blob: 03d38c291de62d7f6503f13855142fb5948b64a0 [file] [log] [blame]
Len Brown4f86d3a2007-10-03 18:58:00 -04001/*
2 * menu.c - the menu idle governor
3 *
4 * Copyright (C) 2006-2007 Adam Belay <abelay@novell.com>
Arjan van de Ven69d25872009-09-21 17:04:08 -07005 * Copyright (C) 2009 Intel Corporation
6 * Author:
7 * Arjan van de Ven <arjan@linux.intel.com>
Len Brown4f86d3a2007-10-03 18:58:00 -04008 *
Arjan van de Ven69d25872009-09-21 17:04:08 -07009 * This code is licenced under the GPL version 2 as described
10 * in the COPYING file that acompanies the Linux Kernel.
Len Brown4f86d3a2007-10-03 18:58:00 -040011 */
12
13#include <linux/kernel.h>
14#include <linux/cpuidle.h>
Jean Pihete8db0be2011-08-25 15:35:03 +020015#include <linux/pm_qos.h>
Len Brown4f86d3a2007-10-03 18:58:00 -040016#include <linux/time.h>
17#include <linux/ktime.h>
18#include <linux/hrtimer.h>
19#include <linux/tick.h>
Arjan van de Ven69d25872009-09-21 17:04:08 -070020#include <linux/sched.h>
Stephen Hemminger57875362010-01-08 14:43:08 -080021#include <linux/math64.h>
Paul Gortmaker884b17e2011-08-29 17:52:39 -040022#include <linux/module.h>
Len Brown4f86d3a2007-10-03 18:58:00 -040023
Tuukka Tikkanendecd51b2013-08-14 19:02:40 +030024/*
25 * Please note when changing the tuning values:
26 * If (MAX_INTERESTING-1) * RESOLUTION > UINT_MAX, the result of
27 * a scaling operation multiplication may overflow on 32 bit platforms.
28 * In that case, #define RESOLUTION as ULL to get 64 bit result:
29 * #define RESOLUTION 1024ULL
30 *
31 * The default values do not overflow.
32 */
Arjan van de Ven69d25872009-09-21 17:04:08 -070033#define BUCKETS 12
Mel Gormanae779302014-08-06 14:19:18 +010034#define INTERVAL_SHIFT 3
35#define INTERVALS (1UL << INTERVAL_SHIFT)
Arjan van de Ven69d25872009-09-21 17:04:08 -070036#define RESOLUTION 1024
Arjan van de Ven1f85f872010-05-24 14:32:59 -070037#define DECAY 8
Arjan van de Ven69d25872009-09-21 17:04:08 -070038#define MAX_INTERESTING 50000
Arjan van de Ven1f85f872010-05-24 14:32:59 -070039
Arjan van de Ven69d25872009-09-21 17:04:08 -070040
41/*
42 * Concepts and ideas behind the menu governor
43 *
44 * For the menu governor, there are 3 decision factors for picking a C
45 * state:
46 * 1) Energy break even point
47 * 2) Performance impact
48 * 3) Latency tolerance (from pmqos infrastructure)
49 * These these three factors are treated independently.
50 *
51 * Energy break even point
52 * -----------------------
53 * C state entry and exit have an energy cost, and a certain amount of time in
54 * the C state is required to actually break even on this cost. CPUIDLE
55 * provides us this duration in the "target_residency" field. So all that we
56 * need is a good prediction of how long we'll be idle. Like the traditional
57 * menu governor, we start with the actual known "next timer event" time.
58 *
59 * Since there are other source of wakeups (interrupts for example) than
60 * the next timer event, this estimation is rather optimistic. To get a
61 * more realistic estimate, a correction factor is applied to the estimate,
62 * that is based on historic behavior. For example, if in the past the actual
63 * duration always was 50% of the next timer tick, the correction factor will
64 * be 0.5.
65 *
66 * menu uses a running average for this correction factor, however it uses a
67 * set of factors, not just a single factor. This stems from the realization
68 * that the ratio is dependent on the order of magnitude of the expected
69 * duration; if we expect 500 milliseconds of idle time the likelihood of
70 * getting an interrupt very early is much higher than if we expect 50 micro
71 * seconds of idle time. A second independent factor that has big impact on
72 * the actual factor is if there is (disk) IO outstanding or not.
