Merge branch 'perf/core' of git://git.kernel.org/pub/scm/linux/kernel/git/acme/linux...
[deliverable/linux.git] / drivers / staging / iio / adc / ad7793.c
1 /*
2 * AD7792/AD7793 SPI ADC driver
3 *
4 * Copyright 2011 Analog Devices Inc.
5 *
6 * Licensed under the GPL-2.
7 */
8
9 #include <linux/interrupt.h>
10 #include <linux/device.h>
11 #include <linux/kernel.h>
12 #include <linux/slab.h>
13 #include <linux/sysfs.h>
14 #include <linux/spi/spi.h>
15 #include <linux/regulator/consumer.h>
16 #include <linux/err.h>
17 #include <linux/sched.h>
18 #include <linux/delay.h>
19
20 #include "../iio.h"
21 #include "../sysfs.h"
22 #include "../ring_generic.h"
23 #include "../ring_sw.h"
24 #include "../trigger.h"
25 #include "adc.h"
26
27 #include "ad7793.h"
28
29 /* NOTE:
30 * The AD7792/AD7793 features a dual use data out ready DOUT/RDY output.
31 * In order to avoid contentions on the SPI bus, it's therefore necessary
32 * to use spi bus locking.
33 *
34 * The DOUT/RDY output must also be wired to an interrupt capable GPIO.
35 */
36
37 struct ad7793_chip_info {
38 struct iio_chan_spec channel[7];
39 };
40
41 struct ad7793_state {
42 struct spi_device *spi;
43 struct iio_trigger *trig;
44 const struct ad7793_chip_info *chip_info;
45 struct regulator *reg;
46 struct ad7793_platform_data *pdata;
47 wait_queue_head_t wq_data_avail;
48 bool done;
49 bool irq_dis;
50 u16 int_vref_mv;
51 u16 mode;
52 u16 conf;
53 u32 scale_avail[8][2];
54 u32 available_scan_masks[7];
55 /*
56 * DMA (thus cache coherency maintenance) requires the
57 * transfer buffers to live in their own cache lines.
58 */
59 u8 data[4] ____cacheline_aligned;
60 };
61
62 enum ad7793_supported_device_ids {
63 ID_AD7792,
64 ID_AD7793,
65 };
66
67 static int __ad7793_write_reg(struct ad7793_state *st, bool locked,
68 bool cs_change, unsigned char reg,
69 unsigned size, unsigned val)
70 {
71 u8 *data = st->data;
72 struct spi_transfer t = {
73 .tx_buf = data,
74 .len = size + 1,
75 .cs_change = cs_change,
76 };
77 struct spi_message m;
78
79 data[0] = AD7793_COMM_WRITE | AD7793_COMM_ADDR(reg);
80
81 switch (size) {
82 case 3:
83 data[1] = val >> 16;
84 data[2] = val >> 8;
85 data[3] = val;
86 break;
87 case 2:
88 data[1] = val >> 8;
89 data[2] = val;
90 break;
91 case 1:
92 data[1] = val;
93 break;
94 default:
95 return -EINVAL;
96 }
97
98 spi_message_init(&m);
99 spi_message_add_tail(&t, &m);
100
101 if (locked)
102 return spi_sync_locked(st->spi, &m);
103 else
104 return spi_sync(st->spi, &m);
105 }
106
107 static int ad7793_write_reg(struct ad7793_state *st,
108 unsigned reg, unsigned size, unsigned val)
109 {
110 return __ad7793_write_reg(st, false, false, reg, size, val);
111 }
112
113 static int __ad7793_read_reg(struct ad7793_state *st, bool locked,
114 bool cs_change, unsigned char reg,
115 int *val, unsigned size)
116 {
117 u8 *data = st->data;
118 int ret;
119 struct spi_transfer t[] = {
120 {
121 .tx_buf = data,
122 .len = 1,
123 }, {
124 .rx_buf = data,
125 .len = size,
126 .cs_change = cs_change,
127 },
128 };
129 struct spi_message m;
130
131 data[0] = AD7793_COMM_READ | AD7793_COMM_ADDR(reg);
132
133 spi_message_init(&m);
134 spi_message_add_tail(&t[0], &m);
135 spi_message_add_tail(&t[1], &m);
136
137 if (locked)
138 ret = spi_sync_locked(st->spi, &m);
