1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * mlx90632.c - Melexis MLX90632 contactless IR temperature sensor
4  *
5  * Copyright (c) 2017 Melexis <cmo@melexis.com>
6  *
7  * Driver for the Melexis MLX90632 I2C 16-bit IR thermopile sensor
8  */
9 #include <linux/delay.h>
10 #include <linux/err.h>
11 #include <linux/gpio/consumer.h>
12 #include <linux/i2c.h>
13 #include <linux/kernel.h>
14 #include <linux/module.h>
15 #include <linux/math64.h>
16 #include <linux/of.h>
17 #include <linux/pm_runtime.h>
18 #include <linux/regmap.h>
19 
20 #include <linux/iio/iio.h>
21 #include <linux/iio/sysfs.h>
22 
23 /* Memory sections addresses */
24 #define MLX90632_ADDR_RAM	0x4000 /* Start address of ram */
25 #define MLX90632_ADDR_EEPROM	0x2480 /* Start address of user eeprom */
26 
27 /* EEPROM addresses - used at startup */
28 #define MLX90632_EE_CTRL	0x24d4 /* Control register initial value */
29 #define MLX90632_EE_I2C_ADDR	0x24d5 /* I2C address register initial value */
30 #define MLX90632_EE_VERSION	0x240b /* EEPROM version reg address */
31 #define MLX90632_EE_P_R		0x240c /* P_R calibration register 32bit */
32 #define MLX90632_EE_P_G		0x240e /* P_G calibration register 32bit */
33 #define MLX90632_EE_P_T		0x2410 /* P_T calibration register 32bit */
34 #define MLX90632_EE_P_O		0x2412 /* P_O calibration register 32bit */
35 #define MLX90632_EE_Aa		0x2414 /* Aa calibration register 32bit */
36 #define MLX90632_EE_Ab		0x2416 /* Ab calibration register 32bit */
37 #define MLX90632_EE_Ba		0x2418 /* Ba calibration register 32bit */
38 #define MLX90632_EE_Bb		0x241a /* Bb calibration register 32bit */
39 #define MLX90632_EE_Ca		0x241c /* Ca calibration register 32bit */
40 #define MLX90632_EE_Cb		0x241e /* Cb calibration register 32bit */
41 #define MLX90632_EE_Da		0x2420 /* Da calibration register 32bit */
42 #define MLX90632_EE_Db		0x2422 /* Db calibration register 32bit */
43 #define MLX90632_EE_Ea		0x2424 /* Ea calibration register 32bit */
44 #define MLX90632_EE_Eb		0x2426 /* Eb calibration register 32bit */
45 #define MLX90632_EE_Fa		0x2428 /* Fa calibration register 32bit */
46 #define MLX90632_EE_Fb		0x242a /* Fb calibration register 32bit */
47 #define MLX90632_EE_Ga		0x242c /* Ga calibration register 32bit */
48 
49 #define MLX90632_EE_Gb		0x242e /* Gb calibration register 16bit */
50 #define MLX90632_EE_Ka		0x242f /* Ka calibration register 16bit */
51 
52 #define MLX90632_EE_Ha		0x2481 /* Ha customer calib value reg 16bit */
53 #define MLX90632_EE_Hb		0x2482 /* Hb customer calib value reg 16bit */
54 
55 /* Register addresses - volatile */
56 #define MLX90632_REG_I2C_ADDR	0x3000 /* Chip I2C address register */
57 
58 /* Control register address - volatile */
59 #define MLX90632_REG_CONTROL	0x3001 /* Control Register address */
60 #define   MLX90632_CFG_PWR_MASK		GENMASK(2, 1) /* PowerMode Mask */
61 /* PowerModes statuses */
62 #define MLX90632_PWR_STATUS(ctrl_val) (ctrl_val << 1)
63 #define MLX90632_PWR_STATUS_HALT MLX90632_PWR_STATUS(0) /* hold */
64 #define MLX90632_PWR_STATUS_SLEEP_STEP MLX90632_PWR_STATUS(1) /* sleep step*/
65 #define MLX90632_PWR_STATUS_STEP MLX90632_PWR_STATUS(2) /* step */
66 #define MLX90632_PWR_STATUS_CONTINUOUS MLX90632_PWR_STATUS(3) /* continuous*/
67 
68 /* Device status register - volatile */
69 #define MLX90632_REG_STATUS	0x3fff /* Device status register */
70 #define   MLX90632_STAT_BUSY		BIT(10) /* Device busy indicator */
71 #define   MLX90632_STAT_EE_BUSY		BIT(9) /* EEPROM busy indicator */
72 #define   MLX90632_STAT_BRST		BIT(8) /* Brown out reset indicator */
73 #define   MLX90632_STAT_CYCLE_POS	GENMASK(6, 2) /* Data position */
74 #define   MLX90632_STAT_DATA_RDY	BIT(0) /* Data ready indicator */
75 
76 /* RAM_MEAS address-es for each channel */
77 #define MLX90632_RAM_1(meas_num)	(MLX90632_ADDR_RAM + 3 * meas_num)
78 #define MLX90632_RAM_2(meas_num)	(MLX90632_ADDR_RAM + 3 * meas_num + 1)
