)
|
|
needed |= scx_caps_for_preempt(asch, rq, *enq_flags);
|
|
missing = scx_missing_caps(asch, cpu_of(rq), needed);
|
|
|
|
/* requirements met */
|
|
if (likely(!missing))
|
|
return &rq->scx.local_dsq;
|
|
|
|
/*
|
|
* The task must run on this CPU regardless of caps: the rq is draining
|
|
* offline (BPF scheduler bypassed), the task is migration-disabled, or a
|
|
* migration is pending. Admit despite the missing caps and count it.
|
|
* Refuse preemptions.
|
|
*/
|
|
if (unlikely(!scx_rq_online(rq) || is_migration_disabled(p) ||
|
|
p->migration_pending)) {
|
|
__scx_add_event(sch, SCX_EV_SUB_FORCED_ADMIT, 1);
|
|
*enq_flags &= ~SCX_ENQ_PREEMPT;
|
|
return &rq->scx.local_dsq;
|
|
}
|
|
|
|
/*
|
|
* Diverting to rescue or reject, neither of which honors IMMED, PREEMPT
|
|
* or HEAD - a diversion has no priority and IMMED is not allowed on
|
|
* non-local DSQs. Strip the enq and task flags along with the slice.
|
|
*/
|
|
*enq_flags &= ~(SCX_ENQ_IMMED | SCX_ENQ_PREEMPT | SCX_ENQ_HEAD |
|
|
SCX_ENQ_APPLY_SLICE | SCX_ENQ_SLICE_DFL);
|
|
p->scx.flags &= ~SCX_TASK_IMMED;
|
|
|
|
/* the enqueuer opted for rescue instead of rejection and reenqueue */
|
|
if ((*enq_flags & SCX_ENQ_RESCUE) && likely(scx_rescue_bw_1024)) {
|
|
__scx_add_event(sch, SCX_EV_SUB_RESCUE, 1);
|
|
if (scx_rescue_try_admit(rq, p))
|
|
return &rq->scx.local_dsq;
|
|
|
|
/* queueing, the overload trigger measures the wait from here */
|
|
p->scx.rescue_at = jiffies;
|
|
return &rq->scx.rescue.dsq;
|
|
}
|
|
|
|
p->scx.reenq_reason_caps = missing;
|
|
p->scx.reenq_reason_cid = cid;
|
|
|
|
return &rq->scx.reject_dsq;
|
|
}
|
|
|
|
/* @p lost the caps needed to stay on @rq's local DSQ? Record reason if so. */
|
|
bool scx_task_reenq_on_cap_revoke(struct rq *rq, struct task_struct *p)
|
|
{
|
|
u64 missing;
|
|
|
|
/* migration-disabled tasks and the rescuee are admitted capless */
|
|
if (is_migration_disabled(p) || p == scx_rescuee(rq))
|
|
return false;
|
|
|
|
missing = scx_missing_caps(scx_task_sched(p), cpu_of(rq), scx_caps_for_task(p));
|
|
if (likely(!missing))
|
|
return false;
|
|
|
|
p->scx.reenq_reason_caps = missing;
|
|
p->scx.reenq_reason_cid = __scx_cpu_to_cid(cpu_of(rq));
|
|
return true;
|
|
}
|
|
|
|
/*
|
|
* Drain @rq->scx.reject_dsq, reenqueueing each task so the BPF re-decides
|
|
* from p->scx.reenq_reason_*.
|
|
*
|
|
* A task can be re-rejected repeatedly. The reenqueue is bounded per task in
|
|
* scx_do_enqueue_task(), which ejects the owning sub past SCX_REENQ_MAX_REPEAT.
|
|
* Rejection can't happen for root.
|
|
*/
|
|
void scx_reenq_reject(struct rq *rq)
|
|
{
|
|
LIST_HEAD(tasks);
|
|
struct task_struct *p, *n;
|
|
|
|
lockdep_assert_rq_held(rq);
|
|
|
|
if (!scx_has_subs() || list_empty(&rq->scx.reject_dsq.list))
|
|
return;
|
|
|
|
/*
|
|
* Move to a private list so a task re-rejected by the
|
|
* scx_do_enqueue_task() below isn't revisited this round.
|
|
*/
|
|
list_for_each_entry_safe(p, n, &rq->scx.reject_dsq.list, scx.dsq_list.node) {
|
|
/* migration_pending tasks should have bypassed to local DSQ */
|
|
if (WARN_ON_ONCE(p->migration_pending))
|
|
continue;
|
|
|
|
scx_dispatch_dequeue(rq, p);
|
|
|
|
if (WARN_ON_ONCE(p->scx.flags & SCX_TASK_REENQ_REASON_MASK))
|
|
p->scx.flags &= ~SCX_TASK_REENQ_REASON_MASK;
|
|
p->scx.flags |= SCX_TASK_REENQ_CAP;
|
|
|
|
list_add_tail(&p->scx.dsq_list.node, &tasks);
|
|
}
|
|
|
|
list_for_each_entry_safe(p, n, &tasks, scx.dsq_list.node) {
|
|
list_del_init(&p->scx.dsq_list.node);
|
|
|
|
scx_do_enqueue_task(rq, p, SCX_ENQ_REENQ, -1);
|
|
|
|
p->scx.flags &= ~SCX_TASK_REENQ_REASON_MASK;
|
|
}
|
|
}
|
|
|
|
/* record a caps change, see struct scx_caps_updated */
|
|
static void caps_updated_record(struct scx_pshard *ps, const struct scx_cmask *cids, u64 caps,
|
|
struct list_head *to_deliver)
|
|
{
|
|
struct scx_caps_updated *cu = &ps->caps_updated;
|
|
|
|
guard(raw_spinlock)(&cu->lock);
|
|
scx_cmask_or(&cu->cmask, cids);
|
|
cu->caps |= caps;
|
|
if (list_empty(&cu->node_in_flight))
|
|
list_add_tail(&cu->node_in_flight, to_deliver);
|
|
}
|
|
|
|
/* deliver queued caps_updated callbacks, see struct scx_caps_updated */
|
|
static void caps_updated_deliver(struct list_head *to_deliver)
|
|
{
|
|
struct scx_caps_updated *cu, *tmp;
|
|
|
|
list_for_each_entry_safe(cu, tmp, to_deliver, node_in_flight) {
|
|
struct scx_pshard *ps = container_of(cu, struct scx_pshard, caps_updated);
|
|
struct scx_sched *sch = ps->sch;
|
|
|
|
while (true) {
|
|
u64 caps = 0;
|
|
|
|
/*
|
|
* During enable, has_op is set after ops.sub_attach(),
|
|
* so !has_op means the op is absent or the sched isn't
|
|
* live yet - e.g. caps grant from ops.sub_attach().
|
|
* Either way don't consume - leave for
|
|
* scx_sub_seed_caps() to deliver once live.
|
|
*/
|
|
scoped_guard (raw_spinlock, &cu->lock) {
|
|
if (cu->caps && SCX_HAS_OP(sch, sub_caps_updated) &&
|
|
likely(!READ_ONCE(sch->aborting))) {
|
|
struct scx_cmask_ref ref;
|
|
|
|
caps = cu->caps;
|
|
scx_cmask_ref_init_kern(sch, cu->cmask_arena_out,
|
|
ps->base, ps->nr_cids, &ref);
|
|
scx_cmask_ref_copy(&ref, &cu->cmask);
|
|
scx_cmask_clear(&cu->cmask);
|
|
cu->caps = 0;
|
|
} else {
|
|
list_del_init(&cu->node_in_flight);
|
|
}
|
|
}
|
|
if (!caps)
|
|
break;
|
|
|
|
/* caps != 0 only when deliverable (has_op, above) */
|
|
SCX_CALL_OP(sch, sub_caps_updated, NULL, cu->cmask_arena_out, caps);
|
|
}
|
|
}
|
|
}
|
|
|
|
/*
|
|
* Deliver caps owed to @sch that couldn't be delivered earlier (e.g. a grant
|
|
* taken during its sub_attach(), before has_op was set). Called once @sch is
|
|
* enabled.
|
|
*/
|
|
static void scx_sub_seed_caps(struct scx_sched *sch)
|
|
{
|
|
LIST_HEAD(to_deliver);
|
|
s32 si;
|
|
|
|
guard(irqsave)();
|
|
|
|
for (si = 0; si < sch->nr_pshards; si++) {
|
|
struct scx_pshard *ps = sch->pshard[si];
|
|
struct scx_caps_updated *cu = &ps->caps_updated;
|
|
|
|
scoped_guard (raw_spinlock, &cu->lock) {
|
|
if (cu->caps && list_empty(&cu->node_in_flight))
|
|
list_add_tail(&cu->node_in_flight, &to_deliver);
|
|
}
|
|
}
|
|
caps_updated_deliver(&to_deliver);
|
|
}
|
|
|
|
static u64 calc_effective_caps(struct scx_pshard *ps, s32 cid)
|
|
{
|
|
u64 ecaps = 0;
|
|
u32 cap_bit;
|
|
|
|
for (cap_bit = 0; cap_bit < __SCX_NR_CAPS; cap_bit++)
|
|
if (scx_cmask_test(cid, &ps->caps[cap_bit].cmask))
|
|
ecaps |= BIT_U64(cap_bit) | scx_caps_implied(BIT_U64(cap_bit));
|
|
return ecaps;
|
|
}
|
|
|
|
/**
|
|
* queue_sync_ecaps - Queue ecaps update for a (sch, cid) pair
|
|
* @sch: sched to update
|
|
* @cid: cid to update
|
|
*
|
|
* Queue an ecaps update for @sch's @cid and kick the cpu so that it syncs in
|
|
* dispatch_one().
|
|
*/
|
|
static void queue_sync_ecaps(struct scx_sched *sch, s32 cid)
|
|
{
|
|
s32 cpu = __scx_cid_to_cpu(cid);
|
|
struct scx_sched_pcpu *pcpu = per_cpu_ptr(sch->pcpu, cpu);
|
|
|
|
/*
|
|
* Pairs with smp_mb() in scx_process_sync_ecaps(). Either the check
|
|
* below sees the node off the list and queues it, or the in-flight sync
|
|
* sees the caps[] update made before this call.
|
|
*/
|
|
smp_mb();
|
|
|
|
/* @cid's pshard->lock excludes concurrent queueing attempts */
|
|
if (llist_on_list(&pcpu->ecaps_to_sync_node))
|
|
return;
|
|
if (llist_add(&pcpu->ecaps_to_sync_node, &cpu_rq(cpu)->scx.ecaps_to_sync))
|
|
scx_kick_cpu(sch->ancestors[0], cpu, 0);
|
|
}
|
|
|
|
/* discard @rq's queued ecaps syncs */
|
|
static void discard_queued_syncs(struct rq *rq)
|
|
{
|
|
struct llist_node *pos, *tmp;
|
|
|
|
lockdep_assert_rq_held(rq);
|
|
|
|
llist_for_each_safe(pos, tmp, llist_del_all(&rq->scx.ecaps_to_sync))
|
|
init_llist_node(pos);
|
|
}
|
|
|
|
/**
|
|
* scx_process_sync_ecaps - Sync this cpu's ecaps to pshard->caps[]
|
|
* @rq: the cid's cpu rq
|
|
* @prev: @rq's previous task from the in-progress dispatch
|
|
*
|
|
* pshard->caps[] is the target configuration. pcpu->ecaps is the effective
|
|
* transposed copy owned by the cid's cpu and written only here under @rq's
|
|
* lock.
