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clock.c revision 1.40.14.1
      1  1.40.14.1    simonb /*	$NetBSD: clock.c,v 1.40.14.1 2008/06/18 16:32:39 simonb Exp $	*/
      2        1.1       leo 
      3        1.1       leo /*
      4        1.1       leo  * Copyright (c) 1982, 1990 The Regents of the University of California.
      5        1.1       leo  * All rights reserved.
      6        1.1       leo  *
      7        1.1       leo  * This code is derived from software contributed to Berkeley by
      8        1.1       leo  * the Systems Programming Group of the University of Utah Computer
      9        1.1       leo  * Science Department.
     10        1.1       leo  *
     11        1.1       leo  * Redistribution and use in source and binary forms, with or without
     12        1.1       leo  * modification, are permitted provided that the following conditions
     13        1.1       leo  * are met:
     14        1.1       leo  * 1. Redistributions of source code must retain the above copyright
     15        1.1       leo  *    notice, this list of conditions and the following disclaimer.
     16        1.1       leo  * 2. Redistributions in binary form must reproduce the above copyright
     17        1.1       leo  *    notice, this list of conditions and the following disclaimer in the
     18        1.1       leo  *    documentation and/or other materials provided with the distribution.
     19       1.34       agc  * 3. Neither the name of the University nor the names of its contributors
     20       1.34       agc  *    may be used to endorse or promote products derived from this software
     21       1.34       agc  *    without specific prior written permission.
     22       1.34       agc  *
     23       1.34       agc  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     24       1.34       agc  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     25       1.34       agc  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     26       1.34       agc  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     27       1.34       agc  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     28       1.34       agc  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     29       1.34       agc  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     30       1.34       agc  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     31       1.34       agc  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     32       1.34       agc  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     33       1.34       agc  * SUCH DAMAGE.
     34       1.34       agc  *
     35       1.34       agc  * from: Utah $Hdr: clock.c 1.18 91/01/21$
     36       1.34       agc  *
     37       1.34       agc  *	@(#)clock.c	7.6 (Berkeley) 5/7/91
     38       1.34       agc  */
     39       1.34       agc /*
     40       1.34       agc  * Copyright (c) 1988 University of Utah.
     41       1.34       agc  *
     42       1.34       agc  * This code is derived from software contributed to Berkeley by
     43       1.34       agc  * the Systems Programming Group of the University of Utah Computer
     44       1.34       agc  * Science Department.
     45       1.34       agc  *
     46       1.34       agc  * Redistribution and use in source and binary forms, with or without
     47       1.34       agc  * modification, are permitted provided that the following conditions
     48       1.34       agc  * are met:
     49       1.34       agc  * 1. Redistributions of source code must retain the above copyright
     50       1.34       agc  *    notice, this list of conditions and the following disclaimer.
     51       1.34       agc  * 2. Redistributions in binary form must reproduce the above copyright
     52       1.34       agc  *    notice, this list of conditions and the following disclaimer in the
     53       1.34       agc  *    documentation and/or other materials provided with the distribution.
     54        1.1       leo  * 3. All advertising materials mentioning features or use of this software
     55        1.1       leo  *    must display the following acknowledgement:
     56        1.1       leo  *	This product includes software developed by the University of
     57        1.1       leo  *	California, Berkeley and its contributors.
     58        1.1       leo  * 4. Neither the name of the University nor the names of its contributors
     59        1.1       leo  *    may be used to endorse or promote products derived from this software
     60        1.1       leo  *    without specific prior written permission.
     61        1.1       leo  *
     62        1.1       leo  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     63        1.1       leo  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     64        1.1       leo  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     65        1.1       leo  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     66        1.1       leo  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     67        1.1       leo  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     68        1.1       leo  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     69        1.1       leo  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     70        1.1       leo  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     71        1.1       leo  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     72        1.1       leo  * SUCH DAMAGE.