73 * (as a special twist, we consider every sleep longer than 50 milliseconds
74 * as perfect; there are no power gains for sleeping longer than this)
75 *
76 * For these two reasons we keep an array of 12 independent factors, that gets
77 * indexed based on the magnitude of the expected duration as well as the
78 * "is IO outstanding" property.
79 *
Arjan van de Ven1f85f872010-05-24 14:32:59 -070080 * Repeatable-interval-detector
81 * ----------------------------
82 * There are some cases where "next timer" is a completely unusable predictor:
83 * Those cases where the interval is fixed, for example due to hardware
84 * interrupt mitigation, but also due to fixed transfer rate devices such as
85 * mice.
86 * For this, we use a different predictor: We track the duration of the last 8
87 * intervals and if the stand deviation of these 8 intervals is below a
88 * threshold value, we use the average of these intervals as prediction.
89 *
Arjan van de Ven69d25872009-09-21 17:04:08 -070090 * Limiting Performance Impact
91 * ---------------------------
92 * C states, especially those with large exit latencies, can have a real
Lucas De Marchi20e33412010-09-07 12:53:49 -040093 * noticeable impact on workloads, which is not acceptable for most sysadmins,
Arjan van de Ven69d25872009-09-21 17:04:08 -070094 * and in addition, less performance has a power price of its own.
95 *
96 * As a general rule of thumb, menu assumes that the following heuristic
97 * holds:
98 * The busier the system, the less impact of C states is acceptable
99 *
100 * This rule-of-thumb is implemented using a performance-multiplier:
101 * If the exit latency times the performance multiplier is longer than
102 * the predicted duration, the C state is not considered a candidate
103 * for selection due to a too high performance impact. So the higher
104 * this multiplier is, the longer we need to be idle to pick a deep C
105 * state, and thus the less likely a busy CPU will hit such a deep
106 * C state.
107 *
108 * Two factors are used in determing this multiplier:
109 * a value of 10 is added for each point of "per cpu load average" we have.
110 * a value of 5 points is added for each process that is waiting for
111 * IO on this CPU.
112 * (these values are experimentally determined)
113 *
114 * The load average factor gives a longer term (few seconds) input to the
115 * decision, while the iowait value gives a cpu local instantanious input.
116 * The iowait factor may look low, but realize that this is also already
117 * represented in the system load average.
118 *
119 */
Len Brown4f86d3a2007-10-03 18:58:00 -0400120
121struct menu_device {
122 int last_state_idx;
Corrado Zoccolo672917d2009-09-21 17:04:09 -0700123 int needs_update;
Len Brown4f86d3a2007-10-03 18:58:00 -0400124
tuukka.tikkanen@linaro.org5dc2f5a2014-02-24 08:29:31 +0200125 unsigned int next_timer_us;
Tuukka Tikkanen51f245b2013-08-14 19:02:41 +0300126 unsigned int predicted_us;
Arjan van de Ven69d25872009-09-21 17:04:08 -0700127 unsigned int bucket;
Tuukka Tikkanen51f245b2013-08-14 19:02:41 +0300128 unsigned int correction_factor[BUCKETS];
Tuukka Tikkanen939e33b2013-08-14 19:02:38 +0300129 unsigned int intervals[INTERVALS];
Arjan van de Ven1f85f872010-05-24 14:32:59 -0700130 int interval_ptr;
Len Brown4f86d3a2007-10-03 18:58:00 -0400131};
132
Arjan van de Ven69d25872009-09-21 17:04:08 -0700133
134#define LOAD_INT(x) ((x) >> FSHIFT)
135#define LOAD_FRAC(x) LOAD_INT(((x) & (FIXED_1-1)) * 100)
136
Mel Gorman372ba8c2014-08-06 14:19:21 +0100137static inline int get_loadavg(unsigned long load)
Arjan van de Ven69d25872009-09-21 17:04:08 -0700138{
Mel Gorman372ba8c2014-08-06 14:19:21 +0100139 return LOAD_INT(load) * 10 + LOAD_FRAC(load) / 10;
Arjan van de Ven69d25872009-09-21 17:04:08 -0700140}
141
Mel Gorman64b4ca52014-08-06 14:19:20 +0100142static inline int which_bucket(unsigned int duration, unsigned long nr_iowaiters)
Arjan van de Ven69d25872009-09-21 17:04:08 -0700143{
144 int bucket = 0;
145
146 /*
147 * We keep two groups of stats; one with no
148 * IO pending, one without.
