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/*
* drivers / cpufreq / cpufreq_conservative . c
*
* Copyright ( C ) 2001 Russell King
* ( C ) 2003 Venkatesh Pallipadi < venkatesh . pallipadi @ intel . com > .
* Jun Nakajima < jun . nakajima @ intel . com >
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* ( C ) 2009 Alexander Clouter < alex @ digriz . org . uk >
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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/cpufreq.h>
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# include <linux/cpu.h>
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# include <linux/jiffies.h>
# include <linux/kernel_stat.h>
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# include <linux/mutex.h>
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# include <linux/hrtimer.h>
# include <linux/tick.h>
# include <linux/ktime.h>
# include <linux/sched.h>
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/*
* dbs is used in this file as a shortform for demandbased switching
* It helps to keep variable names smaller , simpler
*/
# define DEF_FREQUENCY_UP_THRESHOLD (80)
# define DEF_FREQUENCY_DOWN_THRESHOLD (20)
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/*
* The polling frequency of this governor depends on the capability of
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* the processor . Default polling frequency is 1000 times the transition
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* latency of the processor . The governor will work on any processor with
* transition latency < = 10 mS , using appropriate sampling
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* rate .
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* For CPUs with transition latency > 10 mS ( mostly drivers with CPUFREQ_ETERNAL )
* this governor will not work .
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* All times here are in uS .
*/
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# define MIN_SAMPLING_RATE_RATIO (2)
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static unsigned int min_sampling_rate ;
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# define LATENCY_MULTIPLIER (1000)
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# define MIN_LATENCY_MULTIPLIER (100)
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# define DEF_SAMPLING_DOWN_FACTOR (1)
# define MAX_SAMPLING_DOWN_FACTOR (10)
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# define TRANSITION_LATENCY_LIMIT (10 * 1000 * 1000)
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static void do_dbs_timer ( struct work_struct * work ) ;
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struct cpu_dbs_info_s {
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cputime64_t prev_cpu_idle ;
cputime64_t prev_cpu_wall ;
cputime64_t prev_cpu_nice ;
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struct cpufreq_policy * cur_policy ;
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struct delayed_work work ;
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unsigned int down_skip ;
unsigned int requested_freq ;
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int cpu ;
unsigned int enable : 1 ;
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/*
* percpu mutex that serializes governor limit change with
* do_dbs_timer invocation . We do not want do_dbs_timer to run
* when user is changing the governor or limits .
*/
struct mutex timer_mutex ;
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} ;
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static DEFINE_PER_CPU ( struct cpu_dbs_info_s , cs_cpu_dbs_info ) ;
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static unsigned int dbs_enable ; /* number of CPUs using this policy */
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/*
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* dbs_mutex protects data in dbs_tuners_ins from concurrent changes on
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* different CPUs . It protects dbs_enable in governor start / stop .
