f_uac1.c 48 KB

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  1. // SPDX-License-Identifier: GPL-2.0+
  2. /*
  3. * f_uac1.c -- USB Audio Class 1.0 Function (using u_audio API)
  4. *
  5. * Copyright (C) 2016 Ruslan Bilovol <[email protected]>
  6. * Copyright (C) 2021 Julian Scheel <[email protected]>
  7. *
  8. * This driver doesn't expect any real Audio codec to be present
  9. * on the device - the audio streams are simply sinked to and
  10. * sourced from a virtual ALSA sound card created.
  11. *
  12. * This file is based on f_uac1.c which is
  13. * Copyright (C) 2008 Bryan Wu <[email protected]>
  14. * Copyright (C) 2008 Analog Devices, Inc
  15. */
  16. #include <linux/usb/audio.h>
  17. #include <linux/module.h>
  18. #include "u_audio.h"
  19. #include "u_uac1.h"
  20. /* UAC1 spec: 3.7.2.3 Audio Channel Cluster Format */
  21. #define UAC1_CHANNEL_MASK 0x0FFF
  22. #define USB_OUT_FU_ID (out_feature_unit_desc->bUnitID)
  23. #define USB_IN_FU_ID (in_feature_unit_desc->bUnitID)
  24. #define EPIN_EN(_opts) ((_opts)->p_chmask != 0)
  25. #define EPOUT_EN(_opts) ((_opts)->c_chmask != 0)
  26. #define FUIN_EN(_opts) ((_opts)->p_mute_present \
  27. || (_opts)->p_volume_present)
  28. #define FUOUT_EN(_opts) ((_opts)->c_mute_present \
  29. || (_opts)->c_volume_present)
  30. struct f_uac1 {
  31. struct g_audio g_audio;
  32. u8 ac_intf, as_in_intf, as_out_intf;
  33. u8 ac_alt, as_in_alt, as_out_alt; /* needed for get_alt() */
  34. struct usb_ctrlrequest setup_cr; /* will be used in data stage */
  35. /* Interrupt IN endpoint of AC interface */
  36. struct usb_ep *int_ep;
  37. atomic_t int_count;
  38. int ctl_id; /* EP id */
  39. int c_srate; /* current capture srate */
  40. int p_srate; /* current playback prate */
  41. };
  42. static inline struct f_uac1 *func_to_uac1(struct usb_function *f)
  43. {
  44. return container_of(f, struct f_uac1, g_audio.func);
  45. }
  46. static inline struct f_uac1_opts *g_audio_to_uac1_opts(struct g_audio *audio)
  47. {
  48. return container_of(audio->func.fi, struct f_uac1_opts, func_inst);
  49. }
  50. /*
  51. * DESCRIPTORS ... most are static, but strings and full
  52. * configuration descriptors are built on demand.
  53. */
  54. /*
  55. * We have three interfaces - one AudioControl and two AudioStreaming
  56. *
  57. * The driver implements a simple UAC_1 topology.
  58. * USB-OUT -> IT_1 -> OT_2 -> ALSA_Capture
  59. * ALSA_Playback -> IT_3 -> OT_4 -> USB-IN
  60. */
  61. /* B.3.1 Standard AC Interface Descriptor */
  62. static struct usb_interface_descriptor ac_interface_desc = {
  63. .bLength = USB_DT_INTERFACE_SIZE,
  64. .bDescriptorType = USB_DT_INTERFACE,
  65. /* .bNumEndpoints = DYNAMIC */
  66. .bInterfaceClass = USB_CLASS_AUDIO,
  67. .bInterfaceSubClass = USB_SUBCLASS_AUDIOCONTROL,
  68. };
  69. /* B.3.2 Class-Specific AC Interface Descriptor */
  70. static struct uac1_ac_header_descriptor *ac_header_desc;
  71. static struct uac_input_terminal_descriptor usb_out_it_desc = {
  72. .bLength = UAC_DT_INPUT_TERMINAL_SIZE,
  73. .bDescriptorType = USB_DT_CS_INTERFACE,
  74. .bDescriptorSubtype = UAC_INPUT_TERMINAL,
  75. /* .bTerminalID = DYNAMIC */
  76. .wTerminalType = cpu_to_le16(UAC_TERMINAL_STREAMING),
  77. .bAssocTerminal = 0,
  78. .wChannelConfig = cpu_to_le16(0x3),
  79. };
  80. static struct uac1_output_terminal_descriptor io_out_ot_desc = {
  81. .bLength = UAC_DT_OUTPUT_TERMINAL_SIZE,
  82. .bDescriptorType = USB_DT_CS_INTERFACE,
  83. .bDescriptorSubtype = UAC_OUTPUT_TERMINAL,
  84. /* .bTerminalID = DYNAMIC */
  85. .wTerminalType = cpu_to_le16(UAC_OUTPUT_TERMINAL_SPEAKER),
  86. .bAssocTerminal = 0,
  87. /* .bSourceID = DYNAMIC */
  88. };
  89. static struct uac_input_terminal_descriptor io_in_it_desc = {
  90. .bLength = UAC_DT_INPUT_TERMINAL_SIZE,
  91. .bDescriptorType = USB_DT_CS_INTERFACE,
  92. .bDescriptorSubtype = UAC_INPUT_TERMINAL,
  93. /* .bTerminalID = DYNAMIC */
  94. .wTerminalType = cpu_to_le16(UAC_INPUT_TERMINAL_MICROPHONE),
  95. .bAssocTerminal = 0,
  96. .wChannelConfig = cpu_to_le16(0x3),
  97. };
  98. static struct uac1_output_terminal_descriptor usb_in_ot_desc = {
  99. .bLength = UAC_DT_OUTPUT_TERMINAL_SIZE,
  100. .bDescriptorType = USB_DT_CS_INTERFACE,
  101. .bDescriptorSubtype = UAC_OUTPUT_TERMINAL,
  102. /* .bTerminalID = DYNAMIC */
  103. .wTerminalType = cpu_to_le16(UAC_TERMINAL_STREAMING),
  104. .bAssocTerminal = 0,
  105. /* .bSourceID = DYNAMIC */
  106. };
  107. static struct uac_feature_unit_descriptor *in_feature_unit_desc;
  108. static struct uac_feature_unit_descriptor *out_feature_unit_desc;
  109. /* AC IN Interrupt Endpoint */
  110. static struct usb_endpoint_descriptor ac_int_ep_desc = {
  111. .bLength = USB_DT_ENDPOINT_SIZE,
  112. .bDescriptorType = USB_DT_ENDPOINT,
  113. .bEndpointAddress = USB_DIR_IN,
  114. .bmAttributes = USB_ENDPOINT_XFER_INT,
  115. .wMaxPacketSize = cpu_to_le16(2),
  116. .bInterval = 4,
  117. };
  118. /* B.4.1 Standard AS Interface Descriptor */
  119. static struct usb_interface_descriptor as_out_interface_alt_0_desc = {
  120. .bLength = USB_DT_INTERFACE_SIZE,
  121. .bDescriptorType = USB_DT_INTERFACE,
  122. .bAlternateSetting = 0,
  123. .bNumEndpoints = 0,
  124. .bInterfaceClass = USB_CLASS_AUDIO,
  125. .bInterfaceSubClass = USB_SUBCLASS_AUDIOSTREAMING,
  126. };
  127. static struct usb_interface_descriptor as_out_interface_alt_1_desc = {
  128. .bLength = USB_DT_INTERFACE_SIZE,
  129. .bDescriptorType = USB_DT_INTERFACE,
  130. .bAlternateSetting = 1,
  131. .bNumEndpoints = 1,
  132. .bInterfaceClass = USB_CLASS_AUDIO,
  133. .bInterfaceSubClass = USB_SUBCLASS_AUDIOSTREAMING,
  134. };
  135. static struct usb_interface_descriptor as_in_interface_alt_0_desc = {
  136. .bLength = USB_DT_INTERFACE_SIZE,
  137. .bDescriptorType = USB_DT_INTERFACE,
  138. .bAlternateSetting = 0,
  139. .bNumEndpoints = 0,
  140. .bInterfaceClass = USB_CLASS_AUDIO,
  141. .bInterfaceSubClass = USB_SUBCLASS_AUDIOSTREAMING,
  142. };
  143. static struct usb_interface_descriptor as_in_interface_alt_1_desc = {
  144. .bLength = USB_DT_INTERFACE_SIZE,