149 * This allows us to calculate
150 * E(duration)|iowait
151 */
Mel Gorman64b4ca52014-08-06 14:19:20 +0100152 if (nr_iowaiters)
Arjan van de Ven69d25872009-09-21 17:04:08 -0700153 bucket = BUCKETS/2;
154
155 if (duration < 10)
156 return bucket;
157 if (duration < 100)
158 return bucket + 1;
159 if (duration < 1000)
160 return bucket + 2;
161 if (duration < 10000)
162 return bucket + 3;
163 if (duration < 100000)
164 return bucket + 4;
165 return bucket + 5;
166}
167
168/*
169 * Return a multiplier for the exit latency that is intended
170 * to take performance requirements into account.
171 * The more performance critical we estimate the system
172 * to be, the higher this multiplier, and thus the higher
173 * the barrier to go to an expensive C state.
174 */
Mel Gorman372ba8c2014-08-06 14:19:21 +0100175static inline int performance_multiplier(unsigned long nr_iowaiters, unsigned long load)
Arjan van de Ven69d25872009-09-21 17:04:08 -0700176{
177 int mult = 1;
178
179 /* for higher loadavg, we are more reluctant */
180
Mel Gorman372ba8c2014-08-06 14:19:21 +0100181 mult += 2 * get_loadavg(load);
Arjan van de Ven69d25872009-09-21 17:04:08 -0700182
183 /* for IO wait tasks (per cpu!) we add 5x each */
Mel Gorman64b4ca52014-08-06 14:19:20 +0100184 mult += 10 * nr_iowaiters;
Arjan van de Ven69d25872009-09-21 17:04:08 -0700185
186 return mult;
187}
188
Len Brown4f86d3a2007-10-03 18:58:00 -0400189static DEFINE_PER_CPU(struct menu_device, menu_devices);
190
Deepthi Dharwar46bcfad2011-10-28 16:20:42 +0530191static void menu_update(struct cpuidle_driver *drv, struct cpuidle_device *dev);
Corrado Zoccolo672917d2009-09-21 17:04:09 -0700192
Arjan van de Ven1f85f872010-05-24 14:32:59 -0700193/*
194 * Try detecting repeating patterns by keeping track of the last 8
195 * intervals, and checking if the standard deviation of that set
196 * of points is below a threshold. If it is... then use the
197 * average of these 8 points as the estimated value.
198 */
Rik van Riele132b9b2016-03-16 12:14:00 -0400199static unsigned int get_typical_interval(struct menu_device *data)
Arjan van de Ven1f85f872010-05-24 14:32:59 -0700200{
Tuukka Tikkanen4cd46bc2013-08-14 19:02:37 +0300201 int i, divisor;
Rasmus Villemoes3b996692016-02-16 20:19:19 +0100202 unsigned int max, thresh, avg;
203 uint64_t sum, variance;
Tuukka Tikkanen0e96d5a2013-08-14 19:02:39 +0300204
205 thresh = UINT_MAX; /* Discard outliers above this value */
Youquan Songc96ca4f2012-10-26 12:27:07 +0200206
207again:
Arjan van de Ven1f85f872010-05-24 14:32:59 -0700208
Tuukka Tikkanen0e96d5a2013-08-14 19:02:39 +0300209 /* First calculate the average of past intervals */
Tuukka Tikkanen4cd46bc2013-08-14 19:02:37 +0300210 max = 0;
Rasmus Villemoes3b996692016-02-16 20:19:19 +0100211 sum = 0;
Tuukka Tikkanen4cd46bc2013-08-14 19:02:37 +0300212 divisor = 0;
Youquan Songc96ca4f2012-10-26 12:27:07 +0200213 for (i = 0; i < INTERVALS; i++) {
Tuukka Tikkanen0e96d5a2013-08-14 19:02:39 +0300214 unsigned int value = data->intervals[i];
Youquan Songc96ca4f2012-10-26 12:27:07 +0200215 if (value <= thresh) {
