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clock.c revision 1.36
      1  1.36  christos /*	$NetBSD: clock.c,v 1.36 2019/10/16 18:29:49 christos Exp $	*/
      2   1.1     perry 
      3   1.1     perry /*-
      4   1.1     perry  * Copyright (c) 1990 The Regents of the University of California.
      5   1.1     perry  * All rights reserved.
      6   1.1     perry  *
      7   1.1     perry  * This code is derived from software contributed to Berkeley by
      8   1.1     perry  * William Jolitz and Don Ahn.
      9   1.1     perry  *
     10   1.1     perry  * Redistribution and use in source and binary forms, with or without
     11   1.1     perry  * modification, are permitted provided that the following conditions
     12   1.1     perry  * are met:
     13   1.1     perry  * 1. Redistributions of source code must retain the above copyright
     14   1.1     perry  *    notice, this list of conditions and the following disclaimer.
     15   1.1     perry  * 2. Redistributions in binary form must reproduce the above copyright
     16   1.1     perry  *    notice, this list of conditions and the following disclaimer in the
     17   1.1     perry  *    documentation and/or other materials provided with the distribution.
     18   1.1     perry  * 3. Neither the name of the University nor the names of its contributors
     19   1.1     perry  *    may be used to endorse or promote products derived from this software
     20   1.1     perry  *    without specific prior written permission.
     21   1.1     perry  *
     22   1.1     perry  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     23   1.1     perry  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     24   1.1     perry  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     25   1.1     perry  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     26   1.1     perry  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     27   1.1     perry  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     28   1.1     perry  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     29   1.1     perry  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     30   1.1     perry  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     31   1.1     perry  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     32   1.1     perry  * SUCH DAMAGE.
     33   1.1     perry  *
     34   1.1     perry  *	@(#)clock.c	7.2 (Berkeley) 5/12/91
     35   1.1     perry  */
     36   1.1     perry /*-
     37   1.1     perry  * Copyright (c) 1993, 1994 Charles M. Hannum.
     38   1.1     perry  *
     39   1.1     perry  * This code is derived from software contributed to Berkeley by
     40   1.1     perry  * William Jolitz and Don Ahn.
     41   1.1     perry  *
     42   1.1     perry  * Redistribution and use in source and binary forms, with or without
     43   1.1     perry  * modification, are permitted provided that the following conditions
     44   1.1     perry  * are met:
     45   1.1     perry  * 1. Redistributions of source code must retain the above copyright
     46   1.1     perry  *    notice, this list of conditions and the following disclaimer.
     47   1.1     perry  * 2. Redistributions in binary form must reproduce the above copyright
     48   1.1     perry  *    notice, this list of conditions and the following disclaimer in the
     49   1.1     perry  *    documentation and/or other materials provided with the distribution.
     50   1.1     perry  * 3. All advertising materials mentioning features or use of this software
     51   1.1     perry  *    must display the following acknowledgement:
     52   1.1     perry  *	This product includes software developed by the University of
     53   1.1     perry  *	California, Berkeley and its contributors.
     54   1.1     perry  * 4. Neither the name of the University nor the names of its contributors
     55   1.1     perry  *    may be used to endorse or promote products derived from this software
     56   1.1     perry  *    without specific prior written permission.
     57   1.1     perry  *
     58   1.1     perry  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     59   1.1     perry  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     60   1.1     perry  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     61   1.1     perry  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     62   1.1     perry  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     63   1.1     perry  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     64   1.1     perry  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     65   1.1     perry  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     66   1.1     perry  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     67   1.1     perry  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     68   1.1     perry  * SUCH DAMAGE.
     69   1.1     perry  *
     70   1.1     perry  *	@(#)clock.c	7.2 (Berkeley) 5/12/91
     71   1.1     perry  */
     72   1.1     perry /*
     73   1.1     perry  * Mach Operating System
     74   1.1     perry  * Copyright (c) 1991,1990,1989 Carnegie Mellon University
     75   1.1     perry  * All Rights Reserved.
