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Vlad Dogarud5c94562014-10-21 11:09:58 +03001/*
2 * Copyright (c) 2014 Intel Corporation
3 *
Akinobu Mita6dba72e2016-04-24 22:52:10 +09004 * Driver for Bosch Sensortec BMP180 and BMP280 digital pressure sensor.
Vlad Dogarud5c94562014-10-21 11:09:58 +03005 *
6 * This program is free software; you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License version 2 as
8 * published by the Free Software Foundation.
9 *
Akinobu Mita6dba72e2016-04-24 22:52:10 +090010 * Datasheet:
11 * https://ae-bst.resource.bosch.com/media/_tech/media/datasheets/BST-BMP180-DS000-121.pdf
12 * https://ae-bst.resource.bosch.com/media/_tech/media/datasheets/BST-BMP280-DS001-12.pdf
Matt Ranostay14beaa82016-05-04 22:57:30 -070013 * https://ae-bst.resource.bosch.com/media/_tech/media/datasheets/BST-BME280_DS001-11.pdf
Vlad Dogarud5c94562014-10-21 11:09:58 +030014 */
15
16#define pr_fmt(fmt) "bmp280: " fmt
17
18#include <linux/module.h>
19#include <linux/i2c.h>
20#include <linux/acpi.h>
21#include <linux/regmap.h>
Akinobu Mita6dba72e2016-04-24 22:52:10 +090022#include <linux/delay.h>
Vlad Dogarud5c94562014-10-21 11:09:58 +030023#include <linux/iio/iio.h>
24#include <linux/iio/sysfs.h>
25
Akinobu Mita6dba72e2016-04-24 22:52:10 +090026/* BMP280 specific registers */
Matt Ranostay14beaa82016-05-04 22:57:30 -070027#define BMP280_REG_HUMIDITY_LSB 0xFE
28#define BMP280_REG_HUMIDITY_MSB 0xFD
Vlad Dogarud5c94562014-10-21 11:09:58 +030029#define BMP280_REG_TEMP_XLSB 0xFC
30#define BMP280_REG_TEMP_LSB 0xFB
31#define BMP280_REG_TEMP_MSB 0xFA
32#define BMP280_REG_PRESS_XLSB 0xF9
33#define BMP280_REG_PRESS_LSB 0xF8
34#define BMP280_REG_PRESS_MSB 0xF7
35
36#define BMP280_REG_CONFIG 0xF5
Matt Ranostay14beaa82016-05-04 22:57:30 -070037#define BMP280_REG_CTRL_MEAS 0xF4
Vlad Dogarud5c94562014-10-21 11:09:58 +030038#define BMP280_REG_STATUS 0xF3
Matt Ranostay14beaa82016-05-04 22:57:30 -070039#define BMP280_REG_CTRL_HUMIDITY 0xF2
40
41/* Due to non linear mapping, and data sizes we can't do a bulk read */
42#define BMP280_REG_COMP_H1 0xA1
43#define BMP280_REG_COMP_H2 0xE1
44#define BMP280_REG_COMP_H3 0xE3
45#define BMP280_REG_COMP_H4 0xE4
46#define BMP280_REG_COMP_H5 0xE5
47#define BMP280_REG_COMP_H6 0xE7
Vlad Dogarud5c94562014-10-21 11:09:58 +030048
49#define BMP280_REG_COMP_TEMP_START 0x88
50#define BMP280_COMP_TEMP_REG_COUNT 6
51
52#define BMP280_REG_COMP_PRESS_START 0x8E
53#define BMP280_COMP_PRESS_REG_COUNT 18
54
55#define BMP280_FILTER_MASK (BIT(4) | BIT(3) | BIT(2))
56#define BMP280_FILTER_OFF 0
57#define BMP280_FILTER_2X BIT(2)
58#define BMP280_FILTER_4X BIT(3)
59#define BMP280_FILTER_8X (BIT(3) | BIT(2))
60#define BMP280_FILTER_16X BIT(4)
61
Matt Ranostay14beaa82016-05-04 22:57:30 -070062#define BMP280_OSRS_HUMIDITY_MASK (BIT(2) | BIT(1) | BIT(0))
63#define BMP280_OSRS_HUMIDITIY_X(osrs_h) ((osrs_h) << 0)
64#define BMP280_OSRS_HUMIDITY_SKIP 0
65#define BMP280_OSRS_HUMIDITY_1X BMP280_OSRS_HUMIDITIY_X(1)
66#define BMP280_OSRS_HUMIDITY_2X BMP280_OSRS_HUMIDITIY_X(2)
67#define BMP280_OSRS_HUMIDITY_4X BMP280_OSRS_HUMIDITIY_X(3)
68#define BMP280_OSRS_HUMIDITY_8X BMP280_OSRS_HUMIDITIY_X(4)
69#define BMP280_OSRS_HUMIDITY_16X BMP280_OSRS_HUMIDITIY_X(5)
70
Vlad Dogarud5c94562014-10-21 11:09:58 +030071#define BMP280_OSRS_TEMP_MASK (BIT(7) | BIT(6) | BIT(5))
72#define BMP280_OSRS_TEMP_SKIP 0
Akinobu Mita62979902016-04-24 22:52:11 +090073#define BMP280_OSRS_TEMP_X(osrs_t) ((osrs_t) << 5)
74#define BMP280_OSRS_TEMP_1X BMP280_OSRS_TEMP_X(1)
75#define BMP280_OSRS_TEMP_2X BMP280_OSRS_TEMP_X(2)
76#define BMP280_OSRS_TEMP_4X BMP280_OSRS_TEMP_X(3)
77#define BMP280_OSRS_TEMP_8X BMP280_OSRS_TEMP_X(4)
78#define BMP280_OSRS_TEMP_16X BMP280_OSRS_TEMP_X(5)
Vlad Dogarud5c94562014-10-21 11:09:58 +030079
80#define BMP280_OSRS_PRESS_MASK (BIT(4) | BIT(3) | BIT(2))
81#define BMP280_OSRS_PRESS_SKIP 0
Akinobu Mita62979902016-04-24 22:52:11 +090082#define BMP280_OSRS_PRESS_X(osrs_p) ((osrs_p) << 2)
83#define BMP280_OSRS_PRESS_1X BMP280_OSRS_PRESS_X(1)
84#define BMP280_OSRS_PRESS_2X BMP280_OSRS_PRESS_X(2)
85#define BMP280_OSRS_PRESS_4X BMP280_OSRS_PRESS_X(3)
86#define BMP280_OSRS_PRESS_8X BMP280_OSRS_PRESS_X(4)
87#define BMP280_OSRS_PRESS_16X BMP280_OSRS_PRESS_X(5)
Vlad Dogarud5c94562014-10-21 11:09:58 +030088
89#define BMP280_MODE_MASK (BIT(1) | BIT(0))
90#define BMP280_MODE_SLEEP 0
91#define BMP280_MODE_FORCED BIT(0)
92#define BMP280_MODE_NORMAL (BIT(1) | BIT(0))
93
Akinobu Mita6dba72e2016-04-24 22:52:10 +090094/* BMP180 specific registers */
95#define BMP180_REG_OUT_XLSB 0xF8
96#define BMP180_REG_OUT_LSB 0xF7
97#define BMP180_REG_OUT_MSB 0xF6
98
99#define BMP180_REG_CALIB_START 0xAA
100#define BMP180_REG_CALIB_COUNT 22
101
102#define BMP180_MEAS_SCO BIT(5)
103#define BMP180_MEAS_TEMP (0x0E | BMP180_MEAS_SCO)
