Merge tag 'pwm/for-4.3-rc1' of git://git.kernel.org/pub/scm/linux/kernel/git/thierry...
[deliverable/linux.git] / drivers / cpufreq / cpufreq_ondemand.c
CommitLineData
1da177e4
LT
1/*
2 * drivers/cpufreq/cpufreq_ondemand.c
3 *
4 * Copyright (C) 2001 Russell King
5 * (C) 2003 Venkatesh Pallipadi <venkatesh.pallipadi@intel.com>.
6 * Jun Nakajima <jun.nakajima@intel.com>
7 *
8 * This program is free software; you can redistribute it and/or modify
9 * it under the terms of the GNU General Public License version 2 as
10 * published by the Free Software Foundation.
11 */
12
4471a34f
VK
13#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
14
5ff0a268 15#include <linux/cpu.h>
4471a34f 16#include <linux/percpu-defs.h>
4d5dcc42 17#include <linux/slab.h>
80800913 18#include <linux/tick.h>
4471a34f 19#include "cpufreq_governor.h"
1da177e4 20
06eb09d1 21/* On-demand governor macros */
1da177e4 22#define DEF_FREQUENCY_UP_THRESHOLD (80)
3f78a9f7
DN
23#define DEF_SAMPLING_DOWN_FACTOR (1)
24#define MAX_SAMPLING_DOWN_FACTOR (100000)
80800913 25#define MICRO_FREQUENCY_UP_THRESHOLD (95)
cef9615a 26#define MICRO_FREQUENCY_MIN_SAMPLE_RATE (10000)
c29f1403 27#define MIN_FREQUENCY_UP_THRESHOLD (11)
1da177e4
LT
28#define MAX_FREQUENCY_UP_THRESHOLD (100)
29
4471a34f 30static DEFINE_PER_CPU(struct od_cpu_dbs_info_s, od_cpu_dbs_info);
1da177e4 31
fb30809e
JS
32static struct od_ops od_ops;
33
3e33ee9e
FB
34#ifndef CONFIG_CPU_FREQ_DEFAULT_GOV_ONDEMAND
35static struct cpufreq_governor cpufreq_gov_ondemand;
36#endif
37
c2837558
JS
38static unsigned int default_powersave_bias;
39
4471a34f 40static void ondemand_powersave_bias_init_cpu(int cpu)
6b8fcd90 41{
4471a34f 42 struct od_cpu_dbs_info_s *dbs_info = &per_cpu(od_cpu_dbs_info, cpu);
6b8fcd90 43
4471a34f
VK
44 dbs_info->freq_table = cpufreq_frequency_get_table(cpu);
45 dbs_info->freq_lo = 0;
46}
6b8fcd90 47
4471a34f
VK
48/*
49 * Not all CPUs want IO time to be accounted as busy; this depends on how
50 * efficient idling at a higher frequency/voltage is.
51 * Pavel Machek says this is not so for various generations of AMD and old
52 * Intel systems.
06eb09d1 53 * Mike Chan (android.com) claims this is also not true for ARM.
4471a34f
VK
54 * Because of this, whitelist specific known (series) of CPUs by default, and
55 * leave all others up to the user.
56 */
57static int should_io_be_busy(void)
58{
59#if defined(CONFIG_X86)
60 /*
06eb09d1 61 * For Intel, Core 2 (model 15) and later have an efficient idle.
4471a34f
VK
62 */
63 if (boot_cpu_data.x86_vendor == X86_VENDOR_INTEL &&
64 boot_cpu_data.x86 == 6 &&
65 boot_cpu_data.x86_model >= 15)
66 return 1;
67#endif
68 return 0;
6b8fcd90
AV
69}
70
05ca0350
AS
71/*
72 * Find right freq to be set now with powersave_bias on.
73 * Returns the freq_hi to be used right now and will set freq_hi_jiffies,
74 * freq_lo, and freq_lo_jiffies in percpu area for averaging freqs.