Rasmus Villemoes3b996692016-02-16 20:19:19 +0100216 sum += value;
Youquan Songc96ca4f2012-10-26 12:27:07 +0200217 divisor++;
218 if (value > max)
219 max = value;
220 }
221 }
Mel Gormanae779302014-08-06 14:19:18 +0100222 if (divisor == INTERVALS)
Rasmus Villemoes3b996692016-02-16 20:19:19 +0100223 avg = sum >> INTERVAL_SHIFT;
Mel Gormanae779302014-08-06 14:19:18 +0100224 else
Rasmus Villemoes3b996692016-02-16 20:19:19 +0100225 avg = div_u64(sum, divisor);
Arjan van de Ven1f85f872010-05-24 14:32:59 -0700226
Rasmus Villemoes7024b182016-02-16 20:19:18 +0100227 /* Then try to determine variance */
228 variance = 0;
Youquan Songc96ca4f2012-10-26 12:27:07 +0200229 for (i = 0; i < INTERVALS; i++) {
Tuukka Tikkanen0e96d5a2013-08-14 19:02:39 +0300230 unsigned int value = data->intervals[i];
Youquan Songc96ca4f2012-10-26 12:27:07 +0200231 if (value <= thresh) {
Rasmus Villemoes3b996692016-02-16 20:19:19 +0100232 int64_t diff = (int64_t)value - avg;
Rasmus Villemoes7024b182016-02-16 20:19:18 +0100233 variance += diff * diff;
Youquan Songc96ca4f2012-10-26 12:27:07 +0200234 }
235 }
Mel Gormanae779302014-08-06 14:19:18 +0100236 if (divisor == INTERVALS)
Rasmus Villemoes7024b182016-02-16 20:19:18 +0100237 variance >>= INTERVAL_SHIFT;
Mel Gormanae779302014-08-06 14:19:18 +0100238 else
Rasmus Villemoes7024b182016-02-16 20:19:18 +0100239 do_div(variance, divisor);
Mel Gormanae779302014-08-06 14:19:18 +0100240
Arjan van de Ven1f85f872010-05-24 14:32:59 -0700241 /*
Rasmus Villemoes7024b182016-02-16 20:19:18 +0100242 * The typical interval is obtained when standard deviation is
243 * small (stddev <= 20 us, variance <= 400 us^2) or standard
244 * deviation is small compared to the average interval (avg >
245 * 6*stddev, avg^2 > 36*variance). The average is smaller than
246 * UINT_MAX aka U32_MAX, so computing its square does not
247 * overflow a u64. We simply reject this candidate average if
248 * the standard deviation is greater than 715 s (which is
249 * rather unlikely).
Tuukka Tikkanen0d6a7ff2013-08-14 19:02:36 +0300250 *
Tuukka Tikkanen330647a2013-08-14 19:02:34 +0300251 * Use this result only if there is no timer to wake us up sooner.
Arjan van de Ven1f85f872010-05-24 14:32:59 -0700252 */
Rasmus Villemoes7024b182016-02-16 20:19:18 +0100253 if (likely(variance <= U64_MAX/36)) {
Rasmus Villemoes3b996692016-02-16 20:19:19 +0100254 if ((((u64)avg*avg > variance*36) && (divisor * 4 >= INTERVALS * 3))
Rasmus Villemoes7024b182016-02-16 20:19:18 +0100255 || variance <= 400) {
Rik van Riele132b9b2016-03-16 12:14:00 -0400256 return avg;
Tuukka Tikkanen0d6a7ff2013-08-14 19:02:36 +0300257 }
Youquan Song69a37be2012-10-26 12:26:41 +0200258 }
Tuukka Tikkanen017099e2013-08-14 19:02:35 +0300259
260 /*
261 * If we have outliers to the upside in our distribution, discard
262 * those by setting the threshold to exclude these outliers, then
263 * calculate the average and standard deviation again. Once we get
264 * down to the bottom 3/4 of our samples, stop excluding samples.
265 *
266 * This can deal with workloads that have long pauses interspersed
267 * with sporadic activity with a bunch of short pauses.
