zd_usb.c 47 KB

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  1. /* ZD1211 USB-WLAN driver for Linux
  2. *
  3. * Copyright (C) 2005-2007 Ulrich Kunitz <kune@deine-taler.de>
  4. * Copyright (C) 2006-2007 Daniel Drake <dsd@gentoo.org>
  5. * Copyright (C) 2006-2007 Michael Wu <flamingice@sourmilk.net>
  6. *
  7. * This program is free software; you can redistribute it and/or modify
  8. * it under the terms of the GNU General Public License as published by
  9. * the Free Software Foundation; either version 2 of the License, or
  10. * (at your option) any later version.
  11. *
  12. * This program is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  15. * GNU General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU General Public License
  18. * along with this program; if not, write to the Free Software
  19. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  20. */
  21. #include <linux/kernel.h>
  22. #include <linux/init.h>
  23. #include <linux/firmware.h>
  24. #include <linux/device.h>
  25. #include <linux/errno.h>
  26. #include <linux/slab.h>
  27. #include <linux/skbuff.h>
  28. #include <linux/usb.h>
  29. #include <linux/workqueue.h>
  30. #include <net/mac80211.h>
  31. #include <asm/unaligned.h>
  32. #include "zd_def.h"
  33. #include "zd_mac.h"
  34. #include "zd_usb.h"
  35. static struct usb_device_id usb_ids[] = {
  36. /* ZD1211 */
  37. { USB_DEVICE(0x0105, 0x145f), .driver_info = DEVICE_ZD1211 },
  38. { USB_DEVICE(0x0586, 0x3401), .driver_info = DEVICE_ZD1211 },
  39. { USB_DEVICE(0x0586, 0x3402), .driver_info = DEVICE_ZD1211 },
  40. { USB_DEVICE(0x0586, 0x3407), .driver_info = DEVICE_ZD1211 },
  41. { USB_DEVICE(0x0586, 0x3409), .driver_info = DEVICE_ZD1211 },
  42. { USB_DEVICE(0x079b, 0x004a), .driver_info = DEVICE_ZD1211 },
  43. { USB_DEVICE(0x07b8, 0x6001), .driver_info = DEVICE_ZD1211 },
  44. { USB_DEVICE(0x0ace, 0x1211), .driver_info = DEVICE_ZD1211 },
  45. { USB_DEVICE(0x0ace, 0xa211), .driver_info = DEVICE_ZD1211 },
  46. { USB_DEVICE(0x0b05, 0x170c), .driver_info = DEVICE_ZD1211 },
  47. { USB_DEVICE(0x0b3b, 0x1630), .driver_info = DEVICE_ZD1211 },
  48. { USB_DEVICE(0x0b3b, 0x5630), .driver_info = DEVICE_ZD1211 },
  49. { USB_DEVICE(0x0df6, 0x9071), .driver_info = DEVICE_ZD1211 },
  50. { USB_DEVICE(0x0df6, 0x9075), .driver_info = DEVICE_ZD1211 },
  51. { USB_DEVICE(0x126f, 0xa006), .driver_info = DEVICE_ZD1211 },
  52. { USB_DEVICE(0x129b, 0x1666), .driver_info = DEVICE_ZD1211 },
  53. { USB_DEVICE(0x13b1, 0x001e), .driver_info = DEVICE_ZD1211 },
  54. { USB_DEVICE(0x1435, 0x0711), .driver_info = DEVICE_ZD1211 },
  55. { USB_DEVICE(0x14ea, 0xab10), .driver_info = DEVICE_ZD1211 },
  56. { USB_DEVICE(0x14ea, 0xab13), .driver_info = DEVICE_ZD1211 },
  57. { USB_DEVICE(0x157e, 0x300a), .driver_info = DEVICE_ZD1211 },
  58. { USB_DEVICE(0x157e, 0x300b), .driver_info = DEVICE_ZD1211 },
  59. { USB_DEVICE(0x157e, 0x3204), .driver_info = DEVICE_ZD1211 },
  60. { USB_DEVICE(0x1740, 0x2000), .driver_info = DEVICE_ZD1211 },
  61. { USB_DEVICE(0x6891, 0xa727), .driver_info = DEVICE_ZD1211 },
  62. /* ZD1211B */
  63. { USB_DEVICE(0x0053, 0x5301), .driver_info = DEVICE_ZD1211B },
  64. { USB_DEVICE(0x0409, 0x0248), .driver_info = DEVICE_ZD1211B },
  65. { USB_DEVICE(0x0411, 0x00da), .driver_info = DEVICE_ZD1211B },
  66. { USB_DEVICE(0x0471, 0x1236), .driver_info = DEVICE_ZD1211B },
  67. { USB_DEVICE(0x0471, 0x1237), .driver_info = DEVICE_ZD1211B },
  68. { USB_DEVICE(0x050d, 0x705c), .driver_info = DEVICE_ZD1211B },
  69. { USB_DEVICE(0x054c, 0x0257), .driver_info = DEVICE_ZD1211B },
  70. { USB_DEVICE(0x0586, 0x340a), .driver_info = DEVICE_ZD1211B },
  71. { USB_DEVICE(0x0586, 0x340f), .driver_info = DEVICE_ZD1211B },
  72. { USB_DEVICE(0x0586, 0x3410), .driver_info = DEVICE_ZD1211B },
  73. { USB_DEVICE(0x0586, 0x3412), .driver_info = DEVICE_ZD1211B },
  74. { USB_DEVICE(0x0586, 0x3413), .driver_info = DEVICE_ZD1211B },
  75. { USB_DEVICE(0x079b, 0x0062), .driver_info = DEVICE_ZD1211B },
  76. { USB_DEVICE(0x07b8, 0x6001), .driver_info = DEVICE_ZD1211B },
  77. { USB_DEVICE(0x07fa, 0x1196), .driver_info = DEVICE_ZD1211B },
  78. { USB_DEVICE(0x083a, 0x4505), .driver_info = DEVICE_ZD1211B },
  79. { USB_DEVICE(0x083a, 0xe501), .driver_info = DEVICE_ZD1211B },
  80. { USB_DEVICE(0x083a, 0xe503), .driver_info = DEVICE_ZD1211B },
  81. { USB_DEVICE(0x083a, 0xe506), .driver_info = DEVICE_ZD1211B },
  82. { USB_DEVICE(0x0ace, 0x1215), .driver_info = DEVICE_ZD1211B },
  83. { USB_DEVICE(0x0ace, 0xb215), .driver_info = DEVICE_ZD1211B },
  84. { USB_DEVICE(0x0b05, 0x171b), .driver_info = DEVICE_ZD1211B },
  85. { USB_DEVICE(0x0baf, 0x0121), .driver_info = DEVICE_ZD1211B },
  86. { USB_DEVICE(0x0cde, 0x001a), .driver_info = DEVICE_ZD1211B },
  87. { USB_DEVICE(0x0df6, 0x0036), .driver_info = DEVICE_ZD1211B },
  88. { USB_DEVICE(0x129b, 0x1667), .driver_info = DEVICE_ZD1211B },
  89. { USB_DEVICE(0x13b1, 0x0024), .driver_info = DEVICE_ZD1211B },
  90. { USB_DEVICE(0x157e, 0x300d), .driver_info = DEVICE_ZD1211B },
  91. { USB_DEVICE(0x1582, 0x6003), .driver_info = DEVICE_ZD1211B },
  92. { USB_DEVICE(0x2019, 0x5303), .driver_info = DEVICE_ZD1211B },
  93. { USB_DEVICE(0x2019, 0xed01), .driver_info = DEVICE_ZD1211B },
  94. /* "Driverless" devices that need ejecting */
  95. { USB_DEVICE(0x0ace, 0x2011), .driver_info = DEVICE_INSTALLER },
  96. { USB_DEVICE(0x0ace, 0x20ff), .driver_info = DEVICE_INSTALLER },
  97. {}
  98. };
  99. MODULE_LICENSE("GPL");
  100. MODULE_DESCRIPTION("USB driver for devices with the ZD1211 chip.");
  101. MODULE_AUTHOR("Ulrich Kunitz");
  102. MODULE_AUTHOR("Daniel Drake");
  103. MODULE_VERSION("1.0");
  104. MODULE_DEVICE_TABLE(usb, usb_ids);
  105. #define FW_ZD1211_PREFIX "zd1211/zd1211_"
  106. #define FW_ZD1211B_PREFIX "zd1211/zd1211b_"
  107. /* USB device initialization */
  108. static void int_urb_complete(struct urb *urb);
  109. static int request_fw_file(
  110. const struct firmware **fw, const char *name, struct device *device)
  111. {
  112. int r;
  113. dev_dbg_f(device, "fw name %s\n", name);
  114. r = request_firmware(fw, name, device);
  115. if (r)
  116. dev_err(device,
  117. "Could not load firmware file %s. Error number %d\n",
  118. name, r);
  119. return r;
  120. }
  121. static inline u16 get_bcdDevice(const struct usb_device *udev)
  122. {
  123. return le16_to_cpu(udev->descriptor.bcdDevice);
  124. }
  125. enum upload_code_flags {
  126. REBOOT = 1,
  127. };
  128. /* Ensures that MAX_TRANSFER_SIZE is even. */
  129. #define MAX_TRANSFER_SIZE (USB_MAX_TRANSFER_SIZE & ~1)
  130. static int upload_code(struct usb_device *udev,
  131. const u8 *data, size_t size, u16 code_offset, int flags)
  132. {
  133. u8 *p;
  134. int r;
  135. /* USB request blocks need "kmalloced" buffers.
