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1 /*
2 * Time of day based timer functions.
3 *
4 * S390 version
5 * Copyright IBM Corp. 1999, 2008
6 * Author(s): Hartmut Penner (hp@de.ibm.com),
7 * Martin Schwidefsky (schwidefsky@de.ibm.com),
8 * Denis Joseph Barrow (djbarrow@de.ibm.com,barrow_dj@yahoo.com)
9 *
10 * Derived from "arch/i386/kernel/time.c"
11 * Copyright (C) 1991, 1992, 1995 Linus Torvalds
12 */
13
14 #define KMSG_COMPONENT "time"
15 #define pr_fmt(fmt) KMSG_COMPONENT ": " fmt
16
17 #include <linux/kernel_stat.h>
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>
24 #include <linux/mm.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/device.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/timekeeper_internal.h>
38 #include <linux/clockchips.h>
39 #include <linux/gfp.h>
40 #include <linux/kprobes.h>
41 #include <linux/uaccess.h>
42 #include <asm/facility.h>
43 #include <asm/delay.h>
44 #include <asm/div64.h>
45 #include <asm/vdso.h>
46 #include <asm/irq.h>
47 #include <asm/irq_regs.h>
48 #include <asm/vtimer.h>
49 #include <asm/stp.h>
50 #include <asm/cio.h>
51 #include "entry.h"
52
53 u64 sched_clock_base_cc = -1; /* Force to data section. */
54 EXPORT_SYMBOL_GPL(sched_clock_base_cc);
55
56 static DEFINE_PER_CPU(struct clock_event_device, comparators);
57
58 ATOMIC_NOTIFIER_HEAD(s390_epoch_delta_notifier);
59 EXPORT_SYMBOL(s390_epoch_delta_notifier);
60
61 unsigned char ptff_function_mask[16];
62
63 static unsigned long long lpar_offset;
64 static unsigned long long initial_leap_seconds;
65 static unsigned long long tod_steering_end;
66 static long long tod_steering_delta;
67
68 /*
69 * Get time offsets with PTFF
70 */
71 void __init time_early_init(void)
72 {
73 struct ptff_qto qto;
74 struct ptff_qui qui;
75
76 /* Initialize TOD steering parameters */
77 tod_steering_end = sched_clock_base_cc;
78 vdso_data->ts_end = tod_steering_end;
79
80 if (!test_facility(28))
81 return;
82
83 ptff(&ptff_function_mask, sizeof(ptff_function_mask), PTFF_QAF);
84
85 /* get LPAR offset */
86 if (ptff_query(PTFF_QTO) && ptff(&qto, sizeof(qto), PTFF_QTO) == 0)
87 lpar_offset = qto.tod_epoch_difference;
88
89 /* get initial leap seconds */
90 if (ptff_query(PTFF_QUI) && ptff(&qui, sizeof(qui), PTFF_QUI) == 0)
91 initial_leap_seconds = (unsigned long long)
92 ((long) qui.old_leap * 4096000000L);
93 }
94
95 /*
96 * Scheduler clock - returns current time in nanosec units.
97 */
98 unsigned long long notrace sched_clock(void)
99 {
100 return tod_to_ns(get_tod_clock_monotonic());
101 }
102 NOKPROBE_SYMBOL(sched_clock);
103
104 /*
105 * Monotonic_clock - returns # of nanoseconds passed since time_init()
106 */
107 unsigned long long monotonic_clock(void)
108 {
109 return sched_clock();
110 }
111 EXPORT_SYMBOL(monotonic_clock);
112
113 void tod_to_timeval(__u64 todval, struct timespec64 *xt)
114 {
115 unsigned long long sec;
116
117 sec = todval >> 12;
118 do_div(sec, 1000000);
119 xt->tv_sec = sec;
120 todval -= (sec * 1000000) << 12;
121 xt->tv_nsec = ((todval * 1000) >> 12);
122 }
123 EXPORT_SYMBOL(tod_to_timeval);
124
125 void clock_comparator_work(void)
126 {
127 struct clock_event_device *cd;
128
129 S390_lowcore.clock_comparator = -1ULL;
130 cd = this_cpu_ptr(&comparators);
131 cd->event_handler(cd);
132 }
133
134 static int s390_next_event(unsigned long delta,
135 struct clock_event_device *evt)
136 {
137 S390_lowcore.clock_comparator = get_tod_clock() + delta;
138 set_clock_comparator(S390_lowcore.clock_comparator);
139 return 0;
140 }
141
142 /*
143 * Set up lowcore and control register of the current cpu to
144 * enable TOD clock and clock comparator interrupts.