|
|
*
|
|
* A sched that newly gains baseline access here is owed an update_idle() so it
|
|
* learns the cid's idle state. Such a gain arms the per-rq
|
|
* %SCX_RQ_SUB_IDLE_RENOTIFY gate so the next idle pick delivers it.
|
|
*/
|
|
void scx_process_sync_ecaps(struct rq *rq, struct task_struct *prev)
|
|
{
|
|
s32 cpu = cpu_of(rq);
|
|
s32 cid, shard;
|
|
struct llist_node *batch, *pos, *tmp;
|
|
u64 lost_all = 0;
|
|
|
|
lockdep_assert_rq_held(rq);
|
|
|
|
if (!scx_has_subs() || likely(llist_empty(&rq->scx.ecaps_to_sync)))
|
|
return;
|
|
|
|
/*
|
|
* ecaps are zeroed while the cpu is inactive and must stay zero.
|
|
* Discard queued syncs instead of processing them - the
|
|
* scx_online_ecaps() reseed re-syncs every sched on activation.
|
|
* cpu_active() clears before the offline zeroing and sets before the
|
|
* reseed is queued, so this test can neither miss a racing sync nor
|
|
* eat the reseed.
|
|
*/
|
|
if (unlikely(!cpu_active(cpu))) {
|
|
discard_queued_syncs(rq);
|
|
return;
|
|
}
|
|
|
|
/* @cid is valid here: the cpu is active with queued syncs */
|
|
cid = __scx_cpu_to_cid(cpu);
|
|
shard = rcu_dereference_all(scx_cid_to_shard)[cid];
|
|
|
|
batch = llist_del_all(&rq->scx.ecaps_to_sync);
|
|
llist_for_each_safe(pos, tmp, batch) {
|
|
struct scx_sched_pcpu *pcpu =
|
|
container_of(pos, struct scx_sched_pcpu, ecaps_to_sync_node);
|
|
struct scx_pshard *ps = pcpu->sch->pshard[shard];
|
|
u64 old, ecaps, lost, gained;
|
|
|
|
init_llist_node(pos);
|
|
|
|
/* pairs with smp_mb() in queue_sync_ecaps(), see there */
|
|
smp_mb();
|
|
|
|
old = READ_ONCE(pcpu->ecaps);
|
|
ecaps = calc_effective_caps(ps, cid);
|
|
WRITE_ONCE(pcpu->ecaps, ecaps);
|
|
|
|
lost = old & ~ecaps;
|
|
gained = ecaps & ~old;
|
|
lost_all |= lost;
|
|
|
|
/*
|
|
* Tell the sched its effective caps on this cid changed. The
|
|
* invocation is equivalent to the dispatch path and may drop
|
|
* and re-acquire the rq lock temporarily while the rest of
|
|
* @batch is held privately, see scx_discard_ecaps_to_sync().
|
|
* The dispatch kfuncs resolve their context on the executing
|
|
* cpu, which under core scheduling can differ from @rq's cpu,
|
|
* so the context is set up there. The rq recorded in it keeps
|
|
* the dispatches targeting @rq.
|
|
*/
|
|
if (ecaps != pcpu->reported_ecaps &&
|
|
SCX_HAS_OP(pcpu->sch, sub_ecaps_updated) &&
|
|
!scx_bypassing(pcpu->sch, cpu)) {
|
|
struct scx_dsp_ctx *dspc = &this_cpu_ptr(pcpu->sch->pcpu)->dsp_ctx;
|
|
|
|
dspc->rq = rq;
|
|
/* stash @prev so nested dispatches can access it */
|
|
rq->scx.sub_dispatch_prev = prev;
|
|
SCX_CALL_OP(pcpu->sch, sub_ecaps_updated, rq, scx_cpu_arg(cpu),
|
|
pcpu->reported_ecaps, ecaps);
|
|
rq->scx.sub_dispatch_prev = NULL;
|
|
scx_flush_dispatch_buf(pcpu->sch, rq);
|
|
pcpu->reported_ecaps = ecaps;
|
|
}
|
|
|
|
/*
|
|
* Gaining baseline access owes an update_idle() so the sched
|
|
* learns the cpu's idle state. Arm the per-rq gate so the next
|
|
* idle pick flushes it. Losing access drops any pending notify.
|
|
*/
|
|
if (gained & SCX_CAP_BASE) {
|
|
pcpu->idle_renotify = true;
|
|
rq->scx.flags |= SCX_RQ_SUB_IDLE_RENOTIFY;
|
|
} else if (lost & SCX_CAP_BASE) {
|
|
pcpu->idle_renotify = false;
|
|
}
|
|
}
|
|
|
|
/*
|
|
* Losing a cap can strand already-queued tasks. Schedule a reenq scan
|
|
* to move the now-capless ones off the local DSQ. The scan tests
|
|
* against the effective caps and thus must come after the ecaps sync.
|
|
*/
|
|
if (lost_all & SCX_CAPS_REENQ_ON_LOSS)
|
|
scx_schedule_reenq_local(rq, SCX_REENQ_CAP_REVOKE);
|
|
}
|
|
|
|
/**
|
|
* scx_unbypass_replay_ecaps - Replay a bypass-suppressed ecaps notification
|
|
* @rq: rq of the cpu leaving bypass
|
|
* @sch: scheduler that just left bypass on @rq's cpu
|
|
*
|
|
* scx_process_sync_ecaps() consumes syncs while bypassing without delivering
|
|
* ops.sub_ecaps_updated(), leaving reported_ecaps stale. Nothing re-queues a
|
|
* sync when bypass lifts, so without a replay a cid that never changes again
|
|
* would never be notified. The attach-time initial grants are the acute case
|
|
* as they are consumed during the enable bypass window. Re-queue a sync for
|
|
* any undelivered delta so the next dispatch delivers it.
|
|
*/
|
|
void scx_unbypass_replay_ecaps(struct rq *rq, struct scx_sched *sch)
|
|
{
|
|
s32 cpu = cpu_of(rq);
|
|
struct scx_sched_pcpu *pcpu = per_cpu_ptr(sch->pcpu, cpu);
|
|
struct scx_pshard *ps;
|
|
s32 cid;
|
|
|
|
lockdep_assert_rq_held(rq);
|
|
|
|
/* root holds every cap and never uses ecaps */
|
|
if (!sch->level)
|
|
return;
|
|
|
|
if (READ_ONCE(pcpu->ecaps) == pcpu->reported_ecaps)
|
|
return;
|
|
|
|
cid = __scx_cpu_to_cid(cpu);
|
|
ps = sch->pshard[rcu_dereference_all(scx_cid_to_shard)[cid]];
|
|
|
|
guard(raw_spinlock)(&ps->lock);
|
|
queue_sync_ecaps(sch, cid);
|
|
}
|
|
|
|
/*
|
|
* A cpu came back. Re-seed each sub-sched's ecaps on the cpu's cid. The sync
|
|
* recomputes effective caps from the pshard and fires ops.sub_ecaps_updated()
|
|
* only on a real change since offline.
|
|
*/
|
|
void scx_online_ecaps(struct rq *rq)
|
|
{
|
|
struct scx_sched *root, *pos;
|
|
s32 cid, shard;
|
|
|
|
/*
|
|
* Only a live hierarchy can have ecaps to reseed. This also keeps the
|
|
* table reads below away from an enable that failed before publishing
|
|
* the tables. A concurrent disable can't retire them, see
|
|
* handle_hotplug().
|
|
*/
|
|
if (!scx_enabled())
|
|
return;
|
|
|
|
guard(rq_lock_irqsave)(rq);
|
|
|
|
root = scx_root_protected();
|
|
cid = __scx_cpu_to_cid(cpu_of(rq));
|
|
shard = rcu_dereference_all(scx_cid_to_shard)[cid];
|
|
|
|
scx_for_each_descendant_pre(pos, root) {
|
|
struct scx_pshard *ps;
|
|
|
|
/* root holds every cap and never uses ecaps */
|
|
if (!pos->level)
|
|
continue;
|
|
|
|
ps = pos->pshard[shard];
|
|
guard(raw_spinlock)(&ps->lock);
|
|
queue_sync_ecaps(pos, cid);
|
|
}
|
|
}
|
|
|
|
/*
|
|
* A cpu is going down. Zero each sub-sched's in-effect ecaps so cap checks
|
|
* treat the cpu as capless while offline. Pending and late-queued syncs are
|
|
* discarded at consumption by scx_process_sync_ecaps() while the cpu is
|
|
* inactive. Leave reported_ecaps. Ownership is unchanged, so the
|
|
* scx_online_ecaps() reseed reports only a genuine delta. No callback fires
|
|
* here.
|
|
*/
|
|
void scx_offline_ecaps(struct rq *rq)
|
|
{
|
|
s32 cpu = cpu_of(rq);
|
|
struct scx_sched *root, *pos;
|
|
|
|
guard(rq_lock_irqsave)(rq);
|
|
|
|
root = scx_root_protected();
|
|
|
|
scx_for_each_descendant_pre(pos, root) {
|
|
/* root holds every cap and never uses ecaps */
|
|
if (!pos->level)
|
|
continue;
|
|
|
|
WRITE_ONCE(per_cpu_ptr(pos->pcpu, cpu)->ecaps, 0);
|
|
}
|
|
}
|
|
|
|
/*
|
|
* @pcpu's sched was unhashed before the grace period, so nothing re-queues its
|
|
* sync node. Remove the node from @rq's pending list so the pcpu can be freed.
|
|
*/
|
|
void scx_discard_ecaps_to_sync(s32 cpu, struct scx_sched_pcpu *pcpu)
|
|
{
|
|
struct rq *rq = cpu_rq(cpu);
|
|
struct llist_node *head = NULL, *tail = NULL;
|
|
struct llist_node *pos, *tmp;
|
|
|
|
/*
|
|
* llist can't unlink a single node. Take all queued nodes, drop @pcpu's
|
|
* and resplice the rest. Nodes in the taken batch read as on-list
|
|
* throughout, so queue_sync_ecaps() stays correct.
