audio.c 120 KB

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  1. /*****************************************************************************/
  2. /*
  3. * audio.c -- USB Audio Class driver
  4. *
  5. * Copyright (C) 1999, 2000, 2001, 2003, 2004
  6. * Alan Cox (alan@lxorguk.ukuu.org.uk)
  7. * Thomas Sailer (sailer@ife.ee.ethz.ch)
  8. *
  9. * This program is free software; you can redistribute it and/or modify
  10. * it under the terms of the GNU General Public License as published by
  11. * the Free Software Foundation; either version 2 of the License, or
  12. * (at your option) any later version.
  13. *
  14. * Debugging:
  15. * Use the 'lsusb' utility to dump the descriptors.
  16. *
  17. * 1999-09-07: Alan Cox
  18. * Parsing Audio descriptor patch
  19. * 1999-09-08: Thomas Sailer
  20. * Added OSS compatible data io functions; both parts of the
  21. * driver remain to be glued together
  22. * 1999-09-10: Thomas Sailer
  23. * Beautified the driver. Added sample format conversions.
  24. * Still not properly glued with the parsing code.
  25. * The parsing code seems to have its problems btw,
  26. * Since it parses all available configs but doesn't
  27. * store which iface/altsetting belongs to which config.
  28. * 1999-09-20: Thomas Sailer
  29. * Threw out Alan's parsing code and implemented my own one.
  30. * You cannot reasonnably linearly parse audio descriptors,
  31. * especially the AudioClass descriptors have to be considered
  32. * pointer lists. Mixer parsing untested, due to lack of device.
  33. * First stab at synch pipe implementation, the Dallas USB DAC
  34. * wants to use an Asynch out pipe. usb_audio_state now basically
  35. * only contains lists of mixer and wave devices. We can therefore
  36. * now have multiple mixer/wave devices per USB device.
  37. * 1999-10-28: Thomas Sailer
  38. * Converted to URB API. Fixed a taskstate/wakeup semantics mistake
  39. * that made the driver consume all available CPU cycles.
  40. * Now runs stable on UHCI-Acher/Fliegl/Sailer.
  41. * 1999-10-31: Thomas Sailer
  42. * Audio can now be unloaded if it is not in use by any mixer
  43. * or dsp client (formerly you had to disconnect the audio devices
  44. * from the USB port)
  45. * Finally, about three months after ordering, my "Maxxtro SPK222"
  46. * speakers arrived, isn't disdata a great mail order company 8-)
  47. * Parse class specific endpoint descriptor of the audiostreaming
  48. * interfaces and take the endpoint attributes from there.
  49. * Unbelievably, the Philips USB DAC has a sampling rate range
  50. * of over a decade, yet does not support the sampling rate control!
  51. * No wonder it sounds so bad, has very audible sampling rate
  52. * conversion distortion. Don't try to listen to it using
  53. * decent headphones!
  54. * "Let's make things better" -> but please Philips start with your
  55. * own stuff!!!!
  56. * 1999-11-02: Thomas Sailer
  57. * It takes the Philips boxes several seconds to acquire synchronisation
  58. * that means they won't play short sounds. Should probably maintain
  59. * the ISO datastream even if there's nothing to play.
  60. * Fix counting the total_bytes counter, RealPlayer G2 depends on it.
  61. * 1999-12-20: Thomas Sailer
  62. * Fix bad bug in conversion to per interface probing.
  63. * disconnect was called multiple times for the audio device,
  64. * leading to a premature freeing of the audio structures
  65. * 2000-05-13: Thomas Sailer
  66. * I don't remember who changed the find_format routine,
  67. * but the change was completely broken for the Dallas
  68. * chip. Anyway taking sampling rate into account in find_format
  69. * is bad and should not be done unless there are devices with
  70. * completely broken audio descriptors. Unless someone shows
  71. * me such a descriptor, I will not allow find_format to
  72. * take the sampling rate into account.
  73. * Also, the former find_format made:
  74. * - mpg123 play mono instead of stereo
  75. * - sox completely fail for wav's with sample rates < 44.1kHz
  76. * for the Dallas chip.
  77. * Also fix a rather long standing problem with applications that
  78. * use "small" writes producing no sound at all.
  79. * 2000-05-15: Thomas Sailer
  80. * My fears came true, the Philips camera indeed has pretty stupid
  81. * audio descriptors.
  82. * 2000-05-17: Thomas Sailer
  83. * Nemsoft spotted my stupid last minute change, thanks
  84. * 2000-05-19: Thomas Sailer
  85. * Fixed FEATURE_UNIT thinkos found thanks to the KC Technology
  86. * Xtend device. Basically the driver treated FEATURE_UNIT's sourced
  87. * by mono terminals as stereo.
  88. * 2000-05-20: Thomas Sailer
  89. * SELECTOR support (and thus selecting record channels from the mixer).
  90. * Somewhat peculiar due to OSS interface limitations. Only works
  91. * for channels where a "slider" is already in front of it (i.e.
  92. * a MIXER unit or a FEATURE unit with volume capability).
  93. * 2000-11-26: Thomas Sailer
  94. * Workaround for Dallas DS4201. The DS4201 uses PCM8 as format tag for
  95. * its 8 bit modes, but expects signed data (and should therefore have used PCM).
  96. * 2001-03-10: Thomas Sailer
  97. * provide abs function, prevent picking up a bogus kernel macro
  98. * for abs. Bug report by Andrew Morton <andrewm@uow.edu.au>
  99. * 2001-06-16: Bryce Nesbitt <bryce@obviously.com>
  100. * Fix SNDCTL_DSP_STEREO API violation
  101. * 2003-04-08: Oliver Neukum (oliver@neukum.name):
  102. * Setting a configuration is done by usbcore and must not be overridden
  103. * 2004-02-27: Workaround for broken synch descriptors
  104. * 2004-03-07: Alan Stern <stern@rowland.harvard.edu>
  105. * Add usb_ifnum_to_if() and usb_altnum_to_altsetting() support.
  106. * Use the in-memory descriptors instead of reading them from the device.
  107. *
  108. */
  109. /*
  110. * Strategy:
  111. *
  112. * Alan Cox and Thomas Sailer are starting to dig at opposite ends and
  113. * are hoping to meet in the middle, just like tunnel diggers :)
  114. * Alan tackles the descriptor parsing, Thomas the actual data IO and the
  115. * OSS compatible interface.
  116. *
  117. * Data IO implementation issues
  118. *
  119. * A mmap'able ring buffer per direction is implemented, because
  120. * almost every OSS app expects it. It is however impractical to
  121. * transmit/receive USB data directly into and out of the ring buffer,
  122. * due to alignment and synchronisation issues. Instead, the ring buffer
  123. * feeds a constant time delay line that handles the USB issues.
  124. *
  125. * Now we first try to find an alternate setting that exactly matches
  126. * the sample format requested by the user. If we find one, we do not
  127. * need to perform any sample rate conversions. If there is no matching
  128. * altsetting, we choose the closest one and perform sample format
  129. * conversions. We never do sample rate conversion; these are too
  130. * expensive to be performed in the kernel.
  131. *
  132. * Current status: no known HCD-specific issues.
  133. *
  134. * Generally: Due to the brokenness of the Audio Class spec
  135. * it seems generally impossible to write a generic Audio Class driver,
  136. * so a reasonable driver should implement the features that are actually
  137. * used.
  138. *
  139. * Parsing implementation issues
  140. *
  141. * One cannot reasonably parse the AudioClass descriptors linearly.
  142. * Therefore the current implementation features routines to look
  143. * for a specific descriptor in the descriptor list.
  144. *
  145. * How does the parsing work? First, all interfaces are searched
  146. * for an AudioControl class interface. If found, the config descriptor
  147. * that belongs to the current configuration is searched and
  148. * the HEADER descriptor is found. It contains a list of
  149. * all AudioStreaming and MIDIStreaming devices. This list is then walked,
  150. * and all AudioStreaming interfaces are classified into input and output
  151. * interfaces (according to the endpoint0 direction in altsetting1) (MIDIStreaming
  152. * is currently not supported). The input & output list is then used
  153. * to group inputs and outputs together and issued pairwise to the
  154. * AudioStreaming class parser. Finally, all OUTPUT_TERMINAL descriptors
  155. * are walked and issued to the mixer construction routine.
  156. *
  157. * The AudioStreaming parser simply enumerates all altsettings belonging
  158. * to the specified interface. It looks for AS_GENERAL and FORMAT_TYPE
  159. * class specific descriptors to extract the sample format/sample rate
  160. * data. Only sample format types PCM and PCM8 are supported right now, and
  161. * only FORMAT_TYPE_I is handled. The isochronous data endpoint needs to
  162. * be the first endpoint of the interface, and the optional synchronisation
  163. * isochronous endpoint the second one.
  164. *
  165. * Mixer construction works as follows: The various TERMINAL and UNIT
  166. * descriptors span a tree from the root (OUTPUT_TERMINAL) through the
  167. * intermediate nodes (UNITs) to the leaves (INPUT_TERMINAL). We walk
  168. * that tree in a depth first manner. FEATURE_UNITs may contribute volume,
  169. * bass and treble sliders to the mixer, MIXER_UNITs volume sliders.
  170. * The terminal type encoded in the INPUT_TERMINALs feeds a heuristic
  171. * to determine "meaningful" OSS slider numbers, however we will see
  172. * how well this works in practice. Other features are not used at the
  173. * moment, they seem less often used. Also, it seems difficult at least
  174. * to construct recording source switches from SELECTOR_UNITs, but
  175. * since there are not many USB ADC's available, we leave that for later.
  176. */
  177. /*****************************************************************************/
  178. #include <linux/kernel.h>
  179. #include <linux/slab.h>
  180. #include <linux/string.h>
  181. #include <linux/timer.h>
  182. #include <linux/sched.h>
  183. #include <linux/smp_lock.h>
  184. #include <linux/module.h>
  185. #include <linux/sound.h>
  186. #include <linux/soundcard.h>
  187. #include <linux/list.h>
  188. #include <linux/vmalloc.h>
  189. #include <linux/init.h>
  190. #include <linux/poll.h>
  191. #include <linux/bitops.h>
  192. #include <asm/uaccess.h>
  193. #include <asm/io.h>
  194. #include <linux/usb.h>
  195. #include "audio.h"
  196. /*
  197. * Version Information
  198. */
  199. #define DRIVER_VERSION "v1.0.0"
  200. #define DRIVER_AUTHOR "Alan Cox <alan@lxorguk.ukuu.org.uk>, Thomas Sailer (sailer@ife.ee.ethz.ch)"
  201. #define DRIVER_DESC "USB Audio Class driver"
  202. #define AUDIO_DEBUG 1
  203. #define SND_DEV_DSP16 5
  204. #define dprintk(x)
  205. /* --------------------------------------------------------------------- */
  206. /*
  207. * Linked list of all audio devices...
  208. */
  209. static struct list_head audiodevs = LIST_HEAD_INIT(audiodevs);
  210. static DECLARE_MUTEX(open_sem);
  211. /*
  212. * wait queue for processes wanting to open an USB audio device
  213. */
  214. static DECLARE_WAIT_QUEUE_HEAD(open_wait);
  215. #define MAXFORMATS MAX_ALT
  216. #define DMABUFSHIFT 17 /* 128k worth of DMA buffer */
  217. #define NRSGBUF (1U<<(DMABUFSHIFT-PAGE_SHIFT))
  218. /*
  219. * This influences:
  220. * - Latency
  221. * - Interrupt rate
  222. * - Synchronisation behaviour
  223. * Don't touch this if you don't understand all of the above.
  224. */
  225. #define DESCFRAMES 5
  226. #define SYNCFRAMES DESCFRAMES
  227. #define MIXFLG_STEREOIN 1
  228. #define MIXFLG_STEREOOUT 2
  229. struct mixerchannel {
  230. __u16 value;
  231. __u16 osschannel; /* number of the OSS channel */
  232. __s16 minval, maxval;
  233. __u16 slctunitid;
  234. __u8 unitid;
  235. __u8 selector;
  236. __u8 chnum;
  237. __u8 flags;
  238. };
  239. struct audioformat {
  240. unsigned int format;
  241. unsigned int sratelo;
  242. unsigned int sratehi;
  243. unsigned char altsetting;
  244. unsigned char attributes;
  245. };
  246. struct dmabuf {
  247. /* buffer data format */
  248. unsigned int format;
  249. unsigned int srate;
  250. /* physical buffer */
  251. unsigned char *sgbuf[NRSGBUF];
  252. unsigned bufsize;
  253. unsigned numfrag;
  254. unsigned fragshift;
  255. unsigned wrptr, rdptr;
  256. unsigned total_bytes;
  257. int count;
  258. unsigned error; /* over/underrun */
  259. wait_queue_head_t wait;
  260. /* redundant, but makes calculations easier */
  261. unsigned fragsize;
  262. unsigned dmasize;
  263. /* OSS stuff */
  264. unsigned mapped:1;
  265. unsigned ready:1;
  266. unsigned ossfragshift;
  267. int ossmaxfrags;
  268. unsigned subdivision;
  269. };
  270. struct usb_audio_state;
  271. #define FLG_URB0RUNNING 1
  272. #define FLG_URB1RUNNING 2
  273. #define FLG_SYNC0RUNNING 4
  274. #define FLG_SYNC1RUNNING 8
  275. #define FLG_RUNNING 16
  276. #define FLG_CONNECTED 32
  277. struct my_data_urb {
  278. struct urb *urb;
  279. };
  280. struct my_sync_urb {
  281. struct urb *urb;
  282. };
  283. struct usb_audiodev {
  284. struct list_head list;
  285. struct usb_audio_state *state;
  286. /* soundcore stuff */
  287. int dev_audio;
  288. /* wave stuff */
  289. mode_t open_mode;
  290. spinlock_t lock; /* DMA buffer access spinlock */
  291. struct usbin {
  292. int interface; /* Interface number, -1 means not used */
  293. unsigned int format; /* USB data format */
  294. unsigned int datapipe; /* the data input pipe */
  295. unsigned int syncpipe; /* the synchronisation pipe - 0 for anything but adaptive IN mode */
  296. unsigned int syncinterval; /* P for adaptive IN mode, 0 otherwise */
  297. unsigned int freqn; /* nominal sampling rate in USB format, i.e. fs/1000 in Q10.14 */
  298. unsigned int freqmax; /* maximum sampling rate, used for buffer management */
  299. unsigned int phase; /* phase accumulator */
  300. unsigned int flags; /* see FLG_ defines */
  301. struct my_data_urb durb[2]; /* ISO descriptors for the data endpoint */
  302. struct my_sync_urb surb[2]; /* ISO sync pipe descriptor if needed */
  303. struct dmabuf dma;
  304. } usbin;
  305. struct usbout {
  306. int interface; /* Interface number, -1 means not used */
  307. unsigned int format; /* USB data format */
  308. unsigned int datapipe; /* the data input pipe */
  309. unsigned int syncpipe; /* the synchronisation pipe - 0 for anything but asynchronous OUT mode */
  310. unsigned int syncinterval; /* P for asynchronous OUT mode, 0 otherwise */
  311. unsigned int freqn; /* nominal sampling rate in USB format, i.e. fs/1000 in Q10.14 */
  312. unsigned int freqm; /* momentary sampling rate in USB format, i.e. fs/1000 in Q10.14 */
  313. unsigned int freqmax; /* maximum sampling rate, used for buffer management */
  314. unsigned int phase; /* phase accumulator */
  315. unsigned int flags; /* see FLG_ defines */
  316. struct my_data_urb durb[2]; /* ISO descriptors for the data endpoint */
  317. struct my_sync_urb surb[2]; /* ISO sync pipe descriptor if needed */
  318. struct dmabuf dma;
  319. } usbout;
  320. unsigned int numfmtin, numfmtout;
  321. struct audioformat fmtin[MAXFORMATS];
  322. struct audioformat fmtout[MAXFORMATS];
  323. };
  324. struct usb_mixerdev {
  325. struct list_head list;
  326. struct usb_audio_state *state;
  327. /* soundcore stuff */
  328. int dev_mixer;
  329. unsigned char iface; /* interface number of the AudioControl interface */
  330. /* USB format descriptions */
  331. unsigned int numch, modcnt;
  332. /* mixch is last and gets allocated dynamically */
  333. struct mixerchannel ch[0];
  334. };
  335. struct usb_audio_state {
  336. struct list_head audiodev;
  337. /* USB device */
  338. struct usb_device *usbdev;
  339. struct list_head audiolist;
  340. struct list_head mixerlist;
  341. unsigned count; /* usage counter; NOTE: the usb stack is also considered a user */
  342. };
  343. /* private audio format extensions */
  344. #define AFMT_STEREO 0x80000000
  345. #define AFMT_ISSTEREO(x) ((x) & AFMT_STEREO)
  346. #define AFMT_IS16BIT(x) ((x) & (AFMT_S16_LE|AFMT_S16_BE|AFMT_U16_LE|AFMT_U16_BE))
  347. #define AFMT_ISUNSIGNED(x) ((x) & (AFMT_U8|AFMT_U16_LE|AFMT_U16_BE))
  348. #define AFMT_BYTESSHIFT(x) ((AFMT_ISSTEREO(x) ? 1 : 0) + (AFMT_IS16BIT(x) ? 1 : 0))
  349. #define AFMT_BYTES(x) (1<<AFMT_BYTESSHFIT(x))
  350. /* --------------------------------------------------------------------- */
  351. static inline unsigned ld2(unsigned int x)
  352. {
  353. unsigned r = 0;
  354. if (x >= 0x10000) {
  355. x >>= 16;
  356. r += 16;
  357. }
  358. if (x >= 0x100) {
  359. x >>= 8;
  360. r += 8;
  361. }
  362. if (x >= 0x10) {
  363. x >>= 4;
  364. r += 4;
  365. }
  366. if (x >= 4) {
  367. x >>= 2;
  368. r += 2;
  369. }
  370. if (x >= 2)
  371. r++;
  372. return r;
  373. }
  374. /* --------------------------------------------------------------------- */
  375. /*
  376. * OSS compatible ring buffer management. The ring buffer may be mmap'ed into
  377. * an application address space.
  378. *
  379. * I first used the rvmalloc stuff copied from bttv. Alan Cox did not like it, so
  380. * we now use an array of pointers to a single page each. This saves us the
  381. * kernel page table manipulations, but we have to do a page table alike mechanism
  382. * (though only one indirection) in software.
