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i80321_timer.c revision 1.13.20.1
      1  1.13.20.1        ad /*	$NetBSD: i80321_timer.c,v 1.13.20.1 2006/11/18 21:29:07 ad Exp $	*/
      2        1.1   thorpej 
      3        1.1   thorpej /*
      4        1.1   thorpej  * Copyright (c) 2001, 2002 Wasabi Systems, Inc.
      5        1.1   thorpej  * All rights reserved.
      6        1.1   thorpej  *
      7        1.1   thorpej  * Written by Jason R. Thorpe for Wasabi Systems, Inc.
      8        1.1   thorpej  *
      9        1.1   thorpej  * Redistribution and use in source and binary forms, with or without
     10        1.1   thorpej  * modification, are permitted provided that the following conditions
     11        1.1   thorpej  * are met:
     12        1.1   thorpej  * 1. Redistributions of source code must retain the above copyright
     13        1.1   thorpej  *    notice, this list of conditions and the following disclaimer.
     14        1.1   thorpej  * 2. Redistributions in binary form must reproduce the above copyright
     15        1.1   thorpej  *    notice, this list of conditions and the following disclaimer in the
     16        1.1   thorpej  *    documentation and/or other materials provided with the distribution.
     17        1.1   thorpej  * 3. All advertising materials mentioning features or use of this software
     18        1.1   thorpej  *    must display the following acknowledgement:
     19        1.1   thorpej  *	This product includes software developed for the NetBSD Project by
     20        1.1   thorpej  *	Wasabi Systems, Inc.
     21        1.1   thorpej  * 4. The name of Wasabi Systems, Inc. may not be used to endorse
     22        1.1   thorpej  *    or promote products derived from this software without specific prior
     23        1.1   thorpej  *    written permission.
     24        1.1   thorpej  *
     25        1.1   thorpej  * THIS SOFTWARE IS PROVIDED BY WASABI SYSTEMS, INC. ``AS IS'' AND
     26        1.1   thorpej  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     27        1.1   thorpej  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     28        1.1   thorpej  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL WASABI SYSTEMS, INC
     29        1.1   thorpej  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     30        1.1   thorpej  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     31        1.1   thorpej  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     32        1.1   thorpej  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     33        1.1   thorpej  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     34        1.1   thorpej  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     35        1.1   thorpej  * POSSIBILITY OF SUCH DAMAGE.
     36        1.1   thorpej  */
     37        1.1   thorpej 
     38        1.1   thorpej /*
     39        1.1   thorpej  * Timer/clock support for the Intel i80321 I/O processor.
     40        1.1   thorpej  */
     41        1.5     lukem 
     42        1.5     lukem #include <sys/cdefs.h>
     43  1.13.20.1        ad __KERNEL_RCSID(0, "$NetBSD: i80321_timer.c,v 1.13.20.1 2006/11/18 21:29:07 ad Exp $");
     44        1.1   thorpej 
     45        1.2    briggs #include "opt_perfctrs.h"
     46        1.8  rearnsha #include "opt_i80321.h"
     47        1.2    briggs 
     48        1.1   thorpej #include <sys/param.h>
     49        1.1   thorpej #include <sys/systm.h>
     50        1.1   thorpej #include <sys/kernel.h>
     51        1.1   thorpej #include <sys/time.h>