  136. */
  137. p = kmalloc(MAX_TRANSFER_SIZE, GFP_KERNEL);
  138. if (!p) {
  139. dev_err(&udev->dev, "out of memory\n");
  140. r = -ENOMEM;
  141. goto error;
  142. }
  143. size &= ~1;
  144. while (size > 0) {
  145. size_t transfer_size = size <= MAX_TRANSFER_SIZE ?
  146. size : MAX_TRANSFER_SIZE;
  147. dev_dbg_f(&udev->dev, "transfer size %zu\n", transfer_size);
  148. memcpy(p, data, transfer_size);
  149. r = usb_control_msg(udev, usb_sndctrlpipe(udev, 0),
  150. USB_REQ_FIRMWARE_DOWNLOAD,
  151. USB_DIR_OUT | USB_TYPE_VENDOR,
  152. code_offset, 0, p, transfer_size, 1000 /* ms */);
  153. if (r < 0) {
  154. dev_err(&udev->dev,
  155. "USB control request for firmware upload"
  156. " failed. Error number %d\n", r);
  157. goto error;
  158. }
  159. transfer_size = r & ~1;
  160. size -= transfer_size;
  161. data += transfer_size;
  162. code_offset += transfer_size/sizeof(u16);
  163. }
  164. if (flags & REBOOT) {
  165. u8 ret;
  166. /* Use "DMA-aware" buffer. */
  167. r = usb_control_msg(udev, usb_rcvctrlpipe(udev, 0),
  168. USB_REQ_FIRMWARE_CONFIRM,
  169. USB_DIR_IN | USB_TYPE_VENDOR,
  170. 0, 0, p, sizeof(ret), 5000 /* ms */);
  171. if (r != sizeof(ret)) {
  172. dev_err(&udev->dev,
  173. "control request firmeware confirmation failed."
  174. " Return value %d\n", r);
  175. if (r >= 0)
  176. r = -ENODEV;
  177. goto error;
  178. }
  179. ret = p[0];
  180. if (ret & 0x80) {
  181. dev_err(&udev->dev,
  182. "Internal error while downloading."
  183. " Firmware confirm return value %#04x\n",
  184. (unsigned int)ret);
  185. r = -ENODEV;
  186. goto error;
  187. }
  188. dev_dbg_f(&udev->dev, "firmware confirm return value %#04x\n",
  189. (unsigned int)ret);
  190. }
  191. r = 0;
  192. error:
  193. kfree(p);
  194. return r;
  195. }
  196. static u16 get_word(const void *data, u16 offset)
  197. {
  198. const __le16 *p = data;
  199. return le16_to_cpu(p[offset]);
  200. }
  201. static char *get_fw_name(struct zd_usb *usb, char *buffer, size_t size,
  202. const char* postfix)
  203. {
  204. scnprintf(buffer, size, "%s%s",
  205. usb->is_zd1211b ?
  206. FW_ZD1211B_PREFIX : FW_ZD1211_PREFIX,
  207. postfix);
  208. return buffer;
  209. }
  210. static int handle_version_mismatch(struct zd_usb *usb,
  211. const struct firmware *ub_fw)
  212. {
  213. struct usb_device *udev = zd_usb_to_usbdev(usb);
  214. const struct firmware *ur_fw = NULL;
  215. int offset;
  216. int r = 0;
  217. char fw_name[128];
  218. r = request_fw_file(&ur_fw,
  219. get_fw_name(usb, fw_name, sizeof(fw_name), "ur"),
  220. &udev->dev);
  221. if (r)
  222. goto error;
  223. r = upload_code(udev, ur_fw->data, ur_fw->size, FW_START, REBOOT);
  224. if (r)
  225. goto error;
  226. offset = (E2P_BOOT_CODE_OFFSET * sizeof(u16));
  227. r = upload_code(udev, ub_fw->data + offset, ub_fw->size - offset,
  228. E2P_START + E2P_BOOT_CODE_OFFSET, REBOOT);
  229. /* At this point, the vendor driver downloads the whole firmware
  230. * image, hacks around with version IDs, and uploads it again,
  231. * completely overwriting the boot code. We do not do this here as
  232. * it is not required on any tested devices, and it is suspected to
  233. * cause problems. */
  234. error:
  235. release_firmware(ur_fw);
  236. return r;
  237. }
  238. static int upload_firmware(struct zd_usb *usb)
  239. {
  240. int r;
  241. u16 fw_bcdDevice;
  242. u16 bcdDevice;
  243. struct usb_device *udev = zd_usb_to_usbdev(usb);
  244. const struct firmware *ub_fw = NULL;
  245. const struct firmware *uph_fw = NULL;
  246. char fw_name[128];
  247. bcdDevice = get_bcdDevice(udev);
  248. r = request_fw_file(&ub_fw,
  249. get_fw_name(usb, fw_name, sizeof(fw_name), "ub"),
  250. &udev->dev);
  251. if (r)
  252. goto error;
  253. fw_bcdDevice = get_word(ub_fw->data, E2P_DATA_OFFSET);
  254. if (fw_bcdDevice != bcdDevice) {
  255. dev_info(&udev->dev,
  256. "firmware version %#06x and device bootcode version "
  257. "%#06x differ\n", fw_bcdDevice, bcdDevice);
  258. if (bcdDevice <= 0x4313)
  259. dev_warn(&udev->dev, "device has old bootcode, please "
  260. "report success or failure\n");
  261. r = handle_version_mismatch(usb, ub_fw);
  262. if (r)
  263. goto error;
  264. } else {
  265. dev_dbg_f(&udev->dev,
  266. "firmware device id %#06x is equal to the "
  267. "actual device id\n", fw_bcdDevice);
  268. }
  269. r = request_fw_file(&uph_fw,
  270. get_fw_name(usb, fw_name, sizeof(fw_name), "uphr"),
  271. &udev->dev);
  272. if (r)
  273. goto error;
  274. r = upload_code(udev, uph_fw->data, uph_fw->size, FW_START, REBOOT);
  275. if (r) {
  276. dev_err(&udev->dev,
  277. "Could not upload firmware code uph. Error number %d\n",
  278. r);
  279. }
  280. /* FALL-THROUGH */
  281. error:
  282. release_firmware(ub_fw);
  283. release_firmware(uph_fw);
  284. return r;
  285. }
  286. MODULE_FIRMWARE(FW_ZD1211B_PREFIX "ur");
  287. MODULE_FIRMWARE(FW_ZD1211_PREFIX "ur");
  288. MODULE_FIRMWARE(FW_ZD1211B_PREFIX "ub");
  289. MODULE_FIRMWARE(FW_ZD1211_PREFIX "ub");
  290. MODULE_FIRMWARE(FW_ZD1211B_PREFIX "uphr");
  291. MODULE_FIRMWARE(FW_ZD1211_PREFIX "uphr");
  292. /* Read data from device address space using "firmware interface" which does
  293. * not require firmware to be loaded. */
  294. int zd_usb_read_fw(struct zd_usb *usb, zd_addr_t addr, u8 *data, u16 len)
  295. {
  296. int r;
  297. struct usb_device *udev = zd_usb_to_usbdev(usb);
  298. u8 *buf;
  299. /* Use "DMA-aware" buffer. */
  300. buf = kmalloc(len, GFP_KERNEL);
  301. if (!buf)
  302. return -ENOMEM;
  303. r = usb_control_msg(udev, usb_rcvctrlpipe(udev, 0),
  304. USB_REQ_FIRMWARE_READ_DATA, USB_DIR_IN | 0x40, addr, 0,
  305. buf, len, 5000);
  306. if (r < 0) {
  307. dev_err(&udev->dev,
  308. "read over firmware interface failed: %d\n", r);
  309. goto exit;
  310. } else if (r != len) {
  311. dev_err(&udev->dev,
  312. "incomplete read over firmware interface: %d/%d\n",
  313. r, len);
  314. r = -EIO;
  315. goto exit;
  316. }
  317. r = 0;
  318. memcpy(data, buf, len);
  319. exit:
  320. kfree(buf);
  321. return r;
  322. }
  323. #define urb_dev(urb) (&(urb)->dev->dev)
  324. static inline void handle_regs_int(struct urb *urb)
  325. {
  326. struct zd_usb *usb = urb->context;
  327. struct zd_usb_interrupt *intr = &usb->intr;
