menu.c 15 KB

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  1. /*
  2. * menu.c - the menu idle governor
  3. *
  4. * Copyright (C) 2006-2007 Adam Belay <abelay@novell.com>
  5. * Copyright (C) 2009 Intel Corporation
  6. * Author:
  7. * Arjan van de Ven <arjan@linux.intel.com>
  8. *
  9. * This code is licenced under the GPL version 2 as described
  10. * in the COPYING file that acompanies the Linux Kernel.
  11. */
  12. #include <linux/kernel.h>
  13. #include <linux/cpuidle.h>
  14. #include <linux/pm_qos.h>
  15. #include <linux/time.h>
  16. #include <linux/ktime.h>
  17. #include <linux/hrtimer.h>
  18. #include <linux/tick.h>
  19. #include <linux/sched.h>
  20. #include <linux/sched/loadavg.h>
  21. #include <linux/sched/stat.h>
  22. #include <linux/math64.h>
  23. #include <linux/cpu.h>
  24. /*
  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. */
  33. #define BUCKETS 12
  34. #define INTERVAL_SHIFT 3
  35. #define INTERVALS (1UL << INTERVAL_SHIFT)
  36. #define RESOLUTION 1024
  37. #define DECAY 8
  38. #define MAX_INTERESTING 50000
  39. /*
  40. * Concepts and ideas behind the menu governor
  41. *
  42. * For the menu governor, there are 3 decision factors for picking a C
  43. * state:
  44. * 1) Energy break even point
  45. * 2) Performance impact
  46. * 3) Latency tolerance (from pmqos infrastructure)
  47. * These these three factors are treated independently.
  48. *
  49. * Energy break even point
  50. * -----------------------
  51. * C state entry and exit have an energy cost, and a certain amount of time in
  52. * the C state is required to actually break even on this cost. CPUIDLE
  53. * provides us this duration in the "target_residency" field. So all that we
  54. * need is a good prediction of how long we'll be idle. Like the traditional
  55. * menu governor, we start with the actual known "next timer event" time.
  56. *
  57. * Since there are other source of wakeups (interrupts for example) than
  58. * the next timer event, this estimation is rather optimistic. To get a
  59. * more realistic estimate, a correction factor is applied to the estimate,
  60. * that is based on historic behavior. For example, if in the past the actual
  61. * duration always was 50% of the next timer tick, the correction factor will
  62. * be 0.5.
  63. *
  64. * menu uses a running average for this correction factor, however it uses a
  65. * set of factors, not just a single factor. This stems from the realization
  66. * that the ratio is dependent on the order of magnitude of the expected
  67. * duration; if we expect 500 milliseconds of idle time the likelihood of
  68. * getting an interrupt very early is much higher than if we expect 50 micro
  69. * seconds of idle time. A second independent factor that has big impact on
  70. * the actual factor is if there is (disk) IO outstanding or not.
  71. * (as a special twist, we consider every sleep longer than 50 milliseconds
  72. * as perfect; there are no power gains for sleeping longer than this)
  73. *
  74. * For these two reasons we keep an array of 12 independent factors, that gets
  75. * indexed based on the magnitude of the expected duration as well as the
  76. * "is IO outstanding" property.
  77. *
  78. * Repeatable-interval-detector
  79. * ----------------------------
  80. * There are some cases where "next timer" is a completely unusable predictor:
  81. * Those cases where the interval is fixed, for example due to hardware
  82. * interrupt mitigation, but also due to fixed transfer rate devices such as
  83. * mice.
  84. * For this, we use a different predictor: We track the duration of the last 8
  85. * intervals and if the stand deviation of these 8 intervals is below a
  86. * threshold value, we use the average of these intervals as prediction.
  87. *
  88. * Limiting Performance Impact
  89. * ---------------------------
  90. * C states, especially those with large exit latencies, can have a real
  91. * noticeable impact on workloads, which is not acceptable for most sysadmins,
  92. * and in addition, less performance has a power price of its own.
  93. *
  94. * As a general rule of thumb, menu assumes that the following heuristic
  95. * holds:
  96. * The busier the system, the less impact of C states is acceptable
  97. *
  98. * This rule-of-thumb is implemented using a performance-multiplier:
  99. * If the exit latency times the performance multiplier is longer than
  100. * the predicted duration, the C state is not considered a candidate
  101. * for selection due to a too high performance impact. So the higher
  102. * this multiplier is, the longer we need to be idle to pick a deep C
  103. * state, and thus the less likely a busy CPU will hit such a deep
  104. * C state.
  105. *
  106. * Two factors are used in determing this multiplier:
  107. * a value of 10 is added for each point of "per cpu load average" we have.
