2 * arch/s390/kernel/time.c
3 * Time of day based timer functions.
6 * Copyright IBM Corp. 1999, 2008
7 * Author(s): Hartmut Penner (hp@de.ibm.com),
8 * Martin Schwidefsky (schwidefsky@de.ibm.com),
9 * Denis Joseph Barrow (djbarrow@de.ibm.com,barrow_dj@yahoo.com)
11 * Derived from "arch/i386/kernel/time.c"
12 * Copyright (C) 1991, 1992, 1995 Linus Torvalds
15 #define KMSG_COMPONENT "time"
16 #define pr_fmt(fmt) KMSG_COMPONENT ": " fmt
18 #include <linux/errno.h>
19 #include <linux/module.h>
20 #include <linux/sched.h>
21 #include <linux/kernel.h>
22 #include <linux/param.h>
23 #include <linux/string.h>
25 #include <linux/interrupt.h>
26 #include <linux/cpu.h>
27 #include <linux/stop_machine.h>
28 #include <linux/time.h>
29 #include <linux/sysdev.h>
30 #include <linux/delay.h>
31 #include <linux/init.h>
32 #include <linux/smp.h>
33 #include <linux/types.h>
34 #include <linux/profile.h>
35 #include <linux/timex.h>
36 #include <linux/notifier.h>
37 #include <linux/clocksource.h>
38 #include <linux/clockchips.h>
39 #include <asm/uaccess.h>
40 #include <asm/delay.h>
41 #include <asm/s390_ext.h>
42 #include <asm/div64.h>
45 #include <asm/irq_regs.h>
46 #include <asm/timer.h>
50 /* change this if you have some constant time drift */
51 #define USECS_PER_JIFFY ((unsigned long) 1000000/HZ)
52 #define CLK_TICKS_PER_JIFFY ((unsigned long) USECS_PER_JIFFY << 12)
55 * Create a small time difference between the timer interrupts
56 * on the different cpus to avoid lock contention.
58 #define CPU_DEVIATION (smp_processor_id() << 12)
60 #define TICK_SIZE tick
62 u64 sched_clock_base_cc
= -1; /* Force to data section. */
64 static DEFINE_PER_CPU(struct clock_event_device
, comparators
);
67 * Scheduler clock - returns current time in nanosec units.
69 unsigned long long notrace
sched_clock(void)
71 return ((get_clock_xt() - sched_clock_base_cc
) * 125) >> 9;
75 * Monotonic_clock - returns # of nanoseconds passed since time_init()
77 unsigned long long monotonic_clock(void)
81 EXPORT_SYMBOL(monotonic_clock
);
83 void tod_to_timeval(__u64 todval
, struct timespec
*xtime
)
85 unsigned long long sec
;
90 todval
-= (sec
* 1000000) << 12;
91 xtime
->tv_nsec
= ((todval
* 1000) >> 12);
94 void clock_comparator_work(void)
96 struct clock_event_device
*cd
;
98 S390_lowcore
.clock_comparator
= -1ULL;
99 set_clock_comparator(S390_lowcore
.clock_comparator
);
100 cd
= &__get_cpu_var(comparators
);
101 cd
->event_handler(cd
);
105 * Fixup the clock comparator.
107 static void fixup_clock_comparator(unsigned long long delta
)
109 /* If nobody is waiting there's nothing to fix. */
110 if (S390_lowcore
.clock_comparator
== -1ULL)
112 S390_lowcore
.clock_comparator
+= delta
;
113 set_clock_comparator(S390_lowcore
.clock_comparator
);
116 static int s390_next_event(unsigned long delta
,
117 struct clock_event_device
*evt
)
119 S390_lowcore
.clock_comparator
= get_clock() + delta
;
120 set_clock_comparator(S390_lowcore
.clock_comparator
);
124 static void s390_set_mode(enum clock_event_mode mode
,
125 struct clock_event_device
*evt
)
130 * Set up lowcore and control register of the current cpu to
131 * enable TOD clock and clock comparator interrupts.
133 void init_cpu_timer(void)
135 struct clock_event_device
*cd
;
138 S390_lowcore
.clock_comparator
= -1ULL;
139 set_clock_comparator(S390_lowcore
.clock_comparator
);
141 cpu
= smp_processor_id();
142 cd
= &per_cpu(comparators
, cpu
);
143 cd
->name
= "comparator";
144 cd
->features
= CLOCK_EVT_FEAT_ONESHOT
;
147 cd
->min_delta_ns
= 1;
148 cd
->max_delta_ns
= LONG_MAX
;
150 cd
->cpumask
= cpumask_of(cpu
);
151 cd
->set_next_event
= s390_next_event
;
152 cd
->set_mode
= s390_set_mode
;
154 clockevents_register_device(cd
);
156 /* Enable clock comparator timer interrupt. */
159 /* Always allow the timing alert external interrupt. */
163 static void clock_comparator_interrupt(__u16 code
)
165 if (S390_lowcore
.clock_comparator
== -1ULL)
166 set_clock_comparator(S390_lowcore
.clock_comparator
);
169 static void etr_timing_alert(struct etr_irq_parm
*);
170 static void stp_timing_alert(struct stp_irq_parm
*);
172 static void timing_alert_interrupt(__u16 code
)
174 if (S390_lowcore
.ext_params
& 0x00c40000)
175 etr_timing_alert((struct etr_irq_parm
*)
176 &S390_lowcore
.ext_params
);
177 if (S390_lowcore
.ext_params
& 0x00038000)
178 stp_timing_alert((struct stp_irq_parm
*)
179 &S390_lowcore
.ext_params
);
182 static void etr_reset(void);
183 static void stp_reset(void);
185 unsigned long read_persistent_clock(void)
189 tod_to_timeval(get_clock() - TOD_UNIX_EPOCH
, &ts
);
193 static cycle_t
read_tod_clock(struct clocksource
*cs
)
198 static struct clocksource clocksource_tod
= {
201 .read
= read_tod_clock
,
205 .flags
= CLOCK_SOURCE_IS_CONTINUOUS
,
209 void update_vsyscall(struct timespec
*wall_time
, struct clocksource
*clock
)
211 if (clock
!= &clocksource_tod
)
214 /* Make userspace gettimeofday spin until we're done. */
215 ++vdso_data
->tb_update_count
;
217 vdso_data
->xtime_tod_stamp
= clock
->cycle_last
;
218 vdso_data
->xtime_clock_sec
= xtime
.tv_sec
;
219 vdso_data
->xtime_clock_nsec
= xtime
.tv_nsec
;
220 vdso_data
->wtom_clock_sec
= wall_to_monotonic
.tv_sec
;
221 vdso_data
->wtom_clock_nsec
= wall_to_monotonic
.tv_nsec
;
223 ++vdso_data
->tb_update_count
;
226 extern struct timezone sys_tz
;
228 void update_vsyscall_tz(void)
230 /* Make userspace gettimeofday spin until we're done. */
231 ++vdso_data
->tb_update_count
;
233 vdso_data
->tz_minuteswest
= sys_tz
.tz_minuteswest
;
234 vdso_data
->tz_dsttime
= sys_tz
.tz_dsttime
;
236 ++vdso_data
->tb_update_count
;
240 * Initialize the TOD clock and the CPU timer of
243 void __init
time_init(void)
249 /* Reset time synchronization interfaces. */
253 /* request the clock comparator external interrupt */
254 if (register_external_interrupt(0x1004, clock_comparator_interrupt
))
255 panic("Couldn't request external interrupt 0x1004");
257 /* request the timing alert external interrupt */
258 if (register_external_interrupt(0x1406, timing_alert_interrupt
))
259 panic("Couldn't request external interrupt 0x1406");
261 if (clocksource_register(&clocksource_tod
) != 0)
262 panic("Could not register TOD clock source");
265 * The TOD clock is an accurate clock. The xtime should be
266 * initialized in a way that the difference between TOD and
267 * xtime is reasonably small. Too bad that timekeeping_init
268 * sets xtime.tv_nsec to zero. In addition the clock source
269 * change from the jiffies clock source to the TOD clock
270 * source add another error of up to 1/HZ second. The same
271 * function sets wall_to_monotonic to a value that is too
272 * small for /proc/uptime to be accurate.
