1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * RTC subsystem, interface functions
4 *
5 * Copyright (C) 2005 Tower Technologies
6 * Author: Alessandro Zummo <a.zummo@towertech.it>
7 *
8 * based on arch/arm/common/rtctime.c
9 */
10
11 #include <linux/rtc.h>
12 #include <linux/sched.h>
13 #include <linux/module.h>
14 #include <linux/log2.h>
15 #include <linux/workqueue.h>
16
17 #define CREATE_TRACE_POINTS
18 #include <trace/events/rtc.h>
19
20 static int rtc_timer_enqueue(struct rtc_device *rtc, struct rtc_timer *timer);
21 static void rtc_timer_remove(struct rtc_device *rtc, struct rtc_timer *timer);
22
rtc_add_offset(struct rtc_device * rtc,struct rtc_time * tm)23 static void rtc_add_offset(struct rtc_device *rtc, struct rtc_time *tm)
24 {
25 time64_t secs;
26
27 if (!rtc->offset_secs)
28 return;
29
30 secs = rtc_tm_to_time64(tm);
31
32 /*
33 * Since the reading time values from RTC device are always in the RTC
34 * original valid range, but we need to skip the overlapped region
35 * between expanded range and original range, which is no need to add
36 * the offset.
37 */
38 if ((rtc->start_secs > rtc->range_min && secs >= rtc->start_secs) ||
39 (rtc->start_secs < rtc->range_min &&
40 secs <= (rtc->start_secs + rtc->range_max - rtc->range_min)))
41 return;
42
43 rtc_time64_to_tm(secs + rtc->offset_secs, tm);
44 }
45
rtc_subtract_offset(struct rtc_device * rtc,struct rtc_time * tm)46 static void rtc_subtract_offset(struct rtc_device *rtc, struct rtc_time *tm)
47 {
48 time64_t secs;
49
50 if (!rtc->offset_secs)
51 return;
52
53 secs = rtc_tm_to_time64(tm);
54
55 /*
56 * If the setting time values are in the valid range of RTC hardware
57 * device, then no need to subtract the offset when setting time to RTC
58 * device. Otherwise we need to subtract the offset to make the time
59 * values are valid for RTC hardware device.
60 */
61 if (secs >= rtc->range_min && secs <= rtc->range_max)
62 return;
63
64 rtc_time64_to_tm(secs - rtc->offset_secs, tm);
65 }
66
rtc_valid_range(struct rtc_device * rtc,struct rtc_time * tm)67 static int rtc_valid_range(struct rtc_device *rtc, struct rtc_time *tm)
68 {
69 if (rtc->range_min != rtc->range_max) {
70 time64_t time = rtc_tm_to_time64(tm);
71 time64_t range_min = rtc->set_start_time ? rtc->start_secs :
72 rtc->range_min;
73 timeu64_t range_max = rtc->set_start_time ?
74 (rtc->start_secs + rtc->range_max - rtc->range_min) :
75 rtc->range_max;
76
77 if (time < range_min || time > range_max)
78 return -ERANGE;
79 }
80
81 return 0;
82 }
83
__rtc_read_time(struct rtc_device * rtc,struct rtc_time * tm)84 static int __rtc_read_time(struct rtc_device *rtc, struct rtc_time *tm)
85 {
86 int err;
87
88 if (!rtc->ops) {
89 err = -ENODEV;
90 } else if (!rtc->ops->read_time) {
91 err = -EINVAL;
92 } else {
93 memset(tm, 0, sizeof(struct rtc_time));
94 err = rtc->ops->read_time(rtc->dev.parent, tm);
95 if (err < 0) {
96 dev_dbg(&rtc->dev, "read_time: fail to read: %d\n",
97 err);
98 return err;
99 }
100
101 rtc_add_offset(rtc, tm);
102
103 err = rtc_valid_tm(tm);
104 if (err < 0)
105 dev_dbg(&rtc->dev, "read_time: rtc_time isn't valid\n");
106 }
107 return err;
108 }
109
rtc_read_time(struct rtc_device * rtc,struct rtc_time * tm)110 int rtc_read_time(struct rtc_device *rtc, struct rtc_time *tm)
111 {
112 int err;
113
114 err = mutex_lock_interruptible(&rtc->ops_lock);
115 if (err)
116 return err;
117
118 err = __rtc_read_time(rtc, tm);
119 mutex_unlock(&rtc->ops_lock);
120
121 trace_rtc_read_time(rtc_tm_to_time64(tm), err);
122 return err;
123 }
124 EXPORT_SYMBOL_GPL(rtc_read_time);
125
rtc_set_time(struct rtc_device * rtc,struct rtc_time * tm)126 int rtc_set_time(struct rtc_device *rtc, struct rtc_time *tm)
127 {
128 int err, uie;
129
130 err = rtc_valid_tm(tm);
131 if (err != 0)
132 return err;
133
134 err = rtc_valid_range(rtc, tm);
135 if (err)
136 return err;
137
138 rtc_subtract_offset(rtc, tm);
139
140 #ifdef CONFIG_RTC_INTF_DEV_UIE_EMUL
141 uie = rtc->uie_rtctimer.enabled || rtc->uie_irq_active;
142 #else
143 uie = rtc->uie_rtctimer.enabled;
144 #endif
145 if (uie) {
146 err = rtc_update_irq_enable(rtc, 0);
147 if (err)
148 return err;
149 }
150
151 err = mutex_lock_interruptible(&rtc->ops_lock);
152 if (err)
153 return err;
154
155 if (!rtc->ops)
156 err = -ENODEV;
157 else if (rtc->ops->set_time)
158 err = rtc->ops->set_time(rtc->dev.parent, tm);
159 else
160 err = -EINVAL;
