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kern_tc.c revision 1.19.14.5
      1  1.19.14.5     joerg /* $NetBSD: kern_tc.c,v 1.19.14.5 2007/12/03 16:14:54 joerg Exp $ */
      2        1.2    kardel 
      3        1.1    simonb /*-
      4        1.1    simonb  * ----------------------------------------------------------------------------
      5        1.1    simonb  * "THE BEER-WARE LICENSE" (Revision 42):
      6        1.1    simonb  * <phk (at) FreeBSD.ORG> wrote this file.  As long as you retain this notice you
      7        1.1    simonb  * can do whatever you want with this stuff. If we meet some day, and you think
      8        1.1    simonb  * this stuff is worth it, you can buy me a beer in return.   Poul-Henning Kamp
      9        1.2    kardel  * ---------------------------------------------------------------------------
     10        1.1    simonb  */
     11        1.1    simonb 
     12        1.1    simonb #include <sys/cdefs.h>
     13        1.2    kardel /* __FBSDID("$FreeBSD: src/sys/kern/kern_tc.c,v 1.166 2005/09/19 22:16:31 andre Exp $"); */
     14  1.19.14.5     joerg __KERNEL_RCSID(0, "$NetBSD: kern_tc.c,v 1.19.14.5 2007/12/03 16:14:54 joerg Exp $");
     15        1.1    simonb 
     16        1.1    simonb #include "opt_ntp.h"
     17        1.1    simonb 
     18        1.1    simonb #include <sys/param.h>
     19        1.2    kardel #ifdef __HAVE_TIMECOUNTER	/* XXX */
     20        1.1    simonb #include <sys/kernel.h>
     21        1.2    kardel #include <sys/reboot.h>	/* XXX just to get AB_VERBOSE */
     22        1.1    simonb #include <sys/sysctl.h>
     23        1.1    simonb #include <sys/syslog.h>
     24        1.1    simonb #include <sys/systm.h>
     25        1.1    simonb #include <sys/timepps.h>
     26        1.1    simonb #include <sys/timetc.h>
     27        1.1    simonb #include <sys/timex.h>
     28        1.2    kardel #include <sys/evcnt.h>
     29        1.2    kardel #include <sys/kauth.h>
     30  1.19.14.3     joerg #include <sys/mutex.h>
     31  1.19.14.5     joerg #include <sys/atomic.h>
     32        1.2    kardel 
     33        1.2    kardel /*
     34        1.1    simonb  * A large step happens on boot.  This constant detects such steps.
     35        1.1    simonb  * It is relatively small so that ntp_update_second gets called enough
     36        1.1    simonb  * in the typical 'missed a couple of seconds' case, but doesn't loop
     37        1.1    simonb  * forever when the time step is large.
     38        1.1    simonb  */
     39        1.1    simonb #define LARGE_STEP	200
     40        1.1    simonb 
     41        1.1    simonb /*
     42        1.1    simonb  * Implement a dummy timecounter which we can use until we get a real one
     43        1.1    simonb  * in the air.  This allows the console and other early stuff to use
     44        1.1    simonb  * time services.
     45        1.1    simonb  */
     46        1.1    simonb 
     47        1.1    simonb static u_int
     48       1.16      yamt dummy_get_timecount(struct timecounter *tc)
     49        1.1    simonb {
     50        1.1    simonb 	static u_int now;
     51        1.1    simonb 
     52        1.1    simonb 	return (++now);
     53        1.1    simonb }
     54        1.1    simonb 
     55        1.1    simonb static struct timecounter dummy_timecounter = {
     56        1.8  christos 	dummy_get_timecount, 0, ~0u, 1000000, "dummy", -1000000, NULL, NULL,
     57        1.1    simonb };
     58        1.1    simonb 
     59        1.1    simonb struct timehands {
     60        1.1    simonb 	/* These fields must be initialized by the driver. */
     61        1.1    simonb 	struct timecounter	*th_counter;
     62        1.1    simonb 	int64_t			th_adjustment;
     63        1.1    simonb 	u_int64_t		th_scale;
     64        1.1    simonb 	u_int	 		th_offset_count;
     65        1.1    simonb 	struct bintime		th_offset;
     66        1.1    simonb 	struct timeval		th_microtime;
     67        1.1    simonb 	struct timespec		th_nanotime;
     68        1.1    simonb 	/* Fields not to be copied in tc_windup start with th_generation. */
     69        1.1    simonb 	volatile u_int		th_generation;
     70        1.1    simonb 	struct timehands	*th_next;
     71        1.1    simonb };
     72        1.1    simonb 
     73        1.1    simonb static struct timehands th0;
     74       1.10  christos static struct timehands th9 = { .th_next = &th0, };
     75       1.10  christos static struct timehands th8 = { .th_next = &th9, };
     76       1.10  christos static struct timehands th7 = { .th_next = &th8, };
     77       1.10  christos static struct timehands th6 = { .th_next = &th7, };
     78       1.10  christos static struct timehands th5 = { .th_next = &th6, };
     79       1.10  christos static struct timehands th4 = { .th_next = &th5, };
     80       1.10  christos static struct timehands th3 = { .th_next = &th4, };
     81       1.10  christos static struct timehands th2 = { .th_next = &th3, };
     82       1.10  christos static struct timehands th1 = { .th_next = &th2, };
     83        1.1    simonb static struct timehands th0 = {
     84       1.10  christos 	.th_counter = &dummy_timecounter,
     85       1.10  christos 	.th_scale = (uint64_t)-1 / 1000000,
     86       1.10  christos 	.th_offset = { .sec = 1, .frac = 0 },
     87       1.10  christos 	.th_generation = 1,
     88       1.10  christos 	.th_next = &th1,
     89        1.1    simonb };
     90        1.1    simonb 
     91        1.1    simonb static struct timehands *volatile timehands = &th0;
     92        1.1    simonb struct timecounter *timecounter = &dummy_timecounter;
     93        1.1    simonb static struct timecounter *timecounters = &dummy_timecounter;
     94        1.1    simonb 
     95        1.1    simonb time_t time_second = 1;
     96        1.1    simonb time_t time_uptime = 1;
     97        1.1    simonb 
     98        1.4    kardel static struct bintime timebasebin;