273 * Reset xtime and wall_to_monotonic to sane values.
275 write_seqlock_irqsave(&xtime_lock
, flags
);
277 tod_to_timeval(now
- TOD_UNIX_EPOCH
, &xtime
);
278 clocksource_tod
.cycle_last
= now
;
279 clocksource_tod
.raw_time
= xtime
;
280 tod_to_timeval(sched_clock_base_cc
- TOD_UNIX_EPOCH
, &ts
);
281 set_normalized_timespec(&wall_to_monotonic
, -ts
.tv_sec
, -ts
.tv_nsec
);
282 write_sequnlock_irqrestore(&xtime_lock
, flags
);
284 /* Enable TOD clock interrupts on the boot cpu. */
287 /* Enable cpu timer interrupts on the boot cpu. */
292 * The time is "clock". old is what we think the time is.
293 * Adjust the value by a multiple of jiffies and add the delta to ntp.
294 * "delay" is an approximation how long the synchronization took. If
295 * the time correction is positive, then "delay" is subtracted from
296 * the time difference and only the remaining part is passed to ntp.
298 static unsigned long long adjust_time(unsigned long long old
,
299 unsigned long long clock
,
300 unsigned long long delay
)
302 unsigned long long delta
, ticks
;
306 /* It is later than we thought. */
307 delta
= ticks
= clock
- old
;
308 delta
= ticks
= (delta
< delay
) ? 0 : delta
- delay
;
309 delta
-= do_div(ticks
, CLK_TICKS_PER_JIFFY
);
310 adjust
.offset
= ticks
* (1000000 / HZ
);
312 /* It is earlier than we thought. */
313 delta
= ticks
= old
- clock
;
314 delta
-= do_div(ticks
, CLK_TICKS_PER_JIFFY
);
316 adjust
.offset
= -ticks
* (1000000 / HZ
);
318 sched_clock_base_cc
+= delta
;
319 if (adjust
.offset
!= 0) {
320 pr_notice("The ETR interface has adjusted the clock "
321 "by %li microseconds\n", adjust
.offset
);
322 adjust
.modes
= ADJ_OFFSET_SINGLESHOT
;
323 do_adjtimex(&adjust
);
328 static DEFINE_PER_CPU(atomic_t
, clock_sync_word
);
329 static DEFINE_MUTEX(clock_sync_mutex
);
330 static unsigned long clock_sync_flags
;
332 #define CLOCK_SYNC_HAS_ETR 0
333 #define CLOCK_SYNC_HAS_STP 1
334 #define CLOCK_SYNC_ETR 2
335 #define CLOCK_SYNC_STP 3
338 * The synchronous get_clock function. It will write the current clock
339 * value to the clock pointer and return 0 if the clock is in sync with
340 * the external time source. If the clock mode is local it will return
341 * -ENOSYS and -EAGAIN if the clock is not in sync with the external
344 int get_sync_clock(unsigned long long *clock
)
347 unsigned int sw0
, sw1
;
349 sw_ptr
= &get_cpu_var(clock_sync_word
);
350 sw0
= atomic_read(sw_ptr
);
351 *clock
= get_clock();
352 sw1
= atomic_read(sw_ptr
);
353 put_cpu_var(clock_sync_sync
);
354 if (sw0
== sw1
&& (sw0
& 0x80000000U
))
355 /* Success: time is in sync. */
357 if (!test_bit(CLOCK_SYNC_HAS_ETR
, &clock_sync_flags
) &&
358 !test_bit(CLOCK_SYNC_HAS_STP
, &clock_sync_flags
))
360 if (!test_bit(CLOCK_SYNC_ETR
, &clock_sync_flags
) &&
361 !test_bit(CLOCK_SYNC_STP
, &clock_sync_flags
))
365 EXPORT_SYMBOL(get_sync_clock
);
368 * Make get_sync_clock return -EAGAIN.
370 static void disable_sync_clock(void *dummy
)
372 atomic_t
*sw_ptr
= &__get_cpu_var(clock_sync_word
);
374 * Clear the in-sync bit 2^31. All get_sync_clock calls will
375 * fail until the sync bit is turned back on. In addition
376 * increase the "sequence" counter to avoid the race of an
377 * etr event and the complete recovery against get_sync_clock.
379 atomic_clear_mask(0x80000000, sw_ptr
);
384 * Make get_sync_clock return 0 again.
385 * Needs to be called from a context disabled for preemption.
387 static void enable_sync_clock(void)
389 atomic_t
*sw_ptr
= &__get_cpu_var(clock_sync_word
);
390 atomic_set_mask(0x80000000, sw_ptr
);
394 * Function to check if the clock is in sync.
396 static inline int check_sync_clock(void)
401 sw_ptr
= &get_cpu_var(clock_sync_word
);
402 rc
= (atomic_read(sw_ptr
) & 0x80000000U
) != 0;
403 put_cpu_var(clock_sync_sync
);
407 /* Single threaded workqueue used for etr and stp sync events */
408 static struct workqueue_struct
*time_sync_wq
;
410 static void __init
time_init_wq(void)
414 time_sync_wq
= create_singlethread_workqueue("timesync");
415 stop_machine_create();
419 * External Time Reference (ETR) code.
