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iomd_clock.c revision 1.30
      1  1.30       rin /*	$NetBSD: iomd_clock.c,v 1.30 2020/05/29 12:30:38 rin Exp $	*/
      2   1.1   reinoud 
      3   1.1   reinoud /*
      4   1.1   reinoud  * Copyright (c) 1994-1997 Mark Brinicombe.
      5   1.1   reinoud  * Copyright (c) 1994 Brini.
      6   1.1   reinoud  * All rights reserved.
      7   1.1   reinoud  *
      8   1.1   reinoud  * This code is derived from software written for Brini by Mark Brinicombe
      9   1.1   reinoud  *
     10   1.1   reinoud  * Redistribution and use in source and binary forms, with or without
     11   1.1   reinoud  * modification, are permitted provided that the following conditions
     12   1.1   reinoud  * are met:
     13   1.1   reinoud  * 1. Redistributions of source code must retain the above copyright
     14   1.1   reinoud  *    notice, this list of conditions and the following disclaimer.
     15   1.1   reinoud  * 2. Redistributions in binary form must reproduce the above copyright
     16   1.1   reinoud  *    notice, this list of conditions and the following disclaimer in the
     17   1.1   reinoud  *    documentation and/or other materials provided with the distribution.
     18   1.1   reinoud  * 3. All advertising materials mentioning features or use of this software
     19   1.1   reinoud  *    must display the following acknowledgement:
     20   1.1   reinoud  *	This product includes software developed by Mark Brinicombe.
     21   1.1   reinoud  * 4. The name of the company nor the name of the author may be used to
     22   1.1   reinoud  *    endorse or promote products derived from this software without specific
     23   1.1   reinoud  *    prior written permission.
     24   1.1   reinoud  *
     25   1.1   reinoud  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     26   1.1   reinoud  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     27   1.1   reinoud  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     28   1.1   reinoud  * IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT,
     29   1.1   reinoud  * INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
     30   1.1   reinoud  * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
     31   1.1   reinoud  * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     32   1.1   reinoud  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     33   1.1   reinoud  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     34   1.1   reinoud  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     35   1.1   reinoud  * SUCH DAMAGE.
     36   1.1   reinoud  *
     37   1.1   reinoud  * RiscBSD kernel project
     38   1.1   reinoud  *
     39   1.1   reinoud  * clock.c
     40   1.1   reinoud  *
     41   1.1   reinoud  * Timer related machine specific code
     42   1.1   reinoud  *
     43   1.1   reinoud  * Created      : 29/09/94
     44   1.1   reinoud  */
     45   1.1   reinoud 
     46   1.1   reinoud /* Include header files */
     47   1.1   reinoud 
     48   1.1   reinoud #include <sys/param.h>
     49   1.5     bjh21 
     50  1.30       rin __KERNEL_RCSID(0, "$NetBSD: iomd_clock.c,v 1.30 2020/05/29 12:30:38 rin Exp $");
     51   1.5     bjh21 
     52   1.1   reinoud #include <sys/systm.h>
     53  1.26     rmind #include <sys/types.h>
     54   1.1   reinoud #include <sys/kernel.h>
     55   1.1   reinoud #include <sys/time.h>
     56  1.19     bjh21 #include <sys/timetc.h>
