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	sched: Add core wide task selection and scheduling
Instead of only selecting a local task, select a task for all SMT siblings for every reschedule on the core (irrespective which logical CPU does the reschedule). Signed-off-by: Peter Zijlstra (Intel) <peterz@infradead.org> Tested-by: Don Hiatt <dhiatt@digitalocean.com> Tested-by: Hongyu Ning <hongyu.ning@linux.intel.com> Tested-by: Vincent Guittot <vincent.guittot@linaro.org> Link: https://lkml.kernel.org/r/20210422123308.557559654@infradead.org
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					 2 changed files with 305 additions and 2 deletions
				
			
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			@ -5282,7 +5282,7 @@ static void put_prev_task_balance(struct rq *rq, struct task_struct *prev,
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 * Pick up the highest-prio task:
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 */
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static inline struct task_struct *
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pick_next_task(struct rq *rq, struct task_struct *prev, struct rq_flags *rf)
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__pick_next_task(struct rq *rq, struct task_struct *prev, struct rq_flags *rf)
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{
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	const struct sched_class *class;
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	struct task_struct *p;
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			@ -5323,6 +5323,294 @@ pick_next_task(struct rq *rq, struct task_struct *prev, struct rq_flags *rf)
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}
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#ifdef CONFIG_SCHED_CORE
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static inline bool is_task_rq_idle(struct task_struct *t)
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{
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	return (task_rq(t)->idle == t);
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}
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static inline bool cookie_equals(struct task_struct *a, unsigned long cookie)
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{
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	return is_task_rq_idle(a) || (a->core_cookie == cookie);
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}
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static inline bool cookie_match(struct task_struct *a, struct task_struct *b)
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{
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	if (is_task_rq_idle(a) || is_task_rq_idle(b))
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		return true;
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	return a->core_cookie == b->core_cookie;
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}
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// XXX fairness/fwd progress conditions
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/*
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 * Returns
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 * - NULL if there is no runnable task for this class.
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 * - the highest priority task for this runqueue if it matches
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 *   rq->core->core_cookie or its priority is greater than max.
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 * - Else returns idle_task.
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 */
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static struct task_struct *
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pick_task(struct rq *rq, const struct sched_class *class, struct task_struct *max)
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{
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	struct task_struct *class_pick, *cookie_pick;
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	unsigned long cookie = rq->core->core_cookie;
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	class_pick = class->pick_task(rq);
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	if (!class_pick)
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		return NULL;
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	if (!cookie) {
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		/*
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		 * If class_pick is tagged, return it only if it has
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		 * higher priority than max.
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		 */
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		if (max && class_pick->core_cookie &&
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		    prio_less(class_pick, max))
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			return idle_sched_class.pick_task(rq);
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		return class_pick;
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	}
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	/*
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	 * If class_pick is idle or matches cookie, return early.
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	 */
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	if (cookie_equals(class_pick, cookie))
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		return class_pick;
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	cookie_pick = sched_core_find(rq, cookie);
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	/*
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	 * If class > max && class > cookie, it is the highest priority task on
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	 * the core (so far) and it must be selected, otherwise we must go with
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	 * the cookie pick in order to satisfy the constraint.
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	 */
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	if (prio_less(cookie_pick, class_pick) &&
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	    (!max || prio_less(max, class_pick)))
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		return class_pick;
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	return cookie_pick;
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}
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static struct task_struct *
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pick_next_task(struct rq *rq, struct task_struct *prev, struct rq_flags *rf)
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{
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	struct task_struct *next, *max = NULL;
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	const struct sched_class *class;
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	const struct cpumask *smt_mask;
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	bool need_sync;
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	int i, j, cpu;
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	if (!sched_core_enabled(rq))
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		return __pick_next_task(rq, prev, rf);
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	cpu = cpu_of(rq);
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	/* Stopper task is switching into idle, no need core-wide selection. */
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	if (cpu_is_offline(cpu)) {
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		/*
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		 * Reset core_pick so that we don't enter the fastpath when
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		 * coming online. core_pick would already be migrated to
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		 * another cpu during offline.