|
|
*/
|
|
if (llist_on_list(&pcpu->ecaps_to_sync_node)) {
|
|
scoped_guard (rq_lock_irqsave, rq) {
|
|
llist_for_each_safe(pos, tmp, llist_del_all(&rq->scx.ecaps_to_sync)) {
|
|
if (pos == &pcpu->ecaps_to_sync_node) {
|
|
init_llist_node(pos);
|
|
} else {
|
|
pos->next = head;
|
|
head = pos;
|
|
if (!tail)
|
|
tail = pos;
|
|
}
|
|
}
|
|
if (head)
|
|
llist_add_batch(head, tail, &rq->scx.ecaps_to_sync);
|
|
}
|
|
}
|
|
|
|
/*
|
|
* An in-flight scx_process_sync_ecaps() batch may still hold the node
|
|
* privately across dispatch-induced rq unlocks, reading as on-list.
|
|
*
|
|
* Because a bypassing sched gets no op call, init_llist_node() and all
|
|
* @pcpu accesses share one contiguous lock hold, off-list under the rq
|
|
* lock means @pcpu won't be accessed again.
|
|
*/
|
|
while (true) {
|
|
scoped_guard (rq_lock_irqsave, rq) {
|
|
if (!llist_on_list(&pcpu->ecaps_to_sync_node))
|
|
return;
|
|
}
|
|
cpu_relax();
|
|
}
|
|
}
|
|
|
|
/**
|
|
* scx_discard_stale_ecaps_syncs - Discard ecaps syncs from earlier schedulers
|
|
*
|
|
* To be called during root enable before the scheduler goes live. An earlier
|
|
* root's sub-sched may not have gone through its RCU free path yet (e.g. a
|
|
* still-open link fd defers it) and can leave queued ecaps syncs behind.
|
|
* Processing them would decode the dead sched's pshards with the current cid
|
|
* layout. Discard them instead. The backing scx_sched_pcpu's are still
|
|
* allocated as the free path removes ecaps_to_sync_node before freeing.
|
|
*/
|
|
void scx_discard_stale_ecaps_syncs(void)
|
|
{
|
|
s32 cpu;
|
|
|
|
for_each_possible_cpu(cpu) {
|
|
struct rq *rq = cpu_rq(cpu);
|
|
|
|
guard(rq_lock_irqsave)(rq);
|
|
discard_queued_syncs(rq);
|
|
}
|
|
}
|
|
|
|
static DECLARE_WAIT_QUEUE_HEAD(scx_unlink_waitq);
|
|
|
|
void drain_descendants(struct scx_sched *sch)
|
|
{
|
|
/*
|
|
* Child scheds that finished the critical part of disabling will take
|
|
* themselves off @sch->children. Wait for it to drain. As propagation
|
|
* is recursive, empty @sch->children means that all proper descendant
|
|
* scheds reached unlinking stage.
|
|
*/
|
|
wait_event(scx_unlink_waitq, list_empty(&sch->children));
|
|
}
|
|
|
|
/**
|
|
* scx_rehome_task - Move a task to a sched it has been initialized for
|
|
* @to: sched taking over @p, @p's init on it already complete
|
|
* @p: task to re-home
|
|
*
|
|
* Exit @p from its current sched and switch it over to @to, overriding the
|
|
* state to %SCX_TASK_READY to account for the already completed init. A task
|
|
* on a non-ext class, possible under an %SCX_OPS_SWITCH_PARTIAL root, stays
|
|
* %READY and is enabled by switching_to_scx() if it switches over.
|
|
*/
|
|
static void scx_rehome_task(struct scx_sched *to, struct task_struct *p)
|
|
{
|
|
lockdep_assert_held(&p->pi_lock);
|
|
lockdep_assert_rq_held(task_rq(p));
|
|
|
|
scoped_guard (sched_change, p, DEQUEUE_SAVE | DEQUEUE_MOVE) {
|
|
scx_disable_and_exit_task(scx_task_sched(p), p);
|
|
scx_set_task_state(p, SCX_TASK_INIT_BEGIN);
|
|
scx_set_task_state(p, SCX_TASK_INIT);
|
|
scx_set_task_sched(p, to);
|
|
scx_set_task_state(p, SCX_TASK_READY);
|
|
if (p->sched_class == &ext_sched_class)
|
|
scx_enable_task(to, p);
|
|
}
|
|
}
|
|
|
|
/**
|
|
* scx_punt_task - Hand a task to a failed sched without initialization
|
|
* @to: failed and bypassed sched taking custody of @p
|
|
* @p: task to punt
|
|
*
|
|
* Take @p off its current sched and put it on @to at %SCX_TASK_NONE. @to is
|
|
* dying and its teardown will re-home @p properly.
|
|
*
|
|
* Used when @to must take over @p but failed to initialize it. Bypass keeps
|
|
* scheduling decisions away from @to but @p can still trigger its task ops,
|
|
* which may confuse the BPF side. @to is dying anyway. The exit paths skip
|
|
* %NONE tasks (see __scx_disable_and_exit_task() and switched_from_scx()).
|
|
*/
|
|
static void scx_punt_task(struct scx_sched *to, struct task_struct *p)
|
|
{
|
|
lockdep_assert_held(&p->pi_lock);
|
|
lockdep_assert_rq_held(task_rq(p));
|
|
WARN_ON_ONCE(!READ_ONCE(to->bypass_depth));
|
|
|
|
scoped_guard (sched_change, p, DEQUEUE_SAVE | DEQUEUE_MOVE) {
|
|
scx_disable_and_exit_task(scx_task_sched(p), p);
|
|
scx_set_task_sched(p, to);
|
|
}
|
|
}
|
|
|
|
static void scx_fail_parent(struct scx_sched *sch,
|
|
struct task_struct *failed, s32 fail_code)
|
|
{
|
|
struct scx_sched *parent = scx_parent(sch);
|
|
struct scx_task_iter sti;
|
|
struct task_struct *p;
|
|
|
|
scx_error(parent, "ops.init_task() failed (%d) for %s[%d] while disabling a sub-scheduler",
|
|
fail_code, failed->comm, failed->pid);
|
|
|
|
/*
|
|
* Once $parent is bypassed, tasks can be punted into it. This may
|
|
* cause downstream failures on the BPF side but $parent is dying
|
|
* anyway.
|
|
*/
|
|
scx_bypass(parent, true);
|
|
|
|
scx_task_iter_start(&sti, sch->cgrp);
|
|
while ((p = scx_task_iter_next_locked(&sti))) {
|
|
if (scx_task_on_sched(parent, p))
|
|
continue;
|
|
|
|
scx_punt_task(parent, p);
|
|
}
|
|
scx_task_iter_stop(&sti);
|
|
}
|
|
|
|
#ifdef CONFIG_EXT_GROUP_SCHED
|
|
/**
|
|
* scx_cgroup_claim_subtree - Claim the subtree's cgroups for an enabling sub
|
|
* @sch: sub-scheduler being enabled
|
|
*
|
|
* Called while enabling @sch, after the subtree's cgrp->scx_sched's are pointed
|
|
* at @sch and before any task is claimed. This mirrors root enable's
|
|
* cgroups-before-tasks order. The ops.init_task() args are task_group-granular
|
|
* and can still reference a cgroup outside the handed-over set when the cpu
|
|
* controller is coarser than the sub topology or mounted on cgroup1.
|
|
*
|
|
* First init each of the parent sched's subtree cgroups on @sch, and only then
|
|
* exit them from the parent, so that a failed init can be unwound with the
|
|
* parent untouched. The both-inited transient is invisible outside
|
|
* scx_cgroup_lock(). %SCX_TG_SUB_INIT tracks the first pass's progress.
|
|
* %SCX_TG_INITED stays set throughout, except for a task_group whose
|
|
* ops.cgroup_init() failed on the parent (see scx_cgroup_return_subtree()):
|
|
* there is nothing to exit from the parent and %SCX_TG_INITED is set back with
|
|
* the transfer.
|
|
*
|
|
* Dying but not yet offlined task_groups are included: a removed cgroup keeps
|
|
* hosting scheduling events until its dying tasks finish their final context
|
|
* switches, so it still needs to be inited on a sched, and its offline-time
|
|
* ops.cgroup_exit() follows the last of those events.
|
|
*
|
|
* Return 0 on success, -errno on failure. On failure, @sch has been
|
|
* scx_error()'d and is left with no cgroups.
|
|
*/
|
|
static s32 scx_cgroup_claim_subtree(struct scx_sched *sch)
|
|
{
|
|
struct cgroup *sub_cgrp = sch_cgroup(sch);
|
|
struct cgroup_subsys_state *ecss = cgroup_e_css(sub_cgrp, &cpu_cgrp_subsys);
|
|
struct scx_sched *parent = scx_parent(sch);
|
|
struct cgroup_subsys_state *css;
|
|
int ret;
|
|
|
|
css_for_each_descendant_pre(css, ecss) {
|
|
struct task_group *tg = css_tg(css);
|
|
struct scx_cgroup_init_args args = {
|
|
.weight = tg->scx.weight,
|
|
.bw_period_us = tg->scx.bw_period_us,
|
|
.bw_quota_us = tg->scx.bw_quota_us,
|
|
.bw_burst_us = tg->scx.bw_burst_us,
|
|
};
|
|
|
|
if (tg->scx.sched != parent ||
|
|
!cgroup_is_descendant(css->cgroup, sub_cgrp))
|
|
continue;
|
|
|
|
if (SCX_HAS_OP(sch, cgroup_init)) {
|
|
ret = SCX_CALL_OP_RET(sch, cgroup_init, NULL, css->cgroup, &args);
|
|
if (ret) {
|
|
scx_error(sch, "ops.cgroup_init() failed (%d)", ret);
|
|
goto err;
|
|
}
|
|
}
|
|
tg->scx.flags |= SCX_TG_SUB_INIT;
|
|
}
|
|
|
|
css_for_each_descendant_post(css, ecss) {
|
|
struct task_group *tg = css_tg(css);
|
|
|
|
/*
|
|
* SUB_INIT is pass 1's progress mark: pass 2 and the err path
|
|
* must visit exactly the tgs pass 1 inited.
|
|
*/
|
|
if (!(tg->scx.flags & SCX_TG_SUB_INIT))
|
|
continue;
|
|
|
|
/* skip the exit if the parent's ops.cgroup_init() failed */
|
|
if ((tg->scx.flags & SCX_TG_INITED) && SCX_HAS_OP(parent, cgroup_exit))
|
|
SCX_CALL_OP(parent, cgroup_exit, NULL, css->cgroup);
|
|
tg->scx.sched = sch;
|
|
tg->scx.flags |= SCX_TG_INITED;
|
|
tg->scx.flags &= ~SCX_TG_SUB_INIT;
|
|
}
|
|
|
|
return 0;
|
|
|
|
err:
|
|
css_for_each_descendant_post(css, ecss) {
|
|
struct task_group *tg = css_tg(css);
|
|
|
|
if (!(tg->scx.flags & SCX_TG_SUB_INIT))
|
|
continue;
|
|
|
|
if (SCX_HAS_OP(sch, cgroup_exit))
|
|
SCX_CALL_OP(sch, cgroup_exit, NULL, css->cgroup);
|
|
tg->scx.flags &= ~SCX_TG_SUB_INIT;
|
|
}
|
|
return ret;
|
|
}
|
|
|
|
/**
|
|
* scx_cgroup_return_subtree - Return the subtree's cgroups to the parent sched
|
|
* @sch: sub-scheduler being disabled
|
|
*
|
|
* Called while disabling @sch, after the subtree's cgrp->scx_sched's are reset
|
|
* to the parent sched and before tasks are re-homed, mirroring root disable's
|
|
* cgroups-before-tasks teardown order. The reverse of
|
|
* scx_cgroup_claim_subtree(): exit @sch's cgroups from @sch, then init them on
|
|
* the parent with the current tg->scx.* values, resyncing settings that changed
|
|
* while @sch had them.