104#define BMP180_MEAS_PRESS_X(oss) ((oss) << 6 | 0x14 | BMP180_MEAS_SCO)
105#define BMP180_MEAS_PRESS_1X BMP180_MEAS_PRESS_X(0)
106#define BMP180_MEAS_PRESS_2X BMP180_MEAS_PRESS_X(1)
107#define BMP180_MEAS_PRESS_4X BMP180_MEAS_PRESS_X(2)
108#define BMP180_MEAS_PRESS_8X BMP180_MEAS_PRESS_X(3)
109
110/* BMP180 and BMP280 common registers */
111#define BMP280_REG_CTRL_MEAS 0xF4
112#define BMP280_REG_RESET 0xE0
113#define BMP280_REG_ID 0xD0
114
115#define BMP180_CHIP_ID 0x55
Vlad Dogarud5c94562014-10-21 11:09:58 +0300116#define BMP280_CHIP_ID 0x58
Matt Ranostay14beaa82016-05-04 22:57:30 -0700117#define BME280_CHIP_ID 0x60
Vlad Dogarud5c94562014-10-21 11:09:58 +0300118#define BMP280_SOFT_RESET_VAL 0xB6
119
120struct bmp280_data {
121 struct i2c_client *client;
122 struct mutex lock;
123 struct regmap *regmap;
Akinobu Mita6dba72e2016-04-24 22:52:10 +0900124 const struct bmp280_chip_info *chip_info;
Vlad Dogarud5c94562014-10-21 11:09:58 +0300125
Akinobu Mita62979902016-04-24 22:52:11 +0900126 /* log of base 2 of oversampling rate */
127 u8 oversampling_press;
128 u8 oversampling_temp;
Matt Ranostay14beaa82016-05-04 22:57:30 -0700129 u8 oversampling_humid;
Akinobu Mita62979902016-04-24 22:52:11 +0900130
Vlad Dogarud5c94562014-10-21 11:09:58 +0300131 /*
132 * Carryover value from temperature conversion, used in pressure
133 * calculation.
134 */
135 s32 t_fine;
136};
137
Akinobu Mita6dba72e2016-04-24 22:52:10 +0900138struct bmp280_chip_info {
139 const struct regmap_config *regmap_config;
140
Akinobu Mita62979902016-04-24 22:52:11 +0900141 const int *oversampling_temp_avail;
142 int num_oversampling_temp_avail;
143
144 const int *oversampling_press_avail;
145 int num_oversampling_press_avail;
146
Matt Ranostay14beaa82016-05-04 22:57:30 -0700147 const int *oversampling_humid_avail;
148 int num_oversampling_humid_avail;
149
Akinobu Mita6dba72e2016-04-24 22:52:10 +0900150 int (*chip_config)(struct bmp280_data *);
151 int (*read_temp)(struct bmp280_data *, int *);
152 int (*read_press)(struct bmp280_data *, int *, int *);
Matt Ranostay14beaa82016-05-04 22:57:30 -0700153 int (*read_humid)(struct bmp280_data *, int *, int *);
Akinobu Mita6dba72e2016-04-24 22:52:10 +0900154};
155
Vlad Dogaru0f8994b2014-11-20 14:00:48 +0200156/*
157 * These enums are used for indexing into the array of compensation
Akinobu Mita6dba72e2016-04-24 22:52:10 +0900158 * parameters for BMP280.
Vlad Dogaru0f8994b2014-11-20 14:00:48 +0200159 */
160enum { T1, T2, T3 };
161enum { P1, P2, P3, P4, P5, P6, P7, P8, P9 };
Vlad Dogarud5c94562014-10-21 11:09:58 +0300162
163static const struct iio_chan_spec bmp280_channels[] = {
164 {
165 .type = IIO_PRESSURE,
Akinobu Mita62979902016-04-24 22:52:11 +0900166 .info_mask_separate = BIT(IIO_CHAN_INFO_PROCESSED) |
167 BIT(IIO_CHAN_INFO_OVERSAMPLING_RATIO),
Vlad Dogarud5c94562014-10-21 11:09:58 +0300168 },
169 {
170 .type = IIO_TEMP,
Akinobu Mita62979902016-04-24 22:52:11 +0900171 .info_mask_separate = BIT(IIO_CHAN_INFO_PROCESSED) |
172 BIT(IIO_CHAN_INFO_OVERSAMPLING_RATIO),
Vlad Dogarud5c94562014-10-21 11:09:58 +0300173 },
Matt Ranostay14beaa82016-05-04 22:57:30 -0700174 {
175 .type = IIO_HUMIDITYRELATIVE,
176 .info_mask_separate = BIT(IIO_CHAN_INFO_PROCESSED) |
177 BIT(IIO_CHAN_INFO_OVERSAMPLING_RATIO),
178 },
Vlad Dogarud5c94562014-10-21 11:09:58 +0300179};
180
181static bool bmp280_is_writeable_reg(struct device *dev, unsigned int reg)
182{
183 switch (reg) {
184 case BMP280_REG_CONFIG:
Matt Ranostay14beaa82016-05-04 22:57:30 -0700185 case BMP280_REG_CTRL_HUMIDITY:
Vlad Dogarud5c94562014-10-21 11:09:58 +0300186 case BMP280_REG_CTRL_MEAS:
187 case BMP280_REG_RESET:
188 return true;
189 default:
190 return false;
191 };
192}
193
194static bool bmp280_is_volatile_reg(struct device *dev, unsigned int reg)
195{
196 switch (reg) {
Matt Ranostay14beaa82016-05-04 22:57:30 -0700197 case BMP280_REG_HUMIDITY_LSB:
198 case BMP280_REG_HUMIDITY_MSB:
Vlad Dogarud5c94562014-10-21 11:09:58 +0300199 case BMP280_REG_TEMP_XLSB:
200 case BMP280_REG_TEMP_LSB:
201 case BMP280_REG_TEMP_MSB:
202 case BMP280_REG_PRESS_XLSB:
203 case BMP280_REG_PRESS_LSB:
204 case BMP280_REG_PRESS_MSB:
205 case BMP280_REG_STATUS:
206 return true;
207 default:
208 return false;
209 }
210}
211
212static const struct regmap_config bmp280_regmap_config = {
213 .reg_bits = 8,
214 .val_bits = 8,
215
Matt Ranostay14beaa82016-05-04 22:57:30 -0700216 .max_register = BMP280_REG_HUMIDITY_LSB,
Vlad Dogarud5c94562014-10-21 11:09:58 +0300217 .cache_type = REGCACHE_RBTREE,
218
219 .writeable_reg = bmp280_is_writeable_reg,
220 .volatile_reg = bmp280_is_volatile_reg,
221};
222
Vlad Dogaru0f8994b2014-11-20 14:00:48 +0200223/*
Matt Ranostay14beaa82016-05-04 22:57:30 -0700224 * Returns humidity in percent, resolution is 0.01 percent. Output value of
225 * "47445" represents 47445/1024 = 46.333 %RH.
