cpufreq.c 47.0 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;
static struct cpufreq_policy *cpufreq_cpu_data[NR_CPUS];
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#ifdef CONFIG_HOTPLUG_CPU
/* This one keeps track of the previously set governor of a removed CPU */
static struct cpufreq_governor *cpufreq_cpu_governor[NR_CPUS];
#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.
 */
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 */
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 int __init init_cpufreq_transition_notifier_list(void)
{
	srcu_init_notifier_head(&cpufreq_transition_notifier_list);
	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;

	if (cpu >= NR_CPUS)
		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 */
	data = cpufreq_cpu_data[cpu];

	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,
							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;"
			"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);
		dprintk("scaling loops_per_jiffy to %lu"
			"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 = 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)
		if (!strnicmp(str_governor,t->name,CPUFREQ_NAME_LEN))
			return t;

	return NULL;
}

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/**
 * cpufreq_parse_governor - parse a governor string
 */
static int cpufreq_parse_governor (char *str_governor, unsigned int *policy,
				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);
				ret = request_module(name);
				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:
	return err;
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}


/* drivers/base/cpu.c */
extern struct sysdev_class cpu_sysdev_class;


/**
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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				\
(struct cpufreq_policy * policy, char *buf)		\
{							\
	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);
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					\
(struct cpufreq_policy * policy, const char *buf, size_t count)		\
{									\
	unsigned int ret = -EINVAL;					\
	struct cpufreq_policy new_policy;				\
									\
	ret = cpufreq_get_policy(&new_policy, policy->cpu);		\
	if (ret)							\
		return -EINVAL;						\
									\
	ret = sscanf (buf, "%u", &new_policy.object);			\
	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;					\
}

store_one(scaling_min_freq,min);
store_one(scaling_max_freq,max);

/**
 * 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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{
	if(policy->policy == CPUFREQ_POLICY_POWERSAVE)
		return sprintf(buf, "powersave\n");
	else if (policy->policy == CPUFREQ_POLICY_PERFORMANCE)
		return sprintf(buf, "performance\n");
	else if (policy->governor)
		return scnprintf(buf, CPUFREQ_NAME_LEN, "%s\n", policy->governor->name);
	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;

	ret = sscanf (buf, "%15s", str_governor);
	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
 */
static ssize_t show_scaling_driver (struct cpufreq_policy * policy, char *buf)
{
	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,
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				char *buf)
{
	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) {
		if (i >= (ssize_t) ((PAGE_SIZE / sizeof(char)) - (CPUFREQ_NAME_LEN + 2)))
			goto out;
		i += scnprintf(&buf[i], CPUFREQ_NAME_LEN, "%s ", t->name);
	}
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out:
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	i += sprintf(&buf[i], "\n");
	return i;
}
/**
 * show_affected_cpus - show the CPUs affected by each transition
 */
static ssize_t show_affected_cpus (struct cpufreq_policy * policy, char *buf)
{
	ssize_t i = 0;
	unsigned int cpu;

	for_each_cpu_mask(cpu, policy->cpus) {
		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))
		    break;
	}
	i += sprintf(&buf[i], "\n");
	return i;
}


#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);
define_one_ro(scaling_available_governors);
define_one_ro(scaling_driver);
define_one_ro(scaling_cur_freq);
define_one_ro(affected_cpus);
define_one_rw(scaling_min_freq);
define_one_rw(scaling_max_freq);
define_one_rw(scaling_governor);

static struct attribute * default_attrs[] = {
	&cpuinfo_min_freq.attr,
	&cpuinfo_max_freq.attr,
	&scaling_min_freq.attr,
	&scaling_max_freq.attr,
	&affected_cpus.attr,
	&scaling_governor.attr,
	&scaling_driver.attr,
	&scaling_available_governors.attr,
	NULL
};

#define to_policy(k) container_of(k,struct cpufreq_policy,kobj)
#define to_attr(a) container_of(a,struct freq_attr,attr)

static ssize_t show(struct kobject * kobj, struct attribute * attr ,char * buf)
{
	struct cpufreq_policy * policy = to_policy(kobj);
	struct freq_attr * fattr = to_attr(attr);
	ssize_t ret;
	policy = cpufreq_cpu_get(policy->cpu);
	if (!policy)
		return -EINVAL;
651 652 653 654

	if (lock_policy_rwsem_read(policy->cpu) < 0)
		return -EINVAL;

