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clock.c revision 1.57
      1  1.57       rin /*	$NetBSD: clock.c,v 1.57 2020/05/29 05:35:47 rin Exp $ */
      2   1.6       cgd 
      3   1.1    chopps /*
      4  1.52     rmind  * Copyright (c) 1988 University of Utah.
      5   1.1    chopps  * Copyright (c) 1982, 1990 The Regents of the University of California.
      6   1.1    chopps  * All rights reserved.
      7   1.1    chopps  *
      8   1.1    chopps  * This code is derived from software contributed to Berkeley by
      9   1.1    chopps  * the Systems Programming Group of the University of Utah Computer
     10   1.1    chopps  * Science Department.
     11   1.1    chopps  *
     12   1.1    chopps  * Redistribution and use in source and binary forms, with or without
     13   1.1    chopps  * modification, are permitted provided that the following conditions
     14   1.1    chopps  * are met:
     15   1.1    chopps  * 1. Redistributions of source code must retain the above copyright
     16   1.1    chopps  *    notice, this list of conditions and the following disclaimer.
     17   1.1    chopps  * 2. Redistributions in binary form must reproduce the above copyright
     18   1.1    chopps  *    notice, this list of conditions and the following disclaimer in the
     19   1.1    chopps  *    documentation and/or other materials provided with the distribution.
     20  1.42       agc  * 3. Neither the name of the University nor the names of its contributors
     21  1.42       agc  *    may be used to endorse or promote products derived from this software
     22  1.42       agc  *    without specific prior written permission.
     23  1.42       agc  *
     24  1.42       agc  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     25  1.42       agc  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     26  1.42       agc  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     27  1.42       agc  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     28  1.42       agc  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     29  1.42       agc  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     30  1.42       agc  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     31  1.42       agc  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     32  1.42       agc  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     33  1.42       agc  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     34  1.42       agc  * SUCH DAMAGE.
     35  1.42       agc  *
     36  1.42       agc  * from: Utah $Hdr: clock.c 1.18 91/01/21$
     37  1.42       agc  *
     38  1.42       agc  *	@(#)clock.c	7.6 (Berkeley) 5/7/91
     39  1.42       agc  */
     40  1.38   aymeric 
     41  1.38   aymeric #include <sys/cdefs.h>
     42  1.57       rin __KERNEL_RCSID(0, "$NetBSD: clock.c,v 1.57 2020/05/29 05:35:47 rin Exp $");
     43   1.1    chopps 
     44   1.1    chopps #include <sys/param.h>
     45   1.1    chopps #include <sys/kernel.h>
     46   1.1    chopps #include <sys/device.h>
     47  1.13     veego #include <sys/systm.h>
     48  1.47    mhitch #include <sys/timetc.h>
     49   1.1    chopps #include <machine/psl.h>
     50   1.1    chopps #include <machine/cpu.h>
     51   1.1    chopps #include <amiga/amiga/device.h>
     52   1.1    chopps #include <amiga/amiga/custom.h>
     53   1.1    chopps #include <amiga/amiga/cia.h>
     54  1.14        is #ifdef DRACO
     55  1.14        is #include <amiga/amiga/drcustom.h>
     56  1.33        is #include <m68k/include/asm_single.h>
     57  1.14        is #endif
     58   1.1    chopps #include <amiga/dev/rtc.h>
     59   1.8    chopps #include <amiga/dev/zbusvar.h>
     60   1.1    chopps 
     61   1.1    chopps #if defined(PROF) && defined(PROFTIMER)
     62   1.1    chopps #include <sys/PROF.h>
     63   1.1    chopps #endif
     64   1.1    chopps 
     65   1.1    chopps /*
     66   1.1    chopps  * Machine-dependent clock routines.
     67   1.1    chopps  *
     68   1.1    chopps  * Startrtclock restarts the real-time clock, which provides
     69   1.1    chopps  * hardclock interrupts to kern_clock.c.
     70   1.1    chopps  *
     71   1.1    chopps  * Inittodr initializes the time of day hardware which provides
     72   1.1    chopps  * date functions.
     73   1.1    chopps  *
     74   1.1    chopps  * Resettodr restores the time of day hardware after a time change.
     75   1.1    chopps  *
     76   1.1    chopps  * A note on the real-time clock:
     77  1.47    mhitch  * We actually load the clock with amiga_clk_interval-1 instead of amiga_clk_interval.
     78   1.1    chopps  * This is because the counter decrements to zero after N+1 enabled clock
     79   1.1    chopps  * periods where N is the value loaded into the counter.
