2 * ADS7846 based touchscreen and sensor driver
4 * Copyright (c) 2005 David Brownell
5 * Copyright (c) 2006 Nokia Corporation
6 * Various changes: Imre Deak <imre.deak@nokia.com>
10 * Copyright (C) 2004-2005 Richard Purdie
11 * - omap_ts.[hc], ads7846.h, ts_osk.c
12 * Copyright (C) 2002 MontaVista Software
13 * Copyright (C) 2004 Texas Instruments
14 * Copyright (C) 2005 Dirk Behme
16 * This program is free software; you can redistribute it and/or modify
17 * it under the terms of the GNU General Public License version 2 as
18 * published by the Free Software Foundation.
20 #include <linux/hwmon.h>
21 #include <linux/init.h>
22 #include <linux/err.h>
23 #include <linux/delay.h>
24 #include <linux/input.h>
25 #include <linux/interrupt.h>
26 #include <linux/slab.h>
27 #include <linux/spi/spi.h>
28 #include <linux/spi/ads7846.h>
33 * This code has been heavily tested on a Nokia 770, and lightly
34 * tested on other ads7846 devices (OSK/Mistral, Lubbock).
35 * TSC2046 is just newer ads7846 silicon.
36 * Support for ads7843 tested on Atmel at91sam926x-EK.
37 * Support for ads7845 has only been stubbed in.
39 * IRQ handling needs a workaround because of a shortcoming in handling
40 * edge triggered IRQs on some platforms like the OMAP1/2. These
41 * platforms don't handle the ARM lazy IRQ disabling properly, thus we
42 * have to maintain our own SW IRQ disabled status. This should be
43 * removed as soon as the affected platform's IRQ handling is fixed.
45 * app note sbaa036 talks in more detail about accurate sampling...
46 * that ought to help in situations like LCDs inducing noise (which
47 * can also be helped by using synch signals) and more generally.
48 * This driver tries to utilize the measures described in the app
49 * note. The strength of filtering can be set in the board-* specific
53 #define TS_POLL_DELAY (1 * 1000000) /* ns delay before the first sample */
54 #define TS_POLL_PERIOD (5 * 1000000) /* ns delay between samples */
56 /* this driver doesn't aim at the peak continuous sample rate */
57 #define SAMPLE_BITS (8 /*cmd*/ + 16 /*sample*/ + 2 /* before, after */)
60 /* For portability, we can't read 12 bit values using SPI (which
61 * would make the controller deliver them as native byteorder u16
62 * with msbs zeroed). Instead, we read them as two 8-bit values,
63 * *** WHICH NEED BYTESWAPPING *** and range adjustment.
72 struct input_dev *input;
75 struct spi_device *spi;
77 #if defined(CONFIG_HWMON) || defined(CONFIG_HWMON_MODULE)
78 struct attribute_group *attr_group;
88 u8 read_x, read_y, read_z1, read_z2, pwrdown;
89 u16 dummy; /* for the pwrdown read */
92 struct spi_transfer xfer[18];
93 struct spi_message msg[5];
94 struct spi_message *last_msg;
104 u16 penirq_recheck_delay_usecs;
107 struct hrtimer timer;
108 unsigned pendown:1; /* P: lock */
109 unsigned pending:1; /* P: lock */
110 // FIXME remove "irq_disabled"
111 unsigned irq_disabled:1; /* P: lock */
113 unsigned is_suspended:1;
115 int (*filter)(void *data, int data_idx, int *val);
117 void (*filter_cleanup)(void *data);
118 int (*get_pendown_state)(void);
121 /* leave chip selected when we're done, for quicker re-select? */
123 #define CS_CHANGE(xfer) ((xfer).cs_change = 1)
125 #define CS_CHANGE(xfer) ((xfer).cs_change = 0)
128 /*--------------------------------------------------------------------------*/
130 /* The ADS7846 has touchscreen and other sensors.
131 * Earlier ads784x chips are somewhat compatible.