     76   1.1     perry  *
     77   1.1     perry  * Permission to use, copy, modify and distribute this software and its
     78   1.1     perry  * documentation is hereby granted, provided that both the copyright
     79   1.1     perry  * notice and this permission notice appear in all copies of the
     80   1.1     perry  * software, derivative works or modified versions, and any portions
     81   1.1     perry  * thereof, and that both notices appear in supporting documentation.
     82   1.1     perry  *
     83   1.1     perry  * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
     84   1.1     perry  * CONDITION.  CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND FOR
     85   1.1     perry  * ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
     86   1.1     perry  *
     87   1.1     perry  * Carnegie Mellon requests users of this software to return to
     88   1.1     perry  *
     89   1.1     perry  *  Software Distribution Coordinator  or  Software.Distribution (at) CS.CMU.EDU
     90   1.1     perry  *  School of Computer Science
     91   1.1     perry  *  Carnegie Mellon University
     92   1.1     perry  *  Pittsburgh PA 15213-3890
     93   1.1     perry  *
     94   1.1     perry  * any improvements or extensions that they make and grant Carnegie Mellon
     95   1.1     perry  * the rights to redistribute these changes.
     96   1.1     perry  */
     97   1.1     perry /*
     98   1.1     perry   Copyright 1988, 1989 by Intel Corporation, Santa Clara, California.
     99   1.1     perry 
    100   1.1     perry 		All Rights Reserved
    101   1.1     perry 
    102   1.1     perry Permission to use, copy, modify, and distribute this software and
    103   1.1     perry its documentation for any purpose and without fee is hereby
    104   1.1     perry granted, provided that the above copyright notice appears in all
    105   1.1     perry copies and that both the copyright notice and this permission notice
    106   1.1     perry appear in supporting documentation, and that the name of Intel
    107   1.1     perry not be used in advertising or publicity pertaining to distribution
    108   1.1     perry of the software without specific, written prior permission.
    109   1.1     perry 
    110   1.1     perry INTEL DISCLAIMS ALL WARRANTIES WITH REGARD TO THIS SOFTWARE
    111   1.1     perry INCLUDING ALL IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS,
    112   1.1     perry IN NO EVENT SHALL INTEL BE LIABLE FOR ANY SPECIAL, INDIRECT, OR
    113   1.1     perry CONSEQUENTIAL DAMAGES OR ANY DAMAGES WHATSOEVER RESULTING FROM
    114   1.1     perry LOSS OF USE, DATA OR PROFITS, WHETHER IN ACTION OF CONTRACT,
    115   1.1     perry NEGLIGENCE, OR OTHER TORTIOUS ACTION, ARISING OUT OF OR IN CONNECTION
    116   1.1     perry WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
    117   1.1     perry */
    118   1.1     perry 
    119   1.1     perry /*
    120   1.1     perry  * Primitive clock interrupt routines.
