3 GTCO digitizer USB driver
5 TO CHECK: Is pressure done right on report 5?
7 Copyright (C) 2006 GTCO CalComp
9 This program is free software; you can redistribute it and/or
10 modify it under the terms of the GNU General Public License
11 as published by the Free Software Foundation; version 2
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.
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., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301, USA.
23 Permission to use, copy, modify, distribute, and sell this software and its
24 documentation for any purpose is hereby granted without fee, provided that
25 the above copyright notice appear in all copies and that both that
26 copyright notice and this permission notice appear in supporting
27 documentation, and that the name of GTCO-CalComp not be used in advertising
28 or publicity pertaining to distribution of the software without specific,
29 written prior permission. GTCO-CalComp makes no representations about the
30 suitability of this software for any purpose. It is provided "as is"
31 without express or implied warranty.
33 GTCO-CALCOMP DISCLAIMS ALL WARRANTIES WITH REGARD TO THIS SOFTWARE,
34 INCLUDING ALL IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS, IN NO
35 EVENT SHALL GTCO-CALCOMP BE LIABLE FOR ANY SPECIAL, INDIRECT OR
36 CONSEQUENTIAL DAMAGES OR ANY DAMAGES WHATSOEVER RESULTING FROM LOSS OF USE,
37 DATA OR PROFITS, WHETHER IN AN ACTION OF CONTRACT, NEGLIGENCE OR OTHER
38 TORTIOUS ACTIONS, ARISING OUT OF OR IN CONNECTION WITH THE USE OR
39 PERFORMANCE OF THIS SOFTWARE.
45 Jeremy Roberson jroberson@gtcocalcomp.com
46 Scott Hill shill@gtcocalcomp.com
53 #include <linux/kernel.h>
54 #include <linux/module.h>
55 #include <linux/errno.h>
56 #include <linux/slab.h>
57 #include <linux/input.h>
58 #include <linux/usb.h>
59 #include <linux/uaccess.h>
60 #include <asm/unaligned.h>
61 #include <asm/byteorder.h>
62 #include <linux/bitops.h>
64 #include <linux/usb/input.h>
66 /* Version with a Major number of 2 is for kernel inclusion only. */
67 #define GTCO_VERSION "2.00.0006"
72 #define VENDOR_ID_GTCO 0x078C
75 #define PID_1000 0x1000
76 #define PID_1001 0x1001
77 #define PID_1002 0x1002
79 /* Max size of a single report */
80 #define REPORT_MAX_SIZE 10
81 #define MAX_COLLECTION_LEVELS 10
84 /* Bitmask whether pen is in range */
85 #define MASK_INRANGE 0x20
86 #define MASK_BUTTON 0x01F
93 static const struct usb_device_id gtco_usbid_table
[] = {
94 { USB_DEVICE(VENDOR_ID_GTCO
, PID_400
) },
95 { USB_DEVICE(VENDOR_ID_GTCO
, PID_401
) },
96 { USB_DEVICE(VENDOR_ID_GTCO
, PID_1000
) },
97 { USB_DEVICE(VENDOR_ID_GTCO
, PID_1001
) },
98 { USB_DEVICE(VENDOR_ID_GTCO
, PID_1002
) },
101 MODULE_DEVICE_TABLE (usb
, gtco_usbid_table
);
104 /* Structure to hold all of our device specific stuff */
107 struct input_dev
*inputdevice
; /* input device struct pointer */
