blob: 9c155a43abc2afd811348f88808952cd9be59c75 [file] [log] [blame]
David Härdemane258b802009-09-21 17:04:53 -07001/*
2 * winbond-cir.c - Driver for the Consumer IR functionality of Winbond
3 * SuperI/O chips.
4 *
5 * Currently supports the Winbond WPCD376i chip (PNP id WEC1022), but
6 * could probably support others (Winbond WEC102X, NatSemi, etc)
7 * with minor modifications.
8 *
9 * Original Author: David Härdeman <david@hardeman.nu>
10 * Copyright (C) 2009 David Härdeman <david@hardeman.nu>
11 *
12 * Dedicated to Matilda, my newborn daughter, without whose loving attention
13 * this driver would have been finished in half the time and with a fraction
14 * of the bugs.
15 *
16 * Written using:
17 * o Winbond WPCD376I datasheet helpfully provided by Jesse Barnes at Intel
18 * o NatSemi PC87338/PC97338 datasheet (for the serial port stuff)
19 * o DSDT dumps
20 *
21 * Supported features:
22 * o RC6
23 * o Wake-On-CIR functionality
24 *
25 * To do:
26 * o Test NEC and RC5
27 *
28 * Left as an exercise for the reader:
29 * o Learning (I have neither the hardware, nor the need)
30 * o IR Transmit (ibid)
31 *
32 * This program is free software; you can redistribute it and/or modify
33 * it under the terms of the GNU General Public License as published by
34 * the Free Software Foundation; either version 2 of the License, or
35 * (at your option) any later version.
36 *
37 * This program is distributed in the hope that it will be useful,
38 * but WITHOUT ANY WARRANTY; without even the implied warranty of
39 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
40 * GNU General Public License for more details.
41 *
42 * You should have received a copy of the GNU General Public License
43 * along with this program; if not, write to the Free Software
44 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
45 */
46
47#include <linux/module.h>
48#include <linux/pnp.h>
49#include <linux/interrupt.h>
50#include <linux/timer.h>
51#include <linux/input.h>
52#include <linux/leds.h>
53#include <linux/list.h>
54#include <linux/spinlock.h>
55#include <linux/pci_ids.h>
56#include <linux/io.h>
57#include <linux/bitrev.h>
58#include <linux/bitops.h>
59
60#define DRVNAME "winbond-cir"
61
62/* CEIR Wake-Up Registers, relative to data->wbase */
63#define WBCIR_REG_WCEIR_CTL 0x03 /* CEIR Receiver Control */
64#define WBCIR_REG_WCEIR_STS 0x04 /* CEIR Receiver Status */
65#define WBCIR_REG_WCEIR_EV_EN 0x05 /* CEIR Receiver Event Enable */
66#define WBCIR_REG_WCEIR_CNTL 0x06 /* CEIR Receiver Counter Low */
67#define WBCIR_REG_WCEIR_CNTH 0x07 /* CEIR Receiver Counter High */
68#define WBCIR_REG_WCEIR_INDEX 0x08 /* CEIR Receiver Index */
69#define WBCIR_REG_WCEIR_DATA 0x09 /* CEIR Receiver Data */
70#define WBCIR_REG_WCEIR_CSL 0x0A /* CEIR Re. Compare Strlen */
71#define WBCIR_REG_WCEIR_CFG1 0x0B /* CEIR Re. Configuration 1 */
72#define WBCIR_REG_WCEIR_CFG2 0x0C /* CEIR Re. Configuration 2 */
73
74/* CEIR Enhanced Functionality Registers, relative to data->ebase */
75#define WBCIR_REG_ECEIR_CTS 0x00 /* Enhanced IR Control Status */
76#define WBCIR_REG_ECEIR_CCTL 0x01 /* Infrared Counter Control */
77#define WBCIR_REG_ECEIR_CNT_LO 0x02 /* Infrared Counter LSB */
78#define WBCIR_REG_ECEIR_CNT_HI 0x03 /* Infrared Counter MSB */
79#define WBCIR_REG_ECEIR_IREM 0x04 /* Infrared Emitter Status */
80
81/* SP3 Banked Registers, relative to data->sbase */
82#define WBCIR_REG_SP3_BSR 0x03 /* Bank Select, all banks */
83 /* Bank 0 */
84#define WBCIR_REG_SP3_RXDATA 0x00 /* FIFO RX data (r) */
85#define WBCIR_REG_SP3_TXDATA 0x00 /* FIFO TX data (w) */
86#define WBCIR_REG_SP3_IER 0x01 /* Interrupt Enable */
87#define WBCIR_REG_SP3_EIR 0x02 /* Event Identification (r) */
88#define WBCIR_REG_SP3_FCR 0x02 /* FIFO Control (w) */
89#define WBCIR_REG_SP3_MCR 0x04 /* Mode Control */
90#define WBCIR_REG_SP3_LSR 0x05 /* Link Status */
91#define WBCIR_REG_SP3_MSR 0x06 /* Modem Status */
92#define WBCIR_REG_SP3_ASCR 0x07 /* Aux Status and Control */
93 /* Bank 2 */
94#define WBCIR_REG_SP3_BGDL 0x00 /* Baud Divisor LSB */
95#define WBCIR_REG_SP3_BGDH 0x01 /* Baud Divisor MSB */
96#define WBCIR_REG_SP3_EXCR1 0x02 /* Extended Control 1 */
97#define WBCIR_REG_SP3_EXCR2 0x04 /* Extended Control 2 */
98#define WBCIR_REG_SP3_TXFLV 0x06 /* TX FIFO Level */
99#define WBCIR_REG_SP3_RXFLV 0x07 /* RX FIFO Level */
100 /* Bank 3 */
101#define WBCIR_REG_SP3_MRID 0x00 /* Module Identification */
102#define WBCIR_REG_SP3_SH_LCR 0x01 /* LCR Shadow */
103#define WBCIR_REG_SP3_SH_FCR 0x02 /* FCR Shadow */
104 /* Bank 4 */
105#define WBCIR_REG_SP3_IRCR1 0x02 /* Infrared Control 1 */
106 /* Bank 5 */
107#define WBCIR_REG_SP3_IRCR2 0x04 /* Infrared Control 2 */
108 /* Bank 6 */
109#define WBCIR_REG_SP3_IRCR3 0x00 /* Infrared Control 3 */
110#define WBCIR_REG_SP3_SIR_PW 0x02 /* SIR Pulse Width */
111 /* Bank 7 */
112#define WBCIR_REG_SP3_IRRXDC 0x00 /* IR RX Demod Control */
113#define WBCIR_REG_SP3_IRTXMC 0x01 /* IR TX Mod Control */
114#define WBCIR_REG_SP3_RCCFG 0x02 /* CEIR Config */
115#define WBCIR_REG_SP3_IRCFG1 0x04 /* Infrared Config 1 */
116#define WBCIR_REG_SP3_IRCFG4 0x07 /* Infrared Config 4 */
117
118/*
119 * Magic values follow
120 */
121
122/* No interrupts for WBCIR_REG_SP3_IER and WBCIR_REG_SP3_EIR */
123#define WBCIR_IRQ_NONE 0x00
124/* RX data bit for WBCIR_REG_SP3_IER and WBCIR_REG_SP3_EIR */
125#define WBCIR_IRQ_RX 0x01
126/* Over/Under-flow bit for WBCIR_REG_SP3_IER and WBCIR_REG_SP3_EIR */
127#define WBCIR_IRQ_ERR 0x04
128/* Led enable/disable bit for WBCIR_REG_ECEIR_CTS */
129#define WBCIR_LED_ENABLE 0x80
130/* RX data available bit for WBCIR_REG_SP3_LSR */
131#define WBCIR_RX_AVAIL 0x01
132/* RX disable bit for WBCIR_REG_SP3_ASCR */
133#define WBCIR_RX_DISABLE 0x20
134/* Extended mode enable bit for WBCIR_REG_SP3_EXCR1 */
135#define WBCIR_EXT_ENABLE 0x01
136/* Select compare register in WBCIR_REG_WCEIR_INDEX (bits 5 & 6) */
137#define WBCIR_REGSEL_COMPARE 0x10
138/* Select mask register in WBCIR_REG_WCEIR_INDEX (bits 5 & 6) */
139#define WBCIR_REGSEL_MASK 0x20
140/* Starting address of selected register in WBCIR_REG_WCEIR_INDEX */
141#define WBCIR_REG_ADDR0 0x00
142
143/* Valid banks for the SP3 UART */
144enum wbcir_bank {
145 WBCIR_BANK_0 = 0x00,
146 WBCIR_BANK_1 = 0x80,
147 WBCIR_BANK_2 = 0xE0,
148 WBCIR_BANK_3 = 0xE4,
149 WBCIR_BANK_4 = 0xE8,
150 WBCIR_BANK_5 = 0xEC,
151 WBCIR_BANK_6 = 0xF0,
152 WBCIR_BANK_7 = 0xF4,
153};
154
155/* Supported IR Protocols */
156enum wbcir_protocol {
157 IR_PROTOCOL_RC5 = 0x0,
158 IR_PROTOCOL_NEC = 0x1,
159 IR_PROTOCOL_RC6 = 0x2,
160};
161
162/* Misc */
163#define WBCIR_NAME "Winbond CIR"
164#define WBCIR_ID_FAMILY 0xF1 /* Family ID for the WPCD376I */
