imon.c 64 KB

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  1. /*
  2. * imon.c: input and display driver for SoundGraph iMON IR/VFD/LCD
  3. *
  4. * Copyright(C) 2010 Jarod Wilson <jarod@wilsonet.com>
  5. * Portions based on the original lirc_imon driver,
  6. * Copyright(C) 2004 Venky Raju(dev@venky.ws)
  7. *
  8. * Huge thanks to R. Geoff Newbury for invaluable debugging on the
  9. * 0xffdc iMON devices, and for sending me one to hack on, without
  10. * which the support for them wouldn't be nearly as good. Thanks
  11. * also to the numerous 0xffdc device owners that tested auto-config
  12. * support for me and provided debug dumps from their devices.
  13. *
  14. * imon is free software; you can redistribute it and/or modify
  15. * it under the terms of the GNU General Public License as published by
  16. * the Free Software Foundation; either version 2 of the License, or
  17. * (at your option) any later version.
  18. *
  19. * This program is distributed in the hope that it will be useful,
  20. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  21. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  22. * GNU General Public License for more details.
  23. *
  24. * You should have received a copy of the GNU General Public License
  25. * along with this program; if not, write to the Free Software
  26. * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  27. */
  28. #define pr_fmt(fmt) KBUILD_MODNAME ":%s: " fmt, __func__
  29. #include <linux/errno.h>
  30. #include <linux/init.h>
  31. #include <linux/kernel.h>
  32. #include <linux/module.h>
  33. #include <linux/slab.h>
  34. #include <linux/uaccess.h>
  35. #include <linux/input.h>
  36. #include <linux/usb.h>
  37. #include <linux/usb/input.h>
  38. #include <media/rc-core.h>
  39. #include <linux/time.h>
  40. #include <linux/timer.h>
  41. #define MOD_AUTHOR "Jarod Wilson <jarod@wilsonet.com>"
  42. #define MOD_DESC "Driver for SoundGraph iMON MultiMedia IR/Display"
  43. #define MOD_NAME "imon"
  44. #define MOD_VERSION "0.9.2"
  45. #define DISPLAY_MINOR_BASE 144
  46. #define DEVICE_NAME "lcd%d"
  47. #define BUF_CHUNK_SIZE 8
  48. #define BUF_SIZE 128
  49. #define BIT_DURATION 250 /* each bit received is 250us */
  50. #define IMON_CLOCK_ENABLE_PACKETS 2
  51. /*** P R O T O T Y P E S ***/
  52. /* USB Callback prototypes */
  53. static int imon_probe(struct usb_interface *interface,
  54. const struct usb_device_id *id);
  55. static void imon_disconnect(struct usb_interface *interface);
  56. static void usb_rx_callback_intf0(struct urb *urb);
  57. static void usb_rx_callback_intf1(struct urb *urb);
  58. static void usb_tx_callback(struct urb *urb);
  59. /* suspend/resume support */
  60. static int imon_resume(struct usb_interface *intf);
  61. static int imon_suspend(struct usb_interface *intf, pm_message_t message);
  62. /* Display file_operations function prototypes */
  63. static int display_open(struct inode *inode, struct file *file);
  64. static int display_close(struct inode *inode, struct file *file);
  65. /* VFD write operation */
  66. static ssize_t vfd_write(struct file *file, const char *buf,
  67. size_t n_bytes, loff_t *pos);
  68. /* LCD file_operations override function prototypes */
  69. static ssize_t lcd_write(struct file *file, const char *buf,
  70. size_t n_bytes, loff_t *pos);
  71. /*** G L O B A L S ***/
  72. struct imon_context {
  73. struct device *dev;
  74. /* Newer devices have two interfaces */
  75. struct usb_device *usbdev_intf0;
  76. struct usb_device *usbdev_intf1;
  77. bool display_supported; /* not all controllers do */
  78. bool display_isopen; /* display port has been opened */
  79. bool rf_device; /* true if iMON 2.4G LT/DT RF device */
  80. bool rf_isassociating; /* RF remote associating */
  81. bool dev_present_intf0; /* USB device presence, interface 0 */
  82. bool dev_present_intf1; /* USB device presence, interface 1 */
  83. struct mutex lock; /* to lock this object */
  84. wait_queue_head_t remove_ok; /* For unexpected USB disconnects */
  85. struct usb_endpoint_descriptor *rx_endpoint_intf0;
  86. struct usb_endpoint_descriptor *rx_endpoint_intf1;
  87. struct usb_endpoint_descriptor *tx_endpoint;
  88. struct urb *rx_urb_intf0;
  89. struct urb *rx_urb_intf1;
  90. struct urb *tx_urb;
  91. bool tx_control;
  92. unsigned char usb_rx_buf[8];
  93. unsigned char usb_tx_buf[8];
  94. struct tx_t {
  95. unsigned char data_buf[35]; /* user data buffer */
  96. struct completion finished; /* wait for write to finish */
  97. bool busy; /* write in progress */
  98. int status; /* status of tx completion */
  99. } tx;
  100. u16 vendor; /* usb vendor ID */
  101. u16 product; /* usb product ID */
  102. struct rc_dev *rdev; /* rc-core device for remote */
  103. struct input_dev *idev; /* input device for panel & IR mouse */
  104. struct input_dev *touch; /* input device for touchscreen */
  105. spinlock_t kc_lock; /* make sure we get keycodes right */
  106. u32 kc; /* current input keycode */
  107. u32 last_keycode; /* last reported input keycode */
  108. u32 rc_scancode; /* the computed remote scancode */
  109. u8 rc_toggle; /* the computed remote toggle bit */
  110. u64 rc_type; /* iMON or MCE (RC6) IR protocol? */
  111. bool release_code; /* some keys send a release code */
  112. u8 display_type; /* store the display type */
  113. bool pad_mouse; /* toggle kbd(0)/mouse(1) mode */
  114. char name_rdev[128]; /* rc input device name */
  115. char phys_rdev[64]; /* rc input device phys path */
  116. char name_idev[128]; /* input device name */
  117. char phys_idev[64]; /* input device phys path */
  118. char name_touch[128]; /* touch screen name */
  119. char phys_touch[64]; /* touch screen phys path */
  120. struct timer_list ttimer; /* touch screen timer */
  121. int touch_x; /* x coordinate on touchscreen */
  122. int touch_y; /* y coordinate on touchscreen */
  123. };
  124. #define TOUCH_TIMEOUT (HZ/30)
  125. /* vfd character device file operations */
  126. static const struct file_operations vfd_fops = {
  127. .owner = THIS_MODULE,
  128. .open = &display_open,
  129. .write = &vfd_write,
  130. .release = &display_close,
  131. .llseek = noop_llseek,
  132. };
  133. /* lcd character device file operations */
  134. static const struct file_operations lcd_fops = {
  135. .owner = THIS_MODULE,
  136. .open = &display_open,
  137. .write = &lcd_write,
  138. .release = &display_close,
  139. .llseek = noop_llseek,
  140. };
  141. enum {
  142. IMON_DISPLAY_TYPE_AUTO = 0,
  143. IMON_DISPLAY_TYPE_VFD = 1,
  144. IMON_DISPLAY_TYPE_LCD = 2,
  145. IMON_DISPLAY_TYPE_VGA = 3,
  146. IMON_DISPLAY_TYPE_NONE = 4,
  147. };
  148. enum {
  149. IMON_KEY_IMON = 0,
  150. IMON_KEY_MCE = 1,
  151. IMON_KEY_PANEL = 2,
  152. };
  153. /*
  154. * USB Device ID for iMON USB Control Boards
  155. *
  156. * The Windows drivers contain 6 different inf files, more or less one for
  157. * each new device until the 0x0034-0x0046 devices, which all use the same
  158. * driver. Some of the devices in the 34-46 range haven't been definitively
  159. * identified yet. Early devices have either a TriGem Computer, Inc. or a
  160. * Samsung vendor ID (0x0aa8 and 0x04e8 respectively), while all later
  161. * devices use the SoundGraph vendor ID (0x15c2). This driver only supports
  162. * the ffdc and later devices, which do onboard decoding.
  163. */
  164. static struct usb_device_id imon_usb_id_table[] = {
  165. /*
  166. * Several devices with this same device ID, all use iMON_PAD.inf
  167. * SoundGraph iMON PAD (IR & VFD)
  168. * SoundGraph iMON PAD (IR & LCD)
  169. * SoundGraph iMON Knob (IR only)
  170. */
  171. { USB_DEVICE(0x15c2, 0xffdc) },
  172. /*
  173. * Newer devices, all driven by the latest iMON Windows driver, full
  174. * list of device IDs extracted via 'strings Setup/data1.hdr |grep 15c2'
  175. * Need user input to fill in details on unknown devices.