    121   1.1     perry  */
    122   1.1     perry 
    123   1.1     perry #include <sys/cdefs.h>
    124  1.36  christos __KERNEL_RCSID(0, "$NetBSD: clock.c,v 1.36 2019/10/16 18:29:49 christos Exp $");
    125   1.1     perry 
    126   1.1     perry /* #define CLOCKDEBUG */
    127   1.1     perry /* #define CLOCK_PARANOIA */
    128   1.1     perry 
    129   1.1     perry #include "opt_multiprocessor.h"
    130   1.1     perry #include "opt_ntp.h"
    131   1.1     perry 
    132   1.1     perry #include <sys/param.h>
    133   1.1     perry #include <sys/systm.h>
    134   1.1     perry #include <sys/time.h>
    135   1.1     perry #include <sys/timetc.h>
    136   1.1     perry #include <sys/kernel.h>
    137   1.1     perry #include <sys/device.h>
    138   1.9        ad #include <sys/mutex.h>
    139  1.20        ad #include <sys/cpu.h>
    140  1.20        ad #include <sys/intr.h>
    141   1.1     perry 
    142   1.1     perry #include <machine/pio.h>
    143   1.1     perry #include <machine/cpufunc.h>
    144  1.20        ad #include <machine/lock.h>
    145   1.1     perry 
    146   1.1     perry #include <dev/isa/isareg.h>
    147   1.1     perry #include <dev/isa/isavar.h>
    148   1.1     perry #include <dev/ic/mc146818reg.h>
    149   1.1     perry #include <dev/ic/i8253reg.h>
    150   1.1     perry #include <i386/isa/nvram.h>
    151   1.1     perry #include <x86/x86/tsc.h>
    152  1.19  christos #include <x86/lock.h>
    153   1.1     perry #include <machine/specialreg.h>
    154  1.33    bouyer #include <x86/rtc.h>
    155   1.1     perry 
    156   1.1     perry #ifndef __x86_64__
    157   1.1     perry #include "mca.h"
    158   1.1     perry #endif
    159   1.1     perry #if NMCA > 0
    160   1.1     perry #include <machine/mca_machdep.h>	/* for MCA_system */
    161   1.1     perry #endif
    162   1.1     perry 
    163   1.1     perry #include "pcppi.h"
    164   1.1     perry #if (NPCPPI > 0)
    165   1.1     perry #include <dev/isa/pcppivar.h>
    166   1.1     perry 
    167  1.27      cube int sysbeepmatch(device_t, cfdata_t, void *);
    168  1.27      cube void sysbeepattach(device_t, device_t, void *);
    169  1.17    dyoung int sysbeepdetach(device_t, int);
    170   1.1     perry 
    171  1.32    dyoung CFATTACH_DECL3_NEW(sysbeep, 0,
    172  1.32    dyoung     sysbeepmatch, sysbeepattach, sysbeepdetach, NULL, NULL, NULL,
    173  1.32    dyoung     DVF_DETACH_SHUTDOWN);
    174   1.1     perry 
    175   1.1     perry static int ppi_attached;
    176   1.1     perry static pcppi_tag_t ppicookie;
    177   1.1     perry #endif /* PCPPI */
    178   1.1     perry 
    179   1.1     perry #ifdef CLOCKDEBUG
    180   1.1     perry int clock_debug = 0;
    181   1.1     perry #define DPRINTF(arg) if (clock_debug) printf arg
    182   1.1     perry #else
    183   1.1     perry #define DPRINTF(arg)
    184   1.1     perry #endif
    185   1.1     perry 
    186  1.34    nonaka void (*x86_delay)(unsigned int) = i8254_delay;
    187  1.34    nonaka 
    188   1.1     perry void		sysbeep(int, int);
    189   1.1     perry static void     tickle_tc(void);
    190   1.1     perry 
    191   1.8      yamt static int	clockintr(void *, struct intrframe *);
    192   1.1     perry 
    193  1.18        he int 		sysbeepdetach(device_t, int);
    194   1.1     perry 
    195  1.12     joerg static unsigned int	gettick_broken_latch(void);
    196   1.1     perry 
    197   1.1     perry static volatile uint32_t i8254_lastcount;
    198   1.1     perry static volatile uint32_t i8254_offset;
    199   1.1     perry static volatile int i8254_ticked;
    200   1.1     perry 
    201   1.9        ad /* to protect TC timer variables */
    202   1.9        ad static __cpu_simple_lock_t tmr_lock = __SIMPLELOCK_UNLOCKED;
    203   1.1     perry 
    204   1.1     perry u_int i8254_get_timecount(struct timecounter *);
    205   1.1     perry 
    206   1.1     perry static struct timecounter i8254_timecounter = {
    207   1.1     perry 	i8254_get_timecount,	/* get_timecount */
    208   1.1     perry 	0,			/* no poll_pps */
    209   1.1     perry 	~0u,			/* counter_mask */
    210   1.1     perry 	TIMER_FREQ,		/* frequency */
    211   1.1     perry 	"i8254",		/* name */
    212   1.1     perry 	100,			/* quality */
    213  1.28    cherry 	NULL,			/* private data */
    214   1.1     perry 	NULL,			/* next */
    215   1.1     perry };
    216   1.1     perry 
    217   1.1     perry u_long rtclock_tval;		/* i8254 reload value for countdown */
    218   1.1     perry int    rtclock_init = 0;
    219   1.1     perry 
    220   1.1     perry int clock_broken_latch = 0;
    221   1.1     perry 
    222   1.1     perry #ifdef CLOCK_PARANOIA
    223   1.1     perry static int ticks[6];
    224   1.1     perry #endif
    225   1.1     perry /*
    226   1.1     perry  * i8254 latch check routine:
    227   1.1     perry  *     National Geode (formerly Cyrix MediaGX) has a serious bug in
    228   1.1     perry  *     its built-in i8254-compatible clock module.