145 */
146 void init_cpu_timer(void)
147 {
148 struct clock_event_device *cd;
149 int cpu;
150
151 S390_lowcore.clock_comparator = -1ULL;
152 set_clock_comparator(S390_lowcore.clock_comparator);
153
154 cpu = smp_processor_id();
155 cd = &per_cpu(comparators, cpu);
156 cd->name = "comparator";
157 cd->features = CLOCK_EVT_FEAT_ONESHOT;
158 cd->mult = 16777;
159 cd->shift = 12;
160 cd->min_delta_ns = 1;
161 cd->max_delta_ns = LONG_MAX;
162 cd->rating = 400;
163 cd->cpumask = cpumask_of(cpu);
164 cd->set_next_event = s390_next_event;
165
166 clockevents_register_device(cd);
167
168 /* Enable clock comparator timer interrupt. */
169 __ctl_set_bit(0,11);
170
171 /* Always allow the timing alert external interrupt. */
172 __ctl_set_bit(0, 4);
173 }
174
175 static void clock_comparator_interrupt(struct ext_code ext_code,
176 unsigned int param32,
177 unsigned long param64)
178 {
179 inc_irq_stat(IRQEXT_CLK);
180 if (S390_lowcore.clock_comparator == -1ULL)
181 set_clock_comparator(S390_lowcore.clock_comparator);
182 }
183
184 static void stp_timing_alert(struct stp_irq_parm *);
185
186 static void timing_alert_interrupt(struct ext_code ext_code,
187 unsigned int param32, unsigned long param64)
188 {
189 inc_irq_stat(IRQEXT_TLA);
190 if (param32 & 0x00038000)
191 stp_timing_alert((struct stp_irq_parm *) &param32);
192 }
193
194 static void stp_reset(void);
195
196 void read_persistent_clock64(struct timespec64 *ts)
197 {
198 __u64 clock;
199
200 clock = get_tod_clock() - initial_leap_seconds;
201 tod_to_timeval(clock - TOD_UNIX_EPOCH, ts);
202 }
203
204 void read_boot_clock64(struct timespec64 *ts)
205 {
206 __u64 clock;
207
208 clock = sched_clock_base_cc - initial_leap_seconds;
209 tod_to_timeval(clock - TOD_UNIX_EPOCH, ts);
210 }
211
212 static cycle_t read_tod_clock(struct clocksource *cs)
213 {
214 unsigned long long now, adj;
215
216 preempt_disable(); /* protect from changes to steering parameters */
217 now = get_tod_clock();
218 adj = tod_steering_end - now;
219 if (unlikely((s64) adj >= 0))
220 /*
221 * manually steer by 1 cycle every 2^16 cycles. This
222 * corresponds to shifting the tod delta by 15. 1s is
223 * therefore steered in ~9h. The adjust will decrease
224 * over time, until it finally reaches 0.