133 #define ADS_START (1 << 7)
134 #define ADS_A2A1A0_d_y (1 << 4) /* differential */
135 #define ADS_A2A1A0_d_z1 (3 << 4) /* differential */
136 #define ADS_A2A1A0_d_z2 (4 << 4) /* differential */
137 #define ADS_A2A1A0_d_x (5 << 4) /* differential */
138 #define ADS_A2A1A0_temp0 (0 << 4) /* non-differential */
139 #define ADS_A2A1A0_vbatt (2 << 4) /* non-differential */
140 #define ADS_A2A1A0_vaux (6 << 4) /* non-differential */
141 #define ADS_A2A1A0_temp1 (7 << 4) /* non-differential */
142 #define ADS_8_BIT (1 << 3)
143 #define ADS_12_BIT (0 << 3)
144 #define ADS_SER (1 << 2) /* non-differential */
145 #define ADS_DFR (0 << 2) /* differential */
146 #define ADS_PD10_PDOWN (0 << 0) /* lowpower mode + penirq */
147 #define ADS_PD10_ADC_ON (1 << 0) /* ADC on */
148 #define ADS_PD10_REF_ON (2 << 0) /* vREF on + penirq */
149 #define ADS_PD10_ALL_ON (3 << 0) /* ADC + vREF on */
151 #define MAX_12BIT ((1<<12)-1)
153 /* leave ADC powered up (disables penirq) between differential samples */
154 #define READ_12BIT_DFR(x, adc, vref) (ADS_START | ADS_A2A1A0_d_ ## x \
155 | ADS_12_BIT | ADS_DFR | \
156 (adc ? ADS_PD10_ADC_ON : 0) | (vref ? ADS_PD10_REF_ON : 0))
158 #define READ_Y(vref) (READ_12BIT_DFR(y, 1, vref))
159 #define READ_Z1(vref) (READ_12BIT_DFR(z1, 1, vref))
160 #define READ_Z2(vref) (READ_12BIT_DFR(z2, 1, vref))
162 #define READ_X(vref) (READ_12BIT_DFR(x, 1, vref))
163 #define PWRDOWN (READ_12BIT_DFR(y, 0, 0)) /* LAST */
165 /* single-ended samples need to first power up reference voltage;
166 * we leave both ADC and VREF powered
168 #define READ_12BIT_SER(x) (ADS_START | ADS_A2A1A0_ ## x \
169 | ADS_12_BIT | ADS_SER)
171 #define REF_ON (READ_12BIT_DFR(x, 1, 1))
172 #define REF_OFF (READ_12BIT_DFR(y, 0, 0))
174 /*--------------------------------------------------------------------------*/
177 * Non-touchscreen sensors only use single-ended conversions.
178 * The range is GND..vREF. The ads7843 and ads7835 must use external vREF;
179 * ads7846 lets that pin be unconnected, to use internal vREF.
188 struct spi_message msg;
189 struct spi_transfer xfer[6];
192 static void ads7846_enable(struct ads7846 *ts);
193 static void ads7846_disable(struct ads7846 *ts);
195 static int device_suspended(struct device *dev)
197 struct ads7846 *ts = dev_get_drvdata(dev);
198 return ts->is_suspended || ts->disabled;
201 static int ads7846_read12_ser(struct device *dev, unsigned command)
203 struct spi_device *spi = to_spi_device(dev);
204 struct ads7846 *ts = dev_get_drvdata(dev);
205 struct ser_req *req = kzalloc(sizeof *req, GFP_KERNEL);
212 spi_message_init(&req->msg);
214 /* FIXME boards with ads7846 might use external vref instead ... */
215 use_internal = (ts->model == 7846);
217 /* maybe turn on internal vREF, and let it settle */
219 req->ref_on = REF_ON;
220 req->xfer[0].tx_buf = &req->ref_on;
221 req->xfer[0].len = 1;
222 spi_message_add_tail(&req->xfer[0], &req->msg);
224 req->xfer[1].rx_buf = &req->scratch;
225 req->xfer[1].len = 2;
227 /* for 1uF, settle for 800 usec; no cap, 100 usec. */
228 req->xfer[1].delay_usecs = ts->vref_delay_usecs;
229 spi_message_add_tail(&req->xfer[1], &req->msg);
233 req->command = (u8) command;
234 req->xfer[2].tx_buf = &req->command;
235 req->xfer[2].len = 1;
