timekeeping.c 35.4 KB
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/*
 *  linux/kernel/time/timekeeping.c
 *
 *  Kernel timekeeping code and accessor functions
 *
 *  This code was moved from linux/kernel/timer.c.
 *  Please see that file for copyright and history logs.
 *
 */

#include <linux/module.h>
#include <linux/interrupt.h>
#include <linux/percpu.h>
#include <linux/init.h>
#include <linux/mm.h>
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#include <linux/sched.h>
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#include <linux/syscore_ops.h>
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#include <linux/clocksource.h>
#include <linux/jiffies.h>
#include <linux/time.h>
#include <linux/tick.h>
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#include <linux/stop_machine.h>
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/* Structure holding internal timekeeping values. */
struct timekeeper {
	/* Current clocksource used for timekeeping. */
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	struct clocksource	*clock;
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	/* NTP adjusted clock multiplier */
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	u32			mult;
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	/* The shift value of the current clocksource. */
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	u32			shift;
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	/* Number of clock cycles in one NTP interval. */
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	cycle_t			cycle_interval;
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	/* Number of clock shifted nano seconds in one NTP interval. */
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	u64			xtime_interval;
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	/* shifted nano seconds left over when rounding cycle_interval */
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	s64			xtime_remainder;
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	/* Raw nano seconds accumulated per NTP interval. */
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	u32			raw_interval;
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	/* Clock shifted nano seconds remainder not stored in xtime.tv_nsec. */
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	u64			xtime_nsec;
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	/* Difference between accumulated time and NTP time in ntp
	 * shifted nano seconds. */
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	s64			ntp_error;
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	/* Shift conversion between clock shifted nano seconds and
	 * ntp shifted nano seconds. */
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	u32			ntp_error_shift;
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	/* The current time */
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	struct timespec 	xtime;
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	/*
	 * wall_to_monotonic is what we need to add to xtime (or xtime corrected
	 * for sub jiffie times) to get to monotonic time.  Monotonic is pegged
	 * at zero at system boot time, so wall_to_monotonic will be negative,
	 * however, we will ALWAYS keep the tv_nsec part positive so we can use
	 * the usual normalization.
	 *
	 * wall_to_monotonic is moved after resume from suspend for the
	 * monotonic time not to jump. We need to add total_sleep_time to
	 * wall_to_monotonic to get the real boot based time offset.
	 *
	 * - wall_to_monotonic is no longer the boot time, getboottime must be
	 * used instead.
	 */
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	struct timespec		wall_to_monotonic;
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	/* time spent in suspend */
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	struct timespec		total_sleep_time;
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	/* The raw monotonic time for the CLOCK_MONOTONIC_RAW posix clock. */
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	struct timespec		raw_time;
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	/* Offset clock monotonic -> clock realtime */
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	ktime_t			offs_real;
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	/* Offset clock monotonic -> clock boottime */
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	ktime_t			offs_boot;
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	/* Seqlock for all timekeeper values */
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	seqlock_t		lock;
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};

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static struct timekeeper timekeeper;
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/*
 * This read-write spinlock protects us from races in SMP while
 * playing with xtime.
 */
__cacheline_aligned_in_smp DEFINE_SEQLOCK(xtime_lock);


/* flag for if timekeeping is suspended */
int __read_mostly timekeeping_suspended;



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/**
 * timekeeper_setup_internals - Set up internals to use clocksource clock.
 *
 * @clock:		Pointer to clocksource.
 *
 * Calculates a fixed cycle/nsec interval for a given clocksource/adjustment
 * pair and interval request.
 *
 * Unless you're the timekeeping code, you should not be using this!
 */
static void timekeeper_setup_internals(struct clocksource *clock)
{
	cycle_t interval;
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	u64 tmp, ntpinterval;
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	timekeeper.clock = clock;
	clock->cycle_last = clock->read(clock);

	/* Do the ns -> cycle conversion first, using original mult */
	tmp = NTP_INTERVAL_LENGTH;
	tmp <<= clock->shift;
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	ntpinterval = tmp;
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	tmp += clock->mult/2;
	do_div(tmp, clock->mult);
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	if (tmp == 0)
		tmp = 1;

	interval = (cycle_t) tmp;
	timekeeper.cycle_interval = interval;

	/* Go back from cycles -> shifted ns */
	timekeeper.xtime_interval = (u64) interval * clock->mult;
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	timekeeper.xtime_remainder = ntpinterval - timekeeper.xtime_interval;
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	timekeeper.raw_interval =
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		((u64) interval * clock->mult) >> clock->shift;
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	timekeeper.xtime_nsec = 0;
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	timekeeper.shift = clock->shift;
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	timekeeper.ntp_error = 0;
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	timekeeper.ntp_error_shift = NTP_SCALE_SHIFT - clock->shift;
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	/*
	 * The timekeeper keeps its own mult values for the currently
	 * active clocksource. These value will be adjusted via NTP
	 * to counteract clock drifting.
	 */
	timekeeper.mult = clock->mult;
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}
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/* Timekeeper helper functions. */
static inline s64 timekeeping_get_ns(void)
{
	cycle_t cycle_now, cycle_delta;
	struct clocksource *clock;

	/* read clocksource: */
	clock = timekeeper.clock;
	cycle_now = clock->read(clock);

	/* calculate the delta since the last update_wall_time: */
	cycle_delta = (cycle_now - clock->cycle_last) & clock->mask;

	/* return delta convert to nanoseconds using ntp adjusted mult. */
	return clocksource_cyc2ns(cycle_delta, timekeeper.mult,
				  timekeeper.shift);
}

static inline s64 timekeeping_get_ns_raw(void)
{
	cycle_t cycle_now, cycle_delta;
	struct clocksource *clock;

	/* read clocksource: */
	clock = timekeeper.clock;
	cycle_now = clock->read(clock);

	/* calculate the delta since the last update_wall_time: */
	cycle_delta = (cycle_now - clock->cycle_last) & clock->mask;

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	/* return delta convert to nanoseconds. */
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	return clocksource_cyc2ns(cycle_delta, clock->mult, clock->shift);
}