75 */
fb30809e 76static unsigned int generic_powersave_bias_target(struct cpufreq_policy *policy,
4471a34f 77 unsigned int freq_next, unsigned int relation)
05ca0350
AS
78{
79 unsigned int freq_req, freq_reduc, freq_avg;
80 unsigned int freq_hi, freq_lo;
81 unsigned int index = 0;
82 unsigned int jiffies_total, jiffies_hi, jiffies_lo;
4471a34f 83 struct od_cpu_dbs_info_s *dbs_info = &per_cpu(od_cpu_dbs_info,
245b2e70 84 policy->cpu);
4d5dcc42
VK
85 struct dbs_data *dbs_data = policy->governor_data;
86 struct od_dbs_tuners *od_tuners = dbs_data->tuners;
05ca0350
AS
87
88 if (!dbs_info->freq_table) {
89 dbs_info->freq_lo = 0;
90 dbs_info->freq_lo_jiffies = 0;
91 return freq_next;
92 }
93
94 cpufreq_frequency_table_target(policy, dbs_info->freq_table, freq_next,
95 relation, &index);
96 freq_req = dbs_info->freq_table[index].frequency;
4d5dcc42 97 freq_reduc = freq_req * od_tuners->powersave_bias / 1000;
05ca0350
AS
98 freq_avg = freq_req - freq_reduc;
99
100 /* Find freq bounds for freq_avg in freq_table */
101 index = 0;
102 cpufreq_frequency_table_target(policy, dbs_info->freq_table, freq_avg,
103 CPUFREQ_RELATION_H, &index);
104 freq_lo = dbs_info->freq_table[index].frequency;
105 index = 0;
106 cpufreq_frequency_table_target(policy, dbs_info->freq_table, freq_avg,
107 CPUFREQ_RELATION_L, &index);
108 freq_hi = dbs_info->freq_table[index].frequency;
109
110 /* Find out how long we have to be in hi and lo freqs */
111 if (freq_hi == freq_lo) {
112 dbs_info->freq_lo = 0;
113 dbs_info->freq_lo_jiffies = 0;
114 return freq_lo;
115 }
4d5dcc42 116 jiffies_total = usecs_to_jiffies(od_tuners->sampling_rate);
05ca0350
AS
117 jiffies_hi = (freq_avg - freq_lo) * jiffies_total;
118 jiffies_hi += ((freq_hi - freq_lo) / 2);
119 jiffies_hi /= (freq_hi - freq_lo);
120 jiffies_lo = jiffies_total - jiffies_hi;
121 dbs_info->freq_lo = freq_lo;
122 dbs_info->freq_lo_jiffies = jiffies_lo;
123 dbs_info->freq_hi_jiffies = jiffies_hi;
124 return freq_hi;
125}
126
127static void ondemand_powersave_bias_init(void)
128{
129 int i;
130 for_each_online_cpu(i) {
5a75c828 131 ondemand_powersave_bias_init_cpu(i);
05ca0350
AS
132 }
133}
134
3a3e9e06 135static void dbs_freq_increase(struct cpufreq_policy *policy, unsigned int freq)
4471a34f 136{
3a3e9e06 137 struct dbs_data *dbs_data = policy->governor_data;
4d5dcc42
VK
138 struct od_dbs_tuners *od_tuners = dbs_data->tuners;
139
140 if (od_tuners->powersave_bias)
3a3e9e06 141 freq = od_ops.powersave_bias_target(policy, freq,
fb30809e 142 CPUFREQ_RELATION_H);
3a3e9e06 143 else if (policy->cur == policy->max)
4471a34f 144 return;
0e625ac1 145
3a3e9e06 146 __cpufreq_driver_target(policy, freq, od_tuners->powersave_bias ?
4471a34f
VK
147 CPUFREQ_RELATION_L : CPUFREQ_RELATION_H);
148}
149
150/*
151 * Every sampling_rate, we check, if current idle time is less than 20%
dfa5bb62
SK
152 * (default), then we try to increase frequency. Else, we adjust the frequency
153 * proportional to load.
