xref: /linux/drivers/cpufreq/cpufreq.c (revision 8f13c0c6cb75cc4421d5a60fc060e9e6fd9d1097)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  *  linux/drivers/cpufreq/cpufreq.c
4  *
5  *  Copyright (C) 2001 Russell King
6  *            (C) 2002 - 2003 Dominik Brodowski <linux@brodo.de>
7  *            (C) 2013 Viresh Kumar <viresh.kumar@linaro.org>
8  *
9  *  Oct 2005 - Ashok Raj <ashok.raj@intel.com>
10  *	Added handling for CPU hotplug
11  *  Feb 2006 - Jacob Shin <jacob.shin@amd.com>
12  *	Fix handling for CPU hotplug -- affected CPUs
13  */
14 
15 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
16 
17 #include <linux/cpu.h>
18 #include <linux/cpufreq.h>
19 #include <linux/cpu_cooling.h>
20 #include <linux/delay.h>
21 #include <linux/device.h>
22 #include <linux/init.h>
23 #include <linux/kernel_stat.h>
24 #include <linux/module.h>
25 #include <linux/mutex.h>
26 #include <linux/pm_qos.h>
27 #include <linux/slab.h>
28 #include <linux/string_choices.h>
29 #include <linux/suspend.h>
30 #include <linux/syscore_ops.h>
31 #include <linux/tick.h>
32 #include <linux/units.h>
33 #include <trace/events/power.h>
34 
35 static LIST_HEAD(cpufreq_policy_list);
36 
37 /* Macros to iterate over CPU policies */
38 #define for_each_suitable_policy(__policy, __active)			 \
39 	list_for_each_entry(__policy, &cpufreq_policy_list, policy_list) \
40 		if ((__active) == !policy_is_inactive(__policy))
41 
42 #define for_each_active_policy(__policy)		\
43 	for_each_suitable_policy(__policy, true)
44 #define for_each_inactive_policy(__policy)		\
45 	for_each_suitable_policy(__policy, false)
46 
47 /* Iterate over governors */
48 static LIST_HEAD(cpufreq_governor_list);
49 #define for_each_governor(__governor)				\
50 	list_for_each_entry(__governor, &cpufreq_governor_list, governor_list)
51 
52 static char default_governor[CPUFREQ_NAME_LEN];
53 
54 /*
55  * The "cpufreq driver" - the arch- or hardware-dependent low
56  * level driver of CPUFreq support, and its spinlock. This lock
57  * also protects the cpufreq_cpu_data array.
58  */
59 static struct cpufreq_driver *cpufreq_driver;
60 static DEFINE_PER_CPU(struct cpufreq_policy *, cpufreq_cpu_data);
61 static DEFINE_RWLOCK(cpufreq_driver_lock);
62 
63 static DEFINE_STATIC_KEY_FALSE(cpufreq_freq_invariance);
64 bool cpufreq_supports_freq_invariance(void)
65 {
66 	return static_branch_likely(&cpufreq_freq_invariance);
67 }
68 
69 /* Flag to suspend/resume CPUFreq governors */
70 static bool cpufreq_suspended;
71 
72 static inline bool has_target(void)
73 {
74 	return cpufreq_driver->target_index || cpufreq_driver->target;
75 }
76 
77 bool has_target_index(void)
78 {
79 	return !!cpufreq_driver->target_index;
80 }
81 
82 /* internal prototypes */
83 static unsigned int __cpufreq_get(struct cpufreq_policy *policy);
84 static int cpufreq_init_governor(struct cpufreq_policy *policy);
85 static void cpufreq_exit_governor(struct cpufreq_policy *policy);
86 static void cpufreq_governor_limits(struct cpufreq_policy *policy);
87 static int cpufreq_set_policy(struct cpufreq_policy *policy,
88 			      struct cpufreq_governor *new_gov,
89 			      unsigned int new_pol);
90 static bool cpufreq_boost_supported(void);
91 static int cpufreq_boost_trigger_state(int state);
92 
93 /*
94  * Two notifier lists: the "policy" list is involved in the
95  * validation process for a new CPU frequency policy; the
96  * "transition" list for kernel code that needs to handle
97  * changes to devices when the CPU clock speed changes.
98  * The mutex locks both lists.
99  */
100 static BLOCKING_NOTIFIER_HEAD(cpufreq_policy_notifier_list);
101 SRCU_NOTIFIER_HEAD_STATIC(cpufreq_transition_notifier_list);
102 
103 static int off __read_mostly;
104 static int cpufreq_disabled(void)
105 {
106 	return off;
107 }
108 void disable_cpufreq(void)
109 {
110 	off = 1;
111 }
112 EXPORT_SYMBOL_GPL(disable_cpufreq);
113 
114 static DEFINE_MUTEX(cpufreq_governor_mutex);
115 
116 bool have_governor_per_policy(void)
117 {
118 	return !!(cpufreq_driver->flags & CPUFREQ_HAVE_GOVERNOR_PER_POLICY);
119 }
120 EXPORT_SYMBOL_GPL(have_governor_per_policy);
121 
122 static struct kobject *cpufreq_global_kobject;
123 
124 struct kobject *get_governor_parent_kobj(struct cpufreq_policy *policy)
125 {
126 	if (have_governor_per_policy())
127 		return &policy->kobj;
128 	else
129 		return cpufreq_global_kobject;
130 }
131 EXPORT_SYMBOL_GPL(get_governor_parent_kobj);
132 
133 static inline u64 get_cpu_idle_time_jiffy(unsigned int cpu, u64 *wall)
134 {
135 	struct kernel_cpustat kcpustat;
136 	u64 cur_wall_time;
137 	u64 idle_time;
138 	u64 busy_time;
139 
140 	cur_wall_time = jiffies64_to_nsecs(get_jiffies_64());
141 
142 	kcpustat_cpu_fetch(&kcpustat, cpu);
143 
144 	busy_time = kcpustat.cpustat[CPUTIME_USER];
145 	busy_time += kcpustat.cpustat[CPUTIME_SYSTEM];
146 	busy_time += kcpustat.cpustat[CPUTIME_IRQ];
147 	busy_time += kcpustat.cpustat[CPUTIME_SOFTIRQ];
148 	busy_time += kcpustat.cpustat[CPUTIME_STEAL];
149 	busy_time += kcpustat.cpustat[CPUTIME_NICE];
150 
151 	idle_time = cur_wall_time - busy_time;
152 	if (wall)
153 		*wall = div_u64(cur_wall_time, NSEC_PER_USEC);
154 
155 	return div_u64(idle_time, NSEC_PER_USEC);
156 }
157 
158 u64 get_cpu_idle_time(unsigned int cpu, u64 *wall, int io_busy)
159 {
160 	u64 idle_time = get_cpu_idle_time_us(cpu, io_busy ? wall : NULL);
161 
162 	if (idle_time == -1ULL)
163 		return get_cpu_idle_time_jiffy(cpu, wall);
164 	else if (!io_busy)
165 		idle_time += get_cpu_iowait_time_us(cpu, wall);
166 
167 	return idle_time;
168 }
169 EXPORT_SYMBOL_GPL(get_cpu_idle_time);
170 
171 /*
172  * This is a generic cpufreq init() routine which can be used by cpufreq
173  * drivers of SMP systems. It will do following:
174  * - validate & show freq table passed
175  * - set policies transition latency
176  * - policy->cpus with all possible CPUs
177  */
178 void cpufreq_generic_init(struct cpufreq_policy *policy,
179 		struct cpufreq_frequency_table *table,
180 		unsigned int transition_latency)
181 {
182 	policy->freq_table = table;
183 	policy->cpuinfo.transition_latency = transition_latency;
184 
185 	/*
186 	 * The driver only supports the SMP configuration where all processors
187 	 * share the clock and voltage and clock.
188 	 */
189 	cpumask_setall(policy->cpus);
190 }
191 EXPORT_SYMBOL_GPL(cpufreq_generic_init);
192 
193 struct cpufreq_policy *cpufreq_cpu_get_raw(unsigned int cpu)
194 {
195 	struct cpufreq_policy *policy = per_cpu(cpufreq_cpu_data, cpu);
196 
197 	return policy && cpumask_test_cpu(cpu, policy->cpus) ? policy : NULL;
198 }
199 EXPORT_SYMBOL_GPL(cpufreq_cpu_get_raw);
200 
201 struct cpufreq_policy *cpufreq_cpu_policy(unsigned int cpu)
202 {
203 	return per_cpu(cpufreq_cpu_data, cpu);
204 }
205 EXPORT_SYMBOL_GPL(cpufreq_cpu_policy);
206 
207 unsigned int cpufreq_generic_get(unsigned int cpu)
208 {
209 	struct cpufreq_policy *policy = cpufreq_cpu_get_raw(cpu);
210 
211 	if (!policy || IS_ERR(policy->clk)) {
212 		pr_err("%s: No %s associated to cpu: %d\n",
213 		       __func__, policy ? "clk" : "policy", cpu);
214 		return 0;
215 	}
216 
217 	return clk_get_rate(policy->clk) / 1000;
218 }
219 EXPORT_SYMBOL_GPL(cpufreq_generic_get);
220 
221 /**
222  * cpufreq_cpu_get - Return policy for a CPU and mark it as busy.
223  * @cpu: CPU to find the policy for.
224  *
225  * Call cpufreq_cpu_get_raw() to obtain a cpufreq policy for @cpu and increment
226  * the kobject reference counter of that policy.  Return a valid policy on
227  * success or NULL on failure.
228  *
229  * The policy returned by this function has to be released with the help of
230  * cpufreq_cpu_put() to balance its kobject reference counter properly.
231  */
232 struct cpufreq_policy *cpufreq_cpu_get(unsigned int cpu)
233 {
234 	struct cpufreq_policy *policy = NULL;
235 	unsigned long flags;
236 
237 	if (WARN_ON(cpu >= nr_cpu_ids))
238 		return NULL;
239 
240 	/* get the cpufreq driver */
241 	read_lock_irqsave(&cpufreq_driver_lock, flags);
242 
243 	if (cpufreq_driver) {
244 		/* get the CPU */
245 		policy = cpufreq_cpu_get_raw(cpu);
246 		if (policy)
247 			kobject_get(&policy->kobj);
248 	}
249 
250 	read_unlock_irqrestore(&cpufreq_driver_lock, flags);
251 
252 	return policy;
253 }
254 EXPORT_SYMBOL_GPL(cpufreq_cpu_get);
255 
256 /**
257  * cpufreq_cpu_put - Decrement kobject usage counter for cpufreq policy.
258  * @policy: cpufreq policy returned by cpufreq_cpu_get().
259  */
260 void cpufreq_cpu_put(struct cpufreq_policy *policy)
261 {
262 	kobject_put(&policy->kobj);
263 }
264 EXPORT_SYMBOL_GPL(cpufreq_cpu_put);
265 
266 /*********************************************************************
267  *            EXTERNALLY AFFECTING FREQUENCY CHANGES                 *
268  *********************************************************************/
269 
270 /**
271  * adjust_jiffies - Adjust the system "loops_per_jiffy".
272  * @val: CPUFREQ_PRECHANGE or CPUFREQ_POSTCHANGE.
273  * @ci: Frequency change information.
274  *
275  * This function alters the system "loops_per_jiffy" for the clock
276  * speed change. Note that loops_per_jiffy cannot be updated on SMP
277  * systems as each CPU might be scaled differently. So, use the arch
278  * per-CPU loops_per_jiffy value wherever possible.
279  */
280 static void adjust_jiffies(unsigned long val, struct cpufreq_freqs *ci)
281 {
282 #ifndef CONFIG_SMP
283 	static unsigned long l_p_j_ref;
284 	static unsigned int l_p_j_ref_freq;
285 
286 	if (ci->flags & CPUFREQ_CONST_LOOPS)
287 		return;
288 
289 	if (!l_p_j_ref_freq) {
290 		l_p_j_ref = loops_per_jiffy;
291 		l_p_j_ref_freq = ci->old;
292 		pr_debug("saving %lu as reference value for loops_per_jiffy; freq is %u kHz\n",
293 			 l_p_j_ref, l_p_j_ref_freq);
294 	}
295 	if (val == CPUFREQ_POSTCHANGE && ci->old != ci->new) {
296 		loops_per_jiffy = cpufreq_scale(l_p_j_ref, l_p_j_ref_freq,
297 								ci->new);
298 		pr_debug("scaling loops_per_jiffy to %lu for frequency %u kHz\n",
299 			 loops_per_jiffy, ci->new);
300 	}
301 #endif
302 }
303 
304 /**
305  * cpufreq_notify_transition - Notify frequency transition and adjust jiffies.
306  * @policy: cpufreq policy to enable fast frequency switching for.
307  * @freqs: contain details of the frequency update.
308  * @state: set to CPUFREQ_PRECHANGE or CPUFREQ_POSTCHANGE.
309  *
310  * This function calls the transition notifiers and adjust_jiffies().
311  *
312  * It is called twice on all CPU frequency changes that have external effects.
313  */
314 static void cpufreq_notify_transition(struct cpufreq_policy *policy,
315 				      struct cpufreq_freqs *freqs,
316 				      unsigned int state)
317 {
318 	int cpu;
319 
320 	BUG_ON(irqs_disabled());
321 
322 	if (cpufreq_disabled())
323 		return;
324 
325 	freqs->policy = policy;
326 	freqs->flags = cpufreq_driver->flags;
327 	pr_debug("notification %u of frequency transition to %u kHz\n",
328 		 state, freqs->new);
329 
330 	switch (state) {
331 	case CPUFREQ_PRECHANGE:
332 		/*
333 		 * Detect if the driver reported a value as "old frequency"
334 		 * which is not equal to what the cpufreq core thinks is
335 		 * "old frequency".
336 		 */
337 		if (policy->cur && policy->cur != freqs->old) {
338 			pr_debug("Warning: CPU frequency is %u, cpufreq assumed %u kHz\n",
339 				 freqs->old, policy->cur);
340 			freqs->old = policy->cur;
341 		}
342 
343 		srcu_notifier_call_chain(&cpufreq_transition_notifier_list,
344 					 CPUFREQ_PRECHANGE, freqs);
345 
346 		adjust_jiffies(CPUFREQ_PRECHANGE, freqs);
347 		break;
348 
349 	case CPUFREQ_POSTCHANGE:
350 		adjust_jiffies(CPUFREQ_POSTCHANGE, freqs);
351 		pr_debug("FREQ: %u - CPUs: %*pbl\n", freqs->new,
352 			 cpumask_pr_args(policy->cpus));
353 
354 		for_each_cpu(cpu, policy->cpus)
355 			trace_cpu_frequency(freqs->new, cpu);
356 
357 		srcu_notifier_call_chain(&cpufreq_transition_notifier_list,
358 					 CPUFREQ_POSTCHANGE, freqs);
359 
360 		cpufreq_stats_record_transition(policy, freqs->new);
361 		policy->cur = freqs->new;
362 	}
363 }
364 
365 /* Do post notifications when there are chances that transition has failed */
366 static void cpufreq_notify_post_transition(struct cpufreq_policy *policy,
367 		struct cpufreq_freqs *freqs, int transition_failed)
368 {
369 	cpufreq_notify_transition(policy, freqs, CPUFREQ_POSTCHANGE);
370 	if (!transition_failed)
371 		return;
372 
373 	swap(freqs->old, freqs->new);
374 	cpufreq_notify_transition(policy, freqs, CPUFREQ_PRECHANGE);
375 	cpufreq_notify_transition(policy, freqs, CPUFREQ_POSTCHANGE);
376 }
377 
378 void cpufreq_freq_transition_begin(struct cpufreq_policy *policy,
379 		struct cpufreq_freqs *freqs)
380 {
381 
382 	/*
383 	 * Catch double invocations of _begin() which lead to self-deadlock.