     80   1.1    chopps  */
     81   1.1    chopps 
     82  1.53      matt int clockmatch(device_t, cfdata_t, void *);
     83  1.53      matt void clockattach(device_t, device_t, void *);
     84  1.37   aymeric void cpu_initclocks(void);
     85  1.53      matt static void calibrate_delay(device_t);
     86  1.51       phx 
     87  1.51       phx /* the clocks run at NTSC: 715.909kHz or PAL: 709.379kHz.
     88  1.51       phx    We're using a 100 Hz clock. */
     89  1.51       phx int amiga_clk_interval;
     90  1.51       phx int eclockfreq;
     91  1.51       phx struct CIA *clockcia;
     92  1.51       phx 
     93  1.51       phx static u_int clk_getcounter(struct timecounter *);
     94  1.51       phx 
     95  1.51       phx static struct timecounter clk_timecounter = {
     96  1.57       rin 	.tc_get_timecount = clk_getcounter,
     97  1.57       rin 	.tc_counter_mask = ~0u,
     98  1.57       rin 	.tc_quality = 100,
     99  1.51       phx };
    100   1.1    chopps 
    101  1.53      matt CFATTACH_DECL_NEW(clock, 0,
    102  1.41   thorpej     clockmatch, clockattach, NULL, NULL);
    103   1.1    chopps 
    104   1.1    chopps int
    105  1.54       chs clockmatch(device_t parent, cfdata_t cf, void *aux)
    106   1.1    chopps {
    107  1.54       chs 	if (matchname("clock", aux))
    108   1.1    chopps 		return(1);
    109   1.1    chopps 	return(0);
    110   1.1    chopps }
    111   1.1    chopps 
    112   1.1    chopps /*
    113   1.1    chopps  * Start the real-time clock.
    114   1.1    chopps  */
    115   1.1    chopps void
    116  1.54       chs clockattach(device_t parent, device_t self, void *aux)
    117   1.1    chopps {
    118  1.43       jmc 	const char *clockchip;
    119   1.1    chopps 	unsigned short interval;
    120  1.51       phx 	int chipfreq;
    121  1.18        is #ifdef DRACO
    122  1.18        is 	u_char dracorev;
    123  1.18        is #endif
    124   1.1    chopps 
    125   1.4    chopps 	if (eclockfreq == 0)
    126   1.4    chopps 		eclockfreq = 715909;	/* guess NTSC */
    127  1.37   aymeric 
    128  1.51       phx 	chipfreq = eclockfreq;
    129  1.51       phx 
    130  1.14        is #ifdef DRACO
    131  1.51       phx 	dracorev = is_draco();
    132  1.18        is 	if (dracorev >= 4) {
    133  1.51       phx 		chipfreq = eclockfreq / 7;
    134  1.18        is 		clockchip = "QuickLogic";
    135  1.18        is 	} else if (dracorev) {
    136  1.14        is 		clockcia = (struct CIA *)CIAAbase;
    137  1.18        is 		clockchip = "CIA A";
    138  1.37   aymeric 	} else
    139  1.14        is #endif
    140  1.14        is 	{
    141  1.14        is 		clockcia = (struct CIA *)CIABbase;
    142  1.18        is 		clockchip = "CIA B";
    143  1.14        is 	}
    144  1.14        is 
    145  1.56       rin 	/* round nearest to mitigate clock drift for PAL */
    146  1.51       phx 	amiga_clk_interval = chipfreq / hz;
    147  1.56       rin 	if (chipfreq % hz >= hz / 2)
    148  1.56       rin 		amiga_clk_interval++;
    149  1.47    mhitch 
    150  1.54       chs 	if (self != NULL) {	/* real autoconfig? */
    151  1.23        is 		printf(": %s system hz %d hardware hz %d\n", clockchip, hz,
    152  1.51       phx 		    chipfreq);
    153  1.51       phx 
    154  1.51       phx 		clk_timecounter.tc_name = clockchip;
    155  1.51       phx 		clk_timecounter.tc_frequency = chipfreq;
    156  1.47    mhitch 		tc_init(&clk_timecounter);
    157  1.47    mhitch 	}
    158  1.18        is 
    159  1.18        is #ifdef DRACO
    160  1.18        is 	if (dracorev >= 4) {
    161  1.37   aymeric 		/*
    162  1.18        is 		 * can't preload anything beforehand, timer is free_running;
    163  1.18        is 		 * but need this for delay calibration.