268 */
269 if ((divisor * 4) <= INTERVALS * 3)
Rik van Riele132b9b2016-03-16 12:14:00 -0400270 return UINT_MAX;
Tuukka Tikkanen017099e2013-08-14 19:02:35 +0300271
272 thresh = max - 1;
273 goto again;
Arjan van de Ven1f85f872010-05-24 14:32:59 -0700274}
275
Len Brown4f86d3a2007-10-03 18:58:00 -0400276/**
277 * menu_select - selects the next idle state to enter
Deepthi Dharwar46bcfad2011-10-28 16:20:42 +0530278 * @drv: cpuidle driver containing state data
Len Brown4f86d3a2007-10-03 18:58:00 -0400279 * @dev: the CPU
280 */
Deepthi Dharwar46bcfad2011-10-28 16:20:42 +0530281static int menu_select(struct cpuidle_driver *drv, struct cpuidle_device *dev)
Len Brown4f86d3a2007-10-03 18:58:00 -0400282{
Christoph Lameter229b6862014-08-17 12:30:30 -0500283 struct menu_device *data = this_cpu_ptr(&menu_devices);
Mark Grossed771342010-05-06 01:59:26 +0200284 int latency_req = pm_qos_request(PM_QOS_CPU_DMA_LATENCY);
Len Brown4f86d3a2007-10-03 18:58:00 -0400285 int i;
tuukka.tikkanen@linaro.org96e95182014-02-24 08:29:35 +0200286 unsigned int interactivity_req;
Rik van Riele132b9b2016-03-16 12:14:00 -0400287 unsigned int expected_interval;
Mel Gorman372ba8c2014-08-06 14:19:21 +0100288 unsigned long nr_iowaiters, cpu_load;
Arjan van de Ven69d25872009-09-21 17:04:08 -0700289
Corrado Zoccolo672917d2009-09-21 17:04:09 -0700290 if (data->needs_update) {
Deepthi Dharwar46bcfad2011-10-28 16:20:42 +0530291 menu_update(drv, dev);
Corrado Zoccolo672917d2009-09-21 17:04:09 -0700292 data->needs_update = 0;
293 }
294
venkatesh.pallipadi@intel.coma2bd92022008-07-30 19:21:42 -0700295 /* Special case when user has set very strict latency requirement */
Arjan van de Ven69d25872009-09-21 17:04:08 -0700296 if (unlikely(latency_req == 0))
venkatesh.pallipadi@intel.coma2bd92022008-07-30 19:21:42 -0700297 return 0;
venkatesh.pallipadi@intel.coma2bd92022008-07-30 19:21:42 -0700298
Arjan van de Ven69d25872009-09-21 17:04:08 -0700299 /* determine the expected residency time, round up */
Mel Gorman107d4f42014-08-06 14:19:19 +0100300 data->next_timer_us = ktime_to_us(tick_nohz_get_sleep_length());
Len Brown4f86d3a2007-10-03 18:58:00 -0400301
Mel Gorman372ba8c2014-08-06 14:19:21 +0100302 get_iowait_load(&nr_iowaiters, &cpu_load);
Mel Gorman64b4ca52014-08-06 14:19:20 +0100303 data->bucket = which_bucket(data->next_timer_us, nr_iowaiters);
Arjan van de Ven69d25872009-09-21 17:04:08 -0700304
Arjan van de Ven69d25872009-09-21 17:04:08 -0700305 /*
Tuukka Tikkanen51f245b2013-08-14 19:02:41 +0300306 * Force the result of multiplication to be 64 bits even if both
307 * operands are 32 bits.
308 * Make sure to round up for half microseconds.
309 */
Javi Merinoee3c86f2015-04-16 12:43:51 -0700310 data->predicted_us = DIV_ROUND_CLOSEST_ULL((uint64_t)data->next_timer_us *
Tuukka Tikkanen51f245b2013-08-14 19:02:41 +0300311 data->correction_factor[data->bucket],
Stephen Hemminger57875362010-01-08 14:43:08 -0800312 RESOLUTION * DECAY);
Arjan van de Ven69d25872009-09-21 17:04:08 -0700313
Rik van Riele132b9b2016-03-16 12:14:00 -0400314 expected_interval = get_typical_interval(data);
315 expected_interval = min(expected_interval, data->next_timer_us);
tuukka.tikkanen@linaro.org96e95182014-02-24 08:29:35 +0200316
Rafael J. Wysocki9c4b2862016-01-14 23:24:22 +0100317 if (CPUIDLE_DRIVER_STATE_START > 0) {
Rafael J. Wysocki0c313cb2016-03-20 01:33:35 +0100318 struct cpuidle_state *s = &drv->states[CPUIDLE_DRIVER_STATE_START];
319 unsigned int polling_threshold;
320
Rafael J. Wysocki9c4b2862016-01-14 23:24:22 +0100321 /*
322 * We want to default to C1 (hlt), not to busy polling
Rik van Riele132b9b2016-03-16 12:14:00 -0400323 * unless the timer is happening really really soon, or
324 * C1's exit latency exceeds the user configured limit.