     99        1.1    simonb 
    100        1.1    simonb static int timestepwarnings;
    101        1.2    kardel 
    102  1.19.14.3     joerg extern kmutex_t time_lock;
    103  1.19.14.3     joerg 
    104        1.2    kardel #ifdef __FreeBSD__
    105        1.1    simonb SYSCTL_INT(_kern_timecounter, OID_AUTO, stepwarnings, CTLFLAG_RW,
    106        1.1    simonb     &timestepwarnings, 0, "");
    107        1.2    kardel #endif /* __FreeBSD__ */
    108        1.2    kardel 
    109        1.2    kardel /*
    110        1.2    kardel  * sysctl helper routine for kern.timercounter.current
    111        1.2    kardel  */
    112        1.2    kardel static int
    113        1.2    kardel sysctl_kern_timecounter_hardware(SYSCTLFN_ARGS)
    114        1.2    kardel {
    115        1.2    kardel 	struct sysctlnode node;
    116        1.2    kardel 	int error;
    117        1.2    kardel 	char newname[MAX_TCNAMELEN];
    118        1.2    kardel 	struct timecounter *newtc, *tc;
    119        1.2    kardel 
    120        1.2    kardel 	tc = timecounter;
    121        1.2    kardel 
    122        1.2    kardel 	strlcpy(newname, tc->tc_name, sizeof(newname));
    123        1.2    kardel 
    124        1.2    kardel 	node = *rnode;
    125        1.2    kardel 	node.sysctl_data = newname;
    126        1.2    kardel 	node.sysctl_size = sizeof(newname);
    127        1.2    kardel 
    128        1.2    kardel 	error = sysctl_lookup(SYSCTLFN_CALL(&node));
    129        1.2    kardel 
    130        1.2    kardel 	if (error ||
    131        1.2    kardel 	    newp == NULL ||
    132        1.2    kardel 	    strncmp(newname, tc->tc_name, sizeof(newname)) == 0)
    133        1.2    kardel 		return error;
    134        1.1    simonb 
    135  1.19.14.4     joerg 	if (l != NULL && (error = kauth_authorize_system(l->l_cred,
    136  1.19.14.4     joerg 	    KAUTH_SYSTEM_TIME, KAUTH_REQ_SYSTEM_TIME_TIMECOUNTERS, newname,
    137  1.19.14.4     joerg 	    NULL, NULL)) != 0)
    138        1.2    kardel 		return (error);
    139        1.2    kardel 
    140  1.19.14.3     joerg 	if (!cold)
    141  1.19.14.3     joerg 		mutex_enter(&time_lock);
    142  1.19.14.3     joerg 	error = EINVAL;
    143        1.2    kardel 	for (newtc = timecounters; newtc != NULL; newtc = newtc->tc_next) {
    144        1.2    kardel 		if (strcmp(newname, newtc->tc_name) != 0)
    145        1.2    kardel 			continue;
    146        1.2    kardel 		/* Warm up new timecounter. */
    147        1.2    kardel 		(void)newtc->tc_get_timecount(newtc);
    148        1.2    kardel 		(void)newtc->tc_get_timecount(newtc);
    149        1.2    kardel 		timecounter = newtc;
    150  1.19.14.3     joerg 		error = 0;
    151  1.19.14.3     joerg 		break;
    152        1.2    kardel 	}
    153  1.19.14.3     joerg 	if (!cold)
    154  1.19.14.3     joerg 		mutex_exit(&time_lock);
    155  1.19.14.3     joerg 	return error;
    156        1.2    kardel }
    157        1.2    kardel 
    158        1.2    kardel static int
    159        1.2    kardel sysctl_kern_timecounter_choice(SYSCTLFN_ARGS)
    160        1.2    kardel {
    161        1.9    kardel 	char buf[MAX_TCNAMELEN+48];
    162        1.2    kardel 	char *where = oldp;
    163        1.2    kardel 	const char *spc;
    164        1.2    kardel 	struct timecounter *tc;
    165        1.2    kardel 	size_t needed, left, slen;
    166        1.2    kardel 	int error;
    167        1.2    kardel 
    168        1.2    kardel 	if (newp != NULL)
    169        1.2    kardel 		return (EPERM);
    170        1.2    kardel 	if (namelen != 0)
    171        1.2    kardel 		return (EINVAL);
    172        1.2    kardel 
    173        1.2    kardel 	spc = "";
    174        1.2    kardel 	error = 0;
    175        1.2    kardel 	needed = 0;
    176        1.2    kardel 	left = *oldlenp;
    177        1.2    kardel 
    178  1.19.14.3     joerg 	mutex_enter(&time_lock);
    179        1.2    kardel 	for (tc = timecounters; error == 0 && tc != NULL; tc = tc->tc_next) {
    180        1.2    kardel 		if (where == NULL) {
    181        1.2    kardel 			needed += sizeof(buf);  /* be conservative */
    182        1.2    kardel 		} else {
    183        1.2    kardel 			slen = snprintf(buf, sizeof(buf), "%s%s(q=%d, f=%" PRId64
    184        1.2    kardel 					" Hz)", spc, tc->tc_name, tc->tc_quality,
    185        1.2    kardel 					tc->tc_frequency);
    186        1.2    kardel 			if (left < slen + 1)
    187        1.2    kardel 				break;
    188        1.2    kardel 			/* XXX use sysctl_copyout? (from sysctl_hw_disknames) */
    189  1.19.14.3     joerg 			/* XXX copyout with held lock. */
    190        1.2    kardel 			error = copyout(buf, where, slen + 1);
    191        1.2    kardel 			spc = " ";
    192        1.2    kardel 			where += slen;
    193        1.2    kardel 			needed += slen;
    194        1.2    kardel 			left -= slen;
    195        1.2    kardel 		}
    196        1.2    kardel 	}
    197  1.19.14.3     joerg 	mutex_exit(&time_lock);
    198        1.2    kardel 
    199        1.2    kardel 	*oldlenp = needed;
    200        1.2    kardel 	return (error);
    201        1.2    kardel }
    202        1.2    kardel 
    203        1.2    kardel SYSCTL_SETUP(sysctl_timecounter_setup, "sysctl timecounter setup")
    204        1.2    kardel {
    205        1.2    kardel 	const struct sysctlnode *node;
    206        1.2    kardel 
    207        1.2    kardel 	sysctl_createv(clog, 0, NULL, &node,
    208        1.2    kardel 		       CTLFLAG_PERMANENT,
    209        1.2    kardel 		       CTLTYPE_NODE, "timecounter",
    210        1.2    kardel 		       SYSCTL_DESCR("time counter information"),
    211        1.2    kardel 		       NULL, 0, NULL, 0,
    212        1.2    kardel 		       CTL_KERN, CTL_CREATE, CTL_EOL);
    213        1.2    kardel 
    214        1.2    kardel 	if (node != NULL) {
    215        1.2    kardel 		sysctl_createv(clog, 0, NULL, NULL,