  145. .bDescriptorType = USB_DT_INTERFACE,
  146. .bAlternateSetting = 1,
  147. .bNumEndpoints = 1,
  148. .bInterfaceClass = USB_CLASS_AUDIO,
  149. .bInterfaceSubClass = USB_SUBCLASS_AUDIOSTREAMING,
  150. };
  151. /* B.4.2 Class-Specific AS Interface Descriptor */
  152. static struct uac1_as_header_descriptor as_out_header_desc = {
  153. .bLength = UAC_DT_AS_HEADER_SIZE,
  154. .bDescriptorType = USB_DT_CS_INTERFACE,
  155. .bDescriptorSubtype = UAC_AS_GENERAL,
  156. /* .bTerminalLink = DYNAMIC */
  157. .bDelay = 1,
  158. .wFormatTag = cpu_to_le16(UAC_FORMAT_TYPE_I_PCM),
  159. };
  160. static struct uac1_as_header_descriptor as_in_header_desc = {
  161. .bLength = UAC_DT_AS_HEADER_SIZE,
  162. .bDescriptorType = USB_DT_CS_INTERFACE,
  163. .bDescriptorSubtype = UAC_AS_GENERAL,
  164. /* .bTerminalLink = DYNAMIC */
  165. .bDelay = 1,
  166. .wFormatTag = cpu_to_le16(UAC_FORMAT_TYPE_I_PCM),
  167. };
  168. DECLARE_UAC_FORMAT_TYPE_I_DISCRETE_DESC(UAC_MAX_RATES);
  169. #define uac_format_type_i_discrete_descriptor \
  170. uac_format_type_i_discrete_descriptor_##UAC_MAX_RATES
  171. static struct uac_format_type_i_discrete_descriptor as_out_type_i_desc = {
  172. .bLength = 0, /* filled on rate setup */
  173. .bDescriptorType = USB_DT_CS_INTERFACE,
  174. .bDescriptorSubtype = UAC_FORMAT_TYPE,
  175. .bFormatType = UAC_FORMAT_TYPE_I,
  176. .bSubframeSize = 2,
  177. .bBitResolution = 16,
  178. .bSamFreqType = 0, /* filled on rate setup */
  179. };
  180. /* Standard ISO OUT Endpoint Descriptor */
  181. static struct usb_endpoint_descriptor as_out_ep_desc = {
  182. .bLength = USB_DT_ENDPOINT_AUDIO_SIZE,
  183. .bDescriptorType = USB_DT_ENDPOINT,
  184. .bEndpointAddress = USB_DIR_OUT,
  185. .bmAttributes = USB_ENDPOINT_SYNC_ADAPTIVE
  186. | USB_ENDPOINT_XFER_ISOC,
  187. .wMaxPacketSize = cpu_to_le16(UAC1_OUT_EP_MAX_PACKET_SIZE),
  188. .bInterval = 4,
  189. };
  190. /* Class-specific AS ISO OUT Endpoint Descriptor */
  191. static struct uac_iso_endpoint_descriptor as_iso_out_desc = {
  192. .bLength = UAC_ISO_ENDPOINT_DESC_SIZE,
  193. .bDescriptorType = USB_DT_CS_ENDPOINT,
  194. .bDescriptorSubtype = UAC_EP_GENERAL,
  195. .bmAttributes = 1,
  196. .bLockDelayUnits = 1,
  197. .wLockDelay = cpu_to_le16(1),
  198. };
  199. static struct uac_format_type_i_discrete_descriptor as_in_type_i_desc = {
  200. .bLength = 0, /* filled on rate setup */
  201. .bDescriptorType = USB_DT_CS_INTERFACE,
  202. .bDescriptorSubtype = UAC_FORMAT_TYPE,
  203. .bFormatType = UAC_FORMAT_TYPE_I,
  204. .bSubframeSize = 2,
  205. .bBitResolution = 16,
  206. .bSamFreqType = 0, /* filled on rate setup */
  207. };
  208. /* Standard ISO OUT Endpoint Descriptor */
  209. static struct usb_endpoint_descriptor as_in_ep_desc = {
  210. .bLength = USB_DT_ENDPOINT_AUDIO_SIZE,
  211. .bDescriptorType = USB_DT_ENDPOINT,
  212. .bEndpointAddress = USB_DIR_IN,
  213. .bmAttributes = USB_ENDPOINT_SYNC_ASYNC
  214. | USB_ENDPOINT_XFER_ISOC,
  215. .wMaxPacketSize = cpu_to_le16(UAC1_OUT_EP_MAX_PACKET_SIZE),
  216. .bInterval = 4,
  217. };
  218. /* Class-specific AS ISO OUT Endpoint Descriptor */
  219. static struct uac_iso_endpoint_descriptor as_iso_in_desc = {
  220. .bLength = UAC_ISO_ENDPOINT_DESC_SIZE,
  221. .bDescriptorType = USB_DT_CS_ENDPOINT,
  222. .bDescriptorSubtype = UAC_EP_GENERAL,
  223. .bmAttributes = 1,
  224. .bLockDelayUnits = 0,
  225. .wLockDelay = 0,
  226. };
  227. static struct usb_descriptor_header *f_audio_desc[] = {
  228. (struct usb_descriptor_header *)&ac_interface_desc,
  229. (struct usb_descriptor_header *)&ac_header_desc,
  230. (struct usb_descriptor_header *)&usb_out_it_desc,
  231. (struct usb_descriptor_header *)&io_out_ot_desc,
  232. (struct usb_descriptor_header *)&out_feature_unit_desc,
  233. (struct usb_descriptor_header *)&io_in_it_desc,
  234. (struct usb_descriptor_header *)&usb_in_ot_desc,
  235. (struct usb_descriptor_header *)&in_feature_unit_desc,
  236. (struct usb_descriptor_header *)&ac_int_ep_desc,
  237. (struct usb_descriptor_header *)&as_out_interface_alt_0_desc,
  238. (struct usb_descriptor_header *)&as_out_interface_alt_1_desc,
  239. (struct usb_descriptor_header *)&as_out_header_desc,
  240. (struct usb_descriptor_header *)&as_out_type_i_desc,
  241. (struct usb_descriptor_header *)&as_out_ep_desc,
  242. (struct usb_descriptor_header *)&as_iso_out_desc,
  243. (struct usb_descriptor_header *)&as_in_interface_alt_0_desc,
  244. (struct usb_descriptor_header *)&as_in_interface_alt_1_desc,
  245. (struct usb_descriptor_header *)&as_in_header_desc,
  246. (struct usb_descriptor_header *)&as_in_type_i_desc,
  247. (struct usb_descriptor_header *)&as_in_ep_desc,
  248. (struct usb_descriptor_header *)&as_iso_in_desc,
  249. NULL,
  250. };
  251. enum {
  252. STR_AC_IF,
  253. STR_USB_OUT_IT,
  254. STR_USB_OUT_IT_CH_NAMES,
  255. STR_IO_OUT_OT,
  256. STR_IO_IN_IT,
  257. STR_IO_IN_IT_CH_NAMES,
  258. STR_USB_IN_OT,
  259. STR_FU_IN,
  260. STR_FU_OUT,
  261. STR_AS_OUT_IF_ALT0,
  262. STR_AS_OUT_IF_ALT1,
  263. STR_AS_IN_IF_ALT0,
  264. STR_AS_IN_IF_ALT1,
  265. };
  266. static struct usb_string strings_uac1[] = {
  267. /* [STR_AC_IF].s = DYNAMIC, */
  268. [STR_USB_OUT_IT].s = "Playback Input terminal",
  269. [STR_USB_OUT_IT_CH_NAMES].s = "Playback Channels",
  270. [STR_IO_OUT_OT].s = "Playback Output terminal",
  271. [STR_IO_IN_IT].s = "Capture Input terminal",
  272. [STR_IO_IN_IT_CH_NAMES].s = "Capture Channels",
  273. [STR_USB_IN_OT].s = "Capture Output terminal",
  274. [STR_FU_IN].s = "Capture Volume",
  275. [STR_FU_OUT].s = "Playback Volume",
  276. [STR_AS_OUT_IF_ALT0].s = "Playback Inactive",
  277. [STR_AS_OUT_IF_ALT1].s = "Playback Active",
  278. [STR_AS_IN_IF_ALT0].s = "Capture Inactive",
  279. [STR_AS_IN_IF_ALT1].s = "Capture Active",
  280. { },
  281. };
  282. static struct usb_gadget_strings str_uac1 = {
  283. .language = 0x0409, /* en-us */
  284. .strings = strings_uac1,
  285. };
  286. static struct usb_gadget_strings *uac1_strings[] = {
  287. &str_uac1,
  288. NULL,
  289. };
  290. /*
  291. * This function is an ALSA sound card following USB Audio Class Spec 1.0.