    164  1.18        is 		 */
    165  1.18        is 
    166  1.47    mhitch 		draco_ioct->io_timerlo = amiga_clk_interval & 0xff;
    167  1.47    mhitch 		draco_ioct->io_timerhi = amiga_clk_interval >> 8;
    168  1.18        is 
    169  1.54       chs 		calibrate_delay(self);
    170  1.51       phx 
    171  1.18        is 		return;
    172  1.18        is 	}
    173  1.18        is #endif
    174   1.1    chopps 	/*
    175  1.37   aymeric 	 * stop timer A
    176   1.1    chopps 	 */
    177  1.14        is 	clockcia->cra = clockcia->cra & 0xc0;
    178  1.14        is 	clockcia->icr = 1 << 0;		/* disable timer A interrupt */
    179  1.14        is 	interval = clockcia->icr;		/* and make sure it's clear */
    180   1.1    chopps 
    181   1.1    chopps 	/*
    182   1.1    chopps 	 * load interval into registers.
    183   1.1    chopps          * the clocks run at NTSC: 715.909kHz or PAL: 709.379kHz
    184   1.1    chopps 	 */
    185  1.47    mhitch 	interval = amiga_clk_interval - 1;
    186   1.1    chopps 
    187   1.1    chopps 	/*
    188   1.1    chopps 	 * order of setting is important !
    189   1.1    chopps 	 */
    190  1.14        is 	clockcia->talo = interval & 0xff;
    191  1.14        is 	clockcia->tahi = interval >> 8;
    192  1.18        is 	/*
    193  1.18        is 	 * start timer A in continuous mode
    194  1.18        is 	 */
    195  1.18        is 	clockcia->cra = (clockcia->cra & 0xc0) | 1;
    196  1.51       phx 
    197  1.54       chs 	calibrate_delay(self);
    198   1.1    chopps }
    199   1.1    chopps 
    200   1.1    chopps void
    201  1.37   aymeric cpu_initclocks(void)
    202   1.1    chopps {
    203  1.20    mhitch #ifdef DRACO
    204  1.18        is 	unsigned char dracorev;
    205  1.18        is 	dracorev = is_draco();
    206  1.18        is 	if (dracorev >= 4) {
    207  1.47    mhitch 		draco_ioct->io_timerlo = amiga_clk_interval & 0xFF;
    208  1.47    mhitch 		draco_ioct->io_timerhi = amiga_clk_interval >> 8;
    209  1.18        is 		draco_ioct->io_timerrst = 0;	/* any value resets */
    210  1.33        is 		single_inst_bset_b(draco_ioct->io_status2, DRSTAT2_TMRINTENA);
    211  1.18        is 
    212  1.18        is 		return;
    213  1.18        is 	}
    214  1.18        is #endif
    215   1.1    chopps 	/*
    216   1.1    chopps 	 * enable interrupts for timer A
    217   1.1    chopps 	 */
    218  1.14        is 	clockcia->icr = (1<<7) | (1<<0);
    219   1.1    chopps 
    220   1.1    chopps 	/*
    221   1.1    chopps 	 * start timer A in continuous shot mode
    222   1.1    chopps 	 */
    223  1.14        is 	clockcia->cra = (clockcia->cra & 0xc0) | 1;
    224  1.37   aymeric 
    225   1.1    chopps 	/*
    226   1.1    chopps 	 * and globally enable interrupts for ciab
    227   1.1    chopps 	 */
    228  1.14        is #ifdef DRACO
    229  1.18        is 	if (dracorev)		/* we use cia a on DraCo */
    230  1.33        is 		single_inst_bset_b(*draco_intena, DRIRQ_INT2);
    231  1.14        is 	else
    232  1.14        is #endif
    233  1.14        is 		custom.intena = INTF_SETCLR | INTF_EXTER;
    234  1.18        is 
    235   1.1    chopps }
    236   1.1    chopps 
    237  1.13     veego void
    238  1.43       jmc setstatclockrate(int hertz)
    239   1.1    chopps {
    240   1.1    chopps }
    241   1.1    chopps 
    242   1.1    chopps /*
    243  1.51       phx  * Returns ticks since last recorded clock "tick"
    244   1.1    chopps  * (i.e. clock interrupt).
