2 * SuperH On-Chip RTC Support
4 * Copyright (C) 2006, 2007, 2008 Paul Mundt
5 * Copyright (C) 2006 Jamie Lenehan
6 * Copyright (C) 2008 Angelo Castello
8 * Based on the old arch/sh/kernel/cpu/rtc.c by:
10 * Copyright (C) 2000 Philipp Rumpf <prumpf@tux.org>
11 * Copyright (C) 1999 Tetsuya Okada & Niibe Yutaka
13 * This file is subject to the terms and conditions of the GNU General Public
14 * License. See the file "COPYING" in the main directory of this archive
17 #include <linux/module.h>
18 #include <linux/kernel.h>
19 #include <linux/bcd.h>
20 #include <linux/rtc.h>
21 #include <linux/init.h>
22 #include <linux/platform_device.h>
23 #include <linux/seq_file.h>
24 #include <linux/interrupt.h>
25 #include <linux/spinlock.h>
27 #include <linux/log2.h>
30 #define DRV_NAME "sh-rtc"
31 #define DRV_VERSION "0.2.0"
33 #define RTC_REG(r) ((r) * rtc_reg_size)
35 #define R64CNT RTC_REG(0)
37 #define RSECCNT RTC_REG(1) /* RTC sec */
38 #define RMINCNT RTC_REG(2) /* RTC min */
39 #define RHRCNT RTC_REG(3) /* RTC hour */
40 #define RWKCNT RTC_REG(4) /* RTC week */
41 #define RDAYCNT RTC_REG(5) /* RTC day */
42 #define RMONCNT RTC_REG(6) /* RTC month */
43 #define RYRCNT RTC_REG(7) /* RTC year */
44 #define RSECAR RTC_REG(8) /* ALARM sec */
45 #define RMINAR RTC_REG(9) /* ALARM min */
46 #define RHRAR RTC_REG(10) /* ALARM hour */
47 #define RWKAR RTC_REG(11) /* ALARM week */
48 #define RDAYAR RTC_REG(12) /* ALARM day */
49 #define RMONAR RTC_REG(13) /* ALARM month */
50 #define RCR1 RTC_REG(14) /* Control */
51 #define RCR2 RTC_REG(15) /* Control */
54 * Note on RYRAR and RCR3: Up until this point most of the register
55 * definitions are consistent across all of the available parts. However,
56 * the placement of the optional RYRAR and RCR3 (the RYRAR control
57 * register used to control RYRCNT/RYRAR compare) varies considerably
58 * across various parts, occasionally being mapped in to a completely
59 * unrelated address space. For proper RYRAR support a separate resource
60 * would have to be handed off, but as this is purely optional in
61 * practice, we simply opt not to support it, thereby keeping the code
62 * quite a bit more simplified.
65 /* ALARM Bits - or with BCD encoded value */
66 #define AR_ENB 0x80 /* Enable for alarm cmp */
69 #define PF_HP 0x100 /* Enable Half Period to support 8,32,128Hz */
70 #define PF_COUNT 0x200 /* Half periodic counter */
71 #define PF_OXS 0x400 /* Periodic One x Second */
72 #define PF_KOU 0x800 /* Kernel or User periodic request 1=kernel */
76 #define RCR1_CF 0x80 /* Carry Flag */
77 #define RCR1_CIE 0x10 /* Carry Interrupt Enable */
78 #define RCR1_AIE 0x08 /* Alarm Interrupt Enable */
79 #define RCR1_AF 0x01 /* Alarm Flag */
82 #define RCR2_PEF 0x80 /* PEriodic interrupt Flag */
83 #define RCR2_PESMASK 0x70 /* Periodic interrupt Set */
