mixer.c 65 KB

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  1. /*
  2. * (Tentative) USB Audio Driver for ALSA
  3. *
  4. * Mixer control part
  5. *
  6. * Copyright (c) 2002 by Takashi Iwai <tiwai@suse.de>
  7. *
  8. * Many codes borrowed from audio.c by
  9. * Alan Cox (alan@lxorguk.ukuu.org.uk)
  10. * Thomas Sailer (sailer@ife.ee.ethz.ch)
  11. *
  12. *
  13. * This program is free software; you can redistribute it and/or modify
  14. * it under the terms of the GNU General Public License as published by
  15. * the Free Software Foundation; either version 2 of the License, or
  16. * (at your option) any later version.
  17. *
  18. * This program is distributed in the hope that it will be useful,
  19. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  20. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  21. * GNU General Public License for more details.
  22. *
  23. * You should have received a copy of the GNU General Public License
  24. * along with this program; if not, write to the Free Software
  25. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  26. *
  27. */
  28. /*
  29. * TODOs, for both the mixer and the streaming interfaces:
  30. *
  31. * - support for UAC2 effect units
  32. * - support for graphical equalizers
  33. * - RANGE and MEM set commands (UAC2)
  34. * - RANGE and MEM interrupt dispatchers (UAC2)
  35. * - audio channel clustering (UAC2)
  36. * - audio sample rate converter units (UAC2)
  37. * - proper handling of clock multipliers (UAC2)
  38. * - dispatch clock change notifications (UAC2)
  39. * - stop PCM streams which use a clock that became invalid
  40. * - stop PCM streams which use a clock selector that has changed
  41. * - parse available sample rates again when clock sources changed
  42. */
  43. #include <linux/bitops.h>
  44. #include <linux/init.h>
  45. #include <linux/list.h>
  46. #include <linux/slab.h>
  47. #include <linux/string.h>
  48. #include <linux/usb.h>
  49. #include <linux/usb/audio.h>
  50. #include <linux/usb/audio-v2.h>
  51. #include <sound/core.h>
  52. #include <sound/control.h>
  53. #include <sound/hwdep.h>
  54. #include <sound/info.h>
  55. #include <sound/tlv.h>
  56. #include "usbaudio.h"
  57. #include "mixer.h"
  58. #include "helper.h"
  59. #include "mixer_quirks.h"
  60. #include "power.h"
  61. #define MAX_ID_ELEMS 256
  62. struct usb_audio_term {
  63. int id;
  64. int type;
  65. int channels;
  66. unsigned int chconfig;
  67. int name;
  68. };
  69. struct usbmix_name_map;
  70. struct mixer_build {
  71. struct snd_usb_audio *chip;
  72. struct usb_mixer_interface *mixer;
  73. unsigned char *buffer;
  74. unsigned int buflen;
  75. DECLARE_BITMAP(unitbitmap, MAX_ID_ELEMS);
  76. struct usb_audio_term oterm;
  77. const struct usbmix_name_map *map;
  78. const struct usbmix_selector_map *selector_map;
  79. };
  80. /*E-mu 0202/0404/0204 eXtension Unit(XU) control*/
  81. enum {
  82. USB_XU_CLOCK_RATE = 0xe301,
  83. USB_XU_CLOCK_SOURCE = 0xe302,
  84. USB_XU_DIGITAL_IO_STATUS = 0xe303,
  85. USB_XU_DEVICE_OPTIONS = 0xe304,
  86. USB_XU_DIRECT_MONITORING = 0xe305,
  87. USB_XU_METERING = 0xe306
  88. };
  89. enum {
  90. USB_XU_CLOCK_SOURCE_SELECTOR = 0x02, /* clock source*/
  91. USB_XU_CLOCK_RATE_SELECTOR = 0x03, /* clock rate */
  92. USB_XU_DIGITAL_FORMAT_SELECTOR = 0x01, /* the spdif format */
  93. USB_XU_SOFT_LIMIT_SELECTOR = 0x03 /* soft limiter */
  94. };
  95. /*
  96. * manual mapping of mixer names
  97. * if the mixer topology is too complicated and the parsed names are
  98. * ambiguous, add the entries in usbmixer_maps.c.
  99. */
  100. #include "mixer_maps.c"
  101. static const struct usbmix_name_map *
  102. find_map(struct mixer_build *state, int unitid, int control)
  103. {
  104. const struct usbmix_name_map *p = state->map;
  105. if (!p)
  106. return NULL;
  107. for (p = state->map; p->id; p++) {
  108. if (p->id == unitid &&
  109. (!control || !p->control || control == p->control))
  110. return p;
  111. }
  112. return NULL;
  113. }
  114. /* get the mapped name if the unit matches */
  115. static int
  116. check_mapped_name(const struct usbmix_name_map *p, char *buf, int buflen)
  117. {
  118. if (!p || !p->name)
  119. return 0;
  120. buflen--;
  121. return strlcpy(buf, p->name, buflen);
  122. }
  123. /* check whether the control should be ignored */
  124. static inline int
  125. check_ignored_ctl(const struct usbmix_name_map *p)
  126. {
  127. if (!p || p->name || p->dB)
  128. return 0;
  129. return 1;
  130. }
  131. /* dB mapping */
  132. static inline void check_mapped_dB(const struct usbmix_name_map *p,
  133. struct usb_mixer_elem_info *cval)
  134. {
  135. if (p && p->dB) {
  136. cval->dBmin = p->dB->min;
  137. cval->dBmax = p->dB->max;
  138. cval->initialized = 1;
  139. }
  140. }
  141. /* get the mapped selector source name */
  142. static int check_mapped_selector_name(struct mixer_build *state, int unitid,
  143. int index, char *buf, int buflen)
  144. {
  145. const struct usbmix_selector_map *p;
  146. if (! state->selector_map)
  147. return 0;
  148. for (p = state->selector_map; p->id; p++) {
  149. if (p->id == unitid && index < p->count)
  150. return strlcpy(buf, p->names[index], buflen);
  151. }
  152. return 0;
  153. }
  154. /*
  155. * find an audio control unit with the given unit id
  156. */
  157. static void *find_audio_control_unit(struct mixer_build *state, unsigned char unit)
  158. {
  159. /* we just parse the header */
  160. struct uac_feature_unit_descriptor *hdr = NULL;
  161. while ((hdr = snd_usb_find_desc(state->buffer, state->buflen, hdr,
  162. USB_DT_CS_INTERFACE)) != NULL) {
  163. if (hdr->bLength >= 4 &&
  164. hdr->bDescriptorSubtype >= UAC_INPUT_TERMINAL &&
  165. hdr->bDescriptorSubtype <= UAC2_SAMPLE_RATE_CONVERTER &&
  166. hdr->bUnitID == unit)
  167. return hdr;
  168. }
  169. return NULL;
  170. }
  171. /*
  172. * copy a string with the given id
  173. */
  174. static int snd_usb_copy_string_desc(struct mixer_build *state, int index, char *buf, int maxlen)
  175. {
  176. int len = usb_string(state->chip->dev, index, buf, maxlen - 1);
  177. buf[len] = 0;
  178. return len;
  179. }
  180. /*
  181. * convert from the byte/word on usb descriptor to the zero-based integer
  182. */
  183. static int convert_signed_value(struct usb_mixer_elem_info *cval, int val)
  184. {
  185. switch (cval->val_type) {
  186. case USB_MIXER_BOOLEAN:
  187. return !!val;
  188. case USB_MIXER_INV_BOOLEAN:
  189. return !val;
  190. case USB_MIXER_U8:
  191. val &= 0xff;
  192. break;
  193. case USB_MIXER_S8:
  194. val &= 0xff;
  195. if (val >= 0x80)
  196. val -= 0x100;
  197. break;
  198. case USB_MIXER_U16:
  199. val &= 0xffff;
  200. break;
  201. case USB_MIXER_S16:
  202. val &= 0xffff;
  203. if (val >= 0x8000)
  204. val -= 0x10000;
  205. break;
  206. }
  207. return val;
  208. }
  209. /*
  210. * convert from the zero-based int to the byte/word for usb descriptor
  211. */
  212. static int convert_bytes_value(struct usb_mixer_elem_info *cval, int val)
  213. {
  214. switch (cval->val_type) {
  215. case USB_MIXER_BOOLEAN:
  216. return !!val;
  217. case USB_MIXER_INV_BOOLEAN:
  218. return !val;
  219. case USB_MIXER_S8:
  220. case USB_MIXER_U8:
  221. return val & 0xff;
  222. case USB_MIXER_S16:
  223. case USB_MIXER_U16:
  224. return val & 0xffff;
  225. }
  226. return 0; /* not reached */
  227. }
  228. static int get_relative_value(struct usb_mixer_elem_info *cval, int val)
  229. {
  230. if (! cval->res)
  231. cval->res = 1;
  232. if (val < cval->min)
  233. return 0;
  234. else if (val >= cval->max)
  235. return (cval->max - cval->min + cval->res - 1) / cval->res;
  236. else
  237. return (val - cval->min) / cval->res;
  238. }
  239. static int get_abs_value(struct usb_mixer_elem_info *cval, int val)
  240. {
  241. if (val < 0)
  242. return cval->min;
  243. if (! cval->res)
  244. cval->res = 1;
  245. val *= cval->res;
  246. val += cval->min;
  247. if (val > cval->max)
  248. return cval->max;
  249. return val;
  250. }
  251. /*
  252. * retrieve a mixer value
  253. */
  254. static int get_ctl_value_v1(struct usb_mixer_elem_info *cval, int request, int validx, int *value_ret)
  255. {
  256. struct snd_usb_audio *chip = cval->mixer->chip;
  257. unsigned char buf[2];
  258. int val_len = cval->val_type >= USB_MIXER_S16 ? 2 : 1;
  259. int timeout = 10;
  260. int idx = 0, err;
  261. err = snd_usb_autoresume(cval->mixer->chip);
  262. if (err < 0)
  263. return -EIO;
  264. down_read(&chip->shutdown_rwsem);
  265. while (timeout-- > 0) {
  266. if (chip->shutdown)
  267. break;
  268. idx = snd_usb_ctrl_intf(chip) | (cval->id << 8);
  269. if (snd_usb_ctl_msg(chip->dev, usb_rcvctrlpipe(chip->dev, 0), request,
  270. USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  271. validx, idx, buf, val_len) >= val_len) {
  272. *value_ret = convert_signed_value(cval, snd_usb_combine_bytes(buf, val_len));
  273. err = 0;
  274. goto out;
  275. }
  276. }
  277. snd_printdd(KERN_ERR "cannot get ctl value: req = %#x, wValue = %#x, wIndex = %#x, type = %d\n",
  278. request, validx, idx, cval->val_type);
  279. err = -EINVAL;
  280. out:
  281. up_read(&chip->shutdown_rwsem);
  282. snd_usb_autosuspend(cval->mixer->chip);
  283. return err;
  284. }
  285. static int get_ctl_value_v2(struct usb_mixer_elem_info *cval, int request, int validx, int *value_ret)
  286. {
  287. struct snd_usb_audio *chip = cval->mixer->chip;
  288. unsigned char buf[2 + 3*sizeof(__u16)]; /* enough space for one range */
  289. unsigned char *val;
  290. int idx = 0, ret, size;
  291. __u8 bRequest;
  292. if (request == UAC_GET_CUR) {
  293. bRequest = UAC2_CS_CUR;
  294. size = sizeof(__u16);
  295. } else {
  296. bRequest = UAC2_CS_RANGE;
  297. size = sizeof(buf);
  298. }
  299. memset(buf, 0, sizeof(buf));
  300. ret = snd_usb_autoresume(chip) ? -EIO : 0;
  301. if (ret)
  302. goto error;
  303. down_read(&chip->shutdown_rwsem);
  304. if (chip->shutdown)
  305. ret = -ENODEV;
  306. else {
  307. idx = snd_usb_ctrl_intf(chip) | (cval->id << 8);
  308. ret = snd_usb_ctl_msg(chip->dev, usb_rcvctrlpipe(chip->dev, 0), bRequest,
  309. USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  310. validx, idx, buf, size);
  311. }
  312. up_read(&chip->shutdown_rwsem);
  313. snd_usb_autosuspend(chip);
  314. if (ret < 0) {
  315. error:
  316. snd_printk(KERN_ERR "cannot get ctl value: req = %#x, wValue = %#x, wIndex = %#x, type = %d\n",
  317. request, validx, idx, cval->val_type);
  318. return ret;
  319. }
  320. /* FIXME: how should we handle multiple triplets here? */
  321. switch (request) {
  322. case UAC_GET_CUR:
  323. val = buf;
  324. break;
  325. case UAC_GET_MIN:
  326. val = buf + sizeof(__u16);
  327. break;
  328. case UAC_GET_MAX:
  329. val = buf + sizeof(__u16) * 2;
  330. break;
  331. case UAC_GET_RES:
  332. val = buf + sizeof(__u16) * 3;
  333. break;
  334. default:
  335. return -EINVAL;
  336. }
  337. *value_ret = convert_signed_value(cval, snd_usb_combine_bytes(val, sizeof(__u16)));
  338. return 0;
  339. }
  340. static int get_ctl_value(struct usb_mixer_elem_info *cval, int request, int validx, int *value_ret)
  341. {
  342. validx += cval->idx_off;
  343. return (cval->mixer->protocol == UAC_VERSION_1) ?