421 static int etr_port0_online
;
422 static int etr_port1_online
;
423 static int etr_steai_available
;
425 static int __init
early_parse_etr(char *p
)
427 if (strncmp(p
, "off", 3) == 0)
428 etr_port0_online
= etr_port1_online
= 0;
429 else if (strncmp(p
, "port0", 5) == 0)
430 etr_port0_online
= 1;
431 else if (strncmp(p
, "port1", 5) == 0)
432 etr_port1_online
= 1;
433 else if (strncmp(p
, "on", 2) == 0)
434 etr_port0_online
= etr_port1_online
= 1;
437 early_param("etr", early_parse_etr
);
440 ETR_EVENT_PORT0_CHANGE
,
441 ETR_EVENT_PORT1_CHANGE
,
442 ETR_EVENT_PORT_ALERT
,
443 ETR_EVENT_SYNC_CHECK
,
444 ETR_EVENT_SWITCH_LOCAL
,
449 * Valid bit combinations of the eacr register are (x = don't care):
450 * e0 e1 dp p0 p1 ea es sl
451 * 0 0 x 0 0 0 0 0 initial, disabled state
452 * 0 0 x 0 1 1 0 0 port 1 online
453 * 0 0 x 1 0 1 0 0 port 0 online
454 * 0 0 x 1 1 1 0 0 both ports online
455 * 0 1 x 0 1 1 0 0 port 1 online and usable, ETR or PPS mode
456 * 0 1 x 0 1 1 0 1 port 1 online, usable and ETR mode
457 * 0 1 x 0 1 1 1 0 port 1 online, usable, PPS mode, in-sync
458 * 0 1 x 0 1 1 1 1 port 1 online, usable, ETR mode, in-sync
459 * 0 1 x 1 1 1 0 0 both ports online, port 1 usable
460 * 0 1 x 1 1 1 1 0 both ports online, port 1 usable, PPS mode, in-sync
461 * 0 1 x 1 1 1 1 1 both ports online, port 1 usable, ETR mode, in-sync
462 * 1 0 x 1 0 1 0 0 port 0 online and usable, ETR or PPS mode
463 * 1 0 x 1 0 1 0 1 port 0 online, usable and ETR mode
464 * 1 0 x 1 0 1 1 0 port 0 online, usable, PPS mode, in-sync
465 * 1 0 x 1 0 1 1 1 port 0 online, usable, ETR mode, in-sync
466 * 1 0 x 1 1 1 0 0 both ports online, port 0 usable
467 * 1 0 x 1 1 1 1 0 both ports online, port 0 usable, PPS mode, in-sync
468 * 1 0 x 1 1 1 1 1 both ports online, port 0 usable, ETR mode, in-sync
469 * 1 1 x 1 1 1 1 0 both ports online & usable, ETR, in-sync
470 * 1 1 x 1 1 1 1 1 both ports online & usable, ETR, in-sync
472 static struct etr_eacr etr_eacr
;
473 static u64 etr_tolec
; /* time of last eacr update */
474 static struct etr_aib etr_port0
;
475 static int etr_port0_uptodate
;
476 static struct etr_aib etr_port1
;
477 static int etr_port1_uptodate
;
478 static unsigned long etr_events
;
479 static struct timer_list etr_timer
;
481 static void etr_timeout(unsigned long dummy
);
482 static void etr_work_fn(struct work_struct
*work
);
483 static DEFINE_MUTEX(etr_work_mutex
);
484 static DECLARE_WORK(etr_work
, etr_work_fn
);
487 * Reset ETR attachment.
489 static void etr_reset(void)
491 etr_eacr
= (struct etr_eacr
) {
492 .e0
= 0, .e1
= 0, ._pad0
= 4, .dp
= 0,
493 .p0
= 0, .p1
= 0, ._pad1
= 0, .ea
= 0,
495 if (etr_setr(&etr_eacr
) == 0) {
496 etr_tolec
= get_clock();
497 set_bit(CLOCK_SYNC_HAS_ETR
, &clock_sync_flags
);
498 if (etr_port0_online
&& etr_port1_online
)
499 set_bit(CLOCK_SYNC_ETR
, &clock_sync_flags
);
500 } else if (etr_port0_online
|| etr_port1_online
) {
501 pr_warning("The real or virtual hardware system does "
502 "not provide an ETR interface\n");
503 etr_port0_online
= etr_port1_online
= 0;
507 static int __init
etr_init(void)
511 if (!test_bit(CLOCK_SYNC_HAS_ETR
, &clock_sync_flags
))
514 /* Check if this machine has the steai instruction. */
515 if (etr_steai(&aib
, ETR_STEAI_STEPPING_PORT
) == 0)
516 etr_steai_available
= 1;
517 setup_timer(&etr_timer
, etr_timeout
, 0UL);
518 if (etr_port0_online
) {
519 set_bit(ETR_EVENT_PORT0_CHANGE
, &etr_events
);
520 queue_work(time_sync_wq
, &etr_work
);
522 if (etr_port1_online
) {
523 set_bit(ETR_EVENT_PORT1_CHANGE
, &etr_events
);
524 queue_work(time_sync_wq
, &etr_work
);
529 arch_initcall(etr_init
);
532 * Two sorts of ETR machine checks. The architecture reads:
533 * "When a machine-check niterruption occurs and if a switch-to-local or
534 * ETR-sync-check interrupt request is pending but disabled, this pending
535 * disabled interruption request is indicated and is cleared".
536 * Which means that we can get etr_switch_to_local events from the machine
537 * check handler although the interruption condition is disabled. Lovely..
541 * Switch to local machine check. This is called when the last usable
542 * ETR port goes inactive. After switch to local the clock is not in sync.
544 void etr_switch_to_local(void)
548 disable_sync_clock(NULL
);
549 set_bit(ETR_EVENT_SWITCH_LOCAL
, &etr_events
);
550 queue_work(time_sync_wq
, &etr_work
);
554 * ETR sync check machine check. This is called when the ETR OTE and the
555 * local clock OTE are farther apart than the ETR sync check tolerance.
556 * After a ETR sync check the clock is not in sync. The machine check
557 * is broadcasted to all cpus at the same time.
559 void etr_sync_check(void)
563 disable_sync_clock(NULL
);
564 set_bit(ETR_EVENT_SYNC_CHECK
, &etr_events
);
565 queue_work(time_sync_wq
, &etr_work
);
569 * ETR timing alert. There are two causes:
570 * 1) port state change, check the usability of the port
571 * 2) port alert, one of the ETR-data-validity bits (v1-v2 bits of the
572 * sldr-status word) or ETR-data word 1 (edf1) or ETR-data word 3 (edf3)
573 * or ETR-data word 4 (edf4) has changed.
575 static void etr_timing_alert(struct etr_irq_parm
*intparm
)
578 /* ETR port 0 state change. */
579 set_bit(ETR_EVENT_PORT0_CHANGE
, &etr_events
);
581 /* ETR port 1 state change. */
582 set_bit(ETR_EVENT_PORT1_CHANGE
, &etr_events
);
585 * ETR port alert on either port 0, 1 or both.
586 * Both ports are not up-to-date now.
588 set_bit(ETR_EVENT_PORT_ALERT
, &etr_events
);
589 queue_work(time_sync_wq
, &etr_work
);
592 static void etr_timeout(unsigned long dummy
)
594 set_bit(ETR_EVENT_UPDATE
, &etr_events
);
595 queue_work(time_sync_wq
, &etr_work
);
599 * Check if the etr mode is pss.
601 static inline int etr_mode_is_pps(struct etr_eacr eacr
)
603 return eacr
.es
&& !eacr
.sl
;
607 * Check if the etr mode is etr.
609 static inline int etr_mode_is_etr(struct etr_eacr eacr
)
611 return eacr
.es
&& eacr
.sl
;
615 * Check if the port can be used for TOD synchronization.
616 * For PPS mode the port has to receive OTEs. For ETR mode
617 * the port has to receive OTEs, the ETR stepping bit has to
618 * be zero and the validity bits for data frame 1, 2, and 3
621 static int etr_port_valid(struct etr_aib
*aib
, int port
)
625 /* Check that this port is receiving OTEs. */
629 psc
= port
? aib
->esw
.psc1
: aib
->esw
.psc0
;
630 if (psc
== etr_lpsc_pps_mode
)
632 if (psc
== etr_lpsc_operational_step
)
633 return !aib
->esw
.y
&& aib
->slsw
.v1
&&
634 aib
->slsw
.v2
&& aib
->slsw
.v3
;
639 * Check if two ports are on the same network.