    229   1.1     perry  *     machdep sets the variable 'clock_broken_latch' to indicate it.
    230   1.1     perry  */
    231   1.1     perry 
    232  1.12     joerg static unsigned int
    233   1.1     perry gettick_broken_latch(void)
    234   1.1     perry {
    235   1.1     perry 	int v1, v2, v3;
    236   1.1     perry 	int w1, w2, w3;
    237  1.14        ad 	int s;
    238   1.1     perry 
    239   1.1     perry 	/* Don't want someone screwing with the counter while we're here. */
    240  1.14        ad 	s = splhigh();
    241  1.14        ad 	__cpu_simple_lock(&tmr_lock);
    242   1.1     perry 	v1 = inb(IO_TIMER1+TIMER_CNTR0);
    243   1.1     perry 	v1 |= inb(IO_TIMER1+TIMER_CNTR0) << 8;
    244   1.1     perry 	v2 = inb(IO_TIMER1+TIMER_CNTR0);
    245   1.1     perry 	v2 |= inb(IO_TIMER1+TIMER_CNTR0) << 8;
    246   1.1     perry 	v3 = inb(IO_TIMER1+TIMER_CNTR0);
    247   1.1     perry 	v3 |= inb(IO_TIMER1+TIMER_CNTR0) << 8;
    248  1.14        ad 	__cpu_simple_unlock(&tmr_lock);
    249  1.14        ad 	splx(s);
    250   1.1     perry 
    251   1.1     perry #ifdef CLOCK_PARANOIA
    252   1.1     perry 	if (clock_debug) {
    253   1.1     perry 		ticks[0] = ticks[3];
    254   1.1     perry 		ticks[1] = ticks[4];
    255   1.1     perry 		ticks[2] = ticks[5];
    256   1.1     perry 		ticks[3] = v1;
    257   1.1     perry 		ticks[4] = v2;
    258   1.1     perry 		ticks[5] = v3;
    259   1.1     perry 	}
    260   1.1     perry #endif
    261   1.1     perry 
    262   1.1     perry 	if (v1 >= v2 && v2 >= v3 && v1 - v3 < 0x200)
    263   1.1     perry 		return (v2);
    264   1.1     perry 
    265   1.1     perry #define _swap_val(a, b) do { \
    266   1.1     perry 	int c = a; \
    267   1.1     perry 	a = b; \
    268   1.1     perry 	b = c; \
    269   1.1     perry } while (0)
    270   1.1     perry 
    271   1.1     perry 	/*
    272   1.1     perry 	 * sort v1 v2 v3
    273   1.1     perry 	 */
    274   1.1     perry 	if (v1 < v2)
    275   1.1     perry 		_swap_val(v1, v2);
    276   1.1     perry 	if (v2 < v3)
    277   1.1     perry 		_swap_val(v2, v3);
    278   1.1     perry 	if (v1 < v2)
    279   1.1     perry 		_swap_val(v1, v2);
    280   1.1     perry 
    281   1.1     perry 	/*
    282   1.1     perry 	 * compute the middle value
    283   1.1     perry 	 */
    284   1.1     perry 
    285   1.1     perry 	if (v1 - v3 < 0x200)
    286   1.1     perry 		return (v2);
    287   1.1     perry 
    288   1.1     perry 	w1 = v2 - v3;
    289   1.1     perry 	w2 = v3 - v1 + rtclock_tval;
    290   1.1     perry 	w3 = v1 - v2;
    291   1.1     perry 	if (w1 >= w2) {
    292   1.1     perry 		if (w1 >= w3)
    293   1.1     perry 		        return (v1);
