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/*
 * workqueue.h --- work queue handling for Linux.
 */

#ifndef _LINUX_WORKQUEUE_H
#define _LINUX_WORKQUEUE_H

#include <linux/timer.h>
#include <linux/linkage.h>
#include <linux/bitops.h>
#include <linux/lockdep.h>
#include <asm/atomic.h>

struct workqueue_struct;

struct work_struct;
typedef void (*work_func_t)(struct work_struct *work);

/*
 * The first word is the work queue pointer and the flags rolled into
 * one
 */
#define work_data_bits(work) ((unsigned long *)(&(work)->data))

struct work_struct {
	atomic_long_t data;
#define WORK_STRUCT_PENDING 0		/* T if work item pending execution */
#define WORK_STRUCT_STATIC  1		/* static initializer (debugobjects) */
#define WORK_STRUCT_FLAG_MASK (3UL)
#define WORK_STRUCT_WQ_DATA_MASK (~WORK_STRUCT_FLAG_MASK)
	struct list_head entry;
	work_func_t func;
#ifdef CONFIG_LOCKDEP
	struct lockdep_map lockdep_map;
#endif
};

#define WORK_DATA_INIT()	ATOMIC_LONG_INIT(0)
#define WORK_DATA_STATIC_INIT()	ATOMIC_LONG_INIT(2)

struct delayed_work {
	struct work_struct work;
	struct timer_list timer;
};

static inline struct delayed_work *to_delayed_work(struct work_struct *work)
{
	return container_of(work, struct delayed_work, work);
}

struct execute_work {
	struct work_struct work;
};

#ifdef CONFIG_LOCKDEP
/*
 * NB: because we have to copy the lockdep_map, setting _key
 * here is required, otherwise it could get initialised to the
 * copy of the lockdep_map!
 */
#define __WORK_INIT_LOCKDEP_MAP(n, k) \
	.lockdep_map = STATIC_LOCKDEP_MAP_INIT(n, k),
#else
#define __WORK_INIT_LOCKDEP_MAP(n, k)
#endif

#define __WORK_INITIALIZER(n, f) {				\
	.data = WORK_DATA_STATIC_INIT(),			\
	.entry	= { &(n).entry, &(n).entry },			\
	.func = (f),						\
	__WORK_INIT_LOCKDEP_MAP(#n, &(n))			\
	}

#define __DELAYED_WORK_INITIALIZER(n, f) {			\
	.work = __WORK_INITIALIZER((n).work, (f)),		\
	.timer = TIMER_INITIALIZER(NULL, 0, 0),			\
	}

#define DECLARE_WORK(n, f)					\
	struct work_struct n = __WORK_INITIALIZER(n, f)

#define DECLARE_DELAYED_WORK(n, f)				\
	struct delayed_work n = __DELAYED_WORK_INITIALIZER(n, f)

/*
 * initialize a work item's function pointer
 */
#define PREPARE_WORK(_work, _func)				\
	do {							\
		(_work)->func = (_func);			\
	} while (0)

#define PREPARE_DELAYED_WORK(_work, _func)			\
	PREPARE_WORK(&(_work)->work, (_func))

#ifdef CONFIG_DEBUG_OBJECTS_WORK
extern void __init_work(struct work_struct *work, int onstack);
extern void destroy_work_on_stack(struct work_struct *work);
#else
static inline void __init_work(struct work_struct *work, int onstack) { }
static inline void destroy_work_on_stack(struct work_struct *work) { }
#endif

/*
 * initialize all of a work item in one go
 *
 * NOTE! No point in using "atomic_long_set()": using a direct
 * assignment of the work data initializer allows the compiler
 * to generate better code.
 */
#ifdef CONFIG_LOCKDEP
#define __INIT_WORK(_work, _func, _onstack)				\
	do {								\
		static struct lock_class_key __key;			\
									\
		__init_work((_work), _onstack);				\
		(_work)->data = (atomic_long_t) WORK_DATA_INIT();	\
		lockdep_init_map(&(_work)->lockdep_map, #_work, &__key, 0);\
		INIT_LIST_HEAD(&(_work)->entry);			\
		PREPARE_WORK((_work), (_func));				\
	} while (0)
#else
#define __INIT_WORK(_work, _func, _onstack)				\
	do {								\
		__init_work((_work), _onstack);				\
		(_work)->data = (atomic_long_t) WORK_DATA_INIT();	\
		INIT_LIST_HEAD(&(_work)->entry);			\
		PREPARE_WORK((_work), (_func));				\
	} while (0)
#endif