84 #define RCR2_RTCEN 0x08 /* ENable RTC */
85 #define RCR2_ADJ 0x04 /* ADJustment (30-second) */
86 #define RCR2_RESET 0x02 /* Reset bit */
87 #define RCR2_START 0x01 /* Start bit */
90 void __iomem
*regbase
;
91 unsigned long regsize
;
96 struct rtc_device
*rtc_dev
;
98 unsigned long capabilities
; /* See asm-sh/rtc.h for cap bits */
99 unsigned short periodic_freq
;
102 static irqreturn_t
sh_rtc_interrupt(int irq
, void *dev_id
)
104 struct sh_rtc
*rtc
= dev_id
;
107 spin_lock(&rtc
->lock
);
109 tmp
= readb(rtc
->regbase
+ RCR1
);
111 writeb(tmp
, rtc
->regbase
+ RCR1
);
113 /* Users have requested One x Second IRQ */
114 if (rtc
->periodic_freq
& PF_OXS
)
115 rtc_update_irq(rtc
->rtc_dev
, 1, RTC_UF
| RTC_IRQF
);
117 spin_unlock(&rtc
->lock
);
122 static irqreturn_t
sh_rtc_alarm(int irq
, void *dev_id
)
124 struct sh_rtc
*rtc
= dev_id
;
127 spin_lock(&rtc
->lock
);
129 tmp
= readb(rtc
->regbase
+ RCR1
);
130 tmp
&= ~(RCR1_AF
| RCR1_AIE
);
131 writeb(tmp
, rtc
->regbase
+ RCR1
);
133 rtc_update_irq(rtc
->rtc_dev
, 1, RTC_AF
| RTC_IRQF
);
135 spin_unlock(&rtc
->lock
);
140 static irqreturn_t
sh_rtc_periodic(int irq
, void *dev_id
)
142 struct sh_rtc
*rtc
= dev_id
;
143 struct rtc_device
*rtc_dev
= rtc
->rtc_dev
;
146 spin_lock(&rtc
->lock
);
148 tmp
= readb(rtc
->regbase
+ RCR2
);
150 writeb(tmp
, rtc
->regbase
+ RCR2
);
152 /* Half period enabled than one skipped and the next notified */
153 if ((rtc
->periodic_freq
& PF_HP
) && (rtc
->periodic_freq
& PF_COUNT
))
154 rtc
->periodic_freq
&= ~PF_COUNT
;
156 if (rtc
->periodic_freq
& PF_HP
)
157 rtc
->periodic_freq
|= PF_COUNT
;
158 if (rtc
->periodic_freq
& PF_KOU
) {
159 spin_lock(&rtc_dev
->irq_task_lock
);
160 if (rtc_dev
->irq_task
)
161 rtc_dev
->irq_task
->func(rtc_dev
->irq_task
->private_data
);
162 spin_unlock(&rtc_dev
->irq_task_lock
);
164 rtc_update_irq(rtc
->rtc_dev
, 1, RTC_PF
| RTC_IRQF
);
167 spin_unlock(&rtc
->lock
);
172 static inline void sh_rtc_setpie(struct device
*dev
, unsigned int enable
)
174 struct sh_rtc
*rtc
= dev_get_drvdata(dev
);
177 spin_lock_irq(&rtc
->lock
);
179 tmp
= readb(rtc
->regbase
+ RCR2
);
182 tmp
&= ~RCR2_PEF
; /* Clear PES bit */
183 tmp
|= (rtc
->periodic_freq
& ~PF_HP
); /* Set PES2-0 */
185 tmp
&= ~(RCR2_PESMASK
| RCR2_PEF
);
187 writeb(tmp
, rtc
->regbase
+ RCR2
);
189 spin_unlock_irq(&rtc
->lock
);
192 static inline int sh_rtc_setfreq(struct device
*dev
, unsigned int freq
)
194 struct sh_rtc
*rtc
= dev_get_drvdata(dev
);
197 spin_lock_irq(&rtc
->lock
);
198 tmp
= rtc
->periodic_freq
& PF_MASK
;
202 rtc
->periodic_freq
= 0x00;
205 rtc
->periodic_freq
= 0x60;
208 rtc
->periodic_freq
= 0x50;
211 rtc
->periodic_freq
= 0x40;
214 rtc
->periodic_freq
= 0x30 | PF_HP
;
217 rtc
->periodic_freq
= 0x30;
220 rtc
->periodic_freq
= 0x20 | PF_HP
;
223 rtc
->periodic_freq
= 0x20;
226 rtc
->periodic_freq
= 0x10 | PF_HP
