1 /* 2 * cpuidle.c - core cpuidle infrastructure 3 * 4 * (C) 2006-2007 Venkatesh Pallipadi <venkatesh.pallipadi@intel.com> 5 * Shaohua Li <shaohua.li@intel.com> 6 * Adam Belay <abelay@novell.com> 7 * 8 * This code is licenced under the GPL. 9 */ 10 11 #include <linux/clockchips.h> 12 #include <linux/kernel.h> 13 #include <linux/mutex.h> 14 #include <linux/sched.h> 15 #include <linux/sched/clock.h> 16 #include <linux/notifier.h> 17 #include <linux/pm_qos.h> 18 #include <linux/cpu.h> 19 #include <linux/cpuidle.h> 20 #include <linux/ktime.h> 21 #include <linux/hrtimer.h> 22 #include <linux/module.h> 23 #include <linux/suspend.h> 24 #include <linux/tick.h> 25 #include <linux/mmu_context.h> 26 #include <trace/events/power.h> 27 28 #include "cpuidle.h" 29 30 DEFINE_PER_CPU(struct cpuidle_device *, cpuidle_devices); 31 DEFINE_PER_CPU(struct cpuidle_device, cpuidle_dev); 32 33 DEFINE_MUTEX(cpuidle_lock); 34 LIST_HEAD(cpuidle_detected_devices); 35 36 static int enabled_devices; 37 static int off __read_mostly; 38 static int initialized __read_mostly; 39 40 int cpuidle_disabled(void) 41 { 42 return off; 43 } 44 void disable_cpuidle(void) 45 { 46 off = 1; 47 } 48 49 bool cpuidle_not_available(struct cpuidle_driver *drv, 50 struct cpuidle_device *dev) 51 { 52 return off || !initialized || !drv || !dev || !dev->enabled; 53 } 54 55 /** 56 * cpuidle_play_dead - cpu off-lining 57 * 58 * Returns in case of an error or no driver 59 */ 60 int cpuidle_play_dead(void) 61 { 62 struct cpuidle_device *dev = __this_cpu_read(cpuidle_devices); 63 struct cpuidle_driver *drv = cpuidle_get_cpu_driver(dev); 64 int i; 65 66 if (!drv) 67 return -ENODEV; 68 69 /* Find lowest-power state that supports long-term idle */ 70 for (i = drv->state_count - 1; i >= 0; i--) 71 if (drv->states[i].enter_dead) 72 return drv->states[i].enter_dead(dev, i); 73 74 return -ENODEV; 75 } 76 77 static int find_deepest_state(struct cpuidle_driver *drv, 78 struct cpuidle_device *dev, 79 u64 max_latency_ns, 80 unsigned int forbidden_flags, 81 bool s2idle) 82 { 83 u64 latency_req = 0; 84 int i, ret = 0; 85 86 for (i = 1; i < drv->state_count; i++) { 87 struct cpuidle_state *s = &drv->states[i]; 88 89 if (dev->states_usage[i].disable || 90 s->exit_latency_ns <= latency_req || 91 s->exit_latency_ns > max_latency_ns || 92 (s->flags & forbidden_flags) || 93 (s2idle && !s->enter_s2idle)) 94 continue; 95 96 latency_req = s->exit_latency_ns; 97 ret = i; 98 } 99 return ret; 100 } 101 102 /** 103 * cpuidle_use_deepest_state - Set/unset governor override mode. 104 * @latency_limit_ns: Idle state exit latency limit (or no override if 0). 105 * 106 * If @latency_limit_ns is nonzero, set the current CPU to use the deepest idle 107 * state with exit latency within @latency_limit_ns (override governors going 108 * forward), or do not override governors if it is zero. 109 */ 110 void cpuidle_use_deepest_state(u64 latency_limit_ns) 111 { 112 struct cpuidle_device *dev; 113 114 preempt_disable(); 115 dev = cpuidle_get_device(); 116 if (dev) 117 dev->forced_idle_latency_limit_ns = latency_limit_ns; 118 preempt_enable(); 119 } 120 121 /** 122 * cpuidle_find_deepest_state - Find the deepest available idle state. 123 * @drv: cpuidle driver for the given CPU. 124 * @dev: cpuidle device for the given CPU. 125 * @latency_limit_ns: Idle state exit latency limit 126 * 127 * Return: the index of the deepest available idle state. 