xref: /linux/drivers/rtc/rtc-cpcap.c (revision 26ba30221c03364d6ed9910be8da4c1fd871b07b)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Motorola CPCAP PMIC RTC driver
4  *
5  * Based on cpcap-regulator.c from Motorola Linux kernel tree
6  * Copyright (C) 2009 Motorola, Inc.
7  *
8  * Rewritten for mainline kernel
9  *  - use DT
10  *  - use regmap
11  *  - use standard interrupt framework
12  *  - use managed device resources
13  *  - remove custom "secure clock daemon" helpers
14  *
15  * Copyright (C) 2017 Sebastian Reichel <sre@kernel.org>
16  */
17 #include <linux/kernel.h>
18 #include <linux/module.h>
19 #include <linux/init.h>
20 #include <linux/device.h>
21 #include <linux/platform_device.h>
22 #include <linux/rtc.h>
23 #include <linux/err.h>
24 #include <linux/regmap.h>
25 #include <linux/mfd/motorola-cpcap.h>
26 #include <linux/slab.h>
27 #include <linux/sched.h>
28 
29 #define SECS_PER_DAY 86400
30 #define DAY_MASK  0x7FFF
31 #define TOD1_MASK 0x00FF
32 #define TOD2_MASK 0x01FF
33 
34 struct cpcap_time {
35 	int day;
36 	int tod1;
37 	int tod2;
38 };
39 
40 struct cpcap_rtc {
41 	struct regmap *regmap;
42 	struct rtc_device *rtc_dev;
43 	u16 vendor;
44 	int alarm_irq;
45 	bool alarm_enabled;
46 	int update_irq;
47 	bool update_enabled;
48 };
49 
50 static void cpcap2rtc_time(struct rtc_time *rtc, struct cpcap_time *cpcap)
51 {
52 	unsigned long int tod;
53 	unsigned long int time;
54 
55 	tod = (cpcap->tod1 & TOD1_MASK) | ((cpcap->tod2 & TOD2_MASK) << 8);
56 	time = tod + ((cpcap->day & DAY_MASK) * SECS_PER_DAY);
57 
58 	rtc_time64_to_tm(time, rtc);
59 }
60 
61 static void rtc2cpcap_time(struct cpcap_time *cpcap, struct rtc_time *rtc)
62 {
63 	unsigned long time;
64 
65 	time = rtc_tm_to_time64(rtc);
66 
67 	cpcap->day = time / SECS_PER_DAY;
68 	time %= SECS_PER_DAY;
69 	cpcap->tod2 = (time >> 8) & TOD2_MASK;
70 	cpcap->tod1 = time & TOD1_MASK;
71 }
72 
73 static int cpcap_rtc_alarm_irq_enable(struct device *dev, unsigned int enabled)
74 {
75 	struct cpcap_rtc *rtc = dev_get_drvdata(dev);
76 
77 	if (rtc->alarm_enabled == enabled)
78 		return 0;
79 
80 	if (enabled)
81 		enable_irq(rtc->alarm_irq);
82 	else
83 		disable_irq(rtc->alarm_irq);
84 
85 	rtc->alarm_enabled = !!enabled;
86 
87 	return 0;
88 }
89 
90 static int cpcap_rtc_read_time(struct device *dev, struct rtc_time *tm)
91 {
92 	struct cpcap_rtc *rtc;
93 	struct cpcap_time cpcap_tm;
94 	int temp_tod2;
95 	int ret;
96 
97 	rtc = dev_get_drvdata(dev);
98 
99 	ret = regmap_read(rtc->regmap, CPCAP_REG_TOD2, &temp_tod2);
100 	ret |= regmap_read(rtc->regmap, CPCAP_REG_DAY, &cpcap_tm.day);
101 	ret |= regmap_read(rtc->regmap, CPCAP_REG_TOD1, &cpcap_tm.tod1);
102 	ret |= regmap_read(rtc->regmap, CPCAP_REG_TOD2, &cpcap_tm.tod2);
103 
104 	if (temp_tod2 > cpcap_tm.tod2)
105 		ret |= regmap_read(rtc->regmap, CPCAP_REG_DAY, &cpcap_tm.day);
106 
107 	if (ret) {
108 		dev_err(dev, "Failed to read time\n");
109 		return -EIO;
110 	}
111 
112 	cpcap2rtc_time(tm, &cpcap_tm);
113 
114 	return 0;
115 }
116 
117 static int cpcap_rtc_set_time(struct device *dev, struct rtc_time *tm)
118 {
119 	struct cpcap_rtc *rtc;
120 	struct cpcap_time cpcap_tm;
121 	int ret = 0;
122 
123 	rtc = dev_get_drvdata(dev);
124 
125 	rtc2cpcap_time(&cpcap_tm, tm);
126 
127 	if (rtc->alarm_enabled)
128 		disable_irq(rtc->alarm_irq);
129 	if (rtc->update_enabled)
130 		disable_irq(rtc->update_irq);
131 
132 	if (rtc->vendor == CPCAP_VENDOR_ST) {
133 		/* The TOD1 and TOD2 registers MUST be written in this order
134 		 * for the change to properly set.