108 struct usb_interface
*intf
; /* the usb interface for this device */
109 struct urb
*urbinfo
; /* urb for incoming reports */
110 dma_addr_t buf_dma
; /* dma addr of the data buffer*/
111 unsigned char * buffer
; /* databuffer for reports */
113 char usbpath
[PATHLENGTH
];
116 /* Information pulled from Report Descriptor */
132 /* Code for parsing the HID REPORT DESCRIPTOR */
134 /* From HID1.11 spec */
135 struct hid_descriptor
137 struct usb_descriptor_header header
;
142 __le16 wDescriptorLength
;
143 } __attribute__ ((packed
));
146 #define HID_DESCRIPTOR_SIZE 9
147 #define HID_DEVICE_TYPE 33
148 #define REPORT_DEVICE_TYPE 34
151 #define PREF_TAG(x) ((x)>>4)
152 #define PREF_TYPE(x) ((x>>2)&0x03)
153 #define PREF_SIZE(x) ((x)&0x03)
156 #define TYPE_GLOBAL 1
158 #define TYPE_RESERVED 3
160 #define TAG_MAIN_INPUT 0x8
161 #define TAG_MAIN_OUTPUT 0x9
162 #define TAG_MAIN_FEATURE 0xB
163 #define TAG_MAIN_COL_START 0xA
164 #define TAG_MAIN_COL_END 0xC
166 #define TAG_GLOB_USAGE 0
167 #define TAG_GLOB_LOG_MIN 1
168 #define TAG_GLOB_LOG_MAX 2
169 #define TAG_GLOB_PHYS_MIN 3
170 #define TAG_GLOB_PHYS_MAX 4
171 #define TAG_GLOB_UNIT_EXP 5
172 #define TAG_GLOB_UNIT 6
173 #define TAG_GLOB_REPORT_SZ 7
174 #define TAG_GLOB_REPORT_ID 8
175 #define TAG_GLOB_REPORT_CNT 9
176 #define TAG_GLOB_PUSH 10
177 #define TAG_GLOB_POP 11
179 #define TAG_GLOB_MAX 12
181 #define DIGITIZER_USAGE_TIP_PRESSURE 0x30
182 #define DIGITIZER_USAGE_TILT_X 0x3D
183 #define DIGITIZER_USAGE_TILT_Y 0x3E
187 * This is an abbreviated parser for the HID Report Descriptor. We
188 * know what devices we are talking to, so this is by no means meant
189 * to be generic. We can make some safe assumptions:
191 * - We know there are no LONG tags, all short
192 * - We know that we have no MAIN Feature and MAIN Output items
193 * - We know what the IRQ reports are supposed to look like.
195 * The main purpose of this is to use the HID report desc to figure
196 * out the mins and maxs of the fields in the IRQ reports. The IRQ
197 * reports for 400/401 change slightly if the max X is bigger than 64K.
200 static void parse_hid_report_descriptor(struct gtco
*device
, char * report
,
203 struct device
*ddev
= &device
->intf
->dev
;
206 /* Tag primitive vars */
215 /* For parsing logic */
219 /* Global Values, indexed by TAG */
220 __u32 globalval
[TAG_GLOB_MAX
];
221 __u32 oldval
[TAG_GLOB_MAX
];
227 char indentstr
[MAX_COLLECTION_LEVELS
+ 1] = { 0 };
229 dev_dbg(ddev
, "======>>>>>>PARSE<<<<<<======\n");
231 /* Walk this report and pull out the info we need */
233 prefix
= report
[i
++];
235 /* Determine data size and save the data in the proper variable */
236 size
= (1U << PREF_SIZE(prefix
)) >> 1;
237 if (i
+ size
> length
) {
239 "Not enough data (need %d, have %d)\n",
249 data16
= get_unaligned_le16(&report
[i
]);
252 data32
= get_unaligned_le32(&report