  292. */
  293. static void uac_cs_attr_sample_rate(struct usb_ep *ep, struct usb_request *req)
  294. {
  295. struct usb_function *fn = ep->driver_data;
  296. struct usb_composite_dev *cdev = fn->config->cdev;
  297. struct g_audio *agdev = func_to_g_audio(fn);
  298. struct f_uac1 *uac1 = func_to_uac1(fn);
  299. u8 *buf = (u8 *)req->buf;
  300. u32 val = 0;
  301. if (req->actual != 3) {
  302. WARN(cdev, "Invalid data size for UAC_EP_CS_ATTR_SAMPLE_RATE.\n");
  303. return;
  304. }
  305. val = buf[0] | (buf[1] << 8) | (buf[2] << 16);
  306. if (uac1->ctl_id == (USB_DIR_IN | 2)) {
  307. uac1->p_srate = val;
  308. u_audio_set_playback_srate(agdev, uac1->p_srate);
  309. } else if (uac1->ctl_id == (USB_DIR_OUT | 1)) {
  310. uac1->c_srate = val;
  311. u_audio_set_capture_srate(agdev, uac1->c_srate);
  312. }
  313. }
  314. static void audio_notify_complete(struct usb_ep *_ep, struct usb_request *req)
  315. {
  316. struct g_audio *audio = req->context;
  317. struct f_uac1 *uac1 = func_to_uac1(&audio->func);
  318. atomic_dec(&uac1->int_count);
  319. kfree(req->buf);
  320. usb_ep_free_request(_ep, req);
  321. }
  322. static int audio_notify(struct g_audio *audio, int unit_id, int cs)
  323. {
  324. struct f_uac1 *uac1 = func_to_uac1(&audio->func);
  325. struct usb_request *req;
  326. struct uac1_status_word *msg;
  327. int ret;
  328. if (!uac1->int_ep->enabled)
  329. return 0;
  330. if (atomic_inc_return(&uac1->int_count) > UAC1_DEF_INT_REQ_NUM) {
  331. atomic_dec(&uac1->int_count);
  332. return 0;
  333. }
  334. req = usb_ep_alloc_request(uac1->int_ep, GFP_ATOMIC);
  335. if (req == NULL) {
  336. ret = -ENOMEM;
  337. goto err_dec_int_count;
  338. }
  339. msg = kmalloc(sizeof(*msg), GFP_ATOMIC);
  340. if (msg == NULL) {
  341. ret = -ENOMEM;
  342. goto err_free_request;
  343. }
  344. msg->bStatusType = UAC1_STATUS_TYPE_IRQ_PENDING
  345. | UAC1_STATUS_TYPE_ORIG_AUDIO_CONTROL_IF;
  346. msg->bOriginator = unit_id;
  347. req->length = sizeof(*msg);
  348. req->buf = msg;
  349. req->context = audio;
  350. req->complete = audio_notify_complete;
  351. ret = usb_ep_queue(uac1->int_ep, req, GFP_ATOMIC);
  352. if (ret)
  353. goto err_free_msg;
  354. return 0;
  355. err_free_msg:
  356. kfree(msg);
  357. err_free_request:
  358. usb_ep_free_request(uac1->int_ep, req);
  359. err_dec_int_count:
  360. atomic_dec(&uac1->int_count);
  361. return ret;
  362. }
  363. static int
  364. in_rq_cur(struct usb_function *fn, const struct usb_ctrlrequest *cr)
  365. {
  366. struct usb_request *req = fn->config->cdev->req;
  367. struct g_audio *audio = func_to_g_audio(fn);
  368. struct f_uac1_opts *opts = g_audio_to_uac1_opts(audio);
  369. u16 w_length = le16_to_cpu(cr->wLength);
  370. u16 w_index = le16_to_cpu(cr->wIndex);
  371. u16 w_value = le16_to_cpu(cr->wValue);
  372. u8 entity_id = (w_index >> 8) & 0xff;
  373. u8 control_selector = w_value >> 8;
  374. int value = -EOPNOTSUPP;
  375. if ((FUIN_EN(opts) && (entity_id == USB_IN_FU_ID)) ||
  376. (FUOUT_EN(opts) && (entity_id == USB_OUT_FU_ID))) {
  377. unsigned int is_playback = 0;
  378. if (FUIN_EN(opts) && (entity_id == USB_IN_FU_ID))
  379. is_playback = 1;
  380. if (control_selector == UAC_FU_MUTE) {
  381. unsigned int mute;
  382. u_audio_get_mute(audio, is_playback, &mute);
  383. *(u8 *)req->buf = mute;
  384. value = min_t(unsigned int, w_length, 1);
  385. } else if (control_selector == UAC_FU_VOLUME) {
  386. __le16 c;
  387. s16 volume;
  388. u_audio_get_volume(audio, is_playback, &volume);
  389. c = cpu_to_le16(volume);
  390. value = min_t(unsigned int, w_length, sizeof(c));
  391. memcpy(req->buf, &c, value);
  392. } else {
  393. dev_err(&audio->gadget->dev,
  394. "%s:%d control_selector=%d TODO!\n",
  395. __func__, __LINE__, control_selector);
  396. }
  397. } else {
  398. dev_err(&audio->gadget->dev,
  399. "%s:%d entity_id=%d control_selector=%d TODO!\n",
  400. __func__, __LINE__, entity_id, control_selector);
  401. }
  402. return value;
  403. }
  404. static int
  405. in_rq_min(struct usb_function *fn, const struct usb_ctrlrequest *cr)
  406. {
  407. struct usb_request *req = fn->config->cdev->req;
  408. struct g_audio *audio = func_to_g_audio(fn);
  409. struct f_uac1_opts *opts = g_audio_to_uac1_opts(audio);
  410. u16 w_length = le16_to_cpu(cr->wLength);
  411. u16 w_index = le16_to_cpu(cr->wIndex);
  412. u16 w_value = le16_to_cpu(cr->wValue);
  413. u8 entity_id = (w_index >> 8) & 0xff;
  414. u8 control_selector = w_value >> 8;
  415. int value = -EOPNOTSUPP;
  416. if ((FUIN_EN(opts) && (entity_id == USB_IN_FU_ID)) ||
  417. (FUOUT_EN(opts) && (entity_id == USB_OUT_FU_ID))) {
  418. unsigned int is_playback = 0;
  419. if (FUIN_EN(opts) && (entity_id == USB_IN_FU_ID))
  420. is_playback = 1;
  421. if (control_selector == UAC_FU_VOLUME) {
  422. __le16 r;
  423. s16 min_db;
  424. if (is_playback)
  425. min_db = opts->p_volume_min;
  426. else
  427. min_db = opts->c_volume_min;
  428. r = cpu_to_le16(min_db);
  429. value = min_t(unsigned int, w_length, sizeof(r));
  430. memcpy(req->buf, &r, value);
  431. } else {
  432. dev_err(&audio->gadget->dev,
  433. "%s:%d control_selector=%d TODO!\n",
  434. __func__, __LINE__, control_selector);
  435. }
  436. } else {
  437. dev_err(&audio->gadget->dev,
  438. "%s:%d entity_id=%d control_selector=%d TODO!\n",
  439. __func__, __LINE__, entity_id, control_selector);
  440. }
  441. return value;
  442. }
  443. static int
  444. in_rq_max(struct usb_function *fn, const struct usb_ctrlrequest *cr)
  445. {
  446. struct usb_request *req = fn->config->cdev->req;
  447. struct g_audio *audio = func_to_g_audio(fn);
  448. struct f_uac1_opts *opts = g_audio_to_uac1_opts(audio);
  449. u16 w_length = le16_to_cpu(cr->wLength);
  450. u16 w_index = le16_to_cpu(cr->wIndex);
  451. u16 w_value = le16_to_cpu(cr->wValue);
  452. u8 entity_id = (w_index >> 8) & 0xff;
  453. u8 control_selector = w_value >> 8;
  454. int value = -EOPNOTSUPP;
  455. if ((FUIN_EN(opts) && (entity_id == USB_IN_FU_ID)) ||
  456. (FUOUT_EN(opts) && (entity_id == USB_OUT_FU_ID))) {
  457. unsigned int is_playback = 0;
  458. if (FUIN_EN(opts) && (entity_id == USB_IN_FU_ID))
  459. is_playback = 1;
  460. if (control_selector == UAC_FU_VOLUME) {
  461. __le16 r;
  462. s16 max_db;
  463. if (is_playback)
  464. max_db = opts->p_volume_max;
  465. else
  466. max_db = opts->c_volume_max;
  467. r = cpu_to_le16(max_db);
  468. value = min_t(unsigned int, w_length, sizeof(r));
  469. memcpy(req->buf, &r, value);
  470. } else {
  471. dev_err(&audio->gadget->dev,
  472. "%s:%d control_selector=%d TODO!\n",
  473. __func__, __LINE__, control_selector);
  474. }
  475. } else {
  476. dev_err(&audio->gadget->dev,
  477. "%s:%d entity_id=%d control_selector=%d TODO!\n",
  478. __func__, __LINE__, entity_id, control_selector);
  479. }
  480. return value;
  481. }
  482. static int
  483. in_rq_res(struct usb_function *fn, const struct usb_ctrlrequest *cr)
  484. {
  485. struct usb_request *req = fn->config->cdev->req;
  486. struct g_audio *audio = func_to_g_audio(fn);
  487. struct f_uac1_opts *opts = g_audio_to_uac1_opts(audio);
  488. u16 w_length = le16_to_cpu(cr->wLength);
  489. u16 w_index = le16_to_cpu(cr->wIndex);
  490. u16 w_value = le16_to_cpu(cr->wValue);
  491. u8 entity_id = (w_index >> 8) & 0xff;
