xref: /linux/arch/s390/kernel/time.c (revision 94ecbf1e71d463080c36a6e494e067e5a30ad0f0)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  *    Time of day based timer functions.
4  *
5  *  S390 version
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)
10  *
11  *  Derived from "arch/i386/kernel/time.c"
12  *    Copyright (C) 1991, 1992, 1995  Linus Torvalds
13  */
14 
15 #define KMSG_COMPONENT "time"
16 #define pr_fmt(fmt) KMSG_COMPONENT ": " fmt
17 
18 #include <linux/kernel_stat.h>
19 #include <linux/errno.h>
20 #include <linux/export.h>
21 #include <linux/sched.h>
22 #include <linux/sched/clock.h>
23 #include <linux/kernel.h>
24 #include <linux/param.h>
25 #include <linux/string.h>
26 #include <linux/mm.h>
27 #include <linux/interrupt.h>
28 #include <linux/cpu.h>
29 #include <linux/stop_machine.h>
30 #include <linux/time.h>
31 #include <linux/device.h>
32 #include <linux/delay.h>
33 #include <linux/init.h>
34 #include <linux/smp.h>
35 #include <linux/types.h>
36 #include <linux/profile.h>
37 #include <linux/timex.h>
38 #include <linux/notifier.h>
39 #include <linux/clockchips.h>
40 #include <linux/gfp.h>
41 #include <linux/kprobes.h>
42 #include <linux/uaccess.h>
43 #include <vdso/vsyscall.h>
44 #include <vdso/clocksource.h>
45 #include <vdso/helpers.h>
46 #include <asm/facility.h>
47 #include <asm/delay.h>
48 #include <asm/div64.h>
49 #include <asm/vdso.h>
50 #include <asm/irq.h>
51 #include <asm/irq_regs.h>
52 #include <asm/vtimer.h>
53 #include <asm/stp.h>
54 #include <asm/cio.h>
55 #include "entry.h"
56 
57 union tod_clock __bootdata_preserved(tod_clock_base);
58 EXPORT_SYMBOL_GPL(tod_clock_base);
59 
60 u64 __bootdata_preserved(clock_comparator_max);
61 EXPORT_SYMBOL_GPL(clock_comparator_max);
62 
63 static DEFINE_PER_CPU(struct clock_event_device, comparators);
64 
65 ATOMIC_NOTIFIER_HEAD(s390_epoch_delta_notifier);
66 EXPORT_SYMBOL(s390_epoch_delta_notifier);
67 
68 unsigned char ptff_function_mask[16];
69 
70 static unsigned long lpar_offset;
71 static unsigned long initial_leap_seconds;
72 
73 /*
74  * Get time offsets with PTFF
75  */
76 void __init time_early_init(void)
77 {
78 	struct ptff_qto qto;
79 	struct ptff_qui qui;
80 
81 	vdso_k_time_data->arch_data.tod_delta = tod_clock_base.tod;
82 
83 	if (!test_facility(28))
84 		return;
85 
86 	ptff(&ptff_function_mask, sizeof(ptff_function_mask), PTFF_QAF);
87 
88 	/* get LPAR offset */
89 	if (ptff_query(PTFF_QTO) && ptff(&qto, sizeof(qto), PTFF_QTO) == 0)
90 		lpar_offset = qto.tod_epoch_difference;
91 
92 	/* get initial leap seconds */
93 	if (ptff_query(PTFF_QUI) && ptff(&qui, sizeof(qui), PTFF_QUI) == 0)
94 		initial_leap_seconds = (unsigned long)
95 			((long) qui.old_leap * 4096000000L);
96 }
97 
98 unsigned long long noinstr sched_clock_noinstr(void)
99 {
100 	return tod_to_ns(__get_tod_clock_monotonic());
101 }
102 
103 /*
104  * Scheduler clock - returns current time in nanosec units.