  383. */
  384. static void dmabuf_release(struct dmabuf *db)
  385. {
  386. unsigned int nr;
  387. void *p;
  388. for(nr = 0; nr < NRSGBUF; nr++) {
  389. if (!(p = db->sgbuf[nr]))
  390. continue;
  391. ClearPageReserved(virt_to_page(p));
  392. free_page((unsigned long)p);
  393. db->sgbuf[nr] = NULL;
  394. }
  395. db->mapped = db->ready = 0;
  396. }
  397. static int dmabuf_init(struct dmabuf *db)
  398. {
  399. unsigned int nr, bytepersec, bufs;
  400. void *p;
  401. /* initialize some fields */
  402. db->rdptr = db->wrptr = db->total_bytes = db->count = db->error = 0;
  403. /* calculate required buffer size */
  404. bytepersec = db->srate << AFMT_BYTESSHIFT(db->format);
  405. bufs = 1U << DMABUFSHIFT;
  406. if (db->ossfragshift) {
  407. if ((1000 << db->ossfragshift) < bytepersec)
  408. db->fragshift = ld2(bytepersec/1000);
  409. else
  410. db->fragshift = db->ossfragshift;
  411. } else {
  412. db->fragshift = ld2(bytepersec/100/(db->subdivision ? db->subdivision : 1));
  413. if (db->fragshift < 3)
  414. db->fragshift = 3;
  415. }
  416. db->numfrag = bufs >> db->fragshift;
  417. while (db->numfrag < 4 && db->fragshift > 3) {
  418. db->fragshift--;
  419. db->numfrag = bufs >> db->fragshift;
  420. }
  421. db->fragsize = 1 << db->fragshift;
  422. if (db->ossmaxfrags >= 4 && db->ossmaxfrags < db->numfrag)
  423. db->numfrag = db->ossmaxfrags;
  424. db->dmasize = db->numfrag << db->fragshift;
  425. for(nr = 0; nr < NRSGBUF; nr++) {
  426. if (!db->sgbuf[nr]) {
  427. p = (void *)get_zeroed_page(GFP_KERNEL);
  428. if (!p)
  429. return -ENOMEM;
  430. db->sgbuf[nr] = p;
  431. SetPageReserved(virt_to_page(p));
  432. }
  433. memset(db->sgbuf[nr], AFMT_ISUNSIGNED(db->format) ? 0x80 : 0, PAGE_SIZE);
  434. if ((nr << PAGE_SHIFT) >= db->dmasize)
  435. break;
  436. }
  437. db->bufsize = nr << PAGE_SHIFT;
  438. db->ready = 1;
  439. dprintk((KERN_DEBUG "usbaudio: dmabuf_init bytepersec %d bufs %d ossfragshift %d ossmaxfrags %d "
  440. "fragshift %d fragsize %d numfrag %d dmasize %d bufsize %d fmt 0x%x srate %d\n",
  441. bytepersec, bufs, db->ossfragshift, db->ossmaxfrags, db->fragshift, db->fragsize,
  442. db->numfrag, db->dmasize, db->bufsize, db->format, db->srate));
  443. return 0;
  444. }
  445. static int dmabuf_mmap(struct vm_area_struct *vma, struct dmabuf *db, unsigned long start, unsigned long size, pgprot_t prot)
  446. {
  447. unsigned int nr;
  448. if (!db->ready || db->mapped || (start | size) & (PAGE_SIZE-1) || size > db->bufsize)
  449. return -EINVAL;
  450. size >>= PAGE_SHIFT;
  451. for(nr = 0; nr < size; nr++)
  452. if (!db->sgbuf[nr])
  453. return -EINVAL;
  454. db->mapped = 1;
  455. for(nr = 0; nr < size; nr++) {
  456. unsigned long pfn;
  457. pfn = virt_to_phys(db->sgbuf[nr]) >> PAGE_SHIFT;
  458. if (remap_pfn_range(vma, start, pfn, PAGE_SIZE, prot))
  459. return -EAGAIN;
  460. start += PAGE_SIZE;
  461. }
  462. return 0;
  463. }
  464. static void dmabuf_copyin(struct dmabuf *db, const void *buffer, unsigned int size)
  465. {
  466. unsigned int pgrem, rem;
  467. db->total_bytes += size;
  468. for (;;) {
  469. if (size <= 0)
  470. return;
  471. pgrem = ((~db->wrptr) & (PAGE_SIZE-1)) + 1;
  472. if (pgrem > size)
  473. pgrem = size;
  474. rem = db->dmasize - db->wrptr;
  475. if (pgrem > rem)
  476. pgrem = rem;
  477. memcpy((db->sgbuf[db->wrptr >> PAGE_SHIFT]) + (db->wrptr & (PAGE_SIZE-1)), buffer, pgrem);
  478. size -= pgrem;
  479. buffer += pgrem;
  480. db->wrptr += pgrem;
  481. if (db->wrptr >= db->dmasize)
  482. db->wrptr = 0;
  483. }
  484. }
  485. static void dmabuf_copyout(struct dmabuf *db, void *buffer, unsigned int size)
  486. {
  487. unsigned int pgrem, rem;
  488. db->total_bytes += size;
  489. for (;;) {
  490. if (size <= 0)
  491. return;
  492. pgrem = ((~db->rdptr) & (PAGE_SIZE-1)) + 1;
  493. if (pgrem > size)
  494. pgrem = size;
  495. rem = db->dmasize - db->rdptr;
  496. if (pgrem > rem)
  497. pgrem = rem;
  498. memcpy(buffer, (db->sgbuf[db->rdptr >> PAGE_SHIFT]) + (db->rdptr & (PAGE_SIZE-1)), pgrem);
  499. size -= pgrem;
  500. buffer += pgrem;
  501. db->rdptr += pgrem;
  502. if (db->rdptr >= db->dmasize)
  503. db->rdptr = 0;
  504. }
  505. }
  506. static int dmabuf_copyin_user(struct dmabuf *db, unsigned int ptr, const void __user *buffer, unsigned int size)
  507. {
  508. unsigned int pgrem, rem;
  509. if (!db->ready || db->mapped)
  510. return -EINVAL;
  511. for (;;) {
  512. if (size <= 0)
  513. return 0;
  514. pgrem = ((~ptr) & (PAGE_SIZE-1)) + 1;
  515. if (pgrem > size)
  516. pgrem = size;
  517. rem = db->dmasize - ptr;
  518. if (pgrem > rem)
  519. pgrem = rem;
  520. if (copy_from_user((db->sgbuf[ptr >> PAGE_SHIFT]) + (ptr & (PAGE_SIZE-1)), buffer, pgrem))
  521. return -EFAULT;
  522. size -= pgrem;
  523. buffer += pgrem;
  524. ptr += pgrem;
  525. if (ptr >= db->dmasize)
  526. ptr = 0;
  527. }
  528. }
  529. static int dmabuf_copyout_user(struct dmabuf *db, unsigned int ptr, void __user *buffer, unsigned int size)
  530. {
  531. unsigned int pgrem, rem;
  532. if (!db->ready || db->mapped)
  533. return -EINVAL;
  534. for (;;) {
  535. if (size <= 0)
  536. return 0;
  537. pgrem = ((~ptr) & (PAGE_SIZE-1)) + 1;
  538. if (pgrem > size)
  539. pgrem = size;
  540. rem = db->dmasize - ptr;
  541. if (pgrem > rem)
  542. pgrem = rem;
  543. if (copy_to_user(buffer, (db->sgbuf[ptr >> PAGE_SHIFT]) + (ptr & (PAGE_SIZE-1)), pgrem))
  544. return -EFAULT;
  545. size -= pgrem;
  546. buffer += pgrem;
  547. ptr += pgrem;
  548. if (ptr >= db->dmasize)
  549. ptr = 0;
  550. }
  551. }
  552. /* --------------------------------------------------------------------- */
  553. /*
  554. * USB I/O code. We do sample format conversion if necessary
  555. */
  556. static void usbin_stop(struct usb_audiodev *as)
  557. {
  558. struct usbin *u = &as->usbin;
  559. unsigned long flags;
  560. unsigned int i, notkilled = 1;
  561. spin_lock_irqsave(&as->lock, flags);
  562. u->flags &= ~FLG_RUNNING;
  563. i = u->flags;
  564. spin_unlock_irqrestore(&as->lock, flags);
  565. while (i & (FLG_URB0RUNNING|FLG_URB1RUNNING|FLG_SYNC0RUNNING|FLG_SYNC1RUNNING)) {
  566. set_current_state(notkilled ? TASK_INTERRUPTIBLE : TASK_UNINTERRUPTIBLE);
  567. schedule_timeout(1);
  568. spin_lock_irqsave(&as->lock, flags);
  569. i = u->flags;
  570. spin_unlock_irqrestore(&as->lock, flags);
  571. if (notkilled && signal_pending(current)) {
  572. if (i & FLG_URB0RUNNING)
  573. usb_kill_urb(u->durb[0].urb);
  574. if (i & FLG_URB1RUNNING)
  575. usb_kill_urb(u->durb[1].urb);
  576. if (i & FLG_SYNC0RUNNING)
  577. usb_kill_urb(u->surb[0].urb);
  578. if (i & FLG_SYNC1RUNNING)
  579. usb_kill_urb(u->surb[1].urb);
  580. notkilled = 0;
  581. }
  582. }
  583. set_current_state(TASK_RUNNING);
  584. if (u->durb[0].urb->transfer_buffer)
  585. kfree(u->durb[0].urb->transfer_buffer);
  586. if (u->durb[1].urb->transfer_buffer)
  587. kfree(u->durb[1].urb->transfer_buffer);
  588. if (u->surb[0].urb->transfer_buffer)
  589. kfree(u->surb[0].urb->transfer_buffer);
  590. if (u->surb[1].urb->transfer_buffer)
  591. kfree(u->surb[1].urb->transfer_buffer);
  592. u->durb[0].urb->transfer_buffer = u->durb[1].urb->transfer_buffer =
  593. u->surb[0].urb->transfer_buffer = u->surb[1].urb->transfer_buffer = NULL;
  594. }
  595. static inline void usbin_release(struct usb_audiodev *as)
  596. {
  597. usbin_stop(as);
  598. }
  599. static void usbin_disc(struct usb_audiodev *as)
  600. {
  601. struct usbin *u = &as->usbin;
  602. unsigned long flags;
  603. spin_lock_irqsave(&as->lock, flags);
  604. u->flags &= ~(FLG_RUNNING | FLG_CONNECTED);
  605. spin_unlock_irqrestore(&as->lock, flags);
  606. usbin_stop(as);
  607. }
  608. static void conversion(const void *ibuf, unsigned int ifmt, void *obuf, unsigned int ofmt, void *tmp, unsigned int scnt)
  609. {
  610. unsigned int cnt, i;
  611. __s16 *sp, *sp2, s;
  612. unsigned char *bp;
  613. cnt = scnt;
  614. if (AFMT_ISSTEREO(ifmt))
  615. cnt <<= 1;
  616. sp = ((__s16 *)tmp) + cnt;
  617. switch (ifmt & ~AFMT_STEREO) {
  618. case AFMT_U8:
  619. for (bp = ((unsigned char *)ibuf)+cnt, i = 0; i < cnt; i++) {
  620. bp--;
  621. sp--;
  622. *sp = (*bp ^ 0x80) << 8;
  623. }
  624. break;
  625. case AFMT_S8:
  626. for (bp = ((unsigned char *)ibuf)+cnt, i = 0; i < cnt; i++) {
  627. bp--;
  628. sp--;
  629. *sp = *bp << 8;
  630. }
  631. break;
  632. case AFMT_U16_LE:
  633. for (bp = ((unsigned char *)ibuf)+2*cnt, i = 0; i < cnt; i++) {
  634. bp -= 2;
  635. sp--;
  636. *sp = (bp[0] | (bp[1] << 8)) ^ 0x8000;
  637. }
  638. break;
  639. case AFMT_U16_BE:
  640. for (bp = ((unsigned char *)ibuf)+2*cnt, i = 0; i < cnt; i++) {
  641. bp -= 2;
  642. sp--;
  643. *sp = (bp[1] | (bp[0] << 8)) ^ 0x8000;
  644. }
  645. break;
  646. case AFMT_S16_LE:
  647. for (bp = ((unsigned char *)ibuf)+2*cnt, i = 0; i < cnt; i++) {
  648. bp -= 2;
  649. sp--;
  650. *sp = bp[0] | (bp[1] << 8);
  651. }
  652. break;
  653. case AFMT_S16_BE:
  654. for (bp = ((unsigned char *)ibuf)+2*cnt, i = 0; i < cnt; i++) {
  655. bp -= 2;
  656. sp--;
  657. *sp = bp[1] | (bp[0] << 8);
  658. }
  659. break;
  660. }
  661. if (!AFMT_ISSTEREO(ifmt) && AFMT_ISSTEREO(ofmt)) {
  662. /* expand from mono to stereo */
  663. for (sp = ((__s16 *)tmp)+scnt, sp2 = ((__s16 *)tmp)+2*scnt, i = 0; i < scnt; i++) {
  664. sp--;
  665. sp2 -= 2;
  666. sp2[0] = sp2[1] = sp[0];
  667. }
  668. }
  669. if (AFMT_ISSTEREO(ifmt) && !AFMT_ISSTEREO(ofmt)) {
  670. /* contract from stereo to mono */
  671. for (sp = sp2 = ((__s16 *)tmp), i = 0; i < scnt; i++, sp++, sp2 += 2)
  672. sp[0] = (sp2[0] + sp2[1]) >> 1;
  673. }
  674. cnt = scnt;
  675. if (AFMT_ISSTEREO(ofmt))
  676. cnt <<= 1;
  677. sp = ((__s16 *)tmp);
  678. bp = ((unsigned char *)obuf);
  679. switch (ofmt & ~AFMT_STEREO) {
  680. case AFMT_U8:
  681. for (i = 0; i < cnt; i++, sp++, bp++)
  682. *bp = (*sp >> 8) ^ 0x80;
  683. break;
  684. case AFMT_S8:
  685. for (i = 0; i < cnt; i++, sp++, bp++)
  686. *bp = *sp >> 8;
  687. break;
  688. case AFMT_U16_LE:
  689. for (i = 0; i < cnt; i++, sp++, bp += 2) {
  690. s = *sp;
  691. bp[0] = s;
  692. bp[1] = (s >> 8) ^ 0x80;
  693. }
  694. break;
  695. case AFMT_U16_BE:
  696. for (i = 0; i < cnt; i++, sp++, bp += 2) {
  697. s = *sp;
  698. bp[1] = s;
  699. bp[0] = (s >> 8) ^ 0x80;
  700. }
  701. break;
  702. case AFMT_S16_LE:
  703. for (i = 0; i < cnt; i++, sp++, bp += 2) {
  704. s = *sp;
  705. bp[0] = s;
  706. bp[1] = s >> 8;
  707. }
  708. break;
  709. case AFMT_S16_BE:
  710. for (i = 0; i < cnt; i++, sp++, bp += 2) {
  711. s = *sp;
  712. bp[1] = s;
  713. bp[0] = s >> 8;
  714. }
  715. break;
  716. }
  717. }
  718. static void usbin_convert(struct usbin *u, unsigned char *buffer, unsigned int samples)
  719. {
  720. union {
  721. __s16 s[64];
  722. unsigned char b[0];
  723. } tmp;
  724. unsigned int scnt, maxs, ufmtsh, dfmtsh;
  725. ufmtsh = AFMT_BYTESSHIFT(u->format);
  726. dfmtsh = AFMT_BYTESSHIFT(u->dma.format);
  727. maxs = (AFMT_ISSTEREO(u->dma.format | u->format)) ? 32 : 64;
  728. while (samples > 0) {
  729. scnt = samples;
  730. if (scnt > maxs)
  731. scnt = maxs;
  732. conversion(buffer, u->format, tmp.b, u->dma.format, tmp.b, scnt);
  733. dmabuf_copyin(&u->dma, tmp.b, scnt << dfmtsh);
  734. buffer += scnt << ufmtsh;
  735. samples -= scnt;
  736. }
  737. }
  738. static int usbin_prepare_desc(struct usbin *u, struct urb *urb)
  739. {
  740. unsigned int i, maxsize, offs;
  741. maxsize = (u->freqmax + 0x3fff) >> (14 - AFMT_BYTESSHIFT(u->format));
  742. //printk(KERN_DEBUG "usbin_prepare_desc: maxsize %d freq 0x%x format 0x%x\n", maxsize, u->freqn, u->format);
  743. for (i = offs = 0; i < DESCFRAMES; i++, offs += maxsize) {
  744. urb->iso_frame_desc[i].length = maxsize;
  745. urb->iso_frame_desc[i].offset = offs;
  746. }
  747. urb->interval = 1;
  748. return 0;
  749. }
  750. /*
  751. * return value: 0 if descriptor should be restarted, -1 otherwise
  752. * convert sample format on the fly if necessary
  753. */
  754. static int usbin_retire_desc(struct usbin *u, struct urb *urb)
  755. {
  756. unsigned int i, ufmtsh, dfmtsh, err = 0, cnt, scnt, dmafree;
  757. unsigned char *cp;
  758. ufmtsh = AFMT_BYTESSHIFT(u->format);
  759. dfmtsh = AFMT_BYTESSHIFT(u->dma.format);
  760. for (i = 0; i < DESCFRAMES; i++) {
  761. cp = ((unsigned char *)urb->transfer_buffer) + urb->iso_frame_desc[i].offset;
  762. if (urb->iso_frame_desc[i].status) {
  763. dprintk((KERN_DEBUG "usbin_retire_desc: frame %u status %d\n", i, urb->iso_frame_desc[i].status));
  764. continue;
  765. }
  766. scnt = urb->iso_frame_desc[i].actual_length >> ufmtsh;
  767. if (!scnt)
  768. continue;
  769. cnt = scnt << dfmtsh;
  770. if (!u->dma.mapped) {
  771. dmafree = u->dma.dmasize - u->dma.count;
  772. if (cnt > dmafree) {
  773. scnt = dmafree >> dfmtsh;
  774. cnt = scnt << dfmtsh;
  775. err++;
  776. }
  777. }
  778. u->dma.count += cnt;
  779. if (u->format == u->dma.format) {
  780. /* we do not need format conversion */
  781. dprintk((KERN_DEBUG "usbaudio: no sample format conversion\n"));
  782. dmabuf_copyin(&u->dma, cp, cnt);
  783. } else {
  784. /* we need sampling format conversion */
  785. dprintk((KERN_DEBUG "usbaudio: sample format conversion %x != %x\n", u->format, u->dma.format));
  786. usbin_convert(u, cp, scnt);
  787. }
  788. }
  789. if (err)
  790. u->dma.error++;
  791. if (u->dma.count >= (signed)u->dma.fragsize)
  792. wake_up(&u->dma.wait);
  793. return err ? -1 : 0;
  794. }
  795. static void usbin_completed(struct urb *urb, struct pt_regs *regs)
  796. {
  797. struct usb_audiodev *as = (struct usb_audiodev *)urb->context;
  798. struct usbin *u = &as->usbin;
  799. unsigned long flags;
  800. unsigned int mask;
  801. int suret = 0;
  802. #if 0
  803. printk(KERN_DEBUG "usbin_completed: status %d errcnt %d flags 0x%x\n", urb->status, urb->error_count, u->flags);
  804. #endif
  805. if (urb == u->durb[0].urb)
  806. mask = FLG_URB0RUNNING;
  807. else if (urb == u->durb[1].urb)
  808. mask = FLG_URB1RUNNING;
  809. else {
  810. mask = 0;
  811. printk(KERN_ERR "usbin_completed: panic: unknown URB\n");
  812. }
  813. urb->dev = as->state->usbdev;
  814. spin_lock_irqsave(&as->lock, flags);
  815. if (!usbin_retire_desc(u, urb) &&
  816. u->flags & FLG_RUNNING &&
  817. !usbin_prepare_desc(u, urb) &&
  818. (suret = usb_submit_urb(urb, GFP_ATOMIC)) == 0) {
  819. u->flags |= mask;
  820. } else {
  821. u->flags &= ~(mask | FLG_RUNNING);
  822. wake_up(&u->dma.wait);
  823. printk(KERN_DEBUG "usbin_completed: descriptor not restarted (usb_submit_urb: %d)\n", suret);
  824. }
  825. spin_unlock_irqrestore(&as->lock, flags);
  826. }
  827. /*
  828. * we output sync data
  829. */
  830. static int usbin_sync_prepare_desc(struct usbin *u, struct urb *urb)
  831. {
  832. unsigned char *cp = urb->transfer_buffer;
  833. unsigned int i, offs;
  834. for (i = offs = 0; i < SYNCFRAMES; i++, offs += 3, cp += 3) {
  835. urb->iso_frame_desc[i].length = 3;
  836. urb->iso_frame_desc[i].offset = offs;
  837. cp[0] = u->freqn;
  838. cp[1] = u->freqn >> 8;
  839. cp[2] = u->freqn >> 16;
  840. }
  841. urb->interval = 1;
  842. return 0;
  843. }
  844. /*
  845. * return value: 0 if descriptor should be restarted, -1 otherwise
  846. */
  847. static int usbin_sync_retire_desc(struct usbin *u, struct urb *urb)
  848. {
  849. unsigned int i;
  850. for (i = 0; i < SYNCFRAMES; i++)
  851. if (urb->iso_frame_desc[0].status)
  852. dprintk((KERN_DEBUG "usbin_sync_retire_desc: frame %u status %d\n", i, urb->iso_frame_desc[i].status));
  853. return 0;
  854. }
  855. static void usbin_sync_completed(struct urb *urb, struct pt_regs *regs)
  856. {
  857. struct usb_audiodev *as = (struct usb_audiodev *)urb->context;
  858. struct usbin *u = &as->usbin;
  859. unsigned long flags;
  860. unsigned int mask;
  861. int suret = 0;
  862. #if 0
  863. printk(KERN_DEBUG "usbin_sync_completed: status %d errcnt %d flags 0x%x\n", urb->status, urb->error_count, u->flags);
  864. #endif
  865. if (urb == u->surb[0].urb)
  866. mask = FLG_SYNC0RUNNING;
  867. else if (urb == u->surb[1].urb)
  868. mask = FLG_SYNC1RUNNING;
  869. else {
  870. mask = 0;
  871. printk(KERN_ERR "usbin_sync_completed: panic: unknown URB\n");
  872. }
  873. urb->dev = as->state->usbdev;
  874. spin_lock_irqsave(&as->lock, flags);
  875. if (!usbin_sync_retire_desc(u, urb) &&
  876. u->flags & FLG_RUNNING &&
  877. !usbin_sync_prepare_desc(u, urb) &&
  878. (suret = usb_submit_urb(urb, GFP_ATOMIC)) == 0) {
  879. u->flags |= mask;
  880. } else {
  881. u->flags &= ~(mask | FLG_RUNNING);
  882. wake_up(&u->dma.wait);
  883. dprintk((KERN_DEBUG "usbin_sync_completed: descriptor not restarted (usb_submit_urb: %d)\n", suret));
  884. }
  885. spin_unlock_irqrestore(&as->lock, flags);
  886. }
  887. static int usbin_start(struct usb_audiodev *as)
  888. {
  889. struct usb_device *dev = as->state->usbdev;
  890. struct usbin *u = &as->usbin;
  891. struct urb *urb;
  892. unsigned long flags;
  893. unsigned int maxsze, bufsz;
  894. #if 0
  895. printk(KERN_DEBUG "usbin_start: device %d ufmt 0x%08x dfmt 0x%08x srate %d\n",