236 spi_message_add_tail(&req->xfer[2], &req->msg);
238 req->xfer[3].rx_buf = &req->sample;
239 req->xfer[3].len = 2;
240 spi_message_add_tail(&req->xfer[3], &req->msg);
242 /* REVISIT: take a few more samples, and compare ... */
244 /* converter in low power mode & enable PENIRQ */
245 req->ref_off = PWRDOWN;
246 req->xfer[4].tx_buf = &req->ref_off;
247 req->xfer[4].len = 1;
248 spi_message_add_tail(&req->xfer[4], &req->msg);
250 req->xfer[5].rx_buf = &req->scratch;
251 req->xfer[5].len = 2;
252 CS_CHANGE(req->xfer[5]);
253 spi_message_add_tail(&req->xfer[5], &req->msg);
255 ts->irq_disabled = 1;
256 disable_irq(spi->irq);
257 status = spi_sync(spi, &req->msg);
258 ts->irq_disabled = 0;
259 enable_irq(spi->irq);
262 /* on-wire is a must-ignore bit, a BE12 value, then padding */
263 status = be16_to_cpu(req->sample);
264 status = status >> 3;
272 #if defined(CONFIG_HWMON) || defined(CONFIG_HWMON_MODULE)
274 #define SHOW(name, var, adjust) static ssize_t \
275 name ## _show(struct device *dev, struct device_attribute *attr, char *buf) \
277 struct ads7846 *ts = dev_get_drvdata(dev); \
278 ssize_t v = ads7846_read12_ser(dev, \
279 READ_12BIT_SER(var) | ADS_PD10_ALL_ON); \
282 return sprintf(buf, "%u\n", adjust(ts, v)); \
284 static DEVICE_ATTR(name, S_IRUGO, name ## _show, NULL);
287 /* Sysfs conventions report temperatures in millidegrees Celcius.
288 * ADS7846 could use the low-accuracy two-sample scheme, but can't do the high
289 * accuracy scheme without calibration data. For now we won't try either;
290 * userspace sees raw sensor values, and must scale/calibrate appropriately.
292 static inline unsigned null_adjust(struct ads7846 *ts, ssize_t v)
297 SHOW(temp0, temp0, null_adjust) /* temp1_input */
298 SHOW(temp1, temp1, null_adjust) /* temp2_input */
301 /* sysfs conventions report voltages in millivolts. We can convert voltages
302 * if we know vREF. userspace may need to scale vAUX to match the board's
303 * external resistors; we assume that vBATT only uses the internal ones.
305 static inline unsigned vaux_adjust(struct ads7846 *ts, ssize_t v)
309 /* external resistors may scale vAUX into 0..vREF */
310 retval *= ts->vref_mv;
311 retval = retval >> 12;
315 static inline unsigned vbatt_adjust(struct ads7846 *ts, ssize_t v)
317 unsigned retval = vaux_adjust(ts, v);
319 /* ads7846 has a resistor ladder to scale this signal down */
320 if (ts->model == 7846)
325 SHOW(in0_input, vaux, vaux_adjust)
326 SHOW(in1_input, vbatt, vbatt_adjust)
329 static struct attribute *ads7846_attributes[] = {
330 &dev_attr_temp0.attr,
331 &dev_attr_temp1.attr,
332 &dev_attr_in0_input.attr,
333 &dev_attr_in1_input.attr,
337 static struct attribute_group ads7846_attr_group = {
338 .attrs = ads7846_attributes,
341 static struct attribute *ads7843_attributes[] = {
342 &dev_attr_in0_input.attr,
343 &dev_attr_in1_input.attr,
347 static struct attribute_group ads7843_attr_group = {
348 .attrs = ads7843_attributes,
351 static struct attribute *ads7845_attributes[] = {
352 &dev_attr_in0_input.attr,
356 static struct attribute_group ads7845_attr_group = {
357 .attrs = ads7845_attributes,
360 static int ads784x_hwmon_register(struct spi_device *spi, struct ads7846 *ts)
362 struct device *hwmon;