    294   1.1     perry 	} else {
    295   1.1     perry 		if (w2 >= w3)
    296   1.1     perry 			return (v2);
    297   1.1     perry 	}
    298   1.1     perry 	return (v3);
    299   1.1     perry }
    300   1.1     perry 
    301   1.1     perry /* minimal initialization, enough for delay() */
    302   1.1     perry void
    303   1.1     perry initrtclock(u_long freq)
    304   1.1     perry {
    305   1.1     perry 	u_long tval;
    306   1.9        ad 
    307   1.1     perry 	/*
    308   1.1     perry 	 * Compute timer_count, the count-down count the timer will be
    309   1.1     perry 	 * set to.  Also, correctly round
    310   1.1     perry 	 * this by carrying an extra bit through the division.
    311   1.1     perry 	 */
    312   1.1     perry 	tval = (freq * 2) / (u_long) hz;
    313   1.1     perry 	tval = (tval / 2) + (tval & 0x1);
    314   1.1     perry 
    315   1.1     perry 	/* initialize 8254 clock */
    316   1.1     perry 	outb(IO_TIMER1+TIMER_MODE, TIMER_SEL0|TIMER_RATEGEN|TIMER_16BIT);
    317   1.1     perry 
    318   1.1     perry 	/* Correct rounding will buy us a better precision in timekeeping */
    319   1.1     perry 	outb(IO_TIMER1+TIMER_CNTR0, tval % 256);
    320   1.1     perry 	outb(IO_TIMER1+TIMER_CNTR0, tval / 256);
    321   1.1     perry 
    322   1.1     perry 	rtclock_tval = tval ? tval : 0xFFFF;
    323   1.1     perry 	rtclock_init = 1;
    324   1.1     perry }
    325   1.1     perry 
    326   1.1     perry void
    327   1.1     perry startrtclock(void)
    328   1.1     perry {
    329   1.1     perry 	int s;
    330   1.1     perry 
    331   1.1     perry 	if (!rtclock_init)
    332   1.1     perry 		initrtclock(TIMER_FREQ);
    333   1.1     perry 
    334   1.1     perry 	/* Check diagnostic status */
    335   1.1     perry 	if ((s = mc146818_read(NULL, NVRAM_DIAG)) != 0) { /* XXX softc */
    336   1.1     perry 		char bits[128];
    337  1.31  christos 		snprintb(bits, sizeof(bits), NVRAM_DIAG_BITS, s);
    338  1.31  christos 		printf("RTC BIOS diagnostic error %s\n", bits);
    339   1.1     perry 	}
    340   1.1     perry 
    341   1.1     perry 	tc_init(&i8254_timecounter);
    342   1.1     perry 	rtc_register();
    343   1.1     perry }
    344   1.1     perry 
    345   1.9        ad /*
    346  1.14        ad  * Must be called at splsched().
    347   1.9        ad  */
    348   1.1     perry static void
    349   1.1     perry tickle_tc(void)
    350   1.1     perry {
    351   1.1     perry #if defined(MULTIPROCESSOR)
    352   1.1     perry 	struct cpu_info *ci = curcpu();
    353   1.1     perry 	/*
    354   1.1     perry 	 * If we are not the primary CPU, we're not allowed to do
    355   1.1     perry 	 * any more work.