     73        1.1       leo  *
     74        1.1       leo  * from: Utah $Hdr: clock.c 1.18 91/01/21$
     75        1.1       leo  *
     76        1.1       leo  *	@(#)clock.c	7.6 (Berkeley) 5/7/91
     77        1.1       leo  */
     78       1.33     lukem 
     79       1.33     lukem #include <sys/cdefs.h>
     80  1.40.14.1    simonb __KERNEL_RCSID(0, "$NetBSD: clock.c,v 1.40.14.1 2008/06/18 16:32:39 simonb Exp $");
     81        1.1       leo 
     82        1.1       leo #include <sys/param.h>
     83        1.1       leo #include <sys/kernel.h>
     84        1.9       leo #include <sys/systm.h>
     85        1.1       leo #include <sys/device.h>
     86       1.14       leo #include <sys/uio.h>
     87       1.14       leo #include <sys/conf.h>
     88       1.32   thorpej #include <sys/proc.h>
     89       1.31  jdolecek #include <sys/event.h>
     90       1.40     joerg #include <sys/timetc.h>
     91       1.18       leo 
     92       1.18       leo #include <dev/clock_subr.h>
     93       1.18       leo 
     94        1.1       leo #include <machine/psl.h>
     95        1.1       leo #include <machine/cpu.h>
     96        1.1       leo #include <machine/iomap.h>
     97        1.1       leo #include <machine/mfp.h>
     98        1.1       leo #include <atari/dev/clockreg.h>
     99       1.14       leo #include <atari/atari/device.h>
    100        1.1       leo 
    101        1.4       leo #if defined(GPROF) && defined(PROFTIMER)
    102        1.4       leo #include <machine/profile.h>
    103        1.1       leo #endif
    104        1.1       leo 
    105       1.40     joerg static int	atari_rtc_get(todr_chip_handle_t, struct clock_ymdhms *);
    106       1.40     joerg static int	atari_rtc_set(todr_chip_handle_t, struct clock_ymdhms *);
    107       1.40     joerg 
    108        1.1       leo /*
    109        1.5       leo  * The MFP clock runs at 2457600Hz. We use a {system,stat,prof}clock divider
    110        1.5       leo  * of 200. Therefore the timer runs at an effective rate of:
    111        1.5       leo  * 2457600/200 = 12288Hz.
    112        1.5       leo  */
    113        1.5       leo #define CLOCK_HZ	12288
    114        1.5       leo 
    115       1.40     joerg static u_int clk_getcounter(struct timecounter *);
    116       1.40     joerg 
    117       1.40     joerg static struct timecounter clk_timecounter = {
    118       1.40     joerg 	clk_getcounter,	/* get_timecount */
    119       1.40     joerg 	0,		/* no poll_pps */
    120       1.40     joerg 	~0u,		/* counter_mask */
    121       1.40     joerg 	CLOCK_HZ,	/* frequency */
    122       1.40     joerg 	"clock",	/* name, overriden later */
    123       1.40     joerg 	100,		/* quality */
    124       1.40     joerg 	NULL,		/* prev */
    125       1.40     joerg 	NULL,		/* next */
    126       1.40     joerg };
    127       1.40     joerg 
    128        1.5       leo /*
    129        1.1       leo  * Machine-dependent clock routines.
    130        1.1       leo  *
    131        1.1       leo  * Inittodr initializes the time of day hardware which provides
    132        1.1       leo  * date functions.
    133        1.1       leo  *
    134        1.1       leo  * Resettodr restores the time of day hardware after a time change.
    135        1.1       leo  */
    136        1.1       leo 
    137       1.14       leo struct clock_softc {
    138       1.14       leo 	struct device	sc_dev;
    139       1.14       leo 	int		sc_flags;
    140       1.14       leo };
    141       1.14       leo 
    142       1.14       leo /*
    143       1.14       leo  *  'sc_flags' state info. Only used by the rtc-device functions.
    144       1.14       leo  */
    145       1.14       leo #define	RTC_OPEN	1
    146       1.14       leo 
    147       1.14       leo dev_type_open(rtcopen);
    148       1.14       leo dev_type_close(rtcclose);
    149       1.14       leo dev_type_read(rtcread);
    150       1.14       leo dev_type_write(rtcwrite);
    151       1.14       leo 
    152       1.14       leo static void	clockattach __P((struct device *, struct device *, void *));
    153       1.17       leo static int	clockmatch __P((struct device *, struct cfdata *, void *));
    154        1.1       leo 
    155       1.30   thorpej CFATTACH_DECL(clock, sizeof(struct clock_softc),
    156       1.30   thorpej     clockmatch, clockattach, NULL, NULL);
    157       1.10   thorpej 
    158       1.19   thorpej extern struct cfdriver clock_cd;
    159       1.28   gehenna 
    160       1.28   gehenna const struct cdevsw rtc_cdevsw = {
    161       1.28   gehenna 	rtcopen, rtcclose, rtcread, rtcwrite, noioctl,
    162       1.31  jdolecek 	nostop, notty, nopoll, nommap, nokqfilter,
    163       1.28   gehenna };
    164        1.1       leo 
    165       1.16       leo void statintr __P((struct clockframe));
    166        1.9       leo 
    167       1.14       leo static int	twodigits __P((char *, int));
    168        1.1       leo 
    169        1.5       leo static int	divisor;	/* Systemclock divisor	*/
    170        1.5       leo 
    171        1.5       leo /*
    172        1.5       leo  * Statistics and profile clock intervals and variances. Variance must
    173        1.5       leo  * be a power of 2. Since this gives us an even number, not an odd number,
    174        1.5       leo  * we discard one case and compensate. That is, a variance of 64 would
    175        1.5       leo  * give us offsets in [0..63]. Instead, we take offsets in [1..63].