     57   1.1   reinoud #include <sys/device.h>
     58  1.23        ad #include <sys/intr.h>
     59   1.1   reinoud 
     60  1.12   thorpej #include <dev/clock_subr.h>
     61  1.12   thorpej 
     62   1.3   thorpej #include <arm/cpufunc.h>
     63   1.3   thorpej 
     64   1.1   reinoud #include <arm/iomd/iomdvar.h>
     65   1.1   reinoud #include <arm/iomd/iomdreg.h>
     66   1.1   reinoud 
     67   1.1   reinoud struct clock_softc {
     68  1.27     skrll 	device_t 		sc_dev;
     69   1.1   reinoud 	bus_space_tag_t		sc_iot;
     70   1.1   reinoud 	bus_space_handle_t	sc_ioh;
     71   1.1   reinoud };
     72   1.1   reinoud 
     73   1.1   reinoud #define TIMER_FREQUENCY 2000000		/* 2MHz clock */
     74   1.1   reinoud #define TICKS_PER_MICROSECOND (TIMER_FREQUENCY / 1000000)
     75   1.1   reinoud 
     76   1.1   reinoud static void *clockirq;
     77   1.1   reinoud static void *statclockirq;
     78   1.1   reinoud static struct clock_softc *clock_sc;
     79   1.1   reinoud static int timer0_count;
     80   1.1   reinoud 
     81  1.27     skrll static int clockmatch(device_t parent, cfdata_t cf, void *aux);
     82  1.27     skrll static void clockattach(device_t parent, device_t self, void *aux);
     83   1.1   reinoud #ifdef DIAGNOSTIC
     84  1.20     bjh21 static void checkdelay(void);
     85   1.1   reinoud #endif
     86   1.1   reinoud 
     87  1.19     bjh21 static u_int iomd_timecounter0_get(struct timecounter *tc);
     88  1.19     bjh21 
     89  1.19     bjh21 static volatile uint32_t timer0_lastcount;
     90  1.19     bjh21 static volatile uint32_t timer0_offset;
     91  1.19     bjh21 static volatile int timer0_ticked;
     92  1.19     bjh21 /* TODO: Get IRQ status */
     93  1.19     bjh21 
     94  1.29     skrll static kmutex_t tmr_lock;
     95  1.19     bjh21 
     96  1.19     bjh21 static struct timecounter iomd_timecounter = {
     97  1.30       rin 	.tc_get_timecount = iomd_timecounter0_get,
     98  1.30       rin 	.tc_counter_mask = ~0,
     99  1.30       rin 	.tc_frequency = TIMER_FREQUENCY,
    100  1.30       rin 	.tc_name = "iomd_timer0",
    101  1.30       rin 	.tc_quality = 100,
    102  1.19     bjh21 };
    103  1.19     bjh21 
    104  1.20     bjh21 int clockhandler(void *);
    105  1.20     bjh21 int statclockhandler(void *);
    106   1.5     bjh21 
    107  1.27     skrll CFATTACH_DECL_NEW(clock, sizeof(struct clock_softc),
    108  1.10   thorpej     clockmatch, clockattach, NULL, NULL);
    109   1.1   reinoud 
    110   1.1   reinoud /*
    111  1.27     skrll  * int clockmatch(device_t parent, void *match, void *aux)
    112   1.1   reinoud  *
    113   1.1   reinoud  * Just return ok for this if it is device 0
    114   1.1   reinoud  */
    115   1.1   reinoud 
    116   1.1   reinoud static int
    117  1.27     skrll clockmatch(device_t parent, cfdata_t cf, void *aux)
    118   1.1   reinoud {
    119   1.1   reinoud 	struct clk_attach_args *ca = aux;
    120   1.1   reinoud 
    121   1.1   reinoud 	if (strcmp(ca->ca_name, "clk") == 0)
    122   1.1   reinoud 		return(1);
    123   1.1   reinoud 	return(0);
    124   1.1   reinoud }
    125   1.1   reinoud 
    126   1.1   reinoud 
    127   1.1   reinoud /*
    128  1.27     skrll  * void clockattach(device_t parent, device_t dev, void *aux)
    129   1.1   reinoud  *
    130   1.1   reinoud  * Map the IOMD and identify it.
    131   1.1   reinoud  * Then configure the child devices based on the IOMD ID.
