mixer_quirks.c 123 KB

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  1. // SPDX-License-Identifier: GPL-2.0-or-later
  2. /*
  3. * USB Audio Driver for ALSA
  4. *
  5. * Quirks and vendor-specific extensions for mixer interfaces
  6. *
  7. * Copyright (c) 2002 by Takashi Iwai <tiwai@suse.de>
  8. *
  9. * Many codes borrowed from audio.c by
  10. * Alan Cox (alan@lxorguk.ukuu.org.uk)
  11. * Thomas Sailer (sailer@ife.ee.ethz.ch)
  12. *
  13. * Audio Advantage Micro II support added by:
  14. * Przemek Rudy (prudy1@o2.pl)
  15. */
  16. #include <linux/bitfield.h>
  17. #include <linux/hid.h>
  18. #include <linux/init.h>
  19. #include <linux/input.h>
  20. #include <linux/math64.h>
  21. #include <linux/slab.h>
  22. #include <linux/usb.h>
  23. #include <linux/usb/audio.h>
  24. #include <sound/asoundef.h>
  25. #include <sound/core.h>
  26. #include <sound/control.h>
  27. #include <sound/hda_verbs.h>
  28. #include <sound/hwdep.h>
  29. #include <sound/info.h>
  30. #include <sound/tlv.h>
  31. #include "usbaudio.h"
  32. #include "mixer.h"
  33. #include "mixer_quirks.h"
  34. #include "mixer_scarlett.h"
  35. #include "mixer_scarlett2.h"
  36. #include "mixer_us16x08.h"
  37. #include "mixer_s1810c.h"
  38. #include "helper.h"
  39. struct std_mono_table {
  40. unsigned int unitid, control, cmask;
  41. int val_type;
  42. const char *name;
  43. snd_kcontrol_tlv_rw_t *tlv_callback;
  44. };
  45. /* This function allows for the creation of standard UAC controls.
  46. * See the quirks for M-Audio FTUs or Ebox-44.
  47. * If you don't want to set a TLV callback pass NULL.
  48. *
  49. * Since there doesn't seem to be a devices that needs a multichannel
  50. * version, we keep it mono for simplicity.
  51. */
  52. static int snd_create_std_mono_ctl_offset(struct usb_mixer_interface *mixer,
  53. unsigned int unitid,
  54. unsigned int control,
  55. unsigned int cmask,
  56. int val_type,
  57. unsigned int idx_off,
  58. const char *name,
  59. snd_kcontrol_tlv_rw_t *tlv_callback)
  60. {
  61. struct usb_mixer_elem_info *cval;
  62. struct snd_kcontrol *kctl;
  63. cval = kzalloc(sizeof(*cval), GFP_KERNEL);
  64. if (!cval)
  65. return -ENOMEM;
  66. snd_usb_mixer_elem_init_std(&cval->head, mixer, unitid);
  67. cval->val_type = val_type;
  68. cval->channels = 1;
  69. cval->control = control;
  70. cval->cmask = cmask;
  71. cval->idx_off = idx_off;
  72. /* get_min_max() is called only for integer volumes later,
  73. * so provide a short-cut for booleans
  74. */
  75. cval->min = 0;
  76. cval->max = 1;
  77. cval->res = 0;
  78. cval->dBmin = 0;
  79. cval->dBmax = 0;
  80. /* Create control */
  81. kctl = snd_ctl_new1(snd_usb_feature_unit_ctl, cval);
  82. if (!kctl) {
  83. kfree(cval);
  84. return -ENOMEM;
  85. }
  86. /* Set name */
  87. snprintf(kctl->id.name, sizeof(kctl->id.name), name);
  88. kctl->private_free = snd_usb_mixer_elem_free;
  89. /* set TLV */
  90. if (tlv_callback) {
  91. kctl->tlv.c = tlv_callback;
  92. kctl->vd[0].access |=
  93. SNDRV_CTL_ELEM_ACCESS_TLV_READ |
  94. SNDRV_CTL_ELEM_ACCESS_TLV_CALLBACK;
  95. }
  96. /* Add control to mixer */
  97. return snd_usb_mixer_add_control(&cval->head, kctl);
  98. }
  99. static int snd_create_std_mono_ctl(struct usb_mixer_interface *mixer,
  100. unsigned int unitid,
  101. unsigned int control,
  102. unsigned int cmask,
  103. int val_type,
  104. const char *name,
  105. snd_kcontrol_tlv_rw_t *tlv_callback)
  106. {
  107. return snd_create_std_mono_ctl_offset(mixer, unitid, control, cmask,
  108. val_type, 0 /* Offset */,
  109. name, tlv_callback);
  110. }
  111. /*
  112. * Create a set of standard UAC controls from a table
  113. */
  114. static int snd_create_std_mono_table(struct usb_mixer_interface *mixer,
  115. const struct std_mono_table *t)
  116. {
  117. int err;
  118. while (t->name) {
  119. err = snd_create_std_mono_ctl(mixer, t->unitid, t->control,
  120. t->cmask, t->val_type, t->name,
  121. t->tlv_callback);
  122. if (err < 0)
  123. return err;
  124. t++;
  125. }
  126. return 0;
  127. }
  128. static int add_single_ctl_with_resume(struct usb_mixer_interface *mixer,
  129. int id,
  130. usb_mixer_elem_resume_func_t resume,
  131. const struct snd_kcontrol_new *knew,
  132. struct usb_mixer_elem_list **listp)
  133. {
  134. struct usb_mixer_elem_list *list;
  135. struct snd_kcontrol *kctl;
  136. list = kzalloc(sizeof(*list), GFP_KERNEL);
  137. if (!list)
  138. return -ENOMEM;
  139. if (listp)
  140. *listp = list;
  141. list->mixer = mixer;
  142. list->id = id;
  143. list->resume = resume;
  144. kctl = snd_ctl_new1(knew, list);
  145. if (!kctl) {
  146. kfree(list);
  147. return -ENOMEM;
  148. }
  149. kctl->private_free = snd_usb_mixer_elem_free;
  150. /* don't use snd_usb_mixer_add_control() here, this is a special list element */
  151. return snd_usb_mixer_add_list(list, kctl, false);
  152. }
  153. /*
  154. * Sound Blaster remote control configuration
  155. *
  156. * format of remote control data:
  157. * Extigy: xx 00
  158. * Audigy 2 NX: 06 80 xx 00 00 00
  159. * Live! 24-bit: 06 80 xx yy 22 83
  160. */
  161. static const struct rc_config {
  162. u32 usb_id;
  163. u8 offset;
  164. u8 length;
  165. u8 packet_length;
  166. u8 min_packet_length; /* minimum accepted length of the URB result */
  167. u8 mute_mixer_id;
  168. u32 mute_code;
  169. } rc_configs[] = {
  170. { USB_ID(0x041e, 0x3000), 0, 1, 2, 1, 18, 0x0013 }, /* Extigy */
  171. { USB_ID(0x041e, 0x3020), 2, 1, 6, 6, 18, 0x0013 }, /* Audigy 2 NX */
  172. { USB_ID(0x041e, 0x3040), 2, 2, 6, 6, 2, 0x6e91 }, /* Live! 24-bit */
  173. { USB_ID(0x041e, 0x3042), 0, 1, 1, 1, 1, 0x000d }, /* Usb X-Fi S51 */
  174. { USB_ID(0x041e, 0x30df), 0, 1, 1, 1, 1, 0x000d }, /* Usb X-Fi S51 Pro */
  175. { USB_ID(0x041e, 0x3237), 0, 1, 1, 1, 1, 0x000d }, /* Usb X-Fi S51 Pro */
  176. { USB_ID(0x041e, 0x3263), 0, 1, 1, 1, 1, 0x000d }, /* Usb X-Fi S51 Pro */
  177. { USB_ID(0x041e, 0x3048), 2, 2, 6, 6, 2, 0x6e91 }, /* Toshiba SB0500 */
  178. };
  179. static void snd_usb_soundblaster_remote_complete(struct urb *urb)
  180. {
  181. struct usb_mixer_interface *mixer = urb->context;
  182. const struct rc_config *rc = mixer->rc_cfg;
  183. u32 code;
  184. if (urb->status < 0 || urb->actual_length < rc->min_packet_length)
  185. return;
  186. code = mixer->rc_buffer[rc->offset];
  187. if (rc->length == 2)
  188. code |= mixer->rc_buffer[rc->offset + 1] << 8;
  189. /* the Mute button actually changes the mixer control */
  190. if (code == rc->mute_code)
  191. snd_usb_mixer_notify_id(mixer, rc->mute_mixer_id);
  192. mixer->rc_code = code;
  193. wake_up(&mixer->rc_waitq);
  194. }
  195. static long snd_usb_sbrc_hwdep_read(struct snd_hwdep *hw, char __user *buf,
  196. long count, loff_t *offset)
  197. {
  198. struct usb_mixer_interface *mixer = hw->private_data;
  199. int err;
  200. u32 rc_code;
  201. if (count != 1 && count != 4)
  202. return -EINVAL;
  203. err = wait_event_interruptible(mixer->rc_waitq,
  204. (rc_code = xchg(&mixer->rc_code, 0)) != 0);
  205. if (err == 0) {
  206. if (count == 1)
  207. err = put_user(rc_code, buf);
  208. else
  209. err = put_user(rc_code, (u32 __user *)buf);
  210. }
  211. return err < 0 ? err : count;
  212. }
  213. static __poll_t snd_usb_sbrc_hwdep_poll(struct snd_hwdep *hw, struct file *file,
  214. poll_table *wait)
  215. {
  216. struct usb_mixer_interface *mixer = hw->private_data;
  217. poll_wait(file, &mixer->rc_waitq, wait);
  218. return mixer->rc_code ? EPOLLIN | EPOLLRDNORM : 0;
  219. }
  220. static int snd_usb_soundblaster_remote_init(struct usb_mixer_interface *mixer)
  221. {
  222. struct snd_hwdep *hwdep;
  223. int err, len, i;
  224. for (i = 0; i < ARRAY_SIZE(rc_configs); ++i)
  225. if (rc_configs[i].usb_id == mixer->chip->usb_id)
  226. break;
  227. if (i >= ARRAY_SIZE(rc_configs))
  228. return 0;
  229. mixer->rc_cfg = &rc_configs[i];
  230. len = mixer->rc_cfg->packet_length;
  231. init_waitqueue_head(&mixer->rc_waitq);
  232. err = snd_hwdep_new(mixer->chip->card, "SB remote control", 0, &hwdep);
  233. if (err < 0)
  234. return err;
  235. snprintf(hwdep->name, sizeof(hwdep->name),
  236. "%s remote control", mixer->chip->card->shortname);
  237. hwdep->iface = SNDRV_HWDEP_IFACE_SB_RC;
  238. hwdep->private_data = mixer;
  239. hwdep->ops.read = snd_usb_sbrc_hwdep_read;
  240. hwdep->ops.poll = snd_usb_sbrc_hwdep_poll;
  241. hwdep->exclusive = 1;
  242. mixer->rc_urb = usb_alloc_urb(0, GFP_KERNEL);
  243. if (!mixer->rc_urb)
  244. return -ENOMEM;
  245. mixer->rc_setup_packet = kmalloc(sizeof(*mixer->rc_setup_packet), GFP_KERNEL);
  246. if (!mixer->rc_setup_packet) {
  247. usb_free_urb(mixer->rc_urb);
  248. mixer->rc_urb = NULL;
  249. return -ENOMEM;
  250. }
  251. mixer->rc_setup_packet->bRequestType =
  252. USB_DIR_IN | USB_TYPE_CLASS | USB_RECIP_INTERFACE;
  253. mixer->rc_setup_packet->bRequest = UAC_GET_MEM;
  254. mixer->rc_setup_packet->wValue = cpu_to_le16(0);
  255. mixer->rc_setup_packet->wIndex = cpu_to_le16(0);
  256. mixer->rc_setup_packet->wLength = cpu_to_le16(len);
  257. usb_fill_control_urb(mixer->rc_urb, mixer->chip->dev,
  258. usb_rcvctrlpipe(mixer->chip->dev, 0),
  259. (u8*)mixer->rc_setup_packet, mixer->rc_buffer, len,
  260. snd_usb_soundblaster_remote_complete, mixer);
  261. return 0;
  262. }
  263. #define snd_audigy2nx_led_info snd_ctl_boolean_mono_info
  264. static int snd_audigy2nx_led_get(struct snd_kcontrol *kcontrol, struct snd_ctl_elem_value *ucontrol)
  265. {
  266. ucontrol->value.integer.value[0] = kcontrol->private_value >> 8;
  267. return 0;
  268. }
  269. static int snd_audigy2nx_led_update(struct usb_mixer_interface *mixer,
  270. int value, int index)
  271. {
  272. struct snd_usb_audio *chip = mixer->chip;
  273. int err;
  274. err = snd_usb_lock_shutdown(chip);
  275. if (err < 0)
  276. return err;
  277. if (chip->usb_id == USB_ID(0x041e, 0x3042))
  278. err = snd_usb_ctl_msg(chip->dev,
  279. usb_sndctrlpipe(chip->dev, 0), 0x24,
  280. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_OTHER,
  281. !value, 0, NULL, 0);
  282. /* USB X-Fi S51 Pro */
  283. if (chip->usb_id == USB_ID(0x041e, 0x30df))
  284. err = snd_usb_ctl_msg(chip->dev,
  285. usb_sndctrlpipe(chip->dev, 0), 0x24,
  286. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_OTHER,
  287. !value, 0, NULL, 0);
  288. else
  289. err = snd_usb_ctl_msg(chip->dev,
  290. usb_sndctrlpipe(chip->dev, 0), 0x24,
  291. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_OTHER,
  292. value, index + 2, NULL, 0);
  293. snd_usb_unlock_shutdown(chip);
  294. return err;
  295. }
  296. static int snd_audigy2nx_led_put(struct snd_kcontrol *kcontrol,
  297. struct snd_ctl_elem_value *ucontrol)
  298. {
  299. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kcontrol);
  300. struct usb_mixer_interface *mixer = list->mixer;
  301. int index = kcontrol->private_value & 0xff;
  302. unsigned int value = ucontrol->value.integer.value[0];
  303. int old_value = kcontrol->private_value >> 8;
  304. int err;
  305. if (value > 1)
  306. return -EINVAL;
  307. if (value == old_value)
  308. return 0;
  309. kcontrol->private_value = (value << 8) | index;
  310. err = snd_audigy2nx_led_update(mixer, value, index);
  311. return err < 0 ? err : 1;
  312. }
  313. static int snd_audigy2nx_led_resume(struct usb_mixer_elem_list *list)
  314. {
  315. int priv_value = list->kctl->private_value;
  316. return snd_audigy2nx_led_update(list->mixer, priv_value >> 8,
  317. priv_value & 0xff);
  318. }
  319. /* name and private_value are set dynamically */
  320. static const struct snd_kcontrol_new snd_audigy2nx_control = {
  321. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  322. .info = snd_audigy2nx_led_info,
  323. .get = snd_audigy2nx_led_get,
  324. .put = snd_audigy2nx_led_put,
  325. };
  326. static const char * const snd_audigy2nx_led_names[] = {
  327. "CMSS LED Switch",
  328. "Power LED Switch",
  329. "Dolby Digital LED Switch",
  330. };
  331. static int snd_audigy2nx_controls_create(struct usb_mixer_interface *mixer)
  332. {
  333. int i, err;
  334. for (i = 0; i < ARRAY_SIZE(snd_audigy2nx_led_names); ++i) {
  335. struct snd_kcontrol_new knew;
  336. /* USB X-Fi S51 doesn't have a CMSS LED */
  337. if (mixer->chip->usb_id == USB_ID(0x041e, 0x3042) && i == 0)
  338. continue;
  339. /* USB X-Fi S51 Pro doesn't have one either */
  340. if (mixer->chip->usb_id == USB_ID(0x041e, 0x30df) && i == 0)
  341. continue;
  342. if (i > 1 && /* Live24ext has 2 LEDs only */
  343. (mixer->chip->usb_id == USB_ID(0x041e, 0x3040) ||
  344. mixer->chip->usb_id == USB_ID(0x041e, 0x3042) ||
  345. mixer->chip->usb_id == USB_ID(0x041e, 0x30df) ||
  346. mixer->chip->usb_id == USB_ID(0x041e, 0x3048)))
  347. break;
  348. knew = snd_audigy2nx_control;
  349. knew.name = snd_audigy2nx_led_names[i];
  350. knew.private_value = (1 << 8) | i; /* LED on as default */
  351. err = add_single_ctl_with_resume(mixer, 0,
  352. snd_audigy2nx_led_resume,
  353. &knew, NULL);
  354. if (err < 0)
  355. return err;
  356. }
  357. return 0;
  358. }
  359. static void snd_audigy2nx_proc_read(struct snd_info_entry *entry,
  360. struct snd_info_buffer *buffer)
  361. {
  362. static const struct sb_jack {
  363. int unitid;
  364. const char *name;
  365. } jacks_audigy2nx[] = {
  366. {4, "dig in "},
  367. {7, "line in"},
  368. {19, "spk out"},
  369. {20, "hph out"},
  370. {-1, NULL}
  371. }, jacks_live24ext[] = {
  372. {4, "line in"}, /* &1=Line, &2=Mic*/
  373. {3, "hph out"}, /* headphones */
  374. {0, "RC "}, /* last command, 6 bytes see rc_config above */
  375. {-1, NULL}
  376. };
  377. const struct sb_jack *jacks;
  378. struct usb_mixer_interface *mixer = entry->private_data;
  379. int i, err;
  380. u8 buf[3];
  381. snd_iprintf(buffer, "%s jacks\n\n", mixer->chip->card->shortname);
  382. if (mixer->chip->usb_id == USB_ID(0x041e, 0x3020))
  383. jacks = jacks_audigy2nx;
  384. else if (mixer->chip->usb_id == USB_ID(0x041e, 0x3040) ||
  385. mixer->chip->usb_id == USB_ID(0x041e, 0x3048))
  386. jacks = jacks_live24ext;
  387. else
  388. return;
  389. for (i = 0; jacks[i].name; ++i) {
  390. snd_iprintf(buffer, "%s: ", jacks[i].name);
  391. err = snd_usb_lock_shutdown(mixer->chip);
  392. if (err < 0)
  393. return;
  394. err = snd_usb_ctl_msg(mixer->chip->dev,
  395. usb_rcvctrlpipe(mixer->chip->dev, 0),
  396. UAC_GET_MEM, USB_DIR_IN | USB_TYPE_CLASS |
  397. USB_RECIP_INTERFACE, 0,
  398. jacks[i].unitid << 8, buf, 3);
  399. snd_usb_unlock_shutdown(mixer->chip);
  400. if (err == 3 && (buf[0] == 3 || buf[0] == 6))
  401. snd_iprintf(buffer, "%02x %02x\n", buf[1], buf[2]);
  402. else
  403. snd_iprintf(buffer, "?\n");
  404. }
  405. }
  406. /* EMU0204 */
  407. static int snd_emu0204_ch_switch_info(struct snd_kcontrol *kcontrol,
  408. struct snd_ctl_elem_info *uinfo)
  409. {
  410. static const char * const texts[2] = {"1/2", "3/4"};
  411. return snd_ctl_enum_info(uinfo, 1, ARRAY_SIZE(texts), texts);
  412. }
  413. static int snd_emu0204_ch_switch_get(struct snd_kcontrol *kcontrol,
  414. struct snd_ctl_elem_value *ucontrol)
  415. {
  416. ucontrol->value.enumerated.item[0] = kcontrol->private_value;
  417. return 0;
  418. }
  419. static int snd_emu0204_ch_switch_update(struct usb_mixer_interface *mixer,
  420. int value)
  421. {
  422. struct snd_usb_audio *chip = mixer->chip;
  423. int err;
  424. unsigned char buf[2];
  425. err = snd_usb_lock_shutdown(chip);
  426. if (err < 0)
  427. return err;
  428. buf[0] = 0x01;
  429. buf[1] = value ? 0x02 : 0x01;
  430. err = snd_usb_ctl_msg(chip->dev,
  431. usb_sndctrlpipe(chip->dev, 0), UAC_SET_CUR,
  432. USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_OUT,
  433. 0x0400, 0x0e00, buf, 2);
  434. snd_usb_unlock_shutdown(chip);
  435. return err;
  436. }
  437. static int snd_emu0204_ch_switch_put(struct snd_kcontrol *kcontrol,
  438. struct snd_ctl_elem_value *ucontrol)
  439. {
  440. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kcontrol);
  441. struct usb_mixer_interface *mixer = list->mixer;
  442. unsigned int value = ucontrol->value.enumerated.item[0];
  443. int err;
  444. if (value > 1)
  445. return -EINVAL;
  446. if (value == kcontrol->private_value)
  447. return 0;
  448. kcontrol->private_value = value;
  449. err = snd_emu0204_ch_switch_update(mixer, value);
  450. return err < 0 ? err : 1;
  451. }
  452. static int snd_emu0204_ch_switch_resume(struct usb_mixer_elem_list *list)
  453. {
  454. return snd_emu0204_ch_switch_update(list->mixer,
  455. list->kctl->private_value);
  456. }
  457. static const struct snd_kcontrol_new snd_emu0204_control = {
  458. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  459. .name = "Front Jack Channels",
  460. .info = snd_emu0204_ch_switch_info,
  461. .get = snd_emu0204_ch_switch_get,
  462. .put = snd_emu0204_ch_switch_put,
  463. .private_value = 0,
  464. };
  465. static int snd_emu0204_controls_create(struct usb_mixer_interface *mixer)
  466. {
  467. return add_single_ctl_with_resume(mixer, 0,
  468. snd_emu0204_ch_switch_resume,
  469. &snd_emu0204_control, NULL);
  470. }
  471. #if IS_REACHABLE(CONFIG_INPUT)
  472. /*
  473. * Sony DualSense controller (PS5) jack detection
  474. *
  475. * Since this is an UAC 1 device, it doesn't support jack detection.
  476. * However, the controller hid-playstation driver reports HP & MIC
  477. * insert events through a dedicated input device.
  478. */
  479. #define SND_DUALSENSE_JACK_OUT_TERM_ID 3
  480. #define SND_DUALSENSE_JACK_IN_TERM_ID 4
  481. struct dualsense_mixer_elem_info {
  482. struct usb_mixer_elem_info info;
  483. struct input_handler ih;
  484. struct input_device_id id_table[2];
  485. bool connected;
  486. };
  487. static void snd_dualsense_ih_event(struct input_handle *handle,
  488. unsigned int type, unsigned int code,
  489. int value)
  490. {
  491. struct dualsense_mixer_elem_info *mei;
  492. struct usb_mixer_elem_list *me;
  493. if (type != EV_SW)
  494. return;
  495. mei = container_of(handle->handler, struct dualsense_mixer_elem_info, ih);
  496. me = &mei->info.head;
  497. if ((me->id == SND_DUALSENSE_JACK_OUT_TERM_ID && code == SW_HEADPHONE_INSERT) ||
  498. (me->id == SND_DUALSENSE_JACK_IN_TERM_ID && code == SW_MICROPHONE_INSERT)) {
  499. mei->connected = !!value;
  500. snd_ctl_notify(me->mixer->chip->card, SNDRV_CTL_EVENT_MASK_VALUE,
  501. &me->kctl->id);
  502. }
  503. }
  504. static bool snd_dualsense_ih_match(struct input_handler *handler,
  505. struct input_dev *dev)
  506. {
  507. struct dualsense_mixer_elem_info *mei;
  508. struct usb_device *snd_dev;
  509. char *input_dev_path, *usb_dev_path;
  510. size_t usb_dev_path_len;
  511. bool match = false;
  512. mei = container_of(handler, struct dualsense_mixer_elem_info, ih);
  513. snd_dev = mei->info.head.mixer->chip->dev;
  514. input_dev_path = kobject_get_path(&dev->dev.kobj, GFP_KERNEL);
  515. if (!input_dev_path) {
  516. dev_warn(&snd_dev->dev, "Failed to get input dev path\n");
  517. return false;
  518. }
  519. usb_dev_path = kobject_get_path(&snd_dev->dev.kobj, GFP_KERNEL);
  520. if (!usb_dev_path) {
  521. dev_warn(&snd_dev->dev, "Failed to get USB dev path\n");
  522. goto free_paths;
  523. }
  524. /*
  525. * Ensure the VID:PID matched input device supposedly owned by the
  526. * hid-playstation driver belongs to the actual hardware handled by
  527. * the current USB audio device, which implies input_dev_path being
  528. * a subpath of usb_dev_path.