79 #define MLX90632_RAM_3(meas_num)	(MLX90632_ADDR_RAM + 3 * meas_num + 2)
80 
81 /* Magic constants */
82 #define MLX90632_ID_MEDICAL	0x0105 /* EEPROM DSPv5 Medical device id */
83 #define MLX90632_ID_CONSUMER	0x0205 /* EEPROM DSPv5 Consumer device id */
84 #define MLX90632_DSP_VERSION	5 /* DSP version */
85 #define MLX90632_DSP_MASK	GENMASK(7, 0) /* DSP version in EE_VERSION */
86 #define MLX90632_RESET_CMD	0x0006 /* Reset sensor (address or global) */
87 #define MLX90632_REF_12		12LL /**< ResCtrlRef value of Ch 1 or Ch 2 */
88 #define MLX90632_REF_3		12LL /**< ResCtrlRef value of Channel 3 */
89 #define MLX90632_MAX_MEAS_NUM	31 /**< Maximum measurements in list */
90 #define MLX90632_SLEEP_DELAY_MS 3000 /**< Autosleep delay */
91 
92 struct mlx90632_data {
93 	struct i2c_client *client;
94 	struct mutex lock; /* Multiple reads for single measurement */
95 	struct regmap *regmap;
96 	u16 emissivity;
97 };
98 
99 static const struct regmap_range mlx90632_volatile_reg_range[] = {
100 	regmap_reg_range(MLX90632_REG_I2C_ADDR, MLX90632_REG_CONTROL),
101 	regmap_reg_range(MLX90632_REG_STATUS, MLX90632_REG_STATUS),
102 	regmap_reg_range(MLX90632_RAM_1(0),
103 			 MLX90632_RAM_3(MLX90632_MAX_MEAS_NUM)),
104 };
105 
106 static const struct regmap_access_table mlx90632_volatile_regs_tbl = {
107 	.yes_ranges = mlx90632_volatile_reg_range,
108 	.n_yes_ranges = ARRAY_SIZE(mlx90632_volatile_reg_range),
109 };
110 
111 static const struct regmap_range mlx90632_read_reg_range[] = {
112 	regmap_reg_range(MLX90632_EE_VERSION, MLX90632_EE_Ka),
113 	regmap_reg_range(MLX90632_EE_CTRL, MLX90632_EE_I2C_ADDR),
114 	regmap_reg_range(MLX90632_EE_Ha, MLX90632_EE_Hb),
115 	regmap_reg_range(MLX90632_REG_I2C_ADDR, MLX90632_REG_CONTROL),
116 	regmap_reg_range(MLX90632_REG_STATUS, MLX90632_REG_STATUS),
117 	regmap_reg_range(MLX90632_RAM_1(0),
118 			 MLX90632_RAM_3(MLX90632_MAX_MEAS_NUM)),
119 };
120 
121 static const struct regmap_access_table mlx90632_readable_regs_tbl = {
122 	.yes_ranges = mlx90632_read_reg_range,
123 	.n_yes_ranges = ARRAY_SIZE(mlx90632_read_reg_range),
124 };
125 
126 static const struct regmap_range mlx90632_no_write_reg_range[] = {
127 	regmap_reg_range(MLX90632_EE_VERSION, MLX90632_EE_Ka),
128 	regmap_reg_range(MLX90632_RAM_1(0),
129 			 MLX90632_RAM_3(MLX90632_MAX_MEAS_NUM)),
130 };
131 
132 static const struct regmap_access_table mlx90632_writeable_regs_tbl = {
133 	.no_ranges = mlx90632_no_write_reg_range,
134 	.n_no_ranges = ARRAY_SIZE(mlx90632_no_write_reg_range),
135 };
136 
137 static const struct regmap_config mlx90632_regmap = {
138 	.reg_bits = 16,
139 	.val_bits = 16,
140 
141 	.volatile_table = &mlx90632_volatile_regs_tbl,
142 	.rd_table = &mlx90632_readable_regs_tbl,
143 	.wr_table = &mlx90632_writeable_regs_tbl,
144 
145 	.use_single_rw = true,
146 	.reg_format_endian = REGMAP_ENDIAN_BIG,
147 	.val_format_endian = REGMAP_ENDIAN_BIG,
148 	.cache_type = REGCACHE_RBTREE,
149 };
150 
mlx90632_pwr_set_sleep_step(struct regmap * regmap)151 static s32 mlx90632_pwr_set_sleep_step(struct regmap *regmap)
152 {
153 	return regmap_update_bits(regmap, MLX90632_REG_CONTROL,
154 				  MLX90632_CFG_PWR_MASK,
155 				  MLX90632_PWR_STATUS_SLEEP_STEP);
156 }
157 
mlx90632_pwr_continuous(struct regmap * regmap)158 static s32 mlx90632_pwr_continuous(struct regmap *regmap)
159 {
160 	return regmap_update_bits(regmap, MLX90632_REG_CONTROL,
161 				  MLX90632_CFG_PWR_MASK,
162 				  MLX90632_PWR_STATUS_CONTINUOUS);
163 }
164 
165 /**
166  * mlx90632_perform_measurement - Trigger and retrieve current measurement cycle
167  * @*data: pointer to mlx90632_data object containing regmap information
168  *
169  * Perform a measurement and return latest measurement cycle position reported
170  * by sensor. This is a blocking function for 500ms, as that is default sensor
171  * refresh rate.
