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1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * ADS7846 based touchscreen and sensor driver
4  *
5  * Copyright (c) 2005 David Brownell
6  * Copyright (c) 2006 Nokia Corporation
7  * Various changes: Imre Deak <imre.deak@nokia.com>
8  *
9  * Using code from:
10  *  - corgi_ts.c
11  *	Copyright (C) 2004-2005 Richard Purdie
12  *  - omap_ts.[hc], ads7846.h, ts_osk.c
13  *	Copyright (C) 2002 MontaVista Software
14  *	Copyright (C) 2004 Texas Instruments
15  *	Copyright (C) 2005 Dirk Behme
16  */
17 #include <linux/types.h>
18 #include <linux/hwmon.h>
19 #include <linux/err.h>
20 #include <linux/sched.h>
21 #include <linux/delay.h>
22 #include <linux/input.h>
23 #include <linux/input/touchscreen.h>
24 #include <linux/interrupt.h>
25 #include <linux/slab.h>
26 #include <linux/pm.h>
27 #include <linux/of.h>
28 #include <linux/of_gpio.h>
29 #include <linux/of_device.h>
30 #include <linux/gpio.h>
31 #include <linux/spi/spi.h>
32 #include <linux/spi/ads7846.h>
33 #include <linux/regulator/consumer.h>
34 #include <linux/module.h>
35 #include <asm/irq.h>
36 #include <asm/unaligned.h>
37 
38 /*
39  * This code has been heavily tested on a Nokia 770, and lightly
40  * tested on other ads7846 devices (OSK/Mistral, Lubbock, Spitz).
41  * TSC2046 is just newer ads7846 silicon.
42  * Support for ads7843 tested on Atmel at91sam926x-EK.
43  * Support for ads7845 has only been stubbed in.
44  * Support for Analog Devices AD7873 and AD7843 tested.
45  *
46  * IRQ handling needs a workaround because of a shortcoming in handling
47  * edge triggered IRQs on some platforms like the OMAP1/2. These
48  * platforms don't handle the ARM lazy IRQ disabling properly, thus we
49  * have to maintain our own SW IRQ disabled status. This should be
50  * removed as soon as the affected platform's IRQ handling is fixed.
51  *
52  * App note sbaa036 talks in more detail about accurate sampling...
53  * that ought to help in situations like LCDs inducing noise (which
54  * can also be helped by using synch signals) and more generally.
55  * This driver tries to utilize the measures described in the app
56  * note. The strength of filtering can be set in the board-* specific
57  * files.
58  */
59 
60 #define TS_POLL_DELAY	1	/* ms delay before the first sample */
61 #define TS_POLL_PERIOD	5	/* ms delay between samples */
62 
63 /* this driver doesn't aim at the peak continuous sample rate */
64 #define	SAMPLE_BITS	(8 /*cmd*/ + 16 /*sample*/ + 2 /* before, after */)
65 
66 struct ads7846_buf {
67 	u8 cmd;
68 	__be16 data;
69 } __packed;
70 
71 struct ads7846_buf_layout {
72 	unsigned int offset;
73 	unsigned int count;
74 	unsigned int skip;
75 };
76 
77 /*
78  * We allocate this separately to avoid cache line sharing issues when
79  * driver is used with DMA-based SPI controllers (like atmel_spi) on
80  * systems where main memory is not DMA-coherent (most non-x86 boards).
81  */
82 struct ads7846_packet {
83 	unsigned int count;
84 	unsigned int count_skip;
85 	unsigned int cmds;
86 	unsigned int last_cmd_idx;
87 	struct ads7846_buf_layout l[5];
88 	struct ads7846_buf *rx;
89 	struct ads7846_buf *tx;
90 
91 	struct ads7846_buf pwrdown_cmd;
92 
93 	bool ignore;
94 	u16 x, y, z1, z2;
95 };
96 
97 struct ads7846 {
98 	struct input_dev	*input;
99 	char			phys[32];
100 	char			name[32];
101 
102 	struct spi_device	*spi;
103 	struct regulator	*reg;
104 
105 #if IS_ENABLED(CONFIG_HWMON)
106 	struct device		*hwmon;
107 #endif
108 
109 	u16			model;
110 	u16			vref_mv;
111 	u16			vref_delay_usecs;
112 	u16			x_plate_ohms;
113 	u16			pressure_max;
114 
115 	bool			swap_xy;
116 	bool			use_internal;
117 
118 	struct ads7846_packet	*packet;
119 
120 	struct spi_transfer	xfer[18];
121 	struct spi_message	msg[5];
122 	int			msg_count;
123 	wait_queue_head_t	wait;
124 
125 	bool			pendown;
126 
127 	int			read_cnt;
128 	int			read_rep;
129 	int			last_read;
130 
131 	u16			debounce_max;
132 	u16			debounce_tol;
133 	u16			debounce_rep;
134 
135 	u16			penirq_recheck_delay_usecs;
136 
137 	struct touchscreen_properties core_prop;
138 
139 	struct mutex		lock;
140 	bool			stopped;	/* P: lock */
141 	bool			disabled;	/* P: lock */
142 	bool			suspended;	/* P: lock */
143 
144 	int			(*filter)(void *data, int data_idx, int *val);
145 	void			*filter_data;
146 	void			(*filter_cleanup)(void *data);
147 	int			(*get_pendown_state)(void);
148 	int			gpio_pendown;
149 
150 	void			(*wait_for_sync)(void);
151 };
152 
153 /* leave chip selected when we're done, for quicker re-select? */
154 #if	0
155 #define	CS_CHANGE(xfer)	((xfer).cs_change = 1)
156 #else
157 #define	CS_CHANGE(xfer)	((xfer).cs_change = 0)
158 #endif
159 
160 /*--------------------------------------------------------------------------*/
161 
162 /* The ADS7846 has touchscreen and other sensors.
163  * Earlier ads784x chips are somewhat compatible.
