xref: /linux/kernel/sched/cpufreq_schedutil.c (revision 85671b807f82dae7a88ccfc74e33a8374219841c)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * CPUFreq governor based on scheduler-provided CPU utilization data.
4  *
5  * Copyright (C) 2016, Intel Corporation
6  * Author: Rafael J. Wysocki <rafael.j.wysocki@intel.com>
7  */
8 #include <uapi/linux/sched/types.h>
9 #include "sched.h"
10 
11 #define IOWAIT_BOOST_MIN	(SCHED_CAPACITY_SCALE / 8)
12 
13 struct sugov_tunables {
14 	struct gov_attr_set	attr_set;
15 	unsigned int		rate_limit_us;
16 };
17 
18 struct sugov_policy {
19 	struct cpufreq_policy	*policy;
20 
21 	struct sugov_tunables	*tunables;
22 	struct list_head	tunables_hook;
23 
24 	raw_spinlock_t		update_lock;
25 	u64			last_freq_update_time;
26 	s64			freq_update_delay_ns;
27 	unsigned int		next_freq;
28 	unsigned int		cached_raw_freq;
29 
30 	/* The next fields are only needed if fast switch cannot be used: */
31 	struct			irq_work irq_work;
32 	struct			kthread_work work;
33 	struct			mutex work_lock;
34 	struct			kthread_worker worker;
35 	struct task_struct	*thread;
36 	bool			work_in_progress;
37 
38 	bool			limits_changed;
39 	bool			need_freq_update;
40 };
41 
42 struct sugov_cpu {
43 	struct update_util_data	update_util;
44 	struct sugov_policy	*sg_policy;
45 	unsigned int		cpu;
46 
47 	bool			iowait_boost_pending;
48 	unsigned int		iowait_boost;
49 	u64			last_update;
50 
51 	unsigned long		util;
52 	unsigned long		bw_min;
53 	unsigned long		bw_max;
54 
55 	/* The field below is for single-CPU policies only: */
56 #ifdef CONFIG_NO_HZ_COMMON
57 	unsigned long		saved_idle_calls;
58 #endif
59 };
60 
61 static DEFINE_PER_CPU(struct sugov_cpu, sugov_cpu);
62 
63 /************************ Governor internals ***********************/
64 
sugov_update_rate_limit_us(struct sugov_policy * sg_policy)65 static void sugov_update_rate_limit_us(struct sugov_policy *sg_policy)
66 {
67 	/*
68 	 * Cast rate_limit_us before multiplication to force 64-bit arithmetic.
69 	 * Otherwise, on 32-bit platforms, both operands are converted to
70 	 * 32-bit unsigned long and the multiplication may overflow.
71 	 */
72 	sg_policy->freq_update_delay_ns =
73 		(s64)sg_policy->tunables->rate_limit_us * NSEC_PER_USEC;
74 }
75 
sugov_should_update_freq(struct sugov_policy * sg_policy,u64 time)76 static bool sugov_should_update_freq(struct sugov_policy *sg_policy, u64 time)
77 {
78 	s64 delta_ns;
79 
80 	/*
81 	 * Since cpufreq_update_util() is called with rq->lock held for
82 	 * the @target_cpu, our per-CPU data is fully serialized.
83 	 *
84 	 * However, drivers cannot in general deal with cross-CPU
85 	 * requests, so while get_next_freq() will work, our
86 	 * sugov_update_commit() call may not for the fast switching platforms.
87 	 *
88 	 * Hence stop here for remote requests if they aren't supported
89 	 * by the hardware, as calculating the frequency is pointless if
90 	 * we cannot in fact act on it.
91 	 *
92 	 * This is needed on the slow switching platforms too to prevent CPUs
93 	 * going offline from leaving stale IRQ work items behind.
94 	 */
95 	if (!cpufreq_this_cpu_can_update(sg_policy->policy))
96 		return false;
97 
98 	if (unlikely(READ_ONCE(sg_policy->limits_changed))) {
99 		WRITE_ONCE(sg_policy->limits_changed, false);
100 		sg_policy->need_freq_update = true;
101 
102 		/*
103 		 * The above limits_changed update must occur before the reads
104 		 * of policy limits in cpufreq_driver_resolve_freq() or a policy
105 		 * limits update might be missed, so use a memory barrier to
106 		 * ensure it.
107 		 *
108 		 * This pairs with the write memory barrier in sugov_limits().
109 		 */
110 		smp_mb();
111 
112 		return true;
113 	} else if (sg_policy->need_freq_update) {
114 		/* ignore_dl_rate_limit() wants a new frequency to be found. */
115 		return true;
116 	}
117 
118 	delta_ns = time - sg_policy->last_freq_update_time;
119 
120 	return delta_ns >= sg_policy->freq_update_delay_ns;
121 }
122 
sugov_update_next_freq(struct sugov_policy * sg_policy,u64 time,unsigned int next_freq)123 static bool sugov_update_next_freq(struct sugov_policy *sg_policy, u64 time,
124 				   unsigned int next_freq)
125 {
126 	if (sg_policy->need_freq_update) {
127 		sg_policy->need_freq_update = false;
128 		/*
129 		 * The policy limits have changed, but if the return value of
130 		 * cpufreq_driver_resolve_freq() after applying the new limits
131 		 * is still equal to the previously selected frequency, the
132 		 * driver callback need not be invoked unless the driver
133 		 * specifically wants that to happen on every update of the
134 		 * policy limits.
