usb-midi.c 53 KB

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  1. /*
  2. usb-midi.c -- USB-MIDI driver
  3. Copyright (C) 2001
  4. NAGANO Daisuke <breeze.nagano@nifty.ne.jp>
  5. This program is free software; you can redistribute it and/or modify
  6. it under the terms of the GNU General Public License as published by
  7. the Free Software Foundation; either version 2, or (at your option)
  8. any later version.
  9. This program is distributed in the hope that it will be useful,
  10. but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  12. GNU General Public License for more details.
  13. You should have received a copy of the GNU General Public License
  14. along with this program; if not, write to the Free Software
  15. Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  16. This driver is based on:
  17. - 'Universal Serial Bus Device Class Definition for MIDI Device'
  18. - linux/drivers/sound/es1371.c, linux/drivers/usb/audio.c
  19. - alsa/lowlevel/pci/cs64xx.c
  20. - umidi.c for NetBSD
  21. */
  22. /* ------------------------------------------------------------------------- */
  23. #include <linux/module.h>
  24. #include <linux/kernel.h>
  25. #include <linux/sched.h>
  26. #include <linux/list.h>
  27. #include <linux/slab.h>
  28. #include <linux/usb.h>
  29. #include <linux/poll.h>
  30. #include <linux/sound.h>
  31. #include <linux/init.h>
  32. #include <asm/semaphore.h>
  33. #include "usb-midi.h"
  34. /* ------------------------------------------------------------------------- */
  35. /* More verbose on syslog */
  36. #undef MIDI_DEBUG
  37. #define MIDI_IN_BUFSIZ 1024
  38. #define HAVE_SUPPORT_USB_MIDI_CLASS
  39. #undef HAVE_SUPPORT_ALSA
  40. /* ------------------------------------------------------------------------- */
  41. static int singlebyte = 0;
  42. module_param(singlebyte, int, 0);
  43. MODULE_PARM_DESC(singlebyte,"Enable sending MIDI messages with single message packet");
  44. static int maxdevices = 4;
  45. module_param(maxdevices, int, 0);
  46. MODULE_PARM_DESC(maxdevices,"Max number of allocatable MIDI device");
  47. static int uvendor = -1;
  48. module_param(uvendor, int, 0);
  49. MODULE_PARM_DESC(uvendor, "The USB Vendor ID of a semi-compliant interface");
  50. static int uproduct = -1;
  51. module_param(uproduct, int, 0);
  52. MODULE_PARM_DESC(uproduct, "The USB Product ID of a semi-compliant interface");
  53. static int uinterface = -1;
  54. module_param(uinterface, int, 0);
  55. MODULE_PARM_DESC(uinterface, "The Interface number of a semi-compliant interface");
  56. static int ualt = -1;
  57. module_param(ualt, int, 0);
  58. MODULE_PARM_DESC(ualt, "The optional alternative setting of a semi-compliant interface");
  59. static int umin = -1;
  60. module_param(umin, int, 0);
  61. MODULE_PARM_DESC(umin, "The input endpoint of a semi-compliant interface");
  62. static int umout = -1;
  63. module_param(umout, int, 0);
  64. MODULE_PARM_DESC(umout, "The output endpoint of a semi-compliant interface");
  65. static int ucable = -1;
  66. module_param(ucable, int, 0);
  67. MODULE_PARM_DESC(ucable, "The cable number used for a semi-compliant interface");
  68. /** Note -- the usb_string() returns only Latin-1 characters.
  69. * (unicode chars <= 255). To support Japanese, a unicode16LE-to-EUC or
  70. * unicode16LE-to-JIS routine is needed to wrap around usb_get_string().
  71. **/
  72. static unsigned short ulangid = 0x0409; /** 0x0411 for Japanese **/
  73. module_param(ulangid, ushort, 0);
  74. MODULE_PARM_DESC(ulangid, "The optional preferred USB Language ID for all devices");
  75. MODULE_AUTHOR("NAGANO Daisuke <breeze.nagano@nifty.ne.jp>");
  76. MODULE_DESCRIPTION("USB-MIDI driver");
  77. MODULE_LICENSE("GPL");
  78. /* ------------------------------------------------------------------------- */
  79. /** MIDIStreaming Class-Specific Interface Descriptor Subtypes **/
  80. #define MS_DESCRIPTOR_UNDEFINED 0
  81. #define MS_HEADER 1
  82. #define MIDI_IN_JACK 2
  83. #define MIDI_OUT_JACK 3
  84. /* Spec reads: ELEMENT */
  85. #define ELEMENT_DESCRIPTOR 4
  86. #define MS_HEADER_LENGTH 7
  87. /** MIDIStreaming Class-Specific Endpoint Descriptor Subtypes **/
  88. #define DESCRIPTOR_UNDEFINED 0
  89. /* Spec reads: MS_GENERAL */
  90. #define MS_GENERAL_ENDPOINT 1
  91. /** MIDIStreaming MIDI IN and OUT Jack Types **/
  92. #define JACK_TYPE_UNDEFINED 0
  93. /* Spec reads: EMBEDDED */
  94. #define EMBEDDED_JACK 1
  95. /* Spec reads: EXTERNAL */
  96. #define EXTERNAL_JACK 2
  97. /* structure summary
  98. usb_midi_state usb_device
  99. | |
  100. *| *| per ep
  101. in_ep out_ep
  102. | |
  103. *| *| per cable
  104. min mout
  105. | | (cable to device pairing magic)
  106. | |
  107. usb_midi_dev dev_id (major,minor) == file->private_data
  108. */
  109. /* usb_midi_state: corresponds to a USB-MIDI module */
  110. struct usb_midi_state {
  111. struct list_head mididev;
  112. struct usb_device *usbdev;
  113. struct list_head midiDevList;
  114. struct list_head inEndpointList;
  115. struct list_head outEndpointList;
  116. spinlock_t lock;
  117. unsigned int count; /* usage counter */
  118. };
  119. /* midi_out_endpoint: corresponds to an output endpoint */
  120. struct midi_out_endpoint {
  121. struct list_head list;
  122. struct usb_device *usbdev;
  123. int endpoint;
  124. spinlock_t lock;
  125. wait_queue_head_t wait;
  126. unsigned char *buf;
  127. int bufWrPtr;
  128. int bufSize;
  129. struct urb *urb;
  130. };
  131. /* midi_in_endpoint: corresponds to an input endpoint */
  132. struct midi_in_endpoint {
  133. struct list_head list;
  134. struct usb_device *usbdev;
  135. int endpoint;
  136. spinlock_t lock;
  137. wait_queue_head_t wait;
  138. struct usb_mididev *cables[16]; // cables open for read
  139. int readers; // number of cables open for read
  140. struct urb *urb;
  141. unsigned char *recvBuf;
  142. int recvBufSize;
  143. int urbSubmitted; //FIXME: == readers > 0
  144. };
  145. /* usb_mididev: corresponds to a logical device */
  146. struct usb_mididev {
  147. struct list_head list;
  148. struct usb_midi_state *midi;
  149. int dev_midi;
  150. mode_t open_mode;
  151. struct {
  152. struct midi_in_endpoint *ep;
  153. int cableId;
  154. // as we are pushing data from usb_bulk_read to usb_midi_read,
  155. // we need a larger, cyclic buffer here.
  156. unsigned char buf[MIDI_IN_BUFSIZ];
  157. int bufRdPtr;
  158. int bufWrPtr;
  159. int bufRemains;
  160. } min;
  161. struct {
  162. struct midi_out_endpoint *ep;
  163. int cableId;
  164. unsigned char buf[3];
  165. int bufPtr;
  166. int bufRemains;
  167. int isInExclusive;
  168. unsigned char lastEvent;
  169. } mout;
  170. int singlebyte;
  171. };
  172. /** Map the high nybble of MIDI voice messages to number of Message bytes.
  173. * High nyble ranges from 0x8 to 0xe
  174. */
  175. static int remains_80e0[] = {
  176. 3, /** 0x8X Note Off **/
  177. 3, /** 0x9X Note On **/
  178. 3, /** 0xAX Poly-key pressure **/
  179. 3, /** 0xBX Control Change **/
  180. 2, /** 0xCX Program Change **/
  181. 2, /** 0xDX Channel pressure **/
  182. 3 /** 0xEX PitchBend Change **/
  183. };
  184. /** Map the messages to a number of Message bytes.
  185. *
  186. **/
  187. static int remains_f0f6[] = {
  188. 0, /** 0xF0 **/
  189. 2, /** 0XF1 **/
  190. 3, /** 0XF2 **/
  191. 2, /** 0XF3 **/
  192. 2, /** 0XF4 (Undefined by MIDI Spec, and subject to change) **/
  193. 2, /** 0XF5 (Undefined by MIDI Spec, and subject to change) **/
  194. 1 /** 0XF6 **/
  195. };
  196. /** Map the messages to a CIN (Code Index Number).
  197. *
  198. **/
  199. static int cin_f0ff[] = {
  200. 4, /** 0xF0 System Exclusive Message Start (special cases may be 6 or 7) */
  201. 2, /** 0xF1 **/
  202. 3, /** 0xF2 **/
  203. 2, /** 0xF3 **/
  204. 2, /** 0xF4 **/
  205. 2, /** 0xF5 **/
  206. 5, /** 0xF6 **/
  207. 5, /** 0xF7 End of System Exclusive Message (May be 6 or 7) **/
  208. 5, /** 0xF8 **/
  209. 5, /** 0xF9 **/
  210. 5, /** 0xFA **/
  211. 5, /** 0xFB **/
  212. 5, /** 0xFC **/
  213. 5, /** 0xFD **/
  214. 5, /** 0xFE **/
  215. 5 /** 0xFF **/
  216. };
  217. /** Map MIDIStreaming Event packet Code Index Number (low nybble of byte 0)
  218. * to the number of bytes of valid MIDI data.
  219. *
  220. * CIN of 0 and 1 are NOT USED in MIDIStreaming 1.0.
