1 /*
2 * Copyright (C) 2010 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 * http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17 // #define DEBUG 1
18 #if DEBUG
19
20 #ifdef USE_LIBLOG
21 #define LOG_TAG "usbhost"
22 #include "utils/Log.h"
23 #define D LOGD
24 #else
25 #define D printf
26 #endif
27
28 #else
29 #define D(...)
30 #endif
31
32 #include <stdio.h>
33 #include <stdlib.h>
34 #include <unistd.h>
35 #include <string.h>
36
37 #include <sys/ioctl.h>
38 #include <sys/types.h>
39 #include <sys/time.h>
40 #include <sys/inotify.h>
41 #include <dirent.h>
42 #include <fcntl.h>
43 #include <errno.h>
44 #include <ctype.h>
45 #include <pthread.h>
46
47 #include <linux/usbdevice_fs.h>
48 #include <asm/byteorder.h>
49
50 #include "usbhost/usbhost.h"
51
52 #define USB_FS_DIR "/dev/bus/usb"
53 #define USB_FS_ID_SCANNER "/dev/bus/usb/%d/%d"
54 #define USB_FS_ID_FORMAT "/dev/bus/usb/%03d/%03d"
55
56 // From drivers/usb/core/devio.c
57 // I don't know why this isn't in a kernel header
58 #define MAX_USBFS_BUFFER_SIZE 16384
59
60 struct usb_host_context {
61 int fd;
62 };
63
64 struct usb_device {
65 char dev_name[64];
66 unsigned char desc[4096];
67 int desc_length;
68 int fd;
69 int writeable;
70 };
71
badname(const char * name)72 static inline int badname(const char *name)
73 {
74 while(*name) {
75 if(!isdigit(*name++)) return 1;
76 }
77 return 0;
78 }
79
80 /* returns true if one of the callbacks indicates we are done */
find_existing_devices(usb_device_added_cb added_cb,usb_device_removed_cb removed_cb,void * client_data)81 static int find_existing_devices(usb_device_added_cb added_cb,
82 usb_device_removed_cb removed_cb,
83 void *client_data)
84 {
85 char busname[32], devname[32];
86 DIR *busdir , *devdir ;
87 struct dirent *de;
88 int done = 0;
89
90 busdir = opendir(USB_FS_DIR);
91 if(busdir == 0) return 1;
92
93 while ((de = readdir(busdir)) != 0 && !done) {
94 if(badname(de->d_name)) continue;
95
96 snprintf(busname, sizeof busname, "%s/%s", USB_FS_DIR, de->d_name);
97 devdir = opendir(busname);
98 if(devdir == 0) continue;
99
100 while ((de = readdir(devdir)) && !done) {
101 if(badname(de->d_name)) continue;
102
103 snprintf(devname, sizeof devname, "%s/%s", busname, de->d_name);
104 done = added_cb(devname, client_data);
105 } // end of devdir while
106 closedir(devdir);
107 } //end of busdir while
108 closedir(busdir);
109
110 return done;
111 }
112
usb_host_init()113 struct usb_host_context *usb_host_init()
114 {
115 struct usb_host_context *context = calloc(1, sizeof(struct usb_host_context));
116 if (!context) {
117 fprintf(stderr, "out of memory in usb_host_context\n");
118 return NULL;
119 }
120 context->fd = inotify_init();
121 if (context->fd < 0) {
122 fprintf(stderr, "inotify_init failed\n");
123 free(context);
124 return NULL;
125 }
126 return context;
127 }
128
usb_host_cleanup(struct usb_host_context * context)129 void usb_host_cleanup(struct usb_host_context *context)
130 {
131 close(context->fd);
132 free(context);
133 }
134
usb_host_run(struct usb_host_context * context,usb_device_added_cb added_cb,usb_device_removed_cb removed_cb,usb_discovery_done_cb discovery_done_cb,void * client_data)135 void usb_host_run(struct usb_host_context *context,
136 usb_device_added_cb added_cb,
137 usb_device_removed_cb removed_cb,
138 usb_discovery_done_cb discovery_done_cb,
139 void *client_data)
140 {
141 struct inotify_event* event;
142 char event_buf[512];
143 char path[100];
144 int i, ret, done = 0;
145 int wd, wds[10];
146 int wd_count = sizeof(wds) / sizeof(wds[0]);