164  */
165 #define	ADS_START		(1 << 7)
166 #define	ADS_A2A1A0_d_y		(1 << 4)	/* differential */
167 #define	ADS_A2A1A0_d_z1		(3 << 4)	/* differential */
168 #define	ADS_A2A1A0_d_z2		(4 << 4)	/* differential */
169 #define	ADS_A2A1A0_d_x		(5 << 4)	/* differential */
170 #define	ADS_A2A1A0_temp0	(0 << 4)	/* non-differential */
171 #define	ADS_A2A1A0_vbatt	(2 << 4)	/* non-differential */
172 #define	ADS_A2A1A0_vaux		(6 << 4)	/* non-differential */
173 #define	ADS_A2A1A0_temp1	(7 << 4)	/* non-differential */
174 #define	ADS_8_BIT		(1 << 3)
175 #define	ADS_12_BIT		(0 << 3)
176 #define	ADS_SER			(1 << 2)	/* non-differential */
177 #define	ADS_DFR			(0 << 2)	/* differential */
178 #define	ADS_PD10_PDOWN		(0 << 0)	/* low power mode + penirq */
179 #define	ADS_PD10_ADC_ON		(1 << 0)	/* ADC on */
180 #define	ADS_PD10_REF_ON		(2 << 0)	/* vREF on + penirq */
181 #define	ADS_PD10_ALL_ON		(3 << 0)	/* ADC + vREF on */
182 
183 #define	MAX_12BIT	((1<<12)-1)
184 
185 /* leave ADC powered up (disables penirq) between differential samples */
186 #define	READ_12BIT_DFR(x, adc, vref) (ADS_START | ADS_A2A1A0_d_ ## x \
187 	| ADS_12_BIT | ADS_DFR | \
188 	(adc ? ADS_PD10_ADC_ON : 0) | (vref ? ADS_PD10_REF_ON : 0))
189 
190 #define	READ_Y(vref)	(READ_12BIT_DFR(y,  1, vref))
191 #define	READ_Z1(vref)	(READ_12BIT_DFR(z1, 1, vref))
192 #define	READ_Z2(vref)	(READ_12BIT_DFR(z2, 1, vref))
193 #define	READ_X(vref)	(READ_12BIT_DFR(x,  1, vref))
194 #define	PWRDOWN		(READ_12BIT_DFR(y,  0, 0))	/* LAST */
195 
196 /* single-ended samples need to first power up reference voltage;
197  * we leave both ADC and VREF powered
198  */
199 #define	READ_12BIT_SER(x) (ADS_START | ADS_A2A1A0_ ## x \
200 	| ADS_12_BIT | ADS_SER)
201 
202 #define	REF_ON	(READ_12BIT_DFR(x, 1, 1))
203 #define	REF_OFF	(READ_12BIT_DFR(y, 0, 0))
204 
205 /* Order commands in the most optimal way to reduce Vref switching and
206  * settling time:
207  * Measure:  X; Vref: X+, X-; IN: Y+
208  * Measure:  Y; Vref: Y+, Y-; IN: X+
209  * Measure: Z1; Vref: Y+, X-; IN: X+
210  * Measure: Z2; Vref: Y+, X-; IN: Y-
211  */
212 enum ads7846_cmds {
213 	ADS7846_X,
214 	ADS7846_Y,
215 	ADS7846_Z1,
216 	ADS7846_Z2,
217 	ADS7846_PWDOWN,
218 };
219 
get_pendown_state(struct ads7846 * ts)220 static int get_pendown_state(struct ads7846 *ts)
221 {
222 	if (ts->get_pendown_state)
223 		return ts->get_pendown_state();
224 
225 	return !gpio_get_value(ts->gpio_pendown);
226 }
227 
ads7846_report_pen_up(struct ads7846 * ts)228 static void ads7846_report_pen_up(struct ads7846 *ts)
229 {
230 	struct input_dev *input = ts->input;
231 
232 	input_report_key(input, BTN_TOUCH, 0);
233 	input_report_abs(input, ABS_PRESSURE, 0);
234 	input_sync(input);
235 
236 	ts->pendown = false;
237 	dev_vdbg(&ts->spi->dev, "UP\n");
238 }
239 
240 /* Must be called with ts->lock held */
ads7846_stop(struct ads7846 * ts)241 static void ads7846_stop(struct ads7846 *ts)
242 {
243 	if (!ts->disabled && !ts->suspended) {
244 		/* Signal IRQ thread to stop polling and disable the handler. */
245 		ts->stopped = true;
246 		mb();
247 		wake_up(&ts->wait);
248 		disable_irq(ts->spi->irq);
249 	}
250 }
251 
252 /* Must be called with ts->lock held */
ads7846_restart(struct ads7846 * ts)253 static void ads7846_restart(struct ads7846 *ts)
254 {
255 	if (!ts->disabled && !ts->suspended) {
256 		/* Check if pen was released since last stop */
257 		if (ts->pendown && !get_pendown_state(ts))
258 			ads7846_report_pen_up(ts);
259 
260 		/* Tell IRQ thread that it may poll the device. */
261 		ts->stopped = false;
262 		mb();
263 		enable_irq(ts->spi->irq);
264 	}
265 }
266 
267 /* Must be called with ts->lock held */
__ads7846_disable(struct ads7846 * ts)268 static void __ads7846_disable(struct ads7846 *ts)
269 {
270 	ads7846_stop(ts);
271 	regulator_disable(ts->reg);
272 
273 	/*
274 	 * We know the chip's in low power mode since we always
275 	 * leave it that way after every request
276 	 */
277 }
278 
279 /* Must be called with ts->lock held */
__ads7846_enable(struct ads7846 * ts)280 static void __ads7846_enable(struct ads7846 *ts)
281 {
282 	int error;
283 
284 	error = regulator_enable(ts->reg);
285 	if (error != 0)
286 		dev_err(&ts->spi->dev, "Failed to enable supply: %d\n", error);
287 
288 	ads7846_restart(ts);
289 }
290 
ads7846_disable(struct ads7846 * ts)291 static void ads7846_disable(struct ads7846 *ts)
292 {
293 	mutex_lock(&ts->lock);
294 
295 	if (!ts->disabled) {
296 
297 		if  (!ts->suspended)
298 			__ads7846_disable(ts);
299 
300 		ts->disabled = true;
301 	}
302 
303 	mutex_unlock(&ts->lock);
304 }
305 
ads7846_enable(struct ads7846 * ts)306 static void ads7846_enable(struct ads7846 *ts)
307 {
308 	mutex_lock(&ts->lock);
309 
310 	if (ts->disabled) {
311 
312 		ts->disabled = false;
313 
314 		if (!ts->suspended)
315 			__ads7846_enable(ts);
316 	}
317 
318 	mutex_unlock(&ts->lock);
319 }
320 
321 /*--------------------------------------------------------------------------*/
322 
323 /*
324  * Non-touchscreen sensors only use single-ended conversions.
325  * The range is GND..vREF. The ads7843 and ads7835 must use external vREF;
326  * ads7846 lets that pin be unconnected, to use internal vREF.
327  */
328 
329 struct ser_req {
330 	u8			ref_on;
331 	u8			command;
332 	u8			ref_off;
333 	u16			scratch;
334 	struct spi_message	msg;
335 	struct spi_transfer	xfer[6];
336 	/*
337 	 * DMA (thus cache coherency maintenance) requires the
338 	 * transfer buffers to live in their own cache lines.
339 	 */
340 	__be16 sample ____cacheline_aligned;
341 };
342 
343 struct ads7845_ser_req {
344 	u8			command[3];
345 	struct spi_message	msg;
346 	struct spi_transfer	xfer[2];
347 	/*
348 	 * DMA (thus cache coherency maintenance) requires the
349 	 * transfer buffers to live in their own cache lines.
