1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Murata ZPA2326 pressure and temperature sensor IIO driver
4 *
5 * Copyright (c) 2016 Parrot S.A.
6 *
7 * Author: Gregor Boirie <gregor.boirie@parrot.com>
8 */
9
10 /**
11 * DOC: ZPA2326 theory of operations
12 *
13 * This driver supports %INDIO_DIRECT_MODE and %INDIO_BUFFER_TRIGGERED IIO
14 * modes.
15 * A internal hardware trigger is also implemented to dispatch registered IIO
16 * trigger consumers upon "sample ready" interrupts.
17 *
18 * ZPA2326 hardware supports 2 sampling mode: one shot and continuous.
19 *
20 * A complete one shot sampling cycle gets device out of low power mode,
21 * performs pressure and temperature measurements, then automatically switches
22 * back to low power mode. It is meant for on demand sampling with optimal power
23 * saving at the cost of lower sampling rate and higher software overhead.
24 * This is a natural candidate for IIO read_raw hook implementation
25 * (%INDIO_DIRECT_MODE). It is also used for triggered buffering support to
26 * ensure explicit synchronization with external trigger events
27 * (%INDIO_BUFFER_TRIGGERED).
28 *
29 * The continuous mode works according to a periodic hardware measurement
30 * process continuously pushing samples into an internal hardware FIFO (for
31 * pressure samples only). Measurement cycle completion may be signaled by a
32 * "sample ready" interrupt.
33 * Typical software sequence of operations :
34 * - get device out of low power mode,
35 * - setup hardware sampling period,
36 * - at end of period, upon data ready interrupt: pop pressure samples out of
37 * hardware FIFO and fetch temperature sample
38 * - when no longer needed, stop sampling process by putting device into
39 * low power mode.
40 * This mode is used to implement %INDIO_BUFFER_TRIGGERED mode if device tree
41 * declares a valid interrupt line. In this case, the internal hardware trigger
42 * drives acquisition.
43 *
44 * Note that hardware sampling frequency is taken into account only when
45 * internal hardware trigger is attached as the highest sampling rate seems to
46 * be the most energy efficient.
47 *
48 * TODO:
49 * preset pressure threshold crossing / IIO events ;
50 * differential pressure sampling ;
51 * hardware samples averaging.
52 */
53
54 #include <linux/module.h>
55 #include <linux/kernel.h>
56 #include <linux/delay.h>
57 #include <linux/interrupt.h>
58 #include <linux/regulator/consumer.h>
59 #include <linux/pm_runtime.h>
60 #include <linux/regmap.h>
61 #include <linux/iio/iio.h>
62 #include <linux/iio/sysfs.h>
63 #include <linux/iio/buffer.h>
64 #include <linux/iio/trigger.h>
65 #include <linux/iio/trigger_consumer.h>
66 #include <linux/iio/triggered_buffer.h>
67 #include <asm/unaligned.h>
68 #include "zpa2326.h"
69
70 /* 200 ms should be enough for the longest conversion time in one-shot mode. */
71 #define ZPA2326_CONVERSION_JIFFIES (HZ / 5)
72
73 /* There should be a 1 ms delay (Tpup) after getting out of reset. */
74 #define ZPA2326_TPUP_USEC_MIN (1000)
75 #define ZPA2326_TPUP_USEC_MAX (2000)
76
77 /**
78 * struct zpa2326_frequency - Hardware sampling frequency descriptor
79 * @hz : Frequency in Hertz.
80 * @odr: Output Data Rate word as expected by %ZPA2326_CTRL_REG3_REG.
81 */
82 struct zpa2326_frequency {
83 int hz;
84 u16 odr;
85 };
86
87 /*
88 * Keep these in strict ascending order: last array entry is expected to
89 * correspond to the highest sampling frequency.
90 */
91 static const struct zpa2326_frequency zpa2326_sampling_frequencies[] = {
92 { .hz = 1, .odr = 1 << ZPA2326_CTRL_REG3_ODR_SHIFT },
93 { .hz = 5, .odr = 5 << ZPA2326_CTRL_REG3_ODR_SHIFT },
94 { .hz = 11, .odr = 6 << ZPA2326_CTRL_REG3_ODR_SHIFT },
95 { .hz = 23, .odr = 7 << ZPA2326_CTRL_REG3_ODR_SHIFT },
96 };
97
98 /* Return the highest hardware sampling frequency available. */
zpa2326_highest_frequency(void)99 static const struct zpa2326_frequency *zpa2326_highest_frequency(void)
100 {
101 return &zpa2326_sampling_frequencies[
102 ARRAY_SIZE(zpa2326_sampling_frequencies) - 1];
103 }
104
105 /**
106 * struct zpa2326_private - Per-device internal private state
107 * @timestamp: Buffered samples ready datum.
108 * @regmap: Underlying I2C / SPI bus adapter used to abstract slave register
109 * accesses.
110 * @result: Allows sampling logic to get completion status of operations
111 * that interrupt handlers perform asynchronously.
112 * @data_ready: Interrupt handler uses this to wake user context up at sampling
113 * operation completion.
114 * @trigger: Optional hardware / interrupt driven trigger used to notify
115 * external devices a new sample is ready.
116 * @waken: Flag indicating whether or not device has just been powered on.
117 * @irq: Optional interrupt line: negative or zero if not declared into
118 * DT, in which case sampling logic keeps polling status register
119 * to detect completion.
120 * @frequency: Current hardware sampling frequency.
121 * @vref: Power / voltage reference.
122 * @vdd: Power supply.
123 */
124 struct zpa2326_private {
125 s64 timestamp;
126 struct regmap *regmap;
127 int result;
128 struct completion data_ready;
129 struct iio_trigger *trigger;
130 bool waken;
131 int irq;
132 const struct zpa2326_frequency *frequency;
133 struct regulator *vref;
134 struct regulator *vdd;
135 };
136
137 #define zpa2326_err(idev, fmt, ...) \
138 dev_err(idev->dev.parent, fmt "\n", ##__VA_ARGS__)
139
140 #define zpa2326_warn(idev, fmt, ...) \
141 dev_warn(idev->dev.parent, fmt "\n", ##__VA_ARGS__)
142
143 #define zpa2326_dbg(idev, fmt, ...) \
144 dev_dbg(idev->dev.parent, fmt "\n", ##__VA_ARGS__)
145
zpa2326_isreg_writeable(struct device * dev,unsigned int reg)146 bool zpa2326_isreg_writeable(struct device *dev, unsigned int reg)
147 {
148 switch (reg) {
149 case ZPA2326_REF_P_XL_REG:
150 case ZPA2326_REF_P_L_REG:
151 case ZPA2326_REF_P_H_REG:
152 case ZPA2326_RES_CONF_REG:
153 case ZPA2326_CTRL_REG0_REG:
154 case ZPA2326_CTRL_REG1_REG:
155 case ZPA2326_CTRL_REG2_REG:
156 case ZPA2326_CTRL_REG3_REG:
157 case ZPA2326_THS_P_LOW_REG:
158 case ZPA2326_THS_P_HIGH_REG:
159 return true;
160
161 default:
162 return false;
163 }
164 }
165 EXPORT_SYMBOL_NS_GPL(zpa2326_isreg_writeable, IIO_ZPA2326);
166
zpa2326_isreg_readable(struct device * dev,unsigned int reg)167 bool zpa2326_isreg_readable(struct device *dev, unsigned int reg)
168 {
169 switch (reg) {
170 case ZPA2326_REF_P_XL_REG:
171 case ZPA2326_REF_P_L_REG:
172 case ZPA2326_REF_P_H_REG:
173 case ZPA2326_DEVICE_ID_REG:
174 case ZPA2326_RES_CONF_REG:
175 case ZPA2326_CTRL_REG0_REG:
176 case ZPA2326_CTRL_REG1_REG:
177 case ZPA2326_CTRL_REG2_REG:
178 case ZPA2326_CTRL_REG3_REG:
179 case ZPA2326_INT_SOURCE_REG:
180 case ZPA2326_THS_P_LOW_REG:
181 case ZPA2326_THS_P_HIGH_REG:
182 case ZPA2326_STATUS_REG:
183 case ZPA2326_PRESS_OUT_XL_REG:
184 case ZPA2326_PRESS_OUT_L_REG:
185 case ZPA2326_PRESS_OUT_H_REG:
186 case ZPA2326_TEMP_OUT_L_REG:
187 case ZPA2326_TEMP_OUT_H_REG:
188 return true;
189
190 default:
191 return false;
192 }
193 }
194 EXPORT_SYMBOL_NS_GPL(zpa2326_isreg_readable, IIO_ZPA2326);
195
zpa2326_isreg_precious(struct device * dev,unsigned int reg)196 bool zpa2326_isreg_precious(struct device *dev, unsigned int reg)
197 {
198 switch (reg) {
199 case ZPA2326_INT_SOURCE_REG:
200 case ZPA2326_PRESS_OUT_H_REG:
201 return true;
202
203 default:
204 return false;
205 }
206 }
207 EXPORT_SYMBOL_NS_GPL(zpa2326_isreg_precious, IIO_ZPA2326);
208
209 /**
210 * zpa2326_enable_device() - Enable device, i.e. get out of low power mode.