  529. *
  530. * This verification is necessary when there is more than one identical
  531. * controller attached to the host system.
  532. */
  533. usb_dev_path_len = strlen(usb_dev_path);
  534. if (usb_dev_path_len >= strlen(input_dev_path))
  535. goto free_paths;
  536. usb_dev_path[usb_dev_path_len] = '/';
  537. match = !memcmp(input_dev_path, usb_dev_path, usb_dev_path_len + 1);
  538. free_paths:
  539. kfree(input_dev_path);
  540. kfree(usb_dev_path);
  541. return match;
  542. }
  543. static int snd_dualsense_ih_connect(struct input_handler *handler,
  544. struct input_dev *dev,
  545. const struct input_device_id *id)
  546. {
  547. struct input_handle *handle;
  548. int err;
  549. handle = kzalloc(sizeof(*handle), GFP_KERNEL);
  550. if (!handle)
  551. return -ENOMEM;
  552. handle->dev = dev;
  553. handle->handler = handler;
  554. handle->name = handler->name;
  555. err = input_register_handle(handle);
  556. if (err)
  557. goto err_free;
  558. err = input_open_device(handle);
  559. if (err)
  560. goto err_unregister;
  561. return 0;
  562. err_unregister:
  563. input_unregister_handle(handle);
  564. err_free:
  565. kfree(handle);
  566. return err;
  567. }
  568. static void snd_dualsense_ih_disconnect(struct input_handle *handle)
  569. {
  570. input_close_device(handle);
  571. input_unregister_handle(handle);
  572. kfree(handle);
  573. }
  574. static void snd_dualsense_ih_start(struct input_handle *handle)
  575. {
  576. struct dualsense_mixer_elem_info *mei;
  577. struct usb_mixer_elem_list *me;
  578. int status = -1;
  579. mei = container_of(handle->handler, struct dualsense_mixer_elem_info, ih);
  580. me = &mei->info.head;
  581. if (me->id == SND_DUALSENSE_JACK_OUT_TERM_ID &&
  582. test_bit(SW_HEADPHONE_INSERT, handle->dev->swbit))
  583. status = test_bit(SW_HEADPHONE_INSERT, handle->dev->sw);
  584. else if (me->id == SND_DUALSENSE_JACK_IN_TERM_ID &&
  585. test_bit(SW_MICROPHONE_INSERT, handle->dev->swbit))
  586. status = test_bit(SW_MICROPHONE_INSERT, handle->dev->sw);
  587. if (status >= 0) {
  588. mei->connected = !!status;
  589. snd_ctl_notify(me->mixer->chip->card, SNDRV_CTL_EVENT_MASK_VALUE,
  590. &me->kctl->id);
  591. }
  592. }
  593. static int snd_dualsense_jack_get(struct snd_kcontrol *kctl,
  594. struct snd_ctl_elem_value *ucontrol)
  595. {
  596. struct dualsense_mixer_elem_info *mei = snd_kcontrol_chip(kctl);
  597. ucontrol->value.integer.value[0] = mei->connected;
  598. return 0;
  599. }
  600. static const struct snd_kcontrol_new snd_dualsense_jack_control = {
  601. .iface = SNDRV_CTL_ELEM_IFACE_CARD,
  602. .access = SNDRV_CTL_ELEM_ACCESS_READ,
  603. .info = snd_ctl_boolean_mono_info,
  604. .get = snd_dualsense_jack_get,
  605. };
  606. static int snd_dualsense_resume_jack(struct usb_mixer_elem_list *list)
  607. {
  608. snd_ctl_notify(list->mixer->chip->card, SNDRV_CTL_EVENT_MASK_VALUE,
  609. &list->kctl->id);
  610. return 0;
  611. }
  612. static void snd_dualsense_mixer_elem_free(struct snd_kcontrol *kctl)
  613. {
  614. struct dualsense_mixer_elem_info *mei = snd_kcontrol_chip(kctl);
  615. if (mei->ih.event)
  616. input_unregister_handler(&mei->ih);
  617. snd_usb_mixer_elem_free(kctl);
  618. }
  619. static int snd_dualsense_jack_create(struct usb_mixer_interface *mixer,
  620. const char *name, bool is_output)
  621. {
  622. struct dualsense_mixer_elem_info *mei;
  623. struct input_device_id *idev_id;
  624. struct snd_kcontrol *kctl;
  625. int err;
  626. mei = kzalloc(sizeof(*mei), GFP_KERNEL);
  627. if (!mei)
  628. return -ENOMEM;
  629. snd_usb_mixer_elem_init_std(&mei->info.head, mixer,
  630. is_output ? SND_DUALSENSE_JACK_OUT_TERM_ID :
  631. SND_DUALSENSE_JACK_IN_TERM_ID);
  632. mei->info.head.resume = snd_dualsense_resume_jack;
  633. mei->info.val_type = USB_MIXER_BOOLEAN;
  634. mei->info.channels = 1;
  635. mei->info.min = 0;
  636. mei->info.max = 1;
  637. kctl = snd_ctl_new1(&snd_dualsense_jack_control, mei);
  638. if (!kctl) {
  639. kfree(mei);
  640. return -ENOMEM;
  641. }
  642. strscpy(kctl->id.name, name, sizeof(kctl->id.name));
  643. kctl->private_free = snd_dualsense_mixer_elem_free;
  644. err = snd_usb_mixer_add_control(&mei->info.head, kctl);
  645. if (err)
  646. return err;
  647. idev_id = &mei->id_table[0];
  648. idev_id->flags = INPUT_DEVICE_ID_MATCH_VENDOR | INPUT_DEVICE_ID_MATCH_PRODUCT |
  649. INPUT_DEVICE_ID_MATCH_EVBIT | INPUT_DEVICE_ID_MATCH_SWBIT;
  650. idev_id->vendor = USB_ID_VENDOR(mixer->chip->usb_id);
  651. idev_id->product = USB_ID_PRODUCT(mixer->chip->usb_id);
  652. idev_id->evbit[BIT_WORD(EV_SW)] = BIT_MASK(EV_SW);
  653. if (is_output)
  654. idev_id->swbit[BIT_WORD(SW_HEADPHONE_INSERT)] = BIT_MASK(SW_HEADPHONE_INSERT);
  655. else
  656. idev_id->swbit[BIT_WORD(SW_MICROPHONE_INSERT)] = BIT_MASK(SW_MICROPHONE_INSERT);
  657. mei->ih.event = snd_dualsense_ih_event;
  658. mei->ih.match = snd_dualsense_ih_match;
  659. mei->ih.connect = snd_dualsense_ih_connect;
  660. mei->ih.disconnect = snd_dualsense_ih_disconnect;
  661. mei->ih.start = snd_dualsense_ih_start;
  662. mei->ih.name = name;
  663. mei->ih.id_table = mei->id_table;
  664. err = input_register_handler(&mei->ih);
  665. if (err) {
  666. dev_warn(&mixer->chip->dev->dev,
  667. "Could not register input handler: %d\n", err);
  668. mei->ih.event = NULL;
  669. }
  670. return 0;
  671. }
  672. static int snd_dualsense_controls_create(struct usb_mixer_interface *mixer)
  673. {
  674. int err;
  675. err = snd_dualsense_jack_create(mixer, "Headphone Jack", true);
  676. if (err < 0)
  677. return err;
  678. return snd_dualsense_jack_create(mixer, "Headset Mic Jack", false);
  679. }
  680. #endif /* IS_REACHABLE(CONFIG_INPUT) */
  681. /* ASUS Xonar U1 / U3 controls */
  682. static int snd_xonar_u1_switch_get(struct snd_kcontrol *kcontrol,
  683. struct snd_ctl_elem_value *ucontrol)
  684. {
  685. ucontrol->value.integer.value[0] = !!(kcontrol->private_value & 0x02);
  686. return 0;
  687. }
  688. static int snd_xonar_u1_switch_update(struct usb_mixer_interface *mixer,
  689. unsigned char status)
  690. {
  691. struct snd_usb_audio *chip = mixer->chip;
  692. int err;
  693. err = snd_usb_lock_shutdown(chip);
  694. if (err < 0)
  695. return err;
  696. err = snd_usb_ctl_msg(chip->dev,
  697. usb_sndctrlpipe(chip->dev, 0), 0x08,
  698. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_OTHER,
  699. 50, 0, &status, 1);
  700. snd_usb_unlock_shutdown(chip);
  701. return err;
  702. }
  703. static int snd_xonar_u1_switch_put(struct snd_kcontrol *kcontrol,
  704. struct snd_ctl_elem_value *ucontrol)
  705. {
  706. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kcontrol);
  707. u8 old_status, new_status;
  708. int err;
  709. old_status = kcontrol->private_value;
  710. if (ucontrol->value.integer.value[0])
  711. new_status = old_status | 0x02;
  712. else
  713. new_status = old_status & ~0x02;
  714. if (new_status == old_status)
  715. return 0;
  716. kcontrol->private_value = new_status;
  717. err = snd_xonar_u1_switch_update(list->mixer, new_status);
  718. return err < 0 ? err : 1;
  719. }
  720. static int snd_xonar_u1_switch_resume(struct usb_mixer_elem_list *list)
  721. {
  722. return snd_xonar_u1_switch_update(list->mixer,
  723. list->kctl->private_value);
  724. }
  725. static const struct snd_kcontrol_new snd_xonar_u1_output_switch = {
  726. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  727. .name = "Digital Playback Switch",
  728. .info = snd_ctl_boolean_mono_info,
  729. .get = snd_xonar_u1_switch_get,
  730. .put = snd_xonar_u1_switch_put,
  731. .private_value = 0x05,
  732. };
  733. static int snd_xonar_u1_controls_create(struct usb_mixer_interface *mixer)
  734. {
  735. return add_single_ctl_with_resume(mixer, 0,
  736. snd_xonar_u1_switch_resume,
  737. &snd_xonar_u1_output_switch, NULL);
  738. }
  739. /* Digidesign Mbox 1 helper functions */
  740. static int snd_mbox1_is_spdif_synced(struct snd_usb_audio *chip)
  741. {
  742. unsigned char buff[3];
  743. int err;
  744. int is_spdif_synced;
  745. /* Read clock source */
  746. err = snd_usb_ctl_msg(chip->dev,
  747. usb_rcvctrlpipe(chip->dev, 0), 0x81,
  748. USB_DIR_IN |
  749. USB_TYPE_CLASS |
  750. USB_RECIP_ENDPOINT, 0x100, 0x81, buff, 3);
  751. if (err < 0)
  752. return err;
  753. /* spdif sync: buff is all zeroes */
  754. is_spdif_synced = !(buff[0] | buff[1] | buff[2]);
  755. return is_spdif_synced;
  756. }
  757. static int snd_mbox1_set_clk_source(struct snd_usb_audio *chip, int rate_or_zero)
  758. {
  759. /* 2 possibilities: Internal -> expects sample rate
  760. * S/PDIF sync -> expects rate = 0
  761. */
  762. unsigned char buff[3];
  763. buff[0] = (rate_or_zero >> 0) & 0xff;
  764. buff[1] = (rate_or_zero >> 8) & 0xff;
  765. buff[2] = (rate_or_zero >> 16) & 0xff;
  766. /* Set clock source */
  767. return snd_usb_ctl_msg(chip->dev,
  768. usb_sndctrlpipe(chip->dev, 0), 0x1,
  769. USB_TYPE_CLASS |
  770. USB_RECIP_ENDPOINT, 0x100, 0x81, buff, 3);
  771. }
  772. static int snd_mbox1_is_spdif_input(struct snd_usb_audio *chip)
  773. {
  774. /* Hardware gives 2 possibilities: ANALOG Source -> 0x01
  775. * S/PDIF Source -> 0x02
  776. */
  777. int err;
  778. unsigned char source[1];
  779. /* Read input source */
  780. err = snd_usb_ctl_msg(chip->dev,
  781. usb_rcvctrlpipe(chip->dev, 0), 0x81,
  782. USB_DIR_IN |
  783. USB_TYPE_CLASS |
  784. USB_RECIP_INTERFACE, 0x00, 0x500, source, 1);
  785. if (err < 0)
  786. return err;
  787. return (source[0] == 2);
  788. }
  789. static int snd_mbox1_set_input_source(struct snd_usb_audio *chip, int is_spdif)
  790. {
  791. /* NB: Setting the input source to S/PDIF resets the clock source to S/PDIF
  792. * Hardware expects 2 possibilities: ANALOG Source -> 0x01
  793. * S/PDIF Source -> 0x02
  794. */
  795. unsigned char buff[1];
  796. buff[0] = (is_spdif & 1) + 1;
  797. /* Set input source */
  798. return snd_usb_ctl_msg(chip->dev,
  799. usb_sndctrlpipe(chip->dev, 0), 0x1,
  800. USB_TYPE_CLASS |
  801. USB_RECIP_INTERFACE, 0x00, 0x500, buff, 1);
  802. }
  803. /* Digidesign Mbox 1 clock source switch (internal/spdif) */
  804. static int snd_mbox1_clk_switch_get(struct snd_kcontrol *kctl,
  805. struct snd_ctl_elem_value *ucontrol)
  806. {
  807. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kctl);
  808. struct snd_usb_audio *chip = list->mixer->chip;
  809. int err;
  810. err = snd_usb_lock_shutdown(chip);
  811. if (err < 0)
  812. goto err;
  813. err = snd_mbox1_is_spdif_synced(chip);
  814. if (err < 0)
  815. goto err;
  816. kctl->private_value = err;
  817. err = 0;
  818. ucontrol->value.enumerated.item[0] = kctl->private_value;
  819. err:
  820. snd_usb_unlock_shutdown(chip);
  821. return err;
  822. }
  823. static int snd_mbox1_clk_switch_update(struct usb_mixer_interface *mixer, int is_spdif_sync)
  824. {
  825. struct snd_usb_audio *chip = mixer->chip;
  826. int err;
  827. err = snd_usb_lock_shutdown(chip);
  828. if (err < 0)
  829. return err;
  830. err = snd_mbox1_is_spdif_input(chip);
  831. if (err < 0)
  832. goto err;
  833. err = snd_mbox1_is_spdif_synced(chip);
  834. if (err < 0)
  835. goto err;
  836. /* FIXME: hardcoded sample rate */
  837. err = snd_mbox1_set_clk_source(chip, is_spdif_sync ? 0 : 48000);
  838. if (err < 0)
  839. goto err;
  840. err = snd_mbox1_is_spdif_synced(chip);
  841. err:
  842. snd_usb_unlock_shutdown(chip);
  843. return err;
  844. }
  845. static int snd_mbox1_clk_switch_put(struct snd_kcontrol *kctl,
  846. struct snd_ctl_elem_value *ucontrol)
  847. {
  848. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kctl);
  849. struct usb_mixer_interface *mixer = list->mixer;
  850. int err;
  851. bool cur_val, new_val;
  852. cur_val = kctl->private_value;
  853. new_val = ucontrol->value.enumerated.item[0];
  854. if (cur_val == new_val)
  855. return 0;
  856. kctl->private_value = new_val;
  857. err = snd_mbox1_clk_switch_update(mixer, new_val);
  858. return err < 0 ? err : 1;
  859. }
  860. static int snd_mbox1_clk_switch_info(struct snd_kcontrol *kcontrol,
  861. struct snd_ctl_elem_info *uinfo)
  862. {
  863. static const char *const texts[2] = {
  864. "Internal",
  865. "S/PDIF"
  866. };
  867. return snd_ctl_enum_info(uinfo, 1, ARRAY_SIZE(texts), texts);
  868. }
  869. static int snd_mbox1_clk_switch_resume(struct usb_mixer_elem_list *list)
  870. {
  871. return snd_mbox1_clk_switch_update(list->mixer, list->kctl->private_value);
  872. }
  873. /* Digidesign Mbox 1 input source switch (analog/spdif) */
  874. static int snd_mbox1_src_switch_get(struct snd_kcontrol *kctl,
  875. struct snd_ctl_elem_value *ucontrol)
  876. {
  877. ucontrol->value.enumerated.item[0] = kctl->private_value;
  878. return 0;
  879. }
  880. static int snd_mbox1_src_switch_update(struct usb_mixer_interface *mixer, int is_spdif_input)
  881. {
  882. struct snd_usb_audio *chip = mixer->chip;
  883. int err;
  884. err = snd_usb_lock_shutdown(chip);
  885. if (err < 0)
  886. return err;
  887. err = snd_mbox1_is_spdif_input(chip);
  888. if (err < 0)
  889. goto err;
  890. err = snd_mbox1_set_input_source(chip, is_spdif_input);
  891. if (err < 0)
  892. goto err;
  893. err = snd_mbox1_is_spdif_input(chip);
  894. if (err < 0)
  895. goto err;
  896. err = snd_mbox1_is_spdif_synced(chip);
  897. err:
  898. snd_usb_unlock_shutdown(chip);
  899. return err;
  900. }
  901. static int snd_mbox1_src_switch_put(struct snd_kcontrol *kctl,
  902. struct snd_ctl_elem_value *ucontrol)
  903. {
  904. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kctl);
  905. struct usb_mixer_interface *mixer = list->mixer;
  906. int err;
  907. bool cur_val, new_val;
  908. cur_val = kctl->private_value;
  909. new_val = ucontrol->value.enumerated.item[0];
  910. if (cur_val == new_val)
  911. return 0;
  912. kctl->private_value = new_val;
  913. err = snd_mbox1_src_switch_update(mixer, new_val);
  914. return err < 0 ? err : 1;
  915. }
  916. static int snd_mbox1_src_switch_info(struct snd_kcontrol *kcontrol,
  917. struct snd_ctl_elem_info *uinfo)
  918. {
  919. static const char *const texts[2] = {
  920. "Analog",
  921. "S/PDIF"
  922. };
  923. return snd_ctl_enum_info(uinfo, 1, ARRAY_SIZE(texts), texts);
  924. }
  925. static int snd_mbox1_src_switch_resume(struct usb_mixer_elem_list *list)
  926. {
  927. return snd_mbox1_src_switch_update(list->mixer, list->kctl->private_value);
  928. }
  929. static const struct snd_kcontrol_new snd_mbox1_clk_switch = {
  930. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  931. .name = "Clock Source",
  932. .index = 0,
  933. .access = SNDRV_CTL_ELEM_ACCESS_READWRITE,
  934. .info = snd_mbox1_clk_switch_info,
  935. .get = snd_mbox1_clk_switch_get,
  936. .put = snd_mbox1_clk_switch_put,
  937. .private_value = 0
  938. };
  939. static const struct snd_kcontrol_new snd_mbox1_src_switch = {
  940. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  941. .name = "Input Source",
  942. .index = 1,
  943. .access = SNDRV_CTL_ELEM_ACCESS_READWRITE,
  944. .info = snd_mbox1_src_switch_info,
  945. .get = snd_mbox1_src_switch_get,
  946. .put = snd_mbox1_src_switch_put,
  947. .private_value = 0
  948. };
  949. static int snd_mbox1_controls_create(struct usb_mixer_interface *mixer)
  950. {
  951. int err;
  952. err = add_single_ctl_with_resume(mixer, 0,
  953. snd_mbox1_clk_switch_resume,
  954. &snd_mbox1_clk_switch, NULL);
  955. if (err < 0)
  956. return err;
  957. return add_single_ctl_with_resume(mixer, 1,
  958. snd_mbox1_src_switch_resume,
  959. &snd_mbox1_src_switch, NULL);
  960. }
  961. /* Native Instruments device quirks */
  962. #define _MAKE_NI_CONTROL(bRequest,wIndex) ((bRequest) << 16 | (wIndex))
  963. static int snd_ni_control_init_val(struct usb_mixer_interface *mixer,
  964. struct snd_kcontrol *kctl)
  965. {
  966. struct usb_device *dev = mixer->chip->dev;
  967. unsigned int pval = kctl->private_value;
  968. u8 value;
  969. int err;
  970. err = snd_usb_ctl_msg(dev, usb_rcvctrlpipe(dev, 0),
  971. (pval >> 16) & 0xff,
  972. USB_TYPE_VENDOR | USB_RECIP_DEVICE | USB_DIR_IN,
  973. 0, pval & 0xffff, &value, 1);
  974. if (err < 0) {
  975. dev_err(&dev->dev,
  976. "unable to issue vendor read request (ret = %d)", err);
  977. return err;
  978. }
  979. kctl->private_value |= ((unsigned int)value << 24);
  980. return 0;
  981. }
  982. static int snd_nativeinstruments_control_get(struct snd_kcontrol *kcontrol,
  983. struct snd_ctl_elem_value *ucontrol)
  984. {
  985. ucontrol->value.integer.value[0] = kcontrol->private_value >> 24;
  986. return 0;
  987. }
  988. static int snd_ni_update_cur_val(struct usb_mixer_elem_list *list)
  989. {
  990. struct snd_usb_audio *chip = list->mixer->chip;
  991. unsigned int pval = list->kctl->private_value;
  992. int err;
  993. err = snd_usb_lock_shutdown(chip);
  994. if (err < 0)
  995. return err;
  996. err = usb_control_msg(chip->dev, usb_sndctrlpipe(chip->dev, 0),
  997. (pval >> 16) & 0xff,
  998. USB_TYPE_VENDOR | USB_RECIP_DEVICE | USB_DIR_OUT,
  999. pval >> 24, pval & 0xffff, NULL, 0, 1000);
  1000. snd_usb_unlock_shutdown(chip);
  1001. return err;
  1002. }
  1003. static int snd_nativeinstruments_control_put(struct snd_kcontrol *kcontrol,
  1004. struct snd_ctl_elem_value *ucontrol)
  1005. {
  1006. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kcontrol);
  1007. u8 oldval = (kcontrol->private_value >> 24) & 0xff;
  1008. u8 newval = ucontrol->value.integer.value[0];
  1009. int err;
  1010. if (oldval == newval)
  1011. return 0;
  1012. kcontrol->private_value &= ~(0xff << 24);
  1013. kcontrol->private_value |= (unsigned int)newval << 24;
  1014. err = snd_ni_update_cur_val(list);
  1015. return err < 0 ? err : 1;
  1016. }
  1017. static const struct snd_kcontrol_new snd_nativeinstruments_ta6_mixers[] = {
  1018. {
  1019. .name = "Direct Thru Channel A",
  1020. .private_value = _MAKE_NI_CONTROL(0x01, 0x03),
  1021. },
  1022. {
  1023. .name = "Direct Thru Channel B",
  1024. .private_value = _MAKE_NI_CONTROL(0x01, 0x05),
  1025. },
  1026. {
  1027. .name = "Phono Input Channel A",
  1028. .private_value = _MAKE_NI_CONTROL(0x02, 0x03),
  1029. },
  1030. {
  1031. .name = "Phono Input Channel B",
  1032. .private_value = _MAKE_NI_CONTROL(0x02, 0x05),
  1033. },
  1034. };
  1035. static const struct snd_kcontrol_new snd_nativeinstruments_ta10_mixers[] = {
  1036. {
  1037. .name = "Direct Thru Channel A",
  1038. .private_value = _MAKE_NI_CONTROL(0x01, 0x03),
  1039. },
  1040. {
  1041. .name = "Direct Thru Channel B",
  1042. .private_value = _MAKE_NI_CONTROL(0x01, 0x05),
  1043. },
  1044. {
  1045. .name = "Direct Thru Channel C",
  1046. .private_value = _MAKE_NI_CONTROL(0x01, 0x07),
  1047. },
  1048. {
  1049. .name = "Direct Thru Channel D",