165#define WBCIR_ID_CHIP 0x04 /* Chip ID for the WPCD376I */
166#define IR_KEYPRESS_TIMEOUT 250 /* FIXME: should be per-protocol? */
167#define INVALID_SCANCODE 0x7FFFFFFF /* Invalid with all protos */
168#define WAKEUP_IOMEM_LEN 0x10 /* Wake-Up I/O Reg Len */
169#define EHFUNC_IOMEM_LEN 0x10 /* Enhanced Func I/O Reg Len */
170#define SP_IOMEM_LEN 0x08 /* Serial Port 3 (IR) Reg Len */
171#define WBCIR_MAX_IDLE_BYTES 10
172
173static DEFINE_SPINLOCK(wbcir_lock);
174static DEFINE_RWLOCK(keytable_lock);
175
176struct wbcir_key {
177 u32 scancode;
178 unsigned int keycode;
179};
180
181struct wbcir_keyentry {
182 struct wbcir_key key;
183 struct list_head list;
184};
185
186static struct wbcir_key rc6_def_keymap[] = {
187 { 0x800F0400, KEY_NUMERIC_0 },
188 { 0x800F0401, KEY_NUMERIC_1 },
189 { 0x800F0402, KEY_NUMERIC_2 },
190 { 0x800F0403, KEY_NUMERIC_3 },
191 { 0x800F0404, KEY_NUMERIC_4 },
192 { 0x800F0405, KEY_NUMERIC_5 },
193 { 0x800F0406, KEY_NUMERIC_6 },
194 { 0x800F0407, KEY_NUMERIC_7 },
195 { 0x800F0408, KEY_NUMERIC_8 },
196 { 0x800F0409, KEY_NUMERIC_9 },
197 { 0x800F041D, KEY_NUMERIC_STAR },
198 { 0x800F041C, KEY_NUMERIC_POUND },
199 { 0x800F0410, KEY_VOLUMEUP },
200 { 0x800F0411, KEY_VOLUMEDOWN },
201 { 0x800F0412, KEY_CHANNELUP },
202 { 0x800F0413, KEY_CHANNELDOWN },
203 { 0x800F040E, KEY_MUTE },
204 { 0x800F040D, KEY_VENDOR }, /* Vista Logo Key */
205 { 0x800F041E, KEY_UP },
206 { 0x800F041F, KEY_DOWN },
207 { 0x800F0420, KEY_LEFT },
208 { 0x800F0421, KEY_RIGHT },
209 { 0x800F0422, KEY_OK },
210 { 0x800F0423, KEY_ESC },
211 { 0x800F040F, KEY_INFO },
212 { 0x800F040A, KEY_CLEAR },
213 { 0x800F040B, KEY_ENTER },
214 { 0x800F045B, KEY_RED },
215 { 0x800F045C, KEY_GREEN },
216 { 0x800F045D, KEY_YELLOW },
217 { 0x800F045E, KEY_BLUE },
218 { 0x800F045A, KEY_TEXT },
219 { 0x800F0427, KEY_SWITCHVIDEOMODE },
220 { 0x800F040C, KEY_POWER },
221 { 0x800F0450, KEY_RADIO },
222 { 0x800F0448, KEY_PVR },
223 { 0x800F0447, KEY_AUDIO },
224 { 0x800F0426, KEY_EPG },
225 { 0x800F0449, KEY_CAMERA },
226 { 0x800F0425, KEY_TV },
227 { 0x800F044A, KEY_VIDEO },
228 { 0x800F0424, KEY_DVD },
229 { 0x800F0416, KEY_PLAY },
230 { 0x800F0418, KEY_PAUSE },
231 { 0x800F0419, KEY_STOP },
232 { 0x800F0414, KEY_FASTFORWARD },
233 { 0x800F041A, KEY_NEXT },
234 { 0x800F041B, KEY_PREVIOUS },
235 { 0x800F0415, KEY_REWIND },
236 { 0x800F0417, KEY_RECORD },
237};
238
239/* Registers and other state is protected by wbcir_lock */
240struct wbcir_data {
241 unsigned long wbase; /* Wake-Up Baseaddr */
242 unsigned long ebase; /* Enhanced Func. Baseaddr */
243 unsigned long sbase; /* Serial Port Baseaddr */
244 unsigned int irq; /* Serial Port IRQ */
245
246 struct input_dev *input_dev;
247 struct timer_list timer_keyup;
248 struct led_trigger *rxtrigger;
249 struct led_trigger *txtrigger;
250 struct led_classdev led;
251
252 u32 last_scancode;
253 unsigned int last_keycode;
254 u8 last_toggle;
255 u8 keypressed;
256 unsigned long keyup_jiffies;
257 unsigned int idle_count;
258
259 /* RX irdata and parsing state */
260 unsigned long irdata[30];
261 unsigned int irdata_count;
262 unsigned int irdata_idle;
263 unsigned int irdata_off;
264 unsigned int irdata_error;
265
266 /* Protected by keytable_lock */
267 struct list_head keytable;
268};
269
270static enum wbcir_protocol protocol = IR_PROTOCOL_RC6;
271module_param(protocol, uint, 0444);
272MODULE_PARM_DESC(protocol, "IR protocol to use "
273 "(0 = RC5, 1 = NEC, 2 = RC6A, default)");
274
275static int invert; /* default = 0 */
276module_param(invert, bool, 0444);
277MODULE_PARM_DESC(invert, "Invert the signal from the IR receiver");
278
279static unsigned int wake_sc = 0x800F040C;
280module_param(wake_sc, uint, 0644);
281MODULE_PARM_DESC(wake_sc, "Scancode of the power-on IR command");
282
283static unsigned int wake_rc6mode = 6;
284module_param(wake_rc6mode, uint, 0644);
285MODULE_PARM_DESC(wake_rc6mode, "RC6 mode for the power-on command "
286 "(0 = 0, 6 = 6A, default)");
287
288
289
290/*****************************************************************************
291 *
292 * UTILITY FUNCTIONS
293 *
294 *****************************************************************************/
295
296/* Caller needs to hold wbcir_lock */
297static void
298wbcir_set_bits(unsigned long addr, u8 bits, u8 mask)
299{
300 u8 val;
301
302 val = inb(addr);
303 val = ((val & ~mask) | (bits & mask));
304 outb(val, addr);
305}
306
307/* Selects the register bank for the serial port */
308static inline void
309wbcir_select_bank(struct wbcir_data *data, enum wbcir_bank bank)
310{
311 outb(bank, data->sbase + WBCIR_REG_SP3_BSR);
312}
313
314static enum led_brightness
315wbcir_led_brightness_get(struct led_classdev *led_cdev)
316{
317 struct wbcir_data *data = container_of(led_cdev,
318 struct wbcir_data,
319 led);
320
321 if (inb(data->ebase + WBCIR_REG_ECEIR_CTS) & WBCIR_LED_ENABLE)
322 return LED_FULL;
323 else
324 return LED_OFF;
325}
326
327static void
328wbcir_led_brightness_set(struct led_classdev *led_cdev,
329 enum led_brightness brightness)
330{
331 struct wbcir_data *data = container_of(led_cdev,
332 struct wbcir_data,
333 led);
334
335 wbcir_set_bits(data->ebase + WBCIR_REG_ECEIR_CTS,
336 brightness == LED_OFF ? 0x00 : WBCIR_LED_ENABLE,
337 WBCIR_LED_ENABLE);
338}
339
340/* Manchester encodes bits to RC6 message cells (see wbcir_parse_rc6) */
341static u8
342wbcir_to_rc6cells(u8 val)
343{
344 u8 coded = 0x00;
345 int i;
346
347 val &= 0x0F;
348 for (i = 0; i < 4; i++) {
349 if (val & 0x01)
350 coded |= 0x02 << (i * 2);
351 else
352 coded |= 0x01 << (i * 2);
353 val >>= 1;
354 }
355
356 return coded;
357}
358
359
360
361/*****************************************************************************
362 *
363 * INPUT FUNCTIONS
364 *
365 *****************************************************************************/
366
367static unsigned int
368wbcir_do_getkeycode(struct wbcir_data *data, u32 scancode)
369{
370 struct wbcir_keyentry *keyentry;
371 unsigned int keycode = KEY_RESERVED;
372 unsigned long flags;
373
374 read_lock_irqsave(&keytable_lock, flags);
375
376 list_for_each_entry(keyentry, &data->keytable, list) {
377 if (keyentry->key.scancode == scancode) {
378 keycode = keyentry->key.keycode;
379 break;
380 }
381 }
382
383 read_unlock_irqrestore(&keytable_lock, flags);
384 return keycode;
385}
386
387static int
Dmitry Torokhov58b93992010-03-08 22:37:10 -0800388wbcir_getkeycode(struct input_dev *dev,
389 unsigned int scancode, unsigned int *keycode)
David Härdemane258b802009-09-21 17:04:53 -0700390{
391 struct wbcir_data *data = input_get_drvdata(dev);
392
