xref: /openbmc/linux/drivers/hid/hid-input.c (revision 023e4163)
1 /*
2  *  Copyright (c) 2000-2001 Vojtech Pavlik
3  *  Copyright (c) 2006-2010 Jiri Kosina
4  *
5  *  HID to Linux Input mapping
6  */
7 
8 /*
9  * This program is free software; you can redistribute it and/or modify
10  * it under the terms of the GNU General Public License as published by
11  * the Free Software Foundation; either version 2 of the License, or
12  * (at your option) any later version.
13  *
14  * This program is distributed in the hope that it will be useful,
15  * but WITHOUT ANY WARRANTY; without even the implied warranty of
16  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
17  * GNU General Public License for more details.
18  *
19  * You should have received a copy of the GNU General Public License
20  * along with this program; if not, write to the Free Software
21  * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
22  *
23  * Should you need to contact me, the author, you can do so either by
24  * e-mail - mail your message to <vojtech@ucw.cz>, or by paper mail:
25  * Vojtech Pavlik, Simunkova 1594, Prague 8, 182 00 Czech Republic
26  */
27 
28 #include <linux/module.h>
29 #include <linux/slab.h>
30 #include <linux/kernel.h>
31 
32 #include <linux/hid.h>
33 #include <linux/hid-debug.h>
34 
35 #include "hid-ids.h"
36 
37 #define unk	KEY_UNKNOWN
38 
39 static const unsigned char hid_keyboard[256] = {
40 	  0,  0,  0,  0, 30, 48, 46, 32, 18, 33, 34, 35, 23, 36, 37, 38,
41 	 50, 49, 24, 25, 16, 19, 31, 20, 22, 47, 17, 45, 21, 44,  2,  3,
42 	  4,  5,  6,  7,  8,  9, 10, 11, 28,  1, 14, 15, 57, 12, 13, 26,
43 	 27, 43, 43, 39, 40, 41, 51, 52, 53, 58, 59, 60, 61, 62, 63, 64,
44 	 65, 66, 67, 68, 87, 88, 99, 70,119,110,102,104,111,107,109,106,
45 	105,108,103, 69, 98, 55, 74, 78, 96, 79, 80, 81, 75, 76, 77, 71,
46 	 72, 73, 82, 83, 86,127,116,117,183,184,185,186,187,188,189,190,
47 	191,192,193,194,134,138,130,132,128,129,131,137,133,135,136,113,
48 	115,114,unk,unk,unk,121,unk, 89, 93,124, 92, 94, 95,unk,unk,unk,
49 	122,123, 90, 91, 85,unk,unk,unk,unk,unk,unk,unk,111,unk,unk,unk,
50 	unk,unk,unk,unk,unk,unk,unk,unk,unk,unk,unk,unk,unk,unk,unk,unk,
51 	unk,unk,unk,unk,unk,unk,179,180,unk,unk,unk,unk,unk,unk,unk,unk,
52 	unk,unk,unk,unk,unk,unk,unk,unk,unk,unk,unk,unk,unk,unk,unk,unk,
53 	unk,unk,unk,unk,unk,unk,unk,unk,111,unk,unk,unk,unk,unk,unk,unk,
54 	 29, 42, 56,125, 97, 54,100,126,164,166,165,163,161,115,114,113,
55 	150,158,159,128,136,177,178,176,142,152,173,140,unk,unk,unk,unk
56 };
57 
58 static const struct {
59 	__s32 x;
60 	__s32 y;
61 }  hid_hat_to_axis[] = {{ 0, 0}, { 0,-1}, { 1,-1}, { 1, 0}, { 1, 1}, { 0, 1}, {-1, 1}, {-1, 0}, {-1,-1}};
62 
63 #define map_abs(c)	hid_map_usage(hidinput, usage, &bit, &max, EV_ABS, (c))
64 #define map_rel(c)	hid_map_usage(hidinput, usage, &bit, &max, EV_REL, (c))
65 #define map_key(c)	hid_map_usage(hidinput, usage, &bit, &max, EV_KEY, (c))
66 #define map_led(c)	hid_map_usage(hidinput, usage, &bit, &max, EV_LED, (c))
67 
68 #define map_abs_clear(c)	hid_map_usage_clear(hidinput, usage, &bit, \
69 		&max, EV_ABS, (c))
70 #define map_key_clear(c)	hid_map_usage_clear(hidinput, usage, &bit, \
71 		&max, EV_KEY, (c))
72 
73 static bool match_scancode(struct hid_usage *usage,
74 			   unsigned int cur_idx, unsigned int scancode)
75 {
76 	return (usage->hid & (HID_USAGE_PAGE | HID_USAGE)) == scancode;
77 }
78 
79 static bool match_keycode(struct hid_usage *usage,
80 			  unsigned int cur_idx, unsigned int keycode)
81 {
82 	/*
83 	 * We should exclude unmapped usages when doing lookup by keycode.
84 	 */
85 	return (usage->type == EV_KEY && usage->code == keycode);
86 }
87 
88 static bool match_index(struct hid_usage *usage,
89 			unsigned int cur_idx, unsigned int idx)
90 {
91 	return cur_idx == idx;
92 }
93 
94 typedef bool (*hid_usage_cmp_t)(struct hid_usage *usage,
95 				unsigned int cur_idx, unsigned int val);
96 
97 static struct hid_usage *hidinput_find_key(struct hid_device *hid,
98 					   hid_usage_cmp_t match,
99 					   unsigned int value,
100 					   unsigned int *usage_idx)
101 {
102 	unsigned int i, j, k, cur_idx = 0;
103 	struct hid_report *report;
104 	struct hid_usage *usage;
105 
106 	for (k = HID_INPUT_REPORT; k <= HID_OUTPUT_REPORT; k++) {
107 		list_for_each_entry(report, &hid->report_enum[k].report_list, list) {
108 			for (i = 0; i < report->maxfield; i++) {
109 				for (j = 0; j < report->field[i]->maxusage; j++) {
110 					usage = report->field[i]->usage + j;
111 					if (usage->type == EV_KEY || usage->type == 0) {
112 						if (match(usage, cur_idx, value)) {
113 							if (usage_idx)
114 								*usage_idx = cur_idx;
115 							return usage;
116 						}
117 						cur_idx++;
118 					}
119 				}
120 			}
121 		}
122 	}
123 	return NULL;
124 }
125 
126 static struct hid_usage *hidinput_locate_usage(struct hid_device *hid,
127 					const struct input_keymap_entry *ke,
128 					unsigned int *index)
129 {
130 	struct hid_usage *usage;
131 	unsigned int scancode;
132 
133 	if (ke->flags & INPUT_KEYMAP_BY_INDEX)
134 		usage = hidinput_find_key(hid, match_index, ke->index, index);
135 	else if (input_scancode_to_scalar(ke, &scancode) == 0)
136 		usage = hidinput_find_key(hid, match_scancode, scancode, index);
137 	else
138 		usage = NULL;
139 
140 	return usage;
141 }
142 
143 static int hidinput_getkeycode(struct input_dev *dev,
144 			       struct input_keymap_entry *ke)
145 {
146 	struct hid_device *hid = input_get_drvdata(dev);
147 	struct hid_usage *usage;
148 	unsigned int scancode, index;
149 
150 	usage = hidinput_locate_usage(hid, ke, &index);
151 	if (usage) {
152 		ke->keycode = usage->type == EV_KEY ?
153 				usage->code : KEY_RESERVED;
154 		ke->index = index;
155 		scancode = usage->hid & (HID_USAGE_PAGE | HID_USAGE);
156 		ke->len = sizeof(scancode);
157 		memcpy(ke->scancode, &scancode, sizeof(scancode));
158 		return 0;
159 	}
160 
161 	return -EINVAL;
162 }
163 
164 static int hidinput_setkeycode(struct input_dev *dev,
165 			       const struct input_keymap_entry *ke,
166 			       unsigned int *old_keycode)
167 {
168 	struct hid_device *hid = input_get_drvdata(dev);
169 	struct hid_usage *usage;
170 
171 	usage = hidinput_locate_usage(hid, ke, NULL);
172 	if (usage) {
173 		*old_keycode = usage->type == EV_KEY ?
174 				usage->code : KEY_RESERVED;
175 		usage->code = ke->keycode;
176 
177 		clear_bit(*old_keycode, dev->keybit);
178 		set_bit(usage->code, dev->keybit);
179 		dbg_hid("Assigned keycode %d to HID usage code %x\n",
180 			usage->code, usage->hid);
181 
182 		/*
183 		 * Set the keybit for the old keycode if the old keycode is used
184 		 * by another key
185 		 */
186 		if (hidinput_find_key(hid, match_keycode, *old_keycode, NULL))
187 			set_bit(*old_keycode, dev->keybit);
188 
189 		return 0;
190 	}
191 
192 	return -EINVAL;
193 }
194 
195 
196 /**
197  * hidinput_calc_abs_res - calculate an absolute axis resolution
198  * @field: the HID report field to calculate resolution for
199  * @code: axis code
200  *
201  * The formula is:
202  *                         (logical_maximum - logical_minimum)
203  * resolution = ----------------------------------------------------------
204  *              (physical_maximum - physical_minimum) * 10 ^ unit_exponent
205  *
206  * as seen in the HID specification v1.11 6.2.2.7 Global Items.
207  *
208  * Only exponent 1 length units are processed. Centimeters and inches are
209  * converted to millimeters. Degrees are converted to radians.
210  */
211 __s32 hidinput_calc_abs_res(const struct hid_field *field, __u16 code)
212 {
213 	__s32 unit_exponent = field->unit_exponent;
214 	__s32 logical_extents = field->logical_maximum -
215 					field->logical_minimum;
216 	__s32 physical_extents = field->physical_maximum -
217 					field->physical_minimum;
218 	__s32 prev;
219 
220 	/* Check if the extents are sane */
221 	if (logical_extents <= 0 || physical_extents <= 0)
222 		return 0;
223 
224 	/*
225 	 * Verify and convert units.