    132   1.1   reinoud  */
    133   1.1   reinoud 
    134   1.1   reinoud static void
    135  1.27     skrll clockattach(device_t parent, device_t self, void *aux)
    136   1.1   reinoud {
    137  1.27     skrll 	struct clock_softc *sc = device_private(self);
    138   1.1   reinoud 	struct clk_attach_args *ca = aux;
    139   1.1   reinoud 
    140  1.27     skrll 	sc->sc_dev = self;
    141   1.1   reinoud 	sc->sc_iot = ca->ca_iot;
    142   1.1   reinoud 	sc->sc_ioh = ca->ca_ioh; /* This is a handle for the whole IOMD */
    143   1.1   reinoud 
    144   1.1   reinoud 	clock_sc = sc;
    145  1.29     skrll 	mutex_init(&tmr_lock, MUTEX_DEFAULT, IPL_CLOCK);
    146   1.1   reinoud 
    147   1.1   reinoud 	/* Cannot do anything until cpu_initclocks() has been called */
    148  1.29     skrll 
    149  1.27     skrll 	aprint_normal("\n");
    150   1.1   reinoud }
    151   1.1   reinoud 
    152   1.1   reinoud 
    153  1.19     bjh21 static void
    154  1.26     rmind tickle_tc(void)
    155  1.19     bjh21 {
    156  1.19     bjh21 	if (timer0_count &&
    157  1.19     bjh21 	    timecounter->tc_get_timecount == iomd_timecounter0_get) {
    158  1.29     skrll 		mutex_spin_enter(&tmr_lock);
    159  1.19     bjh21 		if (timer0_ticked)
    160  1.19     bjh21 			timer0_ticked    = 0;
    161  1.19     bjh21 		else {
    162  1.19     bjh21 			timer0_offset   += timer0_count;
    163  1.19     bjh21 			timer0_lastcount = 0;
    164  1.19     bjh21 		}
    165  1.29     skrll 		mutex_spin_exit(&tmr_lock);
    166  1.19     bjh21 	}
    167  1.19     bjh21 
    168  1.19     bjh21 }
    169  1.19     bjh21 
    170  1.19     bjh21 
    171   1.1   reinoud /*
    172   1.1   reinoud  * int clockhandler(struct clockframe *frame)
    173   1.1   reinoud  *
    174   1.1   reinoud  * Function called by timer 0 interrupts. This just calls
    175   1.1   reinoud  * hardclock(). Eventually the irqhandler can call hardclock() directly
    176   1.1   reinoud  * but for now we use this function so that we can debug IRQ's
    177   1.1   reinoud  */
    178   1.1   reinoud 
    179   1.1   reinoud int
    180  1.20     bjh21 clockhandler(void *cookie)
    181   1.1   reinoud {
    182   1.5     bjh21 	struct clockframe *frame = cookie;
    183  1.19     bjh21 	tickle_tc();
    184   1.5     bjh21 
    185   1.1   reinoud 	hardclock(frame);
    186  1.20     bjh21 	return 0;	/* Pass the interrupt on down the chain */
    187   1.1   reinoud }
    188   1.1   reinoud 
    189   1.1   reinoud 
    190   1.1   reinoud /*
    191   1.1   reinoud  * int statclockhandler(struct clockframe *frame)
    192   1.1   reinoud  *
    193   1.1   reinoud  * Function called by timer 1 interrupts. This just calls
    194   1.1   reinoud  * statclock(). Eventually the irqhandler can call statclock() directly
    195   1.1   reinoud  * but for now we use this function so that we can debug IRQ's
    196   1.1   reinoud  */
    197   1.1   reinoud 
    198   1.1   reinoud int
    199  1.20     bjh21 statclockhandler(void *cookie)
    200   1.1   reinoud {
    201   1.5     bjh21 	struct clockframe *frame = cookie;
    202   1.5     bjh21 
    203   1.1   reinoud 	statclock(frame);
    204  1.20     bjh21 	return 0;	/* Pass the interrupt on down the chain */
    205   1.1   reinoud }
    206   1.1   reinoud 
    207   1.1   reinoud 
    208   1.1   reinoud /*
    209  1.15        he  * void setstatclockrate(int newhz)
    210   1.1   reinoud  *
    211   1.1   reinoud  * Set the stat clock rate. The stat clock uses timer1
    212   1.1   reinoud  */
    213   1.1   reinoud 
    214   1.1   reinoud void
    215  1.14     chris setstatclockrate(int newhz)
    216   1.1   reinoud {
    217   1.1   reinoud 	int count;
    218   1.1   reinoud 
    219  1.14     chris 	count = TIMER_FREQUENCY / newhz;
    220   1.1   reinoud 
    221  1.27     skrll 	aprint_normal("Setting statclock to %dHz (%d ticks)\n", newhz, count);
    222   1.1   reinoud 
    223   1.1   reinoud 	bus_space_write_1(clock_sc->sc_iot, clock_sc->sc_ioh,
    224   1.1   reinoud 	    IOMD_T1LOW, (count >> 0) & 0xff);
