clocksource.c 26.4 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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static char override_name[32];
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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)
{
	struct clocksource *tmp;
	unsigned long flags;

	spin_lock_irqsave(&watchdog_lock, flags);
	if (cs->flags & CLOCK_SOURCE_MUST_VERIFY) {
		/* cs is a watched clocksource. */
		list_del_init(&cs->wd_list);
	} else if (cs == watchdog) {
		/* Reset watchdog cycles */
		clocksource_reset_watchdog();
		/* Current watchdog is removed. Find an alternative. */
		watchdog = NULL;
		list_for_each_entry(tmp, &clocksource_list, list) {
			if (tmp == cs || tmp->flags & CLOCK_SOURCE_MUST_VERIFY)
				continue;
			if (!watchdog || tmp->rating > watchdog->rating)
				watchdog = tmp;
		}
	}
	cs->flags &= ~CLOCK_SOURCE_WATCHDOG;
	/* Check if the watchdog timer needs to be stopped. */
	clocksource_stop_watchdog();
	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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#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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#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;
	/*
	 * We won't try to correct for more then 11% adjustments (110,000 ppm),
	 */
	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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/**
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 * clocksource_select - Select the best clocksource available
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 *
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 * Private function. Must hold clocksource_mutex when called.
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 *
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 * Select the clocksource with the best rating, or the clocksource,
 * which is selected by userspace override.
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 */
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static void clocksource_select(void)
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{
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	struct clocksource *best, *cs;
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	if (!finished_booting || list_empty(&clocksource_list))
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		return;
	/* First clocksource on the list has the best rating. */
	best = list_first_entry(&clocksource_list, struct clocksource, list);
	/* Check for the override clocksource. */
	list_for_each_entry(cs, &clocksource_list, list) {
		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)
		 */
		if (!(cs->flags & CLOCK_SOURCE_VALID_FOR_HRES) &&
		    tick_oneshot_mode_active()) {
			/* 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) {
		printk(KERN_INFO "Switching to clocksource %s\n", best->name);
		curr_clocksource = best;
		timekeeping_notify(curr_clocksource);
	}
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}
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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);

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	mutex_lock(&clocksource_mutex);
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	clocksource_select();
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	mutex_unlock(&clocksource_mutex);
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	return 0;
}
fs_initcall(clocksource_done_booting);

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/*
 * Enqueue the clocksource sorted by rating
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 */
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static void clocksource_enqueue(struct clocksource *cs)
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{
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	struct list_head *entry = &clocksource_list;
	struct clocksource *tmp;
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	list_for_each_entry(tmp, &clocksource_list, list)
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		/* Keep track of the place, where to insert */
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		if (tmp->rating >= cs->rating)
			entry = &tmp->list;
	list_add(&cs->list, entry);
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}

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/**
649
 * __clocksource_updatefreq_scale - Used update clocksource with new freq
650
 * @cs:		clocksource to be registered
651 652 653
 * @scale:	Scale factor multiplied against freq to get clocksource hz
 * @freq:	clocksource frequency (cycles per second) divided by scale
 *
654
 * This should only be called from the clocksource->enable() method.
655 656
 *
 * This *SHOULD NOT* be called directly! Please use the
657
 * clocksource_updatefreq_hz() or clocksource_updatefreq_khz helper functions.
658
 */
659
void __clocksource_updatefreq_scale(struct clocksource *cs, u32 scale, u32 freq)
660
{
661
	u64 sec;
662
	/*
663 664 665 666 667 668 669 670
	 * 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()
671
	 */
672
	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;

680
	clocks_calc_mult_shift(&cs->mult, &cs->shift, freq,
681
			       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);
	}

696
	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
702
 * @cs:		clocksource to be registered
703 704 705 706 707 708 709 710 711 712 713
 * @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)
{

714
	/* Initialize mult/shift and max_idle_ns */
715
	__clocksource_updatefreq_scale(cs, scale, freq);
716

717
	/* Add clocksource to the clcoksource list */
718 719 720
	mutex_lock(&clocksource_mutex);
	clocksource_enqueue(cs);
	clocksource_enqueue_watchdog(cs);
721
	clocksource_select();
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	mutex_unlock(&clocksource_mutex);
	return 0;
}
EXPORT_SYMBOL_GPL(__clocksource_register_scale);


728
/**
729
 * clocksource_register - Used to install new clocksources
730
 * @cs:		clocksource to be registered
731 732 733
 *
 * Returns -EBUSY if registration fails, zero otherwise.
 */
734
int clocksource_register(struct clocksource *cs)
735
{
736 737 738 739 740 741
	/* 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);

742 743 744
	/* calculate max idle time permitted for this clocksource */
	cs->max_idle_ns = clocksource_max_deferment(cs);

745
	mutex_lock(&clocksource_mutex);
746
	clocksource_enqueue(cs);
747
	clocksource_enqueue_watchdog(cs);
748
	clocksource_select();
749
	mutex_unlock(&clocksource_mutex);
750
	return 0;
751
}
752
EXPORT_SYMBOL(clocksource_register);
753

754 755 756 757 758 759 760 761
static void __clocksource_change_rating(struct clocksource *cs, int rating)
{
	list_del(&cs->list);
	cs->rating = rating;
	clocksource_enqueue(cs);
	clocksource_select();
}