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static void update_rt_offset(void)
{
	struct timespec tmp, *wtm = &timekeeper.wall_to_monotonic;

	set_normalized_timespec(&tmp, -wtm->tv_sec, -wtm->tv_nsec);
	timekeeper.offs_real = timespec_to_ktime(tmp);
}

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/* must hold write on timekeeper.lock */
static void timekeeping_update(bool clearntp)
{
	if (clearntp) {
		timekeeper.ntp_error = 0;
		ntp_clear();
	}
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	update_rt_offset();
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	update_vsyscall(&timekeeper.xtime, &timekeeper.wall_to_monotonic,
			 timekeeper.clock, timekeeper.mult);
}


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/**
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 * timekeeping_forward_now - update clock to the current time
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 *
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 * Forward the current clock to update its state since the last call to
 * update_wall_time(). This is useful before significant clock changes,
 * as it avoids having to deal with this time offset explicitly.
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 */
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static void timekeeping_forward_now(void)
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{
	cycle_t cycle_now, cycle_delta;
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	struct clocksource *clock;
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	s64 nsec;
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	clock = timekeeper.clock;
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	cycle_now = clock->read(clock);
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	cycle_delta = (cycle_now - clock->cycle_last) & clock->mask;
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	clock->cycle_last = cycle_now;
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	nsec = clocksource_cyc2ns(cycle_delta, timekeeper.mult,
				  timekeeper.shift);
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	/* If arch requires, add in gettimeoffset() */
	nsec += arch_gettimeoffset();

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	timespec_add_ns(&timekeeper.xtime, nsec);
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	nsec = clocksource_cyc2ns(cycle_delta, clock->mult, clock->shift);
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	timespec_add_ns(&timekeeper.raw_time, nsec);
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}

/**
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 * getnstimeofday - Returns the time of day in a timespec
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 * @ts:		pointer to the timespec to be set
 *
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 * Returns the time of day in a timespec.
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 */
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void getnstimeofday(struct timespec *ts)
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{
	unsigned long seq;
	s64 nsecs;

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	WARN_ON(timekeeping_suspended);

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	do {
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		seq = read_seqbegin(&timekeeper.lock);
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		*ts = timekeeper.xtime;
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		nsecs = timekeeping_get_ns();
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		/* If arch requires, add in gettimeoffset() */
		nsecs += arch_gettimeoffset();

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	} while (read_seqretry(&timekeeper.lock, seq));
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	timespec_add_ns(ts, nsecs);
}
EXPORT_SYMBOL(getnstimeofday);

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ktime_t ktime_get(void)
{
	unsigned int seq;
	s64 secs, nsecs;

	WARN_ON(timekeeping_suspended);

	do {
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		seq = read_seqbegin(&timekeeper.lock);
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		secs = timekeeper.xtime.tv_sec +
				timekeeper.wall_to_monotonic.tv_sec;
		nsecs = timekeeper.xtime.tv_nsec +
				timekeeper.wall_to_monotonic.tv_nsec;
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		nsecs += timekeeping_get_ns();
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		/* If arch requires, add in gettimeoffset() */
		nsecs += arch_gettimeoffset();
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	} while (read_seqretry(&timekeeper.lock, seq));
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	/*
	 * Use ktime_set/ktime_add_ns to create a proper ktime on
	 * 32-bit architectures without CONFIG_KTIME_SCALAR.
	 */
	return ktime_add_ns(ktime_set(secs, 0), nsecs);
}
EXPORT_SYMBOL_GPL(ktime_get);

/**
 * ktime_get_ts - get the monotonic clock in timespec format
 * @ts:		pointer to timespec variable
 *
 * The function calculates the monotonic clock from the realtime
 * clock and the wall_to_monotonic offset and stores the result
 * in normalized timespec format in the variable pointed to by @ts.
 */
void ktime_get_ts(struct timespec *ts)
{
	struct timespec tomono;
	unsigned int seq;
	s64 nsecs;

	WARN_ON(timekeeping_suspended);

	do {
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		seq = read_seqbegin(&timekeeper.lock);
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		*ts = timekeeper.xtime;
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		tomono = timekeeper.wall_to_monotonic;
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		nsecs = timekeeping_get_ns();
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		/* If arch requires, add in gettimeoffset() */
		nsecs += arch_gettimeoffset();
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	} while (read_seqretry(&timekeeper.lock, seq));
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	set_normalized_timespec(ts, ts->tv_sec + tomono.tv_sec,
				ts->tv_nsec + tomono.tv_nsec + nsecs);
}
EXPORT_SYMBOL_GPL(ktime_get_ts);

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#ifdef CONFIG_NTP_PPS

/**
 * getnstime_raw_and_real - get day and raw monotonic time in timespec format
 * @ts_raw:	pointer to the timespec to be set to raw monotonic time
 * @ts_real:	pointer to the timespec to be set to the time of day
 *
 * This function reads both the time of day and raw monotonic time at the
 * same time atomically and stores the resulting timestamps in timespec
 * format.
 */
void getnstime_raw_and_real(struct timespec *ts_raw, struct timespec *ts_real)
{
	unsigned long seq;
	s64 nsecs_raw, nsecs_real;

	WARN_ON_ONCE(timekeeping_suspended);

	do {
		u32 arch_offset;

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		seq = read_seqbegin(&timekeeper.lock);
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		*ts_raw = timekeeper.raw_time;
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		*ts_real = timekeeper.xtime;
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		nsecs_raw = timekeeping_get_ns_raw();
		nsecs_real = timekeeping_get_ns();

		/* If arch requires, add in gettimeoffset() */
		arch_offset = arch_gettimeoffset();
		nsecs_raw += arch_offset;
		nsecs_real += arch_offset;

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	} while (read_seqretry(&timekeeper.lock, seq));
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	timespec_add_ns(ts_raw, nsecs_raw);
	timespec_add_ns(ts_real, nsecs_real);
}
EXPORT_SYMBOL(getnstime_raw_and_real);