    176       1.26       wiz  * This is symmetric around the point 32, or statvar/2, and thus averages
    177        1.5       leo  * to that value (assuming uniform random numbers).
    178        1.5       leo  */
    179        1.5       leo #ifdef STATCLOCK
    180        1.5       leo static int	statvar = 32;	/* {stat,prof}clock variance		*/
    181        1.5       leo static int	statmin;	/* statclock divisor - variance/2	*/
    182        1.5       leo static int	profmin;	/* profclock divisor - variance/2	*/
    183       1.27       wiz static int	clk2min;	/* current, from above choices		*/
    184        1.5       leo #endif
    185        1.1       leo 
    186        1.1       leo int
    187       1.17       leo clockmatch(pdp, cfp, auxp)
    188       1.14       leo struct device	*pdp;
    189       1.17       leo struct cfdata	*cfp;
    190       1.17       leo void		*auxp;
    191        1.1       leo {
    192       1.15       leo 	if (!atari_realconfig) {
    193       1.15       leo 	    /*
    194       1.15       leo 	     * Initialize Timer-B in the ST-MFP. This timer is used by
    195       1.15       leo 	     * the 'delay' function below. This timer is setup to be
    196       1.15       leo 	     * continueously counting from 255 back to zero at a
    197       1.15       leo 	     * frequency of 614400Hz. We do this *early* in the
    198       1.15       leo 	     * initialisation process.
    199       1.15       leo 	     */
    200       1.15       leo 	    MFP->mf_tbcr  = 0;		/* Stop timer			*/
    201       1.15       leo 	    MFP->mf_iera &= ~IA_TIMB;	/* Disable timer interrupts	*/
    202       1.15       leo 	    MFP->mf_tbdr  = 0;
    203       1.15       leo 	    MFP->mf_tbcr  = T_Q004;	/* Start timer			*/
    204       1.15       leo 
    205       1.15       leo 	    return 0;
    206       1.15       leo 	}
    207        1.1       leo 	if(!strcmp("clock", auxp))
    208        1.1       leo 		return(1);
    209        1.1       leo 	return(0);
    210        1.1       leo }
    211        1.1       leo 
    212        1.1       leo /*
    213        1.1       leo  * Start the real-time clock.
    214        1.1       leo  */
    215        1.1       leo void clockattach(pdp, dp, auxp)
    216        1.1       leo struct device	*pdp, *dp;
    217       1.14       leo void		*auxp;
    218        1.1       leo {
    219       1.14       leo 	struct clock_softc *sc = (void *)dp;
    220       1.40     joerg 	static struct todr_chip_handle	tch;
    221       1.40     joerg 
    222       1.40     joerg 	tch.todr_gettime_ymdhms = atari_rtc_get;
    223       1.40     joerg 	tch.todr_settime_ymdhms = atari_rtc_set;
    224       1.40     joerg 	tch.todr_setwen = NULL;
    225       1.40     joerg 
    226       1.40     joerg 	todr_attach(&tch);
    227       1.14       leo 
    228       1.14       leo 	sc->sc_flags = 0;
    229       1.14       leo 
    230        1.1       leo 	/*
    231        1.3       leo 	 * Initialize Timer-A in the ST-MFP. We use a divisor of 200.
    232        1.3       leo 	 * The MFP clock runs at 2457600Hz. Therefore the timer runs
    233        1.3       leo 	 * at an effective rate of: 2457600/200 = 12288Hz. The
    234        1.3       leo 	 * following expression works for 48, 64 or 96 hz.