  1050. .private_value = _MAKE_NI_CONTROL(0x01, 0x09),
  1051. },
  1052. {
  1053. .name = "Phono Input Channel A",
  1054. .private_value = _MAKE_NI_CONTROL(0x02, 0x03),
  1055. },
  1056. {
  1057. .name = "Phono Input Channel B",
  1058. .private_value = _MAKE_NI_CONTROL(0x02, 0x05),
  1059. },
  1060. {
  1061. .name = "Phono Input Channel C",
  1062. .private_value = _MAKE_NI_CONTROL(0x02, 0x07),
  1063. },
  1064. {
  1065. .name = "Phono Input Channel D",
  1066. .private_value = _MAKE_NI_CONTROL(0x02, 0x09),
  1067. },
  1068. };
  1069. static int snd_nativeinstruments_create_mixer(struct usb_mixer_interface *mixer,
  1070. const struct snd_kcontrol_new *kc,
  1071. unsigned int count)
  1072. {
  1073. int i, err = 0;
  1074. struct snd_kcontrol_new template = {
  1075. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  1076. .access = SNDRV_CTL_ELEM_ACCESS_READWRITE,
  1077. .get = snd_nativeinstruments_control_get,
  1078. .put = snd_nativeinstruments_control_put,
  1079. .info = snd_ctl_boolean_mono_info,
  1080. };
  1081. for (i = 0; i < count; i++) {
  1082. struct usb_mixer_elem_list *list;
  1083. template.name = kc[i].name;
  1084. template.private_value = kc[i].private_value;
  1085. err = add_single_ctl_with_resume(mixer, 0,
  1086. snd_ni_update_cur_val,
  1087. &template, &list);
  1088. if (err < 0)
  1089. break;
  1090. snd_ni_control_init_val(mixer, list->kctl);
  1091. }
  1092. return err;
  1093. }
  1094. /* M-Audio FastTrack Ultra quirks */
  1095. /* FTU Effect switch (also used by C400/C600) */
  1096. static int snd_ftu_eff_switch_info(struct snd_kcontrol *kcontrol,
  1097. struct snd_ctl_elem_info *uinfo)
  1098. {
  1099. static const char *const texts[8] = {
  1100. "Room 1", "Room 2", "Room 3", "Hall 1",
  1101. "Hall 2", "Plate", "Delay", "Echo"
  1102. };
  1103. return snd_ctl_enum_info(uinfo, 1, ARRAY_SIZE(texts), texts);
  1104. }
  1105. static int snd_ftu_eff_switch_init(struct usb_mixer_interface *mixer,
  1106. struct snd_kcontrol *kctl)
  1107. {
  1108. struct usb_device *dev = mixer->chip->dev;
  1109. unsigned int pval = kctl->private_value;
  1110. int err;
  1111. unsigned char value[2];
  1112. value[0] = 0x00;
  1113. value[1] = 0x00;
  1114. err = snd_usb_ctl_msg(dev, usb_rcvctrlpipe(dev, 0), UAC_GET_CUR,
  1115. USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_IN,
  1116. pval & 0xff00,
  1117. snd_usb_ctrl_intf(mixer->hostif) | ((pval & 0xff) << 8),
  1118. value, 2);
  1119. if (err < 0)
  1120. return err;
  1121. kctl->private_value |= (unsigned int)value[0] << 24;
  1122. return 0;
  1123. }
  1124. static int snd_ftu_eff_switch_get(struct snd_kcontrol *kctl,
  1125. struct snd_ctl_elem_value *ucontrol)
  1126. {
  1127. ucontrol->value.enumerated.item[0] = kctl->private_value >> 24;
  1128. return 0;
  1129. }
  1130. static int snd_ftu_eff_switch_update(struct usb_mixer_elem_list *list)
  1131. {
  1132. struct snd_usb_audio *chip = list->mixer->chip;
  1133. unsigned int pval = list->kctl->private_value;
  1134. unsigned char value[2];
  1135. int err;
  1136. value[0] = pval >> 24;
  1137. value[1] = 0;
  1138. err = snd_usb_lock_shutdown(chip);
  1139. if (err < 0)
  1140. return err;
  1141. err = snd_usb_ctl_msg(chip->dev,
  1142. usb_sndctrlpipe(chip->dev, 0),
  1143. UAC_SET_CUR,
  1144. USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_OUT,
  1145. pval & 0xff00,
  1146. snd_usb_ctrl_intf(list->mixer->hostif) | ((pval & 0xff) << 8),
  1147. value, 2);
  1148. snd_usb_unlock_shutdown(chip);
  1149. return err;
  1150. }
  1151. static int snd_ftu_eff_switch_put(struct snd_kcontrol *kctl,
  1152. struct snd_ctl_elem_value *ucontrol)
  1153. {
  1154. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kctl);
  1155. unsigned int pval = list->kctl->private_value;
  1156. int cur_val, err, new_val;
  1157. cur_val = pval >> 24;
  1158. new_val = ucontrol->value.enumerated.item[0];
  1159. if (cur_val == new_val)
  1160. return 0;
  1161. kctl->private_value &= ~(0xff << 24);
  1162. kctl->private_value |= new_val << 24;
  1163. err = snd_ftu_eff_switch_update(list);
  1164. return err < 0 ? err : 1;
  1165. }
  1166. static int snd_ftu_create_effect_switch(struct usb_mixer_interface *mixer,
  1167. int validx, int bUnitID)
  1168. {
  1169. static struct snd_kcontrol_new template = {
  1170. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  1171. .name = "Effect Program Switch",
  1172. .index = 0,
  1173. .access = SNDRV_CTL_ELEM_ACCESS_READWRITE,
  1174. .info = snd_ftu_eff_switch_info,
  1175. .get = snd_ftu_eff_switch_get,
  1176. .put = snd_ftu_eff_switch_put
  1177. };
  1178. struct usb_mixer_elem_list *list;
  1179. int err;
  1180. err = add_single_ctl_with_resume(mixer, bUnitID,
  1181. snd_ftu_eff_switch_update,
  1182. &template, &list);
  1183. if (err < 0)
  1184. return err;
  1185. list->kctl->private_value = (validx << 8) | bUnitID;
  1186. snd_ftu_eff_switch_init(mixer, list->kctl);
  1187. return 0;
  1188. }
  1189. /* Create volume controls for FTU devices*/
  1190. static int snd_ftu_create_volume_ctls(struct usb_mixer_interface *mixer)
  1191. {
  1192. char name[64];
  1193. unsigned int control, cmask;
  1194. int in, out, err;
  1195. const unsigned int id = 5;
  1196. const int val_type = USB_MIXER_S16;
  1197. for (out = 0; out < 8; out++) {
  1198. control = out + 1;
  1199. for (in = 0; in < 8; in++) {
  1200. cmask = BIT(in);
  1201. snprintf(name, sizeof(name),
  1202. "AIn%d - Out%d Capture Volume",
  1203. in + 1, out + 1);
  1204. err = snd_create_std_mono_ctl(mixer, id, control,
  1205. cmask, val_type, name,
  1206. &snd_usb_mixer_vol_tlv);
  1207. if (err < 0)
  1208. return err;
  1209. }
  1210. for (in = 8; in < 16; in++) {
  1211. cmask = BIT(in);
  1212. snprintf(name, sizeof(name),
  1213. "DIn%d - Out%d Playback Volume",
  1214. in - 7, out + 1);
  1215. err = snd_create_std_mono_ctl(mixer, id, control,
  1216. cmask, val_type, name,
  1217. &snd_usb_mixer_vol_tlv);
  1218. if (err < 0)
  1219. return err;
  1220. }
  1221. }
  1222. return 0;
  1223. }
  1224. /* This control needs a volume quirk, see mixer.c */
  1225. static int snd_ftu_create_effect_volume_ctl(struct usb_mixer_interface *mixer)
  1226. {
  1227. static const char name[] = "Effect Volume";
  1228. const unsigned int id = 6;
  1229. const int val_type = USB_MIXER_U8;
  1230. const unsigned int control = 2;
  1231. const unsigned int cmask = 0;
  1232. return snd_create_std_mono_ctl(mixer, id, control, cmask, val_type,
  1233. name, snd_usb_mixer_vol_tlv);
  1234. }
  1235. /* This control needs a volume quirk, see mixer.c */
  1236. static int snd_ftu_create_effect_duration_ctl(struct usb_mixer_interface *mixer)
  1237. {
  1238. static const char name[] = "Effect Duration";
  1239. const unsigned int id = 6;
  1240. const int val_type = USB_MIXER_S16;
  1241. const unsigned int control = 3;
  1242. const unsigned int cmask = 0;
  1243. return snd_create_std_mono_ctl(mixer, id, control, cmask, val_type,
  1244. name, snd_usb_mixer_vol_tlv);
  1245. }
  1246. /* This control needs a volume quirk, see mixer.c */
  1247. static int snd_ftu_create_effect_feedback_ctl(struct usb_mixer_interface *mixer)
  1248. {
  1249. static const char name[] = "Effect Feedback Volume";
  1250. const unsigned int id = 6;
  1251. const int val_type = USB_MIXER_U8;
  1252. const unsigned int control = 4;
  1253. const unsigned int cmask = 0;
  1254. return snd_create_std_mono_ctl(mixer, id, control, cmask, val_type,
  1255. name, NULL);
  1256. }
  1257. static int snd_ftu_create_effect_return_ctls(struct usb_mixer_interface *mixer)
  1258. {
  1259. unsigned int cmask;
  1260. int err, ch;
  1261. char name[48];
  1262. const unsigned int id = 7;
  1263. const int val_type = USB_MIXER_S16;
  1264. const unsigned int control = 7;
  1265. for (ch = 0; ch < 4; ++ch) {
  1266. cmask = BIT(ch);
  1267. snprintf(name, sizeof(name),
  1268. "Effect Return %d Volume", ch + 1);
  1269. err = snd_create_std_mono_ctl(mixer, id, control,
  1270. cmask, val_type, name,
  1271. snd_usb_mixer_vol_tlv);
  1272. if (err < 0)
  1273. return err;
  1274. }
  1275. return 0;
  1276. }
  1277. static int snd_ftu_create_effect_send_ctls(struct usb_mixer_interface *mixer)
  1278. {
  1279. unsigned int cmask;
  1280. int err, ch;
  1281. char name[48];
  1282. const unsigned int id = 5;
  1283. const int val_type = USB_MIXER_S16;
  1284. const unsigned int control = 9;
  1285. for (ch = 0; ch < 8; ++ch) {
  1286. cmask = BIT(ch);
  1287. snprintf(name, sizeof(name),
  1288. "Effect Send AIn%d Volume", ch + 1);
  1289. err = snd_create_std_mono_ctl(mixer, id, control, cmask,
  1290. val_type, name,
  1291. snd_usb_mixer_vol_tlv);
  1292. if (err < 0)
  1293. return err;
  1294. }
  1295. for (ch = 8; ch < 16; ++ch) {
  1296. cmask = BIT(ch);
  1297. snprintf(name, sizeof(name),
  1298. "Effect Send DIn%d Volume", ch - 7);
  1299. err = snd_create_std_mono_ctl(mixer, id, control, cmask,
  1300. val_type, name,
  1301. snd_usb_mixer_vol_tlv);
  1302. if (err < 0)
  1303. return err;
  1304. }
  1305. return 0;
  1306. }
  1307. static int snd_ftu_create_mixer(struct usb_mixer_interface *mixer)
  1308. {
  1309. int err;
  1310. err = snd_ftu_create_volume_ctls(mixer);
  1311. if (err < 0)
  1312. return err;
  1313. err = snd_ftu_create_effect_switch(mixer, 1, 6);
  1314. if (err < 0)
  1315. return err;
  1316. err = snd_ftu_create_effect_volume_ctl(mixer);
  1317. if (err < 0)
  1318. return err;
  1319. err = snd_ftu_create_effect_duration_ctl(mixer);
  1320. if (err < 0)
  1321. return err;
  1322. err = snd_ftu_create_effect_feedback_ctl(mixer);
  1323. if (err < 0)
  1324. return err;
  1325. err = snd_ftu_create_effect_return_ctls(mixer);
  1326. if (err < 0)
  1327. return err;
  1328. err = snd_ftu_create_effect_send_ctls(mixer);
  1329. if (err < 0)
  1330. return err;
  1331. return 0;
  1332. }
  1333. void snd_emuusb_set_samplerate(struct snd_usb_audio *chip,
  1334. unsigned char samplerate_id)
  1335. {
  1336. struct usb_mixer_interface *mixer;
  1337. struct usb_mixer_elem_info *cval;
  1338. int unitid = 12; /* SampleRate ExtensionUnit ID */
  1339. list_for_each_entry(mixer, &chip->mixer_list, list) {
  1340. if (mixer->id_elems[unitid]) {
  1341. cval = mixer_elem_list_to_info(mixer->id_elems[unitid]);
  1342. snd_usb_mixer_set_ctl_value(cval, UAC_SET_CUR,
  1343. cval->control << 8,
  1344. samplerate_id);
  1345. snd_usb_mixer_notify_id(mixer, unitid);
  1346. break;
  1347. }
  1348. }
  1349. }
  1350. /* M-Audio Fast Track C400/C600 */
  1351. /* C400/C600 volume controls, this control needs a volume quirk, see mixer.c */
  1352. static int snd_c400_create_vol_ctls(struct usb_mixer_interface *mixer)
  1353. {
  1354. char name[64];
  1355. unsigned int cmask, offset;
  1356. int out, chan, err;
  1357. int num_outs = 0;
  1358. int num_ins = 0;
  1359. const unsigned int id = 0x40;
  1360. const int val_type = USB_MIXER_S16;
  1361. const int control = 1;
  1362. switch (mixer->chip->usb_id) {
  1363. case USB_ID(0x0763, 0x2030):
  1364. num_outs = 6;
  1365. num_ins = 4;
  1366. break;
  1367. case USB_ID(0x0763, 0x2031):
  1368. num_outs = 8;
  1369. num_ins = 6;
  1370. break;
  1371. }
  1372. for (chan = 0; chan < num_outs + num_ins; chan++) {
  1373. for (out = 0; out < num_outs; out++) {
  1374. if (chan < num_outs) {
  1375. snprintf(name, sizeof(name),
  1376. "PCM%d-Out%d Playback Volume",
  1377. chan + 1, out + 1);
  1378. } else {
  1379. snprintf(name, sizeof(name),
  1380. "In%d-Out%d Playback Volume",
  1381. chan - num_outs + 1, out + 1);
  1382. }
  1383. cmask = (out == 0) ? 0 : BIT(out - 1);
  1384. offset = chan * num_outs;
  1385. err = snd_create_std_mono_ctl_offset(mixer, id, control,
  1386. cmask, val_type, offset, name,
  1387. &snd_usb_mixer_vol_tlv);
  1388. if (err < 0)
  1389. return err;
  1390. }
  1391. }
  1392. return 0;
  1393. }
  1394. /* This control needs a volume quirk, see mixer.c */
  1395. static int snd_c400_create_effect_volume_ctl(struct usb_mixer_interface *mixer)
  1396. {
  1397. static const char name[] = "Effect Volume";
  1398. const unsigned int id = 0x43;
  1399. const int val_type = USB_MIXER_U8;
  1400. const unsigned int control = 3;
  1401. const unsigned int cmask = 0;
  1402. return snd_create_std_mono_ctl(mixer, id, control, cmask, val_type,
  1403. name, snd_usb_mixer_vol_tlv);
  1404. }
  1405. /* This control needs a volume quirk, see mixer.c */
  1406. static int snd_c400_create_effect_duration_ctl(struct usb_mixer_interface *mixer)
  1407. {
  1408. static const char name[] = "Effect Duration";
  1409. const unsigned int id = 0x43;
  1410. const int val_type = USB_MIXER_S16;
  1411. const unsigned int control = 4;
  1412. const unsigned int cmask = 0;
  1413. return snd_create_std_mono_ctl(mixer, id, control, cmask, val_type,
  1414. name, snd_usb_mixer_vol_tlv);
  1415. }
  1416. /* This control needs a volume quirk, see mixer.c */
  1417. static int snd_c400_create_effect_feedback_ctl(struct usb_mixer_interface *mixer)
  1418. {
  1419. static const char name[] = "Effect Feedback Volume";
  1420. const unsigned int id = 0x43;
  1421. const int val_type = USB_MIXER_U8;
  1422. const unsigned int control = 5;
  1423. const unsigned int cmask = 0;
  1424. return snd_create_std_mono_ctl(mixer, id, control, cmask, val_type,
  1425. name, NULL);
  1426. }
  1427. static int snd_c400_create_effect_vol_ctls(struct usb_mixer_interface *mixer)
  1428. {
  1429. char name[64];
  1430. unsigned int cmask;
  1431. int chan, err;
  1432. int num_outs = 0;
  1433. int num_ins = 0;
  1434. const unsigned int id = 0x42;
  1435. const int val_type = USB_MIXER_S16;
  1436. const int control = 1;
  1437. switch (mixer->chip->usb_id) {
  1438. case USB_ID(0x0763, 0x2030):
  1439. num_outs = 6;
  1440. num_ins = 4;
  1441. break;
  1442. case USB_ID(0x0763, 0x2031):
  1443. num_outs = 8;
  1444. num_ins = 6;
  1445. break;
  1446. }
  1447. for (chan = 0; chan < num_outs + num_ins; chan++) {
  1448. if (chan < num_outs) {
  1449. snprintf(name, sizeof(name),
  1450. "Effect Send DOut%d",
  1451. chan + 1);
  1452. } else {
  1453. snprintf(name, sizeof(name),
  1454. "Effect Send AIn%d",
  1455. chan - num_outs + 1);
  1456. }
  1457. cmask = (chan == 0) ? 0 : BIT(chan - 1);
  1458. err = snd_create_std_mono_ctl(mixer, id, control,
  1459. cmask, val_type, name,
  1460. &snd_usb_mixer_vol_tlv);
  1461. if (err < 0)
  1462. return err;
  1463. }
  1464. return 0;
  1465. }
  1466. static int snd_c400_create_effect_ret_vol_ctls(struct usb_mixer_interface *mixer)
  1467. {
  1468. char name[64];
  1469. unsigned int cmask;
  1470. int chan, err;
  1471. int num_outs = 0;
  1472. int offset = 0;
  1473. const unsigned int id = 0x40;
  1474. const int val_type = USB_MIXER_S16;
  1475. const int control = 1;
  1476. switch (mixer->chip->usb_id) {
  1477. case USB_ID(0x0763, 0x2030):
  1478. num_outs = 6;
  1479. offset = 0x3c;
  1480. /* { 0x3c, 0x43, 0x3e, 0x45, 0x40, 0x47 } */
  1481. break;
  1482. case USB_ID(0x0763, 0x2031):
  1483. num_outs = 8;
  1484. offset = 0x70;
  1485. /* { 0x70, 0x79, 0x72, 0x7b, 0x74, 0x7d, 0x76, 0x7f } */
  1486. break;
  1487. }
  1488. for (chan = 0; chan < num_outs; chan++) {
  1489. snprintf(name, sizeof(name),
  1490. "Effect Return %d",
  1491. chan + 1);
  1492. cmask = (chan == 0) ? 0 :
  1493. BIT(chan + (chan % 2) * num_outs - 1);
  1494. err = snd_create_std_mono_ctl_offset(mixer, id, control,
  1495. cmask, val_type, offset, name,
  1496. &snd_usb_mixer_vol_tlv);
  1497. if (err < 0)
  1498. return err;
  1499. }
  1500. return 0;
  1501. }
  1502. static int snd_c400_create_mixer(struct usb_mixer_interface *mixer)
  1503. {
  1504. int err;
  1505. err = snd_c400_create_vol_ctls(mixer);
  1506. if (err < 0)
  1507. return err;
  1508. err = snd_c400_create_effect_vol_ctls(mixer);
  1509. if (err < 0)
  1510. return err;
  1511. err = snd_c400_create_effect_ret_vol_ctls(mixer);
  1512. if (err < 0)
  1513. return err;
  1514. err = snd_ftu_create_effect_switch(mixer, 2, 0x43);
  1515. if (err < 0)
  1516. return err;
  1517. err = snd_c400_create_effect_volume_ctl(mixer);
  1518. if (err < 0)
  1519. return err;
  1520. err = snd_c400_create_effect_duration_ctl(mixer);
  1521. if (err < 0)
  1522. return err;
  1523. err = snd_c400_create_effect_feedback_ctl(mixer);
  1524. if (err < 0)
  1525. return err;
  1526. return 0;
  1527. }
  1528. /*
  1529. * The mixer units for Ebox-44 are corrupt, and even where they
  1530. * are valid they presents mono controls as L and R channels of
  1531. * stereo. So we provide a good mixer here.
  1532. */
  1533. static const struct std_mono_table ebox44_table[] = {
  1534. {
  1535. .unitid = 4,
  1536. .control = 1,
  1537. .cmask = 0x0,
  1538. .val_type = USB_MIXER_INV_BOOLEAN,
  1539. .name = "Headphone Playback Switch"
  1540. },
  1541. {
  1542. .unitid = 4,
  1543. .control = 2,
  1544. .cmask = 0x1,
  1545. .val_type = USB_MIXER_S16,
  1546. .name = "Headphone A Mix Playback Volume"
  1547. },
  1548. {
  1549. .unitid = 4,
  1550. .control = 2,
  1551. .cmask = 0x2,
  1552. .val_type = USB_MIXER_S16,
  1553. .name = "Headphone B Mix Playback Volume"
  1554. },
  1555. {
  1556. .unitid = 7,
  1557. .control = 1,
  1558. .cmask = 0x0,
  1559. .val_type = USB_MIXER_INV_BOOLEAN,
  1560. .name = "Output Playback Switch"
  1561. },
  1562. {
  1563. .unitid = 7,
  1564. .control = 2,
  1565. .cmask = 0x1,
  1566. .val_type = USB_MIXER_S16,
  1567. .name = "Output A Playback Volume"
  1568. },
  1569. {
  1570. .unitid = 7,
  1571. .control = 2,
  1572. .cmask = 0x2,
  1573. .val_type = USB_MIXER_S16,
  1574. .name = "Output B Playback Volume"
  1575. },
  1576. {
  1577. .unitid = 10,
  1578. .control = 1,
  1579. .cmask = 0x0,
  1580. .val_type = USB_MIXER_INV_BOOLEAN,
  1581. .name = "Input Capture Switch"
  1582. },
  1583. {
  1584. .unitid = 10,
  1585. .control = 2,
  1586. .cmask = 0x1,
  1587. .val_type = USB_MIXER_S16,
  1588. .name = "Input A Capture Volume"
  1589. },
  1590. {
  1591. .unitid = 10,
  1592. .control = 2,
  1593. .cmask = 0x2,
  1594. .val_type = USB_MIXER_S16,
  1595. .name = "Input B Capture Volume"
  1596. },
  1597. {}
  1598. };
  1599. /* Audio Advantage Micro II findings:
  1600. *
  1601. * Mapping spdif AES bits to vendor register.bit:
  1602. * AES0: [0 0 0 0 2.3 2.2 2.1 2.0] - default 0x00
  1603. * AES1: [3.3 3.2.3.1.3.0 2.7 2.6 2.5 2.4] - default: 0x01
  1604. * AES2: [0 0 0 0 0 0 0 0]
  1605. * AES3: [0 0 0 0 0 0 x 0] - 'x' bit is set basing on standard usb request
  1606. * (UAC_EP_CS_ATTR_SAMPLE_RATE) for Audio Devices
  1607. *
  1608. * power on values:
  1609. * r2: 0x10
  1610. * r3: 0x20 (b7 is zeroed just before playback (except IEC61937) and set
  1611. * just after it to 0xa0, presumably it disables/mutes some analog
  1612. * parts when there is no audio.)