Rafael J. Wysocki9c4b2862016-01-14 23:24:22 +0100325 */
Rafael J. Wysocki0c313cb2016-03-20 01:33:35 +0100326 polling_threshold = max_t(unsigned int, 20, s->target_residency);
327 if (data->next_timer_us > polling_threshold &&
328 latency_req > s->exit_latency && !s->disabled &&
Rik van Riele132b9b2016-03-16 12:14:00 -0400329 !dev->states_usage[CPUIDLE_DRIVER_STATE_START].disable)
Rafael J. Wysocki9c4b2862016-01-14 23:24:22 +0100330 data->last_state_idx = CPUIDLE_DRIVER_STATE_START;
Rafael J. Wysocki0c313cb2016-03-20 01:33:35 +0100331 else
332 data->last_state_idx = CPUIDLE_DRIVER_STATE_START - 1;
Rafael J. Wysocki9c4b2862016-01-14 23:24:22 +0100333 } else {
Arjan van de Ven69d25872009-09-21 17:04:08 -0700334 data->last_state_idx = CPUIDLE_DRIVER_STATE_START;
Rafael J. Wysocki9c4b2862016-01-14 23:24:22 +0100335 }
Arjan van de Ven69d25872009-09-21 17:04:08 -0700336
Ai Li71abbbf2010-08-09 17:20:13 -0700337 /*
Rik van Riele132b9b2016-03-16 12:14:00 -0400338 * Use the lowest expected idle interval to pick the idle state.
339 */
340 data->predicted_us = min(data->predicted_us, expected_interval);
341
342 /*
343 * Use the performance multiplier and the user-configurable
344 * latency_req to determine the maximum exit latency.
345 */
346 interactivity_req = data->predicted_us / performance_multiplier(nr_iowaiters, cpu_load);
347 if (latency_req > interactivity_req)
348 latency_req = interactivity_req;
349
350 /*
Ai Li71abbbf2010-08-09 17:20:13 -0700351 * Find the idle state with the lowest power while satisfying
352 * our constraints.
353 */
Rafael J. Wysocki5bb17292016-01-16 00:56:34 +0100354 for (i = data->last_state_idx + 1; i < drv->state_count; i++) {
Deepthi Dharwar46bcfad2011-10-28 16:20:42 +0530355 struct cpuidle_state *s = &drv->states[i];
ShuoX Liudc7fd272012-07-03 19:05:31 +0200356 struct cpuidle_state_usage *su = &dev->states_usage[i];
Len Brown4f86d3a2007-10-03 18:58:00 -0400357
Rafael J. Wysockicbc9ef02012-07-03 19:07:42 +0200358 if (s->disabled || su->disable)
ShuoX Liu3a533962012-03-28 15:19:11 -0700359 continue;
Rafael J. Wysocki14851912013-07-27 01:41:34 +0200360 if (s->target_residency > data->predicted_us)
Ai Li71abbbf2010-08-09 17:20:13 -0700361 continue;
venkatesh.pallipadi@intel.coma2bd92022008-07-30 19:21:42 -0700362 if (s->exit_latency > latency_req)
Ai Li71abbbf2010-08-09 17:20:13 -0700363 continue;
Ai Li71abbbf2010-08-09 17:20:13 -0700364
Daniel Lezcano8aef33a2013-01-15 14:18:04 +0100365 data->last_state_idx = i;
Len Brown4f86d3a2007-10-03 18:58:00 -0400366 }
367
Arjan van de Ven69d25872009-09-21 17:04:08 -0700368 return data->last_state_idx;
Len Brown4f86d3a2007-10-03 18:58:00 -0400369}
370
371/**
Corrado Zoccolo672917d2009-09-21 17:04:09 -0700372 * menu_reflect - records that data structures need update
Len Brown4f86d3a2007-10-03 18:58:00 -0400373 * @dev: the CPU
Deepthi Dharware978aa72011-10-28 16:20:09 +0530374 * @index: the index of actual entered state
Len Brown4f86d3a2007-10-03 18:58:00 -0400375 *
376 * NOTE: it's important to be fast here because this operation will add to
377 * the overall exit latency.
