GNU Linux-libre 4.19.286-gnu1
[releases.git] / drivers / rtc / rtc-omap.c
1 /*
2  * TI OMAP Real Time Clock interface for Linux
3  *
4  * Copyright (C) 2003 MontaVista Software, Inc.
5  * Author: George G. Davis <gdavis@mvista.com> or <source@mvista.com>
6  *
7  * Copyright (C) 2006 David Brownell (new RTC framework)
8  * Copyright (C) 2014 Johan Hovold <johan@kernel.org>
9  *
10  * This program is free software; you can redistribute it and/or
11  * modify it under the terms of the GNU General Public License
12  * as published by the Free Software Foundation; either version
13  * 2 of the License, or (at your option) any later version.
14  */
15
16 #include <dt-bindings/gpio/gpio.h>
17 #include <linux/bcd.h>
18 #include <linux/clk.h>
19 #include <linux/delay.h>
20 #include <linux/init.h>
21 #include <linux/io.h>
22 #include <linux/ioport.h>
23 #include <linux/kernel.h>
24 #include <linux/module.h>
25 #include <linux/of.h>
26 #include <linux/of_device.h>
27 #include <linux/pinctrl/pinctrl.h>
28 #include <linux/pinctrl/pinconf.h>
29 #include <linux/pinctrl/pinconf-generic.h>
30 #include <linux/platform_device.h>
31 #include <linux/pm_runtime.h>
32 #include <linux/rtc.h>
33
34 /*
35  * The OMAP RTC is a year/month/day/hours/minutes/seconds BCD clock
36  * with century-range alarm matching, driven by the 32kHz clock.
37  *
38  * The main user-visible ways it differs from PC RTCs are by omitting
39  * "don't care" alarm fields and sub-second periodic IRQs, and having
40  * an autoadjust mechanism to calibrate to the true oscillator rate.
41  *
42  * Board-specific wiring options include using split power mode with
43  * RTC_OFF_NOFF used as the reset signal (so the RTC won't be reset),
44  * and wiring RTC_WAKE_INT (so the RTC alarm can wake the system from
45  * low power modes) for OMAP1 boards (OMAP-L138 has this built into
46  * the SoC). See the BOARD-SPECIFIC CUSTOMIZATION comment.
47  */
48
49 /* RTC registers */
50 #define OMAP_RTC_SECONDS_REG            0x00
51 #define OMAP_RTC_MINUTES_REG            0x04
52 #define OMAP_RTC_HOURS_REG              0x08
53 #define OMAP_RTC_DAYS_REG               0x0C
54 #define OMAP_RTC_MONTHS_REG             0x10
55 #define OMAP_RTC_YEARS_REG              0x14
56 #define OMAP_RTC_WEEKS_REG              0x18
57
58 #define OMAP_RTC_ALARM_SECONDS_REG      0x20
59 #define OMAP_RTC_ALARM_MINUTES_REG      0x24
60 #define OMAP_RTC_ALARM_HOURS_REG        0x28
61 #define OMAP_RTC_ALARM_DAYS_REG         0x2c
62 #define OMAP_RTC_ALARM_MONTHS_REG       0x30
63 #define OMAP_RTC_ALARM_YEARS_REG        0x34
64
65 #define OMAP_RTC_CTRL_REG               0x40
66 #define OMAP_RTC_STATUS_REG             0x44
67 #define OMAP_RTC_INTERRUPTS_REG         0x48
68
69 #define OMAP_RTC_COMP_LSB_REG           0x4c
70 #define OMAP_RTC_COMP_MSB_REG           0x50
71 #define OMAP_RTC_OSC_REG                0x54
72
73 #define OMAP_RTC_SCRATCH0_REG           0x60
74 #define OMAP_RTC_SCRATCH1_REG           0x64
75 #define OMAP_RTC_SCRATCH2_REG           0x68
76
77 #define OMAP_RTC_KICK0_REG              0x6c
78 #define OMAP_RTC_KICK1_REG              0x70
79
80 #define OMAP_RTC_IRQWAKEEN              0x7c
81
82 #define OMAP_RTC_ALARM2_SECONDS_REG     0x80
83 #define OMAP_RTC_ALARM2_MINUTES_REG     0x84
84 #define OMAP_RTC_ALARM2_HOURS_REG       0x88
85 #define OMAP_RTC_ALARM2_DAYS_REG        0x8c
86 #define OMAP_RTC_ALARM2_MONTHS_REG      0x90
87 #define OMAP_RTC_ALARM2_YEARS_REG       0x94
88
89 #define OMAP_RTC_PMIC_REG               0x98
90
91 /* OMAP_RTC_CTRL_REG bit fields: */
92 #define OMAP_RTC_CTRL_SPLIT             BIT(7)
93 #define OMAP_RTC_CTRL_DISABLE           BIT(6)
94 #define OMAP_RTC_CTRL_SET_32_COUNTER    BIT(5)
95 #define OMAP_RTC_CTRL_TEST              BIT(4)
96 #define OMAP_RTC_CTRL_MODE_12_24        BIT(3)
97 #define OMAP_RTC_CTRL_AUTO_COMP         BIT(2)
98 #define OMAP_RTC_CTRL_ROUND_30S         BIT(1)
99 #define OMAP_RTC_CTRL_STOP              BIT(0)
100
101 /* OMAP_RTC_STATUS_REG bit fields: */
102 #define OMAP_RTC_STATUS_POWER_UP        BIT(7)
103 #define OMAP_RTC_STATUS_ALARM2          BIT(7)
104 #define OMAP_RTC_STATUS_ALARM           BIT(6)
105 #define OMAP_RTC_STATUS_1D_EVENT        BIT(5)
106 #define OMAP_RTC_STATUS_1H_EVENT        BIT(4)
107 #define OMAP_RTC_STATUS_1M_EVENT        BIT(3)