762
/**
763
 * clocksource_change_rating - Change the rating of a registered clocksource
764 765
 * @cs:		clocksource to be changed
 * @rating:	new rating
766
 */
767
void clocksource_change_rating(struct clocksource *cs, int rating)
768
{
769
	mutex_lock(&clocksource_mutex);
770
	__clocksource_change_rating(cs, rating);
771
	mutex_unlock(&clocksource_mutex);
772
}
773
EXPORT_SYMBOL(clocksource_change_rating);
774

775 776
/**
 * clocksource_unregister - remove a registered clocksource
777
 * @cs:	clocksource to be unregistered
778 779 780
 */
void clocksource_unregister(struct clocksource *cs)
{
781
	mutex_lock(&clocksource_mutex);
782
	clocksource_dequeue_watchdog(cs);
783
	list_del(&cs->list);
784
	clocksource_select();
785
	mutex_unlock(&clocksource_mutex);
786
}
787
EXPORT_SYMBOL(clocksource_unregister);
788

789
#ifdef CONFIG_SYSFS
790 791 792
/**
 * sysfs_show_current_clocksources - sysfs interface for current clocksource
 * @dev:	unused
793
 * @attr:	unused
794 795 796 797 798
 * @buf:	char buffer to be filled with clocksource list
 *
 * Provides sysfs interface for listing current clocksource.
 */
static ssize_t
799 800
sysfs_show_current_clocksources(struct device *dev,
				struct device_attribute *attr, char *buf)
801
{
802
	ssize_t count = 0;
803

804
	mutex_lock(&clocksource_mutex);
805
	count = snprintf(buf, PAGE_SIZE, "%s\n", curr_clocksource->name);
806
	mutex_unlock(&clocksource_mutex);
807

808
	return count;
809 810 811 812 813
}

/**
 * sysfs_override_clocksource - interface for manually overriding clocksource
 * @dev:	unused
814
 * @attr:	unused
815 816 817 818
 * @buf:	name of override clocksource
 * @count:	length of buffer
 *
 * Takes input from sysfs interface for manually overriding the default
819
 * clocksource selection.
820
 */
821 822
static ssize_t sysfs_override_clocksource(struct device *dev,
					  struct device_attribute *attr,
823 824 825
					  const char *buf, size_t count)
{
	size_t ret = count;
826

827 828 829 830 831 832 833 834
	/* strings from sysfs write are not 0 terminated! */
	if (count >= sizeof(override_name))
		return -EINVAL;

	/* strip of \n: */
	if (buf[count-1] == '\n')
		count--;

835
	mutex_lock(&clocksource_mutex);
836

837 838
	if (count > 0)
		memcpy(override_name, buf, count);
839
	override_name[count] = 0;
840
	clocksource_select();
841

842
	mutex_unlock(&clocksource_mutex);
843 844 845 846 847 848 849

	return ret;
}

/**
 * sysfs_show_available_clocksources - sysfs interface for listing clocksource
 * @dev:	unused
850
 * @attr:	unused
851 852 853 854 855
 * @buf:	char buffer to be filled with clocksource list
 *
 * Provides sysfs interface for listing registered clocksources
 */
static ssize_t
856 857
sysfs_show_available_clocksources(struct device *dev,
				  struct device_attribute *attr,
858
				  char *buf)
859
{
860
	struct clocksource *src;
861
	ssize_t count = 0;
862

863
	mutex_lock(&clocksource_mutex);
864
	list_for_each_entry(src, &clocksource_list, list) {
865 866 867 868 869 870
		/*
		 * 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))
871
			count += snprintf(buf + count,
872 873
				  max((ssize_t)PAGE_SIZE - count, (ssize_t)0),
				  "%s ", src->name);
874
	}
875
	mutex_unlock(&clocksource_mutex);
876

877 878
	count += snprintf(buf + count,
			  max((ssize_t)PAGE_SIZE - count, (ssize_t)0), "\n");
879

880
	return count;
881 882 883 884 885
}

/*
 * Sysfs setup bits:
 */
886
static DEVICE_ATTR(current_clocksource, 0644, sysfs_show_current_clocksources,
D
Daniel Walker 已提交
887
		   sysfs_override_clocksource);
888

889
static DEVICE_ATTR(available_clocksource, 0444,
D
Daniel Walker 已提交
890
		   sysfs_show_available_clocksources, NULL);
891

892
static struct bus_type clocksource_subsys = {
893
	.name = "clocksource",
894
	.dev_name = "clocksource",
895 896
};

897
static struct device device_clocksource = {
898
	.id	= 0,
899
	.bus	= &clocksource_subsys,
900 901
};

902
static int __init init_clocksource_sysfs(void)
903
{
904
	int error = subsys_system_register(&clocksource_subsys, NULL);
905 906

	if (!error)
907
		error = device_register(&device_clocksource);
908
	if (!error)
909
		error = device_create_file(
910
				&device_clocksource,
911
				&dev_attr_current_clocksource);
912
	if (!error)
913
		error = device_create_file(
914
				&device_clocksource,
915
				&dev_attr_available_clocksource);
916 917 918 919
	return error;
}

device_initcall(init_clocksource_sysfs);
920
#endif /* CONFIG_SYSFS */
921 922 923 924 925 926 927 928 929 930

/**
 * 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)
{
931
	mutex_lock(&clocksource_mutex);
932 933
	if (str)
		strlcpy(override_name, str, sizeof(override_name));
934
	mutex_unlock(&clocksource_mutex);
935 936 937 938 939 940 941 942 943 944 945 946 947 948
	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)
{
949 950 951 952 953 954 955
	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");
956 957 958 959
	return boot_override_clocksource(str);
}

__setup("clock=", boot_override_clock);