clocksource.c 28.5 KB
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/*
 * linux/kernel/time/clocksource.c
 *
 * This file contains the functions which manage clocksource drivers.
 *
 * Copyright (C) 2004, 2005 IBM, John Stultz (johnstul@us.ibm.com)
 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License as published by
 * the Free Software Foundation; either version 2 of the License, or
 * (at your option) any later version.
 *
 * This program is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
 * GNU General Public License for more details.
 *
 * You should have received a copy of the GNU General Public License
 * along with this program; if not, write to the Free Software
 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
 *
 * TODO WishList:
 *   o Allow clocksource drivers to be unregistered
 */

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#include <linux/device.h>
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#include <linux/clocksource.h>
#include <linux/init.h>
#include <linux/module.h>
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#include <linux/sched.h> /* for spin_unlock_irq() using preempt_count() m68k */
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#include <linux/tick.h>
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#include <linux/kthread.h>
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void timecounter_init(struct timecounter *tc,
		      const struct cyclecounter *cc,
		      u64 start_tstamp)
{
	tc->cc = cc;
	tc->cycle_last = cc->read(cc);
	tc->nsec = start_tstamp;
}
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EXPORT_SYMBOL_GPL(timecounter_init);
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/**
 * timecounter_read_delta - get nanoseconds since last call of this function
 * @tc:         Pointer to time counter
 *
 * When the underlying cycle counter runs over, this will be handled
 * correctly as long as it does not run over more than once between
 * calls.
 *
 * The first call to this function for a new time counter initializes
 * the time tracking and returns an undefined result.
 */
static u64 timecounter_read_delta(struct timecounter *tc)
{
	cycle_t cycle_now, cycle_delta;
	u64 ns_offset;

	/* read cycle counter: */
	cycle_now = tc->cc->read(tc->cc);

	/* calculate the delta since the last timecounter_read_delta(): */
	cycle_delta = (cycle_now - tc->cycle_last) & tc->cc->mask;

	/* convert to nanoseconds: */
	ns_offset = cyclecounter_cyc2ns(tc->cc, cycle_delta);

	/* update time stamp of timecounter_read_delta() call: */
	tc->cycle_last = cycle_now;

	return ns_offset;
}

u64 timecounter_read(struct timecounter *tc)
{
	u64 nsec;

	/* increment time by nanoseconds since last call */
	nsec = timecounter_read_delta(tc);
	nsec += tc->nsec;
	tc->nsec = nsec;

	return nsec;
}
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EXPORT_SYMBOL_GPL(timecounter_read);
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u64 timecounter_cyc2time(struct timecounter *tc,
			 cycle_t cycle_tstamp)
{
	u64 cycle_delta = (cycle_tstamp - tc->cycle_last) & tc->cc->mask;
	u64 nsec;

	/*
	 * Instead of always treating cycle_tstamp as more recent
	 * than tc->cycle_last, detect when it is too far in the
	 * future and treat it as old time stamp instead.
	 */
	if (cycle_delta > tc->cc->mask / 2) {
		cycle_delta = (tc->cycle_last - cycle_tstamp) & tc->cc->mask;
		nsec = tc->nsec - cyclecounter_cyc2ns(tc->cc, cycle_delta);
	} else {
		nsec = cyclecounter_cyc2ns(tc->cc, cycle_delta) + tc->nsec;
	}

	return nsec;
}
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EXPORT_SYMBOL_GPL(timecounter_cyc2time);
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/**
 * clocks_calc_mult_shift - calculate mult/shift factors for scaled math of clocks
 * @mult:	pointer to mult variable
 * @shift:	pointer to shift variable
 * @from:	frequency to convert from
 * @to:		frequency to convert to
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 * @maxsec:	guaranteed runtime conversion range in seconds
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 *
 * The function evaluates the shift/mult pair for the scaled math
 * operations of clocksources and clockevents.
 *
 * @to and @from are frequency values in HZ. For clock sources @to is
 * NSEC_PER_SEC == 1GHz and @from is the counter frequency. For clock
 * event @to is the counter frequency and @from is NSEC_PER_SEC.
 *
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 * The @maxsec conversion range argument controls the time frame in
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 * seconds which must be covered by the runtime conversion with the
 * calculated mult and shift factors. This guarantees that no 64bit
 * overflow happens when the input value of the conversion is
 * multiplied with the calculated mult factor. Larger ranges may
 * reduce the conversion accuracy by chosing smaller mult and shift
 * factors.
 */
void
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clocks_calc_mult_shift(u32 *mult, u32 *shift, u32 from, u32 to, u32 maxsec)
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{
	u64 tmp;
	u32 sft, sftacc= 32;