#endif /* CONFIG_NTP_PPS */

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/**
 * do_gettimeofday - Returns the time of day in a timeval
 * @tv:		pointer to the timeval to be set
 *
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 * NOTE: Users should be converted to using getnstimeofday()
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 */
void do_gettimeofday(struct timeval *tv)
{
	struct timespec now;

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	getnstimeofday(&now);
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	tv->tv_sec = now.tv_sec;
	tv->tv_usec = now.tv_nsec/1000;
}
EXPORT_SYMBOL(do_gettimeofday);
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/**
 * do_settimeofday - Sets the time of day
 * @tv:		pointer to the timespec variable containing the new time
 *
 * Sets the time of day to the new time and update NTP and notify hrtimers
 */
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int do_settimeofday(const struct timespec *tv)
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{
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	struct timespec ts_delta;
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	unsigned long flags;
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	if ((unsigned long)tv->tv_nsec >= NSEC_PER_SEC)
		return -EINVAL;

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	write_seqlock_irqsave(&timekeeper.lock, flags);
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	timekeeping_forward_now();
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	ts_delta.tv_sec = tv->tv_sec - timekeeper.xtime.tv_sec;
	ts_delta.tv_nsec = tv->tv_nsec - timekeeper.xtime.tv_nsec;
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	timekeeper.wall_to_monotonic =
			timespec_sub(timekeeper.wall_to_monotonic, ts_delta);
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	timekeeper.xtime = *tv;
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	timekeeping_update(true);
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	write_sequnlock_irqrestore(&timekeeper.lock, flags);
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	/* signal hrtimers about time change */
	clock_was_set();

	return 0;
}
EXPORT_SYMBOL(do_settimeofday);

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/**
 * timekeeping_inject_offset - Adds or subtracts from the current time.
 * @tv:		pointer to the timespec variable containing the offset
 *
 * Adds or subtracts an offset value from the current time.
 */
int timekeeping_inject_offset(struct timespec *ts)
{
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	unsigned long flags;
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	if ((unsigned long)ts->tv_nsec >= NSEC_PER_SEC)
		return -EINVAL;

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	write_seqlock_irqsave(&timekeeper.lock, flags);
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	timekeeping_forward_now();

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	timekeeper.xtime = timespec_add(timekeeper.xtime, *ts);
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	timekeeper.wall_to_monotonic =
				timespec_sub(timekeeper.wall_to_monotonic, *ts);
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	timekeeping_update(true);
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	write_sequnlock_irqrestore(&timekeeper.lock, flags);
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	/* signal hrtimers about time change */
	clock_was_set();

	return 0;
}
EXPORT_SYMBOL(timekeeping_inject_offset);

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/**
 * change_clocksource - Swaps clocksources if a new one is available
 *
 * Accumulates current time interval and initializes new clocksource
 */
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static int change_clocksource(void *data)
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{
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	struct clocksource *new, *old;
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	unsigned long flags;
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	new = (struct clocksource *) data;
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	write_seqlock_irqsave(&timekeeper.lock, flags);

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	timekeeping_forward_now();
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	if (!new->enable || new->enable(new) == 0) {
		old = timekeeper.clock;
		timekeeper_setup_internals(new);
		if (old->disable)
			old->disable(old);
	}
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	timekeeping_update(true);

	write_sequnlock_irqrestore(&timekeeper.lock, flags);

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	return 0;
}
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/**
 * timekeeping_notify - Install a new clock source
 * @clock:		pointer to the clock source
 *
 * This function is called from clocksource.c after a new, better clock
 * source has been registered. The caller holds the clocksource_mutex.
 */
void timekeeping_notify(struct clocksource *clock)
{
	if (timekeeper.clock == clock)
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		return;
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	stop_machine(change_clocksource, clock, NULL);
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	tick_clock_notify();
}
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/**
 * ktime_get_real - get the real (wall-) time in ktime_t format
 *
 * returns the time in ktime_t format
 */
ktime_t ktime_get_real(void)
{
	struct timespec now;

	getnstimeofday(&now);

	return timespec_to_ktime(now);
}
EXPORT_SYMBOL_GPL(ktime_get_real);
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/**
 * getrawmonotonic - Returns the raw monotonic time in a timespec
 * @ts:		pointer to the timespec to be set
 *
 * Returns the raw monotonic time (completely un-modified by ntp)
 */
void getrawmonotonic(struct timespec *ts)
{
	unsigned long seq;
	s64 nsecs;

	do {
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		seq = read_seqbegin(&timekeeper.lock);
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		nsecs = timekeeping_get_ns_raw();
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		*ts = timekeeper.raw_time;
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	} while (read_seqretry(&timekeeper.lock, seq));
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	timespec_add_ns(ts, nsecs);
}
EXPORT_SYMBOL(getrawmonotonic);


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/**
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 * timekeeping_valid_for_hres - Check if timekeeping is suitable for hres
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 */
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int timekeeping_valid_for_hres(void)
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{
	unsigned long seq;
	int ret;

	do {
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		seq = read_seqbegin(&timekeeper.lock);
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		ret = timekeeper.clock->flags & CLOCK_SOURCE_VALID_FOR_HRES;
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	} while (read_seqretry(&timekeeper.lock, seq));
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	return ret;
}

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/**
 * timekeeping_max_deferment - Returns max time the clocksource can be deferred
 */
u64 timekeeping_max_deferment(void)
{
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	unsigned long seq;
	u64 ret;
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	do {
		seq = read_seqbegin(&timekeeper.lock);

		ret = timekeeper.clock->max_idle_ns;

	} while (read_seqretry(&timekeeper.lock, seq));

	return ret;
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}

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/**
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 * read_persistent_clock -  Return time from the persistent clock.
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 *
 * Weak dummy function for arches that do not yet support it.
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 * Reads the time from the battery backed persistent clock.
 * Returns a timespec with tv_sec=0 and tv_nsec=0 if unsupported.
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 *
 *  XXX - Do be sure to remove it once all arches implement it.
 */
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void __attribute__((weak)) read_persistent_clock(struct timespec *ts)
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{
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	ts->tv_sec = 0;
	ts->tv_nsec = 0;
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}