    245   1.1    chopps  */
    246  1.47    mhitch static u_int
    247  1.47    mhitch clk_gettick(void)
    248   1.1    chopps {
    249  1.18        is 	u_int interval;
    250   1.1    chopps 	u_char hi, hi2, lo;
    251   1.1    chopps 
    252  1.14        is #ifdef DRACO
    253  1.18        is 	if (is_draco() >= 4) {
    254  1.18        is 		hi2 = draco_ioct->io_chiprev;	/* latch timer */
    255  1.18        is 		hi = draco_ioct->io_timerhi;
    256  1.18        is 		lo = draco_ioct->io_timerlo;
    257  1.18        is 		interval = ((hi<<8) | lo);
    258  1.47    mhitch 		if (interval > amiga_clk_interval)	/* timer underflow */
    259  1.47    mhitch 			interval = 65536 + amiga_clk_interval - interval;
    260  1.18        is 		else
    261  1.47    mhitch 			interval = amiga_clk_interval - interval;
    262   1.1    chopps 
    263  1.18        is 	} else
    264  1.14        is #endif
    265  1.18        is 	{
    266  1.18        is 		hi  = clockcia->tahi;
    267  1.18        is 		lo  = clockcia->talo;
    268  1.18        is 		hi2 = clockcia->tahi;
    269  1.18        is 		if (hi != hi2) {
    270  1.18        is 			lo = clockcia->talo;
    271  1.18        is 			hi = hi2;
    272  1.18        is 		}
    273   1.1    chopps 
    274  1.47    mhitch 		interval = (amiga_clk_interval - 1) - ((hi<<8) | lo);
    275  1.37   aymeric 
    276   1.1    chopps 		/*
    277  1.18        is 		 * should read ICR and if there's an int pending, adjust
    278  1.18        is 		 * interval. However, since reading ICR clears the interrupt,
    279  1.18        is 		 * we'd lose a hardclock int, and this is not tolerable.
    280   1.1    chopps 		 */
    281   1.1    chopps 	}
    282   1.1    chopps 
    283  1.47    mhitch 	return interval;
    284  1.47    mhitch }
    285  1.47    mhitch 
    286  1.47    mhitch static u_int
    287  1.47    mhitch clk_getcounter(struct timecounter *tc)
    288  1.47    mhitch {
    289  1.51       phx 	static int prev_hardclock;
    290  1.51       phx 	static u_int prev_counter;
    291  1.51       phx 	int cur_hardclock;
    292  1.51       phx 	u_int counter;
    293  1.47    mhitch 
    294  1.47    mhitch 	do {
    295  1.51       phx 		cur_hardclock = hardclock_ticks;
    296  1.51       phx 		counter = clk_gettick();
    297  1.51       phx 	} while (cur_hardclock != hardclock_ticks);
    298  1.47    mhitch 
    299  1.50       phx 	/*
    300  1.50       phx 	 * Handle the situation of a wrapped interval counter, while
    301  1.50       phx 	 * the hardclock() interrupt was not yet executed to update
    302  1.50       phx 	 * hardclock_ticks.
    303  1.50       phx 	 */
    304  1.51       phx 	if (cur_hardclock < prev_hardclock)
    305  1.51       phx 		cur_hardclock = prev_hardclock;
    306  1.51       phx 	if (counter < prev_counter && cur_hardclock == prev_hardclock)
    307  1.51       phx 		cur_hardclock++;
    308  1.51       phx 
    309  1.51       phx 	prev_hardclock = cur_hardclock;
    310  1.51       phx 	prev_counter = counter;
    311  1.51       phx 
    312  1.51       phx 	return cur_hardclock * amiga_clk_interval + counter;
    313  1.51       phx }
    314  1.51       phx 
    315  1.51       phx /*
    316  1.51       phx  * Calibrate delay loop.
    317  1.51       phx  * We use two iterations because we don't have enough bits to do a factor of
    318  1.51       phx  * 8 with better than 1%.
    319  1.51       phx  *
    320  1.51       phx  * XXX Note that we MUST stay below 1 tick if using clk_gettick(), even for
    321  1.51       phx  * underestimated values of delaydivisor.