    216        1.2    kardel 			       CTLFLAG_PERMANENT,
    217        1.2    kardel 			       CTLTYPE_STRING, "choice",
    218        1.2    kardel 			       SYSCTL_DESCR("available counters"),
    219        1.2    kardel 			       sysctl_kern_timecounter_choice, 0, NULL, 0,
    220        1.2    kardel 			       CTL_KERN, node->sysctl_num, CTL_CREATE, CTL_EOL);
    221        1.2    kardel 
    222        1.2    kardel 		sysctl_createv(clog, 0, NULL, NULL,
    223        1.2    kardel 			       CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
    224        1.2    kardel 			       CTLTYPE_STRING, "hardware",
    225        1.2    kardel 			       SYSCTL_DESCR("currently active time counter"),
    226        1.2    kardel 			       sysctl_kern_timecounter_hardware, 0, NULL, MAX_TCNAMELEN,
    227        1.2    kardel 			       CTL_KERN, node->sysctl_num, CTL_CREATE, CTL_EOL);
    228        1.2    kardel 
    229        1.2    kardel 		sysctl_createv(clog, 0, NULL, NULL,
    230        1.2    kardel 			       CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
    231        1.2    kardel 			       CTLTYPE_INT, "timestepwarnings",
    232        1.2    kardel 			       SYSCTL_DESCR("log time steps"),
    233        1.2    kardel 			       NULL, 0, &timestepwarnings, 0,
    234        1.2    kardel 			       CTL_KERN, node->sysctl_num, CTL_CREATE, CTL_EOL);
    235        1.2    kardel 	}
    236        1.2    kardel }
    237        1.2    kardel 
    238        1.2    kardel #define	TC_STATS(name)							\
    239        1.2    kardel static struct evcnt n##name =						\
    240        1.2    kardel     EVCNT_INITIALIZER(EVCNT_TYPE_MISC, NULL, "timecounter", #name);	\
    241        1.2    kardel EVCNT_ATTACH_STATIC(n##name)
    242        1.2    kardel 
    243        1.2    kardel TC_STATS(binuptime);    TC_STATS(nanouptime);    TC_STATS(microuptime);
    244        1.2    kardel TC_STATS(bintime);      TC_STATS(nanotime);      TC_STATS(microtime);
    245        1.2    kardel TC_STATS(getbinuptime); TC_STATS(getnanouptime); TC_STATS(getmicrouptime);
    246        1.2    kardel TC_STATS(getbintime);   TC_STATS(getnanotime);   TC_STATS(getmicrotime);
    247        1.2    kardel TC_STATS(setclock);
    248        1.1    simonb 
    249        1.1    simonb #undef TC_STATS
    250        1.1    simonb 
    251        1.1    simonb static void tc_windup(void);
    252        1.1    simonb 
    253        1.1    simonb /*
    254        1.1    simonb  * Return the difference between the timehands' counter value now and what
    255        1.1    simonb  * was when we copied it to the timehands' offset_count.
    256        1.1    simonb  */
    257        1.1    simonb static __inline u_int
    258        1.1    simonb tc_delta(struct timehands *th)
    259        1.1    simonb {
    260        1.1    simonb 	struct timecounter *tc;
    261        1.1    simonb 
    262        1.1    simonb 	tc = th->th_counter;
    263        1.2    kardel 	return ((tc->tc_get_timecount(tc) -
    264        1.2    kardel 		 th->th_offset_count) & tc->tc_counter_mask);
    265        1.1    simonb }
    266        1.1    simonb 
    267        1.1    simonb /*
    268        1.1    simonb  * Functions for reading the time.  We have to loop until we are sure that
    269        1.1    simonb  * the timehands that we operated on was not updated under our feet.  See
    270  1.19.14.2     joerg  * the comment in <sys/timevar.h> for a description of these 12 functions.
    271        1.1    simonb  */
    272        1.1    simonb 
    273        1.1    simonb void
    274        1.1    simonb binuptime(struct bintime *bt)
    275        1.1    simonb {
    276        1.1    simonb 	struct timehands *th;
    277        1.1    simonb 	u_int gen;
    278        1.1    simonb 
    279        1.2    kardel 	nbinuptime.ev_count++;
    280        1.1    simonb 	do {
    281        1.1    simonb 		th = timehands;
    282        1.1    simonb 		gen = th->th_generation;
    283        1.1    simonb 		*bt = th->th_offset;
    284        1.1    simonb 		bintime_addx(bt, th->th_scale * tc_delta(th));
    285        1.1    simonb 	} while (gen == 0 || gen != th->th_generation);
    286        1.1    simonb }
    287        1.1    simonb 
    288        1.1    simonb void
    289        1.1    simonb nanouptime(struct timespec *tsp)
    290        1.1    simonb {
    291        1.1    simonb 	struct bintime bt;
    292        1.1    simonb 
    293        1.2    kardel 	nnanouptime.ev_count++;
    294        1.1    simonb 	binuptime(&bt);
    295        1.1    simonb 	bintime2timespec(&bt, tsp);
    296        1.1    simonb }
    297        1.1    simonb 
    298        1.1    simonb void
    299        1.1    simonb microuptime(struct timeval *tvp)
    300        1.1    simonb {
    301        1.1    simonb 	struct bintime bt;
    302        1.1    simonb 
    303        1.2    kardel 	nmicrouptime.ev_count++;
    304        1.1    simonb 	binuptime(&bt);
    305        1.1    simonb 	bintime2timeval(&bt, tvp);
    306        1.1    simonb }
    307        1.1    simonb 
    308        1.1    simonb void
    309        1.1    simonb bintime(struct bintime *bt)
    310        1.1    simonb {
    311        1.1    simonb 
    312        1.2    kardel 	nbintime.ev_count++;
    313        1.1    simonb 	binuptime(bt);
    314        1.4    kardel 	bintime_add(bt, &timebasebin);
    315        1.1    simonb }
    316        1.1    simonb 
    317        1.1    simonb void
    318        1.1    simonb nanotime(struct timespec *tsp)
    319        1.1    simonb {
    320        1.1    simonb 	struct bintime bt;
    321        1.1    simonb 
    322        1.2    kardel 	nnanotime.ev_count++;
    323        1.1    simonb 	bintime(&bt);
    324        1.1    simonb 	bintime2timespec(&bt, tsp);
    325        1.1    simonb }
    326        1.1    simonb 
    327        1.1    simonb void
    328        1.1    simonb microtime(struct timeval *tvp)
