adutux.c 24 KB

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  1. /*
  2. * adutux - driver for ADU devices from Ontrak Control Systems
  3. * This is an experimental driver. Use at your own risk.
  4. * This driver is not supported by Ontrak Control Systems.
  5. *
  6. * Copyright (c) 2003 John Homppi (SCO, leave this notice here)
  7. *
  8. * This program is free software; you can redistribute it and/or
  9. * modify it under the terms of the GNU General Public License as
  10. * published by the Free Software Foundation; either version 2 of
  11. * the License, or (at your option) any later version.
  12. *
  13. * derived from the Lego USB Tower driver 0.56:
  14. * Copyright (c) 2003 David Glance <davidgsf@sourceforge.net>
  15. * 2001 Juergen Stuber <stuber@loria.fr>
  16. * that was derived from USB Skeleton driver - 0.5
  17. * Copyright (c) 2001 Greg Kroah-Hartman (greg@kroah.com)
  18. *
  19. */
  20. #include <linux/kernel.h>
  21. #include <linux/errno.h>
  22. #include <linux/init.h>
  23. #include <linux/slab.h>
  24. #include <linux/module.h>
  25. #include <linux/usb.h>
  26. #include <asm/uaccess.h>
  27. #ifdef CONFIG_USB_DEBUG
  28. static int debug = 5;
  29. #else
  30. static int debug = 1;
  31. #endif
  32. /* Use our own dbg macro */
  33. #undef dbg
  34. #define dbg(lvl, format, arg...) \
  35. do { \
  36. if (debug >= lvl) \
  37. printk(KERN_DEBUG __FILE__ " : " format " \n", ## arg); \
  38. } while (0)
  39. /* Version Information */
  40. #define DRIVER_VERSION "v0.0.13"
  41. #define DRIVER_AUTHOR "John Homppi"
  42. #define DRIVER_DESC "adutux (see www.ontrak.net)"
  43. /* Module parameters */
  44. module_param(debug, int, S_IRUGO | S_IWUSR);
  45. MODULE_PARM_DESC(debug, "Debug enabled or not");
  46. /* Define these values to match your device */
  47. #define ADU_VENDOR_ID 0x0a07
  48. #define ADU_PRODUCT_ID 0x0064
  49. /* table of devices that work with this driver */
  50. static struct usb_device_id device_table [] = {
  51. { USB_DEVICE(ADU_VENDOR_ID, ADU_PRODUCT_ID) }, /* ADU100 */
  52. { USB_DEVICE(ADU_VENDOR_ID, ADU_PRODUCT_ID+20) }, /* ADU120 */
  53. { USB_DEVICE(ADU_VENDOR_ID, ADU_PRODUCT_ID+30) }, /* ADU130 */
  54. { USB_DEVICE(ADU_VENDOR_ID, ADU_PRODUCT_ID+100) }, /* ADU200 */
  55. { USB_DEVICE(ADU_VENDOR_ID, ADU_PRODUCT_ID+108) }, /* ADU208 */
  56. { USB_DEVICE(ADU_VENDOR_ID, ADU_PRODUCT_ID+118) }, /* ADU218 */
  57. { }/* Terminating entry */
  58. };
  59. MODULE_DEVICE_TABLE(usb, device_table);
  60. #ifdef CONFIG_USB_DYNAMIC_MINORS
  61. #define ADU_MINOR_BASE 0
  62. #else
  63. #define ADU_MINOR_BASE 67
  64. #endif
  65. /* we can have up to this number of device plugged in at once */
  66. #define MAX_DEVICES 16
  67. #define COMMAND_TIMEOUT (2*HZ) /* 60 second timeout for a command */
  68. /* Structure to hold all of our device specific stuff */
  69. struct adu_device {
  70. struct semaphore sem; /* locks this structure */
  71. struct usb_device* udev; /* save off the usb device pointer */
  72. struct usb_interface* interface;
  73. unsigned char minor; /* the starting minor number for this device */
  74. char serial_number[8];
  75. int open_count; /* number of times this port has been opened */
  76. char* read_buffer_primary;
  77. int read_buffer_length;
  78. char* read_buffer_secondary;
  79. int secondary_head;
  80. int secondary_tail;
  81. spinlock_t buflock;
  82. wait_queue_head_t read_wait;