  1613. * r9: 0x28
  1614. *
  1615. * Optical transmitter on/off:
  1616. * vendor register.bit: 9.1
  1617. * 0 - on (0x28 register value)
  1618. * 1 - off (0x2a register value)
  1619. *
  1620. */
  1621. static int snd_microii_spdif_info(struct snd_kcontrol *kcontrol,
  1622. struct snd_ctl_elem_info *uinfo)
  1623. {
  1624. uinfo->type = SNDRV_CTL_ELEM_TYPE_IEC958;
  1625. uinfo->count = 1;
  1626. return 0;
  1627. }
  1628. static int snd_microii_spdif_default_get(struct snd_kcontrol *kcontrol,
  1629. struct snd_ctl_elem_value *ucontrol)
  1630. {
  1631. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kcontrol);
  1632. struct snd_usb_audio *chip = list->mixer->chip;
  1633. int err;
  1634. struct usb_interface *iface;
  1635. struct usb_host_interface *alts;
  1636. unsigned int ep;
  1637. unsigned char data[3];
  1638. int rate;
  1639. err = snd_usb_lock_shutdown(chip);
  1640. if (err < 0)
  1641. return err;
  1642. ucontrol->value.iec958.status[0] = kcontrol->private_value & 0xff;
  1643. ucontrol->value.iec958.status[1] = (kcontrol->private_value >> 8) & 0xff;
  1644. ucontrol->value.iec958.status[2] = 0x00;
  1645. /* use known values for that card: interface#1 altsetting#1 */
  1646. iface = usb_ifnum_to_if(chip->dev, 1);
  1647. if (!iface || iface->num_altsetting < 2) {
  1648. err = -EINVAL;
  1649. goto end;
  1650. }
  1651. alts = &iface->altsetting[1];
  1652. if (get_iface_desc(alts)->bNumEndpoints < 1) {
  1653. err = -EINVAL;
  1654. goto end;
  1655. }
  1656. ep = get_endpoint(alts, 0)->bEndpointAddress;
  1657. err = snd_usb_ctl_msg(chip->dev,
  1658. usb_rcvctrlpipe(chip->dev, 0),
  1659. UAC_GET_CUR,
  1660. USB_TYPE_CLASS | USB_RECIP_ENDPOINT | USB_DIR_IN,
  1661. UAC_EP_CS_ATTR_SAMPLE_RATE << 8,
  1662. ep,
  1663. data,
  1664. sizeof(data));
  1665. if (err < 0)
  1666. goto end;
  1667. rate = data[0] | (data[1] << 8) | (data[2] << 16);
  1668. ucontrol->value.iec958.status[3] = (rate == 48000) ?
  1669. IEC958_AES3_CON_FS_48000 : IEC958_AES3_CON_FS_44100;
  1670. err = 0;
  1671. end:
  1672. snd_usb_unlock_shutdown(chip);
  1673. return err;
  1674. }
  1675. static int snd_microii_spdif_default_update(struct usb_mixer_elem_list *list)
  1676. {
  1677. struct snd_usb_audio *chip = list->mixer->chip;
  1678. unsigned int pval = list->kctl->private_value;
  1679. u8 reg;
  1680. int err;
  1681. err = snd_usb_lock_shutdown(chip);
  1682. if (err < 0)
  1683. return err;
  1684. reg = ((pval >> 4) & 0xf0) | (pval & 0x0f);
  1685. err = snd_usb_ctl_msg(chip->dev,
  1686. usb_sndctrlpipe(chip->dev, 0),
  1687. UAC_SET_CUR,
  1688. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_OTHER,
  1689. reg,
  1690. 2,
  1691. NULL,
  1692. 0);
  1693. if (err < 0)
  1694. goto end;
  1695. reg = (pval & IEC958_AES0_NONAUDIO) ? 0xa0 : 0x20;
  1696. reg |= (pval >> 12) & 0x0f;
  1697. err = snd_usb_ctl_msg(chip->dev,
  1698. usb_sndctrlpipe(chip->dev, 0),
  1699. UAC_SET_CUR,
  1700. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_OTHER,
  1701. reg,
  1702. 3,
  1703. NULL,
  1704. 0);
  1705. if (err < 0)
  1706. goto end;
  1707. end:
  1708. snd_usb_unlock_shutdown(chip);
  1709. return err;
  1710. }
  1711. static int snd_microii_spdif_default_put(struct snd_kcontrol *kcontrol,
  1712. struct snd_ctl_elem_value *ucontrol)
  1713. {
  1714. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kcontrol);
  1715. unsigned int pval, pval_old;
  1716. int err;
  1717. pval = kcontrol->private_value;
  1718. pval_old = pval;
  1719. pval &= 0xfffff0f0;
  1720. pval |= (ucontrol->value.iec958.status[1] & 0x0f) << 8;
  1721. pval |= (ucontrol->value.iec958.status[0] & 0x0f);
  1722. pval &= 0xffff0fff;
  1723. pval |= (ucontrol->value.iec958.status[1] & 0xf0) << 8;
  1724. /* The frequency bits in AES3 cannot be set via register access. */
  1725. /* Silently ignore any bits from the request that cannot be set. */
  1726. if (pval == pval_old)
  1727. return 0;
  1728. kcontrol->private_value = pval;
  1729. err = snd_microii_spdif_default_update(list);
  1730. return err < 0 ? err : 1;
  1731. }
  1732. static int snd_microii_spdif_mask_get(struct snd_kcontrol *kcontrol,
  1733. struct snd_ctl_elem_value *ucontrol)
  1734. {
  1735. ucontrol->value.iec958.status[0] = 0x0f;
  1736. ucontrol->value.iec958.status[1] = 0xff;
  1737. ucontrol->value.iec958.status[2] = 0x00;
  1738. ucontrol->value.iec958.status[3] = 0x00;
  1739. return 0;
  1740. }
  1741. static int snd_microii_spdif_switch_get(struct snd_kcontrol *kcontrol,
  1742. struct snd_ctl_elem_value *ucontrol)
  1743. {
  1744. ucontrol->value.integer.value[0] = !(kcontrol->private_value & 0x02);
  1745. return 0;
  1746. }
  1747. static int snd_microii_spdif_switch_update(struct usb_mixer_elem_list *list)
  1748. {
  1749. struct snd_usb_audio *chip = list->mixer->chip;
  1750. u8 reg = list->kctl->private_value;
  1751. int err;
  1752. err = snd_usb_lock_shutdown(chip);
  1753. if (err < 0)
  1754. return err;
  1755. err = snd_usb_ctl_msg(chip->dev,
  1756. usb_sndctrlpipe(chip->dev, 0),
  1757. UAC_SET_CUR,
  1758. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_OTHER,
  1759. reg,
  1760. 9,
  1761. NULL,
  1762. 0);
  1763. snd_usb_unlock_shutdown(chip);
  1764. return err;
  1765. }
  1766. static int snd_microii_spdif_switch_put(struct snd_kcontrol *kcontrol,
  1767. struct snd_ctl_elem_value *ucontrol)
  1768. {
  1769. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kcontrol);
  1770. u8 reg;
  1771. int err;
  1772. reg = ucontrol->value.integer.value[0] ? 0x28 : 0x2a;
  1773. if (reg != list->kctl->private_value)
  1774. return 0;
  1775. kcontrol->private_value = reg;
  1776. err = snd_microii_spdif_switch_update(list);
  1777. return err < 0 ? err : 1;
  1778. }
  1779. static const struct snd_kcontrol_new snd_microii_mixer_spdif[] = {
  1780. {
  1781. .iface = SNDRV_CTL_ELEM_IFACE_PCM,
  1782. .name = SNDRV_CTL_NAME_IEC958("", PLAYBACK, DEFAULT),
  1783. .info = snd_microii_spdif_info,
  1784. .get = snd_microii_spdif_default_get,
  1785. .put = snd_microii_spdif_default_put,
  1786. .private_value = 0x00000100UL,/* reset value */
  1787. },
  1788. {
  1789. .access = SNDRV_CTL_ELEM_ACCESS_READ,
  1790. .iface = SNDRV_CTL_ELEM_IFACE_PCM,
  1791. .name = SNDRV_CTL_NAME_IEC958("", PLAYBACK, MASK),
  1792. .info = snd_microii_spdif_info,
  1793. .get = snd_microii_spdif_mask_get,
  1794. },
  1795. {
  1796. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  1797. .name = SNDRV_CTL_NAME_IEC958("", PLAYBACK, SWITCH),
  1798. .info = snd_ctl_boolean_mono_info,
  1799. .get = snd_microii_spdif_switch_get,
  1800. .put = snd_microii_spdif_switch_put,
  1801. .private_value = 0x00000028UL,/* reset value */
  1802. }
  1803. };
  1804. static int snd_microii_controls_create(struct usb_mixer_interface *mixer)
  1805. {
  1806. int err, i;
  1807. static const usb_mixer_elem_resume_func_t resume_funcs[] = {
  1808. snd_microii_spdif_default_update,
  1809. NULL,
  1810. snd_microii_spdif_switch_update
  1811. };
  1812. for (i = 0; i < ARRAY_SIZE(snd_microii_mixer_spdif); ++i) {
  1813. err = add_single_ctl_with_resume(mixer, 0,
  1814. resume_funcs[i],
  1815. &snd_microii_mixer_spdif[i],
  1816. NULL);
  1817. if (err < 0)
  1818. return err;
  1819. }
  1820. return 0;
  1821. }
  1822. /* Creative Sound Blaster E1 */
  1823. static int snd_soundblaster_e1_switch_get(struct snd_kcontrol *kcontrol,
  1824. struct snd_ctl_elem_value *ucontrol)
  1825. {
  1826. ucontrol->value.integer.value[0] = kcontrol->private_value;
  1827. return 0;
  1828. }
  1829. static int snd_soundblaster_e1_switch_update(struct usb_mixer_interface *mixer,
  1830. unsigned char state)
  1831. {
  1832. struct snd_usb_audio *chip = mixer->chip;
  1833. int err;
  1834. unsigned char buff[2];
  1835. buff[0] = 0x02;
  1836. buff[1] = state ? 0x02 : 0x00;
  1837. err = snd_usb_lock_shutdown(chip);
  1838. if (err < 0)
  1839. return err;
  1840. err = snd_usb_ctl_msg(chip->dev,
  1841. usb_sndctrlpipe(chip->dev, 0), HID_REQ_SET_REPORT,
  1842. USB_TYPE_CLASS | USB_RECIP_INTERFACE | USB_DIR_OUT,
  1843. 0x0202, 3, buff, 2);
  1844. snd_usb_unlock_shutdown(chip);
  1845. return err;
  1846. }
  1847. static int snd_soundblaster_e1_switch_put(struct snd_kcontrol *kcontrol,
  1848. struct snd_ctl_elem_value *ucontrol)
  1849. {
  1850. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kcontrol);
  1851. unsigned char value = !!ucontrol->value.integer.value[0];
  1852. int err;
  1853. if (kcontrol->private_value == value)
  1854. return 0;
  1855. kcontrol->private_value = value;
  1856. err = snd_soundblaster_e1_switch_update(list->mixer, value);
  1857. return err < 0 ? err : 1;
  1858. }
  1859. static int snd_soundblaster_e1_switch_resume(struct usb_mixer_elem_list *list)
  1860. {
  1861. return snd_soundblaster_e1_switch_update(list->mixer,
  1862. list->kctl->private_value);
  1863. }
  1864. static int snd_soundblaster_e1_switch_info(struct snd_kcontrol *kcontrol,
  1865. struct snd_ctl_elem_info *uinfo)
  1866. {
  1867. static const char *const texts[2] = {
  1868. "Mic", "Aux"
  1869. };
  1870. return snd_ctl_enum_info(uinfo, 1, ARRAY_SIZE(texts), texts);
  1871. }
  1872. static const struct snd_kcontrol_new snd_soundblaster_e1_input_switch = {
  1873. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  1874. .name = "Input Source",
  1875. .info = snd_soundblaster_e1_switch_info,
  1876. .get = snd_soundblaster_e1_switch_get,
  1877. .put = snd_soundblaster_e1_switch_put,
  1878. .private_value = 0,
  1879. };
  1880. static int snd_soundblaster_e1_switch_create(struct usb_mixer_interface *mixer)
  1881. {
  1882. return add_single_ctl_with_resume(mixer, 0,
  1883. snd_soundblaster_e1_switch_resume,
  1884. &snd_soundblaster_e1_input_switch,
  1885. NULL);
  1886. }
  1887. /*
  1888. * Dell WD15 dock jack detection
  1889. *
  1890. * The WD15 contains an ALC4020 USB audio controller and ALC3263 audio codec
  1891. * from Realtek. It is a UAC 1 device, and UAC 1 does not support jack
  1892. * detection. Instead, jack detection works by sending HD Audio commands over
  1893. * vendor-type USB messages.
  1894. */
  1895. #define HDA_VERB_CMD(V, N, D) (((N) << 20) | ((V) << 8) | (D))
  1896. #define REALTEK_HDA_VALUE 0x0038
  1897. #define REALTEK_HDA_SET 62
  1898. #define REALTEK_MANUAL_MODE 72
  1899. #define REALTEK_HDA_GET_OUT 88
  1900. #define REALTEK_HDA_GET_IN 89
  1901. #define REALTEK_AUDIO_FUNCTION_GROUP 0x01
  1902. #define REALTEK_LINE1 0x1a
  1903. #define REALTEK_VENDOR_REGISTERS 0x20
  1904. #define REALTEK_HP_OUT 0x21
  1905. #define REALTEK_CBJ_CTRL2 0x50
  1906. #define REALTEK_JACK_INTERRUPT_NODE 5
  1907. #define REALTEK_MIC_FLAG 0x100
  1908. static int realtek_hda_set(struct snd_usb_audio *chip, u32 cmd)
  1909. {
  1910. struct usb_device *dev = chip->dev;
  1911. __be32 buf = cpu_to_be32(cmd);
  1912. return snd_usb_ctl_msg(dev, usb_sndctrlpipe(dev, 0), REALTEK_HDA_SET,
  1913. USB_RECIP_DEVICE | USB_TYPE_VENDOR | USB_DIR_OUT,
  1914. REALTEK_HDA_VALUE, 0, &buf, sizeof(buf));
  1915. }
  1916. static int realtek_hda_get(struct snd_usb_audio *chip, u32 cmd, u32 *value)
  1917. {
  1918. struct usb_device *dev = chip->dev;
  1919. int err;
  1920. __be32 buf = cpu_to_be32(cmd);
  1921. err = snd_usb_ctl_msg(dev, usb_sndctrlpipe(dev, 0), REALTEK_HDA_GET_OUT,
  1922. USB_RECIP_DEVICE | USB_TYPE_VENDOR | USB_DIR_OUT,
  1923. REALTEK_HDA_VALUE, 0, &buf, sizeof(buf));
  1924. if (err < 0)
  1925. return err;
  1926. err = snd_usb_ctl_msg(dev, usb_rcvctrlpipe(dev, 0), REALTEK_HDA_GET_IN,
  1927. USB_RECIP_DEVICE | USB_TYPE_VENDOR | USB_DIR_IN,
  1928. REALTEK_HDA_VALUE, 0, &buf, sizeof(buf));
  1929. if (err < 0)
  1930. return err;
  1931. *value = be32_to_cpu(buf);
  1932. return 0;
  1933. }
  1934. static int realtek_ctl_connector_get(struct snd_kcontrol *kcontrol,
  1935. struct snd_ctl_elem_value *ucontrol)
  1936. {
  1937. struct usb_mixer_elem_info *cval = kcontrol->private_data;
  1938. struct snd_usb_audio *chip = cval->head.mixer->chip;
  1939. u32 pv = kcontrol->private_value;
  1940. u32 node_id = pv & 0xff;
  1941. u32 sense;
  1942. u32 cbj_ctrl2;
  1943. bool presence;
  1944. int err;
  1945. err = snd_usb_lock_shutdown(chip);
  1946. if (err < 0)
  1947. return err;
  1948. err = realtek_hda_get(chip,
  1949. HDA_VERB_CMD(AC_VERB_GET_PIN_SENSE, node_id, 0),
  1950. &sense);
  1951. if (err < 0)
  1952. goto err;
  1953. if (pv & REALTEK_MIC_FLAG) {
  1954. err = realtek_hda_set(chip,
  1955. HDA_VERB_CMD(AC_VERB_SET_COEF_INDEX,
  1956. REALTEK_VENDOR_REGISTERS,
  1957. REALTEK_CBJ_CTRL2));
  1958. if (err < 0)
  1959. goto err;
  1960. err = realtek_hda_get(chip,
  1961. HDA_VERB_CMD(AC_VERB_GET_PROC_COEF,
  1962. REALTEK_VENDOR_REGISTERS, 0),
  1963. &cbj_ctrl2);
  1964. if (err < 0)
  1965. goto err;
  1966. }
  1967. err:
  1968. snd_usb_unlock_shutdown(chip);
  1969. if (err < 0)
  1970. return err;
  1971. presence = sense & AC_PINSENSE_PRESENCE;
  1972. if (pv & REALTEK_MIC_FLAG)
  1973. presence = presence && (cbj_ctrl2 & 0x0070) == 0x0070;
  1974. ucontrol->value.integer.value[0] = presence;
  1975. return 0;
  1976. }
  1977. static const struct snd_kcontrol_new realtek_connector_ctl_ro = {
  1978. .iface = SNDRV_CTL_ELEM_IFACE_CARD,
  1979. .name = "", /* will be filled later manually */
  1980. .access = SNDRV_CTL_ELEM_ACCESS_READ,
  1981. .info = snd_ctl_boolean_mono_info,
  1982. .get = realtek_ctl_connector_get,
  1983. };
  1984. static int realtek_resume_jack(struct usb_mixer_elem_list *list)
  1985. {
  1986. snd_ctl_notify(list->mixer->chip->card, SNDRV_CTL_EVENT_MASK_VALUE,
  1987. &list->kctl->id);
  1988. return 0;
  1989. }
  1990. static int realtek_add_jack(struct usb_mixer_interface *mixer,
  1991. char *name, u32 val)
  1992. {
  1993. struct usb_mixer_elem_info *cval;
  1994. struct snd_kcontrol *kctl;
  1995. cval = kzalloc(sizeof(*cval), GFP_KERNEL);
  1996. if (!cval)
  1997. return -ENOMEM;
  1998. snd_usb_mixer_elem_init_std(&cval->head, mixer,
  1999. REALTEK_JACK_INTERRUPT_NODE);
  2000. cval->head.resume = realtek_resume_jack;
  2001. cval->val_type = USB_MIXER_BOOLEAN;
  2002. cval->channels = 1;
  2003. cval->min = 0;
  2004. cval->max = 1;
  2005. kctl = snd_ctl_new1(&realtek_connector_ctl_ro, cval);
  2006. if (!kctl) {
  2007. kfree(cval);
  2008. return -ENOMEM;
  2009. }
  2010. kctl->private_value = val;
  2011. strscpy(kctl->id.name, name, sizeof(kctl->id.name));
  2012. kctl->private_free = snd_usb_mixer_elem_free;
  2013. return snd_usb_mixer_add_control(&cval->head, kctl);
  2014. }
  2015. static int dell_dock_mixer_create(struct usb_mixer_interface *mixer)
  2016. {
  2017. int err;
  2018. struct usb_device *dev = mixer->chip->dev;
  2019. /* Power down the audio codec to avoid loud pops in the next step. */
  2020. realtek_hda_set(mixer->chip,
  2021. HDA_VERB_CMD(AC_VERB_SET_POWER_STATE,
  2022. REALTEK_AUDIO_FUNCTION_GROUP,
  2023. AC_PWRST_D3));
  2024. /*
  2025. * Turn off 'manual mode' in case it was enabled. This removes the need
  2026. * to power cycle the dock after it was attached to a Windows machine.