641 static int etr_compare_network(struct etr_aib
*aib1
, struct etr_aib
*aib2
)
643 // FIXME: any other fields we have to compare?
644 return aib1
->edf1
.net_id
== aib2
->edf1
.net_id
;
648 * Wrapper for etr_stei that converts physical port states
649 * to logical port states to be consistent with the output
650 * of stetr (see etr_psc vs. etr_lpsc).
652 static void etr_steai_cv(struct etr_aib
*aib
, unsigned int func
)
654 BUG_ON(etr_steai(aib
, func
) != 0);
655 /* Convert port state to logical port state. */
656 if (aib
->esw
.psc0
== 1)
658 else if (aib
->esw
.psc0
== 0 && aib
->esw
.p
== 0)
660 if (aib
->esw
.psc1
== 1)
662 else if (aib
->esw
.psc1
== 0 && aib
->esw
.p
== 1)
667 * Check if the aib a2 is still connected to the same attachment as
668 * aib a1, the etv values differ by one and a2 is valid.
670 static int etr_aib_follows(struct etr_aib
*a1
, struct etr_aib
*a2
, int p
)
672 int state_a1
, state_a2
;
674 /* Paranoia check: e0/e1 should better be the same. */
675 if (a1
->esw
.eacr
.e0
!= a2
->esw
.eacr
.e0
||
676 a1
->esw
.eacr
.e1
!= a2
->esw
.eacr
.e1
)
679 /* Still connected to the same etr ? */
680 state_a1
= p
? a1
->esw
.psc1
: a1
->esw
.psc0
;
681 state_a2
= p
? a2
->esw
.psc1
: a2
->esw
.psc0
;
682 if (state_a1
== etr_lpsc_operational_step
) {
683 if (state_a2
!= etr_lpsc_operational_step
||
684 a1
->edf1
.net_id
!= a2
->edf1
.net_id
||
685 a1
->edf1
.etr_id
!= a2
->edf1
.etr_id
||
686 a1
->edf1
.etr_pn
!= a2
->edf1
.etr_pn
)
688 } else if (state_a2
!= etr_lpsc_pps_mode
)
691 /* The ETV value of a2 needs to be ETV of a1 + 1. */
692 if (a1
->edf2
.etv
+ 1 != a2
->edf2
.etv
)
695 if (!etr_port_valid(a2
, p
))
701 struct clock_sync_data
{
704 unsigned long long fixup_cc
;
706 struct etr_aib
*etr_aib
;
709 static void clock_sync_cpu(struct clock_sync_data
*sync
)
711 atomic_dec(&sync
->cpus
);
714 * This looks like a busy wait loop but it isn't. etr_sync_cpus
715 * is called on all other cpus while the TOD clocks is stopped.
716 * __udelay will stop the cpu on an enabled wait psw until the
717 * TOD is running again.
719 while (sync
->in_sync
== 0) {
722 * A different cpu changes *in_sync. Therefore use
723 * barrier() to force memory access.
727 if (sync
->in_sync
!= 1)
728 /* Didn't work. Clear per-cpu in sync bit again. */
729 disable_sync_clock(NULL
);
731 * This round of TOD syncing is done. Set the clock comparator
732 * to the next tick and let the processor continue.
734 fixup_clock_comparator(sync
->fixup_cc
);
738 * Sync the TOD clock using the port refered to by aibp. This port
739 * has to be enabled and the other port has to be disabled. The
740 * last eacr update has to be more than 1.6 seconds in the past.
742 static int etr_sync_clock(void *data
)
745 unsigned long long clock
, old_clock
, delay
, delta
;
746 struct clock_sync_data
*etr_sync
;
747 struct etr_aib
*sync_port
, *aib
;
753 if (xchg(&first
, 1) == 1) {
755 clock_sync_cpu(etr_sync
);
759 /* Wait until all other cpus entered the sync function. */
760 while (atomic_read(&etr_sync
->cpus
) != 0)
763 port
= etr_sync
->etr_port
;
764 aib
= etr_sync
->etr_aib
;
765 sync_port
= (port
== 0) ? &etr_port0
: &etr_port1
;
768 /* Set clock to next OTE. */
769 __ctl_set_bit(14, 21);
770 __ctl_set_bit(0, 29);
771 clock
= ((unsigned long long) (aib
->edf2
.etv
+ 1)) << 32;
772 old_clock
= get_clock();
773 if (set_clock(clock
) == 0) {
774 __udelay(1); /* Wait for the clock to start. */
775 __ctl_clear_bit(0, 29);
776 __ctl_clear_bit(14, 21);
778 /* Adjust Linux timing variables. */
779 delay
= (unsigned long long)
780 (aib
->edf2
.etv
- sync_port
->edf2
.etv
) << 32;
781 delta
= adjust_time(old_clock
, clock
, delay
);
782 etr_sync
->fixup_cc
= delta
;
783 fixup_clock_comparator(delta
);
784 /* Verify that the clock is properly set. */
785 if (!etr_aib_follows(sync_port
, aib
, port
)) {
787 disable_sync_clock(NULL
);
788 etr_sync
->in_sync
= -EAGAIN
;
791 etr_sync
->in_sync
= 1;
795 /* Could not set the clock ?!? */
796 __ctl_clear_bit(0, 29);
797 __ctl_clear_bit(14, 21);
798 disable_sync_clock(NULL
);
799 etr_sync
->in_sync
= -EAGAIN
;
806 static int etr_sync_clock_stop(struct etr_aib
*aib
, int port
)
808 struct clock_sync_data etr_sync
;
809 struct etr_aib
*sync_port
;
813 /* Check if the current aib is adjacent to the sync port aib. */
814 sync_port
= (port
== 0) ? &etr_port0
: &etr_port1
;
815 follows
= etr_aib_follows(sync_port
, aib
, port
);
816 memcpy(sync_port
, aib
, sizeof(*aib
));
819 memset(&etr_sync
, 0, sizeof(etr_sync
));
820 etr_sync
.etr_aib
= aib
;
821 etr_sync
.etr_port
= port
;
823 atomic_set(&etr_sync
.cpus
, num_online_cpus() - 1);
824 rc
= stop_machine(etr_sync_clock
, &etr_sync
, &cpu_online_map
);
830 * Handle the immediate effects of the different events.
831 * The port change event is used for online/offline changes.
833 static struct etr_eacr
etr_handle_events(struct etr_eacr eacr
)
835 if (test_and_clear_bit(ETR_EVENT_SYNC_CHECK
, &etr_events
))
837 if (test_and_clear_bit(ETR_EVENT_SWITCH_LOCAL
, &etr_events
))
838 eacr
.es
= eacr
.sl
= 0;
839 if (test_and_clear_bit(ETR_EVENT_PORT_ALERT
, &etr_events
))
840 etr_port0_uptodate
= etr_port1_uptodate
= 0;
842 if (test_and_clear_bit(ETR_EVENT_PORT0_CHANGE
, &etr_events
)) {
845 * Port change of an enabled port. We have to
846 * assume that this can have caused an stepping
849 etr_tolec
= get_clock();
850 eacr
.p0
= etr_port0_online
;
853 etr_port0_uptodate
= 0;
855 if (test_and_clear_bit(ETR_EVENT_PORT1_CHANGE
, &etr_events
)) {
858 * Port change of an enabled port. We have to
859 * assume that this can have caused an stepping
862 etr_tolec
= get_clock();
863 eacr
.p1
= etr_port1_online
;
866 etr_port1_uptodate
= 0;
868 clear_bit(ETR_EVENT_UPDATE
, &etr_events
);
873 * Set up a timer that expires after the etr_tolec + 1.6 seconds if
874 * one of the ports needs an update.