384 	 * ASYNC_NOTIFICATION drivers are left out because the cpufreq core
385 	 * doesn't invoke _begin() on their behalf, and hence the chances of
386 	 * double invocations are very low. Moreover, there are scenarios
387 	 * where these checks can emit false-positive warnings in these
388 	 * drivers; so we avoid that by skipping them altogether.
389 	 */
390 	WARN_ON(!(cpufreq_driver->flags & CPUFREQ_ASYNC_NOTIFICATION)
391 				&& current == policy->transition_task);
392 
393 wait:
394 	wait_event(policy->transition_wait, !policy->transition_ongoing);
395 
396 	spin_lock(&policy->transition_lock);
397 
398 	if (unlikely(policy->transition_ongoing)) {
399 		spin_unlock(&policy->transition_lock);
400 		goto wait;
401 	}
402 
403 	policy->transition_ongoing = true;
404 	policy->transition_task = current;
405 
406 	spin_unlock(&policy->transition_lock);
407 
408 	cpufreq_notify_transition(policy, freqs, CPUFREQ_PRECHANGE);
409 }
410 EXPORT_SYMBOL_GPL(cpufreq_freq_transition_begin);
411 
412 void cpufreq_freq_transition_end(struct cpufreq_policy *policy,
413 		struct cpufreq_freqs *freqs, int transition_failed)
414 {
415 	if (WARN_ON(!policy->transition_ongoing))
416 		return;
417 
418 	cpufreq_notify_post_transition(policy, freqs, transition_failed);
419 
420 	arch_set_freq_scale(policy->related_cpus,
421 			    policy->cur,
422 			    arch_scale_freq_ref(policy->cpu));
423 
424 	spin_lock(&policy->transition_lock);
425 	policy->transition_ongoing = false;
426 	policy->transition_task = NULL;
427 	spin_unlock(&policy->transition_lock);
428 
429 	wake_up(&policy->transition_wait);
430 }
431 EXPORT_SYMBOL_GPL(cpufreq_freq_transition_end);
432 
433 /*
434  * Fast frequency switching status count.  Positive means "enabled", negative
435  * means "disabled" and 0 means "not decided yet".
436  */
437 static int cpufreq_fast_switch_count;
438 static DEFINE_MUTEX(cpufreq_fast_switch_lock);
439 
440 static void cpufreq_list_transition_notifiers(void)
441 {
442 	struct notifier_block *nb;
443 
444 	pr_info("Registered transition notifiers:\n");
445 
446 	mutex_lock(&cpufreq_transition_notifier_list.mutex);
447 
448 	for (nb = cpufreq_transition_notifier_list.head; nb; nb = nb->next)
449 		pr_info("%pS\n", nb->notifier_call);
450 
451 	mutex_unlock(&cpufreq_transition_notifier_list.mutex);
452 }
453 
454 /**
455  * cpufreq_enable_fast_switch - Enable fast frequency switching for policy.
456  * @policy: cpufreq policy to enable fast frequency switching for.
457  *
458  * Try to enable fast frequency switching for @policy.
459  *
460  * The attempt will fail if there is at least one transition notifier registered
461  * at this point, as fast frequency switching is quite fundamentally at odds
462  * with transition notifiers.  Thus if successful, it will make registration of
463  * transition notifiers fail going forward.
464  */
465 void cpufreq_enable_fast_switch(struct cpufreq_policy *policy)
466 {
467 	lockdep_assert_held(&policy->rwsem);
468 
469 	if (!policy->fast_switch_possible)
470 		return;
471 
472 	mutex_lock(&cpufreq_fast_switch_lock);
473 	if (cpufreq_fast_switch_count >= 0) {
474 		cpufreq_fast_switch_count++;
475 		policy->fast_switch_enabled = true;
476 	} else {
477 		pr_warn("CPU%u: Fast frequency switching not enabled\n",
478 			policy->cpu);
479 		cpufreq_list_transition_notifiers();
480 	}
481 	mutex_unlock(&cpufreq_fast_switch_lock);
482 }
483 EXPORT_SYMBOL_GPL(cpufreq_enable_fast_switch);
484 
485 /**
486  * cpufreq_disable_fast_switch - Disable fast frequency switching for policy.
487  * @policy: cpufreq policy to disable fast frequency switching for.
488  */
489 void cpufreq_disable_fast_switch(struct cpufreq_policy *policy)
490 {
491 	mutex_lock(&cpufreq_fast_switch_lock);
492 	if (policy->fast_switch_enabled) {
493 		policy->fast_switch_enabled = false;
494 		if (!WARN_ON(cpufreq_fast_switch_count <= 0))
495 			cpufreq_fast_switch_count--;
496 	}
497 	mutex_unlock(&cpufreq_fast_switch_lock);
498 }
499 EXPORT_SYMBOL_GPL(cpufreq_disable_fast_switch);
500 
501 static unsigned int __resolve_freq(struct cpufreq_policy *policy,
502 				   unsigned int target_freq,
503 				   unsigned int min, unsigned int max,
504 				   unsigned int relation)
505 {
506 	unsigned int idx;
507 
508 	target_freq = clamp_val(target_freq, min, max);
509 
510 	if (!policy->freq_table)
511 		return target_freq;
512 
513 	idx = cpufreq_frequency_table_target(policy, target_freq, min, max, relation);
514 	policy->cached_resolved_idx = idx;
515 	policy->cached_target_freq = target_freq;
516 	return policy->freq_table[idx].frequency;
517 }
518 
519 /**
520  * cpufreq_driver_resolve_freq - Map a target frequency to a driver-supported
521  * one.
522  * @policy: associated policy to interrogate
523  * @target_freq: target frequency to resolve.
524  *
525  * The target to driver frequency mapping is cached in the policy.
526  *
527  * Return: Lowest driver-supported frequency greater than or equal to the
528  * given target_freq, subject to policy (min/max) and driver limitations.
529  */
530 unsigned int cpufreq_driver_resolve_freq(struct cpufreq_policy *policy,
531 					 unsigned int target_freq)
532 {
533 	unsigned int min = READ_ONCE(policy->min);
534 	unsigned int max = READ_ONCE(policy->max);
535 
536 	/*
537 	 * If this function runs in parallel with cpufreq_set_policy(), it may
538 	 * read policy->min before the update and policy->max after the update
539 	 * or the other way around, so there is no ordering guarantee.
540 	 *
541 	 * Resolve this by always honoring the max (in case it comes from
542 	 * thermal throttling or similar).
543 	 */
544 	if (unlikely(min > max))
545 		min = max;
546 
547 	return __resolve_freq(policy, target_freq, min, max, CPUFREQ_RELATION_LE);
548 }
549 EXPORT_SYMBOL_GPL(cpufreq_driver_resolve_freq);
550 
551 unsigned int cpufreq_policy_transition_delay_us(struct cpufreq_policy *policy)
552 {
553 	unsigned int latency;
554 
555 	if (policy->transition_delay_us)
556 		return policy->transition_delay_us;
557 
558 	latency = policy->cpuinfo.transition_latency / NSEC_PER_USEC;
559 	if (latency)
560 		/* Give a 50% breathing room between updates */
561 		return latency + (latency >> 1);
562 
563 	return USEC_PER_MSEC;
564 }
565 EXPORT_SYMBOL_GPL(cpufreq_policy_transition_delay_us);
566 
567 /*********************************************************************
568  *                          SYSFS INTERFACE                          *
569  *********************************************************************/
570 static ssize_t show_boost(struct kobject *kobj,
571 			  struct kobj_attribute *attr, char *buf)
572 {
573 	return sysfs_emit(buf, "%d\n", cpufreq_driver->boost_enabled);
574 }
575 
576 static ssize_t store_boost(struct kobject *kobj, struct kobj_attribute *attr,
577 			   const char *buf, size_t count)
578 {
579 	bool enable;
580 
581 	if (kstrtobool(buf, &enable))
582 		return -EINVAL;
583 
584 	if (cpufreq_boost_trigger_state(enable)) {
585 		pr_err("%s: Cannot %s BOOST!\n",
586 		       __func__, str_enable_disable(enable));
587 		return -EINVAL;
588 	}
589 
590 	pr_debug("%s: cpufreq BOOST %s\n",
591 		 __func__, str_enabled_disabled(enable));
592 
593 	return count;
594 }
595 define_one_global_rw(boost);
596 
597 static ssize_t show_local_boost(struct cpufreq_policy *policy, char *buf)
598 {
599 	return sysfs_emit(buf, "%d\n", policy->boost_enabled);
600 }
601 
602 static int policy_set_boost(struct cpufreq_policy *policy, bool enable)
603 {
604 	int ret;
605 
606 	if (policy->boost_enabled == enable)
607 		return 0;
608 
609 	policy->boost_enabled = enable;
610 
611 	ret = cpufreq_driver->set_boost(policy, enable);
612 	if (ret)
613 		policy->boost_enabled = !policy->boost_enabled;
614 
615 	return ret;
616 }
617 
618 static ssize_t store_local_boost(struct cpufreq_policy *policy,
619 				 const char *buf, size_t count)
620 {
621 	int ret;
622 	bool enable;
623 
624 	if (kstrtobool(buf, &enable))
625 		return -EINVAL;
626 
627 	if (!cpufreq_driver->boost_enabled)
628 		return -EINVAL;
629 
630 	if (!policy->boost_supported)
631 		return -EINVAL;
632 
633 	ret = policy_set_boost(policy, enable);
634 	if (!ret)
635 		return count;
636 
637 	return ret;
638 }
639 
640 static struct freq_attr local_boost = __ATTR(boost, 0644, show_local_boost, store_local_boost);
641 
642 static struct cpufreq_governor *find_governor(const char *str_governor)
643 {
644 	struct cpufreq_governor *t;
645 
646 	for_each_governor(t)
647 		if (!strncasecmp(str_governor, t->name, CPUFREQ_NAME_LEN))
648 			return t;
649 
650 	return NULL;
651 }
652 
653 static struct cpufreq_governor *get_governor(const char *str_governor)
654 {
655 	struct cpufreq_governor *t;
656 
657 	mutex_lock(&cpufreq_governor_mutex);
658 	t = find_governor(str_governor);
659 	if (!t)
660 		goto unlock;
661 
662 	if (!try_module_get(t->owner))
663 		t = NULL;
664 
665 unlock:
666 	mutex_unlock(&cpufreq_governor_mutex);
667 
668 	return t;
669 }
670 
671 static unsigned int cpufreq_parse_policy(char *str_governor)
672 {
673 	if (!strncasecmp(str_governor, "performance", strlen("performance")))
674 		return CPUFREQ_POLICY_PERFORMANCE;
675 
676 	if (!strncasecmp(str_governor, "powersave", strlen("powersave")))
677 		return CPUFREQ_POLICY_POWERSAVE;
678 
679 	return CPUFREQ_POLICY_UNKNOWN;
680 }
681 
682 /**
683  * cpufreq_parse_governor - parse a governor string only for has_target()
684  * @str_governor: Governor name.
685  */
686 static struct cpufreq_governor *cpufreq_parse_governor(char *str_governor)
687 {
688 	struct cpufreq_governor *t;
689 
690 	t = get_governor(str_governor);
691 	if (t)
692 		return t;
693 
694 	if (request_module("cpufreq_%s", str_governor))
695 		return NULL;
696 
697 	return get_governor(str_governor);
698 }
699 
700 /*
701  * cpufreq_per_cpu_attr_read() / show_##file_name() -
702  * print out cpufreq information
703  *
704  * Write out information from cpufreq_driver->policy[cpu]; object must be
705  * "unsigned int".
