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1#ifndef _LINUX_SUSPEND_H 2#define _LINUX_SUSPEND_H 3 4#include <linux/swap.h> 5#include <linux/notifier.h> 6#include <linux/init.h> 7#include <linux/pm.h> 8#include <linux/mm.h> 9#include <linux/freezer.h> 10#include <asm/errno.h> 11 12#ifdef CONFIG_VT 13extern void pm_set_vt_switch(int); 14#else 15static inline void pm_set_vt_switch(int do_switch) 16{ 17} 18#endif 19 20#ifdef CONFIG_VT_CONSOLE_SLEEP 21extern int pm_prepare_console(void); 22extern void pm_restore_console(void); 23#else 24static inline int pm_prepare_console(void) 25{ 26 return 0; 27} 28 29static inline void pm_restore_console(void) 30{ 31} 32#endif 33 34typedef int __bitwise suspend_state_t; 35 36#define PM_SUSPEND_ON ((__force suspend_state_t) 0) 37#define PM_SUSPEND_FREEZE ((__force suspend_state_t) 1) 38#define PM_SUSPEND_STANDBY ((__force suspend_state_t) 2) 39#define PM_SUSPEND_MEM ((__force suspend_state_t) 3) 40#define PM_SUSPEND_MIN PM_SUSPEND_FREEZE 41#define PM_SUSPEND_MAX ((__force suspend_state_t) 4) 42 43enum suspend_stat_step { 44 SUSPEND_FREEZE = 1, 45 SUSPEND_PREPARE, 46 SUSPEND_SUSPEND, 47 SUSPEND_SUSPEND_LATE, 48 SUSPEND_SUSPEND_NOIRQ, 49 SUSPEND_RESUME_NOIRQ, 50 SUSPEND_RESUME_EARLY, 51 SUSPEND_RESUME 52}; 53 54struct suspend_stats { 55 int success; 56 int fail; 57 int failed_freeze; 58 int failed_prepare; 59 int failed_suspend; 60 int failed_suspend_late; 61 int failed_suspend_noirq; 62 int failed_resume; 63 int failed_resume_early; 64 int failed_resume_noirq; 65#define REC_FAILED_NUM 2 66 int last_failed_dev; 67 char failed_devs[REC_FAILED_NUM][40]; 68 int last_failed_errno; 69 int errno[REC_FAILED_NUM]; 70 int last_failed_step; 71 enum suspend_stat_step failed_steps[REC_FAILED_NUM]; 72}; 73 74extern struct suspend_stats suspend_stats; 75 76static inline void dpm_save_failed_dev(const char *name) 77{ 78 strlcpy(suspend_stats.failed_devs[suspend_stats.last_failed_dev], 79 name, 80 sizeof(suspend_stats.failed_devs[0])); 81 suspend_stats.last_failed_dev++; 82 suspend_stats.last_failed_dev %= REC_FAILED_NUM; 83} 84 85static inline void dpm_save_failed_errno(int err) 86{ 87 suspend_stats.errno[suspend_stats.last_failed_errno] = err; 88 suspend_stats.last_failed_errno++; 89 suspend_stats.last_failed_errno %= REC_FAILED_NUM; 90} 91 92static inline void dpm_save_failed_step(enum suspend_stat_step step) 93{ 94 suspend_stats.failed_steps[suspend_stats.last_failed_step] = step; 95 suspend_stats.last_failed_step++; 96 suspend_stats.last_failed_step %= REC_FAILED_NUM; 97} 98 99/** 100 * struct platform_suspend_ops - Callbacks for managing platform dependent 101 * system sleep states. 102 * 103 * @valid: Callback to determine if given system sleep state is supported by 104 * the platform. 105 * Valid (ie. supported) states are advertised in /sys/power/state. Note 106 * that it still may be impossible to enter given system sleep state if the 107 * conditions aren't right. 108 * There is the %suspend_valid_only_mem function available that can be 109 * assigned to this if the platform only supports mem sleep. 110 * 111 * @begin: Initialise a transition to given system sleep state. 112 * @begin() is executed right prior to suspending devices. The information 113 * conveyed to the platform code by @begin() should be disregarded by it as 114 * soon as @end() is executed. If @begin() fails (ie. returns nonzero), 115 * @prepare(), @enter() and @finish() will not be called by the PM core. 116 * This callback is optional. However, if it is implemented, the argument 117 * passed to @enter() is redundant and should be ignored. 118 * 119 * @prepare: Prepare the platform for entering the system sleep state indicated 120 * by @begin(). 121 * @prepare() is called right after devices have been suspended (ie. the 122 * appropriate .suspend() method has been executed for each device) and 123 * before device drivers' late suspend callbacks are executed. It returns 124 * 0 on success or a negative error code otherwise, in which case the 125 * system cannot enter the desired sleep state (@prepare_late(), @enter(), 126 * and @wake() will not be called in that case). 127 * 128 * @prepare_late: Finish preparing the platform for entering the system sleep 129 * state indicated by @begin(). 130 * @prepare_late is called before disabling nonboot CPUs and after 131 * device drivers' late suspend callbacks have been executed. It returns 132 * 0 on success or a negative error code otherwise, in which case the 133 * system cannot enter the desired sleep state (@enter() will not be 134 * executed). 