225 */
226 now += (tod_steering_delta < 0) ? (adj >> 15) : -(adj >> 15);
227 preempt_enable();
228 return now;
229 }
230
231 static struct clocksource clocksource_tod = {
232 .name = "tod",
233 .rating = 400,
234 .read = read_tod_clock,
235 .mask = -1ULL,
236 .mult = 1000,
237 .shift = 12,
238 .flags = CLOCK_SOURCE_IS_CONTINUOUS,
239 };
240
241 struct clocksource * __init clocksource_default_clock(void)
242 {
243 return &clocksource_tod;
244 }
245
246 void update_vsyscall(struct timekeeper *tk)
247 {
248 u64 nsecps;
249
250 if (tk->tkr_mono.clock != &clocksource_tod)
251 return;
252
253 /* Make userspace gettimeofday spin until we're done. */
254 ++vdso_data->tb_update_count;
255 smp_wmb();
256 vdso_data->xtime_tod_stamp = tk->tkr_mono.cycle_last;
257 vdso_data->xtime_clock_sec = tk->xtime_sec;
258 vdso_data->xtime_clock_nsec = tk->tkr_mono.xtime_nsec;
259 vdso_data->wtom_clock_sec =
260 tk->xtime_sec + tk->wall_to_monotonic.tv_sec;
261 vdso_data->wtom_clock_nsec = tk->tkr_mono.xtime_nsec +
262 + ((u64) tk->wall_to_monotonic.tv_nsec << tk->tkr_mono.shift);
263 nsecps = (u64) NSEC_PER_SEC << tk->tkr_mono.shift;
264 while (vdso_data->wtom_clock_nsec >= nsecps) {
265 vdso_data->wtom_clock_nsec -= nsecps;
266 vdso_data->wtom_clock_sec++;
267 }
268
269 vdso_data->xtime_coarse_sec = tk->xtime_sec;
270 vdso_data->xtime_coarse_nsec =
271 (long)(tk->tkr_mono.xtime_nsec >> tk->tkr_mono.shift);
272 vdso_data->wtom_coarse_sec =
273 vdso_data->xtime_coarse_sec + tk->wall_to_monotonic.tv_sec;
274 vdso_data->wtom_coarse_nsec =
275 vdso_data->xtime_coarse_nsec + tk->wall_to_monotonic.tv_nsec;
276 while (vdso_data->wtom_coarse_nsec >= NSEC_PER_SEC) {
277 vdso_data->wtom_coarse_nsec -= NSEC_PER_SEC;
278 vdso_data->wtom_coarse_sec++;
279 }
280
281 vdso_data->tk_mult = tk->tkr_mono.mult;
282 vdso_data->tk_shift = tk->tkr_mono.shift;
283 smp_wmb();
284 ++vdso_data->tb_update_count;
285 }
286
287 extern struct timezone sys_tz;
288
289 void update_vsyscall_tz(void)
290 {
291 vdso_data->tz_minuteswest = sys_tz.tz_minuteswest;
292 vdso_data->tz_dsttime = sys_tz.tz_dsttime;
293 }
294
295 /*
296 * Initialize the TOD clock and the CPU timer of
297 * the boot cpu.
298 */
299 void __init time_init(void)
300 {
301 /* Reset time synchronization interfaces. */
302 stp_reset();
303
304 /* request the clock comparator external interrupt */
305 if (register_external_irq(EXT_IRQ_CLK_COMP, clock_comparator_interrupt))
306 panic("Couldn't request external interrupt 0x1004");
307
308 /* request the timing alert external interrupt */
309 if (register_external_irq(EXT_IRQ_TIMING_ALERT, timing_alert_interrupt))
310 panic("Couldn't request external interrupt 0x1406");
311
312 if (__clocksource_register(&clocksource_tod) != 0)
313 panic("Could not register TOD clock source");
314
315 /* Enable TOD clock interrupts on the boot cpu. */
316 init_cpu_timer();
317
318 /* Enable cpu timer interrupts on the boot cpu. */
319 vtime_init();
320 }
321
322 static DEFINE_PER_CPU(atomic_t, clock_sync_word);
323 static DEFINE_MUTEX(clock_sync_mutex);
324 static unsigned long clock_sync_flags;
325
326 #define CLOCK_SYNC_HAS_STP 0
327 #define CLOCK_SYNC_STP 1
328
329 /*
330 * The get_clock function for the physical clock. It will get the current
331 * TOD clock, subtract the LPAR offset and write the result to *clock.
332 * The function returns 0 if the clock is in sync with the external time
333 * source. If the clock mode is local it will return -EOPNOTSUPP and
334 * -EAGAIN if the clock is not in sync with the external reference.
335 */
336 int get_phys_clock(unsigned long long *clock)
337 {
338 atomic_t *sw_ptr;
339 unsigned int sw0, sw1;
340
341 sw_ptr = &get_cpu_var(clock_sync_word);
342 sw0 = atomic_read(sw_ptr);
343 *clock = get_tod_clock() - lpar_offset;
344 sw1 = atomic_read(sw_ptr);
345 put_cpu_var(clock_sync_word);
346 if (sw0 == sw1 && (sw0 & 0x80000000U))
347 /* Success: time is in sync. */
348 return 0;
349 if (!test_bit(CLOCK_SYNC_HAS_STP, &clock_sync_flags))
350 return -EOPNOTSUPP;
351 if (!test_bit(CLOCK_SYNC_STP, &clock_sync_flags))
352 return -EACCES;
353 return -EAGAIN;
354 }
355 EXPORT_SYMBOL(get_phys_clock);
356
357 /*
358 * Make get_phys_clock() return -EAGAIN.