4471a34f 154 */
dfa5bb62 155static void od_check_cpu(int cpu, unsigned int load)
1da177e4 156{
4471a34f 157 struct od_cpu_dbs_info_s *dbs_info = &per_cpu(od_cpu_dbs_info, cpu);
44152cb8 158 struct cpufreq_policy *policy = dbs_info->cdbs.shared->policy;
4d5dcc42
VK
159 struct dbs_data *dbs_data = policy->governor_data;
160 struct od_dbs_tuners *od_tuners = dbs_data->tuners;
4471a34f
VK
161
162 dbs_info->freq_lo = 0;
163
164 /* Check for frequency increase */
dfa5bb62 165 if (load > od_tuners->up_threshold) {
4471a34f
VK
166 /* If switching to max speed, apply sampling_down_factor */
167 if (policy->cur < policy->max)
168 dbs_info->rate_mult =
4d5dcc42 169 od_tuners->sampling_down_factor;
4471a34f 170 dbs_freq_increase(policy, policy->max);
dfa5bb62
SK
171 } else {
172 /* Calculate the next frequency proportional to load */
6393d6a1
SK
173 unsigned int freq_next, min_f, max_f;
174
175 min_f = policy->cpuinfo.min_freq;
176 max_f = policy->cpuinfo.max_freq;
177 freq_next = min_f + load * (max_f - min_f) / 100;
4471a34f
VK
178
179 /* No longer fully busy, reset rate_mult */
180 dbs_info->rate_mult = 1;
181
4d5dcc42 182 if (!od_tuners->powersave_bias) {
4471a34f 183 __cpufreq_driver_target(policy, freq_next,
6393d6a1 184 CPUFREQ_RELATION_C);
fb30809e 185 return;
4471a34f 186 }
fb30809e
JS
187
188 freq_next = od_ops.powersave_bias_target(policy, freq_next,
189 CPUFREQ_RELATION_L);
6393d6a1 190 __cpufreq_driver_target(policy, freq_next, CPUFREQ_RELATION_C);
4471a34f 191 }
1da177e4
LT
192}
193
43e0ee36
VK
194static unsigned int od_dbs_timer(struct cpu_dbs_info *cdbs,
195 struct dbs_data *dbs_data, bool modify_all)
4471a34f 196{
43e0ee36 197 struct cpufreq_policy *policy = cdbs->shared->policy;
44152cb8 198 unsigned int cpu = policy->cpu;
43e0ee36 199 struct od_cpu_dbs_info_s *dbs_info = &per_cpu(od_cpu_dbs_info,
4447266b 200 cpu);
4d5dcc42 201 struct od_dbs_tuners *od_tuners = dbs_data->tuners;
43e0ee36 202 int delay = 0, sample_type = dbs_info->sample_type;
4447266b 203
43e0ee36 204 if (!modify_all)
9d445920 205 goto max_delay;
1da177e4 206
4471a34f 207 /* Common NORMAL_SAMPLE setup */
43e0ee36 208 dbs_info->sample_type = OD_NORMAL_SAMPLE;
4471a34f 209 if (sample_type == OD_SUB_SAMPLE) {
43e0ee36
VK
210 delay = dbs_info->freq_lo_jiffies;
211 __cpufreq_driver_target(policy, dbs_info->freq_lo,
42994af6 212 CPUFREQ_RELATION_H);
4471a34f 213 } else {
9d445920 214 dbs_check_cpu(dbs_data, cpu);
43e0ee36 215 if (dbs_info->freq_lo) {
4471a34f 216 /* Setup timer for SUB_SAMPLE */
43e0ee36
VK
217 dbs_info->sample_type = OD_SUB_SAMPLE;
218 delay = dbs_info->freq_hi_jiffies;
4471a34f
VK
219 }
220 }
221
9d445920
VK
222max_delay:
223 if (!delay)
224 delay = delay_for_sampling_rate(od_tuners->sampling_rate
43e0ee36 225 * dbs_info->rate_mult);
9d445920 226
43e0ee36 227 return delay;
da53d61e
FB
228}
229
4471a34f 230/************************** sysfs interface ************************/
4d5dcc42 231static struct common_dbs_data od_dbs_cdata;
1da177e4 232
fd0ef7a0
MH
233/**
234 * update_sampling_rate - update sampling rate effective immediately if needed.
235 * @new_rate: new sampling rate
236 *
06eb09d1 237 * If new rate is smaller than the old, simply updating
4471a34f
VK
238 * dbs_tuners_int.sampling_rate might not be appropriate. For example, if the
239 * original sampling_rate was 1 second and the requested new sampling rate is 10
240 * ms because the user needs immediate reaction from ondemand governor, but not
241 * sure if higher frequency will be required or not, then, the governor may
242 * change the sampling rate too late; up to 1 second later. Thus, if we are
243 * reducing the sampling rate, we need to make the new value effective
244 * immediately.