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/**
 * read_boot_clock -  Return time of the system start.
 *
 * Weak dummy function for arches that do not yet support it.
 * Function to read the exact time the system has been started.
 * Returns a timespec with tv_sec=0 and tv_nsec=0 if unsupported.
 *
 *  XXX - Do be sure to remove it once all arches implement it.
 */
void __attribute__((weak)) read_boot_clock(struct timespec *ts)
{
	ts->tv_sec = 0;
	ts->tv_nsec = 0;
}

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/*
 * timekeeping_init - Initializes the clocksource and common timekeeping values
 */
void __init timekeeping_init(void)
{
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	struct clocksource *clock;
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	unsigned long flags;
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	struct timespec now, boot;
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	read_persistent_clock(&now);
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	read_boot_clock(&boot);
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	seqlock_init(&timekeeper.lock);
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	ntp_init();
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	write_seqlock_irqsave(&timekeeper.lock, flags);
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	clock = clocksource_default_clock();
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	if (clock->enable)
		clock->enable(clock);
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	timekeeper_setup_internals(clock);
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	timekeeper.xtime.tv_sec = now.tv_sec;
	timekeeper.xtime.tv_nsec = now.tv_nsec;
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	timekeeper.raw_time.tv_sec = 0;
	timekeeper.raw_time.tv_nsec = 0;
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	if (boot.tv_sec == 0 && boot.tv_nsec == 0) {
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		boot.tv_sec = timekeeper.xtime.tv_sec;
		boot.tv_nsec = timekeeper.xtime.tv_nsec;
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	}
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	set_normalized_timespec(&timekeeper.wall_to_monotonic,
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				-boot.tv_sec, -boot.tv_nsec);
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	update_rt_offset();
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	timekeeper.total_sleep_time.tv_sec = 0;
	timekeeper.total_sleep_time.tv_nsec = 0;
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	write_sequnlock_irqrestore(&timekeeper.lock, flags);
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}

/* time in seconds when suspend began */
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static struct timespec timekeeping_suspend_time;
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static void update_sleep_time(struct timespec t)
{
	timekeeper.total_sleep_time = t;
	timekeeper.offs_boot = timespec_to_ktime(t);
}

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/**
 * __timekeeping_inject_sleeptime - Internal function to add sleep interval
 * @delta: pointer to a timespec delta value
 *
 * Takes a timespec offset measuring a suspend interval and properly
 * adds the sleep offset to the timekeeping variables.
 */
static void __timekeeping_inject_sleeptime(struct timespec *delta)
{
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	if (!timespec_valid(delta)) {
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		printk(KERN_WARNING "__timekeeping_inject_sleeptime: Invalid "
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					"sleep delta value!\n");
		return;
	}

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	timekeeper.xtime = timespec_add(timekeeper.xtime, *delta);
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	timekeeper.wall_to_monotonic =
			timespec_sub(timekeeper.wall_to_monotonic, *delta);
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	update_sleep_time(timespec_add(timekeeper.total_sleep_time, *delta));
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}


/**
 * timekeeping_inject_sleeptime - Adds suspend interval to timeekeeping values
 * @delta: pointer to a timespec delta value
 *
 * This hook is for architectures that cannot support read_persistent_clock
 * because their RTC/persistent clock is only accessible when irqs are enabled.
 *
 * This function should only be called by rtc_resume(), and allows
 * a suspend offset to be injected into the timekeeping values.
 */
void timekeeping_inject_sleeptime(struct timespec *delta)
{
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	unsigned long flags;
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	struct timespec ts;

	/* Make sure we don't set the clock twice */
	read_persistent_clock(&ts);
	if (!(ts.tv_sec == 0 && ts.tv_nsec == 0))
		return;

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	write_seqlock_irqsave(&timekeeper.lock, flags);
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	timekeeping_forward_now();

	__timekeeping_inject_sleeptime(delta);

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	timekeeping_update(true);
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	write_sequnlock_irqrestore(&timekeeper.lock, flags);
685 686 687 688 689 690

	/* signal hrtimers about time change */
	clock_was_set();
}


691 692 693 694 695 696 697
/**
 * timekeeping_resume - Resumes the generic timekeeping subsystem.
 *
 * This is for the generic clocksource timekeeping.
 * xtime/wall_to_monotonic/jiffies/etc are
 * still managed by arch specific suspend/resume code.
 */
698
static void timekeeping_resume(void)
699
{
700
	unsigned long flags;
701 702 703
	struct timespec ts;

	read_persistent_clock(&ts);
704

705 706
	clocksource_resume();

707
	write_seqlock_irqsave(&timekeeper.lock, flags);
708

709 710
	if (timespec_compare(&ts, &timekeeping_suspend_time) > 0) {
		ts = timespec_sub(ts, timekeeping_suspend_time);
711
		__timekeeping_inject_sleeptime(&ts);
712 713
	}
	/* re-base the last cycle value */
714 715
	timekeeper.clock->cycle_last = timekeeper.clock->read(timekeeper.clock);
	timekeeper.ntp_error = 0;
716
	timekeeping_suspended = 0;
717
	write_sequnlock_irqrestore(&timekeeper.lock, flags);
718 719 720 721 722 723

	touch_softlockup_watchdog();

	clockevents_notify(CLOCK_EVT_NOTIFY_RESUME, NULL);

	/* Resume hrtimers */
724
	hrtimers_resume();
725 726
}

727
static int timekeeping_suspend(void)
728
{
729
	unsigned long flags;
730 731
	struct timespec		delta, delta_delta;
	static struct timespec	old_delta;
732

733
	read_persistent_clock(&timekeeping_suspend_time);
734

735
	write_seqlock_irqsave(&timekeeper.lock, flags);
736
	timekeeping_forward_now();
737
	timekeeping_suspended = 1;
738 739 740 741 742 743 744