139 else
140 ret = spi_sync(st->spi, &m);
141
142 if (ret < 0)
143 return ret;
144
145 switch (size) {
146 case 3:
147 *val = data[0] << 16 | data[1] << 8 | data[2];
148 break;
149 case 2:
150 *val = data[0] << 8 | data[1];
151 break;
152 case 1:
153 *val = data[0];
154 break;
155 default:
156 return -EINVAL;
157 }
158
159 return 0;
160 }
161
162 static int ad7793_read_reg(struct ad7793_state *st,
163 unsigned reg, int *val, unsigned size)
164 {
165 return __ad7793_read_reg(st, 0, 0, reg, val, size);
166 }
167
168 static int ad7793_read(struct ad7793_state *st, unsigned ch,
169 unsigned len, int *val)
170 {
171 int ret;
172 st->conf = (st->conf & ~AD7793_CONF_CHAN(-1)) | AD7793_CONF_CHAN(ch);
173 st->mode = (st->mode & ~AD7793_MODE_SEL(-1)) |
174 AD7793_MODE_SEL(AD7793_MODE_SINGLE);
175
176 ad7793_write_reg(st, AD7793_REG_CONF, sizeof(st->conf), st->conf);
177
178 spi_bus_lock(st->spi->master);
179 st->done = false;
180
181 ret = __ad7793_write_reg(st, 1, 1, AD7793_REG_MODE,
182 sizeof(st->mode), st->mode);
183 if (ret < 0)
184 goto out;
185
186 st->irq_dis = false;
187 enable_irq(st->spi->irq);
188 wait_event_interruptible(st->wq_data_avail, st->done);
189
190 ret = __ad7793_read_reg(st, 1, 0, AD7793_REG_DATA, val, len);
191 out:
192 spi_bus_unlock(st->spi->master);
193
194 return ret;
195 }
196
197 static int ad7793_calibrate(struct ad7793_state *st, unsigned mode, unsigned ch)
198 {
199 int ret;
200
201 st->conf = (st->conf & ~AD7793_CONF_CHAN(-1)) | AD7793_CONF_CHAN(ch);
202 st->mode = (st->mode & ~AD7793_MODE_SEL(-1)) | AD7793_MODE_SEL(mode);
203
204 ad7793_write_reg(st, AD7793_REG_CONF, sizeof(st->conf), st->conf);
205
206 spi_bus_lock(st->spi->master);
207 st->done = false;
208
209 ret = __ad7793_write_reg(st, 1, 1, AD7793_REG_MODE,
210 sizeof(st->mode), st->mode);
211 if (ret < 0)
212 goto out;
213
214 st->irq_dis = false;
215 enable_irq(st->spi->irq);
216 wait_event_interruptible(st->wq_data_avail, st->done);
217
218 st->mode = (st->mode & ~AD7793_MODE_SEL(-1)) |
219 AD7793_MODE_SEL(AD7793_MODE_IDLE);
220
221 ret = __ad7793_write_reg(st, 1, 0, AD7793_REG_MODE,
222 sizeof(st->mode), st->mode);
223 out:
224 spi_bus_unlock(st->spi->master);
225
226 return ret;
227 }
228
229 static const u8 ad7793_calib_arr[6][2] = {
230 {AD7793_MODE_CAL_INT_ZERO, AD7793_CH_AIN1P_AIN1M},
231 {AD7793_MODE_CAL_INT_FULL, AD7793_CH_AIN1P_AIN1M},
232 {AD7793_MODE_CAL_INT_ZERO, AD7793_CH_AIN2P_AIN2M},
233 {AD7793_MODE_CAL_INT_FULL, AD7793_CH_AIN2P_AIN2M},
234 {AD7793_MODE_CAL_INT_ZERO, AD7793_CH_AIN3P_AIN3M},
235 {AD7793_MODE_CAL_INT_FULL, AD7793_CH_AIN3P_AIN3M}
236 };
237
238 static int ad7793_calibrate_all(struct ad7793_state *st)
239 {
240 int i, ret;
241
242 for (i = 0; i < ARRAY_SIZE(ad7793_calib_arr); i++) {
243 ret = ad7793_calibrate(st, ad7793_calib_arr[i][0],
244 ad7793_calib_arr[i][1]);
245 if (ret)
246 goto out;
247 }
248
249 return 0;
250 out:
251 dev_err(&st->spi->dev, "Calibration failed\n");
252 return ret;
253 }
254
255 static int ad7793_setup(struct ad7793_state *st)
256 {
257 int i, ret = -1;
258 unsigned long long scale_uv;
259 u32 id;
260
261 /* reset the serial interface */
262 ret = spi_write(st->spi, (u8 *)&ret, sizeof(ret));
263 if (ret < 0)
264 goto out;
265 msleep(1); /* Wait for at least 500us */