  83. wait_queue_head_t write_wait;
  84. char* interrupt_in_buffer;
  85. struct usb_endpoint_descriptor* interrupt_in_endpoint;
  86. struct urb* interrupt_in_urb;
  87. int read_urb_finished;
  88. char* interrupt_out_buffer;
  89. struct usb_endpoint_descriptor* interrupt_out_endpoint;
  90. struct urb* interrupt_out_urb;
  91. };
  92. /* prevent races between open() and disconnect */
  93. static DEFINE_MUTEX(disconnect_mutex);
  94. static struct usb_driver adu_driver;
  95. static void adu_debug_data(int level, const char *function, int size,
  96. const unsigned char *data)
  97. {
  98. int i;
  99. if (debug < level)
  100. return;
  101. printk(KERN_DEBUG __FILE__": %s - length = %d, data = ",
  102. function, size);
  103. for (i = 0; i < size; ++i)
  104. printk("%.2x ", data[i]);
  105. printk("\n");
  106. }
  107. /**
  108. * adu_abort_transfers
  109. * aborts transfers and frees associated data structures
  110. */
  111. static void adu_abort_transfers(struct adu_device *dev)
  112. {
  113. dbg(2," %s : enter", __FUNCTION__);
  114. if (dev == NULL) {
  115. dbg(1," %s : dev is null", __FUNCTION__);
  116. goto exit;
  117. }
  118. if (dev->udev == NULL) {
  119. dbg(1," %s : udev is null", __FUNCTION__);
  120. goto exit;
  121. }
  122. dbg(2," %s : udev state %d", __FUNCTION__, dev->udev->state);
  123. if (dev->udev->state == USB_STATE_NOTATTACHED) {
  124. dbg(1," %s : udev is not attached", __FUNCTION__);
  125. goto exit;
  126. }
  127. /* shutdown transfer */
  128. usb_unlink_urb(dev->interrupt_in_urb);
  129. usb_unlink_urb(dev->interrupt_out_urb);
  130. exit:
  131. dbg(2," %s : leave", __FUNCTION__);
  132. }
  133. static void adu_delete(struct adu_device *dev)
  134. {
  135. dbg(2, "%s enter", __FUNCTION__);
  136. adu_abort_transfers(dev);
  137. /* free data structures */
  138. usb_free_urb(dev->interrupt_in_urb);
  139. usb_free_urb(dev->interrupt_out_urb);
  140. kfree(dev->read_buffer_primary);
  141. kfree(dev->read_buffer_secondary);
  142. kfree(dev->interrupt_in_buffer);
  143. kfree(dev->interrupt_out_buffer);
  144. kfree(dev);
  145. dbg(2, "%s : leave", __FUNCTION__);
  146. }
  147. static void adu_interrupt_in_callback(struct urb *urb)
  148. {
  149. struct adu_device *dev = urb->context;
  150. dbg(4," %s : enter, status %d", __FUNCTION__, urb->status);
  151. adu_debug_data(5, __FUNCTION__, urb->actual_length,
  152. urb->transfer_buffer);
  153. spin_lock(&dev->buflock);
  154. if (urb->status != 0) {
  155. if ((urb->status != -ENOENT) && (urb->status != -ECONNRESET)) {
  156. dbg(1," %s : nonzero status received: %d",
  157. __FUNCTION__, urb->status);
  158. }
  159. goto exit;
  160. }
  161. if (urb->actual_length > 0 && dev->interrupt_in_buffer[0] != 0x00) {
  162. if (dev->read_buffer_length <
  163. (4 * le16_to_cpu(dev->interrupt_in_endpoint->wMaxPacketSize)) -
  164. (urb->actual_length)) {
  165. memcpy (dev->read_buffer_primary +
  166. dev->read_buffer_length,
  167. dev->interrupt_in_buffer, urb->actual_length);
  168. dev->read_buffer_length += urb->actual_length;
  169. dbg(2," %s reading %d ", __FUNCTION__,
  170. urb->actual_length);
  171. } else {
  172. dbg(1," %s : read_buffer overflow", __FUNCTION__);
  173. }
  174. }
  175. exit:
  176. dev->read_urb_finished = 1;
  177. spin_unlock(&dev->buflock);
  178. /* always wake up so we recover from errors */
  179. wake_up_interruptible(&dev->read_wait);