108 #define OMAP_RTC_STATUS_1S_EVENT        BIT(2)
109 #define OMAP_RTC_STATUS_RUN             BIT(1)
110 #define OMAP_RTC_STATUS_BUSY            BIT(0)
111
112 /* OMAP_RTC_INTERRUPTS_REG bit fields: */
113 #define OMAP_RTC_INTERRUPTS_IT_ALARM2   BIT(4)
114 #define OMAP_RTC_INTERRUPTS_IT_ALARM    BIT(3)
115 #define OMAP_RTC_INTERRUPTS_IT_TIMER    BIT(2)
116
117 /* OMAP_RTC_OSC_REG bit fields: */
118 #define OMAP_RTC_OSC_32KCLK_EN          BIT(6)
119 #define OMAP_RTC_OSC_SEL_32KCLK_SRC     BIT(3)
120 #define OMAP_RTC_OSC_OSC32K_GZ_DISABLE  BIT(4)
121
122 /* OMAP_RTC_IRQWAKEEN bit fields: */
123 #define OMAP_RTC_IRQWAKEEN_ALARM_WAKEEN BIT(1)
124
125 /* OMAP_RTC_PMIC bit fields: */
126 #define OMAP_RTC_PMIC_POWER_EN_EN       BIT(16)
127 #define OMAP_RTC_PMIC_EXT_WKUP_EN(x)    BIT(x)
128 #define OMAP_RTC_PMIC_EXT_WKUP_POL(x)   BIT(4 + x)
129
130 /* OMAP_RTC_KICKER values */
131 #define KICK0_VALUE                     0x83e70b13
132 #define KICK1_VALUE                     0x95a4f1e0
133
134 struct omap_rtc;
135
136 struct omap_rtc_device_type {
137         bool has_32kclk_en;
138         bool has_irqwakeen;
139         bool has_pmic_mode;
140         bool has_power_up_reset;
141         void (*lock)(struct omap_rtc *rtc);
142         void (*unlock)(struct omap_rtc *rtc);
143 };
144
145 struct omap_rtc {
146         struct rtc_device *rtc;
147         void __iomem *base;
148         struct clk *clk;
149         int irq_alarm;
150         int irq_timer;
151         u8 interrupts_reg;
152         bool is_pmic_controller;
153         bool has_ext_clk;
154         bool is_suspending;
155         const struct omap_rtc_device_type *type;
156         struct pinctrl_dev *pctldev;
157 };
158
159 static inline u8 rtc_read(struct omap_rtc *rtc, unsigned int reg)
160 {
161         return readb(rtc->base + reg);
162 }
163
164 static inline u32 rtc_readl(struct omap_rtc *rtc, unsigned int reg)
165 {
166         return readl(rtc->base + reg);
167 }
168
169 static inline void rtc_write(struct omap_rtc *rtc, unsigned int reg, u8 val)
170 {
171         writeb(val, rtc->base + reg);
172 }
173
174 static inline void rtc_writel(struct omap_rtc *rtc, unsigned int reg, u32 val)
175 {
176         writel(val, rtc->base + reg);
177 }
178
179 static void am3352_rtc_unlock(struct omap_rtc *rtc)
180 {
181         rtc_writel(rtc, OMAP_RTC_KICK0_REG, KICK0_VALUE);
182         rtc_writel(rtc, OMAP_RTC_KICK1_REG, KICK1_VALUE);
183 }
184
185 static void am3352_rtc_lock(struct omap_rtc *rtc)
186 {
187         rtc_writel(rtc, OMAP_RTC_KICK0_REG, 0);
188         rtc_writel(rtc, OMAP_RTC_KICK1_REG, 0);
189 }
190
191 static void default_rtc_unlock(struct omap_rtc *rtc)
192 {
193 }
194
195 static void default_rtc_lock(struct omap_rtc *rtc)
196 {
197 }
198
199 /*
200  * We rely on the rtc framework to handle locking (rtc->ops_lock),
201  * so the only other requirement is that register accesses which
202  * require BUSY to be clear are made with IRQs locally disabled
203  */
204 static void rtc_wait_not_busy(struct omap_rtc *rtc)
205 {
206         int count;
207         u8 status;
208
209         /* BUSY may stay active for 1/32768 second (~30 usec) */
210         for (count = 0; count < 50; count++) {
211                 status = rtc_read(rtc, OMAP_RTC_STATUS_REG);
212                 if (!(status & OMAP_RTC_STATUS_BUSY))
213                         break;
214                 udelay(1);
215         }
216         /* now we have ~15 usec to read/write various registers */
217 }
218
219 static irqreturn_t rtc_irq(int irq, void *dev_id)
220 {
221         struct omap_rtc *rtc = dev_id;
222         unsigned long events = 0;
223         u8 irq_data;
224
225         irq_data = rtc_read(rtc, OMAP_RTC_STATUS_REG);
226
227         /* alarm irq? */
228         if (irq_data & OMAP_RTC_STATUS_ALARM) {
229                 rtc->type->unlock(rtc);
230                 rtc_write(rtc, OMAP_RTC_STATUS_REG, OMAP_RTC_STATUS_ALARM);
231                 rtc->type->lock(rtc);
232                 events |= RTC_IRQF | RTC_AF;
233         }
234
235         /* 1/sec periodic/update irq? */
236         if (irq_data & OMAP_RTC_STATUS_1S_EVENT)
237                 events |= RTC_IRQF | RTC_UF;
238
239         rtc_update_irq(rtc->rtc, 1, events);
240
241         return IRQ_HANDLED;
242 }
243
244 static int omap_rtc_alarm_irq_enable(struct device *dev, unsigned int enabled)