172  */
mlx90632_perform_measurement(struct mlx90632_data * data)173 static int mlx90632_perform_measurement(struct mlx90632_data *data)
174 {
175 	int ret, tries = 100;
176 	unsigned int reg_status;
177 
178 	ret = regmap_update_bits(data->regmap, MLX90632_REG_STATUS,
179 				 MLX90632_STAT_DATA_RDY, 0);
180 	if (ret < 0)
181 		return ret;
182 
183 	while (tries-- > 0) {
184 		ret = regmap_read(data->regmap, MLX90632_REG_STATUS,
185 				  &reg_status);
186 		if (ret < 0)
187 			return ret;
188 		if (reg_status & MLX90632_STAT_DATA_RDY)
189 			break;
190 		usleep_range(10000, 11000);
191 	}
192 
193 	if (tries < 0) {
194 		dev_err(&data->client->dev, "data not ready");
195 		return -ETIMEDOUT;
196 	}
197 
198 	return (reg_status & MLX90632_STAT_CYCLE_POS) >> 2;
199 }
200 
mlx90632_channel_new_select(int perform_ret,uint8_t * channel_new,uint8_t * channel_old)201 static int mlx90632_channel_new_select(int perform_ret, uint8_t *channel_new,
202 				       uint8_t *channel_old)
203 {
204 	switch (perform_ret) {
205 	case 1:
206 		*channel_new = 1;
207 		*channel_old = 2;
208 		break;
209 	case 2:
210 		*channel_new = 2;
211 		*channel_old = 1;
212 		break;
213 	default:
214 		return -EINVAL;
215 	}
216 
217 	return 0;
218 }
219 
mlx90632_read_ambient_raw(struct regmap * regmap,s16 * ambient_new_raw,s16 * ambient_old_raw)220 static int mlx90632_read_ambient_raw(struct regmap *regmap,
221 				     s16 *ambient_new_raw, s16 *ambient_old_raw)
222 {
223 	int ret;
224 	unsigned int read_tmp;
225 
226 	ret = regmap_read(regmap, MLX90632_RAM_3(1), &read_tmp);
227 	if (ret < 0)
228 		return ret;
229 	*ambient_new_raw = (s16)read_tmp;
230 
231 	ret = regmap_read(regmap, MLX90632_RAM_3(2), &read_tmp);
232 	if (ret < 0)
233 		return ret;
234 	*ambient_old_raw = (s16)read_tmp;
235 
236 	return ret;
237 }
238 
mlx90632_read_object_raw(struct regmap * regmap,int perform_measurement_ret,s16 * object_new_raw,s16 * object_old_raw)239 static int mlx90632_read_object_raw(struct regmap *regmap,
240 				    int perform_measurement_ret,
241 				    s16 *object_new_raw, s16 *object_old_raw)
242 {
243 	int ret;
244 	unsigned int read_tmp;
245 	s16 read;
246 	u8 channel = 0;
247 	u8 channel_old = 0;
248 
249 	ret = mlx90632_channel_new_select(perform_measurement_ret, &channel,
250 					  &channel_old);
251 	if (ret != 0)
252 		return ret;
253 
254 	ret = regmap_read(regmap, MLX90632_RAM_2(channel), &read_tmp);
255 	if (ret < 0)
256 		return ret;
257 
258 	read = (s16)read_tmp;
259 
260 	ret = regmap_read(regmap, MLX90632_RAM_1(channel), &read_tmp);
261 	if (ret < 0)
262 		return ret;
263 	*object_new_raw = (read + (s16)read_tmp) / 2;
264 
265 	ret = regmap_read(regmap, MLX90632_RAM_2(channel_old), &read_tmp);
266 	if (ret < 0)
267 		return ret;
268 	read = (s16)read_tmp;
269 
270 	ret = regmap_read(regmap, MLX90632_RAM_1(channel_old), &read_tmp);
271 	if (ret < 0)
272 		return ret;
273 	*object_old_raw = (read + (s16)read_tmp) / 2;
274 
275 	return ret;
276 }
277 
mlx90632_read_all_channel(struct mlx90632_data * data,s16 * ambient_new_raw,s16 * ambient_old_raw,s16 * object_new_raw,s16 * object_old_raw)278 static int mlx90632_read_all_channel(struct mlx90632_data *data,