|
|
*
|
|
* When an init on the parent fails, the parent is failed - the same policy as
|
|
* task re-homing. The remaining task_groups are punted: they move to the parent
|
|
* anyway with %SCX_TG_INITED cleared, as ops.cgroup_init() failed or never ran
|
|
* for them. A punted task_group gets no cgroup ops. The dying parent's own
|
|
* disable moves it one sched up, initing it there. Root ends the chain: root
|
|
* teardown drops cgroup ops entirely and the next enable's bulk init re-inits
|
|
* every online task_group.
|
|
*
|
|
* The task re-home that follows still delivers ops.init_task() to the dying
|
|
* parent, including for tasks in punted cgroups it never inited - tolerated
|
|
* like the downstream failures of task punting (see scx_punt_task()).
|
|
*/
|
|
static void scx_cgroup_return_subtree(struct scx_sched *sch)
|
|
{
|
|
struct cgroup *sub_cgrp = sch_cgroup(sch);
|
|
struct cgroup_subsys_state *ecss = cgroup_e_css(sub_cgrp, &cpu_cgrp_subsys);
|
|
struct scx_sched *parent = scx_parent(sch);
|
|
struct cgroup_subsys_state *css;
|
|
bool parent_failed = false;
|
|
int ret;
|
|
|
|
css_for_each_descendant_post(css, ecss) {
|
|
struct task_group *tg = css_tg(css);
|
|
|
|
if (tg->scx.sched != sch ||
|
|
!cgroup_is_descendant(css->cgroup, sub_cgrp))
|
|
continue;
|
|
|
|
/* skip the exit if @sch's ops.cgroup_init() failed for the tg */
|
|
if ((tg->scx.flags & SCX_TG_INITED) && SCX_HAS_OP(sch, cgroup_exit))
|
|
SCX_CALL_OP(sch, cgroup_exit, NULL, css->cgroup);
|
|
tg->scx.sched = parent;
|
|
tg->scx.flags |= SCX_TG_SUB_INIT;
|
|
}
|
|
|
|
css_for_each_descendant_pre(css, ecss) {
|
|
struct task_group *tg = css_tg(css);
|
|
struct scx_cgroup_init_args args = {
|
|
.weight = tg->scx.weight,
|
|
.bw_period_us = tg->scx.bw_period_us,
|
|
.bw_quota_us = tg->scx.bw_quota_us,
|
|
.bw_burst_us = tg->scx.bw_burst_us,
|
|
};
|
|
|
|
/* the first pass must have transferred everything */
|
|
WARN_ON_ONCE(tg->scx.sched == sch);
|
|
|
|
/*
|
|
* SUB_INIT distinguishes the tgs pass 1 moved. The sched test
|
|
* can't: a tg punted to the parent by an earlier failure would
|
|
* also match.
|
|
*/
|
|
if (!(tg->scx.flags & SCX_TG_SUB_INIT))
|
|
continue;
|
|
tg->scx.flags &= ~(SCX_TG_SUB_INIT | SCX_TG_INITED);
|
|
|
|
/*
|
|
* A re-init on $parent failed. The task_groups from here on are
|
|
* punted: they stay on the dying $parent with INITED clear and
|
|
* move onward when it disables.
|
|
*/
|
|
if (parent_failed)
|
|
continue;
|
|
|
|
if (SCX_HAS_OP(parent, cgroup_init)) {
|
|
ret = SCX_CALL_OP_RET(parent, cgroup_init, NULL, css->cgroup, &args);
|
|
if (ret) {
|
|
scx_error(parent, "ops.cgroup_init() failed (%d) while disabling a sub-scheduler",
|
|
ret);
|
|
parent_failed = true;
|
|
continue;
|
|
}
|
|
}
|
|
tg->scx.flags |= SCX_TG_INITED;
|
|
}
|
|
}
|
|
#else
|
|
static inline s32 scx_cgroup_claim_subtree(struct scx_sched *sch) { return 0; }
|
|
static inline void scx_cgroup_return_subtree(struct scx_sched *sch) {}
|
|
#endif
|
|
|
|
void scx_sub_disable(struct scx_sched *sch)
|
|
{
|
|
struct scx_sched *parent = scx_parent(sch);
|
|
struct scx_task_iter sti;
|
|
struct task_struct *p;
|
|
int ret;
|
|
|
|
/*
|
|
* Guarantee forward progress and wait for descendants to be disabled.
|
|
* To limit disruptions, $parent is not bypassed. Tasks are fully
|
|
* prepped and then inserted back into $parent.
|
|
*/
|
|
scx_bypass(sch, true);
|
|
drain_descendants(sch);
|
|
|
|
/*
|
|
* Here, every runnable task is guaranteed to make forward progress and
|
|
* we can safely use blocking synchronization constructs. Actually
|
|
* disable ops.
|
|
*/
|
|
mutex_lock(&scx_enable_mutex);
|
|
percpu_down_write(&scx_fork_rwsem);
|
|
scx_cgroup_lock();
|
|
|
|
/*
|
|
* An enable that failed before scx_link_sched() succeeded never owned a
|
|
* cgroup or task and won't be waited on by an ancestor's
|
|
* drain_descendants(). Nothing to reparent and walking the tasks can
|
|
* misbehave as the task ownership invariant (either owned by self or
|
|
* parent) does not hold. ->sibling can't identify this case - an undone
|
|
* link leaves it non-empty.
|
|
*/
|
|
if (!sch->linked)
|
|
goto dump;
|
|
|
|
set_cgroup_sched(sch_cgroup(sch), parent);
|
|
|
|
/*
|
|
* Return the subtree's cgroups before re-homing tasks so that any
|
|
* ops.init_task() on $parent only sees cgroups it has initialized.
|
|
*/
|
|
scx_cgroup_return_subtree(sch);
|
|
|
|
scx_task_iter_start(&sti, sch->cgrp);
|
|
while ((p = scx_task_iter_next_locked(&sti))) {
|
|
struct rq *rq;
|
|
struct rq_flags rf;
|
|
|
|
/* filter out duplicate visits */
|
|
if (scx_task_on_sched(parent, p))
|
|
continue;
|
|
|
|
/*
|
|
* By the time control reaches here, all linked descendant
|
|
* schedulers should have been disabled.
|
|
*/
|
|
WARN_ON_ONCE(!scx_task_on_sched(sch, p));
|
|
|
|
/*
|
|
* @p is pinned by the iter: css_task_iter_next() takes a
|
|
* reference and holds it until the next iter_next() call, so
|
|
* @p->usage is guaranteed > 0.
|
|
*/
|
|
get_task_struct(p);
|
|
|
|
scx_task_iter_unlock(&sti);
|
|
|
|
/*
|
|
* $p is READY or ENABLED on @sch. Initialize for $parent,
|
|
* disable and exit from @sch, and then switch over to $parent.
|
|
*
|
|
* If a task fails to initialize for $parent, the only available
|
|
* action is disabling $parent too. While this allows disabling
|
|
* of a child sched to cause the parent scheduler to fail, the
|
|
* failure can only originate from ops.init_task() of the
|
|
* parent. A child can't directly affect the parent through its
|
|
* own failures.
|
|
*/
|
|
ret = __scx_init_task(parent, p, NULL, false);
|
|
if (ret) {
|
|
scx_fail_parent(sch, p, ret);
|
|
put_task_struct(p);
|
|
break;
|
|
}
|
|
|
|
rq = task_rq_lock(p, &rf);
|
|
|
|
if (scx_get_task_state(p) == SCX_TASK_DEAD) {
|
|
/*
|
|
* sched_ext_dead() raced us between __scx_init_task()
|
|
* and this rq lock and ran exit_task() on @sch (the
|
|
* sched @p was on at that point), not on $parent.
|
|
* $parent's just-completed init is owed an exit_task()
|
|
* and we issue it here.
|
|
*/
|
|
scx_sub_init_cancel_task(parent, p);
|
|
task_rq_unlock(rq, p, &rf);
|
|
put_task_struct(p);
|
|
continue;
|
|
}
|
|
|
|
scx_rehome_task(parent, p);
|
|
|
|
task_rq_unlock(rq, p, &rf);
|
|
put_task_struct(p);
|
|
}
|
|
scx_task_iter_stop(&sti);
|
|
|
|
dump:
|
|
scx_disable_dump(sch);
|
|
|
|
scx_cgroup_unlock();
|
|
percpu_up_write(&scx_fork_rwsem);
|
|
|
|
/*
|
|
* All tasks are moved off of @sch but there may still be on-going
|
|
* operations (e.g. ops.select_cpu()). Drain them by flushing RCU. Use
|
|
* the expedited version as ancestors may be waiting in bypass mode.
|
|
* Also, tell the parent that there is no need to keep running bypass
|
|
* DSQs for us.
|
|
*/
|
|
synchronize_rcu_expedited();
|
|
scx_disable_bypass_dsp(sch);
|
|
|
|
scx_unlink_sched(sch);
|
|
|
|
mutex_unlock(&scx_enable_mutex);
|
|
|
|
/*
|
|
* @sch is now unlinked from the parent's children list. Notify and call
|
|
* ops.sub_detach/exit(). Note that ops.sub_detach/exit() must be called
|
|
* after unlinking and releasing all locks. See scx_claim_exit().
|
|
*/
|
|
wake_up_all(&scx_unlink_waitq);
|
|
|
|
if (parent->ops.sub_detach && sch->sub_attached) {
|
|
struct scx_sub_detach_args sub_detach_args = {
|
|
.ops = &sch->ops,
|
|
.cgroup_path = sch->cgrp_path,
|
|
};
|
|
SCX_CALL_OP(parent, sub_detach, NULL,
|
|
&sub_detach_args);
|
|
}
|
|
|
|
scx_log_sched_disable(sch);
|
|
|
|
if (sch->ops.exit)
|
|
SCX_CALL_OP(sch, exit, NULL, sch->exit_info);
|
|
|
|
/*
|
|
* @sch's non-ops programs such as timers and tracers can fire after
|
|
* ops.exit(). Now that exit is complete, stop scx_prog_sched() from
|
|
* resolving to @sch and drain in-flight resolvers.