245 {
246         struct omap_rtc *rtc = dev_get_drvdata(dev);
247         u8 reg, irqwake_reg = 0;
248
249         local_irq_disable();
250         rtc_wait_not_busy(rtc);
251         reg = rtc_read(rtc, OMAP_RTC_INTERRUPTS_REG);
252         if (rtc->type->has_irqwakeen)
253                 irqwake_reg = rtc_read(rtc, OMAP_RTC_IRQWAKEEN);
254
255         if (enabled) {
256                 reg |= OMAP_RTC_INTERRUPTS_IT_ALARM;
257                 irqwake_reg |= OMAP_RTC_IRQWAKEEN_ALARM_WAKEEN;
258         } else {
259                 reg &= ~OMAP_RTC_INTERRUPTS_IT_ALARM;
260                 irqwake_reg &= ~OMAP_RTC_IRQWAKEEN_ALARM_WAKEEN;
261         }
262         rtc_wait_not_busy(rtc);
263         rtc->type->unlock(rtc);
264         rtc_write(rtc, OMAP_RTC_INTERRUPTS_REG, reg);
265         if (rtc->type->has_irqwakeen)
266                 rtc_write(rtc, OMAP_RTC_IRQWAKEEN, irqwake_reg);
267         rtc->type->lock(rtc);
268         local_irq_enable();
269
270         return 0;
271 }
272
273 /* this hardware doesn't support "don't care" alarm fields */
274 static int tm2bcd(struct rtc_time *tm)
275 {
276         tm->tm_sec = bin2bcd(tm->tm_sec);
277         tm->tm_min = bin2bcd(tm->tm_min);
278         tm->tm_hour = bin2bcd(tm->tm_hour);
279         tm->tm_mday = bin2bcd(tm->tm_mday);
280
281         tm->tm_mon = bin2bcd(tm->tm_mon + 1);
282
283         /* epoch == 1900 */
284         if (tm->tm_year < 100 || tm->tm_year > 199)
285                 return -EINVAL;
286         tm->tm_year = bin2bcd(tm->tm_year - 100);
287
288         return 0;
289 }
290
291 static void bcd2tm(struct rtc_time *tm)
292 {
293         tm->tm_sec = bcd2bin(tm->tm_sec);
294         tm->tm_min = bcd2bin(tm->tm_min);
295         tm->tm_hour = bcd2bin(tm->tm_hour);
296         tm->tm_mday = bcd2bin(tm->tm_mday);
297         tm->tm_mon = bcd2bin(tm->tm_mon) - 1;
298         /* epoch == 1900 */
299         tm->tm_year = bcd2bin(tm->tm_year) + 100;
300 }
301
302 static void omap_rtc_read_time_raw(struct omap_rtc *rtc, struct rtc_time *tm)
303 {
304         tm->tm_sec = rtc_read(rtc, OMAP_RTC_SECONDS_REG);
305         tm->tm_min = rtc_read(rtc, OMAP_RTC_MINUTES_REG);
306         tm->tm_hour = rtc_read(rtc, OMAP_RTC_HOURS_REG);
307         tm->tm_mday = rtc_read(rtc, OMAP_RTC_DAYS_REG);
308         tm->tm_mon = rtc_read(rtc, OMAP_RTC_MONTHS_REG);
309         tm->tm_year = rtc_read(rtc, OMAP_RTC_YEARS_REG);
310 }
311
312 static int omap_rtc_read_time(struct device *dev, struct rtc_time *tm)
313 {
314         struct omap_rtc *rtc = dev_get_drvdata(dev);
315
316         /* we don't report wday/yday/isdst ... */
317         local_irq_disable();
318         rtc_wait_not_busy(rtc);
319         omap_rtc_read_time_raw(rtc, tm);
320         local_irq_enable();
321
322         bcd2tm(tm);
323
324         return 0;
325 }
326
327 static int omap_rtc_set_time(struct device *dev, struct rtc_time *tm)
328 {
329         struct omap_rtc *rtc = dev_get_drvdata(dev);
330
331         if (tm2bcd(tm) < 0)
332                 return -EINVAL;
333
334         local_irq_disable();
335         rtc_wait_not_busy(rtc);
336
337         rtc->type->unlock(rtc);
338         rtc_write(rtc, OMAP_RTC_YEARS_REG, tm->tm_year);
339         rtc_write(rtc, OMAP_RTC_MONTHS_REG, tm->tm_mon);
340         rtc_write(rtc, OMAP_RTC_DAYS_REG, tm->tm_mday);
341         rtc_write(rtc, OMAP_RTC_HOURS_REG, tm->tm_hour);
342         rtc_write(rtc, OMAP_RTC_MINUTES_REG, tm->tm_min);
343         rtc_write(rtc, OMAP_RTC_SECONDS_REG, tm->tm_sec);
344         rtc->type->lock(rtc);
345
346         local_irq_enable();
347
348         return 0;
349 }
350
351 static int omap_rtc_read_alarm(struct device *dev, struct rtc_wkalrm *alm)
352 {
353         struct omap_rtc *rtc = dev_get_drvdata(dev);
354         u8 interrupts;
355
356         local_irq_disable();
357         rtc_wait_not_busy(rtc);
358
359         alm->time.tm_sec = rtc_read(rtc, OMAP_RTC_ALARM_SECONDS_REG);
360         alm->time.tm_min = rtc_read(rtc, OMAP_RTC_ALARM_MINUTES_REG);
361         alm->time.tm_hour = rtc_read(rtc, OMAP_RTC_ALARM_HOURS_REG);
362         alm->time.tm_mday = rtc_read(rtc, OMAP_RTC_ALARM_DAYS_REG);
363         alm->time.tm_mon = rtc_read(rtc, OMAP_RTC_ALARM_MONTHS_REG);
364         alm->time.tm_year = rtc_read(rtc, OMAP_RTC_ALARM_YEARS_REG);