128 */ 129 int cpuidle_find_deepest_state(struct cpuidle_driver *drv, 130 struct cpuidle_device *dev, 131 u64 latency_limit_ns) 132 { 133 return find_deepest_state(drv, dev, latency_limit_ns, 0, false); 134 } 135 136 #ifdef CONFIG_SUSPEND 137 static void enter_s2idle_proper(struct cpuidle_driver *drv, 138 struct cpuidle_device *dev, int index) 139 { 140 ktime_t time_start, time_end; 141 struct cpuidle_state *target_state = &drv->states[index]; 142 143 time_start = ns_to_ktime(local_clock()); 144 145 /* 146 * trace_suspend_resume() called by tick_freeze() for the last CPU 147 * executing it contains RCU usage regarded as invalid in the idle 148 * context, so tell RCU about that. 149 */ 150 tick_freeze(); 151 /* 152 * The state used here cannot be a "coupled" one, because the "coupled" 153 * cpuidle mechanism enables interrupts and doing that with timekeeping 154 * suspended is generally unsafe. 155 */ 156 stop_critical_timings(); 157 if (!(target_state->flags & CPUIDLE_FLAG_RCU_IDLE)) 158 rcu_idle_enter(); 159 target_state->enter_s2idle(dev, drv, index); 160 if (WARN_ON_ONCE(!irqs_disabled())) 161 local_irq_disable(); 162 /* 163 * timekeeping_resume() that will be called by tick_unfreeze() for the 164 * first CPU executing it calls functions containing RCU read-side 165 * critical sections, so tell RCU about that. 166 */ 167 if (!(target_state->flags & CPUIDLE_FLAG_RCU_IDLE)) 168 rcu_idle_exit(); 169 tick_unfreeze(); 170 start_critical_timings(); 171 172 time_end = ns_to_ktime(local_clock()); 173 174 dev->states_usage[index].s2idle_time += ktime_us_delta(time_end, time_start); 175 dev->states_usage[index].s2idle_usage++; 176 } 177 178 /** 179 * cpuidle_enter_s2idle - Enter an idle state suitable for suspend-to-idle. 180 * @drv: cpuidle driver for the given CPU. 181 * @dev: cpuidle device for the given CPU. 182 * 183 * If there are states with the ->enter_s2idle callback, find the deepest of 184 * them and enter it with frozen tick. 185 */ 186 int cpuidle_enter_s2idle(struct cpuidle_driver *drv, struct cpuidle_device *dev) 187 { 188 int index; 189 190 /* 191 * Find the deepest state with ->enter_s2idle present, which guarantees 192 * that interrupts won't be enabled when it exits and allows the tick to 193 * be frozen safely. 194 */ 195 index = find_deepest_state(drv, dev, U64_MAX, 0, true); 196 if (index > 0) { 197 enter_s2idle_proper(drv, dev, index); 198 local_irq_enable(); 199 } 200 return index; 201 } 202 #endif /* CONFIG_SUSPEND */ 203 204 /** 205 * cpuidle_enter_state - enter the state and update stats 206 * @dev: cpuidle device for this cpu 207 * @drv: cpuidle driver for this cpu 208 * @index: index into the states table in @drv of the state to enter 209 */ 210 int cpuidle_enter_state(struct cpuidle_device *dev, struct cpuidle_driver *drv, 211 int index) 212 { 213 int entered_state; 214 215 struct cpuidle_state *target_state = &drv->states[index]; 216 bool broadcast = !!(target_state->flags & CPUIDLE_FLAG_TIMER_STOP); 217 ktime_t time_start, time_end; 218 219 /* 220 * Tell the time framework to switch to a broadcast timer because our 221 * local timer will be shut down. If a local timer is used from another 222 * CPU as a broadcast timer, this call may fail if it is not available. 