xref: /linux/drivers/hwmon/lan966x-hwmon.c (revision d2c9a99135da931377240942d44f3dea104cedb8)
1 // SPDX-License-Identifier: GPL-2.0-only
2 
3 #include <linux/bitfield.h>
4 #include <linux/clk.h>
5 #include <linux/hwmon.h>
6 #include <linux/kernel.h>
7 #include <linux/module.h>
8 #include <linux/platform_device.h>
9 #include <linux/polynomial.h>
10 #include <linux/regmap.h>
11 
12 /*
13  * The original translation formulae of the temperature (in degrees of Celsius)
14  * are as follows:
15  *
16  *   T = -3.4627e-11*(N^4) + 1.1023e-7*(N^3) + -1.9165e-4*(N^2) +
17  *       3.0604e-1*(N^1) + -5.6197e1
18  *
19  * where [-56.197, 136.402]C and N = [0, 1023].
20  *
21  * They must be accordingly altered to be suitable for the integer arithmetics.
22  * The technique is called 'factor redistribution', which just makes sure the
23  * multiplications and divisions are made so to have a result of the operations
24  * within the integer numbers limit. In addition we need to translate the
25  * formulae to accept millidegrees of Celsius. Here what it looks like after
26  * the alterations:
27  *
28  *   T = -34627e-12*(N^4) + 110230e-9*(N^3) + -191650e-6*(N^2) +
29  *       306040e-3*(N^1) + -56197
30  *
31  * where T = [-56197, 136402]mC and N = [0, 1023].
32  */
33 
34 static const struct polynomial poly_N_to_temp = {
35 	.terms = {
36 		{4,  -34627, 1000, 1},
37 		{3,  110230, 1000, 1},
38 		{2, -191650, 1000, 1},
39 		{1,  306040, 1000, 1},
40 		{0,  -56197,    1, 1}
41 	}
42 };
43 
44 #define PVT_SENSOR_CTRL		0x0 /* unused */
45 #define PVT_SENSOR_CFG		0x4
46 #define   SENSOR_CFG_CLK_CFG		GENMASK(27, 20)
47 #define   SENSOR_CFG_TRIM_VAL		GENMASK(13, 9)
48 #define   SENSOR_CFG_SAMPLE_ENA		BIT(8)
49 #define   SENSOR_CFG_START_CAPTURE	BIT(7)
50 #define   SENSOR_CFG_CONTINIOUS_MODE	BIT(6)
51 #define   SENSOR_CFG_PSAMPLE_ENA	GENMASK(1, 0)
52 #define PVT_SENSOR_STAT		0x8
53 #define   SENSOR_STAT_DATA_VALID	BIT(10)
54 #define   SENSOR_STAT_DATA		GENMASK(9, 0)
55 
56 #define FAN_CFG			0x0
57 #define   FAN_CFG_DUTY_CYCLE		GENMASK(23, 16)
58 #define   INV_POL			BIT(3)
59 #define   GATE_ENA			BIT(2)
60 #define   PWM_OPEN_COL_ENA		BIT(1)
61 #define   FAN_STAT_CFG			BIT(0)
62 #define FAN_PWM_FREQ		0x4
63 #define   FAN_PWM_CYC_10US		GENMASK(25, 15)
64 #define   FAN_PWM_FREQ_FREQ		GENMASK(14, 0)
65 #define FAN_CNT			0xc
66 #define   FAN_CNT_DATA			GENMASK(15, 0)
67 
68 #define LAN966X_PVT_CLK		1200000 /* 1.2 MHz */
69 
70 struct lan966x_hwmon {
71 	struct regmap *regmap_pvt;
72 	struct regmap *regmap_fan;
73 	struct clk *clk;
74 	unsigned long clk_rate;
75 };
76 
lan966x_hwmon_read_temp(struct device * dev,long * val)77 static int lan966x_hwmon_read_temp(struct device *dev, long *val)
78 {
79 	struct lan966x_hwmon *hwmon = dev_get_drvdata(dev);
80 	unsigned int data;
81 	int ret;
82 
83 	ret = regmap_read(hwmon->regmap_pvt, PVT_SENSOR_STAT, &data);
84 	if (ret < 0)
85 		return ret;
86 
87 	if (!(data & SENSOR_STAT_DATA_VALID))
88 		return -ENODATA;
89 
90 	*val = polynomial_calc(&poly_N_to_temp,
91 			       FIELD_GET(SENSOR_STAT_DATA, data));
92 
93 	return 0;
94 }
95 
lan966x_hwmon_read_fan(struct device * dev,long * val)96 static int lan966x_hwmon_read_fan(struct device *dev, long *val)
97 {
98 	struct lan966x_hwmon *hwmon = dev_get_drvdata(dev);
99 	unsigned int data;
100 	int ret;
101 
102 	ret = regmap_read(hwmon->regmap_fan, FAN_CNT, &data);
103 	if (ret < 0)
104 		return ret;
105 
106 	/*
107 	 * Data is given in pulses per second. Assume two pulses
108 	 * per revolution.
