cpufreq.c 50.0 KB
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/*
 *  linux/drivers/cpufreq/cpufreq.c
 *
 *  Copyright (C) 2001 Russell King
 *            (C) 2002 - 2003 Dominik Brodowski <linux@brodo.de>
 *
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 *  Oct 2005 - Ashok Raj <ashok.raj@intel.com>
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 *	Added handling for CPU hotplug
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 *  Feb 2006 - Jacob Shin <jacob.shin@amd.com>
 *	Fix handling for CPU hotplug -- affected CPUs
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 *
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 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License version 2 as
 * published by the Free Software Foundation.
 *
 */

#include <linux/kernel.h>
#include <linux/module.h>
#include <linux/init.h>
#include <linux/notifier.h>
#include <linux/cpufreq.h>
#include <linux/delay.h>
#include <linux/interrupt.h>
#include <linux/spinlock.h>
#include <linux/device.h>
#include <linux/slab.h>
#include <linux/cpu.h>
#include <linux/completion.h>
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#include <linux/mutex.h>
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#define dprintk(msg...) cpufreq_debug_printk(CPUFREQ_DEBUG_CORE, \
						"cpufreq-core", msg)
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/**
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 * The "cpufreq driver" - the arch- or hardware-dependent low
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 * level driver of CPUFreq support, and its spinlock. This lock
 * also protects the cpufreq_cpu_data array.
 */
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static struct cpufreq_driver *cpufreq_driver;
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static DEFINE_PER_CPU(struct cpufreq_policy *, cpufreq_cpu_data);
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#ifdef CONFIG_HOTPLUG_CPU
/* This one keeps track of the previously set governor of a removed CPU */
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static DEFINE_PER_CPU(char[CPUFREQ_NAME_LEN], cpufreq_cpu_governor);
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#endif
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static DEFINE_SPINLOCK(cpufreq_driver_lock);

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/*
 * cpu_policy_rwsem is a per CPU reader-writer semaphore designed to cure
 * all cpufreq/hotplug/workqueue/etc related lock issues.
 *
 * The rules for this semaphore:
 * - Any routine that wants to read from the policy structure will
 *   do a down_read on this semaphore.
 * - Any routine that will write to the policy structure and/or may take away
 *   the policy altogether (eg. CPU hotplug), will hold this lock in write
 *   mode before doing so.
 *
 * Additional rules:
 * - All holders of the lock should check to make sure that the CPU they
 *   are concerned with are online after they get the lock.
 * - Governor routines that can be called in cpufreq hotplug path should not
 *   take this sem as top level hotplug notifier handler takes this.
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 * - Lock should not be held across
 *     __cpufreq_governor(data, CPUFREQ_GOV_STOP);
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 */
static DEFINE_PER_CPU(int, policy_cpu);
static DEFINE_PER_CPU(struct rw_semaphore, cpu_policy_rwsem);

#define lock_policy_rwsem(mode, cpu)					\
int lock_policy_rwsem_##mode						\
(int cpu)								\
{									\
	int policy_cpu = per_cpu(policy_cpu, cpu);			\
	BUG_ON(policy_cpu == -1);					\
	down_##mode(&per_cpu(cpu_policy_rwsem, policy_cpu));		\
	if (unlikely(!cpu_online(cpu))) {				\
		up_##mode(&per_cpu(cpu_policy_rwsem, policy_cpu));	\
		return -1;						\
	}								\
									\
	return 0;							\
}

lock_policy_rwsem(read, cpu);
EXPORT_SYMBOL_GPL(lock_policy_rwsem_read);

lock_policy_rwsem(write, cpu);
EXPORT_SYMBOL_GPL(lock_policy_rwsem_write);

void unlock_policy_rwsem_read(int cpu)
{
	int policy_cpu = per_cpu(policy_cpu, cpu);
	BUG_ON(policy_cpu == -1);
	up_read(&per_cpu(cpu_policy_rwsem, policy_cpu));
}
EXPORT_SYMBOL_GPL(unlock_policy_rwsem_read);

void unlock_policy_rwsem_write(int cpu)
{
	int policy_cpu = per_cpu(policy_cpu, cpu);
	BUG_ON(policy_cpu == -1);
	up_write(&per_cpu(cpu_policy_rwsem, policy_cpu));
}
EXPORT_SYMBOL_GPL(unlock_policy_rwsem_write);


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/* internal prototypes */
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static int __cpufreq_governor(struct cpufreq_policy *policy,
		unsigned int event);
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static unsigned int __cpufreq_get(unsigned int cpu);
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static void handle_update(struct work_struct *work);
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/**
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 * Two notifier lists: the "policy" list is involved in the
 * validation process for a new CPU frequency policy; the
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 * "transition" list for kernel code that needs to handle
 * changes to devices when the CPU clock speed changes.
 * The mutex locks both lists.
 */
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static BLOCKING_NOTIFIER_HEAD(cpufreq_policy_notifier_list);
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static struct srcu_notifier_head cpufreq_transition_notifier_list;
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static bool init_cpufreq_transition_notifier_list_called;
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static int __init init_cpufreq_transition_notifier_list(void)
{
	srcu_init_notifier_head(&cpufreq_transition_notifier_list);
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	init_cpufreq_transition_notifier_list_called = true;
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	return 0;
}
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pure_initcall(init_cpufreq_transition_notifier_list);
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static LIST_HEAD(cpufreq_governor_list);
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static DEFINE_MUTEX(cpufreq_governor_mutex);
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struct cpufreq_policy *cpufreq_cpu_get(unsigned int cpu)
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{
	struct cpufreq_policy *data;
	unsigned long flags;

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	if (cpu >= nr_cpu_ids)
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		goto err_out;

	/* get the cpufreq driver */
	spin_lock_irqsave(&cpufreq_driver_lock, flags);

	if (!cpufreq_driver)
		goto err_out_unlock;

	if (!try_module_get(cpufreq_driver->owner))
		goto err_out_unlock;


	/* get the CPU */
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	data = per_cpu(cpufreq_cpu_data, cpu);
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	if (!data)
		goto err_out_put_module;

	if (!kobject_get(&data->kobj))
		goto err_out_put_module;

	spin_unlock_irqrestore(&cpufreq_driver_lock, flags);
	return data;

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err_out_put_module:
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	module_put(cpufreq_driver->owner);
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err_out_unlock:
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	spin_unlock_irqrestore(&cpufreq_driver_lock, flags);
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err_out:
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	return NULL;
}
EXPORT_SYMBOL_GPL(cpufreq_cpu_get);

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void cpufreq_cpu_put(struct cpufreq_policy *data)
{
	kobject_put(&data->kobj);
	module_put(cpufreq_driver->owner);
}
EXPORT_SYMBOL_GPL(cpufreq_cpu_put);


/*********************************************************************
 *                     UNIFIED DEBUG HELPERS                         *
 *********************************************************************/
#ifdef CONFIG_CPU_FREQ_DEBUG

/* what part(s) of the CPUfreq subsystem are debugged? */
static unsigned int debug;

/* is the debug output ratelimit'ed using printk_ratelimit? User can
 * set or modify this value.
 */
static unsigned int debug_ratelimit = 1;

/* is the printk_ratelimit'ing enabled? It's enabled after a successful
 * loading of a cpufreq driver, temporarily disabled when a new policy
 * is set, and disabled upon cpufreq driver removal
 */
static unsigned int disable_ratelimit = 1;
static DEFINE_SPINLOCK(disable_ratelimit_lock);

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static void cpufreq_debug_enable_ratelimit(void)
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{
	unsigned long flags;

	spin_lock_irqsave(&disable_ratelimit_lock, flags);
	if (disable_ratelimit)
		disable_ratelimit--;
	spin_unlock_irqrestore(&disable_ratelimit_lock, flags);
}

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static void cpufreq_debug_disable_ratelimit(void)
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{
	unsigned long flags;

	spin_lock_irqsave(&disable_ratelimit_lock, flags);
	disable_ratelimit++;
	spin_unlock_irqrestore(&disable_ratelimit_lock, flags);
}

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void cpufreq_debug_printk(unsigned int type, const char *prefix,
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			const char *fmt, ...)
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{
	char s[256];
	va_list args;
	unsigned int len;
	unsigned long flags;
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	WARN_ON(!prefix);
	if (type & debug) {
		spin_lock_irqsave(&disable_ratelimit_lock, flags);
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		if (!disable_ratelimit && debug_ratelimit
					&& !printk_ratelimit()) {
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			spin_unlock_irqrestore(&disable_ratelimit_lock, flags);
			return;
		}
		spin_unlock_irqrestore(&disable_ratelimit_lock, flags);

		len = snprintf(s, 256, KERN_DEBUG "%s: ", prefix);

		va_start(args, fmt);
		len += vsnprintf(&s[len], (256 - len), fmt, args);
		va_end(args);

		printk(s);