    235        1.1       leo 	 */
    236        1.5       leo 	divisor       = CLOCK_HZ/hz;
    237        1.2       leo 	MFP->mf_tacr  = 0;		/* Stop timer			*/
    238        1.2       leo 	MFP->mf_iera &= ~IA_TIMA;	/* Disable timer interrupts	*/
    239        1.2       leo 	MFP->mf_tadr  = divisor;	/* Set divisor			*/
    240        1.1       leo 
    241       1.40     joerg 	clk_timecounter.tc_frequency = CLOCK_HZ;
    242       1.40     joerg 	tc_init(&clk_timecounter);
    243       1.40     joerg 
    244        1.5       leo 	if (hz != 48 && hz != 64 && hz != 96) { /* XXX */
    245       1.13  christos 		printf (": illegal value %d for systemclock, reset to %d\n\t",
    246        1.5       leo 								hz, 64);
    247        1.5       leo 		hz = 64;
    248        1.5       leo 	}
    249       1.13  christos 	printf(": system hz %d timer-A divisor 200/%d\n", hz, divisor);
    250        1.1       leo 
    251        1.5       leo #ifdef STATCLOCK
    252        1.5       leo 	if ((stathz == 0) || (stathz > hz) || (CLOCK_HZ % stathz))
    253        1.5       leo 		stathz = hz;
    254        1.5       leo 	if ((profhz == 0) || (profhz > (hz << 1)) || (CLOCK_HZ % profhz))
    255        1.5       leo 		profhz = hz << 1;
    256        1.5       leo 
    257        1.5       leo 	MFP->mf_tcdcr &= 0x7;			/* Stop timer		*/
    258        1.5       leo 	MFP->mf_ierb  &= ~IB_TIMC;		/* Disable timer inter.	*/
    259        1.5       leo 	MFP->mf_tcdr   = CLOCK_HZ/stathz;	/* Set divisor		*/
    260        1.5       leo 
    261        1.5       leo 	statmin  = (CLOCK_HZ/stathz) - (statvar >> 1);
    262        1.5       leo 	profmin  = (CLOCK_HZ/profhz) - (statvar >> 1);
    263        1.5       leo 	clk2min  = statmin;
    264        1.5       leo #endif /* STATCLOCK */
    265       1.14       leo 
    266        1.1       leo }
    267        1.1       leo 
    268        1.1       leo void cpu_initclocks()
    269        1.1       leo {
    270        1.3       leo 	MFP->mf_tacr  = T_Q200;		/* Start timer			*/
    271       1.20       leo 	MFP->mf_ipra  = (u_int8_t)~IA_TIMA;/* Clear pending interrupts	*/
    272        1.2       leo 	MFP->mf_iera |= IA_TIMA;	/* Enable timer interrupts	*/
    273        1.2       leo 	MFP->mf_imra |= IA_TIMA;	/*    .....			*/
    274        1.5       leo 
    275        1.5       leo #ifdef STATCLOCK
    276        1.5       leo 	MFP->mf_tcdcr = (MFP->mf_tcdcr & 0x7) | (T_Q200<<4); /* Start	*/
    277       1.20       leo 	MFP->mf_iprb  = (u_int8_t)~IB_TIMC;/* Clear pending interrupts	*/
    278        1.5       leo 	MFP->mf_ierb |= IB_TIMC;	/* Enable timer interrupts	*/
    279        1.5       leo 	MFP->mf_imrb |= IB_TIMC;	/*    .....			*/
    280        1.5       leo #endif /* STATCLOCK */
    281        1.1       leo }
    282        1.1       leo 
    283        1.9       leo void
    284        1.5       leo setstatclockrate(newhz)
    285        1.5       leo 	int newhz;
    286        1.1       leo {
    287        1.5       leo #ifdef STATCLOCK
    288        1.5       leo 	if (newhz == stathz)
    289        1.5       leo 		clk2min = statmin;
    290        1.5       leo 	else clk2min = profmin;
    291        1.5       leo #endif /* STATCLOCK */
    292        1.1       leo }
    293        1.1       leo 
    294        1.5       leo #ifdef STATCLOCK
    295        1.5       leo void
    296        1.5       leo statintr(frame)
    297       1.16       leo 	struct clockframe frame;
    298        1.5       leo {
    299        1.5       leo 	register int	var, r;
    300        1.5       leo 
    301        1.5       leo 	var = statvar - 1;
    302        1.5       leo 	do {
    303        1.5       leo 		r = random() & var;
    304        1.5       leo 	} while(r == 0);
    305        1.5       leo 
    306        1.5       leo 	/*
    307        1.5       leo 	 * Note that we are always lagging behind as the new divisor
    308        1.5       leo 	 * value will not be loaded until the next interrupt. This
    309        1.5       leo 	 * shouldn't disturb the median frequency (I think ;-) ) as
    310        1.5       leo 	 * only the value used when switching frequencies is used
    311        1.5       leo 	 * twice. This shouldn't happen very often.