266
267 /* write/read test for device presence */
268 ret = ad7793_read_reg(st, AD7793_REG_ID, &id, 1);
269 if (ret)
270 goto out;
271
272 id &= AD7793_ID_MASK;
273
274 if (!((id == AD7792_ID) || (id == AD7793_ID))) {
275 dev_err(&st->spi->dev, "device ID query failed\n");
276 goto out;
277 }
278
279 st->mode = (st->pdata->mode & ~AD7793_MODE_SEL(-1)) |
280 AD7793_MODE_SEL(AD7793_MODE_IDLE);
281 st->conf = st->pdata->conf & ~AD7793_CONF_CHAN(-1);
282
283 ret = ad7793_write_reg(st, AD7793_REG_MODE, sizeof(st->mode), st->mode);
284 if (ret)
285 goto out;
286
287 ret = ad7793_write_reg(st, AD7793_REG_CONF, sizeof(st->conf), st->conf);
288 if (ret)
289 goto out;
290
291 ret = ad7793_write_reg(st, AD7793_REG_IO,
292 sizeof(st->pdata->io), st->pdata->io);
293 if (ret)
294 goto out;
295
296 ret = ad7793_calibrate_all(st);
297 if (ret)
298 goto out;
299
300 /* Populate available ADC input ranges */
301 for (i = 0; i < ARRAY_SIZE(st->scale_avail); i++) {
302 scale_uv = ((u64)st->int_vref_mv * 100000000)
303 >> (st->chip_info->channel[0].scan_type.realbits -
304 (!!(st->conf & AD7793_CONF_UNIPOLAR) ? 0 : 1));
305 scale_uv >>= i;
306
307 st->scale_avail[i][1] = do_div(scale_uv, 100000000) * 10;
308 st->scale_avail[i][0] = scale_uv;
309 }
310
311 return 0;
312 out:
313 dev_err(&st->spi->dev, "setup failed\n");
314 return ret;
315 }
316
317 static int ad7793_scan_from_ring(struct ad7793_state *st, unsigned ch, int *val)
318 {
319 struct iio_ring_buffer *ring = iio_priv_to_dev(st)->ring;
320 int ret;
321 s64 dat64[2];
322 u32 *dat32 = (u32 *)dat64;
323
324 if (!(ring->scan_mask & (1 << ch)))
325 return -EBUSY;
326
327 ret = ring->access->read_last(ring, (u8 *) &dat64);
328 if (ret)
329 return ret;
330
331 *val = *dat32;
332
333 return 0;
334 }
335
336 static int ad7793_ring_preenable(struct iio_dev *indio_dev)
337 {
338 struct ad7793_state *st = iio_priv(indio_dev);
339 struct iio_ring_buffer *ring = indio_dev->ring;
340 size_t d_size;
341 unsigned channel;
342
343 if (!ring->scan_count)
344 return -EINVAL;
345
346 channel = __ffs(ring->scan_mask);
347
348 d_size = ring->scan_count *
349 indio_dev->channels[0].scan_type.storagebits / 8;
350
351 if (ring->scan_timestamp) {
352 d_size += sizeof(s64);
353
354 if (d_size % sizeof(s64))
355 d_size += sizeof(s64) - (d_size % sizeof(s64));
356 }
357
358 if (indio_dev->ring->access->set_bytes_per_datum)
359 indio_dev->ring->access->set_bytes_per_datum(indio_dev->ring,
360 d_size);
361
362 st->mode = (st->mode & ~AD7793_MODE_SEL(-1)) |
363 AD7793_MODE_SEL(AD7793_MODE_CONT);
364 st->conf = (st->conf & ~AD7793_CONF_CHAN(-1)) |
365 AD7793_CONF_CHAN(indio_dev->channels[channel].address);
366
367 ad7793_write_reg(st, AD7793_REG_CONF, sizeof(st->conf), st->conf);
368
369 spi_bus_lock(st->spi->master);
370 __ad7793_write_reg(st, 1, 1, AD7793_REG_MODE,
371 sizeof(st->mode), st->mode);
372
373 st->irq_dis = false;
374 enable_irq(st->spi->irq);
375
376 return 0;
377 }
378
379 static int ad7793_ring_postdisable(struct iio_dev *indio_dev)
380 {
381 struct ad7793_state *st = iio_priv(indio_dev);
382
383 st->mode = (st->mode & ~AD7793_MODE_SEL(-1)) |
384 AD7793_MODE_SEL(AD7793_MODE_IDLE);
385
386 st->done = false;
387 wait_event_interruptible(st->wq_data_avail, st->done);
388