226 	 * See HID specification v1.11 6.2.2.7 Global Items for unit decoding
227 	 */
228 	switch (code) {
229 	case ABS_X:
230 	case ABS_Y:
231 	case ABS_Z:
232 	case ABS_MT_POSITION_X:
233 	case ABS_MT_POSITION_Y:
234 	case ABS_MT_TOOL_X:
235 	case ABS_MT_TOOL_Y:
236 	case ABS_MT_TOUCH_MAJOR:
237 	case ABS_MT_TOUCH_MINOR:
238 		if (field->unit == 0x11) {		/* If centimeters */
239 			/* Convert to millimeters */
240 			unit_exponent += 1;
241 		} else if (field->unit == 0x13) {	/* If inches */
242 			/* Convert to millimeters */
243 			prev = physical_extents;
244 			physical_extents *= 254;
245 			if (physical_extents < prev)
246 				return 0;
247 			unit_exponent -= 1;
248 		} else {
249 			return 0;
250 		}
251 		break;
252 
253 	case ABS_RX:
254 	case ABS_RY:
255 	case ABS_RZ:
256 	case ABS_WHEEL:
257 	case ABS_TILT_X:
258 	case ABS_TILT_Y:
259 		if (field->unit == 0x14) {		/* If degrees */
260 			/* Convert to radians */
261 			prev = logical_extents;
262 			logical_extents *= 573;
263 			if (logical_extents < prev)
264 				return 0;
265 			unit_exponent += 1;
266 		} else if (field->unit != 0x12) {	/* If not radians */
267 			return 0;
268 		}
269 		break;
270 
271 	default:
272 		return 0;
273 	}
274 
275 	/* Apply negative unit exponent */
276 	for (; unit_exponent < 0; unit_exponent++) {
277 		prev = logical_extents;
278 		logical_extents *= 10;
279 		if (logical_extents < prev)
280 			return 0;
281 	}
282 	/* Apply positive unit exponent */
283 	for (; unit_exponent > 0; unit_exponent--) {
284 		prev = physical_extents;
285 		physical_extents *= 10;
286 		if (physical_extents < prev)
287 			return 0;
288 	}
289 
290 	/* Calculate resolution */
291 	return DIV_ROUND_CLOSEST(logical_extents, physical_extents);
292 }
293 EXPORT_SYMBOL_GPL(hidinput_calc_abs_res);
294 
295 #ifdef CONFIG_HID_BATTERY_STRENGTH
296 static enum power_supply_property hidinput_battery_props[] = {
297 	POWER_SUPPLY_PROP_PRESENT,
298 	POWER_SUPPLY_PROP_ONLINE,
299 	POWER_SUPPLY_PROP_CAPACITY,
300 	POWER_SUPPLY_PROP_MODEL_NAME,
301 	POWER_SUPPLY_PROP_STATUS,
302 	POWER_SUPPLY_PROP_SCOPE,
303 };
304 
305 #define HID_BATTERY_QUIRK_PERCENT	(1 << 0) /* always reports percent */
306 #define HID_BATTERY_QUIRK_FEATURE	(1 << 1) /* ask for feature report */
307 #define HID_BATTERY_QUIRK_IGNORE	(1 << 2) /* completely ignore the battery */
308 
309 static const struct hid_device_id hid_battery_quirks[] = {
310 	{ HID_BLUETOOTH_DEVICE(USB_VENDOR_ID_APPLE,
311 		USB_DEVICE_ID_APPLE_ALU_WIRELESS_2009_ISO),
312 	  HID_BATTERY_QUIRK_PERCENT | HID_BATTERY_QUIRK_FEATURE },
313 	{ HID_BLUETOOTH_DEVICE(USB_VENDOR_ID_APPLE,
314 		USB_DEVICE_ID_APPLE_ALU_WIRELESS_2009_ANSI),
315 	  HID_BATTERY_QUIRK_PERCENT | HID_BATTERY_QUIRK_FEATURE },
316 	{ HID_BLUETOOTH_DEVICE(USB_VENDOR_ID_APPLE,
317 		USB_DEVICE_ID_APPLE_ALU_WIRELESS_2011_ANSI),
318 	  HID_BATTERY_QUIRK_PERCENT | HID_BATTERY_QUIRK_FEATURE },
319 	{ HID_BLUETOOTH_DEVICE(USB_VENDOR_ID_APPLE,
320 			       USB_DEVICE_ID_APPLE_ALU_WIRELESS_2011_ISO),
321 	  HID_BATTERY_QUIRK_PERCENT | HID_BATTERY_QUIRK_FEATURE },
322 	{ HID_BLUETOOTH_DEVICE(USB_VENDOR_ID_APPLE,
323 		USB_DEVICE_ID_APPLE_ALU_WIRELESS_ANSI),
324 	  HID_BATTERY_QUIRK_PERCENT | HID_BATTERY_QUIRK_FEATURE },
325 	{ HID_BLUETOOTH_DEVICE(USB_VENDOR_ID_ELECOM,
326 		USB_DEVICE_ID_ELECOM_BM084),
327 	  HID_BATTERY_QUIRK_IGNORE },
328 	{ HID_USB_DEVICE(USB_VENDOR_ID_SYMBOL,
329 		USB_DEVICE_ID_SYMBOL_SCANNER_3),
330 	  HID_BATTERY_QUIRK_IGNORE },
331 	{ HID_BLUETOOTH_DEVICE(USB_VENDOR_ID_ASUSTEK,
332 		USB_DEVICE_ID_ASUSTEK_T100CHI_KEYBOARD),
333 	  HID_BATTERY_QUIRK_IGNORE },
334 	{}
335 };
336 
337 static unsigned find_battery_quirk(struct hid_device *hdev)
338 {
339 	unsigned quirks = 0;
340 	const struct hid_device_id *match;
341 
342 	match = hid_match_id(hdev, hid_battery_quirks);
343 	if (match != NULL)
344 		quirks = match->driver_data;
345 
346 	return quirks;
347 }
348 
349 static int hidinput_scale_battery_capacity(struct hid_device *dev,
350 					   int value)
351 {
352 	if (dev->battery_min < dev->battery_max &&
353 	    value >= dev->battery_min && value <= dev->battery_max)
354 		value = ((value - dev->battery_min) * 100) /
355 			(dev->battery_max - dev->battery_min);
356 
357 	return value;
358 }
359 
360 static int hidinput_query_battery_capacity(struct hid_device *dev)
361 {
362 	u8 *buf;
363 	int ret;
364 
365 	buf = kmalloc(2, GFP_KERNEL);
366 	if (!buf)
367 		return -ENOMEM;
368 
369 	ret = hid_hw_raw_request(dev, dev->battery_report_id, buf, 2,
370 				 dev->battery_report_type, HID_REQ_GET_REPORT);
371 	if (ret != 2) {
372 		kfree(buf);
373 		return -ENODATA;
374 	}
375 
376 	ret = hidinput_scale_battery_capacity(dev, buf[1]);
377 	kfree(buf);
378 	return ret;
379 }
380 
381 static int hidinput_get_battery_property(struct power_supply *psy,
382 					 enum power_supply_property prop,
383 					 union power_supply_propval *val)
384 {
385 	struct hid_device *dev = power_supply_get_drvdata(psy);
386 	int value;
387 	int ret = 0;
388 
389 	switch (prop) {
390 	case POWER_SUPPLY_PROP_PRESENT:
391 	case POWER_SUPPLY_PROP_ONLINE:
392 		val->intval = 1;
393 		break;
394 
395 	case POWER_SUPPLY_PROP_CAPACITY:
396 		if (dev->battery_status != HID_BATTERY_REPORTED &&
397 		    !dev->battery_avoid_query) {
398 			value = hidinput_query_battery_capacity(dev);
399 			if (value < 0)
400 				return value;
401 		} else  {
402 			value = dev->battery_capacity;
403 		}
404 
405 		val->intval = value;
406 		break;
407 
408 	case POWER_SUPPLY_PROP_MODEL_NAME:
409 		val->strval = dev->name;
410 		break;
411 
412 	case POWER_SUPPLY_PROP_STATUS:
413 		if (dev->battery_status != HID_BATTERY_REPORTED &&
414 		    !dev->battery_avoid_query) {
415 			value = hidinput_query_battery_capacity(dev);
416 			if (value < 0)
417 				return value;
418 
419 			dev->battery_capacity = value;
420 			dev->battery_status = HID_BATTERY_QUERIED;
421 		}
422 
423 		if (dev->battery_status == HID_BATTERY_UNKNOWN)
424 			val->intval = POWER_SUPPLY_STATUS_UNKNOWN;
425 		else if (dev->battery_capacity == 100)
426 			val->intval = POWER_SUPPLY_STATUS_FULL;
427 		else
428 			val->intval = POWER_SUPPLY_STATUS_DISCHARGING;
429 		break;
430 
431 	case POWER_SUPPLY_PROP_SCOPE:
432 		val->intval = POWER_SUPPLY_SCOPE_DEVICE;
433 		break;
434 
435 	default:
436 		ret = -EINVAL;
437 		break;
438 	}
439 
440 	return ret;
441 }
442 
443 static int hidinput_setup_battery(struct hid_device *dev, unsigned report_type, struct hid_field *field)
444 {
445 	struct power_supply_desc *psy_desc;
446 	struct power_supply_config psy_cfg = { .drv_data = dev, };
447 	unsigned quirks;
448 	s32 min, max;
449 	int error;
450 
451 	if (dev->battery)
452 		return 0;	/* already initialized? */
453 
454 	quirks = find_battery_quirk(dev);
455 
456 	hid_dbg(dev, "device %x:%x:%x %d quirks %d\n",
457 		dev->bus, dev->vendor, dev->product, dev->version, quirks);
458 
459 	if (quirks & HID_BATTERY_QUIRK_IGNORE)
460 		return 0;
461 
462 	psy_desc = kzalloc(sizeof(*psy_desc), GFP_KERNEL);
463 	if (!psy_desc)
464 		return -ENOMEM;
465 
466 	psy_desc->name = kasprintf(GFP_KERNEL, "hid-%s-battery",
467 				   strlen(dev->uniq) ?
468 					dev->uniq : dev_name(&dev->dev));
469 	if (!psy_desc->name) {
470 		error = -ENOMEM;
471 		goto err_free_mem;
472 	}
473 
474 	psy_desc->type = POWER_SUPPLY_TYPE_BATTERY;
475 	psy_desc->properties = hidinput_battery_props;
476 	psy_desc->num_properties = ARRAY_SIZE(hidinput_battery_props);
477 	psy_desc->use_for_apm = 0;
478 	psy_desc->get_property = hidinput_get_battery_property;
479 
480 	min = field->logical_minimum;
481 	max = field->logical_maximum;
482 
483 	if (quirks & HID_BATTERY_QUIRK_PERCENT) {
484 		min = 0;
485 		max = 100;
486 	}
487 
488 	if (quirks & HID_BATTERY_QUIRK_FEATURE)
489 		report_type = HID_FEATURE_REPORT;
490 
491 	dev->battery_min = min;
492 	dev->battery_max = max;
493 	dev->battery_report_type = report_type;
494 	dev->battery_report_id = field->report->id;
495 
496 	/*
497 	 * Stylus is normally not connected to the device and thus we
498 	 * can't query the device and get meaningful battery strength.
499 	 * We have to wait for the device to report it on its own.