223 */ 224 if (broadcast && tick_broadcast_enter()) { 225 index = find_deepest_state(drv, dev, target_state->exit_latency_ns, 226 CPUIDLE_FLAG_TIMER_STOP, false); 227 if (index < 0) { 228 default_idle_call(); 229 return -EBUSY; 230 } 231 target_state = &drv->states[index]; 232 broadcast = false; 233 } 234 235 if (target_state->flags & CPUIDLE_FLAG_TLB_FLUSHED) 236 leave_mm(dev->cpu); 237 238 /* Take note of the planned idle state. */ 239 sched_idle_set_state(target_state); 240 241 trace_cpu_idle(index, dev->cpu); 242 time_start = ns_to_ktime(local_clock()); 243 244 stop_critical_timings(); 245 if (!(target_state->flags & CPUIDLE_FLAG_RCU_IDLE)) 246 rcu_idle_enter(); 247 entered_state = target_state->enter(dev, drv, index); 248 if (!(target_state->flags & CPUIDLE_FLAG_RCU_IDLE)) 249 rcu_idle_exit(); 250 start_critical_timings(); 251 252 sched_clock_idle_wakeup_event(); 253 time_end = ns_to_ktime(local_clock()); 254 trace_cpu_idle(PWR_EVENT_EXIT, dev->cpu); 255 256 /* The cpu is no longer idle or about to enter idle. */ 257 sched_idle_set_state(NULL); 258 259 if (broadcast) { 260 if (WARN_ON_ONCE(!irqs_disabled())) 261 local_irq_disable(); 262 263 tick_broadcast_exit(); 264 } 265 266 if (!cpuidle_state_is_coupled(drv, index)) 267 local_irq_enable(); 268 269 if (entered_state >= 0) { 270 s64 diff, delay = drv->states[entered_state].exit_latency_ns; 271 int i; 272 273 /* 274 * Update cpuidle counters 275 * This can be moved to within driver enter routine, 276 * but that results in multiple copies of same code. 277 */ 278 diff = ktime_sub(time_end, time_start); 279 280 dev->last_residency_ns = diff; 281 dev->states_usage[entered_state].time_ns += diff; 282 dev->states_usage[entered_state].usage++; 283 284 if (diff < drv->states[entered_state].target_residency_ns) { 285 for (i = entered_state - 1; i >= 0; i--) { 286 if (dev->states_usage[i].disable) 287 continue; 288 289 /* Shallower states are enabled, so update. */ 290 dev->states_usage[entered_state].above++; 291 break; 292 } 293 } else if (diff > delay) { 294 for (i = entered_state + 1; i < drv->state_count; i++) { 295 if (dev->states_usage[i].disable) 296 continue; 297 298 /* 299 * Update if a deeper state would have been a 300 * better match for the observed idle duration. 301 */ 302 if (diff - delay >= drv->states[i].target_residency_ns) 303 dev->states_usage[entered_state].below++; 304 305 break; 306 } 307 } 308 } else { 309 dev->last_residency_ns = 0; 310 } 311 312 return entered_state; 313 } 314 315 /** 316 * cpuidle_select - ask the cpuidle framework to choose an idle state 317 * 318 * @drv: the cpuidle driver 319 * @dev: the cpuidle device 320 * @stop_tick: indication on whether or not to stop the tick 321 * 322 * Returns the index of the idle state. The return value must not be negative. 323 * 324 * The memory location pointed to by @stop_tick is expected to be written the 325 * 'false' boolean value if the scheduler tick should not be stopped before 326 * entering the returned state. 327 */ 328 int cpuidle_select(struct cpuidle_driver *drv, struct cpuidle_device *dev, 329 bool *stop_tick) 330 { 331 return cpuidle_curr_governor->select(drv, dev, stop_tick); 332 } 333 334 /** 335 * cpuidle_enter - enter into the specified idle state 336 * 337 * @drv: the cpuidle driver tied with the cpu 338 * @dev: the cpuidle device 339 * @index: the index in the idle state table 340 * 341 * Returns the index in the idle state, < 0 in case of error. 