  896. dev->devnum, u->format, u->dma.format, u->dma.srate);
  897. #endif
  898. /* allocate USB storage if not already done */
  899. spin_lock_irqsave(&as->lock, flags);
  900. if (!(u->flags & FLG_CONNECTED)) {
  901. spin_unlock_irqrestore(&as->lock, flags);
  902. return -EIO;
  903. }
  904. if (!(u->flags & FLG_RUNNING)) {
  905. spin_unlock_irqrestore(&as->lock, flags);
  906. u->freqn = ((u->dma.srate << 11) + 62) / 125; /* this will overflow at approx 2MSPS */
  907. u->freqmax = u->freqn + (u->freqn >> 2);
  908. u->phase = 0;
  909. maxsze = (u->freqmax + 0x3fff) >> (14 - AFMT_BYTESSHIFT(u->format));
  910. bufsz = DESCFRAMES * maxsze;
  911. if (u->durb[0].urb->transfer_buffer)
  912. kfree(u->durb[0].urb->transfer_buffer);
  913. u->durb[0].urb->transfer_buffer = kmalloc(bufsz, GFP_KERNEL);
  914. u->durb[0].urb->transfer_buffer_length = bufsz;
  915. if (u->durb[1].urb->transfer_buffer)
  916. kfree(u->durb[1].urb->transfer_buffer);
  917. u->durb[1].urb->transfer_buffer = kmalloc(bufsz, GFP_KERNEL);
  918. u->durb[1].urb->transfer_buffer_length = bufsz;
  919. if (u->syncpipe) {
  920. if (u->surb[0].urb->transfer_buffer)
  921. kfree(u->surb[0].urb->transfer_buffer);
  922. u->surb[0].urb->transfer_buffer = kmalloc(3*SYNCFRAMES, GFP_KERNEL);
  923. u->surb[0].urb->transfer_buffer_length = 3*SYNCFRAMES;
  924. if (u->surb[1].urb->transfer_buffer)
  925. kfree(u->surb[1].urb->transfer_buffer);
  926. u->surb[1].urb->transfer_buffer = kmalloc(3*SYNCFRAMES, GFP_KERNEL);
  927. u->surb[1].urb->transfer_buffer_length = 3*SYNCFRAMES;
  928. }
  929. if (!u->durb[0].urb->transfer_buffer || !u->durb[1].urb->transfer_buffer ||
  930. (u->syncpipe && (!u->surb[0].urb->transfer_buffer || !u->surb[1].urb->transfer_buffer))) {
  931. printk(KERN_ERR "usbaudio: cannot start playback device %d\n", dev->devnum);
  932. return 0;
  933. }
  934. spin_lock_irqsave(&as->lock, flags);
  935. }
  936. if (u->dma.count >= u->dma.dmasize && !u->dma.mapped) {
  937. spin_unlock_irqrestore(&as->lock, flags);
  938. return 0;
  939. }
  940. u->flags |= FLG_RUNNING;
  941. if (!(u->flags & FLG_URB0RUNNING)) {
  942. urb = u->durb[0].urb;
  943. urb->dev = dev;
  944. urb->pipe = u->datapipe;
  945. urb->transfer_flags = URB_ISO_ASAP;
  946. urb->number_of_packets = DESCFRAMES;
  947. urb->context = as;
  948. urb->complete = usbin_completed;
  949. if (!usbin_prepare_desc(u, urb) && !usb_submit_urb(urb, GFP_KERNEL))
  950. u->flags |= FLG_URB0RUNNING;
  951. else
  952. u->flags &= ~FLG_RUNNING;
  953. }
  954. if (u->flags & FLG_RUNNING && !(u->flags & FLG_URB1RUNNING)) {
  955. urb = u->durb[1].urb;
  956. urb->dev = dev;
  957. urb->pipe = u->datapipe;
  958. urb->transfer_flags = URB_ISO_ASAP;
  959. urb->number_of_packets = DESCFRAMES;
  960. urb->context = as;
  961. urb->complete = usbin_completed;
  962. if (!usbin_prepare_desc(u, urb) && !usb_submit_urb(urb, GFP_KERNEL))
  963. u->flags |= FLG_URB1RUNNING;
  964. else
  965. u->flags &= ~FLG_RUNNING;
  966. }
  967. if (u->syncpipe) {
  968. if (u->flags & FLG_RUNNING && !(u->flags & FLG_SYNC0RUNNING)) {
  969. urb = u->surb[0].urb;
  970. urb->dev = dev;
  971. urb->pipe = u->syncpipe;
  972. urb->transfer_flags = URB_ISO_ASAP;
  973. urb->number_of_packets = SYNCFRAMES;
  974. urb->context = as;
  975. urb->complete = usbin_sync_completed;
  976. /* stride: u->syncinterval */
  977. if (!usbin_sync_prepare_desc(u, urb) && !usb_submit_urb(urb, GFP_KERNEL))
  978. u->flags |= FLG_SYNC0RUNNING;
  979. else
  980. u->flags &= ~FLG_RUNNING;
  981. }
  982. if (u->flags & FLG_RUNNING && !(u->flags & FLG_SYNC1RUNNING)) {
  983. urb = u->surb[1].urb;
  984. urb->dev = dev;
  985. urb->pipe = u->syncpipe;
  986. urb->transfer_flags = URB_ISO_ASAP;
  987. urb->number_of_packets = SYNCFRAMES;
  988. urb->context = as;
  989. urb->complete = usbin_sync_completed;
  990. /* stride: u->syncinterval */
  991. if (!usbin_sync_prepare_desc(u, urb) && !usb_submit_urb(urb, GFP_KERNEL))
  992. u->flags |= FLG_SYNC1RUNNING;
  993. else
  994. u->flags &= ~FLG_RUNNING;
  995. }
  996. }
  997. spin_unlock_irqrestore(&as->lock, flags);
  998. return 0;
  999. }
  1000. static void usbout_stop(struct usb_audiodev *as)
  1001. {
  1002. struct usbout *u = &as->usbout;
  1003. unsigned long flags;
  1004. unsigned int i, notkilled = 1;
  1005. spin_lock_irqsave(&as->lock, flags);
  1006. u->flags &= ~FLG_RUNNING;
  1007. i = u->flags;
  1008. spin_unlock_irqrestore(&as->lock, flags);
  1009. while (i & (FLG_URB0RUNNING|FLG_URB1RUNNING|FLG_SYNC0RUNNING|FLG_SYNC1RUNNING)) {
  1010. set_current_state(notkilled ? TASK_INTERRUPTIBLE : TASK_UNINTERRUPTIBLE);
  1011. schedule_timeout(1);
  1012. spin_lock_irqsave(&as->lock, flags);
  1013. i = u->flags;
  1014. spin_unlock_irqrestore(&as->lock, flags);
  1015. if (notkilled && signal_pending(current)) {
  1016. if (i & FLG_URB0RUNNING)
  1017. usb_kill_urb(u->durb[0].urb);
  1018. if (i & FLG_URB1RUNNING)
  1019. usb_kill_urb(u->durb[1].urb);
  1020. if (i & FLG_SYNC0RUNNING)
  1021. usb_kill_urb(u->surb[0].urb);
  1022. if (i & FLG_SYNC1RUNNING)
  1023. usb_kill_urb(u->surb[1].urb);
  1024. notkilled = 0;
  1025. }
  1026. }
  1027. set_current_state(TASK_RUNNING);
  1028. if (u->durb[0].urb->transfer_buffer)
  1029. kfree(u->durb[0].urb->transfer_buffer);
  1030. if (u->durb[1].urb->transfer_buffer)
  1031. kfree(u->durb[1].urb->transfer_buffer);
  1032. if (u->surb[0].urb->transfer_buffer)
  1033. kfree(u->surb[0].urb->transfer_buffer);
  1034. if (u->surb[1].urb->transfer_buffer)
  1035. kfree(u->surb[1].urb->transfer_buffer);
  1036. u->durb[0].urb->transfer_buffer = u->durb[1].urb->transfer_buffer =
  1037. u->surb[0].urb->transfer_buffer = u->surb[1].urb->transfer_buffer = NULL;
  1038. }
  1039. static inline void usbout_release(struct usb_audiodev *as)
  1040. {
  1041. usbout_stop(as);
  1042. }
  1043. static void usbout_disc(struct usb_audiodev *as)
  1044. {
  1045. struct usbout *u = &as->usbout;
  1046. unsigned long flags;
  1047. spin_lock_irqsave(&as->lock, flags);
  1048. u->flags &= ~(FLG_RUNNING | FLG_CONNECTED);
  1049. spin_unlock_irqrestore(&as->lock, flags);
  1050. usbout_stop(as);
  1051. }
  1052. static void usbout_convert(struct usbout *u, unsigned char *buffer, unsigned int samples)
  1053. {
  1054. union {
  1055. __s16 s[64];
  1056. unsigned char b[0];
  1057. } tmp;
  1058. unsigned int scnt, maxs, ufmtsh, dfmtsh;
  1059. ufmtsh = AFMT_BYTESSHIFT(u->format);
  1060. dfmtsh = AFMT_BYTESSHIFT(u->dma.format);
  1061. maxs = (AFMT_ISSTEREO(u->dma.format | u->format)) ? 32 : 64;
  1062. while (samples > 0) {
  1063. scnt = samples;
  1064. if (scnt > maxs)
  1065. scnt = maxs;
  1066. dmabuf_copyout(&u->dma, tmp.b, scnt << dfmtsh);
  1067. conversion(tmp.b, u->dma.format, buffer, u->format, tmp.b, scnt);
  1068. buffer += scnt << ufmtsh;
  1069. samples -= scnt;
  1070. }
  1071. }
  1072. static int usbout_prepare_desc(struct usbout *u, struct urb *urb)
  1073. {
  1074. unsigned int i, ufmtsh, dfmtsh, err = 0, cnt, scnt, offs;
  1075. unsigned char *cp = urb->transfer_buffer;
  1076. ufmtsh = AFMT_BYTESSHIFT(u->format);
  1077. dfmtsh = AFMT_BYTESSHIFT(u->dma.format);
  1078. for (i = offs = 0; i < DESCFRAMES; i++) {
  1079. urb->iso_frame_desc[i].offset = offs;
  1080. u->phase = (u->phase & 0x3fff) + u->freqm;
  1081. scnt = u->phase >> 14;
  1082. if (!scnt) {
  1083. urb->iso_frame_desc[i].length = 0;
  1084. continue;
  1085. }
  1086. cnt = scnt << dfmtsh;
  1087. if (!u->dma.mapped) {
  1088. if (cnt > u->dma.count) {
  1089. scnt = u->dma.count >> dfmtsh;
  1090. cnt = scnt << dfmtsh;
  1091. err++;
  1092. }
  1093. u->dma.count -= cnt;
  1094. } else
  1095. u->dma.count += cnt;
  1096. if (u->format == u->dma.format) {
  1097. /* we do not need format conversion */
  1098. dmabuf_copyout(&u->dma, cp, cnt);
  1099. } else {
  1100. /* we need sampling format conversion */
  1101. usbout_convert(u, cp, scnt);
  1102. }
  1103. cnt = scnt << ufmtsh;
  1104. urb->iso_frame_desc[i].length = cnt;
  1105. offs += cnt;
  1106. cp += cnt;
  1107. }
  1108. urb->interval = 1;
  1109. if (err)
  1110. u->dma.error++;
  1111. if (u->dma.mapped) {
  1112. if (u->dma.count >= (signed)u->dma.fragsize)
  1113. wake_up(&u->dma.wait);
  1114. } else {
  1115. if ((signed)u->dma.dmasize >= u->dma.count + (signed)u->dma.fragsize)
  1116. wake_up(&u->dma.wait);
  1117. }
  1118. return err ? -1 : 0;
  1119. }
  1120. /*
  1121. * return value: 0 if descriptor should be restarted, -1 otherwise
  1122. */
  1123. static int usbout_retire_desc(struct usbout *u, struct urb *urb)
  1124. {
  1125. unsigned int i;
  1126. for (i = 0; i < DESCFRAMES; i++) {
  1127. if (urb->iso_frame_desc[i].status) {
  1128. dprintk((KERN_DEBUG "usbout_retire_desc: frame %u status %d\n", i, urb->iso_frame_desc[i].status));
  1129. continue;
  1130. }
  1131. }
  1132. return 0;
  1133. }
  1134. static void usbout_completed(struct urb *urb, struct pt_regs *regs)
  1135. {
  1136. struct usb_audiodev *as = (struct usb_audiodev *)urb->context;
  1137. struct usbout *u = &as->usbout;
  1138. unsigned long flags;
  1139. unsigned int mask;
  1140. int suret = 0;
  1141. #if 0
  1142. printk(KERN_DEBUG "usbout_completed: status %d errcnt %d flags 0x%x\n", urb->status, urb->error_count, u->flags);
  1143. #endif
  1144. if (urb == u->durb[0].urb)
  1145. mask = FLG_URB0RUNNING;
  1146. else if (urb == u->durb[1].urb)
  1147. mask = FLG_URB1RUNNING;
  1148. else {
  1149. mask = 0;
  1150. printk(KERN_ERR "usbout_completed: panic: unknown URB\n");
  1151. }
  1152. urb->dev = as->state->usbdev;
  1153. spin_lock_irqsave(&as->lock, flags);
  1154. if (!usbout_retire_desc(u, urb) &&
  1155. u->flags & FLG_RUNNING &&
  1156. !usbout_prepare_desc(u, urb) &&
  1157. (suret = usb_submit_urb(urb, GFP_ATOMIC)) == 0) {
  1158. u->flags |= mask;
  1159. } else {
  1160. u->flags &= ~(mask | FLG_RUNNING);
  1161. wake_up(&u->dma.wait);
  1162. dprintk((KERN_DEBUG "usbout_completed: descriptor not restarted (usb_submit_urb: %d)\n", suret));
  1163. }
  1164. spin_unlock_irqrestore(&as->lock, flags);
  1165. }
  1166. static int usbout_sync_prepare_desc(struct usbout *u, struct urb *urb)
  1167. {
  1168. unsigned int i, offs;
  1169. for (i = offs = 0; i < SYNCFRAMES; i++, offs += 3) {
  1170. urb->iso_frame_desc[i].length = 3;
  1171. urb->iso_frame_desc[i].offset = offs;
  1172. }
  1173. urb->interval = 1;
  1174. return 0;
  1175. }
  1176. /*
  1177. * return value: 0 if descriptor should be restarted, -1 otherwise
  1178. */
  1179. static int usbout_sync_retire_desc(struct usbout *u, struct urb *urb)
  1180. {
  1181. unsigned char *cp = urb->transfer_buffer;
  1182. unsigned int f, i;
  1183. for (i = 0; i < SYNCFRAMES; i++, cp += 3) {
  1184. if (urb->iso_frame_desc[i].status) {
  1185. dprintk((KERN_DEBUG "usbout_sync_retire_desc: frame %u status %d\n", i, urb->iso_frame_desc[i].status));
  1186. continue;
  1187. }
  1188. if (urb->iso_frame_desc[i].actual_length < 3) {
  1189. dprintk((KERN_DEBUG "usbout_sync_retire_desc: frame %u length %d\n", i, urb->iso_frame_desc[i].actual_length));
  1190. continue;
  1191. }
  1192. f = cp[0] | (cp[1] << 8) | (cp[2] << 16);
  1193. if (abs(f - u->freqn) > (u->freqn >> 3) || f > u->freqmax) {
  1194. printk(KERN_WARNING "usbout_sync_retire_desc: requested frequency %u (nominal %u) out of range!\n", f, u->freqn);
  1195. continue;
  1196. }
  1197. u->freqm = f;
  1198. }
  1199. return 0;
  1200. }
  1201. static void usbout_sync_completed(struct urb *urb, struct pt_regs *regs)
  1202. {
  1203. struct usb_audiodev *as = (struct usb_audiodev *)urb->context;
  1204. struct usbout *u = &as->usbout;
  1205. unsigned long flags;
  1206. unsigned int mask;
  1207. int suret = 0;
  1208. #if 0
  1209. printk(KERN_DEBUG "usbout_sync_completed: status %d errcnt %d flags 0x%x\n", urb->status, urb->error_count, u->flags);
  1210. #endif
  1211. if (urb == u->surb[0].urb)
  1212. mask = FLG_SYNC0RUNNING;
  1213. else if (urb == u->surb[1].urb)
  1214. mask = FLG_SYNC1RUNNING;
  1215. else {
  1216. mask = 0;
  1217. printk(KERN_ERR "usbout_sync_completed: panic: unknown URB\n");
  1218. }
  1219. urb->dev = as->state->usbdev;
  1220. spin_lock_irqsave(&as->lock, flags);
  1221. if (!usbout_sync_retire_desc(u, urb) &&
  1222. u->flags & FLG_RUNNING &&
  1223. !usbout_sync_prepare_desc(u, urb) &&
  1224. (suret = usb_submit_urb(urb, GFP_ATOMIC)) == 0) {
  1225. u->flags |= mask;
  1226. } else {
  1227. u->flags &= ~(mask | FLG_RUNNING);
  1228. wake_up(&u->dma.wait);
  1229. dprintk((KERN_DEBUG "usbout_sync_completed: descriptor not restarted (usb_submit_urb: %d)\n", suret));
  1230. }
  1231. spin_unlock_irqrestore(&as->lock, flags);
  1232. }
  1233. static int usbout_start(struct usb_audiodev *as)
  1234. {
  1235. struct usb_device *dev = as->state->usbdev;
  1236. struct usbout *u = &as->usbout;
  1237. struct urb *urb;
  1238. unsigned long flags;
  1239. unsigned int maxsze, bufsz;
  1240. #if 0
  1241. printk(KERN_DEBUG "usbout_start: device %d ufmt 0x%08x dfmt 0x%08x srate %d\n",
  1242. dev->devnum, u->format, u->dma.format, u->dma.srate);
  1243. #endif
  1244. /* allocate USB storage if not already done */
  1245. spin_lock_irqsave(&as->lock, flags);
  1246. if (!(u->flags & FLG_CONNECTED)) {
  1247. spin_unlock_irqrestore(&as->lock, flags);
  1248. return -EIO;
  1249. }
  1250. if (!(u->flags & FLG_RUNNING)) {
  1251. spin_unlock_irqrestore(&as->lock, flags);
  1252. u->freqn = u->freqm = ((u->dma.srate << 11) + 62) / 125; /* this will overflow at approx 2MSPS */
  1253. u->freqmax = u->freqn + (u->freqn >> 2);
  1254. u->phase = 0;
  1255. maxsze = (u->freqmax + 0x3fff) >> (14 - AFMT_BYTESSHIFT(u->format));
  1256. bufsz = DESCFRAMES * maxsze;
  1257. if (u->durb[0].urb->transfer_buffer)
  1258. kfree(u->durb[0].urb->transfer_buffer);
  1259. u->durb[0].urb->transfer_buffer = kmalloc(bufsz, GFP_KERNEL);
  1260. u->durb[0].urb->transfer_buffer_length = bufsz;
  1261. if (u->durb[1].urb->transfer_buffer)
  1262. kfree(u->durb[1].urb->transfer_buffer);
  1263. u->durb[1].urb->transfer_buffer = kmalloc(bufsz, GFP_KERNEL);
  1264. u->durb[1].urb->transfer_buffer_length = bufsz;
  1265. if (u->syncpipe) {
  1266. if (u->surb[0].urb->transfer_buffer)
  1267. kfree(u->surb[0].urb->transfer_buffer);
  1268. u->surb[0].urb->transfer_buffer = kmalloc(3*SYNCFRAMES, GFP_KERNEL);
  1269. u->surb[0].urb->transfer_buffer_length = 3*SYNCFRAMES;
  1270. if (u->surb[1].urb->transfer_buffer)
  1271. kfree(u->surb[1].urb->transfer_buffer);
  1272. u->surb[1].urb->transfer_buffer = kmalloc(3*SYNCFRAMES, GFP_KERNEL);
  1273. u->surb[1].urb->transfer_buffer_length = 3*SYNCFRAMES;
  1274. }
  1275. if (!u->durb[0].urb->transfer_buffer || !u->durb[1].urb->transfer_buffer ||
  1276. (u->syncpipe && (!u->surb[0].urb->transfer_buffer || !u->surb[1].urb->transfer_buffer))) {
  1277. printk(KERN_ERR "usbaudio: cannot start playback device %d\n", dev->devnum);
  1278. return 0;
  1279. }
  1280. spin_lock_irqsave(&as->lock, flags);
  1281. }
  1282. if (u->dma.count <= 0 && !u->dma.mapped) {
  1283. spin_unlock_irqrestore(&as->lock, flags);
  1284. return 0;
  1285. }
  1286. u->flags |= FLG_RUNNING;
  1287. if (!(u->flags & FLG_URB0RUNNING)) {
  1288. urb = u->durb[0].urb;
  1289. urb->dev = dev;
  1290. urb->pipe = u->datapipe;
  1291. urb->transfer_flags = URB_ISO_ASAP;
  1292. urb->number_of_packets = DESCFRAMES;
  1293. urb->context = as;
  1294. urb->complete = usbout_completed;
  1295. if (!usbout_prepare_desc(u, urb) && !usb_submit_urb(urb, GFP_ATOMIC))
  1296. u->flags |= FLG_URB0RUNNING;
  1297. else
  1298. u->flags &= ~FLG_RUNNING;
  1299. }
  1300. if (u->flags & FLG_RUNNING && !(u->flags & FLG_URB1RUNNING)) {
  1301. urb = u->durb[1].urb;
  1302. urb->dev = dev;
  1303. urb->pipe = u->datapipe;
  1304. urb->transfer_flags = URB_ISO_ASAP;
  1305. urb->number_of_packets = DESCFRAMES;
  1306. urb->context = as;
  1307. urb->complete = usbout_completed;
  1308. if (!usbout_prepare_desc(u, urb) && !usb_submit_urb(urb, GFP_ATOMIC))
  1309. u->flags |= FLG_URB1RUNNING;
  1310. else
  1311. u->flags &= ~FLG_RUNNING;
  1312. }
  1313. if (u->syncpipe) {
  1314. if (u->flags & FLG_RUNNING && !(u->flags & FLG_SYNC0RUNNING)) {
  1315. urb = u->surb[0].urb;
  1316. urb->dev = dev;
  1317. urb->pipe = u->syncpipe;
  1318. urb->transfer_flags = URB_ISO_ASAP;
  1319. urb->number_of_packets = SYNCFRAMES;
  1320. urb->context = as;
  1321. urb->complete = usbout_sync_completed;
  1322. /* stride: u->syncinterval */
  1323. if (!usbout_sync_prepare_desc(u, urb) && !usb_submit_urb(urb, GFP_ATOMIC))
  1324. u->flags |= FLG_SYNC0RUNNING;
  1325. else
  1326. u->flags &= ~FLG_RUNNING;
  1327. }
  1328. if (u->flags & FLG_RUNNING && !(u->flags & FLG_SYNC1RUNNING)) {
  1329. urb = u->surb[1].urb;
  1330. urb->dev = dev;
  1331. urb->pipe = u->syncpipe;
  1332. urb->transfer_flags = URB_ISO_ASAP;
  1333. urb->number_of_packets = SYNCFRAMES;
  1334. urb->context = as;
  1335. urb->complete = usbout_sync_completed;
  1336. /* stride: u->syncinterval */
  1337. if (!usbout_sync_prepare_desc(u, urb) && !usb_submit_urb(urb, GFP_ATOMIC))
  1338. u->flags |= FLG_SYNC1RUNNING;