279 				     s16 *ambient_new_raw, s16 *ambient_old_raw,
280 				     s16 *object_new_raw, s16 *object_old_raw)
281 {
282 	s32 ret, measurement;
283 
284 	mutex_lock(&data->lock);
285 	measurement = mlx90632_perform_measurement(data);
286 	if (measurement < 0) {
287 		ret = measurement;
288 		goto read_unlock;
289 	}
290 	ret = mlx90632_read_ambient_raw(data->regmap, ambient_new_raw,
291 					ambient_old_raw);
292 	if (ret < 0)
293 		goto read_unlock;
294 
295 	ret = mlx90632_read_object_raw(data->regmap, measurement,
296 				       object_new_raw, object_old_raw);
297 read_unlock:
298 	mutex_unlock(&data->lock);
299 	return ret;
300 }
301 
mlx90632_read_ee_register(struct regmap * regmap,u16 reg_lsb,s32 * reg_value)302 static int mlx90632_read_ee_register(struct regmap *regmap, u16 reg_lsb,
303 				     s32 *reg_value)
304 {
305 	s32 ret;
306 	unsigned int read;
307 	u32 value;
308 
309 	ret = regmap_read(regmap, reg_lsb, &read);
310 	if (ret < 0)
311 		return ret;
312 
313 	value = read;
314 
315 	ret = regmap_read(regmap, reg_lsb + 1, &read);
316 	if (ret < 0)
317 		return ret;
318 
319 	*reg_value = (read << 16) | (value & 0xffff);
320 
321 	return 0;
322 }
323 
mlx90632_preprocess_temp_amb(s16 ambient_new_raw,s16 ambient_old_raw,s16 Gb)324 static s64 mlx90632_preprocess_temp_amb(s16 ambient_new_raw,
325 					s16 ambient_old_raw, s16 Gb)
326 {
327 	s64 VR_Ta, kGb, tmp;
328 
329 	kGb = ((s64)Gb * 1000LL) >> 10ULL;
330 	VR_Ta = (s64)ambient_old_raw * 1000000LL +
331 		kGb * div64_s64(((s64)ambient_new_raw * 1000LL),
332 			(MLX90632_REF_3));
333 	tmp = div64_s64(
334 			 div64_s64(((s64)ambient_new_raw * 1000000000000LL),
335 				   (MLX90632_REF_3)), VR_Ta);
336 	return div64_s64(tmp << 19ULL, 1000LL);
337 }
338 
mlx90632_preprocess_temp_obj(s16 object_new_raw,s16 object_old_raw,s16 ambient_new_raw,s16 ambient_old_raw,s16 Ka)339 static s64 mlx90632_preprocess_temp_obj(s16 object_new_raw, s16 object_old_raw,
340 					s16 ambient_new_raw,
341 					s16 ambient_old_raw, s16 Ka)
342 {
343 	s64 VR_IR, kKa, tmp;
344 
345 	kKa = ((s64)Ka * 1000LL) >> 10ULL;
346 	VR_IR = (s64)ambient_old_raw * 1000000LL +
347 		kKa * div64_s64(((s64)ambient_new_raw * 1000LL),
348 			(MLX90632_REF_3));
349 	tmp = div64_s64(
350 			div64_s64(((s64)((object_new_raw + object_old_raw) / 2)
351 				   * 1000000000000LL), (MLX90632_REF_12)),
352 			VR_IR);
353 	return div64_s64((tmp << 19ULL), 1000LL);
354 }
355 
mlx90632_calc_temp_ambient(s16 ambient_new_raw,s16 ambient_old_raw,s32 P_T,s32 P_R,s32 P_G,s32 P_O,s16 Gb)356 static s32 mlx90632_calc_temp_ambient(s16 ambient_new_raw, s16 ambient_old_raw,
357 				      s32 P_T, s32 P_R, s32 P_G, s32 P_O,
358 				      s16 Gb)
359 {
360 	s64 Asub, Bsub, Ablock, Bblock, Cblock, AMB, sum;
361 
362 	AMB = mlx90632_preprocess_temp_amb(ambient_new_raw, ambient_old_raw,
363 					   Gb);
364 	Asub = ((s64)P_T * 10000000000LL) >> 44ULL;
365 	Bsub = AMB - (((s64)P_R * 1000LL) >> 8ULL);
366 	Ablock = Asub * (Bsub * Bsub);
367 	Bblock = (div64_s64(Bsub * 10000000LL, P_G)) << 20ULL;
368 	Cblock = ((s64)P_O * 10000000000LL) >> 8ULL;
369 
370 	sum = div64_s64(Ablock, 1000000LL) + Bblock + Cblock;
371 