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*/
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static DEFINE_MUTEX ( dbs_mutex ) ;
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static struct workqueue_struct * kconservative_wq ;
static struct dbs_tuners {
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unsigned int sampling_rate ;
unsigned int sampling_down_factor ;
unsigned int up_threshold ;
unsigned int down_threshold ;
unsigned int ignore_nice ;
unsigned int freq_step ;
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} dbs_tuners_ins = {
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. up_threshold = DEF_FREQUENCY_UP_THRESHOLD ,
. down_threshold = DEF_FREQUENCY_DOWN_THRESHOLD ,
. sampling_down_factor = DEF_SAMPLING_DOWN_FACTOR ,
. ignore_nice = 0 ,
. freq_step = 5 ,
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} ;
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static inline cputime64_t get_cpu_idle_time_jiffy ( unsigned int cpu ,
cputime64_t * wall )
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{
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cputime64_t idle_time ;
cputime64_t cur_wall_time ;
cputime64_t busy_time ;
cur_wall_time = jiffies64_to_cputime64 ( get_jiffies_64 ( ) ) ;
busy_time = cputime64_add ( kstat_cpu ( cpu ) . cpustat . user ,
kstat_cpu ( cpu ) . cpustat . system ) ;
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busy_time = cputime64_add ( busy_time , kstat_cpu ( cpu ) . cpustat . irq ) ;
busy_time = cputime64_add ( busy_time , kstat_cpu ( cpu ) . cpustat . softirq ) ;
busy_time = cputime64_add ( busy_time , kstat_cpu ( cpu ) . cpustat . steal ) ;
busy_time = cputime64_add ( busy_time , kstat_cpu ( cpu ) . cpustat . nice ) ;
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idle_time = cputime64_sub ( cur_wall_time , busy_time ) ;
if ( wall )
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* wall = ( cputime64_t ) jiffies_to_usecs ( cur_wall_time ) ;
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return ( cputime64_t ) jiffies_to_usecs ( idle_time ) ; ;
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}
static inline cputime64_t get_cpu_idle_time ( unsigned int cpu , cputime64_t * wall )
{
u64 idle_time = get_cpu_idle_time_us ( cpu , wall ) ;
if ( idle_time = = - 1ULL )
return get_cpu_idle_time_jiffy ( cpu , wall ) ;
return idle_time ;
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}
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/* keep track of frequency transitions */
static int
dbs_cpufreq_notifier ( struct notifier_block * nb , unsigned long val ,
void * data )
{
struct cpufreq_freqs * freq = data ;
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struct cpu_dbs_info_s * this_dbs_info = & per_cpu ( cs_cpu_dbs_info ,
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freq - > cpu ) ;
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struct cpufreq_policy * policy ;
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if ( ! this_dbs_info - > enable )
return 0 ;
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policy = this_dbs_info - > cur_policy ;
/*
* we only care if our internally tracked freq moves outside
* the ' valid ' ranges of freqency available to us otherwise
* we do not change it
*/
if ( this_dbs_info - > requested_freq > policy - > max
| | this_dbs_info - > requested_freq < policy - > min )
this_dbs_info - > requested_freq = freq - > new ;
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return 0 ;
}
static struct notifier_block dbs_cpufreq_notifier_block = {
. notifier_call = dbs_cpufreq_notifier
} ;
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/************************** sysfs interface ************************/
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static ssize_t show_sampling_rate_max ( struct kobject * kobj ,
struct attribute * attr , char * buf )
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{
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printk_once ( KERN_INFO " CPUFREQ: conservative sampling_rate_max "
" sysfs file is deprecated - used by: %s \n " , current - > comm ) ;
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return sprintf ( buf , " %u \n " , - 1U ) ;
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}
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static ssize_t show_sampling_rate_min ( struct kobject * kobj ,
struct attribute * attr , char * buf )
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{
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return sprintf ( buf , " %u \n " , min_sampling_rate ) ;
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}
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define_one_global_ro ( sampling_rate_max ) ;
define_one_global_ro ( sampling_rate_min ) ;
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/* cpufreq_conservative Governor Tunables */
# define show_one(file_name, object) \
static ssize_t show_ # # file_name \
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( struct kobject * kobj , struct attribute * attr , char * buf ) \
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{ \
return sprintf ( buf , " %u \n " , dbs_tuners_ins . object ) ; \
}
show_one ( sampling_rate , sampling_rate ) ;
show_one ( sampling_down_factor , sampling_down_factor ) ;
show_one ( up_threshold , up_threshold ) ;
show_one ( down_threshold , down_threshold ) ;
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show_one ( ignore_nice_load , ignore_nice ) ;
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show_one ( freq_step , freq_step ) ;
