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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
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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>
7d5a9956
RW
19
20#include "cpufreq_ondemand.h"
1da177e4 21
06eb09d1 22/* On-demand governor macros */
1da177e4 23#define DEF_FREQUENCY_UP_THRESHOLD (80)
3f78a9f7
DN
24#define DEF_SAMPLING_DOWN_FACTOR (1)
25#define MAX_SAMPLING_DOWN_FACTOR (100000)
80800913 26#define MICRO_FREQUENCY_UP_THRESHOLD (95)
cef9615a 27#define MICRO_FREQUENCY_MIN_SAMPLE_RATE (10000)
4dd63b49 28#define MIN_FREQUENCY_UP_THRESHOLD (1)
1da177e4
LT
29#define MAX_FREQUENCY_UP_THRESHOLD (100)
30
fb30809e
JS
31static struct od_ops od_ops;
32
c2837558
JS
33static unsigned int default_powersave_bias;
34
4471a34f
VK
35/*
36 * Not all CPUs want IO time to be accounted as busy; this depends on how
37 * efficient idling at a higher frequency/voltage is.
38 * Pavel Machek says this is not so for various generations of AMD and old
39 * Intel systems.
06eb09d1 40 * Mike Chan (android.com) claims this is also not true for ARM.
4471a34f
VK
41 * Because of this, whitelist specific known (series) of CPUs by default, and
42 * leave all others up to the user.
43 */
44static int should_io_be_busy(void)
45{
46#if defined(CONFIG_X86)
47 /*
06eb09d1 48 * For Intel, Core 2 (model 15) and later have an efficient idle.
4471a34f
VK
49 */
50 if (boot_cpu_data.x86_vendor == X86_VENDOR_INTEL &&
51 boot_cpu_data.x86 == 6 &&
52 boot_cpu_data.x86_model >= 15)
53 return 1;
54#endif
55 return 0;
6b8fcd90
AV
56}
57
05ca0350
AS
58/*
59 * Find right freq to be set now with powersave_bias on.
07aa4402
RW
60 * Returns the freq_hi to be used right now and will set freq_hi_delay_us,
61 * freq_lo, and freq_lo_delay_us in percpu area for averaging freqs.
05ca0350 62 */
fb30809e 63static unsigned int generic_powersave_bias_target(struct cpufreq_policy *policy,
4471a34f 64 unsigned int freq_next, unsigned int relation)
05ca0350
AS
65{
66 unsigned int freq_req, freq_reduc, freq_avg;
67 unsigned int freq_hi, freq_lo;
d218ed77 68 unsigned int index;
07aa4402 69 unsigned int delay_hi_us;
bc505475 70 struct policy_dbs_info *policy_dbs = policy->governor_data;
7d5a9956 71 struct od_policy_dbs_info *dbs_info = to_dbs_info(policy_dbs);
bc505475 72 struct dbs_data *dbs_data = policy_dbs->dbs_data;
4d5dcc42 73 struct od_dbs_tuners *od_tuners = dbs_data->tuners;
34ac5d7a 74 struct cpufreq_frequency_table *freq_table = policy->freq_table;
05ca0350 75
34ac5d7a 76 if (!freq_table) {
05ca0350 77 dbs_info->freq_lo = 0;
07aa4402 78 dbs_info->freq_lo_delay_us = 0;
05ca0350
AS
79 return freq_next;
80 }
81
d218ed77 82 index = cpufreq_frequency_table_target(policy, freq_next, relation);
34ac5d7a 83 freq_req = freq_table[index].frequency;
4d5dcc42 84 freq_reduc = freq_req * od_tuners->powersave_bias / 1000;
05ca0350
AS
85 freq_avg = freq_req - freq_reduc;
86
87 /* Find freq bounds for freq_avg in freq_table */
82577360 88 index = cpufreq_table_find_index_h(policy, freq_avg);
34ac5d7a 89 freq_lo = freq_table[index].frequency;
82577360 90 index = cpufreq_table_find_index_l(policy, freq_avg);
34ac5d7a 91 freq_hi = freq_table[index].frequency;
05ca0350
AS
92
93 /* Find out how long we have to be in hi and lo freqs */
94 if (freq_hi == freq_lo) {
95 dbs_info->freq_lo = 0;
07aa4402 96 dbs_info->freq_lo_delay_us = 0;
05ca0350
AS
97 return freq_lo;
98 }
07aa4402
RW