372 	return div64_s64(sum, 10000000LL);
373 }
374 
mlx90632_calc_temp_object_iteration(s32 prev_object_temp,s64 object,s64 TAdut,s32 Fa,s32 Fb,s32 Ga,s16 Ha,s16 Hb,u16 emissivity)375 static s32 mlx90632_calc_temp_object_iteration(s32 prev_object_temp, s64 object,
376 					       s64 TAdut, s32 Fa, s32 Fb,
377 					       s32 Ga, s16 Ha, s16 Hb,
378 					       u16 emissivity)
379 {
380 	s64 calcedKsTO, calcedKsTA, ir_Alpha, TAdut4, Alpha_corr;
381 	s64 Ha_customer, Hb_customer;
382 
383 	Ha_customer = ((s64)Ha * 1000000LL) >> 14ULL;
384 	Hb_customer = ((s64)Hb * 100) >> 10ULL;
385 
386 	calcedKsTO = ((s64)((s64)Ga * (prev_object_temp - 25 * 1000LL)
387 			     * 1000LL)) >> 36LL;
388 	calcedKsTA = ((s64)(Fb * (TAdut - 25 * 1000000LL))) >> 36LL;
389 	Alpha_corr = div64_s64((((s64)(Fa * 10000000000LL) >> 46LL)
390 				* Ha_customer), 1000LL);
391 	Alpha_corr *= ((s64)(1 * 1000000LL + calcedKsTO + calcedKsTA));
392 	Alpha_corr = emissivity * div64_s64(Alpha_corr, 100000LL);
393 	Alpha_corr = div64_s64(Alpha_corr, 1000LL);
394 	ir_Alpha = div64_s64((s64)object * 10000000LL, Alpha_corr);
395 	TAdut4 = (div64_s64(TAdut, 10000LL) + 27315) *
396 		(div64_s64(TAdut, 10000LL) + 27315) *
397 		(div64_s64(TAdut, 10000LL)  + 27315) *
398 		(div64_s64(TAdut, 10000LL) + 27315);
399 
400 	return (int_sqrt64(int_sqrt64(ir_Alpha * 1000000000000LL + TAdut4))
401 		- 27315 - Hb_customer) * 10;
402 }
403 
mlx90632_calc_temp_object(s64 object,s64 ambient,s32 Ea,s32 Eb,s32 Fa,s32 Fb,s32 Ga,s16 Ha,s16 Hb,u16 tmp_emi)404 static s32 mlx90632_calc_temp_object(s64 object, s64 ambient, s32 Ea, s32 Eb,
405 				     s32 Fa, s32 Fb, s32 Ga, s16 Ha, s16 Hb,
406 				     u16 tmp_emi)
407 {
408 	s64 kTA, kTA0, TAdut;
409 	s64 temp = 25000;
410 	s8 i;
411 
412 	kTA = (Ea * 1000LL) >> 16LL;
413 	kTA0 = (Eb * 1000LL) >> 8LL;
414 	TAdut = div64_s64(((ambient - kTA0) * 1000000LL), kTA) + 25 * 1000000LL;
415 
416 	/* Iterations of calculation as described in datasheet */
417 	for (i = 0; i < 5; ++i) {
418 		temp = mlx90632_calc_temp_object_iteration(temp, object, TAdut,
419 							   Fa, Fb, Ga, Ha, Hb,
420 							   tmp_emi);
421 	}
422 	return temp;
423 }
424 
mlx90632_calc_object_dsp105(struct mlx90632_data * data,int * val)425 static int mlx90632_calc_object_dsp105(struct mlx90632_data *data, int *val)
426 {
427 	s32 ret;
428 	s32 Ea, Eb, Fa, Fb, Ga;
429 	unsigned int read_tmp;
430 	s16 Ha, Hb, Gb, Ka;
431 	s16 ambient_new_raw, ambient_old_raw, object_new_raw, object_old_raw;
432 	s64 object, ambient;
433 
434 	ret = mlx90632_read_ee_register(data->regmap, MLX90632_EE_Ea, &Ea);
435 	if (ret < 0)
436 		return ret;
437 	ret = mlx90632_read_ee_register(data->regmap, MLX90632_EE_Eb, &Eb);
438 	if (ret < 0)
439 		return ret;
440 	ret = mlx90632_read_ee_register(data->regmap, MLX90632_EE_Fa, &Fa);
441 	if (ret < 0)
442 		return ret;
443 	ret = mlx90632_read_ee_register(data->regmap, MLX90632_EE_Fb, &Fb);
444 	if (ret < 0)
445 		return ret;
446 	ret = mlx90632_read_ee_register(data->regmap, MLX90632_EE_Ga, &Ga);
447 	if (ret < 0)
448 		return ret;
449 	ret = regmap_read(data->regmap, MLX90632_EE_Ha, &read_tmp);
450 	if (ret < 0)
451 		return ret;
452 	Ha = (s16)read_tmp;