  328. int len;
  329. u16 int_num;
  330. ZD_ASSERT(in_interrupt());
  331. spin_lock(&intr->lock);
  332. int_num = le16_to_cpu(*(__le16 *)(urb->transfer_buffer+2));
  333. if (int_num == CR_INTERRUPT) {
  334. struct zd_mac *mac = zd_hw_mac(zd_usb_to_hw(urb->context));
  335. spin_lock(&mac->lock);
  336. memcpy(&mac->intr_buffer, urb->transfer_buffer,
  337. USB_MAX_EP_INT_BUFFER);
  338. spin_unlock(&mac->lock);
  339. schedule_work(&mac->process_intr);
  340. } else if (intr->read_regs_enabled) {
  341. intr->read_regs.length = len = urb->actual_length;
  342. if (len > sizeof(intr->read_regs.buffer))
  343. len = sizeof(intr->read_regs.buffer);
  344. memcpy(intr->read_regs.buffer, urb->transfer_buffer, len);
  345. intr->read_regs_enabled = 0;
  346. complete(&intr->read_regs.completion);
  347. goto out;
  348. }
  349. out:
  350. spin_unlock(&intr->lock);
  351. }
  352. static void int_urb_complete(struct urb *urb)
  353. {
  354. int r;
  355. struct usb_int_header *hdr;
  356. switch (urb->status) {
  357. case 0:
  358. break;
  359. case -ESHUTDOWN:
  360. case -EINVAL:
  361. case -ENODEV:
  362. case -ENOENT:
  363. case -ECONNRESET:
  364. case -EPIPE:
  365. dev_dbg_f(urb_dev(urb), "urb %p error %d\n", urb, urb->status);
  366. return;
  367. default:
  368. dev_dbg_f(urb_dev(urb), "urb %p error %d\n", urb, urb->status);
  369. goto resubmit;
  370. }
  371. if (urb->actual_length < sizeof(hdr)) {
  372. dev_dbg_f(urb_dev(urb), "error: urb %p to small\n", urb);
  373. goto resubmit;
  374. }
  375. hdr = urb->transfer_buffer;
  376. if (hdr->type != USB_INT_TYPE) {
  377. dev_dbg_f(urb_dev(urb), "error: urb %p wrong type\n", urb);
  378. goto resubmit;
  379. }
  380. switch (hdr->id) {
  381. case USB_INT_ID_REGS:
  382. handle_regs_int(urb);
  383. break;
  384. case USB_INT_ID_RETRY_FAILED:
  385. zd_mac_tx_failed(urb);
  386. break;
  387. default:
  388. dev_dbg_f(urb_dev(urb), "error: urb %p unknown id %x\n", urb,
  389. (unsigned int)hdr->id);
  390. goto resubmit;
  391. }
  392. resubmit:
  393. r = usb_submit_urb(urb, GFP_ATOMIC);
  394. if (r) {
  395. dev_dbg_f(urb_dev(urb), "error: resubmit urb %p err code %d\n",
  396. urb, r);
  397. /* TODO: add worker to reset intr->urb */
  398. }
  399. return;
  400. }
  401. static inline int int_urb_interval(struct usb_device *udev)
  402. {
  403. switch (udev->speed) {
  404. case USB_SPEED_HIGH:
  405. return 4;
  406. case USB_SPEED_LOW:
  407. return 10;
  408. case USB_SPEED_FULL:
  409. default:
  410. return 1;
  411. }
  412. }
  413. static inline int usb_int_enabled(struct zd_usb *usb)
  414. {
  415. unsigned long flags;
  416. struct zd_usb_interrupt *intr = &usb->intr;
  417. struct urb *urb;
  418. spin_lock_irqsave(&intr->lock, flags);
  419. urb = intr->urb;
  420. spin_unlock_irqrestore(&intr->lock, flags);
  421. return urb != NULL;
  422. }
  423. int zd_usb_enable_int(struct zd_usb *usb)
  424. {
  425. int r;
  426. struct usb_device *udev = zd_usb_to_usbdev(usb);
  427. struct zd_usb_interrupt *intr = &usb->intr;
  428. struct urb *urb;
  429. dev_dbg_f(zd_usb_dev(usb), "\n");
  430. urb = usb_alloc_urb(0, GFP_KERNEL);
  431. if (!urb) {
  432. r = -ENOMEM;
  433. goto out;
  434. }
  435. ZD_ASSERT(!irqs_disabled());
  436. spin_lock_irq(&intr->lock);
  437. if (intr->urb) {
  438. spin_unlock_irq(&intr->lock);
  439. r = 0;
  440. goto error_free_urb;
  441. }
  442. intr->urb = urb;
  443. spin_unlock_irq(&intr->lock);
  444. r = -ENOMEM;
  445. intr->buffer = usb_alloc_coherent(udev, USB_MAX_EP_INT_BUFFER,
  446. GFP_KERNEL, &intr->buffer_dma);
  447. if (!intr->buffer) {
  448. dev_dbg_f(zd_usb_dev(usb),
  449. "couldn't allocate transfer_buffer\n");
  450. goto error_set_urb_null;
  451. }
  452. usb_fill_int_urb(urb, udev, usb_rcvintpipe(udev, EP_INT_IN),
  453. intr->buffer, USB_MAX_EP_INT_BUFFER,
  454. int_urb_complete, usb,
  455. intr->interval);
  456. urb->transfer_dma = intr->buffer_dma;
  457. urb->transfer_flags |= URB_NO_TRANSFER_DMA_MAP;
  458. dev_dbg_f(zd_usb_dev(usb), "submit urb %p\n", intr->urb);
  459. r = usb_submit_urb(urb, GFP_KERNEL);
  460. if (r) {
  461. dev_dbg_f(zd_usb_dev(usb),
  462. "Couldn't submit urb. Error number %d\n", r);
  463. goto error;
  464. }
  465. return 0;
  466. error:
  467. usb_free_coherent(udev, USB_MAX_EP_INT_BUFFER,
  468. intr->buffer, intr->buffer_dma);
  469. error_set_urb_null:
  470. spin_lock_irq(&intr->lock);
  471. intr->urb = NULL;
  472. spin_unlock_irq(&intr->lock);
  473. error_free_urb:
  474. usb_free_urb(urb);
  475. out:
  476. return r;
  477. }
  478. void zd_usb_disable_int(struct zd_usb *usb)
  479. {
  480. unsigned long flags;
  481. struct usb_device *udev = zd_usb_to_usbdev(usb);
  482. struct zd_usb_interrupt *intr = &usb->intr;
  483. struct urb *urb;
  484. void *buffer;
  485. dma_addr_t buffer_dma;
  486. spin_lock_irqsave(&intr->lock, flags);
  487. urb = intr->urb;
  488. if (!urb) {
  489. spin_unlock_irqrestore(&intr->lock, flags);
  490. return;
  491. }
  492. intr->urb = NULL;
  493. buffer = intr->buffer;
  494. buffer_dma = intr->buffer_dma;
  495. intr->buffer = NULL;
  496. spin_unlock_irqrestore(&intr->lock, flags);
  497. usb_kill_urb(urb);
  498. dev_dbg_f(zd_usb_dev(usb), "urb %p killed\n", urb);
  499. usb_free_urb(urb);
  500. if (buffer)
  501. usb_free_coherent(udev, USB_MAX_EP_INT_BUFFER,
  502. buffer, buffer_dma);
  503. }
  504. static void handle_rx_packet(struct zd_usb *usb, const u8 *buffer,
  505. unsigned int length)
  506. {
  507. int i;
  508. const struct rx_length_info *length_info;
  509. if (length < sizeof(struct rx_length_info)) {
  510. /* It's not a complete packet anyhow. */
  511. printk("%s: invalid, small RX packet : %d\n",
  512. __func__, length);
  513. return;
  514. }
  515. length_info = (struct rx_length_info *)
  516. (buffer + length - sizeof(struct rx_length_info));
  517. /* It might be that three frames are merged into a single URB
  518. * transaction. We have to check for the length info tag.
  519. *
  520. * While testing we discovered that length_info might be unaligned,
  521. * because if USB transactions are merged, the last packet will not
  522. * be padded. Unaligned access might also happen if the length_info
  523. * structure is not present.