655 656 657 658 659
	if (fattr->show)
		ret = fattr->show(policy, buf);
	else
		ret = -EIO;

660 661
	unlock_policy_rwsem_read(policy->cpu);

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	cpufreq_cpu_put(policy);
	return ret;
}

666
static ssize_t store(struct kobject * kobj, struct attribute * attr,
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		     const char * buf, size_t count)
{
	struct cpufreq_policy * policy = to_policy(kobj);
	struct freq_attr * fattr = to_attr(attr);
	ssize_t ret;
	policy = cpufreq_cpu_get(policy->cpu);
	if (!policy)
		return -EINVAL;
675 676 677 678

	if (lock_policy_rwsem_write(policy->cpu) < 0)
		return -EINVAL;

679 680 681 682 683
	if (fattr->store)
		ret = fattr->store(policy, buf, count);
	else
		ret = -EIO;

684 685
	unlock_policy_rwsem_write(policy->cpu);

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	cpufreq_cpu_put(policy);
	return ret;
}

static void cpufreq_sysfs_release(struct kobject * kobj)
{
	struct cpufreq_policy * policy = to_policy(kobj);
	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,
};


/**
 * cpufreq_add_dev - add a CPU device
 *
712
 * Adds the cpufreq interface for a CPU device.
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 */
static int cpufreq_add_dev (struct sys_device * sys_dev)
{
	unsigned int cpu = sys_dev->id;
	int ret = 0;
	struct cpufreq_policy new_policy;
	struct cpufreq_policy *policy;
	struct freq_attr **drv_attr;
721
	struct sys_device *cpu_sys_dev;
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	unsigned long flags;
	unsigned int j;
724 725 726
#ifdef CONFIG_SMP
	struct cpufreq_policy *managed_policy;
#endif
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728 729 730
	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)) {
739
		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;
	}

750
	policy = kzalloc(sizeof(struct cpufreq_policy), GFP_KERNEL);
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	if (!policy) {
		ret = -ENOMEM;
		goto nomem_out;
	}

	policy->cpu = cpu;
	policy->cpus = cpumask_of_cpu(cpu);

759 760 761 762
	/* Initially set CPU itself as the policy_cpu */
	per_cpu(policy_cpu, cpu) = cpu;
	lock_policy_rwsem_write(cpu);

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	init_completion(&policy->kobj_unregister);
764
	INIT_WORK(&policy->update, handle_update);
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766 767
	/* Set governor before ->init, so that driver could check it */
	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");
774
		unlock_policy_rwsem_write(cpu);
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		goto err_out;
	}
777 778
	policy->user_policy.min = policy->cpuinfo.min_freq;
	policy->user_policy.max = policy->cpuinfo.max_freq;
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780
#ifdef CONFIG_SMP
781 782 783 784 785 786 787 788 789

#ifdef CONFIG_HOTPLUG_CPU
	if (cpufreq_cpu_governor[cpu]){
		policy->governor = cpufreq_cpu_governor[cpu];
		dprintk("Restoring governor %s for cpu %d\n",
		       policy->governor->name, cpu);
	}
#endif

790 791 792 793 794 795 796 797 798
	for_each_cpu_mask(j, policy->cpus) {
		if (cpu == j)
			continue;

		/* check for existing affected CPUs.  They may not be aware
		 * of it due to CPU Hotplug.
		 */
		managed_policy = cpufreq_cpu_get(j);
		if (unlikely(managed_policy)) {
799 800 801 802 803 804 805 806

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

			if (lock_policy_rwsem_write(cpu) < 0)
				goto err_out_driver_exit;

807 808 809 810 811 812
			spin_lock_irqsave(&cpufreq_driver_lock, flags);
			managed_policy->cpus = policy->cpus;
			cpufreq_cpu_data[cpu] = managed_policy;
			spin_unlock_irqrestore(&cpufreq_driver_lock, flags);

			dprintk("CPU already managed, adding link\n");
813 814 815 816
			ret = sysfs_create_link(&sys_dev->kobj,
						&managed_policy->kobj,
						"cpufreq");
			if (ret) {
817
				unlock_policy_rwsem_write(cpu);
818 819
				goto err_out_driver_exit;
			}
820 821 822

			cpufreq_debug_enable_ratelimit();
			ret = 0;
823
			unlock_policy_rwsem_write(cpu);
824 825 826 827
			goto err_out_driver_exit; /* call driver->exit() */
		}
	}
#endif
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	memcpy(&new_policy, policy, sizeof(struct cpufreq_policy));