		WARN_ON(len < 5);
	}
}
EXPORT_SYMBOL(cpufreq_debug_printk);


module_param(debug, uint, 0644);
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MODULE_PARM_DESC(debug, "CPUfreq debugging: add 1 to debug core,"
			" 2 to debug drivers, and 4 to debug governors.");
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module_param(debug_ratelimit, uint, 0644);
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MODULE_PARM_DESC(debug_ratelimit, "CPUfreq debugging:"
					" set to 0 to disable ratelimiting.");
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#else /* !CONFIG_CPU_FREQ_DEBUG */

static inline void cpufreq_debug_enable_ratelimit(void) { return; }
static inline void cpufreq_debug_disable_ratelimit(void) { return; }

#endif /* CONFIG_CPU_FREQ_DEBUG */


/*********************************************************************
 *            EXTERNALLY AFFECTING FREQUENCY CHANGES                 *
 *********************************************************************/

/**
 * adjust_jiffies - adjust the system "loops_per_jiffy"
 *
 * This function alters the system "loops_per_jiffy" for the clock
 * speed change. Note that loops_per_jiffy cannot be updated on SMP
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 * systems as each CPU might be scaled differently. So, use the arch
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 * per-CPU loops_per_jiffy value wherever possible.
 */
#ifndef CONFIG_SMP
static unsigned long l_p_j_ref;
static unsigned int  l_p_j_ref_freq;

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static void adjust_jiffies(unsigned long val, struct cpufreq_freqs *ci)
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{
	if (ci->flags & CPUFREQ_CONST_LOOPS)
		return;

	if (!l_p_j_ref_freq) {
		l_p_j_ref = loops_per_jiffy;
		l_p_j_ref_freq = ci->old;
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		dprintk("saving %lu as reference value for loops_per_jiffy; "
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			"freq is %u kHz\n", l_p_j_ref, l_p_j_ref_freq);
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	}
	if ((val == CPUFREQ_PRECHANGE  && ci->old < ci->new) ||
	    (val == CPUFREQ_POSTCHANGE && ci->old > ci->new) ||
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	    (val == CPUFREQ_RESUMECHANGE || val == CPUFREQ_SUSPENDCHANGE)) {
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		loops_per_jiffy = cpufreq_scale(l_p_j_ref, l_p_j_ref_freq,
								ci->new);
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		dprintk("scaling loops_per_jiffy to %lu "
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			"for frequency %u kHz\n", loops_per_jiffy, ci->new);
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	}
}
#else
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static inline void adjust_jiffies(unsigned long val, struct cpufreq_freqs *ci)
{
	return;
}
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#endif


/**
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 * cpufreq_notify_transition - call notifier chain and adjust_jiffies
 * on frequency transition.
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 *
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 * This function calls the transition notifiers and the "adjust_jiffies"
 * function. It is called twice on all CPU frequency changes that have
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 * external effects.
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 */
void cpufreq_notify_transition(struct cpufreq_freqs *freqs, unsigned int state)
{
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	struct cpufreq_policy *policy;

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	BUG_ON(irqs_disabled());

	freqs->flags = cpufreq_driver->flags;
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	dprintk("notification %u of frequency transition to %u kHz\n",
		state, freqs->new);
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	policy = per_cpu(cpufreq_cpu_data, freqs->cpu);
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	switch (state) {
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	case CPUFREQ_PRECHANGE:
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		/* detect if the driver reported a value as "old frequency"
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		 * which is not equal to what the cpufreq core thinks is
		 * "old frequency".
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		 */
		if (!(cpufreq_driver->flags & CPUFREQ_CONST_LOOPS)) {
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			if ((policy) && (policy->cpu == freqs->cpu) &&
			    (policy->cur) && (policy->cur != freqs->old)) {
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				dprintk("Warning: CPU frequency is"
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					" %u, cpufreq assumed %u kHz.\n",
					freqs->old, policy->cur);
				freqs->old = policy->cur;
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			}
		}
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		srcu_notifier_call_chain(&cpufreq_transition_notifier_list,
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				CPUFREQ_PRECHANGE, freqs);
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		adjust_jiffies(CPUFREQ_PRECHANGE, freqs);
		break;
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	case CPUFREQ_POSTCHANGE:
		adjust_jiffies(CPUFREQ_POSTCHANGE, freqs);
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		srcu_notifier_call_chain(&cpufreq_transition_notifier_list,
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				CPUFREQ_POSTCHANGE, freqs);
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		if (likely(policy) && likely(policy->cpu == freqs->cpu))
			policy->cur = freqs->new;
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		break;
	}
}
EXPORT_SYMBOL_GPL(cpufreq_notify_transition);



/*********************************************************************
 *                          SYSFS INTERFACE                          *
 *********************************************************************/

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static struct cpufreq_governor *__find_governor(const char *str_governor)
{
	struct cpufreq_governor *t;

	list_for_each_entry(t, &cpufreq_governor_list, governor_list)
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		if (!strnicmp(str_governor, t->name, CPUFREQ_NAME_LEN))
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			return t;

	return NULL;
}

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/**
 * cpufreq_parse_governor - parse a governor string
 */
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static int cpufreq_parse_governor(char *str_governor, unsigned int *policy,
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				struct cpufreq_governor **governor)
{
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	int err = -EINVAL;

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	if (!cpufreq_driver)
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		goto out;

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	if (cpufreq_driver->setpolicy) {
		if (!strnicmp(str_governor, "performance", CPUFREQ_NAME_LEN)) {
			*policy = CPUFREQ_POLICY_PERFORMANCE;
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			err = 0;
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		} else if (!strnicmp(str_governor, "powersave",
						CPUFREQ_NAME_LEN)) {
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			*policy = CPUFREQ_POLICY_POWERSAVE;
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			err = 0;
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		}
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	} else if (cpufreq_driver->target) {
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		struct cpufreq_governor *t;
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		mutex_lock(&cpufreq_governor_mutex);
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		t = __find_governor(str_governor);

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		if (t == NULL) {
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			char *name = kasprintf(GFP_KERNEL, "cpufreq_%s",
								str_governor);
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			if (name) {
				int ret;

				mutex_unlock(&cpufreq_governor_mutex);
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				ret = request_module("%s", name);
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				mutex_lock(&cpufreq_governor_mutex);

				if (ret == 0)
					t = __find_governor(str_governor);
			}

			kfree(name);
		}

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		if (t != NULL) {
			*governor = t;
			err = 0;
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		}
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		mutex_unlock(&cpufreq_governor_mutex);
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	}
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out:
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	return err;
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}


/**
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 * cpufreq_per_cpu_attr_read() / show_##file_name() -
 * print out cpufreq information
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 *
 * Write out information from cpufreq_driver->policy[cpu]; object must be
 * "unsigned int".
 */

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#define show_one(file_name, object)			\
static ssize_t show_##file_name				\
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(struct cpufreq_policy *policy, char *buf)		\
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{							\
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	return sprintf(buf, "%u\n", policy->object);	\
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}

show_one(cpuinfo_min_freq, cpuinfo.min_freq);
show_one(cpuinfo_max_freq, cpuinfo.max_freq);
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show_one(cpuinfo_transition_latency, cpuinfo.transition_latency);
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show_one(scaling_min_freq, min);
show_one(scaling_max_freq, max);
show_one(scaling_cur_freq, cur);

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static int __cpufreq_set_policy(struct cpufreq_policy *data,
				struct cpufreq_policy *policy);
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/**
 * cpufreq_per_cpu_attr_write() / store_##file_name() - sysfs write access
 */
#define store_one(file_name, object)			\
static ssize_t store_##file_name					\
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(struct cpufreq_policy *policy, const char *buf, size_t count)		\
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{									\
	unsigned int ret = -EINVAL;					\
	struct cpufreq_policy new_policy;				\
									\
	ret = cpufreq_get_policy(&new_policy, policy->cpu);		\
	if (ret)							\
		return -EINVAL;						\
									\
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	ret = sscanf(buf, "%u", &new_policy.object);			\
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	if (ret != 1)							\
		return -EINVAL;						\
									\
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	ret = __cpufreq_set_policy(policy, &new_policy);		\
	policy->user_policy.object = policy->object;			\
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									\
	return ret ? ret : count;					\
}