	/*
	 * To avoid drift caused by repeated suspend/resumes,
	 * which each can add ~1 second drift error,
	 * try to compensate so the difference in system time
	 * and persistent_clock time stays close to constant.
	 */
745
	delta = timespec_sub(timekeeper.xtime, timekeeping_suspend_time);
746 747 748 749 750 751 752 753 754 755 756 757
	delta_delta = timespec_sub(delta, old_delta);
	if (abs(delta_delta.tv_sec)  >= 2) {
		/*
		 * if delta_delta is too large, assume time correction
		 * has occured and set old_delta to the current delta.
		 */
		old_delta = delta;
	} else {
		/* Otherwise try to adjust old_system to compensate */
		timekeeping_suspend_time =
			timespec_add(timekeeping_suspend_time, delta_delta);
	}
758
	write_sequnlock_irqrestore(&timekeeper.lock, flags);
759 760

	clockevents_notify(CLOCK_EVT_NOTIFY_SUSPEND, NULL);
M
Magnus Damm 已提交
761
	clocksource_suspend();
762 763 764 765 766

	return 0;
}

/* sysfs resume/suspend bits for timekeeping */
767
static struct syscore_ops timekeeping_syscore_ops = {
768 769 770 771
	.resume		= timekeeping_resume,
	.suspend	= timekeeping_suspend,
};

772
static int __init timekeeping_init_ops(void)
773
{
774 775
	register_syscore_ops(&timekeeping_syscore_ops);
	return 0;
776 777
}

778
device_initcall(timekeeping_init_ops);
779 780 781 782 783

/*
 * If the error is already larger, we look ahead even further
 * to compensate for late or lost adjustments.
 */
784
static __always_inline int timekeeping_bigadjust(s64 error, s64 *interval,
785 786 787 788 789 790 791 792 793 794 795 796
						 s64 *offset)
{
	s64 tick_error, i;
	u32 look_ahead, adj;
	s32 error2, mult;

	/*
	 * Use the current error value to determine how much to look ahead.
	 * The larger the error the slower we adjust for it to avoid problems
	 * with losing too many ticks, otherwise we would overadjust and
	 * produce an even larger error.  The smaller the adjustment the
	 * faster we try to adjust for it, as lost ticks can do less harm
L
Li Zefan 已提交
797
	 * here.  This is tuned so that an error of about 1 msec is adjusted
798 799
	 * within about 1 sec (or 2^20 nsec in 2^SHIFT_HZ ticks).
	 */
800
	error2 = timekeeper.ntp_error >> (NTP_SCALE_SHIFT + 22 - 2 * SHIFT_HZ);
801 802 803 804 805 806 807 808
	error2 = abs(error2);
	for (look_ahead = 0; error2 > 0; look_ahead++)
		error2 >>= 2;

	/*
	 * Now calculate the error in (1 << look_ahead) ticks, but first
	 * remove the single look ahead already included in the error.
	 */
809
	tick_error = ntp_tick_length() >> (timekeeper.ntp_error_shift + 1);
810
	tick_error -= timekeeper.xtime_interval >> 1;
811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834
	error = ((error - tick_error) >> look_ahead) + tick_error;

	/* Finally calculate the adjustment shift value.  */
	i = *interval;
	mult = 1;
	if (error < 0) {
		error = -error;
		*interval = -*interval;
		*offset = -*offset;
		mult = -1;
	}
	for (adj = 0; error > i; adj++)
		error >>= 1;

	*interval <<= adj;
	*offset <<= adj;
	return mult << adj;
}

/*
 * Adjust the multiplier to reduce the error value,
 * this is optimized for the most common adjustments of -1,0,1,
 * for other values we can do a bit more work.
 */
835
static void timekeeping_adjust(s64 offset)
836
{
837
	s64 error, interval = timekeeper.cycle_interval;
838 839
	int adj;

840
	/*
841
	 * The point of this is to check if the error is greater than half
842 843 844 845 846
	 * an interval.
	 *
	 * First we shift it down from NTP_SHIFT to clocksource->shifted nsecs.
	 *
	 * Note we subtract one in the shift, so that error is really error*2.
847 848
	 * This "saves" dividing(shifting) interval twice, but keeps the
	 * (error > interval) comparison as still measuring if error is
849
	 * larger than half an interval.
850
	 *
851
	 * Note: It does not "save" on aggravation when reading the code.
852
	 */
853
	error = timekeeper.ntp_error >> (timekeeper.ntp_error_shift - 1);
854
	if (error > interval) {
855 856
		/*
		 * We now divide error by 4(via shift), which checks if
857
		 * the error is greater than twice the interval.
858 859 860
		 * If it is greater, we need a bigadjust, if its smaller,
		 * we can adjust by 1.
		 */
861
		error >>= 2;
862 863 864 865 866
		/*
		 * XXX - In update_wall_time, we round up to the next
		 * nanosecond, and store the amount rounded up into
		 * the error. This causes the likely below to be unlikely.
		 *
867
		 * The proper fix is to avoid rounding up by using
868 869 870 871
		 * the high precision timekeeper.xtime_nsec instead of
		 * xtime.tv_nsec everywhere. Fixing this will take some
		 * time.
		 */
872 873 874
		if (likely(error <= interval))
			adj = 1;
		else
875
			adj = timekeeping_bigadjust(error, &interval, &offset);
876
	} else if (error < -interval) {
877
		/* See comment above, this is just switched for the negative */
878 879 880 881 882 883
		error >>= 2;
		if (likely(error >= -interval)) {
			adj = -1;
			interval = -interval;
			offset = -offset;
		} else
884
			adj = timekeeping_bigadjust(error, &interval, &offset);
885
	} else /* No adjustment needed */
886 887
		return;