359 */
360 static void disable_sync_clock(void *dummy)
361 {
362 atomic_t *sw_ptr = this_cpu_ptr(&clock_sync_word);
363 /*
364 * Clear the in-sync bit 2^31. All get_phys_clock calls will
365 * fail until the sync bit is turned back on. In addition
366 * increase the "sequence" counter to avoid the race of an
367 * stp event and the complete recovery against get_phys_clock.
368 */
369 atomic_andnot(0x80000000, sw_ptr);
370 atomic_inc(sw_ptr);
371 }
372
373 /*
374 * Make get_phys_clock() return 0 again.
375 * Needs to be called from a context disabled for preemption.
376 */
377 static void enable_sync_clock(void)
378 {
379 atomic_t *sw_ptr = this_cpu_ptr(&clock_sync_word);
380 atomic_or(0x80000000, sw_ptr);
381 }
382
383 /*
384 * Function to check if the clock is in sync.
385 */
386 static inline int check_sync_clock(void)
387 {
388 atomic_t *sw_ptr;
389 int rc;
390
391 sw_ptr = &get_cpu_var(clock_sync_word);
392 rc = (atomic_read(sw_ptr) & 0x80000000U) != 0;
393 put_cpu_var(clock_sync_word);
394 return rc;
395 }
396
397 /*
398 * Apply clock delta to the global data structures.
399 * This is called once on the CPU that performed the clock sync.
400 */
401 static void clock_sync_global(unsigned long long delta)
402 {
403 unsigned long now, adj;
404 struct ptff_qto qto;
405
406 /* Fixup the monotonic sched clock. */
407 sched_clock_base_cc += delta;
408 /* Adjust TOD steering parameters. */
409 vdso_data->tb_update_count++;
410 now = get_tod_clock();
411 adj = tod_steering_end - now;
412 if (unlikely((s64) adj >= 0))
413 /* Calculate how much of the old adjustment is left. */
414 tod_steering_delta = (tod_steering_delta < 0) ?
415 -(adj >> 15) : (adj >> 15);
416 tod_steering_delta += delta;
417 if ((abs(tod_steering_delta) >> 48) != 0)
418 panic("TOD clock sync offset %lli is too large to drift\n",
419 tod_steering_delta);
420 tod_steering_end = now + (abs(tod_steering_delta) << 15);
421 vdso_data->ts_dir = (tod_steering_delta < 0) ? 0 : 1;
422 vdso_data->ts_end = tod_steering_end;
423 vdso_data->tb_update_count++;
424 /* Update LPAR offset. */
425 if (ptff_query(PTFF_QTO) && ptff(&qto, sizeof(qto), PTFF_QTO) == 0)
426 lpar_offset = qto.tod_epoch_difference;
427 /* Call the TOD clock change notifier. */
428 atomic_notifier_call_chain(&s390_epoch_delta_notifier, 0, &delta);
429 }
430
431 /*
432 * Apply clock delta to the per-CPU data structures of this CPU.
433 * This is called for each online CPU after the call to clock_sync_global.
434 */
435 static void clock_sync_local(unsigned long long delta)
436 {
437 /* Add the delta to the clock comparator. */
438 if (S390_lowcore.clock_comparator != -1ULL) {
439 S390_lowcore.clock_comparator += delta;
440 set_clock_comparator(S390_lowcore.clock_comparator);
441 }
442 /* Adjust the last_update_clock time-stamp. */
443 S390_lowcore.last_update_clock += delta;
444 }
445
446 /* Single threaded workqueue used for stp sync events */
447 static struct workqueue_struct *time_sync_wq;
448
449 static void __init time_init_wq(void)
450 {
451 if (time_sync_wq)
452 return;
453 time_sync_wq = create_singlethread_workqueue("timesync");
454 }
455
456 struct clock_sync_data {
457 atomic_t cpus;
458 int in_sync;
459 unsigned long long clock_delta;
460 };
461
462 /*
463 * Server Time Protocol (STP) code.