     52  1.13.20.1        ad #include <sys/timetc.h>
     53        1.1   thorpej 
     54        1.6   thorpej #include <dev/clock_subr.h>
     55        1.6   thorpej 
     56        1.1   thorpej #include <machine/bus.h>
     57        1.1   thorpej #include <arm/cpufunc.h>
     58        1.1   thorpej 
     59        1.1   thorpej #include <arm/xscale/i80321reg.h>
     60        1.1   thorpej #include <arm/xscale/i80321var.h>
     61        1.1   thorpej 
     62        1.3   thorpej #include <arm/xscale/xscalevar.h>
     63        1.3   thorpej 
     64        1.1   thorpej void	(*i80321_hardclock_hook)(void);
     65        1.1   thorpej 
     66        1.8  rearnsha #ifndef COUNTS_PER_SEC
     67        1.1   thorpej #define	COUNTS_PER_SEC		200000000	/* 200MHz */
     68        1.8  rearnsha #endif
     69        1.1   thorpej #define	COUNTS_PER_USEC		(COUNTS_PER_SEC / 1000000)
     70        1.1   thorpej 
     71  1.13.20.1        ad #ifdef __HAVE_TIMECOUNTER
     72  1.13.20.1        ad static void tmr1_tc_init(void);
     73  1.13.20.1        ad #endif
     74  1.13.20.1        ad 
     75        1.1   thorpej static void *clock_ih;
     76        1.1   thorpej 
     77        1.1   thorpej static uint32_t counts_per_hz;
     78        1.1   thorpej 
     79        1.1   thorpej int	clockhandler(void *);
     80        1.1   thorpej 
     81       1.13     perry static inline uint32_t
     82        1.1   thorpej tmr0_read(void)
     83        1.1   thorpej {
     84        1.1   thorpej 	uint32_t rv;
     85        1.1   thorpej 
     86       1.13     perry 	__asm volatile("mrc p6, 0, %0, c0, c1, 0"
     87        1.1   thorpej 		: "=r" (rv));
     88        1.1   thorpej 	return (rv);
     89        1.1   thorpej }
     90        1.1   thorpej 
     91       1.13     perry static inline void
     92        1.1   thorpej tmr0_write(uint32_t val)
     93        1.1   thorpej {
     94        1.1   thorpej 
     95       1.13     perry 	__asm volatile("mcr p6, 0, %0, c0, c1, 0"
     96        1.1   thorpej 		:
     97        1.1   thorpej 		: "r" (val));
     98        1.1   thorpej }
     99        1.1   thorpej 
    100       1.13     perry static inline uint32_t
    101        1.1   thorpej tcr0_read(void)
    102        1.1   thorpej {
    103        1.1   thorpej 	uint32_t rv;
    104        1.1   thorpej 
    105       1.13     perry 	__asm volatile("mrc p6, 0, %0, c2, c1, 0"
    106        1.1   thorpej 		: "=r" (rv));
    107        1.1   thorpej 	return (rv);
    108        1.1   thorpej }
    109        1.1   thorpej 
    110       1.13     perry static inline void
    111        1.1   thorpej tcr0_write(uint32_t val)
    112        1.1   thorpej {
    113        1.1   thorpej 
    114       1.13     perry 	__asm volatile("mcr p6, 0, %0, c2, c1, 0"
    115        1.1   thorpej 		:
    116        1.1   thorpej 		: "r" (val));
    117        1.1   thorpej }
    118        1.1   thorpej 
    119       1.13     perry static inline void
    120        1.1   thorpej trr0_write(uint32_t val)
    121        1.1   thorpej {
    122        1.1   thorpej 
    123       1.13     perry 	__asm volatile("mcr p6, 0, %0, c4, c1, 0"
    124        1.1   thorpej 		:
    125        1.1   thorpej 		: "r" (val));
    126        1.1   thorpej }
    127        1.1   thorpej 
    128  1.13.20.1        ad #ifdef __HAVE_TIMECOUNTER
    129  1.13.20.1        ad 
    130  1.13.20.1        ad static inline uint32_t
    131  1.13.20.1        ad tmr1_read(void)
    132  1.13.20.1        ad {
    133  1.13.20.1        ad 	uint32_t rv;