888 889 890 891 892
	if (unlikely(timekeeper.clock->maxadj &&
			(timekeeper.mult + adj >
			timekeeper.clock->mult + timekeeper.clock->maxadj))) {
		printk_once(KERN_WARNING
			"Adjusting %s more than 11%% (%ld vs %ld)\n",
893 894 895
			timekeeper.clock->name, (long)timekeeper.mult + adj,
			(long)timekeeper.clock->mult +
				timekeeper.clock->maxadj);
896
	}
897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945
	/*
	 * So the following can be confusing.
	 *
	 * To keep things simple, lets assume adj == 1 for now.
	 *
	 * When adj != 1, remember that the interval and offset values
	 * have been appropriately scaled so the math is the same.
	 *
	 * The basic idea here is that we're increasing the multiplier
	 * by one, this causes the xtime_interval to be incremented by
	 * one cycle_interval. This is because:
	 *	xtime_interval = cycle_interval * mult
	 * So if mult is being incremented by one:
	 *	xtime_interval = cycle_interval * (mult + 1)
	 * Its the same as:
	 *	xtime_interval = (cycle_interval * mult) + cycle_interval
	 * Which can be shortened to:
	 *	xtime_interval += cycle_interval
	 *
	 * So offset stores the non-accumulated cycles. Thus the current
	 * time (in shifted nanoseconds) is:
	 *	now = (offset * adj) + xtime_nsec
	 * Now, even though we're adjusting the clock frequency, we have
	 * to keep time consistent. In other words, we can't jump back
	 * in time, and we also want to avoid jumping forward in time.
	 *
	 * So given the same offset value, we need the time to be the same
	 * both before and after the freq adjustment.
	 *	now = (offset * adj_1) + xtime_nsec_1
	 *	now = (offset * adj_2) + xtime_nsec_2
	 * So:
	 *	(offset * adj_1) + xtime_nsec_1 =
	 *		(offset * adj_2) + xtime_nsec_2
	 * And we know:
	 *	adj_2 = adj_1 + 1
	 * So:
	 *	(offset * adj_1) + xtime_nsec_1 =
	 *		(offset * (adj_1+1)) + xtime_nsec_2
	 *	(offset * adj_1) + xtime_nsec_1 =
	 *		(offset * adj_1) + offset + xtime_nsec_2
	 * Canceling the sides:
	 *	xtime_nsec_1 = offset + xtime_nsec_2
	 * Which gives us:
	 *	xtime_nsec_2 = xtime_nsec_1 - offset
	 * Which simplfies to:
	 *	xtime_nsec -= offset
	 *
	 * XXX - TODO: Doc ntp_error calculation.
	 */
946
	timekeeper.mult += adj;
947 948 949
	timekeeper.xtime_interval += interval;
	timekeeper.xtime_nsec -= offset;
	timekeeper.ntp_error -= (interval - offset) <<
950
				timekeeper.ntp_error_shift;
951 952
}

L
Linus Torvalds 已提交
953

954 955 956 957 958 959 960 961 962
/**
 * logarithmic_accumulation - shifted accumulation of cycles
 *
 * This functions accumulates a shifted interval of cycles into
 * into a shifted interval nanoseconds. Allows for O(log) accumulation
 * loop.
 *
 * Returns the unconsumed cycles.
 */
963
static cycle_t logarithmic_accumulation(cycle_t offset, u32 shift)
964 965
{
	u64 nsecps = (u64)NSEC_PER_SEC << timekeeper.shift;
966
	u64 raw_nsecs;
967

968
	/* If the offset is smaller than a shifted interval, do nothing */
969 970 971 972 973 974 975 976 977
	if (offset < timekeeper.cycle_interval<<shift)
		return offset;

	/* Accumulate one shifted interval */
	offset -= timekeeper.cycle_interval << shift;
	timekeeper.clock->cycle_last += timekeeper.cycle_interval << shift;

	timekeeper.xtime_nsec += timekeeper.xtime_interval << shift;
	while (timekeeper.xtime_nsec >= nsecps) {
978
		int leap;
979
		timekeeper.xtime_nsec -= nsecps;
980
		timekeeper.xtime.tv_sec++;
981 982
		leap = second_overflow(timekeeper.xtime.tv_sec);
		timekeeper.xtime.tv_sec += leap;
983
		timekeeper.wall_to_monotonic.tv_sec -= leap;
984 985
		if (leap)
			clock_was_set_delayed();
986 987
	}

988 989
	/* Accumulate raw time */
	raw_nsecs = timekeeper.raw_interval << shift;
990
	raw_nsecs += timekeeper.raw_time.tv_nsec;
991 992 993
	if (raw_nsecs >= NSEC_PER_SEC) {
		u64 raw_secs = raw_nsecs;
		raw_nsecs = do_div(raw_secs, NSEC_PER_SEC);
994
		timekeeper.raw_time.tv_sec += raw_secs;
995
	}
996
	timekeeper.raw_time.tv_nsec = raw_nsecs;
997 998

	/* Accumulate error between NTP and clock interval */
999
	timekeeper.ntp_error += ntp_tick_length() << shift;
1000 1001
	timekeeper.ntp_error -=
	    (timekeeper.xtime_interval + timekeeper.xtime_remainder) <<
1002 1003 1004 1005 1006
				(timekeeper.ntp_error_shift + shift);

	return offset;
}

L
Linus Torvalds 已提交
1007

1008 1009 1010 1011
/**
 * update_wall_time - Uses the current clocksource to increment the wall time
 *
 */
1012
static void update_wall_time(void)
1013
{
1014
	struct clocksource *clock;
1015
	cycle_t offset;
1016
	int shift = 0, maxshift;
J
John Stultz 已提交
1017 1018 1019
	unsigned long flags;

	write_seqlock_irqsave(&timekeeper.lock, flags);
1020 1021 1022

	/* Make sure we're fully resumed: */
	if (unlikely(timekeeping_suspended))
J
John Stultz 已提交
1023
		goto out;
1024

1025
	clock = timekeeper.clock;
J
John Stultz 已提交
1026 1027

#ifdef CONFIG_ARCH_USES_GETTIMEOFFSET
1028
	offset = timekeeper.cycle_interval;
J
John Stultz 已提交
1029 1030
#else
	offset = (clock->read(clock) - clock->cycle_last) & clock->mask;
1031
#endif
1032 1033
	timekeeper.xtime_nsec = (s64)timekeeper.xtime.tv_nsec <<
						timekeeper.shift;
1034