147
148 D("Created device discovery thread\n");
149
150 /* watch for files added and deleted within USB_FS_DIR */
151 memset(wds, 0, sizeof(wds));
152 /* watch the root for new subdirectories */
153 wds[0] = inotify_add_watch(context->fd, USB_FS_DIR, IN_CREATE | IN_DELETE);
154 if (wds[0] < 0) {
155 fprintf(stderr, "inotify_add_watch failed\n");
156 if (discovery_done_cb)
157 discovery_done_cb(client_data);
158 return;
159 }
160
161 /* watch existing subdirectories of USB_FS_DIR */
162 for (i = 1; i < wd_count; i++) {
163 snprintf(path, sizeof(path), "%s/%03d", USB_FS_DIR, i);
164 ret = inotify_add_watch(context->fd, path, IN_CREATE | IN_DELETE);
165 if (ret > 0)
166 wds[i] = ret;
167 }
168
169 /* check for existing devices first, after we have inotify set up */
170 done = find_existing_devices(added_cb, removed_cb, client_data);
171 if (discovery_done_cb)
172 done |= discovery_done_cb(client_data);
173
174 while (!done) {
175 ret = read(context->fd, event_buf, sizeof(event_buf));
176 if (ret >= (int)sizeof(struct inotify_event)) {
177 event = (struct inotify_event *)event_buf;
178 wd = event->wd;
179 if (wd == wds[0]) {
180 i = atoi(event->name);
181 snprintf(path, sizeof(path), "%s/%s", USB_FS_DIR, event->name);
182 D("new subdirectory %s: index: %d\n", path, i);
183 if (i > 0 && i < wd_count) {
184 ret = inotify_add_watch(context->fd, path, IN_CREATE | IN_DELETE);
185 if (ret > 0)
186 wds[i] = ret;
187 }
188 } else {
189 for (i = 1; i < wd_count && !done; i++) {
190 if (wd == wds[i]) {
191 snprintf(path, sizeof(path), "%s/%03d/%s", USB_FS_DIR, i, event->name);
192 if (event->mask == IN_CREATE) {
193 D("new device %s\n", path);
194 done = added_cb(path, client_data);
195 } else if (event->mask == IN_DELETE) {
196 D("gone device %s\n", path);
197 done = removed_cb(path, client_data);
198 }
199 }
200 }
201 }
202 }
203 }
204 }
205
usb_device_open(const char * dev_name)206 struct usb_device *usb_device_open(const char *dev_name)
207 {
208 int fd, did_retry = 0, writeable = 1;
209
210 D("usb_device_open %s\n", dev_name);
211
212 retry:
213 fd = open(dev_name, O_RDWR);
214 if (fd < 0) {
215 /* if we fail, see if have read-only access */
216 fd = open(dev_name, O_RDONLY);
217 D("usb_device_open open returned %d errno %d\n", fd, errno);
218 if (fd < 0 && (errno == EACCES || errno == ENOENT) && !did_retry) {
219 /* work around race condition between inotify and permissions management */
220 sleep(1);
221 did_retry = 1;
222 goto retry;
223 }
224
225 if (fd < 0)
226 return NULL;
227 writeable = 0;
228 D("[ usb open read-only %s fd = %d]\n", dev_name, fd);
229 }
230
231 struct usb_device* result = usb_device_new(dev_name, fd);
232 if (result)
233 result->writeable = writeable;
234 return result;
235 }
236
usb_device_close(struct usb_device * device)237 void usb_device_close(struct usb_device *device)
238 {
239 close(device->fd);
240 free(device);
241 }
242
usb_device_new(const char * dev_name,int fd)243 struct usb_device *usb_device_new(const char *dev_name, int fd)
244 {
245 struct usb_device *device = calloc(1, sizeof(struct usb_device));
246 int length;
247
248 D("usb_device_new %s fd: %d\n", dev_name, fd);
249
250 if (lseek(fd, 0, SEEK_SET) != 0)
251 goto failed;
252 length = read(fd, device->desc, sizeof(device->desc));
253 D("usb_device_new read returned %d errno %d\n", length, errno);
254 if (length < 0)
255 goto failed;
256
257 strncpy(device->dev_name, dev_name, sizeof(device->dev_name) - 1);
258 device->fd = fd;
259 device->desc_length = length;