	/* prepare interface data */
831 832
	ret = kobject_init_and_add(&policy->kobj, &ktype_cpufreq, &sys_dev->kobj,
				   "cpufreq");
833
	if (ret) {
834
		unlock_policy_rwsem_write(cpu);
835
		goto err_out_driver_exit;
836
	}
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	/* set up files for this cpu device */
	drv_attr = cpufreq_driver->attr;
	while ((drv_attr) && (*drv_attr)) {
840
		ret = sysfs_create_file(&policy->kobj, &((*drv_attr)->attr));
841 842
		if (ret) {
			unlock_policy_rwsem_write(cpu);
843
			goto err_out_driver_exit;
844
		}
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		drv_attr++;
	}
847
	if (cpufreq_driver->get){
848
		ret = sysfs_create_file(&policy->kobj, &cpuinfo_cur_freq.attr);
849 850
		if (ret) {
			unlock_policy_rwsem_write(cpu);
851
			goto err_out_driver_exit;
852
		}
853 854
	}
	if (cpufreq_driver->target){
855
		ret = sysfs_create_file(&policy->kobj, &scaling_cur_freq.attr);
856 857
		if (ret) {
			unlock_policy_rwsem_write(cpu);
858
			goto err_out_driver_exit;
859
		}
860
	}
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	spin_lock_irqsave(&cpufreq_driver_lock, flags);
863
	for_each_cpu_mask(j, policy->cpus) {
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		cpufreq_cpu_data[j] = policy;
865 866
		per_cpu(policy_cpu, j) = policy->cpu;
	}
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	spin_unlock_irqrestore(&cpufreq_driver_lock, flags);
868 869 870 871 872 873 874 875

	/* symlink affected CPUs */
	for_each_cpu_mask(j, policy->cpus) {
		if (j == cpu)
			continue;
		if (!cpu_online(j))
			continue;

876
		dprintk("CPU %u already managed, adding link\n", j);
877 878
		cpufreq_cpu_get(cpu);
		cpu_sys_dev = get_cpu_sysdev(j);
879 880 881
		ret = sysfs_create_link(&cpu_sys_dev->kobj, &policy->kobj,
					"cpufreq");
		if (ret) {
882
			unlock_policy_rwsem_write(cpu);
883 884
			goto err_out_unregister;
		}
885 886
	}

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	policy->governor = NULL; /* to assure that the starting sequence is
				  * run in cpufreq_set_policy */
889

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	/* set default policy */
891 892
	ret = __cpufreq_set_policy(policy, &new_policy);
	policy->user_policy.policy = policy->policy;
893
	policy->user_policy.governor = policy->governor;
894 895 896

	unlock_policy_rwsem_write(cpu);

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	if (ret) {
		dprintk("setting policy failed\n");
		goto err_out_unregister;
	}

902
	kobject_uevent(&policy->kobj, KOBJ_ADD);
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	module_put(cpufreq_driver->owner);
	dprintk("initialization complete\n");
	cpufreq_debug_enable_ratelimit();
906

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	return 0;


err_out_unregister:
	spin_lock_irqsave(&cpufreq_driver_lock, flags);
	for_each_cpu_mask(j, policy->cpus)
		cpufreq_cpu_data[j] = NULL;
	spin_unlock_irqrestore(&cpufreq_driver_lock, flags);

916
	kobject_put(&policy->kobj);
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	wait_for_completion(&policy->kobj_unregister);

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err_out_driver_exit:
	if (cpufreq_driver->exit)
		cpufreq_driver->exit(policy);

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err_out:
	kfree(policy);

nomem_out:
	module_put(cpufreq_driver->owner);
928
module_out:
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	cpufreq_debug_enable_ratelimit();
	return ret;
}