464 */
465 static bool stp_online;
466 static struct stp_sstpi stp_info;
467 static void *stp_page;
468
469 static void stp_work_fn(struct work_struct *work);
470 static DEFINE_MUTEX(stp_work_mutex);
471 static DECLARE_WORK(stp_work, stp_work_fn);
472 static struct timer_list stp_timer;
473
474 static int __init early_parse_stp(char *p)
475 {
476 return kstrtobool(p, &stp_online);
477 }
478 early_param("stp", early_parse_stp);
479
480 /*
481 * Reset STP attachment.
482 */
483 static void __init stp_reset(void)
484 {
485 int rc;
486
487 stp_page = (void *) get_zeroed_page(GFP_ATOMIC);
488 rc = chsc_sstpc(stp_page, STP_OP_CTRL, 0x0000, NULL);
489 if (rc == 0)
490 set_bit(CLOCK_SYNC_HAS_STP, &clock_sync_flags);
491 else if (stp_online) {
492 pr_warn("The real or virtual hardware system does not provide an STP interface\n");
493 free_page((unsigned long) stp_page);
494 stp_page = NULL;
495 stp_online = 0;
496 }
497 }
498
499 static void stp_timeout(unsigned long dummy)
500 {
501 queue_work(time_sync_wq, &stp_work);
502 }
503
504 static int __init stp_init(void)
505 {
506 if (!test_bit(CLOCK_SYNC_HAS_STP, &clock_sync_flags))
507 return 0;
508 setup_timer(&stp_timer, stp_timeout, 0UL);
509 time_init_wq();
510 if (!stp_online)
511 return 0;
512 queue_work(time_sync_wq, &stp_work);
513 return 0;
514 }
515
516 arch_initcall(stp_init);
517
518 /*
519 * STP timing alert. There are three causes:
520 * 1) timing status change
521 * 2) link availability change
522 * 3) time control parameter change
523 * In all three cases we are only interested in the clock source state.
524 * If a STP clock source is now available use it.
525 */
526 static void stp_timing_alert(struct stp_irq_parm *intparm)
527 {
528 if (intparm->tsc || intparm->lac || intparm->tcpc)
529 queue_work(time_sync_wq, &stp_work);
530 }
531
532 /*
533 * STP sync check machine check. This is called when the timing state
534 * changes from the synchronized state to the unsynchronized state.
535 * After a STP sync check the clock is not in sync. The machine check
536 * is broadcasted to all cpus at the same time.
537 */
538 int stp_sync_check(void)
539 {
540 disable_sync_clock(NULL);
541 return 1;
542 }
543
544 /*
545 * STP island condition machine check. This is called when an attached
546 * server attempts to communicate over an STP link and the servers
547 * have matching CTN ids and have a valid stratum-1 configuration
548 * but the configurations do not match.
549 */
550 int stp_island_check(void)
551 {
552 disable_sync_clock(NULL);
553 return 1;
554 }
555
556 void stp_queue_work(void)
557 {
558 queue_work(time_sync_wq, &stp_work);
559 }
560
561 static int stp_sync_clock(void *data)
562 {
563 struct clock_sync_data *sync = data;
564 unsigned long long clock_delta;
565 static int first;
566 int rc;
567
568 enable_sync_clock();
569 if (xchg(&first, 1) == 0) {
570 /* Wait until all other cpus entered the sync function. */
571 while (atomic_read(&sync->cpus) != 0)
572 cpu_relax();
573 rc = 0;
574 if (stp_info.todoff[0] || stp_info.todoff[1] ||
575 stp_info.todoff[2] || stp_info.todoff[3] ||
576 stp_info.tmd != 2) {
577 rc = chsc_sstpc(stp_page, STP_OP_SYNC, 0,
578 &clock_delta);
579 if (rc == 0) {
580 sync->clock_delta = clock_delta;
581 clock_sync_global(clock_delta);
582 rc = chsc_sstpi(stp_page, &stp_info,
583 sizeof(struct stp_sstpi));
584 if (rc == 0 && stp_info.tmd != 2)
585 rc = -EAGAIN;
586 }
587 }
588 sync->in_sync = rc ? -EAGAIN : 1;
589 xchg(&first, 0);
590 } else {
591 /* Slave */
592 atomic_dec(&sync->cpus);
593 /* Wait for in_sync to be set. */
594 while (READ_ONCE(sync->in_sync) == 0)
595 __udelay(1);
596 }
597 if (sync->in_sync != 1)
598 /* Didn't work. Clear per-cpu in sync bit again. */
599 disable_sync_clock(NULL);
600 /* Apply clock delta to per-CPU fields of this CPU. */
601 clock_sync_local(sync->clock_delta);
602
603 return 0;
604 }
605
606 /*
607 * STP work. Check for the STP state and take over the clock
608 * synchronization if the STP clock source is usable.