135 		 */
136 		if (sg_policy->next_freq == next_freq &&
137 		    !cpufreq_driver_test_flags(CPUFREQ_NEED_UPDATE_LIMITS))
138 			return false;
139 	} else if (sg_policy->next_freq == next_freq) {
140 		return false;
141 	}
142 
143 	sg_policy->next_freq = next_freq;
144 	sg_policy->last_freq_update_time = time;
145 
146 	return true;
147 }
148 
sugov_deferred_update(struct sugov_policy * sg_policy)149 static void sugov_deferred_update(struct sugov_policy *sg_policy)
150 {
151 	if (!sg_policy->work_in_progress) {
152 		sg_policy->work_in_progress = true;
153 		irq_work_queue(&sg_policy->irq_work);
154 	}
155 }
156 
157 /**
158  * get_capacity_ref_freq - get the reference frequency that has been used to
159  * correlate frequency and compute capacity for a given cpufreq policy. We use
160  * the CPU managing it for the arch_scale_freq_ref() call in the function.
161  * @policy: the cpufreq policy of the CPU in question.
162  *
163  * Return: the reference CPU frequency to compute a capacity.
164  */
165 static __always_inline
get_capacity_ref_freq(struct cpufreq_policy * policy)166 unsigned long get_capacity_ref_freq(struct cpufreq_policy *policy)
167 {
168 	unsigned int freq = arch_scale_freq_ref(policy->cpu);
169 
170 	if (freq)
171 		return freq;
172 
173 	if (arch_scale_freq_invariant())
174 		return policy->cpuinfo.max_freq;
175 
176 	/*
177 	 * Apply a 25% margin so that we select a higher frequency than
178 	 * the current one before the CPU is fully busy:
179 	 */
180 	return policy->cur + (policy->cur >> 2);
181 }
182 
183 /**
184  * get_next_freq - Compute a new frequency for a given cpufreq policy.
185  * @sg_policy: schedutil policy object to compute the new frequency for.
186  * @util: Current CPU utilization.
187  * @max: CPU capacity.
188  *
189  * If the utilization is frequency-invariant, choose the new frequency to be
190  * proportional to it, that is
191  *
192  * next_freq = C * max_freq * util / max
193  *
194  * Otherwise, approximate the would-be frequency-invariant utilization by
195  * util_raw * (curr_freq / max_freq) which leads to
196  *
197  * next_freq = C * curr_freq * util_raw / max
198  *
199  * Take C = 1.25 for the frequency tipping point at (util / max) = 0.8.
200  *
201  * The lowest driver-supported frequency which is equal or greater than the raw
202  * next_freq (as calculated above) is returned, subject to policy min/max and
203  * cpufreq driver limitations.
204  */
get_next_freq(struct sugov_policy * sg_policy,unsigned long util,unsigned long max)205 static unsigned int get_next_freq(struct sugov_policy *sg_policy,
206 				  unsigned long util, unsigned long max)
207 {
208 	struct cpufreq_policy *policy = sg_policy->policy;
209 	unsigned int freq;
210 
211 	freq = get_capacity_ref_freq(policy);
212 	freq = map_util_freq(util, freq, max);
213 
214 	if (freq == sg_policy->cached_raw_freq && !sg_policy->need_freq_update)
215 		return sg_policy->next_freq;
216 
217 	sg_policy->cached_raw_freq = freq;
218 	return cpufreq_driver_resolve_freq(policy, freq);
219 }
220 
sugov_effective_cpu_perf(int cpu,unsigned long actual,unsigned long min,unsigned long max)221 unsigned long sugov_effective_cpu_perf(int cpu, unsigned long actual,
222 				 unsigned long min,
223 				 unsigned long max)
224 {
225 	/* Add dvfs headroom to actual utilization */
226 	actual = map_util_perf(actual);
227 	/* Actually we don't need to target the max performance */
228 	if (actual < max)
229 		max = actual;
230 
231 	/*
232 	 * Ensure at least minimum performance while providing more compute
233 	 * capacity when possible.
234 	 */
235 	return max(min, max);
236 }
237 
sugov_get_util(struct sugov_cpu * sg_cpu,unsigned long boost)238 static void sugov_get_util(struct sugov_cpu *sg_cpu, unsigned long boost)
239 {
240 	unsigned long min, max, util = scx_cpuperf_target(sg_cpu->cpu);
241 
242 	if (!scx_switched_all())
243 		util += cpu_util_cfs_boost(sg_cpu->cpu);
244 	util = effective_cpu_util(sg_cpu->cpu, util, &min, &max);
245 	util = max(util, boost);
246 	sg_cpu->bw_min = min;
247 	sg_cpu->bw_max = max;
248 	sg_cpu->util = sugov_effective_cpu_perf(sg_cpu->cpu, util, min, max);
249 }
250 
251 /**
252  * sugov_iowait_reset() - Reset the IO boost status of a CPU.