  180. adu_debug_data(5, __FUNCTION__, urb->actual_length,
  181. urb->transfer_buffer);
  182. dbg(4," %s : leave, status %d", __FUNCTION__, urb->status);
  183. }
  184. static void adu_interrupt_out_callback(struct urb *urb)
  185. {
  186. struct adu_device *dev = urb->context;
  187. dbg(4," %s : enter, status %d", __FUNCTION__, urb->status);
  188. adu_debug_data(5,__FUNCTION__, urb->actual_length, urb->transfer_buffer);
  189. if (urb->status != 0) {
  190. if ((urb->status != -ENOENT) &&
  191. (urb->status != -ECONNRESET)) {
  192. dbg(1, " %s :nonzero status received: %d",
  193. __FUNCTION__, urb->status);
  194. }
  195. goto exit;
  196. }
  197. wake_up_interruptible(&dev->write_wait);
  198. exit:
  199. adu_debug_data(5, __FUNCTION__, urb->actual_length,
  200. urb->transfer_buffer);
  201. dbg(4," %s : leave, status %d", __FUNCTION__, urb->status);
  202. }
  203. static int adu_open(struct inode *inode, struct file *file)
  204. {
  205. struct adu_device *dev = NULL;
  206. struct usb_interface *interface;
  207. int subminor;
  208. int retval = 0;
  209. dbg(2,"%s : enter", __FUNCTION__);
  210. subminor = iminor(inode);
  211. mutex_lock(&disconnect_mutex);
  212. interface = usb_find_interface(&adu_driver, subminor);
  213. if (!interface) {
  214. err("%s - error, can't find device for minor %d",
  215. __FUNCTION__, subminor);
  216. retval = -ENODEV;
  217. goto exit_no_device;
  218. }
  219. dev = usb_get_intfdata(interface);
  220. if (!dev) {
  221. retval = -ENODEV;
  222. goto exit_no_device;
  223. }
  224. /* lock this device */
  225. if ((retval = down_interruptible(&dev->sem))) {
  226. dbg(2, "%s : sem down failed", __FUNCTION__);
  227. goto exit_no_device;
  228. }
  229. /* increment our usage count for the device */
  230. ++dev->open_count;
  231. dbg(2,"%s : open count %d", __FUNCTION__, dev->open_count);
  232. /* save device in the file's private structure */
  233. file->private_data = dev;
  234. if (dev->open_count == 1) {
  235. /* initialize in direction */
  236. dev->read_buffer_length = 0;
  237. /* fixup first read by having urb waiting for it */
  238. usb_fill_int_urb(dev->interrupt_in_urb,dev->udev,
  239. usb_rcvintpipe(dev->udev,
  240. dev->interrupt_in_endpoint->bEndpointAddress),
  241. dev->interrupt_in_buffer,
  242. le16_to_cpu(dev->interrupt_in_endpoint->wMaxPacketSize),
  243. adu_interrupt_in_callback, dev,
  244. dev->interrupt_in_endpoint->bInterval);
  245. /* dev->interrupt_in_urb->transfer_flags |= URB_ASYNC_UNLINK; */
  246. dev->read_urb_finished = 0;
  247. retval = usb_submit_urb(dev->interrupt_in_urb, GFP_KERNEL);
  248. if (retval)
  249. --dev->open_count;
  250. }
  251. up(&dev->sem);
  252. exit_no_device:
  253. mutex_unlock(&disconnect_mutex);
  254. dbg(2,"%s : leave, return value %d ", __FUNCTION__, retval);
  255. return retval;
  256. }
  257. static int adu_release_internal(struct adu_device *dev)
  258. {
  259. int retval = 0;
  260. dbg(2," %s : enter", __FUNCTION__);
  261. if (dev->udev == NULL) {
  262. /* the device was unplugged before the file was released */
  263. adu_delete(dev);
  264. goto exit;
  265. }
  266. /* decrement our usage count for the device */
  267. --dev->open_count;
  268. dbg(2," %s : open count %d", __FUNCTION__, dev->open_count);
  269. if (dev->open_count <= 0) {
  270. adu_abort_transfers(dev);
  271. dev->open_count = 0;
  272. }
  273. exit:
  274. dbg(2," %s : leave", __FUNCTION__);
  275. return retval;