500 	 */
501 	dev->battery_avoid_query = report_type == HID_INPUT_REPORT &&
502 				   field->physical == HID_DG_STYLUS;
503 
504 	dev->battery = power_supply_register(&dev->dev, psy_desc, &psy_cfg);
505 	if (IS_ERR(dev->battery)) {
506 		error = PTR_ERR(dev->battery);
507 		hid_warn(dev, "can't register power supply: %d\n", error);
508 		goto err_free_name;
509 	}
510 
511 	power_supply_powers(dev->battery, &dev->dev);
512 	return 0;
513 
514 err_free_name:
515 	kfree(psy_desc->name);
516 err_free_mem:
517 	kfree(psy_desc);
518 	dev->battery = NULL;
519 	return error;
520 }
521 
522 static void hidinput_cleanup_battery(struct hid_device *dev)
523 {
524 	const struct power_supply_desc *psy_desc;
525 
526 	if (!dev->battery)
527 		return;
528 
529 	psy_desc = dev->battery->desc;
530 	power_supply_unregister(dev->battery);
531 	kfree(psy_desc->name);
532 	kfree(psy_desc);
533 	dev->battery = NULL;
534 }
535 
536 static void hidinput_update_battery(struct hid_device *dev, int value)
537 {
538 	int capacity;
539 
540 	if (!dev->battery)
541 		return;
542 
543 	if (value == 0 || value < dev->battery_min || value > dev->battery_max)
544 		return;
545 
546 	capacity = hidinput_scale_battery_capacity(dev, value);
547 
548 	if (dev->battery_status != HID_BATTERY_REPORTED ||
549 	    capacity != dev->battery_capacity) {
550 		dev->battery_capacity = capacity;
551 		dev->battery_status = HID_BATTERY_REPORTED;
552 		power_supply_changed(dev->battery);
553 	}
554 }
555 #else  /* !CONFIG_HID_BATTERY_STRENGTH */
556 static int hidinput_setup_battery(struct hid_device *dev, unsigned report_type,
557 				  struct hid_field *field)
558 {
559 	return 0;
560 }
561 
562 static void hidinput_cleanup_battery(struct hid_device *dev)
563 {
564 }
565 
566 static void hidinput_update_battery(struct hid_device *dev, int value)
567 {
568 }
569 #endif	/* CONFIG_HID_BATTERY_STRENGTH */
570 
571 static void hidinput_configure_usage(struct hid_input *hidinput, struct hid_field *field,
572 				     struct hid_usage *usage)
573 {
574 	struct input_dev *input = hidinput->input;
575 	struct hid_device *device = input_get_drvdata(input);
576 	int max = 0, code;
577 	unsigned long *bit = NULL;
578 
579 	field->hidinput = hidinput;
580 
581 	if (field->flags & HID_MAIN_ITEM_CONSTANT)
582 		goto ignore;
583 
584 	/* Ignore if report count is out of bounds. */
585 	if (field->report_count < 1)
586 		goto ignore;
587 
588 	/* only LED usages are supported in output fields */
589 	if (field->report_type == HID_OUTPUT_REPORT &&
590 			(usage->hid & HID_USAGE_PAGE) != HID_UP_LED) {
591 		goto ignore;
592 	}
593 
594 	if (device->driver->input_mapping) {
595 		int ret = device->driver->input_mapping(device, hidinput, field,
596 				usage, &bit, &max);
597 		if (ret > 0)
598 			goto mapped;
599 		if (ret < 0)
600 			goto ignore;
601 	}
602 
603 	switch (usage->hid & HID_USAGE_PAGE) {
604 	case HID_UP_UNDEFINED:
605 		goto ignore;
606 
607 	case HID_UP_KEYBOARD:
608 		set_bit(EV_REP, input->evbit);
609 
610 		if ((usage->hid & HID_USAGE) < 256) {
611 			if (!hid_keyboard[usage->hid & HID_USAGE]) goto ignore;
612 			map_key_clear(hid_keyboard[usage->hid & HID_USAGE]);
613 		} else
614 			map_key(KEY_UNKNOWN);
615 
616 		break;
617 
618 	case HID_UP_BUTTON:
619 		code = ((usage->hid - 1) & HID_USAGE);
620 
621 		switch (field->application) {
622 		case HID_GD_MOUSE:
623 		case HID_GD_POINTER:  code += BTN_MOUSE; break;
624 		case HID_GD_JOYSTICK:
625 				if (code <= 0xf)
626 					code += BTN_JOYSTICK;
627 				else
628 					code += BTN_TRIGGER_HAPPY - 0x10;
629 				break;
630 		case HID_GD_GAMEPAD:
631 				if (code <= 0xf)
632 					code += BTN_GAMEPAD;
633 				else
634 					code += BTN_TRIGGER_HAPPY - 0x10;
635 				break;
636 		default:
637 			switch (field->physical) {
638 			case HID_GD_MOUSE:
639 			case HID_GD_POINTER:  code += BTN_MOUSE; break;
640 			case HID_GD_JOYSTICK: code += BTN_JOYSTICK; break;
641 			case HID_GD_GAMEPAD:  code += BTN_GAMEPAD; break;
642 			default:              code += BTN_MISC;
643 			}
644 		}
645 
646 		map_key(code);
647 		break;
648 
649 	case HID_UP_SIMULATION:
650 		switch (usage->hid & 0xffff) {
651 		case 0xba: map_abs(ABS_RUDDER);   break;
652 		case 0xbb: map_abs(ABS_THROTTLE); break;
653 		case 0xc4: map_abs(ABS_GAS);      break;
654 		case 0xc5: map_abs(ABS_BRAKE);    break;
655 		case 0xc8: map_abs(ABS_WHEEL);    break;
656 		default:   goto ignore;
657 		}
658 		break;
659 
660 	case HID_UP_GENDESK:
661 		if ((usage->hid & 0xf0) == 0x80) {	/* SystemControl */
662 			switch (usage->hid & 0xf) {
663 			case 0x1: map_key_clear(KEY_POWER);  break;
664 			case 0x2: map_key_clear(KEY_SLEEP);  break;
665 			case 0x3: map_key_clear(KEY_WAKEUP); break;
666 			case 0x4: map_key_clear(KEY_CONTEXT_MENU); break;
667 			case 0x5: map_key_clear(KEY_MENU); break;
668 			case 0x6: map_key_clear(KEY_PROG1); break;
669 			case 0x7: map_key_clear(KEY_HELP); break;
670 			case 0x8: map_key_clear(KEY_EXIT); break;
671 			case 0x9: map_key_clear(KEY_SELECT); break;
672 			case 0xa: map_key_clear(KEY_RIGHT); break;
673 			case 0xb: map_key_clear(KEY_LEFT); break;
674 			case 0xc: map_key_clear(KEY_UP); break;
675 			case 0xd: map_key_clear(KEY_DOWN); break;
676 			case 0xe: map_key_clear(KEY_POWER2); break;
677 			case 0xf: map_key_clear(KEY_RESTART); break;
678 			default: goto unknown;
679 			}
680 			break;
681 		}
682 
683 		/*
684 		 * Some lazy vendors declare 255 usages for System Control,
685 		 * leading to the creation of ABS_X|Y axis and too many others.
686 		 * It wouldn't be a problem if joydev doesn't consider the
687 		 * device as a joystick then.
688 		 */
689 		if (field->application == HID_GD_SYSTEM_CONTROL)
690 			goto ignore;
691 
692 		if ((usage->hid & 0xf0) == 0x90) {	/* D-pad */
693 			switch (usage->hid) {
694 			case HID_GD_UP:	   usage->hat_dir = 1; break;
695 			case HID_GD_DOWN:  usage->hat_dir = 5; break;
696 			case HID_GD_RIGHT: usage->hat_dir = 3; break;
697 			case HID_GD_LEFT:  usage->hat_dir = 7; break;
698 			default: goto unknown;
699 			}
700 			if (field->dpad) {
701 				map_abs(field->dpad);
702 				goto ignore;
703 			}
704 			map_abs(ABS_HAT0X);
705 			break;
706 		}
707 
708 		switch (usage->hid) {
709 		/* These usage IDs map directly to the usage codes. */
710 		case HID_GD_X: case HID_GD_Y: case HID_GD_Z:
711 		case HID_GD_RX: case HID_GD_RY: case HID_GD_RZ:
712 			if (field->flags & HID_MAIN_ITEM_RELATIVE)
713 				map_rel(usage->hid & 0xf);
714 			else
715 				map_abs_clear(usage->hid & 0xf);
716 			break;
717 
718 		case HID_GD_WHEEL:
719 			if (field->flags & HID_MAIN_ITEM_RELATIVE) {
720 				set_bit(REL_WHEEL, input->relbit);
721 				map_rel(REL_WHEEL_HI_RES);
722 			} else {
723 				map_abs(usage->hid & 0xf);
724 			}
725 			break;
726 		case HID_GD_SLIDER: case HID_GD_DIAL:
727 			if (field->flags & HID_MAIN_ITEM_RELATIVE)
728 				map_rel(usage->hid & 0xf);
729 			else
730 				map_abs(usage->hid & 0xf);
731 			break;
732 
733 		case HID_GD_HATSWITCH:
734 			usage->hat_min = field->logical_minimum;
735 			usage->hat_max = field->logical_maximum;
736 			map_abs(ABS_HAT0X);
737 			break;
738 
739 		case HID_GD_START:	map_key_clear(BTN_START);	break;
740 		case HID_GD_SELECT:	map_key_clear(BTN_SELECT);	break;
741 
742 		case HID_GD_RFKILL_BTN:
743 			/* MS wireless radio ctl extension, also check CA */
744 			if (field->application == HID_GD_WIRELESS_RADIO_CTLS) {
745 				map_key_clear(KEY_RFKILL);
746 				/* We need to simulate the btn release */
747 				field->flags |= HID_MAIN_ITEM_RELATIVE;
748 				break;
749 			}
750 
751 		default: goto unknown;
752 		}
753 
754 		break;
755 
756 	case HID_UP_LED:
757 		switch (usage->hid & 0xffff) {		      /* HID-Value:                   */
758 		case 0x01:  map_led (LED_NUML);     break;    /*   "Num Lock"                 */
759 		case 0x02:  map_led (LED_CAPSL);    break;    /*   "Caps Lock"                */
760 		case 0x03:  map_led (LED_SCROLLL);  break;    /*   "Scroll Lock"              */
761 		case 0x04:  map_led (LED_COMPOSE);  break;    /*   "Compose"                  */
762 		case 0x05:  map_led (LED_KANA);     break;    /*   "Kana"                     */
763 		case 0x27:  map_led (LED_SLEEP);    break;    /*   "Stand-By"                 */
764 		case 0x4c:  map_led (LED_SUSPEND);  break;    /*   "System Suspend"           */
765 		case 0x09:  map_led (LED_MUTE);     break;    /*   "Mute"                     */
766 		case 0x4b:  map_led (LED_MISC);     break;    /*   "Generic Indicator"        */
767 		case 0x19:  map_led (LED_MAIL);     break;    /*   "Message Waiting"          */
768 		case 0x4d:  map_led (LED_CHARGING); break;    /*   "External Power Connected" */
769 
770 		default: goto ignore;
771 		}
772 		break;
773 
774 	case HID_UP_DIGITIZER:
775 		if ((field->application & 0xff) == 0x01) /* Digitizer */
776 			__set_bit(INPUT_PROP_POINTER, input->propbit);
777 		else if ((field->application & 0xff) == 0x02) /* Pen */
778 			__set_bit(INPUT_PROP_DIRECT, input->propbit);
779 
780 		switch (usage->hid & 0xff) {
781 		case 0x00: /* Undefined */
782 			goto ignore;
783 
784 		case 0x30: /* TipPressure */
785 			if (!test_bit(BTN_TOUCH, input->keybit)) {
786 				device->quirks |= HID_QUIRK_NOTOUCH;
787 				set_bit(EV_KEY, input->evbit);
788 				set_bit(BTN_TOUCH, input->keybit);
789 			}
790 			map_abs_clear(ABS_PRESSURE);
791 			break;
792 
793 		case 0x32: /* InRange */
794 			switch (field->physical & 0xff) {
795 			case 0x21: map_key(BTN_TOOL_MOUSE); break;
796 			case 0x22: map_key(BTN_TOOL_FINGER); break;
797 			default: map_key(BTN_TOOL_PEN); break;
798 			}
799 			break;
800 
801 		case 0x3b: /* Battery Strength */
802 			hidinput_setup_battery(device, HID_INPUT_REPORT, field);
803 			usage->type = EV_PWR;
804 			goto ignore;
805 
806 		case 0x3c: /* Invert */
807 			map_key_clear(BTN_TOOL_RUBBER);
808 			break;
809 
810 		case 0x3d: /* X Tilt */
811 			map_abs_clear(ABS_TILT_X);
812 			break;
813 
814 		case 0x3e: /* Y Tilt */
815 			map_abs_clear(ABS_TILT_Y);
816 			break;
817 
818 		case 0x33: /* Touch */
819 		case 0x42: /* TipSwitch */
820 		case 0x43: /* TipSwitch2 */
821 			device->quirks &= ~HID_QUIRK_NOTOUCH;
822 			map_key_clear(BTN_TOUCH);
823 			break;
824 
825 		case 0x44: /* BarrelSwitch */
826 			map_key_clear(BTN_STYLUS);
827 			break;
828 
829 		case 0x45: /* ERASER */
830 			/*
831 			 * This event is reported when eraser tip touches the surface.