253  * @sg_cpu: the sugov data for the CPU to boost
254  * @time: the update time from the caller
255  * @set_iowait_boost: true if an IO boost has been requested
256  *
257  * The IO wait boost of a task is disabled after a tick since the last update
258  * of a CPU. If a new IO wait boost is requested after more then a tick, then
259  * we enable the boost starting from IOWAIT_BOOST_MIN, which improves energy
260  * efficiency by ignoring sporadic wakeups from IO.
261  */
sugov_iowait_reset(struct sugov_cpu * sg_cpu,u64 time,bool set_iowait_boost)262 static bool sugov_iowait_reset(struct sugov_cpu *sg_cpu, u64 time,
263 			       bool set_iowait_boost)
264 {
265 	s64 delta_ns = time - sg_cpu->last_update;
266 
267 	/* Reset boost only if a tick has elapsed since last request */
268 	if (delta_ns <= TICK_NSEC)
269 		return false;
270 
271 	sg_cpu->iowait_boost = set_iowait_boost ? IOWAIT_BOOST_MIN : 0;
272 	sg_cpu->iowait_boost_pending = set_iowait_boost;
273 
274 	return true;
275 }
276 
277 /**
278  * sugov_iowait_boost() - Updates the IO boost status of a CPU.
279  * @sg_cpu: the sugov data for the CPU to boost
280  * @time: the update time from the caller
281  * @flags: SCHED_CPUFREQ_IOWAIT if the task is waking up after an IO wait
282  *
283  * Each time a task wakes up after an IO operation, the CPU utilization can be
284  * boosted to a certain utilization which doubles at each "frequent and
285  * successive" wakeup from IO, ranging from IOWAIT_BOOST_MIN to the utilization
286  * of the maximum OPP.
287  *
288  * To keep doubling, an IO boost has to be requested at least once per tick,
289  * otherwise we restart from the utilization of the minimum OPP.
290  */
sugov_iowait_boost(struct sugov_cpu * sg_cpu,u64 time,unsigned int flags)291 static void sugov_iowait_boost(struct sugov_cpu *sg_cpu, u64 time,
292 			       unsigned int flags)
293 {
294 	bool set_iowait_boost = flags & SCHED_CPUFREQ_IOWAIT;
295 
296 	/* Reset boost if the CPU appears to have been idle enough */
297 	if (sg_cpu->iowait_boost &&
298 	    sugov_iowait_reset(sg_cpu, time, set_iowait_boost))
299 		return;
300 
301 	/* Boost only tasks waking up after IO */
302 	if (!set_iowait_boost)
303 		return;
304 
305 	/* Ensure boost doubles only one time at each request */
306 	if (sg_cpu->iowait_boost_pending)
307 		return;
308 	sg_cpu->iowait_boost_pending = true;
309 
310 	/* Double the boost at each request */
311 	if (sg_cpu->iowait_boost) {
312 		sg_cpu->iowait_boost =
313 			min_t(unsigned int, sg_cpu->iowait_boost << 1, SCHED_CAPACITY_SCALE);
314 		return;
315 	}
316 
317 	/* First wakeup after IO: start with minimum boost */
318 	sg_cpu->iowait_boost = IOWAIT_BOOST_MIN;
319 }
320 
321 /**
322  * sugov_iowait_apply() - Apply the IO boost to a CPU.
323  * @sg_cpu: the sugov data for the cpu to boost
324  * @time: the update time from the caller
325  * @max_cap: the max CPU capacity
326  *
327  * A CPU running a task which woken up after an IO operation can have its
328  * utilization boosted to speed up the completion of those IO operations.
329  * The IO boost value is increased each time a task wakes up from IO, in
330  * sugov_iowait_boost(), and it's instead decreased by this function,
331  * each time an increase has not been requested (!iowait_boost_pending).
332  *
333  * A CPU which also appears to have been idle for at least one tick has also
334  * its IO boost utilization reset.
335  *
336  * This mechanism is designed to boost high frequently IO waiting tasks, while
337  * being more conservative on tasks which does sporadic IO operations.
338  */
sugov_iowait_apply(struct sugov_cpu * sg_cpu,u64 time,unsigned long max_cap)339 static unsigned long sugov_iowait_apply(struct sugov_cpu *sg_cpu, u64 time,
340 			       unsigned long max_cap)
341 {
342 	/* No boost currently required */
343 	if (!sg_cpu->iowait_boost)
344 		return 0;
345 
346 	/* Reset boost if the CPU appears to have been idle enough */
347 	if (sugov_iowait_reset(sg_cpu, time, false))
348 		return 0;
349 
350 	if (!sg_cpu->iowait_boost_pending) {
351 		/*
352 		 * No boost pending; reduce the boost value.