  344. get_ctl_value_v1(cval, request, validx, value_ret) :
  345. get_ctl_value_v2(cval, request, validx, value_ret);
  346. }
  347. static int get_cur_ctl_value(struct usb_mixer_elem_info *cval, int validx, int *value)
  348. {
  349. return get_ctl_value(cval, UAC_GET_CUR, validx, value);
  350. }
  351. /* channel = 0: master, 1 = first channel */
  352. static inline int get_cur_mix_raw(struct usb_mixer_elem_info *cval,
  353. int channel, int *value)
  354. {
  355. return get_ctl_value(cval, UAC_GET_CUR, (cval->control << 8) | channel, value);
  356. }
  357. static int get_cur_mix_value(struct usb_mixer_elem_info *cval,
  358. int channel, int index, int *value)
  359. {
  360. int err;
  361. if (cval->cached & (1 << channel)) {
  362. *value = cval->cache_val[index];
  363. return 0;
  364. }
  365. err = get_cur_mix_raw(cval, channel, value);
  366. if (err < 0) {
  367. if (!cval->mixer->ignore_ctl_error)
  368. snd_printd(KERN_ERR "cannot get current value for control %d ch %d: err = %d\n",
  369. cval->control, channel, err);
  370. return err;
  371. }
  372. cval->cached |= 1 << channel;
  373. cval->cache_val[index] = *value;
  374. return 0;
  375. }
  376. /*
  377. * set a mixer value
  378. */
  379. int snd_usb_mixer_set_ctl_value(struct usb_mixer_elem_info *cval,
  380. int request, int validx, int value_set)
  381. {
  382. struct snd_usb_audio *chip = cval->mixer->chip;
  383. unsigned char buf[2];
  384. int idx = 0, val_len, err, timeout = 10;
  385. validx += cval->idx_off;
  386. if (cval->mixer->protocol == UAC_VERSION_1) {
  387. val_len = cval->val_type >= USB_MIXER_S16 ? 2 : 1;
  388. } else { /* UAC_VERSION_2 */
  389. /* audio class v2 controls are always 2 bytes in size */
  390. val_len = sizeof(__u16);
  391. /* FIXME */
  392. if (request != UAC_SET_CUR) {
  393. snd_printdd(KERN_WARNING "RANGE setting not yet supported\n");
  394. return -EINVAL;
  395. }
  396. request = UAC2_CS_CUR;
  397. }
  398. value_set = convert_bytes_value(cval, value_set);
  399. buf[0] = value_set & 0xff;
  400. buf[1] = (value_set >> 8) & 0xff;
  401. err = snd_usb_autoresume(chip);
  402. if (err < 0)
  403. return -EIO;
  404. down_read(&chip->shutdown_rwsem);
  405. while (timeout-- > 0) {
  406. if (chip->shutdown)
  407. break;
  408. idx = snd_usb_ctrl_intf(chip) | (cval->id << 8);
  409. if (snd_usb_ctl_msg(chip->dev,
  410. usb_sndctrlpipe(chip->dev, 0), request,
  411. USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_OUT,
  412. validx, idx, buf, val_len) >= 0) {
  413. err = 0;
  414. goto out;
  415. }
  416. }
  417. snd_printdd(KERN_ERR "cannot set ctl value: req = %#x, wValue = %#x, wIndex = %#x, type = %d, data = %#x/%#x\n",
  418. request, validx, idx, cval->val_type, buf[0], buf[1]);
  419. err = -EINVAL;
  420. out:
  421. up_read(&chip->shutdown_rwsem);
  422. snd_usb_autosuspend(chip);
  423. return err;
  424. }
  425. static int set_cur_ctl_value(struct usb_mixer_elem_info *cval, int validx, int value)
  426. {
  427. return snd_usb_mixer_set_ctl_value(cval, UAC_SET_CUR, validx, value);
  428. }
  429. static int set_cur_mix_value(struct usb_mixer_elem_info *cval, int channel,
  430. int index, int value)
  431. {
  432. int err;
  433. unsigned int read_only = (channel == 0) ?
  434. cval->master_readonly :
  435. cval->ch_readonly & (1 << (channel - 1));
  436. if (read_only) {
  437. snd_printdd(KERN_INFO "%s(): channel %d of control %d is read_only\n",
  438. __func__, channel, cval->control);
  439. return 0;
  440. }
  441. err = snd_usb_mixer_set_ctl_value(cval, UAC_SET_CUR, (cval->control << 8) | channel,
  442. value);
  443. if (err < 0)
  444. return err;
  445. cval->cached |= 1 << channel;
  446. cval->cache_val[index] = value;
  447. return 0;
  448. }
  449. /*
  450. * TLV callback for mixer volume controls
  451. */
  452. int snd_usb_mixer_vol_tlv(struct snd_kcontrol *kcontrol, int op_flag,
  453. unsigned int size, unsigned int __user *_tlv)
  454. {
  455. struct usb_mixer_elem_info *cval = kcontrol->private_data;
  456. DECLARE_TLV_DB_MINMAX(scale, 0, 0);
  457. if (size < sizeof(scale))
  458. return -ENOMEM;
  459. scale[2] = cval->dBmin;
  460. scale[3] = cval->dBmax;
  461. if (copy_to_user(_tlv, scale, sizeof(scale)))
  462. return -EFAULT;
  463. return 0;
  464. }
  465. /*
  466. * parser routines begin here...
  467. */
  468. static int parse_audio_unit(struct mixer_build *state, int unitid);
  469. /*
  470. * check if the input/output channel routing is enabled on the given bitmap.
  471. * used for mixer unit parser
  472. */
  473. static int check_matrix_bitmap(unsigned char *bmap, int ich, int och, int num_outs)
  474. {
  475. int idx = ich * num_outs + och;
  476. return bmap[idx >> 3] & (0x80 >> (idx & 7));
  477. }
  478. /*
  479. * add an alsa control element
  480. * search and increment the index until an empty slot is found.
  481. *
  482. * if failed, give up and free the control instance.
  483. */
  484. int snd_usb_mixer_add_control(struct usb_mixer_interface *mixer,
  485. struct snd_kcontrol *kctl)
  486. {
  487. struct usb_mixer_elem_info *cval = kctl->private_data;
  488. int err;
  489. while (snd_ctl_find_id(mixer->chip->card, &kctl->id))
  490. kctl->id.index++;
  491. if ((err = snd_ctl_add(mixer->chip->card, kctl)) < 0) {
  492. snd_printd(KERN_ERR "cannot add control (err = %d)\n", err);
  493. return err;
  494. }
  495. cval->elem_id = &kctl->id;
  496. cval->next_id_elem = mixer->id_elems[cval->id];
  497. mixer->id_elems[cval->id] = cval;
  498. return 0;
  499. }
  500. /*
  501. * get a terminal name string
  502. */
  503. static struct iterm_name_combo {
  504. int type;
  505. char *name;
  506. } iterm_names[] = {
  507. { 0x0300, "Output" },
  508. { 0x0301, "Speaker" },
  509. { 0x0302, "Headphone" },
  510. { 0x0303, "HMD Audio" },
  511. { 0x0304, "Desktop Speaker" },
  512. { 0x0305, "Room Speaker" },
  513. { 0x0306, "Com Speaker" },
  514. { 0x0307, "LFE" },
  515. { 0x0600, "External In" },
  516. { 0x0601, "Analog In" },
  517. { 0x0602, "Digital In" },
  518. { 0x0603, "Line" },
  519. { 0x0604, "Legacy In" },
  520. { 0x0605, "IEC958 In" },
  521. { 0x0606, "1394 DA Stream" },
  522. { 0x0607, "1394 DV Stream" },
  523. { 0x0700, "Embedded" },
  524. { 0x0701, "Noise Source" },
  525. { 0x0702, "Equalization Noise" },
  526. { 0x0703, "CD" },
  527. { 0x0704, "DAT" },
  528. { 0x0705, "DCC" },
  529. { 0x0706, "MiniDisk" },
  530. { 0x0707, "Analog Tape" },
  531. { 0x0708, "Phonograph" },
  532. { 0x0709, "VCR Audio" },
  533. { 0x070a, "Video Disk Audio" },
  534. { 0x070b, "DVD Audio" },
  535. { 0x070c, "TV Tuner Audio" },
  536. { 0x070d, "Satellite Rec Audio" },
  537. { 0x070e, "Cable Tuner Audio" },
  538. { 0x070f, "DSS Audio" },
  539. { 0x0710, "Radio Receiver" },
  540. { 0x0711, "Radio Transmitter" },
  541. { 0x0712, "Multi-Track Recorder" },
  542. { 0x0713, "Synthesizer" },
  543. { 0 },
  544. };
  545. static int get_term_name(struct mixer_build *state, struct usb_audio_term *iterm,
  546. unsigned char *name, int maxlen, int term_only)
  547. {
  548. struct iterm_name_combo *names;
  549. if (iterm->name)
  550. return snd_usb_copy_string_desc(state, iterm->name, name, maxlen);
  551. /* virtual type - not a real terminal */
  552. if (iterm->type >> 16) {
  553. if (term_only)
  554. return 0;
  555. switch (iterm->type >> 16) {
  556. case UAC_SELECTOR_UNIT:
  557. strcpy(name, "Selector"); return 8;
  558. case UAC1_PROCESSING_UNIT:
  559. strcpy(name, "Process Unit"); return 12;
  560. case UAC1_EXTENSION_UNIT:
  561. strcpy(name, "Ext Unit"); return 8;
  562. case UAC_MIXER_UNIT:
  563. strcpy(name, "Mixer"); return 5;
  564. default:
  565. return sprintf(name, "Unit %d", iterm->id);
  566. }
  567. }
  568. switch (iterm->type & 0xff00) {
  569. case 0x0100:
  570. strcpy(name, "PCM"); return 3;
  571. case 0x0200:
  572. strcpy(name, "Mic"); return 3;
  573. case 0x0400:
  574. strcpy(name, "Headset"); return 7;
  575. case 0x0500:
  576. strcpy(name, "Phone"); return 5;
  577. }
  578. for (names = iterm_names; names->type; names++)
  579. if (names->type == iterm->type) {
  580. strcpy(name, names->name);
  581. return strlen(names->name);
  582. }
  583. return 0;
  584. }
  585. /*
  586. * parse the source unit recursively until it reaches to a terminal
  587. * or a branched unit.