161
162 pm_stay_awake(rtc->dev.parent);
163 mutex_unlock(&rtc->ops_lock);
164 /* A timer might have just expired */
165 schedule_work(&rtc->irqwork);
166
167 if (uie) {
168 err = rtc_update_irq_enable(rtc, 1);
169 if (err)
170 return err;
171 }
172
173 trace_rtc_set_time(rtc_tm_to_time64(tm), err);
174 return err;
175 }
176 EXPORT_SYMBOL_GPL(rtc_set_time);
177
rtc_read_alarm_internal(struct rtc_device * rtc,struct rtc_wkalrm * alarm)178 static int rtc_read_alarm_internal(struct rtc_device *rtc,
179 struct rtc_wkalrm *alarm)
180 {
181 int err;
182
183 err = mutex_lock_interruptible(&rtc->ops_lock);
184 if (err)
185 return err;
186
187 if (!rtc->ops) {
188 err = -ENODEV;
189 } else if (!test_bit(RTC_FEATURE_ALARM, rtc->features) || !rtc->ops->read_alarm) {
190 err = -EINVAL;
191 } else {
192 alarm->enabled = 0;
193 alarm->pending = 0;
194 alarm->time.tm_sec = -1;
195 alarm->time.tm_min = -1;
196 alarm->time.tm_hour = -1;
197 alarm->time.tm_mday = -1;
198 alarm->time.tm_mon = -1;
199 alarm->time.tm_year = -1;
200 alarm->time.tm_wday = -1;
201 alarm->time.tm_yday = -1;
202 alarm->time.tm_isdst = -1;
203 err = rtc->ops->read_alarm(rtc->dev.parent, alarm);
204 }
205
206 mutex_unlock(&rtc->ops_lock);
207
208 trace_rtc_read_alarm(err?0:rtc_tm_to_time64(&alarm->time), err);
209 return err;
210 }
211
__rtc_read_alarm(struct rtc_device * rtc,struct rtc_wkalrm * alarm)212 int __rtc_read_alarm(struct rtc_device *rtc, struct rtc_wkalrm *alarm)
213 {
214 int err;
215 struct rtc_time before, now;
216 int first_time = 1;
217 time64_t t_now, t_alm;
218 enum { none, day, month, year } missing = none;
219 unsigned int days;
220
221 /* The lower level RTC driver may return -1 in some fields,
222 * creating invalid alarm->time values, for reasons like:
223 *
224 * - The hardware may not be capable of filling them in;
225 * many alarms match only on time-of-day fields, not
226 * day/month/year calendar data.
227 *
228 * - Some hardware uses illegal values as "wildcard" match
229 * values, which non-Linux firmware (like a BIOS) may try
230 * to set up as e.g. "alarm 15 minutes after each hour".
231 * Linux uses only oneshot alarms.
232 *
233 * When we see that here, we deal with it by using values from
234 * a current RTC timestamp for any missing (-1) values. The
235 * RTC driver prevents "periodic alarm" modes.
236 *
237 * But this can be racey, because some fields of the RTC timestamp
238 * may have wrapped in the interval since we read the RTC alarm,
239 * which would lead to us inserting inconsistent values in place
240 * of the -1 fields.
241 *
242 * Reading the alarm and timestamp in the reverse sequence
243 * would have the same race condition, and not solve the issue.
244 *
245 * So, we must first read the RTC timestamp,
246 * then read the RTC alarm value,
247 * and then read a second RTC timestamp.
248 *
249 * If any fields of the second timestamp have changed
250 * when compared with the first timestamp, then we know
251 * our timestamp may be inconsistent with that used by
252 * the low-level rtc_read_alarm_internal() function.
253 *
254 * So, when the two timestamps disagree, we just loop and do
255 * the process again to get a fully consistent set of values.
256 *
257 * This could all instead be done in the lower level driver,
258 * but since more than one lower level RTC implementation needs it,
259 * then it's probably best to do it here instead of there..
260 */
261
262 /* Get the "before" timestamp */
263 err = rtc_read_time(rtc, &before);
264 if (err < 0)
265 return err;
266 do {
267 if (!first_time)
268 memcpy(&before, &now, sizeof(struct rtc_time));
269 first_time = 0;
270
271 /* get the RTC alarm values, which may be incomplete */
272 err = rtc_read_alarm_internal(rtc, alarm);
273 if (err)
274 return err;
275
276 /* full-function RTCs won't have such missing fields */
277 err = rtc_valid_tm(&alarm->time);
278 if (!err)
279 goto done;
280
281 /* get the "after" timestamp, to detect wrapped fields */
282 err = rtc_read_time(rtc, &now);
283 if (err < 0)
284 return err;
285
286 /* note that tm_sec is a "don't care" value here: */
287 } while (before.tm_min != now.tm_min ||
288 before.tm_hour != now.tm_hour ||
289 before.tm_mon != now.tm_mon ||
290 before.tm_year != now.tm_year);
291
292 /* Fill in the missing alarm fields using the timestamp; we
293 * know there's at least one since alarm->time is invalid.