  524. */
  525. if (get_unaligned_le16(&length_info->tag) == RX_LENGTH_INFO_TAG)
  526. {
  527. unsigned int l, k, n;
  528. for (i = 0, l = 0;; i++) {
  529. k = get_unaligned_le16(&length_info->length[i]);
  530. if (k == 0)
  531. return;
  532. n = l+k;
  533. if (n > length)
  534. return;
  535. zd_mac_rx(zd_usb_to_hw(usb), buffer+l, k);
  536. if (i >= 2)
  537. return;
  538. l = (n+3) & ~3;
  539. }
  540. } else {
  541. zd_mac_rx(zd_usb_to_hw(usb), buffer, length);
  542. }
  543. }
  544. static void rx_urb_complete(struct urb *urb)
  545. {
  546. int r;
  547. struct zd_usb *usb;
  548. struct zd_usb_rx *rx;
  549. const u8 *buffer;
  550. unsigned int length;
  551. switch (urb->status) {
  552. case 0:
  553. break;
  554. case -ESHUTDOWN:
  555. case -EINVAL:
  556. case -ENODEV:
  557. case -ENOENT:
  558. case -ECONNRESET:
  559. case -EPIPE:
  560. dev_dbg_f(urb_dev(urb), "urb %p error %d\n", urb, urb->status);
  561. return;
  562. default:
  563. dev_dbg_f(urb_dev(urb), "urb %p error %d\n", urb, urb->status);
  564. goto resubmit;
  565. }
  566. buffer = urb->transfer_buffer;
  567. length = urb->actual_length;
  568. usb = urb->context;
  569. rx = &usb->rx;
  570. zd_usb_reset_rx_idle_timer(usb);
  571. if (length%rx->usb_packet_size > rx->usb_packet_size-4) {
  572. /* If there is an old first fragment, we don't care. */
  573. dev_dbg_f(urb_dev(urb), "*** first fragment ***\n");
  574. ZD_ASSERT(length <= ARRAY_SIZE(rx->fragment));
  575. spin_lock(&rx->lock);
  576. memcpy(rx->fragment, buffer, length);
  577. rx->fragment_length = length;
  578. spin_unlock(&rx->lock);
  579. goto resubmit;
  580. }
  581. spin_lock(&rx->lock);
  582. if (rx->fragment_length > 0) {
  583. /* We are on a second fragment, we believe */
  584. ZD_ASSERT(length + rx->fragment_length <=
  585. ARRAY_SIZE(rx->fragment));
  586. dev_dbg_f(urb_dev(urb), "*** second fragment ***\n");
  587. memcpy(rx->fragment+rx->fragment_length, buffer, length);
  588. handle_rx_packet(usb, rx->fragment,
  589. rx->fragment_length + length);
  590. rx->fragment_length = 0;
  591. spin_unlock(&rx->lock);
  592. } else {
  593. spin_unlock(&rx->lock);
  594. handle_rx_packet(usb, buffer, length);
  595. }
  596. resubmit:
  597. r = usb_submit_urb(urb, GFP_ATOMIC);
  598. if (r)
  599. dev_dbg_f(urb_dev(urb), "urb %p resubmit error %d\n", urb, r);
  600. }
  601. static struct urb *alloc_rx_urb(struct zd_usb *usb)
  602. {
  603. struct usb_device *udev = zd_usb_to_usbdev(usb);
  604. struct urb *urb;
  605. void *buffer;
  606. urb = usb_alloc_urb(0, GFP_KERNEL);
  607. if (!urb)
  608. return NULL;
  609. buffer = usb_alloc_coherent(udev, USB_MAX_RX_SIZE, GFP_KERNEL,
  610. &urb->transfer_dma);
  611. if (!buffer) {
  612. usb_free_urb(urb);
  613. return NULL;
  614. }
  615. usb_fill_bulk_urb(urb, udev, usb_rcvbulkpipe(udev, EP_DATA_IN),
  616. buffer, USB_MAX_RX_SIZE,
  617. rx_urb_complete, usb);
  618. urb->transfer_flags |= URB_NO_TRANSFER_DMA_MAP;
  619. return urb;
  620. }
  621. static void free_rx_urb(struct urb *urb)
  622. {
  623. if (!urb)
  624. return;
  625. usb_free_coherent(urb->dev, urb->transfer_buffer_length,
  626. urb->transfer_buffer, urb->transfer_dma);
  627. usb_free_urb(urb);
  628. }
  629. static int __zd_usb_enable_rx(struct zd_usb *usb)
  630. {
  631. int i, r;
  632. struct zd_usb_rx *rx = &usb->rx;
  633. struct urb **urbs;
  634. dev_dbg_f(zd_usb_dev(usb), "\n");
  635. r = -ENOMEM;
  636. urbs = kcalloc(RX_URBS_COUNT, sizeof(struct urb *), GFP_KERNEL);
  637. if (!urbs)
  638. goto error;
  639. for (i = 0; i < RX_URBS_COUNT; i++) {
  640. urbs[i] = alloc_rx_urb(usb);
  641. if (!urbs[i])
  642. goto error;
  643. }
  644. ZD_ASSERT(!irqs_disabled());
  645. spin_lock_irq(&rx->lock);
  646. if (rx->urbs) {
  647. spin_unlock_irq(&rx->lock);
  648. r = 0;
  649. goto error;
  650. }
  651. rx->urbs = urbs;
  652. rx->urbs_count = RX_URBS_COUNT;
  653. spin_unlock_irq(&rx->lock);
  654. for (i = 0; i < RX_URBS_COUNT; i++) {
  655. r = usb_submit_urb(urbs[i], GFP_KERNEL);
  656. if (r)
  657. goto error_submit;
  658. }
  659. return 0;
  660. error_submit:
  661. for (i = 0; i < RX_URBS_COUNT; i++) {
  662. usb_kill_urb(urbs[i]);
  663. }
  664. spin_lock_irq(&rx->lock);
  665. rx->urbs = NULL;
  666. rx->urbs_count = 0;
  667. spin_unlock_irq(&rx->lock);
  668. error:
  669. if (urbs) {
  670. for (i = 0; i < RX_URBS_COUNT; i++)
  671. free_rx_urb(urbs[i]);
  672. }
  673. return r;
  674. }
  675. int zd_usb_enable_rx(struct zd_usb *usb)
  676. {
  677. int r;
  678. struct zd_usb_rx *rx = &usb->rx;
  679. mutex_lock(&rx->setup_mutex);
  680. r = __zd_usb_enable_rx(usb);
  681. mutex_unlock(&rx->setup_mutex);
  682. zd_usb_reset_rx_idle_timer(usb);
  683. return r;
  684. }
  685. static void __zd_usb_disable_rx(struct zd_usb *usb)
  686. {
  687. int i;
  688. unsigned long flags;
  689. struct urb **urbs;
  690. unsigned int count;
  691. struct zd_usb_rx *rx = &usb->rx;
  692. spin_lock_irqsave(&rx->lock, flags);
  693. urbs = rx->urbs;
  694. count = rx->urbs_count;
  695. spin_unlock_irqrestore(&rx->lock, flags);
  696. if (!urbs)
  697. return;
  698. for (i = 0; i < count; i++) {
  699. usb_kill_urb(urbs[i]);
  700. free_rx_urb(urbs[i]);
  701. }
  702. kfree(urbs);
  703. spin_lock_irqsave(&rx->lock, flags);
  704. rx->urbs = NULL;
  705. rx->urbs_count = 0;
  706. spin_unlock_irqrestore(&rx->lock, flags);
  707. }
  708. void zd_usb_disable_rx(struct zd_usb *usb)
  709. {
  710. struct zd_usb_rx *rx = &usb->rx;
  711. mutex_lock(&rx->setup_mutex);
  712. __zd_usb_disable_rx(usb);
  713. mutex_unlock(&rx->setup_mutex);
  714. cancel_delayed_work_sync(&rx->idle_work);
  715. }
  716. static void zd_usb_reset_rx(struct zd_usb *usb)
  717. {
  718. bool do_reset;
  719. struct zd_usb_rx *rx = &usb->rx;
  720. unsigned long flags;
  721. mutex_lock(&rx->setup_mutex);
  722. spin_lock_irqsave(&rx->lock, flags);
  723. do_reset = rx->urbs != NULL;
  724. spin_unlock_irqrestore(&rx->lock, flags);
  725. if (do_reset) {
  726. __zd_usb_disable_rx(usb);
  727. __zd_usb_enable_rx(usb);
  728. }
  729. mutex_unlock(&rx->setup_mutex);
  730. if (do_reset)
  731. zd_usb_reset_rx_idle_timer(usb);
  732. }
  733. /**
  734. * zd_usb_disable_tx - disable transmission
  735. * @usb: the zd1211rw-private USB structure
  736. *
  737. * Frees all URBs in the free list and marks the transmission as disabled.
  738. */
  739. void zd_usb_disable_tx(struct zd_usb *usb)
  740. {
  741. struct zd_usb_tx *tx = &usb->tx;
  742. unsigned long flags;
  743. atomic_set(&tx->enabled, 0);
  744. /* kill all submitted tx-urbs */
  745. usb_kill_anchored_urbs(&tx->submitted);
  746. spin_lock_irqsave(&tx->lock, flags);
  747. WARN_ON(!skb_queue_empty(&tx->submitted_skbs));
  748. WARN_ON(tx->submitted_urbs != 0);
  749. tx->submitted_urbs = 0;
  750. spin_unlock_irqrestore(&tx->lock, flags);
  751. /* The stopped state is ignored, relying on ieee80211_wake_queues()
  752. * in a potentionally following zd_usb_enable_tx().
  753. */
  754. }
  755. /**
  756. * zd_usb_enable_tx - enables transmission
  757. * @usb: a &struct zd_usb pointer
  758. *
  759. * This function enables transmission and prepares the &zd_usb_tx data
  760. * structure.
  761. */
  762. void zd_usb_enable_tx(struct zd_usb *usb)
  763. {
  764. unsigned long flags;
  765. struct zd_usb_tx *tx = &usb->tx;
  766. spin_lock_irqsave(&tx->lock, flags);
  767. atomic_set(&tx->enabled, 1);
  768. tx->submitted_urbs = 0;
  769. ieee80211_wake_queues(zd_usb_to_hw(usb));
  770. tx->stopped = 0;
  771. spin_unlock_irqrestore(&tx->lock, flags);
  772. }
  773. static void tx_dec_submitted_urbs(struct zd_usb *usb)
  774. {
  775. struct zd_usb_tx *tx = &usb->tx;
  776. unsigned long flags;
  777. spin_lock_irqsave(&tx->lock, flags);
  778. --tx->submitted_urbs;
  779. if (tx->stopped && tx->submitted_urbs <= ZD_USB_TX_LOW) {
  780. ieee80211_wake_queues(zd_usb_to_hw(usb));
  781. tx->stopped = 0;
  782. }
  783. spin_unlock_irqrestore(&tx->lock, flags);
  784. }
  785. static void tx_inc_submitted_urbs(struct zd_usb *usb)
  786. {
  787. struct zd_usb_tx *tx = &usb->tx;
  788. unsigned long flags;
  789. spin_lock_irqsave(&tx->lock, flags);
  790. ++tx->submitted_urbs;
  791. if (!tx->stopped && tx->submitted_urbs > ZD_USB_TX_HIGH) {
  792. ieee80211_stop_queues(zd_usb_to_hw(usb));
  793. tx->stopped = 1;
  794. }
  795. spin_unlock_irqrestore(&tx->lock, flags);
  796. }
  797. /**
  798. * tx_urb_complete - completes the execution of an URB
  799. * @urb: a URB
  800. *
  801. * This function is called if the URB has been transferred to a device or an
  802. * error has happened.