353 		 */
354 		sg_cpu->iowait_boost >>= 1;
355 		if (sg_cpu->iowait_boost < IOWAIT_BOOST_MIN) {
356 			sg_cpu->iowait_boost = 0;
357 			return 0;
358 		}
359 	}
360 
361 	sg_cpu->iowait_boost_pending = false;
362 
363 	/*
364 	 * sg_cpu->util is already in capacity scale; convert iowait_boost
365 	 * into the same scale so we can compare.
366 	 */
367 	return (sg_cpu->iowait_boost * max_cap) >> SCHED_CAPACITY_SHIFT;
368 }
369 
370 #ifdef CONFIG_NO_HZ_COMMON
sugov_hold_freq(struct sugov_cpu * sg_cpu)371 static bool sugov_hold_freq(struct sugov_cpu *sg_cpu)
372 {
373 	unsigned long idle_calls;
374 	bool ret;
375 
376 	/*
377 	 * The heuristics in this function is for the fair class. For SCX, the
378 	 * performance target comes directly from the BPF scheduler. Let's just
379 	 * follow it.
380 	 */
381 	if (scx_switched_all())
382 		return false;
383 
384 	/* if capped by uclamp_max, always update to be in compliance */
385 	if (uclamp_rq_is_capped(cpu_rq(sg_cpu->cpu)))
386 		return false;
387 
388 	/*
389 	 * Maintain the frequency if the CPU has not been idle recently, as
390 	 * reduction is likely to be premature.
391 	 */
392 	idle_calls = tick_nohz_get_idle_calls_cpu(sg_cpu->cpu);
393 	ret = idle_calls == sg_cpu->saved_idle_calls;
394 
395 	sg_cpu->saved_idle_calls = idle_calls;
396 	return ret;
397 }
398 #else /* !CONFIG_NO_HZ_COMMON: */
sugov_hold_freq(struct sugov_cpu * sg_cpu)399 static inline bool sugov_hold_freq(struct sugov_cpu *sg_cpu) { return false; }
400 #endif /* !CONFIG_NO_HZ_COMMON */
401 
402 /*
403  * Make sugov_should_update_freq() ignore the rate limit when DL
404  * has increased the utilization.
405  */
ignore_dl_rate_limit(struct sugov_cpu * sg_cpu)406 static inline void ignore_dl_rate_limit(struct sugov_cpu *sg_cpu)
407 {
408 	if (cpu_bw_dl(cpu_rq(sg_cpu->cpu)) > sg_cpu->bw_min)
409 		sg_cpu->sg_policy->need_freq_update = true;
410 }
411 
sugov_update_single_common(struct sugov_cpu * sg_cpu,u64 time,unsigned long max_cap,unsigned int flags)412 static inline bool sugov_update_single_common(struct sugov_cpu *sg_cpu,
413 					      u64 time, unsigned long max_cap,
414 					      unsigned int flags)
415 {
416 	unsigned long boost;
417 
418 	sugov_iowait_boost(sg_cpu, time, flags);
419 	sg_cpu->last_update = time;
420 
421 	ignore_dl_rate_limit(sg_cpu);
422 
423 	if (!sugov_should_update_freq(sg_cpu->sg_policy, time))
424 		return false;
425 
426 	boost = sugov_iowait_apply(sg_cpu, time, max_cap);
427 	sugov_get_util(sg_cpu, boost);
428 
429 	return true;
430 }
431 
sugov_update_single_freq(struct update_util_data * hook,u64 time,unsigned int flags)432 static void sugov_update_single_freq(struct update_util_data *hook, u64 time,
433 				     unsigned int flags)
434 {
435 	struct sugov_cpu *sg_cpu = container_of(hook, struct sugov_cpu, update_util);
436 	struct sugov_policy *sg_policy = sg_cpu->sg_policy;
437 	unsigned int cached_freq = sg_policy->cached_raw_freq;
438 	unsigned long max_cap;
439 	unsigned int next_f;
440 
441 	max_cap = arch_scale_cpu_capacity(sg_cpu->cpu);
442 
443 	if (!sugov_update_single_common(sg_cpu, time, max_cap, flags))
444 		return;
445 
446 	next_f = get_next_freq(sg_policy, sg_cpu->util, max_cap);
447 
448 	if (sugov_hold_freq(sg_cpu) && next_f < sg_policy->next_freq &&
449 	    !sg_policy->need_freq_update) {
450 		next_f = sg_policy->next_freq;
451 
452 		/* Restore cached freq as next_freq has changed */
453 		sg_policy->cached_raw_freq = cached_freq;
454 	}
455 
456 	if (!sugov_update_next_freq(sg_policy, time, next_f))
457 		return;
458 
459 	/*
460 	 * This code runs under rq->lock for the target CPU, so it won't run
461 	 * concurrently on two different CPUs for the same target and it is not
462 	 * necessary to acquire the lock in the fast switch case.