876 static void etr_set_tolec_timeout(unsigned long long now
)
878 unsigned long micros
;
880 if ((!etr_eacr
.p0
|| etr_port0_uptodate
) &&
881 (!etr_eacr
.p1
|| etr_port1_uptodate
))
883 micros
= (now
> etr_tolec
) ? ((now
- etr_tolec
) >> 12) : 0;
884 micros
= (micros
> 1600000) ? 0 : 1600000 - micros
;
885 mod_timer(&etr_timer
, jiffies
+ (micros
* HZ
) / 1000000 + 1);
889 * Set up a time that expires after 1/2 second.
891 static void etr_set_sync_timeout(void)
893 mod_timer(&etr_timer
, jiffies
+ HZ
/2);
897 * Update the aib information for one or both ports.
899 static struct etr_eacr
etr_handle_update(struct etr_aib
*aib
,
900 struct etr_eacr eacr
)
902 /* With both ports disabled the aib information is useless. */
903 if (!eacr
.e0
&& !eacr
.e1
)
906 /* Update port0 or port1 with aib stored in etr_work_fn. */
907 if (aib
->esw
.q
== 0) {
908 /* Information for port 0 stored. */
909 if (eacr
.p0
&& !etr_port0_uptodate
) {
911 if (etr_port0_online
)
912 etr_port0_uptodate
= 1;
915 /* Information for port 1 stored. */
916 if (eacr
.p1
&& !etr_port1_uptodate
) {
918 if (etr_port0_online
)
919 etr_port1_uptodate
= 1;
924 * Do not try to get the alternate port aib if the clock
925 * is not in sync yet.
927 if (!check_sync_clock())
931 * If steai is available we can get the information about
932 * the other port immediately. If only stetr is available the
933 * data-port bit toggle has to be used.
935 if (etr_steai_available
) {
936 if (eacr
.p0
&& !etr_port0_uptodate
) {
937 etr_steai_cv(&etr_port0
, ETR_STEAI_PORT_0
);
938 etr_port0_uptodate
= 1;
940 if (eacr
.p1
&& !etr_port1_uptodate
) {
941 etr_steai_cv(&etr_port1
, ETR_STEAI_PORT_1
);
942 etr_port1_uptodate
= 1;
946 * One port was updated above, if the other
947 * port is not uptodate toggle dp bit.
949 if ((eacr
.p0
&& !etr_port0_uptodate
) ||
950 (eacr
.p1
&& !etr_port1_uptodate
))
959 * Write new etr control register if it differs from the current one.
960 * Return 1 if etr_tolec has been updated as well.
962 static void etr_update_eacr(struct etr_eacr eacr
)
966 if (memcmp(&etr_eacr
, &eacr
, sizeof(eacr
)) == 0)
967 /* No change, return. */
970 * The disable of an active port of the change of the data port
971 * bit can/will cause a change in the data port.
973 dp_changed
= etr_eacr
.e0
> eacr
.e0
|| etr_eacr
.e1
> eacr
.e1
||
974 (etr_eacr
.dp
^ eacr
.dp
) != 0;
978 etr_tolec
= get_clock();
982 * ETR work. In this function you'll find the main logic. In
983 * particular this is the only function that calls etr_update_eacr(),
984 * it "controls" the etr control register.
986 static void etr_work_fn(struct work_struct
*work
)
988 unsigned long long now
;
989 struct etr_eacr eacr
;
993 /* prevent multiple execution. */
994 mutex_lock(&etr_work_mutex
);
996 /* Create working copy of etr_eacr. */
999 /* Check for the different events and their immediate effects. */
1000 eacr
= etr_handle_events(eacr
);
1002 /* Check if ETR is supposed to be active. */
1003 eacr
.ea
= eacr
.p0
|| eacr
.p1
;
1005 /* Both ports offline. Reset everything. */
1006 eacr
.dp
= eacr
.es
= eacr
.sl
= 0;
1007 on_each_cpu(disable_sync_clock
, NULL
, 1);
1008 del_timer_sync(&etr_timer
);
1009 etr_update_eacr(eacr
);
1013 /* Store aib to get the current ETR status word. */
1014 BUG_ON(etr_stetr(&aib
) != 0);
1015 etr_port0
.esw
= etr_port1
.esw
= aib
.esw
; /* Copy status word. */
1019 * Update the port information if the last stepping port change
1020 * or data port change is older than 1.6 seconds.
1022 if (now
>= etr_tolec
+ (1600000 << 12))
1023 eacr
= etr_handle_update(&aib
, eacr
);
1026 * Select ports to enable. The prefered synchronization mode is PPS.
1027 * If a port can be enabled depends on a number of things:
1028 * 1) The port needs to be online and uptodate. A port is not
1029 * disabled just because it is not uptodate, but it is only
1030 * enabled if it is uptodate.
1031 * 2) The port needs to have the same mode (pps / etr).
1032 * 3) The port needs to be usable -> etr_port_valid() == 1
1033 * 4) To enable the second port the clock needs to be in sync.
1034 * 5) If both ports are useable and are ETR ports, the network id
1035 * has to be the same.
1036 * The eacr.sl bit is used to indicate etr mode vs. pps mode.
1038 if (eacr
.p0
&& aib
.esw
.psc0
== etr_lpsc_pps_mode
) {
1041 if (!etr_mode_is_pps(etr_eacr
))
1043 if (!eacr
.es
|| !eacr
.p1
|| aib
.esw
.psc1
!= etr_lpsc_pps_mode
)
1045 // FIXME: uptodate checks ?
1046 else if (etr_port0_uptodate
&& etr_port1_uptodate
)
1048 sync_port
= (etr_port0_uptodate
&&
1049 etr_port_valid(&etr_port0
, 0)) ? 0 : -1;
1050 } else if (eacr
.p1
&& aib
.esw
.psc1
== etr_lpsc_pps_mode
) {
1054 if (!etr_mode_is_pps(etr_eacr
))
1056 sync_port
= (etr_port1_uptodate
&&
1057 etr_port_valid(&etr_port1
, 1)) ? 1 : -1;
1058 } else if (eacr
.p0
&& aib
.esw
.psc0
== etr_lpsc_operational_step
) {
1061 if (!etr_mode_is_etr(etr_eacr
))
1063 if (!eacr
.es
|| !eacr
.p1
||
1064 aib
.esw
.psc1
!= etr_lpsc_operational_alt
)
1066 else if (etr_port0_uptodate
&& etr_port1_uptodate
&&
1067 etr_compare_network(&etr_port0
, &etr_port1
))
1069 sync_port
= (etr_port0_uptodate
&&
1070 etr_port_valid(&etr_port0
, 0)) ? 0 : -1;
1071 } else if (eacr
.p1
&& aib
.esw
.psc1
== etr_lpsc_operational_step
) {
1075 if (!etr_mode_is_etr(etr_eacr
))
1077 sync_port
= (etr_port1_uptodate
&&
1078 etr_port_valid(&etr_port1
, 1)) ? 1 : -1;
1080 /* Both ports not usable. */
1081 eacr
.es
= eacr
.sl
= 0;
1086 * If the clock is in sync just update the eacr and return.
