df3bc5c3d3786d05c0e3ed4896e8d464a5ede396
[releases.git] / afe4403.c
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * AFE4403 Heart Rate Monitors and Low-Cost Pulse Oximeters
4  *
5  * Copyright (C) 2015-2016 Texas Instruments Incorporated - https://www.ti.com/
6  *      Andrew F. Davis <afd@ti.com>
7  */
8
9 #include <linux/device.h>
10 #include <linux/err.h>
11 #include <linux/interrupt.h>
12 #include <linux/kernel.h>
13 #include <linux/module.h>
14 #include <linux/regmap.h>
15 #include <linux/spi/spi.h>
16 #include <linux/sysfs.h>
17 #include <linux/regulator/consumer.h>
18
19 #include <linux/iio/iio.h>
20 #include <linux/iio/sysfs.h>
21 #include <linux/iio/buffer.h>
22 #include <linux/iio/trigger.h>
23 #include <linux/iio/triggered_buffer.h>
24 #include <linux/iio/trigger_consumer.h>
25
26 #include <asm/unaligned.h>
27
28 #include "afe440x.h"
29
30 #define AFE4403_DRIVER_NAME             "afe4403"
31
32 /* AFE4403 Registers */
33 #define AFE4403_TIAGAIN                 0x20
34 #define AFE4403_TIA_AMB_GAIN            0x21
35
36 enum afe4403_fields {
37         /* Gains */
38         F_RF_LED1, F_CF_LED1,
39         F_RF_LED, F_CF_LED,
40
41         /* LED Current */
42         F_ILED1, F_ILED2,
43
44         /* sentinel */
45         F_MAX_FIELDS
46 };
47
48 static const struct reg_field afe4403_reg_fields[] = {
49         /* Gains */
50         [F_RF_LED1]     = REG_FIELD(AFE4403_TIAGAIN, 0, 2),
51         [F_CF_LED1]     = REG_FIELD(AFE4403_TIAGAIN, 3, 7),
52         [F_RF_LED]      = REG_FIELD(AFE4403_TIA_AMB_GAIN, 0, 2),
53         [F_CF_LED]      = REG_FIELD(AFE4403_TIA_AMB_GAIN, 3, 7),
54         /* LED Current */
55         [F_ILED1]       = REG_FIELD(AFE440X_LEDCNTRL, 0, 7),
56         [F_ILED2]       = REG_FIELD(AFE440X_LEDCNTRL, 8, 15),
57 };
58
59 /**
60  * struct afe4403_data - AFE4403 device instance data
61  * @dev: Device structure
62  * @spi: SPI device handle
63  * @regmap: Register map of the device
64  * @fields: Register fields of the device
65  * @regulator: Pointer to the regulator for the IC
66  * @trig: IIO trigger for this device
67  * @irq: ADC_RDY line interrupt number
68  * @buffer: Used to construct data layout to push into IIO buffer.
69  */
70 struct afe4403_data {
71         struct device *dev;
72         struct spi_device *spi;
73         struct regmap *regmap;
74         struct regmap_field *fields[F_MAX_FIELDS];
75         struct regulator *regulator;
76         struct iio_trigger *trig;
77         int irq;
78         /* Ensure suitable alignment for timestamp */
79         s32 buffer[8] __aligned(8);
80 };
81
82 enum afe4403_chan_id {
83         LED2 = 1,
84         ALED2,
85         LED1,
86         ALED1,
87         LED2_ALED2,
88         LED1_ALED1,
89 };
90
91 static const unsigned int afe4403_channel_values[] = {
92         [LED2] = AFE440X_LED2VAL,
93         [ALED2] = AFE440X_ALED2VAL,
94         [LED1] = AFE440X_LED1VAL,
95         [ALED1] = AFE440X_ALED1VAL,
96         [LED2_ALED2] = AFE440X_LED2_ALED2VAL,
97         [LED1_ALED1] = AFE440X_LED1_ALED1VAL,
98 };
99
100 static const unsigned int afe4403_channel_leds[] = {
101         [LED2] = F_ILED2,
102         [LED1] = F_ILED1,
103 };
104
105 static const struct iio_chan_spec afe4403_channels[] = {
106         /* ADC values */
107         AFE440X_INTENSITY_CHAN(LED2, 0),
108         AFE440X_INTENSITY_CHAN(ALED2, 0),
109         AFE440X_INTENSITY_CHAN(LED1, 0),
110         AFE440X_INTENSITY_CHAN(ALED1, 0),
111         AFE440X_INTENSITY_CHAN(LED2_ALED2, 0),
112         AFE440X_INTENSITY_CHAN(LED1_ALED1, 0),
113         /* LED current */
114         AFE440X_CURRENT_CHAN(LED2),
115         AFE440X_CURRENT_CHAN(LED1),
116 };
117
118 static const struct afe440x_val_table afe4403_res_table[] = {
119         { 500000 }, { 250000 }, { 100000 }, { 50000 },
120         { 25000 }, { 10000 }, { 1000000 }, { 0 },