463 	 */
464 	if (sg_policy->policy->fast_switch_enabled) {
465 		cpufreq_driver_fast_switch(sg_policy->policy, next_f);
466 	} else {
467 		raw_spin_lock(&sg_policy->update_lock);
468 		sugov_deferred_update(sg_policy);
469 		raw_spin_unlock(&sg_policy->update_lock);
470 	}
471 }
472 
sugov_update_single_perf(struct update_util_data * hook,u64 time,unsigned int flags)473 static void sugov_update_single_perf(struct update_util_data *hook, u64 time,
474 				     unsigned int flags)
475 {
476 	struct sugov_cpu *sg_cpu = container_of(hook, struct sugov_cpu, update_util);
477 	struct sugov_policy *sg_policy = sg_cpu->sg_policy;
478 	unsigned long prev_util = sg_cpu->util;
479 	unsigned long max_cap;
480 
481 	/*
482 	 * Fall back to the "frequency" path if frequency invariance is not
483 	 * supported, because the direct mapping between the utilization and
484 	 * the performance levels depends on the frequency invariance.
485 	 */
486 	if (!arch_scale_freq_invariant()) {
487 		sugov_update_single_freq(hook, time, flags);
488 		return;
489 	}
490 
491 	max_cap = arch_scale_cpu_capacity(sg_cpu->cpu);
492 
493 	if (!sugov_update_single_common(sg_cpu, time, max_cap, flags))
494 		return;
495 
496 	if (sugov_hold_freq(sg_cpu) && sg_cpu->util < prev_util)
497 		sg_cpu->util = prev_util;
498 
499 	cpufreq_driver_adjust_perf(sg_policy->policy, sg_cpu->bw_min,
500 				   sg_cpu->util, sg_cpu->bw_max, max_cap);
501 
502 	sg_policy->need_freq_update = false;
503 	sg_policy->last_freq_update_time = time;
504 }
505 
sugov_next_freq_shared(struct sugov_cpu * sg_cpu,u64 time)506 static unsigned int sugov_next_freq_shared(struct sugov_cpu *sg_cpu, u64 time)
507 {
508 	struct sugov_policy *sg_policy = sg_cpu->sg_policy;
509 	struct cpufreq_policy *policy = sg_policy->policy;
510 	unsigned long util = 0, max_cap;
511 	unsigned int j;
512 
513 	max_cap = arch_scale_cpu_capacity(sg_cpu->cpu);
514 
515 	for_each_cpu(j, policy->cpus) {
516 		struct sugov_cpu *j_sg_cpu = &per_cpu(sugov_cpu, j);
517 		unsigned long boost;
518 
519 		boost = sugov_iowait_apply(j_sg_cpu, time, max_cap);
520 		sugov_get_util(j_sg_cpu, boost);
521 
522 		util = max(j_sg_cpu->util, util);
523 	}
524 
525 	return get_next_freq(sg_policy, util, max_cap);
526 }
527 
528 static void
sugov_update_shared(struct update_util_data * hook,u64 time,unsigned int flags)529 sugov_update_shared(struct update_util_data *hook, u64 time, unsigned int flags)
530 {
531 	struct sugov_cpu *sg_cpu = container_of(hook, struct sugov_cpu, update_util);
532 	struct sugov_policy *sg_policy = sg_cpu->sg_policy;
533 	unsigned int next_f;
534 
535 	raw_spin_lock(&sg_policy->update_lock);
536 
537 	sugov_iowait_boost(sg_cpu, time, flags);
538 	sg_cpu->last_update = time;
539 
540 	ignore_dl_rate_limit(sg_cpu);
541 
542 	if (sugov_should_update_freq(sg_policy, time)) {
543 		next_f = sugov_next_freq_shared(sg_cpu, time);
544 
545 		if (!sugov_update_next_freq(sg_policy, time, next_f))
546 			goto unlock;
547 
548 		if (sg_policy->policy->fast_switch_enabled)
549 			cpufreq_driver_fast_switch(sg_policy->policy, next_f);
550 		else
551 			sugov_deferred_update(sg_policy);
552 	}
553 unlock:
554 	raw_spin_unlock(&sg_policy->update_lock);
555 }
556 
sugov_work(struct kthread_work * work)557 static void sugov_work(struct kthread_work *work)
558 {
559 	struct sugov_policy *sg_policy = container_of(work, struct sugov_policy, work);
560 	unsigned int freq;
561 	unsigned long flags;
562 
563 	/*
564 	 * Hold sg_policy->update_lock shortly to handle the case where:
565 	 * in case sg_policy->next_freq is read here, and then updated by
566 	 * sugov_deferred_update() just before work_in_progress is set to false
567 	 * here, we may miss queueing the new update.
568 	 *
569 	 * Note: If a work was queued after the update_lock is released,
570 	 * sugov_work() will just be called again by kthread_work code; and the
571 	 * request will be proceed before the sugov thread sleeps.