832 			 * Actual eraser (BTN_TOOL_RUBBER) is set by Invert usage when
833 			 * tool gets in proximity.
834 			 */
835 			map_key_clear(BTN_TOUCH);
836 			break;
837 
838 		case 0x46: /* TabletPick */
839 		case 0x5a: /* SecondaryBarrelSwitch */
840 			map_key_clear(BTN_STYLUS2);
841 			break;
842 
843 		case 0x5b: /* TransducerSerialNumber */
844 			usage->type = EV_MSC;
845 			usage->code = MSC_SERIAL;
846 			bit = input->mscbit;
847 			max = MSC_MAX;
848 			break;
849 
850 		default:  goto unknown;
851 		}
852 		break;
853 
854 	case HID_UP_TELEPHONY:
855 		switch (usage->hid & HID_USAGE) {
856 		case 0x2f: map_key_clear(KEY_MICMUTE);		break;
857 		case 0xb0: map_key_clear(KEY_NUMERIC_0);	break;
858 		case 0xb1: map_key_clear(KEY_NUMERIC_1);	break;
859 		case 0xb2: map_key_clear(KEY_NUMERIC_2);	break;
860 		case 0xb3: map_key_clear(KEY_NUMERIC_3);	break;
861 		case 0xb4: map_key_clear(KEY_NUMERIC_4);	break;
862 		case 0xb5: map_key_clear(KEY_NUMERIC_5);	break;
863 		case 0xb6: map_key_clear(KEY_NUMERIC_6);	break;
864 		case 0xb7: map_key_clear(KEY_NUMERIC_7);	break;
865 		case 0xb8: map_key_clear(KEY_NUMERIC_8);	break;
866 		case 0xb9: map_key_clear(KEY_NUMERIC_9);	break;
867 		case 0xba: map_key_clear(KEY_NUMERIC_STAR);	break;
868 		case 0xbb: map_key_clear(KEY_NUMERIC_POUND);	break;
869 		case 0xbc: map_key_clear(KEY_NUMERIC_A);	break;
870 		case 0xbd: map_key_clear(KEY_NUMERIC_B);	break;
871 		case 0xbe: map_key_clear(KEY_NUMERIC_C);	break;
872 		case 0xbf: map_key_clear(KEY_NUMERIC_D);	break;
873 		default: goto ignore;
874 		}
875 		break;
876 
877 	case HID_UP_CONSUMER:	/* USB HUT v1.12, pages 75-84 */
878 		switch (usage->hid & HID_USAGE) {
879 		case 0x000: goto ignore;
880 		case 0x030: map_key_clear(KEY_POWER);		break;
881 		case 0x031: map_key_clear(KEY_RESTART);		break;
882 		case 0x032: map_key_clear(KEY_SLEEP);		break;
883 		case 0x034: map_key_clear(KEY_SLEEP);		break;
884 		case 0x035: map_key_clear(KEY_KBDILLUMTOGGLE);	break;
885 		case 0x036: map_key_clear(BTN_MISC);		break;
886 
887 		case 0x040: map_key_clear(KEY_MENU);		break; /* Menu */
888 		case 0x041: map_key_clear(KEY_SELECT);		break; /* Menu Pick */
889 		case 0x042: map_key_clear(KEY_UP);		break; /* Menu Up */
890 		case 0x043: map_key_clear(KEY_DOWN);		break; /* Menu Down */
891 		case 0x044: map_key_clear(KEY_LEFT);		break; /* Menu Left */
892 		case 0x045: map_key_clear(KEY_RIGHT);		break; /* Menu Right */
893 		case 0x046: map_key_clear(KEY_ESC);		break; /* Menu Escape */
894 		case 0x047: map_key_clear(KEY_KPPLUS);		break; /* Menu Value Increase */
895 		case 0x048: map_key_clear(KEY_KPMINUS);		break; /* Menu Value Decrease */
896 
897 		case 0x060: map_key_clear(KEY_INFO);		break; /* Data On Screen */
898 		case 0x061: map_key_clear(KEY_SUBTITLE);	break; /* Closed Caption */
899 		case 0x063: map_key_clear(KEY_VCR);		break; /* VCR/TV */
900 		case 0x065: map_key_clear(KEY_CAMERA);		break; /* Snapshot */
901 		case 0x069: map_key_clear(KEY_RED);		break;
902 		case 0x06a: map_key_clear(KEY_GREEN);		break;
903 		case 0x06b: map_key_clear(KEY_BLUE);		break;
904 		case 0x06c: map_key_clear(KEY_YELLOW);		break;
905 		case 0x06d: map_key_clear(KEY_ZOOM);		break;
906 
907 		case 0x06f: map_key_clear(KEY_BRIGHTNESSUP);		break;
908 		case 0x070: map_key_clear(KEY_BRIGHTNESSDOWN);		break;
909 		case 0x072: map_key_clear(KEY_BRIGHTNESS_TOGGLE);	break;
910 		case 0x073: map_key_clear(KEY_BRIGHTNESS_MIN);		break;
911 		case 0x074: map_key_clear(KEY_BRIGHTNESS_MAX);		break;
912 		case 0x075: map_key_clear(KEY_BRIGHTNESS_AUTO);		break;
913 
914 		case 0x082: map_key_clear(KEY_VIDEO_NEXT);	break;
915 		case 0x083: map_key_clear(KEY_LAST);		break;
916 		case 0x084: map_key_clear(KEY_ENTER);		break;
917 		case 0x088: map_key_clear(KEY_PC);		break;
918 		case 0x089: map_key_clear(KEY_TV);		break;
919 		case 0x08a: map_key_clear(KEY_WWW);		break;
920 		case 0x08b: map_key_clear(KEY_DVD);		break;
921 		case 0x08c: map_key_clear(KEY_PHONE);		break;
922 		case 0x08d: map_key_clear(KEY_PROGRAM);		break;
923 		case 0x08e: map_key_clear(KEY_VIDEOPHONE);	break;
924 		case 0x08f: map_key_clear(KEY_GAMES);		break;
925 		case 0x090: map_key_clear(KEY_MEMO);		break;
926 		case 0x091: map_key_clear(KEY_CD);		break;
927 		case 0x092: map_key_clear(KEY_VCR);		break;
928 		case 0x093: map_key_clear(KEY_TUNER);		break;
929 		case 0x094: map_key_clear(KEY_EXIT);		break;
930 		case 0x095: map_key_clear(KEY_HELP);		break;
931 		case 0x096: map_key_clear(KEY_TAPE);		break;
932 		case 0x097: map_key_clear(KEY_TV2);		break;
933 		case 0x098: map_key_clear(KEY_SAT);		break;
934 		case 0x09a: map_key_clear(KEY_PVR);		break;
935 
936 		case 0x09c: map_key_clear(KEY_CHANNELUP);	break;
937 		case 0x09d: map_key_clear(KEY_CHANNELDOWN);	break;
938 		case 0x0a0: map_key_clear(KEY_VCR2);		break;
939 
940 		case 0x0b0: map_key_clear(KEY_PLAY);		break;
941 		case 0x0b1: map_key_clear(KEY_PAUSE);		break;
942 		case 0x0b2: map_key_clear(KEY_RECORD);		break;
943 		case 0x0b3: map_key_clear(KEY_FASTFORWARD);	break;
944 		case 0x0b4: map_key_clear(KEY_REWIND);		break;
945 		case 0x0b5: map_key_clear(KEY_NEXTSONG);	break;
946 		case 0x0b6: map_key_clear(KEY_PREVIOUSSONG);	break;
947 		case 0x0b7: map_key_clear(KEY_STOPCD);		break;
948 		case 0x0b8: map_key_clear(KEY_EJECTCD);		break;
949 		case 0x0bc: map_key_clear(KEY_MEDIA_REPEAT);	break;
950 		case 0x0b9: map_key_clear(KEY_SHUFFLE);		break;
951 		case 0x0bf: map_key_clear(KEY_SLOW);		break;
952 
953 		case 0x0cd: map_key_clear(KEY_PLAYPAUSE);	break;
954 		case 0x0cf: map_key_clear(KEY_VOICECOMMAND);	break;
955 		case 0x0e0: map_abs_clear(ABS_VOLUME);		break;
956 		case 0x0e2: map_key_clear(KEY_MUTE);		break;
957 		case 0x0e5: map_key_clear(KEY_BASSBOOST);	break;
958 		case 0x0e9: map_key_clear(KEY_VOLUMEUP);	break;
959 		case 0x0ea: map_key_clear(KEY_VOLUMEDOWN);	break;
960 		case 0x0f5: map_key_clear(KEY_SLOW);		break;
961 
962 		case 0x181: map_key_clear(KEY_BUTTONCONFIG);	break;
963 		case 0x182: map_key_clear(KEY_BOOKMARKS);	break;
964 		case 0x183: map_key_clear(KEY_CONFIG);		break;
965 		case 0x184: map_key_clear(KEY_WORDPROCESSOR);	break;
966 		case 0x185: map_key_clear(KEY_EDITOR);		break;
967 		case 0x186: map_key_clear(KEY_SPREADSHEET);	break;
968 		case 0x187: map_key_clear(KEY_GRAPHICSEDITOR);	break;
969 		case 0x188: map_key_clear(KEY_PRESENTATION);	break;
970 		case 0x189: map_key_clear(KEY_DATABASE);	break;
971 		case 0x18a: map_key_clear(KEY_MAIL);		break;
972 		case 0x18b: map_key_clear(KEY_NEWS);		break;
973 		case 0x18c: map_key_clear(KEY_VOICEMAIL);	break;
974 		case 0x18d: map_key_clear(KEY_ADDRESSBOOK);	break;
975 		case 0x18e: map_key_clear(KEY_CALENDAR);	break;
976 		case 0x18f: map_key_clear(KEY_TASKMANAGER);	break;
977 		case 0x190: map_key_clear(KEY_JOURNAL);		break;
978 		case 0x191: map_key_clear(KEY_FINANCE);		break;