    322  1.51       phx  *
    323  1.51       phx  * XXX the "ns" below is only correct for a shift of 10 bits, and even then
    324  1.51       phx  * off by 2.4%
    325  1.51       phx  */
    326  1.51       phx static void
    327  1.54       chs calibrate_delay(device_t self)
    328  1.51       phx {
    329  1.51       phx 	unsigned long t1, t2;
    330  1.51       phx 	extern u_int32_t delaydivisor;
    331  1.51       phx 		/* XXX this should be defined elsewhere */
    332  1.50       phx 
    333  1.54       chs 	if (self)
    334  1.51       phx 		printf("Calibrating delay loop... ");
    335  1.51       phx 
    336  1.51       phx 	do {
    337  1.51       phx 		t1 = clk_gettick();
    338  1.51       phx 		delay(1024);
    339  1.51       phx 		t2 = clk_gettick();
    340  1.51       phx 	} while (t2 <= t1);
    341  1.51       phx 	t2 = ((t2 - t1) * 1000000) / (amiga_clk_interval * hz);
    342  1.51       phx 	delaydivisor = (delaydivisor * t2 + 1023) >> 10;
    343  1.51       phx #ifdef DEBUG
    344  1.54       chs 	if (self)
    345  1.51       phx 		printf("\ndiff %ld us, new divisor %u/1024 us\n", t2,
    346  1.51       phx 		    delaydivisor);
    347  1.51       phx 	do {
    348  1.51       phx 		t1 = clk_gettick();
    349  1.51       phx 		delay(1024);
    350  1.51       phx 		t2 = clk_gettick();
    351  1.51       phx 	} while (t2 <= t1);
    352  1.51       phx 	t2 = ((t2 - t1) * 1000000) / (amiga_clk_interval * hz);
    353  1.51       phx 	delaydivisor = (delaydivisor * t2 + 1023) >> 10;
    354  1.54       chs 	if (self)
    355  1.51       phx 		printf("diff %ld us, new divisor %u/1024 us\n", t2,
    356  1.51       phx 		    delaydivisor);
    357  1.51       phx #endif
    358  1.51       phx 	do {
    359  1.51       phx 		t1 = clk_gettick();
    360  1.51       phx 		delay(1024);
    361  1.51       phx 		t2 = clk_gettick();
    362  1.51       phx 	} while (t2 <= t1);
    363  1.51       phx 	t2 = ((t2 - t1) * 1000000) / (amiga_clk_interval * hz);
    364  1.51       phx 	delaydivisor = (delaydivisor * t2 + 1023) >> 10;
    365  1.51       phx #ifdef DEBUG
    366  1.54       chs 	if (self)
    367  1.51       phx 		printf("diff %ld us, new divisor ", t2);
    368  1.51       phx #endif
    369  1.54       chs 	if (self)
    370  1.51       phx 		printf("%u/1024 us\n", delaydivisor);
    371   1.1    chopps }
    372   1.1    chopps 
    373   1.1    chopps #if notyet
    374   1.1    chopps 
    375   1.1    chopps /* implement this later. I'd suggest using both timers in CIA-A, they're
    376   1.1    chopps    not yet used. */
    377   1.1    chopps 
    378   1.1    chopps #include "clock.h"
    379   1.1    chopps #if NCLOCK > 0
    380   1.1    chopps /*
    381   1.1    chopps  * /dev/clock: mappable high resolution timer.
    382   1.1    chopps  *
    383   1.1    chopps  * This code implements a 32-bit recycling counter (with a 4 usec period)
    384   1.1    chopps  * using timers 2 & 3 on the 6840 clock chip.  The counter can be mapped
    385   1.1    chopps  * RO into a user's address space to achieve low overhead (no system calls),
    386   1.1    chopps  * high-precision timing.
    387   1.1    chopps  *
    388   1.1    chopps  * Note that timer 3 is also used for the high precision profiling timer
    389   1.1    chopps  * (PROFTIMER code above).  Care should be taken when both uses are
    390   1.1    chopps  * configured as only a token effort is made to avoid conflicting use.
    391   1.1    chopps  */
    392   1.1    chopps #include <sys/proc.h>
    393   1.1    chopps #include <sys/resourcevar.h>
    394   1.1    chopps #include <sys/ioctl.h>
    395   1.1    chopps #include <sys/malloc.h>
    396  1.35       mrg #include <uvm/uvm_extern.h>
    397   1.1    chopps #include <amiga/amiga/clockioctl.h>
    398   1.1    chopps #include <sys/specdev.h>
    399   1.1    chopps #include <sys/vnode.h>
    400   1.1    chopps #include <sys/mman.h>
    401   1.1    chopps 
    402   1.1    chopps int clockon = 0;		/* non-zero if high-res timer enabled */
    403   1.1    chopps #ifdef PROFTIMER
    404   1.1    chopps int  profprocs = 0;		/* # of procs using profiling timer */
    405   1.1    chopps #endif
    406   1.1    chopps #ifdef DEBUG
    407   1.1    chopps int clockdebug = 0;
    408   1.1    chopps #endif
    409   1.1    chopps 
    410   1.1    chopps /*ARGSUSED*/
    411  1.37   aymeric int
    412  1.37   aymeric clockopen(dev_t dev, int flags)
    413   1.1    chopps {
    414   1.1    chopps #ifdef PROFTIMER
    415   1.1    chopps #ifdef PROF
    416   1.1    chopps 	/*
    417   1.1    chopps 	 * Kernel profiling enabled, give up.
    418   1.1    chopps 	 */
    419   1.1    chopps 	if (profiling)
    420   1.1    chopps 		return(EBUSY);
    421   1.1    chopps #endif
    422   1.1    chopps 	/*
    423   1.1    chopps 	 * If any user processes are profiling, give up.