109 	 */
110 	*val = FIELD_GET(FAN_CNT_DATA, data) * 60 / 2;
111 
112 	return 0;
113 }
114 
lan966x_hwmon_read_pwm(struct device * dev,long * val)115 static int lan966x_hwmon_read_pwm(struct device *dev, long *val)
116 {
117 	struct lan966x_hwmon *hwmon = dev_get_drvdata(dev);
118 	unsigned int data;
119 	int ret;
120 
121 	ret = regmap_read(hwmon->regmap_fan, FAN_CFG, &data);
122 	if (ret < 0)
123 		return ret;
124 
125 	*val = FIELD_GET(FAN_CFG_DUTY_CYCLE, data);
126 
127 	return 0;
128 }
129 
lan966x_hwmon_read_pwm_freq(struct device * dev,long * val)130 static int lan966x_hwmon_read_pwm_freq(struct device *dev, long *val)
131 {
132 	struct lan966x_hwmon *hwmon = dev_get_drvdata(dev);
133 	unsigned long tmp;
134 	unsigned int data;
135 	int ret;
136 
137 	ret = regmap_read(hwmon->regmap_fan, FAN_PWM_FREQ, &data);
138 	if (ret < 0)
139 		return ret;
140 
141 	/*
142 	 * Datasheet says it is sys_clk / 256 / pwm_freq. But in reality
143 	 * it is sys_clk / 256 / (pwm_freq + 1).
144 	 */
145 	data = FIELD_GET(FAN_PWM_FREQ_FREQ, data) + 1;
146 	tmp = DIV_ROUND_CLOSEST(hwmon->clk_rate, 256);
147 	*val = DIV_ROUND_CLOSEST(tmp, data);
148 
149 	return 0;
150 }
151 
lan966x_hwmon_read(struct device * dev,enum hwmon_sensor_types type,u32 attr,int channel,long * val)152 static int lan966x_hwmon_read(struct device *dev, enum hwmon_sensor_types type,
153 			      u32 attr, int channel, long *val)
154 {
155 	switch (type) {
156 	case hwmon_temp:
157 		return lan966x_hwmon_read_temp(dev, val);
158 	case hwmon_fan:
159 		return lan966x_hwmon_read_fan(dev, val);
160 	case hwmon_pwm:
161 		switch (attr) {
162 		case hwmon_pwm_input:
163 			return lan966x_hwmon_read_pwm(dev, val);
164 		case hwmon_pwm_freq:
165 			return lan966x_hwmon_read_pwm_freq(dev, val);
166 		default:
167 			return -EOPNOTSUPP;
168 		}
169 	default:
170 		return -EOPNOTSUPP;
171 	}
172 }
173 
lan966x_hwmon_write_pwm(struct device * dev,long val)174 static int lan966x_hwmon_write_pwm(struct device *dev, long val)
175 {
176 	struct lan966x_hwmon *hwmon = dev_get_drvdata(dev);
177 
178 	if (val < 0 || val > 255)
179 		return -EINVAL;
180 
181 	return regmap_update_bits(hwmon->regmap_fan, FAN_CFG,
182 				  FAN_CFG_DUTY_CYCLE,
183 				  FIELD_PREP(FAN_CFG_DUTY_CYCLE, val));
184 }
185 
lan966x_hwmon_write_pwm_freq(struct device * dev,long val)186 static int lan966x_hwmon_write_pwm_freq(struct device *dev, long val)
187 {
188 	struct lan966x_hwmon *hwmon = dev_get_drvdata(dev);
189 
190 	if (val <= 0)
191 		return -EINVAL;
192 
193 	val = DIV_ROUND_CLOSEST(hwmon->clk_rate, val);
194 	val = DIV_ROUND_CLOSEST(val, 256) - 1;
195 	val = clamp_val(val, 0, FAN_PWM_FREQ_FREQ);
196 
197 	return regmap_update_bits(hwmon->regmap_fan, FAN_PWM_FREQ,
198 				  FAN_PWM_FREQ_FREQ,
199 				  FIELD_PREP(FAN_PWM_FREQ_FREQ, val));
200 }
201 