#define INIT_WORK(_work, _func)					\
	do {							\
		__INIT_WORK((_work), (_func), 0);		\
	} while (0)

#define INIT_WORK_ON_STACK(_work, _func)			\
	do {							\
		__INIT_WORK((_work), (_func), 1);		\
	} while (0)

#define INIT_DELAYED_WORK(_work, _func)				\
	do {							\
		INIT_WORK(&(_work)->work, (_func));		\
		init_timer(&(_work)->timer);			\
	} while (0)

#define INIT_DELAYED_WORK_ON_STACK(_work, _func)		\
	do {							\
		INIT_WORK_ON_STACK(&(_work)->work, (_func));	\
		init_timer_on_stack(&(_work)->timer);		\
	} while (0)

#define INIT_DELAYED_WORK_DEFERRABLE(_work, _func)		\
	do {							\
		INIT_WORK(&(_work)->work, (_func));		\
		init_timer_deferrable(&(_work)->timer);		\
	} while (0)

/**
 * work_pending - Find out whether a work item is currently pending
 * @work: The work item in question
 */
#define work_pending(work) \
	test_bit(WORK_STRUCT_PENDING, work_data_bits(work))

/**
 * delayed_work_pending - Find out whether a delayable work item is currently
 * pending
 * @work: The work item in question
 */
#define delayed_work_pending(w) \
	work_pending(&(w)->work)

/**
 * work_clear_pending - for internal use only, mark a work item as not pending
 * @work: The work item in question
 */
#define work_clear_pending(work) \
	clear_bit(WORK_STRUCT_PENDING, work_data_bits(work))


extern struct workqueue_struct *
__create_workqueue_key(const char *name, int singlethread,
		       int freezeable, int rt, struct lock_class_key *key,
		       const char *lock_name);

#ifdef CONFIG_LOCKDEP
#define __create_workqueue(name, singlethread, freezeable, rt)	\
({								\
	static struct lock_class_key __key;			\
	const char *__lock_name;				\
								\
	if (__builtin_constant_p(name))				\
		__lock_name = (name);				\
	else							\
		__lock_name = #name;				\
								\
	__create_workqueue_key((name), (singlethread),		\
			       (freezeable), (rt), &__key,	\
			       __lock_name);			\
})
#else
#define __create_workqueue(name, singlethread, freezeable, rt)	\
	__create_workqueue_key((name), (singlethread), (freezeable), (rt), \
			       NULL, NULL)
#endif

#define create_workqueue(name) __create_workqueue((name), 0, 0, 0)
#define create_rt_workqueue(name) __create_workqueue((name), 0, 0, 1)
#define create_freezeable_workqueue(name) __create_workqueue((name), 1, 1, 0)
#define create_singlethread_workqueue(name) __create_workqueue((name), 1, 0, 0)

extern void destroy_workqueue(struct workqueue_struct *wq);

extern int queue_work(struct workqueue_struct *wq, struct work_struct *work);
extern int queue_work_on(int cpu, struct workqueue_struct *wq,
			struct work_struct *work);
extern int queue_delayed_work(struct workqueue_struct *wq,
			struct delayed_work *work, unsigned long delay);
extern int queue_delayed_work_on(int cpu, struct workqueue_struct *wq,
			struct delayed_work *work, unsigned long delay);

extern void flush_workqueue(struct workqueue_struct *wq);
extern void flush_scheduled_work(void);
extern void flush_delayed_work(struct delayed_work *work);

extern int schedule_work(struct work_struct *work);
extern int schedule_work_on(int cpu, struct work_struct *work);
extern int schedule_delayed_work(struct delayed_work *work, unsigned long delay);
extern int schedule_delayed_work_on(int cpu, struct delayed_work *work,
					unsigned long delay);
extern int schedule_on_each_cpu(work_func_t func);
extern int current_is_keventd(void);
extern int keventd_up(void);

extern void init_workqueues(void);
int execute_in_process_context(work_func_t fn, struct execute_work *);

extern int flush_work(struct work_struct *work);

extern int cancel_work_sync(struct work_struct *work);