    424   1.1    chopps 	 */
    425   1.1    chopps 	if (profprocs)
    426   1.1    chopps 		return(EBUSY);
    427   1.1    chopps #endif
    428   1.1    chopps 	if (!clockon) {
    429   1.1    chopps 		startclock();
    430   1.1    chopps 		clockon++;
    431   1.1    chopps 	}
    432   1.1    chopps 	return(0);
    433   1.1    chopps }
    434   1.1    chopps 
    435   1.1    chopps /*ARGSUSED*/
    436  1.37   aymeric int
    437  1.37   aymeric clockclose(dev_t dev, int flags)
    438   1.1    chopps {
    439  1.46  christos 	(void) clockunmmap(dev, (void *)0, curproc);	/* XXX */
    440   1.1    chopps 	stopclock();
    441   1.1    chopps 	clockon = 0;
    442   1.1    chopps 	return(0);
    443   1.1    chopps }
    444   1.1    chopps 
    445   1.1    chopps /*ARGSUSED*/
    446  1.37   aymeric int
    447  1.46  christos clockioctl(dev_t dev, u_long cmd, void *data, int flag, struct proc *p)
    448   1.1    chopps {
    449   1.1    chopps 	int error = 0;
    450  1.37   aymeric 
    451   1.1    chopps 	switch (cmd) {
    452   1.1    chopps 
    453   1.1    chopps 	case CLOCKMAP:
    454  1.46  christos 		error = clockmmap(dev, (void **)data, p);
    455   1.1    chopps 		break;
    456   1.1    chopps 
    457   1.1    chopps 	case CLOCKUNMAP:
    458  1.46  christos 		error = clockunmmap(dev, *(void **)data, p);
    459   1.1    chopps 		break;
    460   1.1    chopps 
    461   1.1    chopps 	case CLOCKGETRES:
    462   1.1    chopps 		*(int *)data = CLK_RESOLUTION;
    463   1.1    chopps 		break;
    464   1.1    chopps 
    465   1.1    chopps 	default:
    466   1.1    chopps 		error = EINVAL;
    467   1.1    chopps 		break;
    468   1.1    chopps 	}
    469   1.1    chopps 	return(error);
    470   1.1    chopps }
    471   1.1    chopps 
    472   1.1    chopps /*ARGSUSED*/
    473  1.37   aymeric void
    474  1.37   aymeric clockmap(dev_t dev, int off, int prot)
    475   1.1    chopps {
    476  1.55       phx 	return MD_BTOP(off + (INTIOBASE+CLKBASE+CLKSR-1));
    477   1.1    chopps }
    478   1.1    chopps 
    479  1.37   aymeric int
    480  1.46  christos clockmmap(dev_t dev, void **addrp, struct proc *p)
    481   1.1    chopps {
    482   1.1    chopps 	int error;
    483   1.1    chopps 	struct vnode vn;
    484   1.1    chopps 	struct specinfo si;
    485   1.1    chopps 	int flags;
    486   1.1    chopps 
    487   1.1    chopps 	flags = MAP_FILE|MAP_SHARED;
    488   1.1    chopps 	if (*addrp)
    489   1.1    chopps 		flags |= MAP_FIXED;
    490   1.1    chopps 	else
    491  1.46  christos 		*addrp = (void *)0x1000000;	/* XXX */
    492   1.1    chopps 	vn.v_type = VCHR;			/* XXX */
    493   1.1    chopps 	vn.v_specinfo = &si;			/* XXX */
    494   1.1    chopps 	vn.v_rdev = dev;			/* XXX */
    495   1.1    chopps 	error = vm_mmap(&p->p_vmspace->vm_map, (vm_offset_t *)addrp,
    496  1.46  christos 			PAGE_SIZE, VM_PROT_ALL, flags, (void *)&vn, 0);
    497   1.1    chopps 	return(error);
    498   1.1    chopps }
    499   1.1    chopps 
    500  1.37   aymeric int
    501  1.46  christos clockunmmap(dev_t dev, void *addr, struct proc *p)
    502   1.1    chopps {
    503   1.1    chopps 	int rv;
    504   1.1    chopps 
    505   1.1    chopps 	if (addr == 0)
    506   1.1    chopps 		return(EINVAL);		/* XXX: how do we deal with this? */
    507  1.36       chs 	uvm_deallocate(p->p_vmspace->vm_map, (vm_offset_t)addr, PAGE_SIZE);
    508  1.36       chs 	return 0;
    509   1.1    chopps }
    510   1.1    chopps 
    511  1.37   aymeric void
    512  1.37   aymeric startclock(void)
    513   1.1    chopps {
    514   1.1    chopps 	register struct clkreg *clk = (struct clkreg *)clkstd[0];
    515   1.1    chopps 
    516   1.1    chopps 	clk->clk_msb2 = -1; clk->clk_lsb2 = -1;