;
229 rtc
->periodic_freq
= 0x10;
236 rtc
->periodic_freq
|= tmp
;
237 rtc
->rtc_dev
->irq_freq
= freq
;
240 spin_unlock_irq(&rtc
->lock
);
244 static inline void sh_rtc_setaie(struct device
*dev
, unsigned int enable
)
246 struct sh_rtc
*rtc
= dev_get_drvdata(dev
);
249 spin_lock_irq(&rtc
->lock
);
251 tmp
= readb(rtc
->regbase
+ RCR1
);
258 writeb(tmp
, rtc
->regbase
+ RCR1
);
260 spin_unlock_irq(&rtc
->lock
);
263 static int sh_rtc_proc(struct device
*dev
, struct seq_file
*seq
)
265 struct sh_rtc
*rtc
= dev_get_drvdata(dev
);
268 tmp
= readb(rtc
->regbase
+ RCR1
);
269 seq_printf(seq
, "carry_IRQ\t: %s\n", (tmp
& RCR1_CIE
) ? "yes" : "no");
271 tmp
= readb(rtc
->regbase
+ RCR2
);
272 seq_printf(seq
, "periodic_IRQ\t: %s\n",
273 (tmp
& RCR2_PESMASK
) ? "yes" : "no");
278 static int sh_rtc_ioctl(struct device
*dev
, unsigned int cmd
, unsigned long arg
)
280 struct sh_rtc
*rtc
= dev_get_drvdata(dev
);
281 unsigned int ret
= 0;
286 sh_rtc_setpie(dev
, cmd
== RTC_PIE_ON
);
290 sh_rtc_setaie(dev
, cmd
== RTC_AIE_ON
);
293 rtc
->periodic_freq
&= ~PF_OXS
;
296 rtc
->periodic_freq
|= PF_OXS
;
299 ret
= put_user(rtc
->rtc_dev
->irq_freq
,
300 (unsigned long __user
*)arg
);
303 ret
= sh_rtc_setfreq(dev
, arg
);
312 static int sh_rtc_read_time(struct device
*dev
, struct rtc_time
*tm
)
314 struct platform_device
*pdev
= to_platform_device(dev
);
315 struct sh_rtc
*rtc
= platform_get_drvdata(pdev
);
316 unsigned int sec128
, sec2
, yr
, yr100
, cf_bit
;
321 spin_lock_irq(&rtc
->lock
);
323 tmp
= readb(rtc
->regbase
+ RCR1
);
324 tmp
&= ~RCR1_CF
; /* Clear CF-bit */
326 writeb(tmp
, rtc
->regbase
+ RCR1
);
328 sec128
= readb(rtc
->regbase
+ R64CNT
);
330 tm
->tm_sec
= bcd2bin(readb(rtc
->regbase
+ RSECCNT
));
331 tm
->tm_min
= bcd2bin(readb(rtc
->regbase
+ RMINCNT
));
332 tm
->tm_hour
= bcd2bin(readb(rtc
->regbase
+ RHRCNT
));
333 tm
->tm_wday
= bcd2bin(readb(rtc
->regbase
+ RWKCNT
));
334 tm
->tm_mday
= bcd2bin(readb(rtc
->regbase
+ RDAYCNT
));
335 tm
->tm_mon
= bcd2bin(readb(rtc
->regbase
+ RMONCNT
)) - 1;
337 if (rtc
->capabilities
& RTC_CAP_4_DIGIT_YEAR
) {
338 yr
= readw(rtc
->regbase
+ RYRCNT
);
339 yr100
= bcd2bin(yr
>> 8);
342 yr
= readb(rtc
->regbase
+ RYRCNT
);
343 yr100
= bcd2bin((yr
== 0x99) ? 0x19 : 0x20);
346 tm
->tm_year
= (yr100
* 100 + bcd2bin(yr
)) - 1900;
348 sec2
= readb(rtc
->regbase
+ R64CNT
);
349 cf_bit
= readb(rtc
->regbase
+ RCR1
) & RCR1_CF
;
351 spin_unlock_irq(&rtc
->lock
);
352 } while (cf_bit
!= 0 || ((sec128
^ sec2
) & RTC_BIT_INVERTED
) != 0);
354 #if RTC_BIT_INVERTED != 0
355 if ((sec128
& RTC_BIT_INVERTED
))
359 dev_dbg(dev
, "%s: tm is secs=%d, mins=%d, hours=%d, "
360 "mday=%d, mon=%d, year=%d, wday=%d\n",
362 tm
->tm_sec
, tm
->tm_min
, tm
->tm_hour
,
363 tm
->tm_mday
, tm
->tm_mon
+ 1, tm
->tm_year
, tm
->tm_wday
);
365 if (rtc_valid_tm(tm
) < 0) {
366 dev_err(dev