226 *
227 * Taken from BME280 datasheet, Section 4.2.3, "Compensation formula".
228 */
229
230static u32 bmp280_compensate_humidity(struct bmp280_data *data,
231 s32 adc_humidity)
232{
233 struct device *dev = &data->client->dev;
234 unsigned int H1, H3, tmp;
235 int H2, H4, H5, H6, ret, var;
236
237 ret = regmap_read(data->regmap, BMP280_REG_COMP_H1, &H1);
238 if (ret < 0) {
239 dev_err(dev, "failed to read H1 comp value\n");
240 return ret;
241 }
242
243 ret = regmap_bulk_read(data->regmap, BMP280_REG_COMP_H2, &tmp, 2);
244 if (ret < 0) {
245 dev_err(dev, "failed to read H2 comp value\n");
246 return ret;
247 }
248 H2 = sign_extend32(le16_to_cpu(tmp), 15);
249
250 ret = regmap_read(data->regmap, BMP280_REG_COMP_H3, &H3);
251 if (ret < 0) {
252 dev_err(dev, "failed to read H3 comp value\n");
253 return ret;
254 }
255
256 ret = regmap_bulk_read(data->regmap, BMP280_REG_COMP_H4, &tmp, 2);
257 if (ret < 0) {
258 dev_err(dev, "failed to read H4 comp value\n");
259 return ret;
260 }
261 H4 = sign_extend32(((be16_to_cpu(tmp) >> 4) & 0xff0) |
262 (be16_to_cpu(tmp) & 0xf), 11);
263
264 ret = regmap_bulk_read(data->regmap, BMP280_REG_COMP_H5, &tmp, 2);
265 if (ret < 0) {
266 dev_err(dev, "failed to read H5 comp value\n");
267 return ret;
268 }
269 H5 = sign_extend32(((le16_to_cpu(tmp) >> 4) & 0xfff), 11);
270
271 ret = regmap_read(data->regmap, BMP280_REG_COMP_H6, &tmp);
272 if (ret < 0) {
273 dev_err(dev, "failed to read H6 comp value\n");
274 return ret;
275 }
276 H6 = sign_extend32(tmp, 7);
277
278 var = ((s32)data->t_fine) - 76800;
279 var = ((((adc_humidity << 14) - (H4 << 20) - (H5 * var)) + 16384) >> 15)
280 * (((((((var * H6) >> 10) * (((var * H3) >> 11) + 32768)) >> 10)
281 + 2097152) * H2 + 8192) >> 14);
282 var -= ((((var >> 15) * (var >> 15)) >> 7) * H1) >> 4;
283
284 return var >> 12;
285};
286
287/*
Vlad Dogaru0f8994b2014-11-20 14:00:48 +0200288 * Returns temperature in DegC, resolution is 0.01 DegC. Output value of
289 * "5123" equals 51.23 DegC. t_fine carries fine temperature as global
290 * value.
291 *
292 * Taken from datasheet, Section 3.11.3, "Compensation formula".
293 */
294static s32 bmp280_compensate_temp(struct bmp280_data *data,
295 s32 adc_temp)
Vlad Dogarud5c94562014-10-21 11:09:58 +0300296{
297 int ret;
Hartmut Knaack44cf3792014-12-19 23:59:25 +0100298 s32 var1, var2;
Vlad Dogarud5c94562014-10-21 11:09:58 +0300299 __le16 buf[BMP280_COMP_TEMP_REG_COUNT / 2];
300
301 ret = regmap_bulk_read(data->regmap, BMP280_REG_COMP_TEMP_START,
302 buf, BMP280_COMP_TEMP_REG_COUNT);
303 if (ret < 0) {
304 dev_err(&data->client->dev,
305 "failed to read temperature calibration parameters\n");
306 return ret;
307 }
308
Vlad Dogaru0f8994b2014-11-20 14:00:48 +0200309 /*
310 * The double casts are necessary because le16_to_cpu returns an
311 * unsigned 16-bit value. Casting that value directly to a
312 * signed 32-bit will not do proper sign extension.
313 *
314 * Conversely, T1 and P1 are unsigned values, so they can be
315 * cast straight to the larger type.
316 */
317 var1 = (((adc_temp >> 3) - ((s32)le16_to_cpu(buf[T1]) << 1)) *
318 ((s32)(s16)le16_to_cpu(buf[T2]))) >> 11;
319 var2 = (((((adc_temp >> 4) - ((s32)le16_to_cpu(buf[T1]))) *
320 ((adc_temp >> 4) - ((s32)le16_to_cpu(buf[T1])))) >> 12) *
321 ((s32)(s16)le16_to_cpu(buf[T3]))) >> 14;
Irina Tirdeaabad3982015-04-08 18:26:12 +0300322 data->t_fine = var1 + var2;
Vlad Dogarud5c94562014-10-21 11:09:58 +0300323
Hartmut Knaack44cf3792014-12-19 23:59:25 +0100324 return (data->t_fine * 5 + 128) >> 8;
Vlad Dogarud5c94562014-10-21 11:09:58 +0300325}
326
327/*
328 * Returns pressure in Pa as unsigned 32 bit integer in Q24.8 format (24
329 * integer bits and 8 fractional bits). Output value of "24674867"
330 * represents 24674867/256 = 96386.2 Pa = 963.862 hPa
331 *
332 * Taken from datasheet, Section 3.11.3, "Compensation formula".