105  */
106 unsigned long long notrace sched_clock(void)
107 {
108 	return tod_to_ns(get_tod_clock_monotonic());
109 }
110 NOKPROBE_SYMBOL(sched_clock);
111 
112 static void ext_to_timespec64(union tod_clock *clk, struct timespec64 *xt)
113 {
114 	unsigned long rem, sec, nsec;
115 
116 	sec = clk->us;
117 	rem = do_div(sec, 1000000);
118 	nsec = ((clk->sus + (rem << 12)) * 125) >> 9;
119 	xt->tv_sec = sec;
120 	xt->tv_nsec = nsec;
121 }
122 
123 void clock_comparator_work(void)
124 {
125 	struct clock_event_device *cd;
126 
127 	get_lowcore()->clock_comparator = clock_comparator_max;
128 	cd = this_cpu_ptr(&comparators);
129 	cd->event_handler(cd);
130 }
131 
132 static int s390_next_event(unsigned long delta,
133 			   struct clock_event_device *evt)
134 {
135 	get_lowcore()->clock_comparator = get_tod_clock() + delta;
136 	set_clock_comparator(get_lowcore()->clock_comparator);
137 	return 0;
138 }
139 
140 /*
141  * Set up lowcore and control register of the current cpu to
142  * enable TOD clock and clock comparator interrupts.
143  */
144 void init_cpu_timer(void)
145 {
146 	struct clock_event_device *cd;
147 	int cpu;
148 
149 	get_lowcore()->clock_comparator = clock_comparator_max;
150 	set_clock_comparator(get_lowcore()->clock_comparator);
151 
152 	cpu = smp_processor_id();
153 	cd = &per_cpu(comparators, cpu);
154 	cd->name		= "comparator";
155 	cd->features		= CLOCK_EVT_FEAT_ONESHOT;
156 	cd->mult		= 16777;
157 	cd->shift		= 12;
158 	cd->min_delta_ns	= 1;
159 	cd->min_delta_ticks	= 1;
160 	cd->max_delta_ns	= LONG_MAX;
161 	cd->max_delta_ticks	= ULONG_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 	local_ctl_set_bit(0, CR0_CLOCK_COMPARATOR_SUBMASK_BIT);
170 
171 	/* Always allow the timing alert external interrupt. */
172 	local_ctl_set_bit(0, CR0_ETR_SUBMASK_BIT);
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 (get_lowcore()->clock_comparator == clock_comparator_max)
181 		set_clock_comparator(get_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 	union tod_clock clk;
199 	u64 delta;
200 
201 	delta = initial_leap_seconds + TOD_UNIX_EPOCH;
202 	store_tod_clock_ext(&clk);
203 	clk.eitod -= delta;
204 	ext_to_timespec64(&clk, ts);
205 }
206 
207 void __init read_persistent_wall_and_boot_offset(struct timespec64 *wall_time,
208 						 struct timespec64 *boot_offset)
209 {
210 	struct timespec64 boot_time;
211 	union tod_clock clk;
212 	u64 delta;
213 
214 	delta = initial_leap_seconds + TOD_UNIX_EPOCH;
215 	clk = tod_clock_base;
216 	clk.eitod -= delta;
217 	ext_to_timespec64(&clk, &boot_time);
218 
219 	read_persistent_clock64(wall_time);
220 	*boot_offset = timespec64_sub(*wall_time, boot_time);
221 }
222 
223 static u64 read_tod_clock(struct clocksource *cs)
224 {
225 	return get_tod_clock_monotonic();
226 }
227 
228 static struct clocksource clocksource_tod = {
229 	.name		= "tod",
230 	.rating		= 400,
231 	.read		= read_tod_clock,
232 	.mask		= CLOCKSOURCE_MASK(64),
233 	.mult		= 4096000,
234 	.shift		= 24,
235 	.flags		= CLOCK_SOURCE_IS_CONTINUOUS,
236 	.vdso_clock_mode = VDSO_CLOCKMODE_TOD,
237 	.id		= CSID_S390_TOD,
238 };
239 
240 struct clocksource * __init clocksource_default_clock(void)
241 {
242 	return &clocksource_tod;
243 }
244 
245 /*
246  * Initialize the TOD clock and the CPU timer of
247  * the boot cpu.