121 };
122 AFE440X_TABLE_ATTR(in_intensity_resistance_available, afe4403_res_table);
123
124 static const struct afe440x_val_table afe4403_cap_table[] = {
125         { 0, 5000 }, { 0, 10000 }, { 0, 20000 }, { 0, 25000 },
126         { 0, 30000 }, { 0, 35000 }, { 0, 45000 }, { 0, 50000 },
127         { 0, 55000 }, { 0, 60000 }, { 0, 70000 }, { 0, 75000 },
128         { 0, 80000 }, { 0, 85000 }, { 0, 95000 }, { 0, 100000 },
129         { 0, 155000 }, { 0, 160000 }, { 0, 170000 }, { 0, 175000 },
130         { 0, 180000 }, { 0, 185000 }, { 0, 195000 }, { 0, 200000 },
131         { 0, 205000 }, { 0, 210000 }, { 0, 220000 }, { 0, 225000 },
132         { 0, 230000 }, { 0, 235000 }, { 0, 245000 }, { 0, 250000 },
133 };
134 AFE440X_TABLE_ATTR(in_intensity_capacitance_available, afe4403_cap_table);
135
136 static ssize_t afe440x_show_register(struct device *dev,
137                                      struct device_attribute *attr,
138                                      char *buf)
139 {
140         struct iio_dev *indio_dev = dev_to_iio_dev(dev);
141         struct afe4403_data *afe = iio_priv(indio_dev);
142         struct afe440x_attr *afe440x_attr = to_afe440x_attr(attr);
143         unsigned int reg_val;
144         int vals[2];
145         int ret;
146
147         ret = regmap_field_read(afe->fields[afe440x_attr->field], &reg_val);
148         if (ret)
149                 return ret;
150
151         if (reg_val >= afe440x_attr->table_size)
152                 return -EINVAL;
153
154         vals[0] = afe440x_attr->val_table[reg_val].integer;
155         vals[1] = afe440x_attr->val_table[reg_val].fract;
156
157         return iio_format_value(buf, IIO_VAL_INT_PLUS_MICRO, 2, vals);
158 }
159
160 static ssize_t afe440x_store_register(struct device *dev,
161                                       struct device_attribute *attr,
162                                       const char *buf, size_t count)
163 {
164         struct iio_dev *indio_dev = dev_to_iio_dev(dev);
165         struct afe4403_data *afe = iio_priv(indio_dev);
166         struct afe440x_attr *afe440x_attr = to_afe440x_attr(attr);
167         int val, integer, fract, ret;
168
169         ret = iio_str_to_fixpoint(buf, 100000, &integer, &fract);
170         if (ret)
171                 return ret;
172
173         for (val = 0; val < afe440x_attr->table_size; val++)
174                 if (afe440x_attr->val_table[val].integer == integer &&
175                     afe440x_attr->val_table[val].fract == fract)
176                         break;
177         if (val == afe440x_attr->table_size)
178                 return -EINVAL;
179
180         ret = regmap_field_write(afe->fields[afe440x_attr->field], val);
181         if (ret)
182                 return ret;
183
184         return count;
185 }
186
187 static AFE440X_ATTR(in_intensity1_resistance, F_RF_LED, afe4403_res_table);
188 static AFE440X_ATTR(in_intensity1_capacitance, F_CF_LED, afe4403_cap_table);
189
190 static AFE440X_ATTR(in_intensity2_resistance, F_RF_LED, afe4403_res_table);
191 static AFE440X_ATTR(in_intensity2_capacitance, F_CF_LED, afe4403_cap_table);
192
193 static AFE440X_ATTR(in_intensity3_resistance, F_RF_LED1, afe4403_res_table);
194 static AFE440X_ATTR(in_intensity3_capacitance, F_CF_LED1, afe4403_cap_table);
195
196 static AFE440X_ATTR(in_intensity4_resistance, F_RF_LED1, afe4403_res_table);
197 static AFE440X_ATTR(in_intensity4_capacitance, F_CF_LED1, afe4403_cap_table);
198
199 static struct attribute *afe440x_attributes[] = {
200         &dev_attr_in_intensity_resistance_available.attr,
201         &dev_attr_in_intensity_capacitance_available.attr,
202         &afe440x_attr_in_intensity1_resistance.dev_attr.attr,
203         &afe440x_attr_in_intensity1_capacitance.dev_attr.attr,
204         &afe440x_attr_in_intensity2_resistance.dev_attr.attr,