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/*** delete after deprecation time ***/
# define DEPRECATION_MSG(file_name) \
printk_once ( KERN_INFO " CPUFREQ: Per core conservative sysfs " \
" interface is deprecated - " # file_name " \n " ) ;
# define show_one_old(file_name) \
static ssize_t show_ # # file_name # # _old \
( struct cpufreq_policy * unused , char * buf ) \
{ \
printk_once ( KERN_INFO " CPUFREQ: Per core conservative sysfs " \
" interface is deprecated - " # file_name " \n " ) ; \
return show_ # # file_name ( NULL , NULL , buf ) ; \
}
show_one_old ( sampling_rate ) ;
show_one_old ( sampling_down_factor ) ;
show_one_old ( up_threshold ) ;
show_one_old ( down_threshold ) ;
show_one_old ( ignore_nice_load ) ;
show_one_old ( freq_step ) ;
show_one_old ( sampling_rate_min ) ;
show_one_old ( sampling_rate_max ) ;
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cpufreq_freq_attr_ro_old ( sampling_rate_min ) ;
cpufreq_freq_attr_ro_old ( sampling_rate_max ) ;
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/*** delete after deprecation time ***/
static ssize_t store_sampling_down_factor ( struct kobject * a ,
struct attribute * b ,
const char * buf , size_t count )
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{
unsigned int input ;
int ret ;
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ret = sscanf ( buf , " %u " , & input ) ;
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if ( ret ! = 1 | | input > MAX_SAMPLING_DOWN_FACTOR | | input < 1 )
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return - EINVAL ;
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mutex_lock ( & dbs_mutex ) ;
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dbs_tuners_ins . sampling_down_factor = input ;
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mutex_unlock ( & dbs_mutex ) ;
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return count ;
}
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static ssize_t store_sampling_rate ( struct kobject * a , struct attribute * b ,
const char * buf , size_t count )
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{
unsigned int input ;
int ret ;
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ret = sscanf ( buf , " %u " , & input ) ;
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if ( ret ! = 1 )
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return - EINVAL ;
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mutex_lock ( & dbs_mutex ) ;
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dbs_tuners_ins . sampling_rate = max ( input , min_sampling_rate ) ;
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mutex_unlock ( & dbs_mutex ) ;
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return count ;
}
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static ssize_t store_up_threshold ( struct kobject * a , struct attribute * b ,
const char * buf , size_t count )
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{
unsigned int input ;
int ret ;
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ret = sscanf ( buf , " %u " , & input ) ;
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mutex_lock ( & dbs_mutex ) ;
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if ( ret ! = 1 | | input > 100 | |
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input < = dbs_tuners_ins . down_threshold ) {
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mutex_unlock ( & dbs_mutex ) ;
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return - EINVAL ;
}
dbs_tuners_ins . up_threshold = input ;
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mutex_unlock ( & dbs_mutex ) ;
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return count ;
}
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static ssize_t store_down_threshold ( struct kobject * a , struct attribute * b ,
const char * buf , size_t count )
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{
unsigned int input ;
int ret ;
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ret = sscanf ( buf , " %u " , & input ) ;
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mutex_lock ( & dbs_mutex ) ;
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/* cannot be lower than 11 otherwise freq will not fall */
if ( ret ! = 1 | | input < 11 | | input > 100 | |
input > = dbs_tuners_ins . up_threshold ) {
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mutex_unlock ( & dbs_mutex ) ;
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return - EINVAL ;
}
dbs_tuners_ins . down_threshold = input ;
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mutex_unlock ( & dbs_mutex ) ;
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return count ;
}
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static ssize_t store_ignore_nice_load ( struct kobject * a , struct attribute * b ,
const char * buf , size_t count )
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{
unsigned int input ;
int ret ;
unsigned int j ;
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ret = sscanf ( buf , " %u " , & input ) ;
if ( ret ! = 1 )
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return - EINVAL ;
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if ( input > 1 )
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input = 1 ;
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mutex_lock ( & dbs_mutex ) ;
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if ( input = = dbs_tuners_ins . ignore_nice ) { /* nothing to do */
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mutex_unlock ( & dbs_mutex ) ;
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return count ;