|
|
*/
|
|
WRITE_ONCE(sch->dead, true);
|
|
synchronize_rcu();
|
|
|
|
if (sch->sub_kset)
|
|
kobject_del(&sch->sub_kset->kobj);
|
|
/* not added if enable failed before scx_sched_sysfs_add() */
|
|
if (sch->kobj.state_in_sysfs)
|
|
kobject_del(&sch->kobj);
|
|
}
|
|
|
|
/* verify that a scheduler can be attached to @cgrp and return the parent */
|
|
static struct scx_sched *find_parent_sched(struct cgroup *cgrp)
|
|
{
|
|
struct scx_sched *parent = scx_cgroup_sched(cgrp);
|
|
struct scx_sched *pos;
|
|
|
|
lockdep_assert_held(&scx_sched_lock);
|
|
|
|
/* can't attach twice to the same cgroup */
|
|
if (parent->cgrp == cgrp)
|
|
return ERR_PTR(-EBUSY);
|
|
|
|
/* does $parent allow sub-scheds? */
|
|
if (!parent->ops.sub_attach)
|
|
return ERR_PTR(-EOPNOTSUPP);
|
|
|
|
/* can't insert between $parent and its exiting children */
|
|
list_for_each_entry(pos, &parent->children, sibling)
|
|
if (cgroup_is_descendant(pos->cgrp, cgrp))
|
|
return ERR_PTR(-EBUSY);
|
|
|
|
return parent;
|
|
}
|
|
|
|
static bool assert_task_ready_or_enabled(struct task_struct *p)
|
|
{
|
|
u32 state = scx_get_task_state(p);
|
|
|
|
switch (state) {
|
|
case SCX_TASK_READY:
|
|
case SCX_TASK_ENABLED:
|
|
return true;
|
|
default:
|
|
WARN_ONCE(true, "sched_ext: Invalid task state %d for %s[%d] during enabling sub sched",
|
|
state, p->comm, p->pid);
|
|
return false;
|
|
}
|
|
}
|
|
|
|
void scx_sub_enable_workfn(struct kthread_work *work)
|
|
{
|
|
struct scx_enable_cmd *cmd = container_of(work, struct scx_enable_cmd, work);
|
|
struct sched_ext_ops *ops = cmd->ops;
|
|
struct cgroup *cgrp;
|
|
struct scx_sched *parent, *sch;
|
|
struct scx_task_iter sti;
|
|
struct task_struct *p;
|
|
s32 i, ret;
|
|
|
|
mutex_lock(&scx_enable_mutex);
|
|
|
|
if (!scx_enabled()) {
|
|
ret = -ENODEV;
|
|
goto out_unlock;
|
|
}
|
|
|
|
/* See scx_root_enable_workfn() for the @ops->priv check. */
|
|
if (rcu_access_pointer(ops->priv)) {
|
|
ret = -EBUSY;
|
|
goto out_unlock;
|
|
}
|
|
|
|
cgrp = cgroup_get_from_id(ops->sub_cgroup_id);
|
|
if (IS_ERR(cgrp)) {
|
|
ret = PTR_ERR(cgrp);
|
|
goto out_unlock;
|
|
}
|
|
|
|
raw_spin_lock_irq(&scx_sched_lock);
|
|
parent = find_parent_sched(cgrp);
|
|
if (IS_ERR(parent)) {
|
|
raw_spin_unlock_irq(&scx_sched_lock);
|
|
ret = PTR_ERR(parent);
|
|
goto out_put_cgrp;
|
|
}
|
|
kobject_get(&parent->kobj);
|
|
raw_spin_unlock_irq(&scx_sched_lock);
|
|
|
|
/*
|
|
* Flip the hot-path gates before ops->priv is published - the sub's
|
|
* programs can e.g. kick cpus from that point on. The matching dec is
|
|
* at the end of scx_sched_free_rcu_work().
|
|
*/
|
|
static_branch_inc(&__scx_has_subs);
|
|
|
|
/* scx_alloc_and_add_sched() consumes @cgrp whether it succeeds or not */
|
|
sch = scx_alloc_and_add_sched(cmd, cgrp, parent);
|
|
kobject_put(&parent->kobj);
|
|
if (IS_ERR(sch)) {
|
|
static_branch_dec(&__scx_has_subs);
|
|
ret = PTR_ERR(sch);
|
|
goto out_unlock;
|
|
}
|
|
|
|
/*
|
|
* Validate before scx_link_sched() publishes @sch, so an invalid sub
|
|
* never becomes visible with an unallocated pshard.
|
|
*/
|
|
ret = scx_validate_ops(sch, ops);
|
|
if (ret)
|
|
goto err_disable;
|
|
|
|
scx_rescue_check_timeout(sch);
|
|
|
|
/*
|
|
* Allocate pshard[] before scx_link_sched() publishes @sch into the
|
|
* parent's RCU children list. A concurrent revoke walking the tree
|
|
* would otherwise dereference sch->pshard[si] while it's still NULL.
|
|
* Unlike the root path, the cid shard layout is stable at this point.
|
|
*
|
|
* scx_alloc_pshards() skips allocation when @sch's arena pool isn't
|
|
* initialized, so scx_arena_pool_init() must run first.
|
|
*/
|
|
ret = scx_arena_pool_init(sch);
|
|
if (ret)
|
|
goto err_disable;
|
|
|
|
ret = scx_alloc_pshards(sch);
|
|
if (ret)
|
|
goto err_disable;
|
|
|
|
ret = scx_link_sched(sch);
|
|
if (ret)
|
|
goto err_disable;
|
|
|
|
ret = scx_sched_sysfs_add(sch);
|
|
if (ret)
|
|
goto err_disable;
|
|
|
|
if (sch->level >= SCX_SUB_MAX_DEPTH) {
|
|
scx_error(sch, "max nesting depth %d violated",
|
|
SCX_SUB_MAX_DEPTH);
|
|
ret = -EINVAL;
|
|
goto err_disable;
|
|
}
|
|
|
|
if (sch->ops.init) {
|
|
ret = SCX_CALL_OP_RET(sch, init, NULL);
|
|
if (ret) {
|
|
ret = scx_ops_sanitize_err(sch, "init", ret);
|
|
scx_error(sch, "ops.init() failed (%d)", ret);
|
|
goto err_disable;
|
|
}
|
|
sch->exit_info->flags |= SCX_EFLAG_INITIALIZED;
|
|
}
|
|
|
|
ret = scx_set_cmask_scratch_alloc(sch);
|
|
if (ret)
|
|
goto err_disable;
|
|
|
|
struct scx_sub_attach_args sub_attach_args = {
|
|
.ops = &sch->ops,
|
|
.cgroup_path = sch->cgrp_path,
|
|
};
|
|
|
|
ret = SCX_CALL_OP_RET(parent, sub_attach, NULL,
|
|
&sub_attach_args);
|
|
if (ret) {
|
|
ret = scx_ops_sanitize_err(sch, "sub_attach", ret);
|
|
scx_error(sch, "parent rejected (%d)", ret);
|
|
goto err_disable;
|
|
}
|
|
sch->sub_attached = true;
|
|
|
|
scx_bypass(sch, true);
|
|
|
|
for (i = SCX_OPI_BEGIN; i < SCX_OPI_END; i++)
|
|
if (((void (**)(void))ops)[i])
|
|
set_bit(i, sch->has_op);
|
|
|
|
percpu_down_write(&scx_fork_rwsem);
|
|
scx_cgroup_lock();
|
|
|
|
/*
|
|
* Set cgroup->scx_sched's and check CSS_ONLINE. Either we see
|
|
* !CSS_ONLINE or scx_cgroup_lifetime_notify() sees and shoots us down.
|
|
*/
|
|
set_cgroup_sched(sch_cgroup(sch), sch);
|
|
if (!(cgrp->self.flags & CSS_ONLINE)) {
|
|
scx_error(sch, "cgroup is not online");
|
|
ret = -ENODEV;
|
|
goto err_unlock_and_disable;
|
|
}
|
|
|
|
/*
|
|
* Take over the subtree's cgroups before any task is claimed,
|
|
* mirroring root enable's cgroups-before-tasks order.
|
|
*/
|
|
ret = scx_cgroup_claim_subtree(sch);
|
|
if (ret)
|
|
goto err_unlock_and_disable;
|
|
|
|
/*
|
|
* Initialize tasks for the new child $sch without exiting them for
|
|
* $parent so that the tasks can always be reverted back to $parent
|
|
* sched on child init failure.
|
|
*/
|
|
WARN_ON_ONCE(scx_enabling_sub_sched);
|
|
scx_enabling_sub_sched = sch;
|
|
|
|
scx_task_iter_start(&sti, sch->cgrp);
|
|
while ((p = scx_task_iter_next_locked(&sti))) {
|
|
struct rq *rq;
|
|
struct rq_flags rf;
|
|
|
|
/*
|
|
* Task iteration may visit the same task twice when racing
|
|
* against exiting. Use %SCX_TASK_SUB_INIT to mark tasks which
|
|
* finished __scx_init_task() and skip if set.
|
|
*
|
|
* A task may exit and get freed between __scx_init_task()
|
|
* completion and scx_enable_task(). In such cases,
|
|
* scx_disable_and_exit_task() must exit the task for both the
|
|
* parent and child scheds.
|
|
*/
|
|
if (p->scx.flags & SCX_TASK_SUB_INIT)
|
|
continue;
|
|
|
|
/* @p is pinned by the iter; see scx_sub_disable() */
|
|
get_task_struct(p);
|
|
|
|
if (!assert_task_ready_or_enabled(p)) {
|
|
ret = -EINVAL;
|
|
goto abort;
|
|
}
|
|
|
|
scx_task_iter_unlock(&sti);
|
|
|
|
/*
|
|
* As $p is still on $parent, it can't be transitioned to INIT.
|
|
* Let's worry about task state later. Use __scx_init_task().
|
|
*/
|
|
ret = __scx_init_task(sch, p, NULL, false);
|
|
if (ret)
|
|
goto abort;
|
|
|
|
rq = task_rq_lock(p, &rf);
|
|
|
|
if (scx_get_task_state(p) == SCX_TASK_DEAD) {
|
|
/*
|
|
* sched_ext_dead() raced us between __scx_init_task()
|
|
* and this rq lock and ran exit_task() on $parent (the
|
|
* sched @p was on at that point), not on @sch. @sch's
|
|
* just-completed init is owed an exit_task() and we
|
|
* issue it here.