  221. *
  222. **/
  223. static int cin_to_len[] = {
  224. 0, 0, 2, 3,
  225. 3, 1, 2, 3,
  226. 3, 3, 3, 3,
  227. 2, 2, 3, 1
  228. };
  229. /* ------------------------------------------------------------------------- */
  230. static struct list_head mididevs = LIST_HEAD_INIT(mididevs);
  231. static DECLARE_MUTEX(open_sem);
  232. static DECLARE_WAIT_QUEUE_HEAD(open_wait);
  233. /* ------------------------------------------------------------------------- */
  234. static void usb_write_callback(struct urb *urb, struct pt_regs *regs)
  235. {
  236. struct midi_out_endpoint *ep = (struct midi_out_endpoint *)urb->context;
  237. if ( waitqueue_active( &ep->wait ) )
  238. wake_up_interruptible( &ep->wait );
  239. }
  240. static int usb_write( struct midi_out_endpoint *ep, unsigned char *buf, int len )
  241. {
  242. struct usb_device *d;
  243. int pipe;
  244. int ret = 0;
  245. int status;
  246. int maxretry = 50;
  247. DECLARE_WAITQUEUE(wait,current);
  248. init_waitqueue_head(&ep->wait);
  249. d = ep->usbdev;
  250. pipe = usb_sndbulkpipe(d, ep->endpoint);
  251. usb_fill_bulk_urb( ep->urb, d, pipe, (unsigned char*)buf, len,
  252. usb_write_callback, ep );
  253. status = usb_submit_urb(ep->urb, GFP_KERNEL);
  254. if (status) {
  255. printk(KERN_ERR "usbmidi: Cannot submit urb (%d)\n",status);
  256. ret = -EIO;
  257. goto error;
  258. }
  259. add_wait_queue( &ep->wait, &wait );
  260. set_current_state( TASK_INTERRUPTIBLE );
  261. while( ep->urb->status == -EINPROGRESS ) {
  262. if ( maxretry-- < 0 ) {
  263. printk(KERN_ERR "usbmidi: usb_bulk_msg timed out\n");
  264. ret = -ETIME;
  265. break;
  266. }
  267. interruptible_sleep_on_timeout( &ep->wait, 10 );
  268. }
  269. set_current_state( TASK_RUNNING );
  270. remove_wait_queue( &ep->wait, &wait );
  271. error:
  272. return ret;
  273. }
  274. /** Copy data from URB to In endpoint buf.
  275. * Discard if CIN == 0 or CIN = 1.
  276. *
  277. *
  278. **/
  279. static void usb_bulk_read(struct urb *urb, struct pt_regs *regs)
  280. {
  281. struct midi_in_endpoint *ep = (struct midi_in_endpoint *)(urb->context);
  282. unsigned char *data = urb->transfer_buffer;
  283. int i, j, wake;
  284. if ( !ep->urbSubmitted ) {
  285. return;
  286. }
  287. if ( (urb->status == 0) && (urb->actual_length > 0) ) {
  288. wake = 0;
  289. spin_lock( &ep->lock );
  290. for(j = 0; j < urb->actual_length; j += 4) {
  291. int cin = (data[j]>>0)&0xf;
  292. int cab = (data[j]>>4)&0xf;
  293. struct usb_mididev *cable = ep->cables[cab];
  294. if ( cable ) {
  295. int len = cin_to_len[cin]; /** length of MIDI data **/
  296. for (i = 0; i < len; i++) {
  297. cable->min.buf[cable->min.bufWrPtr] = data[1+i+j];
  298. cable->min.bufWrPtr = (cable->min.bufWrPtr+1)%MIDI_IN_BUFSIZ;
  299. if (cable->min.bufRemains < MIDI_IN_BUFSIZ)
  300. cable->min.bufRemains += 1;
  301. else /** need to drop data **/
  302. cable->min.bufRdPtr += (cable->min.bufRdPtr+1)%MIDI_IN_BUFSIZ;
  303. wake = 1;
  304. }
  305. }
  306. }
  307. spin_unlock ( &ep->lock );
  308. if ( wake ) {
  309. wake_up( &ep->wait );
  310. }
  311. }
  312. /* urb->dev must be reinitialized on 2.4.x kernels */
  313. urb->dev = ep->usbdev;
  314. urb->actual_length = 0;
  315. usb_submit_urb(urb, GFP_ATOMIC);
  316. }
  317. /* ------------------------------------------------------------------------- */
  318. /* This routine must be called with spin_lock */
  319. /** Wrapper around usb_write().
  320. * This routine must be called with spin_lock held on ep.
  321. * Called by midiWrite(), putOneMidiEvent(), and usb_midi_write();
  322. **/
  323. static int flush_midi_buffer( struct midi_out_endpoint *ep )
  324. {
  325. int ret=0;
  326. if ( ep->bufWrPtr > 0 ) {
  327. ret = usb_write( ep, ep->buf, ep->bufWrPtr );
  328. ep->bufWrPtr = 0;
  329. }
  330. return ret;
  331. }
  332. /* ------------------------------------------------------------------------- */
  333. /** Given a MIDI Event, determine size of data to be attached to
  334. * USB-MIDI packet.
  335. * Returns 1, 2 or 3.
  336. * Called by midiWrite();
  337. * Uses remains_80e0 and remains_f0f6;
  338. **/
  339. static int get_remains(int event)
  340. {
  341. int ret;
  342. if ( event < 0x80 ) {
  343. ret = 1;
  344. } else if ( event < 0xf0 ) {
  345. ret = remains_80e0[((event-0x80)>>4)&0x0f];
  346. } else if ( event < 0xf7 ) {
  347. ret = remains_f0f6[event-0xf0];
  348. } else {
  349. ret = 1;
  350. }
  351. return ret;
  352. }
  353. /** Given the output MIDI data in the output buffer, computes a reasonable
  354. * CIN.
  355. * Called by putOneMidiEvent().
  356. **/
  357. static int get_CIN( struct usb_mididev *m )
  358. {
  359. int cin;
  360. if ( m->mout.buf[0] == 0xf7 ) {
  361. cin = 5;
  362. }
  363. else if ( m->mout.buf[1] == 0xf7 ) {
  364. cin = 6;
  365. }
  366. else if ( m->mout.buf[2] == 0xf7 ) {
  367. cin = 7;
  368. }
  369. else {
  370. if ( m->mout.isInExclusive == 1 ) {
  371. cin = 4;
  372. } else if ( m->mout.buf[0] < 0x80 ) {
  373. /** One byte that we know nothing about. **/
  374. cin = 0xF;
  375. } else if ( m->mout.buf[0] < 0xf0 ) {
  376. /** MIDI Voice messages 0x8X to 0xEX map to cin 0x8 to 0xE. **/
  377. cin = (m->mout.buf[0]>>4)&0x0f;
  378. }
  379. else {
  380. /** Special lookup table exists for real-time events. **/
  381. cin = cin_f0ff[m->mout.buf[0]-0xf0];
  382. }
  383. }
  384. return cin;
  385. }
  386. /* ------------------------------------------------------------------------- */
  387. /** Move data to USB endpoint buffer.
  388. *
  389. **/
  390. static int put_one_midi_event(struct usb_mididev *m)
  391. {
  392. int cin;
  393. unsigned long flags;
  394. struct midi_out_endpoint *ep = m->mout.ep;
  395. int ret=0;
  396. cin = get_CIN( m );
  397. if ( cin > 0x0f || cin < 0 ) {
  398. return -EINVAL;
  399. }
  400. spin_lock_irqsave( &ep->lock, flags );
  401. ep->buf[ep->bufWrPtr++] = (m->mout.cableId<<4) | cin;
  402. ep->buf[ep->bufWrPtr++] = m->mout.buf[0];
  403. ep->buf[ep->bufWrPtr++] = m->mout.buf[1];
  404. ep->buf[ep->bufWrPtr++] = m->mout.buf[2];
  405. if ( ep->bufWrPtr >= ep->bufSize ) {
  406. ret = flush_midi_buffer( ep );
  407. }
  408. spin_unlock_irqrestore( &ep->lock, flags);
  409. m->mout.buf[0] = m->mout.buf[1] = m->mout.buf[2] = 0;
  410. m->mout.bufPtr = 0;
  411. return ret;
  412. }
  413. /** Write the MIDI message v on the midi device.
  414. * Called by usb_midi_write();
  415. * Responsible for packaging a MIDI data stream into USB-MIDI packets.