}
dbs_tuners_ins . ignore_nice = input ;
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/* we need to re-evaluate prev_cpu_idle */
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for_each_online_cpu ( j ) {
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struct cpu_dbs_info_s * dbs_info ;
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dbs_info = & per_cpu ( cs_cpu_dbs_info , j ) ;
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dbs_info - > prev_cpu_idle = get_cpu_idle_time ( j ,
& dbs_info - > prev_cpu_wall ) ;
if ( dbs_tuners_ins . ignore_nice )
dbs_info - > prev_cpu_nice = kstat_cpu ( j ) . cpustat . nice ;
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}
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mutex_unlock ( & dbs_mutex ) ;
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return count ;
}
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static ssize_t store_freq_step ( struct kobject * a , struct attribute * b ,
const char * buf , size_t count )
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{
unsigned int input ;
int ret ;
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ret = sscanf ( buf , " %u " , & input ) ;
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if ( ret ! = 1 )
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return - EINVAL ;
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if ( input > 100 )
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input = 100 ;
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/* no need to test here if freq_step is zero as the user might actually
* want this , they would be crazy though : ) */
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mutex_lock ( & dbs_mutex ) ;
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dbs_tuners_ins . freq_step = input ;
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mutex_unlock ( & dbs_mutex ) ;
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return count ;
}
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define_one_global_rw ( sampling_rate ) ;
define_one_global_rw ( sampling_down_factor ) ;
define_one_global_rw ( up_threshold ) ;
define_one_global_rw ( down_threshold ) ;
define_one_global_rw ( ignore_nice_load ) ;
define_one_global_rw ( freq_step ) ;
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static struct attribute * dbs_attributes [ ] = {
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& sampling_rate_max . attr ,
& sampling_rate_min . attr ,
& sampling_rate . attr ,
& sampling_down_factor . attr ,
& up_threshold . attr ,
& down_threshold . attr ,
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& ignore_nice_load . attr ,
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& freq_step . attr ,
NULL
} ;
static struct attribute_group dbs_attr_group = {
. attrs = dbs_attributes ,
. name = " conservative " ,
} ;
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/*** delete after deprecation time ***/
# define write_one_old(file_name) \
static ssize_t store_ # # file_name # # _old \
( struct cpufreq_policy * unused , const char * buf , size_t count ) \
{ \
printk_once ( KERN_INFO " CPUFREQ: Per core conservative sysfs " \
" interface is deprecated - " # file_name " \n " ) ; \
return store_ # # file_name ( NULL , NULL , buf , count ) ; \
}
write_one_old ( sampling_rate ) ;
write_one_old ( sampling_down_factor ) ;
write_one_old ( up_threshold ) ;
write_one_old ( down_threshold ) ;
write_one_old ( ignore_nice_load ) ;
write_one_old ( freq_step ) ;
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cpufreq_freq_attr_rw_old ( sampling_rate ) ;
cpufreq_freq_attr_rw_old ( sampling_down_factor ) ;
cpufreq_freq_attr_rw_old ( up_threshold ) ;
cpufreq_freq_attr_rw_old ( down_threshold ) ;
cpufreq_freq_attr_rw_old ( ignore_nice_load ) ;
cpufreq_freq_attr_rw_old ( freq_step ) ;
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static struct attribute * dbs_attributes_old [ ] = {
& sampling_rate_max_old . attr ,
& sampling_rate_min_old . attr ,
& sampling_rate_old . attr ,
& sampling_down_factor_old . attr ,
& up_threshold_old . attr ,
& down_threshold_old . attr ,
& ignore_nice_load_old . attr ,
& freq_step_old . attr ,
NULL
} ;
static struct attribute_group dbs_attr_group_old = {
. attrs = dbs_attributes_old ,
. name = " conservative " ,
} ;
/*** delete after deprecation time ***/
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/************************** sysfs end ************************/
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static void dbs_check_cpu ( struct cpu_dbs_info_s * this_dbs_info )
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{
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unsigned int load = 0 ;
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unsigned int max_load = 0 ;
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unsigned int freq_target ;
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struct cpufreq_policy * policy ;
unsigned int j ;
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policy = this_dbs_info - > cur_policy ;
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/*
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* Every sampling_rate , we check , if current idle time is less
* than 20 % ( default ) , then we try to increase frequency
* Every sampling_rate * sampling_down_factor , we check , if current
* idle time is more than 80 % , then we try to decrease frequency
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*
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* Any frequency increase takes it to the maximum frequency .