|
|
*/
|
|
scx_sub_init_cancel_task(sch, p);
|
|
task_rq_unlock(rq, p, &rf);
|
|
put_task_struct(p);
|
|
continue;
|
|
}
|
|
|
|
p->scx.flags |= SCX_TASK_SUB_INIT;
|
|
task_rq_unlock(rq, p, &rf);
|
|
|
|
put_task_struct(p);
|
|
}
|
|
scx_task_iter_stop(&sti);
|
|
|
|
/*
|
|
* All tasks are prepped. Disable/exit tasks for $parent and enable for
|
|
* the new @sch.
|
|
*/
|
|
scx_task_iter_start(&sti, sch->cgrp);
|
|
while ((p = scx_task_iter_next_locked(&sti))) {
|
|
/*
|
|
* Use clearing of %SCX_TASK_SUB_INIT to detect and skip
|
|
* duplicate iterations.
|
|
*/
|
|
if (!(p->scx.flags & SCX_TASK_SUB_INIT))
|
|
continue;
|
|
|
|
scoped_guard (sched_change, p, DEQUEUE_SAVE | DEQUEUE_MOVE) {
|
|
/*
|
|
* $p must be either READY or ENABLED. If ENABLED,
|
|
* __scx_disabled_and_exit_task() first disables and
|
|
* makes it READY. However, after exiting $p, it will
|
|
* leave $p as READY.
|
|
*/
|
|
assert_task_ready_or_enabled(p);
|
|
__scx_disable_and_exit_task(parent, p);
|
|
|
|
/*
|
|
* $p is now only initialized for @sch and READY, which
|
|
* is what we want. Assign it to @sch and, if it's on
|
|
* the ext class, enable. A non-ext task, possible under
|
|
* an %SCX_OPS_SWITCH_PARTIAL root, stays READY and is
|
|
* enabled by switching_to_scx() if it switches over.
|
|
*/
|
|
scx_set_task_sched(p, sch);
|
|
if (p->sched_class == &ext_sched_class)
|
|
scx_enable_task(sch, p);
|
|
|
|
p->scx.flags &= ~SCX_TASK_SUB_INIT;
|
|
}
|
|
}
|
|
scx_task_iter_stop(&sti);
|
|
|
|
scx_enabling_sub_sched = NULL;
|
|
|
|
scx_cgroup_unlock();
|
|
percpu_up_write(&scx_fork_rwsem);
|
|
|
|
scx_bypass(sch, false);
|
|
|
|
/* @sch is enabled; deliver any caps owed since its sub_attach() */
|
|
scx_sub_seed_caps(sch);
|
|
|
|
pr_info("sched_ext: BPF sub-scheduler \"%s\" enabled\n", sch->ops.name);
|
|
kobject_uevent(&sch->kobj, KOBJ_ADD);
|
|
ret = 0;
|
|
goto out_unlock;
|
|
|
|
out_put_cgrp:
|
|
cgroup_put(cgrp);
|
|
out_unlock:
|
|
mutex_unlock(&scx_enable_mutex);
|
|
cmd->ret = ret;
|
|
return;
|
|
|
|
abort:
|
|
put_task_struct(p);
|
|
scx_task_iter_stop(&sti);
|
|
|
|
/*
|
|
* Undo __scx_init_task() for tasks we marked. scx_enable_task() never
|
|
* ran for @sch on them, so calling scx_disable_task() here would invoke
|
|
* ops.disable() without a matching ops.enable(). scx_enabling_sub_sched
|
|
* must stay set until SUB_INIT is cleared from every marked task -
|
|
* scx_disable_and_exit_task() reads it when a task exits concurrently.
|
|
*/
|
|
scx_task_iter_start(&sti, sch->cgrp);
|
|
while ((p = scx_task_iter_next_locked(&sti))) {
|
|
if (p->scx.flags & SCX_TASK_SUB_INIT) {
|
|
scx_sub_init_cancel_task(sch, p);
|
|
p->scx.flags &= ~SCX_TASK_SUB_INIT;
|
|
}
|
|
}
|
|
scx_task_iter_stop(&sti);
|
|
scx_enabling_sub_sched = NULL;
|
|
err_unlock_and_disable:
|
|
/* we'll soon enter disable path, keep bypass on */
|
|
scx_cgroup_unlock();
|
|
percpu_up_write(&scx_fork_rwsem);
|
|
err_disable:
|
|
mutex_unlock(&scx_enable_mutex);
|
|
/*
|
|
* Some enable failures only return an errno (e.g. -ENOMEM from an
|
|
* allocation) without calling scx_error(). Record it so
|
|
* scx_flush_disable_work() runs the disable and ops.exit() fires.
|
|
*/
|
|
scx_error(sch, "scx_sub_enable() failed (%d)", ret);
|
|
scx_flush_disable_work(sch);
|
|
cmd->ret = 0;
|
|
}
|
|
|
|
/**
|
|
* scx_cgroup_task_migrating - Prepare a task for a cgroup migration
|
|
* @ctx: migration being prepared
|
|
*
|
|
* A task's sched must match its cgroup's owner, so a migration that crosses a
|
|
* sched boundary re-homes the task once committed. Run the fallible part here,
|
|
* before the migration commits: initialize the task for the destination sched.
|
|
* A rejection fails the cgroup.procs write.
|
|
*/
|
|
static s32 scx_cgroup_task_migrating(struct cgroup_task_migrate_ctx *ctx)
|
|
{
|
|
struct task_struct *p = ctx->task;
|
|
struct scx_sched *to;
|
|
int ret;
|
|
|
|
/*
|
|
* Cleared under scx_cgroup_lock() before root disable starts tearing
|
|
* down tasks. As cgroup_mutex is held, a set flag guarantees that the
|
|
* teardown loop is not running concurrently.
|
|
*/
|
|
if (!scx_cgroup_enabled)
|
|
return NOTIFY_OK;
|
|
|
|
to = scx_cgroup_sched(ctx->dst_dcgrp);
|
|
if (scx_task_on_sched(to, p))
|
|
return NOTIFY_OK;
|
|
|
|
ret = __scx_init_task(to, p, ctx->dst_dcgrp, false);
|
|
if (ret)
|
|
return notifier_from_errno(ret);
|
|
|
|
return NOTIFY_OK;
|
|
}
|
|
|
|
/**
|
|
* scx_cgroup_task_migrated - Re-home a task that changed cgroups
|
|
* @ctx: committed migration
|
|
*
|
|
* Move the task to its new cgroup's sched, which scx_cgroup_task_migrating()
|
|
* already initialized it for. Can't fail.
|
|
*
|
|
* This is safe against all phases of the destination sched's destruction. A
|
|
* disable resets cgroup ownership to the parent and re-homes tasks in one
|
|
* scx_cgroup_lock() section. If that section already ran, the destination would
|
|
* be the parent. Otherwise, the re-home loop is still ahead and guaranteed to
|
|
* visit the task, now in the destination cgroup.
|
|
*/
|
|
static void scx_cgroup_task_migrated(struct cgroup_task_migrate_ctx *ctx)
|
|
{
|
|
struct task_struct *p = ctx->task;
|
|
struct scx_sched *to;
|
|
struct rq *rq;
|
|
struct rq_flags rf;
|
|
|
|
if (!scx_cgroup_enabled)
|
|
return;
|
|
|
|
to = scx_cgroup_sched(ctx->dst_dcgrp);
|
|
if (scx_task_on_sched(to, p))
|
|
return;
|
|
|
|
rq = task_rq_lock(p, &rf);
|
|
scx_rehome_task(to, p);
|
|
task_rq_unlock(rq, p, &rf);
|
|
}
|
|
|
|
/**
|
|
* scx_cgroup_task_migrate_canceled - Undo migration preparation
|
|
* @ctx: canceled migration
|
|
*
|
|
* The migration failed after scx_cgroup_task_migrating() initialized the task
|
|
* for the destination sched. The task stays on its current sched in the source
|
|
* cgroup. Undo the destination's init.
|
|
*/
|
|
static void scx_cgroup_task_migrate_canceled(struct cgroup_task_migrate_ctx *ctx)
|
|
{
|
|
struct task_struct *p = ctx->task;
|
|
struct scx_sched *to;
|
|
struct rq *rq;
|
|
struct rq_flags rf;
|
|
|
|
if (!scx_cgroup_enabled)
|
|
return;
|
|
|
|
to = scx_cgroup_sched(ctx->dst_dcgrp);
|
|
if (scx_task_on_sched(to, p))
|
|
return;
|
|
|
|
rq = task_rq_lock(p, &rf);
|
|
scx_sub_init_cancel_task(to, p);
|
|
task_rq_unlock(rq, p, &rf);
|
|
}
|
|
|
|
static s32 scx_cgroup_lifetime_notify(struct notifier_block *nb,
|
|
unsigned long action, void *data)
|
|
{
|
|
struct cgroup *cgrp = data;
|
|
struct cgroup *parent = cgroup_parent(cgrp);
|
|
struct scx_sched *sch;
|
|
|
|
if (!cgroup_on_dfl(cgrp))
|
|
return NOTIFY_OK;
|
|
|
|
switch (action) {
|
|
case CGROUP_LIFETIME_ONLINE:
|
|
/* inherit ->scx_sched from $parent */
|
|
if (parent)
|
|
rcu_assign_pointer(cgrp->scx_sched, scx_cgroup_sched(parent));
|
|
break;
|
|
case CGROUP_LIFETIME_OFFLINE:
|
|
/* if there is a sched attached, shoot it down */
|
|
sch = scx_cgroup_sched(cgrp);
|
|
if (sch && sch->cgrp == cgrp)
|
|
scx_exit(sch, SCX_EXIT_UNREG_KERN,
|
|
SCX_ECODE_RSN_CGROUP_OFFLINE,
|
|
"cgroup %llu going offline", cgroup_id(cgrp));
|
|
break;
|
|
}
|
|
|
|
return NOTIFY_OK;
|
|
}
|
|
|
|
static struct notifier_block scx_cgroup_lifetime_nb = {
|
|
.notifier_call = scx_cgroup_lifetime_notify,
|
|
};
|
|
|
|
static s32 scx_cgroup_task_notify(struct notifier_block *nb,
|
|
unsigned long action, void *data)
|
|
{
|
|
struct cgroup_task_migrate_ctx *ctx = data;
|
|
|
|
switch (action) {
|
|
case CGROUP_TASK_MIGRATING:
|
|
return scx_cgroup_task_migrating(ctx);
|
|
case CGROUP_TASK_MIGRATED:
|
|
scx_cgroup_task_migrated(ctx);
|
|
break;
|
|
case CGROUP_TASK_MIGRATE_CANCELED:
|
|
scx_cgroup_task_migrate_canceled(ctx);
|
|
break;
|
|
}
|
|
|
|
return NOTIFY_OK;
|
|
}
|
|
|
|
static struct notifier_block scx_cgroup_task_nb = {
|
|
.notifier_call = scx_cgroup_task_notify,
|
|
};
|
|
|
|
static s32 __init scx_cgroup_notifier_init(void)
|
|
{
|
|
s32 ret;
|
|
|
|
ret = blocking_notifier_chain_register(&cgroup_lifetime_notifier,
|
|
&scx_cgroup_lifetime_nb);
|
|
if (ret)
|
|
return ret;
|
|
|
|
return blocking_notifier_chain_register(&cgroup_task_notifier,
|
|
&scx_cgroup_task_nb);
|
|
}
|
|
core_initcall(scx_cgroup_notifier_init);
|
|
|
|
static void scx_pstack_recursion(struct bpf_prog *prog, const char *op)
|
|
{
|
|
struct scx_sched *sch;
|
|
|
|
guard(rcu)();
|
|
sch = scx_prog_sched(prog->aux);
|
|
if (unlikely(!sch))
|
|
return;
|
|
|
|
scx_error(sch, "%s recursion detected", op);
|
|
}
|
|
|
|
void scx_pstack_recursion_on_dispatch(struct bpf_prog *prog)
|
|
{
|
|
scx_pstack_recursion(prog, "dispatch");
|
|
}
|
|
|
|
void scx_pstack_recursion_on_caps_updated(struct bpf_prog *prog)
|
|
{
|
|
scx_pstack_recursion(prog, "sub_caps_updated");
|
|
}
|
|
|
|
__bpf_kfunc_start_defs();
|
|
|
|
/**
|
|
* scx_bpf_sub_dispatch - Trigger dispatching on a child scheduler
|
|
* @cgroup_id: cgroup ID of the child scheduler to dispatch
|
|
* @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs
|
|
*
|
|
* Allows a parent scheduler to trigger dispatching on one of its direct
|
|
* child schedulers. The child scheduler runs its dispatch operation to
|
|
* move tasks from dispatch queues to the local runqueue.