  108. * a value of 5 points is added for each process that is waiting for
  109. * IO on this CPU.
  110. * (these values are experimentally determined)
  111. *
  112. * The load average factor gives a longer term (few seconds) input to the
  113. * decision, while the iowait value gives a cpu local instantanious input.
  114. * The iowait factor may look low, but realize that this is also already
  115. * represented in the system load average.
  116. *
  117. */
  118. struct menu_device {
  119. int last_state_idx;
  120. int needs_update;
  121. unsigned int next_timer_us;
  122. unsigned int predicted_us;
  123. unsigned int bucket;
  124. unsigned int correction_factor[BUCKETS];
  125. unsigned int intervals[INTERVALS];
  126. int interval_ptr;
  127. };
  128. #define LOAD_INT(x) ((x) >> FSHIFT)
  129. #define LOAD_FRAC(x) LOAD_INT(((x) & (FIXED_1-1)) * 100)
  130. static inline int get_loadavg(unsigned long load)
  131. {
  132. return LOAD_INT(load) * 10 + LOAD_FRAC(load) / 10;
  133. }
  134. static inline int which_bucket(unsigned int duration, unsigned long nr_iowaiters)
  135. {
  136. int bucket = 0;
  137. /*
  138. * We keep two groups of stats; one with no
  139. * IO pending, one without.
  140. * This allows us to calculate
  141. * E(duration)|iowait
  142. */
  143. if (nr_iowaiters)
  144. bucket = BUCKETS/2;
  145. if (duration < 10)
  146. return bucket;
  147. if (duration < 100)
  148. return bucket + 1;
  149. if (duration < 1000)
  150. return bucket + 2;
  151. if (duration < 10000)
  152. return bucket + 3;
  153. if (duration < 100000)
  154. return bucket + 4;
  155. return bucket + 5;
  156. }
  157. /*
  158. * Return a multiplier for the exit latency that is intended
  159. * to take performance requirements into account.
  160. * The more performance critical we estimate the system
  161. * to be, the higher this multiplier, and thus the higher
  162. * the barrier to go to an expensive C state.
  163. */
  164. static inline int performance_multiplier(unsigned long nr_iowaiters, unsigned long load)
  165. {
  166. int mult = 1;
  167. /* for higher loadavg, we are more reluctant */
  168. mult += 2 * get_loadavg(load);
  169. /* for IO wait tasks (per cpu!) we add 5x each */
  170. mult += 10 * nr_iowaiters;
  171. return mult;
  172. }
  173. static DEFINE_PER_CPU(struct menu_device, menu_devices);
  174. static void menu_update(struct cpuidle_driver *drv, struct cpuidle_device *dev);
  175. /*
  176. * Try detecting repeating patterns by keeping track of the last 8
  177. * intervals, and checking if the standard deviation of that set
  178. * of points is below a threshold. If it is... then use the
  179. * average of these 8 points as the estimated value.
  180. */
  181. static unsigned int get_typical_interval(struct menu_device *data)
  182. {
  183. int i, divisor;
  184. unsigned int max, thresh, avg;
  185. uint64_t sum, variance;
  186. thresh = UINT_MAX; /* Discard outliers above this value */
  187. again:
  188. /* First calculate the average of past intervals */
  189. max = 0;
  190. sum = 0;
  191. divisor = 0;
  192. for (i = 0; i < INTERVALS; i++) {
  193. unsigned int value = data->intervals[i];
  194. if (value <= thresh) {
  195. sum += value;
  196. divisor++;
  197. if (value > max)
  198. max = value;
  199. }
  200. }
  201. if (divisor == INTERVALS)
  202. avg = sum >> INTERVAL_SHIFT;
  203. else
  204. avg = div_u64(sum, divisor);
  205. /* Then try to determine variance */
  206. variance = 0;
  207. for (i = 0; i < INTERVALS; i++) {
  208. unsigned int value = data->intervals[i];
  209. if (value <= thresh) {
  210. int64_t diff = (int64_t)value - avg;
  211. variance += diff * diff;
  212. }
  213. }
  214. if (divisor == INTERVALS)
  215. variance >>= INTERVAL_SHIFT;
  216. else
  217. do_div(variance, divisor);
  218. /*
  219. * The typical interval is obtained when standard deviation is
  220. * small (stddev <= 20 us, variance <= 400 us^2) or standard
  221. * deviation is small compared to the average interval (avg >
  222. * 6*stddev, avg^2 > 36*variance). The average is smaller than
  223. * UINT_MAX aka U32_MAX, so computing its square does not
  224. * overflow a u64. We simply reject this candidate average if
  225. * the standard deviation is greater than 715 s (which is
  226. * rather unlikely).