  176. */
  177. /* SoundGraph iMON OEM Touch LCD (IR & 7" VGA LCD) */
  178. { USB_DEVICE(0x15c2, 0x0034) },
  179. /* SoundGraph iMON OEM Touch LCD (IR & 4.3" VGA LCD) */
  180. { USB_DEVICE(0x15c2, 0x0035) },
  181. /* SoundGraph iMON OEM VFD (IR & VFD) */
  182. { USB_DEVICE(0x15c2, 0x0036) },
  183. /* device specifics unknown */
  184. { USB_DEVICE(0x15c2, 0x0037) },
  185. /* SoundGraph iMON OEM LCD (IR & LCD) */
  186. { USB_DEVICE(0x15c2, 0x0038) },
  187. /* SoundGraph iMON UltraBay (IR & LCD) */
  188. { USB_DEVICE(0x15c2, 0x0039) },
  189. /* device specifics unknown */
  190. { USB_DEVICE(0x15c2, 0x003a) },
  191. /* device specifics unknown */
  192. { USB_DEVICE(0x15c2, 0x003b) },
  193. /* SoundGraph iMON OEM Inside (IR only) */
  194. { USB_DEVICE(0x15c2, 0x003c) },
  195. /* device specifics unknown */
  196. { USB_DEVICE(0x15c2, 0x003d) },
  197. /* device specifics unknown */
  198. { USB_DEVICE(0x15c2, 0x003e) },
  199. /* device specifics unknown */
  200. { USB_DEVICE(0x15c2, 0x003f) },
  201. /* device specifics unknown */
  202. { USB_DEVICE(0x15c2, 0x0040) },
  203. /* SoundGraph iMON MINI (IR only) */
  204. { USB_DEVICE(0x15c2, 0x0041) },
  205. /* Antec Veris Multimedia Station EZ External (IR only) */
  206. { USB_DEVICE(0x15c2, 0x0042) },
  207. /* Antec Veris Multimedia Station Basic Internal (IR only) */
  208. { USB_DEVICE(0x15c2, 0x0043) },
  209. /* Antec Veris Multimedia Station Elite (IR & VFD) */
  210. { USB_DEVICE(0x15c2, 0x0044) },
  211. /* Antec Veris Multimedia Station Premiere (IR & LCD) */
  212. { USB_DEVICE(0x15c2, 0x0045) },
  213. /* device specifics unknown */
  214. { USB_DEVICE(0x15c2, 0x0046) },
  215. {}
  216. };
  217. /* USB Device data */
  218. static struct usb_driver imon_driver = {
  219. .name = MOD_NAME,
  220. .probe = imon_probe,
  221. .disconnect = imon_disconnect,
  222. .suspend = imon_suspend,
  223. .resume = imon_resume,
  224. .id_table = imon_usb_id_table,
  225. };
  226. static struct usb_class_driver imon_vfd_class = {
  227. .name = DEVICE_NAME,
  228. .fops = &vfd_fops,
  229. .minor_base = DISPLAY_MINOR_BASE,
  230. };
  231. static struct usb_class_driver imon_lcd_class = {
  232. .name = DEVICE_NAME,
  233. .fops = &lcd_fops,
  234. .minor_base = DISPLAY_MINOR_BASE,
  235. };
  236. /* imon receiver front panel/knob key table */
  237. static const struct {
  238. u64 hw_code;
  239. u32 keycode;
  240. } imon_panel_key_table[] = {
  241. { 0x000000000f00ffeell, KEY_MEDIA }, /* Go */
  242. { 0x000000001200ffeell, KEY_UP },
  243. { 0x000000001300ffeell, KEY_DOWN },
  244. { 0x000000001400ffeell, KEY_LEFT },
  245. { 0x000000001500ffeell, KEY_RIGHT },
  246. { 0x000000001600ffeell, KEY_ENTER },
  247. { 0x000000001700ffeell, KEY_ESC },
  248. { 0x000000001f00ffeell, KEY_AUDIO },
  249. { 0x000000002000ffeell, KEY_VIDEO },
  250. { 0x000000002100ffeell, KEY_CAMERA },
  251. { 0x000000002700ffeell, KEY_DVD },
  252. { 0x000000002300ffeell, KEY_TV },
  253. { 0x000000002b00ffeell, KEY_EXIT },
  254. { 0x000000002c00ffeell, KEY_SELECT },
  255. { 0x000000002d00ffeell, KEY_MENU },
  256. { 0x000000000500ffeell, KEY_PREVIOUS },
  257. { 0x000000000700ffeell, KEY_REWIND },
  258. { 0x000000000400ffeell, KEY_STOP },
  259. { 0x000000003c00ffeell, KEY_PLAYPAUSE },
  260. { 0x000000000800ffeell, KEY_FASTFORWARD },
  261. { 0x000000000600ffeell, KEY_NEXT },
  262. { 0x000000010000ffeell, KEY_RIGHT },
  263. { 0x000001000000ffeell, KEY_LEFT },
  264. { 0x000000003d00ffeell, KEY_SELECT },
  265. { 0x000100000000ffeell, KEY_VOLUMEUP },
  266. { 0x010000000000ffeell, KEY_VOLUMEDOWN },
  267. { 0x000000000100ffeell, KEY_MUTE },
  268. /* 0xffdc iMON MCE VFD */
  269. { 0x00010000ffffffeell, KEY_VOLUMEUP },
  270. { 0x01000000ffffffeell, KEY_VOLUMEDOWN },
  271. /* iMON Knob values */
  272. { 0x000100ffffffffeell, KEY_VOLUMEUP },
  273. { 0x010000ffffffffeell, KEY_VOLUMEDOWN },
  274. { 0x000008ffffffffeell, KEY_MUTE },
  275. };
  276. /* to prevent races between open() and disconnect(), probing, etc */
  277. static DEFINE_MUTEX(driver_lock);
  278. /* Module bookkeeping bits */
  279. MODULE_AUTHOR(MOD_AUTHOR);
  280. MODULE_DESCRIPTION(MOD_DESC);
  281. MODULE_VERSION(MOD_VERSION);
  282. MODULE_LICENSE("GPL");
  283. MODULE_DEVICE_TABLE(usb, imon_usb_id_table);
  284. static bool debug;
  285. module_param(debug, bool, S_IRUGO | S_IWUSR);
  286. MODULE_PARM_DESC(debug, "Debug messages: 0=no, 1=yes (default: no)");
  287. /* lcd, vfd, vga or none? should be auto-detected, but can be overridden... */
  288. static int display_type;
  289. module_param(display_type, int, S_IRUGO);
  290. MODULE_PARM_DESC(display_type, "Type of attached display. 0=autodetect, "
  291. "1=vfd, 2=lcd, 3=vga, 4=none (default: autodetect)");
  292. static int pad_stabilize = 1;
  293. module_param(pad_stabilize, int, S_IRUGO | S_IWUSR);
  294. MODULE_PARM_DESC(pad_stabilize, "Apply stabilization algorithm to iMON PAD "
  295. "presses in arrow key mode. 0=disable, 1=enable (default).");
  296. /*
  297. * In certain use cases, mouse mode isn't really helpful, and could actually
  298. * cause confusion, so allow disabling it when the IR device is open.
  299. */
  300. static bool nomouse;
  301. module_param(nomouse, bool, S_IRUGO | S_IWUSR);
  302. MODULE_PARM_DESC(nomouse, "Disable mouse input device mode when IR device is "
  303. "open. 0=don't disable, 1=disable. (default: don't disable)");
  304. /* threshold at which a pad push registers as an arrow key in kbd mode */
  305. static int pad_thresh;
  306. module_param(pad_thresh, int, S_IRUGO | S_IWUSR);
  307. MODULE_PARM_DESC(pad_thresh, "Threshold at which a pad push registers as an "
  308. "arrow key in kbd mode (default: 28)");
  309. static void free_imon_context(struct imon_context *ictx)
  310. {
  311. struct device *dev = ictx->dev;
  312. usb_free_urb(ictx->tx_urb);
  313. usb_free_urb(ictx->rx_urb_intf0);
  314. usb_free_urb(ictx->rx_urb_intf1);
  315. kfree(ictx);
  316. dev_dbg(dev, "%s: iMON context freed\n", __func__);
  317. }
  318. /**
  319. * Called when the Display device (e.g. /dev/lcd0)
  320. * is opened by the application.
  321. */
  322. static int display_open(struct inode *inode, struct file *file)
  323. {
  324. struct usb_interface *interface;
  325. struct imon_context *ictx = NULL;
  326. int subminor;
  327. int retval = 0;
  328. /* prevent races with disconnect */
  329. mutex_lock(&driver_lock);
  330. subminor = iminor(inode);
  331. interface = usb_find_interface(&imon_driver, subminor);
  332. if (!interface) {
  333. pr_err("could not find interface for minor %d\n", subminor);
  334. retval = -ENODEV;
  335. goto exit;
  336. }
  337. ictx = usb_get_intfdata(interface);
  338. if (!ictx) {
  339. pr_err("no context found for minor %d\n", subminor);
  340. retval = -ENODEV;
  341. goto exit;
  342. }
  343. mutex_lock(&ictx->lock);
  344. if (!ictx->display_supported) {
  345. pr_err("display not supported by device\n");
  346. retval = -ENODEV;
  347. } else if (ictx->display_isopen) {
  348. pr_err("display port is already open\n");
  349. retval = -EBUSY;
  350. } else {
  351. ictx->display_isopen = true;
  352. file->private_data = ictx;
  353. dev_dbg(ictx->dev, "display port opened\n");
  354. }
  355. mutex_unlock(&ictx->lock);
  356. exit:
  357. mutex_unlock(&driver_lock);
  358. return retval;
  359. }
  360. /**
  361. * Called when the display device (e.g. /dev/lcd0)
  362. * is closed by the application.
  363. */
  364. static int display_close(struct inode *inode, struct file *file)
  365. {
  366. struct imon_context *ictx = NULL;
  367. int retval = 0;
  368. ictx = file->private_data;
  369. if (!ictx) {
  370. pr_err("no context for device\n");
  371. return -ENODEV;
  372. }
  373. mutex_lock(&ictx->lock);
  374. if (!ictx->display_supported) {
  375. pr_err("display not supported by device\n");
  376. retval = -ENODEV;
  377. } else if (!ictx->display_isopen) {
  378. pr_err("display is not open\n");
  379. retval = -EIO;
  380. } else {
  381. ictx->display_isopen = false;
  382. dev_dbg(ictx->dev, "display port closed\n");
  383. if (!ictx->dev_present_intf0) {
  384. /*
  385. * Device disconnected before close and IR port is not
  386. * open. If IR port is open, context will be deleted by
  387. * ir_close.
  388. */
  389. mutex_unlock(&ictx->lock);
  390. free_imon_context(ictx);
  391. return retval;
  392. }
  393. }
  394. mutex_unlock(&ictx->lock);
  395. return retval;
  396. }
  397. /**
  398. * Sends a packet to the device -- this function must be called
  399. * with ictx->lock held.
  400. */
  401. static int send_packet(struct imon_context *ictx)
  402. {
  403. unsigned int pipe;
  404. unsigned long timeout;
  405. int interval = 0;
  406. int retval = 0;
  407. struct usb_ctrlrequest *control_req = NULL;
  408. /* Check if we need to use control or interrupt urb */
  409. if (!ictx->tx_control) {
  410. pipe = usb_sndintpipe(ictx->usbdev_intf0,
  411. ictx->tx_endpoint->bEndpointAddress);
  412. interval = ictx->tx_endpoint->bInterval;
  413. usb_fill_int_urb(ictx->tx_urb, ictx->usbdev_intf0, pipe,
  414. ictx->usb_tx_buf,
  415. sizeof(ictx->usb_tx_buf),
  416. usb_tx_callback, ictx, interval);
  417. ictx->tx_urb->actual_length = 0;
  418. } else {
  419. /* fill request into kmalloc'ed space: */
  420. control_req = kmalloc(sizeof(struct usb_ctrlrequest),
  421. GFP_KERNEL);
  422. if (control_req == NULL)
  423. return -ENOMEM;
  424. /* setup packet is '21 09 0200 0001 0008' */
  425. control_req->bRequestType = 0x21;
  426. control_req->bRequest = 0x09;
  427. control_req->wValue = cpu_to_le16(0x0200);
  428. control_req->wIndex = cpu_to_le16(0x0001);
  429. control_req->wLength = cpu_to_le16(0x0008);
  430. /* control pipe is endpoint 0x00 */
  431. pipe = usb_sndctrlpipe(ictx->usbdev_intf0, 0);
  432. /* build the control urb */
  433. usb_fill_control_urb(ictx->tx_urb, ictx->usbdev_intf0,
  434. pipe, (unsigned char *)control_req,
  435. ictx->usb_tx_buf,
  436. sizeof(ictx->usb_tx_buf),
  437. usb_tx_callback, ictx);
  438. ictx->tx_urb->actual_length = 0;
  439. }
  440. init_completion(&ictx->tx.finished);
  441. ictx->tx.busy = true;
  442. smp_rmb(); /* ensure later readers know we're busy */
  443. retval = usb_submit_urb(ictx->tx_urb, GFP_KERNEL);
  444. if (retval) {
  445. ictx->tx.busy = false;
  446. smp_rmb(); /* ensure later readers know we're not busy */
  447. pr_err("error submitting urb(%d)\n", retval);
  448. } else {
  449. /* Wait for transmission to complete (or abort) */
  450. mutex_unlock(&ictx->lock);
  451. retval = wait_for_completion_interruptible(
  452. &ictx->tx.finished);
  453. if (retval)
  454. pr_err("task interrupted\n");
  455. mutex_lock(&ictx->lock);
  456. retval = ictx->tx.status;
  457. if (retval)
  458. pr_err("packet tx failed (%d)\n", retval);
  459. }
  460. kfree(control_req);
  461. /*
  462. * Induce a mandatory 5ms delay before returning, as otherwise,
  463. * send_packet can get called so rapidly as to overwhelm the device,
  464. * particularly on faster systems and/or those with quirky usb.
  465. */
  466. timeout = msecs_to_jiffies(5);
  467. set_current_state(TASK_UNINTERRUPTIBLE);
  468. schedule_timeout(timeout);
  469. return retval;
  470. }
  471. /**
  472. * Sends an associate packet to the iMON 2.4G.
  473. *
  474. * This might not be such a good idea, since it has an id collision with
  475. * some versions of the "IR & VFD" combo. The only way to determine if it
  476. * is an RF version is to look at the product description string. (Which
  477. * we currently do not fetch).