    134  1.13.20.1        ad 
    135  1.13.20.1        ad 	__asm volatile("mrc p6, 0, %0, c1, c1, 0"
    136  1.13.20.1        ad 		: "=r" (rv));
    137  1.13.20.1        ad 	return (rv);
    138  1.13.20.1        ad }
    139  1.13.20.1        ad 
    140  1.13.20.1        ad static inline void
    141  1.13.20.1        ad tmr1_write(uint32_t val)
    142  1.13.20.1        ad {
    143  1.13.20.1        ad 
    144  1.13.20.1        ad 	__asm volatile("mcr p6, 0, %0, c1, c1, 0"
    145  1.13.20.1        ad 		:
    146  1.13.20.1        ad 		: "r" (val));
    147  1.13.20.1        ad }
    148  1.13.20.1        ad 
    149  1.13.20.1        ad static inline uint32_t
    150  1.13.20.1        ad tcr1_read(void)
    151  1.13.20.1        ad {
    152  1.13.20.1        ad 	uint32_t rv;
    153  1.13.20.1        ad 
    154  1.13.20.1        ad 	__asm volatile("mrc p6, 0, %0, c3, c1, 0"
    155  1.13.20.1        ad 		: "=r" (rv));
    156  1.13.20.1        ad 	return (rv);
    157  1.13.20.1        ad }
    158  1.13.20.1        ad 
    159  1.13.20.1        ad static inline void
    160  1.13.20.1        ad tcr1_write(uint32_t val)
    161  1.13.20.1        ad {
    162  1.13.20.1        ad 
    163  1.13.20.1        ad 	__asm volatile("mcr p6, 0, %0, c3, c1, 0"
    164  1.13.20.1        ad 		:
    165  1.13.20.1        ad 		: "r" (val));
    166  1.13.20.1        ad }
    167  1.13.20.1        ad 
    168  1.13.20.1        ad static inline void
    169  1.13.20.1        ad trr1_write(uint32_t val)
    170  1.13.20.1        ad {
    171  1.13.20.1        ad 
    172  1.13.20.1        ad 	__asm volatile("mcr p6, 0, %0, c5, c1, 0"
    173  1.13.20.1        ad 		:
    174  1.13.20.1        ad 		: "r" (val));
    175  1.13.20.1        ad }
    176  1.13.20.1        ad 
    177  1.13.20.1        ad #endif /* __HAVE_TIMECOUNTER */
    178  1.13.20.1        ad 
    179       1.13     perry static inline void
    180        1.1   thorpej tisr_write(uint32_t val)
    181        1.1   thorpej {
    182        1.1   thorpej 
    183       1.13     perry 	__asm volatile("mcr p6, 0, %0, c6, c1, 0"
    184        1.1   thorpej 		:
    185        1.1   thorpej 		: "r" (val));
    186        1.1   thorpej }
    187        1.1   thorpej 
    188        1.1   thorpej /*
    189        1.1   thorpej  * i80321_calibrate_delay:
    190        1.1   thorpej  *
    191        1.1   thorpej  *	Calibrate the delay loop.
    192        1.1   thorpej  */
    193        1.1   thorpej void
    194        1.1   thorpej i80321_calibrate_delay(void)
    195        1.1   thorpej {
    196        1.1   thorpej 
    197        1.1   thorpej 	/*
    198        1.1   thorpej 	 * Just use hz=100 for now -- we'll adjust it, if necessary,
    199        1.1   thorpej 	 * in cpu_initclocks().
    200        1.1   thorpej 	 */
    201        1.1   thorpej 	counts_per_hz = COUNTS_PER_SEC / 100;
    202        1.1   thorpej 
    203        1.1   thorpej 	tmr0_write(0);			/* stop timer */
    204        1.1   thorpej 	tisr_write(TISR_TMR0);		/* clear interrupt */
    205        1.1   thorpej 	trr0_write(counts_per_hz);	/* reload value */
    206        1.1   thorpej 	tcr0_write(counts_per_hz);	/* current value */
    207        1.1   thorpej 
    208        1.1   thorpej 	tmr0_write(TMRx_ENABLE|TMRx_RELOAD|TMRx_CSEL_CORE);
    209        1.1   thorpej }
    210        1.1   thorpej 
    211        1.1   thorpej /*
    212        1.1   thorpej  * cpu_initclocks:
    213        1.1   thorpej  *
    214        1.1   thorpej  *	Initialize the clock and get them going.