  492. u8 control_selector = w_value >> 8;
  493. int value = -EOPNOTSUPP;
  494. if ((FUIN_EN(opts) && (entity_id == USB_IN_FU_ID)) ||
  495. (FUOUT_EN(opts) && (entity_id == USB_OUT_FU_ID))) {
  496. unsigned int is_playback = 0;
  497. if (FUIN_EN(opts) && (entity_id == USB_IN_FU_ID))
  498. is_playback = 1;
  499. if (control_selector == UAC_FU_VOLUME) {
  500. __le16 r;
  501. s16 res_db;
  502. if (is_playback)
  503. res_db = opts->p_volume_res;
  504. else
  505. res_db = opts->c_volume_res;
  506. r = cpu_to_le16(res_db);
  507. value = min_t(unsigned int, w_length, sizeof(r));
  508. memcpy(req->buf, &r, value);
  509. } else {
  510. dev_err(&audio->gadget->dev,
  511. "%s:%d control_selector=%d TODO!\n",
  512. __func__, __LINE__, control_selector);
  513. }
  514. } else {
  515. dev_err(&audio->gadget->dev,
  516. "%s:%d entity_id=%d control_selector=%d TODO!\n",
  517. __func__, __LINE__, entity_id, control_selector);
  518. }
  519. return value;
  520. }
  521. static void
  522. out_rq_cur_complete(struct usb_ep *ep, struct usb_request *req)
  523. {
  524. struct g_audio *audio = req->context;
  525. struct usb_composite_dev *cdev = audio->func.config->cdev;
  526. struct f_uac1_opts *opts = g_audio_to_uac1_opts(audio);
  527. struct f_uac1 *uac1 = func_to_uac1(&audio->func);
  528. struct usb_ctrlrequest *cr = &uac1->setup_cr;
  529. u16 w_index = le16_to_cpu(cr->wIndex);
  530. u16 w_value = le16_to_cpu(cr->wValue);
  531. u8 entity_id = (w_index >> 8) & 0xff;
  532. u8 control_selector = w_value >> 8;
  533. if (req->status != 0) {
  534. dev_dbg(&cdev->gadget->dev, "completion err %d\n", req->status);
  535. return;
  536. }
  537. if ((FUIN_EN(opts) && (entity_id == USB_IN_FU_ID)) ||
  538. (FUOUT_EN(opts) && (entity_id == USB_OUT_FU_ID))) {
  539. unsigned int is_playback = 0;
  540. if (FUIN_EN(opts) && (entity_id == USB_IN_FU_ID))
  541. is_playback = 1;
  542. if (control_selector == UAC_FU_MUTE) {
  543. u8 mute = *(u8 *)req->buf;
  544. u_audio_set_mute(audio, is_playback, mute);
  545. return;
  546. } else if (control_selector == UAC_FU_VOLUME) {
  547. __le16 *c = req->buf;
  548. s16 volume;
  549. volume = le16_to_cpu(*c);
  550. u_audio_set_volume(audio, is_playback, volume);
  551. return;
  552. } else {
  553. dev_err(&audio->gadget->dev,
  554. "%s:%d control_selector=%d TODO!\n",
  555. __func__, __LINE__, control_selector);
  556. usb_ep_set_halt(ep);
  557. }
  558. } else {
  559. dev_err(&audio->gadget->dev,
  560. "%s:%d entity_id=%d control_selector=%d TODO!\n",
  561. __func__, __LINE__, entity_id, control_selector);
  562. usb_ep_set_halt(ep);
  563. }
  564. }
  565. static int
  566. out_rq_cur(struct usb_function *fn, const struct usb_ctrlrequest *cr)
  567. {
  568. struct usb_request *req = fn->config->cdev->req;
  569. struct g_audio *audio = func_to_g_audio(fn);
  570. struct f_uac1_opts *opts = g_audio_to_uac1_opts(audio);
  571. struct f_uac1 *uac1 = func_to_uac1(&audio->func);
  572. u16 w_length = le16_to_cpu(cr->wLength);
  573. u16 w_index = le16_to_cpu(cr->wIndex);
  574. u16 w_value = le16_to_cpu(cr->wValue);
  575. u8 entity_id = (w_index >> 8) & 0xff;
  576. u8 control_selector = w_value >> 8;
  577. if ((FUIN_EN(opts) && (entity_id == USB_IN_FU_ID)) ||
  578. (FUOUT_EN(opts) && (entity_id == USB_OUT_FU_ID))) {
  579. memcpy(&uac1->setup_cr, cr, sizeof(*cr));
  580. req->context = audio;
  581. req->complete = out_rq_cur_complete;
  582. return w_length;
  583. } else {
  584. dev_err(&audio->gadget->dev,
  585. "%s:%d entity_id=%d control_selector=%d TODO!\n",
  586. __func__, __LINE__, entity_id, control_selector);
  587. }
  588. return -EOPNOTSUPP;
  589. }
  590. static int ac_rq_in(struct usb_function *f,
  591. const struct usb_ctrlrequest *ctrl)
  592. {
  593. struct usb_composite_dev *cdev = f->config->cdev;
  594. int value = -EOPNOTSUPP;
  595. u8 ep = ((le16_to_cpu(ctrl->wIndex) >> 8) & 0xFF);
  596. u16 len = le16_to_cpu(ctrl->wLength);
  597. u16 w_value = le16_to_cpu(ctrl->wValue);
  598. DBG(cdev, "bRequest 0x%x, w_value 0x%04x, len %d, endpoint %d\n",
  599. ctrl->bRequest, w_value, len, ep);
  600. switch (ctrl->bRequest) {
  601. case UAC_GET_CUR:
  602. return in_rq_cur(f, ctrl);
  603. case UAC_GET_MIN:
  604. return in_rq_min(f, ctrl);
  605. case UAC_GET_MAX:
  606. return in_rq_max(f, ctrl);
  607. case UAC_GET_RES:
  608. return in_rq_res(f, ctrl);
  609. case UAC_GET_MEM:
  610. break;
  611. case UAC_GET_STAT:
  612. value = len;
  613. break;
  614. default:
  615. break;
  616. }
  617. return value;
  618. }
  619. static int audio_set_endpoint_req(struct usb_function *f,
  620. const struct usb_ctrlrequest *ctrl)
  621. {
  622. struct usb_composite_dev *cdev = f->config->cdev;
  623. struct usb_request *req = f->config->cdev->req;
  624. struct f_uac1 *uac1 = func_to_uac1(f);
  625. int value = -EOPNOTSUPP;
  626. u16 ep = le16_to_cpu(ctrl->wIndex);
  627. u16 len = le16_to_cpu(ctrl->wLength);
  628. u16 w_value = le16_to_cpu(ctrl->wValue);
  629. u8 cs = w_value >> 8;
  630. DBG(cdev, "bRequest 0x%x, w_value 0x%04x, len %d, endpoint %d\n",
  631. ctrl->bRequest, w_value, len, ep);
  632. switch (ctrl->bRequest) {
  633. case UAC_SET_CUR: {
  634. if (cs == UAC_EP_CS_ATTR_SAMPLE_RATE) {
  635. cdev->gadget->ep0->driver_data = f;
  636. uac1->ctl_id = ep;
  637. req->complete = uac_cs_attr_sample_rate;
  638. }
  639. value = len;
  640. break;
  641. }
  642. case UAC_SET_MIN:
  643. break;
  644. case UAC_SET_MAX:
  645. break;
  646. case UAC_SET_RES:
  647. break;
  648. case UAC_SET_MEM:
  649. break;
  650. default:
  651. break;
  652. }
  653. return value;
  654. }
  655. static int audio_get_endpoint_req(struct usb_function *f,
  656. const struct usb_ctrlrequest *ctrl)
  657. {
  658. struct usb_composite_dev *cdev = f->config->cdev;
  659. struct usb_request *req = f->config->cdev->req;
  660. struct f_uac1 *uac1 = func_to_uac1(f);
  661. u8 *buf = (u8 *)req->buf;
  662. int value = -EOPNOTSUPP;
  663. u8 ep = le16_to_cpu(ctrl->wIndex);
  664. u16 len = le16_to_cpu(ctrl->wLength);
  665. u16 w_value = le16_to_cpu(ctrl->wValue);
  666. u8 cs = w_value >> 8;
  667. u32 val = 0;
  668. DBG(cdev, "bRequest 0x%x, w_value 0x%04x, len %d, endpoint %d\n",
  669. ctrl->bRequest, w_value, len, ep);
  670. switch (ctrl->bRequest) {
  671. case UAC_GET_CUR: {
  672. if (cs == UAC_EP_CS_ATTR_SAMPLE_RATE) {
  673. if (ep == (USB_DIR_IN | 2))
  674. val = uac1->p_srate;
  675. else if (ep == (USB_DIR_OUT | 1))
  676. val = uac1->c_srate;
  677. buf[2] = (val >> 16) & 0xff;
  678. buf[1] = (val >> 8) & 0xff;
  679. buf[0] = val & 0xff;
  680. }
  681. value = len;
  682. break;
  683. }
  684. case UAC_GET_MIN:
  685. case UAC_GET_MAX:
  686. case UAC_GET_RES:
  687. value = len;
  688. break;
  689. case UAC_GET_MEM:
  690. break;
  691. default:
  692. break;
  693. }
  694. return value;
  695. }
  696. static int
  697. f_audio_setup(struct usb_function *f, const struct usb_ctrlrequest *ctrl)
  698. {
  699. struct usb_composite_dev *cdev = f->config->cdev;
  700. struct usb_request *req = cdev->req;
  701. int value = -EOPNOTSUPP;
  702. u16 w_index = le16_to_cpu(ctrl->wIndex);
  703. u16 w_value = le16_to_cpu(ctrl->wValue);
  704. u16 w_length = le16_to_cpu(ctrl->wLength);
  705. /* composite driver infrastructure handles everything; interface
  706. * activation uses set_alt().