Dmitry Torokhov58b93992010-03-08 22:37:10 -0800393 *keycode = wbcir_do_getkeycode(data, scancode);
David Härdemane258b802009-09-21 17:04:53 -0700394 return 0;
395}
396
397static int
Dmitry Torokhov58b93992010-03-08 22:37:10 -0800398wbcir_setkeycode(struct input_dev *dev,
399 unsigned int scancode, unsigned int keycode)
David Härdemane258b802009-09-21 17:04:53 -0700400{
401 struct wbcir_data *data = input_get_drvdata(dev);
402 struct wbcir_keyentry *keyentry;
403 struct wbcir_keyentry *new_keyentry;
404 unsigned long flags;
405 unsigned int old_keycode = KEY_RESERVED;
David Härdemane258b802009-09-21 17:04:53 -0700406
407 new_keyentry = kmalloc(sizeof(*new_keyentry), GFP_KERNEL);
408 if (!new_keyentry)
409 return -ENOMEM;
410
411 write_lock_irqsave(&keytable_lock, flags);
412
413 list_for_each_entry(keyentry, &data->keytable, list) {
414 if (keyentry->key.scancode != scancode)
415 continue;
416
417 old_keycode = keyentry->key.keycode;
418 keyentry->key.keycode = keycode;
419
420 if (keyentry->key.keycode == KEY_RESERVED) {
421 list_del(&keyentry->list);
422 kfree(keyentry);
423 }
424
425 break;
426 }
427
428 set_bit(keycode, dev->keybit);
429
430 if (old_keycode == KEY_RESERVED) {
431 new_keyentry->key.scancode = scancode;
432 new_keyentry->key.keycode = keycode;
433 list_add(&new_keyentry->list, &data->keytable);
434 } else {
435 kfree(new_keyentry);
436 clear_bit(old_keycode, dev->keybit);
437 list_for_each_entry(keyentry, &data->keytable, list) {
438 if (keyentry->key.keycode == old_keycode) {
439 set_bit(old_keycode, dev->keybit);
440 break;
441 }
442 }
443 }
444
445 write_unlock_irqrestore(&keytable_lock, flags);
446 return 0;
447}
448
449/*
450 * Timer function to report keyup event some time after keydown is
451 * reported by the ISR.
452 */
453static void
454wbcir_keyup(unsigned long cookie)
455{
456 struct wbcir_data *data = (struct wbcir_data *)cookie;
457 unsigned long flags;
458
459 /*
460 * data->keyup_jiffies is used to prevent a race condition if a
461 * hardware interrupt occurs at this point and the keyup timer
462 * event is moved further into the future as a result.
463 *
464 * The timer will then be reactivated and this function called
465 * again in the future. We need to exit gracefully in that case
466 * to allow the input subsystem to do its auto-repeat magic or
467 * a keyup event might follow immediately after the keydown.
468 */
469
470 spin_lock_irqsave(&wbcir_lock, flags);
471
472 if (time_is_after_eq_jiffies(data->keyup_jiffies) && data->keypressed) {
473 data->keypressed = 0;
474 led_trigger_event(data->rxtrigger, LED_OFF);
475 input_report_key(data->input_dev, data->last_keycode, 0);
476 input_sync(data->input_dev);
477 }
478
479 spin_unlock_irqrestore(&wbcir_lock, flags);
480}
481
482static void
483wbcir_keydown(struct wbcir_data *data, u32 scancode, u8 toggle)
484{
485 unsigned int keycode;
486
487 /* Repeat? */
488 if (data->last_scancode == scancode &&
489 data->last_toggle == toggle &&
490 data->keypressed)
491 goto set_timer;
492 data->last_scancode = scancode;
493
494 /* Do we need to release an old keypress? */
495 if (data->keypressed) {
496 input_report_key(data->input_dev, data->last_keycode, 0);
497 input_sync(data->input_dev);
498 data->keypressed = 0;
499 }
500
501 /* Report scancode */
502 input_event(data->input_dev, EV_MSC, MSC_SCAN, (int)scancode);
503
504 /* Do we know this scancode? */
505 keycode = wbcir_do_getkeycode(data, scancode);
506 if (keycode == KEY_RESERVED)
507 goto set_timer;
508
509 /* Register a keypress */
510 input_report_key(data->input_dev, keycode, 1);
511 data->keypressed = 1;
512 data->last_keycode = keycode;
513 data->last_toggle = toggle;
514
515set_timer:
516 input_sync(data->input_dev);
517 led_trigger_event(data->rxtrigger,
518 data->keypressed ? LED_FULL : LED_OFF);
519 data->keyup_jiffies = jiffies + msecs_to_jiffies(IR_KEYPRESS_TIMEOUT);
520 mod_timer(&data->timer_keyup, data->keyup_jiffies);
521}
522
523
524
525/*****************************************************************************
526 *
527 * IR PARSING FUNCTIONS
528 *
529 *****************************************************************************/
530
531/* Resets all irdata */
532static void
533wbcir_reset_irdata(struct wbcir_data *data)
534{
535 memset(data->irdata, 0, sizeof(data->irdata));
536 data->irdata_count = 0;
537 data->irdata_off = 0;
538 data->irdata_error = 0;
David Härdeman197d4db2010-02-24 02:08:29 -0800539 data->idle_count = 0;
David Härdemane258b802009-09-21 17:04:53 -0700540}
541
542/* Adds one bit of irdata */
543static void
544add_irdata_bit(struct wbcir_data *data, int set)
545{
546 if (data->irdata_count >= sizeof(data->irdata) * 8) {
547 data->irdata_error = 1;
548 return;
549 }
550
551 if (set)
552 __set_bit(data->irdata_count, data->irdata);
553 data->irdata_count++;
554}
555
556/* Gets count bits of irdata */
557static u16
558get_bits(struct wbcir_data *data, int count)
559{
560 u16 val = 0x0;
561
562 if (data->irdata_count - data->irdata_off < count) {
563 data->irdata_error = 1;
564 return 0x0;
565 }
566
567 while (count > 0) {
568 val <<= 1;
569 if (test_bit(data->irdata_off, data->irdata))
570 val |= 0x1;
571 count--;
572 data->irdata_off++;
573 }
574
575 return val;
576}
577
578/* Reads 16 cells and converts them to a byte */
579static u8
580wbcir_rc6cells_to_byte(struct wbcir_data *data)
581{
582 u16 raw = get_bits(data, 16);
583 u8 val = 0x00;
584 int bit;
585
586 for (bit = 0; bit < 8; bit++) {
587 switch (raw & 0x03) {
588 case 0x01:
589 break;
590 case 0x02:
591 val |= (0x01 << bit);
592 break;
593 default:
594 data->irdata_error = 1;
595 break;
596 }
597 raw >>= 2;
598 }
599
600 return val;
601}
602
603/* Decodes a number of bits from raw RC5 data */
604static u8
605wbcir_get_rc5bits(struct wbcir_data *data, unsigned int count)
606{
607 u16 raw = get_bits(data, count * 2);
608 u8 val = 0x00;
609 int bit;
610
611 for (bit = 0; bit < count; bit++) {
612 switch (raw & 0x03) {
613 case 0x01:
614 val |= (0x01 << bit);
615 break;
616 case 0x02:
617 break;
618 default:
619 data->irdata_error = 1;
620 break;
621 }
622 raw >>= 2;
623 }
624
625 return val;
626}
627
628static void
629wbcir_parse_rc6(struct device *dev, struct wbcir_data *data)
630{
631 /*
632 * Normal bits are manchester coded as follows:
633 * cell0 + cell1 = logic "0"
634 * cell1 + cell0 = logic "1"
635 *
636 * The IR pulse has the following components:
637 *
638 * Leader - 6 * cell1 - discarded
639 * Gap - 2 * cell0 - discarded
640 * Start bit - Normal Coding - always "1"
641 * Mode Bit 2 - 0 - Normal Coding
642 * Toggle bit - Normal Coding with double bit time,
643 * e.g. cell0 + cell0 + cell1 + cell1
644 * means logic "0".