  588. */
  589. static int check_input_term(struct mixer_build *state, int id, struct usb_audio_term *term)
  590. {
  591. int err;
  592. void *p1;
  593. memset(term, 0, sizeof(*term));
  594. while ((p1 = find_audio_control_unit(state, id)) != NULL) {
  595. unsigned char *hdr = p1;
  596. term->id = id;
  597. switch (hdr[2]) {
  598. case UAC_INPUT_TERMINAL:
  599. if (state->mixer->protocol == UAC_VERSION_1) {
  600. struct uac_input_terminal_descriptor *d = p1;
  601. term->type = le16_to_cpu(d->wTerminalType);
  602. term->channels = d->bNrChannels;
  603. term->chconfig = le16_to_cpu(d->wChannelConfig);
  604. term->name = d->iTerminal;
  605. } else { /* UAC_VERSION_2 */
  606. struct uac2_input_terminal_descriptor *d = p1;
  607. term->type = le16_to_cpu(d->wTerminalType);
  608. term->channels = d->bNrChannels;
  609. term->chconfig = le32_to_cpu(d->bmChannelConfig);
  610. term->name = d->iTerminal;
  611. /* call recursively to get the clock selectors */
  612. err = check_input_term(state, d->bCSourceID, term);
  613. if (err < 0)
  614. return err;
  615. }
  616. return 0;
  617. case UAC_FEATURE_UNIT: {
  618. /* the header is the same for v1 and v2 */
  619. struct uac_feature_unit_descriptor *d = p1;
  620. id = d->bSourceID;
  621. break; /* continue to parse */
  622. }
  623. case UAC_MIXER_UNIT: {
  624. struct uac_mixer_unit_descriptor *d = p1;
  625. term->type = d->bDescriptorSubtype << 16; /* virtual type */
  626. term->channels = uac_mixer_unit_bNrChannels(d);
  627. term->chconfig = uac_mixer_unit_wChannelConfig(d, state->mixer->protocol);
  628. term->name = uac_mixer_unit_iMixer(d);
  629. return 0;
  630. }
  631. case UAC_SELECTOR_UNIT:
  632. case UAC2_CLOCK_SELECTOR: {
  633. struct uac_selector_unit_descriptor *d = p1;
  634. /* call recursively to retrieve the channel info */
  635. if (check_input_term(state, d->baSourceID[0], term) < 0)
  636. return -ENODEV;
  637. term->type = d->bDescriptorSubtype << 16; /* virtual type */
  638. term->id = id;
  639. term->name = uac_selector_unit_iSelector(d);
  640. return 0;
  641. }
  642. case UAC1_PROCESSING_UNIT:
  643. case UAC1_EXTENSION_UNIT:
  644. /* UAC2_PROCESSING_UNIT_V2 */
  645. /* UAC2_EFFECT_UNIT */ {
  646. struct uac_processing_unit_descriptor *d = p1;
  647. if (state->mixer->protocol == UAC_VERSION_2 &&
  648. hdr[2] == UAC2_EFFECT_UNIT) {
  649. /* UAC2/UAC1 unit IDs overlap here in an
  650. * uncompatible way. Ignore this unit for now.
  651. */
  652. return 0;
  653. }
  654. if (d->bNrInPins) {
  655. id = d->baSourceID[0];
  656. break; /* continue to parse */
  657. }
  658. term->type = d->bDescriptorSubtype << 16; /* virtual type */
  659. term->channels = uac_processing_unit_bNrChannels(d);
  660. term->chconfig = uac_processing_unit_wChannelConfig(d, state->mixer->protocol);
  661. term->name = uac_processing_unit_iProcessing(d, state->mixer->protocol);
  662. return 0;
  663. }
  664. case UAC2_CLOCK_SOURCE: {
  665. struct uac_clock_source_descriptor *d = p1;
  666. term->type = d->bDescriptorSubtype << 16; /* virtual type */
  667. term->id = id;
  668. term->name = d->iClockSource;
  669. return 0;
  670. }
  671. default:
  672. return -ENODEV;
  673. }
  674. }
  675. return -ENODEV;
  676. }
  677. /*
  678. * Feature Unit
  679. */
  680. /* feature unit control information */
  681. struct usb_feature_control_info {
  682. const char *name;
  683. unsigned int type; /* control type (mute, volume, etc.) */
  684. };
  685. static struct usb_feature_control_info audio_feature_info[] = {
  686. { "Mute", USB_MIXER_INV_BOOLEAN },
  687. { "Volume", USB_MIXER_S16 },
  688. { "Tone Control - Bass", USB_MIXER_S8 },
  689. { "Tone Control - Mid", USB_MIXER_S8 },
  690. { "Tone Control - Treble", USB_MIXER_S8 },
  691. { "Graphic Equalizer", USB_MIXER_S8 }, /* FIXME: not implemeted yet */
  692. { "Auto Gain Control", USB_MIXER_BOOLEAN },
  693. { "Delay Control", USB_MIXER_U16 },
  694. { "Bass Boost", USB_MIXER_BOOLEAN },
  695. { "Loudness", USB_MIXER_BOOLEAN },
  696. /* UAC2 specific */
  697. { "Input Gain Control", USB_MIXER_U16 },
  698. { "Input Gain Pad Control", USB_MIXER_BOOLEAN },
  699. { "Phase Inverter Control", USB_MIXER_BOOLEAN },
  700. };
  701. /* private_free callback */
  702. static void usb_mixer_elem_free(struct snd_kcontrol *kctl)
  703. {
  704. kfree(kctl->private_data);
  705. kctl->private_data = NULL;
  706. }
  707. /*
  708. * interface to ALSA control for feature/mixer units
  709. */
  710. /* volume control quirks */
  711. static void volume_control_quirks(struct usb_mixer_elem_info *cval,
  712. struct snd_kcontrol *kctl)
  713. {
  714. switch (cval->mixer->chip->usb_id) {
  715. case USB_ID(0x0763, 0x2030): /* M-Audio Fast Track C400 */
  716. case USB_ID(0x0763, 0x2031): /* M-Audio Fast Track C600 */
  717. if (strcmp(kctl->id.name, "Effect Duration") == 0) {
  718. cval->min = 0x0000;
  719. cval->max = 0xffff;
  720. cval->res = 0x00e6;
  721. break;
  722. }
  723. if (strcmp(kctl->id.name, "Effect Volume") == 0 ||
  724. strcmp(kctl->id.name, "Effect Feedback Volume") == 0) {
  725. cval->min = 0x00;
  726. cval->max = 0xff;
  727. break;
  728. }
  729. if (strstr(kctl->id.name, "Effect Return") != NULL) {
  730. cval->min = 0xb706;
  731. cval->max = 0xff7b;
  732. cval->res = 0x0073;
  733. break;
  734. }
  735. if ((strstr(kctl->id.name, "Playback Volume") != NULL) ||
  736. (strstr(kctl->id.name, "Effect Send") != NULL)) {
  737. cval->min = 0xb5fb; /* -73 dB = 0xb6ff */
  738. cval->max = 0xfcfe;
  739. cval->res = 0x0073;
  740. }
  741. break;
  742. case USB_ID(0x0763, 0x2081): /* M-Audio Fast Track Ultra 8R */
  743. case USB_ID(0x0763, 0x2080): /* M-Audio Fast Track Ultra */
  744. if (strcmp(kctl->id.name, "Effect Duration") == 0) {
  745. snd_printk(KERN_INFO
  746. "usb-audio: set quirk for FTU Effect Duration\n");
  747. cval->min = 0x0000;
  748. cval->max = 0x7f00;
  749. cval->res = 0x0100;
  750. break;
  751. }
  752. if (strcmp(kctl->id.name, "Effect Volume") == 0 ||
  753. strcmp(kctl->id.name, "Effect Feedback Volume") == 0) {
  754. snd_printk(KERN_INFO
  755. "usb-audio: set quirks for FTU Effect Feedback/Volume\n");
  756. cval->min = 0x00;
  757. cval->max = 0x7f;
  758. break;
  759. }
  760. break;
  761. case USB_ID(0x0471, 0x0101):
  762. case USB_ID(0x0471, 0x0104):
  763. case USB_ID(0x0471, 0x0105):
  764. case USB_ID(0x0672, 0x1041):
  765. /* quirk for UDA1321/N101.
  766. * note that detection between firmware 2.1.1.7 (N101)
  767. * and later 2.1.1.21 is not very clear from datasheets.
  768. * I hope that the min value is -15360 for newer firmware --jk
  769. */
  770. if (!strcmp(kctl->id.name, "PCM Playback Volume") &&
  771. cval->min == -15616) {
  772. snd_printk(KERN_INFO
  773. "set volume quirk for UDA1321/N101 chip\n");
  774. cval->max = -256;
  775. }
  776. break;
  777. case USB_ID(0x046d, 0x09a4):
  778. if (!strcmp(kctl->id.name, "Mic Capture Volume")) {
  779. snd_printk(KERN_INFO
  780. "set volume quirk for QuickCam E3500\n");
  781. cval->min = 6080;
  782. cval->max = 8768;
  783. cval->res = 192;
  784. }
  785. break;
  786. case USB_ID(0x046d, 0x0808):
  787. case USB_ID(0x046d, 0x0809):
  788. case USB_ID(0x046d, 0x081d): /* HD Webcam c510 */
  789. case USB_ID(0x046d, 0x0991):
  790. /* Most audio usb devices lie about volume resolution.
  791. * Most Logitech webcams have res = 384.
  792. * Proboly there is some logitech magic behind this number --fishor
  793. */
  794. if (!strcmp(kctl->id.name, "Mic Capture Volume")) {
  795. snd_printk(KERN_INFO
  796. "set resolution quirk: cval->res = 384\n");
  797. cval->res = 384;
  798. }
  799. break;
  800. }
  801. }
  802. /*
  803. * retrieve the minimum and maximum values for the specified control
  804. */
  805. static int get_min_max_with_quirks(struct usb_mixer_elem_info *cval,
  806. int default_min, struct snd_kcontrol *kctl)
  807. {
  808. /* for failsafe */
  809. cval->min = default_min;
  810. cval->max = cval->min + 1;
  811. cval->res = 1;
  812. cval->dBmin = cval->dBmax = 0;
  813. if (cval->val_type == USB_MIXER_BOOLEAN ||
  814. cval->val_type == USB_MIXER_INV_BOOLEAN) {
  815. cval->initialized = 1;
  816. } else {
  817. int minchn = 0;
  818. if (cval->cmask) {
  819. int i;
  820. for (i = 0; i < MAX_CHANNELS; i++)
  821. if (cval->cmask & (1 << i)) {
  822. minchn = i + 1;
  823. break;
  824. }
  825. }
  826. if (get_ctl_value(cval, UAC_GET_MAX, (cval->control << 8) | minchn, &cval->max) < 0 ||
  827. get_ctl_value(cval, UAC_GET_MIN, (cval->control << 8) | minchn, &cval->min) < 0) {
  828. snd_printd(KERN_ERR "%d:%d: cannot get min/max values for control %d (id %d)\n",
  829. cval->id, snd_usb_ctrl_intf(cval->mixer->chip), cval->control, cval->id);
  830. return -EINVAL;
  831. }
  832. if (get_ctl_value(cval, UAC_GET_RES, (cval->control << 8) | minchn, &cval->res) < 0) {
  833. cval->res = 1;
  834. } else {
  835. int last_valid_res = cval->res;
  836. while (cval->res > 1) {
  837. if (snd_usb_mixer_set_ctl_value(cval, UAC_SET_RES,
  838. (cval->control << 8) | minchn, cval->res / 2) < 0)
  839. break;
  840. cval->res /= 2;
  841. }
  842. if (get_ctl_value(cval, UAC_GET_RES, (cval->control << 8) | minchn, &cval->res) < 0)
  843. cval->res = last_valid_res;
  844. }
  845. if (cval->res == 0)
  846. cval->res = 1;
  847. /* Additional checks for the proper resolution
  848. *
  849. * Some devices report smaller resolutions than actually
  850. * reacting. They don't return errors but simply clip
  851. * to the lower aligned value.