lan966x_hwmon_write(struct device * dev,enum hwmon_sensor_types type,u32 attr,int channel,long val)202 static int lan966x_hwmon_write(struct device *dev, enum hwmon_sensor_types type,
203 			       u32 attr, int channel, long val)
204 {
205 	switch (type) {
206 	case hwmon_pwm:
207 		switch (attr) {
208 		case hwmon_pwm_input:
209 			return lan966x_hwmon_write_pwm(dev, val);
210 		case hwmon_pwm_freq:
211 			return lan966x_hwmon_write_pwm_freq(dev, val);
212 		default:
213 			return -EOPNOTSUPP;
214 		}
215 	default:
216 		return -EOPNOTSUPP;
217 	}
218 }
219 
lan966x_hwmon_is_visible(const void * data,enum hwmon_sensor_types type,u32 attr,int channel)220 static umode_t lan966x_hwmon_is_visible(const void *data,
221 					enum hwmon_sensor_types type,
222 					u32 attr, int channel)
223 {
224 	umode_t mode = 0;
225 
226 	switch (type) {
227 	case hwmon_temp:
228 		switch (attr) {
229 		case hwmon_temp_input:
230 			mode = 0444;
231 			break;
232 		default:
233 			break;
234 		}
235 		break;
236 	case hwmon_fan:
237 		switch (attr) {
238 		case hwmon_fan_input:
239 			mode = 0444;
240 			break;
241 		default:
242 			break;
243 		}
244 		break;
245 	case hwmon_pwm:
246 		switch (attr) {
247 		case hwmon_pwm_input:
248 		case hwmon_pwm_freq:
249 			mode = 0644;
250 			break;
251 		default:
252 			break;
253 		}
254 		break;
255 	default:
256 		break;
257 	}
258 
259 	return mode;
260 }
261 
262 static const struct hwmon_channel_info * const lan966x_hwmon_info[] = {
263 	HWMON_CHANNEL_INFO(chip, HWMON_C_REGISTER_TZ),
264 	HWMON_CHANNEL_INFO(temp, HWMON_T_INPUT),
265 	HWMON_CHANNEL_INFO(fan, HWMON_F_INPUT),
266 	HWMON_CHANNEL_INFO(pwm, HWMON_PWM_INPUT | HWMON_PWM_FREQ),
267 	NULL
268 };
269 
270 static const struct hwmon_ops lan966x_hwmon_ops = {
271 	.is_visible = lan966x_hwmon_is_visible,
272 	.read = lan966x_hwmon_read,
273 	.write = lan966x_hwmon_write,
274 };
275 
276 static const struct hwmon_chip_info lan966x_hwmon_chip_info = {
277 	.ops = &lan966x_hwmon_ops,
278 	.info = lan966x_hwmon_info,
279 };
280 
lan966x_hwmon_disable(void * data)281 static void lan966x_hwmon_disable(void *data)
282 {
283 	struct lan966x_hwmon *hwmon = data;
284 
285 	regmap_update_bits(hwmon->regmap_pvt, PVT_SENSOR_CFG,
286 			   SENSOR_CFG_SAMPLE_ENA | SENSOR_CFG_CONTINIOUS_MODE,
287 			   0);
288 }
289 
lan966x_hwmon_enable(struct device * dev,struct lan966x_hwmon * hwmon)290 static int lan966x_hwmon_enable(struct device *dev,
291 				struct lan966x_hwmon *hwmon)
292 {
293 	unsigned int mask = SENSOR_CFG_CLK_CFG |
294 			    SENSOR_CFG_SAMPLE_ENA |
295 			    SENSOR_CFG_START_CAPTURE |
296 			    SENSOR_CFG_CONTINIOUS_MODE |
297 			    SENSOR_CFG_PSAMPLE_ENA;
298 	unsigned int val;
299 	unsigned int div;
300 	int ret;
301 
302 	/* enable continuous mode */
303 	val = SENSOR_CFG_SAMPLE_ENA | SENSOR_CFG_CONTINIOUS_MODE;
304 
305 	/* set PVT clock to be between 1.15 and 1.25 MHz */
306 	div = DIV_ROUND_CLOSEST(hwmon->clk_rate, LAN966X_PVT_CLK);