    356   1.1     perry 	 */
    357   1.1     perry 	if (CPU_IS_PRIMARY(ci) == 0)
    358   1.1     perry 		return;
    359   1.1     perry #endif
    360   1.1     perry 	if (rtclock_tval && timecounter->tc_get_timecount == i8254_get_timecount) {
    361   1.9        ad 		__cpu_simple_lock(&tmr_lock);
    362   1.1     perry 		if (i8254_ticked)
    363   1.1     perry 			i8254_ticked    = 0;
    364   1.1     perry 		else {
    365   1.1     perry 			i8254_offset   += rtclock_tval;
    366   1.1     perry 			i8254_lastcount = 0;
    367   1.1     perry 		}
    368   1.9        ad 		__cpu_simple_unlock(&tmr_lock);
    369   1.1     perry 	}
    370   1.1     perry 
    371   1.1     perry }
    372   1.1     perry 
    373   1.1     perry static int
    374   1.8      yamt clockintr(void *arg, struct intrframe *frame)
    375   1.1     perry {
    376   1.1     perry 	tickle_tc();
    377   1.1     perry 
    378   1.8      yamt 	hardclock((struct clockframe *)frame);
    379   1.1     perry 
    380   1.1     perry #if NMCA > 0
    381   1.1     perry 	if (MCA_system) {
    382   1.1     perry 		/* Reset PS/2 clock interrupt by asserting bit 7 of port 0x61 */
    383   1.1     perry 		outb(0x61, inb(0x61) | 0x80);
    384   1.1     perry 	}
    385   1.1     perry #endif
    386   1.1     perry 	return -1;
    387   1.1     perry }
    388   1.1     perry 
    389   1.1     perry u_int
    390   1.7  christos i8254_get_timecount(struct timecounter *tc)
    391   1.1     perry {
    392   1.1     perry 	u_int count;
    393  1.14        ad 	uint16_t rdval;
    394  1.30        ad 	u_long psl;
    395   1.1     perry 
    396   1.1     perry 	/* Don't want someone screwing with the counter while we're here. */
    397  1.30        ad 	psl = x86_read_psl();
    398  1.30        ad 	x86_disable_intr();
    399   1.9        ad 	__cpu_simple_lock(&tmr_lock);
    400   1.1     perry 	/* Select timer0 and latch counter value. */
    401   1.1     perry 	outb(IO_TIMER1 + TIMER_MODE, TIMER_SEL0 | TIMER_LATCH);
    402  1.14        ad 	/* insb to make the read atomic */
    403  1.30        ad 	rdval = inb(IO_TIMER1+TIMER_CNTR0);
    404  1.30        ad 	rdval |= (inb(IO_TIMER1+TIMER_CNTR0) << 8);
    405  1.14        ad 	count = rtclock_tval - rdval;
    406  1.25    kardel 	if (rtclock_tval && (count < i8254_lastcount &&
    407  1.25    kardel 			     (!i8254_ticked || rtclock_tval == 0xFFFF))) {
    408   1.1     perry 		i8254_ticked = 1;
    409   1.1     perry 		i8254_offset += rtclock_tval;
    410   1.1     perry 	}
    411   1.1     perry 	i8254_lastcount = count;
    412   1.1     perry 	count += i8254_offset;
    413   1.9        ad 	__cpu_simple_unlock(&tmr_lock);
    414  1.30        ad 	x86_write_psl(psl);
    415   1.1     perry 
    416   1.1     perry 	return (count);