  852. */
  853. if (cval->min + cval->res < cval->max) {
  854. int last_valid_res = cval->res;
  855. int saved, test, check;
  856. get_cur_mix_raw(cval, minchn, &saved);
  857. for (;;) {
  858. test = saved;
  859. if (test < cval->max)
  860. test += cval->res;
  861. else
  862. test -= cval->res;
  863. if (test < cval->min || test > cval->max ||
  864. set_cur_mix_value(cval, minchn, 0, test) ||
  865. get_cur_mix_raw(cval, minchn, &check)) {
  866. cval->res = last_valid_res;
  867. break;
  868. }
  869. if (test == check)
  870. break;
  871. cval->res *= 2;
  872. }
  873. set_cur_mix_value(cval, minchn, 0, saved);
  874. }
  875. cval->initialized = 1;
  876. }
  877. if (kctl)
  878. volume_control_quirks(cval, kctl);
  879. /* USB descriptions contain the dB scale in 1/256 dB unit
  880. * while ALSA TLV contains in 1/100 dB unit
  881. */
  882. cval->dBmin = (convert_signed_value(cval, cval->min) * 100) / 256;
  883. cval->dBmax = (convert_signed_value(cval, cval->max) * 100) / 256;
  884. if (cval->dBmin > cval->dBmax) {
  885. /* something is wrong; assume it's either from/to 0dB */
  886. if (cval->dBmin < 0)
  887. cval->dBmax = 0;
  888. else if (cval->dBmin > 0)
  889. cval->dBmin = 0;
  890. if (cval->dBmin > cval->dBmax) {
  891. /* totally crap, return an error */
  892. return -EINVAL;
  893. }
  894. }
  895. return 0;
  896. }
  897. #define get_min_max(cval, def) get_min_max_with_quirks(cval, def, NULL)
  898. /* get a feature/mixer unit info */
  899. static int mixer_ctl_feature_info(struct snd_kcontrol *kcontrol, struct snd_ctl_elem_info *uinfo)
  900. {
  901. struct usb_mixer_elem_info *cval = kcontrol->private_data;
  902. if (cval->val_type == USB_MIXER_BOOLEAN ||
  903. cval->val_type == USB_MIXER_INV_BOOLEAN)
  904. uinfo->type = SNDRV_CTL_ELEM_TYPE_BOOLEAN;
  905. else
  906. uinfo->type = SNDRV_CTL_ELEM_TYPE_INTEGER;
  907. uinfo->count = cval->channels;
  908. if (cval->val_type == USB_MIXER_BOOLEAN ||
  909. cval->val_type == USB_MIXER_INV_BOOLEAN) {
  910. uinfo->value.integer.min = 0;
  911. uinfo->value.integer.max = 1;
  912. } else {
  913. if (!cval->initialized) {
  914. get_min_max_with_quirks(cval, 0, kcontrol);
  915. if (cval->initialized && cval->dBmin >= cval->dBmax) {
  916. kcontrol->vd[0].access &=
  917. ~(SNDRV_CTL_ELEM_ACCESS_TLV_READ |
  918. SNDRV_CTL_ELEM_ACCESS_TLV_CALLBACK);
  919. snd_ctl_notify(cval->mixer->chip->card,
  920. SNDRV_CTL_EVENT_MASK_INFO,
  921. &kcontrol->id);
  922. }
  923. }
  924. uinfo->value.integer.min = 0;
  925. uinfo->value.integer.max =
  926. (cval->max - cval->min + cval->res - 1) / cval->res;
  927. }
  928. return 0;
  929. }
  930. /* get the current value from feature/mixer unit */
  931. static int mixer_ctl_feature_get(struct snd_kcontrol *kcontrol, struct snd_ctl_elem_value *ucontrol)
  932. {
  933. struct usb_mixer_elem_info *cval = kcontrol->private_data;
  934. int c, cnt, val, err;
  935. ucontrol->value.integer.value[0] = cval->min;
  936. if (cval->cmask) {
  937. cnt = 0;
  938. for (c = 0; c < MAX_CHANNELS; c++) {
  939. if (!(cval->cmask & (1 << c)))
  940. continue;
  941. err = get_cur_mix_value(cval, c + 1, cnt, &val);
  942. if (err < 0)
  943. return cval->mixer->ignore_ctl_error ? 0 : err;
  944. val = get_relative_value(cval, val);
  945. ucontrol->value.integer.value[cnt] = val;
  946. cnt++;
  947. }
  948. return 0;
  949. } else {
  950. /* master channel */
  951. err = get_cur_mix_value(cval, 0, 0, &val);
  952. if (err < 0)
  953. return cval->mixer->ignore_ctl_error ? 0 : err;
  954. val = get_relative_value(cval, val);
  955. ucontrol->value.integer.value[0] = val;
  956. }
  957. return 0;
  958. }
  959. /* put the current value to feature/mixer unit */
  960. static int mixer_ctl_feature_put(struct snd_kcontrol *kcontrol, struct snd_ctl_elem_value *ucontrol)
  961. {
  962. struct usb_mixer_elem_info *cval = kcontrol->private_data;
  963. int c, cnt, val, oval, err;
  964. int changed = 0;
  965. if (cval->cmask) {
  966. cnt = 0;
  967. for (c = 0; c < MAX_CHANNELS; c++) {
  968. if (!(cval->cmask & (1 << c)))
  969. continue;
  970. err = get_cur_mix_value(cval, c + 1, cnt, &oval);
  971. if (err < 0)
  972. return cval->mixer->ignore_ctl_error ? 0 : err;
  973. val = ucontrol->value.integer.value[cnt];
  974. val = get_abs_value(cval, val);
  975. if (oval != val) {
  976. set_cur_mix_value(cval, c + 1, cnt, val);
  977. changed = 1;
  978. }
  979. cnt++;
  980. }
  981. } else {
  982. /* master channel */
  983. err = get_cur_mix_value(cval, 0, 0, &oval);
  984. if (err < 0)
  985. return cval->mixer->ignore_ctl_error ? 0 : err;
  986. val = ucontrol->value.integer.value[0];
  987. val = get_abs_value(cval, val);
  988. if (val != oval) {
  989. set_cur_mix_value(cval, 0, 0, val);
  990. changed = 1;
  991. }
  992. }
  993. return changed;
  994. }
  995. static struct snd_kcontrol_new usb_feature_unit_ctl = {
  996. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  997. .name = "", /* will be filled later manually */
  998. .info = mixer_ctl_feature_info,
  999. .get = mixer_ctl_feature_get,
  1000. .put = mixer_ctl_feature_put,
  1001. };
  1002. /* the read-only variant */
  1003. static struct snd_kcontrol_new usb_feature_unit_ctl_ro = {
  1004. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  1005. .name = "", /* will be filled later manually */
  1006. .info = mixer_ctl_feature_info,
  1007. .get = mixer_ctl_feature_get,
  1008. .put = NULL,
  1009. };
  1010. /* This symbol is exported in order to allow the mixer quirks to
  1011. * hook up to the standard feature unit control mechanism */
  1012. struct snd_kcontrol_new *snd_usb_feature_unit_ctl = &usb_feature_unit_ctl;
  1013. /*
  1014. * build a feature control
  1015. */
  1016. static size_t append_ctl_name(struct snd_kcontrol *kctl, const char *str)
  1017. {
  1018. return strlcat(kctl->id.name, str, sizeof(kctl->id.name));
  1019. }
  1020. /* A lot of headsets/headphones have a "Speaker" mixer. Make sure we
  1021. rename it to "Headphone". We determine if something is a headphone
  1022. similar to how udev determines form factor. */
  1023. static void check_no_speaker_on_headset(struct snd_kcontrol *kctl,
  1024. struct snd_card *card)
  1025. {
  1026. const char *names_to_check[] = {
  1027. "Headset", "headset", "Headphone", "headphone", NULL};
  1028. const char **s;
  1029. bool found = 0;
  1030. if (strcmp("Speaker", kctl->id.name))
  1031. return;
  1032. for (s = names_to_check; *s; s++)
  1033. if (strstr(card->shortname, *s)) {
  1034. found = 1;
  1035. break;
  1036. }
  1037. if (!found)
  1038. return;
  1039. strlcpy(kctl->id.name, "Headphone", sizeof(kctl->id.name));
  1040. }
  1041. static void build_feature_ctl(struct mixer_build *state, void *raw_desc,
  1042. unsigned int ctl_mask, int control,
  1043. struct usb_audio_term *iterm, int unitid,
  1044. int readonly_mask)
  1045. {
  1046. struct uac_feature_unit_descriptor *desc = raw_desc;
  1047. unsigned int len = 0;
  1048. int mapped_name = 0;
  1049. int nameid = uac_feature_unit_iFeature(desc);
  1050. struct snd_kcontrol *kctl;
  1051. struct usb_mixer_elem_info *cval;
  1052. const struct usbmix_name_map *map;
  1053. unsigned int range;
  1054. control++; /* change from zero-based to 1-based value */
  1055. if (control == UAC_FU_GRAPHIC_EQUALIZER) {
  1056. /* FIXME: not supported yet */
  1057. return;
  1058. }
  1059. map = find_map(state, unitid, control);
  1060. if (check_ignored_ctl(map))
  1061. return;
  1062. cval = kzalloc(sizeof(*cval), GFP_KERNEL);
  1063. if (! cval) {
  1064. snd_printk(KERN_ERR "cannot malloc kcontrol\n");
  1065. return;
  1066. }
  1067. cval->mixer = state->mixer;
  1068. cval->id = unitid;
  1069. cval->control = control;
  1070. cval->cmask = ctl_mask;
  1071. cval->val_type = audio_feature_info[control-1].type;
  1072. if (ctl_mask == 0) {
  1073. cval->channels = 1; /* master channel */
  1074. cval->master_readonly = readonly_mask;
  1075. } else {
  1076. int i, c = 0;
  1077. for (i = 0; i < 16; i++)
  1078. if (ctl_mask & (1 << i))
  1079. c++;
  1080. cval->channels = c;
  1081. cval->ch_readonly = readonly_mask;
  1082. }
  1083. /* if all channels in the mask are marked read-only, make the control
  1084. * read-only. set_cur_mix_value() will check the mask again and won't
  1085. * issue write commands to read-only channels. */
  1086. if (cval->channels == readonly_mask)
  1087. kctl = snd_ctl_new1(&usb_feature_unit_ctl_ro, cval);
  1088. else
  1089. kctl = snd_ctl_new1(&usb_feature_unit_ctl, cval);
  1090. if (! kctl) {
  1091. snd_printk(KERN_ERR "cannot malloc kcontrol\n");
  1092. kfree(cval);
  1093. return;
  1094. }
  1095. kctl->private_free = usb_mixer_elem_free;
  1096. len = check_mapped_name(map, kctl->id.name, sizeof(kctl->id.name));
  1097. mapped_name = len != 0;
  1098. if (! len && nameid)
  1099. len = snd_usb_copy_string_desc(state, nameid,
  1100. kctl->id.name, sizeof(kctl->id.name));
  1101. switch (control) {
  1102. case UAC_FU_MUTE:
  1103. case UAC_FU_VOLUME:
  1104. /* determine the control name. the rule is:
  1105. * - if a name id is given in descriptor, use it.
  1106. * - if the connected input can be determined, then use the name
  1107. * of terminal type.
  1108. * - if the connected output can be determined, use it.
  1109. * - otherwise, anonymous name.
  1110. */
  1111. if (! len) {
  1112. len = get_term_name(state, iterm, kctl->id.name, sizeof(kctl->id.name), 1);
  1113. if (! len)
  1114. len = get_term_name(state, &state->oterm, kctl->id.name, sizeof(kctl->id.name), 1);
  1115. if (! len)
  1116. len = snprintf(kctl->id.name, sizeof(kctl->id.name),
  1117. "Feature %d", unitid);
  1118. }
  1119. if (!mapped_name)
  1120. check_no_speaker_on_headset(kctl, state->mixer->chip->card);
  1121. /* determine the stream direction:
  1122. * if the connected output is USB stream, then it's likely a
  1123. * capture stream. otherwise it should be playback (hopefully :)
  1124. */
  1125. if (! mapped_name && ! (state->oterm.type >> 16)) {
  1126. if ((state->oterm.type & 0xff00) == 0x0100) {
  1127. len = append_ctl_name(kctl, " Capture");
  1128. } else {
  1129. len = append_ctl_name(kctl, " Playback");
  1130. }
  1131. }
  1132. append_ctl_name(kctl, control == UAC_FU_MUTE ?
  1133. " Switch" : " Volume");
  1134. break;
  1135. default:
  1136. if (! len)
  1137. strlcpy(kctl->id.name, audio_feature_info[control-1].name,
  1138. sizeof(kctl->id.name));
  1139. break;
  1140. }
  1141. /* get min/max values */
  1142. get_min_max_with_quirks(cval, 0, kctl);
  1143. if (control == UAC_FU_VOLUME) {
  1144. check_mapped_dB(map, cval);
  1145. if (cval->dBmin < cval->dBmax || !cval->initialized) {
  1146. kctl->tlv.c = snd_usb_mixer_vol_tlv;
  1147. kctl->vd[0].access |=
  1148. SNDRV_CTL_ELEM_ACCESS_TLV_READ |
  1149. SNDRV_CTL_ELEM_ACCESS_TLV_CALLBACK;
  1150. }
  1151. }
  1152. range = (cval->max - cval->min) / cval->res;
  1153. /* Are there devices with volume range more than 255? I use a bit more
  1154. * to be sure. 384 is a resolution magic number found on Logitech
  1155. * devices. It will definitively catch all buggy Logitech devices.