389 if (!st->irq_dis)
390 disable_irq_nosync(st->spi->irq);
391
392 __ad7793_write_reg(st, 1, 0, AD7793_REG_MODE,
393 sizeof(st->mode), st->mode);
394
395 return spi_bus_unlock(st->spi->master);
396 }
397
398 /**
399 * ad7793_trigger_handler() bh of trigger launched polling to ring buffer
400 **/
401
402 static irqreturn_t ad7793_trigger_handler(int irq, void *p)
403 {
404 struct iio_poll_func *pf = p;
405 struct iio_dev *indio_dev = pf->private_data;
406 struct iio_ring_buffer *ring = indio_dev->ring;
407 struct ad7793_state *st = iio_priv(indio_dev);
408 s64 dat64[2];
409 s32 *dat32 = (s32 *)dat64;
410
411 if (ring->scan_count)
412 __ad7793_read_reg(st, 1, 1, AD7793_REG_DATA,
413 dat32,
414 indio_dev->channels[0].scan_type.realbits/8);
415
416 /* Guaranteed to be aligned with 8 byte boundary */
417 if (ring->scan_timestamp)
418 dat64[1] = pf->timestamp;
419
420 ring->access->store_to(ring, (u8 *)dat64, pf->timestamp);
421
422 iio_trigger_notify_done(indio_dev->trig);
423 st->irq_dis = false;
424 enable_irq(st->spi->irq);
425
426 return IRQ_HANDLED;
427 }
428
429 static const struct iio_ring_setup_ops ad7793_ring_setup_ops = {
430 .preenable = &ad7793_ring_preenable,
431 .postenable = &iio_triggered_ring_postenable,
432 .predisable = &iio_triggered_ring_predisable,
433 .postdisable = &ad7793_ring_postdisable,
434 };
435
436 static int ad7793_register_ring_funcs_and_init(struct iio_dev *indio_dev)
437 {
438 int ret;
439
440 indio_dev->ring = iio_sw_rb_allocate(indio_dev);
441 if (!indio_dev->ring) {
442 ret = -ENOMEM;
443 goto error_ret;
444 }
445 /* Effectively select the ring buffer implementation */
446 indio_dev->ring->access = &ring_sw_access_funcs;
447 indio_dev->pollfunc = iio_alloc_pollfunc(&iio_pollfunc_store_time,
448 &ad7793_trigger_handler,
449 IRQF_ONESHOT,
450 indio_dev,
451 "ad7793_consumer%d",
452 indio_dev->id);
453 if (indio_dev->pollfunc == NULL) {
454 ret = -ENOMEM;
455 goto error_deallocate_sw_rb;
456 }
457
458 /* Ring buffer functions - here trigger setup related */
459 indio_dev->ring->setup_ops = &ad7793_ring_setup_ops;
460
461 /* Flag that polled ring buffering is possible */
462 indio_dev->modes |= INDIO_RING_TRIGGERED;
463 return 0;
464
465 error_deallocate_sw_rb:
466 iio_sw_rb_free(indio_dev->ring);
467 error_ret:
468 return ret;
469 }
470
471 static void ad7793_ring_cleanup(struct iio_dev *indio_dev)
472 {
473 /* ensure that the trigger has been detached */
474 if (indio_dev->trig) {
475 iio_put_trigger(indio_dev->trig);
476 iio_trigger_dettach_poll_func(indio_dev->trig,
477 indio_dev->pollfunc);
478 }
479 iio_dealloc_pollfunc(indio_dev->pollfunc);
480 iio_sw_rb_free(indio_dev->ring);
481 }
482
483 /**
484 * ad7793_data_rdy_trig_poll() the event handler for the data rdy trig
485 **/
486 static irqreturn_t ad7793_data_rdy_trig_poll(int irq, void *private)
487 {
488 struct ad7793_state *st = iio_priv(private);
489
490 st->done = true;
491 wake_up_interruptible(&st->wq_data_avail);
492 disable_irq_nosync(irq);
493 st->irq_dis = true;
494 iio_trigger_poll(st->trig, iio_get_time_ns());
495
496 return IRQ_HANDLED;
497 }
498
499 static int ad7793_probe_trigger(struct iio_dev *indio_dev)
500 {
501 struct ad7793_state *st = iio_priv(indio_dev);
502 int ret;
503
504 st->trig = iio_allocate_trigger("%s-dev%d",