333 */
334static u32 bmp280_compensate_press(struct bmp280_data *data,
Vlad Dogarud5c94562014-10-21 11:09:58 +0300335 s32 adc_press)
336{
Vlad Dogaru0f8994b2014-11-20 14:00:48 +0200337 int ret;
Vlad Dogarud5c94562014-10-21 11:09:58 +0300338 s64 var1, var2, p;
Vlad Dogaru0f8994b2014-11-20 14:00:48 +0200339 __le16 buf[BMP280_COMP_PRESS_REG_COUNT / 2];
Vlad Dogarud5c94562014-10-21 11:09:58 +0300340
Vlad Dogaru0f8994b2014-11-20 14:00:48 +0200341 ret = regmap_bulk_read(data->regmap, BMP280_REG_COMP_PRESS_START,
342 buf, BMP280_COMP_PRESS_REG_COUNT);
343 if (ret < 0) {
344 dev_err(&data->client->dev,
345 "failed to read pressure calibration parameters\n");
346 return ret;
347 }
348
349 var1 = ((s64)data->t_fine) - 128000;
350 var2 = var1 * var1 * (s64)(s16)le16_to_cpu(buf[P6]);
Hartmut Knaack44cf3792014-12-19 23:59:25 +0100351 var2 += (var1 * (s64)(s16)le16_to_cpu(buf[P5])) << 17;
352 var2 += ((s64)(s16)le16_to_cpu(buf[P4])) << 35;
Vlad Dogaru0f8994b2014-11-20 14:00:48 +0200353 var1 = ((var1 * var1 * (s64)(s16)le16_to_cpu(buf[P3])) >> 8) +
354 ((var1 * (s64)(s16)le16_to_cpu(buf[P2])) << 12);
355 var1 = ((((s64)1) << 47) + var1) * ((s64)le16_to_cpu(buf[P1])) >> 33;
Vlad Dogarud5c94562014-10-21 11:09:58 +0300356
357 if (var1 == 0)
358 return 0;
359
Vlad Dogaru0f8994b2014-11-20 14:00:48 +0200360 p = ((((s64)1048576 - adc_press) << 31) - var2) * 3125;
Vlad Dogaru46ee98a2014-10-23 15:52:00 +0100361 p = div64_s64(p, var1);
Vlad Dogaru0f8994b2014-11-20 14:00:48 +0200362 var1 = (((s64)(s16)le16_to_cpu(buf[P9])) * (p >> 13) * (p >> 13)) >> 25;
363 var2 = (((s64)(s16)le16_to_cpu(buf[P8])) * p) >> 19;
364 p = ((p + var1 + var2) >> 8) + (((s64)(s16)le16_to_cpu(buf[P7])) << 4);
Vlad Dogarud5c94562014-10-21 11:09:58 +0300365
Hartmut Knaack44cf3792014-12-19 23:59:25 +0100366 return (u32)p;
Vlad Dogarud5c94562014-10-21 11:09:58 +0300367}
368
369static int bmp280_read_temp(struct bmp280_data *data,
370 int *val)
371{
372 int ret;
373 __be32 tmp = 0;
374 s32 adc_temp, comp_temp;
Vlad Dogarud5c94562014-10-21 11:09:58 +0300375
376 ret = regmap_bulk_read(data->regmap, BMP280_REG_TEMP_MSB,
377 (u8 *) &tmp, 3);
378 if (ret < 0) {
379 dev_err(&data->client->dev, "failed to read temperature\n");
380 return ret;
381 }
382
383 adc_temp = be32_to_cpu(tmp) >> 12;
Vlad Dogaru0f8994b2014-11-20 14:00:48 +0200384 comp_temp = bmp280_compensate_temp(data, adc_temp);
Vlad Dogarud5c94562014-10-21 11:09:58 +0300385
386 /*
387 * val might be NULL if we're called by the read_press routine,
388 * who only cares about the carry over t_fine value.
389 */
390 if (val) {
391 *val = comp_temp * 10;
392 return IIO_VAL_INT;
393 }
394
395 return 0;
396}
397
398static int bmp280_read_press(struct bmp280_data *data,
399 int *val, int *val2)
400{
401 int ret;
402 __be32 tmp = 0;
403 s32 adc_press;
404 u32 comp_press;
Vlad Dogarud5c94562014-10-21 11:09:58 +0300405
406 /* Read and compensate temperature so we get a reading of t_fine. */
407 ret = bmp280_read_temp(data, NULL);
408 if (ret < 0)
409 return ret;
410
411 ret = regmap_bulk_read(data->regmap, BMP280_REG_PRESS_MSB,
412 (u8 *) &tmp, 3);
413 if (ret < 0) {
414 dev_err(&data->client->dev, "failed to read pressure\n");
415 return ret;
416 }
417
418 adc_press = be32_to_cpu(tmp) >> 12;
Vlad Dogaru0f8994b2014-11-20 14:00:48 +0200419 comp_press = bmp280_compensate_press(data, adc_press);
Vlad Dogarud5c94562014-10-21 11:09:58 +0300420
Hartmut Knaack81ebe852014-10-31 01:22:00 +0000421 *val = comp_press;
422 *val2 = 256000;
Vlad Dogarud5c94562014-10-21 11:09:58 +0300423
Hartmut Knaack81ebe852014-10-31 01:22:00 +0000424 return IIO_VAL_FRACTIONAL;
Vlad Dogarud5c94562014-10-21 11:09:58 +0300425}
426
Matt Ranostay14beaa82016-05-04 22:57:30 -0700427static int bmp280_read_humid(struct bmp280_data *data, int *val, int *val2)
428{
429 int ret;
430 __be16 tmp = 0;
431 s32 adc_humidity;
432 u32 comp_humidity;
433
434 /* Read and compensate temperature so we get a reading of t_fine. */
435 ret = bmp280_read_temp(data, NULL);
436 if (ret < 0)
437 return ret;
438
439 ret = regmap_bulk_read(data->regmap, BMP280_REG_HUMIDITY_MSB,
440 (u8 *) &tmp, 2);
441 if (ret < 0) {
442 dev_err(&data->client->dev, "failed to read humidity\n");
443 return ret;
444 }
445
446 adc_humidity = be16_to_cpu(tmp);
447 comp_humidity = bmp280_compensate_humidity(data, adc_humidity);
448
449 *val = comp_humidity;
450 *val2 = 1024;
451
452 return IIO_VAL_FRACTIONAL;
453}
454
Vlad Dogarud5c94562014-10-21 11:09:58 +0300455static int bmp280_read_raw(struct iio_dev *indio_dev,
456 struct iio_chan_spec const *chan,
457 int *val, int *val2, long mask)
458{
459 int ret;
460 struct bmp280_data *data = iio_priv(indio_dev);
461
462 mutex_lock(&data->lock);
463
464 switch (mask) {
465 case IIO_CHAN_INFO_PROCESSED:
466 switch (chan->type) {
Matt Ranostay14beaa82016-05-04 22:57:30 -0700467 case IIO_HUMIDITYRELATIVE:
468 ret = data->chip_info->read_humid(data, val, val2);
469 break;
Vlad Dogarud5c94562014-10-21 11:09:58 +0300470 case IIO_PRESSURE:
Akinobu Mita6dba72e2016-04-24 22:52:10 +0900471 ret = data->chip_info->read_press(data, val, val2);