294 */
295 if (alarm->time.tm_sec == -1)
296 alarm->time.tm_sec = now.tm_sec;
297 if (alarm->time.tm_min == -1)
298 alarm->time.tm_min = now.tm_min;
299 if (alarm->time.tm_hour == -1)
300 alarm->time.tm_hour = now.tm_hour;
301
302 /* For simplicity, only support date rollover for now */
303 if (alarm->time.tm_mday < 1 || alarm->time.tm_mday > 31) {
304 alarm->time.tm_mday = now.tm_mday;
305 missing = day;
306 }
307 if ((unsigned int)alarm->time.tm_mon >= 12) {
308 alarm->time.tm_mon = now.tm_mon;
309 if (missing == none)
310 missing = month;
311 }
312 if (alarm->time.tm_year == -1) {
313 alarm->time.tm_year = now.tm_year;
314 if (missing == none)
315 missing = year;
316 }
317
318 /* Can't proceed if alarm is still invalid after replacing
319 * missing fields.
320 */
321 err = rtc_valid_tm(&alarm->time);
322 if (err)
323 goto done;
324
325 /* with luck, no rollover is needed */
326 t_now = rtc_tm_to_time64(&now);
327 t_alm = rtc_tm_to_time64(&alarm->time);
328 if (t_now < t_alm)
329 goto done;
330
331 switch (missing) {
332 /* 24 hour rollover ... if it's now 10am Monday, an alarm that
333 * that will trigger at 5am will do so at 5am Tuesday, which
334 * could also be in the next month or year. This is a common
335 * case, especially for PCs.
336 */
337 case day:
338 dev_dbg(&rtc->dev, "alarm rollover: %s\n", "day");
339 t_alm += 24 * 60 * 60;
340 rtc_time64_to_tm(t_alm, &alarm->time);
341 break;
342
343 /* Month rollover ... if it's the 31th, an alarm on the 3rd will
344 * be next month. An alarm matching on the 30th, 29th, or 28th
345 * may end up in the month after that! Many newer PCs support
346 * this type of alarm.
347 */
348 case month:
349 dev_dbg(&rtc->dev, "alarm rollover: %s\n", "month");
350 do {
351 if (alarm->time.tm_mon < 11) {
352 alarm->time.tm_mon++;
353 } else {
354 alarm->time.tm_mon = 0;
355 alarm->time.tm_year++;
356 }
357 days = rtc_month_days(alarm->time.tm_mon,
358 alarm->time.tm_year);
359 } while (days < alarm->time.tm_mday);
360 break;
361
362 /* Year rollover ... easy except for leap years! */
363 case year:
364 dev_dbg(&rtc->dev, "alarm rollover: %s\n", "year");
365 do {
366 alarm->time.tm_year++;
367 } while (!is_leap_year(alarm->time.tm_year + 1900) &&
368 rtc_valid_tm(&alarm->time) != 0);
369 break;
370
371 default:
372 dev_warn(&rtc->dev, "alarm rollover not handled\n");
373 }
374
375 err = rtc_valid_tm(&alarm->time);
376
377 done:
378 if (err && alarm->enabled)
379 dev_warn(&rtc->dev, "invalid alarm value: %ptR\n",
380 &alarm->time);
381 else
382 rtc_add_offset(rtc, &alarm->time);
383
384 return err;
385 }
386
387 /**
388 * rtc_read_next_alarm - read the next expiring alarm
389 * @rtc: RTC device
390 * @alarm: storage for the alarm information
391 *
392 * Read the next expiring alarm from the RTC timerqueue. This returns
393 * the alarm that will actually fire next, which may be different from
394 * rtc_read_alarm() if multiple timers are queued (e.g., alarmtimer
395 * and wakealarm sysfs both active).
396 *
397 * Returns: 0 on success, -ENOENT if no alarm is pending, or other error.
398 */
rtc_read_next_alarm(struct rtc_device * rtc,struct rtc_wkalrm * alarm)399 int rtc_read_next_alarm(struct rtc_device *rtc, struct rtc_wkalrm *alarm)
400 {
401 struct timerqueue_node *next;
402 int err;
403
404 if (!rtc || !alarm)
405 return -EINVAL;
406
407 err = mutex_lock_interruptible(&rtc->ops_lock);
408 if (err)
409 return err;
410
411 next = timerqueue_getnext(&rtc->timerqueue);
412 if (!next) {
413 err = -ENOENT;
414 goto unlock;
415 }
416
417 memset(alarm, 0, sizeof(struct rtc_wkalrm));
418 alarm->time = rtc_ktime_to_tm(next->expires);
419 alarm->enabled = 1;
420
421 unlock:
422 mutex_unlock(&rtc->ops_lock);
423 return err;
424 }
425 EXPORT_SYMBOL_GPL(rtc_read_next_alarm);
426
rtc_read_alarm(struct rtc_device * rtc,struct rtc_wkalrm * alarm)427 int rtc_read_alarm(struct rtc_device *rtc, struct rtc_wkalrm *alarm)
428 {
429 int err;
430
431 err = mutex_lock_interruptible(&rtc->ops_lock);
432 if (err)
433 return err;
434 if (!rtc->ops) {
435 err = -ENODEV;
436 } else if (!test_bit(RTC_FEATURE_ALARM, rtc->features)) {
437 err = -EINVAL;
438 } else {
439 memset(alarm, 0, sizeof(struct rtc_wkalrm));
440 alarm->enabled = rtc->aie_timer.enabled;
441 alarm->time = rtc_ktime_to_tm(rtc->aie_timer.node.expires);
442 }
443 mutex_unlock(&rtc->ops_lock);
444
445 trace_rtc_read_alarm(rtc_tm_to_time64(&alarm->time), err);
446 return err;
447 }
448 EXPORT_SYMBOL_GPL(rtc_read_alarm);
449
__rtc_set_alarm(struct rtc_device * rtc,struct rtc_wkalrm * alarm)450 static int __rtc_set_alarm(struct rtc_device *rtc, struct rtc_wkalrm *alarm)
451 {
452 struct rtc_time tm;
453 time64_t now, scheduled;
454 int err;
455
456 err = rtc_valid_tm(&alarm->time);
457 if (err)
458 return err;
459
460 scheduled = rtc_tm_to_time64(&alarm->time);
461
462 /* Make sure we're not setting alarms in the past */
463 err = __rtc_read_time(rtc, &tm);
464 if (err)
465 return err;
466 now = rtc_tm_to_time64(&tm);
467
468 if (scheduled <= now)
469 return -ETIME;
470 /*
471 * XXX - We just checked to make sure the alarm time is not
472 * in the past, but there is still a race window where if
473 * the is alarm set for the next second and the second ticks
474 * over right here, before we set the alarm.