979 		case 0x192: map_key_clear(KEY_CALC);		break;
980 		case 0x193: map_key_clear(KEY_PLAYER);		break;
981 		case 0x194: map_key_clear(KEY_FILE);		break;
982 		case 0x196: map_key_clear(KEY_WWW);		break;
983 		case 0x199: map_key_clear(KEY_CHAT);		break;
984 		case 0x19c: map_key_clear(KEY_LOGOFF);		break;
985 		case 0x19e: map_key_clear(KEY_COFFEE);		break;
986 		case 0x19f: map_key_clear(KEY_CONTROLPANEL);		break;
987 		case 0x1a2: map_key_clear(KEY_APPSELECT);		break;
988 		case 0x1a3: map_key_clear(KEY_NEXT);		break;
989 		case 0x1a4: map_key_clear(KEY_PREVIOUS);	break;
990 		case 0x1a6: map_key_clear(KEY_HELP);		break;
991 		case 0x1a7: map_key_clear(KEY_DOCUMENTS);	break;
992 		case 0x1ab: map_key_clear(KEY_SPELLCHECK);	break;
993 		case 0x1ae: map_key_clear(KEY_KEYBOARD);	break;
994 		case 0x1b1: map_key_clear(KEY_SCREENSAVER);		break;
995 		case 0x1b4: map_key_clear(KEY_FILE);		break;
996 		case 0x1b6: map_key_clear(KEY_IMAGES);		break;
997 		case 0x1b7: map_key_clear(KEY_AUDIO);		break;
998 		case 0x1b8: map_key_clear(KEY_VIDEO);		break;
999 		case 0x1bc: map_key_clear(KEY_MESSENGER);	break;
1000 		case 0x1bd: map_key_clear(KEY_INFO);		break;
1001 		case 0x201: map_key_clear(KEY_NEW);		break;
1002 		case 0x202: map_key_clear(KEY_OPEN);		break;
1003 		case 0x203: map_key_clear(KEY_CLOSE);		break;
1004 		case 0x204: map_key_clear(KEY_EXIT);		break;
1005 		case 0x207: map_key_clear(KEY_SAVE);		break;
1006 		case 0x208: map_key_clear(KEY_PRINT);		break;
1007 		case 0x209: map_key_clear(KEY_PROPS);		break;
1008 		case 0x21a: map_key_clear(KEY_UNDO);		break;
1009 		case 0x21b: map_key_clear(KEY_COPY);		break;
1010 		case 0x21c: map_key_clear(KEY_CUT);		break;
1011 		case 0x21d: map_key_clear(KEY_PASTE);		break;
1012 		case 0x21f: map_key_clear(KEY_FIND);		break;
1013 		case 0x221: map_key_clear(KEY_SEARCH);		break;
1014 		case 0x222: map_key_clear(KEY_GOTO);		break;
1015 		case 0x223: map_key_clear(KEY_HOMEPAGE);	break;
1016 		case 0x224: map_key_clear(KEY_BACK);		break;
1017 		case 0x225: map_key_clear(KEY_FORWARD);		break;
1018 		case 0x226: map_key_clear(KEY_STOP);		break;
1019 		case 0x227: map_key_clear(KEY_REFRESH);		break;
1020 		case 0x22a: map_key_clear(KEY_BOOKMARKS);	break;
1021 		case 0x22d: map_key_clear(KEY_ZOOMIN);		break;
1022 		case 0x22e: map_key_clear(KEY_ZOOMOUT);		break;
1023 		case 0x22f: map_key_clear(KEY_ZOOMRESET);	break;
1024 		case 0x233: map_key_clear(KEY_SCROLLUP);	break;
1025 		case 0x234: map_key_clear(KEY_SCROLLDOWN);	break;
1026 		case 0x238: /* AC Pan */
1027 			set_bit(REL_HWHEEL, input->relbit);
1028 			map_rel(REL_HWHEEL_HI_RES);
1029 			break;
1030 		case 0x23d: map_key_clear(KEY_EDIT);		break;
1031 		case 0x25f: map_key_clear(KEY_CANCEL);		break;
1032 		case 0x269: map_key_clear(KEY_INSERT);		break;
1033 		case 0x26a: map_key_clear(KEY_DELETE);		break;
1034 		case 0x279: map_key_clear(KEY_REDO);		break;
1035 
1036 		case 0x289: map_key_clear(KEY_REPLY);		break;
1037 		case 0x28b: map_key_clear(KEY_FORWARDMAIL);	break;
1038 		case 0x28c: map_key_clear(KEY_SEND);		break;
1039 
1040 		case 0x2c7: map_key_clear(KEY_KBDINPUTASSIST_PREV);		break;
1041 		case 0x2c8: map_key_clear(KEY_KBDINPUTASSIST_NEXT);		break;
1042 		case 0x2c9: map_key_clear(KEY_KBDINPUTASSIST_PREVGROUP);		break;
1043 		case 0x2ca: map_key_clear(KEY_KBDINPUTASSIST_NEXTGROUP);		break;
1044 		case 0x2cb: map_key_clear(KEY_KBDINPUTASSIST_ACCEPT);	break;
1045 		case 0x2cc: map_key_clear(KEY_KBDINPUTASSIST_CANCEL);	break;
1046 
1047 		default: map_key_clear(KEY_UNKNOWN);
1048 		}
1049 		break;
1050 
1051 	case HID_UP_GENDEVCTRLS:
1052 		switch (usage->hid) {
1053 		case HID_DC_BATTERYSTRENGTH:
1054 			hidinput_setup_battery(device, HID_INPUT_REPORT, field);
1055 			usage->type = EV_PWR;
1056 			goto ignore;
1057 		}
1058 		goto unknown;
1059 
1060 	case HID_UP_HPVENDOR:	/* Reported on a Dutch layout HP5308 */
1061 		set_bit(EV_REP, input->evbit);
1062 		switch (usage->hid & HID_USAGE) {
1063 		case 0x021: map_key_clear(KEY_PRINT);           break;
1064 		case 0x070: map_key_clear(KEY_HP);		break;
1065 		case 0x071: map_key_clear(KEY_CAMERA);		break;
1066 		case 0x072: map_key_clear(KEY_SOUND);		break;
1067 		case 0x073: map_key_clear(KEY_QUESTION);	break;
1068 		case 0x080: map_key_clear(KEY_EMAIL);		break;
1069 		case 0x081: map_key_clear(KEY_CHAT);		break;
1070 		case 0x082: map_key_clear(KEY_SEARCH);		break;
1071 		case 0x083: map_key_clear(KEY_CONNECT);	        break;
1072 		case 0x084: map_key_clear(KEY_FINANCE);		break;
1073 		case 0x085: map_key_clear(KEY_SPORT);		break;
1074 		case 0x086: map_key_clear(KEY_SHOP);	        break;
1075 		default:    goto ignore;
1076 		}
1077 		break;
1078 
1079 	case HID_UP_HPVENDOR2:
1080 		set_bit(EV_REP, input->evbit);
1081 		switch (usage->hid & HID_USAGE) {
1082 		case 0x001: map_key_clear(KEY_MICMUTE);		break;
1083 		case 0x003: map_key_clear(KEY_BRIGHTNESSDOWN);	break;
1084 		case 0x004: map_key_clear(KEY_BRIGHTNESSUP);	break;
1085 		default:    goto ignore;
1086 		}
1087 		break;
1088 
1089 	case HID_UP_MSVENDOR:
1090 		goto ignore;
1091 
1092 	case HID_UP_CUSTOM: /* Reported on Logitech and Apple USB keyboards */
1093 		set_bit(EV_REP, input->evbit);
1094 		goto ignore;
1095 
1096 	case HID_UP_LOGIVENDOR:
1097 		/* intentional fallback */
1098 	case HID_UP_LOGIVENDOR2:
1099 		/* intentional fallback */
1100 	case HID_UP_LOGIVENDOR3:
1101 		goto ignore;
1102 
1103 	case HID_UP_PID:
1104 		switch (usage->hid & HID_USAGE) {
1105 		case 0xa4: map_key_clear(BTN_DEAD);	break;
1106 		default: goto ignore;
1107 		}
1108 		break;
1109 
1110 	default:
1111 	unknown:
1112 		if (field->report_size == 1) {
1113 			if (field->report->type == HID_OUTPUT_REPORT) {
1114 				map_led(LED_MISC);
1115 				break;
1116 			}
1117 			map_key(BTN_MISC);
1118 			break;
1119 		}
1120 		if (field->flags & HID_MAIN_ITEM_RELATIVE) {
1121 			map_rel(REL_MISC);
1122 			break;
1123 		}
1124 		map_abs(ABS_MISC);
1125 		break;
1126 	}
1127 
1128 mapped:
1129 	if (device->driver->input_mapped && device->driver->input_mapped(device,
1130 				hidinput, field, usage, &bit, &max) < 0)
1131 		goto ignore;
1132 
1133 	set_bit(usage->type, input->evbit);
1134 
1135 	/*
1136 	 * This part is *really* controversial:
1137 	 * - HID aims at being generic so we should do our best to export
1138 	 *   all incoming events
1139 	 * - HID describes what events are, so there is no reason for ABS_X
1140 	 *   to be mapped to ABS_Y
1141 	 * - HID is using *_MISC+N as a default value, but nothing prevents
1142 	 *   *_MISC+N to overwrite a legitimate even, which confuses userspace
1143 	 *   (for instance ABS_MISC + 7 is ABS_MT_SLOT, which has a different
1144 	 *   processing)
1145 	 *
1146 	 * If devices still want to use this (at their own risk), they will
1147 	 * have to use the quirk HID_QUIRK_INCREMENT_USAGE_ON_DUPLICATE, but
1148 	 * the default should be a reliable mapping.