    215        1.1   thorpej  */
    216        1.1   thorpej void
    217        1.1   thorpej cpu_initclocks(void)
    218        1.1   thorpej {
    219        1.1   thorpej 	u_int oldirqstate;
    220        1.2    briggs #if defined(PERFCTRS)
    221        1.2    briggs 	void *pmu_ih;
    222        1.2    briggs #endif
    223        1.1   thorpej 
    224        1.1   thorpej 	if (hz < 50 || COUNTS_PER_SEC % hz) {
    225        1.4   thorpej 		aprint_error("Cannot get %d Hz clock; using 100 Hz\n", hz);
    226        1.1   thorpej 		hz = 100;
    227        1.1   thorpej 	}
    228  1.13.20.1        ad #ifndef __HAVE_TIMECOUNTER
    229        1.1   thorpej 	tick = 1000000 / hz;	/* number of microseconds between interrupts */
    230        1.1   thorpej 	tickfix = 1000000 - (hz * tick);
    231        1.1   thorpej 	if (tickfix) {
    232        1.1   thorpej 		int ftp;
    233        1.1   thorpej 
    234        1.1   thorpej 		ftp = min(ffs(tickfix), ffs(hz));
    235        1.1   thorpej 		tickfix >>= (ftp - 1);
    236        1.1   thorpej 		tickfixinterval = hz >> (ftp - 1);
    237        1.1   thorpej 	}
    238  1.13.20.1        ad #endif
    239        1.1   thorpej 
    240        1.1   thorpej 	/*
    241        1.1   thorpej 	 * We only have one timer available; stathz and profhz are
    242        1.1   thorpej 	 * always left as 0 (the upper-layer clock code deals with
    243        1.1   thorpej 	 * this situation).
    244        1.1   thorpej 	 */
    245        1.1   thorpej 	if (stathz != 0)
    246        1.4   thorpej 		aprint_error("Cannot get %d Hz statclock\n", stathz);
    247        1.1   thorpej 	stathz = 0;
    248        1.1   thorpej 
    249        1.1   thorpej 	if (profhz != 0)
    250        1.4   thorpej 		aprint_error("Cannot get %d Hz profclock\n", profhz);
    251        1.1   thorpej 	profhz = 0;
    252        1.1   thorpej 
    253        1.1   thorpej 	/* Report the clock frequency. */
    254        1.4   thorpej 	aprint_normal("clock: hz=%d stathz=%d profhz=%d\n", hz, stathz, profhz);
    255        1.1   thorpej 
    256        1.1   thorpej 	oldirqstate = disable_interrupts(I32_bit);
    257        1.1   thorpej 
    258        1.1   thorpej 	/* Hook up the clock interrupt handler. */
    259        1.1   thorpej 	clock_ih = i80321_intr_establish(ICU_INT_TMR0, IPL_CLOCK,
    260        1.1   thorpej 	    clockhandler, NULL);
    261        1.1   thorpej 	if (clock_ih == NULL)
    262        1.1   thorpej 		panic("cpu_initclocks: unable to register timer interrupt");
    263        1.2    briggs 
    264        1.2    briggs #if defined(PERFCTRS)
    265        1.2    briggs 	pmu_ih = i80321_intr_establish(ICU_INT_PMU, IPL_STATCLOCK,
    266        1.2    briggs 	    xscale_pmc_dispatch, NULL);
    267        1.2    briggs 	if (pmu_ih == NULL)
    268        1.2    briggs 		panic("cpu_initclocks: unable to register timer interrupt");
    269        1.2    briggs #endif
    270        1.1   thorpej 
    271        1.1   thorpej 	/* Set up the new clock parameters. */
    272        1.1   thorpej 
    273        1.1   thorpej 	tmr0_write(0);			/* stop timer */
    274        1.1   thorpej 	tisr_write(TISR_TMR0);		/* clear interrupt */
    275        1.1   thorpej 
    276        1.1   thorpej 	counts_per_hz = COUNTS_PER_SEC / hz;
    277        1.1   thorpej 
    278        1.1   thorpej 	trr0_write(counts_per_hz);	/* reload value */
    279        1.1   thorpej 	tcr0_write(counts_per_hz);	/* current value */
    280        1.1   thorpej 
    281        1.1   thorpej 	tmr0_write(TMRx_ENABLE|TMRx_RELOAD|TMRx_CSEL_CORE);
    282        1.1   thorpej 
    283        1.1   thorpej 	restore_interrupts(oldirqstate);
    284  1.13.20.1        ad 
    285  1.13.20.1        ad #ifdef	__HAVE_TIMECOUNTER
    286  1.13.20.1        ad 	tmr1_tc_init();
    287  1.13.20.1        ad #endif
    288        1.1   thorpej }
    289        1.1   thorpej 
    290        1.1   thorpej /*
    291        1.1   thorpej  * setstatclockrate:
    292        1.1   thorpej  *
    293        1.1   thorpej  *	Set the rate of the statistics clock.