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store_one(scaling_min_freq, min);
store_one(scaling_max_freq, max);
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/**
 * show_cpuinfo_cur_freq - current CPU frequency as detected by hardware
 */
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static ssize_t show_cpuinfo_cur_freq(struct cpufreq_policy *policy,
					char *buf)
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{
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	unsigned int cur_freq = __cpufreq_get(policy->cpu);
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	if (!cur_freq)
		return sprintf(buf, "<unknown>");
	return sprintf(buf, "%u\n", cur_freq);
}


/**
 * show_scaling_governor - show the current policy for the specified CPU
 */
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static ssize_t show_scaling_governor(struct cpufreq_policy *policy, char *buf)
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{
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	if (policy->policy == CPUFREQ_POLICY_POWERSAVE)
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		return sprintf(buf, "powersave\n");
	else if (policy->policy == CPUFREQ_POLICY_PERFORMANCE)
		return sprintf(buf, "performance\n");
	else if (policy->governor)
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		return scnprintf(buf, CPUFREQ_NAME_LEN, "%s\n",
				policy->governor->name);
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	return -EINVAL;
}


/**
 * store_scaling_governor - store policy for the specified CPU
 */
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static ssize_t store_scaling_governor(struct cpufreq_policy *policy,
					const char *buf, size_t count)
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{
	unsigned int ret = -EINVAL;
	char	str_governor[16];
	struct cpufreq_policy new_policy;

	ret = cpufreq_get_policy(&new_policy, policy->cpu);
	if (ret)
		return ret;

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	ret = sscanf(buf, "%15s", str_governor);
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	if (ret != 1)
		return -EINVAL;

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	if (cpufreq_parse_governor(str_governor, &new_policy.policy,
						&new_policy.governor))
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		return -EINVAL;

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	/* Do not use cpufreq_set_policy here or the user_policy.max
	   will be wrongly overridden */
	ret = __cpufreq_set_policy(policy, &new_policy);

	policy->user_policy.policy = policy->policy;
	policy->user_policy.governor = policy->governor;

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	if (ret)
		return ret;
	else
		return count;
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}

/**
 * show_scaling_driver - show the cpufreq driver currently loaded
 */
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static ssize_t show_scaling_driver(struct cpufreq_policy *policy, char *buf)
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{
	return scnprintf(buf, CPUFREQ_NAME_LEN, "%s\n", cpufreq_driver->name);
}

/**
 * show_scaling_available_governors - show the available CPUfreq governors
 */
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static ssize_t show_scaling_available_governors(struct cpufreq_policy *policy,
						char *buf)
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{
	ssize_t i = 0;
	struct cpufreq_governor *t;

	if (!cpufreq_driver->target) {
		i += sprintf(buf, "performance powersave");
		goto out;
	}

	list_for_each_entry(t, &cpufreq_governor_list, governor_list) {
579 580
		if (i >= (ssize_t) ((PAGE_SIZE / sizeof(char))
		    - (CPUFREQ_NAME_LEN + 2)))
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			goto out;
		i += scnprintf(&buf[i], CPUFREQ_NAME_LEN, "%s ", t->name);
	}
584
out:
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	i += sprintf(&buf[i], "\n");
	return i;
}
588

589
static ssize_t show_cpus(const struct cpumask *mask, char *buf)
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{
	ssize_t i = 0;
	unsigned int cpu;

594
	for_each_cpu(cpu, mask) {
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		if (i)
			i += scnprintf(&buf[i], (PAGE_SIZE - i - 2), " ");
		i += scnprintf(&buf[i], (PAGE_SIZE - i - 2), "%u", cpu);
		if (i >= (PAGE_SIZE - 5))
599
			break;
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	}
	i += sprintf(&buf[i], "\n");
	return i;
}

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/**
 * show_related_cpus - show the CPUs affected by each transition even if
 * hw coordination is in use
 */
static ssize_t show_related_cpus(struct cpufreq_policy *policy, char *buf)
{
611
	if (cpumask_empty(policy->related_cpus))
612 613 614 615 616 617 618 619 620 621 622 623
		return show_cpus(policy->cpus, buf);
	return show_cpus(policy->related_cpus, buf);
}

/**
 * show_affected_cpus - show the CPUs affected by each transition
 */
static ssize_t show_affected_cpus(struct cpufreq_policy *policy, char *buf)
{
	return show_cpus(policy->cpus, buf);
}

624
static ssize_t store_scaling_setspeed(struct cpufreq_policy *policy,
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					const char *buf, size_t count)
626 627 628 629
{
	unsigned int freq = 0;
	unsigned int ret;

630
	if (!policy->governor || !policy->governor->store_setspeed)
631 632 633 634 635 636 637 638 639 640 641 642 643
		return -EINVAL;

	ret = sscanf(buf, "%u", &freq);
	if (ret != 1)
		return -EINVAL;

	policy->governor->store_setspeed(policy, freq);

	return count;
}

static ssize_t show_scaling_setspeed(struct cpufreq_policy *policy, char *buf)
{
644
	if (!policy->governor || !policy->governor->show_setspeed)
645 646 647 648
		return sprintf(buf, "<unsupported>\n");

	return policy->governor->show_setspeed(policy, buf);
}
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#define define_one_ro(_name) \
static struct freq_attr _name = \
__ATTR(_name, 0444, show_##_name, NULL)

#define define_one_ro0400(_name) \
static struct freq_attr _name = \
__ATTR(_name, 0400, show_##_name, NULL)

#define define_one_rw(_name) \
static struct freq_attr _name = \
__ATTR(_name, 0644, show_##_name, store_##_name)

define_one_ro0400(cpuinfo_cur_freq);
define_one_ro(cpuinfo_min_freq);
define_one_ro(cpuinfo_max_freq);
665
define_one_ro(cpuinfo_transition_latency);
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define_one_ro(scaling_available_governors);
define_one_ro(scaling_driver);
define_one_ro(scaling_cur_freq);
669
define_one_ro(related_cpus);
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define_one_ro(affected_cpus);
define_one_rw(scaling_min_freq);
define_one_rw(scaling_max_freq);
define_one_rw(scaling_governor);
674
define_one_rw(scaling_setspeed);
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static struct attribute *default_attrs[] = {
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	&cpuinfo_min_freq.attr,
	&cpuinfo_max_freq.attr,
679
	&cpuinfo_transition_latency.attr,
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	&scaling_min_freq.attr,
	&scaling_max_freq.attr,
	&affected_cpus.attr,
683
	&related_cpus.attr,
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	&scaling_governor.attr,
	&scaling_driver.attr,
	&scaling_available_governors.attr,
687
	&scaling_setspeed.attr,
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	NULL
};

691 692 693
struct kobject *cpufreq_global_kobject;
EXPORT_SYMBOL(cpufreq_global_kobject);

694 695
#define to_policy(k) container_of(k, struct cpufreq_policy, kobj)
#define to_attr(a) container_of(a, struct freq_attr, attr)
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697
static ssize_t show(struct kobject *kobj, struct attribute *attr, char *buf)
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{
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	struct cpufreq_policy *policy = to_policy(kobj);
	struct freq_attr *fattr = to_attr(attr);
701
	ssize_t ret = -EINVAL;
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	policy = cpufreq_cpu_get(policy->cpu);
	if (!policy)
704
		goto no_policy;
705 706

	if (lock_policy_rwsem_read(policy->cpu) < 0)
707
		goto fail;
708

709 710 711 712 713
	if (fattr->show)
		ret = fattr->show(policy, buf);
	else
		ret = -EIO;

714
	unlock_policy_rwsem_read(policy->cpu);
715
fail:
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	cpufreq_cpu_put(policy);
717
no_policy:
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	return ret;
}

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static ssize_t store(struct kobject *kobj, struct attribute *attr,
		     const char *buf, size_t count)
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{
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	struct cpufreq_policy *policy = to_policy(kobj);
	struct freq_attr *fattr = to_attr(attr);
726
	ssize_t ret = -EINVAL;
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	policy = cpufreq_cpu_get(policy->cpu);
	if (!policy)
729
		goto no_policy;
730 731

	if (lock_policy_rwsem_write(policy->cpu) < 0)
732
		goto fail;
733

734 735 736 737 738
	if (fattr->store)
		ret = fattr->store(policy, buf, count);
	else
		ret = -EIO;

739
	unlock_policy_rwsem_write(policy->cpu);
740
fail:
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	cpufreq_cpu_put(policy);
742
no_policy:
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	return ret;
}