706  */
707 
708 #define show_one(file_name, object)			\
709 static ssize_t show_##file_name				\
710 (struct cpufreq_policy *policy, char *buf)		\
711 {							\
712 	return sysfs_emit(buf, "%u\n", policy->object);	\
713 }
714 
715 show_one(cpuinfo_min_freq, cpuinfo.min_freq);
716 show_one(cpuinfo_max_freq, cpuinfo.max_freq);
717 show_one(cpuinfo_transition_latency, cpuinfo.transition_latency);
718 show_one(scaling_min_freq, min);
719 show_one(scaling_max_freq, max);
720 
721 __weak int arch_freq_get_on_cpu(int cpu)
722 {
723 	return -EOPNOTSUPP;
724 }
725 
726 static inline bool cpufreq_avg_freq_supported(struct cpufreq_policy *policy)
727 {
728 	return arch_freq_get_on_cpu(policy->cpu) != -EOPNOTSUPP;
729 }
730 
731 static ssize_t show_scaling_cur_freq(struct cpufreq_policy *policy, char *buf)
732 {
733 	ssize_t ret;
734 	int freq;
735 
736 	freq = IS_ENABLED(CONFIG_CPUFREQ_ARCH_CUR_FREQ)
737 		? arch_freq_get_on_cpu(policy->cpu)
738 		: 0;
739 
740 	if (freq > 0)
741 		ret = sysfs_emit(buf, "%u\n", freq);
742 	else if (cpufreq_driver->setpolicy && cpufreq_driver->get)
743 		ret = sysfs_emit(buf, "%u\n", cpufreq_driver->get(policy->cpu));
744 	else
745 		ret = sysfs_emit(buf, "%u\n", policy->cur);
746 	return ret;
747 }
748 
749 /*
750  * cpufreq_per_cpu_attr_write() / store_##file_name() - sysfs write access
751  */
752 #define store_one(file_name, object)			\
753 static ssize_t store_##file_name					\
754 (struct cpufreq_policy *policy, const char *buf, size_t count)		\
755 {									\
756 	unsigned long val;						\
757 	int ret;							\
758 									\
759 	ret = kstrtoul(buf, 0, &val);					\
760 	if (ret)							\
761 		return ret;						\
762 									\
763 	ret = freq_qos_update_request(policy->object##_freq_req, val);\
764 	return ret >= 0 ? count : ret;					\
765 }
766 
767 store_one(scaling_min_freq, min);
768 store_one(scaling_max_freq, max);
769 
770 /*
771  * show_cpuinfo_cur_freq - current CPU frequency as detected by hardware
772  */
773 static ssize_t show_cpuinfo_cur_freq(struct cpufreq_policy *policy,
774 					char *buf)
775 {
776 	unsigned int cur_freq = __cpufreq_get(policy);
777 
778 	if (cur_freq)
779 		return sysfs_emit(buf, "%u\n", cur_freq);
780 
781 	return sysfs_emit(buf, "<unknown>\n");
782 }
783 
784 /*
785  * show_cpuinfo_avg_freq - average CPU frequency as detected by hardware
786  */
787 static ssize_t show_cpuinfo_avg_freq(struct cpufreq_policy *policy,
788 				     char *buf)
789 {
790 	int avg_freq = arch_freq_get_on_cpu(policy->cpu);
791 
792 	if (avg_freq > 0)
793 		return sysfs_emit(buf, "%u\n", avg_freq);
794 	return avg_freq != 0 ? avg_freq : -EINVAL;
795 }
796 
797 /*
798  * show_scaling_governor - show the current policy for the specified CPU
799  */
800 static ssize_t show_scaling_governor(struct cpufreq_policy *policy, char *buf)
801 {
802 	if (policy->policy == CPUFREQ_POLICY_POWERSAVE)
803 		return sysfs_emit(buf, "powersave\n");
804 	else if (policy->policy == CPUFREQ_POLICY_PERFORMANCE)
805 		return sysfs_emit(buf, "performance\n");
806 	else if (policy->governor)
807 		return sysfs_emit(buf, "%s\n", policy->governor->name);
808 	return -EINVAL;
809 }
810 
811 /*
812  * store_scaling_governor - store policy for the specified CPU
813  */
814 static ssize_t store_scaling_governor(struct cpufreq_policy *policy,
815 					const char *buf, size_t count)
816 {
817 	char str_governor[CPUFREQ_NAME_LEN];
818 	int ret;
819 
820 	ret = sscanf(buf, "%15s", str_governor);
821 	if (ret != 1)
822 		return -EINVAL;
823 
824 	if (cpufreq_driver->setpolicy) {
825 		unsigned int new_pol;
826 
827 		new_pol = cpufreq_parse_policy(str_governor);
828 		if (!new_pol)
829 			return -EINVAL;
830 
831 		ret = cpufreq_set_policy(policy, NULL, new_pol);
832 	} else {
833 		struct cpufreq_governor *new_gov;
834 
835 		new_gov = cpufreq_parse_governor(str_governor);
836 		if (!new_gov)
837 			return -EINVAL;
838 
839 		ret = cpufreq_set_policy(policy, new_gov,
840 					 CPUFREQ_POLICY_UNKNOWN);
841 
842 		module_put(new_gov->owner);
843 	}
844 
845 	return ret ? ret : count;
846 }
847 
848 /*
849  * show_scaling_driver - show the cpufreq driver currently loaded
850  */
851 static ssize_t show_scaling_driver(struct cpufreq_policy *policy, char *buf)
852 {
853 	return scnprintf(buf, CPUFREQ_NAME_PLEN, "%s\n", cpufreq_driver->name);
854 }
855 
856 /*
857  * show_scaling_available_governors - show the available CPUfreq governors
858  */
859 static ssize_t show_scaling_available_governors(struct cpufreq_policy *policy,
860 						char *buf)
861 {
862 	ssize_t i = 0;
863 	struct cpufreq_governor *t;
864 
865 	if (!has_target()) {
866 		i += sysfs_emit(buf, "performance powersave");
867 		goto out;
868 	}
869 
870 	mutex_lock(&cpufreq_governor_mutex);
871 	for_each_governor(t) {
872 		if (i >= (ssize_t) ((PAGE_SIZE / sizeof(char))
873 		    - (CPUFREQ_NAME_LEN + 2)))
874 			break;
875 		i += sysfs_emit_at(buf, i, "%s ", t->name);
876 	}
877 	mutex_unlock(&cpufreq_governor_mutex);
878 out:
879 	i += sysfs_emit_at(buf, i, "\n");
880 	return i;
881 }
882 
883 ssize_t cpufreq_show_cpus(const struct cpumask *mask, char *buf)
884 {
885 	ssize_t i = 0;
886 	unsigned int cpu;
887 
888 	for_each_cpu(cpu, mask) {
889 		i += sysfs_emit_at(buf, i, "%u ", cpu);
890 		if (i >= (PAGE_SIZE - 5))
891 			break;
892 	}
893 
894 	/* Remove the extra space at the end */
895 	i--;
896 
897 	i += sysfs_emit_at(buf, i, "\n");
898 	return i;
899 }
900 EXPORT_SYMBOL_GPL(cpufreq_show_cpus);
901 
902 /*
903  * show_related_cpus - show the CPUs affected by each transition even if
904  * hw coordination is in use
905  */
906 static ssize_t show_related_cpus(struct cpufreq_policy *policy, char *buf)
907 {
908 	return cpufreq_show_cpus(policy->related_cpus, buf);
909 }
910 
911 /*
912  * show_affected_cpus - show the CPUs affected by each transition
913  */
914 static ssize_t show_affected_cpus(struct cpufreq_policy *policy, char *buf)
915 {
916 	return cpufreq_show_cpus(policy->cpus, buf);
917 }
918 
919 static ssize_t store_scaling_setspeed(struct cpufreq_policy *policy,
920 					const char *buf, size_t count)
921 {
922 	unsigned int freq = 0;
923 	int ret;
924 
925 	if (!policy->governor || !policy->governor->store_setspeed)
926 		return -EINVAL;
927 
928 	ret = kstrtouint(buf, 0, &freq);
929 	if (ret)
930 		return ret;
931 
932 	policy->governor->store_setspeed(policy, freq);
933 
934 	return count;
935 }
936 
937 static ssize_t show_scaling_setspeed(struct cpufreq_policy *policy, char *buf)
938 {
939 	if (!policy->governor || !policy->governor->show_setspeed)
940 		return sysfs_emit(buf, "<unsupported>\n");
941 
942 	return policy->governor->show_setspeed(policy, buf);
943 }
944 
945 /*
946  * show_bios_limit - show the current cpufreq HW/BIOS limitation
947  */
948 static ssize_t show_bios_limit(struct cpufreq_policy *policy, char *buf)
949 {
950 	unsigned int limit;
951 	int ret;
952 	ret = cpufreq_driver->bios_limit(policy->cpu, &limit);
953 	if (!ret)
954 		return sysfs_emit(buf, "%u\n", limit);
955 	return sysfs_emit(buf, "%u\n", policy->cpuinfo.max_freq);
956 }
957 
958 cpufreq_freq_attr_ro_perm(cpuinfo_cur_freq, 0400);
959 cpufreq_freq_attr_ro(cpuinfo_avg_freq);
960 cpufreq_freq_attr_ro(cpuinfo_min_freq);
961 cpufreq_freq_attr_ro(cpuinfo_max_freq);
962 cpufreq_freq_attr_ro(cpuinfo_transition_latency);
963 cpufreq_freq_attr_ro(scaling_available_governors);
964 cpufreq_freq_attr_ro(scaling_driver);
965 cpufreq_freq_attr_ro(scaling_cur_freq);
966 cpufreq_freq_attr_ro(bios_limit);
967 cpufreq_freq_attr_ro(related_cpus);
968 cpufreq_freq_attr_ro(affected_cpus);
969 cpufreq_freq_attr_rw(scaling_min_freq);
970 cpufreq_freq_attr_rw(scaling_max_freq);
971 cpufreq_freq_attr_rw(scaling_governor);
972 cpufreq_freq_attr_rw(scaling_setspeed);
973 
974 static struct attribute *cpufreq_attrs[] = {
975 	&cpuinfo_min_freq.attr,
976 	&cpuinfo_max_freq.attr,
977 	&cpuinfo_transition_latency.attr,
978 	&scaling_cur_freq.attr,
979 	&scaling_min_freq.attr,
980 	&scaling_max_freq.attr,
981 	&affected_cpus.attr,
982 	&related_cpus.attr,
983 	&scaling_governor.attr,
984 	&scaling_driver.attr,
985 	&scaling_available_governors.attr,
986 	&scaling_setspeed.attr,
987 	NULL
988 };
989 ATTRIBUTE_GROUPS(cpufreq);
990 
991 #define to_policy(k) container_of(k, struct cpufreq_policy, kobj)
992 #define to_attr(a) container_of(a, struct freq_attr, attr)
993 
994 static ssize_t show(struct kobject *kobj, struct attribute *attr, char *buf)
995 {
996 	struct cpufreq_policy *policy = to_policy(kobj);
997 	struct freq_attr *fattr = to_attr(attr);
998 
999 	if (!fattr->show)
1000 		return -EIO;
1001 
1002 	guard(cpufreq_policy_read)(policy);
1003 
1004 	if (likely(!policy_is_inactive(policy)))
1005 		return fattr->show(policy, buf);
1006 
1007 	return -EBUSY;
1008 }
1009 
1010 static ssize_t store(struct kobject *kobj, struct attribute *attr,
1011 		     const char *buf, size_t count)
1012 {
1013 	struct cpufreq_policy *policy = to_policy(kobj);
1014 	struct freq_attr *fattr = to_attr(attr);
1015 
1016 	if (!fattr->store)
1017 		return -EIO;
1018 
1019 	guard(cpufreq_policy_write)(policy);
1020 
1021 	if (likely(!policy_is_inactive(policy)))
1022 		return fattr->store(policy, buf, count);
1023 
1024 	return -EBUSY;
1025 }
1026 
1027 static void cpufreq_sysfs_release(struct kobject *kobj)
1028 {
1029 	struct cpufreq_policy *policy = to_policy(kobj);
1030 	pr_debug("last reference is dropped\n");
1031 	complete(&policy->kobj_unregister);
1032 }
1033 
1034 static const struct sysfs_ops sysfs_ops = {
1035 	.show	= show,
1036 	.store	= store,
1037 };
1038 
1039 static const struct kobj_type ktype_cpufreq = {
1040 	.sysfs_ops	= &sysfs_ops,
1041 	.default_groups	= cpufreq_groups,
1042 	.release	= cpufreq_sysfs_release,
1043 };
1044 
1045 static void add_cpu_dev_symlink(struct cpufreq_policy *policy, unsigned int cpu,
1046 				struct device *dev)
1047 {
1048 	if (unlikely(!dev))
1049 		return;
1050 
1051 	if (cpumask_test_and_set_cpu(cpu, policy->real_cpus))
1052 		return;
1053 
1054 	dev_dbg(dev, "%s: Adding symlink\n", __func__);
1055 	if (sysfs_create_link(&dev->kobj, &policy->kobj, "cpufreq"))
1056 		dev_err(dev, "cpufreq symlink creation failed\n");
1057 }
1058 
1059 static void remove_cpu_dev_symlink(struct cpufreq_policy *policy, int cpu,
1060 				   struct device *dev)
1061 {
1062 	dev_dbg(dev, "%s: Removing symlink\n", __func__);
1063 	sysfs_remove_link(&dev->kobj, "cpufreq");
1064 	cpumask_clear_cpu(cpu, policy->real_cpus);
1065 }
1066 
1067 static int cpufreq_add_dev_interface(struct cpufreq_policy *policy)
1068 {
1069 	struct freq_attr **drv_attr;
1070 	int ret = 0;
1071 
1072 	/* Attributes that need freq_table */
1073 	if (policy->freq_table) {
1074 		ret = sysfs_create_file(&policy->kobj,
1075 				&cpufreq_freq_attr_scaling_available_freqs.attr);
1076 		if (ret)
1077 			return ret;
1078 
1079 		if (cpufreq_boost_supported()) {
1080 			ret = sysfs_create_file(&policy->kobj,
1081 				&cpufreq_freq_attr_scaling_boost_freqs.attr);
1082 			if (ret)
1083 				return ret;
1084 		}
1085 	}
1086 
1087 	/* set up files for this cpu device */
1088 	drv_attr = cpufreq_driver->attr;
1089 	while (drv_attr && *drv_attr) {
1090 		ret = sysfs_create_file(&policy->kobj, &((*drv_attr)->attr));
1091 		if (ret)
1092 			return ret;
1093 		drv_attr++;
1094 	}
1095 	if (cpufreq_driver->get) {
1096 		ret = sysfs_create_file(&policy->kobj, &cpuinfo_cur_freq.attr);
1097 		if (ret)
1098 			return ret;
1099 	}
1100 
1101 	if (cpufreq_avg_freq_supported(policy)) {
1102 		ret = sysfs_create_file(&policy->kobj, &cpuinfo_avg_freq.attr);
1103 		if (ret)
1104 			return ret;
1105 	}
1106 
1107 	if (cpufreq_driver->bios_limit) {
1108 		ret = sysfs_create_file(&policy->kobj, &bios_limit.attr);
1109 		if (ret)
1110 			return ret;
1111 	}
1112 
1113 	if (cpufreq_boost_supported()) {
1114 		ret = sysfs_create_file(&policy->kobj, &local_boost.attr);
1115 		if (ret)
1116 			return ret;
1117 	}
1118 
1119 	return 0;
1120 }
1121 
1122 static int cpufreq_init_policy(struct cpufreq_policy *policy)
1123 {
1124 	struct cpufreq_governor *gov = NULL;
1125 	unsigned int pol = CPUFREQ_POLICY_UNKNOWN;
1126 	int ret;
1127 
1128 	if (has_target()) {
1129 		/* Update policy governor to the one used before hotplug. */
1130 		if (policy->last_governor[0] != '\0')
1131 			gov = get_governor(policy->last_governor);
1132 		if (gov) {
1133 			pr_debug("Restoring governor %s for cpu %d\n",
1134 				 gov->name, policy->cpu);
1135 		} else {
1136 			gov = get_governor(default_governor);
1137 		}
1138 
1139 		if (!gov) {
1140 			gov = cpufreq_default_governor();
1141 			__module_get(gov->owner);
1142 		}
1143 
1144 	} else {
1145 
1146 		/* Use the default policy if there is no last_policy. */
1147 		if (policy->last_policy) {
1148 			pol = policy->last_policy;
1149 		} else {
1150 			pol = cpufreq_parse_policy(default_governor);
1151 			/*
1152 			 * In case the default governor is neither "performance"
1153 			 * nor "powersave", fall back to the initial policy
1154 			 * value set by the driver.