  1339. else
  1340. u->flags &= ~FLG_RUNNING;
  1341. }
  1342. }
  1343. spin_unlock_irqrestore(&as->lock, flags);
  1344. return 0;
  1345. }
  1346. /* --------------------------------------------------------------------- */
  1347. static unsigned int format_goodness(struct audioformat *afp, unsigned int fmt, unsigned int srate)
  1348. {
  1349. unsigned int g = 0;
  1350. if (srate < afp->sratelo)
  1351. g += afp->sratelo - srate;
  1352. if (srate > afp->sratehi)
  1353. g += srate - afp->sratehi;
  1354. if (AFMT_ISSTEREO(afp->format) && !AFMT_ISSTEREO(fmt))
  1355. g += 0x100000;
  1356. if (!AFMT_ISSTEREO(afp->format) && AFMT_ISSTEREO(fmt))
  1357. g += 0x400000;
  1358. if (AFMT_IS16BIT(afp->format) && !AFMT_IS16BIT(fmt))
  1359. g += 0x100000;
  1360. if (!AFMT_IS16BIT(afp->format) && AFMT_IS16BIT(fmt))
  1361. g += 0x400000;
  1362. return g;
  1363. }
  1364. static int find_format(struct audioformat *afp, unsigned int nr, unsigned int fmt, unsigned int srate)
  1365. {
  1366. unsigned int i, g, gb = ~0;
  1367. int j = -1; /* default to failure */
  1368. /* find "best" format (according to format_goodness) */
  1369. for (i = 0; i < nr; i++) {
  1370. g = format_goodness(&afp[i], fmt, srate);
  1371. if (g >= gb)
  1372. continue;
  1373. j = i;
  1374. gb = g;
  1375. }
  1376. return j;
  1377. }
  1378. static int set_format_in(struct usb_audiodev *as)
  1379. {
  1380. struct usb_device *dev = as->state->usbdev;
  1381. struct usb_host_interface *alts;
  1382. struct usb_interface *iface;
  1383. struct usbin *u = &as->usbin;
  1384. struct dmabuf *d = &u->dma;
  1385. struct audioformat *fmt;
  1386. unsigned int ep;
  1387. unsigned char data[3];
  1388. int fmtnr, ret;
  1389. iface = usb_ifnum_to_if(dev, u->interface);
  1390. if (!iface)
  1391. return 0;
  1392. fmtnr = find_format(as->fmtin, as->numfmtin, d->format, d->srate);
  1393. if (fmtnr < 0) {
  1394. printk(KERN_ERR "usbaudio: set_format_in(): failed to find desired format/speed combination.\n");
  1395. return -1;
  1396. }
  1397. fmt = as->fmtin + fmtnr;
  1398. alts = usb_altnum_to_altsetting(iface, fmt->altsetting);
  1399. u->format = fmt->format;
  1400. u->datapipe = usb_rcvisocpipe(dev, alts->endpoint[0].desc.bEndpointAddress & 0xf);
  1401. u->syncpipe = u->syncinterval = 0;
  1402. if ((alts->endpoint[0].desc.bmAttributes & 0x0c) == 0x08) {
  1403. if (alts->desc.bNumEndpoints < 2 ||
  1404. alts->endpoint[1].desc.bmAttributes != 0x01 ||
  1405. alts->endpoint[1].desc.bSynchAddress != 0 ||
  1406. alts->endpoint[1].desc.bEndpointAddress != (alts->endpoint[0].desc.bSynchAddress & 0x7f)) {
  1407. printk(KERN_WARNING "usbaudio: device %d interface %d altsetting %d claims adaptive in "
  1408. "but has invalid synch pipe; treating as asynchronous in\n",
  1409. dev->devnum, u->interface, fmt->altsetting);
  1410. } else {
  1411. u->syncpipe = usb_sndisocpipe(dev, alts->endpoint[1].desc.bEndpointAddress & 0xf);
  1412. u->syncinterval = alts->endpoint[1].desc.bRefresh;
  1413. }
  1414. }
  1415. if (d->srate < fmt->sratelo)
  1416. d->srate = fmt->sratelo;
  1417. if (d->srate > fmt->sratehi)
  1418. d->srate = fmt->sratehi;
  1419. dprintk((KERN_DEBUG "usbaudio: set_format_in: usb_set_interface %u %u\n",
  1420. u->interface, fmt->altsetting));
  1421. if (usb_set_interface(dev, alts->desc.bInterfaceNumber, fmt->altsetting) < 0) {
  1422. printk(KERN_WARNING "usbaudio: usb_set_interface failed, device %d interface %d altsetting %d\n",
  1423. dev->devnum, u->interface, fmt->altsetting);
  1424. return -1;
  1425. }
  1426. if (fmt->sratelo == fmt->sratehi)
  1427. return 0;
  1428. ep = usb_pipeendpoint(u->datapipe) | (u->datapipe & USB_DIR_IN);
  1429. /* if endpoint has pitch control, enable it */
  1430. if (fmt->attributes & 0x02) {
  1431. data[0] = 1;
  1432. if ((ret = usb_control_msg(dev, usb_sndctrlpipe(dev, 0), SET_CUR, USB_TYPE_CLASS|USB_RECIP_ENDPOINT|USB_DIR_OUT,
  1433. PITCH_CONTROL << 8, ep, data, 1, 1000)) < 0) {
  1434. printk(KERN_ERR "usbaudio: failure (error %d) to set output pitch control device %d interface %u endpoint 0x%x to %u\n",
  1435. ret, dev->devnum, u->interface, ep, d->srate);
  1436. return -1;
  1437. }
  1438. }
  1439. /* if endpoint has sampling rate control, set it */
  1440. if (fmt->attributes & 0x01) {
  1441. data[0] = d->srate;
  1442. data[1] = d->srate >> 8;
  1443. data[2] = d->srate >> 16;
  1444. if ((ret = usb_control_msg(dev, usb_sndctrlpipe(dev, 0), SET_CUR, USB_TYPE_CLASS|USB_RECIP_ENDPOINT|USB_DIR_OUT,
  1445. SAMPLING_FREQ_CONTROL << 8, ep, data, 3, 1000)) < 0) {
  1446. printk(KERN_ERR "usbaudio: failure (error %d) to set input sampling frequency device %d interface %u endpoint 0x%x to %u\n",
  1447. ret, dev->devnum, u->interface, ep, d->srate);
  1448. return -1;
  1449. }
  1450. if ((ret = usb_control_msg(dev, usb_rcvctrlpipe(dev, 0), GET_CUR, USB_TYPE_CLASS|USB_RECIP_ENDPOINT|USB_DIR_IN,
  1451. SAMPLING_FREQ_CONTROL << 8, ep, data, 3, 1000)) < 0) {
  1452. printk(KERN_ERR "usbaudio: failure (error %d) to get input sampling frequency device %d interface %u endpoint 0x%x\n",
  1453. ret, dev->devnum, u->interface, ep);
  1454. return -1;
  1455. }
  1456. dprintk((KERN_DEBUG "usbaudio: set_format_in: device %d interface %d altsetting %d srate req: %u real %u\n",
  1457. dev->devnum, u->interface, fmt->altsetting, d->srate, data[0] | (data[1] << 8) | (data[2] << 16)));
  1458. d->srate = data[0] | (data[1] << 8) | (data[2] << 16);
  1459. }
  1460. dprintk((KERN_DEBUG "usbaudio: set_format_in: USB format 0x%x, DMA format 0x%x srate %u\n", u->format, d->format, d->srate));
  1461. return 0;
  1462. }
  1463. static int set_format_out(struct usb_audiodev *as)
  1464. {
  1465. struct usb_device *dev = as->state->usbdev;
  1466. struct usb_host_interface *alts;
  1467. struct usb_interface *iface;
  1468. struct usbout *u = &as->usbout;
  1469. struct dmabuf *d = &u->dma;
  1470. struct audioformat *fmt;
  1471. unsigned int ep;
  1472. unsigned char data[3];
  1473. int fmtnr, ret;
  1474. iface = usb_ifnum_to_if(dev, u->interface);
  1475. if (!iface)
  1476. return 0;
  1477. fmtnr = find_format(as->fmtout, as->numfmtout, d->format, d->srate);
  1478. if (fmtnr < 0) {
  1479. printk(KERN_ERR "usbaudio: set_format_out(): failed to find desired format/speed combination.\n");
  1480. return -1;
  1481. }
  1482. fmt = as->fmtout + fmtnr;
  1483. u->format = fmt->format;
  1484. alts = usb_altnum_to_altsetting(iface, fmt->altsetting);
  1485. u->datapipe = usb_sndisocpipe(dev, alts->endpoint[0].desc.bEndpointAddress & 0xf);
  1486. u->syncpipe = u->syncinterval = 0;
  1487. if ((alts->endpoint[0].desc.bmAttributes & 0x0c) == 0x04) {
  1488. #if 0
  1489. printk(KERN_DEBUG "bNumEndpoints 0x%02x endpoint[1].bmAttributes 0x%02x\n"
  1490. KERN_DEBUG "endpoint[1].bSynchAddress 0x%02x endpoint[1].bEndpointAddress 0x%02x\n"
  1491. KERN_DEBUG "endpoint[0].bSynchAddress 0x%02x\n", alts->bNumEndpoints,
  1492. alts->endpoint[1].bmAttributes, alts->endpoint[1].bSynchAddress,
  1493. alts->endpoint[1].bEndpointAddress, alts->endpoint[0].bSynchAddress);
  1494. #endif
  1495. if (alts->desc.bNumEndpoints < 2 ||
  1496. alts->endpoint[1].desc.bmAttributes != 0x01 ||
  1497. alts->endpoint[1].desc.bSynchAddress != 0 ||
  1498. alts->endpoint[1].desc.bEndpointAddress != (alts->endpoint[0].desc.bSynchAddress | 0x80)) {
  1499. printk(KERN_WARNING "usbaudio: device %d interface %d altsetting %d claims asynch out "
  1500. "but has invalid synch pipe; treating as adaptive out\n",
  1501. dev->devnum, u->interface, fmt->altsetting);
  1502. } else {
  1503. u->syncpipe = usb_rcvisocpipe(dev, alts->endpoint[1].desc.bEndpointAddress & 0xf);
  1504. u->syncinterval = alts->endpoint[1].desc.bRefresh;
  1505. }
  1506. }
  1507. if (d->srate < fmt->sratelo)
  1508. d->srate = fmt->sratelo;
  1509. if (d->srate > fmt->sratehi)
  1510. d->srate = fmt->sratehi;
  1511. dprintk((KERN_DEBUG "usbaudio: set_format_out: usb_set_interface %u %u\n",
  1512. u->interface, fmt->altsetting));
  1513. if (usb_set_interface(dev, u->interface, fmt->altsetting) < 0) {
  1514. printk(KERN_WARNING "usbaudio: usb_set_interface failed, device %d interface %d altsetting %d\n",
  1515. dev->devnum, u->interface, fmt->altsetting);
  1516. return -1;
  1517. }
  1518. if (fmt->sratelo == fmt->sratehi)
  1519. return 0;
  1520. ep = usb_pipeendpoint(u->datapipe) | (u->datapipe & USB_DIR_IN);
  1521. /* if endpoint has pitch control, enable it */
  1522. if (fmt->attributes & 0x02) {
  1523. data[0] = 1;
  1524. if ((ret = usb_control_msg(dev, usb_sndctrlpipe(dev, 0), SET_CUR, USB_TYPE_CLASS|USB_RECIP_ENDPOINT|USB_DIR_OUT,
  1525. PITCH_CONTROL << 8, ep, data, 1, 1000)) < 0) {
  1526. printk(KERN_ERR "usbaudio: failure (error %d) to set output pitch control device %d interface %u endpoint 0x%x to %u\n",
  1527. ret, dev->devnum, u->interface, ep, d->srate);
  1528. return -1;
  1529. }
  1530. }
  1531. /* if endpoint has sampling rate control, set it */
  1532. if (fmt->attributes & 0x01) {
  1533. data[0] = d->srate;
  1534. data[1] = d->srate >> 8;
  1535. data[2] = d->srate >> 16;
  1536. if ((ret = usb_control_msg(dev, usb_sndctrlpipe(dev, 0), SET_CUR, USB_TYPE_CLASS|USB_RECIP_ENDPOINT|USB_DIR_OUT,
  1537. SAMPLING_FREQ_CONTROL << 8, ep, data, 3, 1000)) < 0) {
  1538. printk(KERN_ERR "usbaudio: failure (error %d) to set output sampling frequency device %d interface %u endpoint 0x%x to %u\n",
  1539. ret, dev->devnum, u->interface, ep, d->srate);
  1540. return -1;
  1541. }
  1542. if ((ret = usb_control_msg(dev, usb_rcvctrlpipe(dev, 0), GET_CUR, USB_TYPE_CLASS|USB_RECIP_ENDPOINT|USB_DIR_IN,
  1543. SAMPLING_FREQ_CONTROL << 8, ep, data, 3, 1000)) < 0) {
  1544. printk(KERN_ERR "usbaudio: failure (error %d) to get output sampling frequency device %d interface %u endpoint 0x%x\n",
  1545. ret, dev->devnum, u->interface, ep);
  1546. return -1;
  1547. }
  1548. dprintk((KERN_DEBUG "usbaudio: set_format_out: device %d interface %d altsetting %d srate req: %u real %u\n",
  1549. dev->devnum, u->interface, fmt->altsetting, d->srate, data[0] | (data[1] << 8) | (data[2] << 16)));
  1550. d->srate = data[0] | (data[1] << 8) | (data[2] << 16);
  1551. }
  1552. dprintk((KERN_DEBUG "usbaudio: set_format_out: USB format 0x%x, DMA format 0x%x srate %u\n", u->format, d->format, d->srate));
  1553. return 0;
  1554. }
  1555. static int set_format(struct usb_audiodev *s, unsigned int fmode, unsigned int fmt, unsigned int srate)
  1556. {
  1557. int ret1 = 0, ret2 = 0;
  1558. if (!(fmode & (FMODE_READ|FMODE_WRITE)))
  1559. return -EINVAL;
  1560. if (fmode & FMODE_READ) {
  1561. usbin_stop(s);
  1562. s->usbin.dma.ready = 0;
  1563. if (fmt == AFMT_QUERY)
  1564. fmt = s->usbin.dma.format;
  1565. else
  1566. s->usbin.dma.format = fmt;
  1567. if (!srate)
  1568. srate = s->usbin.dma.srate;
  1569. else
  1570. s->usbin.dma.srate = srate;
  1571. }
  1572. if (fmode & FMODE_WRITE) {
  1573. usbout_stop(s);
  1574. s->usbout.dma.ready = 0;
  1575. if (fmt == AFMT_QUERY)
  1576. fmt = s->usbout.dma.format;
  1577. else
  1578. s->usbout.dma.format = fmt;
  1579. if (!srate)
  1580. srate = s->usbout.dma.srate;
  1581. else
  1582. s->usbout.dma.srate = srate;
  1583. }
  1584. if (fmode & FMODE_READ)
  1585. ret1 = set_format_in(s);
  1586. if (fmode & FMODE_WRITE)
  1587. ret2 = set_format_out(s);
  1588. return ret1 ? ret1 : ret2;
  1589. }
  1590. /* --------------------------------------------------------------------- */
  1591. static int wrmixer(struct usb_mixerdev *ms, unsigned mixch, unsigned value)
  1592. {
  1593. struct usb_device *dev = ms->state->usbdev;
  1594. unsigned char data[2];
  1595. struct mixerchannel *ch;
  1596. int v1, v2, v3;
  1597. if (mixch >= ms->numch)
  1598. return -1;
  1599. ch = &ms->ch[mixch];
  1600. v3 = ch->maxval - ch->minval;
  1601. v1 = value & 0xff;
  1602. v2 = (value >> 8) & 0xff;
  1603. if (v1 > 100)
  1604. v1 = 100;
  1605. if (v2 > 100)
  1606. v2 = 100;
  1607. if (!(ch->flags & (MIXFLG_STEREOIN | MIXFLG_STEREOOUT)))
  1608. v2 = v1;
  1609. ch->value = v1 | (v2 << 8);
  1610. v1 = (v1 * v3) / 100 + ch->minval;
  1611. v2 = (v2 * v3) / 100 + ch->minval;
  1612. switch (ch->selector) {
  1613. case 0: /* mixer unit request */
  1614. data[0] = v1;
  1615. data[1] = v1 >> 8;
  1616. if (usb_control_msg(dev, usb_sndctrlpipe(dev, 0), SET_CUR, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_OUT,
  1617. (ch->chnum << 8) | 1, ms->iface | (ch->unitid << 8), data, 2, 1000) < 0)
  1618. goto err;
  1619. if (!(ch->flags & (MIXFLG_STEREOIN | MIXFLG_STEREOOUT)))
  1620. return 0;
  1621. data[0] = v2;
  1622. data[1] = v2 >> 8;
  1623. if (usb_control_msg(dev, usb_sndctrlpipe(dev, 0), SET_CUR, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_OUT,
  1624. ((ch->chnum + !!(ch->flags & MIXFLG_STEREOIN)) << 8) | (1 + !!(ch->flags & MIXFLG_STEREOOUT)),
  1625. ms->iface | (ch->unitid << 8), data, 2, 1000) < 0)
  1626. goto err;
  1627. return 0;
  1628. /* various feature unit controls */
  1629. case VOLUME_CONTROL:
  1630. data[0] = v1;
  1631. data[1] = v1 >> 8;
  1632. if (usb_control_msg(dev, usb_sndctrlpipe(dev, 0), SET_CUR, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_OUT,
  1633. (ch->selector << 8) | ch->chnum, ms->iface | (ch->unitid << 8), data, 2, 1000) < 0)
  1634. goto err;
  1635. if (!(ch->flags & (MIXFLG_STEREOIN | MIXFLG_STEREOOUT)))
  1636. return 0;
  1637. data[0] = v2;
  1638. data[1] = v2 >> 8;
  1639. if (usb_control_msg(dev, usb_sndctrlpipe(dev, 0), SET_CUR, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_OUT,
  1640. (ch->selector << 8) | (ch->chnum + 1), ms->iface | (ch->unitid << 8), data, 2, 1000) < 0)
  1641. goto err;
  1642. return 0;
  1643. case BASS_CONTROL:
  1644. case MID_CONTROL:
  1645. case TREBLE_CONTROL:
  1646. data[0] = v1 >> 8;
  1647. if (usb_control_msg(dev, usb_sndctrlpipe(dev, 0), SET_CUR, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_OUT,
  1648. (ch->selector << 8) | ch->chnum, ms->iface | (ch->unitid << 8), data, 1, 1000) < 0)
  1649. goto err;
  1650. if (!(ch->flags & (MIXFLG_STEREOIN | MIXFLG_STEREOOUT)))
  1651. return 0;
  1652. data[0] = v2 >> 8;
  1653. if (usb_control_msg(dev, usb_sndctrlpipe(dev, 0), SET_CUR, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_OUT,
  1654. (ch->selector << 8) | (ch->chnum + 1), ms->iface | (ch->unitid << 8), data, 1, 1000) < 0)
  1655. goto err;
  1656. return 0;
  1657. default:
  1658. return -1;
  1659. }
  1660. return 0;
  1661. err:
  1662. printk(KERN_ERR "usbaudio: mixer request device %u if %u unit %u ch %u selector %u failed\n",
  1663. dev->devnum, ms->iface, ch->unitid, ch->chnum, ch->selector);
  1664. return -1;
  1665. }
  1666. static int get_rec_src(struct usb_mixerdev *ms)
  1667. {
  1668. struct usb_device *dev = ms->state->usbdev;
  1669. unsigned int mask = 0, retmask = 0;
  1670. unsigned int i, j;
  1671. unsigned char buf;
  1672. int err = 0;
  1673. for (i = 0; i < ms->numch; i++) {
  1674. if (!ms->ch[i].slctunitid || (mask & (1 << i)))
  1675. continue;
  1676. if (usb_control_msg(dev, usb_rcvctrlpipe(dev, 0), GET_CUR, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  1677. 0, ms->iface | (ms->ch[i].slctunitid << 8), &buf, 1, 1000) < 0) {
  1678. err = -EIO;
  1679. printk(KERN_ERR "usbaudio: selector read request device %u if %u unit %u failed\n",
  1680. dev->devnum, ms->iface, ms->ch[i].slctunitid & 0xff);
  1681. continue;
  1682. }
  1683. for (j = i; j < ms->numch; j++) {
  1684. if ((ms->ch[i].slctunitid ^ ms->ch[j].slctunitid) & 0xff)
  1685. continue;
  1686. mask |= 1 << j;
  1687. if (buf == (ms->ch[j].slctunitid >> 8))
  1688. retmask |= 1 << ms->ch[j].osschannel;
  1689. }
  1690. }
  1691. if (err)
  1692. return -EIO;
  1693. return retmask;
  1694. }
  1695. static int set_rec_src(struct usb_mixerdev *ms, int srcmask)
  1696. {
  1697. struct usb_device *dev = ms->state->usbdev;
  1698. unsigned int mask = 0, smask, bmask;
  1699. unsigned int i, j;
  1700. unsigned char buf;
  1701. int err = 0;
  1702. for (i = 0; i < ms->numch; i++) {
  1703. if (!ms->ch[i].slctunitid || (mask & (1 << i)))
  1704. continue;
  1705. if (usb_control_msg(dev, usb_rcvctrlpipe(dev, 0), GET_CUR, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  1706. 0, ms->iface | (ms->ch[i].slctunitid << 8), &buf, 1, 1000) < 0) {
  1707. err = -EIO;
  1708. printk(KERN_ERR "usbaudio: selector read request device %u if %u unit %u failed\n",
  1709. dev->devnum, ms->iface, ms->ch[i].slctunitid & 0xff);
  1710. continue;
  1711. }
  1712. /* first generate smask */
  1713. smask = bmask = 0;
  1714. for (j = i; j < ms->numch; j++) {
  1715. if ((ms->ch[i].slctunitid ^ ms->ch[j].slctunitid) & 0xff)
  1716. continue;
  1717. smask |= 1 << ms->ch[j].osschannel;
  1718. if (buf == (ms->ch[j].slctunitid >> 8))
  1719. bmask |= 1 << ms->ch[j].osschannel;
  1720. mask |= 1 << j;
  1721. }
  1722. /* check for multiple set sources */
  1723. j = hweight32(srcmask & smask);
  1724. if (j == 0)
  1725. continue;
  1726. if (j > 1)
  1727. srcmask &= ~bmask;
  1728. for (j = i; j < ms->numch; j++) {
  1729. if ((ms->ch[i].slctunitid ^ ms->ch[j].slctunitid) & 0xff)