453 	ret = regmap_read(data->regmap, MLX90632_EE_Hb, &read_tmp);
454 	if (ret < 0)
455 		return ret;
456 	Hb = (s16)read_tmp;
457 	ret = regmap_read(data->regmap, MLX90632_EE_Gb, &read_tmp);
458 	if (ret < 0)
459 		return ret;
460 	Gb = (s16)read_tmp;
461 	ret = regmap_read(data->regmap, MLX90632_EE_Ka, &read_tmp);
462 	if (ret < 0)
463 		return ret;
464 	Ka = (s16)read_tmp;
465 
466 	ret = mlx90632_read_all_channel(data,
467 					&ambient_new_raw, &ambient_old_raw,
468 					&object_new_raw, &object_old_raw);
469 	if (ret < 0)
470 		return ret;
471 
472 	ambient = mlx90632_preprocess_temp_amb(ambient_new_raw,
473 					       ambient_old_raw, Gb);
474 	object = mlx90632_preprocess_temp_obj(object_new_raw,
475 					      object_old_raw,
476 					      ambient_new_raw,
477 					      ambient_old_raw, Ka);
478 
479 	*val = mlx90632_calc_temp_object(object, ambient, Ea, Eb, Fa, Fb, Ga,
480 					 Ha, Hb, data->emissivity);
481 	return 0;
482 }
483 
mlx90632_calc_ambient_dsp105(struct mlx90632_data * data,int * val)484 static int mlx90632_calc_ambient_dsp105(struct mlx90632_data *data, int *val)
485 {
486 	s32 ret;
487 	unsigned int read_tmp;
488 	s32 PT, PR, PG, PO;
489 	s16 Gb;
490 	s16 ambient_new_raw, ambient_old_raw;
491 
492 	ret = mlx90632_read_ee_register(data->regmap, MLX90632_EE_P_R, &PR);
493 	if (ret < 0)
494 		return ret;
495 	ret = mlx90632_read_ee_register(data->regmap, MLX90632_EE_P_G, &PG);
496 	if (ret < 0)
497 		return ret;
498 	ret = mlx90632_read_ee_register(data->regmap, MLX90632_EE_P_T, &PT);
499 	if (ret < 0)
500 		return ret;
501 	ret = mlx90632_read_ee_register(data->regmap, MLX90632_EE_P_O, &PO);
502 	if (ret < 0)
503 		return ret;
504 	ret = regmap_read(data->regmap, MLX90632_EE_Gb, &read_tmp);
505 	if (ret < 0)
506 		return ret;
507 	Gb = (s16)read_tmp;
508 
509 	ret = mlx90632_read_ambient_raw(data->regmap, &ambient_new_raw,
510 					&ambient_old_raw);
511 	if (ret < 0)
512 		return ret;
513 	*val = mlx90632_calc_temp_ambient(ambient_new_raw, ambient_old_raw,
514 					  PT, PR, PG, PO, Gb);
515 	return ret;
516 }
517 
mlx90632_read_raw(struct iio_dev * indio_dev,struct iio_chan_spec const * channel,int * val,int * val2,long mask)518 static int mlx90632_read_raw(struct iio_dev *indio_dev,
519 			     struct iio_chan_spec const *channel, int *val,
520 			     int *val2, long mask)
521 {
522 	struct mlx90632_data *data = iio_priv(indio_dev);
523 	int ret;
524 
525 	switch (mask) {
526 	case IIO_CHAN_INFO_PROCESSED:
527 		switch (channel->channel2) {
528 		case IIO_MOD_TEMP_AMBIENT:
529 			ret = mlx90632_calc_ambient_dsp105(data, val);
530 			if (ret < 0)
531 				return ret;
532 			return IIO_VAL_INT;
533 		case IIO_MOD_TEMP_OBJECT:
534 			ret = mlx90632_calc_object_dsp105(data, val);
535 			if (ret < 0)
536 				return ret;
537 			return IIO_VAL_INT;
538 		default:
539 			return -EINVAL;
540 		}
541 	case IIO_CHAN_INFO_CALIBEMISSIVITY:
542 		if (data->emissivity == 1000) {
543 			*val = 1;
544 			*val2 = 0;
545 		} else {
546 			*val = 0;
547 			*val2 = data->emissivity * 1000;
548 		}
549 		return IIO_VAL_INT_PLUS_MICRO;
550 
551 	default:
552 		return -EINVAL;
553 	}
554 }
555 