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		 */
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		rq->core_pick = NULL;
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		return __pick_next_task(rq, prev, rf);
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	}
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	/*
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	 * If there were no {en,de}queues since we picked (IOW, the task
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	 * pointers are all still valid), and we haven't scheduled the last
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	 * pick yet, do so now.
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	 *
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	 * rq->core_pick can be NULL if no selection was made for a CPU because
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	 * it was either offline or went offline during a sibling's core-wide
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	 * selection. In this case, do a core-wide selection.
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	 */
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	if (rq->core->core_pick_seq == rq->core->core_task_seq &&
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	    rq->core->core_pick_seq != rq->core_sched_seq &&
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	    rq->core_pick) {
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		WRITE_ONCE(rq->core_sched_seq, rq->core->core_pick_seq);
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		next = rq->core_pick;
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		if (next != prev) {
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			put_prev_task(rq, prev);
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			set_next_task(rq, next);
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		}
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		rq->core_pick = NULL;
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		return next;
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	}
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	put_prev_task_balance(rq, prev, rf);
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	smt_mask = cpu_smt_mask(cpu);
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	/*
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	 * core->core_task_seq, core->core_pick_seq, rq->core_sched_seq
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	 *
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	 * @task_seq guards the task state ({en,de}queues)
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	 * @pick_seq is the @task_seq we did a selection on
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	 * @sched_seq is the @pick_seq we scheduled
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	 *
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	 * However, preemptions can cause multiple picks on the same task set.
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	 * 'Fix' this by also increasing @task_seq for every pick.
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	 */
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	rq->core->core_task_seq++;
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	need_sync = !!rq->core->core_cookie;
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	/* reset state */
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	rq->core->core_cookie = 0UL;
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	for_each_cpu(i, smt_mask) {
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		struct rq *rq_i = cpu_rq(i);
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		rq_i->core_pick = NULL;
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		if (rq_i->core_forceidle) {
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			need_sync = true;
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			rq_i->core_forceidle = false;
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		}
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		if (i != cpu)
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			update_rq_clock(rq_i);
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	}
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	/*
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	 * Try and select tasks for each sibling in decending sched_class
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	 * order.
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	 */
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	for_each_class(class) {
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again:
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		for_each_cpu_wrap(i, smt_mask, cpu) {
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			struct rq *rq_i = cpu_rq(i);
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			struct task_struct *p;
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			if (rq_i->core_pick)
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				continue;
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			/*
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			 * If this sibling doesn't yet have a suitable task to
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			 * run; ask for the most elegible task, given the
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			 * highest priority task already selected for this
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			 * core.
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			 */
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			p = pick_task(rq_i, class, max);
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			if (!p) {
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				/*
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				 * If there weren't no cookies; we don't need to
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				 * bother with the other siblings.
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				 * If the rest of the core is not running a tagged
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				 * task, i.e.  need_sync == 0, and the current CPU
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				 * which called into the schedule() loop does not
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				 * have any tasks for this class, skip selecting for
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				 * other siblings since there's no point. We don't skip
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				 * for RT/DL because that could make CFS force-idle RT.
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				 */
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				if (i == cpu && !need_sync && class == &fair_sched_class)
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					goto next_class;
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				continue;
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			}
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			/*
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			 * Optimize the 'normal' case where there aren't any
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			 * cookies and we don't need to sync up.
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			 */
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			if (i == cpu && !need_sync && !p->core_cookie) {
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				next = p;
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				goto done;
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			}
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			rq_i->core_pick = p;
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			/*
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			 * If this new candidate is of higher priority than the
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			 * previous; and they're incompatible; we need to wipe
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			 * the slate and start over. pick_task makes sure that
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			 * p's priority is more than max if it doesn't match
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			 * max's cookie.
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			 *
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			 * NOTE: this is a linear max-filter and is thus bounded
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			 * in execution time.