365 /* hwmon sensors need a reference voltage */
369 dev_dbg(&spi->dev, "assuming 2.5V internal vREF\n");
377 "external vREF for ADS%d not specified\n",
384 /* different chips have different sensor groups */
387 ts->attr_group = &ads7846_attr_group;
390 ts->attr_group = &ads7845_attr_group;
393 ts->attr_group = &ads7843_attr_group;
396 dev_dbg(&spi->dev, "ADS%d not recognized\n", ts->model);
400 err = sysfs_create_group(&spi->dev.kobj, ts->attr_group);
404 hwmon = hwmon_device_register(&spi->dev);
406 sysfs_remove_group(&spi->dev.kobj, ts->attr_group);
407 return PTR_ERR(hwmon);
414 static void ads784x_hwmon_unregister(struct spi_device *spi,
418 sysfs_remove_group(&spi->dev.kobj, ts->attr_group);
419 hwmon_device_unregister(ts->hwmon);
424 static inline int ads784x_hwmon_register(struct spi_device *spi,
430 static inline void ads784x_hwmon_unregister(struct spi_device *spi,
436 static int is_pen_down(struct device *dev)
438 struct ads7846 *ts = dev_get_drvdata(dev);
443 static ssize_t ads7846_pen_down_show(struct device *dev,
444 struct device_attribute *attr, char *buf)
446 return sprintf(buf, "%u\n", is_pen_down(dev));
449 static DEVICE_ATTR(pen_down, S_IRUGO, ads7846_pen_down_show, NULL);
451 static ssize_t ads7846_disable_show(struct device *dev,
452 struct device_attribute *attr, char *buf)
454 struct ads7846 *ts = dev_get_drvdata(dev);
456 return sprintf(buf, "%u\n", ts->disabled);
459 static ssize_t ads7846_disable_store(struct device *dev,
460 struct device_attribute *attr,
461 const char *buf, size_t count)
463 struct ads7846 *ts = dev_get_drvdata(dev);
467 i = simple_strtoul(buf, &endp, 10);
468 spin_lock_irq(&ts->lock);
475 spin_unlock_irq(&ts->lock);
480 static DEVICE_ATTR(disable, 0664, ads7846_disable_show, ads7846_disable_store);
482 static struct attribute *ads784x_attributes[] = {
483 &dev_attr_pen_down.attr,
484 &dev_attr_disable.attr,
488 static struct attribute_group ads784x_attr_group = {
489 .attrs = ads784x_attributes,
492 /*--------------------------------------------------------------------------*/
495 * PENIRQ only kicks the timer. The timer only reissues the SPI transfer,
496 * to retrieve touchscreen status.
498 * The SPI transfer completion callback does the real work. It reports
499 * touchscreen events and reactivates the timer (or IRQ) as appropriate.
502 static void ads7846_rx(void *ads)
504 struct ads7846 *ts = ads;
508 /* ads7846_rx_val() did in-place conversion (including byteswap) from
509 * on-the-wire format as part of debouncing to get stable readings.
516 /* range filtering */
520 if (likely(x && z1)) {
521 /* compute touch pressure resistance using equation #2 */
525 Rt *= ts->x_plate_ohms;
527 Rt = (Rt + 2047) >> 12;
531 if (ts->model == 7843)
532 Rt = ts->pressure_max / 2;
534 /* Sample found inconsistent by debouncing or pressure is beyond
535 * the maximum. Don't report it to user space, repeat at least
536 * once more the measurement
538 if (ts->tc.ignore || Rt > ts->pressure_max) {
540 pr_debug("%s: ignored %d pressure %d\n",
541 ts->spi->dev.bus_id, ts->tc.ignore, Rt);
543 hrtimer_start(&ts->timer, ktime_set(0, TS_POLL_PERIOD),
548 /* Maybe check the pendown state before reporting. This discards
549 * false readings when the pen is lifted.