	/*
	 * Calculate the shift factor which is limiting the conversion
	 * range:
	 */
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	tmp = ((u64)maxsec * from) >> 32;
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	while (tmp) {
		tmp >>=1;
		sftacc--;
	}

	/*
	 * Find the conversion shift/mult pair which has the best
	 * accuracy and fits the maxsec conversion range:
	 */
	for (sft = 32; sft > 0; sft--) {
		tmp = (u64) to << sft;
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		tmp += from / 2;
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		do_div(tmp, from);
		if ((tmp >> sftacc) == 0)
			break;
	}
	*mult = tmp;
	*shift = sft;
}

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/*[Clocksource internal variables]---------
 * curr_clocksource:
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 *	currently selected clocksource.
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 * clocksource_list:
 *	linked list with the registered clocksources
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 * clocksource_mutex:
 *	protects manipulations to curr_clocksource and the clocksource_list
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 * override_name:
 *	Name of the user-specified clocksource.
 */
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static struct clocksource *curr_clocksource;
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static LIST_HEAD(clocksource_list);
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static DEFINE_MUTEX(clocksource_mutex);
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#define CS_NAME_LEN		32
static char override_name[CS_NAME_LEN];
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static int finished_booting;
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#ifdef CONFIG_CLOCKSOURCE_WATCHDOG
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static void clocksource_watchdog_work(struct work_struct *work);

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static LIST_HEAD(watchdog_list);
static struct clocksource *watchdog;
static struct timer_list watchdog_timer;
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static DECLARE_WORK(watchdog_work, clocksource_watchdog_work);
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static DEFINE_SPINLOCK(watchdog_lock);
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static int watchdog_running;
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static atomic_t watchdog_reset_pending;
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static int clocksource_watchdog_kthread(void *data);
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static void __clocksource_change_rating(struct clocksource *cs, int rating);
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/*
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 * Interval: 0.5sec Threshold: 0.0625s
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 */
#define WATCHDOG_INTERVAL (HZ >> 1)
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#define WATCHDOG_THRESHOLD (NSEC_PER_SEC >> 4)
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static void clocksource_watchdog_work(struct work_struct *work)
{
	/*
	 * If kthread_run fails the next watchdog scan over the
	 * watchdog_list will find the unstable clock again.
	 */
	kthread_run(clocksource_watchdog_kthread, NULL, "kwatchdog");
}

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static void __clocksource_unstable(struct clocksource *cs)
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{
	cs->flags &= ~(CLOCK_SOURCE_VALID_FOR_HRES | CLOCK_SOURCE_WATCHDOG);
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	cs->flags |= CLOCK_SOURCE_UNSTABLE;
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	if (finished_booting)
		schedule_work(&watchdog_work);
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}

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static void clocksource_unstable(struct clocksource *cs, int64_t delta)
{
	printk(KERN_WARNING "Clocksource %s unstable (delta = %Ld ns)\n",
	       cs->name, delta);
	__clocksource_unstable(cs);
}

/**
 * clocksource_mark_unstable - mark clocksource unstable via watchdog
 * @cs:		clocksource to be marked unstable
 *
 * This function is called instead of clocksource_change_rating from
 * cpu hotplug code to avoid a deadlock between the clocksource mutex
 * and the cpu hotplug mutex. It defers the update of the clocksource
 * to the watchdog thread.
 */
void clocksource_mark_unstable(struct clocksource *cs)
{
	unsigned long flags;

	spin_lock_irqsave(&watchdog_lock, flags);
	if (!(cs->flags & CLOCK_SOURCE_UNSTABLE)) {
		if (list_empty(&cs->wd_list))
			list_add(&cs->wd_list, &watchdog_list);
		__clocksource_unstable(cs);
	}
	spin_unlock_irqrestore(&watchdog_lock, flags);
}

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static void clocksource_watchdog(unsigned long data)
{
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	struct clocksource *cs;
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	cycle_t csnow, wdnow;
	int64_t wd_nsec, cs_nsec;
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	int next_cpu, reset_pending;
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	spin_lock(&watchdog_lock);
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	if (!watchdog_running)
		goto out;
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	reset_pending = atomic_read(&watchdog_reset_pending);

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	list_for_each_entry(cs, &watchdog_list, wd_list) {