  276. }
  277. static int adu_release(struct inode *inode, struct file *file)
  278. {
  279. struct adu_device *dev = NULL;
  280. int retval = 0;
  281. dbg(2," %s : enter", __FUNCTION__);
  282. if (file == NULL) {
  283. dbg(1," %s : file is NULL", __FUNCTION__);
  284. retval = -ENODEV;
  285. goto exit;
  286. }
  287. dev = file->private_data;
  288. if (dev == NULL) {
  289. dbg(1," %s : object is NULL", __FUNCTION__);
  290. retval = -ENODEV;
  291. goto exit;
  292. }
  293. /* lock our device */
  294. down(&dev->sem); /* not interruptible */
  295. if (dev->open_count <= 0) {
  296. dbg(1," %s : device not opened", __FUNCTION__);
  297. retval = -ENODEV;
  298. goto exit;
  299. }
  300. /* do the work */
  301. retval = adu_release_internal(dev);
  302. exit:
  303. if (dev)
  304. up(&dev->sem);
  305. dbg(2," %s : leave, return value %d", __FUNCTION__, retval);
  306. return retval;
  307. }
  308. static ssize_t adu_read(struct file *file, __user char *buffer, size_t count,
  309. loff_t *ppos)
  310. {
  311. struct adu_device *dev;
  312. size_t bytes_read = 0;
  313. size_t bytes_to_read = count;
  314. int i;
  315. int retval = 0;
  316. int timeout = 0;
  317. int should_submit = 0;
  318. unsigned long flags;
  319. DECLARE_WAITQUEUE(wait, current);
  320. dbg(2," %s : enter, count = %Zd, file=%p", __FUNCTION__, count, file);
  321. dev = file->private_data;
  322. dbg(2," %s : dev=%p", __FUNCTION__, dev);
  323. /* lock this object */
  324. if (down_interruptible(&dev->sem))
  325. return -ERESTARTSYS;
  326. /* verify that the device wasn't unplugged */
  327. if (dev->udev == NULL || dev->minor == 0) {
  328. retval = -ENODEV;
  329. err("No device or device unplugged %d", retval);
  330. goto exit;
  331. }
  332. /* verify that some data was requested */
  333. if (count == 0) {
  334. dbg(1," %s : read request of 0 bytes", __FUNCTION__);
  335. goto exit;
  336. }
  337. timeout = COMMAND_TIMEOUT;
  338. dbg(2," %s : about to start looping", __FUNCTION__);
  339. while (bytes_to_read) {
  340. int data_in_secondary = dev->secondary_tail - dev->secondary_head;
  341. dbg(2," %s : while, data_in_secondary=%d, status=%d",
  342. __FUNCTION__, data_in_secondary,
  343. dev->interrupt_in_urb->status);
  344. if (data_in_secondary) {
  345. /* drain secondary buffer */
  346. int amount = bytes_to_read < data_in_secondary ? bytes_to_read : data_in_secondary;
  347. i = copy_to_user(buffer, dev->read_buffer_secondary+dev->secondary_head, amount);
  348. if (i < 0) {
  349. retval = -EFAULT;
  350. goto exit;
  351. }
  352. dev->secondary_head += (amount - i);
  353. bytes_read += (amount - i);
  354. bytes_to_read -= (amount - i);
  355. if (i) {
  356. retval = bytes_read ? bytes_read : -EFAULT;
  357. goto exit;
  358. }
  359. } else {
  360. /* we check the primary buffer */
  361. spin_lock_irqsave (&dev->buflock, flags);
  362. if (dev->read_buffer_length) {
  363. /* we secure access to the primary */
  364. char *tmp;
  365. dbg(2," %s : swap, read_buffer_length = %d",
  366. __FUNCTION__, dev->read_buffer_length);
  367. tmp = dev->read_buffer_secondary;
  368. dev->read_buffer_secondary = dev->read_buffer_primary;
  369. dev->read_buffer_primary = tmp;
  370. dev->secondary_head = 0;
  371. dev->secondary_tail = dev->read_buffer_length;
  372. dev->read_buffer_length = 0;
  373. spin_unlock_irqrestore(&dev->buflock, flags);
  374. /* we have a free buffer so use it */