505 spi_get_device_id(st->spi)->name,
506 indio_dev->id);
507 if (st->trig == NULL) {
508 ret = -ENOMEM;
509 goto error_ret;
510 }
511
512 ret = request_irq(st->spi->irq,
513 ad7793_data_rdy_trig_poll,
514 IRQF_TRIGGER_LOW,
515 spi_get_device_id(st->spi)->name,
516 indio_dev);
517 if (ret)
518 goto error_free_trig;
519
520 disable_irq_nosync(st->spi->irq);
521 st->irq_dis = true;
522 st->trig->dev.parent = &st->spi->dev;
523 st->trig->owner = THIS_MODULE;
524 st->trig->private_data = indio_dev;
525
526 ret = iio_trigger_register(st->trig);
527
528 /* select default trigger */
529 indio_dev->trig = st->trig;
530 if (ret)
531 goto error_free_irq;
532
533 return 0;
534
535 error_free_irq:
536 free_irq(st->spi->irq, indio_dev);
537 error_free_trig:
538 iio_free_trigger(st->trig);
539 error_ret:
540 return ret;
541 }
542
543 static void ad7793_remove_trigger(struct iio_dev *indio_dev)
544 {
545 struct ad7793_state *st = iio_priv(indio_dev);
546
547 iio_trigger_unregister(st->trig);
548 free_irq(st->spi->irq, indio_dev);
549 iio_free_trigger(st->trig);
550 }
551
552 static const u16 sample_freq_avail[16] = {0, 470, 242, 123, 62, 50, 39, 33, 19,
553 17, 16, 12, 10, 8, 6, 4};
554
555 static ssize_t ad7793_read_frequency(struct device *dev,
556 struct device_attribute *attr,
557 char *buf)
558 {
559 struct iio_dev *indio_dev = dev_get_drvdata(dev);
560 struct ad7793_state *st = iio_priv(indio_dev);
561
562 return sprintf(buf, "%d\n",
563 sample_freq_avail[AD7793_MODE_RATE(st->mode)]);
564 }
565
566 static ssize_t ad7793_write_frequency(struct device *dev,
567 struct device_attribute *attr,
568 const char *buf,
569 size_t len)
570 {
571 struct iio_dev *indio_dev = dev_get_drvdata(dev);
572 struct ad7793_state *st = iio_priv(indio_dev);
573 long lval;
574 int i, ret;
575
576 mutex_lock(&indio_dev->mlock);
577 if (iio_ring_enabled(indio_dev)) {
578 mutex_unlock(&indio_dev->mlock);
579 return -EBUSY;
580 }
581 mutex_unlock(&indio_dev->mlock);
582
583 ret = strict_strtol(buf, 10, &lval);
584 if (ret)
585 return ret;
586
587 ret = -EINVAL;
588
589 for (i = 0; i < ARRAY_SIZE(sample_freq_avail); i++)
590 if (lval == sample_freq_avail[i]) {
591 mutex_lock(&indio_dev->mlock);
592 st->mode &= ~AD7793_MODE_RATE(-1);
593 st->mode |= AD7793_MODE_RATE(i);
594 ad7793_write_reg(st, AD7793_REG_MODE,
595 sizeof(st->mode), st->mode);
596 mutex_unlock(&indio_dev->mlock);
597 ret = 0;
598 }
599
600 return ret ? ret : len;
601 }
602
603 static IIO_DEV_ATTR_SAMP_FREQ(S_IWUSR | S_IRUGO,
604 ad7793_read_frequency,
605 ad7793_write_frequency);
606
607 static IIO_CONST_ATTR_SAMP_FREQ_AVAIL(
608 "470 242 123 62 50 39 33 19 17 16 12 10 8 6 4");
609
610 static ssize_t ad7793_show_scale_available(struct device *dev,
611 struct device_attribute *attr, char *buf)
612 {
613 struct iio_dev *indio_dev = dev_get_drvdata(dev);
614 struct ad7793_state *st = iio_priv(indio_dev);
615 int i, len = 0;
616
617 for (i = 0; i < ARRAY_SIZE(st->scale_avail); i++)
618 len += sprintf(buf + len, "%d.%09u ", st->scale_avail[i][0],
619 st->scale_avail[i][1]);
620
621 len += sprintf(buf + len, "\n");
622
623 return len;
624 }
625
626 static IIO_DEVICE_ATTR_NAMED(in_m_in_scale_available, in-in_scale_available,
627 S_IRUGO, ad7793_show_scale_available, NULL, 0);