365
366         local_irq_enable();
367
368         bcd2tm(&alm->time);
369
370         interrupts = rtc_read(rtc, OMAP_RTC_INTERRUPTS_REG);
371         alm->enabled = !!(interrupts & OMAP_RTC_INTERRUPTS_IT_ALARM);
372
373         return 0;
374 }
375
376 static int omap_rtc_set_alarm(struct device *dev, struct rtc_wkalrm *alm)
377 {
378         struct omap_rtc *rtc = dev_get_drvdata(dev);
379         u8 reg, irqwake_reg = 0;
380
381         if (tm2bcd(&alm->time) < 0)
382                 return -EINVAL;
383
384         local_irq_disable();
385         rtc_wait_not_busy(rtc);
386
387         rtc->type->unlock(rtc);
388         rtc_write(rtc, OMAP_RTC_ALARM_YEARS_REG, alm->time.tm_year);
389         rtc_write(rtc, OMAP_RTC_ALARM_MONTHS_REG, alm->time.tm_mon);
390         rtc_write(rtc, OMAP_RTC_ALARM_DAYS_REG, alm->time.tm_mday);
391         rtc_write(rtc, OMAP_RTC_ALARM_HOURS_REG, alm->time.tm_hour);
392         rtc_write(rtc, OMAP_RTC_ALARM_MINUTES_REG, alm->time.tm_min);
393         rtc_write(rtc, OMAP_RTC_ALARM_SECONDS_REG, alm->time.tm_sec);
394
395         reg = rtc_read(rtc, OMAP_RTC_INTERRUPTS_REG);
396         if (rtc->type->has_irqwakeen)
397                 irqwake_reg = rtc_read(rtc, OMAP_RTC_IRQWAKEEN);
398
399         if (alm->enabled) {
400                 reg |= OMAP_RTC_INTERRUPTS_IT_ALARM;
401                 irqwake_reg |= OMAP_RTC_IRQWAKEEN_ALARM_WAKEEN;
402         } else {
403                 reg &= ~OMAP_RTC_INTERRUPTS_IT_ALARM;
404                 irqwake_reg &= ~OMAP_RTC_IRQWAKEEN_ALARM_WAKEEN;
405         }
406         rtc_write(rtc, OMAP_RTC_INTERRUPTS_REG, reg);
407         if (rtc->type->has_irqwakeen)
408                 rtc_write(rtc, OMAP_RTC_IRQWAKEEN, irqwake_reg);
409         rtc->type->lock(rtc);
410
411         local_irq_enable();
412
413         return 0;
414 }
415
416 static struct omap_rtc *omap_rtc_power_off_rtc;
417
418 /*
419  * omap_rtc_poweroff: RTC-controlled power off
420  *
421  * The RTC can be used to control an external PMIC via the pmic_power_en pin,
422  * which can be configured to transition to OFF on ALARM2 events.
423  *
424  * Notes:
425  * The two-second alarm offset is the shortest offset possible as the alarm
426  * registers must be set before the next timer update and the offset
427  * calculation is too heavy for everything to be done within a single access
428  * period (~15 us).
429  *
430  * Called with local interrupts disabled.
431  */
432 static void omap_rtc_power_off(void)
433 {
434         struct omap_rtc *rtc = omap_rtc_power_off_rtc;
435         struct rtc_time tm;
436         unsigned long now;
437         u32 val;
438
439         rtc->type->unlock(rtc);
440         /* enable pmic_power_en control */
441         val = rtc_readl(rtc, OMAP_RTC_PMIC_REG);
442         rtc_writel(rtc, OMAP_RTC_PMIC_REG, val | OMAP_RTC_PMIC_POWER_EN_EN);
443
444         /* set alarm two seconds from now */
445         omap_rtc_read_time_raw(rtc, &tm);
446         bcd2tm(&tm);
447         rtc_tm_to_time(&tm, &now);
448         rtc_time_to_tm(now + 2, &tm);
449
450         if (tm2bcd(&tm) < 0) {
451                 dev_err(&rtc->rtc->dev, "power off failed\n");
452                 rtc->type->lock(rtc);
453                 return;
454         }
455
456         rtc_wait_not_busy(rtc);
457
458         rtc_write(rtc, OMAP_RTC_ALARM2_SECONDS_REG, tm.tm_sec);
459         rtc_write(rtc, OMAP_RTC_ALARM2_MINUTES_REG, tm.tm_min);
460         rtc_write(rtc, OMAP_RTC_ALARM2_HOURS_REG, tm.tm_hour);
461         rtc_write(rtc, OMAP_RTC_ALARM2_DAYS_REG, tm.tm_mday);
462         rtc_write(rtc, OMAP_RTC_ALARM2_MONTHS_REG, tm.tm_mon);
463         rtc_write(rtc, OMAP_RTC_ALARM2_YEARS_REG, tm.tm_year);
464
465         /*
466          * enable ALARM2 interrupt
467          *
468          * NOTE: this fails on AM3352 if rtc_write (writeb) is used
469          */
470         val = rtc_read(rtc, OMAP_RTC_INTERRUPTS_REG);
471         rtc_writel(rtc, OMAP_RTC_INTERRUPTS_REG,
472                         val | OMAP_RTC_INTERRUPTS_IT_ALARM2);
473         rtc->type->lock(rtc);
474
475         /*
476          * Wait for alarm to trigger (within two seconds) and external PMIC to
477          * power off the system. Add a 500 ms margin for external latencies
478          * (e.g. debounce circuits).