  2027. */
  2028. snd_usb_ctl_msg(dev, usb_sndctrlpipe(dev, 0), REALTEK_MANUAL_MODE,
  2029. USB_RECIP_DEVICE | USB_TYPE_VENDOR | USB_DIR_OUT,
  2030. 0, 0, NULL, 0);
  2031. err = realtek_add_jack(mixer, "Line Out Jack", REALTEK_LINE1);
  2032. if (err < 0)
  2033. return err;
  2034. err = realtek_add_jack(mixer, "Headphone Jack", REALTEK_HP_OUT);
  2035. if (err < 0)
  2036. return err;
  2037. err = realtek_add_jack(mixer, "Headset Mic Jack",
  2038. REALTEK_HP_OUT | REALTEK_MIC_FLAG);
  2039. if (err < 0)
  2040. return err;
  2041. return 0;
  2042. }
  2043. static void dell_dock_init_vol(struct usb_mixer_interface *mixer, int ch, int id)
  2044. {
  2045. struct snd_usb_audio *chip = mixer->chip;
  2046. u16 buf = 0;
  2047. snd_usb_ctl_msg(chip->dev, usb_sndctrlpipe(chip->dev, 0), UAC_SET_CUR,
  2048. USB_RECIP_INTERFACE | USB_TYPE_CLASS | USB_DIR_OUT,
  2049. (UAC_FU_VOLUME << 8) | ch,
  2050. snd_usb_ctrl_intf(mixer->hostif) | (id << 8),
  2051. &buf, 2);
  2052. }
  2053. static int dell_dock_mixer_init(struct usb_mixer_interface *mixer)
  2054. {
  2055. /* fix to 0dB playback volumes */
  2056. dell_dock_init_vol(mixer, 1, 16);
  2057. dell_dock_init_vol(mixer, 2, 16);
  2058. dell_dock_init_vol(mixer, 1, 19);
  2059. dell_dock_init_vol(mixer, 2, 19);
  2060. return 0;
  2061. }
  2062. /* RME Class Compliant device quirks */
  2063. #define SND_RME_GET_STATUS1 23
  2064. #define SND_RME_GET_CURRENT_FREQ 17
  2065. #define SND_RME_CLK_SYSTEM_SHIFT 16
  2066. #define SND_RME_CLK_SYSTEM_MASK 0x1f
  2067. #define SND_RME_CLK_AES_SHIFT 8
  2068. #define SND_RME_CLK_SPDIF_SHIFT 12
  2069. #define SND_RME_CLK_AES_SPDIF_MASK 0xf
  2070. #define SND_RME_CLK_SYNC_SHIFT 6
  2071. #define SND_RME_CLK_SYNC_MASK 0x3
  2072. #define SND_RME_CLK_FREQMUL_SHIFT 18
  2073. #define SND_RME_CLK_FREQMUL_MASK 0x7
  2074. #define SND_RME_CLK_SYSTEM(x) \
  2075. (((x) >> SND_RME_CLK_SYSTEM_SHIFT) & SND_RME_CLK_SYSTEM_MASK)
  2076. #define SND_RME_CLK_AES(x) \
  2077. (((x) >> SND_RME_CLK_AES_SHIFT) & SND_RME_CLK_AES_SPDIF_MASK)
  2078. #define SND_RME_CLK_SPDIF(x) \
  2079. (((x) >> SND_RME_CLK_SPDIF_SHIFT) & SND_RME_CLK_AES_SPDIF_MASK)
  2080. #define SND_RME_CLK_SYNC(x) \
  2081. (((x) >> SND_RME_CLK_SYNC_SHIFT) & SND_RME_CLK_SYNC_MASK)
  2082. #define SND_RME_CLK_FREQMUL(x) \
  2083. (((x) >> SND_RME_CLK_FREQMUL_SHIFT) & SND_RME_CLK_FREQMUL_MASK)
  2084. #define SND_RME_CLK_AES_LOCK 0x1
  2085. #define SND_RME_CLK_AES_SYNC 0x4
  2086. #define SND_RME_CLK_SPDIF_LOCK 0x2
  2087. #define SND_RME_CLK_SPDIF_SYNC 0x8
  2088. #define SND_RME_SPDIF_IF_SHIFT 4
  2089. #define SND_RME_SPDIF_FORMAT_SHIFT 5
  2090. #define SND_RME_BINARY_MASK 0x1
  2091. #define SND_RME_SPDIF_IF(x) \
  2092. (((x) >> SND_RME_SPDIF_IF_SHIFT) & SND_RME_BINARY_MASK)
  2093. #define SND_RME_SPDIF_FORMAT(x) \
  2094. (((x) >> SND_RME_SPDIF_FORMAT_SHIFT) & SND_RME_BINARY_MASK)
  2095. static const u32 snd_rme_rate_table[] = {
  2096. 32000, 44100, 48000, 50000,
  2097. 64000, 88200, 96000, 100000,
  2098. 128000, 176400, 192000, 200000,
  2099. 256000, 352800, 384000, 400000,
  2100. 512000, 705600, 768000, 800000
  2101. };
  2102. /* maximum number of items for AES and S/PDIF rates for above table */
  2103. #define SND_RME_RATE_IDX_AES_SPDIF_NUM 12
  2104. enum snd_rme_domain {
  2105. SND_RME_DOMAIN_SYSTEM,
  2106. SND_RME_DOMAIN_AES,
  2107. SND_RME_DOMAIN_SPDIF
  2108. };
  2109. enum snd_rme_clock_status {
  2110. SND_RME_CLOCK_NOLOCK,
  2111. SND_RME_CLOCK_LOCK,
  2112. SND_RME_CLOCK_SYNC
  2113. };
  2114. static int snd_rme_read_value(struct snd_usb_audio *chip,
  2115. unsigned int item,
  2116. u32 *value)
  2117. {
  2118. struct usb_device *dev = chip->dev;
  2119. int err;
  2120. err = snd_usb_ctl_msg(dev, usb_rcvctrlpipe(dev, 0),
  2121. item,
  2122. USB_DIR_IN | USB_TYPE_VENDOR | USB_RECIP_DEVICE,
  2123. 0, 0,
  2124. value, sizeof(*value));
  2125. if (err < 0)
  2126. dev_err(&dev->dev,
  2127. "unable to issue vendor read request %d (ret = %d)",
  2128. item, err);
  2129. return err;
  2130. }
  2131. static int snd_rme_get_status1(struct snd_kcontrol *kcontrol,
  2132. u32 *status1)
  2133. {
  2134. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kcontrol);
  2135. struct snd_usb_audio *chip = list->mixer->chip;
  2136. int err;
  2137. err = snd_usb_lock_shutdown(chip);
  2138. if (err < 0)
  2139. return err;
  2140. err = snd_rme_read_value(chip, SND_RME_GET_STATUS1, status1);
  2141. snd_usb_unlock_shutdown(chip);
  2142. return err;
  2143. }
  2144. static int snd_rme_rate_get(struct snd_kcontrol *kcontrol,
  2145. struct snd_ctl_elem_value *ucontrol)
  2146. {
  2147. u32 status1;
  2148. u32 rate = 0;
  2149. int idx;
  2150. int err;
  2151. err = snd_rme_get_status1(kcontrol, &status1);
  2152. if (err < 0)
  2153. return err;
  2154. switch (kcontrol->private_value) {
  2155. case SND_RME_DOMAIN_SYSTEM:
  2156. idx = SND_RME_CLK_SYSTEM(status1);
  2157. if (idx < ARRAY_SIZE(snd_rme_rate_table))
  2158. rate = snd_rme_rate_table[idx];
  2159. break;
  2160. case SND_RME_DOMAIN_AES:
  2161. idx = SND_RME_CLK_AES(status1);
  2162. if (idx < SND_RME_RATE_IDX_AES_SPDIF_NUM)
  2163. rate = snd_rme_rate_table[idx];
  2164. break;
  2165. case SND_RME_DOMAIN_SPDIF:
  2166. idx = SND_RME_CLK_SPDIF(status1);
  2167. if (idx < SND_RME_RATE_IDX_AES_SPDIF_NUM)
  2168. rate = snd_rme_rate_table[idx];
  2169. break;
  2170. default:
  2171. return -EINVAL;
  2172. }
  2173. ucontrol->value.integer.value[0] = rate;
  2174. return 0;
  2175. }
  2176. static int snd_rme_sync_state_get(struct snd_kcontrol *kcontrol,
  2177. struct snd_ctl_elem_value *ucontrol)
  2178. {
  2179. u32 status1;
  2180. int idx = SND_RME_CLOCK_NOLOCK;
  2181. int err;
  2182. err = snd_rme_get_status1(kcontrol, &status1);
  2183. if (err < 0)
  2184. return err;
  2185. switch (kcontrol->private_value) {
  2186. case SND_RME_DOMAIN_AES: /* AES */
  2187. if (status1 & SND_RME_CLK_AES_SYNC)
  2188. idx = SND_RME_CLOCK_SYNC;
  2189. else if (status1 & SND_RME_CLK_AES_LOCK)
  2190. idx = SND_RME_CLOCK_LOCK;
  2191. break;
  2192. case SND_RME_DOMAIN_SPDIF: /* SPDIF */
  2193. if (status1 & SND_RME_CLK_SPDIF_SYNC)
  2194. idx = SND_RME_CLOCK_SYNC;
  2195. else if (status1 & SND_RME_CLK_SPDIF_LOCK)
  2196. idx = SND_RME_CLOCK_LOCK;
  2197. break;
  2198. default:
  2199. return -EINVAL;
  2200. }
  2201. ucontrol->value.enumerated.item[0] = idx;
  2202. return 0;
  2203. }
  2204. static int snd_rme_spdif_if_get(struct snd_kcontrol *kcontrol,
  2205. struct snd_ctl_elem_value *ucontrol)
  2206. {
  2207. u32 status1;
  2208. int err;
  2209. err = snd_rme_get_status1(kcontrol, &status1);
  2210. if (err < 0)
  2211. return err;
  2212. ucontrol->value.enumerated.item[0] = SND_RME_SPDIF_IF(status1);
  2213. return 0;
  2214. }
  2215. static int snd_rme_spdif_format_get(struct snd_kcontrol *kcontrol,
  2216. struct snd_ctl_elem_value *ucontrol)
  2217. {
  2218. u32 status1;
  2219. int err;
  2220. err = snd_rme_get_status1(kcontrol, &status1);
  2221. if (err < 0)
  2222. return err;
  2223. ucontrol->value.enumerated.item[0] = SND_RME_SPDIF_FORMAT(status1);
  2224. return 0;
  2225. }
  2226. static int snd_rme_sync_source_get(struct snd_kcontrol *kcontrol,
  2227. struct snd_ctl_elem_value *ucontrol)
  2228. {
  2229. u32 status1;
  2230. int err;
  2231. err = snd_rme_get_status1(kcontrol, &status1);
  2232. if (err < 0)
  2233. return err;
  2234. ucontrol->value.enumerated.item[0] = SND_RME_CLK_SYNC(status1);
  2235. return 0;
  2236. }
  2237. static int snd_rme_current_freq_get(struct snd_kcontrol *kcontrol,
  2238. struct snd_ctl_elem_value *ucontrol)
  2239. {
  2240. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kcontrol);
  2241. struct snd_usb_audio *chip = list->mixer->chip;
  2242. u32 status1;
  2243. const u64 num = 104857600000000ULL;
  2244. u32 den;
  2245. unsigned int freq;
  2246. int err;
  2247. err = snd_usb_lock_shutdown(chip);
  2248. if (err < 0)
  2249. return err;
  2250. err = snd_rme_read_value(chip, SND_RME_GET_STATUS1, &status1);
  2251. if (err < 0)
  2252. goto end;
  2253. err = snd_rme_read_value(chip, SND_RME_GET_CURRENT_FREQ, &den);
  2254. if (err < 0)
  2255. goto end;
  2256. freq = (den == 0) ? 0 : div64_u64(num, den);
  2257. freq <<= SND_RME_CLK_FREQMUL(status1);
  2258. ucontrol->value.integer.value[0] = freq;
  2259. end:
  2260. snd_usb_unlock_shutdown(chip);
  2261. return err;
  2262. }
  2263. static int snd_rme_rate_info(struct snd_kcontrol *kcontrol,
  2264. struct snd_ctl_elem_info *uinfo)
  2265. {
  2266. uinfo->type = SNDRV_CTL_ELEM_TYPE_INTEGER;
  2267. uinfo->count = 1;
  2268. switch (kcontrol->private_value) {
  2269. case SND_RME_DOMAIN_SYSTEM:
  2270. uinfo->value.integer.min = 32000;
  2271. uinfo->value.integer.max = 800000;
  2272. break;
  2273. case SND_RME_DOMAIN_AES:
  2274. case SND_RME_DOMAIN_SPDIF:
  2275. default:
  2276. uinfo->value.integer.min = 0;
  2277. uinfo->value.integer.max = 200000;
  2278. }
  2279. uinfo->value.integer.step = 0;
  2280. return 0;
  2281. }
  2282. static int snd_rme_sync_state_info(struct snd_kcontrol *kcontrol,
  2283. struct snd_ctl_elem_info *uinfo)
  2284. {
  2285. static const char *const sync_states[] = {
  2286. "No Lock", "Lock", "Sync"
  2287. };
  2288. return snd_ctl_enum_info(uinfo, 1,
  2289. ARRAY_SIZE(sync_states), sync_states);
  2290. }
  2291. static int snd_rme_spdif_if_info(struct snd_kcontrol *kcontrol,
  2292. struct snd_ctl_elem_info *uinfo)
  2293. {
  2294. static const char *const spdif_if[] = {
  2295. "Coaxial", "Optical"
  2296. };
  2297. return snd_ctl_enum_info(uinfo, 1,
  2298. ARRAY_SIZE(spdif_if), spdif_if);
  2299. }
  2300. static int snd_rme_spdif_format_info(struct snd_kcontrol *kcontrol,
  2301. struct snd_ctl_elem_info *uinfo)
  2302. {
  2303. static const char *const optical_type[] = {
  2304. "Consumer", "Professional"
  2305. };
  2306. return snd_ctl_enum_info(uinfo, 1,
  2307. ARRAY_SIZE(optical_type), optical_type);
  2308. }
  2309. static int snd_rme_sync_source_info(struct snd_kcontrol *kcontrol,
  2310. struct snd_ctl_elem_info *uinfo)
  2311. {
  2312. static const char *const sync_sources[] = {
  2313. "Internal", "AES", "SPDIF", "Internal"
  2314. };
  2315. return snd_ctl_enum_info(uinfo, 1,
  2316. ARRAY_SIZE(sync_sources), sync_sources);
  2317. }
  2318. static const struct snd_kcontrol_new snd_rme_controls[] = {
  2319. {
  2320. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  2321. .name = "AES Rate",
  2322. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  2323. .info = snd_rme_rate_info,
  2324. .get = snd_rme_rate_get,
  2325. .private_value = SND_RME_DOMAIN_AES
  2326. },
  2327. {
  2328. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  2329. .name = "AES Sync",
  2330. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  2331. .info = snd_rme_sync_state_info,
  2332. .get = snd_rme_sync_state_get,
  2333. .private_value = SND_RME_DOMAIN_AES
  2334. },
  2335. {
  2336. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  2337. .name = "SPDIF Rate",
  2338. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  2339. .info = snd_rme_rate_info,
  2340. .get = snd_rme_rate_get,
  2341. .private_value = SND_RME_DOMAIN_SPDIF
  2342. },
  2343. {
  2344. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  2345. .name = "SPDIF Sync",
  2346. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  2347. .info = snd_rme_sync_state_info,
  2348. .get = snd_rme_sync_state_get,
  2349. .private_value = SND_RME_DOMAIN_SPDIF
  2350. },
  2351. {
  2352. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  2353. .name = "SPDIF Interface",
  2354. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  2355. .info = snd_rme_spdif_if_info,
  2356. .get = snd_rme_spdif_if_get,
  2357. },
  2358. {
  2359. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  2360. .name = "SPDIF Format",
  2361. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  2362. .info = snd_rme_spdif_format_info,
  2363. .get = snd_rme_spdif_format_get,
  2364. },
  2365. {
  2366. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  2367. .name = "Sync Source",
  2368. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  2369. .info = snd_rme_sync_source_info,
  2370. .get = snd_rme_sync_source_get
  2371. },
  2372. {
  2373. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  2374. .name = "System Rate",
  2375. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  2376. .info = snd_rme_rate_info,
  2377. .get = snd_rme_rate_get,
  2378. .private_value = SND_RME_DOMAIN_SYSTEM
  2379. },
  2380. {
  2381. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  2382. .name = "Current Frequency",
  2383. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  2384. .info = snd_rme_rate_info,
  2385. .get = snd_rme_current_freq_get
  2386. }
  2387. };
  2388. static int snd_rme_controls_create(struct usb_mixer_interface *mixer)
  2389. {
  2390. int err, i;
  2391. for (i = 0; i < ARRAY_SIZE(snd_rme_controls); ++i) {
  2392. err = add_single_ctl_with_resume(mixer, 0,
  2393. NULL,
  2394. &snd_rme_controls[i],
  2395. NULL);
  2396. if (err < 0)
  2397. return err;
  2398. }
  2399. return 0;
  2400. }
  2401. /*
  2402. * RME Babyface Pro (FS)
  2403. *
  2404. * These devices exposes a couple of DSP functions via request to EP0.
  2405. * Switches are available via control registers, while routing is controlled
  2406. * by controlling the volume on each possible crossing point.
  2407. * Volume control is linear, from -inf (dec. 0) to +6dB (dec. 65536) with
  2408. * 0dB being at dec. 32768.
  2409. */
  2410. enum {
  2411. SND_BBFPRO_CTL_REG1 = 0,
  2412. SND_BBFPRO_CTL_REG2
  2413. };
  2414. #define SND_BBFPRO_CTL_REG_MASK 1
  2415. #define SND_BBFPRO_CTL_IDX_MASK 0xff
  2416. #define SND_BBFPRO_CTL_IDX_SHIFT 1
  2417. #define SND_BBFPRO_CTL_VAL_MASK 1
  2418. #define SND_BBFPRO_CTL_VAL_SHIFT 9
  2419. #define SND_BBFPRO_CTL_REG1_CLK_MASTER 0
  2420. #define SND_BBFPRO_CTL_REG1_CLK_OPTICAL 1
  2421. #define SND_BBFPRO_CTL_REG1_SPDIF_PRO 7
  2422. #define SND_BBFPRO_CTL_REG1_SPDIF_EMPH 8
  2423. #define SND_BBFPRO_CTL_REG1_SPDIF_OPTICAL 10
  2424. #define SND_BBFPRO_CTL_REG2_48V_AN1 0
  2425. #define SND_BBFPRO_CTL_REG2_48V_AN2 1
  2426. #define SND_BBFPRO_CTL_REG2_SENS_IN3 2
  2427. #define SND_BBFPRO_CTL_REG2_SENS_IN4 3
  2428. #define SND_BBFPRO_CTL_REG2_PAD_AN1 4
  2429. #define SND_BBFPRO_CTL_REG2_PAD_AN2 5
  2430. #define SND_BBFPRO_MIXER_MAIN_OUT_CH_OFFSET 992
  2431. #define SND_BBFPRO_MIXER_IDX_MASK 0x3ff
  2432. #define SND_BBFPRO_MIXER_VAL_MASK 0x3ffff
  2433. #define SND_BBFPRO_MIXER_VAL_SHIFT 9
  2434. #define SND_BBFPRO_MIXER_VAL_MIN 0 // -inf
  2435. #define SND_BBFPRO_MIXER_VAL_MAX 65536 // +6dB
  2436. #define SND_BBFPRO_GAIN_CHANNEL_MASK 0x03
  2437. #define SND_BBFPRO_GAIN_CHANNEL_SHIFT 7
  2438. #define SND_BBFPRO_GAIN_VAL_MASK 0x7f
  2439. #define SND_BBFPRO_GAIN_VAL_MIN 0
  2440. #define SND_BBFPRO_GAIN_VAL_MIC_MAX 65
  2441. #define SND_BBFPRO_GAIN_VAL_LINE_MAX 18 // 9db in 0.5db incraments
  2442. #define SND_BBFPRO_USBREQ_CTL_REG1 0x10
  2443. #define SND_BBFPRO_USBREQ_CTL_REG2 0x17
  2444. #define SND_BBFPRO_USBREQ_GAIN 0x1a
  2445. #define SND_BBFPRO_USBREQ_MIXER 0x12
  2446. static int snd_bbfpro_ctl_update(struct usb_mixer_interface *mixer, u8 reg,
  2447. u8 index, u8 value)
  2448. {
  2449. int err;
  2450. u16 usb_req, usb_idx, usb_val;
  2451. struct snd_usb_audio *chip = mixer->chip;
  2452. err = snd_usb_lock_shutdown(chip);
  2453. if (err < 0)
  2454. return err;
  2455. if (reg == SND_BBFPRO_CTL_REG1) {
  2456. usb_req = SND_BBFPRO_USBREQ_CTL_REG1;
  2457. if (index == SND_BBFPRO_CTL_REG1_CLK_OPTICAL) {
  2458. usb_idx = 3;
  2459. usb_val = value ? 3 : 0;
  2460. } else {
  2461. usb_idx = BIT(index);
  2462. usb_val = value ? usb_idx : 0;
  2463. }
  2464. } else {
  2465. usb_req = SND_BBFPRO_USBREQ_CTL_REG2;
  2466. usb_idx = BIT(index);
  2467. usb_val = value ? usb_idx : 0;
  2468. }
  2469. err = snd_usb_ctl_msg(chip->dev,
  2470. usb_sndctrlpipe(chip->dev, 0), usb_req,
  2471. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_DEVICE,
  2472. usb_val, usb_idx, NULL, 0);
  2473. snd_usb_unlock_shutdown(chip);
  2474. return err;
  2475. }
  2476. static int snd_bbfpro_ctl_get(struct snd_kcontrol *kcontrol,
  2477. struct snd_ctl_elem_value *ucontrol)
  2478. {
  2479. u8 reg, idx, val;
  2480. int pv;
  2481. pv = kcontrol->private_value;
  2482. reg = pv & SND_BBFPRO_CTL_REG_MASK;
  2483. idx = (pv >> SND_BBFPRO_CTL_IDX_SHIFT) & SND_BBFPRO_CTL_IDX_MASK;
  2484. val = kcontrol->private_value >> SND_BBFPRO_CTL_VAL_SHIFT;
  2485. if ((reg == SND_BBFPRO_CTL_REG1 &&
  2486. idx == SND_BBFPRO_CTL_REG1_CLK_OPTICAL) ||
  2487. (reg == SND_BBFPRO_CTL_REG2 &&
  2488. (idx == SND_BBFPRO_CTL_REG2_SENS_IN3 ||
  2489. idx == SND_BBFPRO_CTL_REG2_SENS_IN4))) {
  2490. ucontrol->value.enumerated.item[0] = val;
  2491. } else {
  2492. ucontrol->value.integer.value[0] = val;
  2493. }
  2494. return 0;
  2495. }
  2496. static int snd_bbfpro_ctl_info(struct snd_kcontrol *kcontrol,
  2497. struct snd_ctl_elem_info *uinfo)
  2498. {
  2499. u8 reg, idx;
  2500. int pv;
  2501. pv = kcontrol->private_value;
  2502. reg = pv & SND_BBFPRO_CTL_REG_MASK;
  2503. idx = (pv >> SND_BBFPRO_CTL_IDX_SHIFT) & SND_BBFPRO_CTL_IDX_MASK;
  2504. if (reg == SND_BBFPRO_CTL_REG1 &&
  2505. idx == SND_BBFPRO_CTL_REG1_CLK_OPTICAL) {
  2506. static const char * const texts[2] = {
  2507. "AutoSync",
  2508. "Internal"
  2509. };
  2510. return snd_ctl_enum_info(uinfo, 1, 2, texts);
  2511. } else if (reg == SND_BBFPRO_CTL_REG2 &&
  2512. (idx == SND_BBFPRO_CTL_REG2_SENS_IN3 ||
  2513. idx == SND_BBFPRO_CTL_REG2_SENS_IN4)) {
  2514. static const char * const texts[2] = {
  2515. "-10dBV",
  2516. "+4dBu"
  2517. };
  2518. return snd_ctl_enum_info(uinfo, 1, 2, texts);
  2519. }
  2520. uinfo->count = 1;
  2521. uinfo->value.integer.min = 0;
  2522. uinfo->value.integer.max = 1;
  2523. uinfo->type = SNDRV_CTL_ELEM_TYPE_BOOLEAN;
  2524. return 0;
  2525. }
  2526. static int snd_bbfpro_ctl_put(struct snd_kcontrol *kcontrol,
  2527. struct snd_ctl_elem_value *ucontrol)
  2528. {
  2529. int err;
  2530. u8 reg, idx;
  2531. int old_value, pv, val;
  2532. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kcontrol);
  2533. struct usb_mixer_interface *mixer = list->mixer;
  2534. pv = kcontrol->private_value;
  2535. reg = pv & SND_BBFPRO_CTL_REG_MASK;
  2536. idx = (pv >> SND_BBFPRO_CTL_IDX_SHIFT) & SND_BBFPRO_CTL_IDX_MASK;
  2537. old_value = (pv >> SND_BBFPRO_CTL_VAL_SHIFT) & SND_BBFPRO_CTL_VAL_MASK;
  2538. if ((reg == SND_BBFPRO_CTL_REG1 &&
  2539. idx == SND_BBFPRO_CTL_REG1_CLK_OPTICAL) ||
  2540. (reg == SND_BBFPRO_CTL_REG2 &&
  2541. (idx == SND_BBFPRO_CTL_REG2_SENS_IN3 ||
  2542. idx == SND_BBFPRO_CTL_REG2_SENS_IN4))) {
  2543. val = ucontrol->value.enumerated.item[0];
  2544. } else {
  2545. val = ucontrol->value.integer.value[0];
  2546. }
  2547. if (val > 1)
  2548. return -EINVAL;
  2549. if (val == old_value)
  2550. return 0;
  2551. kcontrol->private_value = reg
  2552. | ((idx & SND_BBFPRO_CTL_IDX_MASK) << SND_BBFPRO_CTL_IDX_SHIFT)
  2553. | ((val & SND_BBFPRO_CTL_VAL_MASK) << SND_BBFPRO_CTL_VAL_SHIFT);
  2554. err = snd_bbfpro_ctl_update(mixer, reg, idx, val);
  2555. return err < 0 ? err : 1;
  2556. }
  2557. static int snd_bbfpro_ctl_resume(struct usb_mixer_elem_list *list)
  2558. {
  2559. u8 reg, idx;
  2560. int value, pv;
  2561. pv = list->kctl->private_value;
  2562. reg = pv & SND_BBFPRO_CTL_REG_MASK;
  2563. idx = (pv >> SND_BBFPRO_CTL_IDX_SHIFT) & SND_BBFPRO_CTL_IDX_MASK;
  2564. value = (pv >> SND_BBFPRO_CTL_VAL_SHIFT) & SND_BBFPRO_CTL_VAL_MASK;
  2565. return snd_bbfpro_ctl_update(list->mixer, reg, idx, value);
  2566. }
  2567. static int snd_bbfpro_gain_update(struct usb_mixer_interface *mixer,
  2568. u8 channel, u8 gain)
  2569. {
  2570. int err;
  2571. struct snd_usb_audio *chip = mixer->chip;
  2572. if (channel < 2) {
  2573. // XLR preamp: 3-bit fine, 5-bit coarse; special case >60
  2574. if (gain < 60)
  2575. gain = ((gain % 3) << 5) | (gain / 3);
  2576. else
  2577. gain = ((gain % 6) << 5) | (60 / 3);
  2578. }
  2579. err = snd_usb_lock_shutdown(chip);
  2580. if (err < 0)
  2581. return err;
  2582. err = snd_usb_ctl_msg(chip->dev,
  2583. usb_sndctrlpipe(chip->dev, 0),
  2584. SND_BBFPRO_USBREQ_GAIN,
  2585. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_DEVICE,
  2586. gain, channel, NULL, 0);
  2587. snd_usb_unlock_shutdown(chip);
  2588. return err;
  2589. }
  2590. static int snd_bbfpro_gain_get(struct snd_kcontrol *kcontrol,
  2591. struct snd_ctl_elem_value *ucontrol)
  2592. {
  2593. int value = kcontrol->private_value & SND_BBFPRO_GAIN_VAL_MASK;
  2594. ucontrol->value.integer.value[0] = value;
  2595. return 0;
  2596. }
  2597. static int snd_bbfpro_gain_info(struct snd_kcontrol *kcontrol,
  2598. struct snd_ctl_elem_info *uinfo)
  2599. {
  2600. int pv, channel;
  2601. pv = kcontrol->private_value;
  2602. channel = (pv >> SND_BBFPRO_GAIN_CHANNEL_SHIFT) &
  2603. SND_BBFPRO_GAIN_CHANNEL_MASK;
  2604. uinfo->type = SNDRV_CTL_ELEM_TYPE_INTEGER;
  2605. uinfo->count = 1;
  2606. uinfo->value.integer.min = SND_BBFPRO_GAIN_VAL_MIN;
  2607. if (channel < 2)
  2608. uinfo->value.integer.max = SND_BBFPRO_GAIN_VAL_MIC_MAX;
  2609. else
  2610. uinfo->value.integer.max = SND_BBFPRO_GAIN_VAL_LINE_MAX;
  2611. return 0;
  2612. }
  2613. static int snd_bbfpro_gain_put(struct snd_kcontrol *kcontrol,
  2614. struct snd_ctl_elem_value *ucontrol)
  2615. {
  2616. int pv, channel, old_value, value, err;
  2617. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kcontrol);
  2618. struct usb_mixer_interface *mixer = list->mixer;
  2619. pv = kcontrol->private_value;
  2620. channel = (pv >> SND_BBFPRO_GAIN_CHANNEL_SHIFT) &
  2621. SND_BBFPRO_GAIN_CHANNEL_MASK;
  2622. old_value = pv & SND_BBFPRO_GAIN_VAL_MASK;
  2623. value = ucontrol->value.integer.value[0];
  2624. if (value < SND_BBFPRO_GAIN_VAL_MIN)
  2625. return -EINVAL;
  2626. if (channel < 2) {
  2627. if (value > SND_BBFPRO_GAIN_VAL_MIC_MAX)
  2628. return -EINVAL;
  2629. } else {
  2630. if (value > SND_BBFPRO_GAIN_VAL_LINE_MAX)
  2631. return -EINVAL;
  2632. }
  2633. if (value == old_value)
  2634. return 0;
  2635. err = snd_bbfpro_gain_update(mixer, channel, value);
  2636. if (err < 0)
  2637. return err;
  2638. kcontrol->private_value =
  2639. (channel << SND_BBFPRO_GAIN_CHANNEL_SHIFT) | value;
  2640. return 1;
  2641. }
  2642. static int snd_bbfpro_gain_resume(struct usb_mixer_elem_list *list)
  2643. {
  2644. int pv, channel, value;
  2645. struct snd_kcontrol *kctl = list->kctl;
  2646. pv = kctl->private_value;
  2647. channel = (pv >> SND_BBFPRO_GAIN_CHANNEL_SHIFT) &
  2648. SND_BBFPRO_GAIN_CHANNEL_MASK;
  2649. value = pv & SND_BBFPRO_GAIN_VAL_MASK;
  2650. return snd_bbfpro_gain_update(list->mixer, channel, value);
  2651. }
  2652. static int snd_bbfpro_vol_update(struct usb_mixer_interface *mixer, u16 index,
  2653. u32 value)
  2654. {
  2655. struct snd_usb_audio *chip = mixer->chip;
  2656. int err;
  2657. u16 idx;
  2658. u16 usb_idx, usb_val;
  2659. u32 v;
  2660. err = snd_usb_lock_shutdown(chip);
  2661. if (err < 0)
  2662. return err;
  2663. idx = index & SND_BBFPRO_MIXER_IDX_MASK;
  2664. // 18 bit linear volume, split so 2 bits end up in index.