211 * @indio_dev: The IIO device associated with the hardware to enable.
212 *
213 * Required to access complete register space and to perform any sampling
214 * or control operations.
215 *
216 * Return: Zero when successful, a negative error code otherwise.
217 */
zpa2326_enable_device(const struct iio_dev * indio_dev)218 static int zpa2326_enable_device(const struct iio_dev *indio_dev)
219 {
220 int err;
221
222 err = regmap_write(((struct zpa2326_private *)
223 iio_priv(indio_dev))->regmap,
224 ZPA2326_CTRL_REG0_REG, ZPA2326_CTRL_REG0_ENABLE);
225 if (err) {
226 zpa2326_err(indio_dev, "failed to enable device (%d)", err);
227 return err;
228 }
229
230 zpa2326_dbg(indio_dev, "enabled");
231
232 return 0;
233 }
234
235 /**
236 * zpa2326_sleep() - Disable device, i.e. switch to low power mode.
237 * @indio_dev: The IIO device associated with the hardware to disable.
238 *
239 * Only %ZPA2326_DEVICE_ID_REG and %ZPA2326_CTRL_REG0_REG registers may be
240 * accessed once device is in the disabled state.
241 *
242 * Return: Zero when successful, a negative error code otherwise.
243 */
zpa2326_sleep(const struct iio_dev * indio_dev)244 static int zpa2326_sleep(const struct iio_dev *indio_dev)
245 {
246 int err;
247
248 err = regmap_write(((struct zpa2326_private *)
249 iio_priv(indio_dev))->regmap,
250 ZPA2326_CTRL_REG0_REG, 0);
251 if (err) {
252 zpa2326_err(indio_dev, "failed to sleep (%d)", err);
253 return err;
254 }
255
256 zpa2326_dbg(indio_dev, "sleeping");
257
258 return 0;
259 }
260
261 /**
262 * zpa2326_reset_device() - Reset device to default hardware state.
263 * @indio_dev: The IIO device associated with the hardware to reset.
264 *
265 * Disable sampling and empty hardware FIFO.
266 * Device must be enabled before reset, i.e. not in low power mode.
267 *
268 * Return: Zero when successful, a negative error code otherwise.
269 */
zpa2326_reset_device(const struct iio_dev * indio_dev)270 static int zpa2326_reset_device(const struct iio_dev *indio_dev)
271 {
272 int err;
273
274 err = regmap_write(((struct zpa2326_private *)
275 iio_priv(indio_dev))->regmap,
276 ZPA2326_CTRL_REG2_REG, ZPA2326_CTRL_REG2_SWRESET);
277 if (err) {
278 zpa2326_err(indio_dev, "failed to reset device (%d)", err);
279 return err;
280 }
281
282 usleep_range(ZPA2326_TPUP_USEC_MIN, ZPA2326_TPUP_USEC_MAX);
283
284 zpa2326_dbg(indio_dev, "reset");
285
286 return 0;
287 }
288
289 /**
290 * zpa2326_start_oneshot() - Start a single sampling cycle, i.e. in one shot
291 * mode.
292 * @indio_dev: The IIO device associated with the sampling hardware.
293 *
294 * Device must have been previously enabled and configured for one shot mode.
295 * Device will be switched back to low power mode at end of cycle.
296 *
297 * Return: Zero when successful, a negative error code otherwise.
298 */
zpa2326_start_oneshot(const struct iio_dev * indio_dev)299 static int zpa2326_start_oneshot(const struct iio_dev *indio_dev)
300 {
301 int err;
302
303 err = regmap_write(((struct zpa2326_private *)
304 iio_priv(indio_dev))->regmap,
305 ZPA2326_CTRL_REG0_REG,
306 ZPA2326_CTRL_REG0_ENABLE |
307 ZPA2326_CTRL_REG0_ONE_SHOT);
308 if (err) {
309 zpa2326_err(indio_dev, "failed to start one shot cycle (%d)",
310 err);
311 return err;
312 }
313
314 zpa2326_dbg(indio_dev, "one shot cycle started");
315
316 return 0;
317 }
318
319 /**
320 * zpa2326_power_on() - Power on device to allow subsequent configuration.
321 * @indio_dev: The IIO device associated with the sampling hardware.
322 * @private: Internal private state related to @indio_dev.
323 *
324 * Sampling will be disabled, preventing strange things from happening in our
325 * back. Hardware FIFO content will be cleared.
326 * When successful, device will be left in the enabled state to allow further
327 * configuration.
328 *
329 * Return: Zero when successful, a negative error code otherwise.
330 */
zpa2326_power_on(const struct iio_dev * indio_dev,const struct zpa2326_private * private)331 static int zpa2326_power_on(const struct iio_dev *indio_dev,
332 const struct zpa2326_private *private)
333 {
334 int err;
335
336 err = regulator_enable(private->vref);
337 if (err)
338 return err;
339
340 err = regulator_enable(private->vdd);
341 if (err)
342 goto vref;
343
344 zpa2326_dbg(indio_dev, "powered on");
345
346 err = zpa2326_enable_device(indio_dev);
347 if (err)
348 goto vdd;
349
350 err = zpa2326_reset_device(indio_dev);
351 if (err)
352 goto sleep;
353
354 return 0;
355
356 sleep:
357 zpa2326_sleep(indio_dev);
358 vdd:
359 regulator_disable(private->vdd);
360 vref:
361 regulator_disable(private->vref);
362
363 zpa2326_dbg(indio_dev, "powered off");
364
365 return err;
366 }
367
368 /**
369 * zpa2326_power_off() - Power off device, i.e. disable attached power
370 * regulators.
371 * @indio_dev: The IIO device associated with the sampling hardware.
372 * @private: Internal private state related to @indio_dev.
373 *
374 * Return: Zero when successful, a negative error code otherwise.
375 */
zpa2326_power_off(const struct iio_dev * indio_dev,const struct zpa2326_private * private)376 static void zpa2326_power_off(const struct iio_dev *indio_dev,
377 const struct zpa2326_private *private)
378 {
379 regulator_disable(private->vdd);
380 regulator_disable(private->vref);
381
382 zpa2326_dbg(indio_dev, "powered off");
383 }
384
385 /**
386 * zpa2326_config_oneshot() - Setup device for one shot / on demand mode.
387 * @indio_dev: The IIO device associated with the sampling hardware.
388 * @irq: Optional interrupt line the hardware uses to notify new data
389 * samples are ready. Negative or zero values indicate no interrupts
390 * are available, meaning polling is required.
391 *
392 * Output Data Rate is configured for the highest possible rate so that
393 * conversion time and power consumption are reduced to a minimum.
394 * Note that hardware internal averaging machinery (not implemented in this
395 * driver) is not applicable in this mode.
396 *
397 * Device must have been previously enabled before calling
398 * zpa2326_config_oneshot().
399 *
400 * Return: Zero when successful, a negative error code otherwise.