|
|
*
|
|
* Returns: true on success, false if cgroup_id is invalid, not a direct
|
|
* child, or caller lacks dispatch permission.
|
|
*/
|
|
__bpf_kfunc bool scx_bpf_sub_dispatch(u64 cgroup_id, const struct bpf_prog_aux *aux)
|
|
{
|
|
struct rq *rq = scx_locked_rq();
|
|
struct scx_sched *parent, *child;
|
|
|
|
guard(rcu)();
|
|
parent = scx_prog_sched(aux);
|
|
if (unlikely(!parent))
|
|
return false;
|
|
|
|
child = scx_find_sub_sched(cgroup_id);
|
|
|
|
if (unlikely(!child))
|
|
return false;
|
|
|
|
if (unlikely(scx_parent(child) != parent)) {
|
|
scx_error(parent, "trying to dispatch a distant sub-sched on cgroup %llu",
|
|
cgroup_id);
|
|
return false;
|
|
}
|
|
|
|
/*
|
|
* Skip a child that does not effectively hold the base cap on this cpu:
|
|
* its inserts would only be rejected. ecaps are synced at the top of
|
|
* dispatch_one() before dispatch, so this reflects the in-effect state.
|
|
*/
|
|
if (scx_missing_caps(child, cpu_of(rq), SCX_CAP_BASE))
|
|
return false;
|
|
|
|
return scx_dispatch_sched(child, rq, rq->scx.sub_dispatch_prev, true) !=
|
|
SCX_DSP_NONE;
|
|
}
|
|
|
|
/* Validate common inputs. On success, *parent_out and *child_out are set. */
|
|
static s32 sub_cap_preamble(u64 cgroup_id, u64 caps, const struct bpf_prog_aux *aux,
|
|
struct scx_sched **parent_out, struct scx_sched **child_out)
|
|
{
|
|
struct scx_sched *parent, *child;
|
|
|
|
parent = scx_prog_sched(aux);
|
|
if (unlikely(!parent))
|
|
return -ENODEV;
|
|
|
|
if (!scx_is_cid_type()) {
|
|
scx_error(parent, "sub-cap kfuncs require a cid-form scheduler");
|
|
return -EOPNOTSUPP;
|
|
}
|
|
|
|
child = scx_find_sub_sched(cgroup_id);
|
|
if (unlikely(!child))
|
|
return -ENODEV;
|
|
|
|
if (unlikely(scx_parent(child) != parent)) {
|
|
scx_error(parent, "%s: sub-%llu is not a direct child",
|
|
parent->cgrp_path, cgroup_id);
|
|
return -EINVAL;
|
|
}
|
|
|
|
if (unlikely(caps & ~__SCX_CAP_ALL)) {
|
|
scx_error(parent, "invalid caps 0x%llx", caps);
|
|
return -EINVAL;
|
|
}
|
|
|
|
*parent_out = parent;
|
|
*child_out = child;
|
|
return 0;
|
|
}
|
|
|
|
/**
|
|
* scx_bpf_sub_grant - Grant @caps on a cmask's cids to a direct child
|
|
* @cgroup_id: cgroup id of the direct child sub-sched
|
|
* @caps: bitmask of SCX_CAP_* to grant
|
|
* @cmask__arena: cid cmask to grant @caps on
|
|
* @denied_out__arena__nullable: optional cmask accumulating refused cids
|
|
* @aux: implicit BPF argument
|
|
*
|
|
* A cid in @cmask__arena is granted to the child only if the parent holds every
|
|
* requested cap on it. Refused cids are OR'd into the denied mask when
|
|
* provided. Refusals outside the denied mask's range are not recorded.
|
|
*
|
|
* All-or-nothing keeps the caller-visible result binary per cid, so the denied
|
|
* mask is one mask to interpret rather than a per-cap matrix.
|
|
*
|
|
* Return 0 on full success, -EPERM if any cid was refused, or a negative
|
|
* errno on other failures.
|
|
*/
|
|
__bpf_kfunc s32 scx_bpf_sub_grant(u64 cgroup_id, u64 caps,
|
|
const struct scx_cmask *cmask__arena,
|
|
struct scx_cmask *denied_out__arena__nullable,
|
|
const struct bpf_prog_aux *aux)
|
|
{
|
|
struct scx_cmask_ref ref, denied_ref;
|
|
struct scx_sched *parent, *child;
|
|
bool any_denied = false;
|
|
LIST_HEAD(to_deliver);
|
|
s32 si, ret;
|
|
|
|
guard(irqsave)();
|
|
|
|
ret = sub_cap_preamble(cgroup_id, caps, aux, &parent, &child);
|
|
if (ret)
|
|
return ret;
|
|
|
|
ret = scx_cmask_ref_init(parent, cmask__arena, &ref);
|
|
if (ret) {
|
|
scx_error(parent, "invalid cmask (%d)", ret);
|
|
return ret;
|
|
}
|
|
|
|
if (denied_out__arena__nullable) {
|
|
ret = scx_cmask_ref_init(parent, denied_out__arena__nullable, &denied_ref);
|
|
if (ret) {
|
|
scx_error(parent, "invalid denied_out (%d)", ret);
|
|
return ret;
|
|
}
|
|
}
|
|
|
|
/* apply the grant one shard at a time */
|
|
for (si = ref.shard_first; si < ref.shard_end; si++) {
|
|
SCX_CMASK_DEFINE_SHARD(slice, 0, SCX_CID_SHARD_MAX_CPUS);
|
|
struct scx_pshard *pps = parent->pshard[si];
|
|
struct scx_pshard *cps = child->pshard[si];
|
|
u64 granted_caps = 0;
|
|
u32 cap_bit;
|
|
|
|
scx_cmask_ref_shard(&ref, si, slice);
|
|
if (scx_cmask_empty(slice))
|
|
continue;
|
|
|
|
SCX_CMASK_DEFINE_SHARD(granted_cids, slice->base, slice->nr_cids);
|
|
SCX_CMASK_DEFINE_SHARD(changed_cids, slice->base, slice->nr_cids);
|
|
SCX_CMASK_DEFINE_SHARD(delta, slice->base, slice->nr_cids);
|
|
|
|
scx_cmask_copy(granted_cids, slice);
|
|
|
|
scoped_guard (raw_spinlock, &pps->lock) {
|
|
guard(raw_spinlock_nested)(&cps->lock);
|
|
|
|
/*
|
|
* Narrow granted_cids to cids the parent holds every
|
|
* requested cap on. All-or-nothing per cid.
|
|
*/
|
|
scx_for_each_cap_bit(cap_bit, caps)
|
|
scx_cmask_and(granted_cids, &pps->caps[cap_bit].cmask);
|
|
|
|
/*
|
|
* For each requested cap, fold the newly-set cids into
|
|
* the child and accumulate the delta.
|
|
*/
|
|
scx_for_each_cap_bit(cap_bit, caps) {
|
|
struct scx_cmask *ccm = &cps->caps[cap_bit].cmask;
|
|
|
|
scx_cmask_copy(delta, granted_cids);
|
|
scx_cmask_andnot(delta, ccm);
|
|
if (scx_cmask_empty(delta))
|
|
continue;
|
|
|
|
scx_cmask_or(ccm, delta);
|
|
scx_cmask_or(changed_cids, delta);
|
|
granted_caps |= BIT_U64(cap_bit);
|
|
}
|
|
|
|
if (granted_caps) {
|
|
s32 cid;
|
|
|
|
caps_updated_record(cps, changed_cids, granted_caps,
|
|
&to_deliver);
|
|
/*
|
|
* The sync arms an update_idle() re-notify if
|
|
* the cid gains baseline access, so the holder
|
|
* learns of an already-idle cid.
|
|
*/
|
|
scx_cmask_for_each_cid(cid, changed_cids)
|
|
queue_sync_ecaps(child, cid);
|
|
}
|
|
}
|
|
|
|
/* record cids that didn't make it into the denied mask */
|
|
if (!scx_cmask_subset(slice, granted_cids)) {
|
|
any_denied = true;
|
|
if (denied_out__arena__nullable) {
|
|
SCX_CMASK_DEFINE_SHARD(denied, slice->base, slice->nr_cids);
|
|
|
|
scx_cmask_copy(denied, slice);
|
|
scx_cmask_andnot(denied, granted_cids);
|
|
scx_cmask_ref_or(&denied_ref, denied);
|
|
}
|
|
}
|
|
}
|
|
|
|
caps_updated_deliver(&to_deliver);
|
|
|
|
return any_denied ? -EPERM : 0;
|
|
}
|
|
|
|
/**
|
|
* scx_bpf_sub_revoke - Revoke @caps on a cmask's cids from a direct child
|
|
* @cgroup_id: cgroup id of the direct child sub-sched
|
|
* @caps: bitmask of SCX_CAP_* to revoke
|
|
* @cmask__arena: cid cmask to revoke @caps on
|
|
* @aux: implicit BPF argument
|
|
*
|
|
* Clear @caps bits on @cmask__arena from the child named by @cgroup_id and all
|
|
* its descendants. The origin parent's pshard lock is held across the subtree
|
|
* walk so a concurrent grant from the origin parent observes the revoked state.