  803. */
  804. static void tx_urb_complete(struct urb *urb)
  805. {
  806. int r;
  807. struct sk_buff *skb;
  808. struct ieee80211_tx_info *info;
  809. struct zd_usb *usb;
  810. struct zd_usb_tx *tx;
  811. skb = (struct sk_buff *)urb->context;
  812. info = IEEE80211_SKB_CB(skb);
  813. /*
  814. * grab 'usb' pointer before handing off the skb (since
  815. * it might be freed by zd_mac_tx_to_dev or mac80211)
  816. */
  817. usb = &zd_hw_mac(info->rate_driver_data[0])->chip.usb;
  818. tx = &usb->tx;
  819. switch (urb->status) {
  820. case 0:
  821. break;
  822. case -ESHUTDOWN:
  823. case -EINVAL:
  824. case -ENODEV:
  825. case -ENOENT:
  826. case -ECONNRESET:
  827. case -EPIPE:
  828. dev_dbg_f(urb_dev(urb), "urb %p error %d\n", urb, urb->status);
  829. break;
  830. default:
  831. dev_dbg_f(urb_dev(urb), "urb %p error %d\n", urb, urb->status);
  832. goto resubmit;
  833. }
  834. free_urb:
  835. skb_unlink(skb, &usb->tx.submitted_skbs);
  836. zd_mac_tx_to_dev(skb, urb->status);
  837. usb_free_urb(urb);
  838. tx_dec_submitted_urbs(usb);
  839. return;
  840. resubmit:
  841. usb_anchor_urb(urb, &tx->submitted);
  842. r = usb_submit_urb(urb, GFP_ATOMIC);
  843. if (r) {
  844. usb_unanchor_urb(urb);
  845. dev_dbg_f(urb_dev(urb), "error resubmit urb %p %d\n", urb, r);
  846. goto free_urb;
  847. }
  848. }
  849. /**
  850. * zd_usb_tx: initiates transfer of a frame of the device
  851. *
  852. * @usb: the zd1211rw-private USB structure
  853. * @skb: a &struct sk_buff pointer
  854. *
  855. * This function tranmits a frame to the device. It doesn't wait for
  856. * completion. The frame must contain the control set and have all the
  857. * control set information available.
  858. *
  859. * The function returns 0 if the transfer has been successfully initiated.
  860. */
  861. int zd_usb_tx(struct zd_usb *usb, struct sk_buff *skb)
  862. {
  863. int r;
  864. struct ieee80211_tx_info *info = IEEE80211_SKB_CB(skb);
  865. struct usb_device *udev = zd_usb_to_usbdev(usb);
  866. struct urb *urb;
  867. struct zd_usb_tx *tx = &usb->tx;
  868. if (!atomic_read(&tx->enabled)) {
  869. r = -ENOENT;
  870. goto out;
  871. }
  872. urb = usb_alloc_urb(0, GFP_ATOMIC);
  873. if (!urb) {
  874. r = -ENOMEM;
  875. goto out;
  876. }
  877. usb_fill_bulk_urb(urb, udev, usb_sndbulkpipe(udev, EP_DATA_OUT),
  878. skb->data, skb->len, tx_urb_complete, skb);
  879. info->rate_driver_data[1] = (void *)jiffies;
  880. skb_queue_tail(&tx->submitted_skbs, skb);
  881. usb_anchor_urb(urb, &tx->submitted);
  882. r = usb_submit_urb(urb, GFP_ATOMIC);
  883. if (r) {
  884. dev_dbg_f(zd_usb_dev(usb), "error submit urb %p %d\n", urb, r);
  885. usb_unanchor_urb(urb);
  886. skb_unlink(skb, &tx->submitted_skbs);
  887. goto error;
  888. }
  889. tx_inc_submitted_urbs(usb);
  890. return 0;
  891. error:
  892. usb_free_urb(urb);
  893. out:
  894. return r;
  895. }
  896. static bool zd_tx_timeout(struct zd_usb *usb)
  897. {
  898. struct zd_usb_tx *tx = &usb->tx;
  899. struct sk_buff_head *q = &tx->submitted_skbs;
  900. struct sk_buff *skb, *skbnext;
  901. struct ieee80211_tx_info *info;
  902. unsigned long flags, trans_start;
  903. bool have_timedout = false;
  904. spin_lock_irqsave(&q->lock, flags);
  905. skb_queue_walk_safe(q, skb, skbnext) {
  906. info = IEEE80211_SKB_CB(skb);
  907. trans_start = (unsigned long)info->rate_driver_data[1];
  908. if (time_is_before_jiffies(trans_start + ZD_TX_TIMEOUT)) {
  909. have_timedout = true;
  910. break;
  911. }
  912. }
  913. spin_unlock_irqrestore(&q->lock, flags);
  914. return have_timedout;
  915. }
  916. static void zd_tx_watchdog_handler(struct work_struct *work)
  917. {
  918. struct zd_usb *usb =
  919. container_of(work, struct zd_usb, tx.watchdog_work.work);
  920. struct zd_usb_tx *tx = &usb->tx;
  921. if (!atomic_read(&tx->enabled) || !tx->watchdog_enabled)
  922. goto out;
  923. if (!zd_tx_timeout(usb))
  924. goto out;
  925. /* TX halted, try reset */
  926. dev_warn(zd_usb_dev(usb), "TX-stall detected, reseting device...");
  927. usb_queue_reset_device(usb->intf);
  928. /* reset will stop this worker, don't rearm */
  929. return;
  930. out:
  931. queue_delayed_work(zd_workqueue, &tx->watchdog_work,
  932. ZD_TX_WATCHDOG_INTERVAL);
  933. }
  934. void zd_tx_watchdog_enable(struct zd_usb *usb)
  935. {
  936. struct zd_usb_tx *tx = &usb->tx;
  937. if (!tx->watchdog_enabled) {
  938. dev_dbg_f(zd_usb_dev(usb), "\n");
  939. queue_delayed_work(zd_workqueue, &tx->watchdog_work,
  940. ZD_TX_WATCHDOG_INTERVAL);
  941. tx->watchdog_enabled = 1;
  942. }
  943. }
  944. void zd_tx_watchdog_disable(struct zd_usb *usb)
  945. {
  946. struct zd_usb_tx *tx = &usb->tx;
  947. if (tx->watchdog_enabled) {
  948. dev_dbg_f(zd_usb_dev(usb), "\n");
  949. tx->watchdog_enabled = 0;
  950. cancel_delayed_work_sync(&tx->watchdog_work);
  951. }
  952. }
  953. static void zd_rx_idle_timer_handler(struct work_struct *work)
  954. {
  955. struct zd_usb *usb =
  956. container_of(work, struct zd_usb, rx.idle_work.work);
  957. struct zd_mac *mac = zd_usb_to_mac(usb);
  958. if (!test_bit(ZD_DEVICE_RUNNING, &mac->flags))
  959. return;
  960. dev_dbg_f(zd_usb_dev(usb), "\n");
  961. /* 30 seconds since last rx, reset rx */
  962. zd_usb_reset_rx(usb);
  963. }
  964. void zd_usb_reset_rx_idle_timer(struct zd_usb *usb)
  965. {
  966. struct zd_usb_rx *rx = &usb->rx;
  967. cancel_delayed_work(&rx->idle_work);
  968. queue_delayed_work(zd_workqueue, &rx->idle_work, ZD_RX_IDLE_INTERVAL);
  969. }
  970. static inline void init_usb_interrupt(struct zd_usb *usb)
  971. {
  972. struct zd_usb_interrupt *intr = &usb->intr;
  973. spin_lock_init(&intr->lock);
  974. intr->interval = int_urb_interval(zd_usb_to_usbdev(usb));
  975. init_completion(&intr->read_regs.completion);
  976. intr->read_regs.cr_int_addr = cpu_to_le16((u16)CR_INTERRUPT);
  977. }
  978. static inline void init_usb_rx(struct zd_usb *usb)
  979. {
  980. struct zd_usb_rx *rx = &usb->rx;
  981. spin_lock_init(&rx->lock);
  982. mutex_init(&rx->setup_mutex);
  983. if (interface_to_usbdev(usb->intf)->speed == USB_SPEED_HIGH) {
  984. rx->usb_packet_size = 512;
  985. } else {
  986. rx->usb_packet_size = 64;
  987. }
  988. ZD_ASSERT(rx->fragment_length == 0);
  989. INIT_DELAYED_WORK(&rx->idle_work, zd_rx_idle_timer_handler);
  990. }
  991. static inline void init_usb_tx(struct zd_usb *usb)
  992. {
  993. struct zd_usb_tx *tx = &usb->tx;
  994. spin_lock_init(&tx->lock);
  995. atomic_set(&tx->enabled, 0);
  996. tx->stopped = 0;
  997. skb_queue_head_init(&tx->submitted_skbs);
  998. init_usb_anchor(&tx->submitted);
  999. tx->submitted_urbs = 0;
  1000. tx->watchdog_enabled = 0;
  1001. INIT_DELAYED_WORK(&tx->watchdog_work, zd_tx_watchdog_handler);