1087 * If there is no valid sync port wait for a port update.
1089 if (check_sync_clock() || sync_port
< 0) {
1090 etr_update_eacr(eacr
);
1091 etr_set_tolec_timeout(now
);
1096 * Prepare control register for clock syncing
1097 * (reset data port bit, set sync check control.
1103 * Update eacr and try to synchronize the clock. If the update
1104 * of eacr caused a stepping port switch (or if we have to
1105 * assume that a stepping port switch has occured) or the
1106 * clock syncing failed, reset the sync check control bit
1107 * and set up a timer to try again after 0.5 seconds
1109 etr_update_eacr(eacr
);
1110 if (now
< etr_tolec
+ (1600000 << 12) ||
1111 etr_sync_clock_stop(&aib
, sync_port
) != 0) {
1112 /* Sync failed. Try again in 1/2 second. */
1114 etr_update_eacr(eacr
);
1115 etr_set_sync_timeout();
1117 etr_set_tolec_timeout(now
);
1119 mutex_unlock(&etr_work_mutex
);
1123 * Sysfs interface functions
1125 static struct sysdev_class etr_sysclass
= {
1129 static struct sys_device etr_port0_dev
= {
1131 .cls
= &etr_sysclass
,
1134 static struct sys_device etr_port1_dev
= {
1136 .cls
= &etr_sysclass
,
1140 * ETR class attributes
1142 static ssize_t
etr_stepping_port_show(struct sysdev_class
*class, char *buf
)
1144 return sprintf(buf
, "%i\n", etr_port0
.esw
.p
);
1147 static SYSDEV_CLASS_ATTR(stepping_port
, 0400, etr_stepping_port_show
, NULL
);
1149 static ssize_t
etr_stepping_mode_show(struct sysdev_class
*class, char *buf
)
1153 if (etr_mode_is_pps(etr_eacr
))
1155 else if (etr_mode_is_etr(etr_eacr
))
1159 return sprintf(buf
, "%s\n", mode_str
);
1162 static SYSDEV_CLASS_ATTR(stepping_mode
, 0400, etr_stepping_mode_show
, NULL
);
1165 * ETR port attributes
1167 static inline struct etr_aib
*etr_aib_from_dev(struct sys_device
*dev
)
1169 if (dev
== &etr_port0_dev
)
1170 return etr_port0_online
? &etr_port0
: NULL
;
1172 return etr_port1_online
? &etr_port1
: NULL
;
1175 static ssize_t
etr_online_show(struct sys_device
*dev
,
1176 struct sysdev_attribute
*attr
,
1179 unsigned int online
;
1181 online
= (dev
== &etr_port0_dev
) ? etr_port0_online
: etr_port1_online
;
1182 return sprintf(buf
, "%i\n", online
);
1185 static ssize_t
etr_online_store(struct sys_device
*dev
,
1186 struct sysdev_attribute
*attr
,
1187 const char *buf
, size_t count
)
1191 value
= simple_strtoul(buf
, NULL
, 0);
1192 if (value
!= 0 && value
!= 1)
1194 if (!test_bit(CLOCK_SYNC_HAS_ETR
, &clock_sync_flags
))
1196 mutex_lock(&clock_sync_mutex
);
1197 if (dev
== &etr_port0_dev
) {
1198 if (etr_port0_online
== value
)
1199 goto out
; /* Nothing to do. */
1200 etr_port0_online
= value
;
1201 if (etr_port0_online
&& etr_port1_online
)
1202 set_bit(CLOCK_SYNC_ETR
, &clock_sync_flags
);
1204 clear_bit(CLOCK_SYNC_ETR
, &clock_sync_flags
);
1205 set_bit(ETR_EVENT_PORT0_CHANGE
, &etr_events
);
1206 queue_work(time_sync_wq
, &etr_work
);
1208 if (etr_port1_online
== value
)
1209 goto out
; /* Nothing to do. */
1210 etr_port1_online
= value
;
1211 if (etr_port0_online
&& etr_port1_online
)
1212 set_bit(CLOCK_SYNC_ETR
, &clock_sync_flags
);
1214 clear_bit(CLOCK_SYNC_ETR
, &clock_sync_flags
);
1215 set_bit(ETR_EVENT_PORT1_CHANGE
, &etr_events
);
1216 queue_work(time_sync_wq
, &etr_work
);
1219 mutex_unlock(&clock_sync_mutex
);
1223 static SYSDEV_ATTR(online
, 0600, etr_online_show
, etr_online_store
);
1225 static ssize_t
etr_stepping_control_show(struct sys_device
*dev
,
1226 struct sysdev_attribute
*attr
,
1229 return sprintf(buf
, "%i\n", (dev
== &etr_port0_dev
) ?
1230 etr_eacr
.e0
: etr_eacr
.e1
);
1233 static SYSDEV_ATTR(stepping_control
, 0400, etr_stepping_control_show
, NULL
);
1235 static ssize_t
etr_mode_code_show(struct sys_device
*dev
,
1236 struct sysdev_attribute
*attr
, char *buf
)
1238 if (!etr_port0_online
&& !etr_port1_online
)
1239 /* Status word is not uptodate if both ports are offline. */
1241 return sprintf(buf
, "%i\n", (dev
== &etr_port0_dev
) ?