350 	 */
351 	u8 sample[3] ____cacheline_aligned;
352 };
353 
ads7846_read12_ser(struct device * dev,unsigned command)354 static int ads7846_read12_ser(struct device *dev, unsigned command)
355 {
356 	struct spi_device *spi = to_spi_device(dev);
357 	struct ads7846 *ts = dev_get_drvdata(dev);
358 	struct ser_req *req;
359 	int status;
360 
361 	req = kzalloc(sizeof *req, GFP_KERNEL);
362 	if (!req)
363 		return -ENOMEM;
364 
365 	spi_message_init(&req->msg);
366 
367 	/* maybe turn on internal vREF, and let it settle */
368 	if (ts->use_internal) {
369 		req->ref_on = REF_ON;
370 		req->xfer[0].tx_buf = &req->ref_on;
371 		req->xfer[0].len = 1;
372 		spi_message_add_tail(&req->xfer[0], &req->msg);
373 
374 		req->xfer[1].rx_buf = &req->scratch;
375 		req->xfer[1].len = 2;
376 
377 		/* for 1uF, settle for 800 usec; no cap, 100 usec.  */
378 		req->xfer[1].delay.value = ts->vref_delay_usecs;
379 		req->xfer[1].delay.unit = SPI_DELAY_UNIT_USECS;
380 		spi_message_add_tail(&req->xfer[1], &req->msg);
381 
382 		/* Enable reference voltage */
383 		command |= ADS_PD10_REF_ON;
384 	}
385 
386 	/* Enable ADC in every case */
387 	command |= ADS_PD10_ADC_ON;
388 
389 	/* take sample */
390 	req->command = (u8) command;
391 	req->xfer[2].tx_buf = &req->command;
392 	req->xfer[2].len = 1;
393 	spi_message_add_tail(&req->xfer[2], &req->msg);
394 
395 	req->xfer[3].rx_buf = &req->sample;
396 	req->xfer[3].len = 2;
397 	spi_message_add_tail(&req->xfer[3], &req->msg);
398 
399 	/* REVISIT:  take a few more samples, and compare ... */
400 
401 	/* converter in low power mode & enable PENIRQ */
402 	req->ref_off = PWRDOWN;
403 	req->xfer[4].tx_buf = &req->ref_off;
404 	req->xfer[4].len = 1;
405 	spi_message_add_tail(&req->xfer[4], &req->msg);
406 
407 	req->xfer[5].rx_buf = &req->scratch;
408 	req->xfer[5].len = 2;
409 	CS_CHANGE(req->xfer[5]);
410 	spi_message_add_tail(&req->xfer[5], &req->msg);
411 
412 	mutex_lock(&ts->lock);
413 	ads7846_stop(ts);
414 	status = spi_sync(spi, &req->msg);
415 	ads7846_restart(ts);
416 	mutex_unlock(&ts->lock);
417 
418 	if (status == 0) {
419 		/* on-wire is a must-ignore bit, a BE12 value, then padding */
420 		status = be16_to_cpu(req->sample);
421 		status = status >> 3;
422 		status &= 0x0fff;
423 	}
424 
425 	kfree(req);
426 	return status;
427 }
428 
ads7845_read12_ser(struct device * dev,unsigned command)429 static int ads7845_read12_ser(struct device *dev, unsigned command)
430 {
431 	struct spi_device *spi = to_spi_device(dev);
432 	struct ads7846 *ts = dev_get_drvdata(dev);
433 	struct ads7845_ser_req *req;
434 	int status;
435 
436 	req = kzalloc(sizeof *req, GFP_KERNEL);
437 	if (!req)
438 		return -ENOMEM;
439 
440 	spi_message_init(&req->msg);
441 
442 	req->command[0] = (u8) command;
443 	req->xfer[0].tx_buf = req->command;
444 	req->xfer[0].rx_buf = req->sample;
445 	req->xfer[0].len = 3;
446 	spi_message_add_tail(&req->xfer[0], &req->msg);
447 
448 	mutex_lock(&ts->lock);
449 	ads7846_stop(ts);
450 	status = spi_sync(spi, &req->msg);
451 	ads7846_restart(ts);
452 	mutex_unlock(&ts->lock);
453 
454 	if (status == 0) {
455 		/* BE12 value, then padding */
456 		status = get_unaligned_be16(&req->sample[1]);
457 		status = status >> 3;
458 		status &= 0x0fff;
459 	}
460 
461 	kfree(req);
462 	return status;
463 }
464 
465 #if IS_ENABLED(CONFIG_HWMON)
466 
467 #define SHOW(name, var, adjust) static ssize_t \
468 name ## _show(struct device *dev, struct device_attribute *attr, char *buf) \
469 { \
470 	struct ads7846 *ts = dev_get_drvdata(dev); \
471 	ssize_t v = ads7846_read12_ser(&ts->spi->dev, \
472 			READ_12BIT_SER(var)); \
473 	if (v < 0) \
474 		return v; \
475 	return sprintf(buf, "%u\n", adjust(ts, v)); \
476 } \
477 static DEVICE_ATTR(name, S_IRUGO, name ## _show, NULL);
478 
479 
480 /* Sysfs conventions report temperatures in millidegrees Celsius.
481  * ADS7846 could use the low-accuracy two-sample scheme, but can't do the high
482  * accuracy scheme without calibration data.  For now we won't try either;
483  * userspace sees raw sensor values, and must scale/calibrate appropriately.
484  */
null_adjust(struct ads7846 * ts,ssize_t v)485 static inline unsigned null_adjust(struct ads7846 *ts, ssize_t v)
486 {
487 	return v;
488 }
489 
SHOW(temp0,temp0,null_adjust)490 SHOW(temp0, temp0, null_adjust)		/* temp1_input */
491 SHOW(temp1, temp1, null_adjust)		/* temp2_input */
492 
493 
494 /* sysfs conventions report voltages in millivolts.  We can convert voltages
495  * if we know vREF.  userspace may need to scale vAUX to match the board's
496  * external resistors; we assume that vBATT only uses the internal ones.
497  */
498 static inline unsigned vaux_adjust(struct ads7846 *ts, ssize_t v)
499 {
500 	unsigned retval = v;
501 
502 	/* external resistors may scale vAUX into 0..vREF */
503 	retval *= ts->vref_mv;
504 	retval = retval >> 12;
505 
506 	return retval;
507 }
508 
vbatt_adjust(struct ads7846 * ts,ssize_t v)509 static inline unsigned vbatt_adjust(struct ads7846 *ts, ssize_t v)
510 {
511 	unsigned retval = vaux_adjust(ts, v);
512 
513 	/* ads7846 has a resistor ladder to scale this signal down */
514 	if (ts->model == 7846)
515 		retval *= 4;
516 
517 	return retval;
518 }
519 
SHOW(in0_input,vaux,vaux_adjust)520 SHOW(in0_input, vaux, vaux_adjust)
521 SHOW(in1_input, vbatt, vbatt_adjust)
522 
523 static umode_t ads7846_is_visible(struct kobject *kobj, struct attribute *attr,
524 				  int index)
525 {
526 	struct device *dev = container_of(kobj, struct device, kobj);
527 	struct ads7846 *ts = dev_get_drvdata(dev);
528 
529 	if (ts->model == 7843 && index < 2)	/* in0, in1 */
530 		return 0;
531 	if (ts->model == 7845 && index != 2)	/* in0 */
532 		return 0;
533 
534 	return attr->mode;
535 }
536 
537 static struct attribute *ads7846_attributes[] = {
538 	&dev_attr_temp0.attr,		/* 0 */
539 	&dev_attr_temp1.attr,		/* 1 */
540 	&dev_attr_in0_input.attr,	/* 2 */
541 	&dev_attr_in1_input.attr,	/* 3 */
542 	NULL,
543 };
544 
545 static const struct attribute_group ads7846_attr_group = {
546 	.attrs = ads7846_attributes,
547 	.is_visible = ads7846_is_visible,
548 };
549 __ATTRIBUTE_GROUPS(ads7846_attr);
550 
ads784x_hwmon_register(struct spi_device * spi,struct ads7846 * ts)551 static int ads784x_hwmon_register(struct spi_device *spi, struct ads7846 *ts)