    312        1.5       leo 	 */
    313        1.5       leo 	MFP->mf_tcdr = clk2min + r;
    314        1.5       leo 
    315       1.16       leo 	statclock(&frame);
    316        1.5       leo }
    317        1.5       leo #endif /* STATCLOCK */
    318        1.5       leo 
    319       1.40     joerg static u_int
    320       1.40     joerg clk_getcounter(struct timecounter *tc)
    321        1.1       leo {
    322       1.40     joerg 	u_int delta;
    323       1.40     joerg 	u_char ipra, tadr;
    324       1.40     joerg 	int s, cur_hardclock;
    325        1.3       leo 
    326       1.40     joerg 	s = splhigh();
    327       1.40     joerg 	ipra = MFP->mf_ipra;
    328       1.40     joerg 	tadr = MFP->mf_tadr;
    329       1.40     joerg 	delta = divisor - tadr;
    330       1.40     joerg 
    331       1.40     joerg 	if (ipra & IA_TIMA)
    332       1.40     joerg 		delta += divisor;
    333       1.40     joerg 	cur_hardclock = hardclock_ticks;
    334       1.40     joerg 	splx(s);
    335       1.22       leo 
    336       1.40     joerg 	return (divisor - tadr) + divisor * cur_hardclock;
    337        1.1       leo }
    338        1.1       leo 
    339        1.2       leo #define TIMB_FREQ	614400
    340        1.2       leo #define TIMB_LIMIT	256
    341        1.1       leo 
    342        1.1       leo /*
    343        1.1       leo  * Wait "n" microseconds.
    344        1.2       leo  * Relies on MFP-Timer B counting down from TIMB_LIMIT at TIMB_FREQ Hz.
    345        1.1       leo  * Note: timer had better have been programmed before this is first used!
    346        1.1       leo  */
    347       1.14       leo void
    348       1.39     joerg delay(unsigned int n)
    349        1.1       leo {
    350       1.39     joerg 	int	ticks, otick, remaining;
    351        1.1       leo 
    352        1.1       leo 	/*
    353        1.1       leo 	 * Read the counter first, so that the rest of the setup overhead is
    354        1.1       leo 	 * counted.
    355        1.1       leo 	 */
    356        1.2       leo 	otick = MFP->mf_tbdr;
    357        1.1       leo 
    358       1.39     joerg 	if (n <= UINT_MAX / TIMB_FREQ) {
    359       1.39     joerg 		/*
    360       1.39     joerg 		 * For unsigned arithmetic, division can be replaced with
    361       1.39     joerg 		 * multiplication with the inverse and a shift.
    362       1.39     joerg 		 */
    363       1.39     joerg 		remaining = n * TIMB_FREQ / 1000000;
    364       1.39     joerg 	} else {
    365       1.39     joerg 		/* This is a very long delay.
    366       1.39     joerg 		 * Being slow here doesn't matter.
    367       1.39     joerg 		 */
    368       1.39     joerg 		remaining = (unsigned long long) n * TIMB_FREQ / 1000000;
    369        1.1       leo 	}
    370        1.1       leo 
    371       1.39     joerg 	while(remaining > 0) {
    372       1.35        he 		ticks = MFP->mf_tbdr;
    373       1.35        he 		if(ticks > otick)
    374       1.39     joerg 			remaining -= TIMB_LIMIT - (ticks - otick);
    375       1.39     joerg 		else
    376       1.39     joerg 			remaining -= otick - ticks;
    377       1.35        he 		otick = ticks;
    378        1.1       leo 	}
    379        1.1       leo }
    380        1.1       leo 
    381        1.4       leo #ifdef GPROF
    382        1.1       leo /*
    383        1.1       leo  * profclock() is expanded in line in lev6intr() unless profiling kernel.
    384        1.1       leo  * Assumes it is called with clock interrupts blocked.
    385        1.1       leo  */
    386        1.1       leo profclock(pc, ps)
    387       1.38  christos 	void *pc;
    388        1.1       leo 	int ps;
    389        1.1       leo {
    390        1.1       leo 	/*
    391        1.1       leo 	 * Came from user mode.
    392        1.1       leo 	 * If this process is being profiled record the tick.