mlx90632_write_raw(struct iio_dev * indio_dev,struct iio_chan_spec const * channel,int val,int val2,long mask)556 static int mlx90632_write_raw(struct iio_dev *indio_dev,
557 			      struct iio_chan_spec const *channel, int val,
558 			      int val2, long mask)
559 {
560 	struct mlx90632_data *data = iio_priv(indio_dev);
561 
562 	switch (mask) {
563 	case IIO_CHAN_INFO_CALIBEMISSIVITY:
564 		/* Confirm we are within 0 and 1.0 */
565 		if (val < 0 || val2 < 0 || val > 1 ||
566 		    (val == 1 && val2 != 0))
567 			return -EINVAL;
568 		data->emissivity = val * 1000 + val2 / 1000;
569 		return 0;
570 	default:
571 		return -EINVAL;
572 	}
573 }
574 
575 static const struct iio_chan_spec mlx90632_channels[] = {
576 	{
577 		.type = IIO_TEMP,
578 		.modified = 1,
579 		.channel2 = IIO_MOD_TEMP_AMBIENT,
580 		.info_mask_separate = BIT(IIO_CHAN_INFO_PROCESSED),
581 	},
582 	{
583 		.type = IIO_TEMP,
584 		.modified = 1,
585 		.channel2 = IIO_MOD_TEMP_OBJECT,
586 		.info_mask_separate = BIT(IIO_CHAN_INFO_PROCESSED) |
587 			BIT(IIO_CHAN_INFO_CALIBEMISSIVITY),
588 	},
589 };
590 
591 static const struct iio_info mlx90632_info = {
592 	.read_raw = mlx90632_read_raw,
593 	.write_raw = mlx90632_write_raw,
594 };
595 
mlx90632_sleep(struct mlx90632_data * data)596 static int mlx90632_sleep(struct mlx90632_data *data)
597 {
598 	regcache_mark_dirty(data->regmap);
599 
600 	dev_dbg(&data->client->dev, "Requesting sleep");
601 	return mlx90632_pwr_set_sleep_step(data->regmap);
602 }
603 
mlx90632_wakeup(struct mlx90632_data * data)604 static int mlx90632_wakeup(struct mlx90632_data *data)
605 {
606 	int ret;
607 
608 	ret = regcache_sync(data->regmap);
609 	if (ret < 0) {
610 		dev_err(&data->client->dev,
611 			"Failed to sync regmap registers: %d\n", ret);
612 		return ret;
613 	}
614 
615 	dev_dbg(&data->client->dev, "Requesting wake-up\n");
616 	return mlx90632_pwr_continuous(data->regmap);
617 }
618 
mlx90632_probe(struct i2c_client * client,const struct i2c_device_id * id)619 static int mlx90632_probe(struct i2c_client *client,
620 			  const struct i2c_device_id *id)
621 {
622 	struct iio_dev *indio_dev;
623 	struct mlx90632_data *mlx90632;
624 	struct regmap *regmap;
625 	int ret;
626 	unsigned int read;
627 
628 	indio_dev = devm_iio_device_alloc(&client->dev, sizeof(*mlx90632));
629 	if (!indio_dev) {
630 		dev_err(&client->dev, "Failed to allocate device\n");
631 		return -ENOMEM;
632 	}
633 
634 	regmap = devm_regmap_init_i2c(client, &mlx90632_regmap);
635 	if (IS_ERR(regmap)) {
636 		ret = PTR_ERR(regmap);
637 		dev_err(&client->dev, "Failed to allocate regmap: %d\n", ret);
638 		return ret;
639 	}
640 
641 	mlx90632 = iio_priv(indio_dev);
642 	i2c_set_clientdata(client, indio_dev);
643 	mlx90632->client = client;
644 	mlx90632->regmap = regmap;
645 
646 	mutex_init(&mlx90632->lock);
647 	indio_dev->dev.parent = &client->dev;
648 	indio_dev->name = id->name;
649 	indio_dev->modes = INDIO_DIRECT_MODE;
650 	indio_dev->info = &mlx90632_info;
651 	indio_dev->channels = mlx90632_channels;
652 	indio_dev->num_channels = ARRAY_SIZE(mlx90632_channels);
653 
654 	ret = mlx90632_wakeup(mlx90632);
655 	if (ret < 0) {
656 		dev_err(&client->dev, "Wakeup failed: %d\n", ret);