552 {
553 	/* hwmon sensors need a reference voltage */
554 	switch (ts->model) {
555 	case 7846:
556 		if (!ts->vref_mv) {
557 			dev_dbg(&spi->dev, "assuming 2.5V internal vREF\n");
558 			ts->vref_mv = 2500;
559 			ts->use_internal = true;
560 		}
561 		break;
562 	case 7845:
563 	case 7843:
564 		if (!ts->vref_mv) {
565 			dev_warn(&spi->dev,
566 				"external vREF for ADS%d not specified\n",
567 				ts->model);
568 			return 0;
569 		}
570 		break;
571 	}
572 
573 	ts->hwmon = hwmon_device_register_with_groups(&spi->dev, spi->modalias,
574 						      ts, ads7846_attr_groups);
575 
576 	return PTR_ERR_OR_ZERO(ts->hwmon);
577 }
578 
ads784x_hwmon_unregister(struct spi_device * spi,struct ads7846 * ts)579 static void ads784x_hwmon_unregister(struct spi_device *spi,
580 				     struct ads7846 *ts)
581 {
582 	if (ts->hwmon)
583 		hwmon_device_unregister(ts->hwmon);
584 }
585 
586 #else
ads784x_hwmon_register(struct spi_device * spi,struct ads7846 * ts)587 static inline int ads784x_hwmon_register(struct spi_device *spi,
588 					 struct ads7846 *ts)
589 {
590 	return 0;
591 }
592 
ads784x_hwmon_unregister(struct spi_device * spi,struct ads7846 * ts)593 static inline void ads784x_hwmon_unregister(struct spi_device *spi,
594 					    struct ads7846 *ts)
595 {
596 }
597 #endif
598 
ads7846_pen_down_show(struct device * dev,struct device_attribute * attr,char * buf)599 static ssize_t ads7846_pen_down_show(struct device *dev,
600 				     struct device_attribute *attr, char *buf)
601 {
602 	struct ads7846 *ts = dev_get_drvdata(dev);
603 
604 	return sprintf(buf, "%u\n", ts->pendown);
605 }
606 
607 static DEVICE_ATTR(pen_down, S_IRUGO, ads7846_pen_down_show, NULL);
608 
ads7846_disable_show(struct device * dev,struct device_attribute * attr,char * buf)609 static ssize_t ads7846_disable_show(struct device *dev,
610 				     struct device_attribute *attr, char *buf)
611 {
612 	struct ads7846 *ts = dev_get_drvdata(dev);
613 
614 	return sprintf(buf, "%u\n", ts->disabled);
615 }
616 
ads7846_disable_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)617 static ssize_t ads7846_disable_store(struct device *dev,
618 				     struct device_attribute *attr,
619 				     const char *buf, size_t count)
620 {
621 	struct ads7846 *ts = dev_get_drvdata(dev);
622 	unsigned int i;
623 	int err;
624 
625 	err = kstrtouint(buf, 10, &i);
626 	if (err)
627 		return err;
628 
629 	if (i)
630 		ads7846_disable(ts);
631 	else
632 		ads7846_enable(ts);
633 
634 	return count;
635 }
636 
637 static DEVICE_ATTR(disable, 0664, ads7846_disable_show, ads7846_disable_store);
638 
639 static struct attribute *ads784x_attributes[] = {
640 	&dev_attr_pen_down.attr,
641 	&dev_attr_disable.attr,
642 	NULL,
643 };
644 
645 static const struct attribute_group ads784x_attr_group = {
646 	.attrs = ads784x_attributes,
647 };
648 
649 /*--------------------------------------------------------------------------*/
650 
null_wait_for_sync(void)651 static void null_wait_for_sync(void)
652 {
653 }
654 
ads7846_debounce_filter(void * ads,int data_idx,int * val)655 static int ads7846_debounce_filter(void *ads, int data_idx, int *val)
656 {
657 	struct ads7846 *ts = ads;
658 
659 	if (!ts->read_cnt || (abs(ts->last_read - *val) > ts->debounce_tol)) {
660 		/* Start over collecting consistent readings. */
661 		ts->read_rep = 0;
662 		/*
663 		 * Repeat it, if this was the first read or the read
664 		 * wasn't consistent enough.
665 		 */
666 		if (ts->read_cnt < ts->debounce_max) {
667 			ts->last_read = *val;
668 			ts->read_cnt++;
669 			return ADS7846_FILTER_REPEAT;
670 		} else {
671 			/*
672 			 * Maximum number of debouncing reached and still
673 			 * not enough number of consistent readings. Abort
674 			 * the whole sample, repeat it in the next sampling
675 			 * period.
676 			 */
677 			ts->read_cnt = 0;
678 			return ADS7846_FILTER_IGNORE;
679 		}
680 	} else {
681 		if (++ts->read_rep > ts->debounce_rep) {
682 			/*
683 			 * Got a good reading for this coordinate,
684 			 * go for the next one.
685 			 */
686 			ts->read_cnt = 0;
687 			ts->read_rep = 0;
688 			return ADS7846_FILTER_OK;
689 		} else {
690 			/* Read more values that are consistent. */
691 			ts->read_cnt++;
692 			return ADS7846_FILTER_REPEAT;
693 		}
694 	}
695 }
696 
ads7846_no_filter(void * ads,int data_idx,int * val)697 static int ads7846_no_filter(void *ads, int data_idx, int *val)
698 {
699 	return ADS7846_FILTER_OK;
700 }
701 
ads7846_get_value(struct ads7846_buf * buf)702 static int ads7846_get_value(struct ads7846_buf *buf)
703 {
704 	int value;
705 
706 	value = be16_to_cpup(&buf->data);
707 
708 	/* enforce ADC output is 12 bits width */
709 	return (value >> 3) & 0xfff;
710 }
711 
ads7846_set_cmd_val(struct ads7846 * ts,enum ads7846_cmds cmd_idx,u16 val)712 static void ads7846_set_cmd_val(struct ads7846 *ts, enum ads7846_cmds cmd_idx,
713 				u16 val)
714 {
715 	struct ads7846_packet *packet = ts->packet;
716 
717 	switch (cmd_idx) {
718 	case ADS7846_Y:
719 		packet->y = val;
720 		break;
721 	case ADS7846_X:
722 		packet->x = val;
723 		break;
724 	case ADS7846_Z1:
725 		packet->z1 = val;
726 		break;
727 	case ADS7846_Z2:
728 		packet->z2 = val;
729 		break;
730 	default:
731 		WARN_ON_ONCE(1);
732 	}
733 }
734 
ads7846_get_cmd(enum ads7846_cmds cmd_idx,int vref)735 static u8 ads7846_get_cmd(enum ads7846_cmds cmd_idx, int vref)
736 {
737 	switch (cmd_idx) {
738 	case ADS7846_Y:
739 		return READ_Y(vref);
740 	case ADS7846_X:
741 		return READ_X(vref);
742 
743 	/* 7846 specific commands  */
744 	case ADS7846_Z1:
745 		return READ_Z1(vref);
746 	case ADS7846_Z2:
747 		return READ_Z2(vref);
748 	case ADS7846_PWDOWN:
749 		return PWRDOWN;
750 	default:
751 		WARN_ON_ONCE(1);
752 	}
753 
754 	return 0;
755 }
756 
ads7846_cmd_need_settle(enum ads7846_cmds cmd_idx)757 static bool ads7846_cmd_need_settle(enum ads7846_cmds cmd_idx)
758 {
759 	switch (cmd_idx) {
760 	case ADS7846_X:
761 	case ADS7846_Y:
762 	case ADS7846_Z1:
763 	case ADS7846_Z2:
764 		return true;
765 	case ADS7846_PWDOWN:
766 		return false;
767 	default:
768 		WARN_ON_ONCE(1);
769 	}
770 
771 	return false;
772 }
773 
ads7846_filter(struct ads7846 * ts)774 static int ads7846_filter(struct ads7846 *ts)