205         &afe440x_attr_in_intensity2_capacitance.dev_attr.attr,
206         &afe440x_attr_in_intensity3_resistance.dev_attr.attr,
207         &afe440x_attr_in_intensity3_capacitance.dev_attr.attr,
208         &afe440x_attr_in_intensity4_resistance.dev_attr.attr,
209         &afe440x_attr_in_intensity4_capacitance.dev_attr.attr,
210         NULL
211 };
212
213 static const struct attribute_group afe440x_attribute_group = {
214         .attrs = afe440x_attributes
215 };
216
217 static int afe4403_read(struct afe4403_data *afe, unsigned int reg, u32 *val)
218 {
219         u8 tx[4] = {AFE440X_CONTROL0, 0x0, 0x0, AFE440X_CONTROL0_READ};
220         u8 rx[3];
221         int ret;
222
223         /* Enable reading from the device */
224         ret = spi_write_then_read(afe->spi, tx, 4, NULL, 0);
225         if (ret)
226                 return ret;
227
228         ret = spi_write_then_read(afe->spi, &reg, 1, rx, sizeof(rx));
229         if (ret)
230                 return ret;
231
232         *val = get_unaligned_be24(&rx[0]);
233
234         /* Disable reading from the device */
235         tx[3] = AFE440X_CONTROL0_WRITE;
236         ret = spi_write_then_read(afe->spi, tx, 4, NULL, 0);
237         if (ret)
238                 return ret;
239
240         return 0;
241 }
242
243 static int afe4403_read_raw(struct iio_dev *indio_dev,
244                             struct iio_chan_spec const *chan,
245                             int *val, int *val2, long mask)
246 {
247         struct afe4403_data *afe = iio_priv(indio_dev);
248         unsigned int reg, field;
249         int ret;
250
251         switch (chan->type) {
252         case IIO_INTENSITY:
253                 switch (mask) {
254                 case IIO_CHAN_INFO_RAW:
255                         reg = afe4403_channel_values[chan->address];
256                         ret = afe4403_read(afe, reg, val);
257                         if (ret)
258                                 return ret;
259                         return IIO_VAL_INT;
260                 }
261                 break;
262         case IIO_CURRENT:
263                 switch (mask) {
264                 case IIO_CHAN_INFO_RAW:
265                         field = afe4403_channel_leds[chan->address];
266                         ret = regmap_field_read(afe->fields[field], val);
267                         if (ret)
268                                 return ret;
269                         return IIO_VAL_INT;
270                 case IIO_CHAN_INFO_SCALE:
271                         *val = 0;
272                         *val2 = 800000;
273                         return IIO_VAL_INT_PLUS_MICRO;
274                 }
275                 break;
276         default:
277                 break;
278         }
279
280         return -EINVAL;
281 }
282
283 static int afe4403_write_raw(struct iio_dev *indio_dev,
284                              struct iio_chan_spec const *chan,
285                              int val, int val2, long mask)
286 {
287         struct afe4403_data *afe = iio_priv(indio_dev);
288         unsigned int field = afe4403_channel_leds[chan->address];
289
290         switch (chan->type) {
291         case IIO_CURRENT:
292                 switch (mask) {
293                 case IIO_CHAN_INFO_RAW:
294                         return regmap_field_write(afe->fields[field], val);
295                 }
296                 break;
297         default:
298                 break;
299         }
300
301         return -EINVAL;
302 }
303
304 static const struct iio_info afe4403_iio_info = {
305         .attrs = &afe440x_attribute_group,
306         .read_raw = afe4403_read_raw,
307         .write_raw = afe4403_write_raw,
308 };
309
310 static irqreturn_t afe4403_trigger_handler(int irq, void *private)
311 {
312         struct iio_poll_func *pf = private;
313         struct iio_dev *indio_dev = pf->indio_dev;