    294        1.1   thorpej  *
    295        1.1   thorpej  *	We assume that hz is either stathz or profhz, and that neither
    296        1.1   thorpej  *	will change after being set by cpu_initclocks().  We could
    297        1.1   thorpej  *	recalculate the intervals here, but that would be a pain.
    298        1.1   thorpej  */
    299        1.1   thorpej void
    300       1.11        he setstatclockrate(int newhz)
    301        1.1   thorpej {
    302        1.1   thorpej 
    303        1.1   thorpej 	/*
    304        1.1   thorpej 	 * XXX Use TMR1?
    305        1.1   thorpej 	 */
    306        1.1   thorpej }
    307        1.1   thorpej 
    308  1.13.20.1        ad #ifndef __HAVE_TIMECOUNTER
    309  1.13.20.1        ad 
    310        1.1   thorpej /*
    311        1.1   thorpej  * microtime:
    312        1.1   thorpej  *
    313        1.1   thorpej  *	Fill in the specified timeval struct with the current time
    314        1.1   thorpej  *	accurate to the microsecond.
    315        1.1   thorpej  */
    316        1.1   thorpej void
    317        1.1   thorpej microtime(struct timeval *tvp)
    318        1.1   thorpej {
    319        1.1   thorpej 	static struct timeval lasttv;
    320        1.1   thorpej 	u_int oldirqstate;
    321        1.1   thorpej 	uint32_t counts;
    322        1.1   thorpej 
    323        1.1   thorpej 	oldirqstate = disable_interrupts(I32_bit);
    324        1.1   thorpej 
    325        1.1   thorpej 	counts = counts_per_hz - tcr0_read();
    326        1.1   thorpej 
    327        1.1   thorpej 	/* Fill in the timeval struct. */
    328        1.1   thorpej 	*tvp = time;
    329        1.1   thorpej 	tvp->tv_usec += (counts / COUNTS_PER_USEC);
    330        1.1   thorpej 
    331        1.1   thorpej 	/* Make sure microseconds doesn't overflow. */
    332        1.1   thorpej 	while (tvp->tv_usec >= 1000000) {
    333        1.1   thorpej 		tvp->tv_usec -= 1000000;
    334        1.1   thorpej 		tvp->tv_sec++;
    335        1.1   thorpej 	}
    336        1.1   thorpej 
    337        1.1   thorpej 	/* Make sure the time has advanced. */
    338        1.1   thorpej 	if (tvp->tv_sec == lasttv.tv_sec &&
    339        1.1   thorpej 	    tvp->tv_usec <= lasttv.tv_usec) {
    340        1.1   thorpej 		tvp->tv_usec = lasttv.tv_usec + 1;
    341        1.1   thorpej 		if (tvp->tv_usec >= 1000000) {
    342        1.1   thorpej 			tvp->tv_usec -= 1000000;
    343        1.1   thorpej 			tvp->tv_sec++;
    344        1.1   thorpej 		}
    345        1.1   thorpej 	}
    346        1.1   thorpej 
    347        1.1   thorpej 	lasttv = *tvp;
    348        1.1   thorpej 
    349        1.1   thorpej 	restore_interrupts(oldirqstate);
    350        1.1   thorpej }
    351        1.1   thorpej 
    352  1.13.20.1        ad 
    353  1.13.20.1        ad #else
    354  1.13.20.1        ad 
    355  1.13.20.1        ad static inline uint32_t
    356  1.13.20.1        ad tmr1_tc_get(struct timecounter *tch)
    357  1.13.20.1        ad {
    358  1.13.20.1        ad 	return (~tcr1_read());
    359  1.13.20.1        ad }
    360  1.13.20.1        ad 
    361  1.13.20.1        ad void
    362  1.13.20.1        ad tmr1_tc_init(void)
    363  1.13.20.1        ad {
    364  1.13.20.1        ad 	static struct timecounter tmr1_tc = {
    365  1.13.20.1        ad 		.tc_get_timecount = tmr1_tc_get,
    366  1.13.20.1        ad 		.tc_frequency = COUNTS_PER_SEC,
    367  1.13.20.1        ad 		.tc_counter_mask = ~0,
    368  1.13.20.1        ad 		.tc_name = "tmr1_count",
    369  1.13.20.1        ad 		.tc_quality = 100,
    370  1.13.20.1        ad 	};
    371  1.13.20.1        ad 
    372  1.13.20.1        ad 	/* program the tc */
    373  1.13.20.1        ad 	trr1_write(~0);	/* reload value */
    374  1.13.20.1        ad 	tcr1_write(~0);	/* current value */
    375  1.13.20.1        ad 
    376  1.13.20.1        ad 	tmr1_write(TMRx_ENABLE|TMRx_RELOAD|TMRx_CSEL_CORE);
    377  1.13.20.1        ad 
    378  1.13.20.1        ad 
    379  1.13.20.1        ad 	trr1_write(~0);
    380  1.13.20.1        ad 	tc_init(&tmr1_tc);
    381  1.13.20.1        ad }
    382  1.13.20.1        ad #endif
    383  1.13.20.1        ad 
    384        1.1   thorpej /*
    385        1.1   thorpej  * delay:
    386        1.1   thorpej  *
    387        1.1   thorpej  *	Delay for at least N microseconds.