  375. should_submit = 1;
  376. } else {
  377. /* even the primary was empty - we may need to do IO */
  378. if (dev->interrupt_in_urb->status == -EINPROGRESS) {
  379. /* somebody is doing IO */
  380. spin_unlock_irqrestore(&dev->buflock, flags);
  381. dbg(2," %s : submitted already", __FUNCTION__);
  382. } else {
  383. /* we must initiate input */
  384. dbg(2," %s : initiate input", __FUNCTION__);
  385. dev->read_urb_finished = 0;
  386. usb_fill_int_urb(dev->interrupt_in_urb,dev->udev,
  387. usb_rcvintpipe(dev->udev,
  388. dev->interrupt_in_endpoint->bEndpointAddress),
  389. dev->interrupt_in_buffer,
  390. le16_to_cpu(dev->interrupt_in_endpoint->wMaxPacketSize),
  391. adu_interrupt_in_callback,
  392. dev,
  393. dev->interrupt_in_endpoint->bInterval);
  394. retval = usb_submit_urb(dev->interrupt_in_urb, GFP_ATOMIC);
  395. if (!retval) {
  396. spin_unlock_irqrestore(&dev->buflock, flags);
  397. dbg(2," %s : submitted OK", __FUNCTION__);
  398. } else {
  399. if (retval == -ENOMEM) {
  400. retval = bytes_read ? bytes_read : -ENOMEM;
  401. }
  402. spin_unlock_irqrestore(&dev->buflock, flags);
  403. dbg(2," %s : submit failed", __FUNCTION__);
  404. goto exit;
  405. }
  406. }
  407. /* we wait for I/O to complete */
  408. set_current_state(TASK_INTERRUPTIBLE);
  409. add_wait_queue(&dev->read_wait, &wait);
  410. if (!dev->read_urb_finished)
  411. timeout = schedule_timeout(COMMAND_TIMEOUT);
  412. else
  413. set_current_state(TASK_RUNNING);
  414. remove_wait_queue(&dev->read_wait, &wait);
  415. if (timeout <= 0) {
  416. dbg(2," %s : timeout", __FUNCTION__);
  417. retval = bytes_read ? bytes_read : -ETIMEDOUT;
  418. goto exit;
  419. }
  420. if (signal_pending(current)) {
  421. dbg(2," %s : signal pending", __FUNCTION__);
  422. retval = bytes_read ? bytes_read : -EINTR;
  423. goto exit;
  424. }
  425. }
  426. }
  427. }
  428. retval = bytes_read;
  429. /* if the primary buffer is empty then use it */
  430. if (should_submit && !dev->interrupt_in_urb->status==-EINPROGRESS) {
  431. usb_fill_int_urb(dev->interrupt_in_urb,dev->udev,
  432. usb_rcvintpipe(dev->udev,
  433. dev->interrupt_in_endpoint->bEndpointAddress),
  434. dev->interrupt_in_buffer,
  435. le16_to_cpu(dev->interrupt_in_endpoint->wMaxPacketSize),
  436. adu_interrupt_in_callback,
  437. dev,
  438. dev->interrupt_in_endpoint->bInterval);
  439. /* dev->interrupt_in_urb->transfer_flags |= URB_ASYNC_UNLINK; */
  440. dev->read_urb_finished = 0;
  441. usb_submit_urb(dev->interrupt_in_urb, GFP_KERNEL);
  442. /* we ignore failure */
  443. }
  444. exit:
  445. /* unlock the device */
  446. up(&dev->sem);
  447. dbg(2," %s : leave, return value %d", __FUNCTION__, retval);
  448. return retval;
  449. }
  450. static ssize_t adu_write(struct file *file, const __user char *buffer,
  451. size_t count, loff_t *ppos)
  452. {
  453. struct adu_device *dev;
  454. size_t bytes_written = 0;
  455. size_t bytes_to_write;
  456. size_t buffer_size;
  457. int retval;
  458. int timeout = 0;
  459. dbg(2," %s : enter, count = %Zd", __FUNCTION__, count);
  460. dev = file->private_data;
  461. /* lock this object */
  462. retval = down_interruptible(&dev->sem);
  463. if (retval)
  464. goto exit_nolock;
  465. /* verify that the device wasn't unplugged */
  466. if (dev->udev == NULL || dev->minor == 0) {
  467. retval = -ENODEV;
  468. err("No device or device unplugged %d", retval);