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static void cpufreq_sysfs_release(struct kobject *kobj)
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{
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	struct cpufreq_policy *policy = to_policy(kobj);
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	dprintk("last reference is dropped\n");
	complete(&policy->kobj_unregister);
}

static struct sysfs_ops sysfs_ops = {
	.show	= show,
	.store	= store,
};

static struct kobj_type ktype_cpufreq = {
	.sysfs_ops	= &sysfs_ops,
	.default_attrs	= default_attrs,
	.release	= cpufreq_sysfs_release,
};

764 765 766 767 768 769
/*
 * Returns:
 *   Negative: Failure
 *   0:        Success
 *   Positive: When we have a managed CPU and the sysfs got symlinked
 */
770 771 772 773 774 775 776 777
int cpufreq_add_dev_policy(unsigned int cpu, struct cpufreq_policy *policy,
		struct sys_device *sys_dev)
{
	int ret = 0;
#ifdef CONFIG_SMP
	unsigned long flags;
	unsigned int j;
#ifdef CONFIG_HOTPLUG_CPU
778 779 780 781 782
	struct cpufreq_governor *gov;

	gov = __find_governor(per_cpu(cpufreq_cpu_governor, cpu));
	if (gov) {
		policy->governor = gov;
783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831
		dprintk("Restoring governor %s for cpu %d\n",
		       policy->governor->name, cpu);
	}
#endif

	for_each_cpu(j, policy->cpus) {
		struct cpufreq_policy *managed_policy;

		if (cpu == j)
			continue;

		/* Check for existing affected CPUs.
		 * They may not be aware of it due to CPU Hotplug.
		 * cpufreq_cpu_put is called when the device is removed
		 * in __cpufreq_remove_dev()
		 */
		managed_policy = cpufreq_cpu_get(j);
		if (unlikely(managed_policy)) {

			/* Set proper policy_cpu */
			unlock_policy_rwsem_write(cpu);
			per_cpu(policy_cpu, cpu) = managed_policy->cpu;

			if (lock_policy_rwsem_write(cpu) < 0) {
				/* Should not go through policy unlock path */
				if (cpufreq_driver->exit)
					cpufreq_driver->exit(policy);
				cpufreq_cpu_put(managed_policy);
				return -EBUSY;
			}

			spin_lock_irqsave(&cpufreq_driver_lock, flags);
			cpumask_copy(managed_policy->cpus, policy->cpus);
			per_cpu(cpufreq_cpu_data, cpu) = managed_policy;
			spin_unlock_irqrestore(&cpufreq_driver_lock, flags);

			dprintk("CPU already managed, adding link\n");
			ret = sysfs_create_link(&sys_dev->kobj,
						&managed_policy->kobj,
						"cpufreq");
			if (ret)
				cpufreq_cpu_put(managed_policy);
			/*
			 * Success. We only needed to be added to the mask.
			 * Call driver->exit() because only the cpu parent of
			 * the kobj needed to call init().
			 */
			if (cpufreq_driver->exit)
				cpufreq_driver->exit(policy);
832 833 834 835 836

			if (!ret)
				return 1;
			else
				return ret;
837 838 839 840 841 842 843
		}
	}
#endif
	return ret;
}


844 845 846 847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871
/* symlink affected CPUs */
int cpufreq_add_dev_symlink(unsigned int cpu, struct cpufreq_policy *policy)
{
	unsigned int j;
	int ret = 0;

	for_each_cpu(j, policy->cpus) {
		struct cpufreq_policy *managed_policy;
		struct sys_device *cpu_sys_dev;

		if (j == cpu)
			continue;
		if (!cpu_online(j))
			continue;

		dprintk("CPU %u already managed, adding link\n", j);
		managed_policy = cpufreq_cpu_get(cpu);
		cpu_sys_dev = get_cpu_sysdev(j);
		ret = sysfs_create_link(&cpu_sys_dev->kobj, &policy->kobj,
					"cpufreq");
		if (ret) {
			cpufreq_cpu_put(managed_policy);
			return ret;
		}
	}
	return ret;
}

872 873 874
int cpufreq_add_dev_interface(unsigned int cpu, struct cpufreq_policy *policy,
		struct sys_device *sys_dev)
{
875
	struct cpufreq_policy new_policy;
876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915
	struct freq_attr **drv_attr;
	unsigned long flags;
	int ret = 0;
	unsigned int j;

	/* prepare interface data */
	ret = kobject_init_and_add(&policy->kobj, &ktype_cpufreq,
				   &sys_dev->kobj, "cpufreq");
	if (ret)
		return ret;

	/* set up files for this cpu device */
	drv_attr = cpufreq_driver->attr;
	while ((drv_attr) && (*drv_attr)) {
		ret = sysfs_create_file(&policy->kobj, &((*drv_attr)->attr));
		if (ret)
			goto err_out_kobj_put;
		drv_attr++;
	}
	if (cpufreq_driver->get) {
		ret = sysfs_create_file(&policy->kobj, &cpuinfo_cur_freq.attr);
		if (ret)
			goto err_out_kobj_put;
	}
	if (cpufreq_driver->target) {
		ret = sysfs_create_file(&policy->kobj, &scaling_cur_freq.attr);
		if (ret)
			goto err_out_kobj_put;
	}

	spin_lock_irqsave(&cpufreq_driver_lock, flags);
	for_each_cpu(j, policy->cpus) {
	if (!cpu_online(j))
		continue;
		per_cpu(cpufreq_cpu_data, j) = policy;
		per_cpu(policy_cpu, j) = policy->cpu;
	}
	spin_unlock_irqrestore(&cpufreq_driver_lock, flags);

	ret = cpufreq_add_dev_symlink(cpu, policy);
916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932
	if (ret)
		goto err_out_kobj_put;

	memcpy(&new_policy, policy, sizeof(struct cpufreq_policy));
	/* assure that the starting sequence is run in __cpufreq_set_policy */
	policy->governor = NULL;

	/* set default policy */
	ret = __cpufreq_set_policy(policy, &new_policy);
	policy->user_policy.policy = policy->policy;
	policy->user_policy.governor = policy->governor;

	if (ret) {
		dprintk("setting policy failed\n");
		if (cpufreq_driver->exit)
			cpufreq_driver->exit(policy);
	}
933 934 935 936 937 938 939 940
	return ret;

err_out_kobj_put:
	kobject_put(&policy->kobj);
	wait_for_completion(&policy->kobj_unregister);
	return ret;
}

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/**
 * cpufreq_add_dev - add a CPU device
 *
945
 * Adds the cpufreq interface for a CPU device.
946 947 948 949
 *
 * The Oracle says: try running cpufreq registration/unregistration concurrently
 * with with cpu hotplugging and all hell will break loose. Tried to clean this
 * mess up, but more thorough testing is needed. - Mathieu
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 */
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static int cpufreq_add_dev(struct sys_device *sys_dev)
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{
	unsigned int cpu = sys_dev->id;
954
	int ret = 0, found = 0;
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	struct cpufreq_policy *policy;
	unsigned long flags;
	unsigned int j;
958 959 960
#ifdef CONFIG_HOTPLUG_CPU
	int sibling;
#endif
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962 963 964
	if (cpu_is_offline(cpu))
		return 0;

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	cpufreq_debug_disable_ratelimit();
	dprintk("adding CPU %u\n", cpu);

#ifdef CONFIG_SMP
	/* check whether a different CPU already registered this
	 * CPU because it is in the same boat. */
	policy = cpufreq_cpu_get(cpu);
	if (unlikely(policy)) {
973
		cpufreq_cpu_put(policy);
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		cpufreq_debug_enable_ratelimit();
		return 0;
	}
#endif

	if (!try_module_get(cpufreq_driver->owner)) {
		ret = -EINVAL;
		goto module_out;
	}

984
	ret = -ENOMEM;
985
	policy = kzalloc(sizeof(struct cpufreq_policy), GFP_KERNEL);
986
	if (!policy)
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		goto nomem_out;
988 989

	if (!alloc_cpumask_var(&policy->cpus, GFP_KERNEL))
990
		goto err_free_policy;
991 992

	if (!zalloc_cpumask_var(&policy->related_cpus, GFP_KERNEL))
993
		goto err_free_cpumask;
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	policy->cpu = cpu;
996
	cpumask_copy(policy->cpus, cpumask_of(cpu));
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998 999
	/* Initially set CPU itself as the policy_cpu */
	per_cpu(policy_cpu, cpu) = cpu;
1000 1001
	ret = (lock_policy_rwsem_write(cpu) < 0);
	WARN_ON(ret);
1002