  478. */
  479. static int send_associate_24g(struct imon_context *ictx)
  480. {
  481. int retval;
  482. const unsigned char packet[8] = { 0x01, 0x00, 0x00, 0x00,
  483. 0x00, 0x00, 0x00, 0x20 };
  484. if (!ictx) {
  485. pr_err("no context for device\n");
  486. return -ENODEV;
  487. }
  488. if (!ictx->dev_present_intf0) {
  489. pr_err("no iMON device present\n");
  490. return -ENODEV;
  491. }
  492. memcpy(ictx->usb_tx_buf, packet, sizeof(packet));
  493. retval = send_packet(ictx);
  494. return retval;
  495. }
  496. /**
  497. * Sends packets to setup and show clock on iMON display
  498. *
  499. * Arguments: year - last 2 digits of year, month - 1..12,
  500. * day - 1..31, dow - day of the week (0-Sun...6-Sat),
  501. * hour - 0..23, minute - 0..59, second - 0..59
  502. */
  503. static int send_set_imon_clock(struct imon_context *ictx,
  504. unsigned int year, unsigned int month,
  505. unsigned int day, unsigned int dow,
  506. unsigned int hour, unsigned int minute,
  507. unsigned int second)
  508. {
  509. unsigned char clock_enable_pkt[IMON_CLOCK_ENABLE_PACKETS][8];
  510. int retval = 0;
  511. int i;
  512. if (!ictx) {
  513. pr_err("no context for device\n");
  514. return -ENODEV;
  515. }
  516. switch (ictx->display_type) {
  517. case IMON_DISPLAY_TYPE_LCD:
  518. clock_enable_pkt[0][0] = 0x80;
  519. clock_enable_pkt[0][1] = year;
  520. clock_enable_pkt[0][2] = month-1;
  521. clock_enable_pkt[0][3] = day;
  522. clock_enable_pkt[0][4] = hour;
  523. clock_enable_pkt[0][5] = minute;
  524. clock_enable_pkt[0][6] = second;
  525. clock_enable_pkt[1][0] = 0x80;
  526. clock_enable_pkt[1][1] = 0;
  527. clock_enable_pkt[1][2] = 0;
  528. clock_enable_pkt[1][3] = 0;
  529. clock_enable_pkt[1][4] = 0;
  530. clock_enable_pkt[1][5] = 0;
  531. clock_enable_pkt[1][6] = 0;
  532. if (ictx->product == 0xffdc) {
  533. clock_enable_pkt[0][7] = 0x50;
  534. clock_enable_pkt[1][7] = 0x51;
  535. } else {
  536. clock_enable_pkt[0][7] = 0x88;
  537. clock_enable_pkt[1][7] = 0x8a;
  538. }
  539. break;
  540. case IMON_DISPLAY_TYPE_VFD:
  541. clock_enable_pkt[0][0] = year;
  542. clock_enable_pkt[0][1] = month-1;
  543. clock_enable_pkt[0][2] = day;
  544. clock_enable_pkt[0][3] = dow;
  545. clock_enable_pkt[0][4] = hour;
  546. clock_enable_pkt[0][5] = minute;
  547. clock_enable_pkt[0][6] = second;
  548. clock_enable_pkt[0][7] = 0x40;
  549. clock_enable_pkt[1][0] = 0;
  550. clock_enable_pkt[1][1] = 0;
  551. clock_enable_pkt[1][2] = 1;
  552. clock_enable_pkt[1][3] = 0;
  553. clock_enable_pkt[1][4] = 0;
  554. clock_enable_pkt[1][5] = 0;
  555. clock_enable_pkt[1][6] = 0;
  556. clock_enable_pkt[1][7] = 0x42;
  557. break;
  558. default:
  559. return -ENODEV;
  560. }
  561. for (i = 0; i < IMON_CLOCK_ENABLE_PACKETS; i++) {
  562. memcpy(ictx->usb_tx_buf, clock_enable_pkt[i], 8);
  563. retval = send_packet(ictx);
  564. if (retval) {
  565. pr_err("send_packet failed for packet %d\n", i);
  566. break;
  567. }
  568. }
  569. return retval;
  570. }
  571. /**
  572. * These are the sysfs functions to handle the association on the iMON 2.4G LT.
  573. */
  574. static ssize_t show_associate_remote(struct device *d,
  575. struct device_attribute *attr,
  576. char *buf)
  577. {
  578. struct imon_context *ictx = dev_get_drvdata(d);
  579. if (!ictx)
  580. return -ENODEV;
  581. mutex_lock(&ictx->lock);
  582. if (ictx->rf_isassociating)
  583. strcpy(buf, "associating\n");
  584. else
  585. strcpy(buf, "closed\n");
  586. dev_info(d, "Visit http://www.lirc.org/html/imon-24g.html for "
  587. "instructions on how to associate your iMON 2.4G DT/LT "
  588. "remote\n");
  589. mutex_unlock(&ictx->lock);
  590. return strlen(buf);
  591. }
  592. static ssize_t store_associate_remote(struct device *d,
  593. struct device_attribute *attr,
  594. const char *buf, size_t count)
  595. {
  596. struct imon_context *ictx;
  597. ictx = dev_get_drvdata(d);
  598. if (!ictx)
  599. return -ENODEV;
  600. mutex_lock(&ictx->lock);
  601. ictx->rf_isassociating = true;
  602. send_associate_24g(ictx);
  603. mutex_unlock(&ictx->lock);
  604. return count;
  605. }
  606. /**
  607. * sysfs functions to control internal imon clock
  608. */
  609. static ssize_t show_imon_clock(struct device *d,
  610. struct device_attribute *attr, char *buf)
  611. {
  612. struct imon_context *ictx = dev_get_drvdata(d);
  613. size_t len;
  614. if (!ictx)
  615. return -ENODEV;
  616. mutex_lock(&ictx->lock);
  617. if (!ictx->display_supported) {
  618. len = snprintf(buf, PAGE_SIZE, "Not supported.");
  619. } else {
  620. len = snprintf(buf, PAGE_SIZE,
  621. "To set the clock on your iMON display:\n"
  622. "# date \"+%%y %%m %%d %%w %%H %%M %%S\" > imon_clock\n"
  623. "%s", ictx->display_isopen ?
  624. "\nNOTE: imon device must be closed\n" : "");
  625. }
  626. mutex_unlock(&ictx->lock);
  627. return len;
  628. }
  629. static ssize_t store_imon_clock(struct device *d,
  630. struct device_attribute *attr,
  631. const char *buf, size_t count)
  632. {
  633. struct imon_context *ictx = dev_get_drvdata(d);
  634. ssize_t retval;
  635. unsigned int year, month, day, dow, hour, minute, second;
  636. if (!ictx)
  637. return -ENODEV;
  638. mutex_lock(&ictx->lock);
  639. if (!ictx->display_supported) {
  640. retval = -ENODEV;
  641. goto exit;
  642. } else if (ictx->display_isopen) {
  643. retval = -EBUSY;
  644. goto exit;
  645. }
  646. if (sscanf(buf, "%u %u %u %u %u %u %u", &year, &month, &day, &dow,
  647. &hour, &minute, &second) != 7) {
  648. retval = -EINVAL;
  649. goto exit;
  650. }
  651. if ((month < 1 || month > 12) ||
  652. (day < 1 || day > 31) || (dow > 6) ||
  653. (hour > 23) || (minute > 59) || (second > 59)) {
  654. retval = -EINVAL;
  655. goto exit;
  656. }
  657. retval = send_set_imon_clock(ictx, year, month, day, dow,
  658. hour, minute, second);
  659. if (retval)
  660. goto exit;
  661. retval = count;
  662. exit:
  663. mutex_unlock(&ictx->lock);
  664. return retval;
  665. }
  666. static DEVICE_ATTR(imon_clock, S_IWUSR | S_IRUGO, show_imon_clock,
  667. store_imon_clock);
  668. static DEVICE_ATTR(associate_remote, S_IWUSR | S_IRUGO, show_associate_remote,
  669. store_associate_remote);
  670. static struct attribute *imon_display_sysfs_entries[] = {
  671. &dev_attr_imon_clock.attr,
  672. NULL
  673. };
  674. static struct attribute_group imon_display_attr_group = {
  675. .attrs = imon_display_sysfs_entries
  676. };
  677. static struct attribute *imon_rf_sysfs_entries[] = {
  678. &dev_attr_associate_remote.attr,
  679. NULL
  680. };
  681. static struct attribute_group imon_rf_attr_group = {
  682. .attrs = imon_rf_sysfs_entries
  683. };
  684. /**
  685. * Writes data to the VFD. The iMON VFD is 2x16 characters
  686. * and requires data in 5 consecutive USB interrupt packets,
  687. * each packet but the last carrying 7 bytes.
  688. *
  689. * I don't know if the VFD board supports features such as
  690. * scrolling, clearing rows, blanking, etc. so at
  691. * the caller must provide a full screen of data. If fewer
  692. * than 32 bytes are provided spaces will be appended to
  693. * generate a full screen.
  694. */
  695. static ssize_t vfd_write(struct file *file, const char *buf,
  696. size_t n_bytes, loff_t *pos)
  697. {
  698. int i;
  699. int offset;
  700. int seq;
  701. int retval = 0;
  702. struct imon_context *ictx;
  703. const unsigned char vfd_packet6[] = {
  704. 0x01, 0x00, 0x00, 0x00, 0x00, 0xFF, 0xFF };
  705. ictx = file->private_data;
  706. if (!ictx) {
  707. pr_err("no context for device\n");
  708. return -ENODEV;
  709. }
  710. mutex_lock(&ictx->lock);
  711. if (!ictx->dev_present_intf0) {
  712. pr_err("no iMON device present\n");
  713. retval = -ENODEV;
  714. goto exit;
  715. }
  716. if (n_bytes <= 0 || n_bytes > 32) {
  717. pr_err("invalid payload size\n");
  718. retval = -EINVAL;
  719. goto exit;
  720. }
  721. if (copy_from_user(ictx->tx.data_buf, buf, n_bytes)) {
  722. retval = -EFAULT;
  723. goto exit;
  724. }
  725. /* Pad with spaces */
  726. for (i = n_bytes; i < 32; ++i)
  727. ictx->tx.data_buf[i] = ' ';
  728. for (i = 32; i < 35; ++i)
  729. ictx->tx.data_buf[i] = 0xFF;
  730. offset = 0;
  731. seq = 0;
  732. do {
  733. memcpy(ictx->usb_tx_buf, ictx->tx.data_buf + offset, 7);
  734. ictx->usb_tx_buf[7] = (unsigned char) seq;
  735. retval = send_packet(ictx);
  736. if (retval) {
  737. pr_err("send packet failed for packet #%d\n", seq / 2);
  738. goto exit;
  739. } else {
  740. seq += 2;
  741. offset += 7;
  742. }
  743. } while (offset < 35);
  744. /* Send packet #6 */
  745. memcpy(ictx->usb_tx_buf, &vfd_packet6, sizeof(vfd_packet6));
  746. ictx->usb_tx_buf[7] = (unsigned char) seq;
  747. retval = send_packet(ictx);
  748. if (retval)
  749. pr_err("send packet failed for packet #%d\n", seq / 2);
  750. exit:
  751. mutex_unlock(&ictx->lock);
  752. return (!retval) ? n_bytes : retval;
  753. }
  754. /**
  755. * Writes data to the LCD. The iMON OEM LCD screen expects 8-byte
  756. * packets. We accept data as 16 hexadecimal digits, followed by a
  757. * newline (to make it easy to drive the device from a command-line
  758. * -- even though the actual binary data is a bit complicated).
  759. *
  760. * The device itself is not a "traditional" text-mode display. It's
  761. * actually a 16x96 pixel bitmap display. That means if you want to
  762. * display text, you've got to have your own "font" and translate the
  763. * text into bitmaps for display. This is really flexible (you can
  764. * display whatever diacritics you need, and so on), but it's also
  765. * a lot more complicated than most LCDs...