		/* Clocksource already marked unstable? */
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		if (cs->flags & CLOCK_SOURCE_UNSTABLE) {
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			if (finished_booting)
				schedule_work(&watchdog_work);
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			continue;
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		}
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		local_irq_disable();
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		csnow = cs->read(cs);
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		wdnow = watchdog->read(watchdog);
		local_irq_enable();
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		/* Clocksource initialized ? */
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		if (!(cs->flags & CLOCK_SOURCE_WATCHDOG) ||
		    atomic_read(&watchdog_reset_pending)) {
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			cs->flags |= CLOCK_SOURCE_WATCHDOG;
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			cs->wd_last = wdnow;
			cs->cs_last = csnow;
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			continue;
		}

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		wd_nsec = clocksource_cyc2ns((wdnow - cs->wd_last) & watchdog->mask,
					     watchdog->mult, watchdog->shift);

		cs_nsec = clocksource_cyc2ns((csnow - cs->cs_last) &
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					     cs->mask, cs->mult, cs->shift);
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		cs->cs_last = csnow;
		cs->wd_last = wdnow;

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		if (atomic_read(&watchdog_reset_pending))
			continue;

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		/* Check the deviation from the watchdog clocksource. */
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		if ((abs(cs_nsec - wd_nsec) > WATCHDOG_THRESHOLD)) {
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			clocksource_unstable(cs, cs_nsec - wd_nsec);
			continue;
		}

		if (!(cs->flags & CLOCK_SOURCE_VALID_FOR_HRES) &&
		    (cs->flags & CLOCK_SOURCE_IS_CONTINUOUS) &&
		    (watchdog->flags & CLOCK_SOURCE_IS_CONTINUOUS)) {
			cs->flags |= CLOCK_SOURCE_VALID_FOR_HRES;
			/*
			 * We just marked the clocksource as highres-capable,
			 * notify the rest of the system as well so that we
			 * transition into high-res mode:
			 */
			tick_clock_notify();
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		}
	}

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	/*
	 * We only clear the watchdog_reset_pending, when we did a
	 * full cycle through all clocksources.
	 */
	if (reset_pending)
		atomic_dec(&watchdog_reset_pending);

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	/*
	 * Cycle through CPUs to check if the CPUs stay synchronized
	 * to each other.
	 */
	next_cpu = cpumask_next(raw_smp_processor_id(), cpu_online_mask);
	if (next_cpu >= nr_cpu_ids)
		next_cpu = cpumask_first(cpu_online_mask);
	watchdog_timer.expires += WATCHDOG_INTERVAL;
	add_timer_on(&watchdog_timer, next_cpu);
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out:
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	spin_unlock(&watchdog_lock);
}
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static inline void clocksource_start_watchdog(void)
{
	if (watchdog_running || !watchdog || list_empty(&watchdog_list))
		return;
	init_timer(&watchdog_timer);
	watchdog_timer.function = clocksource_watchdog;
	watchdog_timer.expires = jiffies + WATCHDOG_INTERVAL;
	add_timer_on(&watchdog_timer, cpumask_first(cpu_online_mask));
	watchdog_running = 1;
}

static inline void clocksource_stop_watchdog(void)
{
	if (!watchdog_running || (watchdog && !list_empty(&watchdog_list)))
		return;
	del_timer(&watchdog_timer);
	watchdog_running = 0;
}

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static inline void clocksource_reset_watchdog(void)
{
	struct clocksource *cs;

	list_for_each_entry(cs, &watchdog_list, wd_list)
		cs->flags &= ~CLOCK_SOURCE_WATCHDOG;
}

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static void clocksource_resume_watchdog(void)
{
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	atomic_inc(&watchdog_reset_pending);
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}

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static void clocksource_enqueue_watchdog(struct clocksource *cs)
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{
	unsigned long flags;

	spin_lock_irqsave(&watchdog_lock, flags);
	if (cs->flags & CLOCK_SOURCE_MUST_VERIFY) {
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		/* cs is a clocksource to be watched. */
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		list_add(&cs->wd_list, &watchdog_list);
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		cs->flags &= ~CLOCK_SOURCE_WATCHDOG;
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	} else {
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		/* cs is a watchdog. */
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		if (cs->flags & CLOCK_SOURCE_IS_CONTINUOUS)
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			cs->flags |= CLOCK_SOURCE_VALID_FOR_HRES;
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		/* Pick the best watchdog. */
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		if (!watchdog || cs->rating > watchdog->rating) {
			watchdog = cs;
			/* Reset watchdog cycles */
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			clocksource_reset_watchdog();
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		}
	}
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	/* Check if the watchdog timer needs to be started. */
	clocksource_start_watchdog();
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	spin_unlock_irqrestore(&watchdog_lock, flags);
}
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static void clocksource_dequeue_watchdog(struct clocksource *cs)
{
	unsigned long flags;

	spin_lock_irqsave(&watchdog_lock, flags);
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	if (cs != watchdog) {
		if (cs->flags & CLOCK_SOURCE_MUST_VERIFY) {
			/* cs is a watched clocksource. */
			list_del_init(&cs->wd_list);
			/* Check if the watchdog timer needs to be stopped. */
			clocksource_stop_watchdog();
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		}
	}
	spin_unlock_irqrestore(&watchdog_lock, flags);
}