    393        1.1       leo 	 */
    394        1.1       leo 	if (USERMODE(ps)) {
    395        1.1       leo 		if (p->p_stats.p_prof.pr_scale)
    396        1.1       leo 			addupc(pc, &curproc->p_stats.p_prof, 1);
    397        1.1       leo 	}
    398        1.1       leo 	/*
    399        1.1       leo 	 * Came from kernel (supervisor) mode.
    400        1.1       leo 	 * If we are profiling the kernel, record the tick.
    401        1.1       leo 	 */
    402        1.1       leo 	else if (profiling < 2) {
    403        1.1       leo 		register int s = pc - s_lowpc;
    404        1.1       leo 
    405        1.1       leo 		if (s < s_textsize)
    406        1.1       leo 			kcount[s / (HISTFRACTION * sizeof (*kcount))]++;
    407        1.1       leo 	}
    408        1.1       leo 	/*
    409        1.1       leo 	 * Kernel profiling was on but has been disabled.
    410        1.1       leo 	 * Mark as no longer profiling kernel and if all profiling done,
    411        1.1       leo 	 * disable the clock.
    412        1.1       leo 	 */
    413        1.1       leo 	if (profiling && (profon & PRF_KERNEL)) {
    414        1.1       leo 		profon &= ~PRF_KERNEL;
    415        1.1       leo 		if (profon == PRF_NONE)
    416        1.1       leo 			stopprofclock();
    417        1.1       leo 	}
    418        1.1       leo }
    419        1.1       leo #endif
    420        1.7       leo 
    421        1.7       leo /***********************************************************************
    422        1.7       leo  *                   Real Time Clock support                           *
    423        1.7       leo  ***********************************************************************/
    424        1.7       leo 
    425        1.7       leo u_int mc146818_read(rtc, regno)
    426        1.7       leo void	*rtc;
    427        1.7       leo u_int	regno;
    428        1.7       leo {
    429        1.7       leo 	((struct rtc *)rtc)->rtc_regno = regno;
    430        1.7       leo 	return(((struct rtc *)rtc)->rtc_data & 0377);
    431        1.7       leo }
    432        1.7       leo 
    433        1.7       leo void mc146818_write(rtc, regno, value)
    434        1.7       leo void	*rtc;
    435        1.7       leo u_int	regno, value;
    436        1.7       leo {
    437        1.7       leo 	((struct rtc *)rtc)->rtc_regno = regno;
    438        1.7       leo 	((struct rtc *)rtc)->rtc_data  = value;
    439        1.7       leo }
    440        1.1       leo 
    441       1.40     joerg static int
    442       1.40     joerg atari_rtc_get(todr_chip_handle_t todr, struct clock_ymdhms *dtp)
    443        1.1       leo {
    444       1.18       leo 	int			sps;
    445       1.18       leo 	mc_todregs		clkregs;
    446       1.25       leo 	u_int			regb;
    447        1.3       leo 
    448        1.3       leo 	sps = splhigh();
    449       1.25       leo 	regb = mc146818_read(RTC, MC_REGB);
    450        1.3       leo 	MC146818_GETTOD(RTC, &clkregs);
    451        1.3       leo 	splx(sps);
    452        1.1       leo 
    453       1.25       leo 	regb &= MC_REGB_24HR|MC_REGB_BINARY;
    454       1.25       leo 	if (regb != (MC_REGB_24HR|MC_REGB_BINARY)) {
    455       1.25       leo 		printf("Error: Nonstandard RealTimeClock Configuration -"
    456       1.25       leo 			" value ignored\n"
    457       1.25       leo 			"       A write to /dev/rtc will correct this.\n");
    458       1.25       leo 			return(0);
    459       1.25       leo 	}
    460        1.9       leo 	if(clkregs[MC_SEC] > 59)
    461       1.40     joerg 		return -1;
    462        1.9       leo 	if(clkregs[MC_MIN] > 59)
    463       1.40     joerg 		return -1;
    464        1.9       leo 	if(clkregs[MC_HOUR] > 23)
    465       1.40     joerg 		return -1;
    466        1.3       leo 	if(range_test(clkregs[MC_DOM], 1, 31))
    467       1.40     joerg 		return -1;
    468        1.3       leo 	if (range_test(clkregs[MC_MONTH], 1, 12))