  1730. continue;
  1731. if (!(srcmask & (1 << ms->ch[j].osschannel)))
  1732. continue;
  1733. buf = ms->ch[j].slctunitid >> 8;
  1734. if (usb_control_msg(dev, usb_sndctrlpipe(dev, 0), SET_CUR, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_OUT,
  1735. 0, ms->iface | (ms->ch[j].slctunitid << 8), &buf, 1, 1000) < 0) {
  1736. err = -EIO;
  1737. printk(KERN_ERR "usbaudio: selector write request device %u if %u unit %u failed\n",
  1738. dev->devnum, ms->iface, ms->ch[j].slctunitid & 0xff);
  1739. continue;
  1740. }
  1741. }
  1742. }
  1743. return err ? -EIO : 0;
  1744. }
  1745. /* --------------------------------------------------------------------- */
  1746. /*
  1747. * should be called with open_sem hold, so that no new processes
  1748. * look at the audio device to be destroyed
  1749. */
  1750. static void release(struct usb_audio_state *s)
  1751. {
  1752. struct usb_audiodev *as;
  1753. struct usb_mixerdev *ms;
  1754. s->count--;
  1755. if (s->count) {
  1756. up(&open_sem);
  1757. return;
  1758. }
  1759. up(&open_sem);
  1760. wake_up(&open_wait);
  1761. while (!list_empty(&s->audiolist)) {
  1762. as = list_entry(s->audiolist.next, struct usb_audiodev, list);
  1763. list_del(&as->list);
  1764. usbin_release(as);
  1765. usbout_release(as);
  1766. dmabuf_release(&as->usbin.dma);
  1767. dmabuf_release(&as->usbout.dma);
  1768. usb_free_urb(as->usbin.durb[0].urb);
  1769. usb_free_urb(as->usbin.durb[1].urb);
  1770. usb_free_urb(as->usbin.surb[0].urb);
  1771. usb_free_urb(as->usbin.surb[1].urb);
  1772. usb_free_urb(as->usbout.durb[0].urb);
  1773. usb_free_urb(as->usbout.durb[1].urb);
  1774. usb_free_urb(as->usbout.surb[0].urb);
  1775. usb_free_urb(as->usbout.surb[1].urb);
  1776. kfree(as);
  1777. }
  1778. while (!list_empty(&s->mixerlist)) {
  1779. ms = list_entry(s->mixerlist.next, struct usb_mixerdev, list);
  1780. list_del(&ms->list);
  1781. kfree(ms);
  1782. }
  1783. kfree(s);
  1784. }
  1785. static inline int prog_dmabuf_in(struct usb_audiodev *as)
  1786. {
  1787. usbin_stop(as);
  1788. return dmabuf_init(&as->usbin.dma);
  1789. }
  1790. static inline int prog_dmabuf_out(struct usb_audiodev *as)
  1791. {
  1792. usbout_stop(as);
  1793. return dmabuf_init(&as->usbout.dma);
  1794. }
  1795. /* --------------------------------------------------------------------- */
  1796. static int usb_audio_open_mixdev(struct inode *inode, struct file *file)
  1797. {
  1798. unsigned int minor = iminor(inode);
  1799. struct usb_mixerdev *ms;
  1800. struct usb_audio_state *s;
  1801. down(&open_sem);
  1802. list_for_each_entry(s, &audiodevs, audiodev) {
  1803. list_for_each_entry(ms, &s->mixerlist, list) {
  1804. if (ms->dev_mixer == minor)
  1805. goto mixer_found;
  1806. }
  1807. }
  1808. up(&open_sem);
  1809. return -ENODEV;
  1810. mixer_found:
  1811. if (!s->usbdev) {
  1812. up(&open_sem);
  1813. return -EIO;
  1814. }
  1815. file->private_data = ms;
  1816. s->count++;
  1817. up(&open_sem);
  1818. return nonseekable_open(inode, file);
  1819. }
  1820. static int usb_audio_release_mixdev(struct inode *inode, struct file *file)
  1821. {
  1822. struct usb_mixerdev *ms = (struct usb_mixerdev *)file->private_data;
  1823. struct usb_audio_state *s;
  1824. lock_kernel();
  1825. s = ms->state;
  1826. down(&open_sem);
  1827. release(s);
  1828. unlock_kernel();
  1829. return 0;
  1830. }
  1831. static int usb_audio_ioctl_mixdev(struct inode *inode, struct file *file, unsigned int cmd, unsigned long arg)
  1832. {
  1833. struct usb_mixerdev *ms = (struct usb_mixerdev *)file->private_data;
  1834. int i, j, val;
  1835. int __user *user_arg = (int __user *)arg;
  1836. if (!ms->state->usbdev)
  1837. return -ENODEV;
  1838. if (cmd == SOUND_MIXER_INFO) {
  1839. mixer_info info;
  1840. memset(&info, 0, sizeof(info));
  1841. strncpy(info.id, "USB_AUDIO", sizeof(info.id));
  1842. strncpy(info.name, "USB Audio Class Driver", sizeof(info.name));
  1843. info.modify_counter = ms->modcnt;
  1844. if (copy_to_user((void __user *)arg, &info, sizeof(info)))
  1845. return -EFAULT;
  1846. return 0;
  1847. }
  1848. if (cmd == SOUND_OLD_MIXER_INFO) {
  1849. _old_mixer_info info;
  1850. memset(&info, 0, sizeof(info));
  1851. strncpy(info.id, "USB_AUDIO", sizeof(info.id));
  1852. strncpy(info.name, "USB Audio Class Driver", sizeof(info.name));
  1853. if (copy_to_user((void __user *)arg, &info, sizeof(info)))
  1854. return -EFAULT;
  1855. return 0;
  1856. }
  1857. if (cmd == OSS_GETVERSION)
  1858. return put_user(SOUND_VERSION, user_arg);
  1859. if (_IOC_TYPE(cmd) != 'M' || _IOC_SIZE(cmd) != sizeof(int))
  1860. return -EINVAL;
  1861. if (_IOC_DIR(cmd) == _IOC_READ) {
  1862. switch (_IOC_NR(cmd)) {
  1863. case SOUND_MIXER_RECSRC: /* Arg contains a bit for each recording source */
  1864. val = get_rec_src(ms);
  1865. if (val < 0)
  1866. return val;
  1867. return put_user(val, user_arg);
  1868. case SOUND_MIXER_DEVMASK: /* Arg contains a bit for each supported device */
  1869. for (val = i = 0; i < ms->numch; i++)
  1870. val |= 1 << ms->ch[i].osschannel;
  1871. return put_user(val, user_arg);
  1872. case SOUND_MIXER_RECMASK: /* Arg contains a bit for each supported recording source */
  1873. for (val = i = 0; i < ms->numch; i++)
  1874. if (ms->ch[i].slctunitid)
  1875. val |= 1 << ms->ch[i].osschannel;
  1876. return put_user(val, user_arg);
  1877. case SOUND_MIXER_STEREODEVS: /* Mixer channels supporting stereo */
  1878. for (val = i = 0; i < ms->numch; i++)
  1879. if (ms->ch[i].flags & (MIXFLG_STEREOIN | MIXFLG_STEREOOUT))
  1880. val |= 1 << ms->ch[i].osschannel;
  1881. return put_user(val, user_arg);
  1882. case SOUND_MIXER_CAPS:
  1883. return put_user(SOUND_CAP_EXCL_INPUT, user_arg);
  1884. default:
  1885. i = _IOC_NR(cmd);
  1886. if (i >= SOUND_MIXER_NRDEVICES)
  1887. return -EINVAL;
  1888. for (j = 0; j < ms->numch; j++) {
  1889. if (ms->ch[j].osschannel == i) {
  1890. return put_user(ms->ch[j].value, user_arg);
  1891. }
  1892. }
  1893. return -EINVAL;
  1894. }
  1895. }
  1896. if (_IOC_DIR(cmd) != (_IOC_READ|_IOC_WRITE))
  1897. return -EINVAL;
  1898. ms->modcnt++;
  1899. switch (_IOC_NR(cmd)) {
  1900. case SOUND_MIXER_RECSRC: /* Arg contains a bit for each recording source */
  1901. if (get_user(val, user_arg))
  1902. return -EFAULT;
  1903. return set_rec_src(ms, val);
  1904. default:
  1905. i = _IOC_NR(cmd);
  1906. if (i >= SOUND_MIXER_NRDEVICES)
  1907. return -EINVAL;
  1908. for (j = 0; j < ms->numch && ms->ch[j].osschannel != i; j++);
  1909. if (j >= ms->numch)
  1910. return -EINVAL;
  1911. if (get_user(val, user_arg))
  1912. return -EFAULT;
  1913. if (wrmixer(ms, j, val))
  1914. return -EIO;
  1915. return put_user(ms->ch[j].value, user_arg);
  1916. }
  1917. }
  1918. static /*const*/ struct file_operations usb_mixer_fops = {
  1919. .owner = THIS_MODULE,
  1920. .llseek = no_llseek,
  1921. .ioctl = usb_audio_ioctl_mixdev,
  1922. .open = usb_audio_open_mixdev,
  1923. .release = usb_audio_release_mixdev,
  1924. };
  1925. /* --------------------------------------------------------------------- */
  1926. static int drain_out(struct usb_audiodev *as, int nonblock)
  1927. {
  1928. DECLARE_WAITQUEUE(wait, current);
  1929. unsigned long flags;
  1930. int count, tmo;
  1931. if (as->usbout.dma.mapped || !as->usbout.dma.ready)
  1932. return 0;
  1933. usbout_start(as);
  1934. add_wait_queue(&as->usbout.dma.wait, &wait);
  1935. for (;;) {
  1936. __set_current_state(TASK_INTERRUPTIBLE);
  1937. spin_lock_irqsave(&as->lock, flags);
  1938. count = as->usbout.dma.count;
  1939. spin_unlock_irqrestore(&as->lock, flags);
  1940. if (count <= 0)
  1941. break;
  1942. if (signal_pending(current))
  1943. break;
  1944. if (nonblock) {
  1945. remove_wait_queue(&as->usbout.dma.wait, &wait);
  1946. set_current_state(TASK_RUNNING);
  1947. return -EBUSY;
  1948. }
  1949. tmo = 3 * HZ * count / as->usbout.dma.srate;
  1950. tmo >>= AFMT_BYTESSHIFT(as->usbout.dma.format);
  1951. if (!schedule_timeout(tmo + 1)) {
  1952. printk(KERN_DEBUG "usbaudio: dma timed out??\n");
  1953. break;
  1954. }
  1955. }
  1956. remove_wait_queue(&as->usbout.dma.wait, &wait);
  1957. set_current_state(TASK_RUNNING);
  1958. if (signal_pending(current))
  1959. return -ERESTARTSYS;
  1960. return 0;
  1961. }
  1962. /* --------------------------------------------------------------------- */
  1963. static ssize_t usb_audio_read(struct file *file, char __user *buffer, size_t count, loff_t *ppos)
  1964. {
  1965. struct usb_audiodev *as = (struct usb_audiodev *)file->private_data;
  1966. DECLARE_WAITQUEUE(wait, current);
  1967. ssize_t ret = 0;
  1968. unsigned long flags;
  1969. unsigned int ptr;
  1970. int cnt, err;
  1971. if (as->usbin.dma.mapped)
  1972. return -ENXIO;
  1973. if (!as->usbin.dma.ready && (ret = prog_dmabuf_in(as)))
  1974. return ret;
  1975. if (!access_ok(VERIFY_WRITE, buffer, count))
  1976. return -EFAULT;
  1977. add_wait_queue(&as->usbin.dma.wait, &wait);
  1978. while (count > 0) {
  1979. spin_lock_irqsave(&as->lock, flags);
  1980. ptr = as->usbin.dma.rdptr;
  1981. cnt = as->usbin.dma.count;
  1982. /* set task state early to avoid wakeup races */
  1983. if (cnt <= 0)
  1984. __set_current_state(TASK_INTERRUPTIBLE);
  1985. spin_unlock_irqrestore(&as->lock, flags);
  1986. if (cnt > count)
  1987. cnt = count;
  1988. if (cnt <= 0) {
  1989. if (usbin_start(as)) {
  1990. if (!ret)
  1991. ret = -ENODEV;
  1992. break;
  1993. }
  1994. if (file->f_flags & O_NONBLOCK) {
  1995. if (!ret)
  1996. ret = -EAGAIN;
  1997. break;
  1998. }
  1999. schedule();
  2000. if (signal_pending(current)) {
  2001. if (!ret)
  2002. ret = -ERESTARTSYS;
  2003. break;
  2004. }
  2005. continue;
  2006. }
  2007. if ((err = dmabuf_copyout_user(&as->usbin.dma, ptr, buffer, cnt))) {
  2008. if (!ret)
  2009. ret = err;
  2010. break;
  2011. }
  2012. ptr += cnt;
  2013. if (ptr >= as->usbin.dma.dmasize)
  2014. ptr -= as->usbin.dma.dmasize;
  2015. spin_lock_irqsave(&as->lock, flags);
  2016. as->usbin.dma.rdptr = ptr;
  2017. as->usbin.dma.count -= cnt;
  2018. spin_unlock_irqrestore(&as->lock, flags);
  2019. count -= cnt;
  2020. buffer += cnt;
  2021. ret += cnt;
  2022. }
  2023. __set_current_state(TASK_RUNNING);
  2024. remove_wait_queue(&as->usbin.dma.wait, &wait);
  2025. return ret;
  2026. }
  2027. static ssize_t usb_audio_write(struct file *file, const char __user *buffer, size_t count, loff_t *ppos)
  2028. {
  2029. struct usb_audiodev *as = (struct usb_audiodev *)file->private_data;
  2030. DECLARE_WAITQUEUE(wait, current);
  2031. ssize_t ret = 0;
  2032. unsigned long flags;
  2033. unsigned int ptr;
  2034. unsigned int start_thr;
  2035. int cnt, err;
  2036. if (as->usbout.dma.mapped)
  2037. return -ENXIO;
  2038. if (!as->usbout.dma.ready && (ret = prog_dmabuf_out(as)))
  2039. return ret;
  2040. if (!access_ok(VERIFY_READ, buffer, count))
  2041. return -EFAULT;
  2042. start_thr = (as->usbout.dma.srate << AFMT_BYTESSHIFT(as->usbout.dma.format)) / (1000 / (3 * DESCFRAMES));
  2043. add_wait_queue(&as->usbout.dma.wait, &wait);
  2044. while (count > 0) {
  2045. #if 0
  2046. printk(KERN_DEBUG "usb_audio_write: count %u dma: count %u rdptr %u wrptr %u dmasize %u fragsize %u flags 0x%02x taskst 0x%lx\n",
  2047. count, as->usbout.dma.count, as->usbout.dma.rdptr, as->usbout.dma.wrptr, as->usbout.dma.dmasize, as->usbout.dma.fragsize,
  2048. as->usbout.flags, current->state);
  2049. #endif
  2050. spin_lock_irqsave(&as->lock, flags);
  2051. if (as->usbout.dma.count < 0) {
  2052. as->usbout.dma.count = 0;
  2053. as->usbout.dma.rdptr = as->usbout.dma.wrptr;
  2054. }
  2055. ptr = as->usbout.dma.wrptr;
  2056. cnt = as->usbout.dma.dmasize - as->usbout.dma.count;
  2057. /* set task state early to avoid wakeup races */
  2058. if (cnt <= 0)
  2059. __set_current_state(TASK_INTERRUPTIBLE);
  2060. spin_unlock_irqrestore(&as->lock, flags);
  2061. if (cnt > count)
  2062. cnt = count;
  2063. if (cnt <= 0) {
  2064. if (usbout_start(as)) {
  2065. if (!ret)
  2066. ret = -ENODEV;
  2067. break;
  2068. }
  2069. if (file->f_flags & O_NONBLOCK) {
  2070. if (!ret)
  2071. ret = -EAGAIN;
  2072. break;
  2073. }
  2074. schedule();
  2075. if (signal_pending(current)) {
  2076. if (!ret)
  2077. ret = -ERESTARTSYS;
  2078. break;
  2079. }
  2080. continue;
  2081. }
  2082. if ((err = dmabuf_copyin_user(&as->usbout.dma, ptr, buffer, cnt))) {
  2083. if (!ret)
  2084. ret = err;
  2085. break;
  2086. }
  2087. ptr += cnt;
  2088. if (ptr >= as->usbout.dma.dmasize)
  2089. ptr -= as->usbout.dma.dmasize;
  2090. spin_lock_irqsave(&as->lock, flags);
  2091. as->usbout.dma.wrptr = ptr;
  2092. as->usbout.dma.count += cnt;
  2093. spin_unlock_irqrestore(&as->lock, flags);
  2094. count -= cnt;
  2095. buffer += cnt;
  2096. ret += cnt;
  2097. if (as->usbout.dma.count >= start_thr && usbout_start(as)) {
  2098. if (!ret)
  2099. ret = -ENODEV;
  2100. break;
  2101. }
  2102. }
  2103. __set_current_state(TASK_RUNNING);
  2104. remove_wait_queue(&as->usbout.dma.wait, &wait);
  2105. return ret;
  2106. }
  2107. /* Called without the kernel lock - fine */
  2108. static unsigned int usb_audio_poll(struct file *file, struct poll_table_struct *wait)
  2109. {
  2110. struct usb_audiodev *as = (struct usb_audiodev *)file->private_data;
  2111. unsigned long flags;
  2112. unsigned int mask = 0;
  2113. if (file->f_mode & FMODE_WRITE) {
  2114. if (!as->usbout.dma.ready)
  2115. prog_dmabuf_out(as);
  2116. poll_wait(file, &as->usbout.dma.wait, wait);
  2117. }
  2118. if (file->f_mode & FMODE_READ) {
  2119. if (!as->usbin.dma.ready)
  2120. prog_dmabuf_in(as);
  2121. poll_wait(file, &as->usbin.dma.wait, wait);
  2122. }
  2123. spin_lock_irqsave(&as->lock, flags);
  2124. if (file->f_mode & FMODE_READ) {
  2125. if (as->usbin.dma.count >= (signed)as->usbin.dma.fragsize)
  2126. mask |= POLLIN | POLLRDNORM;
  2127. }
  2128. if (file->f_mode & FMODE_WRITE) {
  2129. if (as->usbout.dma.mapped) {
  2130. if (as->usbout.dma.count >= (signed)as->usbout.dma.fragsize)
  2131. mask |= POLLOUT | POLLWRNORM;
  2132. } else {
  2133. if ((signed)as->usbout.dma.dmasize >= as->usbout.dma.count + (signed)as->usbout.dma.fragsize)
  2134. mask |= POLLOUT | POLLWRNORM;
  2135. }
  2136. }
  2137. spin_unlock_irqrestore(&as->lock, flags);
  2138. return mask;
  2139. }
  2140. static int usb_audio_mmap(struct file *file, struct vm_area_struct *vma)
  2141. {
  2142. struct usb_audiodev *as = (struct usb_audiodev *)file->private_data;
  2143. struct dmabuf *db;
  2144. int ret = -EINVAL;
  2145. lock_kernel();
  2146. if (vma->vm_flags & VM_WRITE) {
  2147. if ((ret = prog_dmabuf_out(as)) != 0)
  2148. goto out;
  2149. db = &as->usbout.dma;
  2150. } else if (vma->vm_flags & VM_READ) {
  2151. if ((ret = prog_dmabuf_in(as)) != 0)
  2152. goto out;
  2153. db = &as->usbin.dma;
  2154. } else
  2155. goto out;
  2156. ret = -EINVAL;
  2157. if (vma->vm_pgoff != 0)
  2158. goto out;
  2159. ret = dmabuf_mmap(vma, db, vma->vm_start, vma->vm_end - vma->vm_start, vma->vm_page_prot);
  2160. out:
  2161. unlock_kernel();
  2162. return ret;
  2163. }
  2164. static int usb_audio_ioctl(struct inode *inode, struct file *file, unsigned int cmd, unsigned long arg)
  2165. {
  2166. struct usb_audiodev *as = (struct usb_audiodev *)file->private_data;
  2167. struct usb_audio_state *s = as->state;
  2168. int __user *user_arg = (int __user *)arg;
  2169. unsigned long flags;
  2170. audio_buf_info abinfo;
  2171. count_info cinfo;
  2172. int val = 0;
  2173. int val2, mapped, ret;
  2174. if (!s->usbdev)
  2175. return -EIO;
  2176. mapped = ((file->f_mode & FMODE_WRITE) && as->usbout.dma.mapped) ||
  2177. ((file->f_mode & FMODE_READ) && as->usbin.dma.mapped);
  2178. #if 0
  2179. if (arg)
  2180. get_user(val, (int *)arg);
  2181. printk(KERN_DEBUG "usbaudio: usb_audio_ioctl cmd=%x arg=%lx *arg=%d\n", cmd, arg, val)
  2182. #endif
  2183. switch (cmd) {
  2184. case OSS_GETVERSION:
  2185. return put_user(SOUND_VERSION, user_arg);
  2186. case SNDCTL_DSP_SYNC:
  2187. if (file->f_mode & FMODE_WRITE)
  2188. return drain_out(as, 0/*file->f_flags & O_NONBLOCK*/);
  2189. return 0;
  2190. case SNDCTL_DSP_SETDUPLEX:
  2191. return 0;
  2192. case SNDCTL_DSP_GETCAPS:
  2193. return put_user(DSP_CAP_DUPLEX | DSP_CAP_REALTIME | DSP_CAP_TRIGGER |
  2194. DSP_CAP_MMAP | DSP_CAP_BATCH, user_arg);
  2195. case SNDCTL_DSP_RESET:
  2196. if (file->f_mode & FMODE_WRITE) {
  2197. usbout_stop(as);
  2198. as->usbout.dma.rdptr = as->usbout.dma.wrptr = as->usbout.dma.count = as->usbout.dma.total_bytes = 0;
  2199. }
  2200. if (file->f_mode & FMODE_READ) {
  2201. usbin_stop(as);
  2202. as->usbin.dma.rdptr = as->usbin.dma.wrptr = as->usbin.dma.count = as->usbin.dma.total_bytes = 0;
  2203. }
  2204. return 0;
  2205. case SNDCTL_DSP_SPEED:
  2206. if (get_user(val, user_arg))
  2207. return -EFAULT;
  2208. if (val >= 0) {
  2209. if (val < 4000)
  2210. val = 4000;
  2211. if (val > 100000)
  2212. val = 100000;
  2213. if (set_format(as, file->f_mode, AFMT_QUERY, val))
  2214. return -EIO;
  2215. }
  2216. return put_user((file->f_mode & FMODE_READ) ?