314         struct afe4403_data *afe = iio_priv(indio_dev);
315         int ret, bit, i = 0;
316         u8 tx[4] = {AFE440X_CONTROL0, 0x0, 0x0, AFE440X_CONTROL0_READ};
317         u8 rx[3];
318
319         /* Enable reading from the device */
320         ret = spi_write_then_read(afe->spi, tx, 4, NULL, 0);
321         if (ret)
322                 goto err;
323
324         for_each_set_bit(bit, indio_dev->active_scan_mask,
325                          indio_dev->masklength) {
326                 ret = spi_write_then_read(afe->spi,
327                                           &afe4403_channel_values[bit], 1,
328                                           rx, sizeof(rx));
329                 if (ret)
330                         goto err;
331
332                 afe->buffer[i++] = get_unaligned_be24(&rx[0]);
333         }
334
335         /* Disable reading from the device */
336         tx[3] = AFE440X_CONTROL0_WRITE;
337         ret = spi_write_then_read(afe->spi, tx, 4, NULL, 0);
338         if (ret)
339                 goto err;
340
341         iio_push_to_buffers_with_timestamp(indio_dev, afe->buffer,
342                                            pf->timestamp);
343 err:
344         iio_trigger_notify_done(indio_dev->trig);
345
346         return IRQ_HANDLED;
347 }
348
349 #define AFE4403_TIMING_PAIRS                    \
350         { AFE440X_LED2STC,      0x000050 },     \
351         { AFE440X_LED2ENDC,     0x0003e7 },     \
352         { AFE440X_LED1LEDSTC,   0x0007d0 },     \
353         { AFE440X_LED1LEDENDC,  0x000bb7 },     \
354         { AFE440X_ALED2STC,     0x000438 },     \
355         { AFE440X_ALED2ENDC,    0x0007cf },     \
356         { AFE440X_LED1STC,      0x000820 },     \
357         { AFE440X_LED1ENDC,     0x000bb7 },     \
358         { AFE440X_LED2LEDSTC,   0x000000 },     \
359         { AFE440X_LED2LEDENDC,  0x0003e7 },     \
360         { AFE440X_ALED1STC,     0x000c08 },     \
361         { AFE440X_ALED1ENDC,    0x000f9f },     \
362         { AFE440X_LED2CONVST,   0x0003ef },     \
363         { AFE440X_LED2CONVEND,  0x0007cf },     \
364         { AFE440X_ALED2CONVST,  0x0007d7 },     \
365         { AFE440X_ALED2CONVEND, 0x000bb7 },     \
366         { AFE440X_LED1CONVST,   0x000bbf },     \
367         { AFE440X_LED1CONVEND,  0x009c3f },     \
368         { AFE440X_ALED1CONVST,  0x000fa7 },     \
369         { AFE440X_ALED1CONVEND, 0x001387 },     \
370         { AFE440X_ADCRSTSTCT0,  0x0003e8 },     \
371         { AFE440X_ADCRSTENDCT0, 0x0003eb },     \
372         { AFE440X_ADCRSTSTCT1,  0x0007d0 },     \
373         { AFE440X_ADCRSTENDCT1, 0x0007d3 },     \
374         { AFE440X_ADCRSTSTCT2,  0x000bb8 },     \
375         { AFE440X_ADCRSTENDCT2, 0x000bbb },     \
376         { AFE440X_ADCRSTSTCT3,  0x000fa0 },     \
377         { AFE440X_ADCRSTENDCT3, 0x000fa3 },     \
378         { AFE440X_PRPCOUNT,     0x009c3f },     \
379         { AFE440X_PDNCYCLESTC,  0x001518 },     \
380         { AFE440X_PDNCYCLEENDC, 0x00991f }
381
382 static const struct reg_sequence afe4403_reg_sequences[] = {
383         AFE4403_TIMING_PAIRS,
384         { AFE440X_CONTROL1, AFE440X_CONTROL1_TIMEREN },
385         { AFE4403_TIAGAIN, AFE440X_TIAGAIN_ENSEPGAIN },
386 };
387
388 static const struct regmap_range afe4403_yes_ranges[] = {
389         regmap_reg_range(AFE440X_LED2VAL, AFE440X_LED1_ALED1VAL),
390 };
391
392 static const struct regmap_access_table afe4403_volatile_table = {
393         .yes_ranges = afe4403_yes_ranges,
394         .n_yes_ranges = ARRAY_SIZE(afe4403_yes_ranges),
395 };
396
397 static const struct regmap_config afe4403_regmap_config = {
398         .reg_bits = 8,
399         .val_bits = 24,
400
401         .max_register = AFE440X_PDNCYCLEENDC,
402         .cache_type = REGCACHE_RBTREE,
403         .volatile_table = &afe4403_volatile_table,