    469       1.40     joerg 		return -1;
    470       1.24       leo 	if(clkregs[MC_YEAR] > 99)
    471       1.40     joerg 		return -1;
    472       1.40     joerg 
    473       1.40     joerg 	dtp->dt_year = clkregs[MC_YEAR] + GEMSTARTOFTIME;
    474       1.40     joerg 	dtp->dt_mon  = clkregs[MC_MONTH];
    475       1.40     joerg 	dtp->dt_day  = clkregs[MC_DOM];
    476       1.40     joerg 	dtp->dt_hour = clkregs[MC_HOUR];
    477       1.40     joerg 	dtp->dt_min  = clkregs[MC_MIN];
    478       1.40     joerg 	dtp->dt_sec  = clkregs[MC_SEC];
    479       1.40     joerg 
    480       1.40     joerg 	return 0;
    481       1.40     joerg }
    482       1.40     joerg 
    483       1.40     joerg static int
    484       1.40     joerg atari_rtc_set(todr_chip_handle_t todr, struct clock_ymdhms *dtp)
    485       1.40     joerg {
    486       1.40     joerg 	int s;
    487       1.40     joerg 	mc_todregs clkregs;
    488        1.1       leo 
    489       1.40     joerg 	clkregs[MC_YEAR] = dtp->dt_year - GEMSTARTOFTIME;
    490       1.40     joerg 	clkregs[MC_MONTH] = dtp->dt_mon;
    491       1.40     joerg 	clkregs[MC_DOM] = dtp->dt_day;
    492       1.40     joerg 	clkregs[MC_HOUR] = dtp->dt_hour;
    493       1.40     joerg 	clkregs[MC_MIN] = dtp->dt_min;
    494       1.40     joerg 	clkregs[MC_SEC] = dtp->dt_sec;
    495        1.1       leo 
    496       1.40     joerg 	s = splclock();
    497       1.40     joerg 	MC146818_PUTTOD(RTC, &clkregs);
    498       1.40     joerg 	splx(s);
    499       1.40     joerg 
    500       1.40     joerg 	return 0;
    501        1.1       leo }
    502       1.40     joerg 
    503       1.14       leo /***********************************************************************
    504       1.14       leo  *                   RTC-device support				       *
    505       1.14       leo  ***********************************************************************/
    506       1.14       leo int
    507       1.36  christos rtcopen(dev, flag, mode, l)
    508       1.14       leo 	dev_t		dev;
    509       1.14       leo 	int		flag, mode;
    510       1.36  christos 	struct lwp	*l;
    511       1.14       leo {
    512       1.14       leo 	int			unit = minor(dev);
    513       1.14       leo 	struct clock_softc	*sc;
    514       1.14       leo 
    515  1.40.14.1    simonb 	sc = device_lookup_private(&clock_cd, unit);
    516  1.40.14.1    simonb 	if (sc == NULL)
    517       1.14       leo 		return ENXIO;
    518       1.14       leo 	if (sc->sc_flags & RTC_OPEN)
    519       1.14       leo 		return EBUSY;
    520       1.14       leo 
    521       1.14       leo 	sc->sc_flags = RTC_OPEN;
    522       1.14       leo 	return 0;
    523       1.14       leo }
    524        1.1       leo 
    525       1.14       leo int
    526       1.36  christos rtcclose(dev, flag, mode, l)
    527       1.14       leo 	dev_t		dev;
    528       1.14       leo 	int		flag;
    529       1.14       leo 	int		mode;
    530       1.36  christos 	struct lwp	*l;
    531        1.1       leo {
    532       1.14       leo 	int			unit = minor(dev);
    533  1.40.14.1    simonb 	struct clock_softc	*sc = device_lookup_private(&clock_cd, unit);
    534       1.14       leo 
    535       1.14       leo 	sc->sc_flags = 0;
    536       1.14       leo 	return 0;
    537       1.14       leo }
    538       1.14       leo 
    539       1.14       leo int
    540       1.14       leo rtcread(dev, uio, flags)
    541       1.14       leo 	dev_t		dev;
    542       1.14       leo 	struct uio	*uio;
    543       1.14       leo 	int		flags;
    544       1.14       leo {
    545       1.14       leo 	struct clock_softc	*sc;
    546       1.14       leo 	mc_todregs		clkregs;
    547       1.14       leo 	int			s, length;
    548       1.14       leo 	char			buffer[16];
    549       1.14       leo 
    550  1.40.14.1    simonb 	sc = device_lookup_private(&clock_cd, minor(dev));