  766. */
  767. static ssize_t lcd_write(struct file *file, const char *buf,
  768. size_t n_bytes, loff_t *pos)
  769. {
  770. int retval = 0;
  771. struct imon_context *ictx;
  772. ictx = file->private_data;
  773. if (!ictx) {
  774. pr_err("no context for device\n");
  775. return -ENODEV;
  776. }
  777. mutex_lock(&ictx->lock);
  778. if (!ictx->display_supported) {
  779. pr_err("no iMON display present\n");
  780. retval = -ENODEV;
  781. goto exit;
  782. }
  783. if (n_bytes != 8) {
  784. pr_err("invalid payload size: %d (expected 8)\n", (int)n_bytes);
  785. retval = -EINVAL;
  786. goto exit;
  787. }
  788. if (copy_from_user(ictx->usb_tx_buf, buf, 8)) {
  789. retval = -EFAULT;
  790. goto exit;
  791. }
  792. retval = send_packet(ictx);
  793. if (retval) {
  794. pr_err("send packet failed!\n");
  795. goto exit;
  796. } else {
  797. dev_dbg(ictx->dev, "%s: write %d bytes to LCD\n",
  798. __func__, (int) n_bytes);
  799. }
  800. exit:
  801. mutex_unlock(&ictx->lock);
  802. return (!retval) ? n_bytes : retval;
  803. }
  804. /**
  805. * Callback function for USB core API: transmit data
  806. */
  807. static void usb_tx_callback(struct urb *urb)
  808. {
  809. struct imon_context *ictx;
  810. if (!urb)
  811. return;
  812. ictx = (struct imon_context *)urb->context;
  813. if (!ictx)
  814. return;
  815. ictx->tx.status = urb->status;
  816. /* notify waiters that write has finished */
  817. ictx->tx.busy = false;
  818. smp_rmb(); /* ensure later readers know we're not busy */
  819. complete(&ictx->tx.finished);
  820. }
  821. /**
  822. * report touchscreen input
  823. */
  824. static void imon_touch_display_timeout(unsigned long data)
  825. {
  826. struct imon_context *ictx = (struct imon_context *)data;
  827. if (ictx->display_type != IMON_DISPLAY_TYPE_VGA)
  828. return;
  829. input_report_abs(ictx->touch, ABS_X, ictx->touch_x);
  830. input_report_abs(ictx->touch, ABS_Y, ictx->touch_y);
  831. input_report_key(ictx->touch, BTN_TOUCH, 0x00);
  832. input_sync(ictx->touch);
  833. }
  834. /**
  835. * iMON IR receivers support two different signal sets -- those used by
  836. * the iMON remotes, and those used by the Windows MCE remotes (which is
  837. * really just RC-6), but only one or the other at a time, as the signals
  838. * are decoded onboard the receiver.
  839. */
  840. static int imon_ir_change_protocol(struct rc_dev *rc, u64 rc_type)
  841. {
  842. int retval;
  843. struct imon_context *ictx = rc->priv;
  844. struct device *dev = ictx->dev;
  845. unsigned char ir_proto_packet[] = {
  846. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x86 };
  847. if (rc_type && !(rc_type & rc->allowed_protos))
  848. dev_warn(dev, "Looks like you're trying to use an IR protocol "
  849. "this device does not support\n");
  850. switch (rc_type) {
  851. case RC_TYPE_RC6:
  852. dev_dbg(dev, "Configuring IR receiver for MCE protocol\n");
  853. ir_proto_packet[0] = 0x01;
  854. break;
  855. case RC_TYPE_UNKNOWN:
  856. case RC_TYPE_OTHER:
  857. dev_dbg(dev, "Configuring IR receiver for iMON protocol\n");
  858. if (!pad_stabilize)
  859. dev_dbg(dev, "PAD stabilize functionality disabled\n");
  860. /* ir_proto_packet[0] = 0x00; // already the default */
  861. rc_type = RC_TYPE_OTHER;
  862. break;
  863. default:
  864. dev_warn(dev, "Unsupported IR protocol specified, overriding "
  865. "to iMON IR protocol\n");
  866. if (!pad_stabilize)
  867. dev_dbg(dev, "PAD stabilize functionality disabled\n");
  868. /* ir_proto_packet[0] = 0x00; // already the default */
  869. rc_type = RC_TYPE_OTHER;
  870. break;
  871. }
  872. memcpy(ictx->usb_tx_buf, &ir_proto_packet, sizeof(ir_proto_packet));
  873. retval = send_packet(ictx);
  874. if (retval)
  875. goto out;
  876. ictx->rc_type = rc_type;
  877. ictx->pad_mouse = false;
  878. out:
  879. return retval;
  880. }
  881. static inline int tv2int(const struct timeval *a, const struct timeval *b)
  882. {
  883. int usecs = 0;
  884. int sec = 0;
  885. if (b->tv_usec > a->tv_usec) {
  886. usecs = 1000000;
  887. sec--;
  888. }
  889. usecs += a->tv_usec - b->tv_usec;
  890. sec += a->tv_sec - b->tv_sec;
  891. sec *= 1000;
  892. usecs /= 1000;
  893. sec += usecs;
  894. if (sec < 0)
  895. sec = 1000;
  896. return sec;
  897. }
  898. /**
  899. * The directional pad behaves a bit differently, depending on whether this is
  900. * one of the older ffdc devices or a newer device. Newer devices appear to
  901. * have a higher resolution matrix for more precise mouse movement, but it
  902. * makes things overly sensitive in keyboard mode, so we do some interesting
  903. * contortions to make it less touchy. Older devices run through the same
  904. * routine with shorter timeout and a smaller threshold.
  905. */
  906. static int stabilize(int a, int b, u16 timeout, u16 threshold)
  907. {
  908. struct timeval ct;
  909. static struct timeval prev_time = {0, 0};
  910. static struct timeval hit_time = {0, 0};
  911. static int x, y, prev_result, hits;
  912. int result = 0;
  913. int msec, msec_hit;
  914. do_gettimeofday(&ct);
  915. msec = tv2int(&ct, &prev_time);
  916. msec_hit = tv2int(&ct, &hit_time);
  917. if (msec > 100) {
  918. x = 0;
  919. y = 0;
  920. hits = 0;
  921. }
  922. x += a;
  923. y += b;
  924. prev_time = ct;
  925. if (abs(x) > threshold || abs(y) > threshold) {
  926. if (abs(y) > abs(x))
  927. result = (y > 0) ? 0x7F : 0x80;
  928. else
  929. result = (x > 0) ? 0x7F00 : 0x8000;
  930. x = 0;
  931. y = 0;
  932. if (result == prev_result) {
  933. hits++;
  934. if (hits > 3) {
  935. switch (result) {
  936. case 0x7F:
  937. y = 17 * threshold / 30;
  938. break;
  939. case 0x80:
  940. y -= 17 * threshold / 30;
  941. break;
  942. case 0x7F00:
  943. x = 17 * threshold / 30;
  944. break;
  945. case 0x8000:
  946. x -= 17 * threshold / 30;
  947. break;
  948. }
  949. }
  950. if (hits == 2 && msec_hit < timeout) {
  951. result = 0;
  952. hits = 1;
  953. }
  954. } else {
  955. prev_result = result;
  956. hits = 1;
  957. hit_time = ct;
  958. }
  959. }
  960. return result;
  961. }
  962. static u32 imon_remote_key_lookup(struct imon_context *ictx, u32 scancode)
  963. {
  964. u32 keycode;
  965. u32 release;
  966. bool is_release_code = false;
  967. /* Look for the initial press of a button */
  968. keycode = rc_g_keycode_from_table(ictx->rdev, scancode);
  969. ictx->rc_toggle = 0x0;
  970. ictx->rc_scancode = scancode;
  971. /* Look for the release of a button */
  972. if (keycode == KEY_RESERVED) {
  973. release = scancode & ~0x4000;
  974. keycode = rc_g_keycode_from_table(ictx->rdev, release);
  975. if (keycode != KEY_RESERVED)
  976. is_release_code = true;
  977. }
  978. ictx->release_code = is_release_code;
  979. return keycode;
  980. }
  981. static u32 imon_mce_key_lookup(struct imon_context *ictx, u32 scancode)
  982. {
  983. u32 keycode;
  984. #define MCE_KEY_MASK 0x7000
  985. #define MCE_TOGGLE_BIT 0x8000
  986. /*
  987. * On some receivers, mce keys decode to 0x8000f04xx and 0x8000f84xx
  988. * (the toggle bit flipping between alternating key presses), while
  989. * on other receivers, we see 0x8000f74xx and 0x8000ff4xx. To keep
  990. * the table trim, we always or in the bits to look up 0x8000ff4xx,
  991. * but we can't or them into all codes, as some keys are decoded in
  992. * a different way w/o the same use of the toggle bit...
  993. */
  994. if (scancode & 0x80000000)
  995. scancode = scancode | MCE_KEY_MASK | MCE_TOGGLE_BIT;
  996. ictx->rc_scancode = scancode;
  997. keycode = rc_g_keycode_from_table(ictx->rdev, scancode);
  998. /* not used in mce mode, but make sure we know its false */
  999. ictx->release_code = false;
  1000. return keycode;
  1001. }
  1002. static u32 imon_panel_key_lookup(u64 code)
  1003. {
  1004. int i;
  1005. u32 keycode = KEY_RESERVED;
  1006. for (i = 0; i < ARRAY_SIZE(imon_panel_key_table); i++) {
  1007. if (imon_panel_key_table[i].hw_code == (code | 0xffee)) {
  1008. keycode = imon_panel_key_table[i].keycode;
  1009. break;
  1010. }
  1011. }
  1012. return keycode;
  1013. }
  1014. static bool imon_mouse_event(struct imon_context *ictx,
  1015. unsigned char *buf, int len)
  1016. {
  1017. char rel_x = 0x00, rel_y = 0x00;
  1018. u8 right_shift = 1;
  1019. bool mouse_input = true;
  1020. int dir = 0;
  1021. unsigned long flags;
  1022. spin_lock_irqsave(&ictx->kc_lock, flags);
  1023. /* newer iMON device PAD or mouse button */
  1024. if (ictx->product != 0xffdc && (buf[0] & 0x01) && len == 5) {
  1025. rel_x = buf[2];
  1026. rel_y = buf[3];
  1027. right_shift = 1;
  1028. /* 0xffdc iMON PAD or mouse button input */
  1029. } else if (ictx->product == 0xffdc && (buf[0] & 0x40) &&
  1030. !((buf[1] & 0x01) || ((buf[1] >> 2) & 0x01))) {
  1031. rel_x = (buf[1] & 0x08) | (buf[1] & 0x10) >> 2 |
  1032. (buf[1] & 0x20) >> 4 | (buf[1] & 0x40) >> 6;
  1033. if (buf[0] & 0x02)
  1034. rel_x |= ~0x0f;
  1035. rel_x = rel_x + rel_x / 2;
  1036. rel_y = (buf[2] & 0x08) | (buf[2] & 0x10) >> 2 |
  1037. (buf[2] & 0x20) >> 4 | (buf[2] & 0x40) >> 6;
  1038. if (buf[0] & 0x01)
  1039. rel_y |= ~0x0f;
  1040. rel_y = rel_y + rel_y / 2;
  1041. right_shift = 2;
  1042. /* some ffdc devices decode mouse buttons differently... */
  1043. } else if (ictx->product == 0xffdc && (buf[0] == 0x68)) {
  1044. right_shift = 2;
  1045. /* ch+/- buttons, which we use for an emulated scroll wheel */
  1046. } else if (ictx->kc == KEY_CHANNELUP && (buf[2] & 0x40) != 0x40) {
  1047. dir = 1;
  1048. } else if (ictx->kc == KEY_CHANNELDOWN && (buf[2] & 0x40) != 0x40) {
  1049. dir = -1;
  1050. } else
  1051. mouse_input = false;
  1052. spin_unlock_irqrestore(&ictx->kc_lock, flags);
  1053. if (mouse_input) {
  1054. dev_dbg(ictx->dev, "sending mouse data via input subsystem\n");
  1055. if (dir) {
  1056. input_report_rel(ictx->idev, REL_WHEEL, dir);
  1057. } else if (rel_x || rel_y) {
  1058. input_report_rel(ictx->idev, REL_X, rel_x);
  1059. input_report_rel(ictx->idev, REL_Y, rel_y);
  1060. } else {
  1061. input_report_key(ictx->idev, BTN_LEFT, buf[1] & 0x1);
  1062. input_report_key(ictx->idev, BTN_RIGHT,
  1063. buf[1] >> right_shift & 0x1);
  1064. }
  1065. input_sync(ictx->idev);
  1066. spin_lock_irqsave(&ictx->kc_lock, flags);
  1067. ictx->last_keycode = ictx->kc;
  1068. spin_unlock_irqrestore(&ictx->kc_lock, flags);
  1069. }
  1070. return mouse_input;
  1071. }
  1072. static void imon_touch_event(struct imon_context *ictx, unsigned char *buf)
  1073. {
  1074. mod_timer(&ictx->ttimer, jiffies + TOUCH_TIMEOUT);
  1075. ictx->touch_x = (buf[0] << 4) | (buf[1] >> 4);
  1076. ictx->touch_y = 0xfff - ((buf[2] << 4) | (buf[1] & 0xf));
  1077. input_report_abs(ictx->touch, ABS_X, ictx->touch_x);
  1078. input_report_abs(ictx->touch, ABS_Y, ictx->touch_y);
  1079. input_report_key(ictx->touch, BTN_TOUCH, 0x01);
  1080. input_sync(ictx->touch);
  1081. }
  1082. static void imon_pad_to_keys(struct imon_context *ictx, unsigned char *buf)
  1083. {
  1084. int dir = 0;
  1085. char rel_x = 0x00, rel_y = 0x00;
  1086. u16 timeout, threshold;
  1087. u32 scancode = KEY_RESERVED;
  1088. unsigned long flags;
  1089. /*
  1090. * The imon directional pad functions more like a touchpad. Bytes 3 & 4
  1091. * contain a position coordinate (x,y), with each component ranging
  1092. * from -14 to 14. We want to down-sample this to only 4 discrete values
  1093. * for up/down/left/right arrow keys. Also, when you get too close to
  1094. * diagonals, it has a tendancy to jump back and forth, so lets try to
  1095. * ignore when they get too close.