260 // assume we are writeable, since usb_device_get_fd will only return writeable fds
261 device->writeable = 1;
262 return device;
263
264 failed:
265 close(fd);
266 free(device);
267 return NULL;
268 }
269
usb_device_reopen_writeable(struct usb_device * device)270 static int usb_device_reopen_writeable(struct usb_device *device)
271 {
272 if (device->writeable)
273 return 1;
274
275 int fd = open(device->dev_name, O_RDWR);
276 if (fd >= 0) {
277 close(device->fd);
278 device->fd = fd;
279 device->writeable = 1;
280 return 1;
281 }
282 D("usb_device_reopen_writeable failed errno %d\n", errno);
283 return 0;
284 }
285
usb_device_get_fd(struct usb_device * device)286 int usb_device_get_fd(struct usb_device *device)
287 {
288 if (!usb_device_reopen_writeable(device))
289 return -1;
290 return device->fd;
291 }
292
usb_device_get_name(struct usb_device * device)293 const char* usb_device_get_name(struct usb_device *device)
294 {
295 return device->dev_name;
296 }
297
usb_device_get_unique_id(struct usb_device * device)298 int usb_device_get_unique_id(struct usb_device *device)
299 {
300 int bus = 0, dev = 0;
301 sscanf(device->dev_name, USB_FS_ID_SCANNER, &bus, &dev);
302 return bus * 1000 + dev;
303 }
304
usb_device_get_unique_id_from_name(const char * name)305 int usb_device_get_unique_id_from_name(const char* name)
306 {
307 int bus = 0, dev = 0;
308 sscanf(name, USB_FS_ID_SCANNER, &bus, &dev);
309 return bus * 1000 + dev;
310 }
311
usb_device_get_name_from_unique_id(int id)312 char* usb_device_get_name_from_unique_id(int id)
313 {
314 int bus = id / 1000;
315 int dev = id % 1000;
316 char* result = (char *)calloc(1, strlen(USB_FS_ID_FORMAT));
317 snprintf(result, strlen(USB_FS_ID_FORMAT) - 1, USB_FS_ID_FORMAT, bus, dev);
318 return result;
319 }
320
usb_device_get_vendor_id(struct usb_device * device)321 uint16_t usb_device_get_vendor_id(struct usb_device *device)
322 {
323 struct usb_device_descriptor* desc = (struct usb_device_descriptor*)device->desc;
324 return __le16_to_cpu(desc->idVendor);
325 }
326
usb_device_get_product_id(struct usb_device * device)327 uint16_t usb_device_get_product_id(struct usb_device *device)
328 {
329 struct usb_device_descriptor* desc = (struct usb_device_descriptor*)device->desc;
330 return __le16_to_cpu(desc->idProduct);
331 }
332
usb_device_get_device_descriptor(struct usb_device * device)333 const struct usb_device_descriptor* usb_device_get_device_descriptor(struct usb_device *device)
334 {
335 return (struct usb_device_descriptor*)device->desc;
336 }
337
usb_device_get_string(struct usb_device * device,int id)338 char* usb_device_get_string(struct usb_device *device, int id)
339 {
340 char string[256];
341 __u16 buffer[128];
342 __u16 languages[128];
343 int i, result;
344 int languageCount = 0;
345
346 string[0] = 0;
347 memset(languages, 0, sizeof(languages));
348
349 // read list of supported languages
350 result = usb_device_control_transfer(device,
351 USB_DIR_IN|USB_TYPE_STANDARD|USB_RECIP_DEVICE, USB_REQ_GET_DESCRIPTOR,
352 (USB_DT_STRING << 8) | 0, 0, languages, sizeof(languages), 0);
353 if (result > 0)
354 languageCount = (result - 2) / 2;
355
356 for (i = 1; i <= languageCount; i++) {
357 memset(buffer, 0, sizeof(buffer));
358
359 result = usb_device_control_transfer(device,
360 USB_DIR_IN|USB_TYPE_STANDARD|USB_RECIP_DEVICE, USB_REQ_GET_DESCRIPTOR,
361 (USB_DT_STRING << 8) | id, languages[i], buffer, sizeof(buffer), 0);
362 if (result > 0) {
363 int i;
364 // skip first word, and copy the rest to the string, changing shorts to bytes.