401 */
zpa2326_config_oneshot(const struct iio_dev * indio_dev,int irq)402 static int zpa2326_config_oneshot(const struct iio_dev *indio_dev,
403 int irq)
404 {
405 struct regmap *regs = ((struct zpa2326_private *)
406 iio_priv(indio_dev))->regmap;
407 const struct zpa2326_frequency *freq = zpa2326_highest_frequency();
408 int err;
409
410 /* Setup highest available Output Data Rate for one shot mode. */
411 err = regmap_write(regs, ZPA2326_CTRL_REG3_REG, freq->odr);
412 if (err)
413 return err;
414
415 if (irq > 0) {
416 /* Request interrupt when new sample is available. */
417 err = regmap_write(regs, ZPA2326_CTRL_REG1_REG,
418 (u8)~ZPA2326_CTRL_REG1_MASK_DATA_READY);
419
420 if (err) {
421 dev_err(indio_dev->dev.parent,
422 "failed to setup one shot mode (%d)", err);
423 return err;
424 }
425 }
426
427 zpa2326_dbg(indio_dev, "one shot mode setup @%dHz", freq->hz);
428
429 return 0;
430 }
431
432 /**
433 * zpa2326_clear_fifo() - Clear remaining entries in hardware FIFO.
434 * @indio_dev: The IIO device associated with the sampling hardware.
435 * @min_count: Number of samples present within hardware FIFO.
436 *
437 * @min_count argument is a hint corresponding to the known minimum number of
438 * samples currently living in the FIFO. This allows to reduce the number of bus
439 * accesses by skipping status register read operation as long as we know for
440 * sure there are still entries left.
441 *
442 * Return: Zero when successful, a negative error code otherwise.
443 */
zpa2326_clear_fifo(const struct iio_dev * indio_dev,unsigned int min_count)444 static int zpa2326_clear_fifo(const struct iio_dev *indio_dev,
445 unsigned int min_count)
446 {
447 struct regmap *regs = ((struct zpa2326_private *)
448 iio_priv(indio_dev))->regmap;
449 int err;
450 unsigned int val;
451
452 if (!min_count) {
453 /*
454 * No hint: read status register to determine whether FIFO is
455 * empty or not.
456 */
457 err = regmap_read(regs, ZPA2326_STATUS_REG, &val);
458
459 if (err < 0)
460 goto err;
461
462 if (val & ZPA2326_STATUS_FIFO_E)
463 /* Fifo is empty: nothing to trash. */
464 return 0;
465 }
466
467 /* Clear FIFO. */
468 do {
469 /*
470 * A single fetch from pressure MSB register is enough to pop
471 * values out of FIFO.
472 */
473 err = regmap_read(regs, ZPA2326_PRESS_OUT_H_REG, &val);
474 if (err < 0)
475 goto err;
476
477 if (min_count) {
478 /*
479 * We know for sure there are at least min_count entries
480 * left in FIFO. Skip status register read.
481 */
482 min_count--;
483 continue;
484 }
485
486 err = regmap_read(regs, ZPA2326_STATUS_REG, &val);
487 if (err < 0)
488 goto err;
489
490 } while (!(val & ZPA2326_STATUS_FIFO_E));
491
492 zpa2326_dbg(indio_dev, "FIFO cleared");
493
494 return 0;
495
496 err:
497 zpa2326_err(indio_dev, "failed to clear FIFO (%d)", err);
498
499 return err;
500 }
501
502 /**
503 * zpa2326_dequeue_pressure() - Retrieve the most recent pressure sample from
504 * hardware FIFO.
505 * @indio_dev: The IIO device associated with the sampling hardware.
506 * @pressure: Sampled pressure output.
507 *
508 * Note that ZPA2326 hardware FIFO stores pressure samples only.
509 *
510 * Return: Zero when successful, a negative error code otherwise.
511 */
zpa2326_dequeue_pressure(const struct iio_dev * indio_dev,u32 * pressure)512 static int zpa2326_dequeue_pressure(const struct iio_dev *indio_dev,
513 u32 *pressure)
514 {
515 struct regmap *regs = ((struct zpa2326_private *)
516 iio_priv(indio_dev))->regmap;
517 unsigned int val;
518 int err;
519 int cleared = -1;
520
521 err = regmap_read(regs, ZPA2326_STATUS_REG, &val);
522 if (err < 0)
523 return err;
524
525 *pressure = 0;
526
527 if (val & ZPA2326_STATUS_P_OR) {
528 /*
529 * Fifo overrun : first sample dequeued from FIFO is the
530 * newest.
531 */
532 zpa2326_warn(indio_dev, "FIFO overflow");
533
534 err = regmap_bulk_read(regs, ZPA2326_PRESS_OUT_XL_REG, pressure,
535 3);
536 if (err)
537 return err;
538
539 #define ZPA2326_FIFO_DEPTH (16U)
540 /* Hardware FIFO may hold no more than 16 pressure samples. */
541 return zpa2326_clear_fifo(indio_dev, ZPA2326_FIFO_DEPTH - 1);
542 }
543
544 /*
545 * Fifo has not overflown : retrieve newest sample. We need to pop
546 * values out until FIFO is empty : last fetched pressure is the newest.
547 * In nominal cases, we should find a single queued sample only.
548 */
549 do {
550 err = regmap_bulk_read(regs, ZPA2326_PRESS_OUT_XL_REG, pressure,
551 3);
552 if (err)
553 return err;
554
555 err = regmap_read(regs, ZPA2326_STATUS_REG, &val);
556 if (err < 0)
557 return err;
558
559 cleared++;
560 } while (!(val & ZPA2326_STATUS_FIFO_E));
561
562 if (cleared)
563 /*
564 * Samples were pushed by hardware during previous rounds but we
565 * didn't consume them fast enough: inform user.
566 */
567 zpa2326_dbg(indio_dev, "cleared %d FIFO entries", cleared);
568
569 return 0;
570 }
571
572 /**
573 * zpa2326_fill_sample_buffer() - Enqueue new channel samples to IIO buffer.
574 * @indio_dev: The IIO device associated with the sampling hardware.
575 * @private: Internal private state related to @indio_dev.
576 *
577 * Return: Zero when successful, a negative error code otherwise.
578 */
zpa2326_fill_sample_buffer(struct iio_dev * indio_dev,const struct zpa2326_private * private)579 static int zpa2326_fill_sample_buffer(struct iio_dev *indio_dev,
580 const struct zpa2326_private *private)
581 {
582 struct {
583 u32 pressure;
584 u16 temperature;
585 u64 timestamp;
586 } sample;
587 int err;
588
589 memset(&sample, 0, sizeof(sample));
590
591 if (test_bit(0, indio_dev->active_scan_mask)) {
592 /* Get current pressure from hardware FIFO. */
593 err = zpa2326_dequeue_pressure(indio_dev, &sample.pressure);
594 if (err) {
595 zpa2326_warn(indio_dev, "failed to fetch pressure (%d)",
596 err);
597 return err;
598 }
599 }
600
601 if (test_bit(1, indio_dev->active_scan_mask)) {
602 /* Get current temperature. */
603 err = regmap_bulk_read(private->regmap, ZPA2326_TEMP_OUT_L_REG,
604 &sample.temperature, 2);
605 if (err) {
606 zpa2326_warn(indio_dev,
607 "failed to fetch temperature (%d)", err);
608 return err;
609 }
610 }
611
612 /*
613 * Now push samples using timestamp stored either :
614 * - by hardware interrupt handler if interrupt is available: see
615 * zpa2326_handle_irq(),
616 * - or oneshot completion polling machinery : see
617 * zpa2326_trigger_handler().