645 *
646 * The rest depends on the mode, the following modes are known:
647 *
648 * MODE 0:
649 * Address Bit 7 - 0 - Normal Coding
650 * Command Bit 7 - 0 - Normal Coding
651 *
652 * MODE 6:
653 * The above Toggle Bit is used as a submode bit, 0 = A, 1 = B.
654 * Submode B is for pointing devices, only remotes using submode A
655 * are supported.
656 *
657 * Customer range bit - 0 => Customer = 7 bits, 0...127
658 * 1 => Customer = 15 bits, 32768...65535
659 * Customer Bits - Normal Coding
660 *
661 * Customer codes are allocated by Philips. The rest of the bits
662 * are customer dependent. The following is commonly used (and the
663 * only supported config):
664 *
665 * Toggle Bit - Normal Coding
666 * Address Bit 6 - 0 - Normal Coding
667 * Command Bit 7 - 0 - Normal Coding
668 *
669 * All modes are followed by at least 6 * cell0.
670 *
671 * MODE 0 msglen:
672 * 1 * 2 (start bit) + 3 * 2 (mode) + 2 * 2 (toggle) +
673 * 8 * 2 (address) + 8 * 2 (command) =
674 * 44 cells
675 *
676 * MODE 6A msglen:
677 * 1 * 2 (start bit) + 3 * 2 (mode) + 2 * 2 (submode) +
678 * 1 * 2 (customer range bit) + 7/15 * 2 (customer bits) +
679 * 1 * 2 (toggle bit) + 7 * 2 (address) + 8 * 2 (command) =
680 * 60 - 76 cells
681 */
682 u8 mode;
683 u8 toggle;
684 u16 customer = 0x0;
685 u8 address;
686 u8 command;
687 u32 scancode;
688
689 /* Leader mark */
690 while (get_bits(data, 1) && !data->irdata_error)
691 /* Do nothing */;
692
693 /* Leader space */
694 if (get_bits(data, 1)) {
695 dev_dbg(dev, "RC6 - Invalid leader space\n");
696 return;
697 }
698
699 /* Start bit */
700 if (get_bits(data, 2) != 0x02) {
701 dev_dbg(dev, "RC6 - Invalid start bit\n");
702 return;
703 }
704
705 /* Mode */
706 mode = get_bits(data, 6);
707 switch (mode) {
708 case 0x15: /* 010101 = b000 */
709 mode = 0;
710 break;
711 case 0x29: /* 101001 = b110 */
712 mode = 6;
713 break;
714 default:
715 dev_dbg(dev, "RC6 - Invalid mode\n");
716 return;
717 }
718
719 /* Toggle bit / Submode bit */
720 toggle = get_bits(data, 4);
721 switch (toggle) {
722 case 0x03:
723 toggle = 0;
724 break;
725 case 0x0C:
726 toggle = 1;
727 break;
728 default:
729 dev_dbg(dev, "RC6 - Toggle bit error\n");
730 break;
731 }
732
733 /* Customer */
734 if (mode == 6) {
735 if (toggle != 0) {
736 dev_dbg(dev, "RC6B - Not Supported\n");
737 return;
738 }
739
740 customer = wbcir_rc6cells_to_byte(data);
741
742 if (customer & 0x80) {
743 /* 15 bit customer value */
744 customer <<= 8;
745 customer |= wbcir_rc6cells_to_byte(data);
746 }
747 }
748
749 /* Address */
750 address = wbcir_rc6cells_to_byte(data);
751 if (mode == 6) {
752 toggle = address >> 7;
753 address &= 0x7F;
754 }
755
756 /* Command */
757 command = wbcir_rc6cells_to_byte(data);
758
759 /* Create scancode */
760 scancode = command;
761 scancode |= address << 8;
762 scancode |= customer << 16;
763
764 /* Last sanity check */
765 if (data->irdata_error) {
766 dev_dbg(dev, "RC6 - Cell error(s)\n");
767 return;
768 }
769
David Härdeman93fb84b2010-01-28 22:28:27 -0800770 dev_dbg(dev, "IR-RC6 ad 0x%02X cm 0x%02X cu 0x%04X "
David Härdemane258b802009-09-21 17:04:53 -0700771 "toggle %u mode %u scan 0x%08X\n",
772 address,
773 command,
774 customer,
775 (unsigned int)toggle,
776 (unsigned int)mode,
777 scancode);
778
779 wbcir_keydown(data, scancode, toggle);
780}
781
782static void
783wbcir_parse_rc5(struct device *dev, struct wbcir_data *data)
784{
785 /*
786 * Bits are manchester coded as follows:
787 * cell1 + cell0 = logic "0"
788 * cell0 + cell1 = logic "1"
789 * (i.e. the reverse of RC6)
790 *
791 * Start bit 1 - "1" - discarded
792 * Start bit 2 - Must be inverted to get command bit 6
793 * Toggle bit
794 * Address Bit 4 - 0
795 * Command Bit 5 - 0
796 */
797 u8 toggle;
798 u8 address;
799 u8 command;
800 u32 scancode;
801
802 /* Start bit 1 */
803 if (!get_bits(data, 1)) {
804 dev_dbg(dev, "RC5 - Invalid start bit\n");
805 return;
806 }
807
808 /* Start bit 2 */
809 if (!wbcir_get_rc5bits(data, 1))
810 command = 0x40;
811 else
812 command = 0x00;
813
814 toggle = wbcir_get_rc5bits(data, 1);
815 address = wbcir_get_rc5bits(data, 5);
816 command |= wbcir_get_rc5bits(data, 6);
817 scancode = address << 7 | command;
818
819 /* Last sanity check */
820 if (data->irdata_error) {
821 dev_dbg(dev, "RC5 - Invalid message\n");
822 return;
823 }
824
825 dev_dbg(dev, "IR-RC5 ad %u cm %u t %u s %u\n",
826 (unsigned int)address,
827 (unsigned int)command,
828 (unsigned int)toggle,
829 (unsigned int)scancode);
830
831 wbcir_keydown(data, scancode, toggle);
832}
833
834static void
835wbcir_parse_nec(struct device *dev, struct wbcir_data *data)
836{
837 /*
838 * Each bit represents 560 us.