    225   1.1   reinoud 	bus_space_write_1(clock_sc->sc_iot, clock_sc->sc_ioh,
    226   1.1   reinoud 	    IOMD_T1HIGH, (count >> 8) & 0xff);
    227   1.1   reinoud 
    228   1.1   reinoud 	/* reload the counter */
    229   1.1   reinoud 
    230   1.1   reinoud 	bus_space_write_1(clock_sc->sc_iot, clock_sc->sc_ioh,
    231   1.1   reinoud 	    IOMD_T1GO, 0);
    232   1.1   reinoud }
    233   1.1   reinoud 
    234   1.1   reinoud 
    235   1.1   reinoud #ifdef DIAGNOSTIC
    236   1.1   reinoud static void
    237  1.20     bjh21 checkdelay(void)
    238   1.1   reinoud {
    239   1.1   reinoud 	struct timeval start, end, diff;
    240   1.1   reinoud 
    241   1.1   reinoud 	microtime(&start);
    242   1.1   reinoud 	delay(10000);
    243   1.1   reinoud 	microtime(&end);
    244   1.1   reinoud 	timersub(&end, &start, &diff);
    245   1.1   reinoud 	if (diff.tv_sec > 0)
    246   1.1   reinoud 		return;
    247   1.1   reinoud 	if (diff.tv_usec > 10000)
    248   1.1   reinoud 		return;
    249  1.27     skrll 	aprint_normal("WARNING: delay(10000) took %d us\n", diff.tv_usec);
    250   1.1   reinoud }
    251   1.1   reinoud #endif
    252   1.1   reinoud 
    253   1.1   reinoud /*
    254   1.1   reinoud  * void cpu_initclocks(void)
    255   1.1   reinoud  *
    256   1.1   reinoud  * Initialise the clocks.
    257   1.1   reinoud  * This sets up the two timers in the IOMD and installs the IRQ handlers
    258   1.1   reinoud  *
    259   1.1   reinoud  * NOTE: Currently only timer 0 is setup and the IRQ handler is not installed
    260   1.1   reinoud  */
    261   1.1   reinoud 
    262   1.1   reinoud void
    263  1.20     bjh21 cpu_initclocks(void)
    264   1.1   reinoud {
    265   1.1   reinoud 	/*
    266   1.1   reinoud 	 * Load timer 0 with count down value
    267   1.1   reinoud 	 * This timer generates 100Hz interrupts for the system clock
    268   1.1   reinoud 	 */
    269   1.1   reinoud 
    270  1.27     skrll 	aprint_normal("clock: hz=%d stathz = %d profhz = %d\n", hz, stathz, profhz);
    271   1.1   reinoud 
    272   1.1   reinoud 	timer0_count = TIMER_FREQUENCY / hz;
    273   1.1   reinoud 
    274   1.1   reinoud 	bus_space_write_1(clock_sc->sc_iot, clock_sc->sc_ioh,
    275   1.1   reinoud 	    IOMD_T0LOW, (timer0_count >> 0) & 0xff);
    276   1.1   reinoud 	bus_space_write_1(clock_sc->sc_iot, clock_sc->sc_ioh,
    277   1.1   reinoud 	    IOMD_T0HIGH, (timer0_count >> 8) & 0xff);
    278   1.1   reinoud 
    279   1.1   reinoud 	/* reload the counter */
    280   1.1   reinoud 
    281   1.1   reinoud 	bus_space_write_1(clock_sc->sc_iot, clock_sc->sc_ioh,
    282   1.1   reinoud 	    IOMD_T0GO, 0);
    283   1.1   reinoud 
    284   1.1   reinoud 	clockirq = intr_claim(IRQ_TIMER0, IPL_CLOCK, "tmr0 hard clk",
    285   1.1   reinoud 	    clockhandler, 0);
    286   1.1   reinoud 
    287   1.1   reinoud 	if (clockirq == NULL)
    288   1.7    provos 		panic("%s: Cannot installer timer 0 IRQ handler",
    289  1.27     skrll 		    device_xname(clock_sc->sc_dev));
    290   1.1   reinoud 
    291   1.1   reinoud 	if (stathz) {
    292   1.1   reinoud 		setstatclockrate(stathz);
    293   1.1   reinoud        		statclockirq = intr_claim(IRQ_TIMER1, IPL_CLOCK,
    294   1.1   reinoud        		    "tmr1 stat clk", statclockhandler, 0);
    295   1.1   reinoud 		if (statclockirq == NULL)
    296   1.7    provos 			panic("%s: Cannot installer timer 1 IRQ handler",
    297  1.27     skrll 			    device_xname(clock_sc->sc_dev));
    298   1.1   reinoud 	}
    299   1.1   reinoud #ifdef DIAGNOSTIC
    300   1.1   reinoud 	checkdelay();
    301   1.1   reinoud #endif
    302  1.19     bjh21 	tc_init(&iomd_timecounter);
    303   1.1   reinoud }
    304   1.1   reinoud 
    305   1.1   reinoud 
    306   1.1   reinoud 
    307  1.19     bjh21 static u_int iomd_timecounter0_get(struct timecounter *tc)
    308   1.1   reinoud {
    309   1.1   reinoud 	int s;
    310  1.19     bjh21 	u_int tm;
    311   1.1   reinoud 
    312   1.1   reinoud 	/*
    313   1.1   reinoud 	 * Latch the current value of the timer and then read it.