  416. **/
  417. static int midi_write( struct usb_mididev *m, int v )
  418. {
  419. unsigned long flags;
  420. struct midi_out_endpoint *ep = m->mout.ep;
  421. int ret=0;
  422. unsigned char c = (unsigned char)v;
  423. unsigned char sysrt_buf[4];
  424. if ( m->singlebyte != 0 ) {
  425. /** Simple code to handle the single-byte USB-MIDI protocol. */
  426. spin_lock_irqsave( &ep->lock, flags );
  427. if ( ep->bufWrPtr+4 > ep->bufSize ) {
  428. ret = flush_midi_buffer( ep );
  429. if ( !ret ) {
  430. spin_unlock_irqrestore( &ep->lock, flags );
  431. return ret;
  432. }
  433. }
  434. ep->buf[ep->bufWrPtr++] = (m->mout.cableId<<4) | 0x0f; /* single byte */
  435. ep->buf[ep->bufWrPtr++] = c;
  436. ep->buf[ep->bufWrPtr++] = 0;
  437. ep->buf[ep->bufWrPtr++] = 0;
  438. if ( ep->bufWrPtr >= ep->bufSize ) {
  439. ret = flush_midi_buffer( ep );
  440. }
  441. spin_unlock_irqrestore( &ep->lock, flags );
  442. return ret;
  443. }
  444. /** Normal USB-MIDI protocol begins here. */
  445. if ( c > 0xf7 ) { /* system: Realtime messages */
  446. /** Realtime messages are written IMMEDIATELY. */
  447. sysrt_buf[0] = (m->mout.cableId<<4) | 0x0f;
  448. sysrt_buf[1] = c;
  449. sysrt_buf[2] = 0;
  450. sysrt_buf[3] = 0;
  451. spin_lock_irqsave( &ep->lock, flags );
  452. ret = usb_write( ep, sysrt_buf, 4 );
  453. spin_unlock_irqrestore( &ep->lock, flags );
  454. /* m->mout.lastEvent = 0; */
  455. return ret;
  456. }
  457. if ( c >= 0x80 ) {
  458. if ( c < 0xf0 ) {
  459. m->mout.lastEvent = c;
  460. m->mout.isInExclusive = 0;
  461. m->mout.bufRemains = get_remains(c);
  462. } else if ( c == 0xf0 ) {
  463. /* m->mout.lastEvent = 0; */
  464. m->mout.isInExclusive = 1;
  465. m->mout.bufRemains = get_remains(c);
  466. } else if ( c == 0xf7 && m->mout.isInExclusive == 1 ) {
  467. /* m->mout.lastEvent = 0; */
  468. m->mout.isInExclusive = 0;
  469. m->mout.bufRemains = 1;
  470. } else if ( c > 0xf0 ) {
  471. /* m->mout.lastEvent = 0; */
  472. m->mout.isInExclusive = 0;
  473. m->mout.bufRemains = get_remains(c);
  474. }
  475. } else if ( m->mout.bufRemains == 0 && m->mout.isInExclusive == 0 ) {
  476. if ( m->mout.lastEvent == 0 ) {
  477. return 0; /* discard, waiting for the first event */
  478. }
  479. /** track status **/
  480. m->mout.buf[0] = m->mout.lastEvent;
  481. m->mout.bufPtr = 1;
  482. m->mout.bufRemains = get_remains(m->mout.lastEvent)-1;
  483. }
  484. m->mout.buf[m->mout.bufPtr++] = c;
  485. m->mout.bufRemains--;
  486. if ( m->mout.bufRemains == 0 || m->mout.bufPtr >= 3) {
  487. ret = put_one_midi_event(m);
  488. }
  489. return ret;
  490. }
  491. /* ------------------------------------------------------------------------- */
  492. /** Basic operation on /dev/midiXX as registered through struct file_operations.
  493. *
  494. * Basic contract: Used to change the current read/write position in a file.
  495. * On success, the non-negative position is reported.
  496. * On failure, the negative of an error code is reported.
  497. *
  498. * Because a MIDIStream is not a file, all seek operations are doomed to fail.
  499. *
  500. **/
  501. static loff_t usb_midi_llseek(struct file *file, loff_t offset, int origin)
  502. {
  503. /** Tell user you cannot seek on a PIPE-like device. **/
  504. return -ESPIPE;
  505. }
  506. /** Basic operation on /dev/midiXX as registered through struct file_operations.
  507. *
  508. * Basic contract: Block until count bytes have been read or an error occurs.
  509. *
  510. **/
  511. static ssize_t usb_midi_read(struct file *file, char __user *buffer, size_t count, loff_t *ppos)
  512. {
  513. struct usb_mididev *m = (struct usb_mididev *)file->private_data;
  514. struct midi_in_endpoint *ep = m->min.ep;
  515. ssize_t ret;
  516. DECLARE_WAITQUEUE(wait, current);
  517. if ( !access_ok(VERIFY_READ, buffer, count) ) {
  518. return -EFAULT;
  519. }
  520. if ( count == 0 ) {
  521. return 0;
  522. }
  523. add_wait_queue( &ep->wait, &wait );
  524. ret = 0;
  525. while( count > 0 ) {
  526. int cnt;
  527. int d = (int)count;
  528. cnt = m->min.bufRemains;
  529. if ( cnt > d ) {
  530. cnt = d;
  531. }
  532. if ( cnt <= 0 ) {
  533. if ( file->f_flags & O_NONBLOCK ) {
  534. if (!ret)
  535. ret = -EAGAIN;
  536. break;
  537. }
  538. __set_current_state(TASK_INTERRUPTIBLE);
  539. schedule();
  540. if (signal_pending(current)) {
  541. if(!ret)
  542. ret=-ERESTARTSYS;
  543. break;
  544. }
  545. continue;
  546. }
  547. {
  548. int i;
  549. unsigned long flags; /* used to synchronize access to the endpoint */
  550. spin_lock_irqsave( &ep->lock, flags );
  551. for (i = 0; i < cnt; i++) {
  552. if ( copy_to_user( buffer+i, m->min.buf+m->min.bufRdPtr, 1 ) ) {
  553. if ( !ret )
  554. ret = -EFAULT;
  555. break;
  556. }
  557. m->min.bufRdPtr = (m->min.bufRdPtr+1)%MIDI_IN_BUFSIZ;
  558. m->min.bufRemains -= 1;
  559. }
  560. spin_unlock_irqrestore( &ep->lock, flags );
  561. }
  562. count-=cnt;
  563. buffer+=cnt;
  564. ret+=cnt;
  565. break;
  566. }
  567. remove_wait_queue( &ep->wait, &wait );
  568. set_current_state(TASK_RUNNING);
  569. return ret;
  570. }
  571. /** Basic operation on /dev/midiXX as registered through struct file_operations.
  572. *
  573. * Basic Contract: Take MIDI data byte-by-byte and pass it to
  574. * writeMidi() which packages MIDI data into USB-MIDI stream.
  575. * Then flushMidiData() is called to ensure all bytes have been written
  576. * in a timely fashion.
  577. *
  578. **/
  579. static ssize_t usb_midi_write(struct file *file, const char __user *buffer, size_t count, loff_t *ppos)
  580. {
  581. struct usb_mididev *m = (struct usb_mididev *)file->private_data;
  582. ssize_t ret;
  583. unsigned long int flags;
  584. if ( !access_ok(VERIFY_READ, buffer, count) ) {
  585. return -EFAULT;
  586. }
  587. if ( count == 0 ) {
  588. return 0;
  589. }
  590. ret = 0;
  591. while( count > 0 ) {
  592. unsigned char c;
  593. if (copy_from_user((unsigned char *)&c, buffer, 1)) {
  594. if ( ret == 0 )
  595. ret = -EFAULT;
  596. break;
  597. }
  598. if( midi_write(m, (int)c) ) {
  599. if ( ret == 0 )
  600. ret = -EFAULT;
  601. break;
  602. }
  603. count--;
  604. buffer++;
  605. ret++;
  606. }
  607. spin_lock_irqsave( &m->mout.ep->lock, flags );
  608. if ( flush_midi_buffer(m->mout.ep) < 0 ) {
  609. ret = -EFAULT;
  610. }
  611. spin_unlock_irqrestore( &m->mout.ep->lock, flags );
  612. return ret;
  613. }
  614. /** Basic operation on /dev/midiXX as registered through struct file_operations.
  615. *
  616. * Basic contract: Wait (spin) until ready to read or write on the file.
  617. *
  618. **/
  619. static unsigned int usb_midi_poll(struct file *file, struct poll_table_struct *wait)
  620. {
  621. struct usb_mididev *m = (struct usb_mididev *)file->private_data;
  622. struct midi_in_endpoint *iep = m->min.ep;
  623. struct midi_out_endpoint *oep = m->mout.ep;
  624. unsigned long flags;
  625. unsigned int mask = 0;
  626. if ( file->f_mode & FMODE_READ ) {
  627. poll_wait( file, &iep->wait, wait );
  628. spin_lock_irqsave( &iep->lock, flags );
  629. if ( m->min.bufRemains > 0 )
  630. mask |= POLLIN | POLLRDNORM;
  631. spin_unlock_irqrestore( &iep->lock, flags );
  632. }
  633. if ( file->f_mode & FMODE_WRITE ) {
  634. poll_wait( file, &oep->wait, wait );
  635. spin_lock_irqsave( &oep->lock, flags );
  636. if ( oep->bufWrPtr < oep->bufSize )
  637. mask |= POLLOUT | POLLWRNORM;
  638. spin_unlock_irqrestore( &oep->lock, flags );
  639. }
  640. return mask;
  641. }
  642. /** Basic operation on /dev/midiXX as registered through struct file_operations.
  643. *
  644. * Basic contract: This is always the first operation performed on the
  645. * device node. If no method is defined, the open succeeds without any
  646. * notification given to the module.