628
629 static struct attribute *ad7793_attributes[] = {
630 &iio_dev_attr_sampling_frequency.dev_attr.attr,
631 &iio_const_attr_sampling_frequency_available.dev_attr.attr,
632 &iio_dev_attr_in_m_in_scale_available.dev_attr.attr,
633 NULL
634 };
635
636 static const struct attribute_group ad7793_attribute_group = {
637 .attrs = ad7793_attributes,
638 };
639
640 static int ad7793_read_raw(struct iio_dev *indio_dev,
641 struct iio_chan_spec const *chan,
642 int *val,
643 int *val2,
644 long m)
645 {
646 struct ad7793_state *st = iio_priv(indio_dev);
647 int ret, smpl = 0;
648 unsigned long long scale_uv;
649 bool unipolar = !!(st->conf & AD7793_CONF_UNIPOLAR);
650
651 switch (m) {
652 case 0:
653 mutex_lock(&indio_dev->mlock);
654 if (iio_ring_enabled(indio_dev))
655 ret = ad7793_scan_from_ring(st,
656 chan->scan_index, &smpl);
657 else
658 ret = ad7793_read(st, chan->address,
659 chan->scan_type.realbits / 8, &smpl);
660 mutex_unlock(&indio_dev->mlock);
661
662 if (ret < 0)
663 return ret;
664
665 *val = (smpl >> chan->scan_type.shift) &
666 ((1 << (chan->scan_type.realbits)) - 1);
667
668 if (!unipolar)
669 *val -= (1 << (chan->scan_type.realbits - 1));
670
671 return IIO_VAL_INT;
672
673 case (1 << IIO_CHAN_INFO_SCALE_SHARED):
674 *val = st->scale_avail[(st->conf >> 8) & 0x7][0];
675 *val2 = st->scale_avail[(st->conf >> 8) & 0x7][1];
676
677 return IIO_VAL_INT_PLUS_NANO;
678
679 case (1 << IIO_CHAN_INFO_SCALE_SEPARATE):
680 switch (chan->type) {
681 case IIO_IN:
682 /* 1170mV / 2^23 * 6 */
683 scale_uv = (1170ULL * 100000000ULL * 6ULL)
684 >> (chan->scan_type.realbits -
685 (unipolar ? 0 : 1));
686 break;
687 case IIO_TEMP:
688 /* Always uses unity gain and internal ref */
689 scale_uv = (2500ULL * 100000000ULL)
690 >> (chan->scan_type.realbits -
691 (unipolar ? 0 : 1));
692 break;
693 default:
694 return -EINVAL;
695 }
696
697 *val2 = do_div(scale_uv, 100000000) * 10;
698 *val = scale_uv;
699
700 return IIO_VAL_INT_PLUS_NANO;
701 }
702 return -EINVAL;
703 }
704
705 static int ad7793_write_raw(struct iio_dev *indio_dev,
706 struct iio_chan_spec const *chan,
707 int val,
708 int val2,
709 long mask)
710 {
711 struct ad7793_state *st = iio_priv(indio_dev);
712 int ret, i;
713 unsigned int tmp;
714
715 mutex_lock(&indio_dev->mlock);
716 if (iio_ring_enabled(indio_dev)) {
717 mutex_unlock(&indio_dev->mlock);
718 return -EBUSY;
719 }
720
721 switch (mask) {
722 case (1 << IIO_CHAN_INFO_SCALE_SHARED):
723 ret = -EINVAL;
724 for (i = 0; i < ARRAY_SIZE(st->scale_avail); i++)
725 if (val2 == st->scale_avail[i][1]) {
726 tmp = st->conf;
727 st->conf &= ~AD7793_CONF_GAIN(-1);
728 st->conf |= AD7793_CONF_GAIN(i);
729
730 if (tmp != st->conf) {
731 ad7793_write_reg(st, AD7793_REG_CONF,
732 sizeof(st->conf),
733 st->conf);
734 ad7793_calibrate_all(st);
735 }
736 ret = 0;
737 }
738
739 default:
740 ret = -EINVAL;
741 }
742
743 mutex_unlock(&indio_dev->mlock);
744 return ret;
745 }
746
747 static int ad7793_validate_trigger(struct iio_dev *indio_dev,
748 struct iio_trigger *trig)
749 {
750 if (indio_dev->trig != trig)
751 return -EINVAL;
752
753 return 0;
754 }
755
756 static int ad7793_write_raw_get_fmt(struct iio_dev *indio_dev,
757 struct iio_chan_spec const *chan,
758 long mask)
759 {
760 return IIO_VAL_INT_PLUS_NANO;