  2217. as->usbin.dma.srate : as->usbout.dma.srate,
  2218. user_arg);
  2219. case SNDCTL_DSP_STEREO:
  2220. if (get_user(val, user_arg))
  2221. return -EFAULT;
  2222. val2 = (file->f_mode & FMODE_READ) ? as->usbin.dma.format : as->usbout.dma.format;
  2223. if (val)
  2224. val2 |= AFMT_STEREO;
  2225. else
  2226. val2 &= ~AFMT_STEREO;
  2227. if (set_format(as, file->f_mode, val2, 0))
  2228. return -EIO;
  2229. return 0;
  2230. case SNDCTL_DSP_CHANNELS:
  2231. if (get_user(val, user_arg))
  2232. return -EFAULT;
  2233. if (val != 0) {
  2234. val2 = (file->f_mode & FMODE_READ) ? as->usbin.dma.format : as->usbout.dma.format;
  2235. if (val == 1)
  2236. val2 &= ~AFMT_STEREO;
  2237. else
  2238. val2 |= AFMT_STEREO;
  2239. if (set_format(as, file->f_mode, val2, 0))
  2240. return -EIO;
  2241. }
  2242. val2 = (file->f_mode & FMODE_READ) ? as->usbin.dma.format : as->usbout.dma.format;
  2243. return put_user(AFMT_ISSTEREO(val2) ? 2 : 1, user_arg);
  2244. case SNDCTL_DSP_GETFMTS: /* Returns a mask */
  2245. return put_user(AFMT_U8 | AFMT_U16_LE | AFMT_U16_BE |
  2246. AFMT_S8 | AFMT_S16_LE | AFMT_S16_BE, user_arg);
  2247. case SNDCTL_DSP_SETFMT: /* Selects ONE fmt*/
  2248. if (get_user(val, user_arg))
  2249. return -EFAULT;
  2250. if (val != AFMT_QUERY) {
  2251. if (hweight32(val) != 1)
  2252. return -EINVAL;
  2253. if (!(val & (AFMT_U8 | AFMT_U16_LE | AFMT_U16_BE |
  2254. AFMT_S8 | AFMT_S16_LE | AFMT_S16_BE)))
  2255. return -EINVAL;
  2256. val2 = (file->f_mode & FMODE_READ) ? as->usbin.dma.format : as->usbout.dma.format;
  2257. val |= val2 & AFMT_STEREO;
  2258. if (set_format(as, file->f_mode, val, 0))
  2259. return -EIO;
  2260. }
  2261. val2 = (file->f_mode & FMODE_READ) ? as->usbin.dma.format : as->usbout.dma.format;
  2262. return put_user(val2 & ~AFMT_STEREO, user_arg);
  2263. case SNDCTL_DSP_POST:
  2264. return 0;
  2265. case SNDCTL_DSP_GETTRIGGER:
  2266. val = 0;
  2267. if (file->f_mode & FMODE_READ && as->usbin.flags & FLG_RUNNING)
  2268. val |= PCM_ENABLE_INPUT;
  2269. if (file->f_mode & FMODE_WRITE && as->usbout.flags & FLG_RUNNING)
  2270. val |= PCM_ENABLE_OUTPUT;
  2271. return put_user(val, user_arg);
  2272. case SNDCTL_DSP_SETTRIGGER:
  2273. if (get_user(val, user_arg))
  2274. return -EFAULT;
  2275. if (file->f_mode & FMODE_READ) {
  2276. if (val & PCM_ENABLE_INPUT) {
  2277. if (!as->usbin.dma.ready && (ret = prog_dmabuf_in(as)))
  2278. return ret;
  2279. if (usbin_start(as))
  2280. return -ENODEV;
  2281. } else
  2282. usbin_stop(as);
  2283. }
  2284. if (file->f_mode & FMODE_WRITE) {
  2285. if (val & PCM_ENABLE_OUTPUT) {
  2286. if (!as->usbout.dma.ready && (ret = prog_dmabuf_out(as)))
  2287. return ret;
  2288. if (usbout_start(as))
  2289. return -ENODEV;
  2290. } else
  2291. usbout_stop(as);
  2292. }
  2293. return 0;
  2294. case SNDCTL_DSP_GETOSPACE:
  2295. if (!(file->f_mode & FMODE_WRITE))
  2296. return -EINVAL;
  2297. if (!(as->usbout.flags & FLG_RUNNING) && (val = prog_dmabuf_out(as)) != 0)
  2298. return val;
  2299. spin_lock_irqsave(&as->lock, flags);
  2300. abinfo.fragsize = as->usbout.dma.fragsize;
  2301. abinfo.bytes = as->usbout.dma.dmasize - as->usbout.dma.count;
  2302. abinfo.fragstotal = as->usbout.dma.numfrag;
  2303. abinfo.fragments = abinfo.bytes >> as->usbout.dma.fragshift;
  2304. spin_unlock_irqrestore(&as->lock, flags);
  2305. return copy_to_user((void __user *)arg, &abinfo, sizeof(abinfo)) ? -EFAULT : 0;
  2306. case SNDCTL_DSP_GETISPACE:
  2307. if (!(file->f_mode & FMODE_READ))
  2308. return -EINVAL;
  2309. if (!(as->usbin.flags & FLG_RUNNING) && (val = prog_dmabuf_in(as)) != 0)
  2310. return val;
  2311. spin_lock_irqsave(&as->lock, flags);
  2312. abinfo.fragsize = as->usbin.dma.fragsize;
  2313. abinfo.bytes = as->usbin.dma.count;
  2314. abinfo.fragstotal = as->usbin.dma.numfrag;
  2315. abinfo.fragments = abinfo.bytes >> as->usbin.dma.fragshift;
  2316. spin_unlock_irqrestore(&as->lock, flags);
  2317. return copy_to_user((void __user *)arg, &abinfo, sizeof(abinfo)) ? -EFAULT : 0;
  2318. case SNDCTL_DSP_NONBLOCK:
  2319. file->f_flags |= O_NONBLOCK;
  2320. return 0;
  2321. case SNDCTL_DSP_GETODELAY:
  2322. if (!(file->f_mode & FMODE_WRITE))
  2323. return -EINVAL;
  2324. spin_lock_irqsave(&as->lock, flags);
  2325. val = as->usbout.dma.count;
  2326. spin_unlock_irqrestore(&as->lock, flags);
  2327. return put_user(val, user_arg);
  2328. case SNDCTL_DSP_GETIPTR:
  2329. if (!(file->f_mode & FMODE_READ))
  2330. return -EINVAL;
  2331. spin_lock_irqsave(&as->lock, flags);
  2332. cinfo.bytes = as->usbin.dma.total_bytes;
  2333. cinfo.blocks = as->usbin.dma.count >> as->usbin.dma.fragshift;
  2334. cinfo.ptr = as->usbin.dma.wrptr;
  2335. if (as->usbin.dma.mapped)
  2336. as->usbin.dma.count &= as->usbin.dma.fragsize-1;
  2337. spin_unlock_irqrestore(&as->lock, flags);
  2338. if (copy_to_user((void __user *)arg, &cinfo, sizeof(cinfo)))
  2339. return -EFAULT;
  2340. return 0;
  2341. case SNDCTL_DSP_GETOPTR:
  2342. if (!(file->f_mode & FMODE_WRITE))
  2343. return -EINVAL;
  2344. spin_lock_irqsave(&as->lock, flags);
  2345. cinfo.bytes = as->usbout.dma.total_bytes;
  2346. cinfo.blocks = as->usbout.dma.count >> as->usbout.dma.fragshift;
  2347. cinfo.ptr = as->usbout.dma.rdptr;
  2348. if (as->usbout.dma.mapped)
  2349. as->usbout.dma.count &= as->usbout.dma.fragsize-1;
  2350. spin_unlock_irqrestore(&as->lock, flags);
  2351. if (copy_to_user((void __user *)arg, &cinfo, sizeof(cinfo)))
  2352. return -EFAULT;
  2353. return 0;
  2354. case SNDCTL_DSP_GETBLKSIZE:
  2355. if (file->f_mode & FMODE_WRITE) {
  2356. if ((val = prog_dmabuf_out(as)))
  2357. return val;
  2358. return put_user(as->usbout.dma.fragsize, user_arg);
  2359. }
  2360. if ((val = prog_dmabuf_in(as)))
  2361. return val;
  2362. return put_user(as->usbin.dma.fragsize, user_arg);
  2363. case SNDCTL_DSP_SETFRAGMENT:
  2364. if (get_user(val, user_arg))
  2365. return -EFAULT;
  2366. if (file->f_mode & FMODE_READ) {
  2367. as->usbin.dma.ossfragshift = val & 0xffff;
  2368. as->usbin.dma.ossmaxfrags = (val >> 16) & 0xffff;
  2369. if (as->usbin.dma.ossfragshift < 4)
  2370. as->usbin.dma.ossfragshift = 4;
  2371. if (as->usbin.dma.ossfragshift > 15)
  2372. as->usbin.dma.ossfragshift = 15;
  2373. if (as->usbin.dma.ossmaxfrags < 4)
  2374. as->usbin.dma.ossmaxfrags = 4;
  2375. }
  2376. if (file->f_mode & FMODE_WRITE) {
  2377. as->usbout.dma.ossfragshift = val & 0xffff;
  2378. as->usbout.dma.ossmaxfrags = (val >> 16) & 0xffff;
  2379. if (as->usbout.dma.ossfragshift < 4)
  2380. as->usbout.dma.ossfragshift = 4;
  2381. if (as->usbout.dma.ossfragshift > 15)
  2382. as->usbout.dma.ossfragshift = 15;
  2383. if (as->usbout.dma.ossmaxfrags < 4)
  2384. as->usbout.dma.ossmaxfrags = 4;
  2385. }
  2386. return 0;
  2387. case SNDCTL_DSP_SUBDIVIDE:
  2388. if ((file->f_mode & FMODE_READ && as->usbin.dma.subdivision) ||
  2389. (file->f_mode & FMODE_WRITE && as->usbout.dma.subdivision))
  2390. return -EINVAL;
  2391. if (get_user(val, user_arg))
  2392. return -EFAULT;
  2393. if (val != 1 && val != 2 && val != 4)
  2394. return -EINVAL;
  2395. if (file->f_mode & FMODE_READ)
  2396. as->usbin.dma.subdivision = val;
  2397. if (file->f_mode & FMODE_WRITE)
  2398. as->usbout.dma.subdivision = val;
  2399. return 0;
  2400. case SOUND_PCM_READ_RATE:
  2401. return put_user((file->f_mode & FMODE_READ) ?
  2402. as->usbin.dma.srate : as->usbout.dma.srate,
  2403. user_arg);
  2404. case SOUND_PCM_READ_CHANNELS:
  2405. val2 = (file->f_mode & FMODE_READ) ? as->usbin.dma.format : as->usbout.dma.format;
  2406. return put_user(AFMT_ISSTEREO(val2) ? 2 : 1, user_arg);
  2407. case SOUND_PCM_READ_BITS:
  2408. val2 = (file->f_mode & FMODE_READ) ? as->usbin.dma.format : as->usbout.dma.format;
  2409. return put_user(AFMT_IS16BIT(val2) ? 16 : 8, user_arg);
  2410. case SOUND_PCM_WRITE_FILTER:
  2411. case SNDCTL_DSP_SETSYNCRO:
  2412. case SOUND_PCM_READ_FILTER:
  2413. return -EINVAL;
  2414. }
  2415. dprintk((KERN_DEBUG "usbaudio: usb_audio_ioctl - no command found\n"));
  2416. return -ENOIOCTLCMD;
  2417. }
  2418. static int usb_audio_open(struct inode *inode, struct file *file)
  2419. {
  2420. unsigned int minor = iminor(inode);
  2421. DECLARE_WAITQUEUE(wait, current);
  2422. struct usb_audiodev *as;
  2423. struct usb_audio_state *s;
  2424. for (;;) {
  2425. down(&open_sem);
  2426. list_for_each_entry(s, &audiodevs, audiodev) {
  2427. list_for_each_entry(as, &s->audiolist, list) {
  2428. if (!((as->dev_audio ^ minor) & ~0xf))
  2429. goto device_found;
  2430. }
  2431. }
  2432. up(&open_sem);
  2433. return -ENODEV;
  2434. device_found:
  2435. if (!s->usbdev) {
  2436. up(&open_sem);
  2437. return -EIO;
  2438. }
  2439. /* wait for device to become free */
  2440. if (!(as->open_mode & file->f_mode))
  2441. break;
  2442. if (file->f_flags & O_NONBLOCK) {
  2443. up(&open_sem);
  2444. return -EBUSY;
  2445. }
  2446. __set_current_state(TASK_INTERRUPTIBLE);
  2447. add_wait_queue(&open_wait, &wait);
  2448. up(&open_sem);
  2449. schedule();
  2450. __set_current_state(TASK_RUNNING);
  2451. remove_wait_queue(&open_wait, &wait);
  2452. if (signal_pending(current))
  2453. return -ERESTARTSYS;
  2454. }
  2455. if (file->f_mode & FMODE_READ)
  2456. as->usbin.dma.ossfragshift = as->usbin.dma.ossmaxfrags = as->usbin.dma.subdivision = 0;
  2457. if (file->f_mode & FMODE_WRITE)
  2458. as->usbout.dma.ossfragshift = as->usbout.dma.ossmaxfrags = as->usbout.dma.subdivision = 0;
  2459. if (set_format(as, file->f_mode, ((minor & 0xf) == SND_DEV_DSP16) ? AFMT_S16_LE : AFMT_U8 /* AFMT_ULAW */, 8000)) {
  2460. up(&open_sem);
  2461. return -EIO;
  2462. }
  2463. file->private_data = as;
  2464. as->open_mode |= file->f_mode & (FMODE_READ | FMODE_WRITE);
  2465. s->count++;
  2466. up(&open_sem);
  2467. return nonseekable_open(inode, file);
  2468. }
  2469. static int usb_audio_release(struct inode *inode, struct file *file)
  2470. {
  2471. struct usb_audiodev *as = (struct usb_audiodev *)file->private_data;
  2472. struct usb_audio_state *s;
  2473. struct usb_device *dev;
  2474. lock_kernel();
  2475. s = as->state;
  2476. dev = s->usbdev;
  2477. if (file->f_mode & FMODE_WRITE)
  2478. drain_out(as, file->f_flags & O_NONBLOCK);
  2479. down(&open_sem);
  2480. if (file->f_mode & FMODE_WRITE) {
  2481. usbout_stop(as);
  2482. if (dev && as->usbout.interface >= 0)
  2483. usb_set_interface(dev, as->usbout.interface, 0);
  2484. dmabuf_release(&as->usbout.dma);
  2485. usbout_release(as);
  2486. }
  2487. if (file->f_mode & FMODE_READ) {
  2488. usbin_stop(as);
  2489. if (dev && as->usbin.interface >= 0)
  2490. usb_set_interface(dev, as->usbin.interface, 0);
  2491. dmabuf_release(&as->usbin.dma);
  2492. usbin_release(as);
  2493. }
  2494. as->open_mode &= (~file->f_mode) & (FMODE_READ|FMODE_WRITE);
  2495. release(s);
  2496. wake_up(&open_wait);
  2497. unlock_kernel();
  2498. return 0;
  2499. }
  2500. static /*const*/ struct file_operations usb_audio_fops = {
  2501. .owner = THIS_MODULE,
  2502. .llseek = no_llseek,
  2503. .read = usb_audio_read,
  2504. .write = usb_audio_write,
  2505. .poll = usb_audio_poll,
  2506. .ioctl = usb_audio_ioctl,
  2507. .mmap = usb_audio_mmap,
  2508. .open = usb_audio_open,
  2509. .release = usb_audio_release,
  2510. };
  2511. /* --------------------------------------------------------------------- */
  2512. static int usb_audio_probe(struct usb_interface *iface,
  2513. const struct usb_device_id *id);
  2514. static void usb_audio_disconnect(struct usb_interface *iface);
  2515. static struct usb_device_id usb_audio_ids [] = {
  2516. { .match_flags = (USB_DEVICE_ID_MATCH_INT_CLASS | USB_DEVICE_ID_MATCH_INT_SUBCLASS),
  2517. .bInterfaceClass = USB_CLASS_AUDIO, .bInterfaceSubClass = 1},
  2518. { } /* Terminating entry */
  2519. };
  2520. MODULE_DEVICE_TABLE (usb, usb_audio_ids);
  2521. static struct usb_driver usb_audio_driver = {
  2522. .owner = THIS_MODULE,
  2523. .name = "audio",
  2524. .probe = usb_audio_probe,
  2525. .disconnect = usb_audio_disconnect,
  2526. .id_table = usb_audio_ids,
  2527. };
  2528. static void *find_descriptor(void *descstart, unsigned int desclen, void *after,
  2529. u8 dtype, int iface, int altsetting)
  2530. {
  2531. u8 *p, *end, *next;
  2532. int ifc = -1, as = -1;
  2533. p = descstart;
  2534. end = p + desclen;
  2535. for (; p < end;) {
  2536. if (p[0] < 2)
  2537. return NULL;
  2538. next = p + p[0];
  2539. if (next > end)
  2540. return NULL;
  2541. if (p[1] == USB_DT_INTERFACE) {
  2542. /* minimum length of interface descriptor */
  2543. if (p[0] < 9)
  2544. return NULL;
  2545. ifc = p[2];
  2546. as = p[3];
  2547. }
  2548. if (p[1] == dtype && (!after || (void *)p > after) &&
  2549. (iface == -1 || iface == ifc) && (altsetting == -1 || altsetting == as)) {
  2550. return p;
  2551. }
  2552. p = next;
  2553. }
  2554. return NULL;
  2555. }
  2556. static void *find_csinterface_descriptor(void *descstart, unsigned int desclen, void *after, u8 dsubtype, int iface, int altsetting)
  2557. {
  2558. unsigned char *p;
  2559. p = find_descriptor(descstart, desclen, after, USB_DT_CS_INTERFACE, iface, altsetting);
  2560. while (p) {
  2561. if (p[0] >= 3 && p[2] == dsubtype)
  2562. return p;
  2563. p = find_descriptor(descstart, desclen, p, USB_DT_CS_INTERFACE, iface, altsetting);
  2564. }
  2565. return NULL;
  2566. }
  2567. static void *find_audiocontrol_unit(void *descstart, unsigned int desclen, void *after, u8 unit, int iface)
  2568. {
  2569. unsigned char *p;
  2570. p = find_descriptor(descstart, desclen, after, USB_DT_CS_INTERFACE, iface, -1);
  2571. while (p) {
  2572. if (p[0] >= 4 && p[2] >= INPUT_TERMINAL && p[2] <= EXTENSION_UNIT && p[3] == unit)
  2573. return p;
  2574. p = find_descriptor(descstart, desclen, p, USB_DT_CS_INTERFACE, iface, -1);
  2575. }
  2576. return NULL;
  2577. }
  2578. static void usb_audio_parsestreaming(struct usb_audio_state *s, unsigned char *buffer, unsigned int buflen, int asifin, int asifout)
  2579. {
  2580. struct usb_device *dev = s->usbdev;
  2581. struct usb_audiodev *as;
  2582. struct usb_host_interface *alts;
  2583. struct usb_interface *iface;
  2584. struct audioformat *fp;
  2585. unsigned char *fmt, *csep;
  2586. unsigned int i, j, k, format, idx;
  2587. if (!(as = kmalloc(sizeof(struct usb_audiodev), GFP_KERNEL)))
  2588. return;
  2589. memset(as, 0, sizeof(struct usb_audiodev));
  2590. init_waitqueue_head(&as->usbin.dma.wait);
  2591. init_waitqueue_head(&as->usbout.dma.wait);
  2592. spin_lock_init(&as->lock);
  2593. as->usbin.durb[0].urb = usb_alloc_urb (DESCFRAMES, GFP_KERNEL);
  2594. as->usbin.durb[1].urb = usb_alloc_urb (DESCFRAMES, GFP_KERNEL);
  2595. as->usbin.surb[0].urb = usb_alloc_urb (SYNCFRAMES, GFP_KERNEL);
  2596. as->usbin.surb[1].urb = usb_alloc_urb (SYNCFRAMES, GFP_KERNEL);
  2597. as->usbout.durb[0].urb = usb_alloc_urb (DESCFRAMES, GFP_KERNEL);
  2598. as->usbout.durb[1].urb = usb_alloc_urb (DESCFRAMES, GFP_KERNEL);
  2599. as->usbout.surb[0].urb = usb_alloc_urb (SYNCFRAMES, GFP_KERNEL);
  2600. as->usbout.surb[1].urb = usb_alloc_urb (SYNCFRAMES, GFP_KERNEL);
  2601. if ((!as->usbin.durb[0].urb) ||
  2602. (!as->usbin.durb[1].urb) ||
  2603. (!as->usbin.surb[0].urb) ||
  2604. (!as->usbin.surb[1].urb) ||
  2605. (!as->usbout.durb[0].urb) ||
  2606. (!as->usbout.durb[1].urb) ||
  2607. (!as->usbout.surb[0].urb) ||
  2608. (!as->usbout.surb[1].urb)) {
  2609. usb_free_urb(as->usbin.durb[0].urb);
  2610. usb_free_urb(as->usbin.durb[1].urb);
  2611. usb_free_urb(as->usbin.surb[0].urb);
  2612. usb_free_urb(as->usbin.surb[1].urb);
  2613. usb_free_urb(as->usbout.durb[0].urb);
  2614. usb_free_urb(as->usbout.durb[1].urb);
  2615. usb_free_urb(as->usbout.surb[0].urb);
  2616. usb_free_urb(as->usbout.surb[1].urb);
  2617. kfree(as);
  2618. return;
  2619. }
  2620. as->state = s;
  2621. as->usbin.interface = asifin;
  2622. as->usbout.interface = asifout;
  2623. /* search for input formats */
  2624. if (asifin >= 0) {
  2625. as->usbin.flags = FLG_CONNECTED;
  2626. iface = usb_ifnum_to_if(dev, asifin);
  2627. for (idx = 0; idx < iface->num_altsetting; idx++) {
  2628. alts = &iface->altsetting[idx];
  2629. i = alts->desc.bAlternateSetting;
  2630. if (alts->desc.bInterfaceClass != USB_CLASS_AUDIO || alts->desc.bInterfaceSubClass != 2)
  2631. continue;
  2632. if (alts->desc.bNumEndpoints < 1) {
  2633. if (i != 0) { /* altsetting 0 has no endpoints (Section B.3.4.1) */
  2634. printk(KERN_ERR "usbaudio: device %u interface %u altsetting %u does not have an endpoint\n",
  2635. dev->devnum, asifin, i);
  2636. }
  2637. continue;
  2638. }
  2639. if ((alts->endpoint[0].desc.bmAttributes & 0x03) != 0x01 ||
  2640. !(alts->endpoint[0].desc.bEndpointAddress & 0x80)) {
  2641. printk(KERN_ERR "usbaudio: device %u interface %u altsetting %u first endpoint not isochronous in\n",
  2642. dev->devnum, asifin, i);
  2643. continue;
  2644. }
  2645. fmt = find_csinterface_descriptor(buffer, buflen, NULL, AS_GENERAL, asifin, i);
  2646. if (!fmt) {
  2647. printk(KERN_ERR "usbaudio: device %u interface %u altsetting %u FORMAT_TYPE descriptor not found\n",
  2648. dev->devnum, asifin, i);
  2649. continue;
  2650. }
  2651. if (fmt[0] < 7 || fmt[6] != 0 || (fmt[5] != 1 && fmt[5] != 2)) {
  2652. printk(KERN_ERR "usbaudio: device %u interface %u altsetting %u format not supported\n",
  2653. dev->devnum, asifin, i);
  2654. continue;
  2655. }
  2656. format = (fmt[5] == 2) ? (AFMT_U16_LE | AFMT_U8) : (AFMT_S16_LE | AFMT_S8);
  2657. fmt = find_csinterface_descriptor(buffer, buflen, NULL, FORMAT_TYPE, asifin, i);
  2658. if (!fmt) {
  2659. printk(KERN_ERR "usbaudio: device %u interface %u altsetting %u FORMAT_TYPE descriptor not found\n",
  2660. dev->devnum, asifin, i);
  2661. continue;
  2662. }
  2663. if (fmt[0] < 8+3*(fmt[7] ? fmt[7] : 2) || fmt[3] != 1) {
  2664. printk(KERN_ERR "usbaudio: device %u interface %u altsetting %u FORMAT_TYPE descriptor not supported\n",
  2665. dev->devnum, asifin, i);
  2666. continue;
  2667. }
  2668. if (fmt[4] < 1 || fmt[4] > 2 || fmt[5] < 1 || fmt[5] > 2) {
  2669. printk(KERN_ERR "usbaudio: device %u interface %u altsetting %u unsupported channels %u framesize %u\n",
  2670. dev->devnum, asifin, i, fmt[4], fmt[5]);
  2671. continue;
  2672. }
  2673. csep = find_descriptor(buffer, buflen, NULL, USB_DT_CS_ENDPOINT, asifin, i);
  2674. if (!csep || csep[0] < 7 || csep[2] != EP_GENERAL) {
  2675. printk(KERN_ERR "usbaudio: device %u interface %u altsetting %u no or invalid class specific endpoint descriptor\n",