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	init_completion(&policy->kobj_unregister);
1004
	INIT_WORK(&policy->update, handle_update);
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1006
	/* Set governor before ->init, so that driver could check it */
1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019
#ifdef CONFIG_HOTPLUG_CPU
	for_each_online_cpu(sibling) {
		struct cpufreq_policy *cp = per_cpu(cpufreq_cpu_data, sibling);
		if (cp && cp->governor &&
		    (cpumask_test_cpu(cpu, cp->related_cpus))) {
			policy->governor = cp->governor;
			found = 1;
			break;
		}
	}
#endif
	if (!found)
		policy->governor = CPUFREQ_DEFAULT_GOVERNOR;
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	/* call driver. From then on the cpufreq must be able
	 * to accept all calls to ->verify and ->setpolicy for this CPU
	 */
	ret = cpufreq_driver->init(policy);
	if (ret) {
		dprintk("initialization failed\n");
1026
		goto err_unlock_policy;
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	}
1028 1029
	policy->user_policy.min = policy->min;
	policy->user_policy.max = policy->max;
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1031 1032 1033
	blocking_notifier_call_chain(&cpufreq_policy_notifier_list,
				     CPUFREQ_START, policy);

1034
	ret = cpufreq_add_dev_policy(cpu, policy, sys_dev);
1035 1036 1037 1038 1039
	if (ret) {
		if (ret > 0)
			/* This is a managed cpu, symlink created,
			   exit with 0 */
			ret = 0;
1040
		goto err_unlock_policy;
1041
	}
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1043
	ret = cpufreq_add_dev_interface(cpu, policy, sys_dev);
1044 1045
	if (ret)
		goto err_out_unregister;
1046

1047 1048
	unlock_policy_rwsem_write(cpu);

1049
	kobject_uevent(&policy->kobj, KOBJ_ADD);
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	module_put(cpufreq_driver->owner);
	dprintk("initialization complete\n");
	cpufreq_debug_enable_ratelimit();
1053

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	return 0;


err_out_unregister:
	spin_lock_irqsave(&cpufreq_driver_lock, flags);
1059
	for_each_cpu(j, policy->cpus)
1060
		per_cpu(cpufreq_cpu_data, j) = NULL;
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	spin_unlock_irqrestore(&cpufreq_driver_lock, flags);

1063
	kobject_put(&policy->kobj);
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	wait_for_completion(&policy->kobj_unregister);

1066
err_unlock_policy:
1067
	unlock_policy_rwsem_write(cpu);
1068 1069 1070
err_free_cpumask:
	free_cpumask_var(policy->cpus);
err_free_policy:
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1071 1072 1073
	kfree(policy);
nomem_out:
	module_put(cpufreq_driver->owner);
1074
module_out:
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1075 1076 1077 1078 1079 1080
	cpufreq_debug_enable_ratelimit();
	return ret;
}


/**
1081
 * __cpufreq_remove_dev - remove a CPU device
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1082 1083
 *
 * Removes the cpufreq interface for a CPU device.
1084 1085
 * Caller should already have policy_rwsem in write mode for this CPU.
 * This routine frees the rwsem before returning.
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 */
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static int __cpufreq_remove_dev(struct sys_device *sys_dev)
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1088 1089 1090 1091 1092
{
	unsigned int cpu = sys_dev->id;
	unsigned long flags;
	struct cpufreq_policy *data;
#ifdef CONFIG_SMP
1093
	struct sys_device *cpu_sys_dev;
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1094 1095 1096 1097 1098 1099 1100
	unsigned int j;
#endif

	cpufreq_debug_disable_ratelimit();
	dprintk("unregistering CPU %u\n", cpu);

	spin_lock_irqsave(&cpufreq_driver_lock, flags);
1101
	data = per_cpu(cpufreq_cpu_data, cpu);
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	if (!data) {
		spin_unlock_irqrestore(&cpufreq_driver_lock, flags);
		cpufreq_debug_enable_ratelimit();
1106
		unlock_policy_rwsem_write(cpu);
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		return -EINVAL;
	}
1109
	per_cpu(cpufreq_cpu_data, cpu) = NULL;
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#ifdef CONFIG_SMP
	/* if this isn't the CPU which is the parent of the kobj, we
1114
	 * only need to unlink, put and exit
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	 */
	if (unlikely(cpu != data->cpu)) {
		dprintk("removing link\n");
1118
		cpumask_clear_cpu(cpu, data->cpus);
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		spin_unlock_irqrestore(&cpufreq_driver_lock, flags);
		sysfs_remove_link(&sys_dev->kobj, "cpufreq");
		cpufreq_cpu_put(data);
		cpufreq_debug_enable_ratelimit();
1123
		unlock_policy_rwsem_write(cpu);
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		return 0;
	}
#endif

#ifdef CONFIG_SMP
1129 1130

#ifdef CONFIG_HOTPLUG_CPU
1131 1132
	strncpy(per_cpu(cpufreq_cpu_governor, cpu), data->governor->name,
			CPUFREQ_NAME_LEN);
1133 1134
#endif

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	/* if we have other CPUs still registered, we need to unlink them,
	 * or else wait_for_completion below will lock up. Clean the
1137 1138
	 * per_cpu(cpufreq_cpu_data) while holding the lock, and remove
	 * the sysfs links afterwards.
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	 */
1140 1141
	if (unlikely(cpumask_weight(data->cpus) > 1)) {
		for_each_cpu(j, data->cpus) {
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			if (j == cpu)
				continue;
1144
			per_cpu(cpufreq_cpu_data, j) = NULL;
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		}
	}

	spin_unlock_irqrestore(&cpufreq_driver_lock, flags);

1150 1151
	if (unlikely(cpumask_weight(data->cpus) > 1)) {
		for_each_cpu(j, data->cpus) {
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			if (j == cpu)
				continue;
			dprintk("removing link for cpu %u\n", j);
1155
#ifdef CONFIG_HOTPLUG_CPU
1156 1157
			strncpy(per_cpu(cpufreq_cpu_governor, j),
				data->governor->name, CPUFREQ_NAME_LEN);
1158
#endif
1159 1160
			cpu_sys_dev = get_cpu_sysdev(j);
			sysfs_remove_link(&cpu_sys_dev->kobj, "cpufreq");
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			cpufreq_cpu_put(data);
		}
	}
#else
	spin_unlock_irqrestore(&cpufreq_driver_lock, flags);
#endif

	if (cpufreq_driver->target)
		__cpufreq_governor(data, CPUFREQ_GOV_STOP);
1170

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	kobject_put(&data->kobj);

	/* we need to make sure that the underlying kobj is actually
1174
	 * not referenced anymore by anybody before we proceed with
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	 * unloading.
	 */
	dprintk("waiting for dropping of refcount\n");
	wait_for_completion(&data->kobj_unregister);
	dprintk("wait complete\n");

	if (cpufreq_driver->exit)
		cpufreq_driver->exit(data);

1184 1185
	unlock_policy_rwsem_write(cpu);

1186 1187
	free_cpumask_var(data->related_cpus);
	free_cpumask_var(data->cpus);
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	kfree(data);
1189
	per_cpu(cpufreq_cpu_data, cpu) = NULL;
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	cpufreq_debug_enable_ratelimit();
	return 0;
}


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static int cpufreq_remove_dev(struct sys_device *sys_dev)
1197 1198 1199
{
	unsigned int cpu = sys_dev->id;
	int retval;
1200 1201 1202 1203

	if (cpu_is_offline(cpu))
		return 0;

1204 1205 1206 1207 1208 1209 1210 1211
	if (unlikely(lock_policy_rwsem_write(cpu)))
		BUG();

	retval = __cpufreq_remove_dev(sys_dev);
	return retval;
}


1212
static void handle_update(struct work_struct *work)
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{
1214 1215 1216
	struct cpufreq_policy *policy =
		container_of(work, struct cpufreq_policy, update);
	unsigned int cpu = policy->cpu;
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	dprintk("handle_update for cpu %u called\n", cpu);
	cpufreq_update_policy(cpu);
}

/**
 *	cpufreq_out_of_sync - If actual and saved CPU frequency differs, we're in deep trouble.
 *	@cpu: cpu number
 *	@old_freq: CPU frequency the kernel thinks the CPU runs at
 *	@new_freq: CPU frequency the CPU actually runs at
 *
1227 1228
 *	We adjust to current frequency first, and need to clean up later.
 *	So either call to cpufreq_update_policy() or schedule handle_update()).
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 */
1230 1231
static void cpufreq_out_of_sync(unsigned int cpu, unsigned int old_freq,
				unsigned int new_freq)
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{
	struct cpufreq_freqs freqs;