839 *
840 * Leader - 9 ms burst
841 * Gap - 4.5 ms silence
842 * Address1 bit 0 - 7 - Address 1
843 * Address2 bit 0 - 7 - Address 2
844 * Command1 bit 0 - 7 - Command 1
845 * Command2 bit 0 - 7 - Command 2
846 *
847 * Note the bit order!
848 *
849 * With the old NEC protocol, Address2 was the inverse of Address1
850 * and Command2 was the inverse of Command1 and were used as
851 * an error check.
852 *
853 * With NEC extended, Address1 is the LSB of the Address and
854 * Address2 is the MSB, Command parsing remains unchanged.
855 *
856 * A repeat message is coded as:
857 * Leader - 9 ms burst
858 * Gap - 2.25 ms silence
859 * Repeat - 560 us active
860 */
861 u8 address1;
862 u8 address2;
863 u8 command1;
864 u8 command2;
865 u16 address;
866 u32 scancode;
867
868 /* Leader mark */
869 while (get_bits(data, 1) && !data->irdata_error)
870 /* Do nothing */;
871
872 /* Leader space */
873 if (get_bits(data, 4)) {
874 dev_dbg(dev, "NEC - Invalid leader space\n");
875 return;
876 }
877
878 /* Repeat? */
879 if (get_bits(data, 1)) {
880 if (!data->keypressed) {
881 dev_dbg(dev, "NEC - Stray repeat message\n");
882 return;
883 }
884
885 dev_dbg(dev, "IR-NEC repeat s %u\n",
886 (unsigned int)data->last_scancode);
887
888 wbcir_keydown(data, data->last_scancode, data->last_toggle);
889 return;
890 }
891
892 /* Remaining leader space */
893 if (get_bits(data, 3)) {
894 dev_dbg(dev, "NEC - Invalid leader space\n");
895 return;
896 }
897
898 address1 = bitrev8(get_bits(data, 8));
899 address2 = bitrev8(get_bits(data, 8));
900 command1 = bitrev8(get_bits(data, 8));
901 command2 = bitrev8(get_bits(data, 8));
902
903 /* Sanity check */
904 if (data->irdata_error) {
905 dev_dbg(dev, "NEC - Invalid message\n");
906 return;
907 }
908
909 /* Check command validity */
910 if (command1 != ~command2) {
911 dev_dbg(dev, "NEC - Command bytes mismatch\n");
912 return;
913 }
914
915 /* Check for extended NEC protocol */
916 address = address1;
917 if (address1 != ~address2)
918 address |= address2 << 8;
919
920 scancode = address << 8 | command1;
921
922 dev_dbg(dev, "IR-NEC ad %u cm %u s %u\n",
923 (unsigned int)address,
924 (unsigned int)command1,
925 (unsigned int)scancode);
926
927 wbcir_keydown(data, scancode, !data->last_toggle);
928}
929
930
931
932/*****************************************************************************
933 *
934 * INTERRUPT FUNCTIONS
935 *
936 *****************************************************************************/
937
938static irqreturn_t
939wbcir_irq_handler(int irqno, void *cookie)
940{
941 struct pnp_dev *device = cookie;
942 struct wbcir_data *data = pnp_get_drvdata(device);
943 struct device *dev = &device->dev;
944 u8 status;
945 unsigned long flags;
946 u8 irdata[8];
947 int i;
948 unsigned int hw;
949
950 spin_lock_irqsave(&wbcir_lock, flags);
951
952 wbcir_select_bank(data, WBCIR_BANK_0);
953
954 status = inb(data->sbase + WBCIR_REG_SP3_EIR);
955
956 if (!(status & (WBCIR_IRQ_RX | WBCIR_IRQ_ERR))) {
957 spin_unlock_irqrestore(&wbcir_lock, flags);
958 return IRQ_NONE;
959 }
960
961 if (status & WBCIR_IRQ_ERR)
962 data->irdata_error = 1;
963
964 if (!(status & WBCIR_IRQ_RX))
965 goto out;
966
967 /* Since RXHDLEV is set, at least 8 bytes are in the FIFO */
968 insb(data->sbase + WBCIR_REG_SP3_RXDATA, &irdata[0], 8);
969
970 for (i = 0; i < sizeof(irdata); i++) {
971 hw = hweight8(irdata[i]);
972 if (hw > 4)
973 add_irdata_bit(data, 0);
974 else
975 add_irdata_bit(data, 1);
976
977 if (hw == 8)
978 data->idle_count++;
979 else
980 data->idle_count = 0;
981 }
982
983 if (data->idle_count > WBCIR_MAX_IDLE_BYTES) {
984 /* Set RXINACTIVE... */
985 outb(WBCIR_RX_DISABLE, data->sbase + WBCIR_REG_SP3_ASCR);
986
987 /* ...and drain the FIFO */
988 while (inb(data->sbase + WBCIR_REG_SP3_LSR) & WBCIR_RX_AVAIL)
989 inb(data->sbase + WBCIR_REG_SP3_RXDATA);
990
991 dev_dbg(dev, "IRDATA:\n");
992 for (i = 0; i < data->irdata_count; i += BITS_PER_LONG)
993 dev_dbg(dev, "0x%08lX\n", data->irdata[i/BITS_PER_LONG]);
994
995 switch (protocol) {
996 case IR_PROTOCOL_RC5:
997 wbcir_parse_rc5(dev, data);
998 break;
999 case IR_PROTOCOL_RC6:
1000 wbcir_parse_rc6(dev, data);
1001 break;
1002 case IR_PROTOCOL_NEC:
1003 wbcir_parse_nec(dev, data);
1004 break;
1005 }
1006
1007 wbcir_reset_irdata(data);
David Härdemane258b802009-09-21 17:04:53 -07001008 }
1009
1010out:
1011 spin_unlock_irqrestore(&wbcir_lock, flags);
1012 return IRQ_HANDLED;
1013}
1014
1015
1016
1017/*****************************************************************************
1018 *
David Härdeman197d4db2010-02-24 02:08:29 -08001019 * SETUP/INIT/SUSPEND/RESUME FUNCTIONS
David Härdemane258b802009-09-21 17:04:53 -07001020 *
1021 *****************************************************************************/
1022
1023static void
1024wbcir_shutdown(struct pnp_dev *device)
1025{
1026 struct device *dev = &device->dev;
1027 struct wbcir_data *data = pnp_get_drvdata(device);
1028 int do_wake = 1;
1029 u8 match[11];
1030 u8 mask[11];
1031 u8 rc6_csl = 0;
1032 int i;
1033
1034 memset(match, 0, sizeof(match));
1035 memset(mask, 0, sizeof(mask));
1036
1037 if (wake_sc == INVALID_SCANCODE || !device_may_wakeup(dev)) {
1038 do_wake = 0;
1039 goto finish;
1040 }
1041
1042 switch (protocol) {
1043 case IR_PROTOCOL_RC5:
1044 if (wake_sc > 0xFFF) {
1045 do_wake = 0;
1046 dev_err(dev, "RC5 - Invalid wake scancode\n");
1047 break;
1048 }
1049
1050 /* Mask = 13 bits, ex toggle */
1051 mask[0] = 0xFF;
1052 mask[1] = 0x17;
1053
1054 match[0] = (wake_sc & 0x003F); /* 6 command bits */
1055 match[0] |= (wake_sc & 0x0180) >> 1; /* 2 address bits */
1056 match[1] = (wake_sc & 0x0E00) >> 9; /* 3 address bits */
1057 if (!(wake_sc & 0x0040)) /* 2nd start bit */
1058 match[1] |= 0x10;
1059
1060 break;
1061
1062 case IR_PROTOCOL_NEC:
1063 if (wake_sc > 0xFFFFFF) {
1064 do_wake = 0;
1065 dev_err(dev, "NEC - Invalid wake scancode\n");
1066 break;
1067 }
1068