  647. *
  648. **/
  649. static int usb_midi_open(struct inode *inode, struct file *file)
  650. {
  651. int minor = iminor(inode);
  652. DECLARE_WAITQUEUE(wait, current);
  653. struct usb_midi_state *s;
  654. struct usb_mididev *m;
  655. unsigned long flags;
  656. int succeed = 0;
  657. #if 0
  658. printk(KERN_INFO "usb-midi: Open minor= %d.\n", minor);
  659. #endif
  660. for(;;) {
  661. down(&open_sem);
  662. list_for_each_entry(s, &mididevs, mididev) {
  663. list_for_each_entry(m, &s->midiDevList, list) {
  664. if ( !((m->dev_midi ^ minor) & ~0xf) )
  665. goto device_found;
  666. }
  667. }
  668. up(&open_sem);
  669. return -ENODEV;
  670. device_found:
  671. if ( !s->usbdev ) {
  672. up(&open_sem);
  673. return -EIO;
  674. }
  675. if ( !(m->open_mode & file->f_mode) ) {
  676. break;
  677. }
  678. if ( file->f_flags & O_NONBLOCK ) {
  679. up(&open_sem);
  680. return -EBUSY;
  681. }
  682. __set_current_state(TASK_INTERRUPTIBLE);
  683. add_wait_queue( &open_wait, &wait );
  684. up(&open_sem);
  685. schedule();
  686. remove_wait_queue( &open_wait, &wait );
  687. if ( signal_pending(current) ) {
  688. return -ERESTARTSYS;
  689. }
  690. }
  691. file->private_data = m;
  692. spin_lock_irqsave( &s->lock, flags );
  693. if ( !(m->open_mode & (FMODE_READ | FMODE_WRITE)) ) {
  694. //FIXME: intented semantics unclear here
  695. m->min.bufRdPtr = 0;
  696. m->min.bufWrPtr = 0;
  697. m->min.bufRemains = 0;
  698. spin_lock_init(&m->min.ep->lock);
  699. m->mout.bufPtr = 0;
  700. m->mout.bufRemains = 0;
  701. m->mout.isInExclusive = 0;
  702. m->mout.lastEvent = 0;
  703. spin_lock_init(&m->mout.ep->lock);
  704. }
  705. if ( (file->f_mode & FMODE_READ) && m->min.ep != NULL ) {
  706. unsigned long int flagsep;
  707. spin_lock_irqsave( &m->min.ep->lock, flagsep );
  708. m->min.ep->cables[m->min.cableId] = m;
  709. m->min.ep->readers += 1;
  710. m->min.bufRdPtr = 0;
  711. m->min.bufWrPtr = 0;
  712. m->min.bufRemains = 0;
  713. spin_unlock_irqrestore( &m->min.ep->lock, flagsep );
  714. if ( !(m->min.ep->urbSubmitted)) {
  715. /* urb->dev must be reinitialized on 2.4.x kernels */
  716. m->min.ep->urb->dev = m->min.ep->usbdev;
  717. if ( usb_submit_urb(m->min.ep->urb, GFP_ATOMIC) ) {
  718. printk(KERN_ERR "usbmidi: Cannot submit urb for MIDI-IN\n");
  719. }
  720. m->min.ep->urbSubmitted = 1;
  721. }
  722. m->open_mode |= FMODE_READ;
  723. succeed = 1;
  724. }
  725. if ( (file->f_mode & FMODE_WRITE) && m->mout.ep != NULL ) {
  726. m->mout.bufPtr = 0;
  727. m->mout.bufRemains = 0;
  728. m->mout.isInExclusive = 0;
  729. m->mout.lastEvent = 0;
  730. m->open_mode |= FMODE_WRITE;
  731. succeed = 1;
  732. }
  733. spin_unlock_irqrestore( &s->lock, flags );
  734. s->count++;
  735. up(&open_sem);
  736. /** Changed to prevent extra increments to USE_COUNT. **/
  737. if (!succeed) {
  738. return -EBUSY;
  739. }
  740. #if 0
  741. printk(KERN_INFO "usb-midi: Open Succeeded. minor= %d.\n", minor);
  742. #endif
  743. return nonseekable_open(inode, file); /** Success. **/
  744. }
  745. /** Basic operation on /dev/midiXX as registered through struct file_operations.
  746. *
  747. * Basic contract: Close an opened file and deallocate anything we allocated.
  748. * Like open(), this can be missing. If open set file->private_data,
  749. * release() must clear it.
  750. *
  751. **/
  752. static int usb_midi_release(struct inode *inode, struct file *file)
  753. {
  754. struct usb_mididev *m = (struct usb_mididev *)file->private_data;
  755. struct usb_midi_state *s = (struct usb_midi_state *)m->midi;
  756. #if 0
  757. printk(KERN_INFO "usb-midi: Close.\n");
  758. #endif
  759. down(&open_sem);
  760. if ( m->open_mode & FMODE_WRITE ) {
  761. m->open_mode &= ~FMODE_WRITE;
  762. usb_kill_urb( m->mout.ep->urb );
  763. }
  764. if ( m->open_mode & FMODE_READ ) {
  765. unsigned long int flagsep;
  766. spin_lock_irqsave( &m->min.ep->lock, flagsep );
  767. m->min.ep->cables[m->min.cableId] = NULL; // discard cable
  768. m->min.ep->readers -= 1;
  769. m->open_mode &= ~FMODE_READ;
  770. if ( m->min.ep->readers == 0 &&
  771. m->min.ep->urbSubmitted ) {
  772. m->min.ep->urbSubmitted = 0;
  773. usb_kill_urb(m->min.ep->urb);
  774. }
  775. spin_unlock_irqrestore( &m->min.ep->lock, flagsep );
  776. }
  777. s->count--;
  778. up(&open_sem);
  779. wake_up(&open_wait);
  780. file->private_data = NULL;
  781. return 0;
  782. }
  783. static struct file_operations usb_midi_fops = {
  784. .owner = THIS_MODULE,
  785. .llseek = usb_midi_llseek,
  786. .read = usb_midi_read,
  787. .write = usb_midi_write,
  788. .poll = usb_midi_poll,
  789. .open = usb_midi_open,
  790. .release = usb_midi_release,
  791. };
  792. /* ------------------------------------------------------------------------- */
  793. /** Returns filled midi_in_endpoint structure or null on failure.
  794. *
  795. * Parameters:
  796. * d - a usb_device
  797. * endPoint - An usb endpoint in the range 0 to 15.
  798. * Called by allocUsbMidiDev();
  799. *
  800. **/
  801. static struct midi_in_endpoint *alloc_midi_in_endpoint( struct usb_device *d, int endPoint )
  802. {
  803. struct midi_in_endpoint *ep;
  804. int bufSize;
  805. int pipe;
  806. endPoint &= 0x0f; /* Silently force endPoint to lie in range 0 to 15. */
  807. pipe = usb_rcvbulkpipe( d, endPoint );
  808. bufSize = usb_maxpacket( d, pipe, 0 );
  809. /* usb_pipein() = ! usb_pipeout() = true for an in Endpoint */
  810. ep = (struct midi_in_endpoint *)kmalloc(sizeof(struct midi_in_endpoint), GFP_KERNEL);
  811. if ( !ep ) {
  812. printk(KERN_ERR "usbmidi: no memory for midi in-endpoint\n");
  813. return NULL;
  814. }
  815. memset( ep, 0, sizeof(struct midi_in_endpoint) );
  816. // this sets cables[] and readers to 0, too.
  817. // for (i=0; i<16; i++) ep->cables[i] = 0; // discard cable
  818. // ep->readers = 0;
  819. ep->endpoint = endPoint;
  820. ep->recvBuf = (unsigned char *)kmalloc(sizeof(unsigned char)*(bufSize), GFP_KERNEL);
  821. if ( !ep->recvBuf ) {
  822. printk(KERN_ERR "usbmidi: no memory for midi in-endpoint buffer\n");
  823. kfree(ep);
  824. return NULL;
  825. }
  826. ep->urb = usb_alloc_urb(0, GFP_KERNEL); /* no ISO */
  827. if ( !ep->urb ) {
  828. printk(KERN_ERR "usbmidi: no memory for midi in-endpoint urb\n");
  829. kfree(ep->recvBuf);
  830. kfree(ep);
  831. return NULL;
  832. }
  833. usb_fill_bulk_urb( ep->urb, d,
  834. usb_rcvbulkpipe(d, endPoint),
  835. (unsigned char *)ep->recvBuf, bufSize,
  836. usb_bulk_read, ep );
  837. /* ep->bufRdPtr = 0; */
  838. /* ep->bufWrPtr = 0; */
  839. /* ep->bufRemains = 0; */
  840. /* ep->urbSubmitted = 0; */
  841. ep->recvBufSize = bufSize;
  842. init_waitqueue_head(&ep->wait);
  843. return ep;
  844. }
  845. static int remove_midi_in_endpoint( struct midi_in_endpoint *min )
  846. {
  847. usb_kill_urb( min->urb );
  848. usb_free_urb( min->urb );
  849. kfree( min->recvBuf );
  850. kfree( min );
  851. return 0;
  852. }
  853. /** Returns filled midi_out_endpoint structure or null on failure.
  854. *
  855. * Parameters:
  856. * d - a usb_device
  857. * endPoint - An usb endpoint in the range 0 to 15.
  858. * Called by allocUsbMidiDev();
  859. *
  860. **/
  861. static struct midi_out_endpoint *alloc_midi_out_endpoint( struct usb_device *d, int endPoint )
  862. {
  863. struct midi_out_endpoint *ep = NULL;
  864. int pipe;
  865. int bufSize;
  866. endPoint &= 0x0f;
  867. pipe = usb_sndbulkpipe( d, endPoint );
  868. bufSize = usb_maxpacket( d, pipe, 1 );
  869. ep = (struct midi_out_endpoint *)kmalloc(sizeof(struct midi_out_endpoint), GFP_KERNEL);
  870. if ( !ep ) {
  871. printk(KERN_ERR "usbmidi: no memory for midi out-endpoint\n");
  872. return NULL;
  873. }
  874. memset( ep, 0, sizeof(struct midi_out_endpoint) );
  875. ep->endpoint = endPoint;
  876. ep->buf = (unsigned char *)kmalloc(sizeof(unsigned char)*bufSize, GFP_KERNEL);
  877. if ( !ep->buf ) {
  878. printk(KERN_ERR "usbmidi: no memory for midi out-endpoint buffer\n");
  879. kfree(ep);
  880. return NULL;
  881. }
  882. ep->urb = usb_alloc_urb(0, GFP_KERNEL); /* no ISO */
  883. if ( !ep->urb ) {
  884. printk(KERN_ERR "usbmidi: no memory for midi out-endpoint urb\n");
  885. kfree(ep->buf);
  886. kfree(ep);
  887. return NULL;
  888. }
  889. ep->bufSize = bufSize;
  890. /* ep->bufWrPtr = 0; */
  891. init_waitqueue_head(&ep->wait);
  892. return ep;
  893. }
  894. static int remove_midi_out_endpoint( struct midi_out_endpoint *mout )
  895. {
  896. usb_kill_urb( mout->urb );
  897. usb_free_urb( mout->urb );
  898. kfree( mout->buf );
  899. kfree( mout );
  900. return 0;
  901. }
  902. /** Returns a filled usb_mididev structure, registered as a Linux MIDI device.
  903. *
  904. * Returns null if memory is not available or the device cannot be registered.