1149 	 */
1150 	while (usage->code <= max && test_and_set_bit(usage->code, bit)) {
1151 		if (device->quirks & HID_QUIRK_INCREMENT_USAGE_ON_DUPLICATE) {
1152 			usage->code = find_next_zero_bit(bit,
1153 							 max + 1,
1154 							 usage->code);
1155 		} else {
1156 			device->status |= HID_STAT_DUP_DETECTED;
1157 			goto ignore;
1158 		}
1159 	}
1160 
1161 	if (usage->code > max)
1162 		goto ignore;
1163 
1164 	if (usage->type == EV_ABS) {
1165 
1166 		int a = field->logical_minimum;
1167 		int b = field->logical_maximum;
1168 
1169 		if ((device->quirks & HID_QUIRK_BADPAD) && (usage->code == ABS_X || usage->code == ABS_Y)) {
1170 			a = field->logical_minimum = 0;
1171 			b = field->logical_maximum = 255;
1172 		}
1173 
1174 		if (field->application == HID_GD_GAMEPAD || field->application == HID_GD_JOYSTICK)
1175 			input_set_abs_params(input, usage->code, a, b, (b - a) >> 8, (b - a) >> 4);
1176 		else	input_set_abs_params(input, usage->code, a, b, 0, 0);
1177 
1178 		input_abs_set_res(input, usage->code,
1179 				  hidinput_calc_abs_res(field, usage->code));
1180 
1181 		/* use a larger default input buffer for MT devices */
1182 		if (usage->code == ABS_MT_POSITION_X && input->hint_events_per_packet == 0)
1183 			input_set_events_per_packet(input, 60);
1184 	}
1185 
1186 	if (usage->type == EV_ABS &&
1187 	    (usage->hat_min < usage->hat_max || usage->hat_dir)) {
1188 		int i;
1189 		for (i = usage->code; i < usage->code + 2 && i <= max; i++) {
1190 			input_set_abs_params(input, i, -1, 1, 0, 0);
1191 			set_bit(i, input->absbit);
1192 		}
1193 		if (usage->hat_dir && !field->dpad)
1194 			field->dpad = usage->code;
1195 	}
1196 
1197 	/* for those devices which produce Consumer volume usage as relative,
1198 	 * we emulate pressing volumeup/volumedown appropriate number of times
1199 	 * in hidinput_hid_event()
1200 	 */
1201 	if ((usage->type == EV_ABS) && (field->flags & HID_MAIN_ITEM_RELATIVE) &&
1202 			(usage->code == ABS_VOLUME)) {
1203 		set_bit(KEY_VOLUMEUP, input->keybit);
1204 		set_bit(KEY_VOLUMEDOWN, input->keybit);
1205 	}
1206 
1207 	if (usage->type == EV_KEY) {
1208 		set_bit(EV_MSC, input->evbit);
1209 		set_bit(MSC_SCAN, input->mscbit);
1210 	}
1211 
1212 ignore:
1213 	return;
1214 
1215 }
1216 
1217 static void hidinput_handle_scroll(struct hid_usage *usage,
1218 				   struct input_dev *input,
1219 				   __s32 value)
1220 {
1221 	int code;
1222 	int hi_res, lo_res;
1223 
1224 	if (value == 0)
1225 		return;
1226 
1227 	if (usage->code == REL_WHEEL_HI_RES)
1228 		code = REL_WHEEL;
1229 	else
1230 		code = REL_HWHEEL;
1231 
1232 	/*
1233 	 * Windows reports one wheel click as value 120. Where a high-res
1234 	 * scroll wheel is present, a fraction of 120 is reported instead.
1235 	 * Our REL_WHEEL_HI_RES axis does the same because all HW must
1236 	 * adhere to the 120 expectation.
1237 	 */
1238 	hi_res = value * 120/usage->resolution_multiplier;
1239 
1240 	usage->wheel_accumulated += hi_res;
1241 	lo_res = usage->wheel_accumulated/120;
1242 	if (lo_res)
1243 		usage->wheel_accumulated -= lo_res * 120;
1244 
1245 	input_event(input, EV_REL, code, lo_res);
1246 	input_event(input, EV_REL, usage->code, hi_res);
1247 }
1248 
1249 void hidinput_hid_event(struct hid_device *hid, struct hid_field *field, struct hid_usage *usage, __s32 value)
1250 {
1251 	struct input_dev *input;
1252 	unsigned *quirks = &hid->quirks;
1253 
1254 	if (!usage->type)
1255 		return;
1256 
1257 	if (usage->type == EV_PWR) {
1258 		hidinput_update_battery(hid, value);
1259 		return;
1260 	}
1261 
1262 	if (!field->hidinput)
1263 		return;
1264 
1265 	input = field->hidinput->input;
1266 
1267 	if (usage->hat_min < usage->hat_max || usage->hat_dir) {
1268 		int hat_dir = usage->hat_dir;
1269 		if (!hat_dir)
1270 			hat_dir = (value - usage->hat_min) * 8 / (usage->hat_max - usage->hat_min + 1) + 1;
1271 		if (hat_dir < 0 || hat_dir > 8) hat_dir = 0;
1272 		input_event(input, usage->type, usage->code    , hid_hat_to_axis[hat_dir].x);
1273 		input_event(input, usage->type, usage->code + 1, hid_hat_to_axis[hat_dir].y);
1274 		return;
1275 	}
1276 
1277 	if (usage->hid == (HID_UP_DIGITIZER | 0x003c)) { /* Invert */
1278 		*quirks = value ? (*quirks | HID_QUIRK_INVERT) : (*quirks & ~HID_QUIRK_INVERT);
1279 		return;
1280 	}
1281 
1282 	if (usage->hid == (HID_UP_DIGITIZER | 0x0032)) { /* InRange */
1283 		if (value) {
1284 			input_event(input, usage->type, (*quirks & HID_QUIRK_INVERT) ? BTN_TOOL_RUBBER : usage->code, 1);
1285 			return;
1286 		}
1287 		input_event(input, usage->type, usage->code, 0);
1288 		input_event(input, usage->type, BTN_TOOL_RUBBER, 0);
1289 		return;
1290 	}
1291 
1292 	if (usage->hid == (HID_UP_DIGITIZER | 0x0030) && (*quirks & HID_QUIRK_NOTOUCH)) { /* Pressure */
1293 		int a = field->logical_minimum;
1294 		int b = field->logical_maximum;
1295 		input_event(input, EV_KEY, BTN_TOUCH, value > a + ((b - a) >> 3));
1296 	}
1297 
1298 	if (usage->hid == (HID_UP_PID | 0x83UL)) { /* Simultaneous Effects Max */
1299 		dbg_hid("Maximum Effects - %d\n",value);
1300 		return;
1301 	}
1302 
1303 	if (usage->hid == (HID_UP_PID | 0x7fUL)) {
1304 		dbg_hid("PID Pool Report\n");
1305 		return;
1306 	}
1307 
1308 	if ((usage->type == EV_KEY) && (usage->code == 0)) /* Key 0 is "unassigned", not KEY_UNKNOWN */
1309 		return;
1310 
1311 	if ((usage->type == EV_REL) && (usage->code == REL_WHEEL_HI_RES ||
1312 					usage->code == REL_HWHEEL_HI_RES)) {
1313 		hidinput_handle_scroll(usage, input, value);
1314 		return;
1315 	}
1316 
1317 	if ((usage->type == EV_ABS) && (field->flags & HID_MAIN_ITEM_RELATIVE) &&
1318 			(usage->code == ABS_VOLUME)) {
1319 		int count = abs(value);
1320 		int direction = value > 0 ? KEY_VOLUMEUP : KEY_VOLUMEDOWN;
1321 		int i;
1322 
1323 		for (i = 0; i < count; i++) {
1324 			input_event(input, EV_KEY, direction, 1);
1325 			input_sync(input);
1326 			input_event(input, EV_KEY, direction, 0);
1327 			input_sync(input);
1328 		}
1329 		return;
1330 	}
1331 
1332 	/*
1333 	 * Ignore out-of-range values as per HID specification,
1334 	 * section 5.10 and 6.2.25, when NULL state bit is present.
1335 	 * When it's not, clamp the value to match Microsoft's input
1336 	 * driver as mentioned in "Required HID usages for digitizers":
1337 	 * https://msdn.microsoft.com/en-us/library/windows/hardware/dn672278(v=vs.85).asp
1338 	 *
1339 	 * The logical_minimum < logical_maximum check is done so that we
1340 	 * don't unintentionally discard values sent by devices which
1341 	 * don't specify logical min and max.
1342 	 */
1343 	if ((field->flags & HID_MAIN_ITEM_VARIABLE) &&
1344 	    (field->logical_minimum < field->logical_maximum)) {
1345 		if (field->flags & HID_MAIN_ITEM_NULL_STATE &&
1346 		    (value < field->logical_minimum ||
1347 		     value > field->logical_maximum)) {
1348 			dbg_hid("Ignoring out-of-range value %x\n", value);
1349 			return;
1350 		}
1351 		value = clamp(value,
1352 			      field->logical_minimum,
1353 			      field->logical_maximum);
1354 	}
1355 
1356 	/*
1357 	 * Ignore reports for absolute data if the data didn't change. This is
1358 	 * not only an optimization but also fixes 'dead' key reports. Some
1359 	 * RollOver implementations for localized keys (like BACKSLASH/PIPE; HID
1360 	 * 0x31 and 0x32) report multiple keys, even though a localized keyboard
1361 	 * can only have one of them physically available. The 'dead' keys
1362 	 * report constant 0. As all map to the same keycode, they'd confuse
1363 	 * the input layer. If we filter the 'dead' keys on the HID level, we
1364 	 * skip the keycode translation and only forward real events.