    314  1.28     skrll 	 * This guarantees an atomic reading of the time.
    315   1.1   reinoud 	 */
    316  1.19     bjh21 	s = splhigh();
    317   1.1   reinoud 	bus_space_write_1(clock_sc->sc_iot, clock_sc->sc_ioh,
    318   1.1   reinoud 	    IOMD_T0LATCH, 0);
    319   1.1   reinoud 
    320   1.1   reinoud 	tm = bus_space_read_1(clock_sc->sc_iot, clock_sc->sc_ioh,
    321   1.1   reinoud 	    IOMD_T0LOW);
    322   1.1   reinoud 	tm += (bus_space_read_1(clock_sc->sc_iot, clock_sc->sc_ioh,
    323   1.1   reinoud 	    IOMD_T0HIGH) << 8);
    324  1.19     bjh21 	splx(s);
    325  1.19     bjh21 
    326  1.29     skrll 	mutex_spin_enter(&tmr_lock);
    327  1.19     bjh21 	tm = timer0_count - tm;
    328   1.1   reinoud 
    329  1.19     bjh21 	if (timer0_count &&
    330  1.22   thorpej 	    (tm < timer0_lastcount || (!timer0_ticked && false/* XXX: clkintr_pending */))) {
    331  1.19     bjh21 		timer0_ticked = 1;
    332  1.19     bjh21 		timer0_offset += timer0_count;
    333   1.1   reinoud 	}
    334   1.1   reinoud 
    335  1.19     bjh21 	timer0_lastcount = tm;
    336  1.19     bjh21 	tm += timer0_offset;
    337  1.29     skrll 	mutex_spin_exit(&tmr_lock);
    338  1.19     bjh21 
    339  1.19     bjh21 	return tm;
    340   1.1   reinoud }
    341   1.1   reinoud 
    342  1.19     bjh21 
    343  1.19     bjh21 
    344   1.1   reinoud /*
    345   1.1   reinoud  * Estimated loop for n microseconds
    346   1.1   reinoud  */
    347   1.1   reinoud 
    348   1.1   reinoud /* Need to re-write this to use the timers */
    349   1.1   reinoud 
    350   1.1   reinoud /* One day soon I will actually do this */
    351   1.1   reinoud 
    352   1.1   reinoud int delaycount = 100;
    353   1.1   reinoud 
    354   1.1   reinoud void
    355  1.20     bjh21 delay(u_int n)
    356   1.1   reinoud {
    357  1.18  christos 	volatile u_int n2;
    358  1.18  christos 	volatile u_int i;
    359   1.1   reinoud 
    360   1.1   reinoud 	if (n == 0) return;
    361  1.18  christos 	n2 = n;
    362  1.18  christos 	while (n2-- > 0) {
    363   1.1   reinoud 		if (cputype == CPU_ID_SA110)	/* XXX - Seriously gross hack */
    364   1.1   reinoud 			for (i = delaycount; --i;);
    365   1.1   reinoud 		else
    366   1.1   reinoud 			for (i = 8; --i;);
    367   1.1   reinoud 	}
    368  1.12   thorpej }
    369  1.12   thorpej 
    370   1.1   reinoud /* End of iomd_clock.c */
    371