479          */
480         mdelay(2500);
481 }
482
483 static const struct rtc_class_ops omap_rtc_ops = {
484         .read_time      = omap_rtc_read_time,
485         .set_time       = omap_rtc_set_time,
486         .read_alarm     = omap_rtc_read_alarm,
487         .set_alarm      = omap_rtc_set_alarm,
488         .alarm_irq_enable = omap_rtc_alarm_irq_enable,
489 };
490
491 static const struct omap_rtc_device_type omap_rtc_default_type = {
492         .has_power_up_reset = true,
493         .lock           = default_rtc_lock,
494         .unlock         = default_rtc_unlock,
495 };
496
497 static const struct omap_rtc_device_type omap_rtc_am3352_type = {
498         .has_32kclk_en  = true,
499         .has_irqwakeen  = true,
500         .has_pmic_mode  = true,
501         .lock           = am3352_rtc_lock,
502         .unlock         = am3352_rtc_unlock,
503 };
504
505 static const struct omap_rtc_device_type omap_rtc_da830_type = {
506         .lock           = am3352_rtc_lock,
507         .unlock         = am3352_rtc_unlock,
508 };
509
510 static const struct platform_device_id omap_rtc_id_table[] = {
511         {
512                 .name   = "omap_rtc",
513                 .driver_data = (kernel_ulong_t)&omap_rtc_default_type,
514         }, {
515                 .name   = "am3352-rtc",
516                 .driver_data = (kernel_ulong_t)&omap_rtc_am3352_type,
517         }, {
518                 .name   = "da830-rtc",
519                 .driver_data = (kernel_ulong_t)&omap_rtc_da830_type,
520         }, {
521                 /* sentinel */
522         }
523 };
524 MODULE_DEVICE_TABLE(platform, omap_rtc_id_table);
525
526 static const struct of_device_id omap_rtc_of_match[] = {
527         {
528                 .compatible     = "ti,am3352-rtc",
529                 .data           = &omap_rtc_am3352_type,
530         }, {
531                 .compatible     = "ti,da830-rtc",
532                 .data           = &omap_rtc_da830_type,
533         }, {
534                 /* sentinel */
535         }
536 };
537 MODULE_DEVICE_TABLE(of, omap_rtc_of_match);
538
539 static const struct pinctrl_pin_desc rtc_pins_desc[] = {
540         PINCTRL_PIN(0, "ext_wakeup0"),
541         PINCTRL_PIN(1, "ext_wakeup1"),
542         PINCTRL_PIN(2, "ext_wakeup2"),
543         PINCTRL_PIN(3, "ext_wakeup3"),
544 };
545
546 static int rtc_pinctrl_get_groups_count(struct pinctrl_dev *pctldev)
547 {
548         return 0;
549 }
550
551 static const char *rtc_pinctrl_get_group_name(struct pinctrl_dev *pctldev,
552                                         unsigned int group)
553 {
554         return NULL;
555 }
556
557 static const struct pinctrl_ops rtc_pinctrl_ops = {
558         .get_groups_count = rtc_pinctrl_get_groups_count,
559         .get_group_name = rtc_pinctrl_get_group_name,
560         .dt_node_to_map = pinconf_generic_dt_node_to_map_pin,
561         .dt_free_map = pinconf_generic_dt_free_map,
562 };
563
564 #define PIN_CONFIG_ACTIVE_HIGH          (PIN_CONFIG_END + 1)
565
566 static const struct pinconf_generic_params rtc_params[] = {
567         {"ti,active-high", PIN_CONFIG_ACTIVE_HIGH, 0},
568 };
569
570 #ifdef CONFIG_DEBUG_FS
571 static const struct pin_config_item rtc_conf_items[ARRAY_SIZE(rtc_params)] = {
572         PCONFDUMP(PIN_CONFIG_ACTIVE_HIGH, "input active high", NULL, false),
573 };
574 #endif
575
576 static int rtc_pinconf_get(struct pinctrl_dev *pctldev,
577                         unsigned int pin, unsigned long *config)
578 {
579         struct omap_rtc *rtc = pinctrl_dev_get_drvdata(pctldev);
580         unsigned int param = pinconf_to_config_param(*config);
581         u32 val;
582         u16 arg = 0;
583
584         val = rtc_readl(rtc, OMAP_RTC_PMIC_REG);
585
586         switch (param) {
587         case PIN_CONFIG_INPUT_ENABLE:
588                 if (!(val & OMAP_RTC_PMIC_EXT_WKUP_EN(pin)))
589                         return -EINVAL;
590                 break;
591         case PIN_CONFIG_ACTIVE_HIGH:
592                 if (val & OMAP_RTC_PMIC_EXT_WKUP_POL(pin))
593                         return -EINVAL;
594                 break;
595         default:
596                 return -ENOTSUPP;
597         };
598
599         *config = pinconf_to_config_packed(param, arg);
600
601         return 0;
602 }
603
604 static int rtc_pinconf_set(struct pinctrl_dev *pctldev,
605                         unsigned int pin, unsigned long *configs,
606                         unsigned int num_configs)
607 {
608         struct omap_rtc *rtc = pinctrl_dev_get_drvdata(pctldev);
609         u32 val;
610         unsigned int param;
611         u32 param_val;
612         int i;
613
614         val = rtc_readl(rtc, OMAP_RTC_PMIC_REG);
615
616         /* active low by default */