1069 mask[0] = mask[1] = mask[2] = mask[3] = 0xFF;
1070
1071 match[1] = bitrev8((wake_sc & 0xFF));
1072 match[0] = ~match[1];
1073
1074 match[3] = bitrev8((wake_sc & 0xFF00) >> 8);
1075 if (wake_sc > 0xFFFF)
1076 match[2] = bitrev8((wake_sc & 0xFF0000) >> 16);
1077 else
1078 match[2] = ~match[3];
1079
1080 break;
1081
1082 case IR_PROTOCOL_RC6:
1083
1084 if (wake_rc6mode == 0) {
1085 if (wake_sc > 0xFFFF) {
1086 do_wake = 0;
1087 dev_err(dev, "RC6 - Invalid wake scancode\n");
1088 break;
1089 }
1090
1091 /* Command */
1092 match[0] = wbcir_to_rc6cells(wake_sc >> 0);
1093 mask[0] = 0xFF;
1094 match[1] = wbcir_to_rc6cells(wake_sc >> 4);
1095 mask[1] = 0xFF;
1096
1097 /* Address */
1098 match[2] = wbcir_to_rc6cells(wake_sc >> 8);
1099 mask[2] = 0xFF;
1100 match[3] = wbcir_to_rc6cells(wake_sc >> 12);
1101 mask[3] = 0xFF;
1102
1103 /* Header */
1104 match[4] = 0x50; /* mode1 = mode0 = 0, ignore toggle */
1105 mask[4] = 0xF0;
1106 match[5] = 0x09; /* start bit = 1, mode2 = 0 */
1107 mask[5] = 0x0F;
1108
1109 rc6_csl = 44;
1110
1111 } else if (wake_rc6mode == 6) {
1112 i = 0;
1113
1114 /* Command */
1115 match[i] = wbcir_to_rc6cells(wake_sc >> 0);
1116 mask[i++] = 0xFF;
1117 match[i] = wbcir_to_rc6cells(wake_sc >> 4);
1118 mask[i++] = 0xFF;
1119
1120 /* Address + Toggle */
1121 match[i] = wbcir_to_rc6cells(wake_sc >> 8);
1122 mask[i++] = 0xFF;
1123 match[i] = wbcir_to_rc6cells(wake_sc >> 12);
1124 mask[i++] = 0x3F;
1125
1126 /* Customer bits 7 - 0 */
1127 match[i] = wbcir_to_rc6cells(wake_sc >> 16);
1128 mask[i++] = 0xFF;
1129 match[i] = wbcir_to_rc6cells(wake_sc >> 20);
1130 mask[i++] = 0xFF;
1131
1132 if (wake_sc & 0x80000000) {
1133 /* Customer range bit and bits 15 - 8 */
1134 match[i] = wbcir_to_rc6cells(wake_sc >> 24);
1135 mask[i++] = 0xFF;
1136 match[i] = wbcir_to_rc6cells(wake_sc >> 28);
1137 mask[i++] = 0xFF;
1138 rc6_csl = 76;
1139 } else if (wake_sc <= 0x007FFFFF) {
1140 rc6_csl = 60;
1141 } else {
1142 do_wake = 0;
1143 dev_err(dev, "RC6 - Invalid wake scancode\n");
1144 break;
1145 }
1146
1147 /* Header */
1148 match[i] = 0x93; /* mode1 = mode0 = 1, submode = 0 */
1149 mask[i++] = 0xFF;
1150 match[i] = 0x0A; /* start bit = 1, mode2 = 1 */
1151 mask[i++] = 0x0F;
1152
1153 } else {
1154 do_wake = 0;
1155 dev_err(dev, "RC6 - Invalid wake mode\n");
1156 }
1157
1158 break;
1159
1160 default:
1161 do_wake = 0;
1162 break;
1163 }
1164
1165finish:
1166 if (do_wake) {
1167 /* Set compare and compare mask */
1168 wbcir_set_bits(data->wbase + WBCIR_REG_WCEIR_INDEX,
1169 WBCIR_REGSEL_COMPARE | WBCIR_REG_ADDR0,
1170 0x3F);
1171 outsb(data->wbase + WBCIR_REG_WCEIR_DATA, match, 11);
1172 wbcir_set_bits(data->wbase + WBCIR_REG_WCEIR_INDEX,
1173 WBCIR_REGSEL_MASK | WBCIR_REG_ADDR0,
1174 0x3F);
1175 outsb(data->wbase + WBCIR_REG_WCEIR_DATA, mask, 11);
1176
1177 /* RC6 Compare String Len */
1178 outb(rc6_csl, data->wbase + WBCIR_REG_WCEIR_CSL);
1179
1180 /* Clear status bits NEC_REP, BUFF, MSG_END, MATCH */
1181 wbcir_set_bits(data->wbase + WBCIR_REG_WCEIR_STS, 0x17, 0x17);
1182
1183 /* Clear BUFF_EN, Clear END_EN, Set MATCH_EN */
1184 wbcir_set_bits(data->wbase + WBCIR_REG_WCEIR_EV_EN, 0x01, 0x07);
1185
1186 /* Set CEIR_EN */
1187 wbcir_set_bits(data->wbase + WBCIR_REG_WCEIR_CTL, 0x01, 0x01);
1188
1189 } else {
1190 /* Clear BUFF_EN, Clear END_EN, Clear MATCH_EN */
1191 wbcir_set_bits(data->wbase + WBCIR_REG_WCEIR_EV_EN, 0x00, 0x07);
1192
1193 /* Clear CEIR_EN */
1194 wbcir_set_bits(data->wbase + WBCIR_REG_WCEIR_CTL, 0x00, 0x01);
1195 }
1196
1197 /* Disable interrupts */
David Härdeman197d4db2010-02-24 02:08:29 -08001198 wbcir_select_bank(data, WBCIR_BANK_0);
David Härdemane258b802009-09-21 17:04:53 -07001199 outb(WBCIR_IRQ_NONE, data->sbase + WBCIR_REG_SP3_IER);
David Härdeman197d4db2010-02-24 02:08:29 -08001200
1201 /*
1202 * ACPI will set the HW disable bit for SP3 which means that the
1203 * output signals are left in an undefined state which may cause
1204 * spurious interrupts which we need to ignore until the hardware
1205 * is reinitialized.
1206 */
1207 disable_irq(data->irq);
David Härdemane258b802009-09-21 17:04:53 -07001208}
1209
1210static int
1211wbcir_suspend(struct pnp_dev *device, pm_message_t state)
1212{
1213 wbcir_shutdown(device);
1214 return 0;
1215}
1216
David Härdemane258b802009-09-21 17:04:53 -07001217static void
David Härdeman197d4db2010-02-24 02:08:29 -08001218wbcir_init_hw(struct wbcir_data *data)
David Härdemane258b802009-09-21 17:04:53 -07001219{
1220 u8 tmp;
1221
David Härdeman197d4db2010-02-24 02:08:29 -08001222 /* Disable interrupts */
1223 wbcir_select_bank(data, WBCIR_BANK_0);
1224 outb(WBCIR_IRQ_NONE, data->sbase + WBCIR_REG_SP3_IER);
1225
David Härdemane258b802009-09-21 17:04:53 -07001226 /* Set PROT_SEL, RX_INV, Clear CEIR_EN (needed for the led) */
1227 tmp = protocol << 4;
1228 if (invert)
1229 tmp |= 0x08;
1230 outb(tmp, data->wbase + WBCIR_REG_WCEIR_CTL);
1231
1232 /* Clear status bits NEC_REP, BUFF, MSG_END, MATCH */
1233 wbcir_set_bits(data->wbase + WBCIR_REG_WCEIR_STS, 0x17, 0x17);
1234
1235 /* Clear BUFF_EN, Clear END_EN, Clear MATCH_EN */
1236 wbcir_set_bits(data->wbase + WBCIR_REG_WCEIR_EV_EN, 0x00, 0x07);
1237
1238 /* Set RC5 cell time to correspond to 36 kHz */
1239 wbcir_set_bits(data->wbase + WBCIR_REG_WCEIR_CFG1, 0x4A, 0x7F);
1240
1241 /* Set IRTX_INV */
1242 if (invert)
1243 outb(0x04, data->ebase + WBCIR_REG_ECEIR_CCTL);
1244 else
1245 outb(0x00, data->ebase + WBCIR_REG_ECEIR_CCTL);
1246
1247 /*
1248 * Clear IR LED, set SP3 clock to 24Mhz
1249 * set SP3_IRRX_SW to binary 01, helpfully not documented
1250 */
1251 outb(0x10, data->ebase + WBCIR_REG_ECEIR_CTS);
David Härdeman197d4db2010-02-24 02:08:29 -08001252
1253 /* Enable extended mode */
1254 wbcir_select_bank(data, WBCIR_BANK_2);
1255 outb(WBCIR_EXT_ENABLE, data->sbase + WBCIR_REG_SP3_EXCR1);
1256
1257 /*
1258 * Configure baud generator, IR data will be sampled at
1259 * a bitrate of: (24Mhz * prescaler) / (divisor * 16).