342 * The error code depends on the backend driver 343 */ 344 int cpuidle_enter(struct cpuidle_driver *drv, struct cpuidle_device *dev, 345 int index) 346 { 347 int ret = 0; 348 349 /* 350 * Store the next hrtimer, which becomes either next tick or the next 351 * timer event, whatever expires first. Additionally, to make this data 352 * useful for consumers outside cpuidle, we rely on that the governor's 353 * ->select() callback have decided, whether to stop the tick or not. 354 */ 355 WRITE_ONCE(dev->next_hrtimer, tick_nohz_get_next_hrtimer()); 356 357 if (cpuidle_state_is_coupled(drv, index)) 358 ret = cpuidle_enter_state_coupled(dev, drv, index); 359 else 360 ret = cpuidle_enter_state(dev, drv, index); 361 362 WRITE_ONCE(dev->next_hrtimer, 0); 363 return ret; 364 } 365 366 /** 367 * cpuidle_reflect - tell the underlying governor what was the state 368 * we were in 369 * 370 * @dev : the cpuidle device 371 * @index: the index in the idle state table 372 * 373 */ 374 void cpuidle_reflect(struct cpuidle_device *dev, int index) 375 { 376 if (cpuidle_curr_governor->reflect && index >= 0) 377 cpuidle_curr_governor->reflect(dev, index); 378 } 379 380 /** 381 * cpuidle_poll_time - return amount of time to poll for, 382 * governors can override dev->poll_limit_ns if necessary 383 * 384 * @drv: the cpuidle driver tied with the cpu 385 * @dev: the cpuidle device 386 * 387 */ 388 u64 cpuidle_poll_time(struct cpuidle_driver *drv, 389 struct cpuidle_device *dev) 390 { 391 int i; 392 u64 limit_ns; 393 394 if (dev->poll_limit_ns) 395 return dev->poll_limit_ns; 396 397 limit_ns = TICK_NSEC; 398 for (i = 1; i < drv->state_count; i++) { 399 if (dev->states_usage[i].disable) 400 continue; 401 402 limit_ns = drv->states[i].target_residency_ns; 403 break; 404 } 405 406 dev->poll_limit_ns = limit_ns; 407 408 return dev->poll_limit_ns; 409 } 410 411 /** 412 * cpuidle_install_idle_handler - installs the cpuidle idle loop handler 413 */ 414 void cpuidle_install_idle_handler(void) 415 { 416 if (enabled_devices) { 417 /* Make sure all changes finished before we switch to new idle */ 418 smp_wmb(); 419 initialized = 1; 420 } 421 } 422 423 /** 424 * cpuidle_uninstall_idle_handler - uninstalls the cpuidle idle loop handler 425 */ 426 void cpuidle_uninstall_idle_handler(void) 427 { 428 if (enabled_devices) { 429 initialized = 0; 430 wake_up_all_idle_cpus(); 431 } 432 433 /* 434 * Make sure external observers (such as the scheduler) 435 * are done looking at pointed idle states. 436 */ 437 synchronize_rcu(); 438 } 439 440 /** 441 * cpuidle_pause_and_lock - temporarily disables CPUIDLE 442 */ 443 void cpuidle_pause_and_lock(void) 444 { 445 mutex_lock(&cpuidle_lock); 446 cpuidle_uninstall_idle_handler(); 447 } 448 449 EXPORT_SYMBOL_GPL(cpuidle_pause_and_lock); 450 451 /** 452 * cpuidle_resume_and_unlock - resumes CPUIDLE operation 453 */ 454 void cpuidle_resume_and_unlock(void) 455 { 456 cpuidle_install_idle_handler(); 457 mutex_unlock(&cpuidle_lock); 458 } 459 460 EXPORT_SYMBOL_GPL(cpuidle_resume_and_unlock); 461 462 /* Currently used in suspend/resume path to suspend cpuidle */ 463 void cpuidle_pause(void) 464 { 465 mutex_lock(&cpuidle_lock); 466 cpuidle_uninstall_idle_handler(); 467 mutex_unlock(&cpuidle_lock); 468 } 469 470 /* Currently used in suspend/resume path to resume cpuidle */ 471 void cpuidle_resume(void) 472 { 473 mutex_lock(&cpuidle_lock); 474 cpuidle_install_idle_handler(); 475 mutex_unlock(&cpuidle_lock); 476 } 477 478 /** 479 * cpuidle_enable_device - enables idle PM for a CPU 480 * @dev: the CPU 481 * 482 * This function must be called between cpuidle_pause_and_lock and 483 * cpuidle_resume_and_unlock when used externally. 