  227. *
  228. * Use this result only if there is no timer to wake us up sooner.
  229. */
  230. if (likely(variance <= U64_MAX/36)) {
  231. if ((((u64)avg*avg > variance*36) && (divisor * 4 >= INTERVALS * 3))
  232. || variance <= 400) {
  233. return avg;
  234. }
  235. }
  236. /*
  237. * If we have outliers to the upside in our distribution, discard
  238. * those by setting the threshold to exclude these outliers, then
  239. * calculate the average and standard deviation again. Once we get
  240. * down to the bottom 3/4 of our samples, stop excluding samples.
  241. *
  242. * This can deal with workloads that have long pauses interspersed
  243. * with sporadic activity with a bunch of short pauses.
  244. */
  245. if ((divisor * 4) <= INTERVALS * 3)
  246. return UINT_MAX;
  247. thresh = max - 1;
  248. goto again;
  249. }
  250. /**
  251. * menu_select - selects the next idle state to enter
  252. * @drv: cpuidle driver containing state data
  253. * @dev: the CPU
  254. */
  255. static int menu_select(struct cpuidle_driver *drv, struct cpuidle_device *dev)
  256. {
  257. struct menu_device *data = this_cpu_ptr(&menu_devices);
  258. struct device *device = get_cpu_device(dev->cpu);
  259. int latency_req = pm_qos_request(PM_QOS_CPU_DMA_LATENCY);
  260. int i;
  261. int first_idx;
  262. int idx;
  263. unsigned int interactivity_req;
  264. unsigned int expected_interval;
  265. unsigned long nr_iowaiters, cpu_load;
  266. int resume_latency = dev_pm_qos_raw_read_value(device);
  267. if (data->needs_update) {
  268. menu_update(drv, dev);
  269. data->needs_update = 0;
  270. }
  271. /* resume_latency is 0 means no restriction */
  272. if (resume_latency && resume_latency < latency_req)
  273. latency_req = resume_latency;
  274. /* Special case when user has set very strict latency requirement */
  275. if (unlikely(latency_req == 0))
  276. return 0;
  277. /* determine the expected residency time, round up */
  278. data->next_timer_us = ktime_to_us(tick_nohz_get_sleep_length());
  279. get_iowait_load(&nr_iowaiters, &cpu_load);
  280. data->bucket = which_bucket(data->next_timer_us, nr_iowaiters);
  281. /*
  282. * Force the result of multiplication to be 64 bits even if both
  283. * operands are 32 bits.
  284. * Make sure to round up for half microseconds.
  285. */
  286. data->predicted_us = DIV_ROUND_CLOSEST_ULL((uint64_t)data->next_timer_us *
  287. data->correction_factor[data->bucket],
  288. RESOLUTION * DECAY);
  289. expected_interval = get_typical_interval(data);
  290. expected_interval = min(expected_interval, data->next_timer_us);
  291. first_idx = 0;
  292. if (drv->states[0].flags & CPUIDLE_FLAG_POLLING) {
  293. struct cpuidle_state *s = &drv->states[1];
  294. unsigned int polling_threshold;
  295. /*
  296. * We want to default to C1 (hlt), not to busy polling
  297. * unless the timer is happening really really soon, or
  298. * C1's exit latency exceeds the user configured limit.
  299. */
  300. polling_threshold = max_t(unsigned int, 20, s->target_residency);
  301. if (data->next_timer_us > polling_threshold &&
  302. latency_req > s->exit_latency && !s->disabled &&
  303. !dev->states_usage[1].disable)
  304. first_idx = 1;
  305. }
  306. /*
  307. * Use the lowest expected idle interval to pick the idle state.
  308. */
  309. data->predicted_us = min(data->predicted_us, expected_interval);
  310. /*
  311. * Use the performance multiplier and the user-configurable
  312. * latency_req to determine the maximum exit latency.
  313. */
  314. interactivity_req = data->predicted_us / performance_multiplier(nr_iowaiters, cpu_load);
  315. if (latency_req > interactivity_req)
  316. latency_req = interactivity_req;
  317. /*
  318. * Find the idle state with the lowest power while satisfying
  319. * our constraints.