404 };
405
406 static const struct of_device_id afe4403_of_match[] = {
407         { .compatible = "ti,afe4403", },
408         { /* sentinel */ }
409 };
410 MODULE_DEVICE_TABLE(of, afe4403_of_match);
411
412 static int afe4403_suspend(struct device *dev)
413 {
414         struct iio_dev *indio_dev = spi_get_drvdata(to_spi_device(dev));
415         struct afe4403_data *afe = iio_priv(indio_dev);
416         int ret;
417
418         ret = regmap_update_bits(afe->regmap, AFE440X_CONTROL2,
419                                  AFE440X_CONTROL2_PDN_AFE,
420                                  AFE440X_CONTROL2_PDN_AFE);
421         if (ret)
422                 return ret;
423
424         ret = regulator_disable(afe->regulator);
425         if (ret) {
426                 dev_err(dev, "Unable to disable regulator\n");
427                 return ret;
428         }
429
430         return 0;
431 }
432
433 static int afe4403_resume(struct device *dev)
434 {
435         struct iio_dev *indio_dev = spi_get_drvdata(to_spi_device(dev));
436         struct afe4403_data *afe = iio_priv(indio_dev);
437         int ret;
438
439         ret = regulator_enable(afe->regulator);
440         if (ret) {
441                 dev_err(dev, "Unable to enable regulator\n");
442                 return ret;
443         }
444
445         ret = regmap_update_bits(afe->regmap, AFE440X_CONTROL2,
446                                  AFE440X_CONTROL2_PDN_AFE, 0);
447         if (ret)
448                 return ret;
449
450         return 0;
451 }
452
453 static DEFINE_SIMPLE_DEV_PM_OPS(afe4403_pm_ops, afe4403_suspend,
454                                 afe4403_resume);
455
456 static int afe4403_probe(struct spi_device *spi)
457 {
458         struct iio_dev *indio_dev;
459         struct afe4403_data *afe;
460         int i, ret;
461
462         indio_dev = devm_iio_device_alloc(&spi->dev, sizeof(*afe));
463         if (!indio_dev)
464                 return -ENOMEM;
465
466         afe = iio_priv(indio_dev);
467         spi_set_drvdata(spi, indio_dev);
468
469         afe->dev = &spi->dev;
470         afe->spi = spi;
471         afe->irq = spi->irq;
472
473         afe->regmap = devm_regmap_init_spi(spi, &afe4403_regmap_config);
474         if (IS_ERR(afe->regmap)) {
475                 dev_err(afe->dev, "Unable to allocate register map\n");
476                 return PTR_ERR(afe->regmap);
477         }
478
479         for (i = 0; i < F_MAX_FIELDS; i++) {
480                 afe->fields[i] = devm_regmap_field_alloc(afe->dev, afe->regmap,
481                                                          afe4403_reg_fields[i]);
482                 if (IS_ERR(afe->fields[i])) {
483                         dev_err(afe->dev, "Unable to allocate regmap fields\n");
484                         return PTR_ERR(afe->fields[i]);
485                 }
486         }
487
488         afe->regulator = devm_regulator_get(afe->dev, "tx_sup");
489         if (IS_ERR(afe->regulator))
490                 return dev_err_probe(afe->dev, PTR_ERR(afe->regulator),
491                                      "Unable to get regulator\n");
492
493         ret = regulator_enable(afe->regulator);
494         if (ret) {
495                 dev_err(afe->dev, "Unable to enable regulator\n");
496                 return ret;
497         }
498
499         ret = regmap_write(afe->regmap, AFE440X_CONTROL0,
500                            AFE440X_CONTROL0_SW_RESET);
501         if (ret) {
502                 dev_err(afe->dev, "Unable to reset device\n");
503                 goto err_disable_reg;
504         }
505
506         ret = regmap_multi_reg_write(afe->regmap, afe4403_reg_sequences,
507                                      ARRAY_SIZE(afe4403_reg_sequences));
508         if (ret) {
509                 dev_err(afe->dev, "Unable to set register defaults\n");