248  */
249 void __init time_init(void)
250 {
251 	/* Reset time synchronization interfaces. */
252 	stp_reset();
253 
254 	/* request the clock comparator external interrupt */
255 	if (register_external_irq(EXT_IRQ_CLK_COMP, clock_comparator_interrupt))
256 		panic("Couldn't request external interrupt 0x1004");
257 
258 	/* request the timing alert external interrupt */
259 	if (register_external_irq(EXT_IRQ_TIMING_ALERT, timing_alert_interrupt))
260 		panic("Couldn't request external interrupt 0x1406");
261 
262 	if (__clocksource_register(&clocksource_tod) != 0)
263 		panic("Could not register TOD clock source");
264 
265 	/* Enable TOD clock interrupts on the boot cpu. */
266 	init_cpu_timer();
267 
268 	/* Enable cpu timer interrupts on the boot cpu. */
269 	vtime_init();
270 }
271 
272 static DEFINE_PER_CPU(atomic_t, clock_sync_word);
273 static DEFINE_MUTEX(stp_mutex);
274 static unsigned long clock_sync_flags;
275 
276 #define CLOCK_SYNC_HAS_STP		0
277 #define CLOCK_SYNC_STP			1
278 #define CLOCK_SYNC_STPINFO_VALID	2
279 
280 /*
281  * The get_clock function for the physical clock. It will get the current
282  * TOD clock, subtract the LPAR offset and write the result to *clock.
283  * The function returns 0 if the clock is in sync with the external time
284  * source. If the clock mode is local it will return -EOPNOTSUPP and
285  * -EAGAIN if the clock is not in sync with the external reference.
286  */
287 int get_phys_clock(unsigned long *clock)
288 {
289 	atomic_t *sw_ptr;
290 	unsigned int sw0, sw1;
291 
292 	sw_ptr = &get_cpu_var(clock_sync_word);
293 	sw0 = atomic_read(sw_ptr);
294 	*clock = get_tod_clock() - lpar_offset;
295 	sw1 = atomic_read(sw_ptr);
296 	put_cpu_var(clock_sync_word);
297 	if (sw0 == sw1 && (sw0 & 0x80000000U))
298 		/* Success: time is in sync. */
299 		return 0;
300 	if (!test_bit(CLOCK_SYNC_HAS_STP, &clock_sync_flags))
301 		return -EOPNOTSUPP;
302 	if (!test_bit(CLOCK_SYNC_STP, &clock_sync_flags))
303 		return -EACCES;
304 	return -EAGAIN;
305 }
306 EXPORT_SYMBOL(get_phys_clock);
307 
308 /*
309  * Make get_phys_clock() return -EAGAIN.
310  */
311 static void disable_sync_clock(void *dummy)
312 {
313 	atomic_t *sw_ptr = this_cpu_ptr(&clock_sync_word);
314 	/*
315 	 * Clear the in-sync bit 2^31. All get_phys_clock calls will
316 	 * fail until the sync bit is turned back on. In addition
317 	 * increase the "sequence" counter to avoid the race of an
318 	 * stp event and the complete recovery against get_phys_clock.
319 	 */
320 	atomic_andnot(0x80000000, sw_ptr);
321 	atomic_inc(sw_ptr);
322 }
323 
324 /*
325  * Make get_phys_clock() return 0 again.
326  * Needs to be called from a context disabled for preemption.
327  */
328 static void enable_sync_clock(void)
329 {
330 	atomic_t *sw_ptr = this_cpu_ptr(&clock_sync_word);
331 	atomic_or(0x80000000, sw_ptr);
332 }
333 
334 /*
335  * Function to check if the clock is in sync.
336  */
337 static inline int check_sync_clock(void)
338 {
339 	atomic_t *sw_ptr;
340 	int rc;
341 
342 	sw_ptr = &get_cpu_var(clock_sync_word);
343 	rc = (atomic_read(sw_ptr) & 0x80000000U) != 0;
344 	put_cpu_var(clock_sync_word);
345 	return rc;
346 }
347 
348 /*
349  * Apply clock delta to the global data structures.
350  * This is called once on the CPU that performed the clock sync.