  1096. */
  1097. if (ictx->product != 0xffdc) {
  1098. /* first, pad to 8 bytes so it conforms with everything else */
  1099. buf[5] = buf[6] = buf[7] = 0;
  1100. timeout = 500; /* in msecs */
  1101. /* (2*threshold) x (2*threshold) square */
  1102. threshold = pad_thresh ? pad_thresh : 28;
  1103. rel_x = buf[2];
  1104. rel_y = buf[3];
  1105. if (ictx->rc_type == RC_TYPE_OTHER && pad_stabilize) {
  1106. if ((buf[1] == 0) && ((rel_x != 0) || (rel_y != 0))) {
  1107. dir = stabilize((int)rel_x, (int)rel_y,
  1108. timeout, threshold);
  1109. if (!dir) {
  1110. spin_lock_irqsave(&ictx->kc_lock,
  1111. flags);
  1112. ictx->kc = KEY_UNKNOWN;
  1113. spin_unlock_irqrestore(&ictx->kc_lock,
  1114. flags);
  1115. return;
  1116. }
  1117. buf[2] = dir & 0xFF;
  1118. buf[3] = (dir >> 8) & 0xFF;
  1119. scancode = be32_to_cpu(*((u32 *)buf));
  1120. }
  1121. } else {
  1122. /*
  1123. * Hack alert: instead of using keycodes, we have
  1124. * to use hard-coded scancodes here...
  1125. */
  1126. if (abs(rel_y) > abs(rel_x)) {
  1127. buf[2] = (rel_y > 0) ? 0x7F : 0x80;
  1128. buf[3] = 0;
  1129. if (rel_y > 0)
  1130. scancode = 0x01007f00; /* KEY_DOWN */
  1131. else
  1132. scancode = 0x01008000; /* KEY_UP */
  1133. } else {
  1134. buf[2] = 0;
  1135. buf[3] = (rel_x > 0) ? 0x7F : 0x80;
  1136. if (rel_x > 0)
  1137. scancode = 0x0100007f; /* KEY_RIGHT */
  1138. else
  1139. scancode = 0x01000080; /* KEY_LEFT */
  1140. }
  1141. }
  1142. /*
  1143. * Handle on-board decoded pad events for e.g. older VFD/iMON-Pad
  1144. * device (15c2:ffdc). The remote generates various codes from
  1145. * 0x68nnnnB7 to 0x6AnnnnB7, the left mouse button generates
  1146. * 0x688301b7 and the right one 0x688481b7. All other keys generate
  1147. * 0x2nnnnnnn. Position coordinate is encoded in buf[1] and buf[2] with
  1148. * reversed endianess. Extract direction from buffer, rotate endianess,
  1149. * adjust sign and feed the values into stabilize(). The resulting codes
  1150. * will be 0x01008000, 0x01007F00, which match the newer devices.
  1151. */
  1152. } else {
  1153. timeout = 10; /* in msecs */
  1154. /* (2*threshold) x (2*threshold) square */
  1155. threshold = pad_thresh ? pad_thresh : 15;
  1156. /* buf[1] is x */
  1157. rel_x = (buf[1] & 0x08) | (buf[1] & 0x10) >> 2 |
  1158. (buf[1] & 0x20) >> 4 | (buf[1] & 0x40) >> 6;
  1159. if (buf[0] & 0x02)
  1160. rel_x |= ~0x10+1;
  1161. /* buf[2] is y */
  1162. rel_y = (buf[2] & 0x08) | (buf[2] & 0x10) >> 2 |
  1163. (buf[2] & 0x20) >> 4 | (buf[2] & 0x40) >> 6;
  1164. if (buf[0] & 0x01)
  1165. rel_y |= ~0x10+1;
  1166. buf[0] = 0x01;
  1167. buf[1] = buf[4] = buf[5] = buf[6] = buf[7] = 0;
  1168. if (ictx->rc_type == RC_TYPE_OTHER && pad_stabilize) {
  1169. dir = stabilize((int)rel_x, (int)rel_y,
  1170. timeout, threshold);
  1171. if (!dir) {
  1172. spin_lock_irqsave(&ictx->kc_lock, flags);
  1173. ictx->kc = KEY_UNKNOWN;
  1174. spin_unlock_irqrestore(&ictx->kc_lock, flags);
  1175. return;
  1176. }
  1177. buf[2] = dir & 0xFF;
  1178. buf[3] = (dir >> 8) & 0xFF;
  1179. scancode = be32_to_cpu(*((u32 *)buf));
  1180. } else {
  1181. /*
  1182. * Hack alert: instead of using keycodes, we have
  1183. * to use hard-coded scancodes here...
  1184. */
  1185. if (abs(rel_y) > abs(rel_x)) {
  1186. buf[2] = (rel_y > 0) ? 0x7F : 0x80;
  1187. buf[3] = 0;
  1188. if (rel_y > 0)
  1189. scancode = 0x01007f00; /* KEY_DOWN */
  1190. else
  1191. scancode = 0x01008000; /* KEY_UP */
  1192. } else {
  1193. buf[2] = 0;
  1194. buf[3] = (rel_x > 0) ? 0x7F : 0x80;
  1195. if (rel_x > 0)
  1196. scancode = 0x0100007f; /* KEY_RIGHT */
  1197. else
  1198. scancode = 0x01000080; /* KEY_LEFT */
  1199. }
  1200. }
  1201. }
  1202. if (scancode) {
  1203. spin_lock_irqsave(&ictx->kc_lock, flags);
  1204. ictx->kc = imon_remote_key_lookup(ictx, scancode);
  1205. spin_unlock_irqrestore(&ictx->kc_lock, flags);
  1206. }
  1207. }
  1208. /**
  1209. * figure out if these is a press or a release. We don't actually
  1210. * care about repeats, as those will be auto-generated within the IR
  1211. * subsystem for repeating scancodes.
  1212. */
  1213. static int imon_parse_press_type(struct imon_context *ictx,
  1214. unsigned char *buf, u8 ktype)
  1215. {
  1216. int press_type = 0;
  1217. unsigned long flags;
  1218. spin_lock_irqsave(&ictx->kc_lock, flags);
  1219. /* key release of 0x02XXXXXX key */
  1220. if (ictx->kc == KEY_RESERVED && buf[0] == 0x02 && buf[3] == 0x00)
  1221. ictx->kc = ictx->last_keycode;
  1222. /* mouse button release on (some) 0xffdc devices */
  1223. else if (ictx->kc == KEY_RESERVED && buf[0] == 0x68 && buf[1] == 0x82 &&
  1224. buf[2] == 0x81 && buf[3] == 0xb7)
  1225. ictx->kc = ictx->last_keycode;
  1226. /* mouse button release on (some other) 0xffdc devices */
  1227. else if (ictx->kc == KEY_RESERVED && buf[0] == 0x01 && buf[1] == 0x00 &&
  1228. buf[2] == 0x81 && buf[3] == 0xb7)
  1229. ictx->kc = ictx->last_keycode;
  1230. /* mce-specific button handling, no keyup events */
  1231. else if (ktype == IMON_KEY_MCE) {
  1232. ictx->rc_toggle = buf[2];
  1233. press_type = 1;
  1234. /* incoherent or irrelevant data */
  1235. } else if (ictx->kc == KEY_RESERVED)
  1236. press_type = -EINVAL;
  1237. /* key release of 0xXXXXXXb7 key */
  1238. else if (ictx->release_code)
  1239. press_type = 0;
  1240. /* this is a button press */
  1241. else
  1242. press_type = 1;
  1243. spin_unlock_irqrestore(&ictx->kc_lock, flags);
  1244. return press_type;
  1245. }
  1246. /**
  1247. * Process the incoming packet
  1248. */
  1249. static void imon_incoming_packet(struct imon_context *ictx,
  1250. struct urb *urb, int intf)
  1251. {
  1252. int len = urb->actual_length;
  1253. unsigned char *buf = urb->transfer_buffer;
  1254. struct device *dev = ictx->dev;
  1255. unsigned long flags;
  1256. u32 kc;
  1257. bool norelease = false;
  1258. int i;
  1259. u64 scancode;
  1260. int press_type = 0;
  1261. int msec;
  1262. struct timeval t;
  1263. static struct timeval prev_time = { 0, 0 };
  1264. u8 ktype;
  1265. /* filter out junk data on the older 0xffdc imon devices */
  1266. if ((buf[0] == 0xff) && (buf[1] == 0xff) && (buf[2] == 0xff))
  1267. return;
  1268. /* Figure out what key was pressed */
  1269. if (len == 8 && buf[7] == 0xee) {
  1270. scancode = be64_to_cpu(*((u64 *)buf));
  1271. ktype = IMON_KEY_PANEL;
  1272. kc = imon_panel_key_lookup(scancode);
  1273. } else {
  1274. scancode = be32_to_cpu(*((u32 *)buf));
  1275. if (ictx->rc_type == RC_TYPE_RC6) {
  1276. ktype = IMON_KEY_IMON;
  1277. if (buf[0] == 0x80)
  1278. ktype = IMON_KEY_MCE;
  1279. kc = imon_mce_key_lookup(ictx, scancode);
  1280. } else {
  1281. ktype = IMON_KEY_IMON;
  1282. kc = imon_remote_key_lookup(ictx, scancode);
  1283. }
  1284. }
  1285. spin_lock_irqsave(&ictx->kc_lock, flags);
  1286. /* keyboard/mouse mode toggle button */
  1287. if (kc == KEY_KEYBOARD && !ictx->release_code) {
  1288. ictx->last_keycode = kc;
  1289. if (!nomouse) {
  1290. ictx->pad_mouse = ~(ictx->pad_mouse) & 0x1;
  1291. dev_dbg(dev, "toggling to %s mode\n",
  1292. ictx->pad_mouse ? "mouse" : "keyboard");
  1293. spin_unlock_irqrestore(&ictx->kc_lock, flags);
  1294. return;
  1295. } else {
  1296. ictx->pad_mouse = false;
  1297. dev_dbg(dev, "mouse mode disabled, passing key value\n");
  1298. }
  1299. }
  1300. ictx->kc = kc;
  1301. spin_unlock_irqrestore(&ictx->kc_lock, flags);