475 */
476
477 rtc_subtract_offset(rtc, &alarm->time);
478
479 if (!rtc->ops)
480 err = -ENODEV;
481 else if (!test_bit(RTC_FEATURE_ALARM, rtc->features))
482 err = -EINVAL;
483 else
484 err = rtc->ops->set_alarm(rtc->dev.parent, alarm);
485
486 /*
487 * Check for potential race described above. If the waiting for next
488 * second, and the second just ticked since the check above, either
489 *
490 * 1) It ticked after the alarm was set, and an alarm irq should be
491 * generated.
492 *
493 * 2) It ticked before the alarm was set, and alarm irq most likely will
494 * not be generated.
495 *
496 * While we cannot easily check for which of these two scenarios we
497 * are in, we can return -ETIME to signal that the timer has already
498 * expired, which is true in both cases.
499 */
500 if (!err && (scheduled - now) <= 1) {
501 err = __rtc_read_time(rtc, &tm);
502 if (err)
503 return err;
504 now = rtc_tm_to_time64(&tm);
505 if (scheduled <= now)
506 return -ETIME;
507 }
508
509 trace_rtc_set_alarm(rtc_tm_to_time64(&alarm->time), err);
510 return err;
511 }
512
rtc_set_alarm(struct rtc_device * rtc,struct rtc_wkalrm * alarm)513 int rtc_set_alarm(struct rtc_device *rtc, struct rtc_wkalrm *alarm)
514 {
515 ktime_t alarm_time;
516 int err;
517
518 if (!rtc->ops)
519 return -ENODEV;
520 else if (!test_bit(RTC_FEATURE_ALARM, rtc->features))
521 return -EINVAL;
522
523 err = rtc_valid_tm(&alarm->time);
524 if (err != 0)
525 return err;
526
527 err = rtc_valid_range(rtc, &alarm->time);
528 if (err)
529 return err;
530
531 err = mutex_lock_interruptible(&rtc->ops_lock);
532 if (err)
533 return err;
534 if (rtc->aie_timer.enabled)
535 rtc_timer_remove(rtc, &rtc->aie_timer);
536
537 alarm_time = rtc_tm_to_ktime(alarm->time);
538 /*
539 * Round down so we never miss a deadline, checking for past deadline is
540 * done in __rtc_set_alarm
541 */
542 if (test_bit(RTC_FEATURE_ALARM_RES_MINUTE, rtc->features))
543 alarm_time = ktime_sub_ns(alarm_time, (u64)alarm->time.tm_sec * NSEC_PER_SEC);
544
545 rtc->aie_timer.node.expires = alarm_time;
546 rtc->aie_timer.period = 0;
547 if (alarm->enabled)
548 err = rtc_timer_enqueue(rtc, &rtc->aie_timer);
549
550 mutex_unlock(&rtc->ops_lock);
551
552 return err;
553 }
554 EXPORT_SYMBOL_GPL(rtc_set_alarm);
555
556 /* Called once per device from rtc_device_register */
rtc_initialize_alarm(struct rtc_device * rtc,struct rtc_wkalrm * alarm)557 int rtc_initialize_alarm(struct rtc_device *rtc, struct rtc_wkalrm *alarm)
558 {
559 int err;
560 struct rtc_time now;
561
562 err = rtc_valid_tm(&alarm->time);
563 if (err != 0)
564 return err;
565
566 err = rtc_read_time(rtc, &now);
567 if (err)
568 return err;
569
570 err = mutex_lock_interruptible(&rtc->ops_lock);
571 if (err)
572 return err;
573
574 rtc->aie_timer.node.expires = rtc_tm_to_ktime(alarm->time);
575 rtc->aie_timer.period = 0;
576
577 /* Alarm has to be enabled & in the future for us to enqueue it */
578 if (alarm->enabled && (rtc_tm_to_ktime(now) <
579 rtc->aie_timer.node.expires)) {
580 rtc->aie_timer.enabled = 1;
581 timerqueue_add(&rtc->timerqueue, &rtc->aie_timer.node);
582 trace_rtc_timer_enqueue(&rtc->aie_timer);
583 }
584 mutex_unlock(&rtc->ops_lock);
585 return err;
586 }
587 EXPORT_SYMBOL_GPL(rtc_initialize_alarm);
588
rtc_alarm_irq_enable(struct rtc_device * rtc,unsigned int enabled)589 int rtc_alarm_irq_enable(struct rtc_device *rtc, unsigned int enabled)
590 {
591 int err;
592
593 err = mutex_lock_interruptible(&rtc->ops_lock);
594 if (err)
595 return err;
596
597 if (rtc->aie_timer.enabled != enabled) {
598 if (enabled)
599 err = rtc_timer_enqueue(rtc, &rtc->aie_timer);
600 else
601 rtc_timer_remove(rtc, &rtc->aie_timer);
602 }