/**
935
 * __cpufreq_remove_dev - remove a CPU device
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 *
 * Removes the cpufreq interface for a CPU device.
938 939
 * Caller should already have policy_rwsem in write mode for this CPU.
 * This routine frees the rwsem before returning.
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 */
941
static int __cpufreq_remove_dev (struct sys_device * sys_dev)
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{
	unsigned int cpu = sys_dev->id;
	unsigned long flags;
	struct cpufreq_policy *data;
#ifdef CONFIG_SMP
947
	struct sys_device *cpu_sys_dev;
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	unsigned int j;
#endif

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

	spin_lock_irqsave(&cpufreq_driver_lock, flags);
	data = cpufreq_cpu_data[cpu];

	if (!data) {
		spin_unlock_irqrestore(&cpufreq_driver_lock, flags);
		cpufreq_debug_enable_ratelimit();
960
		unlock_policy_rwsem_write(cpu);
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		return -EINVAL;
	}
	cpufreq_cpu_data[cpu] = NULL;


#ifdef CONFIG_SMP
	/* if this isn't the CPU which is the parent of the kobj, we
968
	 * only need to unlink, put and exit
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	 */
	if (unlikely(cpu != data->cpu)) {
		dprintk("removing link\n");
972
		cpu_clear(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();
977
		unlock_policy_rwsem_write(cpu);
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		return 0;
	}
#endif


	if (!kobject_get(&data->kobj)) {
		spin_unlock_irqrestore(&cpufreq_driver_lock, flags);
		cpufreq_debug_enable_ratelimit();
986
		unlock_policy_rwsem_write(cpu);
987
		return -EFAULT;
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	}

#ifdef CONFIG_SMP
991 992 993 994 995

#ifdef CONFIG_HOTPLUG_CPU
	cpufreq_cpu_governor[cpu] = data->governor;
#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
	 * cpufreq_cpu_data[] while holding the lock, and remove the sysfs
	 * links afterwards.
	 */
	if (unlikely(cpus_weight(data->cpus) > 1)) {
		for_each_cpu_mask(j, data->cpus) {
			if (j == cpu)
				continue;
			cpufreq_cpu_data[j] = NULL;
		}
	}

	spin_unlock_irqrestore(&cpufreq_driver_lock, flags);

	if (unlikely(cpus_weight(data->cpus) > 1)) {
		for_each_cpu_mask(j, data->cpus) {
			if (j == cpu)
				continue;
			dprintk("removing link for cpu %u\n", j);
1016 1017 1018
#ifdef CONFIG_HOTPLUG_CPU
			cpufreq_cpu_governor[j] = data->governor;
#endif
1019 1020
			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);
1030 1031

	unlock_policy_rwsem_write(cpu);
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	kobject_put(&data->kobj);

	/* we need to make sure that the underlying kobj is actually
1036
	 * 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);

	kfree(data);

	cpufreq_debug_enable_ratelimit();
	return 0;
}


1053 1054 1055 1056
static int cpufreq_remove_dev (struct sys_device * sys_dev)
{
	unsigned int cpu = sys_dev->id;
	int retval;
1057 1058 1059 1060

	if (cpu_is_offline(cpu))
		return 0;

1061 1062 1063 1064 1065 1066 1067 1068
	if (unlikely(lock_policy_rwsem_write(cpu)))
		BUG();

	retval = __cpufreq_remove_dev(sys_dev);
	return retval;
}


1069
static void handle_update(struct work_struct *work)
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{
1071 1072 1073
	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
 *
 *	We adjust to current frequency first, and need to clean up later. So either call
 *	to cpufreq_update_policy() or schedule handle_update()).
 */
1087 1088
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;

1092
	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);
}


1103
/**
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 * cpufreq_quick_get - get the CPU frequency (in kHz) from policy->cur
1105 1106 1107 1108 1109 1110 1111 1112
 * @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);
1113
	unsigned int ret_freq = 0;
1114 1115

	if (policy) {
1116
		ret_freq = policy->cur;
1117 1118 1119
		cpufreq_cpu_put(policy);
	}

1120
	return (ret_freq);
1121 1122 1123 1124
}
EXPORT_SYMBOL(cpufreq_quick_get);


1125
static unsigned int __cpufreq_get(unsigned int cpu)
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{
1127
	struct cpufreq_policy *policy = cpufreq_cpu_data[cpu];
1128
	unsigned int ret_freq = 0;
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	if (!cpufreq_driver->get)
1131
		return (ret_freq);
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1133
	ret_freq = cpufreq_driver->get(cpu);
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1135 1136 1137 1138 1139 1140
	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);
		}
	}