* Frequency reduction happens at minimum steps of
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* 5 % ( default ) of maximum frequency
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*/
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/* Get Absolute Load */
for_each_cpu ( j , policy - > cpus ) {
struct cpu_dbs_info_s * j_dbs_info ;
cputime64_t cur_wall_time , cur_idle_time ;
unsigned int idle_time , wall_time ;
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j_dbs_info = & per_cpu ( cs_cpu_dbs_info , j ) ;
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cur_idle_time = get_cpu_idle_time ( j , & cur_wall_time ) ;
wall_time = ( unsigned int ) cputime64_sub ( cur_wall_time ,
j_dbs_info - > prev_cpu_wall ) ;
j_dbs_info - > prev_cpu_wall = cur_wall_time ;
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idle_time = ( unsigned int ) cputime64_sub ( cur_idle_time ,
j_dbs_info - > prev_cpu_idle ) ;
j_dbs_info - > prev_cpu_idle = cur_idle_time ;
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if ( dbs_tuners_ins . ignore_nice ) {
cputime64_t cur_nice ;
unsigned long cur_nice_jiffies ;
cur_nice = cputime64_sub ( kstat_cpu ( j ) . cpustat . nice ,
j_dbs_info - > prev_cpu_nice ) ;
/*
* Assumption : nice time between sampling periods will
* be less than 2 ^ 32 jiffies for 32 bit sys
*/
cur_nice_jiffies = ( unsigned long )
cputime64_to_jiffies64 ( cur_nice ) ;
j_dbs_info - > prev_cpu_nice = kstat_cpu ( j ) . cpustat . nice ;
idle_time + = jiffies_to_usecs ( cur_nice_jiffies ) ;
}
if ( unlikely ( ! wall_time | | wall_time < idle_time ) )
continue ;
load = 100 * ( wall_time - idle_time ) / wall_time ;
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if ( load > max_load )
max_load = load ;
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}
/*
* break out if we ' cannot ' reduce the speed as the user might
* want freq_step to be zero
*/
if ( dbs_tuners_ins . freq_step = = 0 )
return ;
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/* Check for frequency increase */
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if ( max_load > dbs_tuners_ins . up_threshold ) {
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this_dbs_info - > down_skip = 0 ;
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/* if we are already at full speed then break out early */
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if ( this_dbs_info - > requested_freq = = policy - > max )
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return ;
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freq_target = ( dbs_tuners_ins . freq_step * policy - > max ) / 100 ;
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/* max freq cannot be less than 100. But who knows.... */
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if ( unlikely ( freq_target = = 0 ) )
freq_target = 5 ;
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this_dbs_info - > requested_freq + = freq_target ;
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if ( this_dbs_info - > requested_freq > policy - > max )
this_dbs_info - > requested_freq = policy - > max ;
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__cpufreq_driver_target ( policy , this_dbs_info - > requested_freq ,
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CPUFREQ_RELATION_H ) ;
return ;
}
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/*
* The optimal frequency is the frequency that is the lowest that
* can support the current CPU usage without triggering the up
* policy . To be safe , we focus 10 points under the threshold .