135 		 */
136 		ret |= regmap_update_bits(rtc->regmap, CPCAP_REG_TOD1,
137 					  TOD1_MASK, cpcap_tm.tod1);
138 		ret |= regmap_update_bits(rtc->regmap, CPCAP_REG_TOD2,
139 					  TOD2_MASK, cpcap_tm.tod2);
140 		ret |= regmap_update_bits(rtc->regmap, CPCAP_REG_DAY,
141 					  DAY_MASK, cpcap_tm.day);
142 	} else {
143 		/* Clearing the upper lower 8 bits of the TOD guarantees that
144 		 * the upper half of TOD (TOD2) will not increment for 0xFF RTC
145 		 * ticks (255 seconds).  During this time we can safely write
146 		 * to DAY, TOD2, then TOD1 (in that order) and expect RTC to be
147 		 * synchronized to the exact time requested upon the final write
148 		 * to TOD1.
149 		 */
150 		ret |= regmap_update_bits(rtc->regmap, CPCAP_REG_TOD1,
151 					  TOD1_MASK, 0);
152 		ret |= regmap_update_bits(rtc->regmap, CPCAP_REG_DAY,
153 					  DAY_MASK, cpcap_tm.day);
154 		ret |= regmap_update_bits(rtc->regmap, CPCAP_REG_TOD2,
155 					  TOD2_MASK, cpcap_tm.tod2);
156 		ret |= regmap_update_bits(rtc->regmap, CPCAP_REG_TOD1,
157 					  TOD1_MASK, cpcap_tm.tod1);
158 	}
159 
160 	if (rtc->update_enabled)
161 		enable_irq(rtc->update_irq);
162 	if (rtc->alarm_enabled)
163 		enable_irq(rtc->alarm_irq);
164 
165 	return ret;
166 }
167 
168 static int cpcap_rtc_read_alarm(struct device *dev, struct rtc_wkalrm *alrm)
169 {
170 	struct cpcap_rtc *rtc;
171 	struct cpcap_time cpcap_tm;
172 	int ret;
173 
174 	rtc = dev_get_drvdata(dev);
175 
176 	alrm->enabled = rtc->alarm_enabled;
177 
178 	ret = regmap_read(rtc->regmap, CPCAP_REG_DAYA, &cpcap_tm.day);
179 	ret |= regmap_read(rtc->regmap, CPCAP_REG_TODA2, &cpcap_tm.tod2);
180 	ret |= regmap_read(rtc->regmap, CPCAP_REG_TODA1, &cpcap_tm.tod1);
181 
182 	if (ret) {
183 		dev_err(dev, "Failed to read time\n");
184 		return -EIO;
185 	}
186 
187 	cpcap2rtc_time(&alrm->time, &cpcap_tm);
188 	return rtc_valid_tm(&alrm->time);
189 }
190 
191 static int cpcap_rtc_set_alarm(struct device *dev, struct rtc_wkalrm *alrm)
192 {
193 	struct cpcap_rtc *rtc;
194 	struct cpcap_time cpcap_tm;
195 	int ret;
196 
197 	rtc = dev_get_drvdata(dev);
198 
199 	rtc2cpcap_time(&cpcap_tm, &alrm->time);
200 
201 	if (rtc->alarm_enabled)
202 		disable_irq(rtc->alarm_irq);
203 
204 	ret = regmap_update_bits(rtc->regmap, CPCAP_REG_DAYA, DAY_MASK,
205 				 cpcap_tm.day);
206 	ret |= regmap_update_bits(rtc->regmap, CPCAP_REG_TODA2, TOD2_MASK,
207 				  cpcap_tm.tod2);
208 	ret |= regmap_update_bits(rtc->regmap, CPCAP_REG_TODA1, TOD1_MASK,
209 				  cpcap_tm.tod1);
210 
211 	if (!ret) {
212 		enable_irq(rtc->alarm_irq);
213 		rtc->alarm_enabled = true;
214 	}
215 
216 	return ret;
217 }
218 
219 static const struct rtc_class_ops cpcap_rtc_ops = {
220 	.read_time		= cpcap_rtc_read_time,
221 	.set_time		= cpcap_rtc_set_time,
222 	.read_alarm		= cpcap_rtc_read_alarm,
223 	.set_alarm		= cpcap_rtc_set_alarm,
224 	.alarm_irq_enable	= cpcap_rtc_alarm_irq_enable,
225 };
226 
227 static irqreturn_t cpcap_rtc_alarm_irq(int irq, void *data)