|
|
*/
|
|
__bpf_kfunc void scx_bpf_sub_revoke(u64 cgroup_id, u64 caps,
|
|
const struct scx_cmask *cmask__arena,
|
|
const struct bpf_prog_aux *aux)
|
|
{
|
|
struct scx_cmask_ref ref;
|
|
struct scx_sched *parent, *child, *pos;
|
|
LIST_HEAD(to_deliver);
|
|
s32 si, ret;
|
|
|
|
guard(irqsave)();
|
|
|
|
if (sub_cap_preamble(cgroup_id, caps, aux, &parent, &child))
|
|
return;
|
|
|
|
ret = scx_cmask_ref_init(parent, cmask__arena, &ref);
|
|
if (ret) {
|
|
scx_error(parent, "invalid cmask (%d)", ret);
|
|
return;
|
|
}
|
|
|
|
/* per-shard, walk child's subtree and clear @caps */
|
|
for (si = ref.shard_first; si < ref.shard_end; si++) {
|
|
SCX_CMASK_DEFINE_SHARD(slice, 0, SCX_CID_SHARD_MAX_CPUS);
|
|
|
|
scx_cmask_ref_shard(&ref, si, slice);
|
|
if (scx_cmask_empty(slice))
|
|
continue;
|
|
|
|
/*
|
|
* Pre-order with subtree skip: a descendant that cleared
|
|
* nothing means no descendant of it can hold @caps on these
|
|
* cids either.
|
|
*/
|
|
guard(raw_spinlock)(&parent->pshard[si]->lock);
|
|
pos = scx_next_descendant_pre(NULL, child);
|
|
while (pos) {
|
|
struct scx_pshard *ps = pos->pshard[si];
|
|
SCX_CMASK_DEFINE_SHARD(changed_cids, slice->base, slice->nr_cids);
|
|
SCX_CMASK_DEFINE_SHARD(delta, slice->base, slice->nr_cids);
|
|
u64 revoked_caps = 0;
|
|
u32 cap_bit;
|
|
|
|
scoped_guard (raw_spinlock_nested, &ps->lock) {
|
|
/*
|
|
* For each cap, clear lost cids and accumulate
|
|
* the per-cap diff for notification.
|
|
*/
|
|
scx_for_each_cap_bit(cap_bit, caps) {
|
|
struct scx_cmask *cm = &ps->caps[cap_bit].cmask;
|
|
|
|
scx_cmask_copy(delta, cm);
|
|
scx_cmask_and(delta, slice);
|
|
if (scx_cmask_empty(delta))
|
|
continue;
|
|
|
|
scx_cmask_andnot(cm, delta);
|
|
scx_cmask_or(changed_cids, delta);
|
|
revoked_caps |= BIT_U64(cap_bit);
|
|
}
|
|
|
|
if (revoked_caps) {
|
|
s32 cid;
|
|
|
|
caps_updated_record(ps, changed_cids, revoked_caps,
|
|
&to_deliver);
|
|
scx_cmask_for_each_cid(cid, changed_cids)
|
|
queue_sync_ecaps(pos, cid);
|
|
}
|
|
}
|
|
|
|
if (revoked_caps)
|
|
pos = scx_next_descendant_pre(pos, child);
|
|
else
|
|
pos = scx_skip_subtree_pre(pos, child);
|
|
}
|
|
}
|
|
|
|
caps_updated_deliver(&to_deliver);
|
|
}
|
|
|
|
/**
|
|
* scx_bpf_sub_caps - Read self's or a direct child's cap cmasks
|
|
* @cgroup_id: 0 for self, or a direct child's cgroup id
|
|
* @caps: one or more SCX_CAP_* bits
|
|
* @out__arena: cmask to receive the union of @caps within its range
|
|
* @aux: implicit BPF argument
|
|
*
|
|
* Read the cap cmasks granted on each cid for self (@cgroup_id 0) or a direct
|
|
* child - the literal granted set. A sched can read only itself or a direct
|
|
* child.
|
|
*
|
|
* Return 0, -ENODEV if @cgroup_id names no direct child, or -EINVAL on bad
|
|
* inputs.
|
|
*/
|
|
__bpf_kfunc s32 scx_bpf_sub_caps(u64 cgroup_id, u64 caps, struct scx_cmask *out__arena,
|
|
const struct bpf_prog_aux *aux)
|
|
{
|
|
struct scx_cmask_ref ref;
|
|
struct scx_sched *sch, *target;
|
|
struct scx_pshard **pshard;
|
|
s32 si, ret;
|
|
|
|
guard(irqsave)();
|
|
|
|
sch = scx_prog_sched(aux);
|
|
if (unlikely(!sch))
|
|
return -ENODEV;
|
|
|
|
if (!scx_is_cid_type()) {
|
|
scx_error(sch, "sub-cap kfuncs require a cid-form scheduler");
|
|
return -EOPNOTSUPP;
|
|
}
|
|
|
|
if (unlikely(caps & ~__SCX_CAP_ALL)) {
|
|
scx_error(sch, "invalid caps 0x%llx", caps);
|
|
return -EINVAL;
|
|
}
|
|
|
|
/* @cgroup_id 0 reads self, otherwise a direct child */
|
|
if (cgroup_id) {
|
|
target = scx_find_sub_sched(cgroup_id);
|
|
if (unlikely(!target))
|
|
return -ENODEV;
|
|
if (unlikely(scx_parent(target) != sch)) {
|
|
scx_error(sch, "%s: sub-%llu is not a direct child",
|
|
sch->cgrp_path, cgroup_id);
|
|
return -EINVAL;
|
|
}
|
|
} else {
|
|
target = sch;
|
|
}
|
|
|
|
/*
|
|
* The target's caps storage may not be set up yet (e.g. a self-read
|
|
* during ops.init_cids()). Pairs with the publish in
|
|
* scx_alloc_pshards(): a non-NULL pshard has every element set and the
|
|
* acquire also orders the cid table reads below against it.
|
|
*/
|
|
pshard = smp_load_acquire(&target->pshard);
|
|
if (unlikely(!pshard)) {
|
|
scx_error(sch, "scx_bpf_sub_caps() called before caps storage is initialized");
|
|
return -ENODEV;
|
|
}
|
|
|
|
ret = scx_cmask_ref_init(sch, out__arena, &ref);
|
|
if (ret) {
|
|
scx_error(sch, "invalid out (%d)", ret);
|
|
return ret;
|
|
}
|
|
|
|
for (si = ref.shard_first; si < ref.shard_end; si++) {
|
|
const struct scx_cid_shard *shard =
|
|
&rcu_dereference_all(scx_cid_shard_ranges)[si];
|
|
SCX_CMASK_DEFINE_SHARD(local_out, shard->base_cid, shard->nr_cids);
|
|
u32 cap_bit;
|
|
|
|
scx_for_each_cap_bit(cap_bit, caps)
|
|
scx_cmask_or(local_out, &pshard[si]->caps[cap_bit].cmask);
|
|
scx_cmask_ref_copy(&ref, local_out);
|
|
}
|
|
return 0;
|
|
}
|
|
|
|
/**
|
|
* scx_bpf_sub_kill_bstr - Kill a direct child sub-scheduler
|
|
* @cgroup_id: cgroup id of the direct child to kill
|
|
* @fmt: reason message format string
|
|
* @data: format string parameters packaged using ___bpf_fill() macro
|
|
* @data__sz: @data len, must end in '__sz' for the verifier
|
|
* @aux: implicit BPF argument to access bpf_prog_aux hidden from BPF progs
|
|
*
|
|
* Evict a direct child sub-scheduler, disabling it with the supplied reason.
|
|
* The child and its subtree are torn down asynchronously through the usual
|
|
* disable path.
|
|
*
|
|
* Unlike scx_bpf_exit(), no exit code is taken: the child is a separate
|
|
* scheduler with its own exit-code semantics, so a code chosen by the parent
|
|
* would have no defined meaning. The reason string carries the intent.
|
|
*
|
|
* Return 0 on success or -ENODEV if @cgroup_id names no sub-scheduler, which
|
|
* can race with the child detaching on its own and so is not a scheduler error.
|
|
* Naming a sched that exists but is not a direct child aborts the parent.
|
|
*/
|
|
__printf(2, 0)
|
|
__bpf_kfunc s32 scx_bpf_sub_kill_bstr(u64 cgroup_id, char *fmt,
|
|
unsigned long long *data, u32 data__sz,
|
|
const struct bpf_prog_aux *aux)
|
|
{
|
|
struct scx_sched *parent, *child;
|
|
|
|
guard(rcu)();
|
|
|
|
parent = scx_prog_sched(aux);
|
|
if (unlikely(!parent))
|
|
return -ENODEV;
|
|
|
|
if (!scx_is_cid_type()) {
|
|
scx_error(parent, "sub-cap kfuncs require a cid-form scheduler");
|
|
return -EOPNOTSUPP;
|
|
}
|
|
|
|
child = scx_find_sub_sched(cgroup_id);
|
|
if (unlikely(!child))
|
|
return -ENODEV;
|
|
|
|
if (unlikely(scx_parent(child) != parent)) {
|
|
scx_error(parent, "%s: sub-%llu is not a direct child",
|
|
parent->cgrp_path, cgroup_id);
|
|
return -EINVAL;
|
|
}
|
|
|
|
scx_exit_bstr(child, SCX_EXIT_PARENT_KILL, 0, parent, fmt, data, data__sz);
|
|
return 0;
|
|
}
|
|
|
|
__bpf_kfunc_end_defs();
|
|
|
|
#else /* !CONFIG_EXT_SUB_SCHED */
|
|
|
|
__bpf_kfunc_start_defs();
|
|
|
|
__bpf_kfunc s32 scx_bpf_sub_grant(u64 cgroup_id, u64 caps,
|
|
const struct scx_cmask *cmask__arena,
|
|
struct scx_cmask *denied_out__arena__nullable,
|
|
const struct bpf_prog_aux *aux)
|
|
{
|
|
return -EOPNOTSUPP;
|
|
}
|
|
|
|
__bpf_kfunc void scx_bpf_sub_revoke(u64 cgroup_id, u64 caps,
|
|
const struct scx_cmask *cmask__arena,
|
|
const struct bpf_prog_aux *aux)
|
|
{
|
|
}
|
|
|
|
__bpf_kfunc s32 scx_bpf_sub_caps(u64 cgroup_id, u64 caps, struct scx_cmask *out__arena,
|
|
const struct bpf_prog_aux *aux)
|
|
{
|
|
return -EOPNOTSUPP;
|
|
}
|
|
|
|
__bpf_kfunc s32 scx_bpf_sub_kill_bstr(u64 cgroup_id, char *fmt,
|
|
unsigned long long *data, u32 data__sz,
|
|
const struct bpf_prog_aux *aux)
|
|
{
|
|
return -EOPNOTSUPP;
|
|
}
|
|
|
|
__bpf_kfunc_end_defs();
|
|
|
|
#endif /* CONFIG_EXT_SUB_SCHED */
|