  469. goto exit;
  470. }
  471. /* verify that we actually have some data to write */
  472. if (count == 0) {
  473. dbg(1," %s : write request of 0 bytes", __FUNCTION__);
  474. goto exit;
  475. }
  476. while (count > 0) {
  477. if (dev->interrupt_out_urb->status == -EINPROGRESS) {
  478. timeout = COMMAND_TIMEOUT;
  479. while (timeout > 0) {
  480. if (signal_pending(current)) {
  481. dbg(1," %s : interrupted", __FUNCTION__);
  482. retval = -EINTR;
  483. goto exit;
  484. }
  485. up(&dev->sem);
  486. timeout = interruptible_sleep_on_timeout(&dev->write_wait, timeout);
  487. retval = down_interruptible(&dev->sem);
  488. if (retval) {
  489. retval = bytes_written ? bytes_written : retval;
  490. goto exit_nolock;
  491. }
  492. if (timeout > 0) {
  493. break;
  494. }
  495. dbg(1," %s : interrupted timeout: %d", __FUNCTION__, timeout);
  496. }
  497. dbg(1," %s : final timeout: %d", __FUNCTION__, timeout);
  498. if (timeout == 0) {
  499. dbg(1, "%s - command timed out.", __FUNCTION__);
  500. retval = -ETIMEDOUT;
  501. goto exit;
  502. }
  503. dbg(4," %s : in progress, count = %Zd", __FUNCTION__, count);
  504. } else {
  505. dbg(4," %s : sending, count = %Zd", __FUNCTION__, count);
  506. /* write the data into interrupt_out_buffer from userspace */
  507. buffer_size = le16_to_cpu(dev->interrupt_out_endpoint->wMaxPacketSize);
  508. bytes_to_write = count > buffer_size ? buffer_size : count;
  509. dbg(4," %s : buffer_size = %Zd, count = %Zd, bytes_to_write = %Zd",
  510. __FUNCTION__, buffer_size, count, bytes_to_write);
  511. if (copy_from_user(dev->interrupt_out_buffer, buffer, bytes_to_write) != 0) {
  512. retval = -EFAULT;
  513. goto exit;
  514. }
  515. /* send off the urb */
  516. usb_fill_int_urb(
  517. dev->interrupt_out_urb,
  518. dev->udev,
  519. usb_sndintpipe(dev->udev, dev->interrupt_out_endpoint->bEndpointAddress),
  520. dev->interrupt_out_buffer,
  521. bytes_to_write,
  522. adu_interrupt_out_callback,
  523. dev,
  524. dev->interrupt_in_endpoint->bInterval);
  525. /* dev->interrupt_in_urb->transfer_flags |= URB_ASYNC_UNLINK; */
  526. dev->interrupt_out_urb->actual_length = bytes_to_write;
  527. retval = usb_submit_urb(dev->interrupt_out_urb, GFP_KERNEL);
  528. if (retval < 0) {
  529. err("Couldn't submit interrupt_out_urb %d", retval);
  530. goto exit;
  531. }
  532. buffer += bytes_to_write;
  533. count -= bytes_to_write;
  534. bytes_written += bytes_to_write;
  535. }
  536. }
  537. retval = bytes_written;
  538. exit:
  539. /* unlock the device */
  540. up(&dev->sem);
  541. exit_nolock:
  542. dbg(2," %s : leave, return value %d", __FUNCTION__, retval);
  543. return retval;
  544. }
  545. /* file operations needed when we register this driver */
  546. static const struct file_operations adu_fops = {
  547. .owner = THIS_MODULE,
  548. .read = adu_read,
  549. .write = adu_write,
  550. .open = adu_open,
  551. .release = adu_release,
  552. };
  553. /*
  554. * usb class driver info in order to get a minor number from the usb core,
  555. * and to have the device registered with devfs and the driver core
  556. */
  557. static struct usb_class_driver adu_class = {
  558. .name = "usb/adutux%d",
  559. .fops = &adu_fops,
  560. .minor_base = ADU_MINOR_BASE,
  561. };
  562. /**
  563. * adu_probe
  564. *
  565. * Called by the usb core when a new device is connected that it thinks
  566. * this driver might be interested in.