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static int clocksource_watchdog_kthread(void *data)
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{
	struct clocksource *cs, *tmp;
	unsigned long flags;
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	LIST_HEAD(unstable);
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	mutex_lock(&clocksource_mutex);
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	spin_lock_irqsave(&watchdog_lock, flags);
	list_for_each_entry_safe(cs, tmp, &watchdog_list, wd_list)
		if (cs->flags & CLOCK_SOURCE_UNSTABLE) {
			list_del_init(&cs->wd_list);
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			list_add(&cs->wd_list, &unstable);
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		}
	/* Check if the watchdog timer needs to be stopped. */
	clocksource_stop_watchdog();
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	spin_unlock_irqrestore(&watchdog_lock, flags);

	/* Needs to be done outside of watchdog lock */
	list_for_each_entry_safe(cs, tmp, &unstable, wd_list) {
		list_del_init(&cs->wd_list);
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		__clocksource_change_rating(cs, 0);
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	}
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	mutex_unlock(&clocksource_mutex);
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	return 0;
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}

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static bool clocksource_is_watchdog(struct clocksource *cs)
{
	return cs == watchdog;
}

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#else /* CONFIG_CLOCKSOURCE_WATCHDOG */

static void clocksource_enqueue_watchdog(struct clocksource *cs)
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{
	if (cs->flags & CLOCK_SOURCE_IS_CONTINUOUS)
		cs->flags |= CLOCK_SOURCE_VALID_FOR_HRES;
}
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static inline void clocksource_dequeue_watchdog(struct clocksource *cs) { }
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static inline void clocksource_resume_watchdog(void) { }
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static inline int clocksource_watchdog_kthread(void *data) { return 0; }
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static bool clocksource_is_watchdog(struct clocksource *cs) { return false; }
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#endif /* CONFIG_CLOCKSOURCE_WATCHDOG */
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/**
 * clocksource_suspend - suspend the clocksource(s)
 */
void clocksource_suspend(void)
{
	struct clocksource *cs;

	list_for_each_entry_reverse(cs, &clocksource_list, list)
		if (cs->suspend)
			cs->suspend(cs);
}

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/**
 * clocksource_resume - resume the clocksource(s)
 */
void clocksource_resume(void)
{
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	struct clocksource *cs;
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	list_for_each_entry(cs, &clocksource_list, list)
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		if (cs->resume)
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			cs->resume(cs);
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	clocksource_resume_watchdog();
}

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/**
 * clocksource_touch_watchdog - Update watchdog
 *
 * Update the watchdog after exception contexts such as kgdb so as not
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 * to incorrectly trip the watchdog. This might fail when the kernel
 * was stopped in code which holds watchdog_lock.
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 */
void clocksource_touch_watchdog(void)
{
	clocksource_resume_watchdog();
}

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/**
 * clocksource_max_adjustment- Returns max adjustment amount
 * @cs:         Pointer to clocksource
 *
 */
static u32 clocksource_max_adjustment(struct clocksource *cs)
{
	u64 ret;
	/*
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	 * We won't try to correct for more than 11% adjustments (110,000 ppm),
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	 */
	ret = (u64)cs->mult * 11;
	do_div(ret,100);
	return (u32)ret;
}

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/**
 * clocksource_max_deferment - Returns max time the clocksource can be deferred
 * @cs:         Pointer to clocksource
 *
 */
static u64 clocksource_max_deferment(struct clocksource *cs)
{
	u64 max_nsecs, max_cycles;