1145 1146
	return (ret_freq);
}
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1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167
/**
 * 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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1169 1170 1171
out_policy:
	cpufreq_cpu_put(policy);
out:
1172
	return (ret_freq);
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}
EXPORT_SYMBOL(cpufreq_get);


1177 1178 1179 1180
/**
 *	cpufreq_suspend - let the low level driver prepare for suspend
 */

1181
static int cpufreq_suspend(struct sys_device * sysdev, pm_message_t pmsg)
1182 1183
{
	int cpu = sysdev->id;
1184
	int ret = 0;
1185 1186 1187
	unsigned int cur_freq = 0;
	struct cpufreq_policy *cpu_policy;

1188
	dprintk("suspending cpu %u\n", cpu);
1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208

	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 */
	if (unlikely(cpu_policy->cpu != cpu)) {
		cpufreq_cpu_put(cpu_policy);
		return 0;
	}

	if (cpufreq_driver->suspend) {
1209
		ret = cpufreq_driver->suspend(cpu_policy, pmsg);
1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234
		if (ret) {
			printk(KERN_ERR "cpufreq: suspend failed in ->suspend "
					"step on CPU %u\n", cpu_policy->cpu);
			cpufreq_cpu_put(cpu_policy);
			return ret;
		}
	}


	if (cpufreq_driver->flags & CPUFREQ_CONST_LOOPS)
		goto out;

	if (cpufreq_driver->get)
		cur_freq = cpufreq_driver->get(cpu_policy->cpu);

	if (!cur_freq || !cpu_policy->cur) {
		printk(KERN_ERR "cpufreq: suspend failed to assert current "
		       "frequency is what timing core thinks it is.\n");
		goto out;
	}

	if (unlikely(cur_freq != cpu_policy->cur)) {
		struct cpufreq_freqs freqs;

		if (!(cpufreq_driver->flags & CPUFREQ_PM_NO_WARN))
1235
			dprintk("Warning: CPU frequency is %u, "
1236 1237 1238 1239 1240 1241 1242
			       "cpufreq assumed %u kHz.\n",
			       cur_freq, cpu_policy->cur);

		freqs.cpu = cpu;
		freqs.old = cpu_policy->cur;
		freqs.new = cur_freq;

1243
		srcu_notifier_call_chain(&cpufreq_transition_notifier_list,
1244 1245 1246 1247 1248 1249
				    CPUFREQ_SUSPENDCHANGE, &freqs);
		adjust_jiffies(CPUFREQ_SUSPENDCHANGE, &freqs);

		cpu_policy->cur = cur_freq;
	}

1250
out:
1251 1252 1253 1254
	cpufreq_cpu_put(cpu_policy);
	return 0;
}

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/**
 *	cpufreq_resume -  restore proper CPU frequency handling after resume
 *
 *	1.) resume CPUfreq hardware support (cpufreq_driver->resume())
 *	2.) if ->target and !CPUFREQ_CONST_LOOPS: verify we're in sync
1260 1261
 *	3.) schedule call cpufreq_update_policy() ASAP as interrupts are
 *	    restored.
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 */
static int cpufreq_resume(struct sys_device * sysdev)
{
	int cpu = sysdev->id;
1266
	int ret = 0;
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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 */
	if (unlikely(cpu_policy->cpu != cpu)) {
		cpufreq_cpu_put(cpu_policy);
		return 0;
	}

	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);
			cpufreq_cpu_put(cpu_policy);
			return ret;
		}
	}

	if (!(cpufreq_driver->flags & CPUFREQ_CONST_LOOPS)) {
		unsigned int cur_freq = 0;

		if (cpufreq_driver->get)
			cur_freq = cpufreq_driver->get(cpu_policy->cpu);

		if (!cur_freq || !cpu_policy->cur) {
1306 1307 1308
			printk(KERN_ERR "cpufreq: resume failed to assert "
					"current frequency is what timing core "
					"thinks it is.\n");
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			goto out;
		}

		if (unlikely(cur_freq != cpu_policy->cur)) {
			struct cpufreq_freqs freqs;