    329        1.1    simonb {
    330        1.1    simonb 	struct bintime bt;
    331        1.1    simonb 
    332        1.2    kardel 	nmicrotime.ev_count++;
    333        1.1    simonb 	bintime(&bt);
    334        1.1    simonb 	bintime2timeval(&bt, tvp);
    335        1.1    simonb }
    336        1.1    simonb 
    337        1.1    simonb void
    338        1.1    simonb getbinuptime(struct bintime *bt)
    339        1.1    simonb {
    340        1.1    simonb 	struct timehands *th;
    341        1.1    simonb 	u_int gen;
    342        1.1    simonb 
    343        1.2    kardel 	ngetbinuptime.ev_count++;
    344        1.1    simonb 	do {
    345        1.1    simonb 		th = timehands;
    346        1.1    simonb 		gen = th->th_generation;
    347        1.1    simonb 		*bt = th->th_offset;
    348        1.1    simonb 	} while (gen == 0 || gen != th->th_generation);
    349        1.1    simonb }
    350        1.1    simonb 
    351        1.1    simonb void
    352        1.1    simonb getnanouptime(struct timespec *tsp)
    353        1.1    simonb {
    354        1.1    simonb 	struct timehands *th;
    355        1.1    simonb 	u_int gen;
    356        1.1    simonb 
    357        1.2    kardel 	ngetnanouptime.ev_count++;
    358        1.1    simonb 	do {
    359        1.1    simonb 		th = timehands;
    360        1.1    simonb 		gen = th->th_generation;
    361        1.1    simonb 		bintime2timespec(&th->th_offset, tsp);
    362        1.1    simonb 	} while (gen == 0 || gen != th->th_generation);
    363        1.1    simonb }
    364        1.1    simonb 
    365        1.1    simonb void
    366        1.1    simonb getmicrouptime(struct timeval *tvp)
    367        1.1    simonb {
    368        1.1    simonb 	struct timehands *th;
    369        1.1    simonb 	u_int gen;
    370        1.1    simonb 
    371        1.2    kardel 	ngetmicrouptime.ev_count++;
    372        1.1    simonb 	do {
    373        1.1    simonb 		th = timehands;
    374        1.1    simonb 		gen = th->th_generation;
    375        1.1    simonb 		bintime2timeval(&th->th_offset, tvp);
    376        1.1    simonb 	} while (gen == 0 || gen != th->th_generation);
    377        1.1    simonb }
    378        1.1    simonb 
    379        1.1    simonb void
    380        1.1    simonb getbintime(struct bintime *bt)
    381        1.1    simonb {
    382        1.1    simonb 	struct timehands *th;
    383        1.1    simonb 	u_int gen;
    384        1.1    simonb 
    385        1.2    kardel 	ngetbintime.ev_count++;
    386        1.1    simonb 	do {
    387        1.1    simonb 		th = timehands;
    388        1.1    simonb 		gen = th->th_generation;
    389        1.1    simonb 		*bt = th->th_offset;
    390        1.1    simonb 	} while (gen == 0 || gen != th->th_generation);
    391        1.4    kardel 	bintime_add(bt, &timebasebin);
    392        1.1    simonb }
    393        1.1    simonb 
    394        1.1    simonb void
    395        1.1    simonb getnanotime(struct timespec *tsp)
    396        1.1    simonb {
    397        1.1    simonb 	struct timehands *th;
    398        1.1    simonb 	u_int gen;
    399        1.1    simonb 
    400        1.2    kardel 	ngetnanotime.ev_count++;
    401        1.1    simonb 	do {
    402        1.1    simonb 		th = timehands;
    403        1.1    simonb 		gen = th->th_generation;
    404        1.1    simonb 		*tsp = th->th_nanotime;
    405        1.1    simonb 	} while (gen == 0 || gen != th->th_generation);
    406        1.1    simonb }
    407        1.1    simonb 
    408        1.1    simonb void
    409        1.1    simonb getmicrotime(struct timeval *tvp)
    410        1.1    simonb {
    411        1.1    simonb 	struct timehands *th;
    412        1.1    simonb 	u_int gen;
    413        1.1    simonb 
    414        1.2    kardel 	ngetmicrotime.ev_count++;
    415        1.1    simonb 	do {
    416        1.1    simonb 		th = timehands;
    417        1.1    simonb 		gen = th->th_generation;
    418        1.1    simonb 		*tvp = th->th_microtime;
    419        1.1    simonb 	} while (gen == 0 || gen != th->th_generation);
    420        1.1    simonb }
    421        1.1    simonb 
    422        1.1    simonb /*
    423        1.1    simonb  * Initialize a new timecounter and possibly use it.
    424        1.1    simonb  */
    425        1.1    simonb void
    426        1.1    simonb tc_init(struct timecounter *tc)
    427        1.1    simonb {
    428        1.1    simonb 	u_int u;
    429       1.11    simonb 	int s;
    430        1.1    simonb 
    431        1.1    simonb 	u = tc->tc_frequency / tc->tc_counter_mask;
    432        1.1    simonb 	/* XXX: We need some margin here, 10% is a guess */
    433        1.1    simonb 	u *= 11;
    434        1.1    simonb 	u /= 10;
    435        1.1    simonb 	if (u > hz && tc->tc_quality >= 0) {
    436        1.1    simonb 		tc->tc_quality = -2000;
    437       1.18        ad 		aprint_verbose(
    438       1.18        ad 		    "timecounter: Timecounter \"%s\" frequency %ju Hz",
    439        1.7     bjh21 			    tc->tc_name, (uintmax_t)tc->tc_frequency);
    440       1.18        ad 		aprint_verbose(" -- Insufficient hz, needs at least %u\n", u);
    441        1.1    simonb 	} else if (tc->tc_quality >= 0 || bootverbose) {
    442       1.18        ad 		aprint_verbose(
    443       1.18        ad 		    "timecounter: Timecounter \"%s\" frequency %ju Hz "
    444       1.18        ad 		    "quality %d\n", tc->tc_name, (uintmax_t)tc->tc_frequency,
    445        1.7     bjh21 		    tc->tc_quality);
    446        1.1    simonb 	}
    447        1.1    simonb 
    448  1.19.14.3     joerg 	mutex_enter(&time_lock);
    449  1.19.14.3     joerg 	s = splsched();
    450        1.1    simonb 	tc->tc_next = timecounters;
    451        1.1    simonb 	timecounters = tc;
    452        1.1    simonb 	/*
    453        1.1    simonb 	 * Never automatically use a timecounter with negative quality.