, "invalid date\n");
367 rtc_time_to_tm(0, tm
);
373 static int sh_rtc_set_time(struct device
*dev
, struct rtc_time
*tm
)
375 struct platform_device
*pdev
= to_platform_device(dev
);
376 struct sh_rtc
*rtc
= platform_get_drvdata(pdev
);
380 spin_lock_irq(&rtc
->lock
);
382 /* Reset pre-scaler & stop RTC */
383 tmp
= readb(rtc
->regbase
+ RCR2
);
386 writeb(tmp
, rtc
->regbase
+ RCR2
);
388 writeb(bin2bcd(tm
->tm_sec
), rtc
->regbase
+ RSECCNT
);
389 writeb(bin2bcd(tm
->tm_min
), rtc
->regbase
+ RMINCNT
);
390 writeb(bin2bcd(tm
->tm_hour
), rtc
->regbase
+ RHRCNT
);
391 writeb(bin2bcd(tm
->tm_wday
), rtc
->regbase
+ RWKCNT
);
392 writeb(bin2bcd(tm
->tm_mday
), rtc
->regbase
+ RDAYCNT
);
393 writeb(bin2bcd(tm
->tm_mon
+ 1), rtc
->regbase
+ RMONCNT
);
395 if (rtc
->capabilities
& RTC_CAP_4_DIGIT_YEAR
) {
396 year
= (bin2bcd((tm
->tm_year
+ 1900) / 100) << 8) |
397 bin2bcd(tm
->tm_year
% 100);
398 writew(year
, rtc
->regbase
+ RYRCNT
);
400 year
= tm
->tm_year
% 100;
401 writeb(bin2bcd(year
), rtc
->regbase
+ RYRCNT
);
405 tmp
= readb(rtc
->regbase
+ RCR2
);
407 tmp
|= RCR2_RTCEN
| RCR2_START
;
408 writeb(tmp
, rtc
->regbase
+ RCR2
);
410 spin_unlock_irq(&rtc
->lock
);
415 static inline int sh_rtc_read_alarm_value(struct sh_rtc
*rtc
, int reg_off
)
418 int value
= 0xff; /* return 0xff for ignored values */
420 byte
= readb(rtc
->regbase
+ reg_off
);
422 byte
&= ~AR_ENB
; /* strip the enable bit */
423 value
= bcd2bin(byte
);
429 static int sh_rtc_read_alarm(struct device
*dev
, struct rtc_wkalrm
*wkalrm
)
431 struct platform_device
*pdev
= to_platform_device(dev
);
432 struct sh_rtc
*rtc
= platform_get_drvdata(pdev
);
433 struct rtc_time
*tm
= &wkalrm
->time
;
435 spin_lock_irq(&rtc
->lock
);
437 tm
->tm_sec
= sh_rtc_read_alarm_value(rtc
, RSECAR
);
438 tm
->tm_min
= sh_rtc_read_alarm_value(rtc
, RMINAR
);
439 tm
->tm_hour
= sh_rtc_read_alarm_value(rtc
, RHRAR
);
440 tm
->tm_wday
= sh_rtc_read_alarm_value(rtc
, RWKAR
);
441 tm
->tm_mday
= sh_rtc_read_alarm_value(rtc
, RDAYAR
);
442 tm
->tm_mon
= sh_rtc_read_alarm_value(rtc
, RMONAR
);
444 tm
->tm_mon
-= 1; /* RTC is 1-12, tm_mon is 0-11 */
445 tm
->tm_year
= 0xffff;
447 wkalrm
->enabled
= (readb(rtc
->regbase
+ RCR1
) & RCR1_AIE
) ? 1 : 0;
449 spin_unlock_irq(&rtc
->lock
);
454 static inline void sh_rtc_write_alarm_value(struct sh_rtc
*rtc
,
455 int value
, int reg_off
)
457 /* < 0 for a value that is ignored */
459 writeb(0, rtc
->regbase
+ reg_off
);
461 writeb(bin2bcd(value
) | AR_ENB
, rtc
->regbase
+ reg_off
);
464 static int sh_rtc_check_alarm(struct rtc_time
*tm
)
467 * The original rtc says anything > 0xc0 is "don't care" or "match
468 * all" - most users use 0xff but rtc-dev uses -1 for the same thing.
469 * The original rtc doesn't support years - some things use -1 and
470 * some 0xffff. We use -1 to make out tests easier.