1242 etr_port0
.esw
.psc0
: etr_port0
.esw
.psc1
);
1245 static SYSDEV_ATTR(state_code
, 0400, etr_mode_code_show
, NULL
);
1247 static ssize_t
etr_untuned_show(struct sys_device
*dev
,
1248 struct sysdev_attribute
*attr
, char *buf
)
1250 struct etr_aib
*aib
= etr_aib_from_dev(dev
);
1252 if (!aib
|| !aib
->slsw
.v1
)
1254 return sprintf(buf
, "%i\n", aib
->edf1
.u
);
1257 static SYSDEV_ATTR(untuned
, 0400, etr_untuned_show
, NULL
);
1259 static ssize_t
etr_network_id_show(struct sys_device
*dev
,
1260 struct sysdev_attribute
*attr
, char *buf
)
1262 struct etr_aib
*aib
= etr_aib_from_dev(dev
);
1264 if (!aib
|| !aib
->slsw
.v1
)
1266 return sprintf(buf
, "%i\n", aib
->edf1
.net_id
);
1269 static SYSDEV_ATTR(network
, 0400, etr_network_id_show
, NULL
);
1271 static ssize_t
etr_id_show(struct sys_device
*dev
,
1272 struct sysdev_attribute
*attr
, char *buf
)
1274 struct etr_aib
*aib
= etr_aib_from_dev(dev
);
1276 if (!aib
|| !aib
->slsw
.v1
)
1278 return sprintf(buf
, "%i\n", aib
->edf1
.etr_id
);
1281 static SYSDEV_ATTR(id
, 0400, etr_id_show
, NULL
);
1283 static ssize_t
etr_port_number_show(struct sys_device
*dev
,
1284 struct sysdev_attribute
*attr
, char *buf
)
1286 struct etr_aib
*aib
= etr_aib_from_dev(dev
);
1288 if (!aib
|| !aib
->slsw
.v1
)
1290 return sprintf(buf
, "%i\n", aib
->edf1
.etr_pn
);
1293 static SYSDEV_ATTR(port
, 0400, etr_port_number_show
, NULL
);
1295 static ssize_t
etr_coupled_show(struct sys_device
*dev
,
1296 struct sysdev_attribute
*attr
, char *buf
)
1298 struct etr_aib
*aib
= etr_aib_from_dev(dev
);
1300 if (!aib
|| !aib
->slsw
.v3
)
1302 return sprintf(buf
, "%i\n", aib
->edf3
.c
);
1305 static SYSDEV_ATTR(coupled
, 0400, etr_coupled_show
, NULL
);
1307 static ssize_t
etr_local_time_show(struct sys_device
*dev
,
1308 struct sysdev_attribute
*attr
, char *buf
)
1310 struct etr_aib
*aib
= etr_aib_from_dev(dev
);
1312 if (!aib
|| !aib
->slsw
.v3
)
1314 return sprintf(buf
, "%i\n", aib
->edf3
.blto
);
1317 static SYSDEV_ATTR(local_time
, 0400, etr_local_time_show
, NULL
);
1319 static ssize_t
etr_utc_offset_show(struct sys_device
*dev
,
1320 struct sysdev_attribute
*attr
, char *buf
)
1322 struct etr_aib
*aib
= etr_aib_from_dev(dev
);
1324 if (!aib
|| !aib
->slsw
.v3
)
1326 return sprintf(buf
, "%i\n", aib
->edf3
.buo
);
1329 static SYSDEV_ATTR(utc_offset
, 0400, etr_utc_offset_show
, NULL
);
1331 static struct sysdev_attribute
*etr_port_attributes
[] = {
1333 &attr_stepping_control
,
1345 static int __init
etr_register_port(struct sys_device
*dev
)
1347 struct sysdev_attribute
**attr
;
1350 rc
= sysdev_register(dev
);
1353 for (attr
= etr_port_attributes
; *attr
; attr
++) {
1354 rc
= sysdev_create_file(dev
, *attr
);
1360 for (; attr
>= etr_port_attributes
; attr
--)
1361 sysdev_remove_file(dev
, *attr
);
1362 sysdev_unregister(dev
);
1367 static void __init
etr_unregister_port(struct sys_device
*dev
)
1369 struct sysdev_attribute
**attr
;
1371 for (attr
= etr_port_attributes
; *attr
; attr
++)
1372 sysdev_remove_file(dev
, *attr
);
1373 sysdev_unregister(dev
);
1376 static int __init
etr_init_sysfs(void)
1380 rc
= sysdev_class_register(&etr_sysclass
);
1383 rc
= sysdev_class_create_file(&etr_sysclass
, &attr_stepping_port
);
1385 goto out_unreg_class
;
1386 rc
= sysdev_class_create_file(&etr_sysclass
, &attr_stepping_mode
);
1388 goto out_remove_stepping_port
;
1389 rc
= etr_register_port(&etr_port0_dev
);
1391 goto out_remove_stepping_mode
;
1392 rc
= etr_register_port(&etr_port1_dev
);
1394 goto out_remove_port0
;
1398 etr_unregister_port(&etr_port0_dev
);
1399 out_remove_stepping_mode
:
1400 sysdev_class_remove_file(&etr_sysclass
, &attr_stepping_mode
);
1401 out_remove_stepping_port
:
1402 sysdev_class_remove_file(&etr_sysclass
, &attr_stepping_port
);
1404 sysdev_class_unregister(&etr_sysclass
);
1409 device_initcall(etr_init_sysfs
);
1412 * Server Time Protocol (STP) code.
1414 static int stp_online
;
1415 static struct stp_sstpi stp_info
;
1416 static void *stp_page
;
1418 static void stp_work_fn(struct work_struct
*work
);
1419 static DEFINE_MUTEX(stp_work_mutex
);
1420 static DECLARE_WORK(stp_work
, stp_work_fn
);
1421 static struct timer_list stp_timer
;
1423 static int __init
early_parse_stp(char *p
)
1425 if (strncmp(p
, "off", 3) == 0)
1427 else if (strncmp(p
, "on", 2) == 0)
1431 early_param("stp", early_parse_stp
);
1434 * Reset STP attachment.
1436 static void __init
stp_reset(void)
1440 stp_page
= (void *) get_zeroed_page(GFP_ATOMIC
);
1441 rc
= chsc_sstpc(stp_page
, STP_OP_CTRL
, 0x0000);
1443 set_bit(CLOCK_SYNC_HAS_STP
, &clock_sync_flags
);
1444 else if (stp_online
) {
1445 pr_warning("The real or virtual hardware system does "
1446 "not provide an STP interface\n");
1447 free_page((unsigned long) stp_page
);
1453 static void stp_timeout(unsigned long dummy
)
1455 queue_work(time_sync_wq
, &stp_work
);
1458 static int __init
stp_init(void)
1460 if (!test_bit(CLOCK_SYNC_HAS_STP
, &clock_sync_flags
))
1462 setup_timer(&stp_timer
, stp_timeout
, 0UL);
1466 queue_work(time_sync_wq
, &stp_work
);
1470 arch_initcall(stp_init
);
1473 * STP timing alert. There are three causes:
1474 * 1) timing status change
1475 * 2) link availability change
1476 * 3) time control parameter change
1477 * In all three cases we are only interested in the clock source state.
1478 * If a STP clock source is now available use it.
1480 static void stp_timing_alert(struct stp_irq_parm
*intparm
)
1482 if (intparm
->tsc
|| intparm
->lac
|| intparm
->tcpc
)
1483 queue_work(time_sync_wq
, &stp_work
);
1487 * STP sync check machine check. This is called when the timing state
1488 * changes from the synchronized state to the unsynchronized state.
1489 * After a STP sync check the clock is not in sync. The machine check
1490 * is broadcasted to all cpus at the same time.
1492 void stp_sync_check(void)
1494 disable_sync_clock(NULL
);
1495 queue_work(time_sync_wq
, &stp_work
);
1499 * STP island condition machine check. This is called when an attached
1500 * server attempts to communicate over an STP link and the servers
1501 * have matching CTN ids and have a valid stratum-1 configuration
1502 * but the configurations do not match.