  320. */
  321. idx = -1;
  322. for (i = first_idx; i < drv->state_count; i++) {
  323. struct cpuidle_state *s = &drv->states[i];
  324. struct cpuidle_state_usage *su = &dev->states_usage[i];
  325. if (s->disabled || su->disable)
  326. continue;
  327. if (idx == -1)
  328. idx = i; /* first enabled state */
  329. if (s->target_residency > data->predicted_us)
  330. break;
  331. if (s->exit_latency > latency_req)
  332. break;
  333. idx = i;
  334. }
  335. if (idx == -1)
  336. idx = 0; /* No states enabled. Must use 0. */
  337. data->last_state_idx = idx;
  338. return data->last_state_idx;
  339. }
  340. /**
  341. * menu_reflect - records that data structures need update
  342. * @dev: the CPU
  343. * @index: the index of actual entered state
  344. *
  345. * NOTE: it's important to be fast here because this operation will add to
  346. * the overall exit latency.
  347. */
  348. static void menu_reflect(struct cpuidle_device *dev, int index)
  349. {
  350. struct menu_device *data = this_cpu_ptr(&menu_devices);
  351. data->last_state_idx = index;
  352. data->needs_update = 1;
  353. }
  354. /**
  355. * menu_update - attempts to guess what happened after entry
  356. * @drv: cpuidle driver containing state data
  357. * @dev: the CPU
  358. */
  359. static void menu_update(struct cpuidle_driver *drv, struct cpuidle_device *dev)
  360. {
  361. struct menu_device *data = this_cpu_ptr(&menu_devices);
  362. int last_idx = data->last_state_idx;
  363. struct cpuidle_state *target = &drv->states[last_idx];
  364. unsigned int measured_us;
  365. unsigned int new_factor;
  366. /*
  367. * Try to figure out how much time passed between entry to low
  368. * power state and occurrence of the wakeup event.
  369. *
  370. * If the entered idle state didn't support residency measurements,
  371. * we use them anyway if they are short, and if long,
  372. * truncate to the whole expected time.
  373. *
  374. * Any measured amount of time will include the exit latency.
  375. * Since we are interested in when the wakeup begun, not when it
  376. * was completed, we must subtract the exit latency. However, if
  377. * the measured amount of time is less than the exit latency,
  378. * assume the state was never reached and the exit latency is 0.
  379. */
  380. /* measured value */
  381. measured_us = cpuidle_get_last_residency(dev);
  382. /* Deduct exit latency */
  383. if (measured_us > 2 * target->exit_latency)
  384. measured_us -= target->exit_latency;
  385. else
  386. measured_us /= 2;
  387. /* Make sure our coefficients do not exceed unity */
  388. if (measured_us > data->next_timer_us)
  389. measured_us = data->next_timer_us;
  390. /* Update our correction ratio */
  391. new_factor = data->correction_factor[data->bucket];
  392. new_factor -= new_factor / DECAY;
  393. if (data->next_timer_us > 0 && measured_us < MAX_INTERESTING)
  394. new_factor += RESOLUTION * measured_us / data->next_timer_us;
  395. else
  396. /*
  397. * we were idle so long that we count it as a perfect
  398. * prediction
  399. */
  400. new_factor += RESOLUTION;
  401. /*
  402. * We don't want 0 as factor; we always want at least
  403. * a tiny bit of estimated time. Fortunately, due to rounding,
  404. * new_factor will stay nonzero regardless of measured_us values
  405. * and the compiler can eliminate this test as long as DECAY > 1.
  406. */
  407. if (DECAY == 1 && unlikely(new_factor == 0))
  408. new_factor = 1;
  409. data->correction_factor[data->bucket] = new_factor;
  410. /* update the repeating-pattern data */
  411. data->intervals[data->interval_ptr++] = measured_us;
  412. if (data->interval_ptr >= INTERVALS)
  413. data->interval_ptr = 0;
  414. }
  415. /**
  416. * menu_enable_device - scans a CPU's states and does setup
  417. * @drv: cpuidle driver
  418. * @dev: the CPU
  419. */
  420. static int menu_enable_device(struct cpuidle_driver *drv,
  421. struct cpuidle_device *dev)
  422. {
  423. struct menu_device *data = &per_cpu(menu_devices, dev->cpu);
  424. int i;
  425. memset(data, 0, sizeof(struct menu_device));
  426. /*
  427. * if the correction factor is 0 (eg first time init or cpu hotplug
  428. * etc), we actually want to start out with a unity factor.
  429. */
  430. for(i = 0; i < BUCKETS; i++)
  431. data->correction_factor[i] = RESOLUTION * DECAY;
  432. return 0;
  433. }
  434. static struct cpuidle_governor menu_governor = {
  435. .name = "menu",
  436. .rating = 20,
  437. .enable = menu_enable_device,
  438. .select = menu_select,
  439. .reflect = menu_reflect,
  440. };
  441. /**
  442. * init_menu - initializes the governor
  443. */
  444. static int __init init_menu(void)
  445. {
  446. return cpuidle_register_governor(&menu_governor);
  447. }
  448. postcore_initcall(init_menu);