[PATCH] ntp whitespace cleanup
Fix bizarre 4-space coding style in the NTP code. Signed-off-by: Andrew Morton <akpm@osdl.org> Signed-off-by: Linus Torvalds <torvalds@osdl.org>
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1 changed files with 122 additions and 122 deletions
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@ -642,66 +642,63 @@ static void second_overflow(void)
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}
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/*
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* Leap second processing. If in leap-insert state at
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* the end of the day, the system clock is set back one
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* second; if in leap-delete state, the system clock is
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* set ahead one second. The microtime() routine or
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* external clock driver will insure that reported time
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* is always monotonic. The ugly divides should be
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* replaced.
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* Leap second processing. If in leap-insert state at the end of the
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* day, the system clock is set back one second; if in leap-delete
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* state, the system clock is set ahead one second. The microtime()
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* routine or external clock driver will insure that reported time is
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* always monotonic. The ugly divides should be replaced.
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*/
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switch (time_state) {
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case TIME_OK:
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if (time_status & STA_INS)
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time_state = TIME_INS;
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else if (time_status & STA_DEL)
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time_state = TIME_DEL;
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break;
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case TIME_INS:
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if (xtime.tv_sec % 86400 == 0) {
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xtime.tv_sec--;
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wall_to_monotonic.tv_sec++;
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/* The timer interpolator will make time change gradually instead
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* of an immediate jump by one second.
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/*
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* The timer interpolator will make time change
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* gradually instead of an immediate jump by one second
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*/
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time_interpolator_update(-NSEC_PER_SEC);
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time_state = TIME_OOP;
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clock_was_set();
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printk(KERN_NOTICE "Clock: inserting leap second 23:59:60 UTC\n");
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printk(KERN_NOTICE "Clock: inserting leap second "
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"23:59:60 UTC\n");
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}
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break;
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case TIME_DEL:
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if ((xtime.tv_sec + 1) % 86400 == 0) {
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xtime.tv_sec++;
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wall_to_monotonic.tv_sec--;
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/* Use of time interpolator for a gradual change of time */
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/*
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* Use of time interpolator for a gradual change of
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* time
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*/
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time_interpolator_update(NSEC_PER_SEC);
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time_state = TIME_WAIT;
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clock_was_set();
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printk(KERN_NOTICE "Clock: deleting leap second 23:59:59 UTC\n");
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printk(KERN_NOTICE "Clock: deleting leap second "
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"23:59:59 UTC\n");
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}
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break;
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case TIME_OOP:
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time_state = TIME_WAIT;
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break;
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case TIME_WAIT:
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if (!(time_status & (STA_INS | STA_DEL)))
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time_state = TIME_OK;
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}
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/*
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* Compute the phase adjustment for the next second. In
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* PLL mode, the offset is reduced by a fixed factor
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* times the time constant. In FLL mode the offset is
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* used directly. In either mode, the maximum phase
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* adjustment for each second is clamped so as to spread
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* the adjustment over not more than the number of
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* seconds between updates.
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* Compute the phase adjustment for the next second. In PLL mode, the
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* offset is reduced by a fixed factor times the time constant. In FLL
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* mode the offset is used directly. In either mode, the maximum phase
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* adjustment for each second is clamped so as to spread the adjustment
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* over not more than the number of seconds between updates.
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*/
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ltemp = time_offset;
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if (!(time_status & STA_FLL))
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@ -712,11 +709,10 @@ static void second_overflow(void)
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time_adj = ltemp << (SHIFT_SCALE - SHIFT_HZ - SHIFT_UPDATE);
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/*
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* Compute the frequency estimate and additional phase
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* adjustment due to frequency error for the next
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* second. When the PPS signal is engaged, gnaw on the
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* watchdog counter and update the frequency computed by
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* the pll and the PPS signal.
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* Compute the frequency estimate and additional phase adjustment due
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* to frequency error for the next second. When the PPS signal is
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* engaged, gnaw on the watchdog counter and update the frequency
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* computed by the pll and the PPS signal.
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*/
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pps_valid++;
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if (pps_valid == PPS_VALID) { /* PPS signal lost */
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@ -729,20 +725,23 @@ static void second_overflow(void)
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time_adj += shift_right(ltemp,(SHIFT_USEC + SHIFT_HZ - SHIFT_SCALE));
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#if HZ == 100
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/* Compensate for (HZ==100) != (1 << SHIFT_HZ).
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* Add 25% and 3.125% to get 128.125; => only 0.125% error (p. 14)
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/*
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* Compensate for (HZ==100) != (1 << SHIFT_HZ). Add 25% and 3.125% to
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* get 128.125; => only 0.125% error (p. 14)
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*/
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time_adj += shift_right(time_adj, 2) + shift_right(time_adj, 5);
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#endif
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#if HZ == 250
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/* Compensate for (HZ==250) != (1 << SHIFT_HZ).
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* Add 1.5625% and 0.78125% to get 255.85938; => only 0.05% error (p. 14)
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/*
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* Compensate for (HZ==250) != (1 << SHIFT_HZ). Add 1.5625% and
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* 0.78125% to get 255.85938; => only 0.05% error (p. 14)
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*/
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time_adj += shift_right(time_adj, 6) + shift_right(time_adj, 7);
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#endif
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#if HZ == 1000
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/* Compensate for (HZ==1000) != (1 << SHIFT_HZ).
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* Add 1.5625% and 0.78125% to get 1023.4375; => only 0.05% error (p. 14)
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/*
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* Compensate for (HZ==1000) != (1 << SHIFT_HZ). Add 1.5625% and
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* 0.78125% to get 1023.4375; => only 0.05% error (p. 14)
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*/
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time_adj += shift_right(time_adj, 6) + shift_right(time_adj, 7);
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#endif
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@ -754,11 +753,10 @@ static void update_wall_time_one_tick(void)
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long time_adjust_step, delta_nsec;
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if ((time_adjust_step = time_adjust) != 0 ) {
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/* We are doing an adjtime thing.
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*
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* Prepare time_adjust_step to be within bounds.
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* Note that a positive time_adjust means we want the clock
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* to run faster.
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/*
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* We are doing an adjtime thing. Prepare time_adjust_step to
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* be within bounds. Note that a positive time_adjust means we
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* want the clock to run faster.
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*
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* Limit the amount of the step to be in the range
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* -tickadj .. +tickadj
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@ -1481,16 +1479,18 @@ static void time_interpolator_update(long delta_nsec)
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if (!time_interpolator)
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return;
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/* The interpolator compensates for late ticks by accumulating
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* the late time in time_interpolator->offset. A tick earlier than
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* expected will lead to a reset of the offset and a corresponding
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* jump of the clock forward. Again this only works if the
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* interpolator clock is running slightly slower than the regular clock
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* and the tuning logic insures that.
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/*
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* The interpolator compensates for late ticks by accumulating the late
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* time in time_interpolator->offset. A tick earlier than expected will
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* lead to a reset of the offset and a corresponding jump of the clock
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* forward. Again this only works if the interpolator clock is running
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* slightly slower than the regular clock and the tuning logic insures
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* that.
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*/
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counter = time_interpolator_get_counter(1);
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offset = time_interpolator->offset + GET_TI_NSECS(counter, time_interpolator);
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offset = time_interpolator->offset +
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GET_TI_NSECS(counter, time_interpolator);
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if (delta_nsec < 0 || (unsigned long) delta_nsec < offset)
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time_interpolator->offset = offset - delta_nsec;
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