    417   1.1     perry }
    418   1.1     perry 
    419  1.12     joerg unsigned int
    420   1.1     perry gettick(void)
    421   1.1     perry {
    422  1.14        ad 	uint16_t rdval;
    423  1.30        ad 	u_long psl;
    424  1.14        ad 
    425   1.1     perry 	if (clock_broken_latch)
    426   1.1     perry 		return (gettick_broken_latch());
    427   1.1     perry 
    428   1.1     perry 	/* Don't want someone screwing with the counter while we're here. */
    429  1.30        ad 	psl = x86_read_psl();
    430  1.30        ad 	x86_disable_intr();
    431  1.14        ad 	__cpu_simple_lock(&tmr_lock);
    432   1.1     perry 	/* Select counter 0 and latch it. */
    433   1.1     perry 	outb(IO_TIMER1+TIMER_MODE, TIMER_SEL0 | TIMER_LATCH);
    434  1.30        ad 	rdval = inb(IO_TIMER1+TIMER_CNTR0);
    435  1.30        ad 	rdval |= (inb(IO_TIMER1+TIMER_CNTR0) << 8);
    436  1.14        ad 	__cpu_simple_unlock(&tmr_lock);
    437  1.30        ad 	x86_write_psl(psl);
    438  1.14        ad 
    439  1.14        ad 	return rdval;
    440   1.1     perry }
    441   1.1     perry 
    442   1.1     perry /*
    443   1.1     perry  * Wait approximately `n' microseconds.
    444   1.1     perry  * Relies on timer 1 counting down from (TIMER_FREQ / hz) at TIMER_FREQ Hz.
    445   1.1     perry  * Note: timer had better have been programmed before this is first used!
    446   1.1     perry  * (Note that we use `rate generator' mode, which counts at 1:1; `square
    447   1.1     perry  * wave' mode counts at 2:1).
    448   1.1     perry  * Don't rely on this being particularly accurate.
    449   1.1     perry  */
    450   1.1     perry void
    451  1.12     joerg i8254_delay(unsigned int n)
    452   1.1     perry {
    453  1.12     joerg 	unsigned int cur_tick, initial_tick;
    454  1.12     joerg 	int remaining;
    455   1.1     perry 
    456   1.1     perry 	/* allow DELAY() to be used before startrtclock() */
    457   1.1     perry 	if (!rtclock_init)
    458   1.1     perry 		initrtclock(TIMER_FREQ);
    459   1.1     perry 
    460   1.1     perry 	/*
    461   1.1     perry 	 * Read the counter first, so that the rest of the setup overhead is
    462   1.1     perry 	 * counted.
    463   1.1     perry 	 */
    464  1.12     joerg 	initial_tick = gettick();
    465   1.1     perry 
    466  1.16     joerg 	if (n <= UINT_MAX / TIMER_FREQ) {
    467   1.1     perry 		/*
    468  1.12     joerg 		 * For unsigned arithmetic, division can be replaced with
    469  1.12     joerg 		 * multiplication with the inverse and a shift.
    470   1.1     perry 		 */
    471  1.12     joerg 		remaining = n * TIMER_FREQ / 1000000;
    472  1.12     joerg 	} else {
    473  1.12     joerg 		/* This is a very long delay.
    474  1.12     joerg 		 * Being slow here doesn't matter.