*/
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if ( max_load < ( dbs_tuners_ins . down_threshold - 10 ) ) {
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freq_target = ( dbs_tuners_ins . freq_step * policy - > max ) / 100 ;
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this_dbs_info - > requested_freq - = freq_target ;
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if ( this_dbs_info - > requested_freq < policy - > min )
this_dbs_info - > requested_freq = policy - > min ;
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/*
* if we cannot reduce the frequency anymore , break out early
*/
if ( policy - > cur = = policy - > min )
return ;
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__cpufreq_driver_target ( policy , this_dbs_info - > requested_freq ,
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CPUFREQ_RELATION_H ) ;
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return ;
}
}
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static void do_dbs_timer ( struct work_struct * work )
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{
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struct cpu_dbs_info_s * dbs_info =
container_of ( work , struct cpu_dbs_info_s , work . work ) ;
unsigned int cpu = dbs_info - > cpu ;
/* We want all CPUs to do sampling nearly on same jiffy */
int delay = usecs_to_jiffies ( dbs_tuners_ins . sampling_rate ) ;
delay - = jiffies % delay ;
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mutex_lock ( & dbs_info - > timer_mutex ) ;
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dbs_check_cpu ( dbs_info ) ;
queue_delayed_work_on ( cpu , kconservative_wq , & dbs_info - > work , delay ) ;
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mutex_unlock ( & dbs_info - > timer_mutex ) ;
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}
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static inline void dbs_timer_init ( struct cpu_dbs_info_s * dbs_info )
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{
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/* We want all CPUs to do sampling nearly on same jiffy */
int delay = usecs_to_jiffies ( dbs_tuners_ins . sampling_rate ) ;
delay - = jiffies % delay ;
dbs_info - > enable = 1 ;
INIT_DELAYED_WORK_DEFERRABLE ( & dbs_info - > work , do_dbs_timer ) ;
queue_delayed_work_on ( dbs_info - > cpu , kconservative_wq , & dbs_info - > work ,
delay ) ;
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}
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static inline void dbs_timer_exit ( struct cpu_dbs_info_s * dbs_info )
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{
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dbs_info - > enable = 0 ;
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cancel_delayed_work_sync ( & dbs_info - > work ) ;
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}
static int cpufreq_governor_dbs ( struct cpufreq_policy * policy ,
unsigned int event )
{
unsigned int cpu = policy - > cpu ;
struct cpu_dbs_info_s * this_dbs_info ;
unsigned int j ;
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int rc ;
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this_dbs_info = & per_cpu ( cs_cpu_dbs_info , cpu ) ;
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switch ( event ) {
case CPUFREQ_GOV_START :
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if ( ( ! cpu_online ( cpu ) ) | | ( ! policy - > cur ) )
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return - EINVAL ;
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mutex_lock ( & dbs_mutex ) ;
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rc = sysfs_create_group ( & policy - > kobj , & dbs_attr_group_old ) ;
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if ( rc ) {
mutex_unlock ( & dbs_mutex ) ;
return rc ;
}
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for_each_cpu ( j , policy - > cpus ) {
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struct cpu_dbs_info_s * j_dbs_info ;
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j_dbs_info = & per_cpu ( cs_cpu_dbs_info , j ) ;
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j_dbs_info - > cur_policy = policy ;
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j_dbs_info - > prev_cpu_idle = get_cpu_idle_time ( j ,
& j_dbs_info - > prev_cpu_wall ) ;
if ( dbs_tuners_ins . ignore_nice ) {
j_dbs_info - > prev_cpu_nice =
kstat_cpu ( j ) . cpustat . nice ;
}
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}
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this_dbs_info - > down_skip = 0 ;
this_dbs_info - > requested_freq = policy - > cur ;
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mutex_init ( & this_dbs_info - > timer_mutex ) ;
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dbs_enable + + ;
/*
* Start the timerschedule work , when this governor
* is used for first time
*/
if ( dbs_enable = = 1 ) {
unsigned int latency ;
/* policy latency is in nS. Convert it to uS first */
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latency = policy - > cpuinfo . transition_latency / 1000 ;
if ( latency = = 0 )