1260 *
1261 * The ECIR registers include a flag to change the
1262 * 24Mhz clock freq to 48Mhz.
1263 *
1264 * It's not documented in the specs, but fifo levels
1265 * other than 16 seems to be unsupported.
1266 */
1267
1268 /* prescaler 1.0, tx/rx fifo lvl 16 */
1269 outb(0x30, data->sbase + WBCIR_REG_SP3_EXCR2);
1270
1271 /* Set baud divisor to generate one byte per bit/cell */
1272 switch (protocol) {
1273 case IR_PROTOCOL_RC5:
1274 outb(0xA7, data->sbase + WBCIR_REG_SP3_BGDL);
1275 break;
1276 case IR_PROTOCOL_RC6:
1277 outb(0x53, data->sbase + WBCIR_REG_SP3_BGDL);
1278 break;
1279 case IR_PROTOCOL_NEC:
1280 outb(0x69, data->sbase + WBCIR_REG_SP3_BGDL);
1281 break;
1282 }
1283 outb(0x00, data->sbase + WBCIR_REG_SP3_BGDH);
1284
1285 /* Set CEIR mode */
1286 wbcir_select_bank(data, WBCIR_BANK_0);
1287 outb(0xC0, data->sbase + WBCIR_REG_SP3_MCR);
1288 inb(data->sbase + WBCIR_REG_SP3_LSR); /* Clear LSR */
1289 inb(data->sbase + WBCIR_REG_SP3_MSR); /* Clear MSR */
1290
1291 /* Disable RX demod, run-length encoding/decoding, set freq span */
1292 wbcir_select_bank(data, WBCIR_BANK_7);
1293 outb(0x10, data->sbase + WBCIR_REG_SP3_RCCFG);
1294
1295 /* Disable timer */
1296 wbcir_select_bank(data, WBCIR_BANK_4);
1297 outb(0x00, data->sbase + WBCIR_REG_SP3_IRCR1);
1298
1299 /* Enable MSR interrupt, Clear AUX_IRX */
1300 wbcir_select_bank(data, WBCIR_BANK_5);
1301 outb(0x00, data->sbase + WBCIR_REG_SP3_IRCR2);
1302
1303 /* Disable CRC */
1304 wbcir_select_bank(data, WBCIR_BANK_6);
1305 outb(0x20, data->sbase + WBCIR_REG_SP3_IRCR3);
1306
1307 /* Set RX/TX (de)modulation freq, not really used */
1308 wbcir_select_bank(data, WBCIR_BANK_7);
1309 outb(0xF2, data->sbase + WBCIR_REG_SP3_IRRXDC);
1310 outb(0x69, data->sbase + WBCIR_REG_SP3_IRTXMC);
1311
1312 /* Set invert and pin direction */
1313 if (invert)
1314 outb(0x10, data->sbase + WBCIR_REG_SP3_IRCFG4);
1315 else
1316 outb(0x00, data->sbase + WBCIR_REG_SP3_IRCFG4);
1317
1318 /* Set FIFO thresholds (RX = 8, TX = 3), reset RX/TX */
1319 wbcir_select_bank(data, WBCIR_BANK_0);
1320 outb(0x97, data->sbase + WBCIR_REG_SP3_FCR);
1321
1322 /* Clear AUX status bits */
1323 outb(0xE0, data->sbase + WBCIR_REG_SP3_ASCR);
1324
1325 /* Enable interrupts */
1326 wbcir_reset_irdata(data);
1327 outb(WBCIR_IRQ_RX | WBCIR_IRQ_ERR, data->sbase + WBCIR_REG_SP3_IER);
1328}
1329
1330static int
1331wbcir_resume(struct pnp_dev *device)
1332{
1333 struct wbcir_data *data = pnp_get_drvdata(device);
1334
1335 wbcir_init_hw(data);
1336 enable_irq(data->irq);
1337
1338 return 0;
David Härdemane258b802009-09-21 17:04:53 -07001339}
1340
1341static int __devinit
1342wbcir_probe(struct pnp_dev *device, const struct pnp_device_id *dev_id)
1343{
1344 struct device *dev = &device->dev;
1345 struct wbcir_data *data;
1346 int err;
1347
1348 if (!(pnp_port_len(device, 0) == EHFUNC_IOMEM_LEN &&
1349 pnp_port_len(device, 1) == WAKEUP_IOMEM_LEN &&
1350 pnp_port_len(device, 2) == SP_IOMEM_LEN)) {
1351 dev_err(dev, "Invalid resources\n");
1352 return -ENODEV;
1353 }
1354
1355 data = kzalloc(sizeof(*data), GFP_KERNEL);
1356 if (!data) {
1357 err = -ENOMEM;
1358 goto exit;
1359 }
1360
1361 pnp_set_drvdata(device, data);
1362
1363 data->ebase = pnp_port_start(device, 0);
1364 data->wbase = pnp_port_start(device, 1);
1365 data->sbase = pnp_port_start(device, 2);
1366 data->irq = pnp_irq(device, 0);
1367
1368 if (data->wbase == 0 || data->ebase == 0 ||
1369 data->sbase == 0 || data->irq == 0) {
1370 err = -ENODEV;
1371 dev_err(dev, "Invalid resources\n");
1372 goto exit_free_data;
1373 }
1374
1375 dev_dbg(&device->dev, "Found device "
1376 "(w: 0x%lX, e: 0x%lX, s: 0x%lX, i: %u)\n",
1377 data->wbase, data->ebase, data->sbase, data->irq);
1378
1379 if (!request_region(data->wbase, WAKEUP_IOMEM_LEN, DRVNAME)) {
1380 dev_err(dev, "Region 0x%lx-0x%lx already in use!\n",
1381 data->wbase, data->wbase + WAKEUP_IOMEM_LEN - 1);
1382 err = -EBUSY;
1383 goto exit_free_data;
1384 }
1385
1386 if (!request_region(data->ebase, EHFUNC_IOMEM_LEN, DRVNAME)) {
1387 dev_err(dev, "Region 0x%lx-0x%lx already in use!\n",
1388 data->ebase, data->ebase + EHFUNC_IOMEM_LEN - 1);
1389 err = -EBUSY;
1390 goto exit_release_wbase;
1391 }
1392
1393 if (!request_region(data->sbase, SP_IOMEM_LEN, DRVNAME)) {
1394 dev_err(dev, "Region 0x%lx-0x%lx already in use!\n",
1395 data->sbase, data->sbase + SP_IOMEM_LEN - 1);
1396 err = -EBUSY;
1397 goto exit_release_ebase;
1398 }
1399
1400 err = request_irq(data->irq, wbcir_irq_handler,
1401 IRQF_DISABLED, DRVNAME, device);
1402 if (err) {
1403 dev_err(dev, "Failed to claim IRQ %u\n", data->irq);
1404 err = -EBUSY;
1405 goto exit_release_sbase;
1406 }
1407
1408 led_trigger_register_simple("cir-tx", &data->txtrigger);
1409 if (!data->txtrigger) {
1410 err = -ENOMEM;
1411 goto exit_free_irq;
1412 }
1413
1414 led_trigger_register_simple("cir-rx", &data->rxtrigger);
1415 if (!data->rxtrigger) {
1416 err = -ENOMEM;
1417 goto exit_unregister_txtrigger;
1418 }
1419
1420 data->led.name = "cir::activity";
1421 data->led.default_trigger = "cir-rx";
1422 data->led.brightness_set = wbcir_led_brightness_set;
1423 data->led.brightness_get = wbcir_led_brightness_get;
1424 err = led_classdev_register(&device->dev, &data->led);
1425 if (err)
1426 goto exit_unregister_rxtrigger;