351  */
352 static void clock_sync_global(long delta)
353 {
354 	struct ptff_qto qto;
355 
356 	/* Fixup the monotonic sched clock. */
357 	tod_clock_base.eitod += delta;
358 	vdso_k_time_data->arch_data.tod_delta = tod_clock_base.tod;
359 	/* Update LPAR offset. */
360 	if (ptff_query(PTFF_QTO) && ptff(&qto, sizeof(qto), PTFF_QTO) == 0)
361 		lpar_offset = qto.tod_epoch_difference;
362 	/* Call the TOD clock change notifier. */
363 	atomic_notifier_call_chain(&s390_epoch_delta_notifier, 0, &delta);
364 }
365 
366 /*
367  * Apply clock delta to the per-CPU data structures of this CPU.
368  * This is called for each online CPU after the call to clock_sync_global.
369  */
370 static void clock_sync_local(long delta)
371 {
372 	/* Add the delta to the clock comparator. */
373 	if (get_lowcore()->clock_comparator != clock_comparator_max) {
374 		get_lowcore()->clock_comparator += delta;
375 		set_clock_comparator(get_lowcore()->clock_comparator);
376 	}
377 	/* Adjust the last_update_clock time-stamp. */
378 	get_lowcore()->last_update_clock += delta;
379 }
380 
381 /* Single threaded workqueue used for stp sync events */
382 static struct workqueue_struct *time_sync_wq;
383 
384 static void __init time_init_wq(void)
385 {
386 	if (time_sync_wq)
387 		return;
388 	time_sync_wq = create_singlethread_workqueue("timesync");
389 }
390 
391 struct clock_sync_data {
392 	atomic_t cpus;
393 	int in_sync;
394 	long clock_delta;
395 };
396 
397 /*
398  * Server Time Protocol (STP) code.
399  */
400 static bool stp_online;
401 static struct stp_sstpi stp_info;
402 static void *stp_page;
403 
404 static void stp_work_fn(struct work_struct *work);
405 static DECLARE_WORK(stp_work, stp_work_fn);
406 static struct timer_list stp_timer;
407 
408 static int __init early_parse_stp(char *p)
409 {
410 	return kstrtobool(p, &stp_online);
411 }
412 early_param("stp", early_parse_stp);
413 
414 /*
415  * Reset STP attachment.
416  */
417 static void __init stp_reset(void)
418 {
419 	int rc;
420 
421 	stp_page = (void *) get_zeroed_page(GFP_ATOMIC);
422 	rc = chsc_sstpc(stp_page, STP_OP_CTRL, 0x0000, NULL);
423 	if (rc == 0)
424 		set_bit(CLOCK_SYNC_HAS_STP, &clock_sync_flags);
425 	else if (stp_online) {
426 		pr_warn("The real or virtual hardware system does not provide an STP interface\n");
427 		free_page((unsigned long) stp_page);
428 		stp_page = NULL;
429 		stp_online = false;
430 	}
431 }
432 
433 bool stp_enabled(void)
434 {
435 	return test_bit(CLOCK_SYNC_HAS_STP, &clock_sync_flags) && stp_online;
436 }
437 EXPORT_SYMBOL(stp_enabled);
438 
439 static void stp_timeout(struct timer_list *unused)
440 {
441 	queue_work(time_sync_wq, &stp_work);
442 }
443 
444 static int __init stp_init(void)
445 {
446 	if (!test_bit(CLOCK_SYNC_HAS_STP, &clock_sync_flags))
447 		return 0;
448 	timer_setup(&stp_timer, stp_timeout, 0);
449 	time_init_wq();
450 	if (!stp_online)
451 		return 0;
452 	queue_work(time_sync_wq, &stp_work);
453 	return 0;
454 }
455 
456 arch_initcall(stp_init);
457 
458 /*
459  * STP timing alert. There are three causes:
460  * 1) timing status change
461  * 2) link availability change
462  * 3) time control parameter change
463  * In all three cases we are only interested in the clock source state.
464  * If a STP clock source is now available use it.