99 delay_hi_us = (freq_avg - freq_lo) * dbs_data->sampling_rate;
100 delay_hi_us += (freq_hi - freq_lo) / 2;
101 delay_hi_us /= freq_hi - freq_lo;
102 dbs_info->freq_hi_delay_us = delay_hi_us;
05ca0350 103 dbs_info->freq_lo = freq_lo;
07aa4402 104 dbs_info->freq_lo_delay_us = dbs_data->sampling_rate - delay_hi_us;
05ca0350
AS
105 return freq_hi;
106}
107
d1db75ff 108static void ondemand_powersave_bias_init(struct cpufreq_policy *policy)
05ca0350 109{
7d5a9956 110 struct od_policy_dbs_info *dbs_info = to_dbs_info(policy->governor_data);
d1db75ff 111
d1db75ff 112 dbs_info->freq_lo = 0;
05ca0350
AS
113}
114
3a3e9e06 115static void dbs_freq_increase(struct cpufreq_policy *policy, unsigned int freq)
4471a34f 116{
bc505475
RW
117 struct policy_dbs_info *policy_dbs = policy->governor_data;
118 struct dbs_data *dbs_data = policy_dbs->dbs_data;
4d5dcc42
VK
119 struct od_dbs_tuners *od_tuners = dbs_data->tuners;
120
121 if (od_tuners->powersave_bias)
3a3e9e06 122 freq = od_ops.powersave_bias_target(policy, freq,
fb30809e 123 CPUFREQ_RELATION_H);
3a3e9e06 124 else if (policy->cur == policy->max)
4471a34f 125 return;
0e625ac1 126
3a3e9e06 127 __cpufreq_driver_target(policy, freq, od_tuners->powersave_bias ?
4471a34f
VK
128 CPUFREQ_RELATION_L : CPUFREQ_RELATION_H);
129}
130
131/*
132 * Every sampling_rate, we check, if current idle time is less than 20%
dfa5bb62
SK
133 * (default), then we try to increase frequency. Else, we adjust the frequency
134 * proportional to load.
4471a34f 135 */
4cccf755 136static void od_update(struct cpufreq_policy *policy)
1da177e4 137{
7d5a9956
RW
138 struct policy_dbs_info *policy_dbs = policy->governor_data;
139 struct od_policy_dbs_info *dbs_info = to_dbs_info(policy_dbs);
bc505475 140 struct dbs_data *dbs_data = policy_dbs->dbs_data;
4d5dcc42 141 struct od_dbs_tuners *od_tuners = dbs_data->tuners;
4cccf755 142 unsigned int load = dbs_update(policy);
4471a34f
VK
143
144 dbs_info->freq_lo = 0;
145
146 /* Check for frequency increase */
ff4b1789 147 if (load > dbs_data->up_threshold) {
4471a34f
VK
148 /* If switching to max speed, apply sampling_down_factor */
149 if (policy->cur < policy->max)
57dc3bcd 150 policy_dbs->rate_mult = dbs_data->sampling_down_factor;
4471a34f 151 dbs_freq_increase(policy, policy->max);
dfa5bb62
SK
152 } else {
153 /* Calculate the next frequency proportional to load */
6393d6a1
SK
154 unsigned int freq_next, min_f, max_f;
155
156 min_f = policy->cpuinfo.min_freq;
157 max_f = policy->cpuinfo.max_freq;
158 freq_next = min_f + load * (max_f - min_f) / 100;
4471a34f
VK
159
160 /* No longer fully busy, reset rate_mult */
57dc3bcd 161 policy_dbs->rate_mult = 1;
4471a34f 162
a7f35cff
RW
163 if (od_tuners->powersave_bias)
164 freq_next = od_ops.powersave_bias_target(policy,
165 freq_next,
166 CPUFREQ_RELATION_L);
167
6393d6a1 168 __cpufreq_driver_target(policy, freq_next, CPUFREQ_RELATION_C);
4471a34f 169 }
1da177e4
LT
170}
171
26f0dbc9 172static unsigned int od_dbs_update(struct cpufreq_policy *policy)
4471a34f 173{
bc505475
RW
174 struct policy_dbs_info *policy_dbs = policy->governor_data;
175 struct dbs_data *dbs_data = policy_dbs->dbs_data;
7d5a9956 176 struct od_policy_dbs_info *dbs_info = to_dbs_info(policy_dbs);
6e96c5b3 177 int sample_type = dbs_info->sample_type;
4447266b 178
4471a34f 179 /* Common NORMAL_SAMPLE setup */
43e0ee36 180 dbs_info->sample_type = OD_NORMAL_SAMPLE;
4cccf755
RW
181 /*
182 * OD_SUB_SAMPLE doesn't make sense if sample_delay_ns is 0, so ignore
183 * it then.