609 */
610 static void stp_work_fn(struct work_struct *work)
611 {
612 struct clock_sync_data stp_sync;
613 int rc;
614
615 /* prevent multiple execution. */
616 mutex_lock(&stp_work_mutex);
617
618 if (!stp_online) {
619 chsc_sstpc(stp_page, STP_OP_CTRL, 0x0000, NULL);
620 del_timer_sync(&stp_timer);
621 goto out_unlock;
622 }
623
624 rc = chsc_sstpc(stp_page, STP_OP_CTRL, 0xb0e0, NULL);
625 if (rc)
626 goto out_unlock;
627
628 rc = chsc_sstpi(stp_page, &stp_info, sizeof(struct stp_sstpi));
629 if (rc || stp_info.c == 0)
630 goto out_unlock;
631
632 /* Skip synchronization if the clock is already in sync. */
633 if (check_sync_clock())
634 goto out_unlock;
635
636 memset(&stp_sync, 0, sizeof(stp_sync));
637 get_online_cpus();
638 atomic_set(&stp_sync.cpus, num_online_cpus() - 1);
639 stop_machine(stp_sync_clock, &stp_sync, cpu_online_mask);
640 put_online_cpus();
641
642 if (!check_sync_clock())
643 /*
644 * There is a usable clock but the synchonization failed.
645 * Retry after a second.
646 */
647 mod_timer(&stp_timer, jiffies + HZ);
648
649 out_unlock:
650 mutex_unlock(&stp_work_mutex);
651 }
652
653 /*
654 * STP subsys sysfs interface functions
655 */
656 static struct bus_type stp_subsys = {
657 .name = "stp",
658 .dev_name = "stp",
659 };
660
661 static ssize_t stp_ctn_id_show(struct device *dev,
662 struct device_attribute *attr,
663 char *buf)
664 {
665 if (!stp_online)
666 return -ENODATA;
667 return sprintf(buf, "%016llx\n",
668 *(unsigned long long *) stp_info.ctnid);
669 }
670
671 static DEVICE_ATTR(ctn_id, 0400, stp_ctn_id_show, NULL);
672
673 static ssize_t stp_ctn_type_show(struct device *dev,
674 struct device_attribute *attr,
675 char *buf)
676 {
677 if (!stp_online)
678 return -ENODATA;
679 return sprintf(buf, "%i\n", stp_info.ctn);
680 }
681
682 static DEVICE_ATTR(ctn_type, 0400, stp_ctn_type_show, NULL);
683
684 static ssize_t stp_dst_offset_show(struct device *dev,
685 struct device_attribute *attr,
686 char *buf)
687 {
688 if (!stp_online || !(stp_info.vbits & 0x2000))
689 return -ENODATA;
690 return sprintf(buf, "%i\n", (int)(s16) stp_info.dsto);
691 }
692
693 static DEVICE_ATTR(dst_offset, 0400, stp_dst_offset_show, NULL);
694
695 static ssize_t stp_leap_seconds_show(struct device *dev,
696 struct device_attribute *attr,
697 char *buf)
698 {
699 if (!stp_online || !(stp_info.vbits & 0x8000))
700 return -ENODATA;
701 return sprintf(buf, "%i\n", (int)(s16) stp_info.leaps);
702 }
703
704 static DEVICE_ATTR(leap_seconds, 0400, stp_leap_seconds_show, NULL);
705
706 static ssize_t stp_stratum_show(struct device *dev,
707 struct device_attribute *attr,
708 char *buf)
709 {
710 if (!stp_online)
711 return -ENODATA;
712 return sprintf(buf, "%i\n", (int)(s16) stp_info.stratum);
713 }
714
715 static DEVICE_ATTR(stratum, 0400, stp_stratum_show, NULL);
716
717 static ssize_t stp_time_offset_show(struct device *dev,
718 struct device_attribute *attr,
719 char *buf)
720 {
721 if (!stp_online || !(stp_info.vbits & 0x0800))
722 return -ENODATA;
723 return sprintf(buf, "%i\n", (int) stp_info.tto);