  707. */
  708. switch (ctrl->bRequestType) {
  709. case USB_DIR_OUT | USB_TYPE_CLASS | USB_RECIP_ENDPOINT:
  710. value = audio_set_endpoint_req(f, ctrl);
  711. break;
  712. case USB_DIR_IN | USB_TYPE_CLASS | USB_RECIP_ENDPOINT:
  713. value = audio_get_endpoint_req(f, ctrl);
  714. break;
  715. case USB_DIR_OUT | USB_TYPE_CLASS | USB_RECIP_INTERFACE:
  716. if (ctrl->bRequest == UAC_SET_CUR)
  717. value = out_rq_cur(f, ctrl);
  718. break;
  719. case USB_DIR_IN | USB_TYPE_CLASS | USB_RECIP_INTERFACE:
  720. value = ac_rq_in(f, ctrl);
  721. break;
  722. default:
  723. ERROR(cdev, "invalid control req%02x.%02x v%04x i%04x l%d\n",
  724. ctrl->bRequestType, ctrl->bRequest,
  725. w_value, w_index, w_length);
  726. }
  727. /* respond with data transfer or status phase? */
  728. if (value >= 0) {
  729. DBG(cdev, "audio req%02x.%02x v%04x i%04x l%d\n",
  730. ctrl->bRequestType, ctrl->bRequest,
  731. w_value, w_index, w_length);
  732. req->zero = 0;
  733. req->length = value;
  734. value = usb_ep_queue(cdev->gadget->ep0, req, GFP_ATOMIC);
  735. if (value < 0)
  736. ERROR(cdev, "audio response on err %d\n", value);
  737. }
  738. /* device either stalls (value < 0) or reports success */
  739. return value;
  740. }
  741. static int f_audio_set_alt(struct usb_function *f, unsigned intf, unsigned alt)
  742. {
  743. struct usb_composite_dev *cdev = f->config->cdev;
  744. struct usb_gadget *gadget = cdev->gadget;
  745. struct device *dev = &gadget->dev;
  746. struct g_audio *audio = func_to_g_audio(f);
  747. struct f_uac1 *uac1 = func_to_uac1(f);
  748. int ret = 0;
  749. /* No i/f has more than 2 alt settings */
  750. if (alt > 1) {
  751. dev_err(dev, "%s:%d Error!\n", __func__, __LINE__);
  752. return -EINVAL;
  753. }
  754. if (intf == uac1->ac_intf) {
  755. /* Control I/f has only 1 AltSetting - 0 */
  756. if (alt) {
  757. dev_err(dev, "%s:%d Error!\n", __func__, __LINE__);
  758. return -EINVAL;
  759. }
  760. /* restart interrupt endpoint */
  761. if (uac1->int_ep) {
  762. usb_ep_disable(uac1->int_ep);
  763. config_ep_by_speed(gadget, &audio->func, uac1->int_ep);
  764. usb_ep_enable(uac1->int_ep);
  765. }
  766. return 0;
  767. }
  768. if (intf == uac1->as_out_intf) {
  769. uac1->as_out_alt = alt;
  770. if (alt)
  771. ret = u_audio_start_capture(&uac1->g_audio);
  772. else
  773. u_audio_stop_capture(&uac1->g_audio);
  774. } else if (intf == uac1->as_in_intf) {
  775. uac1->as_in_alt = alt;
  776. if (alt)
  777. ret = u_audio_start_playback(&uac1->g_audio);
  778. else
  779. u_audio_stop_playback(&uac1->g_audio);
  780. } else {
  781. dev_err(dev, "%s:%d Error!\n", __func__, __LINE__);
  782. return -EINVAL;
  783. }
  784. return ret;
  785. }
  786. static int f_audio_get_alt(struct usb_function *f, unsigned intf)
  787. {
  788. struct usb_composite_dev *cdev = f->config->cdev;
  789. struct usb_gadget *gadget = cdev->gadget;
  790. struct device *dev = &gadget->dev;
  791. struct f_uac1 *uac1 = func_to_uac1(f);
  792. if (intf == uac1->ac_intf)
  793. return uac1->ac_alt;
  794. else if (intf == uac1->as_out_intf)
  795. return uac1->as_out_alt;
  796. else if (intf == uac1->as_in_intf)
  797. return uac1->as_in_alt;
  798. else
  799. dev_err(dev, "%s:%d Invalid Interface %d!\n",
  800. __func__, __LINE__, intf);
  801. return -EINVAL;
  802. }
  803. static void f_audio_disable(struct usb_function *f)
  804. {
  805. struct f_uac1 *uac1 = func_to_uac1(f);
  806. uac1->as_out_alt = 0;
  807. uac1->as_in_alt = 0;
  808. u_audio_stop_playback(&uac1->g_audio);
  809. u_audio_stop_capture(&uac1->g_audio);
  810. if (uac1->int_ep)
  811. usb_ep_disable(uac1->int_ep);
  812. }
  813. static void
  814. f_audio_suspend(struct usb_function *f)
  815. {
  816. struct f_uac1 *uac1 = func_to_uac1(f);
  817. u_audio_suspend(&uac1->g_audio);
  818. }
  819. /*-------------------------------------------------------------------------*/
  820. static struct uac_feature_unit_descriptor *build_fu_desc(int chmask)
  821. {
  822. struct uac_feature_unit_descriptor *fu_desc;
  823. int channels = num_channels(chmask);
  824. int fu_desc_size = UAC_DT_FEATURE_UNIT_SIZE(channels);
  825. fu_desc = kzalloc(fu_desc_size, GFP_KERNEL);
  826. if (!fu_desc)
  827. return NULL;
  828. fu_desc->bLength = fu_desc_size;
  829. fu_desc->bDescriptorType = USB_DT_CS_INTERFACE;
  830. fu_desc->bDescriptorSubtype = UAC_FEATURE_UNIT;
  831. fu_desc->bControlSize = 2;
  832. /* bUnitID, bSourceID and bmaControls will be defined later */
  833. return fu_desc;
  834. }
  835. /* B.3.2 Class-Specific AC Interface Descriptor */
  836. static struct
  837. uac1_ac_header_descriptor *build_ac_header_desc(struct f_uac1_opts *opts)
  838. {
  839. struct uac1_ac_header_descriptor *ac_desc;
  840. int ac_header_desc_size;
  841. int num_ifaces = 0;
  842. if (EPOUT_EN(opts))
  843. num_ifaces++;
  844. if (EPIN_EN(opts))
  845. num_ifaces++;
  846. ac_header_desc_size = UAC_DT_AC_HEADER_SIZE(num_ifaces);
  847. ac_desc = kzalloc(ac_header_desc_size, GFP_KERNEL);
  848. if (!ac_desc)
  849. return NULL;
  850. ac_desc->bLength = ac_header_desc_size;
  851. ac_desc->bDescriptorType = USB_DT_CS_INTERFACE;
  852. ac_desc->bDescriptorSubtype = UAC_HEADER;
  853. ac_desc->bcdADC = cpu_to_le16(0x0100);
  854. ac_desc->bInCollection = num_ifaces;
  855. /* wTotalLength and baInterfaceNr will be defined later */
  856. return ac_desc;
  857. }
  858. /* Use macro to overcome line length limitation */
  859. #define USBDHDR(p) (struct usb_descriptor_header *)(p)
  860. static void setup_descriptor(struct f_uac1_opts *opts)
  861. {
  862. /* patch descriptors */
  863. int i = 1; /* ID's start with 1 */
  864. if (EPOUT_EN(opts))
  865. usb_out_it_desc.bTerminalID = i++;
  866. if (EPIN_EN(opts))
  867. io_in_it_desc.bTerminalID = i++;
  868. if (EPOUT_EN(opts))
  869. io_out_ot_desc.bTerminalID = i++;
  870. if (EPIN_EN(opts))
  871. usb_in_ot_desc.bTerminalID = i++;
  872. if (FUOUT_EN(opts))
  873. out_feature_unit_desc->bUnitID = i++;
  874. if (FUIN_EN(opts))
  875. in_feature_unit_desc->bUnitID = i++;
  876. if (FUIN_EN(opts)) {
  877. usb_in_ot_desc.bSourceID = in_feature_unit_desc->bUnitID;
  878. in_feature_unit_desc->bSourceID = io_in_it_desc.bTerminalID;
  879. } else {
  880. usb_in_ot_desc.bSourceID = io_in_it_desc.bTerminalID;
  881. }
  882. if (FUOUT_EN(opts)) {
  883. io_out_ot_desc.bSourceID = out_feature_unit_desc->bUnitID;
  884. out_feature_unit_desc->bSourceID = usb_out_it_desc.bTerminalID;
  885. } else {
  886. io_out_ot_desc.bSourceID = usb_out_it_desc.bTerminalID;
  887. }
  888. as_out_header_desc.bTerminalLink = usb_out_it_desc.bTerminalID;
  889. as_in_header_desc.bTerminalLink = usb_in_ot_desc.bTerminalID;
  890. ac_header_desc->wTotalLength = cpu_to_le16(ac_header_desc->bLength);
  891. if (EPIN_EN(opts)) {
  892. u16 len = le16_to_cpu(ac_header_desc->wTotalLength);
  893. len += sizeof(usb_in_ot_desc);
  894. len += sizeof(io_in_it_desc);
  895. if (FUIN_EN(opts))
  896. len += in_feature_unit_desc->bLength;
  897. ac_header_desc->wTotalLength = cpu_to_le16(len);
  898. }
  899. if (EPOUT_EN(opts)) {
  900. u16 len = le16_to_cpu(ac_header_desc->wTotalLength);
  901. len += sizeof(usb_out_it_desc);
  902. len += sizeof(io_out_ot_desc);
  903. if (FUOUT_EN(opts))
  904. len += out_feature_unit_desc->bLength;