617         val |= OMAP_RTC_PMIC_EXT_WKUP_POL(pin);
618
619         for (i = 0; i < num_configs; i++) {
620                 param = pinconf_to_config_param(configs[i]);
621                 param_val = pinconf_to_config_argument(configs[i]);
622
623                 switch (param) {
624                 case PIN_CONFIG_INPUT_ENABLE:
625                         if (param_val)
626                                 val |= OMAP_RTC_PMIC_EXT_WKUP_EN(pin);
627                         else
628                                 val &= ~OMAP_RTC_PMIC_EXT_WKUP_EN(pin);
629                         break;
630                 case PIN_CONFIG_ACTIVE_HIGH:
631                         val &= ~OMAP_RTC_PMIC_EXT_WKUP_POL(pin);
632                         break;
633                 default:
634                         dev_err(&rtc->rtc->dev, "Property %u not supported\n",
635                                 param);
636                         return -ENOTSUPP;
637                 }
638         }
639
640         rtc->type->unlock(rtc);
641         rtc_writel(rtc, OMAP_RTC_PMIC_REG, val);
642         rtc->type->lock(rtc);
643
644         return 0;
645 }
646
647 static const struct pinconf_ops rtc_pinconf_ops = {
648         .is_generic = true,
649         .pin_config_get = rtc_pinconf_get,
650         .pin_config_set = rtc_pinconf_set,
651 };
652
653 static struct pinctrl_desc rtc_pinctrl_desc = {
654         .pins = rtc_pins_desc,
655         .npins = ARRAY_SIZE(rtc_pins_desc),
656         .pctlops = &rtc_pinctrl_ops,
657         .confops = &rtc_pinconf_ops,
658         .custom_params = rtc_params,
659         .num_custom_params = ARRAY_SIZE(rtc_params),
660 #ifdef CONFIG_DEBUG_FS
661         .custom_conf_items = rtc_conf_items,
662 #endif
663         .owner = THIS_MODULE,
664 };
665
666 static int omap_rtc_scratch_read(void *priv, unsigned int offset, void *_val,
667                                  size_t bytes)
668 {
669         struct omap_rtc *rtc = priv;
670         u32 *val = _val;
671         int i;
672
673         for (i = 0; i < bytes / 4; i++)
674                 val[i] = rtc_readl(rtc,
675                                    OMAP_RTC_SCRATCH0_REG + offset + (i * 4));
676
677         return 0;
678 }
679
680 static int omap_rtc_scratch_write(void *priv, unsigned int offset, void *_val,
681                                   size_t bytes)
682 {
683         struct omap_rtc *rtc = priv;
684         u32 *val = _val;
685         int i;
686
687         rtc->type->unlock(rtc);
688         for (i = 0; i < bytes / 4; i++)
689                 rtc_writel(rtc,
690                            OMAP_RTC_SCRATCH0_REG + offset + (i * 4), val[i]);
691         rtc->type->lock(rtc);
692
693         return 0;
694 }
695
696 static struct nvmem_config omap_rtc_nvmem_config = {
697         .name = "omap_rtc_scratch",
698         .word_size = 4,
699         .stride = 4,
700         .size = OMAP_RTC_KICK0_REG - OMAP_RTC_SCRATCH0_REG,
701         .reg_read = omap_rtc_scratch_read,
702         .reg_write = omap_rtc_scratch_write,
703 };
704
705 static int omap_rtc_probe(struct platform_device *pdev)
706 {
707         struct omap_rtc *rtc;
708         struct resource *res;
709         u8 reg, mask, new_ctrl;
710         const struct platform_device_id *id_entry;
711         const struct of_device_id *of_id;
712         int ret;
713
714         rtc = devm_kzalloc(&pdev->dev, sizeof(*rtc), GFP_KERNEL);
715         if (!rtc)
716                 return -ENOMEM;
717
718         of_id = of_match_device(omap_rtc_of_match, &pdev->dev);
719         if (of_id) {
720                 rtc->type = of_id->data;
721                 rtc->is_pmic_controller = rtc->type->has_pmic_mode &&
722                                 of_property_read_bool(pdev->dev.of_node,
723                                                 "system-power-controller");
724         } else {
725                 id_entry = platform_get_device_id(pdev);
726                 rtc->type = (void *)id_entry->driver_data;
727         }
728
729         rtc->irq_timer = platform_get_irq(pdev, 0);
730         if (rtc->irq_timer <= 0)
731                 return -ENOENT;
732
733         rtc->irq_alarm = platform_get_irq(pdev, 1);
734         if (rtc->irq_alarm <= 0)
735                 return -ENOENT;
736
737         rtc->clk = devm_clk_get(&pdev->dev, "ext-clk");
738         if (!IS_ERR(rtc->clk))
739                 rtc->has_ext_clk = true;
740         else
741                 rtc->clk = devm_clk_get(&pdev->dev, "int-clk");
742
743         if (!IS_ERR(rtc->clk))
744                 clk_prepare_enable(rtc->clk);
745
746         res = platform_get_resource(pdev, IORESOURCE_MEM, 0);
747         rtc->base = devm_ioremap_resource(&pdev->dev, res);
748         if (IS_ERR(rtc->base)) {
749                 clk_disable_unprepare(rtc->clk);