761 }
762
763 static const struct iio_info ad7793_info = {
764 .read_raw = &ad7793_read_raw,
765 .write_raw = &ad7793_write_raw,
766 .write_raw_get_fmt = &ad7793_write_raw_get_fmt,
767 .attrs = &ad7793_attribute_group,
768 .validate_trigger = ad7793_validate_trigger,
769 .driver_module = THIS_MODULE,
770 };
771
772 static const struct ad7793_chip_info ad7793_chip_info_tbl[] = {
773 [ID_AD7793] = {
774 .channel[0] = IIO_CHAN(IIO_IN_DIFF, 0, 1, 0, NULL, 0, 0,
775 (1 << IIO_CHAN_INFO_SCALE_SHARED),
776 AD7793_CH_AIN1P_AIN1M,
777 0, IIO_ST('s', 24, 32, 0), 0),
778 .channel[1] = IIO_CHAN(IIO_IN_DIFF, 0, 1, 0, NULL, 1, 1,
779 (1 << IIO_CHAN_INFO_SCALE_SHARED),
780 AD7793_CH_AIN2P_AIN2M,
781 1, IIO_ST('s', 24, 32, 0), 0),
782 .channel[2] = IIO_CHAN(IIO_IN_DIFF, 0, 1, 0, NULL, 2, 2,
783 (1 << IIO_CHAN_INFO_SCALE_SHARED),
784 AD7793_CH_AIN3P_AIN3M,
785 2, IIO_ST('s', 24, 32, 0), 0),
786 .channel[3] = IIO_CHAN(IIO_IN_DIFF, 0, 1, 0, "shorted", 0, 0,
787 (1 << IIO_CHAN_INFO_SCALE_SHARED),
788 AD7793_CH_AIN1M_AIN1M,
789 3, IIO_ST('s', 24, 32, 0), 0),
790 .channel[4] = IIO_CHAN(IIO_TEMP, 0, 1, 0, NULL, 0, 0,
791 (1 << IIO_CHAN_INFO_SCALE_SEPARATE),
792 AD7793_CH_TEMP,
793 4, IIO_ST('s', 24, 32, 0), 0),
794 .channel[5] = IIO_CHAN(IIO_IN, 0, 1, 0, "supply", 4, 0,
795 (1 << IIO_CHAN_INFO_SCALE_SEPARATE),
796 AD7793_CH_AVDD_MONITOR,
797 5, IIO_ST('s', 24, 32, 0), 0),
798 .channel[6] = IIO_CHAN_SOFT_TIMESTAMP(6),
799 },
800 [ID_AD7792] = {
801 .channel[0] = IIO_CHAN(IIO_IN_DIFF, 0, 1, 0, NULL, 0, 0,
802 (1 << IIO_CHAN_INFO_SCALE_SHARED),
803 AD7793_CH_AIN1P_AIN1M,
804 0, IIO_ST('s', 16, 32, 0), 0),
805 .channel[1] = IIO_CHAN(IIO_IN_DIFF, 0, 1, 0, NULL, 1, 1,
806 (1 << IIO_CHAN_INFO_SCALE_SHARED),
807 AD7793_CH_AIN2P_AIN2M,
808 1, IIO_ST('s', 16, 32, 0), 0),
809 .channel[2] = IIO_CHAN(IIO_IN_DIFF, 0, 1, 0, NULL, 2, 2,
810 (1 << IIO_CHAN_INFO_SCALE_SHARED),
811 AD7793_CH_AIN3P_AIN3M,
812 2, IIO_ST('s', 16, 32, 0), 0),
813 .channel[3] = IIO_CHAN(IIO_IN_DIFF, 0, 1, 0, "shorted", 0, 0,
814 (1 << IIO_CHAN_INFO_SCALE_SHARED),
815 AD7793_CH_AIN1M_AIN1M,
816 3, IIO_ST('s', 16, 32, 0), 0),
817 .channel[4] = IIO_CHAN(IIO_TEMP, 0, 1, 0, NULL, 0, 0,
818 (1 << IIO_CHAN_INFO_SCALE_SEPARATE),
819 AD7793_CH_TEMP,
820 4, IIO_ST('s', 16, 32, 0), 0),
821 .channel[5] = IIO_CHAN(IIO_IN, 0, 1, 0, "supply", 4, 0,
822 (1 << IIO_CHAN_INFO_SCALE_SEPARATE),
823 AD7793_CH_AVDD_MONITOR,
824 5, IIO_ST('s', 16, 32, 0), 0),
825 .channel[6] = IIO_CHAN_SOFT_TIMESTAMP(6),
826 },
827 };
828
829 static int __devinit ad7793_probe(struct spi_device *spi)
830 {
831 struct ad7793_platform_data *pdata = spi->dev.platform_data;
832 struct ad7793_state *st;
833 struct iio_dev *indio_dev;
834 int ret, i, voltage_uv = 0, regdone = 0;
835
836 if (!pdata) {
837 dev_err(&spi->dev, "no platform data?\n");
838 return -ENODEV;
839 }
840
841 if (!spi->irq) {
842 dev_err(&spi->dev, "no IRQ?\n");
843 return -ENODEV;
844 }
845
846 indio_dev = iio_allocate_device(sizeof(*st));
847 if (indio_dev == NULL)
848 return -ENOMEM;
849
850 st = iio_priv(indio_dev);
851
852 st->reg = regulator_get(&spi->dev, "vcc");
853 if (!IS_ERR(st->reg)) {
854 ret = regulator_enable(st->reg);
855 if (ret)
856 goto error_put_reg;
857
858 voltage_uv = regulator_get_voltage(st->reg);
859 }
860