  905. ac_header_desc->wTotalLength = cpu_to_le16(len);
  906. }
  907. i = 0;
  908. f_audio_desc[i++] = USBDHDR(&ac_interface_desc);
  909. f_audio_desc[i++] = USBDHDR(ac_header_desc);
  910. if (EPOUT_EN(opts)) {
  911. f_audio_desc[i++] = USBDHDR(&usb_out_it_desc);
  912. f_audio_desc[i++] = USBDHDR(&io_out_ot_desc);
  913. if (FUOUT_EN(opts))
  914. f_audio_desc[i++] = USBDHDR(out_feature_unit_desc);
  915. }
  916. if (EPIN_EN(opts)) {
  917. f_audio_desc[i++] = USBDHDR(&io_in_it_desc);
  918. f_audio_desc[i++] = USBDHDR(&usb_in_ot_desc);
  919. if (FUIN_EN(opts))
  920. f_audio_desc[i++] = USBDHDR(in_feature_unit_desc);
  921. }
  922. if (FUOUT_EN(opts) || FUIN_EN(opts))
  923. f_audio_desc[i++] = USBDHDR(&ac_int_ep_desc);
  924. if (EPOUT_EN(opts)) {
  925. f_audio_desc[i++] = USBDHDR(&as_out_interface_alt_0_desc);
  926. f_audio_desc[i++] = USBDHDR(&as_out_interface_alt_1_desc);
  927. f_audio_desc[i++] = USBDHDR(&as_out_header_desc);
  928. f_audio_desc[i++] = USBDHDR(&as_out_type_i_desc);
  929. f_audio_desc[i++] = USBDHDR(&as_out_ep_desc);
  930. f_audio_desc[i++] = USBDHDR(&as_iso_out_desc);
  931. }
  932. if (EPIN_EN(opts)) {
  933. f_audio_desc[i++] = USBDHDR(&as_in_interface_alt_0_desc);
  934. f_audio_desc[i++] = USBDHDR(&as_in_interface_alt_1_desc);
  935. f_audio_desc[i++] = USBDHDR(&as_in_header_desc);
  936. f_audio_desc[i++] = USBDHDR(&as_in_type_i_desc);
  937. f_audio_desc[i++] = USBDHDR(&as_in_ep_desc);
  938. f_audio_desc[i++] = USBDHDR(&as_iso_in_desc);
  939. }
  940. f_audio_desc[i] = NULL;
  941. }
  942. static int f_audio_validate_opts(struct g_audio *audio, struct device *dev)
  943. {
  944. struct f_uac1_opts *opts = g_audio_to_uac1_opts(audio);
  945. if (!opts->p_chmask && !opts->c_chmask) {
  946. dev_err(dev, "Error: no playback and capture channels\n");
  947. return -EINVAL;
  948. } else if (opts->p_chmask & ~UAC1_CHANNEL_MASK) {
  949. dev_err(dev, "Error: unsupported playback channels mask\n");
  950. return -EINVAL;
  951. } else if (opts->c_chmask & ~UAC1_CHANNEL_MASK) {
  952. dev_err(dev, "Error: unsupported capture channels mask\n");
  953. return -EINVAL;
  954. } else if ((opts->p_ssize < 1) || (opts->p_ssize > 4)) {
  955. dev_err(dev, "Error: incorrect playback sample size\n");
  956. return -EINVAL;
  957. } else if ((opts->c_ssize < 1) || (opts->c_ssize > 4)) {
  958. dev_err(dev, "Error: incorrect capture sample size\n");
  959. return -EINVAL;
  960. } else if (!opts->p_srates[0]) {
  961. dev_err(dev, "Error: incorrect playback sampling rate\n");
  962. return -EINVAL;
  963. } else if (!opts->c_srates[0]) {
  964. dev_err(dev, "Error: incorrect capture sampling rate\n");
  965. return -EINVAL;
  966. }
  967. if (opts->p_volume_max <= opts->p_volume_min) {
  968. dev_err(dev, "Error: incorrect playback volume max/min\n");
  969. return -EINVAL;
  970. } else if (opts->c_volume_max <= opts->c_volume_min) {
  971. dev_err(dev, "Error: incorrect capture volume max/min\n");
  972. return -EINVAL;
  973. } else if (opts->p_volume_res <= 0) {
  974. dev_err(dev, "Error: negative/zero playback volume resolution\n");
  975. return -EINVAL;
  976. } else if (opts->c_volume_res <= 0) {
  977. dev_err(dev, "Error: negative/zero capture volume resolution\n");
  978. return -EINVAL;
  979. }
  980. if ((opts->p_volume_max - opts->p_volume_min) % opts->p_volume_res) {
  981. dev_err(dev, "Error: incorrect playback volume resolution\n");
  982. return -EINVAL;
  983. } else if ((opts->c_volume_max - opts->c_volume_min) % opts->c_volume_res) {
  984. dev_err(dev, "Error: incorrect capture volume resolution\n");
  985. return -EINVAL;
  986. }
  987. return 0;
  988. }
  989. /* audio function driver setup/binding */
  990. static int f_audio_bind(struct usb_configuration *c, struct usb_function *f)
  991. {
  992. struct usb_composite_dev *cdev = c->cdev;
  993. struct usb_gadget *gadget = cdev->gadget;
  994. struct device *dev = &gadget->dev;
  995. struct f_uac1 *uac1 = func_to_uac1(f);
  996. struct g_audio *audio = func_to_g_audio(f);
  997. struct f_uac1_opts *audio_opts;
  998. struct usb_ep *ep = NULL;
  999. struct usb_string *us;
  1000. int ba_iface_id;
  1001. int status;
  1002. int idx, i;
  1003. status = f_audio_validate_opts(audio, dev);
  1004. if (status)
  1005. return status;
  1006. audio_opts = container_of(f->fi, struct f_uac1_opts, func_inst);
  1007. strings_uac1[STR_AC_IF].s = audio_opts->function_name;
  1008. us = usb_gstrings_attach(cdev, uac1_strings, ARRAY_SIZE(strings_uac1));
  1009. if (IS_ERR(us))
  1010. return PTR_ERR(us);
  1011. ac_header_desc = build_ac_header_desc(audio_opts);
  1012. if (!ac_header_desc)
  1013. return -ENOMEM;
  1014. if (FUOUT_EN(audio_opts)) {
  1015. out_feature_unit_desc = build_fu_desc(audio_opts->c_chmask);
  1016. if (!out_feature_unit_desc) {
  1017. status = -ENOMEM;
  1018. goto fail;
  1019. }
  1020. }
  1021. if (FUIN_EN(audio_opts)) {
  1022. in_feature_unit_desc = build_fu_desc(audio_opts->p_chmask);
  1023. if (!in_feature_unit_desc) {
  1024. status = -ENOMEM;
  1025. goto err_free_fu;
  1026. }
  1027. }
  1028. ac_interface_desc.iInterface = us[STR_AC_IF].id;
  1029. usb_out_it_desc.iTerminal = us[STR_USB_OUT_IT].id;
  1030. usb_out_it_desc.iChannelNames = us[STR_USB_OUT_IT_CH_NAMES].id;
  1031. io_out_ot_desc.iTerminal = us[STR_IO_OUT_OT].id;
  1032. as_out_interface_alt_0_desc.iInterface = us[STR_AS_OUT_IF_ALT0].id;
  1033. as_out_interface_alt_1_desc.iInterface = us[STR_AS_OUT_IF_ALT1].id;
  1034. io_in_it_desc.iTerminal = us[STR_IO_IN_IT].id;
  1035. io_in_it_desc.iChannelNames = us[STR_IO_IN_IT_CH_NAMES].id;
  1036. usb_in_ot_desc.iTerminal = us[STR_USB_IN_OT].id;
  1037. as_in_interface_alt_0_desc.iInterface = us[STR_AS_IN_IF_ALT0].id;
  1038. as_in_interface_alt_1_desc.iInterface = us[STR_AS_IN_IF_ALT1].id;
  1039. if (FUOUT_EN(audio_opts)) {
  1040. u8 *i_feature;
  1041. i_feature = (u8 *)out_feature_unit_desc +
  1042. out_feature_unit_desc->bLength - 1;
  1043. *i_feature = us[STR_FU_OUT].id;
  1044. }
  1045. if (FUIN_EN(audio_opts)) {
  1046. u8 *i_feature;
  1047. i_feature = (u8 *)in_feature_unit_desc +
  1048. in_feature_unit_desc->bLength - 1;
  1049. *i_feature = us[STR_FU_IN].id;
  1050. }
  1051. /* Set channel numbers */
  1052. usb_out_it_desc.bNrChannels = num_channels(audio_opts->c_chmask);
  1053. usb_out_it_desc.wChannelConfig = cpu_to_le16(audio_opts->c_chmask);
  1054. as_out_type_i_desc.bNrChannels = num_channels(audio_opts->c_chmask);
  1055. as_out_type_i_desc.bSubframeSize = audio_opts->c_ssize;
  1056. as_out_type_i_desc.bBitResolution = audio_opts->c_ssize * 8;
  1057. io_in_it_desc.bNrChannels = num_channels(audio_opts->p_chmask);
  1058. io_in_it_desc.wChannelConfig = cpu_to_le16(audio_opts->p_chmask);
  1059. as_in_type_i_desc.bNrChannels = num_channels(audio_opts->p_chmask);
  1060. as_in_type_i_desc.bSubframeSize = audio_opts->p_ssize;
  1061. as_in_type_i_desc.bBitResolution = audio_opts->p_ssize * 8;
  1062. if (FUOUT_EN(audio_opts)) {
  1063. __le16 *bma = (__le16 *)&out_feature_unit_desc->bmaControls[0];
  1064. u32 control = 0;
  1065. if (audio_opts->c_mute_present)
  1066. control |= UAC_FU_MUTE;
  1067. if (audio_opts->c_volume_present)
  1068. control |= UAC_FU_VOLUME;
  1069. *bma = cpu_to_le16(control);
  1070. }
  1071. if (FUIN_EN(audio_opts)) {