  1156. */
  1157. if (range > 384) {
  1158. snd_printk(KERN_WARNING "usb_audio: Warning! Unlikely big "
  1159. "volume range (=%u), cval->res is probably wrong.",
  1160. range);
  1161. snd_printk(KERN_WARNING "usb_audio: [%d] FU [%s] ch = %d, "
  1162. "val = %d/%d/%d", cval->id,
  1163. kctl->id.name, cval->channels,
  1164. cval->min, cval->max, cval->res);
  1165. }
  1166. snd_printdd(KERN_INFO "[%d] FU [%s] ch = %d, val = %d/%d/%d\n",
  1167. cval->id, kctl->id.name, cval->channels, cval->min, cval->max, cval->res);
  1168. snd_usb_mixer_add_control(state->mixer, kctl);
  1169. }
  1170. /*
  1171. * parse a feature unit
  1172. *
  1173. * most of controls are defined here.
  1174. */
  1175. static int parse_audio_feature_unit(struct mixer_build *state, int unitid, void *_ftr)
  1176. {
  1177. int channels, i, j;
  1178. struct usb_audio_term iterm;
  1179. unsigned int master_bits, first_ch_bits;
  1180. int err, csize;
  1181. struct uac_feature_unit_descriptor *hdr = _ftr;
  1182. __u8 *bmaControls;
  1183. if (state->mixer->protocol == UAC_VERSION_1) {
  1184. csize = hdr->bControlSize;
  1185. if (!csize) {
  1186. snd_printdd(KERN_ERR "usbaudio: unit %u: "
  1187. "invalid bControlSize == 0\n", unitid);
  1188. return -EINVAL;
  1189. }
  1190. channels = (hdr->bLength - 7) / csize - 1;
  1191. bmaControls = hdr->bmaControls;
  1192. if (hdr->bLength < 7 + csize) {
  1193. snd_printk(KERN_ERR "usbaudio: unit %u: "
  1194. "invalid UAC_FEATURE_UNIT descriptor\n",
  1195. unitid);
  1196. return -EINVAL;
  1197. }
  1198. } else {
  1199. struct uac2_feature_unit_descriptor *ftr = _ftr;
  1200. csize = 4;
  1201. channels = (hdr->bLength - 6) / 4 - 1;
  1202. bmaControls = ftr->bmaControls;
  1203. if (hdr->bLength < 6 + csize) {
  1204. snd_printk(KERN_ERR "usbaudio: unit %u: "
  1205. "invalid UAC_FEATURE_UNIT descriptor\n",
  1206. unitid);
  1207. return -EINVAL;
  1208. }
  1209. }
  1210. /* parse the source unit */
  1211. if ((err = parse_audio_unit(state, hdr->bSourceID)) < 0)
  1212. return err;
  1213. /* determine the input source type and name */
  1214. if (check_input_term(state, hdr->bSourceID, &iterm) < 0)
  1215. return -EINVAL;
  1216. master_bits = snd_usb_combine_bytes(bmaControls, csize);
  1217. /* master configuration quirks */
  1218. switch (state->chip->usb_id) {
  1219. case USB_ID(0x08bb, 0x2702):
  1220. snd_printk(KERN_INFO
  1221. "usbmixer: master volume quirk for PCM2702 chip\n");
  1222. /* disable non-functional volume control */
  1223. master_bits &= ~UAC_CONTROL_BIT(UAC_FU_VOLUME);
  1224. break;
  1225. case USB_ID(0x1130, 0xf211):
  1226. snd_printk(KERN_INFO
  1227. "usbmixer: volume control quirk for Tenx TP6911 Audio Headset\n");
  1228. /* disable non-functional volume control */
  1229. channels = 0;
  1230. break;
  1231. }
  1232. if (channels > 0)
  1233. first_ch_bits = snd_usb_combine_bytes(bmaControls + csize, csize);
  1234. else
  1235. first_ch_bits = 0;
  1236. if (state->mixer->protocol == UAC_VERSION_1) {
  1237. /* check all control types */
  1238. for (i = 0; i < 10; i++) {
  1239. unsigned int ch_bits = 0;
  1240. for (j = 0; j < channels; j++) {
  1241. unsigned int mask = snd_usb_combine_bytes(bmaControls + csize * (j+1), csize);
  1242. if (mask & (1 << i))
  1243. ch_bits |= (1 << j);
  1244. }
  1245. /* audio class v1 controls are never read-only */
  1246. if (ch_bits & 1) /* the first channel must be set (for ease of programming) */
  1247. build_feature_ctl(state, _ftr, ch_bits, i, &iterm, unitid, 0);
  1248. if (master_bits & (1 << i))
  1249. build_feature_ctl(state, _ftr, 0, i, &iterm, unitid, 0);
  1250. }
  1251. } else { /* UAC_VERSION_2 */
  1252. for (i = 0; i < ARRAY_SIZE(audio_feature_info); i++) {
  1253. unsigned int ch_bits = 0;
  1254. unsigned int ch_read_only = 0;
  1255. for (j = 0; j < channels; j++) {
  1256. unsigned int mask = snd_usb_combine_bytes(bmaControls + csize * (j+1), csize);
  1257. if (uac2_control_is_readable(mask, i)) {
  1258. ch_bits |= (1 << j);
  1259. if (!uac2_control_is_writeable(mask, i))
  1260. ch_read_only |= (1 << j);
  1261. }
  1262. }
  1263. /* NOTE: build_feature_ctl() will mark the control read-only if all channels
  1264. * are marked read-only in the descriptors. Otherwise, the control will be
  1265. * reported as writeable, but the driver will not actually issue a write
  1266. * command for read-only channels */
  1267. if (ch_bits & 1) /* the first channel must be set (for ease of programming) */
  1268. build_feature_ctl(state, _ftr, ch_bits, i, &iterm, unitid, ch_read_only);
  1269. if (uac2_control_is_readable(master_bits, i))
  1270. build_feature_ctl(state, _ftr, 0, i, &iterm, unitid,
  1271. !uac2_control_is_writeable(master_bits, i));
  1272. }
  1273. }
  1274. return 0;
  1275. }
  1276. /*
  1277. * Mixer Unit
  1278. */
  1279. /*
  1280. * build a mixer unit control
  1281. *
  1282. * the callbacks are identical with feature unit.
  1283. * input channel number (zero based) is given in control field instead.
  1284. */
  1285. static void build_mixer_unit_ctl(struct mixer_build *state,
  1286. struct uac_mixer_unit_descriptor *desc,
  1287. int in_pin, int in_ch, int unitid,
  1288. struct usb_audio_term *iterm)
  1289. {
  1290. struct usb_mixer_elem_info *cval;
  1291. unsigned int num_outs = uac_mixer_unit_bNrChannels(desc);
  1292. unsigned int i, len;
  1293. struct snd_kcontrol *kctl;
  1294. const struct usbmix_name_map *map;
  1295. map = find_map(state, unitid, 0);
  1296. if (check_ignored_ctl(map))
  1297. return;
  1298. cval = kzalloc(sizeof(*cval), GFP_KERNEL);
  1299. if (! cval)
  1300. return;
  1301. cval->mixer = state->mixer;
  1302. cval->id = unitid;
  1303. cval->control = in_ch + 1; /* based on 1 */
  1304. cval->val_type = USB_MIXER_S16;
  1305. for (i = 0; i < num_outs; i++) {
  1306. if (check_matrix_bitmap(uac_mixer_unit_bmControls(desc, state->mixer->protocol), in_ch, i, num_outs)) {
  1307. cval->cmask |= (1 << i);
  1308. cval->channels++;
  1309. }
  1310. }
  1311. /* get min/max values */
  1312. get_min_max(cval, 0);
  1313. kctl = snd_ctl_new1(&usb_feature_unit_ctl, cval);
  1314. if (! kctl) {
  1315. snd_printk(KERN_ERR "cannot malloc kcontrol\n");
  1316. kfree(cval);
  1317. return;
  1318. }
  1319. kctl->private_free = usb_mixer_elem_free;
  1320. len = check_mapped_name(map, kctl->id.name, sizeof(kctl->id.name));
  1321. if (! len)
  1322. len = get_term_name(state, iterm, kctl->id.name, sizeof(kctl->id.name), 0);
  1323. if (! len)
  1324. len = sprintf(kctl->id.name, "Mixer Source %d", in_ch + 1);
  1325. append_ctl_name(kctl, " Volume");
  1326. snd_printdd(KERN_INFO "[%d] MU [%s] ch = %d, val = %d/%d\n",
  1327. cval->id, kctl->id.name, cval->channels, cval->min, cval->max);
  1328. snd_usb_mixer_add_control(state->mixer, kctl);
  1329. }
  1330. /*
  1331. * parse a mixer unit
  1332. */
  1333. static int parse_audio_mixer_unit(struct mixer_build *state, int unitid, void *raw_desc)
  1334. {
  1335. struct uac_mixer_unit_descriptor *desc = raw_desc;
  1336. struct usb_audio_term iterm;
  1337. int input_pins, num_ins, num_outs;
  1338. int pin, ich, err;
  1339. if (desc->bLength < 11 || ! (input_pins = desc->bNrInPins) || ! (num_outs = uac_mixer_unit_bNrChannels(desc))) {
  1340. snd_printk(KERN_ERR "invalid MIXER UNIT descriptor %d\n", unitid);
  1341. return -EINVAL;
  1342. }
  1343. /* no bmControls field (e.g. Maya44) -> ignore */
  1344. if (desc->bLength <= 10 + input_pins) {
  1345. snd_printdd(KERN_INFO "MU %d has no bmControls field\n", unitid);
  1346. return 0;
  1347. }
  1348. num_ins = 0;
  1349. ich = 0;
  1350. for (pin = 0; pin < input_pins; pin++) {
  1351. err = parse_audio_unit(state, desc->baSourceID[pin]);
  1352. if (err < 0)
  1353. continue;
  1354. err = check_input_term(state, desc->baSourceID[pin], &iterm);
  1355. if (err < 0)
  1356. return err;
  1357. num_ins += iterm.channels;
  1358. for (; ich < num_ins; ++ich) {
  1359. int och, ich_has_controls = 0;
  1360. for (och = 0; och < num_outs; ++och) {
  1361. if (check_matrix_bitmap(uac_mixer_unit_bmControls(desc, state->mixer->protocol),
  1362. ich, och, num_outs)) {
  1363. ich_has_controls = 1;
  1364. break;
  1365. }
  1366. }
  1367. if (ich_has_controls)
  1368. build_mixer_unit_ctl(state, desc, pin, ich,
  1369. unitid, &iterm);
  1370. }
  1371. }
  1372. return 0;
  1373. }
  1374. /*
  1375. * Processing Unit / Extension Unit
  1376. */
  1377. /* get callback for processing/extension unit */
  1378. static int mixer_ctl_procunit_get(struct snd_kcontrol *kcontrol, struct snd_ctl_elem_value *ucontrol)
  1379. {
  1380. struct usb_mixer_elem_info *cval = kcontrol->private_data;
  1381. int err, val;
  1382. err = get_cur_ctl_value(cval, cval->control << 8, &val);
  1383. if (err < 0 && cval->mixer->ignore_ctl_error) {
  1384. ucontrol->value.integer.value[0] = cval->min;
  1385. return 0;
  1386. }
  1387. if (err < 0)
  1388. return err;
  1389. val = get_relative_value(cval, val);