775 {
776 	struct ads7846_packet *packet = ts->packet;
777 	int action;
778 	int val;
779 	unsigned int cmd_idx, b;
780 
781 	packet->ignore = false;
782 	for (cmd_idx = packet->last_cmd_idx; cmd_idx < packet->cmds - 1; cmd_idx++) {
783 		struct ads7846_buf_layout *l = &packet->l[cmd_idx];
784 
785 		packet->last_cmd_idx = cmd_idx;
786 
787 		for (b = l->skip; b < l->count; b++) {
788 			val = ads7846_get_value(&packet->rx[l->offset + b]);
789 
790 			action = ts->filter(ts->filter_data, cmd_idx, &val);
791 			if (action == ADS7846_FILTER_REPEAT) {
792 				if (b == l->count - 1)
793 					return -EAGAIN;
794 			} else if (action == ADS7846_FILTER_OK) {
795 				ads7846_set_cmd_val(ts, cmd_idx, val);
796 				break;
797 			} else {
798 				packet->ignore = true;
799 				return 0;
800 			}
801 		}
802 	}
803 
804 	return 0;
805 }
806 
ads7846_read_state(struct ads7846 * ts)807 static void ads7846_read_state(struct ads7846 *ts)
808 {
809 	struct ads7846_packet *packet = ts->packet;
810 	struct spi_message *m;
811 	int msg_idx = 0;
812 	int error;
813 
814 	packet->last_cmd_idx = 0;
815 
816 	while (true) {
817 		ts->wait_for_sync();
818 
819 		m = &ts->msg[msg_idx];
820 		error = spi_sync(ts->spi, m);
821 		if (error) {
822 			dev_err(&ts->spi->dev, "spi_sync --> %d\n", error);
823 			packet->ignore = true;
824 			return;
825 		}
826 
827 		error = ads7846_filter(ts);
828 		if (error)
829 			continue;
830 
831 		return;
832 	}
833 }
834 
ads7846_report_state(struct ads7846 * ts)835 static void ads7846_report_state(struct ads7846 *ts)
836 {
837 	struct ads7846_packet *packet = ts->packet;
838 	unsigned int Rt;
839 	u16 x, y, z1, z2;
840 
841 	x = packet->x;
842 	y = packet->y;
843 	if (ts->model == 7845) {
844 		z1 = 0;
845 		z2 = 0;
846 	} else {
847 		z1 = packet->z1;
848 		z2 = packet->z2;
849 	}
850 
851 	/* range filtering */
852 	if (x == MAX_12BIT)
853 		x = 0;
854 
855 	if (ts->model == 7843 || ts->model == 7845) {
856 		Rt = ts->pressure_max / 2;
857 	} else if (likely(x && z1)) {
858 		/* compute touch pressure resistance using equation #2 */
859 		Rt = z2;
860 		Rt -= z1;
861 		Rt *= ts->x_plate_ohms;
862 		Rt = DIV_ROUND_CLOSEST(Rt, 16);
863 		Rt *= x;
864 		Rt /= z1;
865 		Rt = DIV_ROUND_CLOSEST(Rt, 256);
866 	} else {
867 		Rt = 0;
868 	}
869 
870 	/*
871 	 * Sample found inconsistent by debouncing or pressure is beyond
872 	 * the maximum. Don't report it to user space, repeat at least
873 	 * once more the measurement
874 	 */
875 	if (packet->ignore || Rt > ts->pressure_max) {
876 		dev_vdbg(&ts->spi->dev, "ignored %d pressure %d\n",
877 			 packet->ignore, Rt);
878 		return;
879 	}
880 
881 	/*
882 	 * Maybe check the pendown state before reporting. This discards
883 	 * false readings when the pen is lifted.
884 	 */
885 	if (ts->penirq_recheck_delay_usecs) {
886 		udelay(ts->penirq_recheck_delay_usecs);
887 		if (!get_pendown_state(ts))
888 			Rt = 0;
889 	}
890 
891 	/*
892 	 * NOTE: We can't rely on the pressure to determine the pen down
893 	 * state, even this controller has a pressure sensor. The pressure
894 	 * value can fluctuate for quite a while after lifting the pen and
895 	 * in some cases may not even settle at the expected value.
896 	 *
897 	 * The only safe way to check for the pen up condition is in the
898 	 * timer by reading the pen signal state (it's a GPIO _and_ IRQ).
899 	 */
900 	if (Rt) {
901 		struct input_dev *input = ts->input;
902 
903 		if (!ts->pendown) {
904 			input_report_key(input, BTN_TOUCH, 1);
905 			ts->pendown = true;
906 			dev_vdbg(&ts->spi->dev, "DOWN\n");
907 		}
908 
909 		touchscreen_report_pos(input, &ts->core_prop, x, y, false);
910 		input_report_abs(input, ABS_PRESSURE, ts->pressure_max - Rt);
911 
912 		input_sync(input);
913 		dev_vdbg(&ts->spi->dev, "%4d/%4d/%4d\n", x, y, Rt);
914 	}
915 }
916 
ads7846_hard_irq(int irq,void * handle)917 static irqreturn_t ads7846_hard_irq(int irq, void *handle)
918 {
919 	struct ads7846 *ts = handle;
920 
921 	return get_pendown_state(ts) ? IRQ_WAKE_THREAD : IRQ_HANDLED;
922 }
923 
924 
ads7846_irq(int irq,void * handle)925 static irqreturn_t ads7846_irq(int irq, void *handle)
926 {
927 	struct ads7846 *ts = handle;
928 
929 	/* Start with a small delay before checking pendown state */
930 	msleep(TS_POLL_DELAY);
931 
932 	while (!ts->stopped && get_pendown_state(ts)) {
933 
934 		/* pen is down, continue with the measurement */
935 		ads7846_read_state(ts);
936 
937 		if (!ts->stopped)
938 			ads7846_report_state(ts);
939 
940 		wait_event_timeout(ts->wait, ts->stopped,
941 				   msecs_to_jiffies(TS_POLL_PERIOD));
942 	}
943 
944 	if (ts->pendown && !ts->stopped)
945 		ads7846_report_pen_up(ts);
946 
947 	return IRQ_HANDLED;
948 }
949 
ads7846_suspend(struct device * dev)950 static int __maybe_unused ads7846_suspend(struct device *dev)
951 {
952 	struct ads7846 *ts = dev_get_drvdata(dev);
953 
954 	mutex_lock(&ts->lock);
955 
956 	if (!ts->suspended) {
957 
958 		if (!ts->disabled)
959 			__ads7846_disable(ts);
960 
961 		if (device_may_wakeup(&ts->spi->dev))
962 			enable_irq_wake(ts->spi->irq);
963 
964 		ts->suspended = true;
965 	}
966 
967 	mutex_unlock(&ts->lock);
968 
969 	return 0;
970 }
971 
ads7846_resume(struct device * dev)972 static int __maybe_unused ads7846_resume(struct device *dev)
973 {
974 	struct ads7846 *ts = dev_get_drvdata(dev);
975 
976 	mutex_lock(&ts->lock);
977 
978 	if (ts->suspended) {
979 
980 		ts->suspended = false;
981 
982 		if (device_may_wakeup(&ts->spi->dev))
983 			disable_irq_wake(ts->spi->irq);
984 
985 		if (!ts->disabled)
986 			__ads7846_enable(ts);
987 	}
988 
989 	mutex_unlock(&ts->lock);
990 
991 	return 0;
992 }
993 
994 static SIMPLE_DEV_PM_OPS(ads7846_pm, ads7846_suspend, ads7846_resume);
995 
ads7846_setup_pendown(struct spi_device * spi,struct ads7846 * ts,const struct ads7846_platform_data * pdata)996 static int ads7846_setup_pendown(struct spi_device *spi,
997 				 struct ads7846 *ts,
998 				 const struct ads7846_platform_data *pdata)
999 {
1000 	int err;
1001 
1002 	/*
1003 	 * REVISIT when the irq can be triggered active-low, or if for some
1004 	 * reason the touchscreen isn't hooked up, we don't need to access
1005 	 * the pendown state.