  1002. }
  1003. void zd_usb_init(struct zd_usb *usb, struct ieee80211_hw *hw,
  1004. struct usb_interface *intf)
  1005. {
  1006. memset(usb, 0, sizeof(*usb));
  1007. usb->intf = usb_get_intf(intf);
  1008. usb_set_intfdata(usb->intf, hw);
  1009. init_usb_anchor(&usb->submitted_cmds);
  1010. init_usb_interrupt(usb);
  1011. init_usb_tx(usb);
  1012. init_usb_rx(usb);
  1013. }
  1014. void zd_usb_clear(struct zd_usb *usb)
  1015. {
  1016. usb_set_intfdata(usb->intf, NULL);
  1017. usb_put_intf(usb->intf);
  1018. ZD_MEMCLEAR(usb, sizeof(*usb));
  1019. /* FIXME: usb_interrupt, usb_tx, usb_rx? */
  1020. }
  1021. static const char *speed(enum usb_device_speed speed)
  1022. {
  1023. switch (speed) {
  1024. case USB_SPEED_LOW:
  1025. return "low";
  1026. case USB_SPEED_FULL:
  1027. return "full";
  1028. case USB_SPEED_HIGH:
  1029. return "high";
  1030. default:
  1031. return "unknown speed";
  1032. }
  1033. }
  1034. static int scnprint_id(struct usb_device *udev, char *buffer, size_t size)
  1035. {
  1036. return scnprintf(buffer, size, "%04hx:%04hx v%04hx %s",
  1037. le16_to_cpu(udev->descriptor.idVendor),
  1038. le16_to_cpu(udev->descriptor.idProduct),
  1039. get_bcdDevice(udev),
  1040. speed(udev->speed));
  1041. }
  1042. int zd_usb_scnprint_id(struct zd_usb *usb, char *buffer, size_t size)
  1043. {
  1044. struct usb_device *udev = interface_to_usbdev(usb->intf);
  1045. return scnprint_id(udev, buffer, size);
  1046. }
  1047. #ifdef DEBUG
  1048. static void print_id(struct usb_device *udev)
  1049. {
  1050. char buffer[40];
  1051. scnprint_id(udev, buffer, sizeof(buffer));
  1052. buffer[sizeof(buffer)-1] = 0;
  1053. dev_dbg_f(&udev->dev, "%s\n", buffer);
  1054. }
  1055. #else
  1056. #define print_id(udev) do { } while (0)
  1057. #endif
  1058. static int eject_installer(struct usb_interface *intf)
  1059. {
  1060. struct usb_device *udev = interface_to_usbdev(intf);
  1061. struct usb_host_interface *iface_desc = &intf->altsetting[0];
  1062. struct usb_endpoint_descriptor *endpoint;
  1063. unsigned char *cmd;
  1064. u8 bulk_out_ep;
  1065. int r;
  1066. /* Find bulk out endpoint */
  1067. for (r = 1; r >= 0; r--) {
  1068. endpoint = &iface_desc->endpoint[r].desc;
  1069. if (usb_endpoint_dir_out(endpoint) &&
  1070. usb_endpoint_xfer_bulk(endpoint)) {
  1071. bulk_out_ep = endpoint->bEndpointAddress;
  1072. break;
  1073. }
  1074. }
  1075. if (r == -1) {
  1076. dev_err(&udev->dev,
  1077. "zd1211rw: Could not find bulk out endpoint\n");
  1078. return -ENODEV;
  1079. }
  1080. cmd = kzalloc(31, GFP_KERNEL);
  1081. if (cmd == NULL)
  1082. return -ENODEV;
  1083. /* USB bulk command block */
  1084. cmd[0] = 0x55; /* bulk command signature */
  1085. cmd[1] = 0x53; /* bulk command signature */
  1086. cmd[2] = 0x42; /* bulk command signature */
  1087. cmd[3] = 0x43; /* bulk command signature */
  1088. cmd[14] = 6; /* command length */
  1089. cmd[15] = 0x1b; /* SCSI command: START STOP UNIT */
  1090. cmd[19] = 0x2; /* eject disc */
  1091. dev_info(&udev->dev, "Ejecting virtual installer media...\n");
  1092. r = usb_bulk_msg(udev, usb_sndbulkpipe(udev, bulk_out_ep),
  1093. cmd, 31, NULL, 2000);
  1094. kfree(cmd);
  1095. if (r)
  1096. return r;
  1097. /* At this point, the device disconnects and reconnects with the real
  1098. * ID numbers. */
  1099. usb_set_intfdata(intf, NULL);
  1100. return 0;
  1101. }
  1102. int zd_usb_init_hw(struct zd_usb *usb)
  1103. {
  1104. int r;
  1105. struct zd_mac *mac = zd_usb_to_mac(usb);
  1106. dev_dbg_f(zd_usb_dev(usb), "\n");
  1107. r = upload_firmware(usb);
  1108. if (r) {
  1109. dev_err(zd_usb_dev(usb),
  1110. "couldn't load firmware. Error number %d\n", r);
  1111. return r;
  1112. }
  1113. r = usb_reset_configuration(zd_usb_to_usbdev(usb));
  1114. if (r) {
  1115. dev_dbg_f(zd_usb_dev(usb),
  1116. "couldn't reset configuration. Error number %d\n", r);
  1117. return r;
  1118. }
  1119. r = zd_mac_init_hw(mac->hw);
  1120. if (r) {
  1121. dev_dbg_f(zd_usb_dev(usb),
  1122. "couldn't initialize mac. Error number %d\n", r);
  1123. return r;
  1124. }
  1125. usb->initialized = 1;
  1126. return 0;
  1127. }
  1128. static int probe(struct usb_interface *intf, const struct usb_device_id *id)
  1129. {
  1130. int r;
  1131. struct usb_device *udev = interface_to_usbdev(intf);
  1132. struct zd_usb *usb;
  1133. struct ieee80211_hw *hw = NULL;
  1134. print_id(udev);
  1135. if (id->driver_info & DEVICE_INSTALLER)
  1136. return eject_installer(intf);
  1137. switch (udev->speed) {
  1138. case USB_SPEED_LOW:
  1139. case USB_SPEED_FULL:
  1140. case USB_SPEED_HIGH:
  1141. break;
  1142. default:
  1143. dev_dbg_f(&intf->dev, "Unknown USB speed\n");
  1144. r = -ENODEV;
  1145. goto error;
  1146. }
  1147. r = usb_reset_device(udev);
  1148. if (r) {
  1149. dev_err(&intf->dev,
  1150. "couldn't reset usb device. Error number %d\n", r);
  1151. goto error;
  1152. }
  1153. hw = zd_mac_alloc_hw(intf);
  1154. if (hw == NULL) {
  1155. r = -ENOMEM;
  1156. goto error;
  1157. }
  1158. usb = &zd_hw_mac(hw)->chip.usb;
  1159. usb->is_zd1211b = (id->driver_info == DEVICE_ZD1211B) != 0;
  1160. r = zd_mac_preinit_hw(hw);
  1161. if (r) {
  1162. dev_dbg_f(&intf->dev,
  1163. "couldn't initialize mac. Error number %d\n", r);
  1164. goto error;
  1165. }
  1166. r = ieee80211_register_hw(hw);
  1167. if (r) {
  1168. dev_dbg_f(&intf->dev,
  1169. "couldn't register device. Error number %d\n", r);
  1170. goto error;
  1171. }
  1172. dev_dbg_f(&intf->dev, "successful\n");
  1173. dev_info(&intf->dev, "%s\n", wiphy_name(hw->wiphy));
  1174. return 0;
  1175. error:
  1176. usb_reset_device(interface_to_usbdev(intf));
  1177. if (hw) {
  1178. zd_mac_clear(zd_hw_mac(hw));
  1179. ieee80211_free_hw(hw);
  1180. }
  1181. return r;
  1182. }
  1183. static void disconnect(struct usb_interface *intf)
  1184. {
  1185. struct ieee80211_hw *hw = zd_intf_to_hw(intf);
  1186. struct zd_mac *mac;
  1187. struct zd_usb *usb;
  1188. /* Either something really bad happened, or we're just dealing with
  1189. * a DEVICE_INSTALLER. */
  1190. if (hw == NULL)
  1191. return;
  1192. mac = zd_hw_mac(hw);
  1193. usb = &mac->chip.usb;
  1194. dev_dbg_f(zd_usb_dev(usb), "\n");
  1195. ieee80211_unregister_hw(hw);
  1196. /* Just in case something has gone wrong! */
  1197. zd_usb_disable_tx(usb);
  1198. zd_usb_disable_rx(usb);
  1199. zd_usb_disable_int(usb);
  1200. /* If the disconnect has been caused by a removal of the
  1201. * driver module, the reset allows reloading of the driver. If the
  1202. * reset will not be executed here, the upload of the firmware in the
  1203. * probe function caused by the reloading of the driver will fail.