135 * 136 * @enter: Enter the system sleep state indicated by @begin() or represented by 137 * the argument if @begin() is not implemented. 138 * This callback is mandatory. It returns 0 on success or a negative 139 * error code otherwise, in which case the system cannot enter the desired 140 * sleep state. 141 * 142 * @wake: Called when the system has just left a sleep state, right after 143 * the nonboot CPUs have been enabled and before device drivers' early 144 * resume callbacks are executed. 145 * This callback is optional, but should be implemented by the platforms 146 * that implement @prepare_late(). If implemented, it is always called 147 * after @prepare_late and @enter(), even if one of them fails. 148 * 149 * @finish: Finish wake-up of the platform. 150 * @finish is called right prior to calling device drivers' regular suspend 151 * callbacks. 152 * This callback is optional, but should be implemented by the platforms 153 * that implement @prepare(). If implemented, it is always called after 154 * @enter() and @wake(), even if any of them fails. It is executed after 155 * a failing @prepare. 156 * 157 * @suspend_again: Returns whether the system should suspend again (true) or 158 * not (false). If the platform wants to poll sensors or execute some 159 * code during suspended without invoking userspace and most of devices, 160 * suspend_again callback is the place assuming that periodic-wakeup or 161 * alarm-wakeup is already setup. This allows to execute some codes while 162 * being kept suspended in the view of userland and devices. 163 * 164 * @end: Called by the PM core right after resuming devices, to indicate to 165 * the platform that the system has returned to the working state or 166 * the transition to the sleep state has been aborted. 167 * This callback is optional, but should be implemented by the platforms 168 * that implement @begin(). Accordingly, platforms implementing @begin() 169 * should also provide a @end() which cleans up transitions aborted before 170 * @enter(). 171 * 172 * @recover: Recover the platform from a suspend failure. 173 * Called by the PM core if the suspending of devices fails. 174 * This callback is optional and should only be implemented by platforms 175 * which require special recovery actions in that situation. 176 */ 177struct platform_suspend_ops { 178 int (*valid)(suspend_state_t state); 179 int (*begin)(suspend_state_t state); 180 int (*prepare)(void); 181 int (*prepare_late)(void); 182 int (*enter)(suspend_state_t state); 183 void (*wake)(void); 184 void (*finish)(void); 185 bool (*suspend_again)(void); 186 void (*end)(void); 187 void (*recover)(void); 188}; 189 190struct platform_freeze_ops { 191 int (*begin)(void); 192 void (*end)(void); 193}; 194 195#ifdef CONFIG_SUSPEND 196/** 197 * suspend_set_ops - set platform dependent suspend operations 198 * @ops: The new suspend operations to set. 199 */ 200extern void suspend_set_ops(const struct platform_suspend_ops *ops); 201extern int suspend_valid_only_mem(suspend_state_t state); 202extern void freeze_set_ops(const struct platform_freeze_ops *ops); 203extern void freeze_wake(void); 204 205/** 206 * arch_suspend_disable_irqs - disable IRQs for suspend 207 * 208 * Disables IRQs (in the default case). This is a weak symbol in the common 209 * code and thus allows architectures to override it if more needs to be 210 * done. Not called for suspend to disk. 211 */ 212extern void arch_suspend_disable_irqs(void); 213 214/** 215 * arch_suspend_enable_irqs - enable IRQs after suspend 216 * 217 * Enables IRQs (in the default case). This is a weak symbol in the common 218 * code and thus allows architectures to override it if more needs to be 219 * done. Not called for suspend to disk. 220 */ 221extern void arch_suspend_enable_irqs(void); 222 223extern int pm_suspend(suspend_state_t state); 224#else /* !CONFIG_SUSPEND */ 225#define suspend_valid_only_mem NULL 226 227static inline void suspend_set_ops(const struct platform_suspend_ops *ops) {} 228static inline int pm_suspend(suspend_state_t state) { return -ENOSYS; } 229static inline void freeze_set_ops(const struct platform_freeze_ops *ops) {} 230static inline void freeze_wake(void) {} 231#endif /* !CONFIG_SUSPEND */ 232 233/* struct pbe is used for creating lists of pages that should be restored 234 * atomically during the resume from disk, because the page frames they have 235 * occupied before the suspend are in use. 236 */ 237struct pbe { 238 void *address; /* address of the copy */ 239 void *orig_address; /* original address of a page */ 240 struct pbe *next; 241}; 242 243/* mm/page_alloc.c */ 244extern void mark_free_pages(struct zone *zone); 245 246/** 247 * struct platform_hibernation_ops - hibernation platform support 248 * 249 * The methods in this structure allow a platform to carry out special 250 * operations required by it during a hibernation transition. 