  567. */
  568. static int adu_probe(struct usb_interface *interface,
  569. const struct usb_device_id *id)
  570. {
  571. struct usb_device *udev = interface_to_usbdev(interface);
  572. struct adu_device *dev = NULL;
  573. struct usb_host_interface *iface_desc;
  574. struct usb_endpoint_descriptor *endpoint;
  575. int retval = -ENODEV;
  576. int in_end_size;
  577. int out_end_size;
  578. int i;
  579. dbg(2," %s : enter", __FUNCTION__);
  580. if (udev == NULL) {
  581. dev_err(&interface->dev, "udev is NULL.\n");
  582. goto exit;
  583. }
  584. /* allocate memory for our device state and intialize it */
  585. dev = kzalloc(sizeof(struct adu_device), GFP_KERNEL);
  586. if (dev == NULL) {
  587. dev_err(&interface->dev, "Out of memory\n");
  588. retval = -ENOMEM;
  589. goto exit;
  590. }
  591. init_MUTEX(&dev->sem);
  592. spin_lock_init(&dev->buflock);
  593. dev->udev = udev;
  594. init_waitqueue_head(&dev->read_wait);
  595. init_waitqueue_head(&dev->write_wait);
  596. iface_desc = &interface->altsetting[0];
  597. /* set up the endpoint information */
  598. for (i = 0; i < iface_desc->desc.bNumEndpoints; ++i) {
  599. endpoint = &iface_desc->endpoint[i].desc;
  600. if (usb_endpoint_is_int_in(endpoint))
  601. dev->interrupt_in_endpoint = endpoint;
  602. if (usb_endpoint_is_int_out(endpoint))
  603. dev->interrupt_out_endpoint = endpoint;
  604. }
  605. if (dev->interrupt_in_endpoint == NULL) {
  606. dev_err(&interface->dev, "interrupt in endpoint not found\n");
  607. goto error;
  608. }
  609. if (dev->interrupt_out_endpoint == NULL) {
  610. dev_err(&interface->dev, "interrupt out endpoint not found\n");
  611. goto error;
  612. }
  613. in_end_size = le16_to_cpu(dev->interrupt_in_endpoint->wMaxPacketSize);
  614. out_end_size = le16_to_cpu(dev->interrupt_out_endpoint->wMaxPacketSize);
  615. dev->read_buffer_primary = kmalloc((4 * in_end_size), GFP_KERNEL);
  616. if (!dev->read_buffer_primary) {
  617. dev_err(&interface->dev, "Couldn't allocate read_buffer_primary\n");
  618. retval = -ENOMEM;
  619. goto error;
  620. }
  621. /* debug code prime the buffer */
  622. memset(dev->read_buffer_primary, 'a', in_end_size);
  623. memset(dev->read_buffer_primary + in_end_size, 'b', in_end_size);
  624. memset(dev->read_buffer_primary + (2 * in_end_size), 'c', in_end_size);
  625. memset(dev->read_buffer_primary + (3 * in_end_size), 'd', in_end_size);
  626. dev->read_buffer_secondary = kmalloc((4 * in_end_size), GFP_KERNEL);
  627. if (!dev->read_buffer_secondary) {
  628. dev_err(&interface->dev, "Couldn't allocate read_buffer_secondary\n");
  629. retval = -ENOMEM;
  630. goto error;
  631. }
  632. /* debug code prime the buffer */
  633. memset(dev->read_buffer_secondary, 'e', in_end_size);
  634. memset(dev->read_buffer_secondary + in_end_size, 'f', in_end_size);
  635. memset(dev->read_buffer_secondary + (2 * in_end_size), 'g', in_end_size);
  636. memset(dev->read_buffer_secondary + (3 * in_end_size), 'h', in_end_size);
  637. dev->interrupt_in_buffer = kmalloc(in_end_size, GFP_KERNEL);
  638. if (!dev->interrupt_in_buffer) {
  639. dev_err(&interface->dev, "Couldn't allocate interrupt_in_buffer\n");
  640. goto error;
  641. }
  642. /* debug code prime the buffer */
  643. memset(dev->interrupt_in_buffer, 'i', in_end_size);
  644. dev->interrupt_in_urb = usb_alloc_urb(0, GFP_KERNEL);
  645. if (!dev->interrupt_in_urb) {
  646. dev_err(&interface->dev, "Couldn't allocate interrupt_in_urb\n");
  647. goto error;
  648. }
  649. dev->interrupt_out_buffer = kmalloc(out_end_size, GFP_KERNEL);
  650. if (!dev->interrupt_out_buffer) {
  651. dev_err(&interface->dev, "Couldn't allocate interrupt_out_buffer\n");
  652. goto error;