  1072. __le16 *bma = (__le16 *)&in_feature_unit_desc->bmaControls[0];
  1073. u32 control = 0;
  1074. if (audio_opts->p_mute_present)
  1075. control |= UAC_FU_MUTE;
  1076. if (audio_opts->p_volume_present)
  1077. control |= UAC_FU_VOLUME;
  1078. *bma = cpu_to_le16(control);
  1079. }
  1080. /* Set sample rates */
  1081. for (i = 0, idx = 0; i < UAC_MAX_RATES; i++) {
  1082. if (audio_opts->c_srates[i] == 0)
  1083. break;
  1084. memcpy(as_out_type_i_desc.tSamFreq[idx++],
  1085. &audio_opts->c_srates[i], 3);
  1086. }
  1087. as_out_type_i_desc.bLength = UAC_FORMAT_TYPE_I_DISCRETE_DESC_SIZE(idx);
  1088. as_out_type_i_desc.bSamFreqType = idx;
  1089. for (i = 0, idx = 0; i < UAC_MAX_RATES; i++) {
  1090. if (audio_opts->p_srates[i] == 0)
  1091. break;
  1092. memcpy(as_in_type_i_desc.tSamFreq[idx++],
  1093. &audio_opts->p_srates[i], 3);
  1094. }
  1095. as_in_type_i_desc.bLength = UAC_FORMAT_TYPE_I_DISCRETE_DESC_SIZE(idx);
  1096. as_in_type_i_desc.bSamFreqType = idx;
  1097. uac1->p_srate = audio_opts->p_srates[0];
  1098. uac1->c_srate = audio_opts->c_srates[0];
  1099. /* allocate instance-specific interface IDs, and patch descriptors */
  1100. status = usb_interface_id(c, f);
  1101. if (status < 0)
  1102. goto err_free_fu;
  1103. ac_interface_desc.bInterfaceNumber = status;
  1104. uac1->ac_intf = status;
  1105. uac1->ac_alt = 0;
  1106. ba_iface_id = 0;
  1107. if (EPOUT_EN(audio_opts)) {
  1108. status = usb_interface_id(c, f);
  1109. if (status < 0)
  1110. goto err_free_fu;
  1111. as_out_interface_alt_0_desc.bInterfaceNumber = status;
  1112. as_out_interface_alt_1_desc.bInterfaceNumber = status;
  1113. ac_header_desc->baInterfaceNr[ba_iface_id++] = status;
  1114. uac1->as_out_intf = status;
  1115. uac1->as_out_alt = 0;
  1116. }
  1117. if (EPIN_EN(audio_opts)) {
  1118. status = usb_interface_id(c, f);
  1119. if (status < 0)
  1120. goto err_free_fu;
  1121. as_in_interface_alt_0_desc.bInterfaceNumber = status;
  1122. as_in_interface_alt_1_desc.bInterfaceNumber = status;
  1123. ac_header_desc->baInterfaceNr[ba_iface_id++] = status;
  1124. uac1->as_in_intf = status;
  1125. uac1->as_in_alt = 0;
  1126. }
  1127. audio->gadget = gadget;
  1128. status = -ENODEV;
  1129. ac_interface_desc.bNumEndpoints = 0;
  1130. /* allocate AC interrupt endpoint */
  1131. if (FUOUT_EN(audio_opts) || FUIN_EN(audio_opts)) {
  1132. ep = usb_ep_autoconfig(cdev->gadget, &ac_int_ep_desc);
  1133. if (!ep)
  1134. goto err_free_fu;
  1135. uac1->int_ep = ep;
  1136. uac1->int_ep->desc = &ac_int_ep_desc;
  1137. ac_interface_desc.bNumEndpoints = 1;
  1138. }
  1139. /* allocate instance-specific endpoints */
  1140. if (EPOUT_EN(audio_opts)) {
  1141. ep = usb_ep_autoconfig(cdev->gadget, &as_out_ep_desc);
  1142. if (!ep)
  1143. goto err_free_fu;
  1144. audio->out_ep = ep;
  1145. audio->out_ep->desc = &as_out_ep_desc;
  1146. }
  1147. if (EPIN_EN(audio_opts)) {
  1148. ep = usb_ep_autoconfig(cdev->gadget, &as_in_ep_desc);
  1149. if (!ep)
  1150. goto err_free_fu;
  1151. audio->in_ep = ep;
  1152. audio->in_ep->desc = &as_in_ep_desc;
  1153. }
  1154. setup_descriptor(audio_opts);
  1155. /* copy descriptors, and track endpoint copies */
  1156. status = usb_assign_descriptors(f, f_audio_desc, f_audio_desc, NULL,
  1157. NULL);
  1158. if (status)
  1159. goto err_free_fu;
  1160. audio->out_ep_maxpsize = le16_to_cpu(as_out_ep_desc.wMaxPacketSize);
  1161. audio->in_ep_maxpsize = le16_to_cpu(as_in_ep_desc.wMaxPacketSize);
  1162. audio->params.c_chmask = audio_opts->c_chmask;
  1163. memcpy(audio->params.c_srates, audio_opts->c_srates,
  1164. sizeof(audio->params.c_srates));
  1165. audio->params.c_ssize = audio_opts->c_ssize;
  1166. if (FUIN_EN(audio_opts)) {
  1167. audio->params.p_fu.id = USB_IN_FU_ID;
  1168. audio->params.p_fu.mute_present = audio_opts->p_mute_present;
  1169. audio->params.p_fu.volume_present =
  1170. audio_opts->p_volume_present;
  1171. audio->params.p_fu.volume_min = audio_opts->p_volume_min;
  1172. audio->params.p_fu.volume_max = audio_opts->p_volume_max;
  1173. audio->params.p_fu.volume_res = audio_opts->p_volume_res;
  1174. }
  1175. audio->params.p_chmask = audio_opts->p_chmask;
  1176. memcpy(audio->params.p_srates, audio_opts->p_srates,
  1177. sizeof(audio->params.p_srates));
  1178. audio->params.p_ssize = audio_opts->p_ssize;
  1179. if (FUOUT_EN(audio_opts)) {
  1180. audio->params.c_fu.id = USB_OUT_FU_ID;
  1181. audio->params.c_fu.mute_present = audio_opts->c_mute_present;
  1182. audio->params.c_fu.volume_present =
  1183. audio_opts->c_volume_present;
  1184. audio->params.c_fu.volume_min = audio_opts->c_volume_min;
  1185. audio->params.c_fu.volume_max = audio_opts->c_volume_max;
  1186. audio->params.c_fu.volume_res = audio_opts->c_volume_res;
  1187. }
  1188. audio->params.req_number = audio_opts->req_number;
  1189. audio->params.fb_max = FBACK_FAST_MAX;
  1190. if (FUOUT_EN(audio_opts) || FUIN_EN(audio_opts))
  1191. audio->notify = audio_notify;
  1192. status = g_audio_setup(audio, "UAC1_PCM", "UAC1_Gadget");
  1193. if (status)
  1194. goto err_card_register;
  1195. return 0;
  1196. err_card_register:
  1197. usb_free_all_descriptors(f);
  1198. err_free_fu:
  1199. kfree(out_feature_unit_desc);
  1200. out_feature_unit_desc = NULL;
  1201. kfree(in_feature_unit_desc);
  1202. in_feature_unit_desc = NULL;
  1203. fail:
  1204. kfree(ac_header_desc);
  1205. ac_header_desc = NULL;
  1206. return status;
  1207. }
  1208. /*-------------------------------------------------------------------------*/
  1209. static inline struct f_uac1_opts *to_f_uac1_opts(struct config_item *item)
  1210. {
  1211. return container_of(to_config_group(item), struct f_uac1_opts,
  1212. func_inst.group);
  1213. }
  1214. static void f_uac1_attr_release(struct config_item *item)
  1215. {
  1216. struct f_uac1_opts *opts = to_f_uac1_opts(item);
  1217. usb_put_function_instance(&opts->func_inst);
  1218. }
  1219. static struct configfs_item_operations f_uac1_item_ops = {
  1220. .release = f_uac1_attr_release,
  1221. };
  1222. #define uac1_kstrtou32 kstrtou32
  1223. #define uac1_kstrtos16 kstrtos16
  1224. #define uac1_kstrtobool(s, base, res) kstrtobool((s), (res))
  1225. static const char *u32_fmt = "%u\n";
  1226. static const char *s16_fmt = "%hd\n";
  1227. static const char *bool_fmt = "%u\n";
  1228. #define UAC1_ATTRIBUTE(type, name) \
  1229. static ssize_t f_uac1_opts_##name##_show( \
  1230. struct config_item *item, \
  1231. char *page) \
  1232. { \
  1233. struct f_uac1_opts *opts = to_f_uac1_opts(item); \
  1234. int result; \
  1235. \
  1236. mutex_lock(&opts->lock); \
  1237. result = sprintf(page, type##_fmt, opts->name); \
  1238. mutex_unlock(&opts->lock); \
  1239. \
  1240. return result; \
  1241. } \
  1242. \
  1243. static ssize_t f_uac1_opts_##name##_store( \
  1244. struct config_item *item, \
  1245. const char *page, size_t len) \
  1246. { \
  1247. struct f_uac1_opts *opts = to_f_uac1_opts(item); \
  1248. int ret; \
  1249. type num; \
  1250. \
  1251. mutex_lock(&opts->lock); \
  1252. if (opts->refcnt) { \
  1253. ret = -EBUSY; \
  1254. goto end; \
  1255. } \
  1256. \
  1257. ret = uac1_kstrto##type(page, 0, &num); \
  1258. if (ret) \
  1259. goto end; \
  1260. \
  1261. opts->name = num; \
  1262. ret = len; \
  1263. \
  1264. end: \
  1265. mutex_unlock(&opts->lock); \