465  */
466 static void stp_timing_alert(struct stp_irq_parm *intparm)
467 {
468 	if (intparm->tsc || intparm->lac || intparm->tcpc)
469 		queue_work(time_sync_wq, &stp_work);
470 }
471 
472 /*
473  * STP sync check machine check. This is called when the timing state
474  * changes from the synchronized state to the unsynchronized state.
475  * After a STP sync check the clock is not in sync. The machine check
476  * is broadcasted to all cpus at the same time.
477  */
478 int stp_sync_check(void)
479 {
480 	disable_sync_clock(NULL);
481 	return 1;
482 }
483 
484 /*
485  * STP island condition machine check. This is called when an attached
486  * server  attempts to communicate over an STP link and the servers
487  * have matching CTN ids and have a valid stratum-1 configuration
488  * but the configurations do not match.
489  */
490 int stp_island_check(void)
491 {
492 	disable_sync_clock(NULL);
493 	return 1;
494 }
495 
496 void stp_queue_work(void)
497 {
498 	queue_work(time_sync_wq, &stp_work);
499 }
500 
501 static int __store_stpinfo(void)
502 {
503 	int rc = chsc_sstpi(stp_page, &stp_info, sizeof(struct stp_sstpi));
504 
505 	if (rc)
506 		clear_bit(CLOCK_SYNC_STPINFO_VALID, &clock_sync_flags);
507 	else
508 		set_bit(CLOCK_SYNC_STPINFO_VALID, &clock_sync_flags);
509 	return rc;
510 }
511 
512 static int stpinfo_valid(void)
513 {
514 	return stp_online && test_bit(CLOCK_SYNC_STPINFO_VALID, &clock_sync_flags);
515 }
516 
517 static int stp_sync_clock(void *data)
518 {
519 	struct clock_sync_data *sync = data;
520 	long clock_delta, flags;
521 	static int first;
522 	int rc;
523 
524 	enable_sync_clock();
525 	if (xchg(&first, 1) == 0) {
526 		/* Wait until all other cpus entered the sync function. */
527 		while (atomic_read(&sync->cpus) != 0)
528 			cpu_relax();
529 		rc = 0;
530 		if (stp_info.todoff || stp_info.tmd != 2) {
531 			flags = vdso_update_begin();
532 			rc = chsc_sstpc(stp_page, STP_OP_SYNC, 0,
533 					&clock_delta);
534 			if (rc == 0) {
535 				sync->clock_delta = clock_delta;
536 				clock_sync_global(clock_delta);
537 				rc = __store_stpinfo();
538 				if (rc == 0 && stp_info.tmd != 2)
539 					rc = -EAGAIN;
540 			}
541 			vdso_update_end(flags);
542 		}
543 		sync->in_sync = rc ? -EAGAIN : 1;
544 		xchg(&first, 0);
545 	} else {
546 		/* Slave */
547 		atomic_dec(&sync->cpus);
548 		/* Wait for in_sync to be set. */
549 		while (READ_ONCE(sync->in_sync) == 0)
550 			;
551 	}
552 	if (sync->in_sync != 1)
553 		/* Didn't work. Clear per-cpu in sync bit again. */
554 		disable_sync_clock(NULL);
555 	/* Apply clock delta to per-CPU fields of this CPU. */
556 	clock_sync_local(sync->clock_delta);
557 
558 	return 0;
559 }
560 
561 static int stp_clear_leap(void)
562 {
563 	struct __kernel_timex txc;
564 	int ret;
565 
566 	memset(&txc, 0, sizeof(txc));
567 
568 	ret = do_adjtimex(&txc);
569 	if (ret < 0)
570 		return ret;
571 
572 	txc.modes = ADJ_STATUS;
573 	txc.status &= ~(STA_INS|STA_DEL);
574 	return do_adjtimex(&txc);
575 }
576 
577 static void stp_check_leap(void)
578 {
579 	struct stp_stzi stzi;
580 	struct stp_lsoib *lsoib = &stzi.lsoib;
581 	struct __kernel_timex txc;
582 	int64_t timediff;
583 	int leapdiff, ret;
584 
585 	if (!stp_info.lu || !check_sync_clock()) {
586 		/*
587 		 * Either a scheduled leap second was removed by the operator,
588 		 * or STP is out of sync. In both cases, clear the leap second
589 		 * kernel flags.