1155 			 */
1156 			if (pol == CPUFREQ_POLICY_UNKNOWN)
1157 				pol = policy->policy;
1158 		}
1159 		if (pol != CPUFREQ_POLICY_PERFORMANCE &&
1160 		    pol != CPUFREQ_POLICY_POWERSAVE)
1161 			return -ENODATA;
1162 	}
1163 
1164 	ret = cpufreq_set_policy(policy, gov, pol);
1165 	if (gov)
1166 		module_put(gov->owner);
1167 
1168 	return ret;
1169 }
1170 
1171 static int cpufreq_add_policy_cpu(struct cpufreq_policy *policy, unsigned int cpu)
1172 {
1173 	int ret = 0;
1174 
1175 	/* Has this CPU been taken care of already? */
1176 	if (cpumask_test_cpu(cpu, policy->cpus))
1177 		return 0;
1178 
1179 	guard(cpufreq_policy_write)(policy);
1180 
1181 	if (has_target())
1182 		cpufreq_stop_governor(policy);
1183 
1184 	cpumask_set_cpu(cpu, policy->cpus);
1185 
1186 	if (has_target()) {
1187 		ret = cpufreq_start_governor(policy);
1188 		if (ret)
1189 			pr_err("%s: Failed to start governor\n", __func__);
1190 	}
1191 
1192 	return ret;
1193 }
1194 
1195 void refresh_frequency_limits(struct cpufreq_policy *policy)
1196 {
1197 	if (!policy_is_inactive(policy)) {
1198 		pr_debug("updating policy for CPU %u\n", policy->cpu);
1199 
1200 		cpufreq_set_policy(policy, policy->governor, policy->policy);
1201 	}
1202 }
1203 EXPORT_SYMBOL(refresh_frequency_limits);
1204 
1205 static void handle_update(struct work_struct *work)
1206 {
1207 	struct cpufreq_policy *policy =
1208 		container_of(work, struct cpufreq_policy, update);
1209 
1210 	pr_debug("handle_update for cpu %u called\n", policy->cpu);
1211 
1212 	guard(cpufreq_policy_write)(policy);
1213 
1214 	refresh_frequency_limits(policy);
1215 }
1216 
1217 static int cpufreq_notifier_min(struct notifier_block *nb, unsigned long freq,
1218 				void *data)
1219 {
1220 	struct cpufreq_policy *policy = container_of(nb, struct cpufreq_policy, nb_min);
1221 
1222 	schedule_work(&policy->update);
1223 	return 0;
1224 }
1225 
1226 static int cpufreq_notifier_max(struct notifier_block *nb, unsigned long freq,
1227 				void *data)
1228 {
1229 	struct cpufreq_policy *policy = container_of(nb, struct cpufreq_policy, nb_max);
1230 
1231 	schedule_work(&policy->update);
1232 	return 0;
1233 }
1234 
1235 static void cpufreq_policy_put_kobj(struct cpufreq_policy *policy)
1236 {
1237 	struct kobject *kobj;
1238 	struct completion *cmp;
1239 
1240 	scoped_guard(cpufreq_policy_write, policy) {
1241 		cpufreq_stats_free_table(policy);
1242 		kobj = &policy->kobj;
1243 		cmp = &policy->kobj_unregister;
1244 	}
1245 	kobject_put(kobj);
1246 
1247 	/*
1248 	 * We need to make sure that the underlying kobj is
1249 	 * actually not referenced anymore by anybody before we
1250 	 * proceed with unloading.
1251 	 */
1252 	pr_debug("waiting for dropping of refcount\n");
1253 	wait_for_completion(cmp);
1254 	pr_debug("wait complete\n");
1255 }
1256 
1257 static struct cpufreq_policy *cpufreq_policy_alloc(unsigned int cpu)
1258 {
1259 	struct cpufreq_policy *policy;
1260 	struct device *dev = get_cpu_device(cpu);
1261 	int ret;
1262 
1263 	if (!dev)
1264 		return NULL;
1265 
1266 	policy = kzalloc_obj(*policy);
1267 	if (!policy)
1268 		return NULL;
1269 
1270 	if (!alloc_cpumask_var(&policy->cpus, GFP_KERNEL))
1271 		goto err_free_policy;
1272 
1273 	if (!zalloc_cpumask_var(&policy->related_cpus, GFP_KERNEL))
1274 		goto err_free_cpumask;
1275 
1276 	if (!zalloc_cpumask_var(&policy->real_cpus, GFP_KERNEL))
1277 		goto err_free_rcpumask;
1278 
1279 	init_completion(&policy->kobj_unregister);
1280 	ret = kobject_init_and_add(&policy->kobj, &ktype_cpufreq,
1281 				   cpufreq_global_kobject, "policy%u", cpu);
1282 	if (ret) {
1283 		dev_err(dev, "%s: failed to init policy->kobj: %d\n", __func__, ret);
1284 		/*
1285 		 * The entire policy object will be freed below, but the extra
1286 		 * memory allocated for the kobject name needs to be freed by
1287 		 * releasing the kobject.
1288 		 */
1289 		kobject_put(&policy->kobj);
1290 		goto err_free_real_cpus;
1291 	}
1292 
1293 	init_rwsem(&policy->rwsem);
1294 
1295 	freq_constraints_init(&policy->constraints);
1296 
1297 	policy->nb_min.notifier_call = cpufreq_notifier_min;
1298 	policy->nb_max.notifier_call = cpufreq_notifier_max;
1299 
1300 	ret = freq_qos_add_notifier(&policy->constraints, FREQ_QOS_MIN,
1301 				    &policy->nb_min);
1302 	if (ret) {
1303 		dev_err(dev, "Failed to register MIN QoS notifier: %d (CPU%u)\n",
1304 			ret, cpu);
1305 		goto err_kobj_remove;
1306 	}
1307 
1308 	ret = freq_qos_add_notifier(&policy->constraints, FREQ_QOS_MAX,
1309 				    &policy->nb_max);
1310 	if (ret) {
1311 		dev_err(dev, "Failed to register MAX QoS notifier: %d (CPU%u)\n",
1312 			ret, cpu);
1313 		goto err_min_qos_notifier;
1314 	}
1315 
1316 	INIT_LIST_HEAD(&policy->policy_list);
1317 	spin_lock_init(&policy->transition_lock);
1318 	init_waitqueue_head(&policy->transition_wait);
1319 	INIT_WORK(&policy->update, handle_update);
1320 
1321 	return policy;
1322 
1323 err_min_qos_notifier:
1324 	freq_qos_remove_notifier(&policy->constraints, FREQ_QOS_MIN,
1325 				 &policy->nb_min);
1326 err_kobj_remove:
1327 	cpufreq_policy_put_kobj(policy);
1328 err_free_real_cpus:
1329 	free_cpumask_var(policy->real_cpus);
1330 err_free_rcpumask:
1331 	free_cpumask_var(policy->related_cpus);
1332 err_free_cpumask:
1333 	free_cpumask_var(policy->cpus);
1334 err_free_policy:
1335 	kfree(policy);
1336 
1337 	return NULL;
1338 }
1339 
1340 static void cpufreq_policy_free(struct cpufreq_policy *policy)
1341 {
1342 	unsigned long flags;
1343 	int cpu;
1344 
1345 	/*
1346 	 * The callers must ensure the policy is inactive by now, to avoid any
1347 	 * races with show()/store() callbacks.
1348 	 */
1349 	if (unlikely(!policy_is_inactive(policy)))
1350 		pr_warn("%s: Freeing active policy\n", __func__);
1351 
1352 	/* Remove policy from list */
1353 	write_lock_irqsave(&cpufreq_driver_lock, flags);
1354 	list_del(&policy->policy_list);
1355 
1356 	for_each_cpu(cpu, policy->related_cpus)
1357 		per_cpu(cpufreq_cpu_data, cpu) = NULL;
1358 	write_unlock_irqrestore(&cpufreq_driver_lock, flags);
1359 
1360 	freq_qos_remove_notifier(&policy->constraints, FREQ_QOS_MAX,
1361 				 &policy->nb_max);
1362 	freq_qos_remove_notifier(&policy->constraints, FREQ_QOS_MIN,
1363 				 &policy->nb_min);
1364 
1365 	/* Cancel any pending policy->update work before freeing the policy. */
1366 	cancel_work_sync(&policy->update);
1367 
1368 	if (policy->max_freq_req) {
1369 		/*
1370 		 * Remove max_freq_req after sending CPUFREQ_REMOVE_POLICY
1371 		 * notification, since CPUFREQ_CREATE_POLICY notification was
1372 		 * sent after adding max_freq_req earlier.
1373 		 */
1374 		blocking_notifier_call_chain(&cpufreq_policy_notifier_list,
1375 					     CPUFREQ_REMOVE_POLICY, policy);
1376 		freq_qos_remove_request(policy->max_freq_req);
1377 	}
1378 
1379 	freq_qos_remove_request(policy->min_freq_req);
1380 	kfree(policy->min_freq_req);
1381 
1382 	cpufreq_policy_put_kobj(policy);
1383 	free_cpumask_var(policy->real_cpus);
1384 	free_cpumask_var(policy->related_cpus);
1385 	free_cpumask_var(policy->cpus);
1386 	kfree(policy);
1387 }
1388 
1389 static int cpufreq_policy_online(struct cpufreq_policy *policy,
1390 				 unsigned int cpu, bool new_policy)
1391 {
1392 	unsigned long flags;
1393 	unsigned int j;
1394 	int ret;
1395 
1396 	guard(cpufreq_policy_write)(policy);
1397 
1398 	policy->cpu = cpu;
1399 	policy->governor = NULL;
1400 
1401 	if (!new_policy && cpufreq_driver->online) {
1402 		/* Recover policy->cpus using related_cpus */
1403 		cpumask_copy(policy->cpus, policy->related_cpus);
1404 
1405 		ret = cpufreq_driver->online(policy);
1406 		if (ret) {
1407 			pr_debug("%s: %d: initialization failed\n", __func__,
1408 				 __LINE__);
1409 			goto out_exit_policy;
1410 		}
1411 	} else {
1412 		cpumask_copy(policy->cpus, cpumask_of(cpu));
1413 
1414 		/*
1415 		 * Call driver. From then on the cpufreq must be able
1416 		 * to accept all calls to ->verify and ->setpolicy for this CPU.
1417 		 */
1418 		ret = cpufreq_driver->init(policy);
1419 		if (ret) {
1420 			pr_debug("%s: %d: initialization failed\n", __func__,
1421 				 __LINE__);
1422 			goto out_clear_policy;
1423 		}
1424 
1425 		/*
1426 		 * The initialization has succeeded and the policy is online.
1427 		 * If there is a problem with its frequency table, take it
1428 		 * offline and drop it.
1429 		 */
1430 		ret = cpufreq_table_validate_and_sort(policy);
1431 		if (ret)
1432 			goto out_offline_policy;
1433 
1434 		/* related_cpus should at least include policy->cpus. */
1435 		cpumask_copy(policy->related_cpus, policy->cpus);
1436 	}
1437 
1438 	/*
1439 	 * affected cpus must always be the one, which are online. We aren't
1440 	 * managing offline cpus here.
1441 	 */
1442 	cpumask_and(policy->cpus, policy->cpus, cpu_online_mask);
1443 
1444 	if (new_policy) {
1445 		for_each_cpu(j, policy->related_cpus) {
1446 			per_cpu(cpufreq_cpu_data, j) = policy;
1447 			add_cpu_dev_symlink(policy, j, get_cpu_device(j));
1448 		}
1449 
1450 		policy->min_freq_req = kzalloc(2 * sizeof(*policy->min_freq_req),
1451 					       GFP_KERNEL);
1452 		if (!policy->min_freq_req) {
1453 			ret = -ENOMEM;
1454 			goto out_destroy_policy;
1455 		}
1456 
1457 		ret = freq_qos_add_request(&policy->constraints,
1458 					   policy->min_freq_req, FREQ_QOS_MIN,
1459 					   FREQ_QOS_MIN_DEFAULT_VALUE);
1460 		if (ret < 0) {
1461 			/*
1462 			 * So we don't call freq_qos_remove_request() for an
1463 			 * uninitialized request.
1464 			 */
1465 			kfree(policy->min_freq_req);
1466 			policy->min_freq_req = NULL;
1467 			goto out_destroy_policy;
1468 		}
1469 
1470 		/*
1471 		 * This must be initialized right here to avoid calling
1472 		 * freq_qos_remove_request() on uninitialized request in case
1473 		 * of errors.
1474 		 */
1475 		policy->max_freq_req = policy->min_freq_req + 1;
1476 
1477 		ret = freq_qos_add_request(&policy->constraints,
1478 					   policy->max_freq_req, FREQ_QOS_MAX,
1479 					   FREQ_QOS_MAX_DEFAULT_VALUE);
1480 		if (ret < 0) {
1481 			policy->max_freq_req = NULL;
1482 			goto out_destroy_policy;
1483 		}
1484 
1485 		blocking_notifier_call_chain(&cpufreq_policy_notifier_list,
1486 				CPUFREQ_CREATE_POLICY, policy);
1487 	} else {
1488 		ret = freq_qos_update_request(policy->max_freq_req, policy->max);
1489 		if (ret < 0)
1490 			goto out_destroy_policy;
1491 	}
1492 
1493 	if (cpufreq_driver->get && has_target()) {
1494 		policy->cur = cpufreq_driver->get(policy->cpu);
1495 		if (!policy->cur) {
1496 			ret = -EIO;
1497 			pr_err("%s: ->get() failed\n", __func__);
1498 			goto out_destroy_policy;
1499 		}
1500 	}
1501 
1502 	/*
1503 	 * Sometimes boot loaders set CPU frequency to a value outside of
1504 	 * frequency table present with cpufreq core. In such cases CPU might be
1505 	 * unstable if it has to run on that frequency for long duration of time
1506 	 * and so its better to set it to a frequency which is specified in
1507 	 * freq-table. This also makes cpufreq stats inconsistent as
1508 	 * cpufreq-stats would fail to register because current frequency of CPU
1509 	 * isn't found in freq-table.
1510 	 *
1511 	 * Because we don't want this change to effect boot process badly, we go
1512 	 * for the next freq which is >= policy->cur ('cur' must be set by now,
1513 	 * otherwise we will end up setting freq to lowest of the table as 'cur'
1514 	 * is initialized to zero).
1515 	 *
1516 	 * We are passing target-freq as "policy->cur - 1" otherwise
1517 	 * __cpufreq_driver_target() would simply fail, as policy->cur will be
1518 	 * equal to target-freq.
1519 	 */
1520 	if ((cpufreq_driver->flags & CPUFREQ_NEED_INITIAL_FREQ_CHECK)
1521 	    && has_target()) {
1522 		unsigned int old_freq = policy->cur;
1523 
1524 		/* Are we running at unknown frequency ? */
1525 		ret = cpufreq_frequency_table_get_index(policy, old_freq);
1526 		if (ret == -EINVAL) {
1527 			ret = __cpufreq_driver_target(policy, old_freq - 1,
1528 						      CPUFREQ_RELATION_L);
1529 
1530 			/*
1531 			 * Reaching here after boot in a few seconds may not
1532 			 * mean that system will remain stable at "unknown"
1533 			 * frequency for longer duration. Hence, a BUG_ON().