/*
 * Kill off a pending schedule_delayed_work().  Note that the work callback
 * function may still be running on return from cancel_delayed_work(), unless
 * it returns 1 and the work doesn't re-arm itself. Run flush_workqueue() or
 * cancel_work_sync() to wait on it.
 */
static inline int cancel_delayed_work(struct delayed_work *work)
{
	int ret;

	ret = del_timer_sync(&work->timer);
	if (ret)
		work_clear_pending(&work->work);
	return ret;
}

/*
 * Like above, but uses del_timer() instead of del_timer_sync(). This means,
 * if it returns 0 the timer function may be running and the queueing is in
 * progress.
 */
static inline int __cancel_delayed_work(struct delayed_work *work)
{
	int ret;

	ret = del_timer(&work->timer);
	if (ret)
		work_clear_pending(&work->work);
	return ret;
}

extern int cancel_delayed_work_sync(struct delayed_work *work);

/* Obsolete. use cancel_delayed_work_sync() */
static inline
void cancel_rearming_delayed_workqueue(struct workqueue_struct *wq,
					struct delayed_work *work)
{
	cancel_delayed_work_sync(work);
}

/* Obsolete. use cancel_delayed_work_sync() */
static inline
void cancel_rearming_delayed_work(struct delayed_work *work)
{
	cancel_delayed_work_sync(work);
}