latency = 1 ;
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rc = sysfs_create_group ( cpufreq_global_kobject ,
& dbs_attr_group ) ;
if ( rc ) {
mutex_unlock ( & dbs_mutex ) ;
return rc ;
}
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/*
* conservative does not implement micro like ondemand
* governor , thus we are bound to jiffes / HZ
*/
min_sampling_rate =
MIN_SAMPLING_RATE_RATIO * jiffies_to_usecs ( 10 ) ;
/* Bring kernel and HW constraints together */
min_sampling_rate = max ( min_sampling_rate ,
MIN_LATENCY_MULTIPLIER * latency ) ;
dbs_tuners_ins . sampling_rate =
max ( min_sampling_rate ,
latency * LATENCY_MULTIPLIER ) ;
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cpufreq_register_notifier (
& dbs_cpufreq_notifier_block ,
CPUFREQ_TRANSITION_NOTIFIER ) ;
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}
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mutex_unlock ( & dbs_mutex ) ;
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dbs_timer_init ( this_dbs_info ) ;
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break ;
case CPUFREQ_GOV_STOP :
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dbs_timer_exit ( this_dbs_info ) ;
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mutex_lock ( & dbs_mutex ) ;
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sysfs_remove_group ( & policy - > kobj , & dbs_attr_group_old ) ;
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dbs_enable - - ;
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mutex_destroy ( & this_dbs_info - > timer_mutex ) ;
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/*
* Stop the timerschedule work , when this governor
* is used for first time
*/
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if ( dbs_enable = = 0 )
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cpufreq_unregister_notifier (
& dbs_cpufreq_notifier_block ,
CPUFREQ_TRANSITION_NOTIFIER ) ;
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mutex_unlock ( & dbs_mutex ) ;
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if ( ! dbs_enable )
sysfs_remove_group ( cpufreq_global_kobject ,
& dbs_attr_group ) ;
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break ;
case CPUFREQ_GOV_LIMITS :
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mutex_lock ( & this_dbs_info - > timer_mutex ) ;
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if ( policy - > max < this_dbs_info - > cur_policy - > cur )
__cpufreq_driver_target (
this_dbs_info - > cur_policy ,
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policy - > max , CPUFREQ_RELATION_H ) ;
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else if ( policy - > min > this_dbs_info - > cur_policy - > cur )
__cpufreq_driver_target (
this_dbs_info - > cur_policy ,
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policy - > min , CPUFREQ_RELATION_L ) ;
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mutex_unlock ( & this_dbs_info - > timer_mutex ) ;
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break ;
}
return 0 ;
}
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# ifndef CONFIG_CPU_FREQ_DEFAULT_GOV_CONSERVATIVE
static
# endif
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struct cpufreq_governor cpufreq_gov_conservative = {
. name = " conservative " ,
. governor = cpufreq_governor_dbs ,
. max_transition_latency = TRANSITION_LATENCY_LIMIT ,
. owner = THIS_MODULE ,
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} ;
static int __init cpufreq_gov_dbs_init ( void )
{
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int err ;
kconservative_wq = create_workqueue ( " kconservative " ) ;
if ( ! kconservative_wq ) {
printk ( KERN_ERR " Creation of kconservative failed \n " ) ;
return - EFAULT ;
}
err = cpufreq_register_governor ( & cpufreq_gov_conservative ) ;
if ( err )
destroy_workqueue ( kconservative_wq ) ;
return err ;
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}
static void __exit cpufreq_gov_dbs_exit ( void )
{
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cpufreq_unregister_governor ( & cpufreq_gov_conservative ) ;
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destroy_workqueue ( kconservative_wq ) ;
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}
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MODULE_AUTHOR ( " Alexander Clouter <alex@digriz.org.uk> " ) ;
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MODULE_DESCRIPTION ( " 'cpufreq_conservative' - A dynamic cpufreq governor for "
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" Low Latency Frequency Transition capable processors "
" optimised for use in a battery environment " ) ;
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MODULE_LICENSE ( " GPL " ) ;
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# ifdef CONFIG_CPU_FREQ_DEFAULT_GOV_CONSERVATIVE
fs_initcall ( cpufreq_gov_dbs_init ) ;
# else
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module_init ( cpufreq_gov_dbs_init ) ;
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# endif
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module_exit ( cpufreq_gov_dbs_exit ) ;