  905. * Called by allocUsbMidiDev();
  906. *
  907. **/
  908. static struct usb_mididev *allocMidiDev(
  909. struct usb_midi_state *s,
  910. struct midi_in_endpoint *min,
  911. struct midi_out_endpoint *mout,
  912. int inCableId,
  913. int outCableId )
  914. {
  915. struct usb_mididev *m;
  916. m = (struct usb_mididev *)kmalloc(sizeof(struct usb_mididev), GFP_KERNEL);
  917. if (!m) {
  918. printk(KERN_ERR "usbmidi: no memory for midi device\n");
  919. return NULL;
  920. }
  921. memset(m, 0, sizeof(struct usb_mididev));
  922. if ((m->dev_midi = register_sound_midi(&usb_midi_fops, -1)) < 0) {
  923. printk(KERN_ERR "usbmidi: cannot register midi device\n");
  924. kfree(m);
  925. return NULL;
  926. }
  927. m->midi = s;
  928. /* m->open_mode = 0; */
  929. if ( min ) {
  930. m->min.ep = min;
  931. m->min.ep->usbdev = s->usbdev;
  932. m->min.cableId = inCableId;
  933. }
  934. /* m->min.bufPtr = 0; */
  935. /* m->min.bufRemains = 0; */
  936. if ( mout ) {
  937. m->mout.ep = mout;
  938. m->mout.ep->usbdev = s->usbdev;
  939. m->mout.cableId = outCableId;
  940. }
  941. /* m->mout.bufPtr = 0; */
  942. /* m->mout.bufRemains = 0; */
  943. /* m->mout.isInExclusive = 0; */
  944. /* m->mout.lastEvent = 0; */
  945. m->singlebyte = singlebyte;
  946. return m;
  947. }
  948. static void release_midi_device( struct usb_midi_state *s )
  949. {
  950. struct usb_mididev *m;
  951. struct midi_in_endpoint *min;
  952. struct midi_out_endpoint *mout;
  953. if ( s->count > 0 ) {
  954. up(&open_sem);
  955. return;
  956. }
  957. up( &open_sem );
  958. wake_up( &open_wait );
  959. while(!list_empty(&s->inEndpointList)) {
  960. min = list_entry(s->inEndpointList.next, struct midi_in_endpoint, list);
  961. list_del(&min->list);
  962. remove_midi_in_endpoint(min);
  963. }
  964. while(!list_empty(&s->outEndpointList)) {
  965. mout = list_entry(s->outEndpointList.next, struct midi_out_endpoint, list);
  966. list_del(&mout->list);
  967. remove_midi_out_endpoint(mout);
  968. }
  969. while(!list_empty(&s->midiDevList)) {
  970. m = list_entry(s->midiDevList.next, struct usb_mididev, list);
  971. list_del(&m->list);
  972. kfree(m);
  973. }
  974. kfree(s);
  975. return;
  976. }
  977. /* ------------------------------------------------------------------------- */
  978. /** Utility routine to find a descriptor in a dump of many descriptors.
  979. * Returns start of descriptor or NULL if not found.
  980. * descStart pointer to list of interfaces.
  981. * descLength length (in bytes) of dump
  982. * after (ignored if NULL) this routine returns only descriptors after "after"
  983. * dtype (mandatory) The descriptor type.
  984. * iface (ignored if -1) returns descriptor at/following given interface
  985. * altSetting (ignored if -1) returns descriptor at/following given altSetting
  986. *
  987. *
  988. * Called by parseDescriptor(), find_csinterface_descriptor();
  989. *
  990. */
  991. static void *find_descriptor( void *descStart, unsigned int descLength, void *after, unsigned char dtype, int iface, int altSetting )
  992. {
  993. unsigned char *p, *end, *next;
  994. int interfaceNumber = -1, altSet = -1;
  995. p = descStart;
  996. end = p + descLength;
  997. for( ; p < end; ) {
  998. if ( p[0] < 2 )
  999. return NULL;
  1000. next = p + p[0];
  1001. if ( next > end )
  1002. return NULL;
  1003. if ( p[1] == USB_DT_INTERFACE ) {
  1004. if ( p[0] < USB_DT_INTERFACE_SIZE )
  1005. return NULL;
  1006. interfaceNumber = p[2];
  1007. altSet = p[3];
  1008. }
  1009. if ( p[1] == dtype &&
  1010. ( !after || ( p > (unsigned char *)after) ) &&
  1011. ( ( iface == -1) || (iface == interfaceNumber) ) &&
  1012. ( (altSetting == -1) || (altSetting == altSet) )) {
  1013. return p;
  1014. }
  1015. p = next;
  1016. }
  1017. return NULL;
  1018. }
  1019. /** Utility to find a class-specific interface descriptor.
  1020. * dsubtype is a descriptor subtype
  1021. * Called by parseDescriptor();
  1022. **/
  1023. static void *find_csinterface_descriptor(void *descStart, unsigned int descLength, void *after, u8 dsubtype, int iface, int altSetting)
  1024. {
  1025. unsigned char *p;
  1026. p = find_descriptor( descStart, descLength, after, USB_DT_CS_INTERFACE, iface, altSetting );
  1027. while ( p ) {
  1028. if ( p[0] >= 3 && p[2] == dsubtype )
  1029. return p;
  1030. p = find_descriptor( descStart, descLength, p, USB_DT_CS_INTERFACE,
  1031. iface, altSetting );
  1032. }
  1033. return NULL;
  1034. }
  1035. /** The magic of making a new usb_midi_device from config happens here.
  1036. *
  1037. * The caller is responsible for free-ing this return value (if not NULL).
  1038. *
  1039. **/
  1040. static struct usb_midi_device *parse_descriptor( struct usb_device *d, unsigned char *buffer, int bufSize, unsigned int ifnum , unsigned int altSetting, int quirks)
  1041. {
  1042. struct usb_midi_device *u;
  1043. unsigned char *p1;
  1044. unsigned char *p2;
  1045. unsigned char *next;
  1046. int iep, oep;
  1047. int length;
  1048. unsigned long longBits;
  1049. int pins, nbytes, offset, shift, jack;
  1050. #ifdef HAVE_JACK_STRINGS
  1051. /** Jacks can have associated names. **/
  1052. unsigned char jack2string[256];
  1053. #endif
  1054. u = NULL;
  1055. /* find audiocontrol interface */
  1056. p1 = find_csinterface_descriptor( buffer, bufSize, NULL,
  1057. MS_HEADER, ifnum, altSetting);
  1058. if ( !p1 ) {
  1059. goto error_end;
  1060. }
  1061. if ( p1[0] < MS_HEADER_LENGTH ) {
  1062. goto error_end;
  1063. }
  1064. /* Assume success. Since the device corresponds to USB-MIDI spec, we assume
  1065. that the rest of the USB 2.0 spec is obeyed. */
  1066. u = (struct usb_midi_device *)kmalloc( sizeof(struct usb_midi_device), GFP_KERNEL );
  1067. if ( !u ) {
  1068. return NULL;
  1069. }
  1070. u->deviceName = NULL;
  1071. u->idVendor = le16_to_cpu(d->descriptor.idVendor);
  1072. u->idProduct = le16_to_cpu(d->descriptor.idProduct);
  1073. u->interface = ifnum;
  1074. u->altSetting = altSetting;
  1075. u->in[0].endpoint = -1;
  1076. u->in[0].cableId = -1;
  1077. u->out[0].endpoint = -1;
  1078. u->out[0].cableId = -1;
  1079. printk(KERN_INFO "usb-midi: Found MIDIStreaming device corresponding to Release %d.%02d of spec.\n",
  1080. (p1[4] >> 4) * 10 + (p1[4] & 0x0f ),
  1081. (p1[3] >> 4) * 10 + (p1[3] & 0x0f )
  1082. );
  1083. length = p1[5] | (p1[6] << 8);
  1084. #ifdef HAVE_JACK_STRINGS
  1085. memset(jack2string, 0, sizeof(unsigned char) * 256);
  1086. #endif
  1087. length -= p1[0];
  1088. for (p2 = p1 + p1[0]; length > 0; p2 = next) {
  1089. next = p2 + p2[0];
  1090. length -= p2[0];
  1091. if (p2[0] < 2 )
  1092. break;
  1093. if (p2[1] != USB_DT_CS_INTERFACE)
  1094. break;
  1095. if (p2[2] == MIDI_IN_JACK && p2[0] >= 6 ) {
  1096. jack = p2[4];
  1097. #ifdef HAVE_JACK_STRINGS
  1098. jack2string[jack] = p2[5];
  1099. #endif
  1100. printk(KERN_INFO "usb-midi: Found IN Jack 0x%02x %s\n",
  1101. jack, (p2[3] == EMBEDDED_JACK)?"EMBEDDED":"EXTERNAL" );
  1102. } else if ( p2[2] == MIDI_OUT_JACK && p2[0] >= 6) {
  1103. pins = p2[5];
  1104. if ( p2[0] < (6 + 2 * pins) )
  1105. continue;
  1106. jack = p2[4];
  1107. #ifdef HAVE_JACK_STRINGS
  1108. jack2string[jack] = p2[5 + 2 * pins];
  1109. #endif
  1110. printk(KERN_INFO "usb-midi: Found OUT Jack 0x%02x %s, %d pins\n",
  1111. jack, (p2[3] == EMBEDDED_JACK)?"EMBEDDED":"EXTERNAL", pins );
  1112. } else if ( p2[2] == ELEMENT_DESCRIPTOR && p2[0] >= 10) {
  1113. pins = p2[4];
  1114. if ( p2[0] < (9 + 2 * pins ) )
  1115. continue;
  1116. nbytes = p2[8 + 2 * pins ];
  1117. if ( p2[0] < (10 + 2 * pins + nbytes) )
  1118. continue;
  1119. longBits = 0L;
  1120. for ( offset = 0, shift = 0; offset < nbytes && offset < 8; offset ++, shift += 8) {