	/*
	 * Calculate the maximum number of cycles that we can pass to the
	 * cyc2ns function without overflowing a 64-bit signed result. The
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	 * maximum number of cycles is equal to ULLONG_MAX/(cs->mult+cs->maxadj)
	 * which is equivalent to the below.
	 * max_cycles < (2^63)/(cs->mult + cs->maxadj)
	 * max_cycles < 2^(log2((2^63)/(cs->mult + cs->maxadj)))
	 * max_cycles < 2^(log2(2^63) - log2(cs->mult + cs->maxadj))
	 * max_cycles < 2^(63 - log2(cs->mult + cs->maxadj))
	 * max_cycles < 1 << (63 - log2(cs->mult + cs->maxadj))
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	 * Please note that we add 1 to the result of the log2 to account for
	 * any rounding errors, ensure the above inequality is satisfied and
	 * no overflow will occur.
	 */
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	max_cycles = 1ULL << (63 - (ilog2(cs->mult + cs->maxadj) + 1));
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	/*
	 * The actual maximum number of cycles we can defer the clocksource is
	 * determined by the minimum of max_cycles and cs->mask.
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	 * Note: Here we subtract the maxadj to make sure we don't sleep for
	 * too long if there's a large negative adjustment.
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	 */
	max_cycles = min_t(u64, max_cycles, (u64) cs->mask);
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	max_nsecs = clocksource_cyc2ns(max_cycles, cs->mult - cs->maxadj,
					cs->shift);
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	/*
	 * To ensure that the clocksource does not wrap whilst we are idle,
	 * limit the time the clocksource can be deferred by 12.5%. Please
	 * note a margin of 12.5% is used because this can be computed with
	 * a shift, versus say 10% which would require division.
	 */
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	return max_nsecs - (max_nsecs >> 3);
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}

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#ifndef CONFIG_ARCH_USES_GETTIMEOFFSET
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static struct clocksource *clocksource_find_best(bool oneshot, bool skipcur)
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{
	struct clocksource *cs;

	if (!finished_booting || list_empty(&clocksource_list))
		return NULL;

	/*
	 * We pick the clocksource with the highest rating. If oneshot
	 * mode is active, we pick the highres valid clocksource with
	 * the best rating.
	 */
	list_for_each_entry(cs, &clocksource_list, list) {
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		if (skipcur && cs == curr_clocksource)
			continue;
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		if (oneshot && !(cs->flags & CLOCK_SOURCE_VALID_FOR_HRES))
			continue;
		return cs;
	}
	return NULL;
}

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static void __clocksource_select(bool skipcur)
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{
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	bool oneshot = tick_oneshot_mode_active();
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	struct clocksource *best, *cs;
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	/* Find the best suitable clocksource */
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	best = clocksource_find_best(oneshot, skipcur);
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	if (!best)
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		return;
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	/* Check for the override clocksource. */
	list_for_each_entry(cs, &clocksource_list, list) {
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		if (skipcur && cs == curr_clocksource)
			continue;
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		if (strcmp(cs->name, override_name) != 0)
			continue;
		/*
		 * Check to make sure we don't switch to a non-highres
		 * capable clocksource if the tick code is in oneshot
		 * mode (highres or nohz)
		 */
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		if (!(cs->flags & CLOCK_SOURCE_VALID_FOR_HRES) && oneshot) {
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			/* Override clocksource cannot be used. */
			printk(KERN_WARNING "Override clocksource %s is not "
			       "HRT compatible. Cannot switch while in "
			       "HRT/NOHZ mode\n", cs->name);
			override_name[0] = 0;
		} else
			/* Override clocksource can be used. */
			best = cs;
		break;
	}
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	if (curr_clocksource != best && !timekeeping_notify(best)) {
		pr_info("Switched to clocksource %s\n", best->name);
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		curr_clocksource = best;
	}
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}
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/**
 * clocksource_select - Select the best clocksource available
 *
 * Private function. Must hold clocksource_mutex when called.
 *
 * Select the clocksource with the best rating, or the clocksource,
 * which is selected by userspace override.
 */
static void clocksource_select(void)
{
	return __clocksource_select(false);
}

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static void clocksource_select_fallback(void)
{
	return __clocksource_select(true);
}

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#else /* !CONFIG_ARCH_USES_GETTIMEOFFSET */
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static inline void clocksource_select(void) { }

#endif

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/*
 * clocksource_done_booting - Called near the end of core bootup
 *
 * Hack to avoid lots of clocksource churn at boot time.
 * We use fs_initcall because we want this to start before
 * device_initcall but after subsys_initcall.
 */
static int __init clocksource_done_booting(void)
{
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	mutex_lock(&clocksource_mutex);
	curr_clocksource = clocksource_default_clock();
	mutex_unlock(&clocksource_mutex);

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	finished_booting = 1;
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	/*
	 * Run the watchdog first to eliminate unstable clock sources
	 */
	clocksource_watchdog_kthread(NULL);

657
	mutex_lock(&clocksource_mutex);
658
	clocksource_select();
659
	mutex_unlock(&clocksource_mutex);
660 661 662 663
	return 0;
}
fs_initcall(clocksource_done_booting);

664 665
/*
 * Enqueue the clocksource sorted by rating
666
 */
667
static void clocksource_enqueue(struct clocksource *cs)
668
{
669 670
	struct list_head *entry = &clocksource_list;
	struct clocksource *tmp;
671