  1204. */
  1205. usb_reset_device(interface_to_usbdev(intf));
  1206. zd_mac_clear(mac);
  1207. ieee80211_free_hw(hw);
  1208. dev_dbg(&intf->dev, "disconnected\n");
  1209. }
  1210. static void zd_usb_resume(struct zd_usb *usb)
  1211. {
  1212. struct zd_mac *mac = zd_usb_to_mac(usb);
  1213. int r;
  1214. dev_dbg_f(zd_usb_dev(usb), "\n");
  1215. r = zd_op_start(zd_usb_to_hw(usb));
  1216. if (r < 0) {
  1217. dev_warn(zd_usb_dev(usb), "Device resume failed "
  1218. "with error code %d. Retrying...\n", r);
  1219. if (usb->was_running)
  1220. set_bit(ZD_DEVICE_RUNNING, &mac->flags);
  1221. usb_queue_reset_device(usb->intf);
  1222. return;
  1223. }
  1224. if (mac->type != NL80211_IFTYPE_UNSPECIFIED) {
  1225. r = zd_restore_settings(mac);
  1226. if (r < 0) {
  1227. dev_dbg(zd_usb_dev(usb),
  1228. "failed to restore settings, %d\n", r);
  1229. return;
  1230. }
  1231. }
  1232. }
  1233. static void zd_usb_stop(struct zd_usb *usb)
  1234. {
  1235. dev_dbg_f(zd_usb_dev(usb), "\n");
  1236. zd_op_stop(zd_usb_to_hw(usb));
  1237. zd_usb_disable_tx(usb);
  1238. zd_usb_disable_rx(usb);
  1239. zd_usb_disable_int(usb);
  1240. usb->initialized = 0;
  1241. }
  1242. static int pre_reset(struct usb_interface *intf)
  1243. {
  1244. struct ieee80211_hw *hw = usb_get_intfdata(intf);
  1245. struct zd_mac *mac;
  1246. struct zd_usb *usb;
  1247. if (!hw || intf->condition != USB_INTERFACE_BOUND)
  1248. return 0;
  1249. mac = zd_hw_mac(hw);
  1250. usb = &mac->chip.usb;
  1251. usb->was_running = test_bit(ZD_DEVICE_RUNNING, &mac->flags);
  1252. zd_usb_stop(usb);
  1253. mutex_lock(&mac->chip.mutex);
  1254. return 0;
  1255. }
  1256. static int post_reset(struct usb_interface *intf)
  1257. {
  1258. struct ieee80211_hw *hw = usb_get_intfdata(intf);
  1259. struct zd_mac *mac;
  1260. struct zd_usb *usb;
  1261. if (!hw || intf->condition != USB_INTERFACE_BOUND)
  1262. return 0;
  1263. mac = zd_hw_mac(hw);
  1264. usb = &mac->chip.usb;
  1265. mutex_unlock(&mac->chip.mutex);
  1266. if (usb->was_running)
  1267. zd_usb_resume(usb);
  1268. return 0;
  1269. }
  1270. static struct usb_driver driver = {
  1271. .name = KBUILD_MODNAME,
  1272. .id_table = usb_ids,
  1273. .probe = probe,
  1274. .disconnect = disconnect,
  1275. .pre_reset = pre_reset,
  1276. .post_reset = post_reset,
  1277. };
  1278. struct workqueue_struct *zd_workqueue;
  1279. static int __init usb_init(void)
  1280. {
  1281. int r;
  1282. pr_debug("%s usb_init()\n", driver.name);
  1283. zd_workqueue = create_singlethread_workqueue(driver.name);
  1284. if (zd_workqueue == NULL) {
  1285. printk(KERN_ERR "%s couldn't create workqueue\n", driver.name);
  1286. return -ENOMEM;
  1287. }
  1288. r = usb_register(&driver);
  1289. if (r) {
  1290. destroy_workqueue(zd_workqueue);
  1291. printk(KERN_ERR "%s usb_register() failed. Error number %d\n",
  1292. driver.name, r);
  1293. return r;
  1294. }
  1295. pr_debug("%s initialized\n", driver.name);
  1296. return 0;
  1297. }
  1298. static void __exit usb_exit(void)
  1299. {
  1300. pr_debug("%s usb_exit()\n", driver.name);
  1301. usb_deregister(&driver);
  1302. destroy_workqueue(zd_workqueue);
  1303. }
  1304. module_init(usb_init);
  1305. module_exit(usb_exit);
  1306. static int usb_int_regs_length(unsigned int count)
  1307. {
  1308. return sizeof(struct usb_int_regs) + count * sizeof(struct reg_data);
  1309. }
  1310. static void prepare_read_regs_int(struct zd_usb *usb)
  1311. {
  1312. struct zd_usb_interrupt *intr = &usb->intr;
  1313. spin_lock_irq(&intr->lock);
  1314. intr->read_regs_enabled = 1;
  1315. INIT_COMPLETION(intr->read_regs.completion);
  1316. spin_unlock_irq(&intr->lock);
  1317. }
  1318. static void disable_read_regs_int(struct zd_usb *usb)
  1319. {
  1320. struct zd_usb_interrupt *intr = &usb->intr;
  1321. spin_lock_irq(&intr->lock);
  1322. intr->read_regs_enabled = 0;
  1323. spin_unlock_irq(&intr->lock);
  1324. }
  1325. static int get_results(struct zd_usb *usb, u16 *values,
  1326. struct usb_req_read_regs *req, unsigned int count)
  1327. {
  1328. int r;
  1329. int i;
  1330. struct zd_usb_interrupt *intr = &usb->intr;
  1331. struct read_regs_int *rr = &intr->read_regs;
  1332. struct usb_int_regs *regs = (struct usb_int_regs *)rr->buffer;
  1333. spin_lock_irq(&intr->lock);
  1334. r = -EIO;
  1335. /* The created block size seems to be larger than expected.
  1336. * However results appear to be correct.
  1337. */
  1338. if (rr->length < usb_int_regs_length(count)) {
  1339. dev_dbg_f(zd_usb_dev(usb),
  1340. "error: actual length %d less than expected %d\n",
  1341. rr->length, usb_int_regs_length(count));
  1342. goto error_unlock;
  1343. }
  1344. if (rr->length > sizeof(rr->buffer)) {
  1345. dev_dbg_f(zd_usb_dev(usb),
  1346. "error: actual length %d exceeds buffer size %zu\n",
  1347. rr->length, sizeof(rr->buffer));
  1348. goto error_unlock;
  1349. }
  1350. for (i = 0; i < count; i++) {
  1351. struct reg_data *rd = &regs->regs[i];
  1352. if (rd->addr != req->addr[i]) {
  1353. dev_dbg_f(zd_usb_dev(usb),
  1354. "rd[%d] addr %#06hx expected %#06hx\n", i,
  1355. le16_to_cpu(rd->addr),
  1356. le16_to_cpu(req->addr[i]));
  1357. goto error_unlock;
  1358. }
  1359. values[i] = le16_to_cpu(rd->value);
  1360. }
  1361. r = 0;
  1362. error_unlock:
  1363. spin_unlock_irq(&intr->lock);
  1364. return r;
  1365. }
  1366. int zd_usb_ioread16v(struct zd_usb *usb, u16 *values,
  1367. const zd_addr_t *addresses, unsigned int count)
  1368. {
  1369. int r;
  1370. int i, req_len, actual_req_len;
  1371. struct usb_device *udev;
  1372. struct usb_req_read_regs *req = NULL;
  1373. unsigned long timeout;
  1374. if (count < 1) {
  1375. dev_dbg_f(zd_usb_dev(usb), "error: count is zero\n");
  1376. return -EINVAL;
  1377. }
  1378. if (count > USB_MAX_IOREAD16_COUNT) {
  1379. dev_dbg_f(zd_usb_dev(usb),
  1380. "error: count %u exceeds possible max %u\n",
  1381. count, USB_MAX_IOREAD16_COUNT);
  1382. return -EINVAL;
  1383. }
  1384. if (in_atomic()) {
  1385. dev_dbg_f(zd_usb_dev(usb),
  1386. "error: io in atomic context not supported\n");
  1387. return -EWOULDBLOCK;
  1388. }
  1389. if (!usb_int_enabled(usb)) {
  1390. dev_dbg_f(zd_usb_dev(usb),
  1391. "error: usb interrupt not enabled\n");
  1392. return -EWOULDBLOCK;
  1393. }
  1394. ZD_ASSERT(mutex_is_locked(&zd_usb_to_chip(usb)->mutex));
  1395. BUILD_BUG_ON(sizeof(struct usb_req_read_regs) + USB_MAX_IOREAD16_COUNT *
  1396. sizeof(__le16) > sizeof(usb->req_buf));
  1397. BUG_ON(sizeof(struct usb_req_read_regs) + count * sizeof(__le16) >
  1398. sizeof(usb->req_buf));
  1399. req_len = sizeof(struct usb_req_read_regs) + count * sizeof(__le16);
  1400. req = (void *)usb->req_buf;
  1401. req->id = cpu_to_le16(USB_REQ_READ_REGS);
  1402. for (i = 0; i < count; i++)
  1403. req->addr[i] = cpu_to_le16((u16)addresses[i]);
  1404. udev = zd_usb_to_usbdev(usb);
  1405. prepare_read_regs_int(usb);
  1406. r = usb_interrupt_msg(udev, usb_sndintpipe(udev, EP_REGS_OUT),
  1407. req, req_len, &actual_req_len, 50 /* ms */);
  1408. if (r) {
  1409. dev_dbg_f(zd_usb_dev(usb),
  1410. "error in usb_interrupt_msg(). Error number %d\n", r);
  1411. goto error;
  1412. }
  1413. if (req_len != actual_req_len) {
  1414. dev_dbg_f(zd_usb_dev(usb), "error in usb_interrupt_msg()\n"
  1415. " req_len %d != actual_req_len %d\n",
  1416. req_len, actual_req_len);
  1417. r = -EIO;
  1418. goto error;
  1419. }
  1420. timeout = wait_for_completion_timeout(&usb->intr.read_regs.completion,
  1421. msecs_to_jiffies(50));
  1422. if (!timeout) {
  1423. disable_read_regs_int(usb);
  1424. dev_dbg_f(zd_usb_dev(usb), "read timed out\n");
  1425. r = -ETIMEDOUT;
  1426. goto error;
  1427. }