fd0ef7a0 245 */
4d5dcc42
VK
246static void update_sampling_rate(struct dbs_data *dbs_data,
247 unsigned int new_rate)
fd0ef7a0 248{
4d5dcc42 249 struct od_dbs_tuners *od_tuners = dbs_data->tuners;
fd0ef7a0
MH
250 int cpu;
251
4d5dcc42
VK
252 od_tuners->sampling_rate = new_rate = max(new_rate,
253 dbs_data->min_sampling_rate);
fd0ef7a0
MH
254
255 for_each_online_cpu(cpu) {
256 struct cpufreq_policy *policy;
4471a34f 257 struct od_cpu_dbs_info_s *dbs_info;
fd0ef7a0
MH
258 unsigned long next_sampling, appointed_at;
259
260 policy = cpufreq_cpu_get(cpu);
261 if (!policy)
262 continue;
3e33ee9e
FB
263 if (policy->governor != &cpufreq_gov_ondemand) {
264 cpufreq_cpu_put(policy);
265 continue;
266 }
8ee2ec51 267 dbs_info = &per_cpu(od_cpu_dbs_info, cpu);
fd0ef7a0
MH
268 cpufreq_cpu_put(policy);
269
44152cb8 270 mutex_lock(&dbs_info->cdbs.shared->timer_mutex);
fd0ef7a0 271
386d46e6 272 if (!delayed_work_pending(&dbs_info->cdbs.dwork)) {
44152cb8 273 mutex_unlock(&dbs_info->cdbs.shared->timer_mutex);
fd0ef7a0
MH
274 continue;
275 }
276
4471a34f 277 next_sampling = jiffies + usecs_to_jiffies(new_rate);
386d46e6 278 appointed_at = dbs_info->cdbs.dwork.timer.expires;
fd0ef7a0
MH
279
280 if (time_before(next_sampling, appointed_at)) {
281
44152cb8 282 mutex_unlock(&dbs_info->cdbs.shared->timer_mutex);
386d46e6 283 cancel_delayed_work_sync(&dbs_info->cdbs.dwork);
44152cb8 284 mutex_lock(&dbs_info->cdbs.shared->timer_mutex);
fd0ef7a0 285
44152cb8 286 gov_queue_work(dbs_data, policy,
42994af6 287 usecs_to_jiffies(new_rate), true);
fd0ef7a0
MH
288
289 }
44152cb8 290 mutex_unlock(&dbs_info->cdbs.shared->timer_mutex);
fd0ef7a0
MH
291 }
292}
293
4d5dcc42
VK
294static ssize_t store_sampling_rate(struct dbs_data *dbs_data, const char *buf,
295 size_t count)
1da177e4
LT
296{
297 unsigned int input;
298 int ret;
ffac80e9 299 ret = sscanf(buf, "%u", &input);
5a75c828 300 if (ret != 1)
301 return -EINVAL;
4d5dcc42
VK
302
303 update_sampling_rate(dbs_data, input);
1da177e4
LT
304 return count;
305}
306
4d5dcc42
VK
307static ssize_t store_io_is_busy(struct dbs_data *dbs_data, const char *buf,
308 size_t count)
19379b11 309{
4d5dcc42 310 struct od_dbs_tuners *od_tuners = dbs_data->tuners;
19379b11
AV
311 unsigned int input;
312 int ret;
9366d840 313 unsigned int j;
19379b11
AV
314
315 ret = sscanf(buf, "%u", &input);
316 if (ret != 1)
317 return -EINVAL;
4d5dcc42 318 od_tuners->io_is_busy = !!input;
9366d840
SK
319
320 /* we need to re-evaluate prev_cpu_idle */
321 for_each_online_cpu(j) {
322 struct od_cpu_dbs_info_s *dbs_info = &per_cpu(od_cpu_dbs_info,
323 j);
324 dbs_info->cdbs.prev_cpu_idle = get_cpu_idle_time(j,
325 &dbs_info->cdbs.prev_cpu_wall, od_tuners->io_is_busy);
326 }
19379b11
AV
327 return count;
328}
329
4d5dcc42
VK
330static ssize_t store_up_threshold(struct dbs_data *dbs_data, const char *buf,
331 size_t count)
1da177e4 332{
4d5dcc42 333 struct od_dbs_tuners *od_tuners = dbs_data->tuners;
1da177e4
LT
334 unsigned int input;
335 int ret;
ffac80e9 336 ret = sscanf(buf, "%u", &input);
1da177e4 337
32ee8c3e 338 if (ret != 1 || input > MAX_FREQUENCY_UP_THRESHOLD ||
c29f1403 339 input < MIN_FREQUENCY_UP_THRESHOLD) {
1da177e4
LT
340 return -EINVAL;
341 }
4bd4e428 342
4d5dcc42 343 od_tuners->up_threshold = input;
1da177e4
LT
344 return count;
345}
346
4d5dcc42
VK
347static ssize_t store_sampling_down_factor(struct dbs_data *dbs_data,