1235
	dprintk("Warning: CPU frequency out of sync: cpufreq and timing "
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	       "core thinks of %u, is %u kHz.\n", old_freq, new_freq);

	freqs.cpu = cpu;
	freqs.old = old_freq;
	freqs.new = new_freq;
	cpufreq_notify_transition(&freqs, CPUFREQ_PRECHANGE);
	cpufreq_notify_transition(&freqs, CPUFREQ_POSTCHANGE);
}


1246
/**
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 * cpufreq_quick_get - get the CPU frequency (in kHz) from policy->cur
1248 1249 1250 1251 1252 1253 1254 1255
 * @cpu: CPU number
 *
 * This is the last known freq, without actually getting it from the driver.
 * Return value will be same as what is shown in scaling_cur_freq in sysfs.
 */
unsigned int cpufreq_quick_get(unsigned int cpu)
{
	struct cpufreq_policy *policy = cpufreq_cpu_get(cpu);
1256
	unsigned int ret_freq = 0;
1257 1258

	if (policy) {
1259
		ret_freq = policy->cur;
1260 1261 1262
		cpufreq_cpu_put(policy);
	}

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	return ret_freq;
1264 1265 1266 1267
}
EXPORT_SYMBOL(cpufreq_quick_get);


1268
static unsigned int __cpufreq_get(unsigned int cpu)
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{
1270
	struct cpufreq_policy *policy = per_cpu(cpufreq_cpu_data, cpu);
1271
	unsigned int ret_freq = 0;
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	if (!cpufreq_driver->get)
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		return ret_freq;
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1276
	ret_freq = cpufreq_driver->get(cpu);
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1278 1279 1280 1281 1282 1283
	if (ret_freq && policy->cur &&
		!(cpufreq_driver->flags & CPUFREQ_CONST_LOOPS)) {
		/* verify no discrepancy between actual and
					saved value exists */
		if (unlikely(ret_freq != policy->cur)) {
			cpufreq_out_of_sync(cpu, policy->cur, ret_freq);
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			schedule_work(&policy->update);
		}
	}

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	return ret_freq;
1289
}
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1291 1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310
/**
 * cpufreq_get - get the current CPU frequency (in kHz)
 * @cpu: CPU number
 *
 * Get the CPU current (static) CPU frequency
 */
unsigned int cpufreq_get(unsigned int cpu)
{
	unsigned int ret_freq = 0;
	struct cpufreq_policy *policy = cpufreq_cpu_get(cpu);

	if (!policy)
		goto out;

	if (unlikely(lock_policy_rwsem_read(cpu)))
		goto out_policy;

	ret_freq = __cpufreq_get(cpu);

	unlock_policy_rwsem_read(cpu);
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1312 1313 1314
out_policy:
	cpufreq_cpu_put(policy);
out:
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	return ret_freq;
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}
EXPORT_SYMBOL(cpufreq_get);


1320 1321 1322 1323
/**
 *	cpufreq_suspend - let the low level driver prepare for suspend
 */

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static int cpufreq_suspend(struct sys_device *sysdev, pm_message_t pmsg)
1325
{
1326
	int ret = 0;
1327 1328

	int cpu = sysdev->id;
1329 1330
	struct cpufreq_policy *cpu_policy;

1331
	dprintk("suspending cpu %u\n", cpu);
1332 1333 1334 1335 1336 1337 1338 1339 1340 1341 1342 1343 1344 1345

	if (!cpu_online(cpu))
		return 0;

	/* we may be lax here as interrupts are off. Nonetheless
	 * we need to grab the correct cpu policy, as to check
	 * whether we really run on this CPU.
	 */

	cpu_policy = cpufreq_cpu_get(cpu);
	if (!cpu_policy)
		return -EINVAL;

	/* only handle each CPU group once */
1346 1347
	if (unlikely(cpu_policy->cpu != cpu))
		goto out;
1348 1349

	if (cpufreq_driver->suspend) {
1350
		ret = cpufreq_driver->suspend(cpu_policy, pmsg);
1351
		if (ret)
1352 1353 1354 1355
			printk(KERN_ERR "cpufreq: suspend failed in ->suspend "
					"step on CPU %u\n", cpu_policy->cpu);
	}

1356
out:
1357
	cpufreq_cpu_put(cpu_policy);
1358
	return ret;
1359 1360
}

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/**
 *	cpufreq_resume -  restore proper CPU frequency handling after resume
 *
 *	1.) resume CPUfreq hardware support (cpufreq_driver->resume())
1365 1366 1367 1368 1369
 *	2.) schedule call cpufreq_update_policy() ASAP as interrupts are
 *	    restored. It will verify that the current freq is in sync with
 *	    what we believe it to be. This is a bit later than when it
 *	    should be, but nonethteless it's better than calling
 *	    cpufreq_driver->get() here which might re-enable interrupts...
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 */
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static int cpufreq_resume(struct sys_device *sysdev)
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1372
{
1373
	int ret = 0;
1374 1375

	int cpu = sysdev->id;
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	struct cpufreq_policy *cpu_policy;

	dprintk("resuming cpu %u\n", cpu);

	if (!cpu_online(cpu))
		return 0;

	/* we may be lax here as interrupts are off. Nonetheless
	 * we need to grab the correct cpu policy, as to check
	 * whether we really run on this CPU.
	 */

	cpu_policy = cpufreq_cpu_get(cpu);
	if (!cpu_policy)
		return -EINVAL;

	/* only handle each CPU group once */
1393 1394
	if (unlikely(cpu_policy->cpu != cpu))
		goto fail;
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	if (cpufreq_driver->resume) {
		ret = cpufreq_driver->resume(cpu_policy);
		if (ret) {
			printk(KERN_ERR "cpufreq: resume failed in ->resume "
					"step on CPU %u\n", cpu_policy->cpu);
1401
			goto fail;
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		}
	}

	schedule_work(&cpu_policy->update);
1406

1407
fail:
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	cpufreq_cpu_put(cpu_policy);
	return ret;
}

static struct sysdev_driver cpufreq_sysdev_driver = {
	.add		= cpufreq_add_dev,
	.remove		= cpufreq_remove_dev,
1415
	.suspend	= cpufreq_suspend,
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	.resume		= cpufreq_resume,
};


/*********************************************************************
 *                     NOTIFIER LISTS INTERFACE                      *
 *********************************************************************/

/**
 *	cpufreq_register_notifier - register a driver with cpufreq
 *	@nb: notifier function to register
 *      @list: CPUFREQ_TRANSITION_NOTIFIER or CPUFREQ_POLICY_NOTIFIER
 *
1429
 *	Add a driver to one of two lists: either a list of drivers that
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 *      are notified about clock rate changes (once before and once after
 *      the transition), or a list of drivers that are notified about
 *      changes in cpufreq policy.
 *
 *	This function may sleep, and has the same return conditions as
1435
 *	blocking_notifier_chain_register.
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 */
int cpufreq_register_notifier(struct notifier_block *nb, unsigned int list)
{
	int ret;

1441 1442
	WARN_ON(!init_cpufreq_transition_notifier_list_called);

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	switch (list) {
	case CPUFREQ_TRANSITION_NOTIFIER:
1445
		ret = srcu_notifier_chain_register(
1446
				&cpufreq_transition_notifier_list, nb);
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		break;
	case CPUFREQ_POLICY_NOTIFIER:
1449 1450
		ret = blocking_notifier_chain_register(
				&cpufreq_policy_notifier_list, nb);
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		break;
	default:
		ret = -EINVAL;
	}

	return ret;
}
EXPORT_SYMBOL(cpufreq_register_notifier);


/**
 *	cpufreq_unregister_notifier - unregister a driver with cpufreq
 *	@nb: notifier block to be unregistered
 *      @list: CPUFREQ_TRANSITION_NOTIFIER or CPUFREQ_POLICY_NOTIFIER
 *
 *	Remove a driver from the CPU frequency notifier list.
 *
 *	This function may sleep, and has the same return conditions as
1469
 *	blocking_notifier_chain_unregister.
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 */
int cpufreq_unregister_notifier(struct notifier_block *nb, unsigned int list)
{
	int ret;

	switch (list) {
	case CPUFREQ_TRANSITION_NOTIFIER:
1477
		ret = srcu_notifier_chain_unregister(
1478
				&cpufreq_transition_notifier_list, nb);
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		break;
	case CPUFREQ_POLICY_NOTIFIER:
1481 1482
		ret = blocking_notifier_chain_unregister(
				&cpufreq_policy_notifier_list, nb);
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		break;
	default:
		ret = -EINVAL;
	}

	return ret;
}
EXPORT_SYMBOL(cpufreq_unregister_notifier);