1534 			 */
1535 			BUG_ON(ret);
1536 			pr_info("%s: CPU%d: Running at unlisted initial frequency: %u kHz, changing to: %u kHz\n",
1537 				__func__, policy->cpu, old_freq, policy->cur);
1538 		}
1539 	}
1540 
1541 	if (new_policy) {
1542 		ret = cpufreq_add_dev_interface(policy);
1543 		if (ret)
1544 			goto out_destroy_policy;
1545 
1546 		cpufreq_stats_create_table(policy);
1547 
1548 		write_lock_irqsave(&cpufreq_driver_lock, flags);
1549 		list_add(&policy->policy_list, &cpufreq_policy_list);
1550 		write_unlock_irqrestore(&cpufreq_driver_lock, flags);
1551 
1552 		/*
1553 		 * Register with the energy model before
1554 		 * em_rebuild_sched_domains() is called, which will result
1555 		 * in rebuilding of the sched domains, which should only be done
1556 		 * once the energy model is properly initialized for the policy
1557 		 * first.
1558 		 *
1559 		 * Also, this should be called before the policy is registered
1560 		 * with cooling framework.
1561 		 */
1562 		if (cpufreq_driver->register_em)
1563 			cpufreq_driver->register_em(policy);
1564 	}
1565 
1566 	ret = cpufreq_init_policy(policy);
1567 	if (ret) {
1568 		pr_err("%s: Failed to initialize policy for cpu: %d (%d)\n",
1569 		       __func__, cpu, ret);
1570 		goto out_destroy_policy;
1571 	}
1572 
1573 	return 0;
1574 
1575 out_destroy_policy:
1576 	for_each_cpu(j, policy->real_cpus)
1577 		remove_cpu_dev_symlink(policy, j, get_cpu_device(j));
1578 
1579 out_offline_policy:
1580 	if (cpufreq_driver->offline)
1581 		cpufreq_driver->offline(policy);
1582 
1583 out_exit_policy:
1584 	if (cpufreq_driver->exit)
1585 		cpufreq_driver->exit(policy);
1586 
1587 out_clear_policy:
1588 	cpumask_clear(policy->cpus);
1589 
1590 	return ret;
1591 }
1592 
1593 static int cpufreq_online(unsigned int cpu)
1594 {
1595 	struct cpufreq_policy *policy;
1596 	bool new_policy;
1597 	int ret;
1598 
1599 	pr_debug("%s: bringing CPU%u online\n", __func__, cpu);
1600 
1601 	/* Check if this CPU already has a policy to manage it */
1602 	policy = per_cpu(cpufreq_cpu_data, cpu);
1603 	if (policy) {
1604 		WARN_ON(!cpumask_test_cpu(cpu, policy->related_cpus));
1605 		if (!policy_is_inactive(policy))
1606 			return cpufreq_add_policy_cpu(policy, cpu);
1607 
1608 		/* This is the only online CPU for the policy.  Start over. */
1609 		new_policy = false;
1610 	} else {
1611 		new_policy = true;
1612 		policy = cpufreq_policy_alloc(cpu);
1613 		if (!policy)
1614 			return -ENOMEM;
1615 	}
1616 
1617 	ret = cpufreq_policy_online(policy, cpu, new_policy);
1618 	if (ret) {
1619 		cpufreq_policy_free(policy);
1620 		return ret;
1621 	}
1622 
1623 	kobject_uevent(&policy->kobj, KOBJ_ADD);
1624 
1625 	/* Callback for handling stuff after policy is ready */
1626 	if (cpufreq_driver->ready)
1627 		cpufreq_driver->ready(policy);
1628 
1629 	/* Register cpufreq cooling only for a new policy */
1630 	if (new_policy && cpufreq_thermal_control_enabled(cpufreq_driver))
1631 		policy->cdev = of_cpufreq_cooling_register(policy);
1632 
1633 	/*
1634 	 * Let the per-policy boost flag mirror the cpufreq_driver boost during
1635 	 * initialization for a new policy. For an existing policy, maintain the
1636 	 * previous boost value unless global boost is disabled.
1637 	 */
1638 	if (cpufreq_driver->set_boost && policy->boost_supported &&
1639 	    (new_policy || !cpufreq_boost_enabled())) {
1640 		ret = policy_set_boost(policy, cpufreq_boost_enabled());
1641 		if (ret) {
1642 			/* If the set_boost fails, the online operation is not affected */
1643 			pr_info("%s: CPU%d: Cannot %s BOOST\n", __func__, policy->cpu,
1644 				str_enable_disable(cpufreq_boost_enabled()));
1645 		}
1646 	}
1647 
1648 	pr_debug("initialization complete\n");
1649 
1650 	return 0;
1651 }
1652 
1653 /**
1654  * cpufreq_add_dev - the cpufreq interface for a CPU device.
1655  * @dev: CPU device.
1656  * @sif: Subsystem interface structure pointer (not used)
1657  */
1658 static int cpufreq_add_dev(struct device *dev, struct subsys_interface *sif)
1659 {
1660 	struct cpufreq_policy *policy;
1661 	unsigned cpu = dev->id;
1662 	int ret;
1663 
1664 	dev_dbg(dev, "%s: adding CPU%u\n", __func__, cpu);
1665 
1666 	if (cpu_online(cpu)) {
1667 		ret = cpufreq_online(cpu);
1668 		if (ret)
1669 			return ret;
1670 	}
1671 
1672 	/* Create sysfs link on CPU registration */
1673 	policy = per_cpu(cpufreq_cpu_data, cpu);
1674 	if (policy)
1675 		add_cpu_dev_symlink(policy, cpu, dev);
1676 
1677 	return 0;
1678 }
1679 
1680 static void __cpufreq_offline(unsigned int cpu, struct cpufreq_policy *policy)
1681 {
1682 	int ret;
1683 
1684 	if (has_target())
1685 		cpufreq_stop_governor(policy);
1686 
1687 	cpumask_clear_cpu(cpu, policy->cpus);
1688 
1689 	if (!policy_is_inactive(policy)) {
1690 		/* Nominate a new CPU if necessary. */
1691 		if (cpu == policy->cpu)
1692 			policy->cpu = cpumask_any(policy->cpus);
1693 
1694 		/* Start the governor again for the active policy. */
1695 		if (has_target()) {
1696 			ret = cpufreq_start_governor(policy);
1697 			if (ret)
1698 				pr_err("%s: Failed to start governor\n", __func__);
1699 		}
1700 
1701 		return;
1702 	}
1703 
1704 	if (has_target()) {
1705 		strscpy(policy->last_governor, policy->governor->name,
1706 			CPUFREQ_NAME_LEN);
1707 		cpufreq_exit_governor(policy);
1708 	} else {
1709 		policy->last_policy = policy->policy;
1710 	}
1711 
1712 	/*
1713 	 * Perform the ->offline() during light-weight tear-down, as
1714 	 * that allows fast recovery when the CPU comes back.
1715 	 */
1716 	if (cpufreq_driver->offline) {
1717 		cpufreq_driver->offline(policy);
1718 		return;
1719 	}
1720 
1721 	if (cpufreq_driver->exit)
1722 		cpufreq_driver->exit(policy);
1723 
1724 	policy->freq_table = NULL;
1725 }
1726 
1727 static int cpufreq_offline(unsigned int cpu)
1728 {
1729 	struct cpufreq_policy *policy;
1730 
1731 	pr_debug("%s: unregistering CPU %u\n", __func__, cpu);
1732 
1733 	policy = cpufreq_cpu_get_raw(cpu);
1734 	if (!policy) {
1735 		pr_debug("%s: No cpu_data found\n", __func__);
1736 		return 0;
1737 	}
1738 
1739 	guard(cpufreq_policy_write)(policy);
1740 
1741 	__cpufreq_offline(cpu, policy);
1742 
1743 	return 0;
1744 }
1745 
1746 /*
1747  * cpufreq_remove_dev - remove a CPU device
1748  *
1749  * Removes the cpufreq interface for a CPU device.
1750  */
1751 static void cpufreq_remove_dev(struct device *dev, struct subsys_interface *sif)
1752 {
1753 	unsigned int cpu = dev->id;
1754 	struct cpufreq_policy *policy = per_cpu(cpufreq_cpu_data, cpu);
1755 
1756 	if (!policy)
1757 		return;
1758 
1759 	scoped_guard(cpufreq_policy_write, policy) {
1760 		if (cpu_online(cpu))
1761 			__cpufreq_offline(cpu, policy);
1762 
1763 		remove_cpu_dev_symlink(policy, cpu, dev);
1764 
1765 		if (!cpumask_empty(policy->real_cpus))
1766 			return;
1767 
1768 		/*
1769 		 * Unregister cpufreq cooling once all the CPUs of the policy
1770 		 * are removed.
1771 		 */
1772 		if (cpufreq_thermal_control_enabled(cpufreq_driver)) {
1773 			cpufreq_cooling_unregister(policy->cdev);
1774 			policy->cdev = NULL;
1775 		}
1776 
1777 		/* We did light-weight exit earlier, do full tear down now */
1778 		if (cpufreq_driver->offline && cpufreq_driver->exit)
1779 			cpufreq_driver->exit(policy);
1780 	}
1781 
1782 	cpufreq_policy_free(policy);
1783 }
1784 
1785 /**
1786  * cpufreq_out_of_sync - Fix up actual and saved CPU frequency difference.
1787  * @policy: Policy managing CPUs.
1788  * @new_freq: New CPU frequency.
1789  *
1790  * Adjust to the current frequency first and clean up later by either calling
1791  * cpufreq_update_policy(), or scheduling handle_update().
1792  */
1793 static void cpufreq_out_of_sync(struct cpufreq_policy *policy,
1794 				unsigned int new_freq)
1795 {
1796 	struct cpufreq_freqs freqs;
1797 
1798 	pr_debug("Warning: CPU frequency out of sync: cpufreq and timing core thinks of %u, is %u kHz\n",
1799 		 policy->cur, new_freq);
1800 
1801 	freqs.old = policy->cur;
1802 	freqs.new = new_freq;
1803 
1804 	cpufreq_freq_transition_begin(policy, &freqs);
1805 	cpufreq_freq_transition_end(policy, &freqs, 0);
1806 }
1807 
1808 static unsigned int cpufreq_verify_current_freq(struct cpufreq_policy *policy, bool update)
1809 {
1810 	unsigned int new_freq;
1811 
1812 	if (!cpufreq_driver->get)
1813 		return 0;
1814 
1815 	new_freq = cpufreq_driver->get(policy->cpu);
1816 	if (!new_freq)
1817 		return 0;
1818 
1819 	/*
1820 	 * If fast frequency switching is used with the given policy, the check
1821 	 * against policy->cur is pointless, so skip it in that case.
1822 	 */
1823 	if (policy->fast_switch_enabled || !has_target())
1824 		return new_freq;
1825 
1826 	if (policy->cur != new_freq) {
1827 		/*
1828 		 * For some platforms, the frequency returned by hardware may be
1829 		 * slightly different from what is provided in the frequency
1830 		 * table, for example hardware may return 499 MHz instead of 500
1831 		 * MHz. In such cases it is better to avoid getting into
1832 		 * unnecessary frequency updates.
1833 		 */
1834 		if (abs(policy->cur - new_freq) < KHZ_PER_MHZ)
1835 			return policy->cur;
1836 
1837 		cpufreq_out_of_sync(policy, new_freq);
1838 		if (update)
1839 			schedule_work(&policy->update);
1840 	}
1841 
1842 	return new_freq;
1843 }
1844 
1845 /**
1846  * cpufreq_quick_get - get the CPU frequency (in kHz) from policy->cur
1847  * @cpu: CPU number
1848  *
1849  * This is the last known freq, without actually getting it from the driver.
1850  * Return value will be same as what is shown in scaling_cur_freq in sysfs.
1851  */
1852 unsigned int cpufreq_quick_get(unsigned int cpu)
1853 {
1854 	unsigned long flags;
1855 
1856 	read_lock_irqsave(&cpufreq_driver_lock, flags);
1857 
1858 	if (cpufreq_driver && cpufreq_driver->setpolicy && cpufreq_driver->get) {
1859 		unsigned int ret_freq = cpufreq_driver->get(cpu);
1860 
1861 		read_unlock_irqrestore(&cpufreq_driver_lock, flags);
1862 
1863 		return ret_freq;
1864 	}
1865 
1866 	read_unlock_irqrestore(&cpufreq_driver_lock, flags);
1867 
1868 	struct cpufreq_policy *policy __free(put_cpufreq_policy) = cpufreq_cpu_get(cpu);
1869 	if (policy)
1870 		return policy->cur;
1871 
1872 	return 0;
1873 }
1874 EXPORT_SYMBOL(cpufreq_quick_get);
1875 
1876 /**
1877  * cpufreq_quick_get_max - get the max reported CPU frequency for this CPU
1878  * @cpu: CPU number
1879  *
1880  * Just return the max possible frequency for a given CPU.
1881  */
1882 unsigned int cpufreq_quick_get_max(unsigned int cpu)
1883 {
1884 	struct cpufreq_policy *policy __free(put_cpufreq_policy) = cpufreq_cpu_get(cpu);
1885 	if (policy)
1886 		return policy->max;
1887 
1888 	return 0;
1889 }
1890 EXPORT_SYMBOL(cpufreq_quick_get_max);
1891 
1892 /**
1893  * cpufreq_get_hw_max_freq - get the max hardware frequency of the CPU
1894  * @cpu: CPU number
1895  *
1896  * The default return value is the max_freq field of cpuinfo.
1897  */
1898 __weak unsigned int cpufreq_get_hw_max_freq(unsigned int cpu)
1899 {
1900 	struct cpufreq_policy *policy __free(put_cpufreq_policy) = cpufreq_cpu_get(cpu);
1901 	if (policy)
1902 		return policy->cpuinfo.max_freq;
1903 
1904 	return 0;
1905 }
1906 EXPORT_SYMBOL(cpufreq_get_hw_max_freq);
1907 
1908 static unsigned int __cpufreq_get(struct cpufreq_policy *policy)
1909 {
1910 	if (unlikely(policy_is_inactive(policy)))
1911 		return 0;
1912 
1913 	return cpufreq_verify_current_freq(policy, true);
1914 }
1915 
1916 /**
1917  * cpufreq_get - get the current CPU frequency (in kHz)
1918  * @cpu: CPU number
1919  *
1920  * Get the CPU current (static) CPU frequency
1921  */
1922 unsigned int cpufreq_get(unsigned int cpu)
1923 {
1924 	struct cpufreq_policy *policy __free(put_cpufreq_policy) = cpufreq_cpu_get(cpu);
1925 	if (!policy)
1926 		return 0;
1927 
1928 	guard(cpufreq_policy_read)(policy);
1929 
1930 	return __cpufreq_get(policy);
1931 }
1932 EXPORT_SYMBOL(cpufreq_get);
1933 
1934 static struct subsys_interface cpufreq_interface = {
1935 	.name		= "cpufreq",
1936 	.subsys		= &cpu_subsys,
1937 	.add_dev	= cpufreq_add_dev,
1938 	.remove_dev	= cpufreq_remove_dev,
1939 };
1940 
1941 /*
1942  * In case platform wants some specific frequency to be configured
1943  * during suspend..