[i
]);
256 /* Skip size of data */
259 /* What we do depends on the tag type */
260 tag
= PREF_TAG(prefix
);
261 type
= PREF_TYPE(prefix
);
264 strcpy(globtype
, "");
269 * The INPUT MAIN tag signifies this is
270 * information from a report. We need to
271 * figure out what it is and store the
277 strcpy(globtype
, "Variable");
279 strcpy(globtype
, "Var|Const");
281 dev_dbg(ddev
, "::::: Saving Report: %d input #%d Max: 0x%X(%d) Min:0x%X(%d) of %d bits\n",
282 globalval
[TAG_GLOB_REPORT_ID
], inputnum
,
283 globalval
[TAG_GLOB_LOG_MAX
], globalval
[TAG_GLOB_LOG_MAX
],
284 globalval
[TAG_GLOB_LOG_MIN
], globalval
[TAG_GLOB_LOG_MIN
],
285 globalval
[TAG_GLOB_REPORT_SZ
] * globalval
[TAG_GLOB_REPORT_CNT
]);
289 We can assume that the first two input items
290 are always the X and Y coordinates. After
291 that, we look for everything else by
295 case 0: /* X coord */
296 dev_dbg(ddev
, "GER: X Usage: 0x%x\n", usage
);
297 if (device
->max_X
== 0) {
298 device
->max_X
= globalval
[TAG_GLOB_LOG_MAX
];
299 device
->min_X
= globalval
[TAG_GLOB_LOG_MIN
];
303 case 1: /* Y coord */
304 dev_dbg(ddev
, "GER: Y Usage: 0x%x\n", usage
);
305 if (device
->max_Y
== 0) {
306 device
->max_Y
= globalval
[TAG_GLOB_LOG_MAX
];
307 device
->min_Y
= globalval
[TAG_GLOB_LOG_MIN
];
313 if (usage
== DIGITIZER_USAGE_TILT_X
) {
314 if (device
->maxtilt_X
== 0) {
315 device
->maxtilt_X
= globalval
[TAG_GLOB_LOG_MAX
];
316 device
->mintilt_X
= globalval
[TAG_GLOB_LOG_MIN
];
321 if (usage
== DIGITIZER_USAGE_TILT_Y
) {
322 if (device
->maxtilt_Y
== 0) {
323 device
->maxtilt_Y
= globalval
[TAG_GLOB_LOG_MAX
];
324 device
->mintilt_Y
= globalval
[TAG_GLOB_LOG_MIN
];
329 if (usage
== DIGITIZER_USAGE_TIP_PRESSURE
) {
330 if (device
->maxpressure
== 0) {
331 device
->maxpressure
= globalval
[TAG_GLOB_LOG_MAX
];
332 device
->minpressure
= globalval
[TAG_GLOB_LOG_MIN
];
342 case TAG_MAIN_OUTPUT
:
346 case TAG_MAIN_FEATURE
:
350 case TAG_MAIN_COL_START
:
353 if (indent
== MAX_COLLECTION_LEVELS
) {
354 dev_err(ddev
, "Collection level %d would exceed limit of %d\n",
356 MAX_COLLECTION_LEVELS
);
361 dev_dbg(ddev
, "======>>>>>> Physical\n");
362 strcpy(globtype
, "Physical");
364 dev_dbg(ddev
, "======>>>>>>\n");
366 /* Indent the debug output */
368 for (x
= 0; x
< indent
; x
++)
372 /* Save global tags */
373 for (x
= 0; x
< TAG_GLOB_MAX
; x
++)
374 oldval
[x
] = globalval
[x
];
378 case TAG_MAIN_COL_END
:
382 dev_err(ddev
, "Collection level already at zero\n");
386 dev_dbg(ddev
, "<<<<<<======\n");
389 for (x
= 0; x
< indent
; x
++)
393 /* Copy global tags back */
394 for (x
= 0; x
< TAG_GLOB_MAX
; x
++)
395 globalval
[x
] = oldval
[x
];
402 dev_dbg(ddev
, "%sMAINTAG:(%d) %c SIZE: %d Data: %s 0x%x\n",
403 indentstr
, tag
, maintype
, size
, globtype
, data
);
407 dev_dbg(ddev
, "%sMAINTAG:(%d) %c SIZE: %d Data: %s 0x%x\n",
408 indentstr
, tag