1035 1036 1037 1038
	/*
	 * With NO_HZ we may have to accumulate many cycle_intervals
	 * (think "ticks") worth of time at once. To do this efficiently,
	 * we calculate the largest doubling multiple of cycle_intervals
1039
	 * that is smaller than the offset.  We then accumulate that
1040 1041
	 * chunk in one go, and then try to consume the next smaller
	 * doubled multiple.
1042
	 */
1043 1044
	shift = ilog2(offset) - ilog2(timekeeper.cycle_interval);
	shift = max(0, shift);
1045
	/* Bound shift to one less than what overflows tick_length */
1046
	maxshift = (64 - (ilog2(ntp_tick_length())+1)) - 1;
1047
	shift = min(shift, maxshift);
1048
	while (offset >= timekeeper.cycle_interval) {
1049
		offset = logarithmic_accumulation(offset, shift);
1050 1051
		if(offset < timekeeper.cycle_interval<<shift)
			shift--;
1052 1053 1054
	}

	/* correct the clock when NTP error is too big */
1055
	timekeeping_adjust(offset);
1056

1057 1058 1059 1060
	/*
	 * Since in the loop above, we accumulate any amount of time
	 * in xtime_nsec over a second into xtime.tv_sec, its possible for
	 * xtime_nsec to be fairly small after the loop. Further, if we're
1061
	 * slightly speeding the clocksource up in timekeeping_adjust(),
1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072
	 * its possible the required corrective factor to xtime_nsec could
	 * cause it to underflow.
	 *
	 * Now, we cannot simply roll the accumulated second back, since
	 * the NTP subsystem has been notified via second_overflow. So
	 * instead we push xtime_nsec forward by the amount we underflowed,
	 * and add that amount into the error.
	 *
	 * We'll correct this error next time through this function, when
	 * xtime_nsec is not as small.
	 */
1073 1074 1075
	if (unlikely((s64)timekeeper.xtime_nsec < 0)) {
		s64 neg = -(s64)timekeeper.xtime_nsec;
		timekeeper.xtime_nsec = 0;
1076
		timekeeper.ntp_error += neg << timekeeper.ntp_error_shift;
1077 1078
	}

J
John Stultz 已提交
1079 1080 1081

	/*
	 * Store full nanoseconds into xtime after rounding it up and
1082 1083
	 * add the remainder to the error difference.
	 */
1084 1085 1086 1087
	timekeeper.xtime.tv_nsec = ((s64)timekeeper.xtime_nsec >>
						timekeeper.shift) + 1;
	timekeeper.xtime_nsec -= (s64)timekeeper.xtime.tv_nsec <<
						timekeeper.shift;
1088 1089
	timekeeper.ntp_error +=	timekeeper.xtime_nsec <<
				timekeeper.ntp_error_shift;
1090

J
John Stultz 已提交
1091 1092
	/*
	 * Finally, make sure that after the rounding
1093
	 * xtime.tv_nsec isn't larger than NSEC_PER_SEC
J
John Stultz 已提交
1094
	 */
1095
	if (unlikely(timekeeper.xtime.tv_nsec >= NSEC_PER_SEC)) {
1096
		int leap;
1097 1098
		timekeeper.xtime.tv_nsec -= NSEC_PER_SEC;
		timekeeper.xtime.tv_sec++;
1099 1100
		leap = second_overflow(timekeeper.xtime.tv_sec);
		timekeeper.xtime.tv_sec += leap;
1101
		timekeeper.wall_to_monotonic.tv_sec -= leap;
1102 1103
		if (leap)
			clock_was_set_delayed();
J
John Stultz 已提交
1104
	}
L
Linus Torvalds 已提交
1105

1106
	timekeeping_update(false);
J
John Stultz 已提交
1107 1108 1109 1110

out:
	write_sequnlock_irqrestore(&timekeeper.lock, flags);

1111
}
T
Tomas Janousek 已提交
1112 1113 1114 1115 1116

/**
 * getboottime - Return the real time of system boot.
 * @ts:		pointer to the timespec to be set
 *
1117
 * Returns the wall-time of boot in a timespec.
T
Tomas Janousek 已提交
1118 1119 1120 1121 1122 1123 1124 1125
 *
 * This is based on the wall_to_monotonic offset and the total suspend
 * time. Calls to settimeofday will affect the value returned (which
 * basically means that however wrong your real time clock is at boot time,
 * you get the right time here).
 */
void getboottime(struct timespec *ts)
{
1126
	struct timespec boottime = {
1127
		.tv_sec = timekeeper.wall_to_monotonic.tv_sec +
1128
				timekeeper.total_sleep_time.tv_sec,
1129
		.tv_nsec = timekeeper.wall_to_monotonic.tv_nsec +
1130
				timekeeper.total_sleep_time.tv_nsec
1131
	};
1132 1133

	set_normalized_timespec(ts, -boottime.tv_sec, -boottime.tv_nsec);
T
Tomas Janousek 已提交
1134
}
1135
EXPORT_SYMBOL_GPL(getboottime);
T
Tomas Janousek 已提交
1136

1137 1138 1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155

/**
 * get_monotonic_boottime - Returns monotonic time since boot
 * @ts:		pointer to the timespec to be set
 *
 * Returns the monotonic time since boot in a timespec.
 *
 * This is similar to CLOCK_MONTONIC/ktime_get_ts, but also
 * includes the time spent in suspend.
 */
void get_monotonic_boottime(struct timespec *ts)
{
	struct timespec tomono, sleep;
	unsigned int seq;
	s64 nsecs;

	WARN_ON(timekeeping_suspended);

	do {
J
John Stultz 已提交
1156
		seq = read_seqbegin(&timekeeper.lock);
1157
		*ts = timekeeper.xtime;
1158
		tomono = timekeeper.wall_to_monotonic;
1159
		sleep = timekeeper.total_sleep_time;
1160 1161
		nsecs = timekeeping_get_ns();

J
John Stultz 已提交
1162
	} while (read_seqretry(&timekeeper.lock, seq));
1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185

	set_normalized_timespec(ts, ts->tv_sec + tomono.tv_sec + sleep.tv_sec,
			ts->tv_nsec + tomono.tv_nsec + sleep.tv_nsec + nsecs);
}
EXPORT_SYMBOL_GPL(get_monotonic_boottime);