348 const char *buf, size_t count)
3f78a9f7 349{
4d5dcc42 350 struct od_dbs_tuners *od_tuners = dbs_data->tuners;
3f78a9f7
DN
351 unsigned int input, j;
352 int ret;
353 ret = sscanf(buf, "%u", &input);
354
355 if (ret != 1 || input > MAX_SAMPLING_DOWN_FACTOR || input < 1)
356 return -EINVAL;
4d5dcc42 357 od_tuners->sampling_down_factor = input;
3f78a9f7
DN
358
359 /* Reset down sampling multiplier in case it was active */
360 for_each_online_cpu(j) {
4471a34f
VK
361 struct od_cpu_dbs_info_s *dbs_info = &per_cpu(od_cpu_dbs_info,
362 j);
3f78a9f7
DN
363 dbs_info->rate_mult = 1;
364 }
3f78a9f7
DN
365 return count;
366}
367
6c4640c3
VK
368static ssize_t store_ignore_nice_load(struct dbs_data *dbs_data,
369 const char *buf, size_t count)
3d5ee9e5 370{
4d5dcc42 371 struct od_dbs_tuners *od_tuners = dbs_data->tuners;
3d5ee9e5
DJ
372 unsigned int input;
373 int ret;
374
375 unsigned int j;
32ee8c3e 376
ffac80e9 377 ret = sscanf(buf, "%u", &input);
2b03f891 378 if (ret != 1)
3d5ee9e5
DJ
379 return -EINVAL;
380
2b03f891 381 if (input > 1)
3d5ee9e5 382 input = 1;
32ee8c3e 383
6c4640c3 384 if (input == od_tuners->ignore_nice_load) { /* nothing to do */
3d5ee9e5
DJ
385 return count;
386 }
6c4640c3 387 od_tuners->ignore_nice_load = input;
3d5ee9e5 388
ccb2fe20 389 /* we need to re-evaluate prev_cpu_idle */
dac1c1a5 390 for_each_online_cpu(j) {
4471a34f 391 struct od_cpu_dbs_info_s *dbs_info;
245b2e70 392 dbs_info = &per_cpu(od_cpu_dbs_info, j);
4471a34f 393 dbs_info->cdbs.prev_cpu_idle = get_cpu_idle_time(j,
9366d840 394 &dbs_info->cdbs.prev_cpu_wall, od_tuners->io_is_busy);
6c4640c3 395 if (od_tuners->ignore_nice_load)
4471a34f
VK
396 dbs_info->cdbs.prev_cpu_nice =
397 kcpustat_cpu(j).cpustat[CPUTIME_NICE];
1ca3abdb 398
3d5ee9e5 399 }
3d5ee9e5
DJ
400 return count;
401}
402
4d5dcc42
VK
403static ssize_t store_powersave_bias(struct dbs_data *dbs_data, const char *buf,
404 size_t count)
05ca0350 405{
4d5dcc42 406 struct od_dbs_tuners *od_tuners = dbs_data->tuners;
05ca0350
AS
407 unsigned int input;
408 int ret;
409 ret = sscanf(buf, "%u", &input);
410
411 if (ret != 1)
412 return -EINVAL;
413
414 if (input > 1000)
415 input = 1000;
416
4d5dcc42 417 od_tuners->powersave_bias = input;
05ca0350 418 ondemand_powersave_bias_init();
05ca0350
AS
419 return count;
420}
421
4d5dcc42
VK
422show_store_one(od, sampling_rate);
423show_store_one(od, io_is_busy);
424show_store_one(od, up_threshold);
425show_store_one(od, sampling_down_factor);
6c4640c3 426show_store_one(od, ignore_nice_load);
4d5dcc42
VK
427show_store_one(od, powersave_bias);
428declare_show_sampling_rate_min(od);
429
430gov_sys_pol_attr_rw(sampling_rate);
431gov_sys_pol_attr_rw(io_is_busy);
432gov_sys_pol_attr_rw(up_threshold);
433gov_sys_pol_attr_rw(sampling_down_factor);
6c4640c3 434gov_sys_pol_attr_rw(ignore_nice_load);
4d5dcc42
VK
435gov_sys_pol_attr_rw(powersave_bias);
436gov_sys_pol_attr_ro(sampling_rate_min);
437
438static struct attribute *dbs_attributes_gov_sys[] = {
439 &sampling_rate_min_gov_sys.attr,
440 &sampling_rate_gov_sys.attr,
441 &up_threshold_gov_sys.attr,
442 &sampling_down_factor_gov_sys.attr,
6c4640c3 443 &ignore_nice_load_gov_sys.attr,
4d5dcc42
VK
444 &powersave_bias_gov_sys.attr,
445 &io_is_busy_gov_sys.attr,
1da177e4
LT
446 NULL
447};
448
4d5dcc42
VK
449static struct attribute_group od_attr_group_gov_sys = {