Vlad Dogarud5c94562014-10-21 11:09:58 +0300472 break;
473 case IIO_TEMP:
Akinobu Mita6dba72e2016-04-24 22:52:10 +0900474 ret = data->chip_info->read_temp(data, val);
Vlad Dogarud5c94562014-10-21 11:09:58 +0300475 break;
476 default:
477 ret = -EINVAL;
478 break;
479 }
480 break;
Akinobu Mita62979902016-04-24 22:52:11 +0900481 case IIO_CHAN_INFO_OVERSAMPLING_RATIO:
482 switch (chan->type) {
Matt Ranostay14beaa82016-05-04 22:57:30 -0700483 case IIO_HUMIDITYRELATIVE:
484 *val = 1 << data->oversampling_humid;
485 ret = IIO_VAL_INT;
486 break;
Akinobu Mita62979902016-04-24 22:52:11 +0900487 case IIO_PRESSURE:
488 *val = 1 << data->oversampling_press;
489 ret = IIO_VAL_INT;
490 break;
491 case IIO_TEMP:
492 *val = 1 << data->oversampling_temp;
493 ret = IIO_VAL_INT;
494 break;
495 default:
496 ret = -EINVAL;
497 break;
498 }
499 break;
Vlad Dogarud5c94562014-10-21 11:09:58 +0300500 default:
501 ret = -EINVAL;
502 break;
503 }
504
505 mutex_unlock(&data->lock);
506
507 return ret;
508}
509
Matt Ranostay14beaa82016-05-04 22:57:30 -0700510static int bmp280_write_oversampling_ratio_humid(struct bmp280_data *data,
511 int val)
512{
513 int i;
514 const int *avail = data->chip_info->oversampling_humid_avail;
515 const int n = data->chip_info->num_oversampling_humid_avail;
516
517 for (i = 0; i < n; i++) {
518 if (avail[i] == val) {
519 data->oversampling_humid = ilog2(val);
520
521 return data->chip_info->chip_config(data);
522 }
523 }
524 return -EINVAL;
525}
526
Akinobu Mita62979902016-04-24 22:52:11 +0900527static int bmp280_write_oversampling_ratio_temp(struct bmp280_data *data,
528 int val)
529{
530 int i;
531 const int *avail = data->chip_info->oversampling_temp_avail;
532 const int n = data->chip_info->num_oversampling_temp_avail;
533
534 for (i = 0; i < n; i++) {
535 if (avail[i] == val) {
536 data->oversampling_temp = ilog2(val);
537
538 return data->chip_info->chip_config(data);
539 }
540 }
541 return -EINVAL;
542}
543
544static int bmp280_write_oversampling_ratio_press(struct bmp280_data *data,
545 int val)
546{
547 int i;
548 const int *avail = data->chip_info->oversampling_press_avail;
549 const int n = data->chip_info->num_oversampling_press_avail;
550
551 for (i = 0; i < n; i++) {
552 if (avail[i] == val) {
553 data->oversampling_press = ilog2(val);
554
555 return data->chip_info->chip_config(data);
556 }
557 }
558 return -EINVAL;
559}
560
561static int bmp280_write_raw(struct iio_dev *indio_dev,
562 struct iio_chan_spec const *chan,
563 int val, int val2, long mask)
564{
565 int ret = 0;
566 struct bmp280_data *data = iio_priv(indio_dev);
567
568 switch (mask) {
569 case IIO_CHAN_INFO_OVERSAMPLING_RATIO:
570 mutex_lock(&data->lock);
571 switch (chan->type) {
Matt Ranostay14beaa82016-05-04 22:57:30 -0700572 case IIO_HUMIDITYRELATIVE:
573 ret = bmp280_write_oversampling_ratio_humid(data, val);
574 break;
Akinobu Mita62979902016-04-24 22:52:11 +0900575 case IIO_PRESSURE:
576 ret = bmp280_write_oversampling_ratio_press(data, val);
577 break;
578 case IIO_TEMP:
579 ret = bmp280_write_oversampling_ratio_temp(data, val);
580 break;
581 default:
582 ret = -EINVAL;
583 break;
584 }
585 mutex_unlock(&data->lock);
586 break;
587 default:
588 return -EINVAL;
589 }
590
591 return ret;
592}
593
594static ssize_t bmp280_show_avail(char *buf, const int *vals, const int n)
595{
596 size_t len = 0;
597 int i;
598
599 for (i = 0; i < n; i++)
600 len += scnprintf(buf + len, PAGE_SIZE - len, "%d ", vals[i]);
601
602 buf[len - 1] = '\n';
603
604 return len;
605}
606
607static ssize_t bmp280_show_temp_oversampling_avail(struct device *dev,
608 struct device_attribute *attr, char *buf)
609{
610 struct bmp280_data *data = iio_priv(dev_to_iio_dev(dev));
611
612 return bmp280_show_avail(buf, data->chip_info->oversampling_temp_avail,
613 data->chip_info->num_oversampling_temp_avail);
614}
615
616static ssize_t bmp280_show_press_oversampling_avail(struct device *dev,
617 struct device_attribute *attr, char *buf)
618{
619 struct bmp280_data *data = iio_priv(dev_to_iio_dev(dev));
620
621 return bmp280_show_avail(buf, data->chip_info->oversampling_press_avail,
622 data->chip_info->num_oversampling_press_avail);
623}
624
625static IIO_DEVICE_ATTR(in_temp_oversampling_ratio_available,
626 S_IRUGO, bmp280_show_temp_oversampling_avail, NULL, 0);
627
628static IIO_DEVICE_ATTR(in_pressure_oversampling_ratio_available,
629 S_IRUGO, bmp280_show_press_oversampling_avail, NULL, 0);
630
631static struct attribute *bmp280_attributes[] = {
632 &iio_dev_attr_in_temp_oversampling_ratio_available.dev_attr.attr,
633 &iio_dev_attr_in_pressure_oversampling_ratio_available.dev_attr.attr,
634 NULL,
635};
636
637static const struct attribute_group bmp280_attrs_group = {
638 .attrs = bmp280_attributes,
639};
640
Vlad Dogarud5c94562014-10-21 11:09:58 +0300641static const struct iio_info bmp280_info = {
642 .driver_module = THIS_MODULE,
643 .read_raw = &bmp280_read_raw,
Akinobu Mita62979902016-04-24 22:52:11 +0900644 .write_raw = &bmp280_write_raw,
645 .attrs = &bmp280_attrs_group,
Vlad Dogarud5c94562014-10-21 11:09:58 +0300646};