    454        1.1    simonb 	 * Even though we run on the dummy counter, switching here may be
    455        1.1    simonb 	 * worse since this timecounter may not be monotonous.
    456        1.1    simonb 	 */
    457  1.19.14.3     joerg 	if (tc->tc_quality >= 0 && (tc->tc_quality > timecounter->tc_quality ||
    458  1.19.14.3     joerg 	    (tc->tc_quality == timecounter->tc_quality &&
    459  1.19.14.3     joerg 	    tc->tc_frequency > timecounter->tc_frequency))) {
    460  1.19.14.3     joerg 		(void)tc->tc_get_timecount(tc);
    461  1.19.14.3     joerg 		(void)tc->tc_get_timecount(tc);
    462  1.19.14.3     joerg 		timecounter = tc;
    463  1.19.14.3     joerg 		tc_windup();
    464  1.19.14.3     joerg 	}
    465       1.11    simonb 	splx(s);
    466  1.19.14.3     joerg 	mutex_exit(&time_lock);
    467        1.1    simonb }
    468        1.1    simonb 
    469        1.1    simonb /* Report the frequency of the current timecounter. */
    470        1.1    simonb u_int64_t
    471        1.1    simonb tc_getfrequency(void)
    472        1.1    simonb {
    473        1.1    simonb 
    474        1.1    simonb 	return (timehands->th_counter->tc_frequency);
    475        1.1    simonb }
    476        1.1    simonb 
    477        1.1    simonb /*
    478        1.1    simonb  * Step our concept of UTC.  This is done by modifying our estimate of
    479        1.1    simonb  * when we booted.
    480        1.1    simonb  * XXX: not locked.
    481        1.1    simonb  */
    482        1.1    simonb void
    483        1.1    simonb tc_setclock(struct timespec *ts)
    484        1.1    simonb {
    485        1.1    simonb 	struct timespec ts2;
    486        1.1    simonb 	struct bintime bt, bt2;
    487        1.1    simonb 
    488        1.2    kardel 	nsetclock.ev_count++;
    489        1.1    simonb 	binuptime(&bt2);
    490        1.1    simonb 	timespec2bintime(ts, &bt);
    491        1.1    simonb 	bintime_sub(&bt, &bt2);
    492        1.4    kardel 	bintime_add(&bt2, &timebasebin);
    493        1.4    kardel 	timebasebin = bt;
    494        1.1    simonb 
    495        1.1    simonb 	/* XXX fiddle all the little crinkly bits around the fiords... */
    496        1.1    simonb 	tc_windup();
    497        1.1    simonb 	if (timestepwarnings) {
    498        1.1    simonb 		bintime2timespec(&bt2, &ts2);
    499        1.1    simonb 		log(LOG_INFO, "Time stepped from %jd.%09ld to %jd.%09ld\n",
    500        1.1    simonb 		    (intmax_t)ts2.tv_sec, ts2.tv_nsec,
    501        1.1    simonb 		    (intmax_t)ts->tv_sec, ts->tv_nsec);
    502        1.1    simonb 	}
    503        1.1    simonb }
    504        1.1    simonb 
    505        1.1    simonb /*
    506        1.1    simonb  * Initialize the next struct timehands in the ring and make
    507        1.1    simonb  * it the active timehands.  Along the way we might switch to a different
    508        1.1    simonb  * timecounter and/or do seconds processing in NTP.  Slightly magic.
    509        1.1    simonb  */
    510        1.1    simonb static void
    511        1.1    simonb tc_windup(void)
    512        1.1    simonb {
    513        1.1    simonb 	struct bintime bt;
    514        1.1    simonb 	struct timehands *th, *tho;
    515        1.1    simonb 	u_int64_t scale;
    516        1.1    simonb 	u_int delta, ncount, ogen;
    517       1.13    kardel 	int i, s_update;
    518        1.1    simonb 	time_t t;
    519        1.1    simonb 
    520       1.13    kardel 	s_update = 0;
    521  1.19.14.1  jmcneill 
    522        1.1    simonb 	/*
    523        1.1    simonb 	 * Make the next timehands a copy of the current one, but do not
    524        1.1    simonb 	 * overwrite the generation or next pointer.  While we update
    525  1.19.14.1  jmcneill 	 * the contents, the generation must be zero.  Ensure global
    526  1.19.14.1  jmcneill 	 * visibility of the generation before proceeding.
    527        1.1    simonb 	 */
    528        1.1    simonb 	tho = timehands;
    529        1.1    simonb 	th = tho->th_next;
    530        1.1    simonb 	ogen = th->th_generation;
    531        1.1    simonb 	th->th_generation = 0;
    532  1.19.14.5     joerg 	membar_producer();
    533        1.1    simonb 	bcopy(tho, th, offsetof(struct timehands, th_generation));
    534        1.1    simonb 
    535        1.1    simonb 	/*
    536        1.1    simonb 	 * Capture a timecounter delta on the current timecounter and if
    537        1.1    simonb 	 * changing timecounters, a counter value from the new timecounter.
    538        1.1    simonb 	 * Update the offset fields accordingly.
    539        1.1    simonb 	 */
    540        1.1    simonb 	delta = tc_delta(th);
    541        1.1    simonb 	if (th->th_counter != timecounter)
    542        1.1    simonb 		ncount = timecounter->tc_get_timecount(timecounter);
    543        1.1    simonb 	else
    544        1.1    simonb 		ncount = 0;
    545        1.1    simonb 	th->th_offset_count += delta;
    546        1.1    simonb 	th->th_offset_count &= th->th_counter->tc_counter_mask;
    547        1.1    simonb 	bintime_addx(&th->th_offset, th->th_scale * delta);
    548        1.1    simonb 
    549        1.1    simonb 	/*
    550        1.1    simonb 	 * Hardware latching timecounters may not generate interrupts on
    551        1.1    simonb 	 * PPS events, so instead we poll them.  There is a finite risk that
    552        1.1    simonb 	 * the hardware might capture a count which is later than the one we
    553        1.1    simonb 	 * got above, and therefore possibly in the next NTP second which might
    554        1.1    simonb 	 * have a different rate than the current NTP second.  It doesn't
    555        1.1    simonb 	 * matter in practice.