    388        1.1   thorpej  */
    389        1.1   thorpej void
    390        1.1   thorpej delay(u_int n)
    391        1.1   thorpej {
    392        1.1   thorpej 	uint32_t cur, last, delta, usecs;
    393        1.1   thorpej 
    394        1.1   thorpej 	/*
    395        1.1   thorpej 	 * This works by polling the timer and counting the
    396        1.1   thorpej 	 * number of microseconds that go by.
    397        1.1   thorpej 	 */
    398        1.1   thorpej 	last = tcr0_read();
    399        1.1   thorpej 	delta = usecs = 0;
    400        1.1   thorpej 
    401        1.1   thorpej 	while (n > usecs) {
    402        1.1   thorpej 		cur = tcr0_read();
    403        1.1   thorpej 
    404        1.1   thorpej 		/* Check to see if the timer has wrapped around. */
    405        1.1   thorpej 		if (last < cur)
    406        1.1   thorpej 			delta += (last + (counts_per_hz - cur));
    407        1.1   thorpej 		else
    408        1.1   thorpej 			delta += (last - cur);
    409        1.1   thorpej 
    410        1.1   thorpej 		last = cur;
    411        1.1   thorpej 
    412        1.1   thorpej 		if (delta >= COUNTS_PER_USEC) {
    413        1.1   thorpej 			usecs += delta / COUNTS_PER_USEC;
    414        1.1   thorpej 			delta %= COUNTS_PER_USEC;
    415        1.1   thorpej 		}
    416        1.1   thorpej 	}
    417        1.1   thorpej }
    418        1.1   thorpej 
    419  1.13.20.1        ad #ifndef __HAVE_GENERIC_TODR
    420        1.6   thorpej todr_chip_handle_t todr_handle;
    421        1.6   thorpej 
    422        1.6   thorpej /*
    423        1.6   thorpej  * todr_attach:
    424        1.6   thorpej  *
    425        1.6   thorpej  *	Set the specified time-of-day register as the system real-time clock.
    426        1.6   thorpej  */
    427        1.6   thorpej void
    428        1.6   thorpej todr_attach(todr_chip_handle_t todr)
    429        1.6   thorpej {
    430        1.6   thorpej 
    431        1.6   thorpej 	if (todr_handle)
    432        1.6   thorpej 		panic("todr_attach: rtc already configured");
    433        1.7   thorpej 	todr_handle = todr;
    434        1.6   thorpej }
    435        1.6   thorpej 
    436        1.1   thorpej /*
    437        1.1   thorpej  * inittodr:
    438        1.1   thorpej  *
    439        1.1   thorpej  *	Initialize time from the time-of-day register.