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			 */
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			if (!max || !cookie_match(max, p)) {
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				struct task_struct *old_max = max;
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				rq->core->core_cookie = p->core_cookie;
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				max = p;
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				if (old_max) {
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					for_each_cpu(j, smt_mask) {
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						if (j == i)
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							continue;
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						cpu_rq(j)->core_pick = NULL;
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					}
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					goto again;
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				} else {
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					/*
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					 * Once we select a task for a cpu, we
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					 * should not be doing an unconstrained
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					 * pick because it might starve a task
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					 * on a forced idle cpu.
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					 */
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					need_sync = true;
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				}
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			}
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		}
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next_class:;
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	}
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	rq->core->core_pick_seq = rq->core->core_task_seq;
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	next = rq->core_pick;
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	rq->core_sched_seq = rq->core->core_pick_seq;
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	/* Something should have been selected for current CPU */
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	WARN_ON_ONCE(!next);
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	/*
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	 * Reschedule siblings
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	 *
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	 * NOTE: L1TF -- at this point we're no longer running the old task and
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	 * sending an IPI (below) ensures the sibling will no longer be running
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	 * their task. This ensures there is no inter-sibling overlap between
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	 * non-matching user state.
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	 */
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	for_each_cpu(i, smt_mask) {
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		struct rq *rq_i = cpu_rq(i);
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		/*
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		 * An online sibling might have gone offline before a task
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		 * could be picked for it, or it might be offline but later
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		 * happen to come online, but its too late and nothing was
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		 * picked for it.  That's Ok - it will pick tasks for itself,
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		 * so ignore it.
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		 */
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		if (!rq_i->core_pick)
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			continue;
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		if (is_task_rq_idle(rq_i->core_pick) && rq_i->nr_running)
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			rq_i->core_forceidle = true;
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		if (i == cpu) {
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			rq_i->core_pick = NULL;
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			continue;
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		}
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		/* Did we break L1TF mitigation requirements? */
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		WARN_ON_ONCE(!cookie_match(next, rq_i->core_pick));
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		if (rq_i->curr == rq_i->core_pick) {
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			rq_i->core_pick = NULL;
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			continue;
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		}
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		resched_curr(rq_i);
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	}
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done:
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	set_next_task(rq, next);
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	return next;
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}
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static inline void sched_core_cpu_starting(unsigned int cpu)
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{
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			@ -5354,6 +5642,12 @@ static inline void sched_core_cpu_starting(unsigned int cpu)
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static inline void sched_core_cpu_starting(unsigned int cpu) {}
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static struct task_struct *
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pick_next_task(struct rq *rq, struct task_struct *prev, struct rq_flags *rf)
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{
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	return __pick_next_task(rq, prev, rf);
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}
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#endif /* CONFIG_SCHED_CORE */
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/*
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			@ -8609,7 +8903,12 @@ void __init sched_init(void)
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#ifdef CONFIG_SCHED_CORE
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		rq->core = NULL;
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		rq->core_pick = NULL;
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		rq->core_enabled = 0;
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		rq->core_tree = RB_ROOT;
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		rq->core_forceidle = false;
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		rq->core_cookie = 0UL;
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#endif
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	}
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			@ -1079,11 +1079,16 @@ struct rq {
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#ifdef CONFIG_SCHED_CORE
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	/* per rq */
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	struct rq		*core;
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	struct task_struct	*core_pick;
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	unsigned int		core_enabled;
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	unsigned int		core_sched_seq;
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	struct rb_root		core_tree;
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	unsigned char		core_forceidle;
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	/* shared state */
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	unsigned int		core_task_seq;
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	unsigned int		core_pick_seq;
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	unsigned long		core_cookie;
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#endif
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};
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			@ -2060,7 +2065,6 @@ static inline void put_prev_task(struct rq *rq, struct task_struct *prev)
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static inline void set_next_task(struct rq *rq, struct task_struct *next)
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{
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	WARN_ON_ONCE(rq->curr != next);
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	next->sched_class->set_next_task(rq, next, false);
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}
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