    556        1.1    simonb 	 */
    557        1.1    simonb 	if (tho->th_counter->tc_poll_pps)
    558        1.1    simonb 		tho->th_counter->tc_poll_pps(tho->th_counter);
    559        1.1    simonb 
    560        1.1    simonb 	/*
    561        1.1    simonb 	 * Deal with NTP second processing.  The for loop normally
    562        1.1    simonb 	 * iterates at most once, but in extreme situations it might
    563        1.1    simonb 	 * keep NTP sane if timeouts are not run for several seconds.
    564        1.1    simonb 	 * At boot, the time step can be large when the TOD hardware
    565        1.1    simonb 	 * has been read, so on really large steps, we call
    566        1.1    simonb 	 * ntp_update_second only twice.  We need to call it twice in
    567        1.1    simonb 	 * case we missed a leap second.
    568        1.2    kardel 	 * If NTP is not compiled in ntp_update_second still calculates
    569        1.2    kardel 	 * the adjustment resulting from adjtime() calls.
    570        1.1    simonb 	 */
    571        1.1    simonb 	bt = th->th_offset;
    572        1.4    kardel 	bintime_add(&bt, &timebasebin);
    573        1.1    simonb 	i = bt.sec - tho->th_microtime.tv_sec;
    574        1.1    simonb 	if (i > LARGE_STEP)
    575        1.1    simonb 		i = 2;
    576        1.1    simonb 	for (; i > 0; i--) {
    577        1.1    simonb 		t = bt.sec;
    578        1.1    simonb 		ntp_update_second(&th->th_adjustment, &bt.sec);
    579       1.13    kardel 		s_update = 1;
    580        1.1    simonb 		if (bt.sec != t)
    581        1.4    kardel 			timebasebin.sec += bt.sec - t;
    582        1.1    simonb 	}
    583        1.2    kardel 
    584        1.1    simonb 	/* Update the UTC timestamps used by the get*() functions. */
    585        1.1    simonb 	/* XXX shouldn't do this here.  Should force non-`get' versions. */
    586        1.1    simonb 	bintime2timeval(&bt, &th->th_microtime);
    587        1.1    simonb 	bintime2timespec(&bt, &th->th_nanotime);
    588        1.1    simonb 
    589        1.1    simonb 	/* Now is a good time to change timecounters. */
    590        1.1    simonb 	if (th->th_counter != timecounter) {
    591        1.1    simonb 		th->th_counter = timecounter;
    592        1.1    simonb 		th->th_offset_count = ncount;
    593       1.13    kardel 		s_update = 1;
    594        1.1    simonb 	}
    595        1.1    simonb 
    596        1.1    simonb 	/*-
    597        1.1    simonb 	 * Recalculate the scaling factor.  We want the number of 1/2^64
    598        1.1    simonb 	 * fractions of a second per period of the hardware counter, taking
    599        1.1    simonb 	 * into account the th_adjustment factor which the NTP PLL/adjtime(2)
    600        1.1    simonb 	 * processing provides us with.
    601        1.1    simonb 	 *
    602        1.1    simonb 	 * The th_adjustment is nanoseconds per second with 32 bit binary
    603        1.1    simonb 	 * fraction and we want 64 bit binary fraction of second:
    604        1.1    simonb 	 *
    605        1.1    simonb 	 *	 x = a * 2^32 / 10^9 = a * 4.294967296
    606        1.1    simonb 	 *
    607        1.1    simonb 	 * The range of th_adjustment is +/- 5000PPM so inside a 64bit int
    608        1.1    simonb 	 * we can only multiply by about 850 without overflowing, but that
    609        1.1    simonb 	 * leaves suitably precise fractions for multiply before divide.
    610        1.1    simonb 	 *
    611        1.1    simonb 	 * Divide before multiply with a fraction of 2199/512 results in a
    612        1.1    simonb 	 * systematic undercompensation of 10PPM of th_adjustment.  On a
    613        1.1    simonb 	 * 5000PPM adjustment this is a 0.05PPM error.  This is acceptable.
    614        1.1    simonb  	 *
    615        1.1    simonb 	 * We happily sacrifice the lowest of the 64 bits of our result
    616        1.1    simonb 	 * to the goddess of code clarity.
    617        1.1    simonb 	 *
    618        1.1    simonb 	 */
    619       1.13    kardel 	if (s_update) {
    620       1.13    kardel 		scale = (u_int64_t)1 << 63;
    621       1.13    kardel 		scale += (th->th_adjustment / 1024) * 2199;
    622       1.13    kardel 		scale /= th->th_counter->tc_frequency;
    623       1.13    kardel 		th->th_scale = scale * 2;
    624       1.13    kardel 	}
    625        1.1    simonb 	/*
    626        1.1    simonb 	 * Now that the struct timehands is again consistent, set the new
    627  1.19.14.1  jmcneill 	 * generation number, making sure to not make it zero.  Ensure
    628  1.19.14.1  jmcneill 	 * changes are globally visible before changing.
    629        1.1    simonb 	 */
    630        1.1    simonb 	if (++ogen == 0)
    631        1.1    simonb 		ogen = 1;
    632  1.19.14.5     joerg 	membar_producer();
    633        1.1    simonb 	th->th_generation = ogen;
    634        1.1    simonb 
    635  1.19.14.1  jmcneill 	/*
    636  1.19.14.1  jmcneill 	 * Go live with the new struct timehands.  Ensure changes are
    637  1.19.14.1  jmcneill 	 * globally visible before changing.
    638  1.19.14.1  jmcneill 	 */
    639        1.1    simonb 	time_second = th->th_microtime.tv_sec;
    640        1.1    simonb 	time_uptime = th->th_offset.sec;
    641  1.19.14.5     joerg 	membar_producer();
    642        1.1    simonb 	timehands = th;
    643        1.1    simonb 
    644  1.19.14.3     joerg 	/*
    645  1.19.14.3     joerg 	 * Force users of the old timehand to move on.  This is
    646  1.19.14.3     joerg 	 * necessary for MP systems; we need to ensure that the
    647  1.19.14.3     joerg 	 * consumers will move away from the old timehand before
    648  1.19.14.3     joerg 	 * we begin updating it again when we eventually wrap
    649  1.19.14.3     joerg 	 * around.