  1390. ucontrol->value.integer.value[0] = val;
  1391. return 0;
  1392. }
  1393. /* put callback for processing/extension unit */
  1394. static int mixer_ctl_procunit_put(struct snd_kcontrol *kcontrol, struct snd_ctl_elem_value *ucontrol)
  1395. {
  1396. struct usb_mixer_elem_info *cval = kcontrol->private_data;
  1397. int val, oval, err;
  1398. err = get_cur_ctl_value(cval, cval->control << 8, &oval);
  1399. if (err < 0) {
  1400. if (cval->mixer->ignore_ctl_error)
  1401. return 0;
  1402. return err;
  1403. }
  1404. val = ucontrol->value.integer.value[0];
  1405. val = get_abs_value(cval, val);
  1406. if (val != oval) {
  1407. set_cur_ctl_value(cval, cval->control << 8, val);
  1408. return 1;
  1409. }
  1410. return 0;
  1411. }
  1412. /* alsa control interface for processing/extension unit */
  1413. static struct snd_kcontrol_new mixer_procunit_ctl = {
  1414. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  1415. .name = "", /* will be filled later */
  1416. .info = mixer_ctl_feature_info,
  1417. .get = mixer_ctl_procunit_get,
  1418. .put = mixer_ctl_procunit_put,
  1419. };
  1420. /*
  1421. * predefined data for processing units
  1422. */
  1423. struct procunit_value_info {
  1424. int control;
  1425. char *suffix;
  1426. int val_type;
  1427. int min_value;
  1428. };
  1429. struct procunit_info {
  1430. int type;
  1431. char *name;
  1432. struct procunit_value_info *values;
  1433. };
  1434. static struct procunit_value_info updown_proc_info[] = {
  1435. { UAC_UD_ENABLE, "Switch", USB_MIXER_BOOLEAN },
  1436. { UAC_UD_MODE_SELECT, "Mode Select", USB_MIXER_U8, 1 },
  1437. { 0 }
  1438. };
  1439. static struct procunit_value_info prologic_proc_info[] = {
  1440. { UAC_DP_ENABLE, "Switch", USB_MIXER_BOOLEAN },
  1441. { UAC_DP_MODE_SELECT, "Mode Select", USB_MIXER_U8, 1 },
  1442. { 0 }
  1443. };
  1444. static struct procunit_value_info threed_enh_proc_info[] = {
  1445. { UAC_3D_ENABLE, "Switch", USB_MIXER_BOOLEAN },
  1446. { UAC_3D_SPACE, "Spaciousness", USB_MIXER_U8 },
  1447. { 0 }
  1448. };
  1449. static struct procunit_value_info reverb_proc_info[] = {
  1450. { UAC_REVERB_ENABLE, "Switch", USB_MIXER_BOOLEAN },
  1451. { UAC_REVERB_LEVEL, "Level", USB_MIXER_U8 },
  1452. { UAC_REVERB_TIME, "Time", USB_MIXER_U16 },
  1453. { UAC_REVERB_FEEDBACK, "Feedback", USB_MIXER_U8 },
  1454. { 0 }
  1455. };
  1456. static struct procunit_value_info chorus_proc_info[] = {
  1457. { UAC_CHORUS_ENABLE, "Switch", USB_MIXER_BOOLEAN },
  1458. { UAC_CHORUS_LEVEL, "Level", USB_MIXER_U8 },
  1459. { UAC_CHORUS_RATE, "Rate", USB_MIXER_U16 },
  1460. { UAC_CHORUS_DEPTH, "Depth", USB_MIXER_U16 },
  1461. { 0 }
  1462. };
  1463. static struct procunit_value_info dcr_proc_info[] = {
  1464. { UAC_DCR_ENABLE, "Switch", USB_MIXER_BOOLEAN },
  1465. { UAC_DCR_RATE, "Ratio", USB_MIXER_U16 },
  1466. { UAC_DCR_MAXAMPL, "Max Amp", USB_MIXER_S16 },
  1467. { UAC_DCR_THRESHOLD, "Threshold", USB_MIXER_S16 },
  1468. { UAC_DCR_ATTACK_TIME, "Attack Time", USB_MIXER_U16 },
  1469. { UAC_DCR_RELEASE_TIME, "Release Time", USB_MIXER_U16 },
  1470. { 0 }
  1471. };
  1472. static struct procunit_info procunits[] = {
  1473. { UAC_PROCESS_UP_DOWNMIX, "Up Down", updown_proc_info },
  1474. { UAC_PROCESS_DOLBY_PROLOGIC, "Dolby Prologic", prologic_proc_info },
  1475. { UAC_PROCESS_STEREO_EXTENDER, "3D Stereo Extender", threed_enh_proc_info },
  1476. { UAC_PROCESS_REVERB, "Reverb", reverb_proc_info },
  1477. { UAC_PROCESS_CHORUS, "Chorus", chorus_proc_info },
  1478. { UAC_PROCESS_DYN_RANGE_COMP, "DCR", dcr_proc_info },
  1479. { 0 },
  1480. };
  1481. /*
  1482. * predefined data for extension units
  1483. */
  1484. static struct procunit_value_info clock_rate_xu_info[] = {
  1485. { USB_XU_CLOCK_RATE_SELECTOR, "Selector", USB_MIXER_U8, 0 },
  1486. { 0 }
  1487. };
  1488. static struct procunit_value_info clock_source_xu_info[] = {
  1489. { USB_XU_CLOCK_SOURCE_SELECTOR, "External", USB_MIXER_BOOLEAN },
  1490. { 0 }
  1491. };
  1492. static struct procunit_value_info spdif_format_xu_info[] = {
  1493. { USB_XU_DIGITAL_FORMAT_SELECTOR, "SPDIF/AC3", USB_MIXER_BOOLEAN },
  1494. { 0 }
  1495. };
  1496. static struct procunit_value_info soft_limit_xu_info[] = {
  1497. { USB_XU_SOFT_LIMIT_SELECTOR, " ", USB_MIXER_BOOLEAN },
  1498. { 0 }
  1499. };
  1500. static struct procunit_info extunits[] = {
  1501. { USB_XU_CLOCK_RATE, "Clock rate", clock_rate_xu_info },
  1502. { USB_XU_CLOCK_SOURCE, "DigitalIn CLK source", clock_source_xu_info },
  1503. { USB_XU_DIGITAL_IO_STATUS, "DigitalOut format:", spdif_format_xu_info },
  1504. { USB_XU_DEVICE_OPTIONS, "AnalogueIn Soft Limit", soft_limit_xu_info },
  1505. { 0 }
  1506. };
  1507. /*
  1508. * build a processing/extension unit
  1509. */
  1510. static int build_audio_procunit(struct mixer_build *state, int unitid, void *raw_desc, struct procunit_info *list, char *name)
  1511. {
  1512. struct uac_processing_unit_descriptor *desc = raw_desc;
  1513. int num_ins = desc->bNrInPins;
  1514. struct usb_mixer_elem_info *cval;
  1515. struct snd_kcontrol *kctl;
  1516. int i, err, nameid, type, len;
  1517. struct procunit_info *info;
  1518. struct procunit_value_info *valinfo;
  1519. const struct usbmix_name_map *map;
  1520. static struct procunit_value_info default_value_info[] = {
  1521. { 0x01, "Switch", USB_MIXER_BOOLEAN },
  1522. { 0 }
  1523. };
  1524. static struct procunit_info default_info = {
  1525. 0, NULL, default_value_info
  1526. };
  1527. if (desc->bLength < 13 || desc->bLength < 13 + num_ins ||
  1528. desc->bLength < num_ins + uac_processing_unit_bControlSize(desc, state->mixer->protocol)) {
  1529. snd_printk(KERN_ERR "invalid %s descriptor (id %d)\n", name, unitid);
  1530. return -EINVAL;
  1531. }
  1532. for (i = 0; i < num_ins; i++) {
  1533. if ((err = parse_audio_unit(state, desc->baSourceID[i])) < 0)
  1534. return err;
  1535. }
  1536. type = le16_to_cpu(desc->wProcessType);
  1537. for (info = list; info && info->type; info++)
  1538. if (info->type == type)
  1539. break;
  1540. if (! info || ! info->type)
  1541. info = &default_info;
  1542. for (valinfo = info->values; valinfo->control; valinfo++) {
  1543. __u8 *controls = uac_processing_unit_bmControls(desc, state->mixer->protocol);
  1544. if (! (controls[valinfo->control / 8] & (1 << ((valinfo->control % 8) - 1))))
  1545. continue;
  1546. map = find_map(state, unitid, valinfo->control);
  1547. if (check_ignored_ctl(map))
  1548. continue;
  1549. cval = kzalloc(sizeof(*cval), GFP_KERNEL);
  1550. if (! cval) {
  1551. snd_printk(KERN_ERR "cannot malloc kcontrol\n");
  1552. return -ENOMEM;
  1553. }
  1554. cval->mixer = state->mixer;
  1555. cval->id = unitid;
  1556. cval->control = valinfo->control;
  1557. cval->val_type = valinfo->val_type;
  1558. cval->channels = 1;
  1559. /* get min/max values */
  1560. if (type == UAC_PROCESS_UP_DOWNMIX && cval->control == UAC_UD_MODE_SELECT) {
  1561. __u8 *control_spec = uac_processing_unit_specific(desc, state->mixer->protocol);
  1562. /* FIXME: hard-coded */
  1563. cval->min = 1;
  1564. cval->max = control_spec[0];
  1565. cval->res = 1;
  1566. cval->initialized = 1;
  1567. } else {
  1568. if (type == USB_XU_CLOCK_RATE) {
  1569. /* E-Mu USB 0404/0202/TrackerPre/0204
  1570. * samplerate control quirk
  1571. */
  1572. cval->min = 0;
  1573. cval->max = 5;
  1574. cval->res = 1;
  1575. cval->initialized = 1;
  1576. } else
  1577. get_min_max(cval, valinfo->min_value);
  1578. }
  1579. kctl = snd_ctl_new1(&mixer_procunit_ctl, cval);
  1580. if (! kctl) {
  1581. snd_printk(KERN_ERR "cannot malloc kcontrol\n");
  1582. kfree(cval);
  1583. return -ENOMEM;
  1584. }
  1585. kctl->private_free = usb_mixer_elem_free;
  1586. if (check_mapped_name(map, kctl->id.name,
  1587. sizeof(kctl->id.name)))
  1588. /* nothing */ ;
  1589. else if (info->name)
  1590. strlcpy(kctl->id.name, info->name, sizeof(kctl->id.name));
  1591. else {
  1592. nameid = uac_processing_unit_iProcessing(desc, state->mixer->protocol);
  1593. len = 0;
  1594. if (nameid)
  1595. len = snd_usb_copy_string_desc(state, nameid, kctl->id.name, sizeof(kctl->id.name));
  1596. if (! len)
  1597. strlcpy(kctl->id.name, name, sizeof(kctl->id.name));
  1598. }
  1599. append_ctl_name(kctl, " ");
  1600. append_ctl_name(kctl, valinfo->suffix);
  1601. snd_printdd(KERN_INFO "[%d] PU [%s] ch = %d, val = %d/%d\n",
  1602. cval->id, kctl->id.name, cval->channels, cval->min, cval->max);
  1603. if ((err = snd_usb_mixer_add_control(state->mixer, kctl)) < 0)
  1604. return err;
  1605. }
  1606. return 0;
  1607. }
  1608. static int parse_audio_processing_unit(struct mixer_build *state, int unitid, void *raw_desc)
  1609. {
  1610. return build_audio_procunit(state, unitid, raw_desc, procunits, "Processing Unit");
  1611. }
  1612. static int parse_audio_extension_unit(struct mixer_build *state, int unitid, void *raw_desc)
  1613. {
  1614. /* Note that we parse extension units with processing unit descriptors.