603
604 if (err)
605 /* nothing */;
606 else if (!rtc->ops)
607 err = -ENODEV;
608 else if (!test_bit(RTC_FEATURE_ALARM, rtc->features) || !rtc->ops->alarm_irq_enable)
609 err = -EINVAL;
610 else
611 err = rtc->ops->alarm_irq_enable(rtc->dev.parent, enabled);
612
613 mutex_unlock(&rtc->ops_lock);
614
615 trace_rtc_alarm_irq_enable(enabled, err);
616 return err;
617 }
618 EXPORT_SYMBOL_GPL(rtc_alarm_irq_enable);
619
rtc_update_irq_enable(struct rtc_device * rtc,unsigned int enabled)620 int rtc_update_irq_enable(struct rtc_device *rtc, unsigned int enabled)
621 {
622 int err;
623
624 err = mutex_lock_interruptible(&rtc->ops_lock);
625 if (err)
626 return err;
627
628 #ifdef CONFIG_RTC_INTF_DEV_UIE_EMUL
629 if (enabled == 0 && rtc->uie_irq_active) {
630 mutex_unlock(&rtc->ops_lock);
631 return rtc_dev_update_irq_enable_emul(rtc, 0);
632 }
633 #endif
634 /* make sure we're changing state */
635 if (rtc->uie_rtctimer.enabled == enabled)
636 goto out;
637
638 if (!test_bit(RTC_FEATURE_UPDATE_INTERRUPT, rtc->features) ||
639 !test_bit(RTC_FEATURE_ALARM, rtc->features)) {
640 mutex_unlock(&rtc->ops_lock);
641 #ifdef CONFIG_RTC_INTF_DEV_UIE_EMUL
642 return rtc_dev_update_irq_enable_emul(rtc, enabled);
643 #else
644 return -EINVAL;
645 #endif
646 }
647
648 if (enabled) {
649 struct rtc_time tm;
650 ktime_t now, onesec;
651
652 err = __rtc_read_time(rtc, &tm);
653 if (err)
654 goto out;
655 onesec = ktime_set(1, 0);
656 now = rtc_tm_to_ktime(tm);
657 rtc->uie_rtctimer.node.expires = ktime_add(now, onesec);
658 rtc->uie_rtctimer.period = ktime_set(1, 0);
659 err = rtc_timer_enqueue(rtc, &rtc->uie_rtctimer);
660 if (!err && rtc->ops && rtc->ops->alarm_irq_enable)
661 err = rtc->ops->alarm_irq_enable(rtc->dev.parent, 1);
662 if (err)
663 goto out;
664 } else {
665 rtc_timer_remove(rtc, &rtc->uie_rtctimer);
666 }
667
668 out:
669 mutex_unlock(&rtc->ops_lock);
670
671 return err;
672 }
673 EXPORT_SYMBOL_GPL(rtc_update_irq_enable);
674
675 /**
676 * rtc_handle_legacy_irq - AIE, UIE and PIE event hook
677 * @rtc: pointer to the rtc device
678 * @num: number of occurrence of the event
679 * @mode: type of the event, RTC_AF, RTC_UF or RTC_PF
680 *
681 * This function is called when an AIE, UIE or PIE mode interrupt
682 * has occurred (or been emulated).
683 *
684 */
rtc_handle_legacy_irq(struct rtc_device * rtc,int num,int mode)685 void rtc_handle_legacy_irq(struct rtc_device *rtc, int num, int mode)
686 {
687 unsigned long flags;
688
689 /* mark one irq of the appropriate mode */
690 spin_lock_irqsave(&rtc->irq_lock, flags);
691 rtc->irq_data = (rtc->irq_data + (num << 8)) | (RTC_IRQF | mode);
692 spin_unlock_irqrestore(&rtc->irq_lock, flags);
693
694 wake_up_interruptible(&rtc->irq_queue);
695 kill_fasync(&rtc->async_queue, SIGIO, POLL_IN);
696 }
697
698 /**
699 * rtc_aie_update_irq - AIE mode rtctimer hook
700 * @rtc: pointer to the rtc_device
701 *
702 * This functions is called when the aie_timer expires.
703 */
rtc_aie_update_irq(struct rtc_device * rtc)704 void rtc_aie_update_irq(struct rtc_device *rtc)
705 {
706 rtc_handle_legacy_irq(rtc, 1, RTC_AF);
707 }
708
709 /**
710 * rtc_uie_update_irq - UIE mode rtctimer hook
711 * @rtc: pointer to the rtc_device
712 *
713 * This functions is called when the uie_timer expires.
714 */
rtc_uie_update_irq(struct rtc_device * rtc)715 void rtc_uie_update_irq(struct rtc_device *rtc)
716 {
717 rtc_handle_legacy_irq(rtc, 1, RTC_UF);
718 }
719
720 /**
721 * rtc_pie_update_irq - PIE mode hrtimer hook
722 * @timer: pointer to the pie mode hrtimer
723 *
724 * This function is used to emulate PIE mode interrupts
725 * using an hrtimer. This function is called when the periodic
726 * hrtimer expires.