251 * 252 * All the methods below, except for @recover(), must be implemented. 253 * 254 * @begin: Tell the platform driver that we're starting hibernation. 255 * Called right after shrinking memory and before freezing devices. 256 * 257 * @end: Called by the PM core right after resuming devices, to indicate to 258 * the platform that the system has returned to the working state. 259 * 260 * @pre_snapshot: Prepare the platform for creating the hibernation image. 261 * Called right after devices have been frozen and before the nonboot 262 * CPUs are disabled (runs with IRQs on). 263 * 264 * @finish: Restore the previous state of the platform after the hibernation 265 * image has been created *or* put the platform into the normal operation 266 * mode after the hibernation (the same method is executed in both cases). 267 * Called right after the nonboot CPUs have been enabled and before 268 * thawing devices (runs with IRQs on). 269 * 270 * @prepare: Prepare the platform for entering the low power state. 271 * Called right after the hibernation image has been saved and before 272 * devices are prepared for entering the low power state. 273 * 274 * @enter: Put the system into the low power state after the hibernation image 275 * has been saved to disk. 276 * Called after the nonboot CPUs have been disabled and all of the low 277 * level devices have been shut down (runs with IRQs off). 278 * 279 * @leave: Perform the first stage of the cleanup after the system sleep state 280 * indicated by @set_target() has been left. 281 * Called right after the control has been passed from the boot kernel to 282 * the image kernel, before the nonboot CPUs are enabled and before devices 283 * are resumed. Executed with interrupts disabled. 284 * 285 * @pre_restore: Prepare system for the restoration from a hibernation image. 286 * Called right after devices have been frozen and before the nonboot 287 * CPUs are disabled (runs with IRQs on). 288 * 289 * @restore_cleanup: Clean up after a failing image restoration. 290 * Called right after the nonboot CPUs have been enabled and before 291 * thawing devices (runs with IRQs on). 292 * 293 * @recover: Recover the platform from a failure to suspend devices. 294 * Called by the PM core if the suspending of devices during hibernation 295 * fails. This callback is optional and should only be implemented by 296 * platforms which require special recovery actions in that situation. 297 */ 298struct platform_hibernation_ops { 299 int (*begin)(void); 300 void (*end)(void); 301 int (*pre_snapshot)(void); 302 void (*finish)(void); 303 int (*prepare)(void); 304 int (*enter)(void); 305 void (*leave)(void); 306 int (*pre_restore)(void); 307 void (*restore_cleanup)(void); 308 void (*recover)(void); 309}; 310 311#ifdef CONFIG_HIBERNATION 312/* kernel/power/snapshot.c */ 313extern void __register_nosave_region(unsigned long b, unsigned long e, int km); 314static inline void __init register_nosave_region(unsigned long b, unsigned long e) 315{ 316 __register_nosave_region(b, e, 0); 317} 318static inline void __init register_nosave_region_late(unsigned long b, unsigned long e) 319{ 320 __register_nosave_region(b, e, 1); 321} 322extern int swsusp_page_is_forbidden(struct page *); 323extern void swsusp_set_page_free(struct page *); 324extern void swsusp_unset_page_free(struct page *); 325extern unsigned long get_safe_page(gfp_t gfp_mask); 326 327extern void hibernation_set_ops(const struct platform_hibernation_ops *ops); 328extern int hibernate(void); 329extern bool system_entering_hibernation(void); 330extern bool hibernation_available(void); 331asmlinkage int swsusp_save(void); 332extern struct pbe *restore_pblist; 333#else /* CONFIG_HIBERNATION */ 334static inline void register_nosave_region(unsigned long b, unsigned long e) {} 335static inline void register_nosave_region_late(unsigned long b, unsigned long e) {} 336static inline int swsusp_page_is_forbidden(struct page *p) { return 0; } 337static inline void swsusp_set_page_free(struct page *p) {} 338static inline void swsusp_unset_page_free(struct page *p) {} 339 340static inline void