/**
 * ktime_get_boottime - Returns monotonic time since boot in a ktime
 *
 * Returns the monotonic time since boot in a ktime
 *
 * This is similar to CLOCK_MONTONIC/ktime_get, but also
 * includes the time spent in suspend.
 */
ktime_t ktime_get_boottime(void)
{
	struct timespec ts;

	get_monotonic_boottime(&ts);
	return timespec_to_ktime(ts);
}
EXPORT_SYMBOL_GPL(ktime_get_boottime);

T
Tomas Janousek 已提交
1186 1187 1188 1189 1190 1191
/**
 * monotonic_to_bootbased - Convert the monotonic time to boot based.
 * @ts:		pointer to the timespec to be converted
 */
void monotonic_to_bootbased(struct timespec *ts)
{
1192
	*ts = timespec_add(*ts, timekeeper.total_sleep_time);
T
Tomas Janousek 已提交
1193
}
1194
EXPORT_SYMBOL_GPL(monotonic_to_bootbased);
1195

1196 1197
unsigned long get_seconds(void)
{
1198
	return timekeeper.xtime.tv_sec;
1199 1200 1201
}
EXPORT_SYMBOL(get_seconds);

1202 1203
struct timespec __current_kernel_time(void)
{
1204
	return timekeeper.xtime;
1205
}
1206

1207 1208 1209 1210 1211 1212
struct timespec current_kernel_time(void)
{
	struct timespec now;
	unsigned long seq;

	do {
J
John Stultz 已提交
1213
		seq = read_seqbegin(&timekeeper.lock);
L
Linus Torvalds 已提交
1214

1215
		now = timekeeper.xtime;
J
John Stultz 已提交
1216
	} while (read_seqretry(&timekeeper.lock, seq));
1217 1218 1219 1220

	return now;
}
EXPORT_SYMBOL(current_kernel_time);
1221 1222 1223 1224 1225 1226 1227

struct timespec get_monotonic_coarse(void)
{
	struct timespec now, mono;
	unsigned long seq;

	do {
J
John Stultz 已提交
1228
		seq = read_seqbegin(&timekeeper.lock);
L
Linus Torvalds 已提交
1229

1230
		now = timekeeper.xtime;
1231
		mono = timekeeper.wall_to_monotonic;
J
John Stultz 已提交
1232
	} while (read_seqretry(&timekeeper.lock, seq));
1233 1234 1235 1236 1237

	set_normalized_timespec(&now, now.tv_sec + mono.tv_sec,
				now.tv_nsec + mono.tv_nsec);
	return now;
}
1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249

/*
 * The 64-bit jiffies value is not atomic - you MUST NOT read it
 * without sampling the sequence number in xtime_lock.
 * jiffies is defined in the linker script...
 */
void do_timer(unsigned long ticks)
{
	jiffies_64 += ticks;
	update_wall_time();
	calc_global_load(ticks);
}
1250 1251

/**
1252 1253
 * get_xtime_and_monotonic_and_sleep_offset() - get xtime, wall_to_monotonic,
 *    and sleep offsets.
1254 1255
 * @xtim:	pointer to timespec to be set with xtime
 * @wtom:	pointer to timespec to be set with wall_to_monotonic
1256
 * @sleep:	pointer to timespec to be set with time in suspend
1257
 */
1258 1259
void get_xtime_and_monotonic_and_sleep_offset(struct timespec *xtim,
				struct timespec *wtom, struct timespec *sleep)
1260 1261 1262 1263
{
	unsigned long seq;

	do {
J
John Stultz 已提交
1264
		seq = read_seqbegin(&timekeeper.lock);
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		*xtim = timekeeper.xtime;
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		*wtom = timekeeper.wall_to_monotonic;
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		*sleep = timekeeper.total_sleep_time;
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	} while (read_seqretry(&timekeeper.lock, seq));
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}
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#ifdef CONFIG_HIGH_RES_TIMERS
/**
 * ktime_get_update_offsets - hrtimer helper
 * @offs_real:	pointer to storage for monotonic -> realtime offset
 * @offs_boot:	pointer to storage for monotonic -> boottime offset
 *
 * Returns current monotonic time and updates the offsets
 * Called from hrtimer_interupt() or retrigger_next_event()
 */
ktime_t ktime_get_update_offsets(ktime_t *offs_real, ktime_t *offs_boot)
{
	ktime_t now;
	unsigned int seq;
	u64 secs, nsecs;

	do {
		seq = read_seqbegin(&timekeeper.lock);

		secs = timekeeper.xtime.tv_sec;
		nsecs = timekeeper.xtime.tv_nsec;
		nsecs += timekeeping_get_ns();
		/* If arch requires, add in gettimeoffset() */
		nsecs += arch_gettimeoffset();

		*offs_real = timekeeper.offs_real;
		*offs_boot = timekeeper.offs_boot;
	} while (read_seqretry(&timekeeper.lock, seq));

	now = ktime_add_ns(ktime_set(secs, 0), nsecs);
	now = ktime_sub(now, *offs_real);
	return now;
}
#endif

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/**
 * ktime_get_monotonic_offset() - get wall_to_monotonic in ktime_t format
 */
ktime_t ktime_get_monotonic_offset(void)
{
	unsigned long seq;
	struct timespec wtom;

	do {
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		seq = read_seqbegin(&timekeeper.lock);
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		wtom = timekeeper.wall_to_monotonic;
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	} while (read_seqretry(&timekeeper.lock, seq));

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	return timespec_to_ktime(wtom);
}
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EXPORT_SYMBOL_GPL(ktime_get_monotonic_offset);

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/**
 * xtime_update() - advances the timekeeping infrastructure
 * @ticks:	number of ticks, that have elapsed since the last call.
 *
 * Must be called with interrupts disabled.
 */
void xtime_update(unsigned long ticks)
{
	write_seqlock(&xtime_lock);
	do_timer(ticks);
	write_sequnlock(&xtime_lock);
}