1365 	 */
1366 	if (!(field->flags & (HID_MAIN_ITEM_RELATIVE |
1367 	                      HID_MAIN_ITEM_BUFFERED_BYTE)) &&
1368 			      (field->flags & HID_MAIN_ITEM_VARIABLE) &&
1369 	    usage->usage_index < field->maxusage &&
1370 	    value == field->value[usage->usage_index])
1371 		return;
1372 
1373 	/* report the usage code as scancode if the key status has changed */
1374 	if (usage->type == EV_KEY &&
1375 	    (!test_bit(usage->code, input->key)) == value)
1376 		input_event(input, EV_MSC, MSC_SCAN, usage->hid);
1377 
1378 	input_event(input, usage->type, usage->code, value);
1379 
1380 	if ((field->flags & HID_MAIN_ITEM_RELATIVE) &&
1381 	    usage->type == EV_KEY && value) {
1382 		input_sync(input);
1383 		input_event(input, usage->type, usage->code, 0);
1384 	}
1385 }
1386 
1387 void hidinput_report_event(struct hid_device *hid, struct hid_report *report)
1388 {
1389 	struct hid_input *hidinput;
1390 
1391 	if (hid->quirks & HID_QUIRK_NO_INPUT_SYNC)
1392 		return;
1393 
1394 	list_for_each_entry(hidinput, &hid->inputs, list)
1395 		input_sync(hidinput->input);
1396 }
1397 EXPORT_SYMBOL_GPL(hidinput_report_event);
1398 
1399 int hidinput_find_field(struct hid_device *hid, unsigned int type, unsigned int code, struct hid_field **field)
1400 {
1401 	struct hid_report *report;
1402 	int i, j;
1403 
1404 	list_for_each_entry(report, &hid->report_enum[HID_OUTPUT_REPORT].report_list, list) {
1405 		for (i = 0; i < report->maxfield; i++) {
1406 			*field = report->field[i];
1407 			for (j = 0; j < (*field)->maxusage; j++)
1408 				if ((*field)->usage[j].type == type && (*field)->usage[j].code == code)
1409 					return j;
1410 		}
1411 	}
1412 	return -1;
1413 }
1414 EXPORT_SYMBOL_GPL(hidinput_find_field);
1415 
1416 struct hid_field *hidinput_get_led_field(struct hid_device *hid)
1417 {
1418 	struct hid_report *report;
1419 	struct hid_field *field;
1420 	int i, j;
1421 
1422 	list_for_each_entry(report,
1423 			    &hid->report_enum[HID_OUTPUT_REPORT].report_list,
1424 			    list) {
1425 		for (i = 0; i < report->maxfield; i++) {
1426 			field = report->field[i];
1427 			for (j = 0; j < field->maxusage; j++)
1428 				if (field->usage[j].type == EV_LED)
1429 					return field;
1430 		}
1431 	}
1432 	return NULL;
1433 }
1434 EXPORT_SYMBOL_GPL(hidinput_get_led_field);
1435 
1436 unsigned int hidinput_count_leds(struct hid_device *hid)
1437 {
1438 	struct hid_report *report;
1439 	struct hid_field *field;
1440 	int i, j;
1441 	unsigned int count = 0;
1442 
1443 	list_for_each_entry(report,
1444 			    &hid->report_enum[HID_OUTPUT_REPORT].report_list,
1445 			    list) {
1446 		for (i = 0; i < report->maxfield; i++) {
1447 			field = report->field[i];
1448 			for (j = 0; j < field->maxusage; j++)
1449 				if (field->usage[j].type == EV_LED &&
1450 				    field->value[j])
1451 					count += 1;
1452 		}
1453 	}
1454 	return count;
1455 }
1456 EXPORT_SYMBOL_GPL(hidinput_count_leds);
1457 
1458 static void hidinput_led_worker(struct work_struct *work)
1459 {
1460 	struct hid_device *hid = container_of(work, struct hid_device,
1461 					      led_work);
1462 	struct hid_field *field;
1463 	struct hid_report *report;
1464 	int ret;
1465 	u32 len;
1466 	__u8 *buf;
1467 
1468 	field = hidinput_get_led_field(hid);
1469 	if (!field)
1470 		return;
1471 
1472 	/*
1473 	 * field->report is accessed unlocked regarding HID core. So there might
1474 	 * be another incoming SET-LED request from user-space, which changes
1475 	 * the LED state while we assemble our outgoing buffer. However, this
1476 	 * doesn't matter as hid_output_report() correctly converts it into a
1477 	 * boolean value no matter what information is currently set on the LED
1478 	 * field (even garbage). So the remote device will always get a valid
1479 	 * request.
1480 	 * And in case we send a wrong value, a next led worker is spawned
1481 	 * for every SET-LED request so the following worker will send the
1482 	 * correct value, guaranteed!
1483 	 */
1484 
1485 	report = field->report;
1486 
1487 	/* use custom SET_REPORT request if possible (asynchronous) */
1488 	if (hid->ll_driver->request)
1489 		return hid->ll_driver->request(hid, report, HID_REQ_SET_REPORT);
1490 
1491 	/* fall back to generic raw-output-report */
1492 	len = hid_report_len(report);
1493 	buf = hid_alloc_report_buf(report, GFP_KERNEL);
1494 	if (!buf)
1495 		return;
1496 
1497 	hid_output_report(report, buf);
1498 	/* synchronous output report */
1499 	ret = hid_hw_output_report(hid, buf, len);
1500 	if (ret == -ENOSYS)
1501 		hid_hw_raw_request(hid, report->id, buf, len, HID_OUTPUT_REPORT,
1502 				HID_REQ_SET_REPORT);
1503 	kfree(buf);
1504 }
1505 
1506 static int hidinput_input_event(struct input_dev *dev, unsigned int type,
1507 				unsigned int code, int value)
1508 {
1509 	struct hid_device *hid = input_get_drvdata(dev);
1510 	struct hid_field *field;
1511 	int offset;
1512 
1513 	if (type == EV_FF)
1514 		return input_ff_event(dev, type, code, value);
1515 
1516 	if (type != EV_LED)
1517 		return -1;
1518 
1519 	if ((offset = hidinput_find_field(hid, type, code, &field)) == -1) {
1520 		hid_warn(dev, "event field not found\n");
1521 		return -1;
1522 	}
1523 
1524 	hid_set_field(field, offset, value);
1525 
1526 	schedule_work(&hid->led_work);
1527 	return 0;
1528 }
1529 
1530 static int hidinput_open(struct input_dev *dev)
1531 {
1532 	struct hid_device *hid = input_get_drvdata(dev);
1533 
1534 	return hid_hw_open(hid);
1535 }
1536 
1537 static void hidinput_close(struct input_dev *dev)
1538 {
1539 	struct hid_device *hid = input_get_drvdata(dev);
1540 
1541 	hid_hw_close(hid);
1542 }
1543 
1544 static void hidinput_change_resolution_multipliers(struct hid_device *hid)
1545 {
1546 	struct hid_report_enum *rep_enum;
1547 	struct hid_report *rep;
1548 	struct hid_usage *usage;
1549 	int i, j;
1550 
1551 	rep_enum = &hid->report_enum[HID_FEATURE_REPORT];
1552 	list_for_each_entry(rep, &rep_enum->report_list, list) {
1553 		bool update_needed = false;
1554 
1555 		if (rep->maxfield == 0)
1556 			continue;
1557 
1558 		/*
1559 		 * If we have more than one feature within this report we
1560 		 * need to fill in the bits from the others before we can
1561 		 * overwrite the ones for the Resolution Multiplier.
1562 		 */
1563 		if (rep->maxfield > 1) {
1564 			hid_hw_request(hid, rep, HID_REQ_GET_REPORT);
1565 			hid_hw_wait(hid);
1566 		}
1567 
1568 		for (i = 0; i < rep->maxfield; i++) {
1569 			__s32 logical_max = rep->field[i]->logical_maximum;
1570 
1571 			/* There is no good reason for a Resolution
1572 			 * Multiplier to have a count other than 1.
1573 			 * Ignore that case.
1574 			 */
1575 			if (rep->field[i]->report_count != 1)
1576 				continue;
1577 
1578 			for (j = 0; j < rep->field[i]->maxusage; j++) {
1579 				usage = &rep->field[i]->usage[j];
1580 
1581 				if (usage->hid != HID_GD_RESOLUTION_MULTIPLIER)
1582 					continue;
1583 
1584 				*rep->field[i]->value = logical_max;
1585 				update_needed = true;
1586 			}
1587 		}
1588 		if (update_needed)
1589 			hid_hw_request(hid, rep, HID_REQ_SET_REPORT);
1590 	}
1591 
1592 	/* refresh our structs */
1593 	hid_setup_resolution_multiplier(hid);
1594 }
1595 
1596 static void report_features(struct hid_device *hid)
1597 {
1598 	struct hid_driver *drv = hid->driver;
1599 	struct hid_report_enum *rep_enum;
1600 	struct hid_report *rep;
1601 	struct hid_usage *usage;
1602 	int i, j;
1603 
1604 	rep_enum = &hid->report_enum[HID_FEATURE_REPORT];
1605 	list_for_each_entry(rep, &rep_enum->report_list, list)
1606 		for (i = 0; i < rep->maxfield; i++) {
1607 			/* Ignore if report count is out of bounds. */
1608 			if (rep->field[i]->report_count < 1)
1609 				continue;
1610 
1611 			for (j = 0; j < rep->field[i]->maxusage; j++) {
1612 				usage = &rep->field[i]->usage[j];
1613 
1614 				/* Verify if Battery Strength feature is available */
1615 				if (usage->hid == HID_DC_BATTERYSTRENGTH)
1616 					hidinput_setup_battery(hid, HID_FEATURE_REPORT,
1617 							       rep->field[i]);
1618 
1619 				if (drv->feature_mapping)
1620 					drv->feature_mapping(hid, rep->field[i], usage);
1621 			}
1622 		}
1623 }
1624 
1625 static struct hid_input *hidinput_allocate(struct hid_device *hid,
1626 					   unsigned int application)
1627 {
1628 	struct hid_input *hidinput = kzalloc(sizeof(*hidinput), GFP_KERNEL);
1629 	struct input_dev *input_dev = input_allocate_device();
1630 	const char *suffix = NULL;
1631 	size_t suffix_len, name_len;
1632 
1633 	if (!hidinput || !input_dev)
1634 		goto fail;
1635 
1636 	if ((hid->quirks & HID_QUIRK_INPUT_PER_APP) &&
1637 	    hid->maxapplication > 1) {
1638 		switch (application) {
1639 		case HID_GD_KEYBOARD:
1640 			suffix = "Keyboard";
1641 			break;
1642 		case HID_GD_KEYPAD:
1643 			suffix = "Keypad";
1644 			break;
1645 		case HID_GD_MOUSE:
1646 			suffix = "Mouse";
1647 			break;
1648 		case HID_DG_STYLUS:
1649 			suffix = "Pen";
1650 			break;
1651 		case HID_DG_TOUCHSCREEN:
1652 			suffix = "Touchscreen";
1653 			break;
1654 		case HID_DG_TOUCHPAD:
1655 			suffix = "Touchpad";
1656 			break;
1657 		case HID_GD_SYSTEM_CONTROL:
1658 			suffix = "System Control";
1659 			break;
1660 		case HID_CP_CONSUMER_CONTROL:
1661 			suffix = "Consumer Control";
1662 			break;
1663 		case HID_GD_WIRELESS_RADIO_CTLS:
1664 			suffix = "Wireless Radio Control";
1665 			break;
1666 		case HID_GD_SYSTEM_MULTIAXIS:
1667 			suffix = "System Multi Axis";
1668 			break;
1669 		default:
1670 			break;
1671 		}
1672 	}
1673 
1674 	if (suffix) {
1675 		name_len = strlen(hid->name);
1676 		suffix_len = strlen(suffix);
1677 		if ((name_len < suffix_len) ||
1678 		    strcmp(hid->name + name_len - suffix_len, suffix)) {
1679 			hidinput->name = kasprintf(GFP_KERNEL, "%s %s",
1680 						   hid->name, suffix);
1681 			if (!hidinput->name)
1682 				goto fail;
1683 		}
1684 	}
1685 
1686 	input_set_drvdata(input_dev, hid);
1687 	input_dev->event = hidinput_input_event;
1688 	input_dev->open = hidinput_open;
1689 	input_dev->close = hidinput_close;
1690 	input_dev->setkeycode = hidinput_setkeycode;
1691 	input_dev->getkeycode = hidinput_getkeycode;
1692 
1693 	input_dev->name = hidinput->name ? hidinput->name : hid->name;
1694 	input_dev->phys = hid->phys;
1695 	input_dev->uniq = hid->uniq;
1696 	input_dev->id.bustype = hid->bus;
1697 	input_dev->id.vendor  = hid->vendor;
1698 	input_dev->id.product = hid->product;
1699 	input_dev->id.version = hid->version;
1700 	input_dev->dev.parent = &hid->dev;
1701 
1702 	hidinput->input = input_dev;
1703 	hidinput->application = application;
1704 	list_add_tail(&hidinput->list, &hid->inputs);
1705 
1706 	INIT_LIST_HEAD(&hidinput->reports);
1707 
1708 	return hidinput;
1709 
1710 fail:
1711 	kfree(hidinput);
1712 	input_free_device(input_dev);
1713 	hid_err(hid, "Out of memory during hid input probe\n");
1714 	return NULL;
1715 }
1716 
1717 static bool hidinput_has_been_populated(struct hid_input *hidinput)
1718 {
1719 	int i;
1720 	unsigned long r = 0;
1721 
1722 	for (i = 0; i < BITS_TO_LONGS(EV_CNT); i++)
1723 		r |= hidinput->input->evbit[i];
1724 
1725 	for (i = 0; i < BITS_TO_LONGS(KEY_CNT); i++)
1726 		r |= hidinput->input->keybit[i];
1727 
1728 	for (i = 0; i < BITS_TO_LONGS(REL_CNT); i++)
1729 		r |= hidinput->input->relbit[i];
1730 
1731 	for (i = 0; i < BITS_TO_LONGS(ABS_CNT); i++)
1732 		r |= hidinput->input->absbit[i];
1733 
1734 	for (i = 0; i < BITS_TO_LONGS(MSC_CNT); i++)
1735 		r |= hidinput->input->mscbit[i];
1736 
1737 	for (i = 0; i < BITS_TO_LONGS(LED_CNT); i++)
1738 		r |= hidinput->input->ledbit[i];
1739 
1740 	for (i = 0; i < BITS_TO_LONGS(SND_CNT); i++)
1741 		r |= hidinput->input->sndbit[i];
1742 
1743 	for (i = 0; i < BITS_TO_LONGS(FF_CNT); i++)
1744 		r |= hidinput->input->ffbit[i];
1745 
1746 	for (i = 0; i < BITS_TO_LONGS(SW_CNT); i++)
1747 		r |= hidinput->input->swbit[i];
1748 
1749 	return !!r;
1750 }
1751 
1752 static void hidinput_cleanup_hidinput(struct hid_device *hid,
1753 		struct hid_input *hidinput)
1754 {
1755 	struct hid_report *report;
1756 	int i, k;
1757 
1758 	list_del(&hidinput->list);
1759 	input_free_device(hidinput->input);
1760 	kfree(hidinput->name);
1761 
1762 	for (k = HID_INPUT_REPORT; k <= HID_OUTPUT_REPORT; k++) {
1763 		if (k == HID_OUTPUT_REPORT &&
1764 			hid->quirks & HID_QUIRK_SKIP_OUTPUT_REPORTS)
1765 			continue;
1766 
1767 		list_for_each_entry(report, &hid->report_enum[k].report_list,
1768 				    list) {
1769 
1770 			for (i = 0; i < report->maxfield; i++)
1771 				if (report->field[i]->hidinput == hidinput)
1772 					report->field[i]->hidinput = NULL;
1773 		}
1774 	}
1775 
1776 	kfree(hidinput);
1777 }
1778 
1779 static struct hid_input *hidinput_match(struct hid_report *report)
1780 {
1781 	struct hid_device *hid = report->device;
1782 	struct hid_input *hidinput;
1783 
1784 	list_for_each_entry(hidinput, &hid->inputs, list) {
1785 		if (hidinput->report &&
1786 		    hidinput->report->id == report->id)
1787 			return hidinput;
1788 	}
1789 
1790 	return NULL;
1791 }
1792 
1793 static struct hid_input *hidinput_match_application(struct hid_report *report)
1794 {
1795 	struct hid_device *hid = report->device;
1796 	struct hid_input *hidinput;
1797 
1798 	list_for_each_entry(hidinput, &hid->inputs, list) {
1799 		if (hidinput->application == report->application)
1800 			return hidinput;
1801 	}
1802 
1803 	return NULL;
1804 }
1805 
1806 static inline void hidinput_configure_usages(struct hid_input *hidinput,
1807 					     struct hid_report *report)
1808 {
1809 	int i, j;
1810 
1811 	for (i = 0; i < report->maxfield; i++)
1812 		for (j = 0; j < report->field[i]->maxusage; j++)
1813 			hidinput_configure_usage(hidinput, report->field[i],
1814 						 report->field[i]->usage + j);
1815 }
1816 
1817 /*
1818  * Register the input device; print a message.
1819  * Configure the input layer interface
1820  * Read all reports and initialize the absolute field values.
1821  */
1822 
1823 int hidinput_connect(struct hid_device *hid, unsigned int force)
1824 {
1825 	struct hid_driver *drv = hid->driver;
1826 	struct hid_report *report;
1827 	struct hid_input *next, *hidinput = NULL;
1828 	unsigned int application;
1829 	int i, k;
1830 
1831 	INIT_LIST_HEAD(&hid->inputs);
1832 	INIT_WORK(&hid->led_work, hidinput_led_worker);
1833 
1834 	hid->status &= ~HID_STAT_DUP_DETECTED;
1835 
1836 	if (!force) {
1837 		for (i = 0; i < hid->maxcollection; i++) {
1838 			struct hid_collection *col = &hid->collection[i];
1839 			if (col->type == HID_COLLECTION_APPLICATION ||
1840 					col->type == HID_COLLECTION_PHYSICAL)
1841 				if (IS_INPUT_APPLICATION(col->usage))
1842 					break;
1843 		}
1844 
1845 		if (i == hid->maxcollection)
1846 			return -1;
1847 	}
1848 
1849 	report_features(hid);
1850 
1851 	for (k = HID_INPUT_REPORT; k <= HID_OUTPUT_REPORT; k++) {
1852 		if (k == HID_OUTPUT_REPORT &&
1853 			hid->quirks & HID_QUIRK_SKIP_OUTPUT_REPORTS)
1854 			continue;
1855 
1856 		list_for_each_entry(report, &hid->report_enum[k].report_list, list) {
1857 
1858 			if (!report->maxfield)
1859 				continue;
1860 
1861 			application = report->application;
1862 
1863 			/*
1864 			 * Find the previous hidinput report attached
1865 			 * to this report id.
1866 			 */
1867 			if (hid->quirks & HID_QUIRK_MULTI_INPUT)
1868 				hidinput = hidinput_match(report);
1869 			else if (hid->maxapplication > 1 &&
1870 				 (hid->quirks & HID_QUIRK_INPUT_PER_APP))
1871 				hidinput = hidinput_match_application(report);
1872 
1873 			if (!hidinput) {
1874 				hidinput = hidinput_allocate(hid, application);
1875 				if (!hidinput)
1876 					goto out_unwind;
1877 			}
1878 
1879 			hidinput_configure_usages(hidinput, report);
1880 
1881 			if (hid->quirks & HID_QUIRK_MULTI_INPUT)
1882 				hidinput->report = report;
1883 
1884 			list_add_tail(&report->hidinput_list,
1885 				      &hidinput->reports);
1886 		}
1887 	}
1888 
1889 	hidinput_change_resolution_multipliers(hid);
1890 
1891 	list_for_each_entry_safe(hidinput, next, &hid->inputs, list) {
1892 		if (drv->input_configured &&
1893 		    drv->input_configured(hid, hidinput))
1894 			goto out_unwind;
1895 
1896 		if (!hidinput_has_been_populated(hidinput)) {
1897 			/* no need to register an input device not populated */
1898 			hidinput_cleanup_hidinput(hid, hidinput);
1899 			continue;
1900 		}
1901 
1902 		if (input_register_device(hidinput->input))
1903 			goto out_unwind;
1904 		hidinput->registered = true;
1905 	}
1906 
1907 	if (list_empty(&hid->inputs)) {
1908 		hid_err(hid, "No inputs registered, leaving\n");
1909 		goto out_unwind;
1910 	}
1911 
1912 	if (hid->status & HID_STAT_DUP_DETECTED)
1913 		hid_dbg(hid,
1914 			"Some usages could not be mapped, please use HID_QUIRK_INCREMENT_USAGE_ON_DUPLICATE if this is legitimate.\n");
1915 
1916 	return 0;
1917 
1918 out_unwind:
1919 	/* unwind the ones we already registered */
1920 	hidinput_disconnect(hid);
1921 
1922 	return -1;
1923 }
1924 EXPORT_SYMBOL_GPL(hidinput_connect);
1925 
1926 void hidinput_disconnect(struct hid_device *hid)
1927 {
1928 	struct hid_input *hidinput, *next;
1929 
1930 	hidinput_cleanup_battery(hid);
1931 
1932 	list_for_each_entry_safe(hidinput, next, &hid->inputs, list) {
1933 		list_del(&hidinput->list);
1934 		if (hidinput->registered)
1935 			input_unregister_device(hidinput->input);
1936 		else
1937 			input_free_device(hidinput->input);
1938 		kfree(hidinput->name);
1939 		kfree(hidinput);
1940 	}
1941 
1942 	/* led_work is spawned by input_dev callbacks, but doesn't access the
1943 	 * parent input_dev at all. Once all input devices are removed, we
1944 	 * know that led_work will never get restarted, so we can cancel it
1945 	 * synchronously and are safe. */
1946 	cancel_work_sync(&hid->led_work);
1947 }
1948 EXPORT_SYMBOL_GPL(hidinput_disconnect);
1949