590 		 */
591 		if (stp_clear_leap() < 0)
592 			pr_err("failed to clear leap second flags\n");
593 		return;
594 	}
595 
596 	if (chsc_stzi(stp_page, &stzi, sizeof(stzi))) {
597 		pr_err("stzi failed\n");
598 		return;
599 	}
600 
601 	timediff = tod_to_ns(lsoib->nlsout - get_tod_clock()) / NSEC_PER_SEC;
602 	leapdiff = lsoib->nlso - lsoib->also;
603 
604 	if (leapdiff != 1 && leapdiff != -1) {
605 		pr_err("Cannot schedule %d leap seconds\n", leapdiff);
606 		return;
607 	}
608 
609 	if (timediff < 0) {
610 		if (stp_clear_leap() < 0)
611 			pr_err("failed to clear leap second flags\n");
612 	} else if (timediff < 7200) {
613 		memset(&txc, 0, sizeof(txc));
614 		ret = do_adjtimex(&txc);
615 		if (ret < 0)
616 			return;
617 
618 		txc.modes = ADJ_STATUS;
619 		if (leapdiff > 0)
620 			txc.status |= STA_INS;
621 		else
622 			txc.status |= STA_DEL;
623 		ret = do_adjtimex(&txc);
624 		if (ret < 0)
625 			pr_err("failed to set leap second flags\n");
626 		/* arm Timer to clear leap second flags */
627 		mod_timer(&stp_timer, jiffies + secs_to_jiffies(14400));
628 	} else {
629 		/* The day the leap second is scheduled for hasn't been reached. Retry
630 		 * in one hour.
631 		 */
632 		mod_timer(&stp_timer, jiffies + secs_to_jiffies(3600));
633 	}
634 }
635 
636 /*
637  * STP work. Check for the STP state and take over the clock
638  * synchronization if the STP clock source is usable.
639  */
640 static void stp_work_fn(struct work_struct *work)
641 {
642 	struct clock_sync_data stp_sync;
643 	int rc;
644 
645 	/* prevent multiple execution. */
646 	mutex_lock(&stp_mutex);
647 
648 	if (!stp_online) {
649 		chsc_sstpc(stp_page, STP_OP_CTRL, 0x0000, NULL);
650 		timer_delete_sync(&stp_timer);
651 		goto out_unlock;
652 	}
653 
654 	rc = chsc_sstpc(stp_page, STP_OP_CTRL, 0xf0e0, NULL);
655 	if (rc)
656 		goto out_unlock;
657 
658 	rc = __store_stpinfo();
659 	if (rc || stp_info.c == 0)
660 		goto out_unlock;
661 
662 	/* Skip synchronization if the clock is already in sync. */
663 	if (!check_sync_clock()) {
664 		memset(&stp_sync, 0, sizeof(stp_sync));
665 		cpus_read_lock();
666 		atomic_set(&stp_sync.cpus, num_online_cpus() - 1);
667 		stop_machine_cpuslocked(stp_sync_clock, &stp_sync, cpu_online_mask);
668 		cpus_read_unlock();
669 	}
670 
671 	if (!check_sync_clock())
672 		/*
673 		 * There is a usable clock but the synchronization failed.
674 		 * Retry after a second.