hibernation_set_ops(const struct platform_hibernation_ops *ops) {} 341static inline int hibernate(void) { return -ENOSYS; } 342static inline bool system_entering_hibernation(void) { return false; } 343static inline bool hibernation_available(void) { return false; } 344#endif /* CONFIG_HIBERNATION */ 345 346/* Hibernation and suspend events */ 347#define PM_HIBERNATION_PREPARE 0x0001 /* Going to hibernate */ 348#define PM_POST_HIBERNATION 0x0002 /* Hibernation finished */ 349#define PM_SUSPEND_PREPARE 0x0003 /* Going to suspend the system */ 350#define PM_POST_SUSPEND 0x0004 /* Suspend finished */ 351#define PM_RESTORE_PREPARE 0x0005 /* Going to restore a saved image */ 352#define PM_POST_RESTORE 0x0006 /* Restore failed */ 353 354extern struct mutex pm_mutex; 355 356#ifdef CONFIG_PM_SLEEP 357void save_processor_state(void); 358void restore_processor_state(void); 359 360/* kernel/power/main.c */ 361extern int register_pm_notifier(struct notifier_block *nb); 362extern int unregister_pm_notifier(struct notifier_block *nb); 363 364#define pm_notifier(fn, pri) { \ 365 static struct notifier_block fn##_nb = \ 366 { .notifier_call = fn, .priority = pri }; \ 367 register_pm_notifier(&fn##_nb); \ 368} 369 370/* drivers/base/power/wakeup.c */ 371extern bool events_check_enabled; 372 373extern bool pm_wakeup_pending(void); 374extern bool pm_get_wakeup_count(unsigned int *count, bool block); 375extern bool pm_save_wakeup_count(unsigned int count); 376extern void pm_wakep_autosleep_enabled(bool set); 377extern void pm_print_active_wakeup_sources(void); 378 379static inline void lock_system_sleep(void) 380{ 381 current->flags |= PF_FREEZER_SKIP; 382 mutex_lock(&pm_mutex); 383} 384 385static inline void unlock_system_sleep(void) 386{ 387 /* 388 * Don't use freezer_count() because we don't want the call to 389 * try_to_freeze() here. 390 * 391 * Reason: 392 * Fundamentally, we just don't need it, because freezing condition 393 * doesn't come into effect until we release the pm_mutex lock, 394 * since the freezer always works with pm_mutex held. 395 * 396 * More importantly, in the case of hibernation, 397 * unlock_system_sleep() gets called in snapshot_read() and 398 * snapshot_write() when the freezing condition is still in effect. 399 * Which means, if we use try_to_freeze() here, it would make them 400 * enter the refrigerator, thus causing hibernation to lockup. 401 */ 402 current->flags &= ~PF_FREEZER_SKIP; 403 mutex_unlock(&pm_mutex); 404} 405 406#else /* !CONFIG_PM_SLEEP */ 407 408static inline int register_pm_notifier(struct notifier_block *nb) 409{ 410 return 0; 411} 412 413static inline int unregister_pm_notifier(struct notifier_block *nb) 414{ 415 return 0; 416} 417 418#define pm_notifier(fn, pri) do { (void)(fn); } while (0) 419 420static inline bool pm_wakeup_pending(void) { return false; } 421 422static inline void lock_system_sleep(void) {} 423static inline void unlock_system_sleep(void) {} 424 425#endif /* !CONFIG_PM_SLEEP */ 426 427#ifdef CONFIG_PM_SLEEP_DEBUG 428extern bool pm_print_times_enabled; 429#else 430#define pm_print_times_enabled (false) 431#endif 432 433#ifdef CONFIG_PM_AUTOSLEEP 434 435/* kernel/power/autosleep.c */ 436void queue_up_suspend_work(void); 437 438#else /* !CONFIG_PM_AUTOSLEEP */ 439 440static inline void queue_up_suspend_work(void) {} 441 442#endif /* !CONFIG_PM_AUTOSLEEP */ 443 444#ifdef CONFIG_ARCH_SAVE_PAGE_KEYS 445/* 446 * The ARCH_SAVE_PAGE_KEYS functions can be used by an architecture 447 * to save/restore additional information to/from the array of page 448 * frame numbers in the hibernation image. For s390 this is used to 449 * save and restore the storage key for each page that is included 450 * in the hibernation image. 451 */ 452unsigned long page_key_additional_pages(unsigned long pages); 453int page_key_alloc(unsigned long pages); 454void page_key_free(void); 455void page_key_read(unsigned long *pfn); 456void page_key_memorize(unsigned long *pfn); 457void page_key_write(void *address); 458 459#else /* !CONFIG_ARCH_SAVE_PAGE_KEYS */ 460 461static inline unsigned long page_key_additional_pages(unsigned long pages) 462{ 463 return 0; 464} 465 466static inline int page_key_alloc(unsigned long pages) 467{ 468 return 0; 469} 470 471static inline void page_key_free(void) {} 472static inline void page_key_read(unsigned long *pfn) {} 473static inline void page_key_memorize(unsigned long *pfn) {} 474static inline void page_key_write(void *address) {} 475 476#endif /* !CONFIG_ARCH_SAVE_PAGE_KEYS */ 477 478#endif /* _LINUX_SUSPEND_H */