184 */
185 if (sample_type == OD_SUB_SAMPLE && policy_dbs->sample_delay_ns > 0) {
43e0ee36 186 __cpufreq_driver_target(policy, dbs_info->freq_lo,
42994af6 187 CPUFREQ_RELATION_H);
07aa4402 188 return dbs_info->freq_lo_delay_us;
6e96c5b3
RW
189 }
190
191 od_update(policy);
192
193 if (dbs_info->freq_lo) {
26f0dbc9 194 /* Setup SUB_SAMPLE */
6e96c5b3 195 dbs_info->sample_type = OD_SUB_SAMPLE;
07aa4402 196 return dbs_info->freq_hi_delay_us;
4471a34f
VK
197 }
198
07aa4402 199 return dbs_data->sampling_rate * policy_dbs->rate_mult;
da53d61e
FB
200}
201
4471a34f 202/************************** sysfs interface ************************/
7bdad34d 203static struct dbs_governor od_dbs_gov;
1da177e4 204
0dd3c1d6
RW
205static ssize_t store_io_is_busy(struct gov_attr_set *attr_set, const char *buf,
206 size_t count)
19379b11 207{
0dd3c1d6 208 struct dbs_data *dbs_data = to_dbs_data(attr_set);
19379b11
AV
209 unsigned int input;
210 int ret;
211
212 ret = sscanf(buf, "%u", &input);
213 if (ret != 1)
214 return -EINVAL;
8847e038 215 dbs_data->io_is_busy = !!input;
9366d840
SK
216
217 /* we need to re-evaluate prev_cpu_idle */
8c8f77fd 218 gov_update_cpu_data(dbs_data);
a33cce1c 219
19379b11
AV
220 return count;
221}
222
0dd3c1d6
RW
223static ssize_t store_up_threshold(struct gov_attr_set *attr_set,
224 const char *buf, size_t count)
1da177e4 225{
0dd3c1d6 226 struct dbs_data *dbs_data = to_dbs_data(attr_set);
1da177e4
LT
227 unsigned int input;
228 int ret;
ffac80e9 229 ret = sscanf(buf, "%u", &input);
1da177e4 230
32ee8c3e 231 if (ret != 1 || input > MAX_FREQUENCY_UP_THRESHOLD ||
c29f1403 232 input < MIN_FREQUENCY_UP_THRESHOLD) {
1da177e4
LT
233 return -EINVAL;
234 }
4bd4e428 235
ff4b1789 236 dbs_data->up_threshold = input;
1da177e4
LT
237 return count;
238}
239
0dd3c1d6
RW
240static ssize_t store_sampling_down_factor(struct gov_attr_set *attr_set,
241 const char *buf, size_t count)
3f78a9f7 242{
0dd3c1d6 243 struct dbs_data *dbs_data = to_dbs_data(attr_set);
57dc3bcd
RW
244 struct policy_dbs_info *policy_dbs;
245 unsigned int input;
3f78a9f7
DN
246 int ret;
247 ret = sscanf(buf, "%u", &input);
248
249 if (ret != 1 || input > MAX_SAMPLING_DOWN_FACTOR || input < 1)
250 return -EINVAL;
57dc3bcd 251
ff4b1789 252 dbs_data->sampling_down_factor = input;
3f78a9f7
DN
253
254 /* Reset down sampling multiplier in case it was active */
0dd3c1d6 255 list_for_each_entry(policy_dbs, &attr_set->policy_list, list) {
57dc3bcd
RW
256 /*
257 * Doing this without locking might lead to using different
26f0dbc9 258 * rate_mult values in od_update() and od_dbs_update().