1427
1428 data->input_dev = input_allocate_device();
1429 if (!data->input_dev) {
1430 err = -ENOMEM;
1431 goto exit_unregister_led;
1432 }
1433
1434 data->input_dev->evbit[0] = BIT(EV_KEY);
1435 data->input_dev->name = WBCIR_NAME;
1436 data->input_dev->phys = "wbcir/cir0";
1437 data->input_dev->id.bustype = BUS_HOST;
1438 data->input_dev->id.vendor = PCI_VENDOR_ID_WINBOND;
1439 data->input_dev->id.product = WBCIR_ID_FAMILY;
1440 data->input_dev->id.version = WBCIR_ID_CHIP;
1441 data->input_dev->getkeycode = wbcir_getkeycode;
1442 data->input_dev->setkeycode = wbcir_setkeycode;
1443 input_set_capability(data->input_dev, EV_MSC, MSC_SCAN);
1444 input_set_drvdata(data->input_dev, data);
1445
1446 err = input_register_device(data->input_dev);
1447 if (err)
1448 goto exit_free_input;
1449
1450 data->last_scancode = INVALID_SCANCODE;
1451 INIT_LIST_HEAD(&data->keytable);
1452 setup_timer(&data->timer_keyup, wbcir_keyup, (unsigned long)data);
1453
1454 /* Load default keymaps */
1455 if (protocol == IR_PROTOCOL_RC6) {
1456 int i;
1457 for (i = 0; i < ARRAY_SIZE(rc6_def_keymap); i++) {
1458 err = wbcir_setkeycode(data->input_dev,
1459 (int)rc6_def_keymap[i].scancode,
1460 (int)rc6_def_keymap[i].keycode);
1461 if (err)
1462 goto exit_unregister_keys;
1463 }
1464 }
1465
1466 device_init_wakeup(&device->dev, 1);
1467
David Härdeman197d4db2010-02-24 02:08:29 -08001468 wbcir_init_hw(data);
David Härdemane258b802009-09-21 17:04:53 -07001469
1470 return 0;
1471
1472exit_unregister_keys:
1473 if (!list_empty(&data->keytable)) {
1474 struct wbcir_keyentry *key;
1475 struct wbcir_keyentry *keytmp;
1476
1477 list_for_each_entry_safe(key, keytmp, &data->keytable, list) {
1478 list_del(&key->list);
1479 kfree(key);
1480 }
1481 }
1482 input_unregister_device(data->input_dev);
1483 /* Can't call input_free_device on an unregistered device */
1484 data->input_dev = NULL;
1485exit_free_input:
1486 input_free_device(data->input_dev);
1487exit_unregister_led:
1488 led_classdev_unregister(&data->led);
1489exit_unregister_rxtrigger:
1490 led_trigger_unregister_simple(data->rxtrigger);
1491exit_unregister_txtrigger:
1492 led_trigger_unregister_simple(data->txtrigger);
1493exit_free_irq:
1494 free_irq(data->irq, device);
1495exit_release_sbase:
1496 release_region(data->sbase, SP_IOMEM_LEN);
1497exit_release_ebase:
1498 release_region(data->ebase, EHFUNC_IOMEM_LEN);
1499exit_release_wbase:
1500 release_region(data->wbase, WAKEUP_IOMEM_LEN);
1501exit_free_data:
1502 kfree(data);
1503 pnp_set_drvdata(device, NULL);
1504exit:
1505 return err;
1506}
1507
1508static void __devexit
1509wbcir_remove(struct pnp_dev *device)
1510{
1511 struct wbcir_data *data = pnp_get_drvdata(device);
1512 struct wbcir_keyentry *key;
1513 struct wbcir_keyentry *keytmp;
1514
1515 /* Disable interrupts */
1516 wbcir_select_bank(data, WBCIR_BANK_0);
1517 outb(WBCIR_IRQ_NONE, data->sbase + WBCIR_REG_SP3_IER);
1518
1519 del_timer_sync(&data->timer_keyup);
1520
1521 free_irq(data->irq, device);
1522
1523 /* Clear status bits NEC_REP, BUFF, MSG_END, MATCH */
1524 wbcir_set_bits(data->wbase + WBCIR_REG_WCEIR_STS, 0x17, 0x17);
1525
1526 /* Clear CEIR_EN */
1527 wbcir_set_bits(data->wbase + WBCIR_REG_WCEIR_CTL, 0x00, 0x01);
1528
1529 /* Clear BUFF_EN, END_EN, MATCH_EN */
1530 wbcir_set_bits(data->wbase + WBCIR_REG_WCEIR_EV_EN, 0x00, 0x07);
1531
1532 /* This will generate a keyup event if necessary */
1533 input_unregister_device(data->input_dev);
1534
1535 led_trigger_unregister_simple(data->rxtrigger);
1536 led_trigger_unregister_simple(data->txtrigger);
1537 led_classdev_unregister(&data->led);
1538
1539 /* This is ok since &data->led isn't actually used */
1540 wbcir_led_brightness_set(&data->led, LED_OFF);
1541
1542 release_region(data->wbase, WAKEUP_IOMEM_LEN);
1543 release_region(data->ebase, EHFUNC_IOMEM_LEN);
1544 release_region(data->sbase, SP_IOMEM_LEN);
1545
1546 list_for_each_entry_safe(key, keytmp, &data->keytable, list) {
1547 list_del(&key->list);
1548 kfree(key);
1549 }
1550
1551 kfree(data);
1552
1553 pnp_set_drvdata(device, NULL);
1554}
1555
1556static const struct pnp_device_id wbcir_ids[] = {
1557 { "WEC1022", 0 },
1558 { "", 0 }
1559};
1560MODULE_DEVICE_TABLE(pnp, wbcir_ids);
1561
1562static struct pnp_driver wbcir_driver = {
1563 .name = WBCIR_NAME,
1564 .id_table = wbcir_ids,
1565 .probe = wbcir_probe,
1566 .remove = __devexit_p(wbcir_remove),
1567 .suspend = wbcir_suspend,
1568 .resume = wbcir_resume,
1569 .shutdown = wbcir_shutdown
1570};
1571
1572static int __init
1573wbcir_init(void)
1574{
1575 int ret;
1576
1577 switch (protocol) {
1578 case IR_PROTOCOL_RC5:
1579 case IR_PROTOCOL_NEC:
1580 case IR_PROTOCOL_RC6:
1581 break;
1582 default:
1583 printk(KERN_ERR DRVNAME ": Invalid protocol argument\n");
1584 return -EINVAL;
1585 }
1586
1587 ret = pnp_register_driver(&wbcir_driver);
1588 if (ret)
1589 printk(KERN_ERR DRVNAME ": Unable to register driver\n");
1590
1591 return ret;
1592}
1593
1594static void __exit
1595wbcir_exit(void)
1596{
1597 pnp_unregister_driver(&wbcir_driver);
1598}
1599
1600MODULE_AUTHOR("David Härdeman <david@hardeman.nu>");
1601MODULE_DESCRIPTION("Winbond SuperI/O Consumer IR Driver");
1602MODULE_LICENSE("GPL");
1603
1604module_init(wbcir_init);
1605module_exit(wbcir_exit);
1606
1607