672
	list_for_each_entry(tmp, &clocksource_list, list)
673
		/* Keep track of the place, where to insert */
674 675 676
		if (tmp->rating >= cs->rating)
			entry = &tmp->list;
	list_add(&cs->list, entry);
677 678
}

679
/**
680
 * __clocksource_updatefreq_scale - Used update clocksource with new freq
681
 * @cs:		clocksource to be registered
682 683 684
 * @scale:	Scale factor multiplied against freq to get clocksource hz
 * @freq:	clocksource frequency (cycles per second) divided by scale
 *
685
 * This should only be called from the clocksource->enable() method.
686 687
 *
 * This *SHOULD NOT* be called directly! Please use the
688
 * clocksource_updatefreq_hz() or clocksource_updatefreq_khz helper functions.
689
 */
690
void __clocksource_updatefreq_scale(struct clocksource *cs, u32 scale, u32 freq)
691
{
692
	u64 sec;
693
	/*
694 695 696 697 698 699 700 701
	 * Calc the maximum number of seconds which we can run before
	 * wrapping around. For clocksources which have a mask > 32bit
	 * we need to limit the max sleep time to have a good
	 * conversion precision. 10 minutes is still a reasonable
	 * amount. That results in a shift value of 24 for a
	 * clocksource with mask >= 40bit and f >= 4GHz. That maps to
	 * ~ 0.06ppm granularity for NTP. We apply the same 12.5%
	 * margin as we do in clocksource_max_deferment()
702
	 */
703
	sec = (cs->mask - (cs->mask >> 3));
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	do_div(sec, freq);
	do_div(sec, scale);
	if (!sec)
		sec = 1;
	else if (sec > 600 && cs->mask > UINT_MAX)
		sec = 600;

711
	clocks_calc_mult_shift(&cs->mult, &cs->shift, freq,
712
			       NSEC_PER_SEC / scale, sec * scale);
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	/*
	 * for clocksources that have large mults, to avoid overflow.
	 * Since mult may be adjusted by ntp, add an safety extra margin
	 *
	 */
	cs->maxadj = clocksource_max_adjustment(cs);
	while ((cs->mult + cs->maxadj < cs->mult)
		|| (cs->mult - cs->maxadj > cs->mult)) {
		cs->mult >>= 1;
		cs->shift--;
		cs->maxadj = clocksource_max_adjustment(cs);
	}

727
	cs->max_idle_ns = clocksource_max_deferment(cs);
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}
EXPORT_SYMBOL_GPL(__clocksource_updatefreq_scale);

/**
 * __clocksource_register_scale - Used to install new clocksources
733
 * @cs:		clocksource to be registered
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 * @scale:	Scale factor multiplied against freq to get clocksource hz
 * @freq:	clocksource frequency (cycles per second) divided by scale
 *
 * Returns -EBUSY if registration fails, zero otherwise.
 *
 * This *SHOULD NOT* be called directly! Please use the
 * clocksource_register_hz() or clocksource_register_khz helper functions.
 */
int __clocksource_register_scale(struct clocksource *cs, u32 scale, u32 freq)
{

745
	/* Initialize mult/shift and max_idle_ns */
746
	__clocksource_updatefreq_scale(cs, scale, freq);
747

748
	/* Add clocksource to the clcoksource list */
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	mutex_lock(&clocksource_mutex);
	clocksource_enqueue(cs);
	clocksource_enqueue_watchdog(cs);
752
	clocksource_select();
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	mutex_unlock(&clocksource_mutex);
	return 0;
}
EXPORT_SYMBOL_GPL(__clocksource_register_scale);


759
/**
760
 * clocksource_register - Used to install new clocksources
761
 * @cs:		clocksource to be registered
762 763 764
 *
 * Returns -EBUSY if registration fails, zero otherwise.
 */
765
int clocksource_register(struct clocksource *cs)
766
{
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	/* calculate max adjustment for given mult/shift */
	cs->maxadj = clocksource_max_adjustment(cs);
	WARN_ONCE(cs->mult + cs->maxadj < cs->mult,
		"Clocksource %s might overflow on 11%% adjustment\n",
		cs->name);

773 774 775
	/* calculate max idle time permitted for this clocksource */
	cs->max_idle_ns = clocksource_max_deferment(cs);

776
	mutex_lock(&clocksource_mutex);
777
	clocksource_enqueue(cs);
778
	clocksource_enqueue_watchdog(cs);
779
	clocksource_select();
780
	mutex_unlock(&clocksource_mutex);
781
	return 0;
782
}
783
EXPORT_SYMBOL(clocksource_register);
784