727 */
rtc_pie_update_irq(struct hrtimer * timer)728 enum hrtimer_restart rtc_pie_update_irq(struct hrtimer *timer)
729 {
730 struct rtc_device *rtc;
731 ktime_t period;
732 u64 count;
733
734 rtc = container_of(timer, struct rtc_device, pie_timer);
735
736 period = NSEC_PER_SEC / rtc->irq_freq;
737 count = hrtimer_forward_now(timer, period);
738
739 rtc_handle_legacy_irq(rtc, count, RTC_PF);
740
741 return HRTIMER_RESTART;
742 }
743
744 /**
745 * rtc_update_irq - Triggered when a RTC interrupt occurs.
746 * @rtc: the rtc device
747 * @num: how many irqs are being reported (usually one)
748 * @events: mask of RTC_IRQF with one or more of RTC_PF, RTC_AF, RTC_UF
749 * Context: any
750 */
rtc_update_irq(struct rtc_device * rtc,unsigned long num,unsigned long events)751 void rtc_update_irq(struct rtc_device *rtc,
752 unsigned long num, unsigned long events)
753 {
754 if (IS_ERR_OR_NULL(rtc))
755 return;
756
757 pm_stay_awake(rtc->dev.parent);
758 schedule_work(&rtc->irqwork);
759 }
760 EXPORT_SYMBOL_GPL(rtc_update_irq);
761
rtc_class_open(const char * name)762 struct rtc_device *rtc_class_open(const char *name)
763 {
764 struct device *dev;
765 struct rtc_device *rtc = NULL;
766
767 dev = class_find_device_by_name(&rtc_class, name);
768 if (dev)
769 rtc = to_rtc_device(dev);
770
771 if (rtc) {
772 if (!try_module_get(rtc->owner)) {
773 put_device(dev);
774 rtc = NULL;
775 }
776 }
777
778 return rtc;
779 }
780 EXPORT_SYMBOL_GPL(rtc_class_open);
781
rtc_class_close(struct rtc_device * rtc)782 void rtc_class_close(struct rtc_device *rtc)
783 {
784 module_put(rtc->owner);
785 put_device(&rtc->dev);
786 }
787 EXPORT_SYMBOL_GPL(rtc_class_close);
788
rtc_update_hrtimer(struct rtc_device * rtc,int enabled)789 static int rtc_update_hrtimer(struct rtc_device *rtc, int enabled)
790 {
791 /*
792 * We always cancel the timer here first, because otherwise
793 * we could run into BUG_ON(timer->state != HRTIMER_STATE_CALLBACK);
794 * when we manage to start the timer before the callback
795 * returns HRTIMER_RESTART.
796 *
797 * We cannot use hrtimer_cancel() here as a running callback
798 * could be blocked on rtc->irq_task_lock and hrtimer_cancel()
799 * would spin forever.
800 */
801 if (hrtimer_try_to_cancel(&rtc->pie_timer) < 0)
802 return -1;
803
804 if (enabled) {
805 ktime_t period = NSEC_PER_SEC / rtc->irq_freq;
806
807 hrtimer_start(&rtc->pie_timer, period, HRTIMER_MODE_REL);
808 }
809 return 0;
810 }
811
812 /**
813 * rtc_irq_set_state - enable/disable 2^N Hz periodic IRQs
814 * @rtc: the rtc device
815 * @enabled: true to enable periodic IRQs
816 * Context: any
817 *
818 * Note that rtc_irq_set_freq() should previously have been used to
819 * specify the desired frequency of periodic IRQ.
820 */
rtc_irq_set_state(struct rtc_device * rtc,int enabled)821 int rtc_irq_set_state(struct rtc_device *rtc, int enabled)
822 {
823 int err = 0;
824
825 while (rtc_update_hrtimer(rtc, enabled) < 0)
826 cpu_relax();
827
828 rtc->pie_enabled = enabled;
829
830 trace_rtc_irq_set_state(enabled, err);
831 return err;
832 }
833
834 /**
835 * rtc_irq_set_freq - set 2^N Hz periodic IRQ frequency for IRQ
836 * @rtc: the rtc device
837 * @freq: positive frequency
838 * Context: any
839 *
840 * Note that rtc_irq_set_state() is used to enable or disable the
841 * periodic IRQs.
842 */
rtc_irq_set_freq(struct rtc_device * rtc,int freq)843 int rtc_irq_set_freq(struct rtc_device *rtc, int freq)
844 {
845 int err = 0;
846
847 if (freq <= 0 || freq > RTC_MAX_FREQ)
848 return -EINVAL;
849
850 rtc->irq_freq = freq;
851 while (rtc->pie_enabled && rtc_update_hrtimer(rtc, 1) < 0)
852 cpu_relax();
853
854 trace_rtc_irq_set_freq(freq, err);
855 return err;
856 }
857
858 /**
859 * rtc_timer_enqueue - Adds a rtc_timer to the rtc_device timerqueue
860 * @rtc: rtc device
861 * @timer: timer being added.
862 *
863 * Enqueues a timer onto the rtc devices timerqueue and sets
864 * the next alarm event appropriately.
865 *
866 * Sets the enabled bit on the added timer.