  1615. * That's ok as the layout is the same */
  1616. return build_audio_procunit(state, unitid, raw_desc, extunits, "Extension Unit");
  1617. }
  1618. /*
  1619. * Selector Unit
  1620. */
  1621. /* info callback for selector unit
  1622. * use an enumerator type for routing
  1623. */
  1624. static int mixer_ctl_selector_info(struct snd_kcontrol *kcontrol, struct snd_ctl_elem_info *uinfo)
  1625. {
  1626. struct usb_mixer_elem_info *cval = kcontrol->private_data;
  1627. const char **itemlist = (const char **)kcontrol->private_value;
  1628. if (snd_BUG_ON(!itemlist))
  1629. return -EINVAL;
  1630. return snd_ctl_enum_info(uinfo, 1, cval->max, itemlist);
  1631. }
  1632. /* get callback for selector unit */
  1633. static int mixer_ctl_selector_get(struct snd_kcontrol *kcontrol, struct snd_ctl_elem_value *ucontrol)
  1634. {
  1635. struct usb_mixer_elem_info *cval = kcontrol->private_data;
  1636. int val, err;
  1637. err = get_cur_ctl_value(cval, cval->control << 8, &val);
  1638. if (err < 0) {
  1639. if (cval->mixer->ignore_ctl_error) {
  1640. ucontrol->value.enumerated.item[0] = 0;
  1641. return 0;
  1642. }
  1643. return err;
  1644. }
  1645. val = get_relative_value(cval, val);
  1646. ucontrol->value.enumerated.item[0] = val;
  1647. return 0;
  1648. }
  1649. /* put callback for selector unit */
  1650. static int mixer_ctl_selector_put(struct snd_kcontrol *kcontrol, struct snd_ctl_elem_value *ucontrol)
  1651. {
  1652. struct usb_mixer_elem_info *cval = kcontrol->private_data;
  1653. int val, oval, err;
  1654. err = get_cur_ctl_value(cval, cval->control << 8, &oval);
  1655. if (err < 0) {
  1656. if (cval->mixer->ignore_ctl_error)
  1657. return 0;
  1658. return err;
  1659. }
  1660. val = ucontrol->value.enumerated.item[0];
  1661. val = get_abs_value(cval, val);
  1662. if (val != oval) {
  1663. set_cur_ctl_value(cval, cval->control << 8, val);
  1664. return 1;
  1665. }
  1666. return 0;
  1667. }
  1668. /* alsa control interface for selector unit */
  1669. static struct snd_kcontrol_new mixer_selectunit_ctl = {
  1670. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  1671. .name = "", /* will be filled later */
  1672. .info = mixer_ctl_selector_info,
  1673. .get = mixer_ctl_selector_get,
  1674. .put = mixer_ctl_selector_put,
  1675. };
  1676. /* private free callback.
  1677. * free both private_data and private_value
  1678. */
  1679. static void usb_mixer_selector_elem_free(struct snd_kcontrol *kctl)
  1680. {
  1681. int i, num_ins = 0;
  1682. if (kctl->private_data) {
  1683. struct usb_mixer_elem_info *cval = kctl->private_data;
  1684. num_ins = cval->max;
  1685. kfree(cval);
  1686. kctl->private_data = NULL;
  1687. }
  1688. if (kctl->private_value) {
  1689. char **itemlist = (char **)kctl->private_value;
  1690. for (i = 0; i < num_ins; i++)
  1691. kfree(itemlist[i]);
  1692. kfree(itemlist);
  1693. kctl->private_value = 0;
  1694. }
  1695. }
  1696. /*
  1697. * parse a selector unit
  1698. */
  1699. static int parse_audio_selector_unit(struct mixer_build *state, int unitid, void *raw_desc)
  1700. {
  1701. struct uac_selector_unit_descriptor *desc = raw_desc;
  1702. unsigned int i, nameid, len;
  1703. int err;
  1704. struct usb_mixer_elem_info *cval;
  1705. struct snd_kcontrol *kctl;
  1706. const struct usbmix_name_map *map;
  1707. char **namelist;
  1708. if (!desc->bNrInPins || desc->bLength < 5 + desc->bNrInPins) {
  1709. snd_printk(KERN_ERR "invalid SELECTOR UNIT descriptor %d\n", unitid);
  1710. return -EINVAL;
  1711. }
  1712. for (i = 0; i < desc->bNrInPins; i++) {
  1713. if ((err = parse_audio_unit(state, desc->baSourceID[i])) < 0)
  1714. return err;
  1715. }
  1716. if (desc->bNrInPins == 1) /* only one ? nonsense! */
  1717. return 0;
  1718. map = find_map(state, unitid, 0);
  1719. if (check_ignored_ctl(map))
  1720. return 0;
  1721. cval = kzalloc(sizeof(*cval), GFP_KERNEL);
  1722. if (! cval) {
  1723. snd_printk(KERN_ERR "cannot malloc kcontrol\n");
  1724. return -ENOMEM;
  1725. }
  1726. cval->mixer = state->mixer;
  1727. cval->id = unitid;
  1728. cval->val_type = USB_MIXER_U8;
  1729. cval->channels = 1;
  1730. cval->min = 1;
  1731. cval->max = desc->bNrInPins;
  1732. cval->res = 1;
  1733. cval->initialized = 1;
  1734. if (desc->bDescriptorSubtype == UAC2_CLOCK_SELECTOR)
  1735. cval->control = UAC2_CX_CLOCK_SELECTOR;
  1736. else
  1737. cval->control = 0;
  1738. namelist = kmalloc(sizeof(char *) * desc->bNrInPins, GFP_KERNEL);
  1739. if (! namelist) {
  1740. snd_printk(KERN_ERR "cannot malloc\n");
  1741. kfree(cval);
  1742. return -ENOMEM;
  1743. }
  1744. #define MAX_ITEM_NAME_LEN 64
  1745. for (i = 0; i < desc->bNrInPins; i++) {
  1746. struct usb_audio_term iterm;
  1747. len = 0;
  1748. namelist[i] = kmalloc(MAX_ITEM_NAME_LEN, GFP_KERNEL);
  1749. if (! namelist[i]) {
  1750. snd_printk(KERN_ERR "cannot malloc\n");
  1751. while (i--)
  1752. kfree(namelist[i]);
  1753. kfree(namelist);
  1754. kfree(cval);
  1755. return -ENOMEM;
  1756. }
  1757. len = check_mapped_selector_name(state, unitid, i, namelist[i],
  1758. MAX_ITEM_NAME_LEN);
  1759. if (! len && check_input_term(state, desc->baSourceID[i], &iterm) >= 0)
  1760. len = get_term_name(state, &iterm, namelist[i], MAX_ITEM_NAME_LEN, 0);
  1761. if (! len)
  1762. sprintf(namelist[i], "Input %d", i);
  1763. }
  1764. kctl = snd_ctl_new1(&mixer_selectunit_ctl, cval);
  1765. if (! kctl) {
  1766. snd_printk(KERN_ERR "cannot malloc kcontrol\n");
  1767. kfree(namelist);
  1768. kfree(cval);
  1769. return -ENOMEM;
  1770. }
  1771. kctl->private_value = (unsigned long)namelist;
  1772. kctl->private_free = usb_mixer_selector_elem_free;
  1773. nameid = uac_selector_unit_iSelector(desc);
  1774. len = check_mapped_name(map, kctl->id.name, sizeof(kctl->id.name));
  1775. if (len)
  1776. ;
  1777. else if (nameid)
  1778. snd_usb_copy_string_desc(state, nameid, kctl->id.name, sizeof(kctl->id.name));
  1779. else {
  1780. len = get_term_name(state, &state->oterm,
  1781. kctl->id.name, sizeof(kctl->id.name), 0);
  1782. if (! len)
  1783. strlcpy(kctl->id.name, "USB", sizeof(kctl->id.name));
  1784. if (desc->bDescriptorSubtype == UAC2_CLOCK_SELECTOR)
  1785. append_ctl_name(kctl, " Clock Source");
  1786. else if ((state->oterm.type & 0xff00) == 0x0100)
  1787. append_ctl_name(kctl, " Capture Source");
  1788. else
  1789. append_ctl_name(kctl, " Playback Source");
  1790. }
  1791. snd_printdd(KERN_INFO "[%d] SU [%s] items = %d\n",
  1792. cval->id, kctl->id.name, desc->bNrInPins);
  1793. if ((err = snd_usb_mixer_add_control(state->mixer, kctl)) < 0)
  1794. return err;
  1795. return 0;
  1796. }
  1797. /*
  1798. * parse an audio unit recursively
  1799. */
  1800. static int parse_audio_unit(struct mixer_build *state, int unitid)
  1801. {
  1802. unsigned char *p1;
  1803. if (test_and_set_bit(unitid, state->unitbitmap))
  1804. return 0; /* the unit already visited */
  1805. p1 = find_audio_control_unit(state, unitid);
  1806. if (!p1) {
  1807. snd_printk(KERN_ERR "usbaudio: unit %d not found!\n", unitid);
  1808. return -EINVAL;
  1809. }
  1810. switch (p1[2]) {
  1811. case UAC_INPUT_TERMINAL:
  1812. case UAC2_CLOCK_SOURCE:
  1813. return 0; /* NOP */
  1814. case UAC_MIXER_UNIT:
  1815. return parse_audio_mixer_unit(state, unitid, p1);
  1816. case UAC_SELECTOR_UNIT:
  1817. case UAC2_CLOCK_SELECTOR:
  1818. return parse_audio_selector_unit(state, unitid, p1);
  1819. case UAC_FEATURE_UNIT:
  1820. return parse_audio_feature_unit(state, unitid, p1);
  1821. case UAC1_PROCESSING_UNIT:
  1822. /* UAC2_EFFECT_UNIT has the same value */
  1823. if (state->mixer->protocol == UAC_VERSION_1)
  1824. return parse_audio_processing_unit(state, unitid, p1);
  1825. else
  1826. return 0; /* FIXME - effect units not implemented yet */
  1827. case UAC1_EXTENSION_UNIT:
  1828. /* UAC2_PROCESSING_UNIT_V2 has the same value */
  1829. if (state->mixer->protocol == UAC_VERSION_1)
  1830. return parse_audio_extension_unit(state, unitid, p1);
  1831. else /* UAC_VERSION_2 */
  1832. return parse_audio_processing_unit(state, unitid, p1);
  1833. default:
  1834. snd_printk(KERN_ERR "usbaudio: unit %u: unexpected type 0x%02x\n", unitid, p1[2]);
  1835. return -EINVAL;
  1836. }
  1837. }
  1838. static void snd_usb_mixer_free(struct usb_mixer_interface *mixer)
  1839. {
  1840. kfree(mixer->id_elems);
  1841. if (mixer->urb) {
  1842. kfree(mixer->urb->transfer_buffer);
  1843. usb_free_urb(mixer->urb);
  1844. }
  1845. usb_free_urb(mixer->rc_urb);
  1846. kfree(mixer->rc_setup_packet);
  1847. kfree(mixer);
  1848. }
  1849. static int snd_usb_mixer_dev_free(struct snd_device *device)
  1850. {
  1851. struct usb_mixer_interface *mixer = device->device_data;
  1852. snd_usb_mixer_free(mixer);
  1853. return 0;
  1854. }
  1855. /*
  1856. * create mixer controls
  1857. *
  1858. * walk through all UAC_OUTPUT_TERMINAL descriptors to search for mixers
  1859. */
  1860. static int snd_usb_mixer_controls(struct usb_mixer_interface *mixer)
  1861. {
  1862. struct mixer_build state;
  1863. int err;
  1864. const struct usbmix_ctl_map *map;
  1865. void *p;
  1866. memset(&state, 0, sizeof(state));
  1867. state.chip = mixer->chip;
  1868. state.mixer = mixer;
  1869. state.buffer = mixer->hostif->extra;
  1870. state.buflen = mixer->hostif->extralen;
  1871. /* check the mapping table */
  1872. for (map = usbmix_ctl_maps; map->id; map++) {
  1873. if (map->id == state.chip->usb_id) {
  1874. state.map = map->map;
  1875. state.selector_map = map->selector_map;
  1876. mixer->ignore_ctl_error = map->ignore_ctl_error;
  1877. break;
  1878. }
  1879. }
  1880. p = NULL;
  1881. while ((p = snd_usb_find_csint_desc(mixer->hostif->extra, mixer->hostif->extralen,