551 if (ts->penirq_recheck_delay_usecs) {
552 udelay(ts->penirq_recheck_delay_usecs);
553 if (!ts->get_pendown_state())
557 /* NOTE: We can't rely on the pressure to determine the pen down
558 * state, even this controller has a pressure sensor. The pressure
559 * value can fluctuate for quite a while after lifting the pen and
560 * in some cases may not even settle at the expected value.
562 * The only safe way to check for the pen up condition is in the
563 * timer by reading the pen signal state (it's a GPIO _and_ IRQ).
566 struct input_dev *input = ts->input;
569 input_report_key(input, BTN_TOUCH, 1);
572 dev_dbg(&ts->spi->dev, "DOWN\n");
575 input_report_abs(input, ABS_X, x);
576 input_report_abs(input, ABS_Y, y);
577 input_report_abs(input, ABS_PRESSURE, Rt);
581 dev_dbg(&ts->spi->dev, "%4d/%4d/%4d\n", x, y, Rt);
585 hrtimer_start(&ts->timer, ktime_set(0, TS_POLL_PERIOD),
589 static int ads7846_debounce(void *ads, int data_idx, int *val)
591 struct ads7846 *ts = ads;
593 if (!ts->read_cnt || (abs(ts->last_read - *val) > ts->debounce_tol)) {
594 /* Start over collecting consistent readings. */
596 /* Repeat it, if this was the first read or the read
597 * wasn't consistent enough. */
598 if (ts->read_cnt < ts->debounce_max) {
599 ts->last_read = *val;
601 return ADS7846_FILTER_REPEAT;
603 /* Maximum number of debouncing reached and still
604 * not enough number of consistent readings. Abort
605 * the whole sample, repeat it in the next sampling
609 return ADS7846_FILTER_IGNORE;
612 if (++ts->read_rep > ts->debounce_rep) {
613 /* Got a good reading for this coordinate,
614 * go for the next one. */
617 return ADS7846_FILTER_OK;
619 /* Read more values that are consistent. */
621 return ADS7846_FILTER_REPEAT;
626 static int ads7846_no_filter(void *ads, int data_idx, int *val)
628 return ADS7846_FILTER_OK;
631 static void ads7846_rx_val(void *ads)
633 struct ads7846 *ts = ads;
634 struct spi_message *m;
635 struct spi_transfer *t;
641 m = &ts->msg[ts->msg_idx];
642 t = list_entry(m->transfers.prev, struct spi_transfer, transfer_list);
645 /* adjust: on-wire is a must-ignore bit, a BE12 value, then padding;
646 * built from two 8 bit values written msb-first.
648 val = be16_to_cpu(*rx_val) >> 3;
650 action = ts->filter(ts->filter_data, ts->msg_idx, &val);
652 case ADS7846_FILTER_REPEAT:
654 case ADS7846_FILTER_IGNORE:
656 /* Last message will contain ads7846_rx() as the
657 * completion function.
661 case ADS7846_FILTER_OK:
664 m = &ts->msg[++ts->msg_idx];
669 status = spi_async(ts->spi, m);
671 dev_err(&ts->spi->dev, "spi_async --> %d\n",
675 static enum hrtimer_restart ads7846_timer(struct hrtimer *handle)
677 struct ads7846 *ts = container_of(handle, struct ads7846, timer);
680 spin_lock_irq(&ts->lock);
682 if (unlikely(!ts->get_pendown_state() ||
683 device_suspended(&ts->spi->dev))) {
685 struct input_dev *input = ts->input;
687 input_report_key(input, BTN_TOUCH, 0);
688 input_report_abs(input, ABS_PRESSURE, 0);
693 dev_dbg(&ts->spi->dev, "UP\n");
697 /* measurement cycle ended */
698 if (!device_suspended(&ts->spi->dev)) {
699 ts->irq_disabled = 0;
700 enable_irq(ts->spi->irq);
704 /* pen is still down, continue with the measurement */
706 status = spi_async(ts->spi, &ts->msg[0]);
708 dev_err(&ts->spi->dev, "spi_async --> %d\n", status);
711 spin_unlock_irq(&ts->lock);
712 return HRTIMER_NORESTART;
715 static irqreturn_t ads7846_irq(int irq, void *handle)
717 struct ads7846 *ts = handle;
720 spin_lock_irqsave(&ts->lock, flags);
721 if (likely(ts->get_pendown_state())) {
722 if (!ts->irq_disabled) {
723 /* The ARM do_simple_IRQ() dispatcher doesn't act
724 * like the other dispatchers: it will report IRQs
725 * even after they've been disabled. We work around
726 * that here. (The "generic irq" framework may help...)