750                 return PTR_ERR(rtc->base);
751         }
752
753         platform_set_drvdata(pdev, rtc);
754
755         /* Enable the clock/module so that we can access the registers */
756         pm_runtime_enable(&pdev->dev);
757         pm_runtime_get_sync(&pdev->dev);
758
759         rtc->type->unlock(rtc);
760
761         /*
762          * disable interrupts
763          *
764          * NOTE: ALARM2 is not cleared on AM3352 if rtc_write (writeb) is used
765          */
766         rtc_writel(rtc, OMAP_RTC_INTERRUPTS_REG, 0);
767
768         /* enable RTC functional clock */
769         if (rtc->type->has_32kclk_en) {
770                 reg = rtc_read(rtc, OMAP_RTC_OSC_REG);
771                 rtc_writel(rtc, OMAP_RTC_OSC_REG,
772                                 reg | OMAP_RTC_OSC_32KCLK_EN);
773         }
774
775         /* clear old status */
776         reg = rtc_read(rtc, OMAP_RTC_STATUS_REG);
777
778         mask = OMAP_RTC_STATUS_ALARM;
779
780         if (rtc->type->has_pmic_mode)
781                 mask |= OMAP_RTC_STATUS_ALARM2;
782
783         if (rtc->type->has_power_up_reset) {
784                 mask |= OMAP_RTC_STATUS_POWER_UP;
785                 if (reg & OMAP_RTC_STATUS_POWER_UP)
786                         dev_info(&pdev->dev, "RTC power up reset detected\n");
787         }
788
789         if (reg & mask)
790                 rtc_write(rtc, OMAP_RTC_STATUS_REG, reg & mask);
791
792         /* On boards with split power, RTC_ON_NOFF won't reset the RTC */
793         reg = rtc_read(rtc, OMAP_RTC_CTRL_REG);
794         if (reg & OMAP_RTC_CTRL_STOP)
795                 dev_info(&pdev->dev, "already running\n");
796
797         /* force to 24 hour mode */
798         new_ctrl = reg & (OMAP_RTC_CTRL_SPLIT | OMAP_RTC_CTRL_AUTO_COMP);
799         new_ctrl |= OMAP_RTC_CTRL_STOP;
800
801         /*
802          * BOARD-SPECIFIC CUSTOMIZATION CAN GO HERE:
803          *
804          *  - Device wake-up capability setting should come through chip
805          *    init logic. OMAP1 boards should initialize the "wakeup capable"
806          *    flag in the platform device if the board is wired right for
807          *    being woken up by RTC alarm. For OMAP-L138, this capability
808          *    is built into the SoC by the "Deep Sleep" capability.
809          *
810          *  - Boards wired so RTC_ON_nOFF is used as the reset signal,
811          *    rather than nPWRON_RESET, should forcibly enable split
812          *    power mode.  (Some chip errata report that RTC_CTRL_SPLIT
813          *    is write-only, and always reads as zero...)
814          */
815
816         if (new_ctrl & OMAP_RTC_CTRL_SPLIT)
817                 dev_info(&pdev->dev, "split power mode\n");
818
819         if (reg != new_ctrl)
820                 rtc_write(rtc, OMAP_RTC_CTRL_REG, new_ctrl);
821
822         /*
823          * If we have the external clock then switch to it so we can keep
824          * ticking across suspend.
825          */
826         if (rtc->has_ext_clk) {
827                 reg = rtc_read(rtc, OMAP_RTC_OSC_REG);
828                 reg &= ~OMAP_RTC_OSC_OSC32K_GZ_DISABLE;
829                 reg |= OMAP_RTC_OSC_32KCLK_EN | OMAP_RTC_OSC_SEL_32KCLK_SRC;
830                 rtc_writel(rtc, OMAP_RTC_OSC_REG, reg);
831         }
832
833         rtc->type->lock(rtc);
834
835         device_init_wakeup(&pdev->dev, true);
836
837         rtc->rtc = devm_rtc_allocate_device(&pdev->dev);
838         if (IS_ERR(rtc->rtc)) {
839                 ret = PTR_ERR(rtc->rtc);
840                 goto err;
841         }
842
843         rtc->rtc->ops = &omap_rtc_ops;
844         omap_rtc_nvmem_config.priv = rtc;
845
846         /* handle periodic and alarm irqs */
847         ret = devm_request_irq(&pdev->dev, rtc->irq_timer, rtc_irq, 0,
848                         dev_name(&rtc->rtc->dev), rtc);
849         if (ret)
850                 goto err;
851
852         if (rtc->irq_timer != rtc->irq_alarm) {
853                 ret = devm_request_irq(&pdev->dev, rtc->irq_alarm, rtc_irq, 0,
854                                 dev_name(&rtc->rtc->dev), rtc);
855                 if (ret)
856                         goto err;
857         }
858
859         /* Support ext_wakeup pinconf */
860         rtc_pinctrl_desc.name = dev_name(&pdev->dev);
861
862         rtc->pctldev = pinctrl_register(&rtc_pinctrl_desc, &pdev->dev, rtc);
863         if (IS_ERR(rtc->pctldev)) {
864                 dev_err(&pdev->dev, "Couldn't register pinctrl driver\n");
865                 ret = PTR_ERR(rtc->pctldev);
866                 goto err;
867         }
868
869         ret = rtc_register_device(rtc->rtc);
870         if (ret)
871                 goto err_deregister_pinctrl;
872