  1882. p, UAC_OUTPUT_TERMINAL)) != NULL) {
  1883. if (mixer->protocol == UAC_VERSION_1) {
  1884. struct uac1_output_terminal_descriptor *desc = p;
  1885. if (desc->bLength < sizeof(*desc))
  1886. continue; /* invalid descriptor? */
  1887. set_bit(desc->bTerminalID, state.unitbitmap); /* mark terminal ID as visited */
  1888. state.oterm.id = desc->bTerminalID;
  1889. state.oterm.type = le16_to_cpu(desc->wTerminalType);
  1890. state.oterm.name = desc->iTerminal;
  1891. err = parse_audio_unit(&state, desc->bSourceID);
  1892. if (err < 0)
  1893. return err;
  1894. } else { /* UAC_VERSION_2 */
  1895. struct uac2_output_terminal_descriptor *desc = p;
  1896. if (desc->bLength < sizeof(*desc))
  1897. continue; /* invalid descriptor? */
  1898. set_bit(desc->bTerminalID, state.unitbitmap); /* mark terminal ID as visited */
  1899. state.oterm.id = desc->bTerminalID;
  1900. state.oterm.type = le16_to_cpu(desc->wTerminalType);
  1901. state.oterm.name = desc->iTerminal;
  1902. err = parse_audio_unit(&state, desc->bSourceID);
  1903. if (err < 0)
  1904. return err;
  1905. /* for UAC2, use the same approach to also add the clock selectors */
  1906. err = parse_audio_unit(&state, desc->bCSourceID);
  1907. if (err < 0)
  1908. return err;
  1909. }
  1910. }
  1911. return 0;
  1912. }
  1913. void snd_usb_mixer_notify_id(struct usb_mixer_interface *mixer, int unitid)
  1914. {
  1915. struct usb_mixer_elem_info *info;
  1916. for (info = mixer->id_elems[unitid]; info; info = info->next_id_elem)
  1917. snd_ctl_notify(mixer->chip->card, SNDRV_CTL_EVENT_MASK_VALUE,
  1918. info->elem_id);
  1919. }
  1920. static void snd_usb_mixer_dump_cval(struct snd_info_buffer *buffer,
  1921. int unitid,
  1922. struct usb_mixer_elem_info *cval)
  1923. {
  1924. static char *val_types[] = {"BOOLEAN", "INV_BOOLEAN",
  1925. "S8", "U8", "S16", "U16"};
  1926. snd_iprintf(buffer, " Unit: %i\n", unitid);
  1927. if (cval->elem_id)
  1928. snd_iprintf(buffer, " Control: name=\"%s\", index=%i\n",
  1929. cval->elem_id->name, cval->elem_id->index);
  1930. snd_iprintf(buffer, " Info: id=%i, control=%i, cmask=0x%x, "
  1931. "channels=%i, type=\"%s\"\n", cval->id,
  1932. cval->control, cval->cmask, cval->channels,
  1933. val_types[cval->val_type]);
  1934. snd_iprintf(buffer, " Volume: min=%i, max=%i, dBmin=%i, dBmax=%i\n",
  1935. cval->min, cval->max, cval->dBmin, cval->dBmax);
  1936. }
  1937. static void snd_usb_mixer_proc_read(struct snd_info_entry *entry,
  1938. struct snd_info_buffer *buffer)
  1939. {
  1940. struct snd_usb_audio *chip = entry->private_data;
  1941. struct usb_mixer_interface *mixer;
  1942. struct usb_mixer_elem_info *cval;
  1943. int unitid;
  1944. list_for_each_entry(mixer, &chip->mixer_list, list) {
  1945. snd_iprintf(buffer,
  1946. "USB Mixer: usb_id=0x%08x, ctrlif=%i, ctlerr=%i\n",
  1947. chip->usb_id, snd_usb_ctrl_intf(chip),
  1948. mixer->ignore_ctl_error);
  1949. snd_iprintf(buffer, "Card: %s\n", chip->card->longname);
  1950. for (unitid = 0; unitid < MAX_ID_ELEMS; unitid++) {
  1951. for (cval = mixer->id_elems[unitid]; cval;
  1952. cval = cval->next_id_elem)
  1953. snd_usb_mixer_dump_cval(buffer, unitid, cval);
  1954. }
  1955. }
  1956. }
  1957. static void snd_usb_mixer_interrupt_v2(struct usb_mixer_interface *mixer,
  1958. int attribute, int value, int index)
  1959. {
  1960. struct usb_mixer_elem_info *info;
  1961. __u8 unitid = (index >> 8) & 0xff;
  1962. __u8 control = (value >> 8) & 0xff;
  1963. __u8 channel = value & 0xff;
  1964. if (channel >= MAX_CHANNELS) {
  1965. snd_printk(KERN_DEBUG "%s(): bogus channel number %d\n",
  1966. __func__, channel);
  1967. return;
  1968. }
  1969. for (info = mixer->id_elems[unitid]; info; info = info->next_id_elem) {
  1970. if (info->control != control)
  1971. continue;
  1972. switch (attribute) {
  1973. case UAC2_CS_CUR:
  1974. /* invalidate cache, so the value is read from the device */
  1975. if (channel)
  1976. info->cached &= ~(1 << channel);
  1977. else /* master channel */
  1978. info->cached = 0;
  1979. snd_ctl_notify(mixer->chip->card, SNDRV_CTL_EVENT_MASK_VALUE,
  1980. info->elem_id);
  1981. break;
  1982. case UAC2_CS_RANGE:
  1983. /* TODO */
  1984. break;
  1985. case UAC2_CS_MEM:
  1986. /* TODO */
  1987. break;
  1988. default:
  1989. snd_printk(KERN_DEBUG "unknown attribute %d in interrupt\n",
  1990. attribute);
  1991. break;
  1992. } /* switch */
  1993. }
  1994. }
  1995. static void snd_usb_mixer_interrupt(struct urb *urb)
  1996. {
  1997. struct usb_mixer_interface *mixer = urb->context;
  1998. int len = urb->actual_length;
  1999. int ustatus = urb->status;
  2000. if (ustatus != 0)
  2001. goto requeue;
  2002. if (mixer->protocol == UAC_VERSION_1) {
  2003. struct uac1_status_word *status;
  2004. for (status = urb->transfer_buffer;
  2005. len >= sizeof(*status);
  2006. len -= sizeof(*status), status++) {
  2007. snd_printd(KERN_DEBUG "status interrupt: %02x %02x\n",
  2008. status->bStatusType,
  2009. status->bOriginator);
  2010. /* ignore any notifications not from the control interface */
  2011. if ((status->bStatusType & UAC1_STATUS_TYPE_ORIG_MASK) !=
  2012. UAC1_STATUS_TYPE_ORIG_AUDIO_CONTROL_IF)
  2013. continue;
  2014. if (status->bStatusType & UAC1_STATUS_TYPE_MEM_CHANGED)
  2015. snd_usb_mixer_rc_memory_change(mixer, status->bOriginator);
  2016. else
  2017. snd_usb_mixer_notify_id(mixer, status->bOriginator);
  2018. }
  2019. } else { /* UAC_VERSION_2 */
  2020. struct uac2_interrupt_data_msg *msg;
  2021. for (msg = urb->transfer_buffer;
  2022. len >= sizeof(*msg);
  2023. len -= sizeof(*msg), msg++) {
  2024. /* drop vendor specific and endpoint requests */
  2025. if ((msg->bInfo & UAC2_INTERRUPT_DATA_MSG_VENDOR) ||
  2026. (msg->bInfo & UAC2_INTERRUPT_DATA_MSG_EP))
  2027. continue;
  2028. snd_usb_mixer_interrupt_v2(mixer, msg->bAttribute,
  2029. le16_to_cpu(msg->wValue),
  2030. le16_to_cpu(msg->wIndex));
  2031. }
  2032. }
  2033. requeue:
  2034. if (ustatus != -ENOENT && ustatus != -ECONNRESET && ustatus != -ESHUTDOWN) {
  2035. urb->dev = mixer->chip->dev;
  2036. usb_submit_urb(urb, GFP_ATOMIC);
  2037. }
  2038. }
  2039. /* stop any bus activity of a mixer */
  2040. void snd_usb_mixer_inactivate(struct usb_mixer_interface *mixer)
  2041. {
  2042. usb_kill_urb(mixer->urb);
  2043. usb_kill_urb(mixer->rc_urb);
  2044. }
  2045. int snd_usb_mixer_activate(struct usb_mixer_interface *mixer)
  2046. {
  2047. int err;
  2048. if (mixer->urb) {
  2049. err = usb_submit_urb(mixer->urb, GFP_NOIO);
  2050. if (err < 0)
  2051. return err;
  2052. }
  2053. return 0;
  2054. }
  2055. /* create the handler for the optional status interrupt endpoint */
  2056. static int snd_usb_mixer_status_create(struct usb_mixer_interface *mixer)
  2057. {
  2058. struct usb_endpoint_descriptor *ep;
  2059. void *transfer_buffer;
  2060. int buffer_length;
  2061. unsigned int epnum;
  2062. /* we need one interrupt input endpoint */
  2063. if (get_iface_desc(mixer->hostif)->bNumEndpoints < 1)
  2064. return 0;
  2065. ep = get_endpoint(mixer->hostif, 0);
  2066. if (!usb_endpoint_dir_in(ep) || !usb_endpoint_xfer_int(ep))
  2067. return 0;
  2068. epnum = usb_endpoint_num(ep);
  2069. buffer_length = le16_to_cpu(ep->wMaxPacketSize);
  2070. transfer_buffer = kmalloc(buffer_length, GFP_KERNEL);
  2071. if (!transfer_buffer)
  2072. return -ENOMEM;
  2073. mixer->urb = usb_alloc_urb(0, GFP_KERNEL);
  2074. if (!mixer->urb) {
  2075. kfree(transfer_buffer);
  2076. return -ENOMEM;
  2077. }
  2078. usb_fill_int_urb(mixer->urb, mixer->chip->dev,
  2079. usb_rcvintpipe(mixer->chip->dev, epnum),
  2080. transfer_buffer, buffer_length,
  2081. snd_usb_mixer_interrupt, mixer, ep->bInterval);
  2082. usb_submit_urb(mixer->urb, GFP_KERNEL);
  2083. return 0;
  2084. }
  2085. int snd_usb_create_mixer(struct snd_usb_audio *chip, int ctrlif,
  2086. int ignore_error)
  2087. {
  2088. static struct snd_device_ops dev_ops = {
  2089. .dev_free = snd_usb_mixer_dev_free
  2090. };
  2091. struct usb_mixer_interface *mixer;
  2092. struct snd_info_entry *entry;
  2093. int err;
  2094. strcpy(chip->card->mixername, "USB Mixer");
  2095. mixer = kzalloc(sizeof(*mixer), GFP_KERNEL);
  2096. if (!mixer)
  2097. return -ENOMEM;
  2098. mixer->chip = chip;
  2099. mixer->ignore_ctl_error = ignore_error;
  2100. mixer->id_elems = kcalloc(MAX_ID_ELEMS, sizeof(*mixer->id_elems),
  2101. GFP_KERNEL);
  2102. if (!mixer->id_elems) {
  2103. kfree(mixer);
  2104. return -ENOMEM;
  2105. }
  2106. mixer->hostif = &usb_ifnum_to_if(chip->dev, ctrlif)->altsetting[0];
  2107. switch (get_iface_desc(mixer->hostif)->bInterfaceProtocol) {
  2108. case UAC_VERSION_1:
  2109. default:
  2110. mixer->protocol = UAC_VERSION_1;
  2111. break;
  2112. case UAC_VERSION_2:
  2113. mixer->protocol = UAC_VERSION_2;
  2114. break;
  2115. }
  2116. if ((err = snd_usb_mixer_controls(mixer)) < 0 ||
  2117. (err = snd_usb_mixer_status_create(mixer)) < 0)
  2118. goto _error;
  2119. snd_usb_mixer_apply_create_quirk(mixer);
  2120. err = snd_device_new(chip->card, SNDRV_DEV_LOWLEVEL, mixer, &dev_ops);
  2121. if (err < 0)
  2122. goto _error;
  2123. if (list_empty(&chip->mixer_list) &&
  2124. !snd_card_proc_new(chip->card, "usbmixer", &entry))
  2125. snd_info_set_text_ops(entry, chip, snd_usb_mixer_proc_read);
  2126. list_add(&mixer->list, &chip->mixer_list);
  2127. return 0;
  2128. _error:
  2129. snd_usb_mixer_free(mixer);
  2130. return err;
  2131. }
  2132. void snd_usb_mixer_disconnect(struct list_head *p)
  2133. {
  2134. struct usb_mixer_interface *mixer;
  2135. mixer = list_entry(p, struct usb_mixer_interface, list);
  2136. usb_kill_urb(mixer->urb);
  2137. usb_kill_urb(mixer->rc_urb);
  2138. }