728 ts->irq_disabled = 1;
729 disable_irq(ts->spi->irq);
731 hrtimer_start(&ts->timer, ktime_set(0, TS_POLL_DELAY),
735 spin_unlock_irqrestore(&ts->lock, flags);
740 /*--------------------------------------------------------------------------*/
742 /* Must be called with ts->lock held */
743 static void ads7846_disable(struct ads7846 *ts)
750 /* are we waiting for IRQ, or polling? */
752 ts->irq_disabled = 1;
753 disable_irq(ts->spi->irq);
755 /* the timer will run at least once more, and
756 * leave everything in a clean state, IRQ disabled
758 while (ts->pending) {
759 spin_unlock_irq(&ts->lock);
761 spin_lock_irq(&ts->lock);
765 /* we know the chip's in lowpower mode since we always
766 * leave it that way after every request
771 /* Must be called with ts->lock held */
772 static void ads7846_enable(struct ads7846 *ts)
778 ts->irq_disabled = 0;
779 enable_irq(ts->spi->irq);
782 static int ads7846_suspend(struct spi_device *spi, pm_message_t message)
784 struct ads7846 *ts = dev_get_drvdata(&spi->dev);
786 spin_lock_irq(&ts->lock);
788 ts->is_suspended = 1;
791 spin_unlock_irq(&ts->lock);
797 static int ads7846_resume(struct spi_device *spi)
799 struct ads7846 *ts = dev_get_drvdata(&spi->dev);
801 spin_lock_irq(&ts->lock);
803 ts->is_suspended = 0;
806 spin_unlock_irq(&ts->lock);
811 static int __devinit ads7846_probe(struct spi_device *spi)
814 struct input_dev *input_dev;
815 struct ads7846_platform_data *pdata = spi->dev.platform_data;
816 struct spi_message *m;
817 struct spi_transfer *x;
822 dev_dbg(&spi->dev, "no IRQ?\n");
827 dev_dbg(&spi->dev, "no platform data?\n");
831 /* don't exceed max specified sample rate */
832 if (spi->max_speed_hz > (125000 * SAMPLE_BITS)) {
833 dev_dbg(&spi->dev, "f(sample) %d KHz?\n",
834 (spi->max_speed_hz/SAMPLE_BITS)/1000);
838 /* REVISIT when the irq can be triggered active-low, or if for some
839 * reason the touchscreen isn't hooked up, we don't need to access
842 if (pdata->get_pendown_state == NULL) {
843 dev_dbg(&spi->dev, "no get_pendown_state function?\n");
847 /* We'd set TX wordsize 8 bits and RX wordsize to 13 bits ... except
848 * that even if the hardware can do that, the SPI controller driver
849 * may not. So we stick to very-portable 8 bit words, both RX and TX.