1006 	 */
1007 
1008 	if (pdata->get_pendown_state) {
1009 		ts->get_pendown_state = pdata->get_pendown_state;
1010 	} else if (gpio_is_valid(pdata->gpio_pendown)) {
1011 
1012 		err = gpio_request_one(pdata->gpio_pendown, GPIOF_IN,
1013 				       "ads7846_pendown");
1014 		if (err) {
1015 			dev_err(&spi->dev,
1016 				"failed to request/setup pendown GPIO%d: %d\n",
1017 				pdata->gpio_pendown, err);
1018 			return err;
1019 		}
1020 
1021 		ts->gpio_pendown = pdata->gpio_pendown;
1022 
1023 		if (pdata->gpio_pendown_debounce)
1024 			gpio_set_debounce(pdata->gpio_pendown,
1025 					  pdata->gpio_pendown_debounce);
1026 	} else {
1027 		dev_err(&spi->dev, "no get_pendown_state nor gpio_pendown?\n");
1028 		return -EINVAL;
1029 	}
1030 
1031 	return 0;
1032 }
1033 
1034 /*
1035  * Set up the transfers to read touchscreen state; this assumes we
1036  * use formula #2 for pressure, not #3.
1037  */
ads7846_setup_spi_msg(struct ads7846 * ts,const struct ads7846_platform_data * pdata)1038 static int ads7846_setup_spi_msg(struct ads7846 *ts,
1039 				  const struct ads7846_platform_data *pdata)
1040 {
1041 	struct spi_message *m = &ts->msg[0];
1042 	struct spi_transfer *x = ts->xfer;
1043 	struct ads7846_packet *packet = ts->packet;
1044 	int vref = pdata->keep_vref_on;
1045 	unsigned int count, offset = 0;
1046 	unsigned int cmd_idx, b;
1047 	unsigned long time;
1048 	size_t size = 0;
1049 
1050 	/* time per bit */
1051 	time = NSEC_PER_SEC / ts->spi->max_speed_hz;
1052 
1053 	count = pdata->settle_delay_usecs * NSEC_PER_USEC / time;
1054 	packet->count_skip = DIV_ROUND_UP(count, 24);
1055 
1056 	if (ts->debounce_max && ts->debounce_rep)
1057 		/* ads7846_debounce_filter() is making ts->debounce_rep + 2
1058 		 * reads. So we need to get all samples for normal case. */
1059 		packet->count = ts->debounce_rep + 2;
1060 	else
1061 		packet->count = 1;
1062 
1063 	if (ts->model == 7846)
1064 		packet->cmds = 5; /* x, y, z1, z2, pwdown */
1065 	else
1066 		packet->cmds = 3; /* x, y, pwdown */
1067 
1068 	for (cmd_idx = 0; cmd_idx < packet->cmds; cmd_idx++) {
1069 		struct ads7846_buf_layout *l = &packet->l[cmd_idx];
1070 		unsigned int max_count;
1071 
1072 		if (cmd_idx == packet->cmds - 1)
1073 			cmd_idx = ADS7846_PWDOWN;
1074 
1075 		if (ads7846_cmd_need_settle(cmd_idx))
1076 			max_count = packet->count + packet->count_skip;
1077 		else
1078 			max_count = packet->count;
1079 
1080 		l->offset = offset;
1081 		offset += max_count;
1082 		l->count = max_count;
1083 		l->skip = packet->count_skip;
1084 		size += sizeof(*packet->tx) * max_count;
1085 	}
1086 
1087 	packet->tx = devm_kzalloc(&ts->spi->dev, size, GFP_KERNEL);
1088 	if (!packet->tx)
1089 		return -ENOMEM;
1090 
1091 	packet->rx = devm_kzalloc(&ts->spi->dev, size, GFP_KERNEL);
1092 	if (!packet->rx)
1093 		return -ENOMEM;
1094 
1095 	if (ts->model == 7873) {
1096 		/*
1097 		 * The AD7873 is almost identical to the ADS7846
1098 		 * keep VREF off during differential/ratiometric
1099 		 * conversion modes.
1100 		 */
1101 		ts->model = 7846;
1102 		vref = 0;
1103 	}
1104 
1105 	ts->msg_count = 1;
1106 	spi_message_init(m);
1107 	m->context = ts;
1108 
1109 	for (cmd_idx = 0; cmd_idx < packet->cmds; cmd_idx++) {
1110 		struct ads7846_buf_layout *l = &packet->l[cmd_idx];
1111 		u8 cmd;
1112 
1113 		if (cmd_idx == packet->cmds - 1)
1114 			cmd_idx = ADS7846_PWDOWN;
1115 
1116 		cmd = ads7846_get_cmd(cmd_idx, vref);
1117 
1118 		for (b = 0; b < l->count; b++)
1119 			packet->tx[l->offset + b].cmd = cmd;
1120 	}
1121 
1122 	x->tx_buf = packet->tx;
1123 	x->rx_buf = packet->rx;
1124 	x->len = size;
1125 	spi_message_add_tail(x, m);
1126 
1127 	return 0;
1128 }
1129 
1130 #ifdef CONFIG_OF
1131 static const struct of_device_id ads7846_dt_ids[] = {
1132 	{ .compatible = "ti,tsc2046",	.data = (void *) 7846 },
1133 	{ .compatible = "ti,ads7843",	.data = (void *) 7843 },
1134 	{ .compatible = "ti,ads7845",	.data = (void *) 7845 },
1135 	{ .compatible = "ti,ads7846",	.data = (void *) 7846 },
1136 	{ .compatible = "ti,ads7873",	.data = (void *) 7873 },
1137 	{ }
1138 };
1139 MODULE_DEVICE_TABLE(of, ads7846_dt_ids);
1140 
ads7846_probe_dt(struct device * dev)1141 static const struct ads7846_platform_data *ads7846_probe_dt(struct device *dev)
1142 {
1143 	struct ads7846_platform_data *pdata;
1144 	struct device_node *node = dev->of_node;
1145 	const struct of_device_id *match;
1146 	u32 value;
1147 
1148 	if (!node) {
1149 		dev_err(dev, "Device does not have associated DT data\n");
1150 		return ERR_PTR(-EINVAL);
1151 	}
1152 
1153 	match = of_match_device(ads7846_dt_ids, dev);
1154 	if (!match) {
1155 		dev_err(dev, "Unknown device model\n");
1156 		return ERR_PTR(-EINVAL);
1157 	}
1158 
1159 	pdata = devm_kzalloc(dev, sizeof(*pdata), GFP_KERNEL);
1160 	if (!pdata)
1161 		return ERR_PTR(-ENOMEM);
1162 
1163 	pdata->model = (unsigned long)match->data;
1164 
1165 	of_property_read_u16(node, "ti,vref-delay-usecs",
1166 			     &pdata->vref_delay_usecs);
1167 	of_property_read_u16(node, "ti,vref-mv", &pdata->vref_mv);
1168 	pdata->keep_vref_on = of_property_read_bool(node, "ti,keep-vref-on");
1169 
1170 	pdata->swap_xy = of_property_read_bool(node, "ti,swap-xy");
1171 
1172 	of_property_read_u16(node, "ti,settle-delay-usec",
1173 			     &pdata->settle_delay_usecs);
1174 	of_property_read_u16(node, "ti,penirq-recheck-delay-usecs",
1175 			     &pdata->penirq_recheck_delay_usecs);
1176 
1177 	of_property_read_u16(node, "ti,x-plate-ohms", &pdata->x_plate_ohms);