675 		 */
676 		mod_timer(&stp_timer, jiffies + msecs_to_jiffies(MSEC_PER_SEC));
677 	else if (stp_info.lu)
678 		stp_check_leap();
679 
680 out_unlock:
681 	mutex_unlock(&stp_mutex);
682 }
683 
684 /*
685  * STP subsys sysfs interface functions
686  */
687 static const struct bus_type stp_subsys = {
688 	.name		= "stp",
689 	.dev_name	= "stp",
690 };
691 
692 static ssize_t ctn_id_show(struct device *dev,
693 				struct device_attribute *attr,
694 				char *buf)
695 {
696 	ssize_t ret = -ENODATA;
697 
698 	mutex_lock(&stp_mutex);
699 	if (stpinfo_valid())
700 		ret = sysfs_emit(buf, "%016lx\n",
701 				 *(unsigned long *)stp_info.ctnid);
702 	mutex_unlock(&stp_mutex);
703 	return ret;
704 }
705 
706 static DEVICE_ATTR_RO(ctn_id);
707 
708 static ssize_t ctn_type_show(struct device *dev,
709 				struct device_attribute *attr,
710 				char *buf)
711 {
712 	ssize_t ret = -ENODATA;
713 
714 	mutex_lock(&stp_mutex);
715 	if (stpinfo_valid())
716 		ret = sysfs_emit(buf, "%i\n", stp_info.ctn);
717 	mutex_unlock(&stp_mutex);
718 	return ret;
719 }
720 
721 static DEVICE_ATTR_RO(ctn_type);
722 
723 static ssize_t dst_offset_show(struct device *dev,
724 				   struct device_attribute *attr,
725 				   char *buf)
726 {
727 	ssize_t ret = -ENODATA;
728 
729 	mutex_lock(&stp_mutex);
730 	if (stpinfo_valid() && (stp_info.vbits & 0x2000))
731 		ret = sysfs_emit(buf, "%i\n", (int)(s16)stp_info.dsto);
732 	mutex_unlock(&stp_mutex);
733 	return ret;
734 }
735 
736 static DEVICE_ATTR_RO(dst_offset);
737 
738 static ssize_t leap_seconds_show(struct device *dev,
739 					struct device_attribute *attr,
740 					char *buf)
741 {
742 	ssize_t ret = -ENODATA;
743 
744 	mutex_lock(&stp_mutex);
745 	if (stpinfo_valid() && (stp_info.vbits & 0x8000))
746 		ret = sysfs_emit(buf, "%i\n", (int)(s16)stp_info.leaps);
747 	mutex_unlock(&stp_mutex);
748 	return ret;
749 }
750 
751 static DEVICE_ATTR_RO(leap_seconds);
752 
753 static ssize_t leap_seconds_scheduled_show(struct device *dev,
754 						struct device_attribute *attr,
755 						char *buf)
756 {
757 	struct stp_stzi stzi;
758 	ssize_t ret;
759 
760 	mutex_lock(&stp_mutex);
761 	if (!stpinfo_valid() || !(stp_info.vbits & 0x8000) || !stp_info.lu) {
762 		mutex_unlock(&stp_mutex);
763 		return -ENODATA;
764 	}
765 
766 	ret = chsc_stzi(stp_page, &stzi, sizeof(stzi));
767 	mutex_unlock(&stp_mutex);
768 	if (ret < 0)
769 		return ret;
770 
771 	if (!stzi.lsoib.p)
772 		return sysfs_emit(buf, "0,0\n");
773 
774 	return sysfs_emit(buf, "%lu,%d\n",
775 			  tod_to_ns(stzi.lsoib.nlsout - TOD_UNIX_EPOCH) / NSEC_PER_SEC,
776 			  stzi.lsoib.nlso - stzi.lsoib.also);
777 }
778 
779 static DEVICE_ATTR_RO(leap_seconds_scheduled);
780 
781 static ssize_t stratum_show(struct device *dev,
782 				struct device_attribute *attr,
783 				char *buf)
784 {
785 	ssize_t ret = -ENODATA;
786 
787 	mutex_lock(&stp_mutex);
788 	if (stpinfo_valid())
789 		ret = sysfs_emit(buf, "%i\n", (int)(s16)stp_info.stratum);
790 	mutex_unlock(&stp_mutex);
791 	return ret;
792 }
793 
794 static DEVICE_ATTR_RO(stratum);
795 
796 static ssize_t time_offset_show(struct device *dev,