851 spi->bits_per_word = 8;
852 spi->mode = SPI_MODE_0;
853 err = spi_setup(spi);
857 ts = kzalloc(sizeof(struct ads7846), GFP_KERNEL);
858 input_dev = input_allocate_device();
859 if (!ts || !input_dev) {
864 dev_set_drvdata(&spi->dev, ts);
867 ts->input = input_dev;
868 ts->vref_mv = pdata->vref_mv;
870 hrtimer_init(&ts->timer, CLOCK_MONOTONIC, HRTIMER_MODE_REL);
871 ts->timer.function = ads7846_timer;
873 spin_lock_init(&ts->lock);
875 ts->model = pdata->model ? : 7846;
876 ts->vref_delay_usecs = pdata->vref_delay_usecs ? : 100;
877 ts->x_plate_ohms = pdata->x_plate_ohms ? : 400;
878 ts->pressure_max = pdata->pressure_max ? : ~0;
880 if (pdata->filter != NULL) {
881 if (pdata->filter_init != NULL) {
882 err = pdata->filter_init(pdata, &ts->filter_data);
886 ts->filter = pdata->filter;
887 ts->filter_cleanup = pdata->filter_cleanup;
888 } else if (pdata->debounce_max) {
889 ts->debounce_max = pdata->debounce_max;
890 if (ts->debounce_max < 2)
891 ts->debounce_max = 2;
892 ts->debounce_tol = pdata->debounce_tol;
893 ts->debounce_rep = pdata->debounce_rep;
894 ts->filter = ads7846_debounce;
895 ts->filter_data = ts;
897 ts->filter = ads7846_no_filter;
898 ts->get_pendown_state = pdata->get_pendown_state;
900 if (pdata->penirq_recheck_delay_usecs)
901 ts->penirq_recheck_delay_usecs =
902 pdata->penirq_recheck_delay_usecs;
904 snprintf(ts->phys, sizeof(ts->phys), "%s/input0", spi->dev.bus_id);
906 input_dev->name = "ADS784x Touchscreen";
907 input_dev->phys = ts->phys;
908 input_dev->dev.parent = &spi->dev;
910 input_dev->evbit[0] = BIT_MASK(EV_KEY) | BIT_MASK(EV_ABS);
911 input_dev->keybit[BIT_WORD(BTN_TOUCH)] = BIT_MASK(BTN_TOUCH);
912 input_set_abs_params(input_dev, ABS_X,
914 pdata->x_max ? : MAX_12BIT,
916 input_set_abs_params(input_dev, ABS_Y,
918 pdata->y_max ? : MAX_12BIT,
920 input_set_abs_params(input_dev, ABS_PRESSURE,
921 pdata->pressure_min, pdata->pressure_max, 0, 0);
923 vref = pdata->keep_vref_on;
925 /* set up the transfers to read touchscreen state; this assumes we
926 * use formula #2 for pressure, not #3.
933 /* y- still on; turn on only y+ (and ADC) */
934 ts->read_y = READ_Y(vref);
935 x->tx_buf = &ts->read_y;
937 spi_message_add_tail(x, m);
940 x->rx_buf = &ts->tc.y;
942 spi_message_add_tail(x, m);
944 /* the first sample after switching drivers can be low quality;
945 * optionally discard it, using a second one after the signals
946 * have had enough time to stabilize.
948 if (pdata->settle_delay_usecs) {
949 x->delay_usecs = pdata->settle_delay_usecs;
952 x->tx_buf = &ts->read_y;
954 spi_message_add_tail(x, m);
957 x->rx_buf = &ts->tc.y;
959 spi_message_add_tail(x, m);
962 m->complete = ads7846_rx_val;
968 /* turn y- off, x+ on, then leave in lowpower */
970 ts->read_x = READ_X(vref);
971 x->tx_buf = &ts->read_x;
973 spi_message_add_tail(x, m);
976 x->rx_buf = &ts->tc.x;
978 spi_message_add_tail(x, m);
980 /* ... maybe discard first sample ... */
981 if (pdata->settle_delay_usecs) {
982 x->delay_usecs = pdata->settle_delay_usecs;
985 x->tx_buf = &ts->read_x;
987 spi_message_add_tail(x, m);
990 x->rx_buf = &ts->tc.x;
992 spi_message_add_tail(x, m);
995 m->complete = ads7846_rx_val;
998 /* turn y+ off, x- on; we'll use formula #2 */