  1302. /* send touchscreen events through input subsystem if touchpad data */
  1303. if (ictx->display_type == IMON_DISPLAY_TYPE_VGA && len == 8 &&
  1304. buf[7] == 0x86) {
  1305. imon_touch_event(ictx, buf);
  1306. return;
  1307. /* look for mouse events with pad in mouse mode */
  1308. } else if (ictx->pad_mouse) {
  1309. if (imon_mouse_event(ictx, buf, len))
  1310. return;
  1311. }
  1312. /* Now for some special handling to convert pad input to arrow keys */
  1313. if (((len == 5) && (buf[0] == 0x01) && (buf[4] == 0x00)) ||
  1314. ((len == 8) && (buf[0] & 0x40) &&
  1315. !(buf[1] & 0x1 || buf[1] >> 2 & 0x1))) {
  1316. len = 8;
  1317. imon_pad_to_keys(ictx, buf);
  1318. norelease = true;
  1319. }
  1320. if (debug) {
  1321. printk(KERN_INFO "intf%d decoded packet: ", intf);
  1322. for (i = 0; i < len; ++i)
  1323. printk("%02x ", buf[i]);
  1324. printk("\n");
  1325. }
  1326. press_type = imon_parse_press_type(ictx, buf, ktype);
  1327. if (press_type < 0)
  1328. goto not_input_data;
  1329. spin_lock_irqsave(&ictx->kc_lock, flags);
  1330. if (ictx->kc == KEY_UNKNOWN)
  1331. goto unknown_key;
  1332. spin_unlock_irqrestore(&ictx->kc_lock, flags);
  1333. if (ktype != IMON_KEY_PANEL) {
  1334. if (press_type == 0)
  1335. rc_keyup(ictx->rdev);
  1336. else {
  1337. rc_keydown(ictx->rdev, ictx->rc_scancode, ictx->rc_toggle);
  1338. spin_lock_irqsave(&ictx->kc_lock, flags);
  1339. ictx->last_keycode = ictx->kc;
  1340. spin_unlock_irqrestore(&ictx->kc_lock, flags);
  1341. }
  1342. return;
  1343. }
  1344. /* Only panel type events left to process now */
  1345. spin_lock_irqsave(&ictx->kc_lock, flags);
  1346. /* KEY_MUTE repeats from knob need to be suppressed */
  1347. if (ictx->kc == KEY_MUTE && ictx->kc == ictx->last_keycode) {
  1348. do_gettimeofday(&t);
  1349. msec = tv2int(&t, &prev_time);
  1350. prev_time = t;
  1351. if (msec < ictx->idev->rep[REP_DELAY]) {
  1352. spin_unlock_irqrestore(&ictx->kc_lock, flags);
  1353. return;
  1354. }
  1355. }
  1356. kc = ictx->kc;
  1357. spin_unlock_irqrestore(&ictx->kc_lock, flags);
  1358. input_report_key(ictx->idev, kc, press_type);
  1359. input_sync(ictx->idev);
  1360. /* panel keys don't generate a release */
  1361. input_report_key(ictx->idev, kc, 0);
  1362. input_sync(ictx->idev);
  1363. ictx->last_keycode = kc;
  1364. return;
  1365. unknown_key:
  1366. spin_unlock_irqrestore(&ictx->kc_lock, flags);
  1367. dev_info(dev, "%s: unknown keypress, code 0x%llx\n", __func__,
  1368. (long long)scancode);
  1369. return;
  1370. not_input_data:
  1371. if (len != 8) {
  1372. dev_warn(dev, "imon %s: invalid incoming packet "
  1373. "size (len = %d, intf%d)\n", __func__, len, intf);
  1374. return;
  1375. }
  1376. /* iMON 2.4G associate frame */
  1377. if (buf[0] == 0x00 &&
  1378. buf[2] == 0xFF && /* REFID */
  1379. buf[3] == 0xFF &&
  1380. buf[4] == 0xFF &&
  1381. buf[5] == 0xFF && /* iMON 2.4G */
  1382. ((buf[6] == 0x4E && buf[7] == 0xDF) || /* LT */
  1383. (buf[6] == 0x5E && buf[7] == 0xDF))) { /* DT */
  1384. dev_warn(dev, "%s: remote associated refid=%02X\n",
  1385. __func__, buf[1]);
  1386. ictx->rf_isassociating = false;
  1387. }
  1388. }
  1389. /**
  1390. * Callback function for USB core API: receive data
  1391. */
  1392. static void usb_rx_callback_intf0(struct urb *urb)
  1393. {
  1394. struct imon_context *ictx;
  1395. int intfnum = 0;
  1396. if (!urb)
  1397. return;
  1398. ictx = (struct imon_context *)urb->context;
  1399. if (!ictx)
  1400. return;
  1401. switch (urb->status) {
  1402. case -ENOENT: /* usbcore unlink successful! */
  1403. return;
  1404. case -ESHUTDOWN: /* transport endpoint was shut down */
  1405. break;
  1406. case 0:
  1407. imon_incoming_packet(ictx, urb, intfnum);
  1408. break;
  1409. default:
  1410. dev_warn(ictx->dev, "imon %s: status(%d): ignored\n",
  1411. __func__, urb->status);
  1412. break;
  1413. }
  1414. usb_submit_urb(ictx->rx_urb_intf0, GFP_ATOMIC);
  1415. }
  1416. static void usb_rx_callback_intf1(struct urb *urb)
  1417. {
  1418. struct imon_context *ictx;
  1419. int intfnum = 1;
  1420. if (!urb)
  1421. return;
  1422. ictx = (struct imon_context *)urb->context;
  1423. if (!ictx)
  1424. return;
  1425. switch (urb->status) {
  1426. case -ENOENT: /* usbcore unlink successful! */
  1427. return;
  1428. case -ESHUTDOWN: /* transport endpoint was shut down */
  1429. break;
  1430. case 0:
  1431. imon_incoming_packet(ictx, urb, intfnum);
  1432. break;
  1433. default:
  1434. dev_warn(ictx->dev, "imon %s: status(%d): ignored\n",
  1435. __func__, urb->status);
  1436. break;
  1437. }
  1438. usb_submit_urb(ictx->rx_urb_intf1, GFP_ATOMIC);
  1439. }
  1440. /*
  1441. * The 0x15c2:0xffdc device ID was used for umpteen different imon
  1442. * devices, and all of them constantly spew interrupts, even when there
  1443. * is no actual data to report. However, byte 6 of this buffer looks like
  1444. * its unique across device variants, so we're trying to key off that to
  1445. * figure out which display type (if any) and what IR protocol the device
  1446. * actually supports. These devices have their IR protocol hard-coded into
  1447. * their firmware, they can't be changed on the fly like the newer hardware.
  1448. */
  1449. static void imon_get_ffdc_type(struct imon_context *ictx)
  1450. {
  1451. u8 ffdc_cfg_byte = ictx->usb_rx_buf[6];
  1452. u8 detected_display_type = IMON_DISPLAY_TYPE_NONE;
  1453. u64 allowed_protos = RC_TYPE_OTHER;
  1454. switch (ffdc_cfg_byte) {
  1455. /* iMON Knob, no display, iMON IR + vol knob */
  1456. case 0x21:
  1457. dev_info(ictx->dev, "0xffdc iMON Knob, iMON IR");
  1458. ictx->display_supported = false;
  1459. break;
  1460. /* iMON 2.4G LT (usb stick), no display, iMON RF */
  1461. case 0x4e:
  1462. dev_info(ictx->dev, "0xffdc iMON 2.4G LT, iMON RF");
  1463. ictx->display_supported = false;
  1464. ictx->rf_device = true;
  1465. break;
  1466. /* iMON VFD, no IR (does have vol knob tho) */
  1467. case 0x35:
  1468. dev_info(ictx->dev, "0xffdc iMON VFD + knob, no IR");
  1469. detected_display_type = IMON_DISPLAY_TYPE_VFD;
  1470. break;
  1471. /* iMON VFD, iMON IR */
  1472. case 0x24:
  1473. case 0x85:
  1474. dev_info(ictx->dev, "0xffdc iMON VFD, iMON IR");
  1475. detected_display_type = IMON_DISPLAY_TYPE_VFD;
  1476. break;
  1477. /* iMON VFD, MCE IR */
  1478. case 0x9e:
  1479. dev_info(ictx->dev, "0xffdc iMON VFD, MCE IR");
  1480. detected_display_type = IMON_DISPLAY_TYPE_VFD;
  1481. allowed_protos = RC_TYPE_RC6;
  1482. break;
  1483. /* iMON LCD, MCE IR */
  1484. case 0x9f:
  1485. dev_info(ictx->dev, "0xffdc iMON LCD, MCE IR");
  1486. detected_display_type = IMON_DISPLAY_TYPE_LCD;
  1487. allowed_protos = RC_TYPE_RC6;
  1488. break;
  1489. default:
  1490. dev_info(ictx->dev, "Unknown 0xffdc device, "
  1491. "defaulting to VFD and iMON IR");
  1492. detected_display_type = IMON_DISPLAY_TYPE_VFD;
  1493. break;
  1494. }
  1495. printk(KERN_CONT " (id 0x%02x)\n", ffdc_cfg_byte);
  1496. ictx->display_type = detected_display_type;
  1497. ictx->rc_type = allowed_protos;
  1498. }
  1499. static void imon_set_display_type(struct imon_context *ictx)
  1500. {
  1501. u8 configured_display_type = IMON_DISPLAY_TYPE_VFD;
  1502. /*
  1503. * Try to auto-detect the type of display if the user hasn't set
  1504. * it by hand via the display_type modparam. Default is VFD.