618 */
619 zpa2326_dbg(indio_dev, "filling raw samples buffer");
620
621 iio_push_to_buffers_with_timestamp(indio_dev, &sample,
622 private->timestamp);
623
624 return 0;
625 }
626
627 #ifdef CONFIG_PM
zpa2326_runtime_suspend(struct device * parent)628 static int zpa2326_runtime_suspend(struct device *parent)
629 {
630 const struct iio_dev *indio_dev = dev_get_drvdata(parent);
631
632 if (pm_runtime_autosuspend_expiration(parent))
633 /* Userspace changed autosuspend delay. */
634 return -EAGAIN;
635
636 zpa2326_power_off(indio_dev, iio_priv(indio_dev));
637
638 return 0;
639 }
640
zpa2326_runtime_resume(struct device * parent)641 static int zpa2326_runtime_resume(struct device *parent)
642 {
643 const struct iio_dev *indio_dev = dev_get_drvdata(parent);
644
645 return zpa2326_power_on(indio_dev, iio_priv(indio_dev));
646 }
647
648 const struct dev_pm_ops zpa2326_pm_ops = {
649 SET_SYSTEM_SLEEP_PM_OPS(pm_runtime_force_suspend,
650 pm_runtime_force_resume)
651 SET_RUNTIME_PM_OPS(zpa2326_runtime_suspend, zpa2326_runtime_resume,
652 NULL)
653 };
654 EXPORT_SYMBOL_NS_GPL(zpa2326_pm_ops, IIO_ZPA2326);
655
656 /**
657 * zpa2326_resume() - Request the PM layer to power supply the device.
658 * @indio_dev: The IIO device associated with the sampling hardware.
659 *
660 * Return:
661 * < 0 - a negative error code meaning failure ;
662 * 0 - success, device has just been powered up ;
663 * 1 - success, device was already powered.
664 */
zpa2326_resume(const struct iio_dev * indio_dev)665 static int zpa2326_resume(const struct iio_dev *indio_dev)
666 {
667 int err;
668
669 err = pm_runtime_get_sync(indio_dev->dev.parent);
670 if (err < 0) {
671 pm_runtime_put(indio_dev->dev.parent);
672 return err;
673 }
674
675 if (err > 0) {
676 /*
677 * Device was already power supplied: get it out of low power
678 * mode and inform caller.
679 */
680 zpa2326_enable_device(indio_dev);
681 return 1;
682 }
683
684 /* Inform caller device has just been brought back to life. */
685 return 0;
686 }
687
688 /**
689 * zpa2326_suspend() - Schedule a power down using autosuspend feature of PM
690 * layer.
691 * @indio_dev: The IIO device associated with the sampling hardware.
692 *
693 * Device is switched to low power mode at first to save power even when
694 * attached regulator is a "dummy" one.
695 */
zpa2326_suspend(struct iio_dev * indio_dev)696 static void zpa2326_suspend(struct iio_dev *indio_dev)
697 {
698 struct device *parent = indio_dev->dev.parent;
699
700 zpa2326_sleep(indio_dev);
701
702 pm_runtime_mark_last_busy(parent);
703 pm_runtime_put_autosuspend(parent);
704 }
705
zpa2326_init_runtime(struct device * parent)706 static void zpa2326_init_runtime(struct device *parent)
707 {
708 pm_runtime_get_noresume(parent);
709 pm_runtime_set_active(parent);
710 pm_runtime_enable(parent);
711 pm_runtime_set_autosuspend_delay(parent, 1000);
712 pm_runtime_use_autosuspend(parent);
713 pm_runtime_mark_last_busy(parent);
714 pm_runtime_put_autosuspend(parent);
715 }
716
zpa2326_fini_runtime(struct device * parent)717 static void zpa2326_fini_runtime(struct device *parent)
718 {
719 pm_runtime_disable(parent);
720 pm_runtime_set_suspended(parent);
721 }
722 #else /* !CONFIG_PM */
zpa2326_resume(const struct iio_dev * indio_dev)723 static int zpa2326_resume(const struct iio_dev *indio_dev)
724 {
725 zpa2326_enable_device(indio_dev);
726
727 return 0;
728 }
729
zpa2326_suspend(struct iio_dev * indio_dev)730 static void zpa2326_suspend(struct iio_dev *indio_dev)
731 {
732 zpa2326_sleep(indio_dev);
733 }
734
735 #define zpa2326_init_runtime(_parent)
736 #define zpa2326_fini_runtime(_parent)
737 #endif /* !CONFIG_PM */
738
739 /**
740 * zpa2326_handle_irq() - Process hardware interrupts.
741 * @irq: Interrupt line the hardware uses to notify new data has arrived.
742 * @data: The IIO device associated with the sampling hardware.
743 *
744 * Timestamp buffered samples as soon as possible then schedule threaded bottom
745 * half.
746 *
747 * Return: Always successful.
748 */
zpa2326_handle_irq(int irq,void * data)749 static irqreturn_t zpa2326_handle_irq(int irq, void *data)
750 {
751 struct iio_dev *indio_dev = data;
752
753 if (iio_buffer_enabled(indio_dev)) {
754 /* Timestamping needed for buffered sampling only. */
755 ((struct zpa2326_private *)
756 iio_priv(indio_dev))->timestamp = iio_get_time_ns(indio_dev);
757 }
758
759 return IRQ_WAKE_THREAD;
760 }
761
762 /**
763 * zpa2326_handle_threaded_irq() - Interrupt bottom-half handler.
764 * @irq: Interrupt line the hardware uses to notify new data has arrived.
765 * @data: The IIO device associated with the sampling hardware.
766 *
767 * Mainly ensures interrupt is caused by a real "new sample available"
768 * condition. This relies upon the ability to perform blocking / sleeping bus
769 * accesses to slave's registers. This is why zpa2326_handle_threaded_irq() is
770 * called from within a thread, i.e. not called from hard interrupt context.
771 *
772 * When device is using its own internal hardware trigger in continuous sampling
773 * mode, data are available into hardware FIFO once interrupt has occurred. All
774 * we have to do is to dispatch the trigger, which in turn will fetch data and
775 * fill IIO buffer.
776 *
777 * When not using its own internal hardware trigger, the device has been
778 * configured in one-shot mode either by an external trigger or the IIO read_raw
779 * hook. This means one of the latter is currently waiting for sampling
780 * completion, in which case we must simply wake it up.
781 *
782 * See zpa2326_trigger_handler().
783 *
784 * Return:
785 * %IRQ_NONE - no consistent interrupt happened ;
786 * %IRQ_HANDLED - there was new samples available.
787 */
zpa2326_handle_threaded_irq(int irq,void * data)788 static irqreturn_t zpa2326_handle_threaded_irq(int irq, void *data)
789 {
790 struct iio_dev *indio_dev = data;
791 struct zpa2326_private *priv = iio_priv(indio_dev);
792 unsigned int val;
793 bool cont;
794 irqreturn_t ret = IRQ_NONE;
795
796 /*
797 * Are we using our own internal trigger in triggered buffer mode, i.e.,
798 * currently working in continuous sampling mode ?
799 */
800 cont = (iio_buffer_enabled(indio_dev) &&
801 iio_trigger_using_own(indio_dev));
802
803 /*
804 * Device works according to a level interrupt scheme: reading interrupt
805 * status de-asserts interrupt line.
806 */
807 priv->result = regmap_read(priv->regmap, ZPA2326_INT_SOURCE_REG, &val);
808 if (priv->result < 0) {
809 if (cont)
810 return IRQ_NONE;
811
812 goto complete;
813 }
814
815 /* Data ready is the only interrupt source we requested. */
816 if (!(val & ZPA2326_INT_SOURCE_DATA_READY)) {
817 /*
818 * Interrupt happened but no new sample available: likely caused
819 * by spurious interrupts, in which case, returning IRQ_NONE
820 * allows to benefit from the generic spurious interrupts
821 * handling.
822 */
823 zpa2326_warn(indio_dev, "unexpected interrupt status %02x",
824 val);
825
826 if (cont)
827 return IRQ_NONE;
828
829 priv->result = -ENODATA;
830 goto complete;
831 }
832
833 /* New sample available: dispatch internal trigger consumers. */
834 iio_trigger_poll_nested(priv->trigger);
835
836 if (cont)
837 /*
838 * Internal hardware trigger has been scheduled above : it will
839 * fetch data on its own.
840 */
841 return IRQ_HANDLED;
842
843 ret = IRQ_HANDLED;
844
845 complete:
846 /*
847 * Wake up direct or externaly triggered buffer mode waiters: see
848 * zpa2326_sample_oneshot() and zpa2326_trigger_handler().
849 */
850 complete(&priv->data_ready);
851
852 return ret;
853 }
854
855 /**
856 * zpa2326_wait_oneshot_completion() - Wait for oneshot data ready interrupt.
857 * @indio_dev: The IIO device associated with the sampling hardware.