873         rtc_nvmem_register(rtc->rtc, &omap_rtc_nvmem_config);
874
875         if (rtc->is_pmic_controller) {
876                 if (!pm_power_off) {
877                         omap_rtc_power_off_rtc = rtc;
878                         pm_power_off = omap_rtc_power_off;
879                 }
880         }
881
882         return 0;
883
884 err_deregister_pinctrl:
885         pinctrl_unregister(rtc->pctldev);
886 err:
887         clk_disable_unprepare(rtc->clk);
888         device_init_wakeup(&pdev->dev, false);
889         rtc->type->lock(rtc);
890         pm_runtime_put_sync(&pdev->dev);
891         pm_runtime_disable(&pdev->dev);
892
893         return ret;
894 }
895
896 static int omap_rtc_remove(struct platform_device *pdev)
897 {
898         struct omap_rtc *rtc = platform_get_drvdata(pdev);
899         u8 reg;
900
901         if (pm_power_off == omap_rtc_power_off &&
902                         omap_rtc_power_off_rtc == rtc) {
903                 pm_power_off = NULL;
904                 omap_rtc_power_off_rtc = NULL;
905         }
906
907         device_init_wakeup(&pdev->dev, 0);
908
909         if (!IS_ERR(rtc->clk))
910                 clk_disable_unprepare(rtc->clk);
911
912         rtc->type->unlock(rtc);
913         /* leave rtc running, but disable irqs */
914         rtc_write(rtc, OMAP_RTC_INTERRUPTS_REG, 0);
915
916         if (rtc->has_ext_clk) {
917                 reg = rtc_read(rtc, OMAP_RTC_OSC_REG);
918                 reg &= ~OMAP_RTC_OSC_SEL_32KCLK_SRC;
919                 rtc_write(rtc, OMAP_RTC_OSC_REG, reg);
920         }
921
922         rtc->type->lock(rtc);
923
924         /* Disable the clock/module */
925         pm_runtime_put_sync(&pdev->dev);
926         pm_runtime_disable(&pdev->dev);
927
928         /* Remove ext_wakeup pinconf */
929         pinctrl_unregister(rtc->pctldev);
930
931         return 0;
932 }
933
934 static int __maybe_unused omap_rtc_suspend(struct device *dev)
935 {
936         struct omap_rtc *rtc = dev_get_drvdata(dev);
937
938         rtc->interrupts_reg = rtc_read(rtc, OMAP_RTC_INTERRUPTS_REG);
939
940         rtc->type->unlock(rtc);
941         /*
942          * FIXME: the RTC alarm is not currently acting as a wakeup event
943          * source on some platforms, and in fact this enable() call is just
944          * saving a flag that's never used...
945          */
946         if (device_may_wakeup(dev))
947                 enable_irq_wake(rtc->irq_alarm);
948         else
949                 rtc_write(rtc, OMAP_RTC_INTERRUPTS_REG, 0);
950         rtc->type->lock(rtc);
951
952         rtc->is_suspending = true;
953
954         return 0;
955 }
956
957 static int __maybe_unused omap_rtc_resume(struct device *dev)
958 {
959         struct omap_rtc *rtc = dev_get_drvdata(dev);
960
961         rtc->type->unlock(rtc);
962         if (device_may_wakeup(dev))
963                 disable_irq_wake(rtc->irq_alarm);
964         else
965                 rtc_write(rtc, OMAP_RTC_INTERRUPTS_REG, rtc->interrupts_reg);
966         rtc->type->lock(rtc);
967
968         rtc->is_suspending = false;
969
970         return 0;
971 }
972
973 static int __maybe_unused omap_rtc_runtime_suspend(struct device *dev)
974 {
975         struct omap_rtc *rtc = dev_get_drvdata(dev);
976
977         if (rtc->is_suspending && !rtc->has_ext_clk)
978                 return -EBUSY;
979
980         return 0;
981 }
982
983 static const struct dev_pm_ops omap_rtc_pm_ops = {
984         SET_SYSTEM_SLEEP_PM_OPS(omap_rtc_suspend, omap_rtc_resume)
985         SET_RUNTIME_PM_OPS(omap_rtc_runtime_suspend, NULL, NULL)
986 };
987
988 static void omap_rtc_shutdown(struct platform_device *pdev)
989 {
990         struct omap_rtc *rtc = platform_get_drvdata(pdev);
991         u8 mask;
992
993         /*
994          * Keep the ALARM interrupt enabled to allow the system to power up on
995          * alarm events.
996          */
997         rtc->type->unlock(rtc);
998         mask = rtc_read(rtc, OMAP_RTC_INTERRUPTS_REG);
999         mask &= OMAP_RTC_INTERRUPTS_IT_ALARM;
1000         rtc_write(rtc, OMAP_RTC_INTERRUPTS_REG, mask);
1001         rtc->type->lock(rtc);
1002 }
1003
1004 static struct platform_driver omap_rtc_driver = {
1005         .probe          = omap_rtc_probe,
1006         .remove         = omap_rtc_remove,
1007         .shutdown       = omap_rtc_shutdown,
1008         .driver         = {
1009                 .name   = "omap_rtc",
1010                 .pm     = &omap_rtc_pm_ops,
1011                 .of_match_table = omap_rtc_of_match,
1012         },
1013         .id_table       = omap_rtc_id_table,
1014 };
1015
1016 module_platform_driver(omap_rtc_driver);
1017
1018 MODULE_ALIAS("platform:omap_rtc");
1019 MODULE_AUTHOR("George G. Davis (and others)");
1020 MODULE_LICENSE("GPL");