785 786 787 788 789 790 791 792
static void __clocksource_change_rating(struct clocksource *cs, int rating)
{
	list_del(&cs->list);
	cs->rating = rating;
	clocksource_enqueue(cs);
	clocksource_select();
}

793
/**
794
 * clocksource_change_rating - Change the rating of a registered clocksource
795 796
 * @cs:		clocksource to be changed
 * @rating:	new rating
797
 */
798
void clocksource_change_rating(struct clocksource *cs, int rating)
799
{
800
	mutex_lock(&clocksource_mutex);
801
	__clocksource_change_rating(cs, rating);
802
	mutex_unlock(&clocksource_mutex);
803
}
804
EXPORT_SYMBOL(clocksource_change_rating);
805

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/*
 * Unbind clocksource @cs. Called with clocksource_mutex held
 */
static int clocksource_unbind(struct clocksource *cs)
{
	/*
	 * I really can't convince myself to support this on hardware
	 * designed by lobotomized monkeys.
	 */
	if (clocksource_is_watchdog(cs))
		return -EBUSY;

	if (cs == curr_clocksource) {
		/* Select and try to install a replacement clock source */
		clocksource_select_fallback();
		if (curr_clocksource == cs)
			return -EBUSY;
	}
	clocksource_dequeue_watchdog(cs);
	list_del_init(&cs->list);
	return 0;
}

829 830
/**
 * clocksource_unregister - remove a registered clocksource
831
 * @cs:	clocksource to be unregistered
832
 */
833
int clocksource_unregister(struct clocksource *cs)
834
{
835 836
	int ret = 0;

837
	mutex_lock(&clocksource_mutex);
838 839
	if (!list_empty(&cs->list))
		ret = clocksource_unbind(cs);
840
	mutex_unlock(&clocksource_mutex);
841
	return ret;
842
}
843
EXPORT_SYMBOL(clocksource_unregister);
844

845
#ifdef CONFIG_SYSFS
846 847 848
/**
 * sysfs_show_current_clocksources - sysfs interface for current clocksource
 * @dev:	unused
849
 * @attr:	unused
850 851 852 853 854
 * @buf:	char buffer to be filled with clocksource list
 *
 * Provides sysfs interface for listing current clocksource.
 */
static ssize_t
855 856
sysfs_show_current_clocksources(struct device *dev,
				struct device_attribute *attr, char *buf)
857
{
858
	ssize_t count = 0;
859

860
	mutex_lock(&clocksource_mutex);
861
	count = snprintf(buf, PAGE_SIZE, "%s\n", curr_clocksource->name);
862
	mutex_unlock(&clocksource_mutex);
863

864
	return count;
865 866
}

867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883
static size_t clocksource_get_uname(const char *buf, char *dst, size_t cnt)
{
	size_t ret = cnt;

	/* strings from sysfs write are not 0 terminated! */
	if (!cnt || cnt >= CS_NAME_LEN)
		return -EINVAL;

	/* strip of \n: */
	if (buf[cnt-1] == '\n')
		cnt--;
	if (cnt > 0)
		memcpy(dst, buf, cnt);
	dst[cnt] = 0;
	return ret;
}

884 885 886
/**
 * sysfs_override_clocksource - interface for manually overriding clocksource
 * @dev:	unused
887
 * @attr:	unused
888 889 890 891
 * @buf:	name of override clocksource
 * @count:	length of buffer
 *
 * Takes input from sysfs interface for manually overriding the default
892
 * clocksource selection.
893
 */
894 895
static ssize_t sysfs_override_clocksource(struct device *dev,
					  struct device_attribute *attr,
896 897
					  const char *buf, size_t count)
{
898
	size_t ret;
899

900
	mutex_lock(&clocksource_mutex);
901

902 903 904
	ret = clocksource_get_uname(buf, override_name, count);
	if (ret >= 0)
		clocksource_select();
905

906
	mutex_unlock(&clocksource_mutex);
907 908 909 910

	return ret;
}

911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944
/**
 * sysfs_unbind_current_clocksource - interface for manually unbinding clocksource
 * @dev:	unused
 * @attr:	unused
 * @buf:	unused
 * @count:	length of buffer
 *
 * Takes input from sysfs interface for manually unbinding a clocksource.
 */
static ssize_t sysfs_unbind_clocksource(struct device *dev,
					struct device_attribute *attr,
					const char *buf, size_t count)
{
	struct clocksource *cs;
	char name[CS_NAME_LEN];
	size_t ret;

	ret = clocksource_get_uname(buf, name, count);
	if (ret < 0)
		return ret;