378 */
Deepthi Dharware978aa72011-10-28 16:20:09 +0530379static void menu_reflect(struct cpuidle_device *dev, int index)
Len Brown4f86d3a2007-10-03 18:58:00 -0400380{
Christoph Lameter229b6862014-08-17 12:30:30 -0500381 struct menu_device *data = this_cpu_ptr(&menu_devices);
Rafael J. Wysockia802ea92015-05-04 22:53:28 +0200382
Deepthi Dharware978aa72011-10-28 16:20:09 +0530383 data->last_state_idx = index;
Rafael J. Wysockia802ea92015-05-04 22:53:28 +0200384 data->needs_update = 1;
Corrado Zoccolo672917d2009-09-21 17:04:09 -0700385}
386
387/**
388 * menu_update - attempts to guess what happened after entry
Deepthi Dharwar46bcfad2011-10-28 16:20:42 +0530389 * @drv: cpuidle driver containing state data
Corrado Zoccolo672917d2009-09-21 17:04:09 -0700390 * @dev: the CPU
391 */
Deepthi Dharwar46bcfad2011-10-28 16:20:42 +0530392static void menu_update(struct cpuidle_driver *drv, struct cpuidle_device *dev)
Corrado Zoccolo672917d2009-09-21 17:04:09 -0700393{
Christoph Lameter229b6862014-08-17 12:30:30 -0500394 struct menu_device *data = this_cpu_ptr(&menu_devices);
Len Brown4f86d3a2007-10-03 18:58:00 -0400395 int last_idx = data->last_state_idx;
Deepthi Dharwar46bcfad2011-10-28 16:20:42 +0530396 struct cpuidle_state *target = &drv->states[last_idx];
venkatesh.pallipadi@intel.com320eee72008-07-30 19:21:43 -0700397 unsigned int measured_us;
Tuukka Tikkanen51f245b2013-08-14 19:02:41 +0300398 unsigned int new_factor;
Len Brown4f86d3a2007-10-03 18:58:00 -0400399
400 /*
tuukka.tikkanen@linaro.org61c66d62014-02-24 08:29:34 +0200401 * Try to figure out how much time passed between entry to low
402 * power state and occurrence of the wakeup event.
403 *
404 * If the entered idle state didn't support residency measurements,
Len Brown4108b3d2014-12-16 01:52:06 -0500405 * we use them anyway if they are short, and if long,
406 * truncate to the whole expected time.
tuukka.tikkanen@linaro.org61c66d62014-02-24 08:29:34 +0200407 *
408 * Any measured amount of time will include the exit latency.
409 * Since we are interested in when the wakeup begun, not when it
Antonio Ospite2fba5372014-06-04 14:03:45 +0200410 * was completed, we must subtract the exit latency. However, if
tuukka.tikkanen@linaro.org61c66d62014-02-24 08:29:34 +0200411 * the measured amount of time is less than the exit latency,
412 * assume the state was never reached and the exit latency is 0.