797 				struct device_attribute *attr,
798 				char *buf)
799 {
800 	ssize_t ret = -ENODATA;
801 
802 	mutex_lock(&stp_mutex);
803 	if (stpinfo_valid() && (stp_info.vbits & 0x0800))
804 		ret = sysfs_emit(buf, "%i\n", (int)stp_info.tto);
805 	mutex_unlock(&stp_mutex);
806 	return ret;
807 }
808 
809 static DEVICE_ATTR_RO(time_offset);
810 
811 static ssize_t time_zone_offset_show(struct device *dev,
812 				struct device_attribute *attr,
813 				char *buf)
814 {
815 	ssize_t ret = -ENODATA;
816 
817 	mutex_lock(&stp_mutex);
818 	if (stpinfo_valid() && (stp_info.vbits & 0x4000))
819 		ret = sysfs_emit(buf, "%i\n", (int)(s16)stp_info.tzo);
820 	mutex_unlock(&stp_mutex);
821 	return ret;
822 }
823 
824 static DEVICE_ATTR_RO(time_zone_offset);
825 
826 static ssize_t timing_mode_show(struct device *dev,
827 				struct device_attribute *attr,
828 				char *buf)
829 {
830 	ssize_t ret = -ENODATA;
831 
832 	mutex_lock(&stp_mutex);
833 	if (stpinfo_valid())
834 		ret = sysfs_emit(buf, "%i\n", stp_info.tmd);
835 	mutex_unlock(&stp_mutex);
836 	return ret;
837 }
838 
839 static DEVICE_ATTR_RO(timing_mode);
840 
841 static ssize_t timing_state_show(struct device *dev,
842 				struct device_attribute *attr,
843 				char *buf)
844 {
845 	ssize_t ret = -ENODATA;
846 
847 	mutex_lock(&stp_mutex);
848 	if (stpinfo_valid())
849 		ret = sysfs_emit(buf, "%i\n", stp_info.tst);
850 	mutex_unlock(&stp_mutex);
851 	return ret;
852 }
853 
854 static DEVICE_ATTR_RO(timing_state);
855 
856 static ssize_t online_show(struct device *dev,
857 				struct device_attribute *attr,
858 				char *buf)
859 {
860 	return sysfs_emit(buf, "%i\n", stp_online);
861 }
862 
863 static ssize_t online_store(struct device *dev,
864 				struct device_attribute *attr,
865 				const char *buf, size_t count)
866 {
867 	unsigned int value;
868 
869 	value = simple_strtoul(buf, NULL, 0);
870 	if (value != 0 && value != 1)
871 		return -EINVAL;
872 	if (!test_bit(CLOCK_SYNC_HAS_STP, &clock_sync_flags))
873 		return -EOPNOTSUPP;
874 	mutex_lock(&stp_mutex);
875 	stp_online = value;
876 	if (stp_online)
877 		set_bit(CLOCK_SYNC_STP, &clock_sync_flags);
878 	else
879 		clear_bit(CLOCK_SYNC_STP, &clock_sync_flags);
880 	queue_work(time_sync_wq, &stp_work);
881 	mutex_unlock(&stp_mutex);
882 	return count;
883 }
884 
885 /*
886  * Can't use DEVICE_ATTR because the attribute should be named
887  * stp/online but dev_attr_online already exists in this file ..
888  */
889 static DEVICE_ATTR_RW(online);
890 
891 static struct attribute *stp_dev_attrs[] = {
892 	&dev_attr_ctn_id.attr,
893 	&dev_attr_ctn_type.attr,
894 	&dev_attr_dst_offset.attr,
895 	&dev_attr_leap_seconds.attr,
896 	&dev_attr_online.attr,
897 	&dev_attr_leap_seconds_scheduled.attr,
898 	&dev_attr_stratum.attr,
899 	&dev_attr_time_offset.attr,
900 	&dev_attr_time_zone_offset.attr,
901 	&dev_attr_timing_mode.attr,
902 	&dev_attr_timing_state.attr,
903 	NULL
904 };
905 ATTRIBUTE_GROUPS(stp_dev);
906 
907 static int __init stp_init_sysfs(void)
908 {
909 	return subsys_system_register(&stp_subsys, stp_dev_groups);
910 }
911 
912 device_initcall(stp_init_sysfs);
913