  1428. r = get_results(usb, values, req, count);
  1429. error:
  1430. return r;
  1431. }
  1432. static void iowrite16v_urb_complete(struct urb *urb)
  1433. {
  1434. struct zd_usb *usb = urb->context;
  1435. if (urb->status && !usb->cmd_error)
  1436. usb->cmd_error = urb->status;
  1437. }
  1438. static int zd_submit_waiting_urb(struct zd_usb *usb, bool last)
  1439. {
  1440. int r = 0;
  1441. struct urb *urb = usb->urb_async_waiting;
  1442. if (!urb)
  1443. return 0;
  1444. usb->urb_async_waiting = NULL;
  1445. if (!last)
  1446. urb->transfer_flags |= URB_NO_INTERRUPT;
  1447. usb_anchor_urb(urb, &usb->submitted_cmds);
  1448. r = usb_submit_urb(urb, GFP_KERNEL);
  1449. if (r) {
  1450. usb_unanchor_urb(urb);
  1451. dev_dbg_f(zd_usb_dev(usb),
  1452. "error in usb_submit_urb(). Error number %d\n", r);
  1453. goto error;
  1454. }
  1455. /* fall-through with r == 0 */
  1456. error:
  1457. usb_free_urb(urb);
  1458. return r;
  1459. }
  1460. void zd_usb_iowrite16v_async_start(struct zd_usb *usb)
  1461. {
  1462. ZD_ASSERT(usb_anchor_empty(&usb->submitted_cmds));
  1463. ZD_ASSERT(usb->urb_async_waiting == NULL);
  1464. ZD_ASSERT(!usb->in_async);
  1465. ZD_ASSERT(mutex_is_locked(&zd_usb_to_chip(usb)->mutex));
  1466. usb->in_async = 1;
  1467. usb->cmd_error = 0;
  1468. usb->urb_async_waiting = NULL;
  1469. }
  1470. int zd_usb_iowrite16v_async_end(struct zd_usb *usb, unsigned int timeout)
  1471. {
  1472. int r;
  1473. ZD_ASSERT(mutex_is_locked(&zd_usb_to_chip(usb)->mutex));
  1474. ZD_ASSERT(usb->in_async);
  1475. /* Submit last iowrite16v URB */
  1476. r = zd_submit_waiting_urb(usb, true);
  1477. if (r) {
  1478. dev_dbg_f(zd_usb_dev(usb),
  1479. "error in zd_submit_waiting_usb(). "
  1480. "Error number %d\n", r);
  1481. usb_kill_anchored_urbs(&usb->submitted_cmds);
  1482. goto error;
  1483. }
  1484. if (timeout)
  1485. timeout = usb_wait_anchor_empty_timeout(&usb->submitted_cmds,
  1486. timeout);
  1487. if (!timeout) {
  1488. usb_kill_anchored_urbs(&usb->submitted_cmds);
  1489. if (usb->cmd_error == -ENOENT) {
  1490. dev_dbg_f(zd_usb_dev(usb), "timed out");
  1491. r = -ETIMEDOUT;
  1492. goto error;
  1493. }
  1494. }
  1495. r = usb->cmd_error;
  1496. error:
  1497. usb->in_async = 0;
  1498. return r;
  1499. }
  1500. int zd_usb_iowrite16v_async(struct zd_usb *usb, const struct zd_ioreq16 *ioreqs,
  1501. unsigned int count)
  1502. {
  1503. int r;
  1504. struct usb_device *udev;
  1505. struct usb_req_write_regs *req = NULL;
  1506. int i, req_len;
  1507. struct urb *urb;
  1508. struct usb_host_endpoint *ep;
  1509. ZD_ASSERT(mutex_is_locked(&zd_usb_to_chip(usb)->mutex));
  1510. ZD_ASSERT(usb->in_async);
  1511. if (count == 0)
  1512. return 0;
  1513. if (count > USB_MAX_IOWRITE16_COUNT) {
  1514. dev_dbg_f(zd_usb_dev(usb),
  1515. "error: count %u exceeds possible max %u\n",
  1516. count, USB_MAX_IOWRITE16_COUNT);
  1517. return -EINVAL;
  1518. }
  1519. if (in_atomic()) {
  1520. dev_dbg_f(zd_usb_dev(usb),
  1521. "error: io in atomic context not supported\n");
  1522. return -EWOULDBLOCK;
  1523. }
  1524. udev = zd_usb_to_usbdev(usb);
  1525. ep = usb_pipe_endpoint(udev, usb_sndintpipe(udev, EP_REGS_OUT));
  1526. if (!ep)
  1527. return -ENOENT;
  1528. urb = usb_alloc_urb(0, GFP_KERNEL);
  1529. if (!urb)
  1530. return -ENOMEM;
  1531. req_len = sizeof(struct usb_req_write_regs) +
  1532. count * sizeof(struct reg_data);
  1533. req = kmalloc(req_len, GFP_KERNEL);
  1534. if (!req) {
  1535. r = -ENOMEM;
  1536. goto error;
  1537. }
  1538. req->id = cpu_to_le16(USB_REQ_WRITE_REGS);
  1539. for (i = 0; i < count; i++) {
  1540. struct reg_data *rw = &req->reg_writes[i];
  1541. rw->addr = cpu_to_le16((u16)ioreqs[i].addr);
  1542. rw->value = cpu_to_le16(ioreqs[i].value);
  1543. }
  1544. usb_fill_int_urb(urb, udev, usb_sndintpipe(udev, EP_REGS_OUT),
  1545. req, req_len, iowrite16v_urb_complete, usb,
  1546. ep->desc.bInterval);
  1547. urb->transfer_flags |= URB_FREE_BUFFER | URB_SHORT_NOT_OK;
  1548. /* Submit previous URB */
  1549. r = zd_submit_waiting_urb(usb, false);
  1550. if (r) {
  1551. dev_dbg_f(zd_usb_dev(usb),
  1552. "error in zd_submit_waiting_usb(). "
  1553. "Error number %d\n", r);
  1554. goto error;
  1555. }
  1556. /* Delay submit so that URB_NO_INTERRUPT flag can be set for all URBs
  1557. * of currect batch except for very last.
  1558. */
  1559. usb->urb_async_waiting = urb;
  1560. return 0;
  1561. error:
  1562. usb_free_urb(urb);
  1563. return r;
  1564. }
  1565. int zd_usb_iowrite16v(struct zd_usb *usb, const struct zd_ioreq16 *ioreqs,
  1566. unsigned int count)
  1567. {
  1568. int r;
  1569. zd_usb_iowrite16v_async_start(usb);
  1570. r = zd_usb_iowrite16v_async(usb, ioreqs, count);
  1571. if (r) {
  1572. zd_usb_iowrite16v_async_end(usb, 0);
  1573. return r;
  1574. }
  1575. return zd_usb_iowrite16v_async_end(usb, 50 /* ms */);
  1576. }
  1577. int zd_usb_rfwrite(struct zd_usb *usb, u32 value, u8 bits)
  1578. {
  1579. int r;
  1580. struct usb_device *udev;
  1581. struct usb_req_rfwrite *req = NULL;
  1582. int i, req_len, actual_req_len;
  1583. u16 bit_value_template;
  1584. if (in_atomic()) {
  1585. dev_dbg_f(zd_usb_dev(usb),
  1586. "error: io in atomic context not supported\n");
  1587. return -EWOULDBLOCK;
  1588. }
  1589. if (bits < USB_MIN_RFWRITE_BIT_COUNT) {
  1590. dev_dbg_f(zd_usb_dev(usb),
  1591. "error: bits %d are smaller than"
  1592. " USB_MIN_RFWRITE_BIT_COUNT %d\n",
  1593. bits, USB_MIN_RFWRITE_BIT_COUNT);
  1594. return -EINVAL;
  1595. }
  1596. if (bits > USB_MAX_RFWRITE_BIT_COUNT) {
  1597. dev_dbg_f(zd_usb_dev(usb),
  1598. "error: bits %d exceed USB_MAX_RFWRITE_BIT_COUNT %d\n",
  1599. bits, USB_MAX_RFWRITE_BIT_COUNT);
  1600. return -EINVAL;
  1601. }
  1602. #ifdef DEBUG
  1603. if (value & (~0UL << bits)) {
  1604. dev_dbg_f(zd_usb_dev(usb),
  1605. "error: value %#09x has bits >= %d set\n",
  1606. value, bits);
  1607. return -EINVAL;
  1608. }
  1609. #endif /* DEBUG */
  1610. dev_dbg_f(zd_usb_dev(usb), "value %#09x bits %d\n", value, bits);
  1611. r = zd_usb_ioread16(usb, &bit_value_template, CR203);
  1612. if (r) {
  1613. dev_dbg_f(zd_usb_dev(usb),
  1614. "error %d: Couldn't read CR203\n", r);
  1615. return r;
  1616. }
  1617. bit_value_template &= ~(RF_IF_LE|RF_CLK|RF_DATA);
  1618. ZD_ASSERT(mutex_is_locked(&zd_usb_to_chip(usb)->mutex));
  1619. BUILD_BUG_ON(sizeof(struct usb_req_rfwrite) +
  1620. USB_MAX_RFWRITE_BIT_COUNT * sizeof(__le16) >
  1621. sizeof(usb->req_buf));
  1622. BUG_ON(sizeof(struct usb_req_rfwrite) + bits * sizeof(__le16) >
  1623. sizeof(usb->req_buf));
  1624. req_len = sizeof(struct usb_req_rfwrite) + bits * sizeof(__le16);
  1625. req = (void *)usb->req_buf;
  1626. req->id = cpu_to_le16(USB_REQ_WRITE_RF);
  1627. /* 1: 3683a, but not used in ZYDAS driver */
  1628. req->value = cpu_to_le16(2);
  1629. req->bits = cpu_to_le16(bits);
  1630. for (i = 0; i < bits; i++) {
  1631. u16 bv = bit_value_template;
  1632. if (value & (1 << (bits-1-i)))
  1633. bv |= RF_DATA;
  1634. req->bit_values[i] = cpu_to_le16(bv);
  1635. }
  1636. udev = zd_usb_to_usbdev(usb);
  1637. r = usb_interrupt_msg(udev, usb_sndintpipe(udev, EP_REGS_OUT),
  1638. req, req_len, &actual_req_len, 50 /* ms */);
  1639. if (r) {
  1640. dev_dbg_f(zd_usb_dev(usb),
  1641. "error in usb_interrupt_msg(). Error number %d\n", r);
  1642. goto out;
  1643. }
  1644. if (req_len != actual_req_len) {
  1645. dev_dbg_f(zd_usb_dev(usb), "error in usb_interrupt_msg()"
  1646. " req_len %d != actual_req_len %d\n",
  1647. req_len, actual_req_len);
  1648. r = -EIO;
  1649. goto out;
  1650. }
  1651. /* FALL-THROUGH with r == 0 */
  1652. out:
  1653. return r;
  1654. }