  2676. dev->devnum, asifin, i);
  2677. continue;
  2678. }
  2679. if (as->numfmtin >= MAXFORMATS)
  2680. continue;
  2681. fp = &as->fmtin[as->numfmtin++];
  2682. if (fmt[5] == 2)
  2683. format &= (AFMT_U16_LE | AFMT_S16_LE);
  2684. else
  2685. format &= (AFMT_U8 | AFMT_S8);
  2686. if (fmt[4] == 2)
  2687. format |= AFMT_STEREO;
  2688. fp->format = format;
  2689. fp->altsetting = i;
  2690. fp->sratelo = fp->sratehi = fmt[8] | (fmt[9] << 8) | (fmt[10] << 16);
  2691. printk(KERN_INFO "usbaudio: valid input sample rate %u\n", fp->sratelo);
  2692. for (j = fmt[7] ? (fmt[7]-1) : 1; j > 0; j--) {
  2693. k = fmt[8+3*j] | (fmt[9+3*j] << 8) | (fmt[10+3*j] << 16);
  2694. printk(KERN_INFO "usbaudio: valid input sample rate %u\n", k);
  2695. if (k > fp->sratehi)
  2696. fp->sratehi = k;
  2697. if (k < fp->sratelo)
  2698. fp->sratelo = k;
  2699. }
  2700. fp->attributes = csep[3];
  2701. printk(KERN_INFO "usbaudio: device %u interface %u altsetting %u: format 0x%08x sratelo %u sratehi %u attributes 0x%02x\n",
  2702. dev->devnum, asifin, i, fp->format, fp->sratelo, fp->sratehi, fp->attributes);
  2703. }
  2704. }
  2705. /* search for output formats */
  2706. if (asifout >= 0) {
  2707. as->usbout.flags = FLG_CONNECTED;
  2708. iface = usb_ifnum_to_if(dev, asifout);
  2709. for (idx = 0; idx < iface->num_altsetting; idx++) {
  2710. alts = &iface->altsetting[idx];
  2711. i = alts->desc.bAlternateSetting;
  2712. if (alts->desc.bInterfaceClass != USB_CLASS_AUDIO || alts->desc.bInterfaceSubClass != 2)
  2713. continue;
  2714. if (alts->desc.bNumEndpoints < 1) {
  2715. /* altsetting 0 should never have iso EPs */
  2716. if (i != 0)
  2717. printk(KERN_ERR "usbaudio: device %u interface %u altsetting %u does not have an endpoint\n",
  2718. dev->devnum, asifout, i);
  2719. continue;
  2720. }
  2721. if ((alts->endpoint[0].desc.bmAttributes & 0x03) != 0x01 ||
  2722. (alts->endpoint[0].desc.bEndpointAddress & 0x80)) {
  2723. printk(KERN_ERR "usbaudio: device %u interface %u altsetting %u first endpoint not isochronous out\n",
  2724. dev->devnum, asifout, i);
  2725. continue;
  2726. }
  2727. /* See USB audio formats manual, section 2 */
  2728. fmt = find_csinterface_descriptor(buffer, buflen, NULL, AS_GENERAL, asifout, i);
  2729. if (!fmt) {
  2730. printk(KERN_ERR "usbaudio: device %u interface %u altsetting %u FORMAT_TYPE descriptor not found\n",
  2731. dev->devnum, asifout, i);
  2732. continue;
  2733. }
  2734. if (fmt[0] < 7 || fmt[6] != 0 || (fmt[5] != 1 && fmt[5] != 2)) {
  2735. printk(KERN_ERR "usbaudio: device %u interface %u altsetting %u format not supported\n",
  2736. dev->devnum, asifout, i);
  2737. continue;
  2738. }
  2739. format = (fmt[5] == 2) ? (AFMT_U16_LE | AFMT_U8) : (AFMT_S16_LE | AFMT_S8);
  2740. /* Dallas DS4201 workaround */
  2741. if (le16_to_cpu(dev->descriptor.idVendor) == 0x04fa &&
  2742. le16_to_cpu(dev->descriptor.idProduct) == 0x4201)
  2743. format = (AFMT_S16_LE | AFMT_S8);
  2744. fmt = find_csinterface_descriptor(buffer, buflen, NULL, FORMAT_TYPE, asifout, i);
  2745. if (!fmt) {
  2746. printk(KERN_ERR "usbaudio: device %u interface %u altsetting %u FORMAT_TYPE descriptor not found\n",
  2747. dev->devnum, asifout, i);
  2748. continue;
  2749. }
  2750. if (fmt[0] < 8+3*(fmt[7] ? fmt[7] : 2) || fmt[3] != 1) {
  2751. printk(KERN_ERR "usbaudio: device %u interface %u altsetting %u FORMAT_TYPE descriptor not supported\n",
  2752. dev->devnum, asifout, i);
  2753. continue;
  2754. }
  2755. if (fmt[4] < 1 || fmt[4] > 2 || fmt[5] < 1 || fmt[5] > 2) {
  2756. printk(KERN_ERR "usbaudio: device %u interface %u altsetting %u unsupported channels %u framesize %u\n",
  2757. dev->devnum, asifout, i, fmt[4], fmt[5]);
  2758. continue;
  2759. }
  2760. csep = find_descriptor(buffer, buflen, NULL, USB_DT_CS_ENDPOINT, asifout, i);
  2761. if (!csep || csep[0] < 7 || csep[2] != EP_GENERAL) {
  2762. printk(KERN_ERR "usbaudio: device %u interface %u altsetting %u no or invalid class specific endpoint descriptor\n",
  2763. dev->devnum, asifout, i);
  2764. continue;
  2765. }
  2766. if (as->numfmtout >= MAXFORMATS)
  2767. continue;
  2768. fp = &as->fmtout[as->numfmtout++];
  2769. if (fmt[5] == 2)
  2770. format &= (AFMT_U16_LE | AFMT_S16_LE);
  2771. else
  2772. format &= (AFMT_U8 | AFMT_S8);
  2773. if (fmt[4] == 2)
  2774. format |= AFMT_STEREO;
  2775. fp->format = format;
  2776. fp->altsetting = i;
  2777. fp->sratelo = fp->sratehi = fmt[8] | (fmt[9] << 8) | (fmt[10] << 16);
  2778. printk(KERN_INFO "usbaudio: valid output sample rate %u\n", fp->sratelo);
  2779. for (j = fmt[7] ? (fmt[7]-1) : 1; j > 0; j--) {
  2780. k = fmt[8+3*j] | (fmt[9+3*j] << 8) | (fmt[10+3*j] << 16);
  2781. printk(KERN_INFO "usbaudio: valid output sample rate %u\n", k);
  2782. if (k > fp->sratehi)
  2783. fp->sratehi = k;
  2784. if (k < fp->sratelo)
  2785. fp->sratelo = k;
  2786. }
  2787. fp->attributes = csep[3];
  2788. printk(KERN_INFO "usbaudio: device %u interface %u altsetting %u: format 0x%08x sratelo %u sratehi %u attributes 0x%02x\n",
  2789. dev->devnum, asifout, i, fp->format, fp->sratelo, fp->sratehi, fp->attributes);
  2790. }
  2791. }
  2792. if (as->numfmtin == 0 && as->numfmtout == 0) {
  2793. usb_free_urb(as->usbin.durb[0].urb);
  2794. usb_free_urb(as->usbin.durb[1].urb);
  2795. usb_free_urb(as->usbin.surb[0].urb);
  2796. usb_free_urb(as->usbin.surb[1].urb);
  2797. usb_free_urb(as->usbout.durb[0].urb);
  2798. usb_free_urb(as->usbout.durb[1].urb);
  2799. usb_free_urb(as->usbout.surb[0].urb);
  2800. usb_free_urb(as->usbout.surb[1].urb);
  2801. kfree(as);
  2802. return;
  2803. }
  2804. if ((as->dev_audio = register_sound_dsp(&usb_audio_fops, -1)) < 0) {
  2805. printk(KERN_ERR "usbaudio: cannot register dsp\n");
  2806. usb_free_urb(as->usbin.durb[0].urb);
  2807. usb_free_urb(as->usbin.durb[1].urb);
  2808. usb_free_urb(as->usbin.surb[0].urb);
  2809. usb_free_urb(as->usbin.surb[1].urb);
  2810. usb_free_urb(as->usbout.durb[0].urb);
  2811. usb_free_urb(as->usbout.durb[1].urb);
  2812. usb_free_urb(as->usbout.surb[0].urb);
  2813. usb_free_urb(as->usbout.surb[1].urb);
  2814. kfree(as);
  2815. return;
  2816. }
  2817. printk(KERN_INFO "usbaudio: registered dsp 14,%d\n", as->dev_audio);
  2818. /* everything successful */
  2819. list_add_tail(&as->list, &s->audiolist);
  2820. }
  2821. struct consmixstate {
  2822. struct usb_audio_state *s;
  2823. unsigned char *buffer;
  2824. unsigned int buflen;
  2825. unsigned int ctrlif;
  2826. struct mixerchannel mixch[SOUND_MIXER_NRDEVICES];
  2827. unsigned int nrmixch;
  2828. unsigned int mixchmask;
  2829. unsigned long unitbitmap[32/sizeof(unsigned long)];
  2830. /* return values */
  2831. unsigned int nrchannels;
  2832. unsigned int termtype;
  2833. unsigned int chconfig;
  2834. };
  2835. static struct mixerchannel *getmixchannel(struct consmixstate *state, unsigned int nr)
  2836. {
  2837. struct mixerchannel *c;
  2838. if (nr >= SOUND_MIXER_NRDEVICES) {
  2839. printk(KERN_ERR "usbaudio: invalid OSS mixer channel %u\n", nr);
  2840. return NULL;
  2841. }
  2842. if (!(state->mixchmask & (1 << nr))) {
  2843. printk(KERN_WARNING "usbaudio: OSS mixer channel %u already in use\n", nr);
  2844. return NULL;
  2845. }
  2846. c = &state->mixch[state->nrmixch++];
  2847. c->osschannel = nr;
  2848. state->mixchmask &= ~(1 << nr);
  2849. return c;
  2850. }
  2851. static unsigned int getvolchannel(struct consmixstate *state)
  2852. {
  2853. unsigned int u;
  2854. if ((state->termtype & 0xff00) == 0x0000 && (state->mixchmask & SOUND_MASK_VOLUME))
  2855. return SOUND_MIXER_VOLUME;
  2856. if ((state->termtype & 0xff00) == 0x0100) {
  2857. if (state->mixchmask & SOUND_MASK_PCM)
  2858. return SOUND_MIXER_PCM;
  2859. if (state->mixchmask & SOUND_MASK_ALTPCM)
  2860. return SOUND_MIXER_ALTPCM;
  2861. }
  2862. if ((state->termtype & 0xff00) == 0x0200 && (state->mixchmask & SOUND_MASK_MIC))
  2863. return SOUND_MIXER_MIC;
  2864. if ((state->termtype & 0xff00) == 0x0300 && (state->mixchmask & SOUND_MASK_SPEAKER))
  2865. return SOUND_MIXER_SPEAKER;
  2866. if ((state->termtype & 0xff00) == 0x0500) {
  2867. if (state->mixchmask & SOUND_MASK_PHONEIN)
  2868. return SOUND_MIXER_PHONEIN;
  2869. if (state->mixchmask & SOUND_MASK_PHONEOUT)
  2870. return SOUND_MIXER_PHONEOUT;
  2871. }
  2872. if (state->termtype >= 0x710 && state->termtype <= 0x711 && (state->mixchmask & SOUND_MASK_RADIO))
  2873. return SOUND_MIXER_RADIO;
  2874. if (state->termtype >= 0x709 && state->termtype <= 0x70f && (state->mixchmask & SOUND_MASK_VIDEO))
  2875. return SOUND_MIXER_VIDEO;
  2876. u = ffs(state->mixchmask & (SOUND_MASK_LINE | SOUND_MASK_CD | SOUND_MASK_LINE1 | SOUND_MASK_LINE2 | SOUND_MASK_LINE3 |
  2877. SOUND_MASK_DIGITAL1 | SOUND_MASK_DIGITAL2 | SOUND_MASK_DIGITAL3));
  2878. return u-1;
  2879. }
  2880. static void prepmixch(struct consmixstate *state)
  2881. {
  2882. struct usb_device *dev = state->s->usbdev;
  2883. struct mixerchannel *ch;
  2884. unsigned char *buf;
  2885. __s16 v1;
  2886. unsigned int v2, v3;
  2887. if (!state->nrmixch || state->nrmixch > SOUND_MIXER_NRDEVICES)
  2888. return;
  2889. buf = kmalloc(sizeof(*buf) * 2, GFP_KERNEL);
  2890. if (!buf) {
  2891. printk(KERN_ERR "prepmixch: out of memory\n") ;
  2892. return;
  2893. }
  2894. ch = &state->mixch[state->nrmixch-1];
  2895. switch (ch->selector) {
  2896. case 0: /* mixer unit request */
  2897. if (usb_control_msg(dev, usb_rcvctrlpipe(dev, 0), GET_MIN, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  2898. (ch->chnum << 8) | 1, state->ctrlif | (ch->unitid << 8), buf, 2, 1000) < 0)
  2899. goto err;
  2900. ch->minval = buf[0] | (buf[1] << 8);
  2901. if (usb_control_msg(dev, usb_rcvctrlpipe(dev, 0), GET_MAX, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  2902. (ch->chnum << 8) | 1, state->ctrlif | (ch->unitid << 8), buf, 2, 1000) < 0)
  2903. goto err;
  2904. ch->maxval = buf[0] | (buf[1] << 8);
  2905. v2 = ch->maxval - ch->minval;
  2906. if (!v2)
  2907. v2 = 1;
  2908. if (usb_control_msg(dev, usb_rcvctrlpipe(dev, 0), GET_CUR, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  2909. (ch->chnum << 8) | 1, state->ctrlif | (ch->unitid << 8), buf, 2, 1000) < 0)
  2910. goto err;
  2911. v1 = buf[0] | (buf[1] << 8);
  2912. v3 = v1 - ch->minval;
  2913. v3 = 100 * v3 / v2;
  2914. if (v3 > 100)
  2915. v3 = 100;
  2916. ch->value = v3;
  2917. if (ch->flags & (MIXFLG_STEREOIN | MIXFLG_STEREOOUT)) {
  2918. if (usb_control_msg(dev, usb_rcvctrlpipe(dev, 0), GET_CUR, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  2919. ((ch->chnum + !!(ch->flags & MIXFLG_STEREOIN)) << 8) | (1 + !!(ch->flags & MIXFLG_STEREOOUT)),
  2920. state->ctrlif | (ch->unitid << 8), buf, 2, 1000) < 0)
  2921. goto err;
  2922. v1 = buf[0] | (buf[1] << 8);
  2923. v3 = v1 - ch->minval;
  2924. v3 = 100 * v3 / v2;
  2925. if (v3 > 100)
  2926. v3 = 100;
  2927. }
  2928. ch->value |= v3 << 8;
  2929. break;
  2930. /* various feature unit controls */
  2931. case VOLUME_CONTROL:
  2932. if (usb_control_msg(dev, usb_rcvctrlpipe(dev, 0), GET_MIN, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  2933. (ch->selector << 8) | ch->chnum, state->ctrlif | (ch->unitid << 8), buf, 2, 1000) < 0)
  2934. goto err;
  2935. ch->minval = buf[0] | (buf[1] << 8);
  2936. if (usb_control_msg(dev, usb_rcvctrlpipe(dev, 0), GET_MAX, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  2937. (ch->selector << 8) | ch->chnum, state->ctrlif | (ch->unitid << 8), buf, 2, 1000) < 0)
  2938. goto err;
  2939. ch->maxval = buf[0] | (buf[1] << 8);
  2940. if (usb_control_msg(dev, usb_rcvctrlpipe(dev, 0), GET_CUR, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  2941. (ch->selector << 8) | ch->chnum, state->ctrlif | (ch->unitid << 8), buf, 2, 1000) < 0)
  2942. goto err;
  2943. v1 = buf[0] | (buf[1] << 8);
  2944. v2 = ch->maxval - ch->minval;
  2945. v3 = v1 - ch->minval;
  2946. if (!v2)
  2947. v2 = 1;
  2948. v3 = 100 * v3 / v2;
  2949. if (v3 > 100)
  2950. v3 = 100;
  2951. ch->value = v3;
  2952. if (ch->flags & (MIXFLG_STEREOIN | MIXFLG_STEREOOUT)) {
  2953. if (usb_control_msg(dev, usb_rcvctrlpipe(dev, 0), GET_CUR, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  2954. (ch->selector << 8) | (ch->chnum + 1), state->ctrlif | (ch->unitid << 8), buf, 2, 1000) < 0)
  2955. goto err;
  2956. v1 = buf[0] | (buf[1] << 8);
  2957. v3 = v1 - ch->minval;
  2958. v3 = 100 * v3 / v2;
  2959. if (v3 > 100)
  2960. v3 = 100;
  2961. }
  2962. ch->value |= v3 << 8;
  2963. break;
  2964. case BASS_CONTROL:
  2965. case MID_CONTROL:
  2966. case TREBLE_CONTROL:
  2967. if (usb_control_msg(dev, usb_rcvctrlpipe(dev, 0), GET_MIN, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  2968. (ch->selector << 8) | ch->chnum, state->ctrlif | (ch->unitid << 8), buf, 1, 1000) < 0)
  2969. goto err;
  2970. ch->minval = buf[0] << 8;
  2971. if (usb_control_msg(dev, usb_rcvctrlpipe(dev, 0), GET_MAX, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  2972. (ch->selector << 8) | ch->chnum, state->ctrlif | (ch->unitid << 8), buf, 1, 1000) < 0)
  2973. goto err;
  2974. ch->maxval = buf[0] << 8;
  2975. if (usb_control_msg(dev, usb_rcvctrlpipe(dev, 0), GET_CUR, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  2976. (ch->selector << 8) | ch->chnum, state->ctrlif | (ch->unitid << 8), buf, 1, 1000) < 0)
  2977. goto err;
  2978. v1 = buf[0] << 8;
  2979. v2 = ch->maxval - ch->minval;
  2980. v3 = v1 - ch->minval;
  2981. if (!v2)
  2982. v2 = 1;
  2983. v3 = 100 * v3 / v2;
  2984. if (v3 > 100)
  2985. v3 = 100;
  2986. ch->value = v3;
  2987. if (ch->flags & (MIXFLG_STEREOIN | MIXFLG_STEREOOUT)) {
  2988. if (usb_control_msg(dev, usb_rcvctrlpipe(dev, 0), GET_CUR, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  2989. (ch->selector << 8) | (ch->chnum + 1), state->ctrlif | (ch->unitid << 8), buf, 1, 1000) < 0)
  2990. goto err;
  2991. v1 = buf[0] << 8;
  2992. v3 = v1 - ch->minval;
  2993. v3 = 100 * v3 / v2;
  2994. if (v3 > 100)
  2995. v3 = 100;
  2996. }
  2997. ch->value |= v3 << 8;
  2998. break;
  2999. default:
  3000. goto err;
  3001. }
  3002. freebuf:
  3003. kfree(buf);
  3004. return;
  3005. err:
  3006. printk(KERN_ERR "usbaudio: mixer request device %u if %u unit %u ch %u selector %u failed\n",
  3007. dev->devnum, state->ctrlif, ch->unitid, ch->chnum, ch->selector);
  3008. if (state->nrmixch)
  3009. state->nrmixch--;
  3010. goto freebuf;
  3011. }
  3012. static void usb_audio_recurseunit(struct consmixstate *state, unsigned char unitid);
  3013. static inline int checkmixbmap(unsigned char *bmap, unsigned char flg, unsigned int inidx, unsigned int numoch)
  3014. {
  3015. unsigned int idx;
  3016. idx = inidx*numoch;
  3017. if (!(bmap[-(idx >> 3)] & (0x80 >> (idx & 7))))
  3018. return 0;
  3019. if (!(flg & (MIXFLG_STEREOIN | MIXFLG_STEREOOUT)))
  3020. return 1;
  3021. idx = (inidx+!!(flg & MIXFLG_STEREOIN))*numoch+!!(flg & MIXFLG_STEREOOUT);
  3022. if (!(bmap[-(idx >> 3)] & (0x80 >> (idx & 7))))
  3023. return 0;
  3024. return 1;
  3025. }
  3026. static void usb_audio_mixerunit(struct consmixstate *state, unsigned char *mixer)
  3027. {
  3028. unsigned int nroutch = mixer[5+mixer[4]];
  3029. unsigned int chidx[SOUND_MIXER_NRDEVICES+1];
  3030. unsigned int termt[SOUND_MIXER_NRDEVICES];
  3031. unsigned char flg = (nroutch >= 2) ? MIXFLG_STEREOOUT : 0;
  3032. unsigned char *bmap = &mixer[9+mixer[4]];
  3033. unsigned int bmapsize;
  3034. struct mixerchannel *ch;
  3035. unsigned int i;
  3036. if (!mixer[4]) {
  3037. printk(KERN_ERR "usbaudio: unit %u invalid MIXER_UNIT descriptor\n", mixer[3]);
  3038. return;
  3039. }
  3040. if (mixer[4] > SOUND_MIXER_NRDEVICES) {
  3041. printk(KERN_ERR "usbaudio: mixer unit %u: too many input pins\n", mixer[3]);
  3042. return;
  3043. }
  3044. chidx[0] = 0;
  3045. for (i = 0; i < mixer[4]; i++) {
  3046. usb_audio_recurseunit(state, mixer[5+i]);
  3047. chidx[i+1] = chidx[i] + state->nrchannels;
  3048. termt[i] = state->termtype;
  3049. }
  3050. state->termtype = 0;
  3051. state->chconfig = mixer[6+mixer[4]] | (mixer[7+mixer[4]] << 8);
  3052. bmapsize = (nroutch * chidx[mixer[4]] + 7) >> 3;
  3053. bmap += bmapsize - 1;
  3054. if (mixer[0] < 10+mixer[4]+bmapsize) {
  3055. printk(KERN_ERR "usbaudio: unit %u invalid MIXER_UNIT descriptor (bitmap too small)\n", mixer[3]);
  3056. return;
  3057. }
  3058. for (i = 0; i < mixer[4]; i++) {
  3059. state->termtype = termt[i];
  3060. if (chidx[i+1]-chidx[i] >= 2) {
  3061. flg |= MIXFLG_STEREOIN;
  3062. if (checkmixbmap(bmap, flg, chidx[i], nroutch)) {
  3063. ch = getmixchannel(state, getvolchannel(state));
  3064. if (ch) {
  3065. ch->unitid = mixer[3];
  3066. ch->selector = 0;
  3067. ch->chnum = chidx[i]+1;
  3068. ch->flags = flg;
  3069. prepmixch(state);
  3070. }
  3071. continue;
  3072. }
  3073. }
  3074. flg &= ~MIXFLG_STEREOIN;
  3075. if (checkmixbmap(bmap, flg, chidx[i], nroutch)) {
  3076. ch = getmixchannel(state, getvolchannel(state));
  3077. if (ch) {
  3078. ch->unitid = mixer[3];
  3079. ch->selector = 0;
  3080. ch->chnum = chidx[i]+1;
  3081. ch->flags = flg;
  3082. prepmixch(state);
  3083. }
  3084. }
  3085. }
  3086. state->termtype = 0;
  3087. }
  3088. static struct mixerchannel *slctsrc_findunit(struct consmixstate *state, __u8 unitid)
  3089. {
  3090. unsigned int i;
  3091. for (i = 0; i < state->nrmixch; i++)
  3092. if (state->mixch[i].unitid == unitid)
  3093. return &state->mixch[i];
  3094. return NULL;
  3095. }
  3096. static void usb_audio_selectorunit(struct consmixstate *state, unsigned char *selector)
  3097. {
  3098. unsigned int chnum, i, mixch;
  3099. struct mixerchannel *mch;
  3100. if (!selector[4]) {
  3101. printk(KERN_ERR "usbaudio: unit %u invalid SELECTOR_UNIT descriptor\n", selector[3]);
  3102. return;
  3103. }
  3104. mixch = state->nrmixch;
  3105. usb_audio_recurseunit(state, selector[5]);
  3106. if (state->nrmixch != mixch) {
  3107. mch = &state->mixch[state->nrmixch-1];
  3108. mch->slctunitid = selector[3] | (1 << 8);
  3109. } else if ((mch = slctsrc_findunit(state, selector[5]))) {
  3110. mch->slctunitid = selector[3] | (1 << 8);
  3111. } else {
  3112. printk(KERN_INFO "usbaudio: selector unit %u: ignoring channel 1\n", selector[3]);
  3113. }
  3114. chnum = state->nrchannels;
  3115. for (i = 1; i < selector[4]; i++) {
  3116. mixch = state->nrmixch;
  3117. usb_audio_recurseunit(state, selector[5+i]);
  3118. if (chnum != state->nrchannels) {
  3119. printk(KERN_ERR "usbaudio: selector unit %u: input pins with varying channel numbers\n", selector[3]);