1178 	of_property_read_u16(node, "ti,y-plate-ohms", &pdata->y_plate_ohms);
1179 
1180 	of_property_read_u16(node, "ti,x-min", &pdata->x_min);
1181 	of_property_read_u16(node, "ti,y-min", &pdata->y_min);
1182 	of_property_read_u16(node, "ti,x-max", &pdata->x_max);
1183 	of_property_read_u16(node, "ti,y-max", &pdata->y_max);
1184 
1185 	/*
1186 	 * touchscreen-max-pressure gets parsed during
1187 	 * touchscreen_parse_properties()
1188 	 */
1189 	of_property_read_u16(node, "ti,pressure-min", &pdata->pressure_min);
1190 	if (!of_property_read_u32(node, "touchscreen-min-pressure", &value))
1191 		pdata->pressure_min = (u16) value;
1192 	of_property_read_u16(node, "ti,pressure-max", &pdata->pressure_max);
1193 
1194 	of_property_read_u16(node, "ti,debounce-max", &pdata->debounce_max);
1195 	if (!of_property_read_u32(node, "touchscreen-average-samples", &value))
1196 		pdata->debounce_max = (u16) value;
1197 	of_property_read_u16(node, "ti,debounce-tol", &pdata->debounce_tol);
1198 	of_property_read_u16(node, "ti,debounce-rep", &pdata->debounce_rep);
1199 
1200 	of_property_read_u32(node, "ti,pendown-gpio-debounce",
1201 			     &pdata->gpio_pendown_debounce);
1202 
1203 	pdata->wakeup = of_property_read_bool(node, "wakeup-source") ||
1204 			of_property_read_bool(node, "linux,wakeup");
1205 
1206 	pdata->gpio_pendown = of_get_named_gpio(dev->of_node, "pendown-gpio", 0);
1207 
1208 	return pdata;
1209 }
1210 #else
ads7846_probe_dt(struct device * dev)1211 static const struct ads7846_platform_data *ads7846_probe_dt(struct device *dev)
1212 {
1213 	dev_err(dev, "no platform data defined\n");
1214 	return ERR_PTR(-EINVAL);
1215 }
1216 #endif
1217 
ads7846_probe(struct spi_device * spi)1218 static int ads7846_probe(struct spi_device *spi)
1219 {
1220 	const struct ads7846_platform_data *pdata;
1221 	struct ads7846 *ts;
1222 	struct ads7846_packet *packet;
1223 	struct input_dev *input_dev;
1224 	unsigned long irq_flags;
1225 	int err;
1226 
1227 	if (!spi->irq) {
1228 		dev_dbg(&spi->dev, "no IRQ?\n");
1229 		return -EINVAL;
1230 	}
1231 
1232 	/* don't exceed max specified sample rate */
1233 	if (spi->max_speed_hz > (125000 * SAMPLE_BITS)) {
1234 		dev_err(&spi->dev, "f(sample) %d KHz?\n",
1235 				(spi->max_speed_hz/SAMPLE_BITS)/1000);
1236 		return -EINVAL;
1237 	}
1238 
1239 	/*
1240 	 * We'd set TX word size 8 bits and RX word size to 13 bits ... except
1241 	 * that even if the hardware can do that, the SPI controller driver
1242 	 * may not.  So we stick to very-portable 8 bit words, both RX and TX.
1243 	 */
1244 	spi->bits_per_word = 8;
1245 	spi->mode = SPI_MODE_0;
1246 	err = spi_setup(spi);
1247 	if (err < 0)
1248 		return err;
1249 
1250 	ts = kzalloc(sizeof(struct ads7846), GFP_KERNEL);
1251 	packet = kzalloc(sizeof(struct ads7846_packet), GFP_KERNEL);
1252 	input_dev = input_allocate_device();
1253 	if (!ts || !packet || !input_dev) {
1254 		err = -ENOMEM;
1255 		goto err_free_mem;
1256 	}
1257 
1258 	spi_set_drvdata(spi, ts);
1259 
1260 	ts->packet = packet;
1261 	ts->spi = spi;
1262 	ts->input = input_dev;
1263 
1264 	mutex_init(&ts->lock);
1265 	init_waitqueue_head(&ts->wait);
1266 
1267 	pdata = dev_get_platdata(&spi->dev);
1268 	if (!pdata) {
1269 		pdata = ads7846_probe_dt(&spi->dev);
1270 		if (IS_ERR(pdata)) {
1271 			err = PTR_ERR(pdata);
1272 			goto err_free_mem;
1273 		}
1274 	}
1275 
1276 	ts->model = pdata->model ? : 7846;
1277 	ts->vref_delay_usecs = pdata->vref_delay_usecs ? : 100;
1278 	ts->x_plate_ohms = pdata->x_plate_ohms ? : 400;
1279 	ts->vref_mv = pdata->vref_mv;
1280 
1281 	if (pdata->filter != NULL) {
1282 		if (pdata->filter_init != NULL) {
1283 			err = pdata->filter_init(pdata, &ts->filter_data);
1284 			if (err < 0)
1285 				goto err_free_mem;
1286 		}
1287 		ts->filter = pdata->filter;
1288 		ts->filter_cleanup = pdata->filter_cleanup;
1289 	} else if (pdata->debounce_max) {
1290 		ts->debounce_max = pdata->debounce_max;
1291 		if (ts->debounce_max < 2)
1292 			ts->debounce_max = 2;
1293 		ts->debounce_tol = pdata->debounce_tol;
1294 		ts->debounce_rep = pdata->debounce_rep;
1295 		ts->filter = ads7846_debounce_filter;
1296 		ts->filter_data = ts;
1297 	} else {
1298 		ts->filter = ads7846_no_filter;
1299 	}
1300 
1301 	err = ads7846_setup_pendown(spi, ts, pdata);
1302 	if (err)
1303 		goto err_cleanup_filter;
1304 
1305 	if (pdata->penirq_recheck_delay_usecs)
1306 		ts->penirq_recheck_delay_usecs =
1307 				pdata->penirq_recheck_delay_usecs;
1308 
1309 	ts->wait_for_sync = pdata->wait_for_sync ? : null_wait_for_sync;
1310 
1311 	snprintf(ts->phys, sizeof(ts->phys), "%s/input0", dev_name(&spi->dev));
1312 	snprintf(ts->name, sizeof(ts->name), "ADS%d Touchscreen", ts->model);
1313 
1314 	input_dev->name = ts->name;
1315 	input_dev->phys = ts->phys;
1316 	input_dev->dev.parent = &spi->dev;
1317 
1318 	input_dev->evbit[0] = BIT_MASK(EV_KEY) | BIT_MASK(EV_ABS);
1319 	input_dev->keybit[BIT_WORD(BTN_TOUCH)] = BIT_MASK(BTN_TOUCH);
1320 	input_set_abs_params(input_dev, ABS_X,
1321 			pdata->x_min ? : 0,
1322 			pdata->x_max ? : MAX_12BIT,
1323 			0, 0);
1324 	input_set_abs_params(input_dev, ABS_Y,
1325 			pdata->y_min ? : 0,
1326 			pdata->y_max ? : MAX_12BIT,
1327 			0, 0);
1328 	if (ts->model != 7845)
1329 		input_set_abs_params(input_dev, ABS_PRESSURE,
1330 				pdata->pressure_min, pdata->pressure_max, 0, 0);
1331 
1332 	/*
1333 	 * Parse common framework properties. Must be done here to ensure the
1334 	 * correct behaviour in case of using the legacy vendor bindings. The
1335 	 * general binding value overrides the vendor specific one.