861 st->chip_info =
862 &ad7793_chip_info_tbl[spi_get_device_id(spi)->driver_data];
863
864 st->pdata = pdata;
865
866 if (pdata && pdata->vref_mv)
867 st->int_vref_mv = pdata->vref_mv;
868 else if (voltage_uv)
869 st->int_vref_mv = voltage_uv / 1000;
870 else
871 st->int_vref_mv = 2500; /* Build-in ref */
872
873 spi_set_drvdata(spi, indio_dev);
874 st->spi = spi;
875
876 indio_dev->dev.parent = &spi->dev;
877 indio_dev->name = spi_get_device_id(spi)->name;
878 indio_dev->modes = INDIO_DIRECT_MODE;
879 indio_dev->channels = st->chip_info->channel;
880 indio_dev->available_scan_masks = st->available_scan_masks;
881 indio_dev->num_channels = 7;
882 indio_dev->info = &ad7793_info;
883
884 for (i = 0; i < indio_dev->num_channels; i++)
885 st->available_scan_masks[i] = (1 << i) | (1 <<
886 indio_dev->channels[indio_dev->num_channels - 1].
887 scan_index);
888
889 init_waitqueue_head(&st->wq_data_avail);
890
891 ret = ad7793_register_ring_funcs_and_init(indio_dev);
892 if (ret)
893 goto error_disable_reg;
894
895 ret = iio_device_register(indio_dev);
896 if (ret)
897 goto error_unreg_ring;
898 regdone = 1;
899
900 ret = ad7793_probe_trigger(indio_dev);
901 if (ret)
902 goto error_unreg_ring;
903
904 ret = iio_ring_buffer_register_ex(indio_dev->ring, 0,
905 indio_dev->channels,
906 indio_dev->num_channels);
907 if (ret)
908 goto error_remove_trigger;
909
910 ret = ad7793_setup(st);
911 if (ret)
912 goto error_uninitialize_ring;
913
914 return 0;
915
916 error_uninitialize_ring:
917 iio_ring_buffer_unregister(indio_dev->ring);
918 error_remove_trigger:
919 ad7793_remove_trigger(indio_dev);
920 error_unreg_ring:
921 ad7793_ring_cleanup(indio_dev);
922 error_disable_reg:
923 if (!IS_ERR(st->reg))
924 regulator_disable(st->reg);
925 error_put_reg:
926 if (!IS_ERR(st->reg))
927 regulator_put(st->reg);
928
929 if (regdone)
930 iio_device_unregister(indio_dev);
931 else
932 iio_free_device(indio_dev);
933
934 return ret;
935 }
936
937 static int ad7793_remove(struct spi_device *spi)
938 {
939 struct iio_dev *indio_dev = spi_get_drvdata(spi);
940 struct ad7793_state *st = iio_priv(indio_dev);
941
942 iio_ring_buffer_unregister(indio_dev->ring);
943 ad7793_remove_trigger(indio_dev);
944 ad7793_ring_cleanup(indio_dev);
945
946 if (!IS_ERR(st->reg)) {
947 regulator_disable(st->reg);
948 regulator_put(st->reg);
949 }
950
951 iio_device_unregister(indio_dev);
952
953 return 0;
954 }
955
956 static const struct spi_device_id ad7793_id[] = {
957 {"ad7792", ID_AD7792},
958 {"ad7793", ID_AD7793},
959 {}
960 };
961
962 static struct spi_driver ad7793_driver = {
963 .driver = {
964 .name = "ad7793",
965 .bus = &spi_bus_type,
966 .owner = THIS_MODULE,
967 },
968 .probe = ad7793_probe,
969 .remove = __devexit_p(ad7793_remove),
970 .id_table = ad7793_id,
971 };
972
973 static int __init ad7793_init(void)
974 {
975 return spi_register_driver(&ad7793_driver);
976 }
977 module_init(ad7793_init);
978
979 static void __exit ad7793_exit(void)
980 {
981 spi_unregister_driver(&ad7793_driver);
982 }
983 module_exit(ad7793_exit);
984
985 MODULE_AUTHOR("Michael Hennerich <hennerich@blackfin.uclinux.org>");
986 MODULE_DESCRIPTION("Analog Devices AD7792/3 ADC");
987 MODULE_LICENSE("GPL v2");
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