307 	val |= FIELD_PREP(SENSOR_CFG_CLK_CFG, div);
308 
309 	ret = regmap_update_bits(hwmon->regmap_pvt, PVT_SENSOR_CFG,
310 				 mask, val);
311 	if (ret)
312 		return ret;
313 
314 	return devm_add_action_or_reset(dev, lan966x_hwmon_disable, hwmon);
315 }
316 
lan966x_init_regmap(struct platform_device * pdev,const char * name)317 static struct regmap *lan966x_init_regmap(struct platform_device *pdev,
318 					  const char *name)
319 {
320 	struct regmap_config regmap_config = {
321 		.reg_bits = 32,
322 		.reg_stride = 4,
323 		.val_bits = 32,
324 	};
325 	void __iomem *base;
326 
327 	base = devm_platform_ioremap_resource_byname(pdev, name);
328 	if (IS_ERR(base))
329 		return ERR_CAST(base);
330 
331 	regmap_config.name = name;
332 
333 	return devm_regmap_init_mmio(&pdev->dev, base, &regmap_config);
334 }
335 
lan966x_hwmon_probe(struct platform_device * pdev)336 static int lan966x_hwmon_probe(struct platform_device *pdev)
337 {
338 	struct device *dev = &pdev->dev;
339 	struct lan966x_hwmon *hwmon;
340 	struct device *hwmon_dev;
341 	int ret;
342 
343 	hwmon = devm_kzalloc(dev, sizeof(*hwmon), GFP_KERNEL);
344 	if (!hwmon)
345 		return -ENOMEM;
346 
347 	hwmon->clk = devm_clk_get_enabled(dev, NULL);
348 	if (IS_ERR(hwmon->clk))
349 		return dev_err_probe(dev, PTR_ERR(hwmon->clk),
350 				     "failed to get clock\n");
351 
352 	hwmon->clk_rate = clk_get_rate(hwmon->clk);
353 
354 	hwmon->regmap_pvt = lan966x_init_regmap(pdev, "pvt");
355 	if (IS_ERR(hwmon->regmap_pvt))
356 		return dev_err_probe(dev, PTR_ERR(hwmon->regmap_pvt),
357 				     "failed to get regmap for PVT registers\n");
358 
359 	hwmon->regmap_fan = lan966x_init_regmap(pdev, "fan");
360 	if (IS_ERR(hwmon->regmap_fan))
361 		return dev_err_probe(dev, PTR_ERR(hwmon->regmap_fan),
362 				     "failed to get regmap for fan registers\n");
363 
364 	ret = lan966x_hwmon_enable(dev, hwmon);
365 	if (ret)
366 		return dev_err_probe(dev, ret, "failed to enable sensor\n");
367 
368 	hwmon_dev = devm_hwmon_device_register_with_info(&pdev->dev,
369 				"lan966x_hwmon", hwmon,
370 				&lan966x_hwmon_chip_info, NULL);
371 	if (IS_ERR(hwmon_dev))
372 		return dev_err_probe(dev, PTR_ERR(hwmon_dev),
373 				     "failed to register hwmon device\n");
374 
375 	return 0;
376 }
377 
378 static const struct of_device_id lan966x_hwmon_of_match[] = {
379 	{ .compatible = "microchip,lan9668-hwmon" },
380 	{}
381 };
382 MODULE_DEVICE_TABLE(of, lan966x_hwmon_of_match);
383 
384 static struct platform_driver lan966x_hwmon_driver = {
385 	.probe = lan966x_hwmon_probe,
386 	.driver = {
387 		.name = "lan966x-hwmon",
388 		.of_match_table = lan966x_hwmon_of_match,
389 	},
390 };
391 module_platform_driver(lan966x_hwmon_driver);
392 
393 MODULE_DESCRIPTION("LAN966x Hardware Monitoring Driver");
394 MODULE_AUTHOR("Michael Walle <michael@walle.cc>");
395 MODULE_LICENSE("GPL");
396