57dc3bcd 259 */
26f0dbc9 260 mutex_lock(&policy_dbs->update_mutex);
57dc3bcd 261 policy_dbs->rate_mult = 1;
26f0dbc9 262 mutex_unlock(&policy_dbs->update_mutex);
3f78a9f7 263 }
57dc3bcd 264
3f78a9f7
DN
265 return count;
266}
267
0dd3c1d6
RW
268static ssize_t store_ignore_nice_load(struct gov_attr_set *attr_set,
269 const char *buf, size_t count)
3d5ee9e5 270{
0dd3c1d6 271 struct dbs_data *dbs_data = to_dbs_data(attr_set);
3d5ee9e5
DJ
272 unsigned int input;
273 int ret;
274
ffac80e9 275 ret = sscanf(buf, "%u", &input);
2b03f891 276 if (ret != 1)
3d5ee9e5
DJ
277 return -EINVAL;
278
2b03f891 279 if (input > 1)
3d5ee9e5 280 input = 1;
32ee8c3e 281
ff4b1789 282 if (input == dbs_data->ignore_nice_load) { /* nothing to do */
3d5ee9e5
DJ
283 return count;
284 }
ff4b1789 285 dbs_data->ignore_nice_load = input;
3d5ee9e5 286
ccb2fe20 287 /* we need to re-evaluate prev_cpu_idle */
8c8f77fd 288 gov_update_cpu_data(dbs_data);
1ca3abdb 289
3d5ee9e5
DJ
290 return count;
291}
292
0dd3c1d6
RW
293static ssize_t store_powersave_bias(struct gov_attr_set *attr_set,
294 const char *buf, size_t count)
05ca0350 295{
0dd3c1d6 296 struct dbs_data *dbs_data = to_dbs_data(attr_set);
4d5dcc42 297 struct od_dbs_tuners *od_tuners = dbs_data->tuners;
d1db75ff 298 struct policy_dbs_info *policy_dbs;
05ca0350
AS
299 unsigned int input;
300 int ret;
301 ret = sscanf(buf, "%u", &input);
302
303 if (ret != 1)
304 return -EINVAL;
305
306 if (input > 1000)
307 input = 1000;
308
4d5dcc42 309 od_tuners->powersave_bias = input;
d1db75ff 310
0dd3c1d6 311 list_for_each_entry(policy_dbs, &attr_set->policy_list, list)
d1db75ff
RW
312 ondemand_powersave_bias_init(policy_dbs->policy);
313
05ca0350
AS
314 return count;
315}
316
c4435630
VK
317gov_show_one_common(sampling_rate);
318gov_show_one_common(up_threshold);
319gov_show_one_common(sampling_down_factor);
320gov_show_one_common(ignore_nice_load);
321gov_show_one_common(min_sampling_rate);
8847e038 322gov_show_one_common(io_is_busy);
c4435630
VK
323gov_show_one(od, powersave_bias);
324
325gov_attr_rw(sampling_rate);
326gov_attr_rw(io_is_busy);
327gov_attr_rw(up_threshold);
328gov_attr_rw(sampling_down_factor);
329gov_attr_rw(ignore_nice_load);
330gov_attr_rw(powersave_bias);
331gov_attr_ro(min_sampling_rate);
332
333static struct attribute *od_attributes[] = {
334 &min_sampling_rate.attr,
335 &sampling_rate.attr,
336 &up_threshold.attr,
337 &sampling_down_factor.attr,
338 &ignore_nice_load.attr,
339 &powersave_bias.attr,
340 &io_is_busy.attr,
1da177e4
LT
341 NULL
342};
343
1da177e4
LT
344/************************** sysfs end ************************/
345
7d5a9956
RW