450 .attrs = dbs_attributes_gov_sys,
451 .name = "ondemand",
452};
453
454static struct attribute *dbs_attributes_gov_pol[] = {
455 &sampling_rate_min_gov_pol.attr,
456 &sampling_rate_gov_pol.attr,
457 &up_threshold_gov_pol.attr,
458 &sampling_down_factor_gov_pol.attr,
6c4640c3 459 &ignore_nice_load_gov_pol.attr,
4d5dcc42
VK
460 &powersave_bias_gov_pol.attr,
461 &io_is_busy_gov_pol.attr,
462 NULL
463};
464
465static struct attribute_group od_attr_group_gov_pol = {
466 .attrs = dbs_attributes_gov_pol,
1da177e4
LT
467 .name = "ondemand",
468};
469
470/************************** sysfs end ************************/
471
8e0484d2 472static int od_init(struct dbs_data *dbs_data, bool notify)
4d5dcc42
VK
473{
474 struct od_dbs_tuners *tuners;
475 u64 idle_time;
476 int cpu;
477
d5b73cd8 478 tuners = kzalloc(sizeof(*tuners), GFP_KERNEL);
4d5dcc42
VK
479 if (!tuners) {
480 pr_err("%s: kzalloc failed\n", __func__);
481 return -ENOMEM;
482 }
483
484 cpu = get_cpu();
485 idle_time = get_cpu_idle_time_us(cpu, NULL);
486 put_cpu();
487 if (idle_time != -1ULL) {
488 /* Idle micro accounting is supported. Use finer thresholds */
489 tuners->up_threshold = MICRO_FREQUENCY_UP_THRESHOLD;
4d5dcc42
VK
490 /*
491 * In nohz/micro accounting case we set the minimum frequency
492 * not depending on HZ, but fixed (very low). The deferred
493 * timer might skip some samples if idle/sleeping as needed.
494 */
495 dbs_data->min_sampling_rate = MICRO_FREQUENCY_MIN_SAMPLE_RATE;
496 } else {
497 tuners->up_threshold = DEF_FREQUENCY_UP_THRESHOLD;
4d5dcc42
VK
498
499 /* For correct statistics, we need 10 ticks for each measure */
500 dbs_data->min_sampling_rate = MIN_SAMPLING_RATE_RATIO *
501 jiffies_to_usecs(10);
502 }
503
504 tuners->sampling_down_factor = DEF_SAMPLING_DOWN_FACTOR;
6c4640c3 505 tuners->ignore_nice_load = 0;
c2837558 506 tuners->powersave_bias = default_powersave_bias;
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507 tuners->io_is_busy = should_io_be_busy();
508
509 dbs_data->tuners = tuners;
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510 return 0;
511}
512
8e0484d2 513static void od_exit(struct dbs_data *dbs_data, bool notify)
4d5dcc42
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514{
515 kfree(dbs_data->tuners);
516}
517
4471a34f 518define_get_cpu_dbs_routines(od_cpu_dbs_info);
6b8fcd90 519
4471a34f 520static struct od_ops od_ops = {
4471a34f 521 .powersave_bias_init_cpu = ondemand_powersave_bias_init_cpu,
fb30809e 522 .powersave_bias_target = generic_powersave_bias_target,
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523 .freq_increase = dbs_freq_increase,
524};
2f8a835c 525
4d5dcc42 526static struct common_dbs_data od_dbs_cdata = {
4471a34f 527 .governor = GOV_ONDEMAND,
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528 .attr_group_gov_sys = &od_attr_group_gov_sys,
529 .attr_group_gov_pol = &od_attr_group_gov_pol,
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530 .get_cpu_cdbs = get_cpu_cdbs,
531 .get_cpu_dbs_info_s = get_cpu_dbs_info_s,
532 .gov_dbs_timer = od_dbs_timer,
533 .gov_check_cpu = od_check_cpu,
534 .gov_ops = &od_ops,
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535 .init = od_init,
536 .exit = od_exit,
732b6d61 537 .mutex = __MUTEX_INITIALIZER(od_dbs_cdata.mutex),
4471a34f 538};
1da177e4 539