    517   1.1    chopps 	clk->clk_msb3 = -1; clk->clk_lsb3 = -1;
    518   1.1    chopps 
    519   1.1    chopps 	clk->clk_cr2 = CLK_CR3;
    520   1.1    chopps 	clk->clk_cr3 = CLK_OENAB|CLK_8BIT;
    521   1.1    chopps 	clk->clk_cr2 = CLK_CR1;
    522   1.1    chopps 	clk->clk_cr1 = CLK_IENAB;
    523   1.1    chopps }
    524   1.1    chopps 
    525  1.37   aymeric void
    526  1.37   aymeric stopclock(void)
    527   1.1    chopps {
    528   1.1    chopps 	register struct clkreg *clk = (struct clkreg *)clkstd[0];
    529   1.1    chopps 
    530   1.1    chopps 	clk->clk_cr2 = CLK_CR3;
    531   1.1    chopps 	clk->clk_cr3 = 0;
    532   1.1    chopps 	clk->clk_cr2 = CLK_CR1;
    533   1.1    chopps 	clk->clk_cr1 = CLK_IENAB;
    534   1.1    chopps }
    535   1.1    chopps #endif
    536   1.1    chopps 
    537   1.1    chopps #endif
    538   1.1    chopps 
    539   1.1    chopps 
    540   1.1    chopps #ifdef PROFTIMER
    541   1.1    chopps /*
    542   1.1    chopps  * This code allows the amiga kernel to use one of the extra timers on
    543   1.1    chopps  * the clock chip for profiling, instead of the regular system timer.
    544   1.1    chopps  * The advantage of this is that the profiling timer can be turned up to
    545   1.1    chopps  * a higher interrupt rate, giving finer resolution timing. The profclock
    546   1.1    chopps  * routine is called from the lev6intr in locore, and is a specialized
    547   1.1    chopps  * routine that calls addupc. The overhead then is far less than if
    548   1.1    chopps  * hardclock/softclock was called. Further, the context switch code in
    549   1.1    chopps  * locore has been changed to turn the profile clock on/off when switching
    550   1.1    chopps  * into/out of a process that is profiling (startprofclock/stopprofclock).
    551   1.1    chopps  * This reduces the impact of the profiling clock on other users, and might
    552  1.37   aymeric  * possibly increase the accuracy of the profiling.
    553   1.1    chopps  */
    554   1.1    chopps int  profint   = PRF_INTERVAL;	/* Clock ticks between interrupts */
    555   1.1    chopps int  profscale = 0;		/* Scale factor from sys clock to prof clock */
    556   1.1    chopps char profon    = 0;		/* Is profiling clock on? */
    557   1.1    chopps 
    558   1.1    chopps /* profon values - do not change, locore.s assumes these values */
    559   1.1    chopps #define PRF_NONE	0x00
    560   1.1    chopps #define	PRF_USER	0x01
    561   1.1    chopps #define	PRF_KERNEL	0x80
    562   1.1    chopps 
    563  1.37   aymeric void
    564  1.37   aymeric initprofclock(void)
    565   1.1    chopps {
    566   1.1    chopps #if NCLOCK > 0
    567   1.1    chopps 	struct proc *p = curproc;		/* XXX */
    568   1.1    chopps 
    569   1.1    chopps 	/*
    570   1.1    chopps 	 * If the high-res timer is running, force profiling off.
    571   1.1    chopps 	 * Unfortunately, this gets reflected back to the user not as
    572   1.1    chopps 	 * an error but as a lack of results.
    573   1.1    chopps 	 */
    574   1.1    chopps 	if (clockon) {
    575   1.1    chopps 		p->p_stats->p_prof.pr_scale = 0;
    576   1.1    chopps 		return;
    577   1.1    chopps 	}
    578   1.1    chopps 	/*
    579   1.1    chopps 	 * Keep track of the number of user processes that are profiling
    580   1.1    chopps 	 * by checking the scale value.
    581   1.1    chopps 	 *
    582   1.1    chopps 	 * XXX: this all assumes that the profiling code is well behaved;
    583   1.1    chopps 	 * i.e. profil() is called once per process with pcscale non-zero
    584   1.1    chopps 	 * to turn it on, and once with pcscale zero to turn it off.
    585   1.1    chopps 	 * Also assumes you don't do any forks or execs.  Oh well, there
    586   1.1    chopps 	 * is always adb...