867 *
868 * Must hold ops_lock for proper serialization of timerqueue
869 */
rtc_timer_enqueue(struct rtc_device * rtc,struct rtc_timer * timer)870 static int rtc_timer_enqueue(struct rtc_device *rtc, struct rtc_timer *timer)
871 {
872 struct timerqueue_node *next = timerqueue_getnext(&rtc->timerqueue);
873 struct rtc_time tm;
874 ktime_t now;
875 int err;
876
877 err = __rtc_read_time(rtc, &tm);
878 if (err)
879 return err;
880
881 timer->enabled = 1;
882 now = rtc_tm_to_ktime(tm);
883
884 /* Skip over expired timers */
885 while (next) {
886 if (next->expires >= now)
887 break;
888 next = timerqueue_iterate_next(next);
889 }
890
891 timerqueue_add(&rtc->timerqueue, &timer->node);
892 trace_rtc_timer_enqueue(timer);
893 if (!next || ktime_before(timer->node.expires, next->expires)) {
894 struct rtc_wkalrm alarm;
895
896 alarm.time = rtc_ktime_to_tm(timer->node.expires);
897 alarm.enabled = 1;
898 err = __rtc_set_alarm(rtc, &alarm);
899 if (err == -ETIME) {
900 pm_stay_awake(rtc->dev.parent);
901 schedule_work(&rtc->irqwork);
902 } else if (err) {
903 timerqueue_del(&rtc->timerqueue, &timer->node);
904 trace_rtc_timer_dequeue(timer);
905 timer->enabled = 0;
906 return err;
907 }
908 }
909 return 0;
910 }
911
rtc_alarm_disable(struct rtc_device * rtc)912 static void rtc_alarm_disable(struct rtc_device *rtc)
913 {
914 if (!rtc->ops || !test_bit(RTC_FEATURE_ALARM, rtc->features) || !rtc->ops->alarm_irq_enable)
915 return;
916
917 rtc->ops->alarm_irq_enable(rtc->dev.parent, false);
918 trace_rtc_alarm_irq_enable(0, 0);
919 }
920
921 /**
922 * rtc_timer_remove - Removes a rtc_timer from the rtc_device timerqueue
923 * @rtc: rtc device
924 * @timer: timer being removed.
925 *
926 * Removes a timer onto the rtc devices timerqueue and sets
927 * the next alarm event appropriately.
928 *
929 * Clears the enabled bit on the removed timer.
930 *
931 * Must hold ops_lock for proper serialization of timerqueue
932 */
rtc_timer_remove(struct rtc_device * rtc,struct rtc_timer * timer)933 static void rtc_timer_remove(struct rtc_device *rtc, struct rtc_timer *timer)
934 {
935 struct timerqueue_node *next = timerqueue_getnext(&rtc->timerqueue);
936
937 timerqueue_del(&rtc->timerqueue, &timer->node);
938 trace_rtc_timer_dequeue(timer);
939 timer->enabled = 0;
940 if (next == &timer->node) {
941 struct rtc_wkalrm alarm;
942 int err;
943
944 next = timerqueue_getnext(&rtc->timerqueue);
945 if (!next) {
946 rtc_alarm_disable(rtc);
947 return;
948 }
949 alarm.time = rtc_ktime_to_tm(next->expires);
950 alarm.enabled = 1;
951 err = __rtc_set_alarm(rtc, &alarm);
952 if (err == -ETIME) {
953 pm_stay_awake(rtc->dev.parent);
954 schedule_work(&rtc->irqwork);
955 }
956 }
957 }
958
959 /**
960 * rtc_timer_do_work - Expires rtc timers
961 * @work: work item
962 *
963 * Expires rtc timers. Reprograms next alarm event if needed.
964 * Called via worktask.
965 *
966 * Serializes access to timerqueue via ops_lock mutex
967 */
rtc_timer_do_work(struct work_struct * work)968 void rtc_timer_do_work(struct work_struct *work)
969 {
970 struct rtc_timer *timer;
971 struct timerqueue_node *next;
972 ktime_t now;
973 struct rtc_time tm;
974 int err;
975
976 struct rtc_device *rtc =
977 container_of(work, struct rtc_device, irqwork);
978
979 mutex_lock(&rtc->ops_lock);
980 again:
981 err = __rtc_read_time(rtc, &tm);
982 if (err) {
983 mutex_unlock(&rtc->ops_lock);
984 return;
985 }
986 now = rtc_tm_to_ktime(tm);
987 while ((next = timerqueue_getnext(&rtc->timerqueue))) {
988 if (next->expires > now)
989 break;
990
991 /* expire timer */
992 timer = container_of(next, struct rtc_timer, node);
993 timerqueue_del(&rtc->timerqueue, &timer->node);
994 trace_rtc_timer_dequeue(timer);
995 timer->enabled = 0;
996 if (timer->func)
997 timer->func(timer->rtc);
998
999 trace_rtc_timer_fired(timer);
1000 /* Re-add/fwd periodic timers */
1001 if (ktime_to_ns(timer->period)) {
1002 timer->node.expires = ktime_add(timer->node.expires,
1003 timer->period);
1004 timer->enabled = 1;
1005 timerqueue_add(&rtc->timerqueue, &timer->node);
1006 trace_rtc_timer_enqueue(timer);
1007 }
1008 }
1009
1010 /* Set next alarm */
1011 if (next) {
1012 struct rtc_wkalrm alarm;
1013 int err;
1014 int retry = 3;
1015
1016 alarm.time = rtc_ktime_to_tm(next->expires);
1017 alarm.enabled = 1;
1018 reprogram:
1019 err = __rtc_set_alarm(rtc, &alarm);
1020 if (err == -ETIME) {
1021 goto again;
1022 } else if (err) {
1023 if (retry-- > 0)
1024 goto reprogram;
1025
1026 timer = container_of(next, struct rtc_timer, node);
1027 timerqueue_del(&rtc->timerqueue, &timer->node);
1028 trace_rtc_timer_dequeue(timer);
1029 timer->enabled = 0;
1030 dev_err(&rtc->dev, "__rtc_set_alarm: err=%d\n", err);
1031 goto again;
1032 }
1033 } else {
1034 rtc_alarm_disable(rtc);
1035 }
1036
1037 pm_relax(rtc->dev.parent);
1038 mutex_unlock(&rtc->ops_lock);
1039 }
1040
1041 /* rtc_timer_init - Initializes an rtc_timer
1042 * @timer: timer to be intiialized
1043 * @f: function pointer to be called when timer fires
1044 * @rtc: pointer to the rtc_device
1045 *
1046 * Kernel interface to initializing an rtc_timer.