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540static void od_set_powersave_bias(unsigned int powersave_bias)
541{
542 struct cpufreq_policy *policy;
543 struct dbs_data *dbs_data;
544 struct od_dbs_tuners *od_tuners;
545 unsigned int cpu;
546 cpumask_t done;
547
c2837558 548 default_powersave_bias = powersave_bias;
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549 cpumask_clear(&done);
550
551 get_online_cpus();
552 for_each_online_cpu(cpu) {
44152cb8
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553 struct cpu_common_dbs_info *shared;
554
fb30809e
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555 if (cpumask_test_cpu(cpu, &done))
556 continue;
557
44152cb8
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558 shared = per_cpu(od_cpu_dbs_info, cpu).cdbs.shared;
559 if (!shared)
c2837558 560 continue;
fb30809e 561
44152cb8 562 policy = shared->policy;
fb30809e 563 cpumask_or(&done, &done, policy->cpus);
c2837558
JS
564
565 if (policy->governor != &cpufreq_gov_ondemand)
566 continue;
567
568 dbs_data = policy->governor_data;
569 od_tuners = dbs_data->tuners;
570 od_tuners->powersave_bias = default_powersave_bias;
fb30809e
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571 }
572 put_online_cpus();
573}
574
575void od_register_powersave_bias_handler(unsigned int (*f)
576 (struct cpufreq_policy *, unsigned int, unsigned int),
577 unsigned int powersave_bias)
578{
579 od_ops.powersave_bias_target = f;
580 od_set_powersave_bias(powersave_bias);
581}
582EXPORT_SYMBOL_GPL(od_register_powersave_bias_handler);
583
584void od_unregister_powersave_bias_handler(void)
585{
586 od_ops.powersave_bias_target = generic_powersave_bias_target;
587 od_set_powersave_bias(0);
588}
589EXPORT_SYMBOL_GPL(od_unregister_powersave_bias_handler);
590
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591static int od_cpufreq_governor_dbs(struct cpufreq_policy *policy,
592 unsigned int event)
1da177e4 593{
4d5dcc42 594 return cpufreq_governor_dbs(policy, &od_dbs_cdata, event);
1da177e4
LT
595}
596
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597#ifndef CONFIG_CPU_FREQ_DEFAULT_GOV_ONDEMAND
598static
19379b11 599#endif
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600struct cpufreq_governor cpufreq_gov_ondemand = {
601 .name = "ondemand",
602 .governor = od_cpufreq_governor_dbs,
603 .max_transition_latency = TRANSITION_LATENCY_LIMIT,
604 .owner = THIS_MODULE,
605};
1da177e4 606
1da177e4
LT
607static int __init cpufreq_gov_dbs_init(void)
608{
57df5573 609 return cpufreq_register_governor(&cpufreq_gov_ondemand);
1da177e4
LT
610}
611
612static void __exit cpufreq_gov_dbs_exit(void)
613{
1c256245 614 cpufreq_unregister_governor(&cpufreq_gov_ondemand);
1da177e4
LT
615}
616
ffac80e9
VP
617MODULE_AUTHOR("Venkatesh Pallipadi <venkatesh.pallipadi@intel.com>");
618MODULE_AUTHOR("Alexey Starikovskiy <alexey.y.starikovskiy@intel.com>");
619MODULE_DESCRIPTION("'cpufreq_ondemand' - A dynamic cpufreq governor for "
2b03f891 620 "Low Latency Frequency Transition capable processors");
ffac80e9 621MODULE_LICENSE("GPL");
1da177e4 622
6915719b
JW
623#ifdef CONFIG_CPU_FREQ_DEFAULT_GOV_ONDEMAND
624fs_initcall(cpufreq_gov_dbs_init);
625#else
1da177e4 626module_init(cpufreq_gov_dbs_init);
6915719b 627#endif
1da177e4 628module_exit(cpufreq_gov_dbs_exit);
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