472 if (tm
->tm_year
== 0xffff)
474 if (tm
->tm_mon
>= 0xff)
476 if (tm
->tm_mday
>= 0xff)
478 if (tm
->tm_wday
>= 0xff)
480 if (tm
->tm_hour
>= 0xff)
482 if (tm
->tm_min
>= 0xff)
484 if (tm
->tm_sec
>= 0xff)
487 if (tm
->tm_year
> 9999 ||
489 tm
->tm_mday
== 0 || tm
->tm_mday
>= 32 ||
499 static int sh_rtc_set_alarm(struct device
*dev
, struct rtc_wkalrm
*wkalrm
)
501 struct platform_device
*pdev
= to_platform_device(dev
);
502 struct sh_rtc
*rtc
= platform_get_drvdata(pdev
);
504 struct rtc_time
*tm
= &wkalrm
->time
;
507 err
= sh_rtc_check_alarm(tm
);
508 if (unlikely(err
< 0))
511 spin_lock_irq(&rtc
->lock
);
513 /* disable alarm interrupt and clear the alarm flag */
514 rcr1
= readb(rtc
->regbase
+ RCR1
);
515 rcr1
&= ~(RCR1_AF
| RCR1_AIE
);
516 writeb(rcr1
, rtc
->regbase
+ RCR1
);
519 sh_rtc_write_alarm_value(rtc
, tm
->tm_sec
, RSECAR
);
520 sh_rtc_write_alarm_value(rtc
, tm
->tm_min
, RMINAR
);
521 sh_rtc_write_alarm_value(rtc
, tm
->tm_hour
, RHRAR
);
522 sh_rtc_write_alarm_value(rtc
, tm
->tm_wday
, RWKAR
);
523 sh_rtc_write_alarm_value(rtc
, tm
->tm_mday
, RDAYAR
);
527 sh_rtc_write_alarm_value(rtc
, mon
, RMONAR
);
529 if (wkalrm
->enabled
) {
531 writeb(rcr1
, rtc
->regbase
+ RCR1
);
534 spin_unlock_irq(&rtc
->lock
);
539 static int sh_rtc_irq_set_state(struct device
*dev
, int enabled
)
541 struct platform_device
*pdev
= to_platform_device(dev
);
542 struct sh_rtc
*rtc
= platform_get_drvdata(pdev
);
545 rtc
->periodic_freq
|= PF_KOU
;
546 return sh_rtc_ioctl(dev
, RTC_PIE_ON
, 0);
548 rtc
->periodic_freq
&= ~PF_KOU
;
549 return sh_rtc_ioctl(dev
, RTC_PIE_OFF
, 0);
553 static int sh_rtc_irq_set_freq(struct device
*dev
, int freq
)
555 if (!is_power_of_2(freq
))
557 return sh_rtc_ioctl(dev
, RTC_IRQP_SET
, freq
);
560 static struct rtc_class_ops sh_rtc_ops
= {
561 .ioctl
= sh_rtc_ioctl
,
562 .read_time
= sh_rtc_read_time
,
563 .set_time
= sh_rtc_set_time
,
564 .read_alarm
= sh_rtc_read_alarm
,
565 .set_alarm
= sh_rtc_set_alarm
,
566 .irq_set_state
= sh_rtc_irq_set_state
,
567 .irq_set_freq
= sh_rtc_irq_set_freq
,
571 static int __devinit
sh_rtc_probe(struct platform_device
*pdev
)
574 struct resource
*res
;
578 rtc
= kzalloc(sizeof(struct sh_rtc
), GFP_KERNEL
);
582 spin_lock_init(&rtc
->lock
);
584 /* get periodic/carry/alarm irqs */
585 ret
= platform_get_irq(pdev
, 0);
586 if (unlikely(ret
<= 0)) {
588 dev_err(&pdev
->dev
, "No IRQ for period\n");
591 rtc
->periodic_irq
= ret
;
593 ret
= platform_get_irq(pdev
, 1);
594 if (unlikely(ret
<= 0)) {
596 dev_err(&pdev
->dev
, "No IRQ for carry\n");
599 rtc
->carry_irq
= ret
;
601 ret
= platform_get_irq(pdev
, 2);
602 if (unlikely(ret
<= 0)) {
604 dev_err(&pdev
->dev
, "No IRQ for alarm\n");
607 rtc
->alarm_irq
= ret
;
609 res
= platform_get_resource(pdev
, IORESOURCE_IO
, 0);
610 if (unlikely(res
== NULL
)) {
612 dev_err(&pdev
->dev
, "No IO resource\n");
616 rtc
->regsize
= res
->end
- res
->start
+ 1;
618 rtc
->res
= request_mem_region(res
->start
, rtc
->regsize
, pdev
->name
);
619 if (unlikely(!rtc
->res
)) {
624 rtc
->regbase
= ioremap_nocache(rtc
->res
->start
, rtc
->regsize
);
625 if (unlikely(!rtc
->regbase
)) {
630 rtc
->rtc_dev
= rtc_device_register("sh", &pdev
->dev
,
631 &sh_rtc_ops
, THIS_MODULE
);
632 if (IS_ERR(rtc
->rtc_dev
)) {
633 ret
= PTR_ERR(rtc
->rtc_dev
);
637 rtc
->capabilities
= RTC_DEF_CAPABILITIES
;
638 if (pdev
->dev
.platform_data
) {
639 struct sh_rtc_platform_info
*pinfo
= pdev
->dev
.platform_data
;
642 * Some CPUs have special capabilities in addition to the
643 * default set. Add those in here.