  2665. v = value & SND_BBFPRO_MIXER_VAL_MASK;
  2666. usb_idx = idx | (v & 0x3) << 14;
  2667. usb_val = (v >> 2) & 0xffff;
  2668. err = snd_usb_ctl_msg(chip->dev,
  2669. usb_sndctrlpipe(chip->dev, 0),
  2670. SND_BBFPRO_USBREQ_MIXER,
  2671. USB_DIR_OUT | USB_TYPE_VENDOR |
  2672. USB_RECIP_DEVICE,
  2673. usb_val, usb_idx, NULL, 0);
  2674. snd_usb_unlock_shutdown(chip);
  2675. return err;
  2676. }
  2677. static int snd_bbfpro_vol_get(struct snd_kcontrol *kcontrol,
  2678. struct snd_ctl_elem_value *ucontrol)
  2679. {
  2680. ucontrol->value.integer.value[0] =
  2681. kcontrol->private_value >> SND_BBFPRO_MIXER_VAL_SHIFT;
  2682. return 0;
  2683. }
  2684. static int snd_bbfpro_vol_info(struct snd_kcontrol *kcontrol,
  2685. struct snd_ctl_elem_info *uinfo)
  2686. {
  2687. uinfo->type = SNDRV_CTL_ELEM_TYPE_INTEGER;
  2688. uinfo->count = 1;
  2689. uinfo->value.integer.min = SND_BBFPRO_MIXER_VAL_MIN;
  2690. uinfo->value.integer.max = SND_BBFPRO_MIXER_VAL_MAX;
  2691. return 0;
  2692. }
  2693. static int snd_bbfpro_vol_put(struct snd_kcontrol *kcontrol,
  2694. struct snd_ctl_elem_value *ucontrol)
  2695. {
  2696. int err;
  2697. u16 idx;
  2698. u32 new_val, old_value, uvalue;
  2699. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kcontrol);
  2700. struct usb_mixer_interface *mixer = list->mixer;
  2701. uvalue = ucontrol->value.integer.value[0];
  2702. idx = kcontrol->private_value & SND_BBFPRO_MIXER_IDX_MASK;
  2703. old_value = kcontrol->private_value >> SND_BBFPRO_MIXER_VAL_SHIFT;
  2704. if (uvalue > SND_BBFPRO_MIXER_VAL_MAX)
  2705. return -EINVAL;
  2706. if (uvalue == old_value)
  2707. return 0;
  2708. new_val = uvalue & SND_BBFPRO_MIXER_VAL_MASK;
  2709. kcontrol->private_value = idx
  2710. | (new_val << SND_BBFPRO_MIXER_VAL_SHIFT);
  2711. err = snd_bbfpro_vol_update(mixer, idx, new_val);
  2712. return err < 0 ? err : 1;
  2713. }
  2714. static int snd_bbfpro_vol_resume(struct usb_mixer_elem_list *list)
  2715. {
  2716. int pv = list->kctl->private_value;
  2717. u16 idx = pv & SND_BBFPRO_MIXER_IDX_MASK;
  2718. u32 val = (pv >> SND_BBFPRO_MIXER_VAL_SHIFT)
  2719. & SND_BBFPRO_MIXER_VAL_MASK;
  2720. return snd_bbfpro_vol_update(list->mixer, idx, val);
  2721. }
  2722. // Predfine elements
  2723. static const struct snd_kcontrol_new snd_bbfpro_ctl_control = {
  2724. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  2725. .access = SNDRV_CTL_ELEM_ACCESS_READWRITE,
  2726. .index = 0,
  2727. .info = snd_bbfpro_ctl_info,
  2728. .get = snd_bbfpro_ctl_get,
  2729. .put = snd_bbfpro_ctl_put
  2730. };
  2731. static const struct snd_kcontrol_new snd_bbfpro_gain_control = {
  2732. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  2733. .access = SNDRV_CTL_ELEM_ACCESS_READWRITE,
  2734. .index = 0,
  2735. .info = snd_bbfpro_gain_info,
  2736. .get = snd_bbfpro_gain_get,
  2737. .put = snd_bbfpro_gain_put
  2738. };
  2739. static const struct snd_kcontrol_new snd_bbfpro_vol_control = {
  2740. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  2741. .access = SNDRV_CTL_ELEM_ACCESS_READWRITE,
  2742. .index = 0,
  2743. .info = snd_bbfpro_vol_info,
  2744. .get = snd_bbfpro_vol_get,
  2745. .put = snd_bbfpro_vol_put
  2746. };
  2747. static int snd_bbfpro_ctl_add(struct usb_mixer_interface *mixer, u8 reg,
  2748. u8 index, char *name)
  2749. {
  2750. struct snd_kcontrol_new knew = snd_bbfpro_ctl_control;
  2751. knew.name = name;
  2752. knew.private_value = (reg & SND_BBFPRO_CTL_REG_MASK)
  2753. | ((index & SND_BBFPRO_CTL_IDX_MASK)
  2754. << SND_BBFPRO_CTL_IDX_SHIFT);
  2755. return add_single_ctl_with_resume(mixer, 0, snd_bbfpro_ctl_resume,
  2756. &knew, NULL);
  2757. }
  2758. static int snd_bbfpro_gain_add(struct usb_mixer_interface *mixer, u8 channel,
  2759. char *name)
  2760. {
  2761. struct snd_kcontrol_new knew = snd_bbfpro_gain_control;
  2762. knew.name = name;
  2763. knew.private_value = channel << SND_BBFPRO_GAIN_CHANNEL_SHIFT;
  2764. return add_single_ctl_with_resume(mixer, 0, snd_bbfpro_gain_resume,
  2765. &knew, NULL);
  2766. }
  2767. static int snd_bbfpro_vol_add(struct usb_mixer_interface *mixer, u16 index,
  2768. char *name)
  2769. {
  2770. struct snd_kcontrol_new knew = snd_bbfpro_vol_control;
  2771. knew.name = name;
  2772. knew.private_value = index & SND_BBFPRO_MIXER_IDX_MASK;
  2773. return add_single_ctl_with_resume(mixer, 0, snd_bbfpro_vol_resume,
  2774. &knew, NULL);
  2775. }
  2776. static int snd_bbfpro_controls_create(struct usb_mixer_interface *mixer)
  2777. {
  2778. int err, i, o;
  2779. char name[48];
  2780. static const char * const input[] = {
  2781. "AN1", "AN2", "IN3", "IN4", "AS1", "AS2", "ADAT3",
  2782. "ADAT4", "ADAT5", "ADAT6", "ADAT7", "ADAT8"};
  2783. static const char * const output[] = {
  2784. "AN1", "AN2", "PH3", "PH4", "AS1", "AS2", "ADAT3", "ADAT4",
  2785. "ADAT5", "ADAT6", "ADAT7", "ADAT8"};
  2786. for (o = 0 ; o < 12 ; ++o) {
  2787. for (i = 0 ; i < 12 ; ++i) {
  2788. // Line routing
  2789. snprintf(name, sizeof(name),
  2790. "%s-%s-%s Playback Volume",
  2791. (i < 2 ? "Mic" : "Line"),
  2792. input[i], output[o]);
  2793. err = snd_bbfpro_vol_add(mixer, (26 * o + i), name);
  2794. if (err < 0)
  2795. return err;
  2796. // PCM routing... yes, it is output remapping
  2797. snprintf(name, sizeof(name),
  2798. "PCM-%s-%s Playback Volume",
  2799. output[i], output[o]);
  2800. err = snd_bbfpro_vol_add(mixer, (26 * o + 12 + i),
  2801. name);
  2802. if (err < 0)
  2803. return err;
  2804. }
  2805. }
  2806. // Main out volume
  2807. for (i = 0 ; i < 12 ; ++i) {
  2808. snprintf(name, sizeof(name), "Main-Out %s", output[i]);
  2809. // Main outs are offset to 992
  2810. err = snd_bbfpro_vol_add(mixer,
  2811. i + SND_BBFPRO_MIXER_MAIN_OUT_CH_OFFSET,
  2812. name);
  2813. if (err < 0)
  2814. return err;
  2815. }
  2816. // Input gain
  2817. for (i = 0 ; i < 4 ; ++i) {
  2818. if (i < 2)
  2819. snprintf(name, sizeof(name), "Mic-%s Gain", input[i]);
  2820. else
  2821. snprintf(name, sizeof(name), "Line-%s Gain", input[i]);
  2822. err = snd_bbfpro_gain_add(mixer, i, name);
  2823. if (err < 0)
  2824. return err;
  2825. }
  2826. // Control Reg 1
  2827. err = snd_bbfpro_ctl_add(mixer, SND_BBFPRO_CTL_REG1,
  2828. SND_BBFPRO_CTL_REG1_CLK_OPTICAL,
  2829. "Sample Clock Source");
  2830. if (err < 0)
  2831. return err;
  2832. err = snd_bbfpro_ctl_add(mixer, SND_BBFPRO_CTL_REG1,
  2833. SND_BBFPRO_CTL_REG1_SPDIF_PRO,
  2834. "IEC958 Pro Mask");
  2835. if (err < 0)
  2836. return err;
  2837. err = snd_bbfpro_ctl_add(mixer, SND_BBFPRO_CTL_REG1,
  2838. SND_BBFPRO_CTL_REG1_SPDIF_EMPH,
  2839. "IEC958 Emphasis");
  2840. if (err < 0)
  2841. return err;
  2842. err = snd_bbfpro_ctl_add(mixer, SND_BBFPRO_CTL_REG1,
  2843. SND_BBFPRO_CTL_REG1_SPDIF_OPTICAL,
  2844. "IEC958 Switch");
  2845. if (err < 0)
  2846. return err;
  2847. // Control Reg 2
  2848. err = snd_bbfpro_ctl_add(mixer, SND_BBFPRO_CTL_REG2,
  2849. SND_BBFPRO_CTL_REG2_48V_AN1,
  2850. "Mic-AN1 48V");
  2851. if (err < 0)
  2852. return err;
  2853. err = snd_bbfpro_ctl_add(mixer, SND_BBFPRO_CTL_REG2,
  2854. SND_BBFPRO_CTL_REG2_48V_AN2,
  2855. "Mic-AN2 48V");
  2856. if (err < 0)
  2857. return err;
  2858. err = snd_bbfpro_ctl_add(mixer, SND_BBFPRO_CTL_REG2,
  2859. SND_BBFPRO_CTL_REG2_SENS_IN3,
  2860. "Line-IN3 Sens.");
  2861. if (err < 0)
  2862. return err;
  2863. err = snd_bbfpro_ctl_add(mixer, SND_BBFPRO_CTL_REG2,
  2864. SND_BBFPRO_CTL_REG2_SENS_IN4,
  2865. "Line-IN4 Sens.");
  2866. if (err < 0)
  2867. return err;
  2868. err = snd_bbfpro_ctl_add(mixer, SND_BBFPRO_CTL_REG2,
  2869. SND_BBFPRO_CTL_REG2_PAD_AN1,
  2870. "Mic-AN1 PAD");
  2871. if (err < 0)
  2872. return err;
  2873. err = snd_bbfpro_ctl_add(mixer, SND_BBFPRO_CTL_REG2,
  2874. SND_BBFPRO_CTL_REG2_PAD_AN2,
  2875. "Mic-AN2 PAD");
  2876. if (err < 0)
  2877. return err;
  2878. return 0;
  2879. }
  2880. /*
  2881. * RME Digiface USB
  2882. */
  2883. #define RME_DIGIFACE_READ_STATUS 17
  2884. #define RME_DIGIFACE_STATUS_REG0L 0
  2885. #define RME_DIGIFACE_STATUS_REG0H 1
  2886. #define RME_DIGIFACE_STATUS_REG1L 2
  2887. #define RME_DIGIFACE_STATUS_REG1H 3
  2888. #define RME_DIGIFACE_STATUS_REG2L 4
  2889. #define RME_DIGIFACE_STATUS_REG2H 5
  2890. #define RME_DIGIFACE_STATUS_REG3L 6
  2891. #define RME_DIGIFACE_STATUS_REG3H 7
  2892. #define RME_DIGIFACE_CTL_REG1 16
  2893. #define RME_DIGIFACE_CTL_REG2 18
  2894. /* Reg is overloaded, 0-7 for status halfwords or 16 or 18 for control registers */
  2895. #define RME_DIGIFACE_REGISTER(reg, mask) (((reg) << 16) | (mask))
  2896. #define RME_DIGIFACE_INVERT BIT(31)
  2897. /* Nonconst helpers */
  2898. #define field_get(_mask, _reg) (((_reg) & (_mask)) >> (ffs(_mask) - 1))
  2899. #define field_prep(_mask, _val) (((_val) << (ffs(_mask) - 1)) & (_mask))
  2900. static int snd_rme_digiface_write_reg(struct snd_kcontrol *kcontrol, int item, u16 mask, u16 val)
  2901. {
  2902. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kcontrol);
  2903. struct snd_usb_audio *chip = list->mixer->chip;
  2904. struct usb_device *dev = chip->dev;
  2905. int err;
  2906. err = snd_usb_ctl_msg(dev, usb_sndctrlpipe(dev, 0),
  2907. item,
  2908. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_DEVICE,
  2909. val, mask, NULL, 0);
  2910. if (err < 0)
  2911. dev_err(&dev->dev,
  2912. "unable to issue control set request %d (ret = %d)",
  2913. item, err);
  2914. return err;
  2915. }
  2916. static int snd_rme_digiface_read_status(struct snd_kcontrol *kcontrol, u32 status[4])
  2917. {
  2918. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kcontrol);
  2919. struct snd_usb_audio *chip = list->mixer->chip;
  2920. struct usb_device *dev = chip->dev;
  2921. __le32 buf[4];
  2922. int err;
  2923. err = snd_usb_ctl_msg(dev, usb_rcvctrlpipe(dev, 0),
  2924. RME_DIGIFACE_READ_STATUS,
  2925. USB_DIR_IN | USB_TYPE_VENDOR | USB_RECIP_DEVICE,
  2926. 0, 0,
  2927. buf, sizeof(buf));
  2928. if (err < 0) {
  2929. dev_err(&dev->dev,
  2930. "unable to issue status read request (ret = %d)",
  2931. err);
  2932. } else {
  2933. for (int i = 0; i < ARRAY_SIZE(buf); i++)
  2934. status[i] = le32_to_cpu(buf[i]);
  2935. }
  2936. return err;
  2937. }
  2938. static int snd_rme_digiface_get_status_val(struct snd_kcontrol *kcontrol)
  2939. {
  2940. int err;
  2941. u32 status[4];
  2942. bool invert = kcontrol->private_value & RME_DIGIFACE_INVERT;
  2943. u8 reg = (kcontrol->private_value >> 16) & 0xff;
  2944. u16 mask = kcontrol->private_value & 0xffff;
  2945. u16 val;
  2946. err = snd_rme_digiface_read_status(kcontrol, status);
  2947. if (err < 0)
  2948. return err;
  2949. switch (reg) {
  2950. /* Status register halfwords */
  2951. case RME_DIGIFACE_STATUS_REG0L ... RME_DIGIFACE_STATUS_REG3H:
  2952. break;
  2953. case RME_DIGIFACE_CTL_REG1: /* Control register 1, present in halfword 3L */
  2954. reg = RME_DIGIFACE_STATUS_REG3L;
  2955. break;
  2956. case RME_DIGIFACE_CTL_REG2: /* Control register 2, present in halfword 3H */
  2957. reg = RME_DIGIFACE_STATUS_REG3H;
  2958. break;
  2959. default:
  2960. return -EINVAL;
  2961. }
  2962. if (reg & 1)
  2963. val = status[reg >> 1] >> 16;
  2964. else
  2965. val = status[reg >> 1] & 0xffff;
  2966. if (invert)
  2967. val ^= mask;
  2968. return field_get(mask, val);
  2969. }
  2970. static int snd_rme_digiface_rate_get(struct snd_kcontrol *kcontrol,
  2971. struct snd_ctl_elem_value *ucontrol)
  2972. {
  2973. int freq = snd_rme_digiface_get_status_val(kcontrol);
  2974. if (freq < 0)
  2975. return freq;
  2976. if (freq >= ARRAY_SIZE(snd_rme_rate_table))
  2977. return -EIO;
  2978. ucontrol->value.integer.value[0] = snd_rme_rate_table[freq];
  2979. return 0;
  2980. }
  2981. static int snd_rme_digiface_enum_get(struct snd_kcontrol *kcontrol,
  2982. struct snd_ctl_elem_value *ucontrol)
  2983. {
  2984. int val = snd_rme_digiface_get_status_val(kcontrol);
  2985. if (val < 0)
  2986. return val;
  2987. ucontrol->value.enumerated.item[0] = val;
  2988. return 0;
  2989. }
  2990. static int snd_rme_digiface_enum_put(struct snd_kcontrol *kcontrol,
  2991. struct snd_ctl_elem_value *ucontrol)
  2992. {
  2993. bool invert = kcontrol->private_value & RME_DIGIFACE_INVERT;
  2994. u8 reg = (kcontrol->private_value >> 16) & 0xff;
  2995. u16 mask = kcontrol->private_value & 0xffff;
  2996. u16 val = field_prep(mask, ucontrol->value.enumerated.item[0]);
  2997. if (invert)
  2998. val ^= mask;
  2999. return snd_rme_digiface_write_reg(kcontrol, reg, mask, val);
  3000. }
  3001. static int snd_rme_digiface_current_sync_get(struct snd_kcontrol *kcontrol,
  3002. struct snd_ctl_elem_value *ucontrol)
  3003. {
  3004. int ret = snd_rme_digiface_enum_get(kcontrol, ucontrol);
  3005. /* 7 means internal for current sync */
  3006. if (ucontrol->value.enumerated.item[0] == 7)
  3007. ucontrol->value.enumerated.item[0] = 0;
  3008. return ret;
  3009. }
  3010. static int snd_rme_digiface_sync_state_get(struct snd_kcontrol *kcontrol,
  3011. struct snd_ctl_elem_value *ucontrol)
  3012. {
  3013. u32 status[4];
  3014. int err;
  3015. bool valid, sync;
  3016. err = snd_rme_digiface_read_status(kcontrol, status);
  3017. if (err < 0)
  3018. return err;
  3019. valid = status[0] & BIT(kcontrol->private_value);
  3020. sync = status[0] & BIT(5 + kcontrol->private_value);
  3021. if (!valid)
  3022. ucontrol->value.enumerated.item[0] = SND_RME_CLOCK_NOLOCK;
  3023. else if (!sync)
  3024. ucontrol->value.enumerated.item[0] = SND_RME_CLOCK_LOCK;
  3025. else
  3026. ucontrol->value.enumerated.item[0] = SND_RME_CLOCK_SYNC;
  3027. return 0;
  3028. }
  3029. static int snd_rme_digiface_format_info(struct snd_kcontrol *kcontrol,
  3030. struct snd_ctl_elem_info *uinfo)
  3031. {
  3032. static const char *const format[] = {
  3033. "ADAT", "S/PDIF"
  3034. };
  3035. return snd_ctl_enum_info(uinfo, 1,
  3036. ARRAY_SIZE(format), format);
  3037. }
  3038. static int snd_rme_digiface_sync_source_info(struct snd_kcontrol *kcontrol,
  3039. struct snd_ctl_elem_info *uinfo)
  3040. {
  3041. static const char *const sync_sources[] = {
  3042. "Internal", "Input 1", "Input 2", "Input 3", "Input 4"
  3043. };
  3044. return snd_ctl_enum_info(uinfo, 1,
  3045. ARRAY_SIZE(sync_sources), sync_sources);
  3046. }
  3047. static int snd_rme_digiface_rate_info(struct snd_kcontrol *kcontrol,
  3048. struct snd_ctl_elem_info *uinfo)
  3049. {
  3050. uinfo->type = SNDRV_CTL_ELEM_TYPE_INTEGER;
  3051. uinfo->count = 1;
  3052. uinfo->value.integer.min = 0;
  3053. uinfo->value.integer.max = 200000;
  3054. uinfo->value.integer.step = 0;
  3055. return 0;
  3056. }
  3057. static const struct snd_kcontrol_new snd_rme_digiface_controls[] = {
  3058. {
  3059. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3060. .name = "Input 1 Sync",
  3061. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  3062. .info = snd_rme_sync_state_info,
  3063. .get = snd_rme_digiface_sync_state_get,
  3064. .private_value = 0,
  3065. },
  3066. {
  3067. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3068. .name = "Input 1 Format",
  3069. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  3070. .info = snd_rme_digiface_format_info,
  3071. .get = snd_rme_digiface_enum_get,
  3072. .private_value = RME_DIGIFACE_REGISTER(RME_DIGIFACE_STATUS_REG0H, BIT(0)) |
  3073. RME_DIGIFACE_INVERT,
  3074. },
  3075. {
  3076. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3077. .name = "Input 1 Rate",
  3078. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  3079. .info = snd_rme_digiface_rate_info,
  3080. .get = snd_rme_digiface_rate_get,
  3081. .private_value = RME_DIGIFACE_REGISTER(RME_DIGIFACE_STATUS_REG1L, GENMASK(3, 0)),
  3082. },
  3083. {
  3084. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3085. .name = "Input 2 Sync",
  3086. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  3087. .info = snd_rme_sync_state_info,
  3088. .get = snd_rme_digiface_sync_state_get,
  3089. .private_value = 1,
  3090. },
  3091. {
  3092. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3093. .name = "Input 2 Format",
  3094. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  3095. .info = snd_rme_digiface_format_info,
  3096. .get = snd_rme_digiface_enum_get,
  3097. .private_value = RME_DIGIFACE_REGISTER(RME_DIGIFACE_STATUS_REG0L, BIT(13)) |
  3098. RME_DIGIFACE_INVERT,
  3099. },
  3100. {
  3101. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3102. .name = "Input 2 Rate",
  3103. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  3104. .info = snd_rme_digiface_rate_info,
  3105. .get = snd_rme_digiface_rate_get,
  3106. .private_value = RME_DIGIFACE_REGISTER(RME_DIGIFACE_STATUS_REG1L, GENMASK(7, 4)),
  3107. },
  3108. {
  3109. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3110. .name = "Input 3 Sync",
  3111. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  3112. .info = snd_rme_sync_state_info,
  3113. .get = snd_rme_digiface_sync_state_get,
  3114. .private_value = 2,
  3115. },
  3116. {
  3117. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3118. .name = "Input 3 Format",
  3119. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  3120. .info = snd_rme_digiface_format_info,
  3121. .get = snd_rme_digiface_enum_get,
  3122. .private_value = RME_DIGIFACE_REGISTER(RME_DIGIFACE_STATUS_REG0L, BIT(14)) |
  3123. RME_DIGIFACE_INVERT,
  3124. },
  3125. {
  3126. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3127. .name = "Input 3 Rate",
  3128. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  3129. .info = snd_rme_digiface_rate_info,
  3130. .get = snd_rme_digiface_rate_get,
  3131. .private_value = RME_DIGIFACE_REGISTER(RME_DIGIFACE_STATUS_REG1L, GENMASK(11, 8)),
  3132. },
  3133. {
  3134. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3135. .name = "Input 4 Sync",
  3136. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  3137. .info = snd_rme_sync_state_info,
  3138. .get = snd_rme_digiface_sync_state_get,
  3139. .private_value = 3,
  3140. },
  3141. {
  3142. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3143. .name = "Input 4 Format",
  3144. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  3145. .info = snd_rme_digiface_format_info,
  3146. .get = snd_rme_digiface_enum_get,
  3147. .private_value = RME_DIGIFACE_REGISTER(RME_DIGIFACE_STATUS_REG0L, GENMASK(15, 12)) |
  3148. RME_DIGIFACE_INVERT,
  3149. },
  3150. {
  3151. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3152. .name = "Input 4 Rate",
  3153. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  3154. .info = snd_rme_digiface_rate_info,
  3155. .get = snd_rme_digiface_rate_get,
  3156. .private_value = RME_DIGIFACE_REGISTER(RME_DIGIFACE_STATUS_REG1L, GENMASK(3, 0)),
  3157. },
  3158. {
  3159. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3160. .name = "Output 1 Format",
  3161. .access = SNDRV_CTL_ELEM_ACCESS_READWRITE,
  3162. .info = snd_rme_digiface_format_info,
  3163. .get = snd_rme_digiface_enum_get,
  3164. .put = snd_rme_digiface_enum_put,
  3165. .private_value = RME_DIGIFACE_REGISTER(RME_DIGIFACE_CTL_REG2, BIT(0)),
  3166. },
  3167. {
  3168. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3169. .name = "Output 2 Format",
  3170. .access = SNDRV_CTL_ELEM_ACCESS_READWRITE,
  3171. .info = snd_rme_digiface_format_info,
  3172. .get = snd_rme_digiface_enum_get,
  3173. .put = snd_rme_digiface_enum_put,
  3174. .private_value = RME_DIGIFACE_REGISTER(RME_DIGIFACE_CTL_REG2, BIT(1)),
  3175. },
  3176. {
  3177. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3178. .name = "Output 3 Format",
  3179. .access = SNDRV_CTL_ELEM_ACCESS_READWRITE,
  3180. .info = snd_rme_digiface_format_info,
  3181. .get = snd_rme_digiface_enum_get,
  3182. .put = snd_rme_digiface_enum_put,
  3183. .private_value = RME_DIGIFACE_REGISTER(RME_DIGIFACE_CTL_REG2, BIT(3)),
  3184. },
  3185. {
  3186. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3187. .name = "Output 4 Format",
  3188. .access = SNDRV_CTL_ELEM_ACCESS_READWRITE,
  3189. .info = snd_rme_digiface_format_info,
  3190. .get = snd_rme_digiface_enum_get,
  3191. .put = snd_rme_digiface_enum_put,
  3192. .private_value = RME_DIGIFACE_REGISTER(RME_DIGIFACE_CTL_REG2, BIT(4)),
  3193. },
  3194. {
  3195. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3196. .name = "Sync Source",
  3197. .access = SNDRV_CTL_ELEM_ACCESS_READWRITE,
  3198. .info = snd_rme_digiface_sync_source_info,
  3199. .get = snd_rme_digiface_enum_get,
  3200. .put = snd_rme_digiface_enum_put,
  3201. .private_value = RME_DIGIFACE_REGISTER(RME_DIGIFACE_CTL_REG1, GENMASK(2, 0)),
  3202. },
  3203. {
  3204. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3205. .name = "Current Sync Source",
  3206. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  3207. .info = snd_rme_digiface_sync_source_info,
  3208. .get = snd_rme_digiface_current_sync_get,
  3209. .private_value = RME_DIGIFACE_REGISTER(RME_DIGIFACE_STATUS_REG0L, GENMASK(12, 10)),
  3210. },
  3211. {
  3212. /*
  3213. * This is writeable, but it is only set by the PCM rate.