510                 goto err_disable_reg;
511         }
512
513         indio_dev->modes = INDIO_DIRECT_MODE;
514         indio_dev->channels = afe4403_channels;
515         indio_dev->num_channels = ARRAY_SIZE(afe4403_channels);
516         indio_dev->name = AFE4403_DRIVER_NAME;
517         indio_dev->info = &afe4403_iio_info;
518
519         if (afe->irq > 0) {
520                 afe->trig = devm_iio_trigger_alloc(afe->dev,
521                                                    "%s-dev%d",
522                                                    indio_dev->name,
523                                                    iio_device_id(indio_dev));
524                 if (!afe->trig) {
525                         dev_err(afe->dev, "Unable to allocate IIO trigger\n");
526                         ret = -ENOMEM;
527                         goto err_disable_reg;
528                 }
529
530                 iio_trigger_set_drvdata(afe->trig, indio_dev);
531
532                 ret = iio_trigger_register(afe->trig);
533                 if (ret) {
534                         dev_err(afe->dev, "Unable to register IIO trigger\n");
535                         goto err_disable_reg;
536                 }
537
538                 ret = devm_request_threaded_irq(afe->dev, afe->irq,
539                                                 iio_trigger_generic_data_rdy_poll,
540                                                 NULL, IRQF_ONESHOT,
541                                                 AFE4403_DRIVER_NAME,
542                                                 afe->trig);
543                 if (ret) {
544                         dev_err(afe->dev, "Unable to request IRQ\n");
545                         goto err_trig;
546                 }
547         }
548
549         ret = iio_triggered_buffer_setup(indio_dev, &iio_pollfunc_store_time,
550                                          afe4403_trigger_handler, NULL);
551         if (ret) {
552                 dev_err(afe->dev, "Unable to setup buffer\n");
553                 goto err_trig;
554         }
555
556         ret = iio_device_register(indio_dev);
557         if (ret) {
558                 dev_err(afe->dev, "Unable to register IIO device\n");
559                 goto err_buff;
560         }
561
562         return 0;
563
564 err_buff:
565         iio_triggered_buffer_cleanup(indio_dev);
566 err_trig:
567         if (afe->irq > 0)
568                 iio_trigger_unregister(afe->trig);
569 err_disable_reg:
570         regulator_disable(afe->regulator);
571
572         return ret;
573 }
574
575 static void afe4403_remove(struct spi_device *spi)
576 {
577         struct iio_dev *indio_dev = spi_get_drvdata(spi);
578         struct afe4403_data *afe = iio_priv(indio_dev);
579         int ret;
580
581         iio_device_unregister(indio_dev);
582
583         iio_triggered_buffer_cleanup(indio_dev);
584
585         if (afe->irq > 0)
586                 iio_trigger_unregister(afe->trig);
587
588         ret = regulator_disable(afe->regulator);
589         if (ret)
590                 dev_warn(afe->dev, "Unable to disable regulator\n");
591 }
592
593 static const struct spi_device_id afe4403_ids[] = {
594         { "afe4403", 0 },
595         { /* sentinel */ }
596 };
597 MODULE_DEVICE_TABLE(spi, afe4403_ids);
598
599 static struct spi_driver afe4403_spi_driver = {
600         .driver = {
601                 .name = AFE4403_DRIVER_NAME,
602                 .of_match_table = afe4403_of_match,
603                 .pm = pm_sleep_ptr(&afe4403_pm_ops),
604         },
605         .probe = afe4403_probe,
606         .remove = afe4403_remove,
607         .id_table = afe4403_ids,
608 };
609 module_spi_driver(afe4403_spi_driver);
610
611 MODULE_AUTHOR("Andrew F. Davis <afd@ti.com>");
612 MODULE_DESCRIPTION("TI AFE4403 Heart Rate Monitor and Pulse Oximeter AFE");
613 MODULE_LICENSE("GPL v2");