1504 void stp_island_check(void)
1506 disable_sync_clock(NULL
);
1507 queue_work(time_sync_wq
, &stp_work
);
1511 static int stp_sync_clock(void *data
)
1514 unsigned long long old_clock
, delta
;
1515 struct clock_sync_data
*stp_sync
;
1520 if (xchg(&first
, 1) == 1) {
1522 clock_sync_cpu(stp_sync
);
1526 /* Wait until all other cpus entered the sync function. */
1527 while (atomic_read(&stp_sync
->cpus
) != 0)
1530 enable_sync_clock();
1533 if (stp_info
.todoff
[0] || stp_info
.todoff
[1] ||
1534 stp_info
.todoff
[2] || stp_info
.todoff
[3] ||
1535 stp_info
.tmd
!= 2) {
1536 old_clock
= get_clock();
1537 rc
= chsc_sstpc(stp_page
, STP_OP_SYNC
, 0);
1539 delta
= adjust_time(old_clock
, get_clock(), 0);
1540 fixup_clock_comparator(delta
);
1541 rc
= chsc_sstpi(stp_page
, &stp_info
,
1542 sizeof(struct stp_sstpi
));
1543 if (rc
== 0 && stp_info
.tmd
!= 2)
1548 disable_sync_clock(NULL
);
1549 stp_sync
->in_sync
= -EAGAIN
;
1551 stp_sync
->in_sync
= 1;
1557 * STP work. Check for the STP state and take over the clock
1558 * synchronization if the STP clock source is usable.
1560 static void stp_work_fn(struct work_struct
*work
)
1562 struct clock_sync_data stp_sync
;
1565 /* prevent multiple execution. */
1566 mutex_lock(&stp_work_mutex
);
1569 chsc_sstpc(stp_page
, STP_OP_CTRL
, 0x0000);
1570 del_timer_sync(&stp_timer
);
1574 rc
= chsc_sstpc(stp_page
, STP_OP_CTRL
, 0xb0e0);
1578 rc
= chsc_sstpi(stp_page
, &stp_info
, sizeof(struct stp_sstpi
));
1579 if (rc
|| stp_info
.c
== 0)
1582 /* Skip synchronization if the clock is already in sync. */
1583 if (check_sync_clock())
1586 memset(&stp_sync
, 0, sizeof(stp_sync
));
1588 atomic_set(&stp_sync
.cpus
, num_online_cpus() - 1);
1589 stop_machine(stp_sync_clock
, &stp_sync
, &cpu_online_map
);
1592 if (!check_sync_clock())
1594 * There is a usable clock but the synchonization failed.
1595 * Retry after a second.
1597 mod_timer(&stp_timer
, jiffies
+ HZ
);
1600 mutex_unlock(&stp_work_mutex
);
1604 * STP class sysfs interface functions
1606 static struct sysdev_class stp_sysclass
= {
1610 static ssize_t
stp_ctn_id_show(struct sysdev_class
*class, char *buf
)
1614 return sprintf(buf
, "%016llx\n",
1615 *(unsigned long long *) stp_info
.ctnid
);
1618 static SYSDEV_CLASS_ATTR(ctn_id
, 0400, stp_ctn_id_show
, NULL
);
1620 static ssize_t
stp_ctn_type_show(struct sysdev_class
*class, char *buf
)
1624 return sprintf(buf
, "%i\n", stp_info
.ctn
);
1627 static SYSDEV_CLASS_ATTR(ctn_type
, 0400, stp_ctn_type_show
, NULL
);
1629 static ssize_t
stp_dst_offset_show(struct sysdev_class
*class, char *buf
)
1631 if (!stp_online
|| !(stp_info
.vbits
& 0x2000))
1633 return sprintf(buf
, "%i\n", (int)(s16
) stp_info
.dsto
);
1636 static SYSDEV_CLASS_ATTR(dst_offset
, 0400, stp_dst_offset_show
, NULL
);
1638 static ssize_t
stp_leap_seconds_show(struct sysdev_class
*class, char *buf
)
1640 if (!stp_online
|| !(stp_info
.vbits
& 0x8000))
1642 return sprintf(buf
, "%i\n", (int)(s16
) stp_info
.leaps
);
1645 static SYSDEV_CLASS_ATTR(leap_seconds
, 0400, stp_leap_seconds_show
, NULL
);
1647 static ssize_t
stp_stratum_show(struct sysdev_class
*class, char *buf
)
1651 return sprintf(buf
, "%i\n", (int)(s16
) stp_info
.stratum
);
1654 static SYSDEV_CLASS_ATTR(stratum
, 0400, stp_stratum_show
, NULL
);
1656 static ssize_t
stp_time_offset_show(struct sysdev_class
*class, char *buf
)
1658 if (!stp_online
|| !(stp_info
.vbits
& 0x0800))
1660 return sprintf(buf
, "%i\n", (int) stp_info
.tto
);
1663 static SYSDEV_CLASS_ATTR(time_offset
, 0400, stp_time_offset_show
, NULL
);
1665 static ssize_t
stp_time_zone_offset_show(struct sysdev_class
*class, char *buf
)
1667 if (!stp_online
|| !(stp_info
.vbits
& 0x4000))
1669 return sprintf(buf
, "%i\n", (int)(s16
) stp_info
.tzo
);
1672 static SYSDEV_CLASS_ATTR(time_zone_offset
, 0400,
1673 stp_time_zone_offset_show
, NULL
);
1675 static ssize_t
stp_timing_mode_show(struct sysdev_class
*class, char *buf
)
1679 return sprintf(buf
, "%i\n", stp_info
.tmd
);
1682 static SYSDEV_CLASS_ATTR(timing_mode
, 0400, stp_timing_mode_show
, NULL
);
1684 static ssize_t
stp_timing_state_show(struct sysdev_class
*class, char *buf
)
1688 return sprintf(buf
, "%i\n", stp_info
.tst
);
1691 static SYSDEV_CLASS_ATTR(timing_state
, 0400, stp_timing_state_show
, NULL
);
1693 static ssize_t
stp_online_show(struct sysdev_class
*class, char *buf
)
1695 return sprintf(buf
, "%i\n", stp_online
);
1698 static ssize_t
stp_online_store(struct sysdev_class
*class,
1699 const char *buf
, size_t count
)
1703 value
= simple_strtoul(buf
, NULL
, 0);
1704 if (value
!= 0 && value
!= 1)
1706 if (!test_bit(CLOCK_SYNC_HAS_STP
, &clock_sync_flags
))
1708 mutex_lock(&clock_sync_mutex
);
1711 set_bit(CLOCK_SYNC_STP
, &clock_sync_flags
);
1713 clear_bit(CLOCK_SYNC_STP
, &clock_sync_flags
);
1714 queue_work(time_sync_wq
, &stp_work
);
1715 mutex_unlock(&clock_sync_mutex
);
1720 * Can't use SYSDEV_CLASS_ATTR because the attribute should be named
1721 * stp/online but attr_online already exists in this file ..
1723 static struct sysdev_class_attribute attr_stp_online
= {
1724 .attr
= { .name
= "online", .mode
= 0600 },
1725 .show
= stp_online_show
,
1726 .store
= stp_online_store
,
1729 static struct sysdev_class_attribute
*stp_attributes
[] = {
1737 &attr_time_zone_offset
,
1743 static int __init
stp_init_sysfs(void)
1745 struct sysdev_class_attribute
**attr
;
1748 rc
= sysdev_class_register(&stp_sysclass
);
1751 for (attr
= stp_attributes
; *attr
; attr
++) {
1752 rc
= sysdev_class_create_file(&stp_sysclass
, *attr
);
1758 for (; attr
>= stp_attributes
; attr
--)
1759 sysdev_class_remove_file(&stp_sysclass
, *attr
);
1760 sysdev_class_unregister(&stp_sysclass
);
1765 device_initcall(stp_init_sysfs
);