  3214. * Mixer apps currently need to drive the mixer using raw USB requests,
  3215. * so they can also change this that way to configure the rate for
  3216. * stand-alone operation when the PCM is closed.
  3217. */
  3218. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3219. .name = "System Rate",
  3220. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  3221. .info = snd_rme_rate_info,
  3222. .get = snd_rme_digiface_rate_get,
  3223. .private_value = RME_DIGIFACE_REGISTER(RME_DIGIFACE_CTL_REG1, GENMASK(6, 3)),
  3224. },
  3225. {
  3226. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3227. .name = "Current Rate",
  3228. .access = SNDRV_CTL_ELEM_ACCESS_READ | SNDRV_CTL_ELEM_ACCESS_VOLATILE,
  3229. .info = snd_rme_rate_info,
  3230. .get = snd_rme_digiface_rate_get,
  3231. .private_value = RME_DIGIFACE_REGISTER(RME_DIGIFACE_STATUS_REG1H, GENMASK(7, 4)),
  3232. }
  3233. };
  3234. static int snd_rme_digiface_controls_create(struct usb_mixer_interface *mixer)
  3235. {
  3236. int err, i;
  3237. for (i = 0; i < ARRAY_SIZE(snd_rme_digiface_controls); ++i) {
  3238. err = add_single_ctl_with_resume(mixer, 0,
  3239. NULL,
  3240. &snd_rme_digiface_controls[i],
  3241. NULL);
  3242. if (err < 0)
  3243. return err;
  3244. }
  3245. return 0;
  3246. }
  3247. /*
  3248. * Pioneer DJ DJM Mixers
  3249. *
  3250. * These devices generally have options for soft-switching the playback and
  3251. * capture sources in addition to the recording level. Although different
  3252. * devices have different configurations, there seems to be canonical values
  3253. * for specific capture/playback types: See the definitions of these below.
  3254. *
  3255. * The wValue is masked with the stereo channel number. e.g. Setting Ch2 to
  3256. * capture phono would be 0x0203. Capture, playback and capture level have
  3257. * different wIndexes.
  3258. */
  3259. // Capture types
  3260. #define SND_DJM_CAP_LINE 0x00
  3261. #define SND_DJM_CAP_CDLINE 0x01
  3262. #define SND_DJM_CAP_DIGITAL 0x02
  3263. #define SND_DJM_CAP_PHONO 0x03
  3264. #define SND_DJM_CAP_PFADER 0x06
  3265. #define SND_DJM_CAP_XFADERA 0x07
  3266. #define SND_DJM_CAP_XFADERB 0x08
  3267. #define SND_DJM_CAP_MIC 0x09
  3268. #define SND_DJM_CAP_AUX 0x0d
  3269. #define SND_DJM_CAP_RECOUT 0x0a
  3270. #define SND_DJM_CAP_NONE 0x0f
  3271. #define SND_DJM_CAP_CH1PFADER 0x11
  3272. #define SND_DJM_CAP_CH2PFADER 0x12
  3273. #define SND_DJM_CAP_CH3PFADER 0x13
  3274. #define SND_DJM_CAP_CH4PFADER 0x14
  3275. // Playback types
  3276. #define SND_DJM_PB_CH1 0x00
  3277. #define SND_DJM_PB_CH2 0x01
  3278. #define SND_DJM_PB_AUX 0x04
  3279. #define SND_DJM_WINDEX_CAP 0x8002
  3280. #define SND_DJM_WINDEX_CAPLVL 0x8003
  3281. #define SND_DJM_WINDEX_PB 0x8016
  3282. // kcontrol->private_value layout
  3283. #define SND_DJM_VALUE_MASK 0x0000ffff
  3284. #define SND_DJM_GROUP_MASK 0x00ff0000
  3285. #define SND_DJM_DEVICE_MASK 0xff000000
  3286. #define SND_DJM_GROUP_SHIFT 16
  3287. #define SND_DJM_DEVICE_SHIFT 24
  3288. // device table index
  3289. // used for the snd_djm_devices table, so please update accordingly
  3290. #define SND_DJM_250MK2_IDX 0x0
  3291. #define SND_DJM_750_IDX 0x1
  3292. #define SND_DJM_850_IDX 0x2
  3293. #define SND_DJM_900NXS2_IDX 0x3
  3294. #define SND_DJM_750MK2_IDX 0x4
  3295. #define SND_DJM_450_IDX 0x5
  3296. #define SND_DJM_CTL(_name, suffix, _default_value, _windex) { \
  3297. .name = _name, \
  3298. .options = snd_djm_opts_##suffix, \
  3299. .noptions = ARRAY_SIZE(snd_djm_opts_##suffix), \
  3300. .default_value = _default_value, \
  3301. .wIndex = _windex }
  3302. #define SND_DJM_DEVICE(suffix) { \
  3303. .controls = snd_djm_ctls_##suffix, \
  3304. .ncontrols = ARRAY_SIZE(snd_djm_ctls_##suffix) }
  3305. struct snd_djm_device {
  3306. const char *name;
  3307. const struct snd_djm_ctl *controls;
  3308. size_t ncontrols;
  3309. };
  3310. struct snd_djm_ctl {
  3311. const char *name;
  3312. const u16 *options;
  3313. size_t noptions;
  3314. u16 default_value;
  3315. u16 wIndex;
  3316. };
  3317. static const char *snd_djm_get_label_caplevel(u16 wvalue)
  3318. {
  3319. switch (wvalue) {
  3320. case 0x0000: return "-19dB";
  3321. case 0x0100: return "-15dB";
  3322. case 0x0200: return "-10dB";
  3323. case 0x0300: return "-5dB";
  3324. default: return NULL;
  3325. }
  3326. };
  3327. static const char *snd_djm_get_label_cap_common(u16 wvalue)
  3328. {
  3329. switch (wvalue & 0x00ff) {
  3330. case SND_DJM_CAP_LINE: return "Control Tone LINE";
  3331. case SND_DJM_CAP_CDLINE: return "Control Tone CD/LINE";
  3332. case SND_DJM_CAP_DIGITAL: return "Control Tone DIGITAL";
  3333. case SND_DJM_CAP_PHONO: return "Control Tone PHONO";
  3334. case SND_DJM_CAP_PFADER: return "Post Fader";
  3335. case SND_DJM_CAP_XFADERA: return "Cross Fader A";
  3336. case SND_DJM_CAP_XFADERB: return "Cross Fader B";
  3337. case SND_DJM_CAP_MIC: return "Mic";
  3338. case SND_DJM_CAP_RECOUT: return "Rec Out";
  3339. case SND_DJM_CAP_AUX: return "Aux";
  3340. case SND_DJM_CAP_NONE: return "None";
  3341. case SND_DJM_CAP_CH1PFADER: return "Post Fader Ch1";
  3342. case SND_DJM_CAP_CH2PFADER: return "Post Fader Ch2";
  3343. case SND_DJM_CAP_CH3PFADER: return "Post Fader Ch3";
  3344. case SND_DJM_CAP_CH4PFADER: return "Post Fader Ch4";
  3345. default: return NULL;
  3346. }
  3347. };
  3348. // The DJM-850 has different values for CD/LINE and LINE capture
  3349. // control options than the other DJM declared in this file.
  3350. static const char *snd_djm_get_label_cap_850(u16 wvalue)
  3351. {
  3352. switch (wvalue & 0x00ff) {
  3353. case 0x00: return "Control Tone CD/LINE";
  3354. case 0x01: return "Control Tone LINE";
  3355. default: return snd_djm_get_label_cap_common(wvalue);
  3356. }
  3357. };
  3358. static const char *snd_djm_get_label_cap(u8 device_idx, u16 wvalue)
  3359. {
  3360. switch (device_idx) {
  3361. case SND_DJM_850_IDX: return snd_djm_get_label_cap_850(wvalue);
  3362. default: return snd_djm_get_label_cap_common(wvalue);
  3363. }
  3364. };
  3365. static const char *snd_djm_get_label_pb(u16 wvalue)
  3366. {
  3367. switch (wvalue & 0x00ff) {
  3368. case SND_DJM_PB_CH1: return "Ch1";
  3369. case SND_DJM_PB_CH2: return "Ch2";
  3370. case SND_DJM_PB_AUX: return "Aux";
  3371. default: return NULL;
  3372. }
  3373. };
  3374. static const char *snd_djm_get_label(u8 device_idx, u16 wvalue, u16 windex)
  3375. {
  3376. switch (windex) {
  3377. case SND_DJM_WINDEX_CAPLVL: return snd_djm_get_label_caplevel(wvalue);
  3378. case SND_DJM_WINDEX_CAP: return snd_djm_get_label_cap(device_idx, wvalue);
  3379. case SND_DJM_WINDEX_PB: return snd_djm_get_label_pb(wvalue);
  3380. default: return NULL;
  3381. }
  3382. };
  3383. // common DJM capture level option values
  3384. static const u16 snd_djm_opts_cap_level[] = {
  3385. 0x0000, 0x0100, 0x0200, 0x0300 };
  3386. // DJM-250MK2
  3387. static const u16 snd_djm_opts_250mk2_cap1[] = {
  3388. 0x0103, 0x0100, 0x0106, 0x0107, 0x0108, 0x0109, 0x010d, 0x010a };
  3389. static const u16 snd_djm_opts_250mk2_cap2[] = {
  3390. 0x0203, 0x0200, 0x0206, 0x0207, 0x0208, 0x0209, 0x020d, 0x020a };
  3391. static const u16 snd_djm_opts_250mk2_cap3[] = {
  3392. 0x030a, 0x0311, 0x0312, 0x0307, 0x0308, 0x0309, 0x030d };
  3393. static const u16 snd_djm_opts_250mk2_pb1[] = { 0x0100, 0x0101, 0x0104 };
  3394. static const u16 snd_djm_opts_250mk2_pb2[] = { 0x0200, 0x0201, 0x0204 };
  3395. static const u16 snd_djm_opts_250mk2_pb3[] = { 0x0300, 0x0301, 0x0304 };
  3396. static const struct snd_djm_ctl snd_djm_ctls_250mk2[] = {
  3397. SND_DJM_CTL("Capture Level", cap_level, 0, SND_DJM_WINDEX_CAPLVL),
  3398. SND_DJM_CTL("Ch1 Input", 250mk2_cap1, 2, SND_DJM_WINDEX_CAP),
  3399. SND_DJM_CTL("Ch2 Input", 250mk2_cap2, 2, SND_DJM_WINDEX_CAP),
  3400. SND_DJM_CTL("Ch3 Input", 250mk2_cap3, 0, SND_DJM_WINDEX_CAP),
  3401. SND_DJM_CTL("Ch1 Output", 250mk2_pb1, 0, SND_DJM_WINDEX_PB),
  3402. SND_DJM_CTL("Ch2 Output", 250mk2_pb2, 1, SND_DJM_WINDEX_PB),
  3403. SND_DJM_CTL("Ch3 Output", 250mk2_pb3, 2, SND_DJM_WINDEX_PB)
  3404. };
  3405. // DJM-450
  3406. static const u16 snd_djm_opts_450_cap1[] = {
  3407. 0x0103, 0x0100, 0x0106, 0x0107, 0x0108, 0x0109, 0x010d, 0x010a };
  3408. static const u16 snd_djm_opts_450_cap2[] = {
  3409. 0x0203, 0x0200, 0x0206, 0x0207, 0x0208, 0x0209, 0x020d, 0x020a };
  3410. static const u16 snd_djm_opts_450_cap3[] = {
  3411. 0x030a, 0x0311, 0x0312, 0x0307, 0x0308, 0x0309, 0x030d };
  3412. static const u16 snd_djm_opts_450_pb1[] = { 0x0100, 0x0101, 0x0104 };
  3413. static const u16 snd_djm_opts_450_pb2[] = { 0x0200, 0x0201, 0x0204 };
  3414. static const u16 snd_djm_opts_450_pb3[] = { 0x0300, 0x0301, 0x0304 };
  3415. static const struct snd_djm_ctl snd_djm_ctls_450[] = {
  3416. SND_DJM_CTL("Capture Level", cap_level, 0, SND_DJM_WINDEX_CAPLVL),
  3417. SND_DJM_CTL("Ch1 Input", 450_cap1, 2, SND_DJM_WINDEX_CAP),
  3418. SND_DJM_CTL("Ch2 Input", 450_cap2, 2, SND_DJM_WINDEX_CAP),
  3419. SND_DJM_CTL("Ch3 Input", 450_cap3, 0, SND_DJM_WINDEX_CAP),
  3420. SND_DJM_CTL("Ch1 Output", 450_pb1, 0, SND_DJM_WINDEX_PB),
  3421. SND_DJM_CTL("Ch2 Output", 450_pb2, 1, SND_DJM_WINDEX_PB),
  3422. SND_DJM_CTL("Ch3 Output", 450_pb3, 2, SND_DJM_WINDEX_PB)
  3423. };
  3424. // DJM-750
  3425. static const u16 snd_djm_opts_750_cap1[] = {
  3426. 0x0101, 0x0103, 0x0106, 0x0107, 0x0108, 0x0109, 0x010a, 0x010f };
  3427. static const u16 snd_djm_opts_750_cap2[] = {
  3428. 0x0200, 0x0201, 0x0206, 0x0207, 0x0208, 0x0209, 0x020a, 0x020f };
  3429. static const u16 snd_djm_opts_750_cap3[] = {
  3430. 0x0300, 0x0301, 0x0306, 0x0307, 0x0308, 0x0309, 0x030a, 0x030f };
  3431. static const u16 snd_djm_opts_750_cap4[] = {
  3432. 0x0401, 0x0403, 0x0406, 0x0407, 0x0408, 0x0409, 0x040a, 0x040f };
  3433. static const struct snd_djm_ctl snd_djm_ctls_750[] = {
  3434. SND_DJM_CTL("Capture Level", cap_level, 0, SND_DJM_WINDEX_CAPLVL),
  3435. SND_DJM_CTL("Ch1 Input", 750_cap1, 2, SND_DJM_WINDEX_CAP),
  3436. SND_DJM_CTL("Ch2 Input", 750_cap2, 2, SND_DJM_WINDEX_CAP),
  3437. SND_DJM_CTL("Ch3 Input", 750_cap3, 0, SND_DJM_WINDEX_CAP),
  3438. SND_DJM_CTL("Ch4 Input", 750_cap4, 0, SND_DJM_WINDEX_CAP)
  3439. };
  3440. // DJM-850
  3441. static const u16 snd_djm_opts_850_cap1[] = {
  3442. 0x0100, 0x0103, 0x0106, 0x0107, 0x0108, 0x0109, 0x010a, 0x010f };
  3443. static const u16 snd_djm_opts_850_cap2[] = {
  3444. 0x0200, 0x0201, 0x0206, 0x0207, 0x0208, 0x0209, 0x020a, 0x020f };
  3445. static const u16 snd_djm_opts_850_cap3[] = {
  3446. 0x0300, 0x0301, 0x0306, 0x0307, 0x0308, 0x0309, 0x030a, 0x030f };
  3447. static const u16 snd_djm_opts_850_cap4[] = {
  3448. 0x0400, 0x0403, 0x0406, 0x0407, 0x0408, 0x0409, 0x040a, 0x040f };
  3449. static const struct snd_djm_ctl snd_djm_ctls_850[] = {
  3450. SND_DJM_CTL("Capture Level", cap_level, 0, SND_DJM_WINDEX_CAPLVL),
  3451. SND_DJM_CTL("Ch1 Input", 850_cap1, 1, SND_DJM_WINDEX_CAP),
  3452. SND_DJM_CTL("Ch2 Input", 850_cap2, 0, SND_DJM_WINDEX_CAP),
  3453. SND_DJM_CTL("Ch3 Input", 850_cap3, 0, SND_DJM_WINDEX_CAP),
  3454. SND_DJM_CTL("Ch4 Input", 850_cap4, 1, SND_DJM_WINDEX_CAP)
  3455. };
  3456. // DJM-900NXS2
  3457. static const u16 snd_djm_opts_900nxs2_cap1[] = {
  3458. 0x0100, 0x0102, 0x0103, 0x0106, 0x0107, 0x0108, 0x0109, 0x010a };
  3459. static const u16 snd_djm_opts_900nxs2_cap2[] = {
  3460. 0x0200, 0x0202, 0x0203, 0x0206, 0x0207, 0x0208, 0x0209, 0x020a };
  3461. static const u16 snd_djm_opts_900nxs2_cap3[] = {
  3462. 0x0300, 0x0302, 0x0303, 0x0306, 0x0307, 0x0308, 0x0309, 0x030a };
  3463. static const u16 snd_djm_opts_900nxs2_cap4[] = {
  3464. 0x0400, 0x0402, 0x0403, 0x0406, 0x0407, 0x0408, 0x0409, 0x040a };
  3465. static const u16 snd_djm_opts_900nxs2_cap5[] = {
  3466. 0x0507, 0x0508, 0x0509, 0x050a, 0x0511, 0x0512, 0x0513, 0x0514 };
  3467. static const struct snd_djm_ctl snd_djm_ctls_900nxs2[] = {
  3468. SND_DJM_CTL("Capture Level", cap_level, 0, SND_DJM_WINDEX_CAPLVL),
  3469. SND_DJM_CTL("Ch1 Input", 900nxs2_cap1, 2, SND_DJM_WINDEX_CAP),
  3470. SND_DJM_CTL("Ch2 Input", 900nxs2_cap2, 2, SND_DJM_WINDEX_CAP),
  3471. SND_DJM_CTL("Ch3 Input", 900nxs2_cap3, 2, SND_DJM_WINDEX_CAP),
  3472. SND_DJM_CTL("Ch4 Input", 900nxs2_cap4, 2, SND_DJM_WINDEX_CAP),
  3473. SND_DJM_CTL("Ch5 Input", 900nxs2_cap5, 3, SND_DJM_WINDEX_CAP)
  3474. };
  3475. // DJM-750MK2
  3476. static const u16 snd_djm_opts_750mk2_cap1[] = {
  3477. 0x0100, 0x0102, 0x0103, 0x0106, 0x0107, 0x0108, 0x0109, 0x010a };
  3478. static const u16 snd_djm_opts_750mk2_cap2[] = {
  3479. 0x0200, 0x0202, 0x0203, 0x0206, 0x0207, 0x0208, 0x0209, 0x020a };
  3480. static const u16 snd_djm_opts_750mk2_cap3[] = {
  3481. 0x0300, 0x0302, 0x0303, 0x0306, 0x0307, 0x0308, 0x0309, 0x030a };
  3482. static const u16 snd_djm_opts_750mk2_cap4[] = {
  3483. 0x0400, 0x0402, 0x0403, 0x0406, 0x0407, 0x0408, 0x0409, 0x040a };
  3484. static const u16 snd_djm_opts_750mk2_cap5[] = {
  3485. 0x0507, 0x0508, 0x0509, 0x050a, 0x0511, 0x0512, 0x0513, 0x0514 };
  3486. static const u16 snd_djm_opts_750mk2_pb1[] = { 0x0100, 0x0101, 0x0104 };
  3487. static const u16 snd_djm_opts_750mk2_pb2[] = { 0x0200, 0x0201, 0x0204 };
  3488. static const u16 snd_djm_opts_750mk2_pb3[] = { 0x0300, 0x0301, 0x0304 };
  3489. static const struct snd_djm_ctl snd_djm_ctls_750mk2[] = {
  3490. SND_DJM_CTL("Capture Level", cap_level, 0, SND_DJM_WINDEX_CAPLVL),
  3491. SND_DJM_CTL("Ch1 Input", 750mk2_cap1, 2, SND_DJM_WINDEX_CAP),
  3492. SND_DJM_CTL("Ch2 Input", 750mk2_cap2, 2, SND_DJM_WINDEX_CAP),
  3493. SND_DJM_CTL("Ch3 Input", 750mk2_cap3, 2, SND_DJM_WINDEX_CAP),
  3494. SND_DJM_CTL("Ch4 Input", 750mk2_cap4, 2, SND_DJM_WINDEX_CAP),
  3495. SND_DJM_CTL("Ch5 Input", 750mk2_cap5, 3, SND_DJM_WINDEX_CAP),
  3496. SND_DJM_CTL("Ch1 Output", 750mk2_pb1, 0, SND_DJM_WINDEX_PB),
  3497. SND_DJM_CTL("Ch2 Output", 750mk2_pb2, 1, SND_DJM_WINDEX_PB),
  3498. SND_DJM_CTL("Ch3 Output", 750mk2_pb3, 2, SND_DJM_WINDEX_PB)
  3499. };
  3500. static const struct snd_djm_device snd_djm_devices[] = {
  3501. [SND_DJM_250MK2_IDX] = SND_DJM_DEVICE(250mk2),
  3502. [SND_DJM_750_IDX] = SND_DJM_DEVICE(750),
  3503. [SND_DJM_850_IDX] = SND_DJM_DEVICE(850),
  3504. [SND_DJM_900NXS2_IDX] = SND_DJM_DEVICE(900nxs2),
  3505. [SND_DJM_750MK2_IDX] = SND_DJM_DEVICE(750mk2),
  3506. [SND_DJM_450_IDX] = SND_DJM_DEVICE(450),
  3507. };
  3508. static int snd_djm_controls_info(struct snd_kcontrol *kctl,
  3509. struct snd_ctl_elem_info *info)
  3510. {
  3511. unsigned long private_value = kctl->private_value;
  3512. u8 device_idx = (private_value & SND_DJM_DEVICE_MASK) >> SND_DJM_DEVICE_SHIFT;
  3513. u8 ctl_idx = (private_value & SND_DJM_GROUP_MASK) >> SND_DJM_GROUP_SHIFT;
  3514. const struct snd_djm_device *device = &snd_djm_devices[device_idx];
  3515. const char *name;
  3516. const struct snd_djm_ctl *ctl;
  3517. size_t noptions;
  3518. if (ctl_idx >= device->ncontrols)
  3519. return -EINVAL;
  3520. ctl = &device->controls[ctl_idx];
  3521. noptions = ctl->noptions;
  3522. if (info->value.enumerated.item >= noptions)
  3523. info->value.enumerated.item = noptions - 1;
  3524. name = snd_djm_get_label(device_idx,
  3525. ctl->options[info->value.enumerated.item],
  3526. ctl->wIndex);
  3527. if (!name)
  3528. return -EINVAL;
  3529. strscpy(info->value.enumerated.name, name, sizeof(info->value.enumerated.name));
  3530. info->type = SNDRV_CTL_ELEM_TYPE_ENUMERATED;
  3531. info->count = 1;