, maintype
, size
, globtype
, data16
);
412 dev_dbg(ddev
, "%sMAINTAG:(%d) %c SIZE: %d Data: %s 0x%x\n",
413 indentstr
, tag
, maintype
, size
, globtype
, data32
);
422 * First time we hit the global usage tag,
423 * it should tell us the type of device
425 if (device
->usage
== 0)
426 device
->usage
= data
;
428 strcpy(globtype
, "USAGE");
431 case TAG_GLOB_LOG_MIN
:
432 strcpy(globtype
, "LOG_MIN");
435 case TAG_GLOB_LOG_MAX
:
436 strcpy(globtype
, "LOG_MAX");
439 case TAG_GLOB_PHYS_MIN
:
440 strcpy(globtype
, "PHYS_MIN");
443 case TAG_GLOB_PHYS_MAX
:
444 strcpy(globtype
, "PHYS_MAX");
447 case TAG_GLOB_UNIT_EXP
:
448 strcpy(globtype
, "EXP");
452 strcpy(globtype
, "UNIT");
455 case TAG_GLOB_REPORT_SZ
:
456 strcpy(globtype
, "REPORT_SZ");
459 case TAG_GLOB_REPORT_ID
:
460 strcpy(globtype
, "REPORT_ID");
461 /* New report, restart numbering */
465 case TAG_GLOB_REPORT_CNT
:
466 strcpy(globtype
, "REPORT_CNT");
470 strcpy(globtype
, "PUSH");
474 strcpy(globtype
, "POP");
478 /* Check to make sure we have a good tag number
479 so we don't overflow array */
480 if (tag
< TAG_GLOB_MAX
) {
483 dev_dbg(ddev
, "%sGLOBALTAG:%s(%d) SIZE: %d Data: 0x%x\n",
484 indentstr
, globtype
, tag
, size
, data
);
485 globalval
[tag
] = data
;
489 dev_dbg(ddev
, "%sGLOBALTAG:%s(%d) SIZE: %d Data: 0x%x\n",
490 indentstr
, globtype
, tag
, size
, data16
);
491 globalval
[tag
] = data16
;
495 dev_dbg(ddev
, "%sGLOBALTAG:%s(%d) SIZE: %d Data: 0x%x\n",
496 indentstr
, globtype
, tag
, size
, data32
);
497 globalval
[tag
] = data32
;
501 dev_dbg(ddev
, "%sGLOBALTAG: ILLEGAL TAG:%d SIZE: %d\n",
502 indentstr
, tag
, size
);
509 strcpy(globtype
, "USAGE");
514 case TAG_GLOB_LOG_MIN
:
515 strcpy(globtype
, "MIN");
518 case TAG_GLOB_LOG_MAX
:
519 strcpy(globtype
, "MAX");
523 strcpy(globtype
, "UNKNOWN");
529 dev_dbg(ddev
, "%sLOCALTAG:(%d) %s SIZE: %d Data: 0x%x\n",
530 indentstr
, tag
, globtype
, size
, data
);
534 dev_dbg(ddev
, "%sLOCALTAG:(%d) %s SIZE: %d Data: 0x%x\n",
535 indentstr
, tag
, globtype
, size
, data16
);
539 dev_dbg(ddev
, "%sLOCALTAG:(%d) %s SIZE: %d Data: 0x%x\n",
540 indentstr
, tag
, globtype
, size
, data32
);
549 /* INPUT DRIVER Routines */
552 * Called when opening the input device. This will submit the URB to
553 * the usb system so we start getting reports
555 static int gtco_input_open(struct input_dev
*inputdev
)
557 struct gtco
*device
= input_get_drvdata(inputdev
);
559 device
->urbinfo
->dev
= interface_to_usbdev(device
->intf
);
560 if (usb_submit_urb(device
->urbinfo
, GFP_KERNEL
))
567 * Called when closing the input device. This will unlink the URB
569 static void gtco_input_close(struct input_dev
*inputdev
)
571 struct gtco
*device
= input_get_drvdata(inputdev
);
573 usb_kill_urb(device
->urbinfo
);
578 * Setup input device capabilities. Tell the input system what this
579 * device is capable of generating.
