2 * Copyright (c) 2010-2011 Samsung Electronics Co., Ltd.
3 * http://www.samsung.com
5 * EXYNOS - CPU frequency scaling support for EXYNOS series
7 * This program is free software; you can redistribute it and/or modify
8 * it under the terms of the GNU General Public License version 2 as
9 * published by the Free Software Foundation.
12 #include <linux/kernel.h>
13 #include <linux/err.h>
14 #include <linux/clk.h>
16 #include <linux/slab.h>
17 #include <linux/regulator/consumer.h>
18 #include <linux/cpufreq.h>
19 #include <linux/suspend.h>
23 #include "exynos-cpufreq.h"
25 static struct exynos_dvfs_info
*exynos_info
;
27 static struct regulator
*arm_regulator
;
28 static struct cpufreq_freqs freqs
;
30 static unsigned int locking_frequency
;
31 static bool frequency_locked
;
32 static DEFINE_MUTEX(cpufreq_lock
);
34 static int exynos_verify_speed(struct cpufreq_policy
*policy
)
36 return cpufreq_frequency_table_verify(policy
,
37 exynos_info
->freq_table
);
40 static unsigned int exynos_getspeed(unsigned int cpu
)
42 return clk_get_rate(exynos_info
->cpu_clk
) / 1000;
45 static int exynos_cpufreq_get_index(unsigned int freq
)
47 struct cpufreq_frequency_table
*freq_table
= exynos_info
->freq_table
;
51 freq_table
[index
].frequency
!= CPUFREQ_TABLE_END
; index
++)
52 if (freq_table
[index
].frequency
== freq
)
55 if (freq_table
[index
].frequency
== CPUFREQ_TABLE_END
)
61 static int exynos_cpufreq_scale(unsigned int target_freq
)
63 struct cpufreq_frequency_table
*freq_table
= exynos_info
->freq_table
;
64 unsigned int *volt_table
= exynos_info
->volt_table
;
65 struct cpufreq_policy
*policy
= cpufreq_cpu_get(0);
66 unsigned int arm_volt
, safe_arm_volt
= 0;
67 unsigned int mpll_freq_khz
= exynos_info
->mpll_freq_khz
;
71 freqs
.old
= policy
->cur
;
72 freqs
.new = target_freq
;
74 if (freqs
.new == freqs
.old
)
78 * The policy max have been changed so that we cannot get proper
79 * old_index with cpufreq_frequency_table_target(). Thus, ignore
80 * policy and get the index from the raw freqeuncy table.
82 old_index
= exynos_cpufreq_get_index(freqs
.old
);
88 index
= exynos_cpufreq_get_index(target_freq
);
95 * ARM clock source will be changed APLL to MPLL temporary
96 * To support this level, need to control regulator for
97 * required voltage level
99 if (exynos_info
->need_apll_change
!= NULL
) {
100 if (exynos_info
->need_apll_change(old_index
, index
) &&
101 (freq_table
[index
].frequency
< mpll_freq_khz
) &&
102 (freq_table
[old_index
].frequency
< mpll_freq_khz
))
103 safe_arm_volt
= volt_table
[exynos_info
->pll_safe_idx
];
105 arm_volt
= volt_table
[index
];
107 cpufreq_notify_transition(policy
, &freqs
, CPUFREQ_PRECHANGE
);
109 /* When the new frequency is higher than current frequency */
110 if ((freqs
.new > freqs
.old
) && !safe_arm_volt
) {
111 /* Firstly, voltage up to increase frequency */
112 ret
= regulator_set_voltage(arm_regulator
, arm_volt
, arm_volt
);
114 pr_err("%s: failed to set cpu voltage to %d\n",
116 freqs
.new = freqs
.old
;
122 ret
= regulator_set_voltage(arm_regulator
, safe_arm_volt
,
125 pr_err("%s: failed to set cpu voltage to %d\n",
126 __func__
, safe_arm_volt
);
127 freqs
.new = freqs
.old
;
132 exynos_info
->set_freq(old_index
, index
);
135 cpufreq_notify_transition(policy
, &freqs
, CPUFREQ_POSTCHANGE
);
140 /* When the new frequency is lower than current frequency */
141 if ((freqs
.new < freqs
.old
) ||
142 ((freqs
.new > freqs
.old
) && safe_arm_volt
)) {
143 /* down the voltage after frequency change */
144 regulator_set_voltage(arm_regulator
, arm_volt
,
147 pr_err("%s: failed to set cpu voltage to %d\n",
155 cpufreq_cpu_put(policy
);
160 static int exynos_target(struct cpufreq_policy