484 */ 485 int cpuidle_enable_device(struct cpuidle_device *dev) 486 { 487 int ret; 488 struct cpuidle_driver *drv; 489 490 if (!dev) 491 return -EINVAL; 492 493 if (dev->enabled) 494 return 0; 495 496 if (!cpuidle_curr_governor) 497 return -EIO; 498 499 drv = cpuidle_get_cpu_driver(dev); 500 501 if (!drv) 502 return -EIO; 503 504 if (!dev->registered) 505 return -EINVAL; 506 507 ret = cpuidle_add_device_sysfs(dev); 508 if (ret) 509 return ret; 510 511 if (cpuidle_curr_governor->enable) { 512 ret = cpuidle_curr_governor->enable(drv, dev); 513 if (ret) 514 goto fail_sysfs; 515 } 516 517 smp_wmb(); 518 519 dev->enabled = 1; 520 521 enabled_devices++; 522 return 0; 523 524 fail_sysfs: 525 cpuidle_remove_device_sysfs(dev); 526 527 return ret; 528 } 529 530 EXPORT_SYMBOL_GPL(cpuidle_enable_device); 531 532 /** 533 * cpuidle_disable_device - disables idle PM for a CPU 534 * @dev: the CPU 535 * 536 * This function must be called between cpuidle_pause_and_lock and 537 * cpuidle_resume_and_unlock when used externally. 538 */ 539 void cpuidle_disable_device(struct cpuidle_device *dev) 540 { 541 struct cpuidle_driver *drv = cpuidle_get_cpu_driver(dev); 542 543 if (!dev || !dev->enabled) 544 return; 545 546 if (!drv || !cpuidle_curr_governor) 547 return; 548 549 dev->enabled = 0; 550 551 if (cpuidle_curr_governor->disable) 552 cpuidle_curr_governor->disable(drv, dev); 553 554 cpuidle_remove_device_sysfs(dev); 555 enabled_devices--; 556 } 557 558 EXPORT_SYMBOL_GPL(cpuidle_disable_device); 559 560 static void __cpuidle_unregister_device(struct cpuidle_device *dev) 561 { 562 struct cpuidle_driver *drv = cpuidle_get_cpu_driver(dev); 563 564 list_del(&dev->device_list); 565 per_cpu(cpuidle_devices, dev->cpu) = NULL; 566 module_put(drv->owner); 567 568 dev->registered = 0; 569 } 570 571 static void __cpuidle_device_init(struct cpuidle_device *dev) 572 { 573 memset(dev->states_usage, 0, sizeof(dev->states_usage)); 574 dev->last_residency_ns = 0; 575 dev->next_hrtimer = 0; 576 } 577 578 /** 579 * __cpuidle_register_device - internal register function called before register 580 * and enable routines 581 * @dev: the cpu 582 * 583 * cpuidle_lock mutex must be held before this is called 584 */ 585 static int __cpuidle_register_device(struct cpuidle_device *dev) 586 { 587 struct cpuidle_driver *drv = cpuidle_get_cpu_driver(dev); 588 int i, ret; 589 590 if (!try_module_get(drv->owner)) 591 return -EINVAL; 592 593 for (i = 0; i < drv->state_count; i++) { 594 if (drv->states[i].flags & CPUIDLE_FLAG_UNUSABLE) 595 dev->states_usage[i].disable |= CPUIDLE_STATE_DISABLED_BY_DRIVER; 596 597 if (drv->states[i].flags & CPUIDLE_FLAG_OFF) 598 dev->states_usage[i].disable |= CPUIDLE_STATE_DISABLED_BY_USER; 599 } 600 601 per_cpu(cpuidle_devices, dev->cpu) = dev; 602 list_add(&dev->device_list, &cpuidle_detected_devices); 603 604 ret = cpuidle_coupled_register_device(dev); 605 if (ret) 606 __cpuidle_unregister_device(dev); 607 else 608 dev->registered = 1; 609 610 return ret; 611 } 612 613 /** 614 * cpuidle_register_device - registers a CPU's idle PM feature 615 * @dev: the cpu 616 */ 617 int cpuidle_register_device(struct cpuidle_device *dev) 618 { 619 int ret = -EBUSY; 620 621 if (!dev) 622 return -EINVAL; 623 624 mutex_lock(&cpuidle_lock); 625 626 if (dev->registered) 627 goto out_unlock; 628 629 __cpuidle_device_init(dev); 630 631 ret = __cpuidle_register_device(dev); 632 if (ret) 633 goto out_unlock; 634 635 ret = cpuidle_add_sysfs(dev); 636 if (ret) 637 goto out_unregister; 638 639 ret = cpuidle_enable_device(dev); 640 if (ret) 641 goto out_sysfs; 642 643 cpuidle_install_idle_handler(); 644 645 out_unlock: 646 mutex_unlock(&cpuidle_lock); 647 648 return ret; 649 650 out_sysfs: 651 cpuidle_remove_sysfs(dev); 652 out_unregister: 653 __cpuidle_unregister_device(dev); 654 goto out_unlock; 655 } 656 657 EXPORT_SYMBOL_GPL(cpuidle_register_device); 658 659 /** 660 * cpuidle_unregister_device - unregisters a CPU's idle PM feature 661 * @dev: the cpu 662 */ 663 void cpuidle_unregister_device(struct cpuidle_device *dev) 664 { 665 if (!dev || dev->registered == 0) 666 return; 667 668 cpuidle_pause_and_lock(); 669 670 cpuidle_disable_device(dev); 671 672 cpuidle_remove_sysfs(dev); 673 674 __cpuidle_unregister_device(dev); 675 676 cpuidle_coupled_unregister_device(dev); 677 678 cpuidle_resume_and_unlock(); 679 } 680 681 EXPORT_SYMBOL_GPL(cpuidle_unregister_device); 682 683 /** 684 * cpuidle_unregister: unregister a driver and the devices. This function 685 * can be used only if the driver has been previously registered through 686 * the cpuidle_register function. 687 * 688 * @drv: a valid pointer to a struct cpuidle_driver 689 */ 690 void cpuidle_unregister(struct cpuidle_driver *drv) 691 { 692 int cpu; 693 struct cpuidle_device *device; 694 695 for_each_cpu(cpu, drv->cpumask) { 696 device = &per_cpu(cpuidle_dev, cpu); 697 cpuidle_unregister_device(device); 698 } 699 700 cpuidle_unregister_driver(drv); 701 } 702 EXPORT_SYMBOL_GPL(cpuidle_unregister); 703 704 /** 705 * cpuidle_register: registers the driver and the cpu devices with the 706 * coupled_cpus passed as parameter. This function is used for all common 707 * initialization pattern there are in the arch specific drivers. The 708 * devices is globally defined in this file. 709 * 710 * @drv : a valid pointer to a struct cpuidle_driver 711 * @coupled_cpus: a cpumask for the coupled states 712 * 713 * Returns 0 on success, < 0 otherwise 714 */ 715 int cpuidle_register(struct cpuidle_driver *drv, 716 const struct cpumask *const coupled_cpus) 717 { 718 int ret, cpu; 719 struct cpuidle_device *device; 720 721 ret = cpuidle_register_driver(drv); 722 if (ret) { 723 pr_err("failed to register cpuidle driver\n"); 724 return ret; 725 } 726 727 for_each_cpu(cpu, drv->cpumask) { 728 device = &per_cpu(cpuidle_dev, cpu); 729 device->cpu = cpu; 730 731 #ifdef CONFIG_ARCH_NEEDS_CPU_IDLE_COUPLED 732 /* 733 * On multiplatform for ARM, the coupled idle states could be 734 * enabled in the kernel even if the cpuidle driver does not 735 * use it. Note, coupled_cpus is a struct copy. 736 */ 737 if (coupled_cpus) 738 device->coupled_cpus = *coupled_cpus; 739 #endif 740 ret = cpuidle_register_device(device); 741 if (!ret) 742 continue; 743 744 pr_err("Failed to register cpuidle device for cpu%d\n", cpu); 745 746 cpuidle_unregister(drv); 747 break; 748 } 749 750 return ret; 751 } 752 EXPORT_SYMBOL_GPL(cpuidle_register); 753 754 /** 755 * cpuidle_init - core initializer 756 */ 757 static int __init cpuidle_init(void) 758 { 759 if (cpuidle_disabled()) 760 return -ENODEV; 761 762 return cpuidle_add_interface(cpu_subsys.dev_root); 763 } 764 765 module_param(off, int, 0444); 766 module_param_string(governor, param_governor, CPUIDLE_NAME_LEN, 0444); 767 core_initcall(cpuidle_init); 768