    551       1.14       leo 
    552       1.14       leo 	s = splhigh();
    553       1.14       leo 	MC146818_GETTOD(RTC, &clkregs);
    554       1.14       leo 	splx(s);
    555       1.14       leo 
    556       1.21       leo 	sprintf(buffer, "%4d%02d%02d%02d%02d.%02d\n",
    557       1.21       leo 	    clkregs[MC_YEAR] + GEMSTARTOFTIME,
    558       1.14       leo 	    clkregs[MC_MONTH], clkregs[MC_DOM],
    559       1.14       leo 	    clkregs[MC_HOUR], clkregs[MC_MIN], clkregs[MC_SEC]);
    560       1.14       leo 
    561       1.14       leo 	if (uio->uio_offset > strlen(buffer))
    562       1.14       leo 		return 0;
    563        1.1       leo 
    564       1.14       leo 	length = strlen(buffer) - uio->uio_offset;
    565       1.14       leo 	if (length > uio->uio_resid)
    566       1.14       leo 		length = uio->uio_resid;
    567        1.1       leo 
    568       1.38  christos 	return(uiomove((void *)buffer, length, uio));
    569       1.14       leo }
    570       1.14       leo 
    571       1.14       leo static int
    572       1.14       leo twodigits(buffer, pos)
    573       1.14       leo 	char *buffer;
    574       1.14       leo 	int pos;
    575       1.14       leo {
    576       1.14       leo 	int result = 0;
    577       1.14       leo 
    578       1.14       leo 	if (buffer[pos] >= '0' && buffer[pos] <= '9')
    579       1.14       leo 		result = (buffer[pos] - '0') * 10;
    580       1.14       leo 	if (buffer[pos+1] >= '0' && buffer[pos+1] <= '9')
    581       1.14       leo 		result += (buffer[pos+1] - '0');
    582       1.14       leo 	return(result);
    583       1.14       leo }
    584        1.1       leo 
    585       1.14       leo int
    586       1.14       leo rtcwrite(dev, uio, flags)
    587       1.14       leo 	dev_t		dev;
    588       1.14       leo 	struct uio	*uio;
    589       1.14       leo 	int		flags;
    590       1.14       leo {
    591       1.14       leo 	mc_todregs		clkregs;
    592       1.14       leo 	int			s, length, error;
    593       1.21       leo 	char			buffer[16];
    594       1.14       leo 
    595       1.14       leo 	/*
    596       1.14       leo 	 * We require atomic updates!
    597       1.14       leo 	 */
    598       1.14       leo 	length = uio->uio_resid;
    599       1.14       leo 	if (uio->uio_offset || (length != sizeof(buffer)
    600       1.14       leo 	  && length != sizeof(buffer - 1)))
    601       1.14       leo 		return(EINVAL);
    602       1.14       leo 
    603       1.38  christos 	if ((error = uiomove((void *)buffer, sizeof(buffer), uio)))
    604       1.14       leo 		return(error);
    605        1.1       leo 
    606       1.14       leo 	if (length == sizeof(buffer) && buffer[sizeof(buffer) - 1] != '\n')
    607       1.14       leo 		return(EINVAL);
    608        1.1       leo 
    609       1.14       leo 	s = splclock();
    610       1.25       leo 	mc146818_write(RTC, MC_REGB,
    611       1.25       leo 		mc146818_read(RTC, MC_REGB) | MC_REGB_24HR | MC_REGB_BINARY);
    612        1.3       leo 	MC146818_GETTOD(RTC, &clkregs);
    613       1.14       leo 	splx(s);
    614       1.14       leo 
    615       1.21       leo 	clkregs[MC_SEC]   = twodigits(buffer, 13);
    616       1.21       leo 	clkregs[MC_MIN]   = twodigits(buffer, 10);
    617       1.21       leo 	clkregs[MC_HOUR]  = twodigits(buffer, 8);
    618       1.21       leo 	clkregs[MC_DOM]   = twodigits(buffer, 6);
    619       1.21       leo 	clkregs[MC_MONTH] = twodigits(buffer, 4);
    620       1.21       leo 	s = twodigits(buffer, 0) * 100 + twodigits(buffer, 2);
    621       1.14       leo 	clkregs[MC_YEAR]  = s - GEMSTARTOFTIME;
    622       1.14       leo 
    623       1.14       leo 	s = splclock();
    624        1.3       leo 	MC146818_PUTTOD(RTC, &clkregs);
    625       1.14       leo 	splx(s);
    626        1.1       leo 
    627       1.14       leo 	return(0);
    628        1.1       leo }
    629