365 result /= 2;
366 for (i = 1; i < result; i++)
367 string[i - 1] = buffer[i];
368 string[i - 1] = 0;
369 return strdup(string);
370 }
371 }
372
373 return NULL;
374 }
375
usb_device_get_manufacturer_name(struct usb_device * device)376 char* usb_device_get_manufacturer_name(struct usb_device *device)
377 {
378 struct usb_device_descriptor *desc = (struct usb_device_descriptor *)device->desc;
379
380 if (desc->iManufacturer)
381 return usb_device_get_string(device, desc->iManufacturer);
382 else
383 return NULL;
384 }
385
usb_device_get_product_name(struct usb_device * device)386 char* usb_device_get_product_name(struct usb_device *device)
387 {
388 struct usb_device_descriptor *desc = (struct usb_device_descriptor *)device->desc;
389
390 if (desc->iProduct)
391 return usb_device_get_string(device, desc->iProduct);
392 else
393 return NULL;
394 }
395
usb_device_get_serial(struct usb_device * device)396 char* usb_device_get_serial(struct usb_device *device)
397 {
398 struct usb_device_descriptor *desc = (struct usb_device_descriptor *)device->desc;
399
400 if (desc->iSerialNumber)
401 return usb_device_get_string(device, desc->iSerialNumber);
402 else
403 return NULL;
404 }
405
usb_device_is_writeable(struct usb_device * device)406 int usb_device_is_writeable(struct usb_device *device)
407 {
408 return device->writeable;
409 }
410
usb_descriptor_iter_init(struct usb_device * device,struct usb_descriptor_iter * iter)411 void usb_descriptor_iter_init(struct usb_device *device, struct usb_descriptor_iter *iter)
412 {
413 iter->config = device->desc;
414 iter->config_end = device->desc + device->desc_length;
415 iter->curr_desc = device->desc;
416 }
417
usb_descriptor_iter_next(struct usb_descriptor_iter * iter)418 struct usb_descriptor_header *usb_descriptor_iter_next(struct usb_descriptor_iter *iter)
419 {
420 struct usb_descriptor_header* next;
421 if (iter->curr_desc >= iter->config_end)
422 return NULL;
423 next = (struct usb_descriptor_header*)iter->curr_desc;
424 iter->curr_desc += next->bLength;
425 return next;
426 }
427
usb_device_claim_interface(struct usb_device * device,unsigned int interface)428 int usb_device_claim_interface(struct usb_device *device, unsigned int interface)
429 {
430 return ioctl(device->fd, USBDEVFS_CLAIMINTERFACE, &interface);
431 }
432
usb_device_release_interface(struct usb_device * device,unsigned int interface)433 int usb_device_release_interface(struct usb_device *device, unsigned int interface)
434 {
435 return ioctl(device->fd, USBDEVFS_RELEASEINTERFACE, &interface);
436 }
437
usb_device_connect_kernel_driver(struct usb_device * device,unsigned int interface,int connect)438 int usb_device_connect_kernel_driver(struct usb_device *device,
439 unsigned int interface, int connect)
440 {
441 struct usbdevfs_ioctl ctl;
442
443 ctl.ifno = interface;
444 ctl.ioctl_code = (connect ? USBDEVFS_CONNECT : USBDEVFS_DISCONNECT);
445 ctl.data = NULL;
446 return ioctl(device->fd, USBDEVFS_IOCTL, &ctl);
447 }
448
usb_device_control_transfer(struct usb_device * device,int requestType,int request,int value,int index,void * buffer,int length,unsigned int timeout)449 int usb_device_control_transfer(struct usb_device *device,
450 int requestType,
451 int request,
452 int value,
453 int index,
454 void* buffer,
455 int length,
456 unsigned int timeout)
457 {
458 struct usbdevfs_ctrltransfer ctrl;
459
460 // this usually requires read/write permission
461 if (!usb_device_reopen_writeable(device))
462 return -1;
463
464 memset(&ctrl, 0, sizeof(ctrl));
465 ctrl.bRequestType = requestType;
466 ctrl.bRequest = request;