#ifndef CONFIG_SMP
static inline long work_on_cpu(unsigned int cpu, long (*fn)(void *), void *arg)
{
	return fn(arg);
}
#else
long work_on_cpu(unsigned int cpu, long (*fn)(void *), void *arg);
#endif /* CONFIG_SMP */
#endif
*/ static void alarmtimer_remove(struct alarm_base *base, struct alarm *alarm) { struct timerqueue_node *next = timerqueue_getnext(&base->timerqueue); timerqueue_del(&base->timerqueue, &alarm->node); if (next == &alarm->node) { hrtimer_try_to_cancel(&base->timer); next = timerqueue_getnext(&base->timerqueue); if (!next) return; hrtimer_start(&base->timer, next->expires, HRTIMER_MODE_ABS); } } /** * alarmtimer_fired - Handles alarm hrtimer being fired. * @timer: pointer to hrtimer being run * * When a alarm timer fires, this runs through the timerqueue to * see which alarms expired, and runs those. If there are more alarm * timers queued for the future, we set the hrtimer to fire when * when the next future alarm timer expires. */ static enum hrtimer_restart alarmtimer_fired(struct hrtimer *timer) { struct alarm_base *base = container_of(timer, struct alarm_base, timer); struct timerqueue_node *next; unsigned long flags; ktime_t now; int ret = HRTIMER_NORESTART; spin_lock_irqsave(&base->lock, flags); now = base->gettime(); while ((next = timerqueue_getnext(&base->timerqueue))) { struct alarm *alarm; ktime_t expired = next->expires; if (expired.tv64 >= now.tv64) break; alarm = container_of(next, struct alarm, node); timerqueue_del(&base->timerqueue, &alarm->node); alarm->enabled = 0; /* Re-add periodic timers */ if (alarm->period.tv64) { alarm->node.expires = ktime_add(expired, alarm->period); timerqueue_add(&base->timerqueue, &alarm->node); alarm->enabled = 1; } spin_unlock_irqrestore(&base->lock, flags); if (alarm->function) alarm->function(alarm); spin_lock_irqsave(&base->lock, flags); } if (next) { hrtimer_set_expires(&base->timer, next->expires); ret = HRTIMER_RESTART; } spin_unlock_irqrestore(&base->lock, flags); return ret; } #ifdef CONFIG_RTC_CLASS /** * alarmtimer_suspend - Suspend time callback * @dev: unused * @state: unused * * When we are going into suspend, we look through the bases * to see which is the soonest timer to expire. We then * set an rtc timer to fire that far into the future, which * will wake us from suspend. */ static int alarmtimer_suspend(struct device *dev) { struct rtc_time tm; ktime_t min, now; unsigned long flags; struct rtc_device *rtc; int i; spin_lock_irqsave(&freezer_delta_lock, flags); min = freezer_delta; freezer_delta = ktime_set(0, 0); spin_unlock_irqrestore(&freezer_delta_lock, flags); rtc = rtcdev; /* If we have no rtcdev, just return */ if (!rtc) return 0; /* Find the soonest timer to expire*/ for (i = 0; i < ALARM_NUMTYPE; i++) { struct alarm_base *base = &alarm_bases[i]; struct timerqueue_node *next; ktime_t delta; spin_lock_irqsave(&base->lock, flags); next = timerqueue_getnext(&base->timerqueue); spin_unlock_irqrestore(&base->lock, flags); if (!next) continue; delta = ktime_sub(next->expires, base->gettime()); if (!min.tv64 || (delta.tv64 < min.tv64)) min = delta; } if (min.tv64 == 0) return 0; /* XXX - Should we enforce a minimum sleep time? */ WARN_ON(min.tv64 < NSEC_PER_SEC); /* Setup an rtc timer to fire that far in the future */ rtc_timer_cancel(rtc, &rtctimer); rtc_read_time(rtc, &tm); now = rtc_tm_to_ktime(tm); now = ktime_add(now, min); rtc_timer_start(rtc, &rtctimer, now, ktime_set(0, 0)); return 0; } #else static int alarmtimer_suspend(struct device *dev) { return 0; } #endif static void alarmtimer_freezerset(ktime_t absexp, enum alarmtimer_type type) { ktime_t delta; unsigned long flags; struct alarm_base *base = &alarm_bases[type]; delta = ktime_sub(absexp, base->gettime()); spin_lock_irqsave(&freezer_delta_lock, flags); if (!freezer_delta.tv64 || (delta.tv64 < freezer_delta.tv64)) freezer_delta = delta; spin_unlock_irqrestore(&freezer_delta_lock, flags); } /** * alarm_init - Initialize an alarm structure * @alarm: ptr to alarm to be initialized * @type: the type of the alarm * @function: callback that is run when the alarm fires */ void alarm_init(struct alarm *alarm, enum alarmtimer_type type, void (*function)(struct alarm *)) { timerqueue_init(&alarm->node); alarm->period = ktime_set(0, 0); alarm->function = function; alarm->type = type; alarm->enabled = 0; } /** * alarm_start - Sets an alarm to fire * @alarm: ptr to alarm to set * @start: time to run the alarm * @period: period at which the alarm will recur */ void alarm_start(struct alarm *alarm, ktime_t