657 		return ret;
658 	}
659 
660 	ret = regmap_read(mlx90632->regmap, MLX90632_EE_VERSION, &read);
661 	if (ret < 0) {
662 		dev_err(&client->dev, "read of version failed: %d\n", ret);
663 		return ret;
664 	}
665 	if (read == MLX90632_ID_MEDICAL) {
666 		dev_dbg(&client->dev,
667 			"Detected Medical EEPROM calibration %x\n", read);
668 	} else if (read == MLX90632_ID_CONSUMER) {
669 		dev_dbg(&client->dev,
670 			"Detected Consumer EEPROM calibration %x\n", read);
671 	} else if ((read & MLX90632_DSP_MASK) == MLX90632_DSP_VERSION) {
672 		dev_dbg(&client->dev,
673 			"Detected Unknown EEPROM calibration %x\n", read);
674 	} else {
675 		dev_err(&client->dev,
676 			"Wrong DSP version %x (expected %x)\n",
677 			read, MLX90632_DSP_VERSION);
678 		return -EPROTONOSUPPORT;
679 	}
680 
681 	mlx90632->emissivity = 1000;
682 
683 	pm_runtime_disable(&client->dev);
684 	ret = pm_runtime_set_active(&client->dev);
685 	if (ret < 0) {
686 		mlx90632_sleep(mlx90632);
687 		return ret;
688 	}
689 	pm_runtime_enable(&client->dev);
690 	pm_runtime_set_autosuspend_delay(&client->dev, MLX90632_SLEEP_DELAY_MS);
691 	pm_runtime_use_autosuspend(&client->dev);
692 
693 	return iio_device_register(indio_dev);
694 }
695 
mlx90632_remove(struct i2c_client * client)696 static int mlx90632_remove(struct i2c_client *client)
697 {
698 	struct iio_dev *indio_dev = i2c_get_clientdata(client);
699 	struct mlx90632_data *data = iio_priv(indio_dev);
700 
701 	iio_device_unregister(indio_dev);
702 
703 	pm_runtime_disable(&client->dev);
704 	pm_runtime_set_suspended(&client->dev);
705 	pm_runtime_put_noidle(&client->dev);
706 
707 	mlx90632_sleep(data);
708 
709 	return 0;
710 }
711 
712 static const struct i2c_device_id mlx90632_id[] = {
713 	{ "mlx90632", 0 },
714 	{ }
715 };
716 MODULE_DEVICE_TABLE(i2c, mlx90632_id);
717 
718 static const struct of_device_id mlx90632_of_match[] = {
719 	{ .compatible = "melexis,mlx90632" },
720 	{ }
721 };
722 MODULE_DEVICE_TABLE(of, mlx90632_of_match);
723 
mlx90632_pm_suspend(struct device * dev)724 static int __maybe_unused mlx90632_pm_suspend(struct device *dev)
725 {
726 	struct iio_dev *indio_dev = i2c_get_clientdata(to_i2c_client(dev));
727 	struct mlx90632_data *data = iio_priv(indio_dev);
728 
729 	return mlx90632_sleep(data);
730 }
731 
mlx90632_pm_resume(struct device * dev)732 static int __maybe_unused mlx90632_pm_resume(struct device *dev)
733 {
734 	struct iio_dev *indio_dev = i2c_get_clientdata(to_i2c_client(dev));
735 	struct mlx90632_data *data = iio_priv(indio_dev);
736 
737 	return mlx90632_wakeup(data);
738 }
739 
740 static UNIVERSAL_DEV_PM_OPS(mlx90632_pm_ops, mlx90632_pm_suspend,
741 			    mlx90632_pm_resume, NULL);
742 
743 static struct i2c_driver mlx90632_driver = {
744 	.driver = {
745 		.name	= "mlx90632",
746 		.of_match_table = mlx90632_of_match,
747 		.pm	= &mlx90632_pm_ops,
748 	},
749 	.probe = mlx90632_probe,
750 	.remove = mlx90632_remove,
751 	.id_table = mlx90632_id,
752 };
753 module_i2c_driver(mlx90632_driver);
754 
755 MODULE_AUTHOR("Crt Mori <cmo@melexis.com>");
756 MODULE_DESCRIPTION("Melexis MLX90632 contactless Infra Red temperature sensor driver");
757 MODULE_LICENSE("GPL v2");
758