581 * This information is based on what is read from the HID report and
582 * placed in the struct gtco structure
585 static void gtco_setup_caps(struct input_dev
*inputdev
)
587 struct gtco
*device
= input_get_drvdata(inputdev
);
590 inputdev
->evbit
[0] = BIT_MASK(EV_KEY
) | BIT_MASK(EV_ABS
) |
593 /* Misc event menu block */
594 inputdev
->mscbit
[0] = BIT_MASK(MSC_SCAN
) | BIT_MASK(MSC_SERIAL
) |
597 /* Absolute values based on HID report info */
598 input_set_abs_params(inputdev
, ABS_X
, device
->min_X
, device
->max_X
,
600 input_set_abs_params(inputdev
, ABS_Y
, device
->min_Y
, device
->max_Y
,
604 input_set_abs_params(inputdev
, ABS_DISTANCE
, 0, 1, 0, 0);
606 /* Tilt & pressure */
607 input_set_abs_params(inputdev
, ABS_TILT_X
, device
->mintilt_X
,
608 device
->maxtilt_X
, 0, 0);
609 input_set_abs_params(inputdev
, ABS_TILT_Y
, device
->mintilt_Y
,
610 device
->maxtilt_Y
, 0, 0);
611 input_set_abs_params(inputdev
, ABS_PRESSURE
, device
->minpressure
,
612 device
->maxpressure
, 0, 0);
615 input_set_abs_params(inputdev
, ABS_MISC
, 0, 0xFF, 0, 0);
621 * URB callback routine. Called when we get IRQ reports from the
624 * This bridges the USB and input device worlds. It generates events
625 * on the input device based on the USB reports.
627 static void gtco_urb_callback(struct urb
*urbinfo
)
629 struct gtco
*device
= urbinfo
->context
;
630 struct input_dev
*inputdev
;
635 inputdev
= device
->inputdevice
;
637 /* Was callback OK? */
638 if (urbinfo
->status
== -ECONNRESET
||
639 urbinfo
->status
== -ENOENT
||
640 urbinfo
->status
== -ESHUTDOWN
) {
642 /* Shutdown is occurring. Return and don't queue up any more */
646 if (urbinfo
->status
!= 0) {
648 * Some unknown error. Hopefully temporary. Just go and
655 * Good URB, now process
658 /* PID dependent when we interpret the report */
659 if (inputdev
->id
.product
== PID_1000
||
660 inputdev
->id
.product
== PID_1001
||
661 inputdev
->id
.product
== PID_1002
) {
664 * Switch on the report ID
665 * Conveniently, the reports have more information, the higher
666 * the report number. We can just fall through the case
667 * statements if we start with the highest number report
669 switch (device
->buffer
[0]) {
671 /* Pressure is 9 bits */
672 val
= ((u16
)(device
->buffer
[8]) << 1);
673 val
|= (u16
)(device
->buffer
[7] >> 7);
674 input_report_abs(inputdev
, ABS_PRESSURE
,
677 /* Mask out the Y tilt value used for pressure */
678 device
->buffer
[7] = (u8
)((device
->buffer
[7]) & 0x7F);
683 input_report_abs(inputdev
, ABS_TILT_X
,
684 sign_extend32(device
->buffer
[6], 6));
686 input_report_abs(inputdev
, ABS_TILT_Y
,
687 sign_extend32(device
->buffer
[7], 6));
692 /* Convert buttons, only 5 bits possible */
693 val
= (device
->buffer
[5]) & MASK_BUTTON
;
695 /* We don't apply any meaning to the bitmask,
697 input_event(inputdev
, EV_MSC
, MSC_SERIAL
, val
);
701 /* All reports have X and Y coords in the same place */
702 val
= get_unaligned_le16(&device
->buffer
[1]);