858 * @private: Internal private state related to @indio_dev.
859 *
860 * Return: Zero when successful, a negative error code otherwise.
861 */
zpa2326_wait_oneshot_completion(const struct iio_dev * indio_dev,struct zpa2326_private * private)862 static int zpa2326_wait_oneshot_completion(const struct iio_dev *indio_dev,
863 struct zpa2326_private *private)
864 {
865 unsigned int val;
866 long timeout;
867
868 zpa2326_dbg(indio_dev, "waiting for one shot completion interrupt");
869
870 timeout = wait_for_completion_interruptible_timeout(
871 &private->data_ready, ZPA2326_CONVERSION_JIFFIES);
872 if (timeout > 0)
873 /*
874 * Interrupt handler completed before timeout: return operation
875 * status.
876 */
877 return private->result;
878
879 /* Clear all interrupts just to be sure. */
880 regmap_read(private->regmap, ZPA2326_INT_SOURCE_REG, &val);
881
882 if (!timeout) {
883 /* Timed out. */
884 zpa2326_warn(indio_dev, "no one shot interrupt occurred (%ld)",
885 timeout);
886 return -ETIME;
887 }
888
889 zpa2326_warn(indio_dev, "wait for one shot interrupt cancelled");
890 return -ERESTARTSYS;
891 }
892
zpa2326_init_managed_irq(struct device * parent,struct iio_dev * indio_dev,struct zpa2326_private * private,int irq)893 static int zpa2326_init_managed_irq(struct device *parent,
894 struct iio_dev *indio_dev,
895 struct zpa2326_private *private,
896 int irq)
897 {
898 int err;
899
900 private->irq = irq;
901
902 if (irq <= 0) {
903 /*
904 * Platform declared no interrupt line: device will be polled
905 * for data availability.
906 */
907 dev_info(parent, "no interrupt found, running in polling mode");
908 return 0;
909 }
910
911 init_completion(&private->data_ready);
912
913 /* Request handler to be scheduled into threaded interrupt context. */
914 err = devm_request_threaded_irq(parent, irq, zpa2326_handle_irq,
915 zpa2326_handle_threaded_irq,
916 IRQF_TRIGGER_RISING | IRQF_ONESHOT,
917 dev_name(parent), indio_dev);
918 if (err) {
919 dev_err(parent, "failed to request interrupt %d (%d)", irq,
920 err);
921 return err;
922 }
923
924 dev_info(parent, "using interrupt %d", irq);
925
926 return 0;
927 }
928
929 /**
930 * zpa2326_poll_oneshot_completion() - Actively poll for one shot data ready.
931 * @indio_dev: The IIO device associated with the sampling hardware.
932 *
933 * Loop over registers content to detect end of sampling cycle. Used when DT
934 * declared no valid interrupt lines.
935 *
936 * Return: Zero when successful, a negative error code otherwise.
937 */
zpa2326_poll_oneshot_completion(const struct iio_dev * indio_dev)938 static int zpa2326_poll_oneshot_completion(const struct iio_dev *indio_dev)
939 {
940 unsigned long tmout = jiffies + ZPA2326_CONVERSION_JIFFIES;
941 struct regmap *regs = ((struct zpa2326_private *)
942 iio_priv(indio_dev))->regmap;
943 unsigned int val;
944 int err;
945
946 zpa2326_dbg(indio_dev, "polling for one shot completion");
947
948 /*
949 * At least, 100 ms is needed for the device to complete its one-shot
950 * cycle.
951 */
952 if (msleep_interruptible(100))
953 return -ERESTARTSYS;
954
955 /* Poll for conversion completion in hardware. */
956 while (true) {
957 err = regmap_read(regs, ZPA2326_CTRL_REG0_REG, &val);
958 if (err < 0)
959 goto err;
960
961 if (!(val & ZPA2326_CTRL_REG0_ONE_SHOT))
962 /* One-shot bit self clears at conversion end. */
963 break;
964
965 if (time_after(jiffies, tmout)) {
966 /* Prevent from waiting forever : let's time out. */
967 err = -ETIME;
968 goto err;
969 }
970
971 usleep_range(10000, 20000);
972 }
973
974 /*
975 * In oneshot mode, pressure sample availability guarantees that
976 * temperature conversion has also completed : just check pressure
977 * status bit to keep things simple.
978 */
979 err = regmap_read(regs, ZPA2326_STATUS_REG, &val);
980 if (err < 0)
981 goto err;
982
983 if (!(val & ZPA2326_STATUS_P_DA)) {
984 /* No sample available. */
985 err = -ENODATA;
986 goto err;
987 }
988
989 return 0;
990
991 err:
992 zpa2326_warn(indio_dev, "failed to poll one shot completion (%d)", err);
993
994 return err;
995 }
996
997 /**
998 * zpa2326_fetch_raw_sample() - Retrieve a raw sample and convert it to CPU
999 * endianness.
1000 * @indio_dev: The IIO device associated with the sampling hardware.
1001 * @type: Type of measurement / channel to fetch from.
1002 * @value: Sample output.
1003 *
1004 * Return: Zero when successful, a negative error code otherwise.
1005 */
zpa2326_fetch_raw_sample(const struct iio_dev * indio_dev,enum iio_chan_type type,int * value)1006 static int zpa2326_fetch_raw_sample(const struct iio_dev *indio_dev,
1007 enum iio_chan_type type,
1008 int *value)
1009 {
1010 struct regmap *regs = ((struct zpa2326_private *)
1011 iio_priv(indio_dev))->regmap;
1012 int err;
1013 u8 v[3];
1014
1015 switch (type) {
1016 case IIO_PRESSURE:
1017 zpa2326_dbg(indio_dev, "fetching raw pressure sample");
1018
1019 err = regmap_bulk_read(regs, ZPA2326_PRESS_OUT_XL_REG, v, sizeof(v));
1020 if (err) {
1021 zpa2326_warn(indio_dev, "failed to fetch pressure (%d)",
1022 err);
1023 return err;
1024 }
1025
1026 *value = get_unaligned_le24(&v[0]);
1027
1028 return IIO_VAL_INT;
1029
1030 case IIO_TEMP:
1031 zpa2326_dbg(indio_dev, "fetching raw temperature sample");
1032
1033 err = regmap_bulk_read(regs, ZPA2326_TEMP_OUT_L_REG, value, 2);
1034 if (err) {
1035 zpa2326_warn(indio_dev,
1036 "failed to fetch temperature (%d)", err);
1037 return err;
1038 }
1039
1040 /* Temperature is a 16 bits wide little-endian signed int. */
1041 *value = (int)le16_to_cpup((__le16 *)value);
1042
1043 return IIO_VAL_INT;
1044
1045 default:
1046 return -EINVAL;
1047 }
1048 }
1049
1050 /**
1051 * zpa2326_sample_oneshot() - Perform a complete one shot sampling cycle.
1052 * @indio_dev: The IIO device associated with the sampling hardware.
1053 * @type: Type of measurement / channel to fetch from.
1054 * @value: Sample output.
1055 *
1056 * Return: Zero when successful, a negative error code otherwise.
1057 */
zpa2326_sample_oneshot(struct iio_dev * indio_dev,enum iio_chan_type type,int * value)1058 static int zpa2326_sample_oneshot(struct iio_dev *indio_dev,
1059 enum iio_chan_type type,
1060 int *value)
1061 {
1062 int ret;
1063 struct zpa2326_private *priv;
1064
1065 ret = iio_device_claim_direct_mode(indio_dev);
1066 if (ret)
1067 return ret;
1068
1069 ret = zpa2326_resume(indio_dev);
1070 if (ret < 0)
1071 goto release;
1072
1073 priv = iio_priv(indio_dev);
1074
1075 if (ret > 0) {
1076 /*
1077 * We were already power supplied. Just clear hardware FIFO to
1078 * get rid of samples acquired during previous rounds (if any).
1079 * Sampling operation always generates both temperature and
1080 * pressure samples. The latter are always enqueued into
1081 * hardware FIFO. This may lead to situations were pressure
1082 * samples still sit into FIFO when previous cycle(s) fetched
1083 * temperature data only.