467 ctrl.wValue = value;
468 ctrl.wIndex = index;
469 ctrl.wLength = length;
470 ctrl.data = buffer;
471 ctrl.timeout = timeout;
472 return ioctl(device->fd, USBDEVFS_CONTROL, &ctrl);
473 }
474
usb_device_bulk_transfer(struct usb_device * device,int endpoint,void * buffer,int length,unsigned int timeout)475 int usb_device_bulk_transfer(struct usb_device *device,
476 int endpoint,
477 void* buffer,
478 int length,
479 unsigned int timeout)
480 {
481 struct usbdevfs_bulktransfer ctrl;
482
483 // need to limit request size to avoid EINVAL
484 if (length > MAX_USBFS_BUFFER_SIZE)
485 length = MAX_USBFS_BUFFER_SIZE;
486
487 memset(&ctrl, 0, sizeof(ctrl));
488 ctrl.ep = endpoint;
489 ctrl.len = length;
490 ctrl.data = buffer;
491 ctrl.timeout = timeout;
492 return ioctl(device->fd, USBDEVFS_BULK, &ctrl);
493 }
494
usb_request_new(struct usb_device * dev,const struct usb_endpoint_descriptor * ep_desc)495 struct usb_request *usb_request_new(struct usb_device *dev,
496 const struct usb_endpoint_descriptor *ep_desc)
497 {
498 struct usbdevfs_urb *urb = calloc(1, sizeof(struct usbdevfs_urb));
499 if (!urb)
500 return NULL;
501
502 if ((ep_desc->bmAttributes & USB_ENDPOINT_XFERTYPE_MASK) == USB_ENDPOINT_XFER_BULK)
503 urb->type = USBDEVFS_URB_TYPE_BULK;
504 else if ((ep_desc->bmAttributes & USB_ENDPOINT_XFERTYPE_MASK) == USB_ENDPOINT_XFER_INT)
505 urb->type = USBDEVFS_URB_TYPE_INTERRUPT;
506 else {
507 D("Unsupported endpoint type %d", ep_desc->bmAttributes & USB_ENDPOINT_XFERTYPE_MASK);
508 free(urb);
509 return NULL;
510 }
511 urb->endpoint = ep_desc->bEndpointAddress;
512
513 struct usb_request *req = calloc(1, sizeof(struct usb_request));
514 if (!req) {
515 free(urb);
516 return NULL;
517 }
518
519 req->dev = dev;
520 req->max_packet_size = __le16_to_cpu(ep_desc->wMaxPacketSize);
521 req->private_data = urb;
522 req->endpoint = urb->endpoint;
523 urb->usercontext = req;
524
525 return req;
526 }
527
usb_request_free(struct usb_request * req)528 void usb_request_free(struct usb_request *req)
529 {
530 free(req->private_data);
531 free(req);
532 }
533
usb_request_queue(struct usb_request * req)534 int usb_request_queue(struct usb_request *req)
535 {
536 struct usbdevfs_urb *urb = (struct usbdevfs_urb*)req->private_data;
537 int res;
538
539 urb->status = -1;
540 urb->buffer = req->buffer;
541 // need to limit request size to avoid EINVAL
542 if (req->buffer_length > MAX_USBFS_BUFFER_SIZE)
543 urb->buffer_length = MAX_USBFS_BUFFER_SIZE;
544 else
545 urb->buffer_length = req->buffer_length;
546
547 do {
548 res = ioctl(req->dev->fd, USBDEVFS_SUBMITURB, urb);
549 } while((res < 0) && (errno == EINTR));
550
551 return res;
552 }
553
usb_request_wait(struct usb_device * dev)554 struct usb_request *usb_request_wait(struct usb_device *dev)
555 {
556 struct usbdevfs_urb *urb = NULL;
557 struct usb_request *req = NULL;
558 int res;
559
560 while (1) {
561 int res = ioctl(dev->fd, USBDEVFS_REAPURB, &urb);
562 D("USBDEVFS_REAPURB returned %d\n", res);
563 if (res < 0) {
564 if(errno == EINTR) {
565 continue;
566 }
567 D("[ reap urb - error ]\n");
568 return NULL;
569 } else {
570 D("[ urb @%p status = %d, actual = %d ]\n",
571 urb, urb->status, urb->actual_length);
572 req = (struct usb_request*)urb->usercontext;
573 req->actual_length = urb->actual_length;
574 }
575 break;
576 }
577 return req;
578 }
579
usb_request_cancel(struct usb_request * req)580 int usb_request_cancel(struct usb_request *req)
581 {
582 struct usbdevfs_urb *urb = ((struct usbdevfs_urb*)req->private_data);
583 return ioctl(req->dev->fd, USBDEVFS_DISCARDURB, &urb);
584 }
585
586