645 rtc
->capabilities
|= pinfo
->capabilities
;
648 rtc
->rtc_dev
->max_user_freq
= 256;
649 rtc
->rtc_dev
->irq_freq
= 1;
650 rtc
->periodic_freq
= 0x60;
652 platform_set_drvdata(pdev
, rtc
);
654 /* register periodic/carry/alarm irqs */
655 ret
= request_irq(rtc
->periodic_irq
, sh_rtc_periodic
, IRQF_DISABLED
,
656 "sh-rtc period", rtc
);
659 "request period IRQ failed with %d, IRQ %d\n", ret
,
664 ret
= request_irq(rtc
->carry_irq
, sh_rtc_interrupt
, IRQF_DISABLED
,
665 "sh-rtc carry", rtc
);
668 "request carry IRQ failed with %d, IRQ %d\n", ret
,
670 free_irq(rtc
->periodic_irq
, rtc
);
674 ret
= request_irq(rtc
->alarm_irq
, sh_rtc_alarm
, IRQF_DISABLED
,
675 "sh-rtc alarm", rtc
);
678 "request alarm IRQ failed with %d, IRQ %d\n", ret
,
680 free_irq(rtc
->carry_irq
, rtc
);
681 free_irq(rtc
->periodic_irq
, rtc
);
685 tmp
= readb(rtc
->regbase
+ RCR1
);
688 writeb(tmp
, rtc
->regbase
+ RCR1
);
693 iounmap(rtc
->regbase
);
695 release_resource(rtc
->res
);
702 static int __devexit
sh_rtc_remove(struct platform_device
*pdev
)
704 struct sh_rtc
*rtc
= platform_get_drvdata(pdev
);
706 if (likely(rtc
->rtc_dev
))
707 rtc_device_unregister(rtc
->rtc_dev
);
709 sh_rtc_setpie(&pdev
->dev
, 0);
710 sh_rtc_setaie(&pdev
->dev
, 0);
712 free_irq(rtc
->carry_irq
, rtc
);
713 free_irq(rtc
->periodic_irq
, rtc
);
714 free_irq(rtc
->alarm_irq
, rtc
);
716 release_resource(rtc
->res
);
718 iounmap(rtc
->regbase
);
720 platform_set_drvdata(pdev
, NULL
);
726 static struct platform_driver sh_rtc_platform_driver
= {
729 .owner
= THIS_MODULE
,
731 .probe
= sh_rtc_probe
,
732 .remove
= __devexit_p(sh_rtc_remove
),
735 static int __init
sh_rtc_init(void)
737 return platform_driver_register(&sh_rtc_platform_driver
);
740 static void __exit
sh_rtc_exit(void)
742 platform_driver_unregister(&sh_rtc_platform_driver
);
745 module_init(sh_rtc_init
);
746 module_exit(sh_rtc_exit
);
748 MODULE_DESCRIPTION("SuperH on-chip RTC driver");
749 MODULE_VERSION(DRV_VERSION
);
750 MODULE_AUTHOR("Paul Mundt <lethal@linux-sh.org>, "
751 "Jamie Lenehan <lenehan@twibble.org>, "
752 "Angelo Castello <angelo.castello@st.com>");
753 MODULE_LICENSE("GPL");
754 MODULE_ALIAS("platform:" DRV_NAME
);