    650  1.19.14.3     joerg 	 */
    651  1.19.14.3     joerg 	if (++tho->th_generation == 0)
    652  1.19.14.3     joerg 		tho->th_generation = 1;
    653        1.1    simonb }
    654        1.1    simonb 
    655        1.1    simonb /*
    656        1.1    simonb  * RFC 2783 PPS-API implementation.
    657        1.1    simonb  */
    658        1.1    simonb 
    659        1.1    simonb int
    660       1.19  christos pps_ioctl(u_long cmd, void *data, struct pps_state *pps)
    661        1.1    simonb {
    662        1.1    simonb 	pps_params_t *app;
    663        1.2    kardel 	pps_info_t *pipi;
    664        1.1    simonb #ifdef PPS_SYNC
    665        1.2    kardel 	int *epi;
    666        1.1    simonb #endif
    667        1.1    simonb 
    668        1.2    kardel 	KASSERT(pps != NULL); /* XXX ("NULL pps pointer in pps_ioctl") */
    669        1.1    simonb 	switch (cmd) {
    670        1.1    simonb 	case PPS_IOC_CREATE:
    671        1.1    simonb 		return (0);
    672        1.1    simonb 	case PPS_IOC_DESTROY:
    673        1.1    simonb 		return (0);
    674        1.1    simonb 	case PPS_IOC_SETPARAMS:
    675        1.1    simonb 		app = (pps_params_t *)data;
    676        1.1    simonb 		if (app->mode & ~pps->ppscap)
    677        1.1    simonb 			return (EINVAL);
    678        1.1    simonb 		pps->ppsparam = *app;
    679        1.1    simonb 		return (0);
    680        1.1    simonb 	case PPS_IOC_GETPARAMS:
    681        1.1    simonb 		app = (pps_params_t *)data;
    682        1.1    simonb 		*app = pps->ppsparam;
    683        1.1    simonb 		app->api_version = PPS_API_VERS_1;
    684        1.1    simonb 		return (0);
    685        1.1    simonb 	case PPS_IOC_GETCAP:
    686        1.1    simonb 		*(int*)data = pps->ppscap;
    687        1.1    simonb 		return (0);
    688        1.1    simonb 	case PPS_IOC_FETCH:
    689        1.2    kardel 		pipi = (pps_info_t *)data;
    690        1.1    simonb 		pps->ppsinfo.current_mode = pps->ppsparam.mode;
    691        1.2    kardel 		*pipi = pps->ppsinfo;
    692        1.1    simonb 		return (0);
    693        1.1    simonb 	case PPS_IOC_KCBIND:
    694        1.1    simonb #ifdef PPS_SYNC
    695        1.2    kardel 		epi = (int *)data;
    696        1.1    simonb 		/* XXX Only root should be able to do this */
    697        1.2    kardel 		if (*epi & ~pps->ppscap)
    698        1.1    simonb 			return (EINVAL);
    699        1.2    kardel 		pps->kcmode = *epi;
    700        1.1    simonb 		return (0);
    701        1.1    simonb #else
    702        1.1    simonb 		return (EOPNOTSUPP);
    703        1.1    simonb #endif
    704        1.1    simonb 	default:
    705        1.2    kardel 		return (EPASSTHROUGH);
    706        1.1    simonb 	}
    707        1.1    simonb }
    708        1.1    simonb 
    709        1.1    simonb void
    710        1.1    simonb pps_init(struct pps_state *pps)
    711        1.1    simonb {
    712        1.1    simonb 	pps->ppscap |= PPS_TSFMT_TSPEC;
    713        1.1    simonb 	if (pps->ppscap & PPS_CAPTUREASSERT)
    714        1.1    simonb 		pps->ppscap |= PPS_OFFSETASSERT;
    715        1.1    simonb 	if (pps->ppscap & PPS_CAPTURECLEAR)
    716        1.1    simonb 		pps->ppscap |= PPS_OFFSETCLEAR;
    717        1.1    simonb }
    718        1.1    simonb 
    719        1.1    simonb void
    720        1.1    simonb pps_capture(struct pps_state *pps)
    721        1.1    simonb {
    722        1.1    simonb 	struct timehands *th;
    723        1.1    simonb 
    724        1.2    kardel 	KASSERT(pps != NULL); /* XXX ("NULL pps pointer in pps_capture") */
    725        1.1    simonb 	th = timehands;
    726        1.1    simonb 	pps->capgen = th->th_generation;
    727        1.1    simonb 	pps->capth = th;
    728        1.1    simonb 	pps->capcount = th->th_counter->tc_get_timecount(th->th_counter);
    729        1.1    simonb 	if (pps->capgen != th->th_generation)
    730        1.1    simonb 		pps->capgen = 0;
    731        1.1    simonb }
    732        1.1    simonb 
    733        1.1    simonb void
    734        1.1    simonb pps_event(struct pps_state *pps, int event)
    735        1.1    simonb {
    736        1.1    simonb 	struct bintime bt;
    737        1.1    simonb 	struct timespec ts, *tsp, *osp;
    738        1.1    simonb 	u_int tcount, *pcount;
    739        1.1    simonb 	int foff, fhard;
    740        1.1    simonb 	pps_seq_t *pseq;
    741        1.1    simonb 
    742        1.2    kardel 	KASSERT(pps != NULL); /* XXX ("NULL pps pointer in pps_event") */
    743        1.1    simonb 	/* If the timecounter was wound up underneath us, bail out. */
    744        1.1    simonb 	if (pps->capgen == 0 || pps->capgen != pps->capth->th_generation)
    745        1.1    simonb 		return;
    746        1.1    simonb 
    747        1.1    simonb 	/* Things would be easier with arrays. */
    748        1.1    simonb 	if (event == PPS_CAPTUREASSERT) {
    749        1.1    simonb 		tsp = &pps->ppsinfo.assert_timestamp;
    750        1.1    simonb 		osp = &pps->ppsparam.assert_offset;
    751        1.1    simonb 		foff = pps->ppsparam.mode & PPS_OFFSETASSERT;
    752        1.1    simonb 		fhard = pps->kcmode & PPS_CAPTUREASSERT;
    753        1.1    simonb 		pcount = &pps->ppscount[0];
    754        1.1    simonb 		pseq = &pps->ppsinfo.assert_sequence;
    755        1.1    simonb 	} else {
    756        1.1    simonb 		tsp = &pps->ppsinfo.clear_timestamp;
    757        1.1    simonb 		osp = &pps->ppsparam.clear_offset;
    758        1.1    simonb 		foff = pps->ppsparam.mode & PPS_OFFSETCLEAR;
    759        1.1    simonb 		fhard = pps->kcmode & PPS_CAPTURECLEAR;
    760        1.1    simonb 		pcount = &pps->ppscount[1];
    761        1.1    simonb 		pseq = &pps->ppsinfo.clear_sequence;
    762        1.1    simonb 	}
    763        1.1    simonb 
    764        1.1    simonb 	/*
    765        1.1    simonb 	 * If the timecounter changed, we cannot compare the count values, so
    766        1.1    simonb 	 * we have to drop the rest of the PPS-stuff until the next event.