1084 * Hence, we need to clear hardware FIFO content to prevent from
1085 * getting outdated values at the end of current cycle.
1086 */
1087 if (type == IIO_PRESSURE) {
1088 ret = zpa2326_clear_fifo(indio_dev, 0);
1089 if (ret)
1090 goto suspend;
1091 }
1092 } else {
1093 /*
1094 * We have just been power supplied, i.e. device is in default
1095 * "out of reset" state, meaning we need to reconfigure it
1096 * entirely.
1097 */
1098 ret = zpa2326_config_oneshot(indio_dev, priv->irq);
1099 if (ret)
1100 goto suspend;
1101 }
1102
1103 /* Start a sampling cycle in oneshot mode. */
1104 ret = zpa2326_start_oneshot(indio_dev);
1105 if (ret)
1106 goto suspend;
1107
1108 /* Wait for sampling cycle to complete. */
1109 if (priv->irq > 0)
1110 ret = zpa2326_wait_oneshot_completion(indio_dev, priv);
1111 else
1112 ret = zpa2326_poll_oneshot_completion(indio_dev);
1113
1114 if (ret)
1115 goto suspend;
1116
1117 /* Retrieve raw sample value and convert it to CPU endianness. */
1118 ret = zpa2326_fetch_raw_sample(indio_dev, type, value);
1119
1120 suspend:
1121 zpa2326_suspend(indio_dev);
1122 release:
1123 iio_device_release_direct_mode(indio_dev);
1124
1125 return ret;
1126 }
1127
1128 /**
1129 * zpa2326_trigger_handler() - Perform an IIO buffered sampling round in one
1130 * shot mode.
1131 * @irq: The software interrupt assigned to @data
1132 * @data: The IIO poll function dispatched by external trigger our device is
1133 * attached to.
1134 *
1135 * Bottom-half handler called by the IIO trigger to which our device is
1136 * currently attached. Allows us to synchronize this device buffered sampling
1137 * either with external events (such as timer expiration, external device sample
1138 * ready, etc...) or with its own interrupt (internal hardware trigger).
1139 *
1140 * When using an external trigger, basically run the same sequence of operations
1141 * as for zpa2326_sample_oneshot() with the following hereafter. Hardware FIFO
1142 * is not cleared since already done at buffering enable time and samples
1143 * dequeueing always retrieves the most recent value.
1144 *
1145 * Otherwise, when internal hardware trigger has dispatched us, just fetch data
1146 * from hardware FIFO.
1147 *
1148 * Fetched data will pushed unprocessed to IIO buffer since samples conversion
1149 * is delegated to userspace in buffered mode (endianness, etc...).
1150 *
1151 * Return:
1152 * %IRQ_NONE - no consistent interrupt happened ;
1153 * %IRQ_HANDLED - there was new samples available.
1154 */
zpa2326_trigger_handler(int irq,void * data)1155 static irqreturn_t zpa2326_trigger_handler(int irq, void *data)
1156 {
1157 struct iio_dev *indio_dev = ((struct iio_poll_func *)
1158 data)->indio_dev;
1159 struct zpa2326_private *priv = iio_priv(indio_dev);
1160 bool cont;
1161
1162 /*
1163 * We have been dispatched, meaning we are in triggered buffer mode.
1164 * Using our own internal trigger implies we are currently in continuous
1165 * hardware sampling mode.
1166 */
1167 cont = iio_trigger_using_own(indio_dev);
1168
1169 if (!cont) {
1170 /* On demand sampling : start a one shot cycle. */
1171 if (zpa2326_start_oneshot(indio_dev))
1172 goto out;
1173
1174 /* Wait for sampling cycle to complete. */
1175 if (priv->irq <= 0) {
1176 /* No interrupt available: poll for completion. */
1177 if (zpa2326_poll_oneshot_completion(indio_dev))
1178 goto out;
1179
1180 /* Only timestamp sample once it is ready. */
1181 priv->timestamp = iio_get_time_ns(indio_dev);
1182 } else {
1183 /* Interrupt handlers will timestamp for us. */
1184 if (zpa2326_wait_oneshot_completion(indio_dev, priv))
1185 goto out;
1186 }
1187 }
1188
1189 /* Enqueue to IIO buffer / userspace. */
1190 zpa2326_fill_sample_buffer(indio_dev, priv);
1191
1192 out:
1193 if (!cont)
1194 /* Don't switch to low power if sampling continuously. */
1195 zpa2326_sleep(indio_dev);
1196
1197 /* Inform attached trigger we are done. */
1198 iio_trigger_notify_done(indio_dev->trig);
1199
1200 return IRQ_HANDLED;
1201 }
1202
1203 /**
1204 * zpa2326_preenable_buffer() - Prepare device for configuring triggered
1205 * sampling
1206 * modes.
1207 * @indio_dev: The IIO device associated with the sampling hardware.
1208 *
1209 * Basically power up device.
1210 * Called with IIO device's lock held.
1211 *
1212 * Return: Zero when successful, a negative error code otherwise.
1213 */
zpa2326_preenable_buffer(struct iio_dev * indio_dev)1214 static int zpa2326_preenable_buffer(struct iio_dev *indio_dev)
1215 {
1216 int ret = zpa2326_resume(indio_dev);
1217
1218 if (ret < 0)
1219 return ret;
1220
1221 /* Tell zpa2326_postenable_buffer() if we have just been powered on. */
1222 ((struct zpa2326_private *)
1223 iio_priv(indio_dev))->waken = iio_priv(indio_dev);
1224
1225 return 0;
1226 }
1227
1228 /**
1229 * zpa2326_postenable_buffer() - Configure device for triggered sampling.
1230 * @indio_dev: The IIO device associated with the sampling hardware.
1231 *
1232 * Basically setup one-shot mode if plugging external trigger.
1233 * Otherwise, let internal trigger configure continuous sampling :
1234 * see zpa2326_set_trigger_state().
1235 *
1236 * If an error is returned, IIO layer will call our postdisable hook for us,
1237 * i.e. no need to explicitly power device off here.
1238 * Called with IIO device's lock held.
1239 *
1240 * Called with IIO device's lock held.
1241 *
1242 * Return: Zero when successful, a negative error code otherwise.
1243 */
zpa2326_postenable_buffer(struct iio_dev * indio_dev)1244 static int zpa2326_postenable_buffer(struct iio_dev *indio_dev)
1245 {
1246 const struct zpa2326_private *priv = iio_priv(indio_dev);
1247 int err;
1248
1249 if (!priv->waken) {
1250 /*
1251 * We were already power supplied. Just clear hardware FIFO to
1252 * get rid of samples acquired during previous rounds (if any).
1253 */
1254 err = zpa2326_clear_fifo(indio_dev, 0);
1255 if (err) {
1256 zpa2326_err(indio_dev,
1257 "failed to enable buffering (%d)", err);
1258 return err;
1259 }
1260 }
1261
1262 if (!iio_trigger_using_own(indio_dev) && priv->waken) {
1263 /*
1264 * We are using an external trigger and we have just been
1265 * powered up: reconfigure one-shot mode.
1266 */
1267 err = zpa2326_config_oneshot(indio_dev, priv->irq);
1268 if (err) {
1269 zpa2326_err(indio_dev,
1270 "failed to enable buffering (%d)", err);
1271 return err;
1272 }
1273 }
1274
1275 return 0;
1276 }
1277
zpa2326_postdisable_buffer(struct iio_dev * indio_dev)1278 static int zpa2326_postdisable_buffer(struct iio_dev *indio_dev)
1279 {
1280 zpa2326_suspend(indio_dev);
1281
1282 return 0;
1283 }
1284
1285 static const struct iio_buffer_setup_ops zpa2326_buffer_setup_ops = {
1286 .preenable = zpa2326_preenable_buffer,
1287 .postenable = zpa2326_postenable_buffer,
1288 .postdisable = zpa2326_postdisable_buffer
1289 };
1290
1291 /**
1292 * zpa2326_set_trigger_state() - Start / stop continuous sampling.
1293 * @trig: The trigger being attached to IIO device associated with the sampling
1294 * hardware.
1295 * @state: Tell whether to start (true) or stop (false)
1296 *
1297 * Basically enable / disable hardware continuous sampling mode.