    587   1.1    chopps 	 */
    588   1.1    chopps 	if (p->p_stats->p_prof.pr_scale)
    589   1.1    chopps 		profprocs++;
    590   1.1    chopps 	else
    591   1.1    chopps 		profprocs--;
    592   1.1    chopps #endif
    593   1.1    chopps 	/*
    594   1.1    chopps 	 * The profile interrupt interval must be an even divisor
    595  1.47    mhitch 	 * of the amiga_clk_interval so that scaling from a system clock
    596   1.1    chopps 	 * tick to a profile clock tick is possible using integer math.
    597   1.1    chopps 	 */
    598  1.47    mhitch 	if (profint > amiga_clk_interval || (amiga_clk_interval % profint) != 0)
    599  1.47    mhitch 		profint = amiga_clk_interval;
    600  1.47    mhitch 	profscale = amiga_clk_interval / profint;
    601   1.1    chopps }
    602   1.1    chopps 
    603  1.37   aymeric void
    604  1.37   aymeric startprofclock(void)
    605   1.1    chopps {
    606   1.1    chopps   unsigned short interval;
    607   1.1    chopps 
    608   1.1    chopps   /* stop timer B */
    609  1.14        is   clockcia->crb = clockcia->crb & 0xc0;
    610   1.1    chopps 
    611   1.1    chopps   /* load interval into registers.
    612   1.1    chopps      the clocks run at NTSC: 715.909kHz or PAL: 709.379kHz */
    613   1.1    chopps 
    614   1.1    chopps   interval = profint - 1;
    615   1.1    chopps 
    616   1.1    chopps   /* order of setting is important ! */
    617  1.14        is   clockcia->tblo = interval & 0xff;
    618  1.14        is   clockcia->tbhi = interval >> 8;
    619   1.1    chopps 
    620   1.1    chopps   /* enable interrupts for timer B */
    621  1.14        is   clockcia->icr = (1<<7) | (1<<1);
    622   1.1    chopps 
    623   1.1    chopps   /* start timer B in continuous shot mode */
    624  1.14        is   clockcia->crb = (clockcia->crb & 0xc0) | 1;
    625   1.1    chopps }
    626   1.1    chopps 
    627  1.37   aymeric void
    628  1.37   aymeric stopprofclock(void)
    629   1.1    chopps {
    630   1.1    chopps   /* stop timer B */
    631  1.14        is   clockcia->crb = clockcia->crb & 0xc0;
    632   1.1    chopps }
    633   1.1    chopps 
    634   1.1    chopps #ifdef PROF
    635   1.1    chopps /*
    636   1.1    chopps  * profclock() is expanded in line in lev6intr() unless profiling kernel.
    637   1.1    chopps  * Assumes it is called with clock interrupts blocked.
    638   1.1    chopps  */
    639  1.37   aymeric void
    640  1.46  christos profclock(void *pc, int ps)
    641   1.1    chopps {
    642   1.1    chopps 	/*
    643   1.1    chopps 	 * Came from user mode.
    644   1.1    chopps 	 * If this process is being profiled record the tick.
    645   1.1    chopps 	 */
    646   1.1    chopps 	if (USERMODE(ps)) {
    647   1.1    chopps 		if (p->p_stats.p_prof.pr_scale)
    648   1.1    chopps 			addupc(pc, &curproc->p_stats.p_prof, 1);
    649   1.1    chopps 	}
    650   1.1    chopps 	/*
    651   1.1    chopps 	 * Came from kernel (supervisor) mode.
    652   1.1    chopps 	 * If we are profiling the kernel, record the tick.
    653   1.1    chopps 	 */
    654   1.1    chopps 	else if (profiling < 2) {
    655   1.1    chopps 		register int s = pc - s_lowpc;
    656   1.1    chopps 
    657   1.1    chopps 		if (s < s_textsize)
    658   1.1    chopps 			kcount[s / (HISTFRACTION * sizeof (*kcount))]++;
    659   1.1    chopps 	}
    660   1.1    chopps 	/*
    661   1.1    chopps 	 * Kernel profiling was on but has been disabled.
    662   1.1    chopps 	 * Mark as no longer profiling kernel and if all profiling done,
    663   1.1    chopps 	 * disable the clock.
    664   1.1    chopps 	 */
    665   1.1    chopps 	if (profiling && (profon & PRF_KERNEL)) {
    666   1.1    chopps 		profon &= ~PRF_KERNEL;
    667   1.1    chopps 		if (profon == PRF_NONE)
    668   1.1    chopps 			stopprofclock();
    669   1.1    chopps 	}
    670   1.1    chopps }
    671   1.1    chopps #endif
    672   1.1    chopps #endif
    673