1336 	 */
1337 	touchscreen_parse_properties(ts->input, false, &ts->core_prop);
1338 	ts->pressure_max = input_abs_get_max(input_dev, ABS_PRESSURE) ? : ~0;
1339 
1340 	/*
1341 	 * Check if legacy ti,swap-xy binding is used instead of
1342 	 * touchscreen-swapped-x-y
1343 	 */
1344 	if (!ts->core_prop.swap_x_y && pdata->swap_xy) {
1345 		swap(input_dev->absinfo[ABS_X], input_dev->absinfo[ABS_Y]);
1346 		ts->core_prop.swap_x_y = true;
1347 	}
1348 
1349 	ads7846_setup_spi_msg(ts, pdata);
1350 
1351 	ts->reg = regulator_get(&spi->dev, "vcc");
1352 	if (IS_ERR(ts->reg)) {
1353 		err = PTR_ERR(ts->reg);
1354 		dev_err(&spi->dev, "unable to get regulator: %d\n", err);
1355 		goto err_free_gpio;
1356 	}
1357 
1358 	err = regulator_enable(ts->reg);
1359 	if (err) {
1360 		dev_err(&spi->dev, "unable to enable regulator: %d\n", err);
1361 		goto err_put_regulator;
1362 	}
1363 
1364 	irq_flags = pdata->irq_flags ? : IRQF_TRIGGER_FALLING;
1365 	irq_flags |= IRQF_ONESHOT;
1366 
1367 	err = request_threaded_irq(spi->irq, ads7846_hard_irq, ads7846_irq,
1368 				   irq_flags, spi->dev.driver->name, ts);
1369 	if (err && !pdata->irq_flags) {
1370 		dev_info(&spi->dev,
1371 			"trying pin change workaround on irq %d\n", spi->irq);
1372 		irq_flags |= IRQF_TRIGGER_RISING;
1373 		err = request_threaded_irq(spi->irq,
1374 				  ads7846_hard_irq, ads7846_irq,
1375 				  irq_flags, spi->dev.driver->name, ts);
1376 	}
1377 
1378 	if (err) {
1379 		dev_dbg(&spi->dev, "irq %d busy?\n", spi->irq);
1380 		goto err_disable_regulator;
1381 	}
1382 
1383 	err = ads784x_hwmon_register(spi, ts);
1384 	if (err)
1385 		goto err_free_irq;
1386 
1387 	dev_info(&spi->dev, "touchscreen, irq %d\n", spi->irq);
1388 
1389 	/*
1390 	 * Take a first sample, leaving nPENIRQ active and vREF off; avoid
1391 	 * the touchscreen, in case it's not connected.
1392 	 */
1393 	if (ts->model == 7845)
1394 		ads7845_read12_ser(&spi->dev, PWRDOWN);
1395 	else
1396 		(void) ads7846_read12_ser(&spi->dev, READ_12BIT_SER(vaux));
1397 
1398 	err = sysfs_create_group(&spi->dev.kobj, &ads784x_attr_group);
1399 	if (err)
1400 		goto err_remove_hwmon;
1401 
1402 	err = input_register_device(input_dev);
1403 	if (err)
1404 		goto err_remove_attr_group;
1405 
1406 	device_init_wakeup(&spi->dev, pdata->wakeup);
1407 
1408 	/*
1409 	 * If device does not carry platform data we must have allocated it
1410 	 * when parsing DT data.
1411 	 */
1412 	if (!dev_get_platdata(&spi->dev))
1413 		devm_kfree(&spi->dev, (void *)pdata);
1414 
1415 	return 0;
1416 
1417  err_remove_attr_group:
1418 	sysfs_remove_group(&spi->dev.kobj, &ads784x_attr_group);
1419  err_remove_hwmon:
1420 	ads784x_hwmon_unregister(spi, ts);
1421  err_free_irq:
1422 	free_irq(spi->irq, ts);
1423  err_disable_regulator:
1424 	regulator_disable(ts->reg);
1425  err_put_regulator:
1426 	regulator_put(ts->reg);
1427  err_free_gpio:
1428 	if (!ts->get_pendown_state)
1429 		gpio_free(ts->gpio_pendown);
1430  err_cleanup_filter:
1431 	if (ts->filter_cleanup)
1432 		ts->filter_cleanup(ts->filter_data);
1433  err_free_mem:
1434 	input_free_device(input_dev);
1435 	kfree(packet);
1436 	kfree(ts);
1437 	return err;
1438 }
1439 
ads7846_remove(struct spi_device * spi)1440 static int ads7846_remove(struct spi_device *spi)
1441 {
1442 	struct ads7846 *ts = spi_get_drvdata(spi);
1443 
1444 	sysfs_remove_group(&spi->dev.kobj, &ads784x_attr_group);
1445 
1446 	ads7846_disable(ts);
1447 	free_irq(ts->spi->irq, ts);
1448 
1449 	input_unregister_device(ts->input);
1450 
1451 	ads784x_hwmon_unregister(spi, ts);
1452 
1453 	regulator_put(ts->reg);
1454 
1455 	if (!ts->get_pendown_state) {
1456 		/*
1457 		 * If we are not using specialized pendown method we must
1458 		 * have been relying on gpio we set up ourselves.
1459 		 */
1460 		gpio_free(ts->gpio_pendown);
1461 	}
1462 
1463 	if (ts->filter_cleanup)
1464 		ts->filter_cleanup(ts->filter_data);
1465 
1466 	kfree(ts->packet);
1467 	kfree(ts);
1468 
1469 	dev_dbg(&spi->dev, "unregistered touchscreen\n");
1470 
1471 	return 0;
1472 }
1473 
1474 static struct spi_driver ads7846_driver = {
1475 	.driver = {
1476 		.name	= "ads7846",
1477 		.pm	= &ads7846_pm,
1478 		.of_match_table = of_match_ptr(ads7846_dt_ids),
1479 	},
1480 	.probe		= ads7846_probe,
1481 	.remove		= ads7846_remove,
1482 };
1483 
1484 module_spi_driver(ads7846_driver);
1485 
1486 MODULE_DESCRIPTION("ADS7846 TouchScreen Driver");
1487 MODULE_LICENSE("GPL");
1488 MODULE_ALIAS("spi:ads7846");
1489