start, ktime_t period) { struct alarm_base *base = &alarm_bases[alarm->type]; unsigned long flags; spin_lock_irqsave(&base->lock, flags); if (alarm->enabled) alarmtimer_remove(base, alarm); alarm->node.expires = start; alarm->period = period; alarmtimer_enqueue(base, alarm); alarm->enabled = 1; spin_unlock_irqrestore(&base->lock, flags); } /** * alarm_cancel - Tries to cancel an alarm timer * @alarm: ptr to alarm to be canceled */ void alarm_cancel(struct alarm *alarm) { struct alarm_base *base = &alarm_bases[alarm->type]; unsigned long flags; spin_lock_irqsave(&base->lock, flags); if (alarm->enabled) alarmtimer_remove(base, alarm); alarm->enabled = 0; spin_unlock_irqrestore(&base->lock, flags); } /** * clock2alarm - helper that converts from clockid to alarmtypes * @clockid: clockid. */ static enum alarmtimer_type clock2alarm(clockid_t clockid) { if (clockid == CLOCK_REALTIME_ALARM) return ALARM_REALTIME; if (clockid == CLOCK_BOOTTIME_ALARM) return ALARM_BOOTTIME; return -1; } /** * alarm_handle_timer - Callback for posix timers * @alarm: alarm that fired * * Posix timer callback for expired alarm timers. */ static void alarm_handle_timer(struct alarm *alarm) { struct k_itimer *ptr = container_of(alarm, struct k_itimer, it.alarmtimer); if (posix_timer_event(ptr, 0) != 0) ptr->it_overrun++; } /** * alarm_clock_getres - posix getres interface * @which_clock: clockid * @tp: timespec to fill * * Returns the granularity of underlying alarm base clock */ static int alarm_clock_getres(const clockid_t which_clock, struct timespec *tp) { clockid_t baseid = alarm_bases[clock2alarm(which_clock)].base_clockid; if (!alarmtimer_get_rtcdev()) return -ENOTSUPP; return hrtimer_get_res(baseid, tp); } /** * alarm_clock_get - posix clock_get interface * @which_clock: clockid * @tp: timespec to fill. * * Provides the underlying alarm base time. */ static int alarm_clock_get(clockid_t which_clock, struct timespec *tp) { struct alarm_base *base = &alarm_bases[clock2alarm(which_clock)]; if (!alarmtimer_get_rtcdev()) return -ENOTSUPP; *tp = ktime_to_timespec(base->gettime()); return 0; } /** * alarm_timer_create - posix timer_create interface * @new_timer: k_itimer pointer to manage * * Initializes the k_itimer structure. */ static int alarm_timer_create(struct k_itimer *new_timer) { enum alarmtimer_type type; struct alarm_base *base; if (!alarmtimer_get_rtcdev()) return -ENOTSUPP; if (!capable(CAP_WAKE_ALARM)) return -EPERM; type = clock2alarm(new_timer->it_clock); base = &alarm_bases[type]; alarm_init(&new_timer->it.alarmtimer, type, alarm_handle_timer); return 0; } /** * alarm_timer_get - posix timer_get interface * @new_timer: k_itimer pointer * @cur_setting: itimerspec data to fill * * Copies the itimerspec data out from the k_itimer */ static void alarm_timer_get(struct k_itimer *timr, struct itimerspec *cur_setting) { cur_setting->it_interval = ktime_to_timespec(timr->it.alarmtimer.period); cur_setting->it_value = ktime_to_timespec(timr->it.alarmtimer.node.expires); return; } /** * alarm_timer_del - posix timer_del interface * @timr: k_itimer pointer to be deleted * * Cancels any programmed alarms for the given timer. */ static int alarm_timer_del(struct k_itimer *timr) { if (!rtcdev) return -ENOTSUPP; alarm_cancel(&timr->it.alarmtimer); return 0; } /** * alarm_timer_set - posix timer_set interface * @timr: k_itimer pointer to be deleted * @flags: timer flags * @new_setting: itimerspec to be used * @old_setting: itimerspec being replaced * * Sets the timer to new_setting, and starts the timer. */ static int alarm_timer_set(struct k_itimer *timr, int flags, struct itimerspec *new_setting, struct itimerspec *old_setting) { if (!rtcdev) return -ENOTSUPP; /* Save old values */ old_setting->it_interval = ktime_to_timespec(timr->it.alarmtimer.period); old_setting->it_value = ktime_to_timespec(timr->it.alarmtimer.node.expires); /* If the timer was already set, cancel it */ alarm_cancel(&timr->it.alarmtimer); /* start the timer */ alarm_start(&timr->it.alarmtimer, timespec_to_ktime(new_setting->it_value), timespec_to_ktime(new_setting->it_interval)); return 0; } /** * alarmtimer_nsleep_wakeup - Wakeup function for alarm_timer_nsleep * @alarm: ptr to alarm that fired * * Wakes up the task that set the alarmtimer */ static void alarmtimer_nsleep_wakeup(struct alarm *alarm) { struct task_struct *task = (struct task_struct *)alarm->data; alarm->data = NULL; if (task) wake_up_process(task); } /** * alarmtimer_do_nsleep - Internal alarmtimer nsleep implementation * @alarm: ptr