647
Akinobu Mita6dba72e2016-04-24 22:52:10 +0900648static int bmp280_chip_config(struct bmp280_data *data)
Vlad Dogarud5c94562014-10-21 11:09:58 +0300649{
650 int ret;
Akinobu Mita62979902016-04-24 22:52:11 +0900651 u8 osrs = BMP280_OSRS_TEMP_X(data->oversampling_temp + 1) |
652 BMP280_OSRS_PRESS_X(data->oversampling_press + 1);
Vlad Dogarud5c94562014-10-21 11:09:58 +0300653
654 ret = regmap_update_bits(data->regmap, BMP280_REG_CTRL_MEAS,
655 BMP280_OSRS_TEMP_MASK |
656 BMP280_OSRS_PRESS_MASK |
657 BMP280_MODE_MASK,
Akinobu Mita62979902016-04-24 22:52:11 +0900658 osrs | BMP280_MODE_NORMAL);
Vlad Dogarud5c94562014-10-21 11:09:58 +0300659 if (ret < 0) {
660 dev_err(&data->client->dev,
Hartmut Knaack44cf3792014-12-19 23:59:25 +0100661 "failed to write ctrl_meas register\n");
Vlad Dogarud5c94562014-10-21 11:09:58 +0300662 return ret;
663 }
664
665 ret = regmap_update_bits(data->regmap, BMP280_REG_CONFIG,
666 BMP280_FILTER_MASK,
667 BMP280_FILTER_4X);
668 if (ret < 0) {
669 dev_err(&data->client->dev,
670 "failed to write config register\n");
671 return ret;
672 }
673
674 return ret;
675}
676
Akinobu Mita62979902016-04-24 22:52:11 +0900677static const int bmp280_oversampling_avail[] = { 1, 2, 4, 8, 16 };
678
Akinobu Mita6dba72e2016-04-24 22:52:10 +0900679static const struct bmp280_chip_info bmp280_chip_info = {
680 .regmap_config = &bmp280_regmap_config,
Akinobu Mita62979902016-04-24 22:52:11 +0900681
682 .oversampling_temp_avail = bmp280_oversampling_avail,
683 .num_oversampling_temp_avail = ARRAY_SIZE(bmp280_oversampling_avail),
684
685 .oversampling_press_avail = bmp280_oversampling_avail,
686 .num_oversampling_press_avail = ARRAY_SIZE(bmp280_oversampling_avail),
687
Akinobu Mita6dba72e2016-04-24 22:52:10 +0900688 .chip_config = bmp280_chip_config,
689 .read_temp = bmp280_read_temp,
690 .read_press = bmp280_read_press,
691};
692
Matt Ranostay14beaa82016-05-04 22:57:30 -0700693static int bme280_chip_config(struct bmp280_data *data)
694{
695 int ret = bmp280_chip_config(data);
696 u8 osrs = BMP280_OSRS_HUMIDITIY_X(data->oversampling_humid + 1);
697
698 if (ret < 0)
699 return ret;
700
701 return regmap_update_bits(data->regmap, BMP280_REG_CTRL_HUMIDITY,
702 BMP280_OSRS_HUMIDITY_MASK, osrs);
703}
704
705static const struct bmp280_chip_info bme280_chip_info = {
706 .regmap_config = &bmp280_regmap_config,
707
708 .oversampling_temp_avail = bmp280_oversampling_avail,
709 .num_oversampling_temp_avail = ARRAY_SIZE(bmp280_oversampling_avail),
710
711 .oversampling_press_avail = bmp280_oversampling_avail,
712 .num_oversampling_press_avail = ARRAY_SIZE(bmp280_oversampling_avail),
713
714 .oversampling_humid_avail = bmp280_oversampling_avail,
715 .num_oversampling_humid_avail = ARRAY_SIZE(bmp280_oversampling_avail),
716
717 .chip_config = bme280_chip_config,
718 .read_temp = bmp280_read_temp,
719 .read_press = bmp280_read_press,
720 .read_humid = bmp280_read_humid,
721};
722
723
Akinobu Mita6dba72e2016-04-24 22:52:10 +0900724static bool bmp180_is_writeable_reg(struct device *dev, unsigned int reg)
725{
726 switch (reg) {
727 case BMP280_REG_CTRL_MEAS:
728 case BMP280_REG_RESET:
729 return true;
730 default:
731 return false;
732 };
733}
734
735static bool bmp180_is_volatile_reg(struct device *dev, unsigned int reg)
736{
737 switch (reg) {
738 case BMP180_REG_OUT_XLSB:
739 case BMP180_REG_OUT_LSB:
740 case BMP180_REG_OUT_MSB:
741 case BMP280_REG_CTRL_MEAS:
742 return true;
743 default:
744 return false;
745 }
746}
747
748static const struct regmap_config bmp180_regmap_config = {
749 .reg_bits = 8,
750 .val_bits = 8,
751
752 .max_register = BMP180_REG_OUT_XLSB,
753 .cache_type = REGCACHE_RBTREE,
754
755 .writeable_reg = bmp180_is_writeable_reg,
756 .volatile_reg = bmp180_is_volatile_reg,
757};
758
759static int bmp180_measure(struct bmp280_data *data, u8 ctrl_meas)
760{
761 int ret;
762 const int conversion_time_max[] = { 4500, 7500, 13500, 25500 };
763 unsigned int delay_us;
764 unsigned int ctrl;
765
766 ret = regmap_write(data->regmap, BMP280_REG_CTRL_MEAS, ctrl_meas);
767 if (ret)
768 return ret;
769
770 if (ctrl_meas == BMP180_MEAS_TEMP)
771 delay_us = 4500;
772 else
Akinobu Mita62979902016-04-24 22:52:11 +0900773 delay_us = conversion_time_max[data->oversampling_press];
Akinobu Mita6dba72e2016-04-24 22:52:10 +0900774
775 usleep_range(delay_us, delay_us + 1000);
776
777 ret = regmap_read(data->regmap, BMP280_REG_CTRL_MEAS, &ctrl);
778 if (ret)
779 return ret;
780
781 /* The value of this bit reset to "0" after conversion is complete */
782 if (ctrl & BMP180_MEAS_SCO)
783 return -EIO;
784
785 return 0;
786}
787
788static int bmp180_read_adc_temp(struct bmp280_data *data, int *val)
789{
790 int ret;
791 __be16 tmp = 0;
792
793 ret = bmp180_measure(data, BMP180_MEAS_TEMP);
794 if (ret)
795 return ret;
796
797 ret = regmap_bulk_read(data->regmap, BMP180_REG_OUT_MSB, (u8 *)&tmp, 2);
798 if (ret)
799 return ret;
800
801 *val = be16_to_cpu(tmp);
802
803 return 0;
804}
805
806/*
807 * These enums are used for indexing into the array of calibration
808 * coefficients for BMP180.