/*********************************************************************
 *                              GOVERNORS                            *
 *********************************************************************/


int __cpufreq_driver_target(struct cpufreq_policy *policy,
			    unsigned int target_freq,
			    unsigned int relation)
{
	int retval = -EINVAL;
1503

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	dprintk("target for CPU %u: %u kHz, relation %u\n", policy->cpu,
		target_freq, relation);
	if (cpu_online(policy->cpu) && cpufreq_driver->target)
		retval = cpufreq_driver->target(policy, target_freq, relation);
1508

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	return retval;
}
EXPORT_SYMBOL_GPL(__cpufreq_driver_target);

int cpufreq_driver_target(struct cpufreq_policy *policy,
			  unsigned int target_freq,
			  unsigned int relation)
{
1517
	int ret = -EINVAL;
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	policy = cpufreq_cpu_get(policy->cpu);
	if (!policy)
1521
		goto no_policy;
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1522

1523
	if (unlikely(lock_policy_rwsem_write(policy->cpu)))
1524
		goto fail;
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1525 1526 1527

	ret = __cpufreq_driver_target(policy, target_freq, relation);

1528
	unlock_policy_rwsem_write(policy->cpu);
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1529

1530
fail:
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1531
	cpufreq_cpu_put(policy);
1532
no_policy:
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	return ret;
}
EXPORT_SYMBOL_GPL(cpufreq_driver_target);

1537
int __cpufreq_driver_getavg(struct cpufreq_policy *policy, unsigned int cpu)
1538 1539 1540 1541 1542 1543 1544
{
	int ret = 0;

	policy = cpufreq_cpu_get(policy->cpu);
	if (!policy)
		return -EINVAL;

1545 1546
	if (cpu_online(cpu) && cpufreq_driver->getavg)
		ret = cpufreq_driver->getavg(policy, cpu);
1547 1548 1549 1550

	cpufreq_cpu_put(policy);
	return ret;
}
1551
EXPORT_SYMBOL_GPL(__cpufreq_driver_getavg);
1552

1553 1554 1555
/*
 * when "event" is CPUFREQ_GOV_LIMITS
 */
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1556

1557 1558
static int __cpufreq_governor(struct cpufreq_policy *policy,
					unsigned int event)
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1559
{
1560
	int ret;
1561 1562 1563 1564 1565 1566 1567 1568 1569 1570

	/* Only must be defined when default governor is known to have latency
	   restrictions, like e.g. conservative or ondemand.
	   That this is the case is already ensured in Kconfig
	*/
#ifdef CONFIG_CPU_FREQ_GOV_PERFORMANCE
	struct cpufreq_governor *gov = &cpufreq_gov_performance;
#else
	struct cpufreq_governor *gov = NULL;
#endif
1571 1572 1573 1574

	if (policy->governor->max_transition_latency &&
	    policy->cpuinfo.transition_latency >
	    policy->governor->max_transition_latency) {
1575 1576 1577 1578 1579 1580 1581 1582 1583 1584
		if (!gov)
			return -EINVAL;
		else {
			printk(KERN_WARNING "%s governor failed, too long"
			       " transition latency of HW, fallback"
			       " to %s governor\n",
			       policy->governor->name,
			       gov->name);
			policy->governor = gov;
		}
1585
	}
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	if (!try_module_get(policy->governor->owner))
		return -EINVAL;

1590 1591
	dprintk("__cpufreq_governor for CPU %u, event %u\n",
						policy->cpu, event);
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	ret = policy->governor->governor(policy, event);

1594 1595
	/* we keep one module reference alive for
			each CPU governed by this CPU */
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	if ((event != CPUFREQ_GOV_START) || ret)
		module_put(policy->governor->owner);
	if ((event == CPUFREQ_GOV_STOP) && !ret)
		module_put(policy->governor->owner);

	return ret;
}


int cpufreq_register_governor(struct cpufreq_governor *governor)
{
1607
	int err;
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	if (!governor)
		return -EINVAL;

1612
	mutex_lock(&cpufreq_governor_mutex);
1613

1614 1615 1616 1617
	err = -EBUSY;
	if (__find_governor(governor->name) == NULL) {
		err = 0;
		list_add(&governor->governor_list, &cpufreq_governor_list);
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	}

1620
	mutex_unlock(&cpufreq_governor_mutex);
1621
	return err;
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}
EXPORT_SYMBOL_GPL(cpufreq_register_governor);


void cpufreq_unregister_governor(struct cpufreq_governor *governor)
{
1628 1629 1630 1631
#ifdef CONFIG_HOTPLUG_CPU
	int cpu;
#endif

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	if (!governor)
		return;

1635 1636 1637 1638 1639 1640 1641 1642 1643
#ifdef CONFIG_HOTPLUG_CPU
	for_each_present_cpu(cpu) {
		if (cpu_online(cpu))
			continue;
		if (!strcmp(per_cpu(cpufreq_cpu_governor, cpu), governor->name))
			strcpy(per_cpu(cpufreq_cpu_governor, cpu), "\0");
	}
#endif

1644
	mutex_lock(&cpufreq_governor_mutex);
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	list_del(&governor->governor_list);
1646
	mutex_unlock(&cpufreq_governor_mutex);
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	return;
}
EXPORT_SYMBOL_GPL(cpufreq_unregister_governor);



/*********************************************************************
 *                          POLICY INTERFACE                         *
 *********************************************************************/

/**
 * cpufreq_get_policy - get the current cpufreq_policy
1659 1660
 * @policy: struct cpufreq_policy into which the current cpufreq_policy
 *	is written
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 *
 * Reads the current cpufreq policy.
 */
int cpufreq_get_policy(struct cpufreq_policy *policy, unsigned int cpu)
{
	struct cpufreq_policy *cpu_policy;
	if (!policy)
		return -EINVAL;

	cpu_policy = cpufreq_cpu_get(cpu);
	if (!cpu_policy)
		return -EINVAL;

	memcpy(policy, cpu_policy, sizeof(struct cpufreq_policy));

	cpufreq_cpu_put(cpu_policy);
	return 0;
}
EXPORT_SYMBOL(cpufreq_get_policy);


1682
/*
1683 1684
 * data   : current policy.
 * policy : policy to be set.
1685
 */
1686 1687
static int __cpufreq_set_policy(struct cpufreq_policy *data,
				struct cpufreq_policy *policy)
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{
	int ret = 0;

	cpufreq_debug_disable_ratelimit();
	dprintk("setting new policy for CPU %u: %u - %u kHz\n", policy->cpu,
		policy->min, policy->max);

1695 1696
	memcpy(&policy->cpuinfo, &data->cpuinfo,
				sizeof(struct cpufreq_cpuinfo));
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1698
	if (policy->min > data->max || policy->max < data->min) {
1699 1700 1701 1702
		ret = -EINVAL;
		goto error_out;
	}

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	/* verify the cpu speed can be set within this limit */
	ret = cpufreq_driver->verify(policy);
	if (ret)
		goto error_out;

	/* adjust if necessary - all reasons */
1709 1710
	blocking_notifier_call_chain(&cpufreq_policy_notifier_list,
			CPUFREQ_ADJUST, policy);
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	/* adjust if necessary - hardware incompatibility*/
1713 1714
	blocking_notifier_call_chain(&cpufreq_policy_notifier_list,
			CPUFREQ_INCOMPATIBLE, policy);
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	/* verify the cpu speed can be set within this limit,
	   which might be different to the first one */
	ret = cpufreq_driver->verify(policy);
1719
	if (ret)
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		goto error_out;

	/* notification of the new policy */
1723 1724
	blocking_notifier_call_chain(&cpufreq_policy_notifier_list,
			CPUFREQ_NOTIFY, policy);
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1726 1727
	data->min = policy->min;
	data->max = policy->max;
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1729 1730
	dprintk("new min and max freqs are %u - %u kHz\n",
					data->min, data->max);
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	if (cpufreq_driver->setpolicy) {
		data->policy = policy->policy;
		dprintk("setting range\n");
		ret = cpufreq_driver->setpolicy(policy);
	} else {
		if (policy->governor != data->governor) {
			/* save old, working values */
			struct cpufreq_governor *old_gov = data->governor;

			dprintk("governor switch\n");