1944  */
1945 int cpufreq_generic_suspend(struct cpufreq_policy *policy)
1946 {
1947 	int ret;
1948 
1949 	if (!policy->suspend_freq) {
1950 		pr_debug("%s: suspend_freq not defined\n", __func__);
1951 		return 0;
1952 	}
1953 
1954 	pr_debug("%s: Setting suspend-freq: %u\n", __func__,
1955 			policy->suspend_freq);
1956 
1957 	ret = __cpufreq_driver_target(policy, policy->suspend_freq,
1958 			CPUFREQ_RELATION_H);
1959 	if (ret)
1960 		pr_err("%s: unable to set suspend-freq: %u. err: %d\n",
1961 				__func__, policy->suspend_freq, ret);
1962 
1963 	return ret;
1964 }
1965 EXPORT_SYMBOL(cpufreq_generic_suspend);
1966 
1967 /**
1968  * cpufreq_suspend() - Suspend CPUFreq governors.
1969  *
1970  * Called during system wide Suspend/Hibernate cycles for suspending governors
1971  * as some platforms can't change frequency after this point in suspend cycle.
1972  * Because some of the devices (like: i2c, regulators, etc) they use for
1973  * changing frequency are suspended quickly after this point.
1974  */
1975 void cpufreq_suspend(void)
1976 {
1977 	struct cpufreq_policy *policy;
1978 
1979 	if (!cpufreq_driver)
1980 		return;
1981 
1982 	if (!has_target() && !cpufreq_driver->suspend)
1983 		goto suspend;
1984 
1985 	pr_debug("%s: Suspending Governors\n", __func__);
1986 
1987 	for_each_active_policy(policy) {
1988 		if (has_target()) {
1989 			scoped_guard(cpufreq_policy_write, policy) {
1990 				cpufreq_stop_governor(policy);
1991 			}
1992 		}
1993 
1994 		if (cpufreq_driver->suspend && cpufreq_driver->suspend(policy))
1995 			pr_err("%s: Failed to suspend driver: %s\n", __func__,
1996 				cpufreq_driver->name);
1997 	}
1998 
1999 suspend:
2000 	cpufreq_suspended = true;
2001 }
2002 
2003 /**
2004  * cpufreq_resume() - Resume CPUFreq governors.
2005  *
2006  * Called during system wide Suspend/Hibernate cycle for resuming governors that
2007  * are suspended with cpufreq_suspend().
2008  */
2009 void cpufreq_resume(void)
2010 {
2011 	struct cpufreq_policy *policy;
2012 	int ret;
2013 
2014 	if (!cpufreq_driver)
2015 		return;
2016 
2017 	if (unlikely(!cpufreq_suspended))
2018 		return;
2019 
2020 	cpufreq_suspended = false;
2021 
2022 	if (!has_target() && !cpufreq_driver->resume)
2023 		return;
2024 
2025 	pr_debug("%s: Resuming Governors\n", __func__);
2026 
2027 	for_each_active_policy(policy) {
2028 		if (cpufreq_driver->resume && cpufreq_driver->resume(policy)) {
2029 			pr_err("%s: Failed to resume driver: %s\n", __func__,
2030 				cpufreq_driver->name);
2031 		} else if (has_target()) {
2032 			scoped_guard(cpufreq_policy_write, policy) {
2033 				ret = cpufreq_start_governor(policy);
2034 			}
2035 
2036 			if (ret)
2037 				pr_err("%s: Failed to start governor for CPU%u's policy\n",
2038 				       __func__, policy->cpu);
2039 		}
2040 	}
2041 }
2042 
2043 /**
2044  * cpufreq_driver_test_flags - Test cpufreq driver's flags against given ones.
2045  * @flags: Flags to test against the current cpufreq driver's flags.
2046  *
2047  * Assumes that the driver is there, so callers must ensure that this is the
2048  * case.
2049  */
2050 bool cpufreq_driver_test_flags(u16 flags)
2051 {
2052 	return !!(cpufreq_driver->flags & flags);
2053 }
2054 
2055 /**
2056  * cpufreq_get_current_driver - Return the current driver's name.
2057  *
2058  * Return the name string of the currently registered cpufreq driver or NULL if
2059  * none.
2060  */
2061 const char *cpufreq_get_current_driver(void)
2062 {
2063 	if (cpufreq_driver)
2064 		return cpufreq_driver->name;
2065 
2066 	return NULL;
2067 }
2068 EXPORT_SYMBOL_GPL(cpufreq_get_current_driver);
2069 
2070 /**
2071  * cpufreq_get_driver_data - Return current driver data.
2072  *
2073  * Return the private data of the currently registered cpufreq driver, or NULL
2074  * if no cpufreq driver has been registered.
2075  */
2076 void *cpufreq_get_driver_data(void)
2077 {
2078 	if (cpufreq_driver)
2079 		return cpufreq_driver->driver_data;
2080 
2081 	return NULL;
2082 }
2083 EXPORT_SYMBOL_GPL(cpufreq_get_driver_data);
2084 
2085 /*********************************************************************
2086  *                     NOTIFIER LISTS INTERFACE                      *
2087  *********************************************************************/
2088 
2089 /**
2090  * cpufreq_register_notifier - Register a notifier with cpufreq.
2091  * @nb: notifier function to register.
2092  * @list: CPUFREQ_TRANSITION_NOTIFIER or CPUFREQ_POLICY_NOTIFIER.
2093  *
2094  * Add a notifier to one of two lists: either a list of notifiers that run on
2095  * clock rate changes (once before and once after every transition), or a list
2096  * of notifiers that ron on cpufreq policy changes.
2097  *
2098  * This function may sleep and it has the same return values as
2099  * blocking_notifier_chain_register().
2100  */
2101 int cpufreq_register_notifier(struct notifier_block *nb, unsigned int list)
2102 {
2103 	int ret;
2104 
2105 	if (cpufreq_disabled())
2106 		return -EINVAL;
2107 
2108 	switch (list) {
2109 	case CPUFREQ_TRANSITION_NOTIFIER:
2110 		mutex_lock(&cpufreq_fast_switch_lock);
2111 
2112 		if (cpufreq_fast_switch_count > 0) {
2113 			mutex_unlock(&cpufreq_fast_switch_lock);
2114 			return -EBUSY;
2115 		}
2116 		ret = srcu_notifier_chain_register(
2117 				&cpufreq_transition_notifier_list, nb);
2118 		if (!ret)
2119 			cpufreq_fast_switch_count--;
2120 
2121 		mutex_unlock(&cpufreq_fast_switch_lock);
2122 		break;
2123 	case CPUFREQ_POLICY_NOTIFIER:
2124 		ret = blocking_notifier_chain_register(
2125 				&cpufreq_policy_notifier_list, nb);
2126 		break;
2127 	default:
2128 		ret = -EINVAL;
2129 	}
2130 
2131 	return ret;
2132 }
2133 EXPORT_SYMBOL(cpufreq_register_notifier);
2134 
2135 /**
2136  * cpufreq_unregister_notifier - Unregister a notifier from cpufreq.
2137  * @nb: notifier block to be unregistered.
2138  * @list: CPUFREQ_TRANSITION_NOTIFIER or CPUFREQ_POLICY_NOTIFIER.
2139  *
2140  * Remove a notifier from one of the cpufreq notifier lists.
2141  *
2142  * This function may sleep and it has the same return values as
2143  * blocking_notifier_chain_unregister().
2144  */
2145 int cpufreq_unregister_notifier(struct notifier_block *nb, unsigned int list)
2146 {
2147 	int ret;
2148 
2149 	if (cpufreq_disabled())
2150 		return -EINVAL;
2151 
2152 	switch (list) {
2153 	case CPUFREQ_TRANSITION_NOTIFIER:
2154 		mutex_lock(&cpufreq_fast_switch_lock);
2155 
2156 		ret = srcu_notifier_chain_unregister(
2157 				&cpufreq_transition_notifier_list, nb);
2158 		if (!ret && !WARN_ON(cpufreq_fast_switch_count >= 0))
2159 			cpufreq_fast_switch_count++;
2160 
2161 		mutex_unlock(&cpufreq_fast_switch_lock);
2162 		break;
2163 	case CPUFREQ_POLICY_NOTIFIER:
2164 		ret = blocking_notifier_chain_unregister(
2165 				&cpufreq_policy_notifier_list, nb);
2166 		break;
2167 	default:
2168 		ret = -EINVAL;
2169 	}
2170 
2171 	return ret;
2172 }
2173 EXPORT_SYMBOL(cpufreq_unregister_notifier);
2174 
2175 
2176 /*********************************************************************
2177  *                              GOVERNORS                            *
2178  *********************************************************************/
2179 
2180 /**
2181  * cpufreq_driver_fast_switch - Carry out a fast CPU frequency switch.
2182  * @policy: cpufreq policy to switch the frequency for.
2183  * @target_freq: New frequency to set (may be approximate).
2184  *
2185  * Carry out a fast frequency switch without sleeping.
2186  *
2187  * The driver's ->fast_switch() callback invoked by this function must be
2188  * suitable for being called from within RCU-sched read-side critical sections
2189  * and it is expected to select the minimum available frequency greater than or
2190  * equal to @target_freq (CPUFREQ_RELATION_L).
2191  *
2192  * This function must not be called if policy->fast_switch_enabled is unset.
2193  *
2194  * Governors calling this function must guarantee that it will never be invoked
2195  * twice in parallel for the same policy and that it will never be called in
2196  * parallel with either ->target() or ->target_index() for the same policy.
2197  *
2198  * Returns the actual frequency set for the CPU.
2199  *
2200  * If 0 is returned by the driver's ->fast_switch() callback to indicate an
2201  * error condition, the hardware configuration must be preserved.
2202  */
2203 unsigned int cpufreq_driver_fast_switch(struct cpufreq_policy *policy,
2204 					unsigned int target_freq)
2205 {
2206 	unsigned int freq;
2207 	int cpu;
2208 
2209 	target_freq = clamp_val(target_freq, policy->min, policy->max);
2210 	freq = cpufreq_driver->fast_switch(policy, target_freq);
2211 
2212 	if (!freq)
2213 		return 0;
2214 
2215 	policy->cur = freq;
2216 	arch_set_freq_scale(policy->related_cpus, freq,
2217 			    arch_scale_freq_ref(policy->cpu));
2218 	cpufreq_stats_record_transition(policy, freq);
2219 
2220 	if (trace_cpu_frequency_enabled()) {
2221 		for_each_cpu(cpu, policy->cpus)
2222 			trace_cpu_frequency(freq, cpu);
2223 	}
2224 
2225 	return freq;
2226 }
2227 EXPORT_SYMBOL_GPL(cpufreq_driver_fast_switch);
2228 
2229 /**
2230  * cpufreq_driver_adjust_perf - Adjust CPU performance level in one go.
2231  * @cpu: Target CPU.
2232  * @min_perf: Minimum (required) performance level (units of @capacity).
2233  * @target_perf: Target (desired) performance level (units of @capacity).
2234  * @capacity: Capacity of the target CPU.
2235  *
2236  * Carry out a fast performance level switch of @cpu without sleeping.
2237  *
2238  * The driver's ->adjust_perf() callback invoked by this function must be
2239  * suitable for being called from within RCU-sched read-side critical sections
2240  * and it is expected to select a suitable performance level equal to or above
2241  * @min_perf and preferably equal to or below @target_perf.
2242  *
2243  * This function must not be called if policy->fast_switch_enabled is unset.
2244  *
2245  * Governors calling this function must guarantee that it will never be invoked
2246  * twice in parallel for the same CPU and that it will never be called in
2247  * parallel with either ->target() or ->target_index() or ->fast_switch() for
2248  * the same CPU.
2249  */
2250 void cpufreq_driver_adjust_perf(unsigned int cpu,
2251 				 unsigned long min_perf,
2252 				 unsigned long target_perf,
2253 				 unsigned long capacity)
2254 {
2255 	cpufreq_driver->adjust_perf(cpu, min_perf, target_perf, capacity);
2256 }
2257 
2258 /**
2259  * cpufreq_driver_has_adjust_perf - Check "direct fast switch" callback.
2260  *
2261  * Return 'true' if the ->adjust_perf callback is present for the
2262  * current driver or 'false' otherwise.
2263  */
2264 bool cpufreq_driver_has_adjust_perf(void)
2265 {
2266 	return !!cpufreq_driver->adjust_perf;
2267 }
2268 
2269 /* Must set freqs->new to intermediate frequency */
2270 static int __target_intermediate(struct cpufreq_policy *policy,
2271 				 struct cpufreq_freqs *freqs, int index)
2272 {
2273 	int ret;
2274 
2275 	freqs->new = cpufreq_driver->get_intermediate(policy, index);
2276 
2277 	/* We don't need to switch to intermediate freq */
2278 	if (!freqs->new)
2279 		return 0;
2280 
2281 	pr_debug("%s: cpu: %d, switching to intermediate freq: oldfreq: %u, intermediate freq: %u\n",
2282 		 __func__, policy->cpu, freqs->old, freqs->new);
2283 
2284 	cpufreq_freq_transition_begin(policy, freqs);
2285 	ret = cpufreq_driver->target_intermediate(policy, index);
2286 	cpufreq_freq_transition_end(policy, freqs, ret);
2287 
2288 	if (ret)
2289 		pr_err("%s: Failed to change to intermediate frequency: %d\n",
2290 		       __func__, ret);
2291 
2292 	return ret;
2293 }
2294 
2295 static int __target_index(struct cpufreq_policy *policy, int index)
2296 {
2297 	struct cpufreq_freqs freqs = {.old = policy->cur, .flags = 0};
2298 	unsigned int restore_freq, intermediate_freq = 0;
2299 	unsigned int newfreq = policy->freq_table[index].frequency;
2300 	int retval = -EINVAL;
2301 	bool notify;
2302 
2303 	if (newfreq == policy->cur)
2304 		return 0;
2305 
2306 	/* Save last value to restore later on errors */
2307 	restore_freq = policy->cur;
2308 
2309 	notify = !(cpufreq_driver->flags & CPUFREQ_ASYNC_NOTIFICATION);
2310 	if (notify) {
2311 		/* Handle switching to intermediate frequency */
2312 		if (cpufreq_driver->get_intermediate) {
2313 			retval = __target_intermediate(policy, &freqs, index);
2314 			if (retval)
2315 				return retval;
2316 
2317 			intermediate_freq = freqs.new;
2318 			/* Set old freq to intermediate */
2319 			if (intermediate_freq)
2320 				freqs.old = freqs.new;
2321 		}
2322 
2323 		freqs.new = newfreq;
2324 		pr_debug("%s: cpu: %d, oldfreq: %u, new freq: %u\n",
2325 			 __func__, policy->cpu, freqs.old, freqs.new);
2326 
2327 		cpufreq_freq_transition_begin(policy, &freqs);
2328 	}
2329 
2330 	retval = cpufreq_driver->target_index(policy, index);
2331 	if (retval)
2332 		pr_err("%s: Failed to change cpu frequency: %d\n", __func__,
2333 		       retval);
2334 
2335 	if (notify) {
2336 		cpufreq_freq_transition_end(policy, &freqs, retval);
2337 
2338 		/*
2339 		 * Failed after setting to intermediate freq? Driver should have
2340 		 * reverted back to initial frequency and so should we. Check
2341 		 * here for intermediate_freq instead of get_intermediate, in
2342 		 * case we haven't switched to intermediate freq at all.