228 {
229 	struct cpcap_rtc *rtc = data;
230 
231 	rtc_update_irq(rtc->rtc_dev, 1, RTC_AF | RTC_IRQF);
232 	return IRQ_HANDLED;
233 }
234 
235 static irqreturn_t cpcap_rtc_update_irq(int irq, void *data)
236 {
237 	struct cpcap_rtc *rtc = data;
238 
239 	rtc_update_irq(rtc->rtc_dev, 1, RTC_UF | RTC_IRQF);
240 	return IRQ_HANDLED;
241 }
242 
243 static int cpcap_rtc_probe(struct platform_device *pdev)
244 {
245 	struct device *dev = &pdev->dev;
246 	struct cpcap_rtc *rtc;
247 	int err;
248 
249 	rtc = devm_kzalloc(dev, sizeof(*rtc), GFP_KERNEL);
250 	if (!rtc)
251 		return -ENOMEM;
252 
253 	rtc->regmap = dev_get_regmap(dev->parent, NULL);
254 	if (!rtc->regmap)
255 		return -ENODEV;
256 
257 	platform_set_drvdata(pdev, rtc);
258 	rtc->rtc_dev = devm_rtc_allocate_device(dev);
259 	if (IS_ERR(rtc->rtc_dev))
260 		return PTR_ERR(rtc->rtc_dev);
261 
262 	rtc->rtc_dev->ops = &cpcap_rtc_ops;
263 	rtc->rtc_dev->range_max = (timeu64_t) (DAY_MASK + 1) * SECS_PER_DAY - 1;
264 
265 	err = cpcap_get_vendor(dev, rtc->regmap, &rtc->vendor);
266 	if (err)
267 		return err;
268 
269 	rtc->alarm_irq = platform_get_irq(pdev, 0);
270 	err = devm_request_threaded_irq(dev, rtc->alarm_irq, NULL,
271 					cpcap_rtc_alarm_irq,
272 					IRQF_TRIGGER_NONE | IRQF_ONESHOT,
273 					"rtc_alarm", rtc);
274 	if (err) {
275 		dev_err(dev, "Could not request alarm irq: %d\n", err);
276 		return err;
277 	}
278 	disable_irq(rtc->alarm_irq);
279 
280 	/* Stock Android uses the 1 Hz interrupt for "secure clock daemon",
281 	 * which is not supported by the mainline kernel. The mainline kernel
282 	 * does not use the irq at the moment, but we explicitly request and
283 	 * disable it, so that its masked and does not wake up the processor
284 	 * every second.
285 	 */
286 	rtc->update_irq = platform_get_irq(pdev, 1);
287 	err = devm_request_threaded_irq(dev, rtc->update_irq, NULL,
288 					cpcap_rtc_update_irq,
289 					IRQF_TRIGGER_NONE | IRQF_ONESHOT,
290 					"rtc_1hz", rtc);
291 	if (err) {
292 		dev_err(dev, "Could not request update irq: %d\n", err);
293 		return err;
294 	}
295 	disable_irq(rtc->update_irq);
296 
297 	err = device_init_wakeup(dev, true);
298 	if (err) {
299 		dev_err(dev, "wakeup initialization failed (%d)\n", err);
300 		/* ignore error and continue without wakeup support */
301 	}
302 
303 	return devm_rtc_register_device(rtc->rtc_dev);
304 }
305 
306 static const struct of_device_id cpcap_rtc_of_match[] = {
307 	{ .compatible = "motorola,cpcap-rtc", },
308 	{},
309 };
310 MODULE_DEVICE_TABLE(of, cpcap_rtc_of_match);
311 
312 static struct platform_driver cpcap_rtc_driver = {
313 	.probe		= cpcap_rtc_probe,
314 	.driver		= {
315 		.name	= "cpcap-rtc",
316 		.of_match_table = cpcap_rtc_of_match,
317 	},
318 };
319 
320 module_platform_driver(cpcap_rtc_driver);
321 
322 MODULE_DESCRIPTION("CPCAP RTC driver");
323 MODULE_AUTHOR("Sebastian Reichel <sre@kernel.org>");
324 MODULE_LICENSE("GPL");
325