  1505. */
  1506. if (display_type == IMON_DISPLAY_TYPE_AUTO) {
  1507. switch (ictx->product) {
  1508. case 0xffdc:
  1509. /* set in imon_get_ffdc_type() */
  1510. configured_display_type = ictx->display_type;
  1511. break;
  1512. case 0x0034:
  1513. case 0x0035:
  1514. configured_display_type = IMON_DISPLAY_TYPE_VGA;
  1515. break;
  1516. case 0x0038:
  1517. case 0x0039:
  1518. case 0x0045:
  1519. configured_display_type = IMON_DISPLAY_TYPE_LCD;
  1520. break;
  1521. case 0x003c:
  1522. case 0x0041:
  1523. case 0x0042:
  1524. case 0x0043:
  1525. configured_display_type = IMON_DISPLAY_TYPE_NONE;
  1526. ictx->display_supported = false;
  1527. break;
  1528. case 0x0036:
  1529. case 0x0044:
  1530. default:
  1531. configured_display_type = IMON_DISPLAY_TYPE_VFD;
  1532. break;
  1533. }
  1534. } else {
  1535. configured_display_type = display_type;
  1536. if (display_type == IMON_DISPLAY_TYPE_NONE)
  1537. ictx->display_supported = false;
  1538. else
  1539. ictx->display_supported = true;
  1540. dev_info(ictx->dev, "%s: overriding display type to %d via "
  1541. "modparam\n", __func__, display_type);
  1542. }
  1543. ictx->display_type = configured_display_type;
  1544. }
  1545. static struct rc_dev *imon_init_rdev(struct imon_context *ictx)
  1546. {
  1547. struct rc_dev *rdev;
  1548. int ret;
  1549. const unsigned char fp_packet[] = { 0x40, 0x00, 0x00, 0x00,
  1550. 0x00, 0x00, 0x00, 0x88 };
  1551. rdev = rc_allocate_device();
  1552. if (!rdev) {
  1553. dev_err(ictx->dev, "remote control dev allocation failed\n");
  1554. goto out;
  1555. }
  1556. snprintf(ictx->name_rdev, sizeof(ictx->name_rdev),
  1557. "iMON Remote (%04x:%04x)", ictx->vendor, ictx->product);
  1558. usb_make_path(ictx->usbdev_intf0, ictx->phys_rdev,
  1559. sizeof(ictx->phys_rdev));
  1560. strlcat(ictx->phys_rdev, "/input0", sizeof(ictx->phys_rdev));
  1561. rdev->input_name = ictx->name_rdev;
  1562. rdev->input_phys = ictx->phys_rdev;
  1563. usb_to_input_id(ictx->usbdev_intf0, &rdev->input_id);
  1564. rdev->dev.parent = ictx->dev;
  1565. rdev->priv = ictx;
  1566. rdev->driver_type = RC_DRIVER_SCANCODE;
  1567. rdev->allowed_protos = RC_TYPE_OTHER | RC_TYPE_RC6; /* iMON PAD or MCE */
  1568. rdev->change_protocol = imon_ir_change_protocol;
  1569. rdev->driver_name = MOD_NAME;
  1570. /* Enable front-panel buttons and/or knobs */
  1571. memcpy(ictx->usb_tx_buf, &fp_packet, sizeof(fp_packet));
  1572. ret = send_packet(ictx);
  1573. /* Not fatal, but warn about it */
  1574. if (ret)
  1575. dev_info(ictx->dev, "panel buttons/knobs setup failed\n");
  1576. if (ictx->product == 0xffdc) {
  1577. imon_get_ffdc_type(ictx);
  1578. rdev->allowed_protos = ictx->rc_type;
  1579. }
  1580. imon_set_display_type(ictx);
  1581. if (ictx->rc_type == RC_TYPE_RC6)
  1582. rdev->map_name = RC_MAP_IMON_MCE;
  1583. else
  1584. rdev->map_name = RC_MAP_IMON_PAD;
  1585. ret = rc_register_device(rdev);
  1586. if (ret < 0) {
  1587. dev_err(ictx->dev, "remote input dev register failed\n");
  1588. goto out;
  1589. }
  1590. return rdev;
  1591. out:
  1592. rc_free_device(rdev);
  1593. return NULL;
  1594. }
  1595. static struct input_dev *imon_init_idev(struct imon_context *ictx)
  1596. {
  1597. struct input_dev *idev;
  1598. int ret, i;
  1599. idev = input_allocate_device();
  1600. if (!idev) {
  1601. dev_err(ictx->dev, "input dev allocation failed\n");
  1602. goto out;
  1603. }
  1604. snprintf(ictx->name_idev, sizeof(ictx->name_idev),
  1605. "iMON Panel, Knob and Mouse(%04x:%04x)",
  1606. ictx->vendor, ictx->product);
  1607. idev->name = ictx->name_idev;
  1608. usb_make_path(ictx->usbdev_intf0, ictx->phys_idev,
  1609. sizeof(ictx->phys_idev));
  1610. strlcat(ictx->phys_idev, "/input1", sizeof(ictx->phys_idev));
  1611. idev->phys = ictx->phys_idev;
  1612. idev->evbit[0] = BIT_MASK(EV_KEY) | BIT_MASK(EV_REP) | BIT_MASK(EV_REL);
  1613. idev->keybit[BIT_WORD(BTN_MOUSE)] =
  1614. BIT_MASK(BTN_LEFT) | BIT_MASK(BTN_RIGHT);
  1615. idev->relbit[0] = BIT_MASK(REL_X) | BIT_MASK(REL_Y) |
  1616. BIT_MASK(REL_WHEEL);
  1617. /* panel and/or knob code support */
  1618. for (i = 0; i < ARRAY_SIZE(imon_panel_key_table); i++) {
  1619. u32 kc = imon_panel_key_table[i].keycode;
  1620. __set_bit(kc, idev->keybit);
  1621. }
  1622. usb_to_input_id(ictx->usbdev_intf0, &idev->id);
  1623. idev->dev.parent = ictx->dev;
  1624. input_set_drvdata(idev, ictx);
  1625. ret = input_register_device(idev);
  1626. if (ret < 0) {
  1627. dev_err(ictx->dev, "input dev register failed\n");
  1628. goto out;
  1629. }
  1630. return idev;
  1631. out:
  1632. input_free_device(idev);
  1633. return NULL;
  1634. }
  1635. static struct input_dev *imon_init_touch(struct imon_context *ictx)
  1636. {
  1637. struct input_dev *touch;
  1638. int ret;
  1639. touch = input_allocate_device();
  1640. if (!touch) {
  1641. dev_err(ictx->dev, "touchscreen input dev allocation failed\n");
  1642. goto touch_alloc_failed;
  1643. }
  1644. snprintf(ictx->name_touch, sizeof(ictx->name_touch),
  1645. "iMON USB Touchscreen (%04x:%04x)",
  1646. ictx->vendor, ictx->product);
  1647. touch->name = ictx->name_touch;
  1648. usb_make_path(ictx->usbdev_intf1, ictx->phys_touch,
  1649. sizeof(ictx->phys_touch));
  1650. strlcat(ictx->phys_touch, "/input2", sizeof(ictx->phys_touch));
  1651. touch->phys = ictx->phys_touch;
  1652. touch->evbit[0] =
  1653. BIT_MASK(EV_KEY) | BIT_MASK(EV_ABS);
  1654. touch->keybit[BIT_WORD(BTN_TOUCH)] =
  1655. BIT_MASK(BTN_TOUCH);
  1656. input_set_abs_params(touch, ABS_X,
  1657. 0x00, 0xfff, 0, 0);
  1658. input_set_abs_params(touch, ABS_Y,
  1659. 0x00, 0xfff, 0, 0);
  1660. input_set_drvdata(touch, ictx);
  1661. usb_to_input_id(ictx->usbdev_intf1, &touch->id);
  1662. touch->dev.parent = ictx->dev;
  1663. ret = input_register_device(touch);
  1664. if (ret < 0) {
  1665. dev_info(ictx->dev, "touchscreen input dev register failed\n");
  1666. goto touch_register_failed;
  1667. }
  1668. return touch;
  1669. touch_register_failed:
  1670. input_free_device(ictx->touch);
  1671. touch_alloc_failed:
  1672. return NULL;
  1673. }
  1674. static bool imon_find_endpoints(struct imon_context *ictx,
  1675. struct usb_host_interface *iface_desc)
  1676. {
  1677. struct usb_endpoint_descriptor *ep;
  1678. struct usb_endpoint_descriptor *rx_endpoint = NULL;
  1679. struct usb_endpoint_descriptor *tx_endpoint = NULL;
  1680. int ifnum = iface_desc->desc.bInterfaceNumber;
  1681. int num_endpts = iface_desc->desc.bNumEndpoints;
  1682. int i, ep_dir, ep_type;
  1683. bool ir_ep_found = false;
  1684. bool display_ep_found = false;
  1685. bool tx_control = false;
  1686. /*
  1687. * Scan the endpoint list and set:
  1688. * first input endpoint = IR endpoint
  1689. * first output endpoint = display endpoint
  1690. */
  1691. for (i = 0; i < num_endpts && !(ir_ep_found && display_ep_found); ++i) {
  1692. ep = &iface_desc->endpoint[i].desc;
  1693. ep_dir = ep->bEndpointAddress & USB_ENDPOINT_DIR_MASK;
  1694. ep_type = ep->bmAttributes & USB_ENDPOINT_XFERTYPE_MASK;
  1695. if (!ir_ep_found && ep_dir == USB_DIR_IN &&
  1696. ep_type == USB_ENDPOINT_XFER_INT) {
  1697. rx_endpoint = ep;
  1698. ir_ep_found = true;
  1699. dev_dbg(ictx->dev, "%s: found IR endpoint\n", __func__);
  1700. } else if (!display_ep_found && ep_dir == USB_DIR_OUT &&
  1701. ep_type == USB_ENDPOINT_XFER_INT) {
  1702. tx_endpoint = ep;
  1703. display_ep_found = true;
  1704. dev_dbg(ictx->dev, "%s: found display endpoint\n", __func__);
  1705. }
  1706. }
  1707. if (ifnum == 0) {
  1708. ictx->rx_endpoint_intf0 = rx_endpoint;
  1709. /*
  1710. * tx is used to send characters to lcd/vfd, associate RF
  1711. * remotes, set IR protocol, and maybe more...
  1712. */
  1713. ictx->tx_endpoint = tx_endpoint;
  1714. } else {
  1715. ictx->rx_endpoint_intf1 = rx_endpoint;
  1716. }
  1717. /*
  1718. * If we didn't find a display endpoint, this is probably one of the
  1719. * newer iMON devices that use control urb instead of interrupt
  1720. */
  1721. if (!display_ep_found) {
  1722. tx_control = true;
  1723. display_ep_found = true;
  1724. dev_dbg(ictx->dev, "%s: device uses control endpoint, not "
  1725. "interface OUT endpoint\n", __func__);
  1726. }
  1727. /*
  1728. * Some iMON receivers have no display. Unfortunately, it seems
  1729. * that SoundGraph recycles device IDs between devices both with
  1730. * and without... :\
  1731. */
  1732. if (ictx->display_type == IMON_DISPLAY_TYPE_NONE) {
  1733. display_ep_found = false;
  1734. dev_dbg(ictx->dev, "%s: device has no display\n", __func__);
  1735. }
  1736. /*
  1737. * iMON Touch devices have a VGA touchscreen, but no "display", as
  1738. * that refers to e.g. /dev/lcd0 (a character device LCD or VFD).
  1739. */
  1740. if (ictx->display_type == IMON_DISPLAY_TYPE_VGA) {
  1741. display_ep_found = false;
  1742. dev_dbg(ictx->dev, "%s: iMON Touch device found\n", __func__);
  1743. }
  1744. /* Input endpoint is mandatory */
  1745. if (!ir_ep_found)
  1746. pr_err("no valid input (IR) endpoint found\n");
  1747. ictx->tx_control = tx_control;
  1748. if (display_ep_found)
  1749. ictx->display_supported = true;
  1750. return ir_ep_found;
  1751. }
  1752. static struct imon_context *imon_init_intf0(struct usb_interface *intf)
  1753. {
  1754. struct imon_context *ictx;
  1755. struct urb *rx_urb;
  1756. struct urb *tx_urb;
  1757. struct device *dev = &intf->dev;
  1758. struct usb_host_interface *iface_desc;
  1759. int ret = -ENOMEM;
  1760. ictx = kzalloc(sizeof(struct imon_context), GFP_KERNEL);
  1761. if (!ictx) {
  1762. dev_err(dev, "%s: kzalloc failed for context", __func__);
  1763. goto exit;
  1764. }
  1765. rx_urb = usb_alloc_urb(0, GFP_KERNEL);
  1766. if (!rx_urb) {
  1767. dev_err(dev, "%s: usb_alloc_urb failed for IR urb", __func__);
  1768. goto rx_urb_alloc_failed;
  1769. }
  1770. tx_urb = usb_alloc_urb(0, GFP_KERNEL);
  1771. if (!tx_urb) {
  1772. dev_err(dev, "%s: usb_alloc_urb failed for display urb",
  1773. __func__);
  1774. goto tx_urb_alloc_failed;
  1775. }
  1776. mutex_init(&ictx->lock);
  1777. spin_lock_init(&ictx->kc_lock);
  1778. mutex_lock(&ictx->lock);
  1779. ictx->dev = dev;
  1780. ictx->usbdev_intf0 = usb_get_dev(interface_to_usbdev(intf));
  1781. ictx->dev_present_intf0 = true;
  1782. ictx->rx_urb_intf0 = rx_urb;
  1783. ictx->tx_urb = tx_urb;
  1784. ictx->rf_device = false;
  1785. ictx->vendor = le16_to_cpu(ictx->usbdev_intf0->descriptor.idVendor);
  1786. ictx->product = le16_to_cpu(ictx->usbdev_intf0->descriptor.idProduct);