to alarmtimer * @absexp: absolute expiration time * * Sets the alarm timer and sleeps until it is fired or interrupted. */ static int alarmtimer_do_nsleep(struct alarm *alarm, ktime_t absexp) { alarm->data = (void *)current; do { set_current_state(TASK_INTERRUPTIBLE); alarm_start(alarm, absexp, ktime_set(0, 0)); if (likely(alarm->data)) schedule(); alarm_cancel(alarm); } while (alarm->data && !signal_pending(current)); __set_current_state(TASK_RUNNING); return (alarm->data == NULL); } /** * update_rmtp - Update remaining timespec value * @exp: expiration time * @type: timer type * @rmtp: user pointer to remaining timepsec value * * Helper function that fills in rmtp value with time between * now and the exp value */ static int update_rmtp(ktime_t exp, enum alarmtimer_type type, struct timespec __user *rmtp) { struct timespec rmt; ktime_t rem; rem = ktime_sub(exp, alarm_bases[type].gettime()); if (rem.tv64 <= 0) return 0; rmt = ktime_to_timespec(rem); if (copy_to_user(rmtp, &rmt, sizeof(*rmtp))) return -EFAULT; return 1; } /** * alarm_timer_nsleep_restart - restartblock alarmtimer nsleep * @restart: ptr to restart block * * Handles restarted clock_nanosleep calls */ static long __sched alarm_timer_nsleep_restart(struct restart_block *restart) { enum alarmtimer_type type = restart->nanosleep.clockid; ktime_t exp; struct timespec __user *rmtp; struct alarm alarm; int ret = 0; exp.tv64 = restart->nanosleep.expires; alarm_init(&alarm, type, alarmtimer_nsleep_wakeup); if (alarmtimer_do_nsleep(&alarm, exp)) goto out; if (freezing(current)) alarmtimer_freezerset(exp, type); rmtp = restart->nanosleep.rmtp; if (rmtp) { ret = update_rmtp(exp, type, rmtp); if (ret <= 0) goto out; } /* The other values in restart are already filled in */ ret = -ERESTART_RESTARTBLOCK; out: return ret; } /** * alarm_timer_nsleep - alarmtimer nanosleep * @which_clock: clockid * @flags: determins abstime or relative * @tsreq: requested sleep time (abs or rel) * @rmtp: remaining sleep time saved * * Handles clock_nanosleep calls against _ALARM clockids */ static int alarm_timer_nsleep(const clockid_t which_clock, int flags, struct timespec *tsreq, struct timespec __user *rmtp) { enum alarmtimer_type type = clock2alarm(which_clock); struct alarm alarm; ktime_t exp; int ret = 0; struct restart_block *restart; if (!alarmtimer_get_rtcdev()) return -ENOTSUPP; if (!capable(CAP_WAKE_ALARM)) return -EPERM; alarm_init(&alarm, type, alarmtimer_nsleep_wakeup); exp = timespec_to_ktime(*tsreq); /* Convert (if necessary) to absolute time */ if (flags != TIMER_ABSTIME) { ktime_t now = alarm_bases[type].gettime(); exp = ktime_add(now, exp); } if (alarmtimer_do_nsleep(&alarm, exp)) goto out; if (freezing(current)) alarmtimer_freezerset(exp, type); /* abs timers don't set remaining time or restart */ if (flags == TIMER_ABSTIME) { ret = -ERESTARTNOHAND; goto out; } if (rmtp) { ret = update_rmtp(exp, type, rmtp); if (ret <= 0) goto out; } restart = &current_thread_info()->restart_block; restart->fn = alarm_timer_nsleep_restart; restart->nanosleep.clockid = type; restart->nanosleep.expires = exp.tv64; restart->nanosleep.rmtp = rmtp; ret = -ERESTART_RESTARTBLOCK; out: return ret; } /* Suspend hook structures */ static const struct dev_pm_ops alarmtimer_pm_ops = { .suspend = alarmtimer_suspend, }; static struct platform_driver alarmtimer_driver = { .driver = { .name = "alarmtimer", .pm = &alarmtimer_pm_ops, } }; /** * alarmtimer_init - Initialize alarm timer code * * This function initializes the alarm bases and registers * the posix clock ids. */ static int __init alarmtimer_init(void) { int error = 0; int i; struct k_clock alarm_clock = { .clock_getres = alarm_clock_getres, .clock_get = alarm_clock_get, .timer_create = alarm_timer_create, .timer_set = alarm_timer_set, .timer_del = alarm_timer_del, .timer_get = alarm_timer_get, .nsleep = alarm_timer_nsleep, }; posix_timers_register_clock(CLOCK_REALTIME_ALARM, &alarm_clock); posix_timers_register_clock(CLOCK_BOOTTIME_ALARM, &alarm_clock); /* Initialize alarm bases */ alarm_bases[ALARM_REALTIME].base_clockid = CLOCK_REALTIME; alarm_bases[ALARM_REALTIME].gettime = &ktime_get_real; alarm_bases[ALARM_BOOTTIME].base_clockid = CLOCK_BOOTTIME; alarm_bases[ALARM_BOOTTIME].gettime = &ktime_get_boottime; for (i = 0; i < ALARM_NUMTYPE; i++) { timerqueue_init_head(&alarm_bases[i].timerqueue); spin_lock_init(&alarm_bases[i].lock); hrtimer_init(&alarm_bases[i].timer, alarm_bases[i].base_clockid, HRTIMER_MODE_ABS); alarm_bases[i].timer.function = alarmtimer_fired; }