999 if (ts->model == 7846) {
1001 spi_message_init(m);
1004 ts->read_z1 = READ_Z1(vref);
1005 x->tx_buf = &ts->read_z1;
1007 spi_message_add_tail(x, m);
1010 x->rx_buf = &ts->tc.z1;
1012 spi_message_add_tail(x, m);
1014 /* ... maybe discard first sample ... */
1015 if (pdata->settle_delay_usecs) {
1016 x->delay_usecs = pdata->settle_delay_usecs;
1019 x->tx_buf = &ts->read_z1;
1021 spi_message_add_tail(x, m);
1024 x->rx_buf = &ts->tc.z1;
1026 spi_message_add_tail(x, m);
1029 m->complete = ads7846_rx_val;
1033 spi_message_init(m);
1036 ts->read_z2 = READ_Z2(vref);
1037 x->tx_buf = &ts->read_z2;
1039 spi_message_add_tail(x, m);
1042 x->rx_buf = &ts->tc.z2;
1044 spi_message_add_tail(x, m);
1046 /* ... maybe discard first sample ... */
1047 if (pdata->settle_delay_usecs) {
1048 x->delay_usecs = pdata->settle_delay_usecs;
1051 x->tx_buf = &ts->read_z2;
1053 spi_message_add_tail(x, m);
1056 x->rx_buf = &ts->tc.z2;
1058 spi_message_add_tail(x, m);
1061 m->complete = ads7846_rx_val;
1067 spi_message_init(m);
1070 ts->pwrdown = PWRDOWN;
1071 x->tx_buf = &ts->pwrdown;
1073 spi_message_add_tail(x, m);
1076 x->rx_buf = &ts->dummy;
1079 spi_message_add_tail(x, m);
1081 m->complete = ads7846_rx;
1086 if (request_irq(spi->irq, ads7846_irq, IRQF_TRIGGER_FALLING,
1087 spi->dev.driver->name, ts)) {
1088 dev_dbg(&spi->dev, "irq %d busy?\n", spi->irq);
1090 goto err_cleanup_filter;
1093 err = ads784x_hwmon_register(spi, ts);
1097 dev_info(&spi->dev, "touchscreen, irq %d\n", spi->irq);
1099 /* take a first sample, leaving nPENIRQ active and vREF off; avoid
1100 * the touchscreen, in case it's not connected.
1102 (void) ads7846_read12_ser(&spi->dev,
1103 READ_12BIT_SER(vaux) | ADS_PD10_ALL_ON);
1105 err = sysfs_create_group(&spi->dev.kobj, &ads784x_attr_group);
1107 goto err_remove_hwmon;
1109 err = input_register_device(input_dev);
1111 goto err_remove_attr_group;
1115 err_remove_attr_group:
1116 sysfs_remove_group(&spi->dev.kobj, &ads784x_attr_group);
1118 ads784x_hwmon_unregister(spi, ts);
1120 free_irq(spi->irq, ts);
1122 if (ts->filter_cleanup)
1123 ts->filter_cleanup(ts->filter_data);
1125 input_free_device(input_dev);
1130 static int __devexit ads7846_remove(struct spi_device *spi)
1132 struct ads7846 *ts = dev_get_drvdata(&spi->dev);
1134 ads784x_hwmon_unregister(spi, ts);
1135 input_unregister_device(ts->input);
1137 ads7846_suspend(spi, PMSG_SUSPEND);
1139 sysfs_remove_group(&spi->dev.kobj, &ads784x_attr_group);
1141 free_irq(ts->spi->irq, ts);
1142 /* suspend left the IRQ disabled */
1143 enable_irq(ts->spi->irq);
1145 if (ts->filter_cleanup)
1146 ts->filter_cleanup(ts->filter_data);
1150 dev_dbg(&spi->dev, "unregistered touchscreen\n");
1154 static struct spi_driver ads7846_driver = {
1157 .bus = &spi_bus_type,
1158 .owner = THIS_MODULE,
1160 .probe = ads7846_probe,
1161 .remove = __devexit_p(ads7846_remove),
1162 .suspend = ads7846_suspend,
1163 .resume = ads7846_resume,
1166 static int __init ads7846_init(void)
1168 return spi_register_driver(&ads7846_driver);
1170 module_init(ads7846_init);
1172 static void __exit ads7846_exit(void)
1174 spi_unregister_driver(&ads7846_driver);
1176 module_exit(ads7846_exit);
1178 MODULE_DESCRIPTION("ADS7846 TouchScreen Driver");
1179 MODULE_LICENSE("GPL");