1298 *
1299 * Called with IIO device's lock held at postenable() or predisable() time.
1300 *
1301 * Return: Zero when successful, a negative error code otherwise.
1302 */
zpa2326_set_trigger_state(struct iio_trigger * trig,bool state)1303 static int zpa2326_set_trigger_state(struct iio_trigger *trig, bool state)
1304 {
1305 const struct iio_dev *indio_dev = dev_get_drvdata(
1306 trig->dev.parent);
1307 const struct zpa2326_private *priv = iio_priv(indio_dev);
1308 int err;
1309
1310 if (!state) {
1311 /*
1312 * Switch trigger off : in case of failure, interrupt is left
1313 * disabled in order to prevent handler from accessing released
1314 * resources.
1315 */
1316 unsigned int val;
1317
1318 /*
1319 * As device is working in continuous mode, handlers may be
1320 * accessing resources we are currently freeing...
1321 * Prevent this by disabling interrupt handlers and ensure
1322 * the device will generate no more interrupts unless explicitly
1323 * required to, i.e. by restoring back to default one shot mode.
1324 */
1325 disable_irq(priv->irq);
1326
1327 /*
1328 * Disable continuous sampling mode to restore settings for
1329 * one shot / direct sampling operations.
1330 */
1331 err = regmap_write(priv->regmap, ZPA2326_CTRL_REG3_REG,
1332 zpa2326_highest_frequency()->odr);
1333 if (err)
1334 return err;
1335
1336 /*
1337 * Now that device won't generate interrupts on its own,
1338 * acknowledge any currently active interrupts (may happen on
1339 * rare occasions while stopping continuous mode).
1340 */
1341 err = regmap_read(priv->regmap, ZPA2326_INT_SOURCE_REG, &val);
1342 if (err < 0)
1343 return err;
1344
1345 /*
1346 * Re-enable interrupts only if we can guarantee the device will
1347 * generate no more interrupts to prevent handlers from
1348 * accessing released resources.
1349 */
1350 enable_irq(priv->irq);
1351
1352 zpa2326_dbg(indio_dev, "continuous mode stopped");
1353 } else {
1354 /*
1355 * Switch trigger on : start continuous sampling at required
1356 * frequency.
1357 */
1358
1359 if (priv->waken) {
1360 /* Enable interrupt if getting out of reset. */
1361 err = regmap_write(priv->regmap, ZPA2326_CTRL_REG1_REG,
1362 (u8)
1363 ~ZPA2326_CTRL_REG1_MASK_DATA_READY);
1364 if (err)
1365 return err;
1366 }
1367
1368 /* Enable continuous sampling at specified frequency. */
1369 err = regmap_write(priv->regmap, ZPA2326_CTRL_REG3_REG,
1370 ZPA2326_CTRL_REG3_ENABLE_MEAS |
1371 priv->frequency->odr);
1372 if (err)
1373 return err;
1374
1375 zpa2326_dbg(indio_dev, "continuous mode setup @%dHz",
1376 priv->frequency->hz);
1377 }
1378
1379 return 0;
1380 }
1381
1382 static const struct iio_trigger_ops zpa2326_trigger_ops = {
1383 .set_trigger_state = zpa2326_set_trigger_state,
1384 };
1385
1386 /**
1387 * zpa2326_init_managed_trigger() - Create interrupt driven / hardware trigger
1388 * allowing to notify external devices a new sample is
1389 * ready.
1390 * @parent: Hardware sampling device @indio_dev is a child of.
1391 * @indio_dev: The IIO device associated with the sampling hardware.
1392 * @private: Internal private state related to @indio_dev.
1393 * @irq: Optional interrupt line the hardware uses to notify new data
1394 * samples are ready. Negative or zero values indicate no interrupts
1395 * are available, meaning polling is required.
1396 *
1397 * Only relevant when DT declares a valid interrupt line.
1398 *
1399 * Return: Zero when successful, a negative error code otherwise.
1400 */
zpa2326_init_managed_trigger(struct device * parent,struct iio_dev * indio_dev,struct zpa2326_private * private,int irq)1401 static int zpa2326_init_managed_trigger(struct device *parent,
1402 struct iio_dev *indio_dev,
1403 struct zpa2326_private *private,
1404 int irq)
1405 {
1406 struct iio_trigger *trigger;
1407 int ret;
1408
1409 if (irq <= 0)
1410 return 0;
1411
1412 trigger = devm_iio_trigger_alloc(parent, "%s-dev%d",
1413 indio_dev->name,
1414 iio_device_id(indio_dev));
1415 if (!trigger)
1416 return -ENOMEM;
1417
1418 /* Basic setup. */
1419 trigger->ops = &zpa2326_trigger_ops;
1420
1421 private->trigger = trigger;
1422
1423 /* Register to triggers space. */
1424 ret = devm_iio_trigger_register(parent, trigger);
1425 if (ret)
1426 dev_err(parent, "failed to register hardware trigger (%d)",
1427 ret);
1428
1429 return ret;
1430 }
1431
zpa2326_get_frequency(const struct iio_dev * indio_dev)1432 static int zpa2326_get_frequency(const struct iio_dev *indio_dev)
1433 {
1434 return ((struct zpa2326_private *)iio_priv(indio_dev))->frequency->hz;
1435 }
1436
zpa2326_set_frequency(struct iio_dev * indio_dev,int hz)1437 static int zpa2326_set_frequency(struct iio_dev *indio_dev, int hz)
1438 {
1439 struct zpa2326_private *priv = iio_priv(indio_dev);
1440 int freq;
1441 int err;
1442
1443 /* Check if requested frequency is supported. */
1444 for (freq = 0; freq < ARRAY_SIZE(zpa2326_sampling_frequencies); freq++)
1445 if (zpa2326_sampling_frequencies[freq].hz == hz)
1446 break;
1447 if (freq == ARRAY_SIZE(zpa2326_sampling_frequencies))
1448 return -EINVAL;
1449
1450 /* Don't allow changing frequency if buffered sampling is ongoing. */
1451 err = iio_device_claim_direct_mode(indio_dev);
1452 if (err)
1453 return err;
1454
1455 priv->frequency = &zpa2326_sampling_frequencies[freq];
1456
1457 iio_device_release_direct_mode(indio_dev);
1458
1459 return 0;
1460 }
1461
1462 /* Expose supported hardware sampling frequencies (Hz) through sysfs. */
1463 static IIO_CONST_ATTR_SAMP_FREQ_AVAIL("1 5 11 23");
1464
1465 static struct attribute *zpa2326_attributes[] = {
1466 &iio_const_attr_sampling_frequency_available.dev_attr.attr,
1467 NULL
1468 };
1469
1470 static const struct attribute_group zpa2326_attribute_group = {
1471 .attrs = zpa2326_attributes,
1472 };
1473
zpa2326_read_raw(struct iio_dev * indio_dev,struct iio_chan_spec const * chan,int * val,int * val2,long mask)1474 static int zpa2326_read_raw(struct iio_dev *indio_dev,
1475 struct iio_chan_spec const *chan,
1476 int *val,
1477 int *val2,
1478 long mask)
1479 {
1480 switch (mask) {
1481 case IIO_CHAN_INFO_RAW:
1482 return zpa2326_sample_oneshot(indio_dev, chan->type, val);
1483
1484 case IIO_CHAN_INFO_SCALE:
1485 switch (chan->type) {
1486 case IIO_PRESSURE:
1487 /*
1488 * Pressure resolution is 1/64 Pascal. Scale to kPascal
1489 * as required by IIO ABI.
1490 */
1491 *val = 1;
1492 *val2 = 64000;
1493 return IIO_VAL_FRACTIONAL;
1494
1495 case IIO_TEMP:
1496 /*
1497 * Temperature follows the equation:
1498 * Temp[degC] = Tempcode * 0.00649 - 176.83
1499 * where:
1500 * Tempcode is composed the raw sampled 16 bits.