    440        1.1   thorpej  */
    441        1.6   thorpej #define	MINYEAR		2003	/* minimum plausible year */
    442        1.1   thorpej void
    443        1.1   thorpej inittodr(time_t base)
    444        1.1   thorpej {
    445        1.6   thorpej 	time_t deltat;
    446        1.6   thorpej 	int badbase;
    447        1.6   thorpej 
    448        1.6   thorpej 	if (base < (MINYEAR - 1970) * SECYR) {
    449        1.6   thorpej 		printf("WARNING: preposterous time in file system");
    450        1.6   thorpej 		/* read the system clock anyway */
    451        1.6   thorpej 		base = (MINYEAR - 1970) * SECYR;
    452        1.6   thorpej 		badbase = 1;
    453        1.6   thorpej 	} else
    454        1.6   thorpej 		badbase = 0;
    455        1.6   thorpej 
    456        1.6   thorpej 	if (todr_handle == NULL ||
    457       1.10        he 	    todr_gettime(todr_handle, &time) != 0 ||
    458        1.6   thorpej 	    time.tv_sec == 0) {
    459        1.6   thorpej 		/*
    460        1.6   thorpej 		 * Believe the time in the file system for lack of
    461        1.6   thorpej 		 * anything better, resetting the TODR.
    462        1.6   thorpej 		 */
    463        1.6   thorpej 		time.tv_sec = base;
    464        1.6   thorpej 		time.tv_usec = 0;
    465        1.6   thorpej 		if (todr_handle != NULL && !badbase) {
    466        1.6   thorpej 			printf("WARNING: preposterous clock chip time\n");
    467        1.6   thorpej 			resettodr();
    468        1.6   thorpej 		}
    469        1.6   thorpej 		goto bad;
    470        1.6   thorpej 	}
    471        1.1   thorpej 
    472        1.6   thorpej 	if (!badbase) {
    473        1.6   thorpej 		/*
    474        1.9    simonb 		 * See if we gained/lost two or more days; if
    475        1.6   thorpej 		 * so, assume something is amiss.
    476        1.6   thorpej 		 */
    477        1.6   thorpej 		deltat = time.tv_sec - base;
    478        1.6   thorpej 		if (deltat < 0)
    479        1.6   thorpej 			deltat = -deltat;
    480        1.6   thorpej 		if (deltat < 2 * SECDAY)
    481        1.6   thorpej 			return;		/* all is well */
    482        1.6   thorpej 		printf("WARNING: clock %s %ld days\n",
    483        1.6   thorpej 		    time.tv_sec < base ? "lost" : "gained",
    484        1.6   thorpej 		    (long)deltat / SECDAY);
    485        1.6   thorpej 	}
    486        1.6   thorpej  bad:
    487        1.6   thorpej 	printf("WARNING: CHECK AND RESET THE DATE!\n");
    488        1.1   thorpej }
    489        1.1   thorpej 
    490        1.1   thorpej /*
    491        1.1   thorpej  * resettodr:
    492        1.1   thorpej  *
    493        1.1   thorpej  *	Reset the time-of-day register with the current time.
    494        1.1   thorpej  */
    495        1.1   thorpej void
    496        1.1   thorpej resettodr(void)
    497        1.1   thorpej {
    498        1.6   thorpej 
    499        1.6   thorpej 	if (time.tv_sec == 0)
    500        1.6   thorpej 		return;
    501        1.6   thorpej 
    502        1.6   thorpej 	if (todr_handle != NULL &&
    503       1.10        he 	    todr_settime(todr_handle, &time) != 0)
    504        1.6   thorpej 		printf("resettodr: failed to set time\n");
    505        1.1   thorpej }
    506  1.13.20.1        ad #endif
    507        1.1   thorpej 
    508        1.1   thorpej /*
    509        1.1   thorpej  * clockhandler:
    510        1.1   thorpej  *
    511        1.1   thorpej  *	Handle the hardclock interrupt.
    512        1.1   thorpej  */
    513        1.1   thorpej int
    514        1.1   thorpej clockhandler(void *arg)
    515        1.1   thorpej {
    516        1.1   thorpej 	struct clockframe *frame = arg;
    517        1.1   thorpej 
    518        1.1   thorpej 	tisr_write(TISR_TMR0);
    519        1.1   thorpej 
    520        1.1   thorpej 	hardclock(frame);
    521        1.1   thorpej 
    522        1.1   thorpej 	if (i80321_hardclock_hook != NULL)
    523        1.1   thorpej 		(*i80321_hardclock_hook)();
    524        1.1   thorpej 
    525        1.1   thorpej 	return (1);
    526        1.1   thorpej }
    527