Len Brown4f86d3a2007-10-03 18:58:00 -0400413 */
Len Brown4108b3d2014-12-16 01:52:06 -0500414
415 /* measured value */
416 measured_us = cpuidle_get_last_residency(dev);
417
418 /* Deduct exit latency */
Rik van Rielefddfd92015-11-03 17:34:19 -0500419 if (measured_us > 2 * target->exit_latency)
Len Brown4108b3d2014-12-16 01:52:06 -0500420 measured_us -= target->exit_latency;
Rik van Rielefddfd92015-11-03 17:34:19 -0500421 else
422 measured_us /= 2;
Len Brown4108b3d2014-12-16 01:52:06 -0500423
424 /* Make sure our coefficients do not exceed unity */
425 if (measured_us > data->next_timer_us)
tuukka.tikkanen@linaro.org7ac26432014-02-24 08:29:33 +0200426 measured_us = data->next_timer_us;
Arjan van de Ven69d25872009-09-21 17:04:08 -0700427
Tuukka Tikkanen51f245b2013-08-14 19:02:41 +0300428 /* Update our correction ratio */
429 new_factor = data->correction_factor[data->bucket];
430 new_factor -= new_factor / DECAY;
Arjan van de Ven69d25872009-09-21 17:04:08 -0700431
tuukka.tikkanen@linaro.org5dc2f5a2014-02-24 08:29:31 +0200432 if (data->next_timer_us > 0 && measured_us < MAX_INTERESTING)
433 new_factor += RESOLUTION * measured_us / data->next_timer_us;
venkatesh.pallipadi@intel.com320eee72008-07-30 19:21:43 -0700434 else
Arjan van de Ven69d25872009-09-21 17:04:08 -0700435 /*
436 * we were idle so long that we count it as a perfect
437 * prediction
438 */
439 new_factor += RESOLUTION;
venkatesh.pallipadi@intel.com320eee72008-07-30 19:21:43 -0700440
Arjan van de Ven69d25872009-09-21 17:04:08 -0700441 /*
442 * We don't want 0 as factor; we always want at least
Tuukka Tikkanen51f245b2013-08-14 19:02:41 +0300443 * a tiny bit of estimated time. Fortunately, due to rounding,
444 * new_factor will stay nonzero regardless of measured_us values
445 * and the compiler can eliminate this test as long as DECAY > 1.
Arjan van de Ven69d25872009-09-21 17:04:08 -0700446 */
Tuukka Tikkanen51f245b2013-08-14 19:02:41 +0300447 if (DECAY == 1 && unlikely(new_factor == 0))
Arjan van de Ven69d25872009-09-21 17:04:08 -0700448 new_factor = 1;
venkatesh.pallipadi@intel.com320eee72008-07-30 19:21:43 -0700449
Arjan van de Ven69d25872009-09-21 17:04:08 -0700450 data->correction_factor[data->bucket] = new_factor;
Arjan van de Ven1f85f872010-05-24 14:32:59 -0700451
452 /* update the repeating-pattern data */
tuukka.tikkanen@linaro.org61c66d62014-02-24 08:29:34 +0200453 data->intervals[data->interval_ptr++] = measured_us;
Arjan van de Ven1f85f872010-05-24 14:32:59 -0700454 if (data->interval_ptr >= INTERVALS)
455 data->interval_ptr = 0;
Len Brown4f86d3a2007-10-03 18:58:00 -0400456}
457
458/**
459 * menu_enable_device - scans a CPU's states and does setup
Deepthi Dharwar46bcfad2011-10-28 16:20:42 +0530460 * @drv: cpuidle driver
Len Brown4f86d3a2007-10-03 18:58:00 -0400461 * @dev: the CPU
462 */
Deepthi Dharwar46bcfad2011-10-28 16:20:42 +0530463static int menu_enable_device(struct cpuidle_driver *drv,
464 struct cpuidle_device *dev)
Len Brown4f86d3a2007-10-03 18:58:00 -0400465{
466 struct menu_device *data = &per_cpu(menu_devices, dev->cpu);
Chander Kashyapbed4d592014-04-22 18:08:04 +0530467 int i;
Len Brown4f86d3a2007-10-03 18:58:00 -0400468
469 memset(data, 0, sizeof(struct menu_device));
470
Chander Kashyapbed4d592014-04-22 18:08:04 +0530471 /*
472 * if the correction factor is 0 (eg first time init or cpu hotplug
473 * etc), we actually want to start out with a unity factor.
474 */
475 for(i = 0; i < BUCKETS; i++)
476 data->correction_factor[i] = RESOLUTION * DECAY;
477
Len Brown4f86d3a2007-10-03 18:58:00 -0400478 return 0;
479}
480
481static struct cpuidle_governor menu_governor = {
482 .name = "menu",
483 .rating = 20,
484 .enable = menu_enable_device,
485 .select = menu_select,
486 .reflect = menu_reflect,
487 .owner = THIS_MODULE,
488};
489
490/**
491 * init_menu - initializes the governor
492 */
493static int __init init_menu(void)
494{
495 return cpuidle_register_governor(&menu_governor);
496}
497
Daniel Lezcano137b9442013-06-12 15:08:48 +0200498postcore_initcall(init_menu);