572 	 */
573 	raw_spin_lock_irqsave(&sg_policy->update_lock, flags);
574 	freq = sg_policy->next_freq;
575 	sg_policy->work_in_progress = false;
576 	raw_spin_unlock_irqrestore(&sg_policy->update_lock, flags);
577 
578 	mutex_lock(&sg_policy->work_lock);
579 	__cpufreq_driver_target(sg_policy->policy, freq, CPUFREQ_RELATION_L);
580 	mutex_unlock(&sg_policy->work_lock);
581 }
582 
sugov_irq_work(struct irq_work * irq_work)583 static void sugov_irq_work(struct irq_work *irq_work)
584 {
585 	struct sugov_policy *sg_policy;
586 
587 	sg_policy = container_of(irq_work, struct sugov_policy, irq_work);
588 
589 	kthread_queue_work(&sg_policy->worker, &sg_policy->work);
590 }
591 
592 /************************** sysfs interface ************************/
593 
594 static struct sugov_tunables *global_tunables;
595 static DEFINE_MUTEX(global_tunables_lock);
596 
to_sugov_tunables(struct gov_attr_set * attr_set)597 static inline struct sugov_tunables *to_sugov_tunables(struct gov_attr_set *attr_set)
598 {
599 	return container_of(attr_set, struct sugov_tunables, attr_set);
600 }
601 
rate_limit_us_show(struct gov_attr_set * attr_set,char * buf)602 static ssize_t rate_limit_us_show(struct gov_attr_set *attr_set, char *buf)
603 {
604 	struct sugov_tunables *tunables = to_sugov_tunables(attr_set);
605 
606 	return sysfs_emit(buf, "%u\n", tunables->rate_limit_us);
607 }
608 
609 static ssize_t
rate_limit_us_store(struct gov_attr_set * attr_set,const char * buf,size_t count)610 rate_limit_us_store(struct gov_attr_set *attr_set, const char *buf, size_t count)
611 {
612 	struct sugov_tunables *tunables = to_sugov_tunables(attr_set);
613 	struct sugov_policy *sg_policy;
614 	unsigned int rate_limit_us;
615 
616 	if (kstrtouint(buf, 10, &rate_limit_us))
617 		return -EINVAL;
618 
619 	tunables->rate_limit_us = rate_limit_us;
620 
621 	list_for_each_entry(sg_policy, &attr_set->policy_list, tunables_hook)
622 		sugov_update_rate_limit_us(sg_policy);
623 
624 	return count;
625 }
626 
627 static struct governor_attr rate_limit_us = __ATTR_RW(rate_limit_us);
628 
629 static struct attribute *sugov_attrs[] = {
630 	&rate_limit_us.attr,
631 	NULL
632 };
633 ATTRIBUTE_GROUPS(sugov);
634 
sugov_tunables_free(struct kobject * kobj)635 static void sugov_tunables_free(struct kobject *kobj)
636 {
637 	struct gov_attr_set *attr_set = to_gov_attr_set(kobj);
638 
639 	kfree(to_sugov_tunables(attr_set));
640 }
641 
642 static const struct kobj_type sugov_tunables_ktype = {
643 	.default_groups = sugov_groups,
644 	.sysfs_ops = &governor_sysfs_ops,
645 	.release = &sugov_tunables_free,
646 };
647 
648 /********************** cpufreq governor interface *********************/
649 
650 static struct cpufreq_governor schedutil_gov;
651 
sugov_policy_alloc(struct cpufreq_policy * policy)652 static struct sugov_policy *sugov_policy_alloc(struct cpufreq_policy *policy)
653 {
654 	struct sugov_policy *sg_policy;
655 
656 	sg_policy = kzalloc_obj(*sg_policy);
657 	if (!sg_policy)
658 		return NULL;
659 
660 	sg_policy->policy = policy;
661 	raw_spin_lock_init(&sg_policy->update_lock);
662 	return sg_policy;
663 }
664 
sugov_policy_free(struct sugov_policy * sg_policy)665 static void sugov_policy_free(struct sugov_policy *sg_policy)
666 {
667 	kfree(sg_policy);
668 }
669 
sugov_kthread_create(struct sugov_policy * sg_policy)670 static int sugov_kthread_create(struct sugov_policy *sg_policy)
671 {
672 	struct task_struct *thread;
673 	struct sched_attr attr = {
674 		.size		= sizeof(struct sched_attr),
675 		.sched_policy	= SCHED_DEADLINE,
676 		.sched_flags	= SCHED_FLAG_SUGOV,
677 		.sched_nice	= 0,
678 		.sched_priority	= 0,
679 		/*
680 		 * Fake (unused) bandwidth; workaround to "fix"
681 		 * priority inheritance.