809 */
810enum { AC1, AC2, AC3, AC4, AC5, AC6, B1, B2, MB, MC, MD };
811
812struct bmp180_calib {
813 s16 AC1;
814 s16 AC2;
815 s16 AC3;
816 u16 AC4;
817 u16 AC5;
818 u16 AC6;
819 s16 B1;
820 s16 B2;
821 s16 MB;
822 s16 MC;
823 s16 MD;
824};
825
826static int bmp180_read_calib(struct bmp280_data *data,
827 struct bmp180_calib *calib)
828{
829 int ret;
830 int i;
831 __be16 buf[BMP180_REG_CALIB_COUNT / 2];
832
833 ret = regmap_bulk_read(data->regmap, BMP180_REG_CALIB_START, buf,
834 sizeof(buf));
835
836 if (ret < 0)
837 return ret;
838
839 /* None of the words has the value 0 or 0xFFFF */
840 for (i = 0; i < ARRAY_SIZE(buf); i++) {
841 if (buf[i] == cpu_to_be16(0) || buf[i] == cpu_to_be16(0xffff))
842 return -EIO;
843 }
844
845 calib->AC1 = be16_to_cpu(buf[AC1]);
846 calib->AC2 = be16_to_cpu(buf[AC2]);
847 calib->AC3 = be16_to_cpu(buf[AC3]);
848 calib->AC4 = be16_to_cpu(buf[AC4]);
849 calib->AC5 = be16_to_cpu(buf[AC5]);
850 calib->AC6 = be16_to_cpu(buf[AC6]);
851 calib->B1 = be16_to_cpu(buf[B1]);
852 calib->B2 = be16_to_cpu(buf[B2]);
853 calib->MB = be16_to_cpu(buf[MB]);
854 calib->MC = be16_to_cpu(buf[MC]);
855 calib->MD = be16_to_cpu(buf[MD]);
856
857 return 0;
858}
859
860/*
861 * Returns temperature in DegC, resolution is 0.1 DegC.
862 * t_fine carries fine temperature as global value.
863 *
864 * Taken from datasheet, Section 3.5, "Calculating pressure and temperature".
865 */
866static s32 bmp180_compensate_temp(struct bmp280_data *data, s32 adc_temp)
867{
868 int ret;
869 s32 x1, x2;
870 struct bmp180_calib calib;
871
872 ret = bmp180_read_calib(data, &calib);
873 if (ret < 0) {
874 dev_err(&data->client->dev,
875 "failed to read calibration coefficients\n");
876 return ret;
877 }
878
879 x1 = ((adc_temp - calib.AC6) * calib.AC5) >> 15;
880 x2 = (calib.MC << 11) / (x1 + calib.MD);
881 data->t_fine = x1 + x2;
882
883 return (data->t_fine + 8) >> 4;
884}
885
886static int bmp180_read_temp(struct bmp280_data *data, int *val)
887{
888 int ret;
889 s32 adc_temp, comp_temp;
890
891 ret = bmp180_read_adc_temp(data, &adc_temp);
892 if (ret)
893 return ret;
894
895 comp_temp = bmp180_compensate_temp(data, adc_temp);
896
897 /*
898 * val might be NULL if we're called by the read_press routine,
899 * who only cares about the carry over t_fine value.
900 */
901 if (val) {
902 *val = comp_temp * 100;
903 return IIO_VAL_INT;
904 }
905
906 return 0;
907}
908
909static int bmp180_read_adc_press(struct bmp280_data *data, int *val)
910{
911 int ret;
912 __be32 tmp = 0;
Akinobu Mita62979902016-04-24 22:52:11 +0900913 u8 oss = data->oversampling_press;
Akinobu Mita6dba72e2016-04-24 22:52:10 +0900914
915 ret = bmp180_measure(data, BMP180_MEAS_PRESS_X(oss));
916 if (ret)
917 return ret;
918
919 ret = regmap_bulk_read(data->regmap, BMP180_REG_OUT_MSB, (u8 *)&tmp, 3);
920 if (ret)
921 return ret;
922
923 *val = (be32_to_cpu(tmp) >> 8) >> (8 - oss);
924
925 return 0;
926}
927
928/*
929 * Returns pressure in Pa, resolution is 1 Pa.
930 *
931 * Taken from datasheet, Section 3.5, "Calculating pressure and temperature".
932 */
933static u32 bmp180_compensate_press(struct bmp280_data *data, s32 adc_press)
934{
935 int ret;
936 s32 x1, x2, x3, p;
937 s32 b3, b6;
938 u32 b4, b7;
Akinobu Mita62979902016-04-24 22:52:11 +0900939 s32 oss = data->oversampling_press;
Akinobu Mita6dba72e2016-04-24 22:52:10 +0900940 struct bmp180_calib calib;
941
942 ret = bmp180_read_calib(data, &calib);
943 if (ret < 0) {
944 dev_err(&data->client->dev,
945 "failed to read calibration coefficients\n");
946 return ret;
947 }
948
949 b6 = data->t_fine - 4000;
950 x1 = (calib.B2 * (b6 * b6 >> 12)) >> 11;
951 x2 = calib.AC2 * b6 >> 11;
952 x3 = x1 + x2;
953 b3 = ((((s32)calib.AC1 * 4 + x3) << oss) + 2) / 4;
954 x1 = calib.AC3 * b6 >> 13;
955 x2 = (calib.B1 * ((b6 * b6) >> 12)) >> 16;
956 x3 = (x1 + x2 + 2) >> 2;
957 b4 = calib.AC4 * (u32)(x3 + 32768) >> 15;
958 b7 = ((u32)adc_press - b3) * (50000 >> oss);
959 if (b7 < 0x80000000)
960 p = (b7 * 2) / b4;
961 else
962 p = (b7 / b4) * 2;
963
964 x1 = (p >> 8) * (p >> 8);
965 x1 = (x1 * 3038) >> 16;
966 x2 = (-7357 * p) >> 16;
967
968 return p + ((x1 + x2 + 3791) >> 4);
969}
970
971static int bmp180_read_press(struct bmp280_data *data,
972 int *val, int *val2)
973{
974 int ret;
975 s32 adc_press;
976 u32 comp_press;
977
978 /* Read and compensate temperature so we get a reading of t_fine. */
979 ret = bmp180_read_temp(data, NULL);
980 if (ret)
981 return ret;
982
983 ret = bmp180_read_adc_press(data, &adc_press);
984 if (ret)
985 return ret;
986
987 comp_press = bmp180_compensate_press(data, adc_press);
988
989 *val = comp_press;
990 *val2 = 1000;
991
992 return IIO_VAL_FRACTIONAL;
993}
994
995static int bmp180_chip_config(struct bmp280_data *data)
996{
997 return 0;
998}
999
Akinobu Mita62979902016-04-24 22:52:11 +09001000static const int bmp180_oversampling_temp_avail[] = { 1 };