  1787. ret = -ENODEV;
  1788. iface_desc = intf->cur_altsetting;
  1789. if (!imon_find_endpoints(ictx, iface_desc)) {
  1790. goto find_endpoint_failed;
  1791. }
  1792. usb_fill_int_urb(ictx->rx_urb_intf0, ictx->usbdev_intf0,
  1793. usb_rcvintpipe(ictx->usbdev_intf0,
  1794. ictx->rx_endpoint_intf0->bEndpointAddress),
  1795. ictx->usb_rx_buf, sizeof(ictx->usb_rx_buf),
  1796. usb_rx_callback_intf0, ictx,
  1797. ictx->rx_endpoint_intf0->bInterval);
  1798. ret = usb_submit_urb(ictx->rx_urb_intf0, GFP_KERNEL);
  1799. if (ret) {
  1800. pr_err("usb_submit_urb failed for intf0 (%d)\n", ret);
  1801. goto urb_submit_failed;
  1802. }
  1803. ictx->idev = imon_init_idev(ictx);
  1804. if (!ictx->idev) {
  1805. dev_err(dev, "%s: input device setup failed\n", __func__);
  1806. goto idev_setup_failed;
  1807. }
  1808. ictx->rdev = imon_init_rdev(ictx);
  1809. if (!ictx->rdev) {
  1810. dev_err(dev, "%s: rc device setup failed\n", __func__);
  1811. goto rdev_setup_failed;
  1812. }
  1813. return ictx;
  1814. rdev_setup_failed:
  1815. input_unregister_device(ictx->idev);
  1816. idev_setup_failed:
  1817. usb_kill_urb(ictx->rx_urb_intf0);
  1818. urb_submit_failed:
  1819. find_endpoint_failed:
  1820. mutex_unlock(&ictx->lock);
  1821. usb_free_urb(tx_urb);
  1822. tx_urb_alloc_failed:
  1823. usb_free_urb(rx_urb);
  1824. rx_urb_alloc_failed:
  1825. kfree(ictx);
  1826. exit:
  1827. dev_err(dev, "unable to initialize intf0, err %d\n", ret);
  1828. return NULL;
  1829. }
  1830. static struct imon_context *imon_init_intf1(struct usb_interface *intf,
  1831. struct imon_context *ictx)
  1832. {
  1833. struct urb *rx_urb;
  1834. struct usb_host_interface *iface_desc;
  1835. int ret = -ENOMEM;
  1836. rx_urb = usb_alloc_urb(0, GFP_KERNEL);
  1837. if (!rx_urb) {
  1838. pr_err("usb_alloc_urb failed for IR urb\n");
  1839. goto rx_urb_alloc_failed;
  1840. }
  1841. mutex_lock(&ictx->lock);
  1842. if (ictx->display_type == IMON_DISPLAY_TYPE_VGA) {
  1843. init_timer(&ictx->ttimer);
  1844. ictx->ttimer.data = (unsigned long)ictx;
  1845. ictx->ttimer.function = imon_touch_display_timeout;
  1846. }
  1847. ictx->usbdev_intf1 = usb_get_dev(interface_to_usbdev(intf));
  1848. ictx->dev_present_intf1 = true;
  1849. ictx->rx_urb_intf1 = rx_urb;
  1850. ret = -ENODEV;
  1851. iface_desc = intf->cur_altsetting;
  1852. if (!imon_find_endpoints(ictx, iface_desc))
  1853. goto find_endpoint_failed;
  1854. if (ictx->display_type == IMON_DISPLAY_TYPE_VGA) {
  1855. ictx->touch = imon_init_touch(ictx);
  1856. if (!ictx->touch)
  1857. goto touch_setup_failed;
  1858. } else
  1859. ictx->touch = NULL;
  1860. usb_fill_int_urb(ictx->rx_urb_intf1, ictx->usbdev_intf1,
  1861. usb_rcvintpipe(ictx->usbdev_intf1,
  1862. ictx->rx_endpoint_intf1->bEndpointAddress),
  1863. ictx->usb_rx_buf, sizeof(ictx->usb_rx_buf),
  1864. usb_rx_callback_intf1, ictx,
  1865. ictx->rx_endpoint_intf1->bInterval);
  1866. ret = usb_submit_urb(ictx->rx_urb_intf1, GFP_KERNEL);
  1867. if (ret) {
  1868. pr_err("usb_submit_urb failed for intf1 (%d)\n", ret);
  1869. goto urb_submit_failed;
  1870. }
  1871. return ictx;
  1872. urb_submit_failed:
  1873. if (ictx->touch)
  1874. input_unregister_device(ictx->touch);
  1875. touch_setup_failed:
  1876. find_endpoint_failed:
  1877. mutex_unlock(&ictx->lock);
  1878. usb_free_urb(rx_urb);
  1879. rx_urb_alloc_failed:
  1880. dev_err(ictx->dev, "unable to initialize intf0, err %d\n", ret);
  1881. return NULL;
  1882. }
  1883. static void imon_init_display(struct imon_context *ictx,
  1884. struct usb_interface *intf)
  1885. {
  1886. int ret;
  1887. dev_dbg(ictx->dev, "Registering iMON display with sysfs\n");
  1888. /* set up sysfs entry for built-in clock */
  1889. ret = sysfs_create_group(&intf->dev.kobj, &imon_display_attr_group);
  1890. if (ret)
  1891. dev_err(ictx->dev, "Could not create display sysfs "
  1892. "entries(%d)", ret);
  1893. if (ictx->display_type == IMON_DISPLAY_TYPE_LCD)
  1894. ret = usb_register_dev(intf, &imon_lcd_class);
  1895. else
  1896. ret = usb_register_dev(intf, &imon_vfd_class);
  1897. if (ret)
  1898. /* Not a fatal error, so ignore */
  1899. dev_info(ictx->dev, "could not get a minor number for "
  1900. "display\n");
  1901. }
  1902. /**
  1903. * Callback function for USB core API: Probe
  1904. */
  1905. static int __devinit imon_probe(struct usb_interface *interface,
  1906. const struct usb_device_id *id)
  1907. {
  1908. struct usb_device *usbdev = NULL;
  1909. struct usb_host_interface *iface_desc = NULL;
  1910. struct usb_interface *first_if;
  1911. struct device *dev = &interface->dev;
  1912. int ifnum, code_length, sysfs_err;
  1913. int ret = 0;
  1914. struct imon_context *ictx = NULL;
  1915. struct imon_context *first_if_ctx = NULL;
  1916. u16 vendor, product;
  1917. code_length = BUF_CHUNK_SIZE * 8;
  1918. usbdev = usb_get_dev(interface_to_usbdev(interface));
  1919. iface_desc = interface->cur_altsetting;
  1920. ifnum = iface_desc->desc.bInterfaceNumber;
  1921. vendor = le16_to_cpu(usbdev->descriptor.idVendor);
  1922. product = le16_to_cpu(usbdev->descriptor.idProduct);
  1923. dev_dbg(dev, "%s: found iMON device (%04x:%04x, intf%d)\n",
  1924. __func__, vendor, product, ifnum);
  1925. /* prevent races probing devices w/multiple interfaces */
  1926. mutex_lock(&driver_lock);
  1927. first_if = usb_ifnum_to_if(usbdev, 0);
  1928. first_if_ctx = usb_get_intfdata(first_if);
  1929. if (ifnum == 0) {
  1930. ictx = imon_init_intf0(interface);
  1931. if (!ictx) {
  1932. pr_err("failed to initialize context!\n");
  1933. ret = -ENODEV;
  1934. goto fail;
  1935. }
  1936. } else {
  1937. /* this is the secondary interface on the device */
  1938. ictx = imon_init_intf1(interface, first_if_ctx);
  1939. if (!ictx) {
  1940. pr_err("failed to attach to context!\n");
  1941. ret = -ENODEV;
  1942. goto fail;
  1943. }
  1944. }
  1945. usb_set_intfdata(interface, ictx);
  1946. if (ifnum == 0) {
  1947. if (product == 0xffdc && ictx->rf_device) {
  1948. sysfs_err = sysfs_create_group(&interface->dev.kobj,
  1949. &imon_rf_attr_group);
  1950. if (sysfs_err)
  1951. pr_err("Could not create RF sysfs entries(%d)\n",
  1952. sysfs_err);
  1953. }
  1954. if (ictx->display_supported)
  1955. imon_init_display(ictx, interface);
  1956. }
  1957. dev_info(dev, "iMON device (%04x:%04x, intf%d) on "
  1958. "usb<%d:%d> initialized\n", vendor, product, ifnum,
  1959. usbdev->bus->busnum, usbdev->devnum);
  1960. mutex_unlock(&ictx->lock);
  1961. mutex_unlock(&driver_lock);
  1962. return 0;
  1963. fail:
  1964. mutex_unlock(&driver_lock);
  1965. dev_err(dev, "unable to register, err %d\n", ret);
  1966. return ret;
  1967. }
  1968. /**
  1969. * Callback function for USB core API: disconnect
  1970. */
  1971. static void __devexit imon_disconnect(struct usb_interface *interface)
  1972. {
  1973. struct imon_context *ictx;
  1974. struct device *dev;
  1975. int ifnum;
  1976. /* prevent races with multi-interface device probing and display_open */
  1977. mutex_lock(&driver_lock);
  1978. ictx = usb_get_intfdata(interface);
  1979. dev = ictx->dev;
  1980. ifnum = interface->cur_altsetting->desc.bInterfaceNumber;
  1981. mutex_lock(&ictx->lock);
  1982. /*
  1983. * sysfs_remove_group is safe to call even if sysfs_create_group
  1984. * hasn't been called
  1985. */
  1986. sysfs_remove_group(&interface->dev.kobj, &imon_display_attr_group);
  1987. sysfs_remove_group(&interface->dev.kobj, &imon_rf_attr_group);
  1988. usb_set_intfdata(interface, NULL);
  1989. /* Abort ongoing write */
  1990. if (ictx->tx.busy) {
  1991. usb_kill_urb(ictx->tx_urb);
  1992. complete_all(&ictx->tx.finished);
  1993. }
  1994. if (ifnum == 0) {
  1995. ictx->dev_present_intf0 = false;
  1996. usb_kill_urb(ictx->rx_urb_intf0);
  1997. input_unregister_device(ictx->idev);
  1998. rc_unregister_device(ictx->rdev);
  1999. if (ictx->display_supported) {
  2000. if (ictx->display_type == IMON_DISPLAY_TYPE_LCD)
  2001. usb_deregister_dev(interface, &imon_lcd_class);
  2002. else
  2003. usb_deregister_dev(interface, &imon_vfd_class);
  2004. }
  2005. } else {
  2006. ictx->dev_present_intf1 = false;
  2007. usb_kill_urb(ictx->rx_urb_intf1);
  2008. if (ictx->display_type == IMON_DISPLAY_TYPE_VGA)
  2009. input_unregister_device(ictx->touch);
  2010. }
  2011. if (!ictx->dev_present_intf0 && !ictx->dev_present_intf1) {
  2012. if (ictx->display_type == IMON_DISPLAY_TYPE_VGA)
  2013. del_timer_sync(&ictx->ttimer);
  2014. mutex_unlock(&ictx->lock);
  2015. if (!ictx->display_isopen)
  2016. free_imon_context(ictx);
  2017. } else
  2018. mutex_unlock(&ictx->lock);
  2019. mutex_unlock(&driver_lock);
  2020. dev_dbg(dev, "%s: iMON device (intf%d) disconnected\n",
  2021. __func__, ifnum);
  2022. }
  2023. static int imon_suspend(struct usb_interface *intf, pm_message_t message)
  2024. {
  2025. struct imon_context *ictx = usb_get_intfdata(intf);
  2026. int ifnum = intf->cur_altsetting->desc.bInterfaceNumber;
  2027. if (ifnum == 0)
  2028. usb_kill_urb(ictx->rx_urb_intf0);
  2029. else
  2030. usb_kill_urb(ictx->rx_urb_intf1);
  2031. return 0;
  2032. }
  2033. static int imon_resume(struct usb_interface *intf)
  2034. {
  2035. int rc = 0;
  2036. struct imon_context *ictx = usb_get_intfdata(intf);
  2037. int ifnum = intf->cur_altsetting->desc.bInterfaceNumber;
  2038. if (ifnum == 0) {
  2039. usb_fill_int_urb(ictx->rx_urb_intf0, ictx->usbdev_intf0,
  2040. usb_rcvintpipe(ictx->usbdev_intf0,
  2041. ictx->rx_endpoint_intf0->bEndpointAddress),
  2042. ictx->usb_rx_buf, sizeof(ictx->usb_rx_buf),
  2043. usb_rx_callback_intf0, ictx,
  2044. ictx->rx_endpoint_intf0->bInterval);
  2045. rc = usb_submit_urb(ictx->rx_urb_intf0, GFP_ATOMIC);
  2046. } else {
  2047. usb_fill_int_urb(ictx->rx_urb_intf1, ictx->usbdev_intf1,
  2048. usb_rcvintpipe(ictx->usbdev_intf1,
  2049. ictx->rx_endpoint_intf1->bEndpointAddress),
  2050. ictx->usb_rx_buf, sizeof(ictx->usb_rx_buf),
  2051. usb_rx_callback_intf1, ictx,
  2052. ictx->rx_endpoint_intf1->bInterval);
  2053. rc = usb_submit_urb(ictx->rx_urb_intf1, GFP_ATOMIC);
  2054. }
  2055. return rc;
  2056. }
  2057. static int __init imon_init(void)
  2058. {
  2059. int rc;
  2060. rc = usb_register(&imon_driver);
  2061. if (rc) {
  2062. pr_err("usb register failed(%d)\n", rc);
  2063. rc = -ENODEV;
  2064. }
  2065. return rc;
  2066. }
  2067. static void __exit imon_exit(void)
  2068. {
  2069. usb_deregister(&imon_driver);
  2070. }
  2071. module_init(imon_init);
  2072. module_exit(imon_exit);