  1121. longBits |= ((long)(p2[9 + 2 * pins + offset])) << shift;
  1122. }
  1123. jack = p2[3];
  1124. #ifdef HAVE_JACK_STRINGS
  1125. jack2string[jack] = p2[9 + 2 * pins + nbytes];
  1126. #endif
  1127. printk(KERN_INFO "usb-midi: Found ELEMENT 0x%02x, %d/%d pins in/out, bits: 0x%016lx\n",
  1128. jack, pins, (int)(p2[5 + 2 * pins]), (long)longBits );
  1129. } else {
  1130. }
  1131. }
  1132. iep=0;
  1133. oep=0;
  1134. if (quirks==0) {
  1135. /* MIDISTREAM */
  1136. p2 = NULL;
  1137. for (p1 = find_descriptor(buffer, bufSize, NULL, USB_DT_ENDPOINT,
  1138. ifnum, altSetting ); p1; p1 = next ) {
  1139. next = find_descriptor(buffer, bufSize, p1, USB_DT_ENDPOINT,
  1140. ifnum, altSetting );
  1141. p2 = find_descriptor(buffer, bufSize, p1, USB_DT_CS_ENDPOINT,
  1142. ifnum, altSetting );
  1143. if ( p2 && next && ( p2 > next ) )
  1144. p2 = NULL;
  1145. if ( p1[0] < 9 || !p2 || p2[0] < 4 )
  1146. continue;
  1147. if ( (p1[2] & 0x80) == 0x80 ) {
  1148. if ( iep < 15 ) {
  1149. pins = p2[3]; /* not pins -- actually "cables" */
  1150. if ( pins > 16 )
  1151. pins = 16;
  1152. u->in[iep].endpoint = p1[2];
  1153. u->in[iep].cableId = ( 1 << pins ) - 1;
  1154. if ( u->in[iep].cableId )
  1155. iep ++;
  1156. if ( iep < 15 ) {
  1157. u->in[iep].endpoint = -1;
  1158. u->in[iep].cableId = -1;
  1159. }
  1160. }
  1161. } else {
  1162. if ( oep < 15 ) {
  1163. pins = p2[3]; /* not pins -- actually "cables" */
  1164. if ( pins > 16 )
  1165. pins = 16;
  1166. u->out[oep].endpoint = p1[2];
  1167. u->out[oep].cableId = ( 1 << pins ) - 1;
  1168. if ( u->out[oep].cableId )
  1169. oep ++;
  1170. if ( oep < 15 ) {
  1171. u->out[oep].endpoint = -1;
  1172. u->out[oep].cableId = -1;
  1173. }
  1174. }
  1175. }
  1176. }
  1177. } else if (quirks==1) {
  1178. /* YAMAHA quirks */
  1179. for (p1 = find_descriptor(buffer, bufSize, NULL, USB_DT_ENDPOINT,
  1180. ifnum, altSetting ); p1; p1 = next ) {
  1181. next = find_descriptor(buffer, bufSize, p1, USB_DT_ENDPOINT,
  1182. ifnum, altSetting );
  1183. if ( p1[0] < 7 )
  1184. continue;
  1185. if ( (p1[2] & 0x80) == 0x80 ) {
  1186. if ( iep < 15 ) {
  1187. pins = iep+1;
  1188. if ( pins > 16 )
  1189. pins = 16;
  1190. u->in[iep].endpoint = p1[2];
  1191. u->in[iep].cableId = ( 1 << pins ) - 1;
  1192. if ( u->in[iep].cableId )
  1193. iep ++;
  1194. if ( iep < 15 ) {
  1195. u->in[iep].endpoint = -1;
  1196. u->in[iep].cableId = -1;
  1197. }
  1198. }
  1199. } else {
  1200. if ( oep < 15 ) {
  1201. pins = oep+1;
  1202. u->out[oep].endpoint = p1[2];
  1203. u->out[oep].cableId = ( 1 << pins ) - 1;
  1204. if ( u->out[oep].cableId )
  1205. oep ++;
  1206. if ( oep < 15 ) {
  1207. u->out[oep].endpoint = -1;
  1208. u->out[oep].cableId = -1;
  1209. }
  1210. }
  1211. }
  1212. }
  1213. }
  1214. if ( !iep && ! oep ) {
  1215. goto error_end;
  1216. }
  1217. return u;
  1218. error_end:
  1219. kfree(u);
  1220. return NULL;
  1221. }
  1222. /* ------------------------------------------------------------------------- */
  1223. /** Returns number between 0 and 16.
  1224. *
  1225. **/
  1226. static int on_bits( unsigned short v )
  1227. {
  1228. int i;
  1229. int ret=0;
  1230. for ( i=0 ; i<16 ; i++ ) {
  1231. if ( v & (1<<i) )
  1232. ret++;
  1233. }
  1234. return ret;
  1235. }
  1236. /** USB-device will be interrogated for altSetting.
  1237. *
  1238. * Returns negative on error.
  1239. * Called by allocUsbMidiDev();
  1240. *
  1241. **/
  1242. static int get_alt_setting( struct usb_device *d, int ifnum )
  1243. {
  1244. int alts, alt=0;
  1245. struct usb_interface *iface;
  1246. struct usb_host_interface *interface;
  1247. struct usb_endpoint_descriptor *ep;
  1248. int epin, epout;
  1249. int i;
  1250. iface = usb_ifnum_to_if( d, ifnum );
  1251. alts = iface->num_altsetting;
  1252. for ( alt=0 ; alt<alts ; alt++ ) {
  1253. interface = &iface->altsetting[alt];
  1254. epin = -1;
  1255. epout = -1;
  1256. for ( i=0 ; i<interface->desc.bNumEndpoints ; i++ ) {
  1257. ep = &interface->endpoint[i].desc;
  1258. if ( (ep->bmAttributes & USB_ENDPOINT_XFERTYPE_MASK) != USB_ENDPOINT_XFER_BULK ) {
  1259. continue;
  1260. }
  1261. if ( (ep->bEndpointAddress & USB_DIR_IN) && epin < 0 ) {
  1262. epin = i;
  1263. } else if ( epout < 0 ) {
  1264. epout = i;
  1265. }
  1266. if ( epin >= 0 && epout >= 0 ) {
  1267. return interface->desc.bAlternateSetting;
  1268. }
  1269. }
  1270. }
  1271. return -ENODEV;
  1272. }
  1273. /* ------------------------------------------------------------------------- */
  1274. /** Returns 0 if successful in allocating and registering internal structures.
  1275. * Returns negative on failure.
  1276. * Calls allocMidiDev which additionally registers /dev/midiXX devices.
  1277. * Writes messages on success to indicate which /dev/midiXX is which physical
  1278. * endpoint.
  1279. *
  1280. **/
  1281. static int alloc_usb_midi_device( struct usb_device *d, struct usb_midi_state *s, struct usb_midi_device *u )
  1282. {
  1283. struct usb_mididev **mdevs=NULL;
  1284. struct midi_in_endpoint *mins[15], *min;
  1285. struct midi_out_endpoint *mouts[15], *mout;
  1286. int inDevs=0, outDevs=0;
  1287. int inEndpoints=0, outEndpoints=0;
  1288. int inEndpoint, outEndpoint;
  1289. int inCableId, outCableId;
  1290. int i;
  1291. int devices = 0;
  1292. int alt = 0;
  1293. /* Obtain altSetting or die.. */
  1294. alt = u->altSetting;
  1295. if ( alt < 0 ) {
  1296. alt = get_alt_setting( d, u->interface );
  1297. }
  1298. if ( alt < 0 )
  1299. return -ENXIO;
  1300. /* Configure interface */
  1301. if ( usb_set_interface( d, u->interface, alt ) < 0 ) {
  1302. return -ENXIO;
  1303. }
  1304. for ( i = 0 ; i < 15 ; i++ ) {
  1305. mins[i] = NULL;
  1306. mouts[i] = NULL;
  1307. }
  1308. /* Begin Allocation */
  1309. while( inEndpoints < 15
  1310. && inDevs < maxdevices
  1311. && u->in[inEndpoints].cableId >= 0 ) {
  1312. inDevs += on_bits((unsigned short)u->in[inEndpoints].cableId);
  1313. mins[inEndpoints] = alloc_midi_in_endpoint( d, u->in[inEndpoints].endpoint );
  1314. if ( mins[inEndpoints] == NULL )
  1315. goto error_end;
  1316. inEndpoints++;
  1317. }
  1318. while( outEndpoints < 15
  1319. && outDevs < maxdevices
  1320. && u->out[outEndpoints].cableId >= 0 ) {
  1321. outDevs += on_bits((unsigned short)u->out[outEndpoints].cableId);
  1322. mouts[outEndpoints] = alloc_midi_out_endpoint( d, u->out[outEndpoints].endpoint );
  1323. if ( mouts[outEndpoints] == NULL )
  1324. goto error_end;
  1325. outEndpoints++;
  1326. }
  1327. devices = inDevs > outDevs ? inDevs : outDevs;
  1328. devices = maxdevices > devices ? devices : maxdevices;
  1329. /* obtain space for device name (iProduct) if not known. */
  1330. if ( ! u->deviceName ) {
  1331. mdevs = (struct usb_mididev **)
  1332. kmalloc(sizeof(struct usb_mididevs *)*devices
  1333. + sizeof(char) * 256, GFP_KERNEL);
  1334. } else {
  1335. mdevs = (struct usb_mididev **)
  1336. kmalloc(sizeof(struct usb_mididevs *)*devices, GFP_KERNEL);
  1337. }
  1338. if ( !mdevs ) {
  1339. /* devices = 0; */
  1340. /* mdevs = NULL; */
  1341. goto error_end;
  1342. }
  1343. for ( i=0 ; i<devices ; i++ ) {
  1344. mdevs[i] = NULL;
  1345. }
  1346. /* obtain device name (iProduct) if not known. */
  1347. if ( ! u->deviceName ) {
  1348. u->deviceName = (char *) (mdevs + devices);
  1349. if ( ! d->have_langid && d->descriptor.iProduct) {
  1350. alt = usb_get_string(d, 0, 0, u->deviceName, 250);
  1351. if (alt < 0) {
  1352. printk(KERN_INFO "error getting string descriptor 0 (error=%d)\n", alt);
  1353. } else if (u->deviceName[0] < 4) {
  1354. printk(KERN_INFO "string descriptor 0 too short (length = %d)\n", alt);
  1355. } else {
  1356. printk(KERN_INFO "string descriptor 0 found (length = %d)\n", alt);