703 input_report_abs(inputdev
, ABS_X
, val
);
705 val
= get_unaligned_le16(&device
->buffer
[3]);
706 input_report_abs(inputdev
, ABS_Y
, val
);
708 /* Ditto for proximity bit */
709 val
= device
->buffer
[5] & MASK_INRANGE
? 1 : 0;
710 input_report_abs(inputdev
, ABS_DISTANCE
, val
);
712 /* Report 1 is an exception to how we handle buttons */
713 /* Buttons are an index, not a bitmask */
714 if (device
->buffer
[0] == 1) {
717 * Convert buttons, 5 bit index
718 * Report value of index set as one,
721 val
= device
->buffer
[5] & MASK_BUTTON
;
722 dev_dbg(&device
->intf
->dev
,
723 "======>>>>>>REPORT 1: val 0x%X(%d)\n",
727 * We don't apply any meaning to the button
728 * index, just report it
730 input_event(inputdev
, EV_MSC
, MSC_SERIAL
, val
);
736 input_event(inputdev
, EV_MSC
, MSC_SCAN
,
742 /* Other pid class */
743 if (inputdev
->id
.product
== PID_400
||
744 inputdev
->id
.product
== PID_401
) {
747 if (device
->buffer
[0] == 2) {
749 input_event(inputdev
, EV_MSC
, MSC_SCAN
, device
->buffer
[1]);
753 if (device
->buffer
[0] == 1) {
756 /* IF X max > 64K, we still a bit from the y report */
757 if (device
->max_X
> 0x10000) {
759 val
= (u16
)(((u16
)(device
->buffer
[2] << 8)) | (u8
)device
->buffer
[1]);
760 val
|= (u32
)(((u8
)device
->buffer
[3] & 0x1) << 16);
762 input_report_abs(inputdev
, ABS_X
, val
);
764 le_buffer
[0] = (u8
)((u8
)(device
->buffer
[3]) >> 1);
765 le_buffer
[0] |= (u8
)((device
->buffer
[3] & 0x1) << 7);
767 le_buffer
[1] = (u8
)(device
->buffer
[4] >> 1);
768 le_buffer
[1] |= (u8
)((device
->buffer
[5] & 0x1) << 7);
770 val
= get_unaligned_le16(le_buffer
);
771 input_report_abs(inputdev
, ABS_Y
, val
);
774 * Shift the button byte right by one to
775 * make it look like the standard report
777 buttonbyte
= device
->buffer
[5] >> 1;
780 val
= get_unaligned_le16(&device
->buffer
[1]);
781 input_report_abs(inputdev
, ABS_X
, val
);
783 val
= get_unaligned_le16(&device
->buffer
[3]);
784 input_report_abs(inputdev
, ABS_Y
, val
);
786 buttonbyte
= device
->buffer
[5];
789 /* BUTTONS and PROXIMITY */
790 val
= buttonbyte
& MASK_INRANGE
? 1 : 0;
791 input_report_abs(inputdev
, ABS_DISTANCE
, val
);
793 /* Convert buttons, only 4 bits possible */
794 val
= buttonbyte
& 0x0F;
796 for (i
= 0; i
< 5; i
++)
797 input_report_key(inputdev
, BTN_DIGI
+ i
, val
& (1 << i
));
799 /* We don't apply any meaning to the bitmask, just report */
800 input_event(inputdev
, EV_MSC
, MSC_SERIAL
, val
);
804 input_report_abs(inputdev
, ABS_MISC
, device
->buffer
[6]);
808 /* Everybody gets report ID's */
809 input_event(inputdev
, EV_MSC
, MSC_RAW
, device
->buffer
[0]);
812 input_sync(inputdev
);
815 rc
= usb_submit_urb(urbinfo
, GFP_ATOMIC
);
817 dev_err(&device
->intf
->dev
,
818 "usb_submit_urb failed rc=0x%x\n", rc
);
822 * The probe routine. This is called when the kernel find the matching USB
823 * vendor/product. We do the following:
825 * - Allocate mem for a local structure to manage the device