346static struct policy_dbs_info *od_alloc(void)
347{
348 struct od_policy_dbs_info *dbs_info;
349
350 dbs_info = kzalloc(sizeof(*dbs_info), GFP_KERNEL);
351 return dbs_info ? &dbs_info->policy_dbs : NULL;
352}
353
354static void od_free(struct policy_dbs_info *policy_dbs)
355{
356 kfree(to_dbs_info(policy_dbs));
357}
358
9a15fb2c 359static int od_init(struct dbs_data *dbs_data)
4d5dcc42
VK
360{
361 struct od_dbs_tuners *tuners;
362 u64 idle_time;
363 int cpu;
364
d5b73cd8 365 tuners = kzalloc(sizeof(*tuners), GFP_KERNEL);
a69d6b29 366 if (!tuners)
4d5dcc42 367 return -ENOMEM;
4d5dcc42
VK
368
369 cpu = get_cpu();
370 idle_time = get_cpu_idle_time_us(cpu, NULL);
371 put_cpu();
372 if (idle_time != -1ULL) {
373 /* Idle micro accounting is supported. Use finer thresholds */
ff4b1789 374 dbs_data->up_threshold = MICRO_FREQUENCY_UP_THRESHOLD;
4d5dcc42
VK
375 /*
376 * In nohz/micro accounting case we set the minimum frequency
26f0dbc9 377 * not depending on HZ, but fixed (very low).
4d5dcc42
VK
378 */
379 dbs_data->min_sampling_rate = MICRO_FREQUENCY_MIN_SAMPLE_RATE;
380 } else {
ff4b1789 381 dbs_data->up_threshold = DEF_FREQUENCY_UP_THRESHOLD;
4d5dcc42
VK
382
383 /* For correct statistics, we need 10 ticks for each measure */
384 dbs_data->min_sampling_rate = MIN_SAMPLING_RATE_RATIO *
385 jiffies_to_usecs(10);
386 }
387
ff4b1789
VK
388 dbs_data->sampling_down_factor = DEF_SAMPLING_DOWN_FACTOR;
389 dbs_data->ignore_nice_load = 0;
c2837558 390 tuners->powersave_bias = default_powersave_bias;
8847e038 391 dbs_data->io_is_busy = should_io_be_busy();
4d5dcc42
VK
392
393 dbs_data->tuners = tuners;
4d5dcc42
VK
394 return 0;
395}
396
9a15fb2c 397static void od_exit(struct dbs_data *dbs_data)
4d5dcc42
VK
398{
399 kfree(dbs_data->tuners);
400}
401
702c9e54
RW
402static void od_start(struct cpufreq_policy *policy)
403{
7d5a9956 404 struct od_policy_dbs_info *dbs_info = to_dbs_info(policy->governor_data);
702c9e54
RW
405
406 dbs_info->sample_type = OD_NORMAL_SAMPLE;
d1db75ff 407 ondemand_powersave_bias_init(policy);
702c9e54
RW
408}
409
4471a34f 410static struct od_ops od_ops = {
fb30809e 411 .powersave_bias_target = generic_powersave_bias_target,
4471a34f 412};
2f8a835c 413
7bdad34d 414static struct dbs_governor od_dbs_gov = {
e788892b 415 .gov = CPUFREQ_DBS_GOVERNOR_INITIALIZER("ondemand"),
c4435630 416 .kobj_type = { .default_attrs = od_attributes },
26f0dbc9 417 .gov_dbs_update = od_dbs_update,
7d5a9956
RW
418 .alloc = od_alloc,
419 .free = od_free,
4d5dcc42
VK
420 .init = od_init,
421 .exit = od_exit,
702c9e54 422 .start = od_start,
4471a34f 423};
1da177e4 424
7bdad34d 425#define CPU_FREQ_GOV_ONDEMAND (&od_dbs_gov.gov)