  1357. for(; alt >= 4; alt -= 2) {
  1358. i = u->deviceName[alt-2] | (u->deviceName[alt-1]<< 8);
  1359. printk(KERN_INFO "usb-midi: langid(%d) 0x%04x\n",
  1360. (alt-4) >> 1, i);
  1361. if ( ( ( i ^ ulangid ) & 0xff ) == 0 ) {
  1362. d->have_langid = 1;
  1363. d->string_langid = i;
  1364. printk(KERN_INFO "usb-midi: langid(match) 0x%04x\n", i);
  1365. if ( i == ulangid )
  1366. break;
  1367. }
  1368. }
  1369. }
  1370. }
  1371. u->deviceName[0] = (char) 0;
  1372. if (d->descriptor.iProduct) {
  1373. printk(KERN_INFO "usb-midi: fetchString(%d)\n", d->descriptor.iProduct);
  1374. alt = usb_string(d, d->descriptor.iProduct, u->deviceName, 255);
  1375. if( alt < 0 ) {
  1376. u->deviceName[0] = (char) 0;
  1377. }
  1378. printk(KERN_INFO "usb-midi: fetchString = %d\n", alt);
  1379. }
  1380. /* Failsafe */
  1381. if ( !u->deviceName[0] ) {
  1382. if (le16_to_cpu(d->descriptor.idVendor) == USB_VENDOR_ID_ROLAND ) {
  1383. strcpy(u->deviceName, "Unknown Roland");
  1384. } else if (le16_to_cpu(d->descriptor.idVendor) == USB_VENDOR_ID_STEINBERG ) {
  1385. strcpy(u->deviceName, "Unknown Steinberg");
  1386. } else if (le16_to_cpu(d->descriptor.idVendor) == USB_VENDOR_ID_YAMAHA ) {
  1387. strcpy(u->deviceName, "Unknown Yamaha");
  1388. } else {
  1389. strcpy(u->deviceName, "Unknown");
  1390. }
  1391. }
  1392. }
  1393. inEndpoint = 0; inCableId = -1;
  1394. outEndpoint = 0; outCableId = -1;
  1395. for ( i=0 ; i<devices ; i++ ) {
  1396. for ( inCableId ++ ;
  1397. inEndpoint <15
  1398. && mins[inEndpoint]
  1399. && !(u->in[inEndpoint].cableId & (1<<inCableId)) ;
  1400. inCableId++ ) {
  1401. if ( inCableId >= 16 ) {
  1402. inEndpoint ++;
  1403. inCableId = 0;
  1404. }
  1405. }
  1406. min = mins[inEndpoint];
  1407. for ( outCableId ++ ;
  1408. outEndpoint <15
  1409. && mouts[outEndpoint]
  1410. && !(u->out[outEndpoint].cableId & (1<<outCableId)) ;
  1411. outCableId++ ) {
  1412. if ( outCableId >= 16 ) {
  1413. outEndpoint ++;
  1414. outCableId = 0;
  1415. }
  1416. }
  1417. mout = mouts[outEndpoint];
  1418. mdevs[i] = allocMidiDev( s, min, mout, inCableId, outCableId );
  1419. if ( mdevs[i] == NULL )
  1420. goto error_end;
  1421. }
  1422. /* Success! */
  1423. for ( i=0 ; i<devices ; i++ ) {
  1424. list_add_tail( &mdevs[i]->list, &s->midiDevList );
  1425. }
  1426. for ( i=0 ; i<inEndpoints ; i++ ) {
  1427. list_add_tail( &mins[i]->list, &s->inEndpointList );
  1428. }
  1429. for ( i=0 ; i<outEndpoints ; i++ ) {
  1430. list_add_tail( &mouts[i]->list, &s->outEndpointList );
  1431. }
  1432. printk(KERN_INFO "usbmidi: found [ %s ] (0x%04x:0x%04x), attached:\n", u->deviceName, u->idVendor, u->idProduct );
  1433. for ( i=0 ; i<devices ; i++ ) {
  1434. int dm = (mdevs[i]->dev_midi-2)>>4;
  1435. if ( mdevs[i]->mout.ep != NULL && mdevs[i]->min.ep != NULL ) {
  1436. printk(KERN_INFO "usbmidi: /dev/midi%02d: in (ep:%02x cid:%2d bufsiz:%2d) out (ep:%02x cid:%2d bufsiz:%2d)\n",
  1437. dm,
  1438. mdevs[i]->min.ep->endpoint|USB_DIR_IN, mdevs[i]->min.cableId, mdevs[i]->min.ep->recvBufSize,
  1439. mdevs[i]->mout.ep->endpoint, mdevs[i]->mout.cableId, mdevs[i]->mout.ep->bufSize);
  1440. } else if ( mdevs[i]->min.ep != NULL ) {
  1441. printk(KERN_INFO "usbmidi: /dev/midi%02d: in (ep:%02x cid:%2d bufsiz:%02d)\n",
  1442. dm,
  1443. mdevs[i]->min.ep->endpoint|USB_DIR_IN, mdevs[i]->min.cableId, mdevs[i]->min.ep->recvBufSize);
  1444. } else if ( mdevs[i]->mout.ep != NULL ) {
  1445. printk(KERN_INFO "usbmidi: /dev/midi%02d: out (ep:%02x cid:%2d bufsiz:%02d)\n",
  1446. dm,
  1447. mdevs[i]->mout.ep->endpoint, mdevs[i]->mout.cableId, mdevs[i]->mout.ep->bufSize);
  1448. }
  1449. }
  1450. kfree(mdevs);
  1451. return 0;
  1452. error_end:
  1453. if ( mdevs != NULL ) {
  1454. for ( i=0 ; i<devices ; i++ ) {
  1455. if ( mdevs[i] != NULL ) {
  1456. unregister_sound_midi( mdevs[i]->dev_midi );
  1457. kfree(mdevs[i]);
  1458. }
  1459. }
  1460. kfree(mdevs);
  1461. }
  1462. for ( i=0 ; i<15 ; i++ ) {
  1463. if ( mins[i] != NULL ) {
  1464. remove_midi_in_endpoint( mins[i] );
  1465. }
  1466. if ( mouts[i] != NULL ) {
  1467. remove_midi_out_endpoint( mouts[i] );
  1468. }
  1469. }
  1470. return -ENOMEM;
  1471. }
  1472. /* ------------------------------------------------------------------------- */
  1473. /** Attempt to scan YAMAHA's device descriptor and detect correct values of
  1474. * them.
  1475. * Return 0 on succes, negative on failure.
  1476. * Called by usb_midi_probe();
  1477. **/
  1478. static int detect_yamaha_device( struct usb_device *d,
  1479. struct usb_interface *iface, unsigned int ifnum,
  1480. struct usb_midi_state *s)
  1481. {
  1482. struct usb_host_interface *interface;
  1483. struct usb_midi_device *u;
  1484. unsigned char *buffer;
  1485. int bufSize;
  1486. int i;
  1487. int alts=-1;
  1488. int ret;
  1489. if (le16_to_cpu(d->descriptor.idVendor) != USB_VENDOR_ID_YAMAHA) {
  1490. return -EINVAL;
  1491. }
  1492. for ( i=0 ; i < iface->num_altsetting; i++ ) {
  1493. interface = iface->altsetting + i;
  1494. if ( interface->desc.bInterfaceClass != 255 ||
  1495. interface->desc.bInterfaceSubClass != 0 )
  1496. continue;
  1497. alts = interface->desc.bAlternateSetting;
  1498. }
  1499. if ( alts == -1 ) {
  1500. return -EINVAL;
  1501. }
  1502. printk(KERN_INFO "usb-midi: Found YAMAHA USB-MIDI device on dev %04x:%04x, iface %d\n",
  1503. le16_to_cpu(d->descriptor.idVendor),
  1504. le16_to_cpu(d->descriptor.idProduct), ifnum);
  1505. i = d->actconfig - d->config;
  1506. buffer = d->rawdescriptors[i];
  1507. bufSize = le16_to_cpu(d->actconfig->desc.wTotalLength);
  1508. u = parse_descriptor( d, buffer, bufSize, ifnum, alts, 1);
  1509. if ( u == NULL ) {
  1510. return -EINVAL;
  1511. }
  1512. ret = alloc_usb_midi_device( d, s, u );
  1513. kfree(u);
  1514. return ret;
  1515. }
  1516. /** Scan table of known devices which are only partially compliant with
  1517. * the MIDIStreaming specification.
  1518. * Called by usb_midi_probe();
  1519. *
  1520. **/
  1521. static int detect_vendor_specific_device( struct usb_device *d, unsigned int ifnum, struct usb_midi_state *s )
  1522. {
  1523. struct usb_midi_device *u;
  1524. int i;
  1525. int ret = -ENXIO;
  1526. for ( i=0; i<VENDOR_SPECIFIC_USB_MIDI_DEVICES ; i++ ) {
  1527. u=&(usb_midi_devices[i]);
  1528. if ( le16_to_cpu(d->descriptor.idVendor) != u->idVendor ||
  1529. le16_to_cpu(d->descriptor.idProduct) != u->idProduct ||
  1530. ifnum != u->interface )
  1531. continue;
  1532. ret = alloc_usb_midi_device( d, s, u );
  1533. break;
  1534. }
  1535. return ret;
  1536. }
  1537. /** Attempt to match any config of an interface to a MIDISTREAMING interface.
  1538. * Returns 0 on success, negative on failure.
  1539. * Called by usb_midi_probe();
  1540. **/
  1541. static int detect_midi_subclass(struct usb_device *d,
  1542. struct usb_interface *iface, unsigned int ifnum,
  1543. struct usb_midi_state *s)
  1544. {
  1545. struct usb_host_interface *interface;
  1546. struct usb_midi_device *u;
  1547. unsigned char *buffer;
  1548. int bufSize;
  1549. int i;
  1550. int alts=-1;
  1551. int ret;
  1552. for ( i=0 ; i < iface->num_altsetting; i++ ) {
  1553. interface = iface->altsetting + i;
  1554. if ( interface->desc.bInterfaceClass != USB_CLASS_AUDIO ||
  1555. interface->desc.bInterfaceSubClass != USB_SUBCLASS_MIDISTREAMING )
  1556. continue;
  1557. alts = interface->desc.bAlternateSetting;
  1558. }
  1559. if ( alts == -1 ) {
  1560. return -EINVAL;
  1561. }
  1562. printk(KERN_INFO "usb-midi: Found MIDISTREAMING on dev %04x:%04x, iface %d\n",
  1563. le16_to_cpu(d->descriptor.idVendor),
  1564. le16_to_cpu(d->descriptor.idProduct), ifnum);
  1565. /* From USB Spec v2.0, Section 9.5.