682 		 */
683 		.sched_runtime	= NSEC_PER_MSEC,
684 		.sched_deadline = 10 * NSEC_PER_MSEC,
685 		.sched_period	= 10 * NSEC_PER_MSEC,
686 	};
687 	struct cpufreq_policy *policy = sg_policy->policy;
688 	int ret;
689 
690 	/* kthread only required for slow path */
691 	if (policy->fast_switch_enabled)
692 		return 0;
693 
694 	kthread_init_work(&sg_policy->work, sugov_work);
695 	kthread_init_worker(&sg_policy->worker);
696 	thread = kthread_create(kthread_worker_fn, &sg_policy->worker,
697 				"sugov:%d",
698 				cpumask_first(policy->related_cpus));
699 	if (IS_ERR(thread)) {
700 		pr_err("failed to create sugov thread: %pe\n", thread);
701 		return PTR_ERR(thread);
702 	}
703 
704 	ret = sched_setattr_nocheck(thread, &attr);
705 	if (ret) {
706 		kthread_stop(thread);
707 		pr_warn("%s: failed to set SCHED_DEADLINE\n", __func__);
708 		return ret;
709 	}
710 
711 	sg_policy->thread = thread;
712 	if (policy->dvfs_possible_from_any_cpu)
713 		set_cpus_allowed_ptr(thread, policy->related_cpus);
714 	else
715 		kthread_bind_mask(thread, policy->related_cpus);
716 
717 	init_irq_work(&sg_policy->irq_work, sugov_irq_work);
718 	mutex_init(&sg_policy->work_lock);
719 
720 	wake_up_process(thread);
721 
722 	return 0;
723 }
724 
sugov_kthread_stop(struct sugov_policy * sg_policy)725 static void sugov_kthread_stop(struct sugov_policy *sg_policy)
726 {
727 	/* kthread only required for slow path */
728 	if (sg_policy->policy->fast_switch_enabled)
729 		return;
730 
731 	kthread_flush_worker(&sg_policy->worker);
732 	kthread_stop(sg_policy->thread);
733 	mutex_destroy(&sg_policy->work_lock);
734 }
735 
sugov_tunables_alloc(struct sugov_policy * sg_policy)736 static struct sugov_tunables *sugov_tunables_alloc(struct sugov_policy *sg_policy)
737 {
738 	struct sugov_tunables *tunables;
739 
740 	tunables = kzalloc_obj(*tunables);
741 	if (tunables) {
742 		gov_attr_set_init(&tunables->attr_set, &sg_policy->tunables_hook);
743 		if (!have_governor_per_policy())
744 			global_tunables = tunables;
745 	}
746 	return tunables;
747 }
748 
sugov_clear_global_tunables(void)749 static void sugov_clear_global_tunables(void)
750 {
751 	if (!have_governor_per_policy())
752 		global_tunables = NULL;
753 }
754 
sugov_init(struct cpufreq_policy * policy)755 static int sugov_init(struct cpufreq_policy *policy)
756 {
757 	struct sugov_policy *sg_policy;
758 	struct sugov_tunables *tunables;
759 	int ret = 0;
760 
761 	/* State should be equivalent to EXIT */
762 	if (policy->governor_data)
763 		return -EBUSY;
764 
765 	cpufreq_enable_fast_switch(policy);
766 
767 	sg_policy = sugov_policy_alloc(policy);
768 	if (!sg_policy) {
769 		ret = -ENOMEM;
770 		goto disable_fast_switch;
771 	}
772 
773 	ret = sugov_kthread_create(sg_policy);
774 	if (ret)
775 		goto free_sg_policy;
776 
777 	mutex_lock(&global_tunables_lock);
778 
779 	if (global_tunables) {
780 		if (WARN_ON(have_governor_per_policy())) {
781 			ret = -EINVAL;
782 			goto stop_kthread;
783 		}
784 		policy->governor_data = sg_policy;
785 		sg_policy->tunables = global_tunables;
786 
787 		gov_attr_set_get(&global_tunables->attr_set, &sg_policy->tunables_hook);
788 		goto out;
789 	}
790 
791 	tunables = sugov_tunables_alloc(sg_policy);
792 	if (!tunables) {
793 		ret = -ENOMEM;
794 		goto stop_kthread;
795 	}
796 
797 	tunables->rate_limit_us = cpufreq_policy_transition_delay_us(policy);
798 
799 	policy->governor_data = sg_policy;
800 	sg_policy->tunables = tunables;
801 
802 	ret = kobject_init_and_add(&tunables->attr_set.kobj, &sugov_tunables_ktype,
803 				   get_governor_parent_kobj(policy), "%s",
804 				   schedutil_gov.name);
805 	if (ret)
806 		goto fail;
807 
808 out:
809 	/*
810 	 * Schedutil is the preferred governor for EAS, so rebuild sched domains
811 	 * on governor changes to make sure the scheduler knows about them.