2343 		 */
2344 		if (unlikely(retval && intermediate_freq)) {
2345 			freqs.old = intermediate_freq;
2346 			freqs.new = restore_freq;
2347 			cpufreq_freq_transition_begin(policy, &freqs);
2348 			cpufreq_freq_transition_end(policy, &freqs, 0);
2349 		}
2350 	}
2351 
2352 	return retval;
2353 }
2354 
2355 int __cpufreq_driver_target(struct cpufreq_policy *policy,
2356 			    unsigned int target_freq,
2357 			    unsigned int relation)
2358 {
2359 	unsigned int old_target_freq = target_freq;
2360 
2361 	if (cpufreq_disabled())
2362 		return -ENODEV;
2363 
2364 	target_freq = __resolve_freq(policy, target_freq, policy->min,
2365 				     policy->max, relation);
2366 
2367 	pr_debug("target for CPU %u: %u kHz, relation %u, requested %u kHz\n",
2368 		 policy->cpu, target_freq, relation, old_target_freq);
2369 
2370 	/*
2371 	 * This might look like a redundant call as we are checking it again
2372 	 * after finding index. But it is left intentionally for cases where
2373 	 * exactly same freq is called again and so we can save on few function
2374 	 * calls.
2375 	 */
2376 	if (target_freq == policy->cur &&
2377 	    !(cpufreq_driver->flags & CPUFREQ_NEED_UPDATE_LIMITS))
2378 		return 0;
2379 
2380 	if (cpufreq_driver->target) {
2381 		/*
2382 		 * If the driver hasn't setup a single inefficient frequency,
2383 		 * it's unlikely it knows how to decode CPUFREQ_RELATION_E.
2384 		 */
2385 		if (!policy->efficiencies_available)
2386 			relation &= ~CPUFREQ_RELATION_E;
2387 
2388 		return cpufreq_driver->target(policy, target_freq, relation);
2389 	}
2390 
2391 	if (!cpufreq_driver->target_index)
2392 		return -EINVAL;
2393 
2394 	return __target_index(policy, policy->cached_resolved_idx);
2395 }
2396 EXPORT_SYMBOL_GPL(__cpufreq_driver_target);
2397 
2398 int cpufreq_driver_target(struct cpufreq_policy *policy,
2399 			  unsigned int target_freq,
2400 			  unsigned int relation)
2401 {
2402 	guard(cpufreq_policy_write)(policy);
2403 
2404 	return __cpufreq_driver_target(policy, target_freq, relation);
2405 }
2406 EXPORT_SYMBOL_GPL(cpufreq_driver_target);
2407 
2408 __weak struct cpufreq_governor *cpufreq_fallback_governor(void)
2409 {
2410 	return NULL;
2411 }
2412 
2413 static int cpufreq_init_governor(struct cpufreq_policy *policy)
2414 {
2415 	int ret;
2416 
2417 	/* Don't start any governor operations if we are entering suspend */
2418 	if (cpufreq_suspended)
2419 		return 0;
2420 	/*
2421 	 * Governor might not be initiated here if ACPI _PPC changed
2422 	 * notification happened, so check it.
2423 	 */
2424 	if (!policy->governor)
2425 		return -EINVAL;
2426 
2427 	/* Platform doesn't want dynamic frequency switching ? */
2428 	if (policy->governor->flags & CPUFREQ_GOV_DYNAMIC_SWITCHING &&
2429 	    cpufreq_driver->flags & CPUFREQ_NO_AUTO_DYNAMIC_SWITCHING) {
2430 		struct cpufreq_governor *gov = cpufreq_fallback_governor();
2431 
2432 		if (gov) {
2433 			pr_warn("Can't use %s governor as dynamic switching is disallowed. Fallback to %s governor\n",
2434 				policy->governor->name, gov->name);
2435 			policy->governor = gov;
2436 		} else {
2437 			return -EINVAL;
2438 		}
2439 	}
2440 
2441 	if (!try_module_get(policy->governor->owner))
2442 		return -EINVAL;
2443 
2444 	pr_debug("%s: for CPU %u\n", __func__, policy->cpu);
2445 
2446 	if (policy->governor->init) {
2447 		ret = policy->governor->init(policy);
2448 		if (ret) {
2449 			module_put(policy->governor->owner);
2450 			return ret;
2451 		}
2452 	}
2453 
2454 	policy->strict_target = !!(policy->governor->flags & CPUFREQ_GOV_STRICT_TARGET);
2455 
2456 	return 0;
2457 }
2458 
2459 static void cpufreq_exit_governor(struct cpufreq_policy *policy)
2460 {
2461 	if (cpufreq_suspended || !policy->governor)
2462 		return;
2463 
2464 	pr_debug("%s: for CPU %u\n", __func__, policy->cpu);
2465 
2466 	if (policy->governor->exit)
2467 		policy->governor->exit(policy);
2468 
2469 	module_put(policy->governor->owner);
2470 }
2471 
2472 int cpufreq_start_governor(struct cpufreq_policy *policy)
2473 {
2474 	int ret;
2475 
2476 	if (cpufreq_suspended)
2477 		return 0;
2478 
2479 	if (!policy->governor)
2480 		return -EINVAL;
2481 
2482 	pr_debug("%s: for CPU %u\n", __func__, policy->cpu);
2483 
2484 	cpufreq_verify_current_freq(policy, false);
2485 
2486 	if (policy->governor->start) {
2487 		ret = policy->governor->start(policy);
2488 		if (ret)
2489 			return ret;
2490 	}
2491 
2492 	if (policy->governor->limits)
2493 		policy->governor->limits(policy);
2494 
2495 	return 0;
2496 }
2497 
2498 void cpufreq_stop_governor(struct cpufreq_policy *policy)
2499 {
2500 	if (cpufreq_suspended || !policy->governor)
2501 		return;
2502 
2503 	pr_debug("%s: for CPU %u\n", __func__, policy->cpu);
2504 
2505 	if (policy->governor->stop)
2506 		policy->governor->stop(policy);
2507 }
2508 
2509 static void cpufreq_governor_limits(struct cpufreq_policy *policy)
2510 {
2511 	if (cpufreq_suspended || !policy->governor)
2512 		return;
2513 
2514 	pr_debug("%s: for CPU %u\n", __func__, policy->cpu);
2515 
2516 	if (policy->governor->limits)
2517 		policy->governor->limits(policy);
2518 }
2519 
2520 int cpufreq_register_governor(struct cpufreq_governor *governor)
2521 {
2522 	int err;
2523 
2524 	if (!governor)
2525 		return -EINVAL;
2526 
2527 	if (cpufreq_disabled())
2528 		return -ENODEV;
2529 
2530 	mutex_lock(&cpufreq_governor_mutex);
2531 
2532 	err = -EBUSY;
2533 	if (!find_governor(governor->name)) {
2534 		err = 0;
2535 		list_add(&governor->governor_list, &cpufreq_governor_list);
2536 	}
2537 
2538 	mutex_unlock(&cpufreq_governor_mutex);
2539 	return err;
2540 }
2541 EXPORT_SYMBOL_GPL(cpufreq_register_governor);
2542 
2543 void cpufreq_unregister_governor(struct cpufreq_governor *governor)
2544 {
2545 	struct cpufreq_policy *policy;
2546 	unsigned long flags;
2547 
2548 	if (!governor)
2549 		return;
2550 
2551 	if (cpufreq_disabled())
2552 		return;
2553 
2554 	/* clear last_governor for all inactive policies */
2555 	read_lock_irqsave(&cpufreq_driver_lock, flags);
2556 	for_each_inactive_policy(policy) {
2557 		if (!strcmp(policy->last_governor, governor->name)) {
2558 			policy->governor = NULL;
2559 			policy->last_governor[0] = '\0';
2560 		}
2561 	}
2562 	read_unlock_irqrestore(&cpufreq_driver_lock, flags);
2563 
2564 	mutex_lock(&cpufreq_governor_mutex);
2565 	list_del(&governor->governor_list);
2566 	mutex_unlock(&cpufreq_governor_mutex);
2567 }
2568 EXPORT_SYMBOL_GPL(cpufreq_unregister_governor);
2569 
2570 
2571 /*********************************************************************
2572  *                          POLICY INTERFACE                         *
2573  *********************************************************************/
2574 
2575 DEFINE_PER_CPU(unsigned long, cpufreq_pressure);
2576 
2577 /**
2578  * cpufreq_update_pressure() - Update cpufreq pressure for CPUs
2579  * @policy: cpufreq policy of the CPUs.
2580  *
2581  * Update the value of cpufreq pressure for all @cpus in the policy.
2582  */
2583 static void cpufreq_update_pressure(struct cpufreq_policy *policy)
2584 {
2585 	unsigned long max_capacity, capped_freq, pressure;
2586 	u32 max_freq;
2587 	int cpu;
2588 
2589 	cpu = cpumask_first(policy->related_cpus);
2590 	max_freq = arch_scale_freq_ref(cpu);
2591 	capped_freq = policy->max;
2592 
2593 	/*
2594 	 * Handle properly the boost frequencies, which should simply clean
2595 	 * the cpufreq pressure value.
2596 	 */
2597 	if (max_freq <= capped_freq) {
2598 		pressure = 0;
2599 	} else {
2600 		max_capacity = arch_scale_cpu_capacity(cpu);
2601 		pressure = max_capacity -
2602 			   mult_frac(max_capacity, capped_freq, max_freq);
2603 	}
2604 
2605 	for_each_cpu(cpu, policy->related_cpus)
2606 		WRITE_ONCE(per_cpu(cpufreq_pressure, cpu), pressure);
2607 }
2608 
2609 /**
2610  * cpufreq_set_policy - Modify cpufreq policy parameters.
2611  * @policy: Policy object to modify.
2612  * @new_gov: Policy governor pointer.
2613  * @new_pol: Policy value (for drivers with built-in governors).
2614  *
2615  * Invoke the cpufreq driver's ->verify() callback to sanity-check the frequency
2616  * limits to be set for the policy, update @policy with the verified limits
2617  * values and either invoke the driver's ->setpolicy() callback (if present) or
2618  * carry out a governor update for @policy.  That is, run the current governor's
2619  * ->limits() callback (if @new_gov points to the same object as the one in
2620  * @policy) or replace the governor for @policy with @new_gov.
2621  *
2622  * The cpuinfo part of @policy is not updated by this function.
2623  */
2624 static int cpufreq_set_policy(struct cpufreq_policy *policy,
2625 			      struct cpufreq_governor *new_gov,
2626 			      unsigned int new_pol)
2627 {
2628 	struct cpufreq_policy_data new_data;
2629 	struct cpufreq_governor *old_gov;
2630 	int ret;
2631 
2632 	memcpy(&new_data.cpuinfo, &policy->cpuinfo, sizeof(policy->cpuinfo));
2633 	new_data.freq_table = policy->freq_table;
2634 	new_data.cpu = policy->cpu;
2635 	/*
2636 	 * PM QoS framework collects all the requests from users and provide us
2637 	 * the final aggregated value here.
2638 	 */
2639 	new_data.min = freq_qos_read_value(&policy->constraints, FREQ_QOS_MIN);
2640 	new_data.max = freq_qos_read_value(&policy->constraints, FREQ_QOS_MAX);
2641 
2642 	pr_debug("setting new policy for CPU %u: %u - %u kHz\n",
2643 		 new_data.cpu, new_data.min, new_data.max);
2644 
2645 	/*
2646 	 * Verify that the CPU speed can be set within these limits and make sure
2647 	 * that min <= max.
2648 	 */
2649 	ret = cpufreq_driver->verify(&new_data);
2650 	if (ret)
2651 		return ret;
2652 
2653 	/*
2654 	 * Resolve policy min/max to available frequencies. It ensures
2655 	 * no frequency resolution will neither overshoot the requested maximum
2656 	 * nor undershoot the requested minimum.
2657 	 *
2658 	 * Avoid storing intermediate values in policy->max or policy->min and
2659 	 * compiler optimizations around them because they may be accessed
2660 	 * concurrently by cpufreq_driver_resolve_freq() during the update.