1501 *
1502 * Hence, to produce a temperature in milli-degrees
1503 * Celsius according to IIO ABI, we need to apply the
1504 * following equation to raw samples:
1505 * Temp[milli degC] = (Tempcode + Offset) * Scale
1506 * where:
1507 * Offset = -176.83 / 0.00649
1508 * Scale = 0.00649 * 1000
1509 */
1510 *val = 6;
1511 *val2 = 490000;
1512 return IIO_VAL_INT_PLUS_MICRO;
1513
1514 default:
1515 return -EINVAL;
1516 }
1517
1518 case IIO_CHAN_INFO_OFFSET:
1519 switch (chan->type) {
1520 case IIO_TEMP:
1521 *val = -17683000;
1522 *val2 = 649;
1523 return IIO_VAL_FRACTIONAL;
1524
1525 default:
1526 return -EINVAL;
1527 }
1528
1529 case IIO_CHAN_INFO_SAMP_FREQ:
1530 *val = zpa2326_get_frequency(indio_dev);
1531 return IIO_VAL_INT;
1532
1533 default:
1534 return -EINVAL;
1535 }
1536 }
1537
zpa2326_write_raw(struct iio_dev * indio_dev,const struct iio_chan_spec * chan,int val,int val2,long mask)1538 static int zpa2326_write_raw(struct iio_dev *indio_dev,
1539 const struct iio_chan_spec *chan,
1540 int val,
1541 int val2,
1542 long mask)
1543 {
1544 if ((mask != IIO_CHAN_INFO_SAMP_FREQ) || val2)
1545 return -EINVAL;
1546
1547 return zpa2326_set_frequency(indio_dev, val);
1548 }
1549
1550 static const struct iio_chan_spec zpa2326_channels[] = {
1551 [0] = {
1552 .type = IIO_PRESSURE,
1553 .scan_index = 0,
1554 .scan_type = {
1555 .sign = 'u',
1556 .realbits = 24,
1557 .storagebits = 32,
1558 .endianness = IIO_LE,
1559 },
1560 .info_mask_separate = BIT(IIO_CHAN_INFO_RAW) |
1561 BIT(IIO_CHAN_INFO_SCALE),
1562 .info_mask_shared_by_all = BIT(IIO_CHAN_INFO_SAMP_FREQ),
1563 },
1564 [1] = {
1565 .type = IIO_TEMP,
1566 .scan_index = 1,
1567 .scan_type = {
1568 .sign = 's',
1569 .realbits = 16,
1570 .storagebits = 16,
1571 .endianness = IIO_LE,
1572 },
1573 .info_mask_separate = BIT(IIO_CHAN_INFO_RAW) |
1574 BIT(IIO_CHAN_INFO_SCALE) |
1575 BIT(IIO_CHAN_INFO_OFFSET),
1576 .info_mask_shared_by_all = BIT(IIO_CHAN_INFO_SAMP_FREQ),
1577 },
1578 [2] = IIO_CHAN_SOFT_TIMESTAMP(2),
1579 };
1580
1581 static const struct iio_info zpa2326_info = {
1582 .attrs = &zpa2326_attribute_group,
1583 .read_raw = zpa2326_read_raw,
1584 .write_raw = zpa2326_write_raw,
1585 };
1586
zpa2326_create_managed_iiodev(struct device * device,const char * name,struct regmap * regmap)1587 static struct iio_dev *zpa2326_create_managed_iiodev(struct device *device,
1588 const char *name,
1589 struct regmap *regmap)
1590 {
1591 struct iio_dev *indio_dev;
1592
1593 /* Allocate space to hold IIO device internal state. */
1594 indio_dev = devm_iio_device_alloc(device,
1595 sizeof(struct zpa2326_private));
1596 if (!indio_dev)
1597 return NULL;
1598
1599 /* Setup for userspace synchronous on demand sampling. */
1600 indio_dev->modes = INDIO_DIRECT_MODE;
1601 indio_dev->channels = zpa2326_channels;
1602 indio_dev->num_channels = ARRAY_SIZE(zpa2326_channels);
1603 indio_dev->name = name;
1604 indio_dev->info = &zpa2326_info;
1605
1606 return indio_dev;
1607 }
1608
zpa2326_probe(struct device * parent,const char * name,int irq,unsigned int hwid,struct regmap * regmap)1609 int zpa2326_probe(struct device *parent,
1610 const char *name,
1611 int irq,
1612 unsigned int hwid,
1613 struct regmap *regmap)
1614 {
1615 struct iio_dev *indio_dev;
1616 struct zpa2326_private *priv;
1617 int err;
1618 unsigned int id;
1619
1620 indio_dev = zpa2326_create_managed_iiodev(parent, name, regmap);
1621 if (!indio_dev)
1622 return -ENOMEM;
1623
1624 priv = iio_priv(indio_dev);
1625
1626 priv->vref = devm_regulator_get(parent, "vref");
1627 if (IS_ERR(priv->vref))
1628 return PTR_ERR(priv->vref);
1629
1630 priv->vdd = devm_regulator_get(parent, "vdd");
1631 if (IS_ERR(priv->vdd))
1632 return PTR_ERR(priv->vdd);
1633
1634 /* Set default hardware sampling frequency to highest rate supported. */
1635 priv->frequency = zpa2326_highest_frequency();
1636
1637 /*
1638 * Plug device's underlying bus abstraction : this MUST be set before
1639 * registering interrupt handlers since an interrupt might happen if
1640 * power up sequence is not properly applied.
1641 */
1642 priv->regmap = regmap;
1643
1644 err = devm_iio_triggered_buffer_setup(parent, indio_dev, NULL,
1645 zpa2326_trigger_handler,
1646 &zpa2326_buffer_setup_ops);
1647 if (err)
1648 return err;
1649
1650 err = zpa2326_init_managed_trigger(parent, indio_dev, priv, irq);
1651 if (err)
1652 return err;
1653
1654 err = zpa2326_init_managed_irq(parent, indio_dev, priv, irq);
1655 if (err)
1656 return err;
1657
1658 /* Power up to check device ID and perform initial hardware setup. */
1659 err = zpa2326_power_on(indio_dev, priv);
1660 if (err)
1661 return err;
1662
1663 /* Read id register to check we are talking to the right slave. */
1664 err = regmap_read(regmap, ZPA2326_DEVICE_ID_REG, &id);
1665 if (err)
1666 goto sleep;
1667
1668 if (id != hwid) {
1669 dev_err(parent, "found device with unexpected id %02x", id);
1670 err = -ENODEV;
1671 goto sleep;
1672 }
1673
1674 err = zpa2326_config_oneshot(indio_dev, irq);
1675 if (err)
1676 goto sleep;
1677
1678 /* Setup done : go sleeping. Device will be awaken upon user request. */
1679 err = zpa2326_sleep(indio_dev);
1680 if (err)
1681 goto poweroff;
1682
1683 dev_set_drvdata(parent, indio_dev);
1684
1685 zpa2326_init_runtime(parent);
1686
1687 err = iio_device_register(indio_dev);
1688 if (err) {
1689 zpa2326_fini_runtime(parent);
1690 goto poweroff;
1691 }
1692
1693 return 0;
1694
1695 sleep:
1696 /* Put to sleep just in case power regulators are "dummy" ones. */
1697 zpa2326_sleep(indio_dev);
1698 poweroff:
1699 zpa2326_power_off(indio_dev, priv);
1700
1701 return err;
1702 }
1703 EXPORT_SYMBOL_NS_GPL(zpa2326_probe, IIO_ZPA2326);
1704
zpa2326_remove(const struct device * parent)1705 void zpa2326_remove(const struct device *parent)
1706 {
1707 struct iio_dev *indio_dev = dev_get_drvdata(parent);
1708
1709 iio_device_unregister(indio_dev);
1710 zpa2326_fini_runtime(indio_dev->dev.parent);
1711 zpa2326_sleep(indio_dev);
1712 zpa2326_power_off(indio_dev, iio_priv(indio_dev));
1713 }
1714 EXPORT_SYMBOL_NS_GPL(zpa2326_remove, IIO_ZPA2326);
1715
1716 MODULE_AUTHOR("Gregor Boirie <gregor.boirie@parrot.com>");
1717 MODULE_DESCRIPTION("Core driver for Murata ZPA2326 pressure sensor");
1718 MODULE_LICENSE("GPL v2");
1719