  1566. If the class or vendor specific descriptors use the same format
  1567. as standard descriptors (e.g., start with a length byte and
  1568. followed by a type byte), they must be returned interleaved with
  1569. standard descriptors in the configuration information returned by
  1570. a GetDescriptor(Configuration) request. In this case, the class
  1571. or vendor-specific descriptors must follow a related standard
  1572. descriptor they modify or extend.
  1573. */
  1574. i = d->actconfig - d->config;
  1575. buffer = d->rawdescriptors[i];
  1576. bufSize = le16_to_cpu(d->actconfig->desc.wTotalLength);
  1577. u = parse_descriptor( d, buffer, bufSize, ifnum, alts, 0);
  1578. if ( u == NULL ) {
  1579. return -EINVAL;
  1580. }
  1581. ret = alloc_usb_midi_device( d, s, u );
  1582. kfree(u);
  1583. return ret;
  1584. }
  1585. /** When user has requested a specific device, match it exactly.
  1586. *
  1587. * Uses uvendor, uproduct, uinterface, ualt, umin, umout and ucable.
  1588. * Called by usb_midi_probe();
  1589. *
  1590. **/
  1591. static int detect_by_hand(struct usb_device *d, unsigned int ifnum, struct usb_midi_state *s)
  1592. {
  1593. struct usb_midi_device u;
  1594. if ( le16_to_cpu(d->descriptor.idVendor) != uvendor ||
  1595. le16_to_cpu(d->descriptor.idProduct) != uproduct ||
  1596. ifnum != uinterface ) {
  1597. return -EINVAL;
  1598. }
  1599. if ( ualt < 0 )
  1600. ualt = -1;
  1601. if ( umin < 0 || umin > 15 )
  1602. umin = 0x01 | USB_DIR_IN;
  1603. if ( umout < 0 || umout > 15 )
  1604. umout = 0x01;
  1605. if ( ucable < 0 || ucable > 15 )
  1606. ucable = 0;
  1607. u.deviceName = NULL; /* A flag for alloc_usb_midi_device to get device
  1608. name from device. */
  1609. u.idVendor = uvendor;
  1610. u.idProduct = uproduct;
  1611. u.interface = uinterface;
  1612. u.altSetting = ualt;
  1613. u.in[0].endpoint = umin;
  1614. u.in[0].cableId = (1<<ucable);
  1615. u.out[0].endpoint = umout;
  1616. u.out[0].cableId = (1<<ucable);
  1617. return alloc_usb_midi_device( d, s, &u );
  1618. }
  1619. /* ------------------------------------------------------------------------- */
  1620. static int usb_midi_probe(struct usb_interface *intf,
  1621. const struct usb_device_id *id)
  1622. {
  1623. struct usb_midi_state *s;
  1624. struct usb_device *dev = interface_to_usbdev(intf);
  1625. int ifnum = intf->cur_altsetting->desc.bInterfaceNumber;
  1626. s = (struct usb_midi_state *)kmalloc(sizeof(struct usb_midi_state), GFP_KERNEL);
  1627. if ( !s )
  1628. return -ENOMEM;
  1629. memset( s, 0, sizeof(struct usb_midi_state) );
  1630. INIT_LIST_HEAD(&s->midiDevList);
  1631. INIT_LIST_HEAD(&s->inEndpointList);
  1632. INIT_LIST_HEAD(&s->outEndpointList);
  1633. s->usbdev = dev;
  1634. s->count = 0;
  1635. spin_lock_init(&s->lock);
  1636. if (
  1637. detect_by_hand( dev, ifnum, s ) &&
  1638. detect_midi_subclass( dev, intf, ifnum, s ) &&
  1639. detect_vendor_specific_device( dev, ifnum, s ) &&
  1640. detect_yamaha_device( dev, intf, ifnum, s) ) {
  1641. kfree(s);
  1642. return -EIO;
  1643. }
  1644. down(&open_sem);
  1645. list_add_tail(&s->mididev, &mididevs);
  1646. up(&open_sem);
  1647. usb_set_intfdata (intf, s);
  1648. return 0;
  1649. }
  1650. static void usb_midi_disconnect(struct usb_interface *intf)
  1651. {
  1652. struct usb_midi_state *s = usb_get_intfdata (intf);
  1653. struct usb_mididev *m;
  1654. if ( !s )
  1655. return;
  1656. if ( s == (struct usb_midi_state *)-1 ) {
  1657. return;
  1658. }
  1659. if ( !s->usbdev ) {
  1660. return;
  1661. }
  1662. down(&open_sem);
  1663. list_del(&s->mididev);
  1664. INIT_LIST_HEAD(&s->mididev);
  1665. s->usbdev = NULL;
  1666. usb_set_intfdata (intf, NULL);
  1667. list_for_each_entry(m, &s->midiDevList, list) {
  1668. wake_up(&(m->min.ep->wait));
  1669. wake_up(&(m->mout.ep->wait));
  1670. if ( m->dev_midi >= 0 ) {
  1671. unregister_sound_midi(m->dev_midi);
  1672. }
  1673. m->dev_midi = -1;
  1674. }
  1675. release_midi_device(s);
  1676. wake_up(&open_wait);
  1677. }
  1678. /* we want to look at all devices by hand */
  1679. static struct usb_device_id id_table[] = {
  1680. {.driver_info = 42},
  1681. {}
  1682. };
  1683. static struct usb_driver usb_midi_driver = {
  1684. .owner = THIS_MODULE,
  1685. .name = "midi",
  1686. .probe = usb_midi_probe,
  1687. .disconnect = usb_midi_disconnect,
  1688. .id_table = id_table,
  1689. };
  1690. /* ------------------------------------------------------------------------- */
  1691. static int __init usb_midi_init(void)
  1692. {
  1693. return usb_register(&usb_midi_driver);
  1694. }
  1695. static void __exit usb_midi_exit(void)
  1696. {
  1697. usb_deregister(&usb_midi_driver);
  1698. }
  1699. module_init(usb_midi_init) ;
  1700. module_exit(usb_midi_exit) ;
  1701. #ifdef HAVE_ALSA_SUPPORT
  1702. #define SNDRV_MAIN_OBJECT_FILE
  1703. #include "../../include/driver.h"
  1704. #include "../../include/control.h"
  1705. #include "../../include/info.h"
  1706. #include "../../include/cs46xx.h"
  1707. /* ------------------------------------------------------------------------- */
  1708. static int snd_usbmidi_input_close(snd_rawmidi_substream_t * substream)
  1709. {
  1710. return 0;
  1711. }
  1712. static int snd_usbmidi_input_open(snd_rawmidi_substream_t * substream )
  1713. {
  1714. return 0;
  1715. }
  1716. static void snd_usbmidi_input_trigger(snd_rawmidi_substream_t * substream, int up)
  1717. {
  1718. return 0;
  1719. }
  1720. /* ------------------------------------------------------------------------- */
  1721. static int snd_usbmidi_output_close(snd_rawmidi_substream_t * substream)
  1722. {
  1723. return 0;
  1724. }
  1725. static int snd_usbmidi_output_open(snd_rawmidi_substream_t * substream)
  1726. {
  1727. return 0;
  1728. }
  1729. static void snd_usb_midi_output_trigger(snd_rawmidi_substream_t * substream,
  1730. int up)
  1731. {
  1732. return 0;
  1733. }
  1734. /* ------------------------------------------------------------------------- */
  1735. static snd_rawmidi_ops_t snd_usbmidi_output =
  1736. {
  1737. .open = snd_usbmidi_output_open,
  1738. .close = snd_usbmidi_output_close,
  1739. .trigger = snd_usbmidi_output_trigger,
  1740. };
  1741. static snd_rawmidi_ops_t snd_usbmidi_input =
  1742. {
  1743. .open = snd_usbmidi_input_open,
  1744. .close = snd_usbmidi_input_close,
  1745. .trigger = snd_usbmidi_input_trigger,
  1746. };
  1747. int snd_usbmidi_midi(cs46xx_t *chip, int device, snd_rawmidi_t **rrawmidi)
  1748. {
  1749. snd_rawmidi_t *rmidi;
  1750. int err;
  1751. if (rrawmidi)
  1752. *rrawmidi = NULL;
  1753. if ((err = snd_rawmidi_new(chip->card, "USB-MIDI", device, 1, 1, &rmidi)) < 0)
  1754. return err;
  1755. strcpy(rmidi->name, "USB-MIDI");
  1756. snd_rawmidi_set_ops( rmidi, SNDRV_RAWMIDI_STREAM_OUTPUT, &snd_usbmidi_output );
  1757. snd_rawmidi_set_ops( rmidi, SNDRV_RAWMIDI_STREAM_INPUT, &snd_usbmidi_input );
  1758. rmidi->info_flags |= SNDRV_RAWMIDI_INFO_OUTPUT | SNDRV_RAWMIDI_INFO_INPUT | SNDRV_RAWMIDI_INFO_DUPLEX;
  1759. rmidi->private_data = chip;
  1760. chip->rmidi = rmidi;
  1761. if (rrawmidi)
  1762. *rrawmidi = NULL;
  1763. return 0;
  1764. }
  1765. int snd_usbmidi_create( snd_card_t * card,
  1766. struct pci_dev * pci,
  1767. usbmidi_t ** rchip )
  1768. {
  1769. usbmidi_t *chip;
  1770. int err, idx;
  1771. snd_region_t *region;
  1772. static snd_device_opt_t ops = {
  1773. .dev_free = snd_usbmidi_dev_free,
  1774. };
  1775. *rchip = NULL;
  1776. chip = snd_magic_kcalloc( usbmidi_t, 0, GFP_KERNEL );
  1777. if ( chip == NULL )
  1778. return -ENOMEM;
  1779. }
  1780. EXPORT_SYMBOL(snd_usbmidi_create);
  1781. EXPORT_SYMBOL(snd_usbmidi_midi);
  1782. #endif /* HAVE_ALSA_SUPPORT */