			/* end old governor */
1744 1745 1746 1747 1748 1749 1750 1751
			if (data->governor) {
				/*
				 * Need to release the rwsem around governor
				 * stop due to lock dependency between
				 * cancel_delayed_work_sync and the read lock
				 * taken in the delayed work handler.
				 */
				unlock_policy_rwsem_write(data->cpu);
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				__cpufreq_governor(data, CPUFREQ_GOV_STOP);
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				lock_policy_rwsem_write(data->cpu);
			}
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			/* start new governor */
			data->governor = policy->governor;
			if (__cpufreq_governor(data, CPUFREQ_GOV_START)) {
				/* new governor failed, so re-start old one */
1760 1761
				dprintk("starting governor %s failed\n",
							data->governor->name);
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				if (old_gov) {
					data->governor = old_gov;
1764 1765
					__cpufreq_governor(data,
							   CPUFREQ_GOV_START);
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				}
				ret = -EINVAL;
				goto error_out;
			}
			/* might be a policy change, too, so fall through */
		}
		dprintk("governor: change or update limits\n");
		__cpufreq_governor(data, CPUFREQ_GOV_LIMITS);
	}

1776
error_out:
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	cpufreq_debug_enable_ratelimit();
	return ret;
}

/**
 *	cpufreq_update_policy - re-evaluate an existing cpufreq policy
 *	@cpu: CPU which shall be re-evaluated
 *
 *	Usefull for policy notifiers which have different necessities
 *	at different times.
 */
int cpufreq_update_policy(unsigned int cpu)
{
	struct cpufreq_policy *data = cpufreq_cpu_get(cpu);
	struct cpufreq_policy policy;
1792
	int ret;
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	if (!data) {
		ret = -ENODEV;
		goto no_policy;
	}
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1799 1800 1801 1802
	if (unlikely(lock_policy_rwsem_write(cpu))) {
		ret = -EINVAL;
		goto fail;
	}
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	dprintk("updating policy for CPU %u\n", cpu);
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	memcpy(&policy, data, sizeof(struct cpufreq_policy));
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	policy.min = data->user_policy.min;
	policy.max = data->user_policy.max;
	policy.policy = data->user_policy.policy;
	policy.governor = data->user_policy.governor;

1811 1812 1813 1814
	/* BIOS might change freq behind our back
	  -> ask driver for current freq and notify governors about a change */
	if (cpufreq_driver->get) {
		policy.cur = cpufreq_driver->get(cpu);
1815 1816 1817 1818 1819
		if (!data->cur) {
			dprintk("Driver did not initialize current freq");
			data->cur = policy.cur;
		} else {
			if (data->cur != policy.cur)
1820 1821
				cpufreq_out_of_sync(cpu, data->cur,
								policy.cur);
1822
		}
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	}

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	ret = __cpufreq_set_policy(data, &policy);

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	unlock_policy_rwsem_write(cpu);

1829
fail:
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	cpufreq_cpu_put(data);
1831
no_policy:
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	return ret;
}
EXPORT_SYMBOL(cpufreq_update_policy);

1836
static int __cpuinit cpufreq_cpu_callback(struct notifier_block *nfb,
1837 1838 1839 1840 1841 1842 1843 1844 1845
					unsigned long action, void *hcpu)
{
	unsigned int cpu = (unsigned long)hcpu;
	struct sys_device *sys_dev;

	sys_dev = get_cpu_sysdev(cpu);
	if (sys_dev) {
		switch (action) {
		case CPU_ONLINE:
1846
		case CPU_ONLINE_FROZEN:
1847 1848 1849
			cpufreq_add_dev(sys_dev);
			break;
		case CPU_DOWN_PREPARE:
1850
		case CPU_DOWN_PREPARE_FROZEN:
1851 1852 1853 1854
			if (unlikely(lock_policy_rwsem_write(cpu)))
				BUG();

			__cpufreq_remove_dev(sys_dev);
1855
			break;
1856
		case CPU_DOWN_FAILED:
1857
		case CPU_DOWN_FAILED_FROZEN:
1858
			cpufreq_add_dev(sys_dev);
1859 1860 1861 1862 1863 1864
			break;
		}
	}
	return NOTIFY_OK;
}

1865
static struct notifier_block __refdata cpufreq_cpu_notifier =
1866 1867 1868
{
    .notifier_call = cpufreq_cpu_callback,
};
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/*********************************************************************
 *               REGISTER / UNREGISTER CPUFREQ DRIVER                *
 *********************************************************************/

/**
 * cpufreq_register_driver - register a CPU Frequency driver
 * @driver_data: A struct cpufreq_driver containing the values#
 * submitted by the CPU Frequency driver.
 *
1879
 *   Registers a CPU Frequency driver to this core code. This code
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 * returns zero on success, -EBUSY when another driver got here first
1881
 * (and isn't unregistered in the meantime).
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 *
 */
1884
int cpufreq_register_driver(struct cpufreq_driver *driver_data)
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{
	unsigned long flags;
	int ret;

	if (!driver_data || !driver_data->verify || !driver_data->init ||
	    ((!driver_data->setpolicy) && (!driver_data->target)))
		return -EINVAL;

	dprintk("trying to register driver %s\n", driver_data->name);

	if (driver_data->setpolicy)
		driver_data->flags |= CPUFREQ_CONST_LOOPS;

	spin_lock_irqsave(&cpufreq_driver_lock, flags);
	if (cpufreq_driver) {
		spin_unlock_irqrestore(&cpufreq_driver_lock, flags);
		return -EBUSY;
	}
	cpufreq_driver = driver_data;
	spin_unlock_irqrestore(&cpufreq_driver_lock, flags);

1906 1907
	ret = sysdev_driver_register(&cpu_sysdev_class,
					&cpufreq_sysdev_driver);
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	if ((!ret) && !(cpufreq_driver->flags & CPUFREQ_STICKY)) {
		int i;
		ret = -ENODEV;

		/* check for at least one working CPU */
1914 1915
		for (i = 0; i < nr_cpu_ids; i++)
			if (cpu_possible(i) && per_cpu(cpufreq_cpu_data, i)) {
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				ret = 0;
1917 1918
				break;
			}
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		/* if all ->init() calls failed, unregister */
		if (ret) {
1922 1923 1924 1925
			dprintk("no CPU initialized for driver %s\n",
							driver_data->name);
			sysdev_driver_unregister(&cpu_sysdev_class,
						&cpufreq_sysdev_driver);
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			spin_lock_irqsave(&cpufreq_driver_lock, flags);
			cpufreq_driver = NULL;
			spin_unlock_irqrestore(&cpufreq_driver_lock, flags);
		}
	}

	if (!ret) {
1934
		register_hotcpu_notifier(&cpufreq_cpu_notifier);
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		dprintk("driver %s up and running\n", driver_data->name);
		cpufreq_debug_enable_ratelimit();
	}

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	return ret;
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}
EXPORT_SYMBOL_GPL(cpufreq_register_driver);


/**
 * cpufreq_unregister_driver - unregister the current CPUFreq driver
 *
1947
 *    Unregister the current CPUFreq driver. Only call this if you have
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 * the right to do so, i.e. if you have succeeded in initialising before!
 * Returns zero if successful, and -EINVAL if the cpufreq_driver is
 * currently not initialised.
 */
1952
int cpufreq_unregister_driver(struct cpufreq_driver *driver)
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{
	unsigned long flags;

	cpufreq_debug_disable_ratelimit();

	if (!cpufreq_driver || (driver != cpufreq_driver)) {
		cpufreq_debug_enable_ratelimit();
		return -EINVAL;
	}

	dprintk("unregistering driver %s\n", driver->name);

	sysdev_driver_unregister(&cpu_sysdev_class, &cpufreq_sysdev_driver);
1966
	unregister_hotcpu_notifier(&cpufreq_cpu_notifier);
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	spin_lock_irqsave(&cpufreq_driver_lock, flags);
	cpufreq_driver = NULL;
	spin_unlock_irqrestore(&cpufreq_driver_lock, flags);

	return 0;
}
EXPORT_SYMBOL_GPL(cpufreq_unregister_driver);
1975 1976 1977 1978 1979 1980 1981 1982 1983

static int __init cpufreq_core_init(void)
{
	int cpu;

	for_each_possible_cpu(cpu) {
		per_cpu(policy_cpu, cpu) = -1;
		init_rwsem(&per_cpu(cpu_policy_rwsem, cpu));
	}
1984 1985 1986 1987 1988

	cpufreq_global_kobject = kobject_create_and_add("cpufreq",
						&cpu_sysdev_class.kset.kobj);
	BUG_ON(!cpufreq_global_kobject);

1989 1990 1991
	return 0;
}
core_initcall(cpufreq_core_init);