1315
			if (!(cpufreq_driver->flags & CPUFREQ_PM_NO_WARN))
1316
				dprintk("Warning: CPU frequency"
1317 1318
				       "is %u, cpufreq assumed %u kHz.\n",
				       cur_freq, cpu_policy->cur);
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			freqs.cpu = cpu;
			freqs.old = cpu_policy->cur;
			freqs.new = cur_freq;

1324
			srcu_notifier_call_chain(
1325
					&cpufreq_transition_notifier_list,
1326
					CPUFREQ_RESUMECHANGE, &freqs);
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			adjust_jiffies(CPUFREQ_RESUMECHANGE, &freqs);

			cpu_policy->cur = cur_freq;
		}
	}

out:
	schedule_work(&cpu_policy->update);
	cpufreq_cpu_put(cpu_policy);
	return ret;
}

static struct sysdev_driver cpufreq_sysdev_driver = {
	.add		= cpufreq_add_dev,
	.remove		= cpufreq_remove_dev,
1342
	.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
 *
1356
 *	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
1362
 *	blocking_notifier_chain_register.
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 */
int cpufreq_register_notifier(struct notifier_block *nb, unsigned int list)
{
	int ret;

	switch (list) {
	case CPUFREQ_TRANSITION_NOTIFIER:
1370
		ret = srcu_notifier_chain_register(
1371
				&cpufreq_transition_notifier_list, nb);
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		break;
	case CPUFREQ_POLICY_NOTIFIER:
1374 1375
		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
1394
 *	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:
1402
		ret = srcu_notifier_chain_unregister(
1403
				&cpufreq_transition_notifier_list, nb);
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		break;
	case CPUFREQ_POLICY_NOTIFIER:
1406 1407
		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;
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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);
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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)
{
1442
	int ret;
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	policy = cpufreq_cpu_get(policy->cpu);
	if (!policy)
		return -EINVAL;

1448 1449
	if (unlikely(lock_policy_rwsem_write(policy->cpu)))
		return -EINVAL;
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	ret = __cpufreq_driver_target(policy, target_freq, relation);

1453
	unlock_policy_rwsem_write(policy->cpu);
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	cpufreq_cpu_put(policy);
	return ret;
}
EXPORT_SYMBOL_GPL(cpufreq_driver_target);

1460
int __cpufreq_driver_getavg(struct cpufreq_policy *policy)
1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473
{
	int ret = 0;

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

	if (cpu_online(policy->cpu) && cpufreq_driver->getavg)
		ret = cpufreq_driver->getavg(policy->cpu);

	cpufreq_cpu_put(policy);
	return ret;
}
1474
EXPORT_SYMBOL_GPL(__cpufreq_driver_getavg);
1475

1476 1477 1478
/*
 * when "event" is CPUFREQ_GOV_LIMITS
 */
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1480 1481
static int __cpufreq_governor(struct cpufreq_policy *policy,
					unsigned int event)
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{
1483
	int ret;
1484 1485 1486 1487 1488 1489 1490 1491 1492 1493

	/* 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
1494 1495 1496 1497

	if (policy->governor->max_transition_latency &&
	    policy->cpuinfo.transition_latency >
	    policy->governor->max_transition_latency) {
1498 1499 1500 1501 1502 1503 1504 1505 1506 1507
		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;
		}
1508
	}
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	if (!try_module_get(policy->governor->owner))
		return -EINVAL;

1513 1514
	dprintk("__cpufreq_governor for CPU %u, event %u\n",
						policy->cpu, event);
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	ret = policy->governor->governor(policy, event);

1517 1518
	/* 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)
{
1530
	int err;
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	if (!governor)
		return -EINVAL;

1535
	mutex_lock(&cpufreq_governor_mutex);
1536

1537 1538 1539 1540
	err = -EBUSY;
	if (__find_governor(governor->name) == NULL) {
		err = 0;
		list_add(&governor->governor_list, &cpufreq_governor_list);
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	}

1543
	mutex_unlock(&cpufreq_governor_mutex);
1544
	return err;
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}
EXPORT_SYMBOL_GPL(cpufreq_register_governor);


void cpufreq_unregister_governor(struct cpufreq_governor *governor)
{
	if (!governor)
		return;

1554
	mutex_lock(&cpufreq_governor_mutex);
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	list_del(&governor->governor_list);
1556
	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
 * @policy: struct cpufreq_policy into which the current cpufreq_policy is written
 *
 * 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);