    767        1.1    simonb 	 */
    768        1.1    simonb 	if (pps->ppstc != pps->capth->th_counter) {
    769        1.1    simonb 		pps->ppstc = pps->capth->th_counter;
    770        1.1    simonb 		*pcount = pps->capcount;
    771        1.1    simonb 		pps->ppscount[2] = pps->capcount;
    772        1.1    simonb 		return;
    773        1.1    simonb 	}
    774        1.1    simonb 
    775        1.1    simonb 	/* Convert the count to a timespec. */
    776        1.1    simonb 	tcount = pps->capcount - pps->capth->th_offset_count;
    777        1.1    simonb 	tcount &= pps->capth->th_counter->tc_counter_mask;
    778        1.1    simonb 	bt = pps->capth->th_offset;
    779        1.1    simonb 	bintime_addx(&bt, pps->capth->th_scale * tcount);
    780        1.4    kardel 	bintime_add(&bt, &timebasebin);
    781        1.1    simonb 	bintime2timespec(&bt, &ts);
    782        1.1    simonb 
    783        1.1    simonb 	/* If the timecounter was wound up underneath us, bail out. */
    784        1.1    simonb 	if (pps->capgen != pps->capth->th_generation)
    785        1.1    simonb 		return;
    786        1.1    simonb 
    787        1.1    simonb 	*pcount = pps->capcount;
    788        1.1    simonb 	(*pseq)++;
    789        1.1    simonb 	*tsp = ts;
    790        1.1    simonb 
    791        1.1    simonb 	if (foff) {
    792        1.2    kardel 		timespecadd(tsp, osp, tsp);
    793        1.1    simonb 		if (tsp->tv_nsec < 0) {
    794        1.1    simonb 			tsp->tv_nsec += 1000000000;
    795        1.1    simonb 			tsp->tv_sec -= 1;
    796        1.1    simonb 		}
    797        1.1    simonb 	}
    798        1.1    simonb #ifdef PPS_SYNC
    799        1.1    simonb 	if (fhard) {
    800        1.1    simonb 		u_int64_t scale;
    801        1.1    simonb 
    802        1.1    simonb 		/*
    803        1.1    simonb 		 * Feed the NTP PLL/FLL.
    804        1.1    simonb 		 * The FLL wants to know how many (hardware) nanoseconds
    805        1.1    simonb 		 * elapsed since the previous event.
    806        1.1    simonb 		 */
    807        1.1    simonb 		tcount = pps->capcount - pps->ppscount[2];
    808        1.1    simonb 		pps->ppscount[2] = pps->capcount;
    809        1.1    simonb 		tcount &= pps->capth->th_counter->tc_counter_mask;
    810        1.1    simonb 		scale = (u_int64_t)1 << 63;
    811        1.1    simonb 		scale /= pps->capth->th_counter->tc_frequency;
    812        1.1    simonb 		scale *= 2;
    813        1.1    simonb 		bt.sec = 0;
    814        1.1    simonb 		bt.frac = 0;
    815        1.1    simonb 		bintime_addx(&bt, scale * tcount);
    816        1.1    simonb 		bintime2timespec(&bt, &ts);
    817        1.1    simonb 		hardpps(tsp, ts.tv_nsec + 1000000000 * ts.tv_sec);
    818        1.1    simonb 	}
    819        1.1    simonb #endif
    820        1.1    simonb }
    821        1.1    simonb 
    822        1.1    simonb /*
    823        1.1    simonb  * Timecounters need to be updated every so often to prevent the hardware
    824        1.1    simonb  * counter from overflowing.  Updating also recalculates the cached values
    825        1.1    simonb  * used by the get*() family of functions, so their precision depends on
    826        1.1    simonb  * the update frequency.
    827        1.1    simonb  */
    828        1.1    simonb 
    829        1.1    simonb static int tc_tick;
    830        1.1    simonb 
    831        1.1    simonb void
    832        1.1    simonb tc_ticktock(void)
    833        1.1    simonb {
    834        1.1    simonb 	static int count;
    835        1.1    simonb 
    836        1.1    simonb 	if (++count < tc_tick)
    837        1.1    simonb 		return;
    838        1.1    simonb 	count = 0;
    839        1.1    simonb 	tc_windup();
    840        1.1    simonb }
    841        1.1    simonb 
    842        1.2    kardel void
    843        1.2    kardel inittimecounter(void)
    844        1.1    simonb {
    845        1.1    simonb 	u_int p;
    846        1.1    simonb 
    847        1.1    simonb 	/*
    848        1.1    simonb 	 * Set the initial timeout to
    849        1.1    simonb 	 * max(1, <approx. number of hardclock ticks in a millisecond>).
    850        1.1    simonb 	 * People should probably not use the sysctl to set the timeout
    851        1.1    simonb 	 * to smaller than its inital value, since that value is the
    852        1.1    simonb 	 * smallest reasonable one.  If they want better timestamps they
    853        1.1    simonb 	 * should use the non-"get"* functions.
    854        1.1    simonb 	 */
    855        1.1    simonb 	if (hz > 1000)
    856        1.1    simonb 		tc_tick = (hz + 500) / 1000;
    857        1.1    simonb 	else
    858        1.1    simonb 		tc_tick = 1;
    859        1.1    simonb 	p = (tc_tick * 1000000) / hz;
    860       1.18        ad 	aprint_verbose("timecounter: Timecounters tick every %d.%03u msec\n",
    861       1.18        ad 	    p / 1000, p % 1000);
    862        1.1    simonb 
    863        1.1    simonb 	/* warm up new timecounter (again) and get rolling. */
    864        1.1    simonb 	(void)timecounter->tc_get_timecount(timecounter);
    865        1.1    simonb 	(void)timecounter->tc_get_timecount(timecounter);
    866        1.1    simonb }
    867        1.1    simonb 
    868        1.2    kardel #endif /* __HAVE_TIMECOUNTER */
    869