2661 	 */
2662 	WRITE_ONCE(policy->max, __resolve_freq(policy, new_data.max,
2663 					       new_data.min, new_data.max,
2664 					       CPUFREQ_RELATION_H));
2665 	new_data.min = __resolve_freq(policy, new_data.min, new_data.min,
2666 				      new_data.max, CPUFREQ_RELATION_L);
2667 	WRITE_ONCE(policy->min, new_data.min > policy->max ? policy->max : new_data.min);
2668 
2669 	trace_cpu_frequency_limits(policy);
2670 
2671 	cpufreq_update_pressure(policy);
2672 
2673 	policy->cached_target_freq = UINT_MAX;
2674 
2675 	pr_debug("new min and max freqs are %u - %u kHz\n",
2676 		 policy->min, policy->max);
2677 
2678 	if (cpufreq_driver->setpolicy) {
2679 		policy->policy = new_pol;
2680 		pr_debug("setting range\n");
2681 		return cpufreq_driver->setpolicy(policy);
2682 	}
2683 
2684 	if (new_gov == policy->governor) {
2685 		pr_debug("governor limits update\n");
2686 		cpufreq_governor_limits(policy);
2687 		return 0;
2688 	}
2689 
2690 	pr_debug("governor switch\n");
2691 
2692 	/* save old, working values */
2693 	old_gov = policy->governor;
2694 	/* end old governor */
2695 	if (old_gov) {
2696 		cpufreq_stop_governor(policy);
2697 		cpufreq_exit_governor(policy);
2698 	}
2699 
2700 	/* start new governor */
2701 	policy->governor = new_gov;
2702 	ret = cpufreq_init_governor(policy);
2703 	if (!ret) {
2704 		ret = cpufreq_start_governor(policy);
2705 		if (!ret) {
2706 			pr_debug("governor change\n");
2707 			return 0;
2708 		}
2709 		cpufreq_exit_governor(policy);
2710 	}
2711 
2712 	/* new governor failed, so re-start old one */
2713 	pr_debug("starting governor %s failed\n", policy->governor->name);
2714 	if (old_gov) {
2715 		policy->governor = old_gov;
2716 		if (cpufreq_init_governor(policy)) {
2717 			policy->governor = NULL;
2718 		} else if (cpufreq_start_governor(policy)) {
2719 			cpufreq_exit_governor(policy);
2720 			policy->governor = NULL;
2721 		}
2722 	}
2723 
2724 	return ret;
2725 }
2726 
2727 static void cpufreq_policy_refresh(struct cpufreq_policy *policy)
2728 {
2729 	guard(cpufreq_policy_write)(policy);
2730 
2731 	/*
2732 	 * BIOS might change freq behind our back
2733 	 * -> ask driver for current freq and notify governors about a change
2734 	 */
2735 	if (cpufreq_driver->get && has_target() &&
2736 	    (cpufreq_suspended || WARN_ON(!cpufreq_verify_current_freq(policy, false))))
2737 		return;
2738 
2739 	refresh_frequency_limits(policy);
2740 }
2741 
2742 /**
2743  * cpufreq_update_policy - Re-evaluate an existing cpufreq policy.
2744  * @cpu: CPU to re-evaluate the policy for.
2745  *
2746  * Update the current frequency for the cpufreq policy of @cpu and use
2747  * cpufreq_set_policy() to re-apply the min and max limits, which triggers the
2748  * evaluation of policy notifiers and the cpufreq driver's ->verify() callback
2749  * for the policy in question, among other things.
2750  */
2751 void cpufreq_update_policy(unsigned int cpu)
2752 {
2753 	struct cpufreq_policy *policy __free(put_cpufreq_policy) = cpufreq_cpu_get(cpu);
2754 	if (!policy)
2755 		return;
2756 
2757 	cpufreq_policy_refresh(policy);
2758 }
2759 EXPORT_SYMBOL(cpufreq_update_policy);
2760 
2761 /**
2762  * cpufreq_update_limits - Update policy limits for a given CPU.
2763  * @cpu: CPU to update the policy limits for.
2764  *
2765  * Invoke the driver's ->update_limits callback if present or call
2766  * cpufreq_policy_refresh() for @cpu.
2767  */
2768 void cpufreq_update_limits(unsigned int cpu)
2769 {
2770 	struct cpufreq_policy *policy __free(put_cpufreq_policy) = cpufreq_cpu_get(cpu);
2771 	if (!policy)
2772 		return;
2773 
2774 	if (cpufreq_driver->update_limits)
2775 		cpufreq_driver->update_limits(policy);
2776 	else
2777 		cpufreq_policy_refresh(policy);
2778 }
2779 EXPORT_SYMBOL_GPL(cpufreq_update_limits);
2780 
2781 /*********************************************************************
2782  *               BOOST						     *
2783  *********************************************************************/
2784 int cpufreq_boost_set_sw(struct cpufreq_policy *policy, int state)
2785 {
2786 	int ret;
2787 
2788 	if (!policy->freq_table)
2789 		return -ENXIO;
2790 
2791 	ret = cpufreq_frequency_table_cpuinfo(policy);
2792 	if (ret) {
2793 		pr_err("%s: Policy frequency update failed\n", __func__);
2794 		return ret;
2795 	}
2796 
2797 	ret = freq_qos_update_request(policy->max_freq_req, policy->max);
2798 	if (ret < 0)
2799 		return ret;
2800 
2801 	return 0;
2802 }
2803 EXPORT_SYMBOL_GPL(cpufreq_boost_set_sw);
2804 
2805 static int cpufreq_boost_trigger_state(int state)
2806 {
2807 	struct cpufreq_policy *policy;
2808 	unsigned long flags;
2809 	int ret = -EOPNOTSUPP;
2810 
2811 	/*
2812 	 * Don't compare 'cpufreq_driver->boost_enabled' with 'state' here to
2813 	 * make sure all policies are in sync with global boost flag.
2814 	 */
2815 
2816 	write_lock_irqsave(&cpufreq_driver_lock, flags);
2817 	cpufreq_driver->boost_enabled = state;
2818 	write_unlock_irqrestore(&cpufreq_driver_lock, flags);
2819 
2820 	cpus_read_lock();
2821 	for_each_active_policy(policy) {
2822 		if (!policy->boost_supported)
2823 			continue;
2824 
2825 		ret = policy_set_boost(policy, state);
2826 		if (unlikely(ret))
2827 			break;
2828 	}
2829 
2830 	cpus_read_unlock();
2831 
2832 	if (likely(!ret))
2833 		return 0;
2834 
2835 	write_lock_irqsave(&cpufreq_driver_lock, flags);
2836 	cpufreq_driver->boost_enabled = !state;
2837 	write_unlock_irqrestore(&cpufreq_driver_lock, flags);
2838 
2839 	pr_err("%s: Cannot %s BOOST\n",
2840 	       __func__, str_enable_disable(state));
2841 
2842 	return ret;
2843 }
2844 
2845 static bool cpufreq_boost_supported(void)
2846 {
2847 	return cpufreq_driver->set_boost;
2848 }
2849 
2850 static int create_boost_sysfs_file(void)
2851 {
2852 	int ret;
2853 
2854 	ret = sysfs_create_file(cpufreq_global_kobject, &boost.attr);
2855 	if (ret)
2856 		pr_err("%s: cannot register global BOOST sysfs file\n",
2857 		       __func__);
2858 
2859 	return ret;
2860 }
2861 
2862 static void remove_boost_sysfs_file(void)
2863 {
2864 	if (cpufreq_boost_supported())
2865 		sysfs_remove_file(cpufreq_global_kobject, &boost.attr);
2866 }
2867 
2868 bool cpufreq_boost_enabled(void)
2869 {
2870 	return cpufreq_driver->boost_enabled;
2871 }
2872 EXPORT_SYMBOL_GPL(cpufreq_boost_enabled);
2873 
2874 /*********************************************************************
2875  *               REGISTER / UNREGISTER CPUFREQ DRIVER                *
2876  *********************************************************************/
2877 static enum cpuhp_state hp_online;
2878 
2879 static int cpuhp_cpufreq_online(unsigned int cpu)
2880 {
2881 	cpufreq_online(cpu);
2882 
2883 	return 0;
2884 }
2885 
2886 static int cpuhp_cpufreq_offline(unsigned int cpu)
2887 {
2888 	cpufreq_offline(cpu);
2889 
2890 	return 0;
2891 }
2892 
2893 /**
2894  * cpufreq_register_driver - register a CPU Frequency driver
2895  * @driver_data: A struct cpufreq_driver containing the values#
2896  * submitted by the CPU Frequency driver.
2897  *
2898  * Registers a CPU Frequency driver to this core code. This code
2899  * returns zero on success, -EEXIST when another driver got here first
2900  * (and isn't unregistered in the meantime).
2901  *
2902  */
2903 int cpufreq_register_driver(struct cpufreq_driver *driver_data)
2904 {
2905 	unsigned long flags;
2906 	int ret;
2907 
2908 	if (cpufreq_disabled())
2909 		return -ENODEV;
2910 
2911 	/*
2912 	 * The cpufreq core depends heavily on the availability of device
2913 	 * structure, make sure they are available before proceeding further.
2914 	 */
2915 	if (!get_cpu_device(0))
2916 		return -EPROBE_DEFER;
2917 
2918 	if (!driver_data || !driver_data->verify || !driver_data->init ||
2919 	     (driver_data->target_index && driver_data->target) ||
2920 	     (!!driver_data->setpolicy == (driver_data->target_index || driver_data->target)) ||
2921 	     (!driver_data->get_intermediate != !driver_data->target_intermediate) ||
2922 	     (!driver_data->online != !driver_data->offline) ||
2923 		 (driver_data->adjust_perf && !driver_data->fast_switch))
2924 		return -EINVAL;
2925 
2926 	pr_debug("trying to register driver %s\n", driver_data->name);
2927 
2928 	/* Protect against concurrent CPU online/offline. */
2929 	cpus_read_lock();
2930 
2931 	write_lock_irqsave(&cpufreq_driver_lock, flags);
2932 	if (cpufreq_driver) {
2933 		write_unlock_irqrestore(&cpufreq_driver_lock, flags);
2934 		ret = -EEXIST;
2935 		goto out;
2936 	}
2937 	cpufreq_driver = driver_data;
2938 	write_unlock_irqrestore(&cpufreq_driver_lock, flags);
2939 
2940 	if (driver_data->setpolicy)
2941 		driver_data->flags |= CPUFREQ_CONST_LOOPS;
2942 
2943 	if (cpufreq_boost_supported()) {
2944 		ret = create_boost_sysfs_file();
2945 		if (ret)
2946 			goto err_null_driver;
2947 	}
2948 
2949 	/*
2950 	 * Mark support for the scheduler's frequency invariance engine for
2951 	 * drivers that implement target(), target_index() or fast_switch().
2952 	 */
2953 	if (!cpufreq_driver->setpolicy) {
2954 		static_branch_enable_cpuslocked(&cpufreq_freq_invariance);
2955 		pr_debug("cpufreq: supports frequency invariance\n");
2956 	}
2957 
2958 	ret = subsys_interface_register(&cpufreq_interface);
2959 	if (ret)
2960 		goto err_boost_unreg;
2961 
2962 	if (unlikely(list_empty(&cpufreq_policy_list))) {
2963 		/* if all ->init() calls failed, unregister */
2964 		ret = -ENODEV;
2965 		pr_debug("%s: No CPU initialized for driver %s\n", __func__,
2966 			 driver_data->name);
2967 		goto err_if_unreg;
2968 	}
2969 
2970 	ret = cpuhp_setup_state_nocalls_cpuslocked(CPUHP_AP_ONLINE_DYN,
2971 						   "cpufreq:online",
2972 						   cpuhp_cpufreq_online,
2973 						   cpuhp_cpufreq_offline);
2974 	if (ret < 0)
2975 		goto err_if_unreg;
2976 	hp_online = ret;
2977 	ret = 0;
2978 
2979 	pr_debug("driver %s up and running\n", driver_data->name);
2980 	goto out;
2981 
2982 err_if_unreg:
2983 	subsys_interface_unregister(&cpufreq_interface);
2984 err_boost_unreg:
2985 	if (!cpufreq_driver->setpolicy)
2986 		static_branch_disable_cpuslocked(&cpufreq_freq_invariance);
2987 	remove_boost_sysfs_file();
2988 err_null_driver:
2989 	write_lock_irqsave(&cpufreq_driver_lock, flags);
2990 	cpufreq_driver = NULL;
2991 	write_unlock_irqrestore(&cpufreq_driver_lock, flags);
2992 out:
2993 	cpus_read_unlock();
2994 	return ret;
2995 }
2996 EXPORT_SYMBOL_GPL(cpufreq_register_driver);
2997 
2998 /*
2999  * cpufreq_unregister_driver - unregister the current CPUFreq driver
3000  *
3001  * Unregister the current CPUFreq driver. Only call this if you have
3002  * the right to do so, i.e. if you have succeeded in initialising before!
3003  * Returns zero if successful, and -EINVAL if the cpufreq_driver is
3004  * currently not initialised.
3005  */
3006 void cpufreq_unregister_driver(struct cpufreq_driver *driver)
3007 {
3008 	unsigned long flags;
3009 
3010 	if (WARN_ON(!cpufreq_driver || (driver != cpufreq_driver)))
3011 		return;
3012 
3013 	pr_debug("unregistering driver %s\n", driver->name);
3014 
3015 	/* Protect against concurrent cpu hotplug */
3016 	cpus_read_lock();
3017 	subsys_interface_unregister(&cpufreq_interface);
3018 	remove_boost_sysfs_file();
3019 	static_branch_disable_cpuslocked(&cpufreq_freq_invariance);
3020 	cpuhp_remove_state_nocalls_cpuslocked(hp_online);
3021 
3022 	write_lock_irqsave(&cpufreq_driver_lock, flags);
3023 
3024 	cpufreq_driver = NULL;
3025 
3026 	write_unlock_irqrestore(&cpufreq_driver_lock, flags);
3027 	cpus_read_unlock();
3028 }
3029 EXPORT_SYMBOL_GPL(cpufreq_unregister_driver);
3030 
3031 static int __init cpufreq_core_init(void)
3032 {
3033 	struct cpufreq_governor *gov = cpufreq_default_governor();
3034 	struct device *dev_root;
3035 
3036 	if (cpufreq_disabled())
3037 		return -ENODEV;
3038 
3039 	dev_root = bus_get_dev_root(&cpu_subsys);
3040 	if (dev_root) {
3041 		cpufreq_global_kobject = kobject_create_and_add("cpufreq", &dev_root->kobj);
3042 		put_device(dev_root);
3043 	}
3044 	BUG_ON(!cpufreq_global_kobject);
3045 
3046 	if (!strlen(default_governor))
3047 		strscpy(default_governor, gov->name, CPUFREQ_NAME_LEN);
3048 
3049 	return 0;
3050 }
3051 
3052 static bool cpufreq_policy_is_good_for_eas(unsigned int cpu)
3053 {
3054 	struct cpufreq_policy *policy __free(put_cpufreq_policy) = cpufreq_cpu_get(cpu);
3055 	if (!policy) {
3056 		pr_debug("cpufreq policy not set for CPU: %d\n", cpu);
3057 		return false;
3058 	}
3059 
3060 	return sugov_is_governor(policy);
3061 }
3062 
3063 bool cpufreq_ready_for_eas(const struct cpumask *cpu_mask)
3064 {
3065 	unsigned int cpu;
3066 
3067 	/* Do not attempt EAS if schedutil is not being used. */
3068 	for_each_cpu(cpu, cpu_mask) {
3069 		if (!cpufreq_policy_is_good_for_eas(cpu)) {
3070 			pr_debug("rd %*pbl: schedutil is mandatory for EAS\n",
3071 				 cpumask_pr_args(cpu_mask));
3072 			return false;
3073 		}
3074 	}
3075 
3076 	return true;
3077 }
3078 
3079 module_param(off, int, 0444);
3080 module_param_string(default_governor, default_governor, CPUFREQ_NAME_LEN, 0444);
3081 core_initcall(cpufreq_core_init);
3082