    475   1.1     perry 		 */
    476  1.12     joerg 		remaining = (unsigned long long) n * TIMER_FREQ / 1000000;
    477   1.1     perry 	}
    478   1.1     perry 
    479  1.30        ad 	while (remaining > 1) {
    480   1.1     perry #ifdef CLOCK_PARANOIA
    481   1.1     perry 		int delta;
    482  1.12     joerg 		cur_tick = gettick();
    483  1.12     joerg 		if (cur_tick > initial_tick)
    484  1.12     joerg 			delta = rtclock_tval - (cur_tick - initial_tick);
    485   1.1     perry 		else
    486  1.12     joerg 			delta = initial_tick - cur_tick;
    487   1.1     perry 		if (delta < 0 || delta >= rtclock_tval / 2) {
    488   1.1     perry 			DPRINTF(("delay: ignore ticks %.4x-%.4x",
    489  1.12     joerg 				 initial_tick, cur_tick));
    490   1.1     perry 			if (clock_broken_latch) {
    491   1.1     perry 				DPRINTF(("  (%.4x %.4x %.4x %.4x %.4x %.4x)\n",
    492   1.1     perry 				         ticks[0], ticks[1], ticks[2],
    493   1.1     perry 				         ticks[3], ticks[4], ticks[5]));
    494   1.1     perry 			} else {
    495   1.1     perry 				DPRINTF(("\n"));
    496   1.1     perry 			}
    497   1.1     perry 		} else
    498  1.12     joerg 			remaining -= delta;
    499   1.1     perry #else
    500  1.12     joerg 		cur_tick = gettick();
    501  1.12     joerg 		if (cur_tick > initial_tick)
    502  1.12     joerg 			remaining -= rtclock_tval - (cur_tick - initial_tick);
    503   1.1     perry 		else
    504  1.12     joerg 			remaining -= initial_tick - cur_tick;
    505   1.1     perry #endif
    506  1.12     joerg 		initial_tick = cur_tick;
    507   1.1     perry 	}
    508   1.1     perry }
    509   1.1     perry 
    510   1.1     perry #if (NPCPPI > 0)
    511   1.1     perry int
    512  1.27      cube sysbeepmatch(device_t parent, cfdata_t match, void *aux)
    513   1.1     perry {
    514   1.1     perry 	return (!ppi_attached);
    515   1.1     perry }
    516   1.1     perry 
    517   1.1     perry void
    518  1.27      cube sysbeepattach(device_t parent, device_t self, void *aux)
    519   1.1     perry {
    520   1.1     perry 	aprint_naive("\n");
    521   1.1     perry 	aprint_normal("\n");
    522   1.1     perry 
    523   1.1     perry 	ppicookie = ((struct pcppi_attach_args *)aux)->pa_cookie;
    524   1.1     perry 	ppi_attached = 1;
    525  1.15  jmcneill 
    526  1.15  jmcneill 	if (!pmf_device_register(self, NULL, NULL))
    527  1.15  jmcneill 		aprint_error_dev(self, "couldn't establish power handler\n");
    528   1.1     perry }
    529   1.1     perry 
    530  1.17    dyoung int
    531  1.17    dyoung sysbeepdetach(device_t self, int flags)
    532  1.17    dyoung {
    533  1.17    dyoung 	pmf_device_deregister(self);
    534  1.17    dyoung 	ppi_attached = 0;
    535  1.17    dyoung 	return 0;
    536  1.17    dyoung }
    537  1.21    dyoung #endif
    538  1.17    dyoung 
    539   1.1     perry void
    540   1.7  christos sysbeep(int pitch, int period)
    541   1.1     perry {
    542   1.1     perry #if (NPCPPI > 0)
    543   1.1     perry 	if (ppi_attached)
    544   1.1     perry 		pcppi_bell(ppicookie, pitch, period, 0);
    545   1.1     perry #endif
    546   1.1     perry }
    547   1.1     perry 
    548   1.1     perry void
    549   1.1     perry i8254_initclocks(void)
    550   1.1     perry {
    551   1.1     perry 
    552   1.1     perry 	/*
    553   1.1     perry 	 * XXX If you're doing strange things with multiple clocks, you might
    554   1.1     perry 	 * want to keep track of clock handlers.
    555   1.1     perry 	 */
    556   1.1     perry 	(void)isa_intr_establish(NULL, 0, IST_PULSE, IPL_CLOCK,
    557  1.36  christos 	    __FPTRCAST(int (*)(void *), clockintr), 0);
    558   1.1     perry }
    559   1.1     perry 
    560   1.1     perry void
    561   1.7  christos setstatclockrate(int arg)
    562   1.1     perry {
    563   1.1     perry }
    564