  3532. info->value.enumerated.items = noptions;
  3533. return 0;
  3534. }
  3535. static int snd_djm_controls_update(struct usb_mixer_interface *mixer,
  3536. u8 device_idx, u8 group, u16 value)
  3537. {
  3538. int err;
  3539. const struct snd_djm_device *device = &snd_djm_devices[device_idx];
  3540. if (group >= device->ncontrols || value >= device->controls[group].noptions)
  3541. return -EINVAL;
  3542. err = snd_usb_lock_shutdown(mixer->chip);
  3543. if (err)
  3544. return err;
  3545. err = snd_usb_ctl_msg(mixer->chip->dev,
  3546. usb_sndctrlpipe(mixer->chip->dev, 0),
  3547. USB_REQ_SET_FEATURE,
  3548. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_DEVICE,
  3549. device->controls[group].options[value],
  3550. device->controls[group].wIndex,
  3551. NULL, 0);
  3552. snd_usb_unlock_shutdown(mixer->chip);
  3553. return err;
  3554. }
  3555. static int snd_djm_controls_get(struct snd_kcontrol *kctl,
  3556. struct snd_ctl_elem_value *elem)
  3557. {
  3558. elem->value.enumerated.item[0] = kctl->private_value & SND_DJM_VALUE_MASK;
  3559. return 0;
  3560. }
  3561. static int snd_djm_controls_put(struct snd_kcontrol *kctl, struct snd_ctl_elem_value *elem)
  3562. {
  3563. struct usb_mixer_elem_list *list = snd_kcontrol_chip(kctl);
  3564. struct usb_mixer_interface *mixer = list->mixer;
  3565. unsigned long private_value = kctl->private_value;
  3566. u8 device = (private_value & SND_DJM_DEVICE_MASK) >> SND_DJM_DEVICE_SHIFT;
  3567. u8 group = (private_value & SND_DJM_GROUP_MASK) >> SND_DJM_GROUP_SHIFT;
  3568. u16 value = elem->value.enumerated.item[0];
  3569. kctl->private_value = (((unsigned long)device << SND_DJM_DEVICE_SHIFT) |
  3570. (group << SND_DJM_GROUP_SHIFT) |
  3571. value);
  3572. return snd_djm_controls_update(mixer, device, group, value);
  3573. }
  3574. static int snd_djm_controls_resume(struct usb_mixer_elem_list *list)
  3575. {
  3576. unsigned long private_value = list->kctl->private_value;
  3577. u8 device = (private_value & SND_DJM_DEVICE_MASK) >> SND_DJM_DEVICE_SHIFT;
  3578. u8 group = (private_value & SND_DJM_GROUP_MASK) >> SND_DJM_GROUP_SHIFT;
  3579. u16 value = (private_value & SND_DJM_VALUE_MASK);
  3580. return snd_djm_controls_update(list->mixer, device, group, value);
  3581. }
  3582. static int snd_djm_controls_create(struct usb_mixer_interface *mixer,
  3583. const u8 device_idx)
  3584. {
  3585. int err, i;
  3586. u16 value;
  3587. const struct snd_djm_device *device = &snd_djm_devices[device_idx];
  3588. struct snd_kcontrol_new knew = {
  3589. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3590. .access = SNDRV_CTL_ELEM_ACCESS_READWRITE,
  3591. .index = 0,
  3592. .info = snd_djm_controls_info,
  3593. .get = snd_djm_controls_get,
  3594. .put = snd_djm_controls_put
  3595. };
  3596. for (i = 0; i < device->ncontrols; i++) {
  3597. value = device->controls[i].default_value;
  3598. knew.name = device->controls[i].name;
  3599. knew.private_value =
  3600. ((unsigned long)device_idx << SND_DJM_DEVICE_SHIFT) |
  3601. (i << SND_DJM_GROUP_SHIFT) |
  3602. value;
  3603. err = snd_djm_controls_update(mixer, device_idx, i, value);
  3604. if (err)
  3605. return err;
  3606. err = add_single_ctl_with_resume(mixer, 0, snd_djm_controls_resume,
  3607. &knew, NULL);
  3608. if (err)
  3609. return err;
  3610. }
  3611. return 0;
  3612. }
  3613. int snd_usb_mixer_apply_create_quirk(struct usb_mixer_interface *mixer)
  3614. {
  3615. int err = 0;
  3616. err = snd_usb_soundblaster_remote_init(mixer);
  3617. if (err < 0)
  3618. return err;
  3619. switch (mixer->chip->usb_id) {
  3620. /* Tascam US-16x08 */
  3621. case USB_ID(0x0644, 0x8047):
  3622. err = snd_us16x08_controls_create(mixer);
  3623. break;
  3624. case USB_ID(0x041e, 0x3020):
  3625. case USB_ID(0x041e, 0x3040):
  3626. case USB_ID(0x041e, 0x3042):
  3627. case USB_ID(0x041e, 0x30df):
  3628. case USB_ID(0x041e, 0x3048):
  3629. err = snd_audigy2nx_controls_create(mixer);
  3630. if (err < 0)
  3631. break;
  3632. snd_card_ro_proc_new(mixer->chip->card, "audigy2nx",
  3633. mixer, snd_audigy2nx_proc_read);
  3634. break;
  3635. /* EMU0204 */
  3636. case USB_ID(0x041e, 0x3f19):
  3637. err = snd_emu0204_controls_create(mixer);
  3638. break;
  3639. #if IS_REACHABLE(CONFIG_INPUT)
  3640. case USB_ID(0x054c, 0x0ce6): /* Sony DualSense controller (PS5) */
  3641. case USB_ID(0x054c, 0x0df2): /* Sony DualSense Edge controller (PS5) */
  3642. err = snd_dualsense_controls_create(mixer);
  3643. break;
  3644. #endif /* IS_REACHABLE(CONFIG_INPUT) */
  3645. case USB_ID(0x0763, 0x2030): /* M-Audio Fast Track C400 */
  3646. case USB_ID(0x0763, 0x2031): /* M-Audio Fast Track C400 */
  3647. err = snd_c400_create_mixer(mixer);
  3648. break;
  3649. case USB_ID(0x0763, 0x2080): /* M-Audio Fast Track Ultra */
  3650. case USB_ID(0x0763, 0x2081): /* M-Audio Fast Track Ultra 8R */
  3651. err = snd_ftu_create_mixer(mixer);
  3652. break;
  3653. case USB_ID(0x0b05, 0x1739): /* ASUS Xonar U1 */
  3654. case USB_ID(0x0b05, 0x1743): /* ASUS Xonar U1 (2) */
  3655. case USB_ID(0x0b05, 0x17a0): /* ASUS Xonar U3 */
  3656. err = snd_xonar_u1_controls_create(mixer);
  3657. break;
  3658. case USB_ID(0x0d8c, 0x0103): /* Audio Advantage Micro II */
  3659. err = snd_microii_controls_create(mixer);
  3660. break;
  3661. case USB_ID(0x0dba, 0x1000): /* Digidesign Mbox 1 */
  3662. err = snd_mbox1_controls_create(mixer);
  3663. break;
  3664. case USB_ID(0x17cc, 0x1011): /* Traktor Audio 6 */
  3665. err = snd_nativeinstruments_create_mixer(/* checkpatch hack */
  3666. mixer,
  3667. snd_nativeinstruments_ta6_mixers,
  3668. ARRAY_SIZE(snd_nativeinstruments_ta6_mixers));
  3669. break;
  3670. case USB_ID(0x17cc, 0x1021): /* Traktor Audio 10 */
  3671. err = snd_nativeinstruments_create_mixer(/* checkpatch hack */
  3672. mixer,
  3673. snd_nativeinstruments_ta10_mixers,
  3674. ARRAY_SIZE(snd_nativeinstruments_ta10_mixers));
  3675. break;
  3676. case USB_ID(0x200c, 0x1018): /* Electrix Ebox-44 */
  3677. /* detection is disabled in mixer_maps.c */
  3678. err = snd_create_std_mono_table(mixer, ebox44_table);
  3679. break;
  3680. case USB_ID(0x1235, 0x8012): /* Focusrite Scarlett 6i6 */
  3681. case USB_ID(0x1235, 0x8002): /* Focusrite Scarlett 8i6 */
  3682. case USB_ID(0x1235, 0x8004): /* Focusrite Scarlett 18i6 */
  3683. case USB_ID(0x1235, 0x8014): /* Focusrite Scarlett 18i8 */
  3684. case USB_ID(0x1235, 0x800c): /* Focusrite Scarlett 18i20 */
  3685. err = snd_scarlett_controls_create(mixer);
  3686. break;
  3687. case USB_ID(0x1235, 0x8203): /* Focusrite Scarlett 6i6 2nd Gen */
  3688. case USB_ID(0x1235, 0x8204): /* Focusrite Scarlett 18i8 2nd Gen */
  3689. case USB_ID(0x1235, 0x8201): /* Focusrite Scarlett 18i20 2nd Gen */
  3690. case USB_ID(0x1235, 0x8211): /* Focusrite Scarlett Solo 3rd Gen */
  3691. case USB_ID(0x1235, 0x8210): /* Focusrite Scarlett 2i2 3rd Gen */
  3692. case USB_ID(0x1235, 0x8212): /* Focusrite Scarlett 4i4 3rd Gen */
  3693. case USB_ID(0x1235, 0x8213): /* Focusrite Scarlett 8i6 3rd Gen */
  3694. case USB_ID(0x1235, 0x8214): /* Focusrite Scarlett 18i8 3rd Gen */
  3695. case USB_ID(0x1235, 0x8215): /* Focusrite Scarlett 18i20 3rd Gen */
  3696. case USB_ID(0x1235, 0x8216): /* Focusrite Vocaster One */
  3697. case USB_ID(0x1235, 0x8217): /* Focusrite Vocaster Two */
  3698. case USB_ID(0x1235, 0x8218): /* Focusrite Scarlett Solo 4th Gen */
  3699. case USB_ID(0x1235, 0x8219): /* Focusrite Scarlett 2i2 4th Gen */
  3700. case USB_ID(0x1235, 0x821a): /* Focusrite Scarlett 4i4 4th Gen */
  3701. case USB_ID(0x1235, 0x8206): /* Focusrite Clarett 2Pre USB */
  3702. case USB_ID(0x1235, 0x8207): /* Focusrite Clarett 4Pre USB */
  3703. case USB_ID(0x1235, 0x8208): /* Focusrite Clarett 8Pre USB */
  3704. case USB_ID(0x1235, 0x820a): /* Focusrite Clarett+ 2Pre */
  3705. case USB_ID(0x1235, 0x820b): /* Focusrite Clarett+ 4Pre */
  3706. case USB_ID(0x1235, 0x820c): /* Focusrite Clarett+ 8Pre */
  3707. err = snd_scarlett2_init(mixer);
  3708. break;
  3709. case USB_ID(0x041e, 0x323b): /* Creative Sound Blaster E1 */
  3710. err = snd_soundblaster_e1_switch_create(mixer);
  3711. break;
  3712. case USB_ID(0x0bda, 0x4014): /* Dell WD15 dock */
  3713. err = dell_dock_mixer_create(mixer);
  3714. if (err < 0)
  3715. break;
  3716. err = dell_dock_mixer_init(mixer);
  3717. break;
  3718. case USB_ID(0x0bda, 0x402e): /* Dell WD19 dock */
  3719. err = dell_dock_mixer_create(mixer);
  3720. break;
  3721. case USB_ID(0x2a39, 0x3fd2): /* RME ADI-2 Pro */
  3722. case USB_ID(0x2a39, 0x3fd3): /* RME ADI-2 DAC */
  3723. case USB_ID(0x2a39, 0x3fd4): /* RME */
  3724. err = snd_rme_controls_create(mixer);
  3725. break;
  3726. case USB_ID(0x194f, 0x010c): /* Presonus Studio 1810c */
  3727. err = snd_sc1810_init_mixer(mixer);
  3728. break;
  3729. case USB_ID(0x2a39, 0x3fb0): /* RME Babyface Pro FS */
  3730. err = snd_bbfpro_controls_create(mixer);
  3731. break;
  3732. case USB_ID(0x2a39, 0x3f8c): /* RME Digiface USB */
  3733. case USB_ID(0x2a39, 0x3fa0): /* RME Digiface USB (alternate) */
  3734. err = snd_rme_digiface_controls_create(mixer);
  3735. break;
  3736. case USB_ID(0x2b73, 0x0017): /* Pioneer DJ DJM-250MK2 */
  3737. err = snd_djm_controls_create(mixer, SND_DJM_250MK2_IDX);
  3738. break;
  3739. case USB_ID(0x2b73, 0x0013): /* Pioneer DJ DJM-450 */
  3740. err = snd_djm_controls_create(mixer, SND_DJM_450_IDX);
  3741. break;
  3742. case USB_ID(0x08e4, 0x017f): /* Pioneer DJ DJM-750 */
  3743. err = snd_djm_controls_create(mixer, SND_DJM_750_IDX);
  3744. break;
  3745. case USB_ID(0x2b73, 0x001b): /* Pioneer DJ DJM-750MK2 */
  3746. err = snd_djm_controls_create(mixer, SND_DJM_750MK2_IDX);
  3747. break;
  3748. case USB_ID(0x08e4, 0x0163): /* Pioneer DJ DJM-850 */
  3749. err = snd_djm_controls_create(mixer, SND_DJM_850_IDX);
  3750. break;
  3751. case USB_ID(0x2b73, 0x000a): /* Pioneer DJ DJM-900NXS2 */
  3752. err = snd_djm_controls_create(mixer, SND_DJM_900NXS2_IDX);
  3753. break;
  3754. }
  3755. return err;
  3756. }
  3757. void snd_usb_mixer_resume_quirk(struct usb_mixer_interface *mixer)
  3758. {
  3759. switch (mixer->chip->usb_id) {
  3760. case USB_ID(0x0bda, 0x4014): /* Dell WD15 dock */
  3761. dell_dock_mixer_init(mixer);
  3762. break;
  3763. }
  3764. }
  3765. void snd_usb_mixer_rc_memory_change(struct usb_mixer_interface *mixer,
  3766. int unitid)
  3767. {
  3768. if (!mixer->rc_cfg)
  3769. return;
  3770. /* unit ids specific to Extigy/Audigy 2 NX: */
  3771. switch (unitid) {
  3772. case 0: /* remote control */
  3773. mixer->rc_urb->dev = mixer->chip->dev;
  3774. usb_submit_urb(mixer->rc_urb, GFP_ATOMIC);
  3775. break;
  3776. case 4: /* digital in jack */
  3777. case 7: /* line in jacks */
  3778. case 19: /* speaker out jacks */
  3779. case 20: /* headphones out jack */
  3780. break;
  3781. /* live24ext: 4 = line-in jack */
  3782. case 3: /* hp-out jack (may actuate Mute) */
  3783. if (mixer->chip->usb_id == USB_ID(0x041e, 0x3040) ||
  3784. mixer->chip->usb_id == USB_ID(0x041e, 0x3048))
  3785. snd_usb_mixer_notify_id(mixer, mixer->rc_cfg->mute_mixer_id);
  3786. break;
  3787. default:
  3788. usb_audio_dbg(mixer->chip, "memory change in unknown unit %d\n", unitid);
  3789. break;
  3790. }
  3791. }
  3792. static void snd_dragonfly_quirk_db_scale(struct usb_mixer_interface *mixer,
  3793. struct usb_mixer_elem_info *cval,
  3794. struct snd_kcontrol *kctl)
  3795. {
  3796. /* Approximation using 10 ranges based on output measurement on hw v1.2.
  3797. * This seems close to the cubic mapping e.g. alsamixer uses.
  3798. */
  3799. static const DECLARE_TLV_DB_RANGE(scale,
  3800. 0, 1, TLV_DB_MINMAX_ITEM(-5300, -4970),
  3801. 2, 5, TLV_DB_MINMAX_ITEM(-4710, -4160),
  3802. 6, 7, TLV_DB_MINMAX_ITEM(-3884, -3710),
  3803. 8, 14, TLV_DB_MINMAX_ITEM(-3443, -2560),
  3804. 15, 16, TLV_DB_MINMAX_ITEM(-2475, -2324),
  3805. 17, 19, TLV_DB_MINMAX_ITEM(-2228, -2031),
  3806. 20, 26, TLV_DB_MINMAX_ITEM(-1910, -1393),
  3807. 27, 31, TLV_DB_MINMAX_ITEM(-1322, -1032),
  3808. 32, 40, TLV_DB_MINMAX_ITEM(-968, -490),
  3809. 41, 50, TLV_DB_MINMAX_ITEM(-441, 0),
  3810. );
  3811. if (cval->min == 0 && cval->max == 50) {
  3812. usb_audio_info(mixer->chip, "applying DragonFly dB scale quirk (0-50 variant)\n");
  3813. kctl->tlv.p = scale;
  3814. kctl->vd[0].access |= SNDRV_CTL_ELEM_ACCESS_TLV_READ;
  3815. kctl->vd[0].access &= ~SNDRV_CTL_ELEM_ACCESS_TLV_CALLBACK;
  3816. } else if (cval->min == 0 && cval->max <= 1000) {
  3817. /* Some other clearly broken DragonFly variant.
  3818. * At least a 0..53 variant (hw v1.0) exists.
  3819. */
  3820. usb_audio_info(mixer->chip, "ignoring too narrow dB range on a DragonFly device");
  3821. kctl->vd[0].access &= ~SNDRV_CTL_ELEM_ACCESS_TLV_CALLBACK;
  3822. }
  3823. }
  3824. /*
  3825. * Some Plantronics headsets have control names that don't meet ALSA naming
  3826. * standards. This function fixes nonstandard source names. By the time
  3827. * this function is called the control name should look like one of these:
  3828. * "source names Playback Volume"
  3829. * "source names Playback Switch"
  3830. * "source names Capture Volume"
  3831. * "source names Capture Switch"
  3832. * If any of the trigger words are found in the name then the name will
  3833. * be changed to:
  3834. * "Headset Playback Volume"
  3835. * "Headset Playback Switch"
  3836. * "Headset Capture Volume"
  3837. * "Headset Capture Switch"
  3838. * depending on the current suffix.
  3839. */
  3840. static void snd_fix_plt_name(struct snd_usb_audio *chip,
  3841. struct snd_ctl_elem_id *id)
  3842. {
  3843. /* no variant of "Sidetone" should be added to this list */
  3844. static const char * const trigger[] = {
  3845. "Earphone", "Microphone", "Receive", "Transmit"
  3846. };
  3847. static const char * const suffix[] = {
  3848. " Playback Volume", " Playback Switch",
  3849. " Capture Volume", " Capture Switch"
  3850. };
  3851. int i;
  3852. for (i = 0; i < ARRAY_SIZE(trigger); i++)
  3853. if (strstr(id->name, trigger[i]))
  3854. goto triggered;
  3855. usb_audio_dbg(chip, "no change in %s\n", id->name);
  3856. return;
  3857. triggered:
  3858. for (i = 0; i < ARRAY_SIZE(suffix); i++)
  3859. if (strstr(id->name, suffix[i])) {
  3860. usb_audio_dbg(chip, "fixing kctl name %s\n", id->name);
  3861. snprintf(id->name, sizeof(id->name), "Headset%s",
  3862. suffix[i]);
  3863. return;
  3864. }
  3865. usb_audio_dbg(chip, "something wrong in kctl name %s\n", id->name);
  3866. }
  3867. void snd_usb_mixer_fu_apply_quirk(struct usb_mixer_interface *mixer,
  3868. struct usb_mixer_elem_info *cval, int unitid,
  3869. struct snd_kcontrol *kctl)
  3870. {
  3871. switch (mixer->chip->usb_id) {
  3872. case USB_ID(0x21b4, 0x0081): /* AudioQuest DragonFly */
  3873. if (unitid == 7 && cval->control == UAC_FU_VOLUME)
  3874. snd_dragonfly_quirk_db_scale(mixer, cval, kctl);
  3875. break;
  3876. }
  3877. /* lowest playback value is muted on some devices */
  3878. if (mixer->chip->quirk_flags & QUIRK_FLAG_MIXER_MIN_MUTE)
  3879. if (strstr(kctl->id.name, "Playback"))
  3880. cval->min_mute = 1;
  3881. /* ALSA-ify some Plantronics headset control names */
  3882. if (USB_ID_VENDOR(mixer->chip->usb_id) == 0x047f &&
  3883. (cval->control == UAC_FU_MUTE || cval->control == UAC_FU_VOLUME))
  3884. snd_fix_plt_name(mixer->chip, &kctl->id);
  3885. }