826 * - Request a HID Report Descriptor from the device and parse it to
827 * find out the device parameters
828 * - Create an input device and assign it attributes
829 * - Allocate an URB so the device can talk to us when the input
832 static int gtco_probe(struct usb_interface
*usbinterface
,
833 const struct usb_device_id
*id
)
837 struct input_dev
*input_dev
;
838 struct hid_descriptor
*hid_desc
;
840 int result
= 0, retry
;
842 struct usb_endpoint_descriptor
*endpoint
;
843 struct usb_device
*udev
= interface_to_usbdev(usbinterface
);
845 /* Allocate memory for device structure */
846 gtco
= kzalloc(sizeof(struct gtco
), GFP_KERNEL
);
847 input_dev
= input_allocate_device();
848 if (!gtco
|| !input_dev
) {
849 dev_err(&usbinterface
->dev
, "No more memory\n");
854 /* Set pointer to the input device */
855 gtco
->inputdevice
= input_dev
;
857 /* Save interface information */
858 gtco
->intf
= usbinterface
;
860 /* Allocate some data for incoming reports */
861 gtco
->buffer
= usb_alloc_coherent(udev
, REPORT_MAX_SIZE
,
862 GFP_KERNEL
, >co
->buf_dma
);
864 dev_err(&usbinterface
->dev
, "No more memory for us buffers\n");
869 /* Allocate URB for reports */
870 gtco
->urbinfo
= usb_alloc_urb(0, GFP_KERNEL
);
871 if (!gtco
->urbinfo
) {
872 dev_err(&usbinterface
->dev
, "Failed to allocate URB\n");
877 /* Sanity check that a device has an endpoint */
878 if (usbinterface
->cur_altsetting
->desc
.bNumEndpoints
< 1) {
879 dev_err(&usbinterface
->dev
,
880 "Invalid number of endpoints\n");
885 endpoint
= &usbinterface
->cur_altsetting
->endpoint
[0].desc
;
888 dev_dbg(&usbinterface
->dev
, "gtco # interfaces: %d\n", usbinterface
->num_altsetting
);
889 dev_dbg(&usbinterface
->dev
, "num endpoints: %d\n", usbinterface
->cur_altsetting
->desc
.bNumEndpoints
);
890 dev_dbg(&usbinterface
->dev
, "interface class: %d\n", usbinterface
->cur_altsetting
->desc
.bInterfaceClass
);
891 dev_dbg(&usbinterface
->dev
, "endpoint: attribute:0x%x type:0x%x\n", endpoint
->bmAttributes
, endpoint
->bDescriptorType
);
892 if (usb_endpoint_xfer_int(endpoint
))
893 dev_dbg(&usbinterface
->dev
, "endpoint: we have interrupt endpoint\n");
895 dev_dbg(&usbinterface
->dev
, "interface extra len:%d\n",
896 usbinterface
->cur_altsetting
->extralen
);
899 * Find the HID descriptor so we can find out the size of the
900 * HID report descriptor
902 if (usb_get_extra_descriptor(usbinterface
->cur_altsetting
,
903 HID_DEVICE_TYPE
, &hid_desc
) != 0) {
904 dev_err(&usbinterface
->dev
,
905 "Can't retrieve exta USB descriptor to get hid report descriptor length\n");
910 dev_dbg(&usbinterface
->dev
,
911 "Extra descriptor success: type:%d len:%d\n",
912 hid_desc
->bDescriptorType
, hid_desc
->wDescriptorLength
);
914 report
= kzalloc(le16_to_cpu(hid_desc
->wDescriptorLength
), GFP_KERNEL
);
916 dev_err(&usbinterface
->dev
, "No more memory for report\n");
921 /* Couple of tries to get reply */
922 for (retry
= 0; retry
< 3; retry
++) {
923 result
= usb_control_msg(udev
,
924 usb_rcvctrlpipe(udev