724 }
725
726 static DEVICE_ATTR(time_offset, 0400, stp_time_offset_show, NULL);
727
728 static ssize_t stp_time_zone_offset_show(struct device *dev,
729 struct device_attribute *attr,
730 char *buf)
731 {
732 if (!stp_online || !(stp_info.vbits & 0x4000))
733 return -ENODATA;
734 return sprintf(buf, "%i\n", (int)(s16) stp_info.tzo);
735 }
736
737 static DEVICE_ATTR(time_zone_offset, 0400,
738 stp_time_zone_offset_show, NULL);
739
740 static ssize_t stp_timing_mode_show(struct device *dev,
741 struct device_attribute *attr,
742 char *buf)
743 {
744 if (!stp_online)
745 return -ENODATA;
746 return sprintf(buf, "%i\n", stp_info.tmd);
747 }
748
749 static DEVICE_ATTR(timing_mode, 0400, stp_timing_mode_show, NULL);
750
751 static ssize_t stp_timing_state_show(struct device *dev,
752 struct device_attribute *attr,
753 char *buf)
754 {
755 if (!stp_online)
756 return -ENODATA;
757 return sprintf(buf, "%i\n", stp_info.tst);
758 }
759
760 static DEVICE_ATTR(timing_state, 0400, stp_timing_state_show, NULL);
761
762 static ssize_t stp_online_show(struct device *dev,
763 struct device_attribute *attr,
764 char *buf)
765 {
766 return sprintf(buf, "%i\n", stp_online);
767 }
768
769 static ssize_t stp_online_store(struct device *dev,
770 struct device_attribute *attr,
771 const char *buf, size_t count)
772 {
773 unsigned int value;
774
775 value = simple_strtoul(buf, NULL, 0);
776 if (value != 0 && value != 1)
777 return -EINVAL;
778 if (!test_bit(CLOCK_SYNC_HAS_STP, &clock_sync_flags))
779 return -EOPNOTSUPP;
780 mutex_lock(&clock_sync_mutex);
781 stp_online = value;
782 if (stp_online)
783 set_bit(CLOCK_SYNC_STP, &clock_sync_flags);
784 else
785 clear_bit(CLOCK_SYNC_STP, &clock_sync_flags);
786 queue_work(time_sync_wq, &stp_work);
787 mutex_unlock(&clock_sync_mutex);
788 return count;
789 }
790
791 /*
792 * Can't use DEVICE_ATTR because the attribute should be named
793 * stp/online but dev_attr_online already exists in this file ..
794 */
795 static struct device_attribute dev_attr_stp_online = {
796 .attr = { .name = "online", .mode = 0600 },
797 .show = stp_online_show,
798 .store = stp_online_store,
799 };
800
801 static struct device_attribute *stp_attributes[] = {
802 &dev_attr_ctn_id,
803 &dev_attr_ctn_type,
804 &dev_attr_dst_offset,
805 &dev_attr_leap_seconds,
806 &dev_attr_stp_online,
807 &dev_attr_stratum,
808 &dev_attr_time_offset,
809 &dev_attr_time_zone_offset,
810 &dev_attr_timing_mode,
811 &dev_attr_timing_state,
812 NULL
813 };
814
815 static int __init stp_init_sysfs(void)
816 {
817 struct device_attribute **attr;
818 int rc;
819
820 rc = subsys_system_register(&stp_subsys, NULL);
821 if (rc)
822 goto out;
823 for (attr = stp_attributes; *attr; attr++) {
824 rc = device_create_file(stp_subsys.dev_root, *attr);
825 if (rc)
826 goto out_unreg;
827 }
828 return 0;
829 out_unreg:
830 for (; attr >= stp_attributes; attr--)
831 device_remove_file(stp_subsys.dev_root, *attr);
832 bus_unregister(&stp_subsys);
833 out:
834 return rc;
835 }
836
837 device_initcall(stp_init_sysfs);