  653. }
  654. dev->interrupt_out_urb = usb_alloc_urb(0, GFP_KERNEL);
  655. if (!dev->interrupt_out_urb) {
  656. dev_err(&interface->dev, "Couldn't allocate interrupt_out_urb\n");
  657. goto error;
  658. }
  659. if (!usb_string(udev, udev->descriptor.iSerialNumber, dev->serial_number,
  660. sizeof(dev->serial_number))) {
  661. dev_err(&interface->dev, "Could not retrieve serial number\n");
  662. goto error;
  663. }
  664. dbg(2," %s : serial_number=%s", __FUNCTION__, dev->serial_number);
  665. /* we can register the device now, as it is ready */
  666. usb_set_intfdata(interface, dev);
  667. retval = usb_register_dev(interface, &adu_class);
  668. if (retval) {
  669. /* something prevented us from registering this driver */
  670. dev_err(&interface->dev, "Not able to get a minor for this device.\n");
  671. usb_set_intfdata(interface, NULL);
  672. goto error;
  673. }
  674. dev->minor = interface->minor;
  675. /* let the user know what node this device is now attached to */
  676. dev_info(&interface->dev, "ADU%d %s now attached to /dev/usb/adutux%d",
  677. udev->descriptor.idProduct, dev->serial_number,
  678. (dev->minor - ADU_MINOR_BASE));
  679. exit:
  680. dbg(2," %s : leave, return value %p (dev)", __FUNCTION__, dev);
  681. return retval;
  682. error:
  683. adu_delete(dev);
  684. return retval;
  685. }
  686. /**
  687. * adu_disconnect
  688. *
  689. * Called by the usb core when the device is removed from the system.
  690. */
  691. static void adu_disconnect(struct usb_interface *interface)
  692. {
  693. struct adu_device *dev;
  694. int minor;
  695. dbg(2," %s : enter", __FUNCTION__);
  696. mutex_lock(&disconnect_mutex); /* not interruptible */
  697. dev = usb_get_intfdata(interface);
  698. usb_set_intfdata(interface, NULL);
  699. down(&dev->sem); /* not interruptible */
  700. minor = dev->minor;
  701. /* give back our minor */
  702. usb_deregister_dev(interface, &adu_class);
  703. dev->minor = 0;
  704. /* if the device is not opened, then we clean up right now */
  705. dbg(2," %s : open count %d", __FUNCTION__, dev->open_count);
  706. if (!dev->open_count) {
  707. up(&dev->sem);
  708. adu_delete(dev);
  709. } else {
  710. dev->udev = NULL;
  711. up(&dev->sem);
  712. }
  713. mutex_unlock(&disconnect_mutex);
  714. dev_info(&interface->dev, "ADU device adutux%d now disconnected",
  715. (minor - ADU_MINOR_BASE));
  716. dbg(2," %s : leave", __FUNCTION__);
  717. }
  718. /* usb specific object needed to register this driver with the usb subsystem */
  719. static struct usb_driver adu_driver = {
  720. .name = "adutux",
  721. .probe = adu_probe,
  722. .disconnect = adu_disconnect,
  723. .id_table = device_table,
  724. };
  725. static int __init adu_init(void)
  726. {
  727. int result;
  728. dbg(2," %s : enter", __FUNCTION__);
  729. /* register this driver with the USB subsystem */
  730. result = usb_register(&adu_driver);
  731. if (result < 0) {
  732. err("usb_register failed for the "__FILE__" driver. "
  733. "Error number %d", result);
  734. goto exit;
  735. }
  736. info("adutux " DRIVER_DESC " " DRIVER_VERSION);
  737. info("adutux is an experimental driver. Use at your own risk");
  738. exit:
  739. dbg(2," %s : leave, return value %d", __FUNCTION__, result);
  740. return result;
  741. }
  742. static void __exit adu_exit(void)
  743. {
  744. dbg(2," %s : enter", __FUNCTION__);
  745. /* deregister this driver with the USB subsystem */
  746. usb_deregister(&adu_driver);
  747. dbg(2," %s : leave", __FUNCTION__);
  748. }
  749. module_init(adu_init);
  750. module_exit(adu_exit);
  751. MODULE_AUTHOR(DRIVER_AUTHOR);
  752. MODULE_DESCRIPTION(DRIVER_DESC);
  753. MODULE_LICENSE("GPL");