812 	 */
813 	em_rebuild_sched_domains();
814 	mutex_unlock(&global_tunables_lock);
815 	return 0;
816 
817 fail:
818 	kobject_put(&tunables->attr_set.kobj);
819 	policy->governor_data = NULL;
820 	sugov_clear_global_tunables();
821 
822 stop_kthread:
823 	sugov_kthread_stop(sg_policy);
824 	mutex_unlock(&global_tunables_lock);
825 
826 free_sg_policy:
827 	sugov_policy_free(sg_policy);
828 
829 disable_fast_switch:
830 	cpufreq_disable_fast_switch(policy);
831 
832 	pr_err("initialization failed (error %d)\n", ret);
833 	return ret;
834 }
835 
sugov_exit(struct cpufreq_policy * policy)836 static void sugov_exit(struct cpufreq_policy *policy)
837 {
838 	struct sugov_policy *sg_policy = policy->governor_data;
839 	struct sugov_tunables *tunables = sg_policy->tunables;
840 	unsigned int count;
841 
842 	mutex_lock(&global_tunables_lock);
843 
844 	count = gov_attr_set_put(&tunables->attr_set, &sg_policy->tunables_hook);
845 	policy->governor_data = NULL;
846 	if (!count)
847 		sugov_clear_global_tunables();
848 
849 	mutex_unlock(&global_tunables_lock);
850 
851 	sugov_kthread_stop(sg_policy);
852 	sugov_policy_free(sg_policy);
853 	cpufreq_disable_fast_switch(policy);
854 
855 	em_rebuild_sched_domains();
856 }
857 
sugov_start(struct cpufreq_policy * policy)858 static int sugov_start(struct cpufreq_policy *policy)
859 {
860 	struct sugov_policy *sg_policy = policy->governor_data;
861 	void (*uu)(struct update_util_data *data, u64 time, unsigned int flags);
862 	unsigned int cpu;
863 
864 	sugov_update_rate_limit_us(sg_policy);
865 	sg_policy->last_freq_update_time	= 0;
866 	sg_policy->next_freq			= 0;
867 	sg_policy->work_in_progress		= false;
868 	sg_policy->limits_changed		= false;
869 	sg_policy->cached_raw_freq		= 0;
870 
871 	sg_policy->need_freq_update = cpufreq_driver_test_flags(CPUFREQ_NEED_UPDATE_LIMITS);
872 
873 	if (policy_is_shared(policy))
874 		uu = sugov_update_shared;
875 	else if (policy->fast_switch_enabled && cpufreq_driver_has_adjust_perf())
876 		uu = sugov_update_single_perf;
877 	else
878 		uu = sugov_update_single_freq;
879 
880 	for_each_cpu(cpu, policy->cpus) {
881 		struct sugov_cpu *sg_cpu = &per_cpu(sugov_cpu, cpu);
882 
883 		memset(sg_cpu, 0, sizeof(*sg_cpu));
884 		sg_cpu->cpu = cpu;
885 		sg_cpu->sg_policy = sg_policy;
886 	}
887 
888 	/*
889 	 * Publish the hooks only after all per-CPU data is initialized, so a
890 	 * shared policy's sugov_update_shared() never reads an uninitialized
891 	 * sibling sugov_cpu.
892 	 */
893 	for_each_cpu(cpu, policy->cpus) {
894 		struct sugov_cpu *sg_cpu = &per_cpu(sugov_cpu, cpu);
895 
896 		cpufreq_add_update_util_hook(cpu, &sg_cpu->update_util, uu);
897 	}
898 
899 	return 0;
900 }
901 
sugov_stop(struct cpufreq_policy * policy)902 static void sugov_stop(struct cpufreq_policy *policy)
903 {
904 	struct sugov_policy *sg_policy = policy->governor_data;
905 	unsigned int cpu;
906 
907 	for_each_cpu(cpu, policy->cpus)
908 		cpufreq_remove_update_util_hook(cpu);
909 
910 	synchronize_rcu();
911 
912 	if (!policy->fast_switch_enabled) {
913 		irq_work_sync(&sg_policy->irq_work);
914 		kthread_cancel_work_sync(&sg_policy->work);
915 	}
916 }
917 
sugov_limits(struct cpufreq_policy * policy)918 static void sugov_limits(struct cpufreq_policy *policy)
919 {
920 	struct sugov_policy *sg_policy = policy->governor_data;
921 
922 	if (!policy->fast_switch_enabled) {
923 		mutex_lock(&sg_policy->work_lock);
924 		cpufreq_policy_apply_limits(policy);
925 		mutex_unlock(&sg_policy->work_lock);
926 	}
927 
928 	/*
929 	 * The limits_changed update below must take place before the updates
930 	 * of policy limits in cpufreq_set_policy() or a policy limits update
931 	 * might be missed, so use a memory barrier to ensure it.
932 	 *
933 	 * This pairs with the memory barrier in sugov_should_update_freq().
934 	 */
935 	smp_wmb();
936 
937 	WRITE_ONCE(sg_policy->limits_changed, true);
938 }
939 
940 static struct cpufreq_governor schedutil_gov = {
941 	.name			= "schedutil",
942 	.owner			= THIS_MODULE,
943 	.flags			= CPUFREQ_GOV_DYNAMIC_SWITCHING,
944 	.init			= sugov_init,
945 	.exit			= sugov_exit,
946 	.start			= sugov_start,
947 	.stop			= sugov_stop,
948 	.limits			= sugov_limits,
949 };
950 
951 #ifdef CONFIG_CPU_FREQ_DEFAULT_GOV_SCHEDUTIL
cpufreq_default_governor(void)952 struct cpufreq_governor *cpufreq_default_governor(void)
953 {
954 	return &schedutil_gov;
955 }
956 #endif
957 
sugov_is_governor(struct cpufreq_policy * policy)958 bool sugov_is_governor(struct cpufreq_policy *policy)
959 {
960 	return policy->governor == &schedutil_gov;
961 }
962 
963 cpufreq_governor_init(schedutil_gov);
964