, 0),
925 USB_REQ_GET_DESCRIPTOR
,
926 USB_RECIP_INTERFACE
| USB_DIR_IN
,
927 REPORT_DEVICE_TYPE
<< 8,
930 le16_to_cpu(hid_desc
->wDescriptorLength
),
933 dev_dbg(&usbinterface
->dev
, "usb_control_msg result: %d\n", result
);
934 if (result
== le16_to_cpu(hid_desc
->wDescriptorLength
)) {
935 parse_hid_report_descriptor(gtco
, report
, result
);
942 /* If we didn't get the report, fail */
943 if (result
!= le16_to_cpu(hid_desc
->wDescriptorLength
)) {
944 dev_err(&usbinterface
->dev
,
945 "Failed to get HID Report Descriptor of size: %d\n",
946 hid_desc
->wDescriptorLength
);
951 /* Create a device file node */
952 usb_make_path(udev
, gtco
->usbpath
, sizeof(gtco
->usbpath
));
953 strlcat(gtco
->usbpath
, "/input0", sizeof(gtco
->usbpath
));
955 /* Set Input device functions */
956 input_dev
->open
= gtco_input_open
;
957 input_dev
->close
= gtco_input_close
;
959 /* Set input device information */
960 input_dev
->name
= "GTCO_CalComp";
961 input_dev
->phys
= gtco
->usbpath
;
963 input_set_drvdata(input_dev
, gtco
);
965 /* Now set up all the input device capabilities */
966 gtco_setup_caps(input_dev
);
968 /* Set input device required ID information */
969 usb_to_input_id(udev
, &input_dev
->id
);
970 input_dev
->dev
.parent
= &usbinterface
->dev
;
972 /* Setup the URB, it will be posted later on open of input device */
973 usb_fill_int_urb(gtco
->urbinfo
,
976 endpoint
->bEndpointAddress
),
981 endpoint
->bInterval
);
983 gtco
->urbinfo
->transfer_dma
= gtco
->buf_dma
;
984 gtco
->urbinfo
->transfer_flags
|= URB_NO_TRANSFER_DMA_MAP
;
986 /* Save gtco pointer in USB interface gtco */
987 usb_set_intfdata(usbinterface
, gtco
);
989 /* All done, now register the input device */
990 error
= input_register_device(input_dev
);
997 usb_free_urb(gtco
->urbinfo
);
999 usb_free_coherent(udev
, REPORT_MAX_SIZE
,
1000 gtco
->buffer
, gtco
->buf_dma
);
1002 input_free_device(input_dev
);
1008 * This function is a standard USB function called when the USB device
1009 * is disconnected. We will get rid of the URV, de-register the input
1010 * device, and free up allocated memory
1012 static void gtco_disconnect(struct usb_interface
*interface
)
1014 /* Grab private device ptr */
1015 struct gtco
*gtco
= usb_get_intfdata(interface
);
1016 struct usb_device
*udev
= interface_to_usbdev(interface
);
1018 /* Now reverse all the registration stuff */
1020 input_unregister_device(gtco
->inputdevice
);
1021 usb_kill_urb(gtco
->urbinfo
);
1022 usb_free_urb(gtco
->urbinfo
);
1023 usb_free_coherent(udev
, REPORT_MAX_SIZE
,
1024 gtco
->buffer
, gtco
->buf_dma
);
1028 dev_info(&interface
->dev
, "gtco driver disconnected\n");
1031 /* STANDARD MODULE LOAD ROUTINES */
1033 static struct usb_driver gtco_driverinfo_table
= {
1035 .id_table
= gtco_usbid_table
,
1036 .probe
= gtco_probe
,
1037 .disconnect
= gtco_disconnect
,
1040 module_usb_driver(gtco_driverinfo_table
);
1042 MODULE_DESCRIPTION("GTCO digitizer USB driver");
1043 MODULE_LICENSE("GPL");