*policy
,
161 unsigned int target_freq
,
162 unsigned int relation
)
164 struct cpufreq_frequency_table
*freq_table
= exynos_info
->freq_table
;
166 unsigned int new_freq
;
169 mutex_lock(&cpufreq_lock
);
171 if (frequency_locked
)
174 if (cpufreq_frequency_table_target(policy
, freq_table
,
175 target_freq
, relation
, &index
)) {
180 new_freq
= freq_table
[index
].frequency
;
182 ret
= exynos_cpufreq_scale(new_freq
);
185 mutex_unlock(&cpufreq_lock
);
191 static int exynos_cpufreq_suspend(struct cpufreq_policy
*policy
)
196 static int exynos_cpufreq_resume(struct cpufreq_policy
*policy
)
203 * exynos_cpufreq_pm_notifier - block CPUFREQ's activities in suspend-resume
209 * While frequency_locked == true, target() ignores every frequency but
210 * locking_frequency. The locking_frequency value is the initial frequency,
211 * which is set by the bootloader. In order to eliminate possible
212 * inconsistency in clock values, we save and restore frequencies during
213 * suspend and resume and block CPUFREQ activities. Note that the standard
214 * suspend/resume cannot be used as they are too deep (syscore_ops) for
217 static int exynos_cpufreq_pm_notifier(struct notifier_block
*notifier
,
218 unsigned long pm_event
, void *v
)
223 case PM_SUSPEND_PREPARE
:
224 mutex_lock(&cpufreq_lock
);
225 frequency_locked
= true;
226 mutex_unlock(&cpufreq_lock
);
228 ret
= exynos_cpufreq_scale(locking_frequency
);
234 case PM_POST_SUSPEND
:
235 mutex_lock(&cpufreq_lock
);
236 frequency_locked
= false;
237 mutex_unlock(&cpufreq_lock
);
244 static struct notifier_block exynos_cpufreq_nb
= {
245 .notifier_call
= exynos_cpufreq_pm_notifier
,
248 static int exynos_cpufreq_cpu_init(struct cpufreq_policy
*policy
)
250 policy
->cur
= policy
->min
= policy
->max
= exynos_getspeed(policy
->cpu
);
252 cpufreq_frequency_table_get_attr(exynos_info
->freq_table
, policy
->cpu
);
254 /* set the transition latency value */
255 policy
->cpuinfo
.transition_latency
= 100000;
257 cpumask_setall(policy
->cpus
);
259 return cpufreq_frequency_table_cpuinfo(policy
, exynos_info
->freq_table
);
262 static int exynos_cpufreq_cpu_exit(struct cpufreq_policy
*policy
)
264 cpufreq_frequency_table_put_attr(policy
->cpu
);
268 static struct freq_attr
*exynos_cpufreq_attr
[] = {
269 &cpufreq_freq_attr_scaling_available_freqs
,
273 static struct cpufreq_driver exynos_driver
= {
274 .flags
= CPUFREQ_STICKY
,
275 .verify
= exynos_verify_speed
,
276 .target
= exynos_target
,
277 .get
= exynos_getspeed
,
278 .init
= exynos_cpufreq_cpu_init
,
279 .exit
= exynos_cpufreq_cpu_exit
,
280 .name
= "exynos_cpufreq",
281 .attr
= exynos_cpufreq_attr
,
283 .suspend
= exynos_cpufreq_suspend
,
284 .resume
= exynos_cpufreq_resume
,
288 static int __init
exynos_cpufreq_init(void)
292 exynos_info
= kzalloc(sizeof(*exynos_info
), GFP_KERNEL
);
296 if (soc_is_exynos4210())
297 ret
= exynos4210_cpufreq_init(exynos_info
);
298 else if (soc_is_exynos4212() || soc_is_exynos4412())
299 ret
= exynos4x12_cpufreq_init(exynos_info
);
300 else if (soc_is_exynos5250())
301 ret
= exynos5250_cpufreq_init(exynos_info
);
308 if (exynos_info
->set_freq
== NULL
) {
309 pr_err("%s: No set_freq function (ERR)\n", __func__
);
313 arm_regulator
= regulator_get(NULL
, "vdd_arm");
314 if (IS_ERR(arm_regulator
)) {
315 pr_err("%s: failed to get resource vdd_arm\n", __func__
);
319 locking_frequency
= exynos_getspeed(0);
321 register_pm_notifier(&exynos_cpufreq_nb
);
323 if (cpufreq_register_driver(&exynos_driver
)) {
324 pr_err("%s: failed to register cpufreq driver\n", __func__
);
330 unregister_pm_notifier(&exynos_cpufreq_nb
);
332 regulator_put(arm_regulator
);
337 late_initcall(exynos_cpufreq_init
);