1001static const int bmp180_oversampling_press_avail[] = { 1, 2, 4, 8 };
1002
Akinobu Mita6dba72e2016-04-24 22:52:10 +09001003static const struct bmp280_chip_info bmp180_chip_info = {
1004 .regmap_config = &bmp180_regmap_config,
Akinobu Mita62979902016-04-24 22:52:11 +09001005
1006 .oversampling_temp_avail = bmp180_oversampling_temp_avail,
1007 .num_oversampling_temp_avail =
1008 ARRAY_SIZE(bmp180_oversampling_temp_avail),
1009
1010 .oversampling_press_avail = bmp180_oversampling_press_avail,
1011 .num_oversampling_press_avail =
1012 ARRAY_SIZE(bmp180_oversampling_press_avail),
1013
Akinobu Mita6dba72e2016-04-24 22:52:10 +09001014 .chip_config = bmp180_chip_config,
1015 .read_temp = bmp180_read_temp,
1016 .read_press = bmp180_read_press,
1017};
1018
Vlad Dogarud5c94562014-10-21 11:09:58 +03001019static int bmp280_probe(struct i2c_client *client,
1020 const struct i2c_device_id *id)
1021{
1022 int ret;
1023 struct iio_dev *indio_dev;
1024 struct bmp280_data *data;
1025 unsigned int chip_id;
1026
1027 indio_dev = devm_iio_device_alloc(&client->dev, sizeof(*data));
1028 if (!indio_dev)
1029 return -ENOMEM;
1030
Vlad Dogarud5c94562014-10-21 11:09:58 +03001031 data = iio_priv(indio_dev);
1032 mutex_init(&data->lock);
1033 data->client = client;
1034
1035 indio_dev->dev.parent = &client->dev;
1036 indio_dev->name = id->name;
1037 indio_dev->channels = bmp280_channels;
Vlad Dogarud5c94562014-10-21 11:09:58 +03001038 indio_dev->info = &bmp280_info;
1039 indio_dev->modes = INDIO_DIRECT_MODE;
1040
Akinobu Mita6dba72e2016-04-24 22:52:10 +09001041 switch (id->driver_data) {
1042 case BMP180_CHIP_ID:
Matt Ranostay14beaa82016-05-04 22:57:30 -07001043 indio_dev->num_channels = 2;
Akinobu Mita6dba72e2016-04-24 22:52:10 +09001044 data->chip_info = &bmp180_chip_info;
Akinobu Mita62979902016-04-24 22:52:11 +09001045 data->oversampling_press = ilog2(8);
1046 data->oversampling_temp = ilog2(1);
Akinobu Mita6dba72e2016-04-24 22:52:10 +09001047 break;
1048 case BMP280_CHIP_ID:
Matt Ranostay14beaa82016-05-04 22:57:30 -07001049 indio_dev->num_channels = 2;
Akinobu Mita6dba72e2016-04-24 22:52:10 +09001050 data->chip_info = &bmp280_chip_info;
Akinobu Mita62979902016-04-24 22:52:11 +09001051 data->oversampling_press = ilog2(16);
1052 data->oversampling_temp = ilog2(2);
Akinobu Mita6dba72e2016-04-24 22:52:10 +09001053 break;
Matt Ranostay14beaa82016-05-04 22:57:30 -07001054 case BME280_CHIP_ID:
1055 indio_dev->num_channels = 3;
1056 data->chip_info = &bme280_chip_info;
1057 data->oversampling_press = ilog2(16);
1058 data->oversampling_humid = ilog2(16);
1059 data->oversampling_temp = ilog2(2);
1060 break;
Akinobu Mita6dba72e2016-04-24 22:52:10 +09001061 default:
1062 return -EINVAL;
1063 }
1064
1065 data->regmap = devm_regmap_init_i2c(client,
1066 data->chip_info->regmap_config);
Vlad Dogarud5c94562014-10-21 11:09:58 +03001067 if (IS_ERR(data->regmap)) {
1068 dev_err(&client->dev, "failed to allocate register map\n");
1069 return PTR_ERR(data->regmap);
1070 }
1071
1072 ret = regmap_read(data->regmap, BMP280_REG_ID, &chip_id);
1073 if (ret < 0)
1074 return ret;
Akinobu Mita6dba72e2016-04-24 22:52:10 +09001075 if (chip_id != id->driver_data) {
Vlad Dogarud5c94562014-10-21 11:09:58 +03001076 dev_err(&client->dev, "bad chip id. expected %x got %x\n",
1077 BMP280_CHIP_ID, chip_id);
1078 return -EINVAL;
1079 }
1080
Akinobu Mita6dba72e2016-04-24 22:52:10 +09001081 ret = data->chip_info->chip_config(data);
Vlad Dogarud5c94562014-10-21 11:09:58 +03001082 if (ret < 0)
1083 return ret;
1084
1085 return devm_iio_device_register(&client->dev, indio_dev);
1086}
1087
1088static const struct acpi_device_id bmp280_acpi_match[] = {
Akinobu Mita6dba72e2016-04-24 22:52:10 +09001089 {"BMP0280", BMP280_CHIP_ID },
1090 {"BMP0180", BMP180_CHIP_ID },
1091 {"BMP0085", BMP180_CHIP_ID },
Matt Ranostay14beaa82016-05-04 22:57:30 -07001092 {"BME0280", BME280_CHIP_ID },
Vlad Dogarud5c94562014-10-21 11:09:58 +03001093 { },
1094};
1095MODULE_DEVICE_TABLE(acpi, bmp280_acpi_match);
1096
1097static const struct i2c_device_id bmp280_id[] = {
Akinobu Mita6dba72e2016-04-24 22:52:10 +09001098 {"bmp280", BMP280_CHIP_ID },
1099 {"bmp180", BMP180_CHIP_ID },
1100 {"bmp085", BMP180_CHIP_ID },
Matt Ranostay14beaa82016-05-04 22:57:30 -07001101 {"bme280", BME280_CHIP_ID },
Vlad Dogarud5c94562014-10-21 11:09:58 +03001102 { },
1103};
1104MODULE_DEVICE_TABLE(i2c, bmp280_id);
1105
1106static struct i2c_driver bmp280_driver = {
1107 .driver = {
1108 .name = "bmp280",
1109 .acpi_match_table = ACPI_PTR(bmp280_acpi_match),
1110 },
1111 .probe = bmp280_probe,
1112 .id_table = bmp280_id,
1113};
1114module_i2c_driver(bmp280_driver);
1115
1116MODULE_AUTHOR("Vlad Dogaru <vlad.dogaru@intel.com>");
Akinobu Mita6dba72e2016-04-24 22:52:10 +09001117MODULE_DESCRIPTION("Driver for Bosch Sensortec BMP180/BMP280 pressure and temperature sensor");
Vlad Dogarud5c94562014-10-21 11:09:58 +03001118MODULE_LICENSE("GPL v2");