1591
/*
1592 1593
 * data   : current policy.
 * policy : policy to be set.
1594
 */
1595 1596
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);

1604 1605
	memcpy(&policy->cpuinfo, &data->cpuinfo,
				sizeof(struct cpufreq_cpuinfo));
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1607
	if (policy->min > data->max || policy->max < data->min) {
1608 1609 1610 1611
		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 */
1618 1619
	blocking_notifier_call_chain(&cpufreq_policy_notifier_list,
			CPUFREQ_ADJUST, policy);
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	/* adjust if necessary - hardware incompatibility*/
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	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);
1628
	if (ret)
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		goto error_out;

	/* notification of the new policy */
1632 1633
	blocking_notifier_call_chain(&cpufreq_policy_notifier_list,
			CPUFREQ_NOTIFY, policy);
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1635 1636
	data->min = policy->min;
	data->max = policy->max;
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	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 */
			if (data->governor)
				__cpufreq_governor(data, CPUFREQ_GOV_STOP);

			/* start new governor */
			data->governor = policy->governor;
			if (__cpufreq_governor(data, CPUFREQ_GOV_START)) {
				/* new governor failed, so re-start old one */
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				dprintk("starting governor %s failed\n",
							data->governor->name);
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				if (old_gov) {
					data->governor = old_gov;
1664 1665
					__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);
	}

1676
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;
	int ret = 0;

	if (!data)
		return -ENODEV;

1697 1698
	if (unlikely(lock_policy_rwsem_write(cpu)))
		return -EINVAL;
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	dprintk("updating policy for CPU %u\n", cpu);
1701
	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;

1707 1708 1709 1710
	/* 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);
1711 1712 1713 1714 1715
		if (!data->cur) {
			dprintk("Driver did not initialize current freq");
			data->cur = policy.cur;
		} else {
			if (data->cur != policy.cur)
1716 1717
				cpufreq_out_of_sync(cpu, data->cur,
								policy.cur);
1718
		}
1719 1720
	}

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	ret = __cpufreq_set_policy(data, &policy);

1723 1724
	unlock_policy_rwsem_write(cpu);

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	cpufreq_cpu_put(data);
	return ret;
}
EXPORT_SYMBOL(cpufreq_update_policy);

1730
static int __cpuinit cpufreq_cpu_callback(struct notifier_block *nfb,
1731 1732 1733 1734 1735 1736 1737 1738 1739
					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:
1740
		case CPU_ONLINE_FROZEN:
1741 1742 1743
			cpufreq_add_dev(sys_dev);
			break;
		case CPU_DOWN_PREPARE:
1744
		case CPU_DOWN_PREPARE_FROZEN:
1745 1746 1747 1748
			if (unlikely(lock_policy_rwsem_write(cpu)))
				BUG();

			__cpufreq_remove_dev(sys_dev);
1749
			break;
1750
		case CPU_DOWN_FAILED:
1751
		case CPU_DOWN_FAILED_FROZEN:
1752
			cpufreq_add_dev(sys_dev);
1753 1754 1755 1756 1757 1758
			break;
		}
	}
	return NOTIFY_OK;
}

1759
static struct notifier_block __cpuinitdata cpufreq_cpu_notifier =
1760 1761 1762
{
    .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.
 *
1773
 *   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
1775
 * (and isn't unregistered in the meantime).
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 *
 */
1778
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);

	ret = sysdev_driver_register(&cpu_sysdev_class,&cpufreq_sysdev_driver);

	if ((!ret) && !(cpufreq_driver->flags & CPUFREQ_STICKY)) {
		int i;
		ret = -ENODEV;

		/* check for at least one working CPU */
		for (i=0; i<NR_CPUS; i++)
			if (cpufreq_cpu_data[i])
				ret = 0;

		/* if all ->init() calls failed, unregister */
		if (ret) {
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			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) {
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		register_hotcpu_notifier(&cpufreq_cpu_notifier);
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		dprintk("driver %s up and running\n", driver_data->name);
		cpufreq_debug_enable_ratelimit();
	}

	return (ret);
}
EXPORT_SYMBOL_GPL(cpufreq_register_driver);


/**
 * cpufreq_unregister_driver - unregister the current CPUFreq driver
 *
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 *    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.
 */
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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);
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	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);
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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));
	}
	return 0;
}

core_initcall(cpufreq_core_init);