  3120. state->termtype = 0;
  3121. state->chconfig = 0;
  3122. state->nrchannels = 0;
  3123. return;
  3124. }
  3125. if (state->nrmixch != mixch) {
  3126. mch = &state->mixch[state->nrmixch-1];
  3127. mch->slctunitid = selector[3] | ((i + 1) << 8);
  3128. } else if ((mch = slctsrc_findunit(state, selector[5+i]))) {
  3129. mch->slctunitid = selector[3] | ((i + 1) << 8);
  3130. } else {
  3131. printk(KERN_INFO "usbaudio: selector unit %u: ignoring channel %u\n", selector[3], i+1);
  3132. }
  3133. }
  3134. state->termtype = 0;
  3135. state->chconfig = 0;
  3136. }
  3137. /* in the future we might try to handle 3D etc. effect units */
  3138. static void usb_audio_processingunit(struct consmixstate *state, unsigned char *proc)
  3139. {
  3140. unsigned int i;
  3141. for (i = 0; i < proc[6]; i++)
  3142. usb_audio_recurseunit(state, proc[7+i]);
  3143. state->nrchannels = proc[7+proc[6]];
  3144. state->termtype = 0;
  3145. state->chconfig = proc[8+proc[6]] | (proc[9+proc[6]] << 8);
  3146. }
  3147. /* See Audio Class Spec, section 4.3.2.5 */
  3148. static void usb_audio_featureunit(struct consmixstate *state, unsigned char *ftr)
  3149. {
  3150. struct mixerchannel *ch;
  3151. unsigned short chftr, mchftr;
  3152. #if 0
  3153. struct usb_device *dev = state->s->usbdev;
  3154. unsigned char data[1];
  3155. #endif
  3156. unsigned char nr_logical_channels, i;
  3157. usb_audio_recurseunit(state, ftr[4]);
  3158. if (ftr[5] == 0 ) {
  3159. printk(KERN_ERR "usbaudio: wrong controls size in feature unit %u\n",ftr[3]);
  3160. return;
  3161. }
  3162. if (state->nrchannels == 0) {
  3163. printk(KERN_ERR "usbaudio: feature unit %u source has no channels\n", ftr[3]);
  3164. return;
  3165. }
  3166. if (state->nrchannels > 2)
  3167. printk(KERN_WARNING "usbaudio: feature unit %u: OSS mixer interface does not support more than 2 channels\n", ftr[3]);
  3168. nr_logical_channels=(ftr[0]-7)/ftr[5]-1;
  3169. if (nr_logical_channels != state->nrchannels) {
  3170. printk(KERN_WARNING "usbaudio: warning: found %d of %d logical channels.\n", state->nrchannels,nr_logical_channels);
  3171. if (state->nrchannels == 1 && nr_logical_channels==0) {
  3172. printk(KERN_INFO "usbaudio: assuming the channel found is the master channel (got a Philips camera?). Should be fine.\n");
  3173. } else if (state->nrchannels == 1 && nr_logical_channels==2) {
  3174. printk(KERN_INFO "usbaudio: assuming that a stereo channel connected directly to a mixer is missing in search (got Labtec headset?). Should be fine.\n");
  3175. state->nrchannels=nr_logical_channels;
  3176. } else {
  3177. printk(KERN_WARNING "usbaudio: no idea what's going on..., contact linux-usb-devel@lists.sourceforge.net\n");
  3178. }
  3179. }
  3180. /* There is always a master channel */
  3181. mchftr = ftr[6];
  3182. /* Binary AND over logical channels if they exist */
  3183. if (nr_logical_channels) {
  3184. chftr = ftr[6+ftr[5]];
  3185. for (i = 2; i <= nr_logical_channels; i++)
  3186. chftr &= ftr[6+i*ftr[5]];
  3187. } else {
  3188. chftr = 0;
  3189. }
  3190. /* volume control */
  3191. if (chftr & 2) {
  3192. ch = getmixchannel(state, getvolchannel(state));
  3193. if (ch) {
  3194. ch->unitid = ftr[3];
  3195. ch->selector = VOLUME_CONTROL;
  3196. ch->chnum = 1;
  3197. ch->flags = (state->nrchannels > 1) ? (MIXFLG_STEREOIN | MIXFLG_STEREOOUT) : 0;
  3198. prepmixch(state);
  3199. }
  3200. } else if (mchftr & 2) {
  3201. ch = getmixchannel(state, getvolchannel(state));
  3202. if (ch) {
  3203. ch->unitid = ftr[3];
  3204. ch->selector = VOLUME_CONTROL;
  3205. ch->chnum = 0;
  3206. ch->flags = 0;
  3207. prepmixch(state);
  3208. }
  3209. }
  3210. /* bass control */
  3211. if (chftr & 4) {
  3212. ch = getmixchannel(state, SOUND_MIXER_BASS);
  3213. if (ch) {
  3214. ch->unitid = ftr[3];
  3215. ch->selector = BASS_CONTROL;
  3216. ch->chnum = 1;
  3217. ch->flags = (state->nrchannels > 1) ? (MIXFLG_STEREOIN | MIXFLG_STEREOOUT) : 0;
  3218. prepmixch(state);
  3219. }
  3220. } else if (mchftr & 4) {
  3221. ch = getmixchannel(state, SOUND_MIXER_BASS);
  3222. if (ch) {
  3223. ch->unitid = ftr[3];
  3224. ch->selector = BASS_CONTROL;
  3225. ch->chnum = 0;
  3226. ch->flags = 0;
  3227. prepmixch(state);
  3228. }
  3229. }
  3230. /* treble control */
  3231. if (chftr & 16) {
  3232. ch = getmixchannel(state, SOUND_MIXER_TREBLE);
  3233. if (ch) {
  3234. ch->unitid = ftr[3];
  3235. ch->selector = TREBLE_CONTROL;
  3236. ch->chnum = 1;
  3237. ch->flags = (state->nrchannels > 1) ? (MIXFLG_STEREOIN | MIXFLG_STEREOOUT) : 0;
  3238. prepmixch(state);
  3239. }
  3240. } else if (mchftr & 16) {
  3241. ch = getmixchannel(state, SOUND_MIXER_TREBLE);
  3242. if (ch) {
  3243. ch->unitid = ftr[3];
  3244. ch->selector = TREBLE_CONTROL;
  3245. ch->chnum = 0;
  3246. ch->flags = 0;
  3247. prepmixch(state);
  3248. }
  3249. }
  3250. #if 0
  3251. /* if there are mute controls, unmute them */
  3252. /* does not seem to be necessary, and the Dallas chip does not seem to support the "all" channel (255) */
  3253. if ((chftr & 1) || (mchftr & 1)) {
  3254. printk(KERN_DEBUG "usbaudio: unmuting feature unit %u interface %u\n", ftr[3], state->ctrlif);
  3255. data[0] = 0;
  3256. if (usb_control_msg(dev, usb_sndctrlpipe(dev, 0), SET_CUR, USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_OUT,
  3257. (MUTE_CONTROL << 8) | 0xff, state->ctrlif | (ftr[3] << 8), data, 1, 1000) < 0)
  3258. printk(KERN_WARNING "usbaudio: failure to unmute feature unit %u interface %u\n", ftr[3], state->ctrlif);
  3259. }
  3260. #endif
  3261. }
  3262. static void usb_audio_recurseunit(struct consmixstate *state, unsigned char unitid)
  3263. {
  3264. unsigned char *p1;
  3265. unsigned int i, j;
  3266. if (test_and_set_bit(unitid, state->unitbitmap)) {
  3267. printk(KERN_INFO "usbaudio: mixer path revisits unit %d\n", unitid);
  3268. return;
  3269. }
  3270. p1 = find_audiocontrol_unit(state->buffer, state->buflen, NULL, unitid, state->ctrlif);
  3271. if (!p1) {
  3272. printk(KERN_ERR "usbaudio: unit %d not found!\n", unitid);
  3273. return;
  3274. }
  3275. state->nrchannels = 0;
  3276. state->termtype = 0;
  3277. state->chconfig = 0;
  3278. switch (p1[2]) {
  3279. case INPUT_TERMINAL:
  3280. if (p1[0] < 12) {
  3281. printk(KERN_ERR "usbaudio: unit %u: invalid INPUT_TERMINAL descriptor\n", unitid);
  3282. return;
  3283. }
  3284. state->nrchannels = p1[7];
  3285. state->termtype = p1[4] | (p1[5] << 8);
  3286. state->chconfig = p1[8] | (p1[9] << 8);
  3287. return;
  3288. case MIXER_UNIT:
  3289. if (p1[0] < 10 || p1[0] < 10+p1[4]) {
  3290. printk(KERN_ERR "usbaudio: unit %u: invalid MIXER_UNIT descriptor\n", unitid);
  3291. return;
  3292. }
  3293. usb_audio_mixerunit(state, p1);
  3294. return;
  3295. case SELECTOR_UNIT:
  3296. if (p1[0] < 6 || p1[0] < 6+p1[4]) {
  3297. printk(KERN_ERR "usbaudio: unit %u: invalid SELECTOR_UNIT descriptor\n", unitid);
  3298. return;
  3299. }
  3300. usb_audio_selectorunit(state, p1);
  3301. return;
  3302. case FEATURE_UNIT: /* See USB Audio Class Spec 4.3.2.5 */
  3303. if (p1[0] < 7 || p1[0] < 7+p1[5]) {
  3304. printk(KERN_ERR "usbaudio: unit %u: invalid FEATURE_UNIT descriptor\n", unitid);
  3305. return;
  3306. }
  3307. usb_audio_featureunit(state, p1);
  3308. return;
  3309. case PROCESSING_UNIT:
  3310. if (p1[0] < 13 || p1[0] < 13+p1[6] || p1[0] < 13+p1[6]+p1[11+p1[6]]) {
  3311. printk(KERN_ERR "usbaudio: unit %u: invalid PROCESSING_UNIT descriptor\n", unitid);
  3312. return;
  3313. }
  3314. usb_audio_processingunit(state, p1);
  3315. return;
  3316. case EXTENSION_UNIT:
  3317. if (p1[0] < 13 || p1[0] < 13+p1[6] || p1[0] < 13+p1[6]+p1[11+p1[6]]) {
  3318. printk(KERN_ERR "usbaudio: unit %u: invalid EXTENSION_UNIT descriptor\n", unitid);
  3319. return;
  3320. }
  3321. for (j = i = 0; i < p1[6]; i++) {
  3322. usb_audio_recurseunit(state, p1[7+i]);
  3323. if (!i)
  3324. j = state->termtype;
  3325. else if (j != state->termtype)
  3326. j = 0;
  3327. }
  3328. state->nrchannels = p1[7+p1[6]];
  3329. state->chconfig = p1[8+p1[6]] | (p1[9+p1[6]] << 8);
  3330. state->termtype = j;
  3331. return;
  3332. default:
  3333. printk(KERN_ERR "usbaudio: unit %u: unexpected type 0x%02x\n", unitid, p1[2]);
  3334. return;
  3335. }
  3336. }
  3337. static void usb_audio_constructmixer(struct usb_audio_state *s, unsigned char *buffer, unsigned int buflen, unsigned int ctrlif, unsigned char *oterm)
  3338. {
  3339. struct usb_mixerdev *ms;
  3340. struct consmixstate state;
  3341. memset(&state, 0, sizeof(state));
  3342. state.s = s;
  3343. state.nrmixch = 0;
  3344. state.mixchmask = ~0;
  3345. state.buffer = buffer;
  3346. state.buflen = buflen;
  3347. state.ctrlif = ctrlif;
  3348. set_bit(oterm[3], state.unitbitmap); /* mark terminal ID as visited */
  3349. printk(KERN_DEBUG "usbaudio: constructing mixer for Terminal %u type 0x%04x\n",
  3350. oterm[3], oterm[4] | (oterm[5] << 8));
  3351. usb_audio_recurseunit(&state, oterm[7]);
  3352. if (!state.nrmixch) {
  3353. printk(KERN_INFO "usbaudio: no mixer controls found for Terminal %u\n", oterm[3]);
  3354. return;
  3355. }
  3356. if (!(ms = kmalloc(sizeof(struct usb_mixerdev)+state.nrmixch*sizeof(struct mixerchannel), GFP_KERNEL)))
  3357. return;
  3358. memset(ms, 0, sizeof(struct usb_mixerdev));
  3359. memcpy(&ms->ch, &state.mixch, state.nrmixch*sizeof(struct mixerchannel));
  3360. ms->state = s;
  3361. ms->iface = ctrlif;
  3362. ms->numch = state.nrmixch;
  3363. if ((ms->dev_mixer = register_sound_mixer(&usb_mixer_fops, -1)) < 0) {
  3364. printk(KERN_ERR "usbaudio: cannot register mixer\n");
  3365. kfree(ms);
  3366. return;
  3367. }
  3368. printk(KERN_INFO "usbaudio: registered mixer 14,%d\n", ms->dev_mixer);
  3369. list_add_tail(&ms->list, &s->mixerlist);
  3370. }
  3371. /* arbitrary limit, we won't check more interfaces than this */
  3372. #define USB_MAXINTERFACES 32
  3373. static struct usb_audio_state *usb_audio_parsecontrol(struct usb_device *dev, unsigned char *buffer, unsigned int buflen, unsigned int ctrlif)
  3374. {
  3375. struct usb_audio_state *s;
  3376. struct usb_interface *iface;
  3377. struct usb_host_interface *alt;
  3378. unsigned char ifin[USB_MAXINTERFACES], ifout[USB_MAXINTERFACES];
  3379. unsigned char *p1;
  3380. unsigned int i, j, k, numifin = 0, numifout = 0;
  3381. if (!(s = kmalloc(sizeof(struct usb_audio_state), GFP_KERNEL)))
  3382. return NULL;
  3383. memset(s, 0, sizeof(struct usb_audio_state));
  3384. INIT_LIST_HEAD(&s->audiolist);
  3385. INIT_LIST_HEAD(&s->mixerlist);
  3386. s->usbdev = dev;
  3387. s->count = 1;
  3388. /* find audiocontrol interface */
  3389. if (!(p1 = find_csinterface_descriptor(buffer, buflen, NULL, HEADER, ctrlif, -1))) {
  3390. printk(KERN_ERR "usbaudio: device %d audiocontrol interface %u no HEADER found\n",
  3391. dev->devnum, ctrlif);
  3392. goto ret;
  3393. }
  3394. if (p1[0] < 8 + p1[7]) {
  3395. printk(KERN_ERR "usbaudio: device %d audiocontrol interface %u HEADER error\n",
  3396. dev->devnum, ctrlif);
  3397. goto ret;
  3398. }
  3399. if (!p1[7])
  3400. printk(KERN_INFO "usbaudio: device %d audiocontrol interface %u has no AudioStreaming and MidiStreaming interfaces\n",
  3401. dev->devnum, ctrlif);
  3402. for (i = 0; i < p1[7]; i++) {
  3403. j = p1[8+i];
  3404. iface = usb_ifnum_to_if(dev, j);
  3405. if (!iface) {
  3406. printk(KERN_ERR "usbaudio: device %d audiocontrol interface %u interface %u does not exist\n",
  3407. dev->devnum, ctrlif, j);
  3408. continue;
  3409. }
  3410. if (iface->num_altsetting == 1) {
  3411. printk(KERN_ERR "usbaudio: device %d audiocontrol interface %u has only 1 altsetting.\n", dev->devnum, ctrlif);
  3412. continue;
  3413. }
  3414. alt = usb_altnum_to_altsetting(iface, 0);
  3415. if (!alt) {
  3416. printk(KERN_ERR "usbaudio: device %d audiocontrol interface %u interface %u has no altsetting 0\n",
  3417. dev->devnum, ctrlif, j);
  3418. continue;
  3419. }
  3420. if (alt->desc.bInterfaceClass != USB_CLASS_AUDIO) {
  3421. printk(KERN_ERR "usbaudio: device %d audiocontrol interface %u interface %u is not an AudioClass interface\n",
  3422. dev->devnum, ctrlif, j);
  3423. continue;
  3424. }
  3425. if (alt->desc.bInterfaceSubClass == 3) {
  3426. printk(KERN_INFO "usbaudio: device %d audiocontrol interface %u interface %u MIDIStreaming not supported\n",
  3427. dev->devnum, ctrlif, j);
  3428. continue;
  3429. }
  3430. if (alt->desc.bInterfaceSubClass != 2) {
  3431. printk(KERN_ERR "usbaudio: device %d audiocontrol interface %u interface %u invalid AudioClass subtype\n",
  3432. dev->devnum, ctrlif, j);
  3433. continue;
  3434. }
  3435. if (alt->desc.bNumEndpoints > 0) {
  3436. /* Check all endpoints; should they all have a bandwidth of 0 ? */
  3437. for (k = 0; k < alt->desc.bNumEndpoints; k++) {
  3438. if (le16_to_cpu(alt->endpoint[k].desc.wMaxPacketSize) > 0) {
  3439. printk(KERN_ERR "usbaudio: device %d audiocontrol interface %u endpoint %d does not have 0 bandwidth at alt[0]\n", dev->devnum, ctrlif, k);
  3440. break;
  3441. }
  3442. }
  3443. if (k < alt->desc.bNumEndpoints)
  3444. continue;
  3445. }
  3446. alt = usb_altnum_to_altsetting(iface, 1);
  3447. if (!alt) {
  3448. printk(KERN_ERR "usbaudio: device %d audiocontrol interface %u interface %u has no altsetting 1\n",
  3449. dev->devnum, ctrlif, j);
  3450. continue;
  3451. }
  3452. if (alt->desc.bNumEndpoints < 1) {
  3453. printk(KERN_ERR "usbaudio: device %d audiocontrol interface %u interface %u has no endpoint\n",
  3454. dev->devnum, ctrlif, j);
  3455. continue;
  3456. }
  3457. /* note: this requires the data endpoint to be ep0 and the optional sync
  3458. ep to be ep1, which seems to be the case */
  3459. if (alt->endpoint[0].desc.bEndpointAddress & USB_DIR_IN) {
  3460. if (numifin < USB_MAXINTERFACES) {
  3461. ifin[numifin++] = j;
  3462. usb_driver_claim_interface(&usb_audio_driver, iface, (void *)-1);
  3463. }
  3464. } else {
  3465. if (numifout < USB_MAXINTERFACES) {
  3466. ifout[numifout++] = j;
  3467. usb_driver_claim_interface(&usb_audio_driver, iface, (void *)-1);
  3468. }
  3469. }
  3470. }
  3471. printk(KERN_INFO "usbaudio: device %d audiocontrol interface %u has %u input and %u output AudioStreaming interfaces\n",
  3472. dev->devnum, ctrlif, numifin, numifout);
  3473. for (i = 0; i < numifin && i < numifout; i++)
  3474. usb_audio_parsestreaming(s, buffer, buflen, ifin[i], ifout[i]);
  3475. for (j = i; j < numifin; j++)
  3476. usb_audio_parsestreaming(s, buffer, buflen, ifin[i], -1);
  3477. for (j = i; j < numifout; j++)
  3478. usb_audio_parsestreaming(s, buffer, buflen, -1, ifout[i]);
  3479. /* now walk through all OUTPUT_TERMINAL descriptors to search for mixers */
  3480. p1 = find_csinterface_descriptor(buffer, buflen, NULL, OUTPUT_TERMINAL, ctrlif, -1);
  3481. while (p1) {
  3482. if (p1[0] >= 9)
  3483. usb_audio_constructmixer(s, buffer, buflen, ctrlif, p1);
  3484. p1 = find_csinterface_descriptor(buffer, buflen, p1, OUTPUT_TERMINAL, ctrlif, -1);
  3485. }
  3486. ret:
  3487. if (list_empty(&s->audiolist) && list_empty(&s->mixerlist)) {
  3488. kfree(s);
  3489. return NULL;
  3490. }
  3491. /* everything successful */
  3492. down(&open_sem);
  3493. list_add_tail(&s->audiodev, &audiodevs);
  3494. up(&open_sem);
  3495. printk(KERN_DEBUG "usb_audio_parsecontrol: usb_audio_state at %p\n", s);
  3496. return s;
  3497. }
  3498. /* we only care for the currently active configuration */
  3499. static int usb_audio_probe(struct usb_interface *intf,
  3500. const struct usb_device_id *id)
  3501. {
  3502. struct usb_device *dev = interface_to_usbdev (intf);
  3503. struct usb_audio_state *s;
  3504. unsigned char *buffer;
  3505. unsigned int buflen;
  3506. #if 0
  3507. printk(KERN_DEBUG "usbaudio: Probing if %i: IC %x, ISC %x\n", ifnum,
  3508. config->interface[ifnum].altsetting[0].desc.bInterfaceClass,
  3509. config->interface[ifnum].altsetting[0].desc.bInterfaceSubClass);
  3510. #endif
  3511. /*
  3512. * audiocontrol interface found
  3513. * find which configuration number is active
  3514. */
  3515. buffer = dev->rawdescriptors[dev->actconfig - dev->config];
  3516. buflen = le16_to_cpu(dev->actconfig->desc.wTotalLength);
  3517. s = usb_audio_parsecontrol(dev, buffer, buflen, intf->altsetting->desc.bInterfaceNumber);
  3518. if (s) {
  3519. usb_set_intfdata (intf, s);
  3520. return 0;
  3521. }
  3522. return -ENODEV;
  3523. }
  3524. /* a revoke facility would make things simpler */
  3525. static void usb_audio_disconnect(struct usb_interface *intf)
  3526. {
  3527. struct usb_audio_state *s = usb_get_intfdata (intf);
  3528. struct usb_audiodev *as;
  3529. struct usb_mixerdev *ms;
  3530. if (!s)
  3531. return;
  3532. /* we get called with -1 for every audiostreaming interface registered */
  3533. if (s == (struct usb_audio_state *)-1) {
  3534. dprintk((KERN_DEBUG "usbaudio: note, usb_audio_disconnect called with -1\n"));
  3535. return;
  3536. }
  3537. if (!s->usbdev) {
  3538. dprintk((KERN_DEBUG "usbaudio: error, usb_audio_disconnect already called for %p!\n", s));
  3539. return;
  3540. }
  3541. down(&open_sem);
  3542. list_del_init(&s->audiodev);
  3543. s->usbdev = NULL;
  3544. usb_set_intfdata (intf, NULL);
  3545. /* deregister all audio and mixer devices, so no new processes can open this device */
  3546. list_for_each_entry(as, &s->audiolist, list) {
  3547. usbin_disc(as);
  3548. usbout_disc(as);
  3549. wake_up(&as->usbin.dma.wait);
  3550. wake_up(&as->usbout.dma.wait);
  3551. if (as->dev_audio >= 0) {
  3552. unregister_sound_dsp(as->dev_audio);
  3553. printk(KERN_INFO "usbaudio: unregister dsp 14,%d\n", as->dev_audio);
  3554. }
  3555. as->dev_audio = -1;
  3556. }
  3557. list_for_each_entry(ms, &s->mixerlist, list) {
  3558. if (ms->dev_mixer >= 0) {
  3559. unregister_sound_mixer(ms->dev_mixer);
  3560. printk(KERN_INFO "usbaudio: unregister mixer 14,%d\n", ms->dev_mixer);
  3561. }
  3562. ms->dev_mixer = -1;
  3563. }
  3564. release(s);
  3565. wake_up(&open_wait);
  3566. }
  3567. static int __init usb_audio_init(void)
  3568. {
  3569. int result = usb_register(&usb_audio_driver);
  3570. if (result == 0)
  3571. info(DRIVER_VERSION ":" DRIVER_DESC);
  3572. return result;
  3573. }
  3574. static void __exit usb_audio_cleanup(void)
  3575. {
  3576. usb_deregister(&usb_audio_driver);
  3577. }
  3578. module_init(usb_audio_init);
  3579. module_exit(usb_audio_cleanup);
  3580. MODULE_AUTHOR( DRIVER_AUTHOR );
  3581. MODULE_DESCRIPTION( DRIVER_DESC );
  3582. MODULE_LICENSE("GPL");