	ret = -ENODEV;
	mutex_lock(&clocksource_mutex);
	list_for_each_entry(cs, &clocksource_list, list) {
		if (strcmp(cs->name, name))
			continue;
		ret = clocksource_unbind(cs);
		break;
	}
	mutex_unlock(&clocksource_mutex);

	return ret ? ret : count;
}

945 946 947
/**
 * sysfs_show_available_clocksources - sysfs interface for listing clocksource
 * @dev:	unused
948
 * @attr:	unused
949 950 951 952 953
 * @buf:	char buffer to be filled with clocksource list
 *
 * Provides sysfs interface for listing registered clocksources
 */
static ssize_t
954 955
sysfs_show_available_clocksources(struct device *dev,
				  struct device_attribute *attr,
956
				  char *buf)
957
{
958
	struct clocksource *src;
959
	ssize_t count = 0;
960

961
	mutex_lock(&clocksource_mutex);
962
	list_for_each_entry(src, &clocksource_list, list) {
963 964 965 966 967 968
		/*
		 * Don't show non-HRES clocksource if the tick code is
		 * in one shot mode (highres=on or nohz=on)
		 */
		if (!tick_oneshot_mode_active() ||
		    (src->flags & CLOCK_SOURCE_VALID_FOR_HRES))
969
			count += snprintf(buf + count,
970 971
				  max((ssize_t)PAGE_SIZE - count, (ssize_t)0),
				  "%s ", src->name);
972
	}
973
	mutex_unlock(&clocksource_mutex);
974

975 976
	count += snprintf(buf + count,
			  max((ssize_t)PAGE_SIZE - count, (ssize_t)0), "\n");
977

978
	return count;
979 980 981 982 983
}

/*
 * Sysfs setup bits:
 */
984
static DEVICE_ATTR(current_clocksource, 0644, sysfs_show_current_clocksources,
D
Daniel Walker 已提交
985
		   sysfs_override_clocksource);
986

987 988
static DEVICE_ATTR(unbind_clocksource, 0200, NULL, sysfs_unbind_clocksource);

989
static DEVICE_ATTR(available_clocksource, 0444,
D
Daniel Walker 已提交
990
		   sysfs_show_available_clocksources, NULL);
991

992
static struct bus_type clocksource_subsys = {
993
	.name = "clocksource",
994
	.dev_name = "clocksource",
995 996
};

997
static struct device device_clocksource = {
998
	.id	= 0,
999
	.bus	= &clocksource_subsys,
1000 1001
};

1002
static int __init init_clocksource_sysfs(void)
1003
{
1004
	int error = subsys_system_register(&clocksource_subsys, NULL);
1005 1006

	if (!error)
1007
		error = device_register(&device_clocksource);
1008
	if (!error)
1009
		error = device_create_file(
1010
				&device_clocksource,
1011
				&dev_attr_current_clocksource);
1012 1013 1014
	if (!error)
		error = device_create_file(&device_clocksource,
					   &dev_attr_unbind_clocksource);
1015
	if (!error)
1016
		error = device_create_file(
1017
				&device_clocksource,
1018
				&dev_attr_available_clocksource);
1019 1020 1021 1022
	return error;
}

device_initcall(init_clocksource_sysfs);
1023
#endif /* CONFIG_SYSFS */
1024 1025 1026 1027 1028 1029 1030 1031 1032 1033

/**
 * boot_override_clocksource - boot clock override
 * @str:	override name
 *
 * Takes a clocksource= boot argument and uses it
 * as the clocksource override name.
 */
static int __init boot_override_clocksource(char* str)
{
1034
	mutex_lock(&clocksource_mutex);
1035 1036
	if (str)
		strlcpy(override_name, str, sizeof(override_name));
1037
	mutex_unlock(&clocksource_mutex);
1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051
	return 1;
}

__setup("clocksource=", boot_override_clocksource);

/**
 * boot_override_clock - Compatibility layer for deprecated boot option
 * @str:	override name
 *
 * DEPRECATED! Takes a clock= boot argument and uses it
 * as the clocksource override name
 */
static int __init boot_override_clock(char* str)
{
1052 1053 1054 1055 1056 1057 1058
	if (!strcmp(str, "pmtmr")) {
		printk("Warning: clock=pmtmr is deprecated. "
			"Use clocksource=acpi_pm.\n");
		return boot_override_clocksource("acpi_pm");
	}
	printk("Warning! clock= boot option is deprecated. "
		"Use clocksource=xyz\n");
1059 1060 1061 1062
	return boot_override_clocksource(str);
}

__setup("clock=", boot_override_clock);