1047 */
rtc_timer_init(struct rtc_timer * timer,void (* f)(struct rtc_device * r),struct rtc_device * rtc)1048 void rtc_timer_init(struct rtc_timer *timer, void (*f)(struct rtc_device *r),
1049 struct rtc_device *rtc)
1050 {
1051 timerqueue_init(&timer->node);
1052 timer->enabled = 0;
1053 timer->func = f;
1054 timer->rtc = rtc;
1055 }
1056
1057 /* rtc_timer_start - Sets an rtc_timer to fire in the future
1058 * @ rtc: rtc device to be used
1059 * @ timer: timer being set
1060 * @ expires: time at which to expire the timer
1061 * @ period: period that the timer will recur
1062 *
1063 * Kernel interface to set an rtc_timer
1064 */
rtc_timer_start(struct rtc_device * rtc,struct rtc_timer * timer,ktime_t expires,ktime_t period)1065 int rtc_timer_start(struct rtc_device *rtc, struct rtc_timer *timer,
1066 ktime_t expires, ktime_t period)
1067 {
1068 int ret = 0;
1069
1070 mutex_lock(&rtc->ops_lock);
1071 if (timer->enabled)
1072 rtc_timer_remove(rtc, timer);
1073
1074 timer->node.expires = expires;
1075 timer->period = period;
1076
1077 ret = rtc_timer_enqueue(rtc, timer);
1078
1079 mutex_unlock(&rtc->ops_lock);
1080 return ret;
1081 }
1082
1083 /* rtc_timer_cancel - Stops an rtc_timer
1084 * @ rtc: rtc device to be used
1085 * @ timer: timer being set
1086 *
1087 * Kernel interface to cancel an rtc_timer
1088 */
rtc_timer_cancel(struct rtc_device * rtc,struct rtc_timer * timer)1089 void rtc_timer_cancel(struct rtc_device *rtc, struct rtc_timer *timer)
1090 {
1091 mutex_lock(&rtc->ops_lock);
1092 if (timer->enabled)
1093 rtc_timer_remove(rtc, timer);
1094 mutex_unlock(&rtc->ops_lock);
1095 }
1096
1097 /**
1098 * rtc_read_offset - Read the amount of rtc offset in parts per billion
1099 * @rtc: rtc device to be used
1100 * @offset: the offset in parts per billion
1101 *
1102 * see below for details.
1103 *
1104 * Kernel interface to read rtc clock offset
1105 * Returns 0 on success, or a negative number on error.
1106 * If read_offset() is not implemented for the rtc, return -EINVAL
1107 */
rtc_read_offset(struct rtc_device * rtc,long * offset)1108 int rtc_read_offset(struct rtc_device *rtc, long *offset)
1109 {
1110 int ret;
1111
1112 if (!rtc->ops)
1113 return -ENODEV;
1114
1115 if (!rtc->ops->read_offset)
1116 return -EINVAL;
1117
1118 mutex_lock(&rtc->ops_lock);
1119 ret = rtc->ops->read_offset(rtc->dev.parent, offset);
1120 mutex_unlock(&rtc->ops_lock);
1121
1122 trace_rtc_read_offset(*offset, ret);
1123 return ret;
1124 }
1125
1126 /**
1127 * rtc_set_offset - Adjusts the duration of the average second
1128 * @rtc: rtc device to be used
1129 * @offset: the offset in parts per billion
1130 *
1131 * Some rtc's allow an adjustment to the average duration of a second
1132 * to compensate for differences in the actual clock rate due to temperature,
1133 * the crystal, capacitor, etc.
1134 *
1135 * The adjustment applied is as follows:
1136 * t = t0 * (1 + offset * 1e-9)
1137 * where t0 is the measured length of 1 RTC second with offset = 0
1138 *
1139 * Kernel interface to adjust an rtc clock offset.
1140 * Return 0 on success, or a negative number on error.
1141 * If the rtc offset is not setable (or not implemented), return -EINVAL
1142 */
rtc_set_offset(struct rtc_device * rtc,long offset)1143 int rtc_set_offset(struct rtc_device *rtc, long offset)
1144 {
1145 int ret;
1146
1147 if (!rtc->ops)
1148 return -ENODEV;
1149
1150 if (!rtc->ops->set_offset)
1151 return -EINVAL;
1152
1153 mutex_lock(&rtc->ops_lock);
1154 ret = rtc->ops->set_offset(rtc->dev.parent, offset);
1155 mutex_unlock(&rtc->ops_lock);
1156
1157 trace_rtc_set_offset(offset, ret);
1158 return ret;
1159 }
1160