af926185 426
fb30809e
JS
427static void od_set_powersave_bias(unsigned int powersave_bias)
428{
fb30809e
JS
429 unsigned int cpu;
430 cpumask_t done;
431
c2837558 432 default_powersave_bias = powersave_bias;
fb30809e
JS
433 cpumask_clear(&done);
434
435 get_online_cpus();
436 for_each_online_cpu(cpu) {
8c8f77fd 437 struct cpufreq_policy *policy;
e40e7b25 438 struct policy_dbs_info *policy_dbs;
8c8f77fd
RW
439 struct dbs_data *dbs_data;
440 struct od_dbs_tuners *od_tuners;
44152cb8 441
fb30809e
JS
442 if (cpumask_test_cpu(cpu, &done))
443 continue;
444
8c8f77fd
RW
445 policy = cpufreq_cpu_get_raw(cpu);
446 if (!policy || policy->governor != CPU_FREQ_GOV_ONDEMAND)
447 continue;
448
449 policy_dbs = policy->governor_data;
e40e7b25 450 if (!policy_dbs)
c2837558 451 continue;
fb30809e
JS
452
453 cpumask_or(&done, &done, policy->cpus);
c2837558 454
bc505475 455 dbs_data = policy_dbs->dbs_data;
c2837558
JS
456 od_tuners = dbs_data->tuners;
457 od_tuners->powersave_bias = default_powersave_bias;
fb30809e
JS
458 }
459 put_online_cpus();
460}
461
462void od_register_powersave_bias_handler(unsigned int (*f)
463 (struct cpufreq_policy *, unsigned int, unsigned int),
464 unsigned int powersave_bias)
465{
466 od_ops.powersave_bias_target = f;
467 od_set_powersave_bias(powersave_bias);
468}
469EXPORT_SYMBOL_GPL(od_register_powersave_bias_handler);
470
471void od_unregister_powersave_bias_handler(void)
472{
473 od_ops.powersave_bias_target = generic_powersave_bias_target;
474 od_set_powersave_bias(0);
475}
476EXPORT_SYMBOL_GPL(od_unregister_powersave_bias_handler);
477
1da177e4
LT
478static int __init cpufreq_gov_dbs_init(void)
479{
af926185 480 return cpufreq_register_governor(CPU_FREQ_GOV_ONDEMAND);
1da177e4
LT
481}
482
483static void __exit cpufreq_gov_dbs_exit(void)
484{
af926185 485 cpufreq_unregister_governor(CPU_FREQ_GOV_ONDEMAND);
1da177e4
LT
486}
487
ffac80e9
VP
488MODULE_AUTHOR("Venkatesh Pallipadi <venkatesh.pallipadi@intel.com>");
489MODULE_AUTHOR("Alexey Starikovskiy <alexey.y.starikovskiy@intel.com>");
490MODULE_DESCRIPTION("'cpufreq_ondemand' - A dynamic cpufreq governor for "
2b03f891 491 "Low Latency Frequency Transition capable processors");
ffac80e9 492MODULE_LICENSE("GPL");
1da177e4 493
6915719b 494#ifdef CONFIG_CPU_FREQ_DEFAULT_GOV_ONDEMAND
de1df26b
RW
495struct cpufreq_governor *cpufreq_default_governor(void)
496{
af926185 497 return CPU_FREQ_GOV_ONDEMAND;
de1df26b
RW
498}
499
6915719b
JW
500fs_initcall(cpufreq_gov_dbs_init);
501#else
1da177e4 502module_init(cpufreq_gov_dbs_init);
6915719b 503#endif
1da177e4 504module_exit(cpufreq_gov_dbs_exit);