  1266. return ret; \
  1267. } \
  1268. \
  1269. CONFIGFS_ATTR(f_uac1_opts_, name)
  1270. #define UAC1_RATE_ATTRIBUTE(name) \
  1271. static ssize_t f_uac1_opts_##name##_show(struct config_item *item, \
  1272. char *page) \
  1273. { \
  1274. struct f_uac1_opts *opts = to_f_uac1_opts(item); \
  1275. int result = 0; \
  1276. int i; \
  1277. \
  1278. mutex_lock(&opts->lock); \
  1279. page[0] = '\0'; \
  1280. for (i = 0; i < UAC_MAX_RATES; i++) { \
  1281. if (opts->name##s[i] == 0) \
  1282. break; \
  1283. result += sprintf(page + strlen(page), "%u,", \
  1284. opts->name##s[i]); \
  1285. } \
  1286. if (strlen(page) > 0) \
  1287. page[strlen(page) - 1] = '\n'; \
  1288. mutex_unlock(&opts->lock); \
  1289. \
  1290. return result; \
  1291. } \
  1292. \
  1293. static ssize_t f_uac1_opts_##name##_store(struct config_item *item, \
  1294. const char *page, size_t len) \
  1295. { \
  1296. struct f_uac1_opts *opts = to_f_uac1_opts(item); \
  1297. char *split_page = NULL; \
  1298. int ret = -EINVAL; \
  1299. char *token; \
  1300. u32 num; \
  1301. int i; \
  1302. \
  1303. mutex_lock(&opts->lock); \
  1304. if (opts->refcnt) { \
  1305. ret = -EBUSY; \
  1306. goto end; \
  1307. } \
  1308. \
  1309. i = 0; \
  1310. memset(opts->name##s, 0x00, sizeof(opts->name##s)); \
  1311. split_page = kstrdup(page, GFP_KERNEL); \
  1312. while ((token = strsep(&split_page, ",")) != NULL) { \
  1313. ret = kstrtou32(token, 0, &num); \
  1314. if (ret) \
  1315. goto end; \
  1316. \
  1317. opts->name##s[i++] = num; \
  1318. ret = len; \
  1319. }; \
  1320. \
  1321. end: \
  1322. kfree(split_page); \
  1323. mutex_unlock(&opts->lock); \
  1324. return ret; \
  1325. } \
  1326. \
  1327. CONFIGFS_ATTR(f_uac1_opts_, name)
  1328. #define UAC1_ATTRIBUTE_STRING(name) \
  1329. static ssize_t f_uac1_opts_##name##_show(struct config_item *item, \
  1330. char *page) \
  1331. { \
  1332. struct f_uac1_opts *opts = to_f_uac1_opts(item); \
  1333. int result; \
  1334. \
  1335. mutex_lock(&opts->lock); \
  1336. result = snprintf(page, sizeof(opts->name), "%s", opts->name); \
  1337. mutex_unlock(&opts->lock); \
  1338. \
  1339. return result; \
  1340. } \
  1341. \
  1342. static ssize_t f_uac1_opts_##name##_store(struct config_item *item, \
  1343. const char *page, size_t len) \
  1344. { \
  1345. struct f_uac1_opts *opts = to_f_uac1_opts(item); \
  1346. int ret = 0; \
  1347. \
  1348. mutex_lock(&opts->lock); \
  1349. if (opts->refcnt) { \
  1350. ret = -EBUSY; \
  1351. goto end; \
  1352. } \
  1353. \
  1354. ret = snprintf(opts->name, min(sizeof(opts->name), len), \
  1355. "%s", page); \
  1356. \
  1357. end: \
  1358. mutex_unlock(&opts->lock); \
  1359. return ret; \
  1360. } \
  1361. \
  1362. CONFIGFS_ATTR(f_uac1_opts_, name)
  1363. UAC1_ATTRIBUTE(u32, c_chmask);
  1364. UAC1_RATE_ATTRIBUTE(c_srate);
  1365. UAC1_ATTRIBUTE(u32, c_ssize);
  1366. UAC1_ATTRIBUTE(u32, p_chmask);
  1367. UAC1_RATE_ATTRIBUTE(p_srate);
  1368. UAC1_ATTRIBUTE(u32, p_ssize);
  1369. UAC1_ATTRIBUTE(u32, req_number);
  1370. UAC1_ATTRIBUTE(bool, p_mute_present);
  1371. UAC1_ATTRIBUTE(bool, p_volume_present);
  1372. UAC1_ATTRIBUTE(s16, p_volume_min);
  1373. UAC1_ATTRIBUTE(s16, p_volume_max);
  1374. UAC1_ATTRIBUTE(s16, p_volume_res);
  1375. UAC1_ATTRIBUTE(bool, c_mute_present);
  1376. UAC1_ATTRIBUTE(bool, c_volume_present);
  1377. UAC1_ATTRIBUTE(s16, c_volume_min);
  1378. UAC1_ATTRIBUTE(s16, c_volume_max);
  1379. UAC1_ATTRIBUTE(s16, c_volume_res);
  1380. UAC1_ATTRIBUTE_STRING(function_name);
  1381. static struct configfs_attribute *f_uac1_attrs[] = {
  1382. &f_uac1_opts_attr_c_chmask,
  1383. &f_uac1_opts_attr_c_srate,
  1384. &f_uac1_opts_attr_c_ssize,
  1385. &f_uac1_opts_attr_p_chmask,
  1386. &f_uac1_opts_attr_p_srate,
  1387. &f_uac1_opts_attr_p_ssize,
  1388. &f_uac1_opts_attr_req_number,
  1389. &f_uac1_opts_attr_p_mute_present,
  1390. &f_uac1_opts_attr_p_volume_present,
  1391. &f_uac1_opts_attr_p_volume_min,
  1392. &f_uac1_opts_attr_p_volume_max,
  1393. &f_uac1_opts_attr_p_volume_res,
  1394. &f_uac1_opts_attr_c_mute_present,
  1395. &f_uac1_opts_attr_c_volume_present,
  1396. &f_uac1_opts_attr_c_volume_min,
  1397. &f_uac1_opts_attr_c_volume_max,
  1398. &f_uac1_opts_attr_c_volume_res,
  1399. &f_uac1_opts_attr_function_name,
  1400. NULL,
  1401. };
  1402. static const struct config_item_type f_uac1_func_type = {
  1403. .ct_item_ops = &f_uac1_item_ops,
  1404. .ct_attrs = f_uac1_attrs,
  1405. .ct_owner = THIS_MODULE,
  1406. };
  1407. static void f_audio_free_inst(struct usb_function_instance *f)
  1408. {
  1409. struct f_uac1_opts *opts;
  1410. opts = container_of(f, struct f_uac1_opts, func_inst);
  1411. kfree(opts);
  1412. }
  1413. static struct usb_function_instance *f_audio_alloc_inst(void)
  1414. {
  1415. struct f_uac1_opts *opts;
  1416. opts = kzalloc(sizeof(*opts), GFP_KERNEL);
  1417. if (!opts)
  1418. return ERR_PTR(-ENOMEM);
  1419. mutex_init(&opts->lock);
  1420. opts->func_inst.free_func_inst = f_audio_free_inst;
  1421. config_group_init_type_name(&opts->func_inst.group, "",
  1422. &f_uac1_func_type);
  1423. opts->c_chmask = UAC1_DEF_CCHMASK;
  1424. opts->c_srates[0] = UAC1_DEF_CSRATE;
  1425. opts->c_ssize = UAC1_DEF_CSSIZE;
  1426. opts->p_chmask = UAC1_DEF_PCHMASK;
  1427. opts->p_srates[0] = UAC1_DEF_PSRATE;
  1428. opts->p_ssize = UAC1_DEF_PSSIZE;
  1429. opts->p_mute_present = UAC1_DEF_MUTE_PRESENT;
  1430. opts->p_volume_present = UAC1_DEF_VOLUME_PRESENT;
  1431. opts->p_volume_min = UAC1_DEF_MIN_DB;
  1432. opts->p_volume_max = UAC1_DEF_MAX_DB;
  1433. opts->p_volume_res = UAC1_DEF_RES_DB;
  1434. opts->c_mute_present = UAC1_DEF_MUTE_PRESENT;
  1435. opts->c_volume_present = UAC1_DEF_VOLUME_PRESENT;
  1436. opts->c_volume_min = UAC1_DEF_MIN_DB;
  1437. opts->c_volume_max = UAC1_DEF_MAX_DB;
  1438. opts->c_volume_res = UAC1_DEF_RES_DB;
  1439. opts->req_number = UAC1_DEF_REQ_NUM;
  1440. snprintf(opts->function_name, sizeof(opts->function_name), "AC Interface");
  1441. return &opts->func_inst;
  1442. }
  1443. static void f_audio_free(struct usb_function *f)
  1444. {
  1445. struct g_audio *audio;
  1446. struct f_uac1_opts *opts;
  1447. audio = func_to_g_audio(f);
  1448. opts = container_of(f->fi, struct f_uac1_opts, func_inst);
  1449. kfree(audio);
  1450. mutex_lock(&opts->lock);
  1451. --opts->refcnt;
  1452. mutex_unlock(&opts->lock);
  1453. }
  1454. static void f_audio_unbind(struct usb_configuration *c, struct usb_function *f)
  1455. {
  1456. struct g_audio *audio = func_to_g_audio(f);
  1457. g_audio_cleanup(audio);
  1458. usb_free_all_descriptors(f);
  1459. kfree(out_feature_unit_desc);
  1460. out_feature_unit_desc = NULL;
  1461. kfree(in_feature_unit_desc);
  1462. in_feature_unit_desc = NULL;
  1463. kfree(ac_header_desc);
  1464. ac_header_desc = NULL;
  1465. audio->gadget = NULL;
  1466. }
  1467. static struct usb_function *f_audio_alloc(struct usb_function_instance *fi)
  1468. {
  1469. struct f_uac1 *uac1;
  1470. struct f_uac1_opts *opts;
  1471. /* allocate and initialize one new instance */
  1472. uac1 = kzalloc(sizeof(*uac1), GFP_KERNEL);
  1473. if (!uac1)
  1474. return ERR_PTR(-ENOMEM);
  1475. opts = container_of(fi, struct f_uac1_opts, func_inst);
  1476. mutex_lock(&opts->lock);
  1477. ++opts->refcnt;
  1478. mutex_unlock(&opts->lock);
  1479. uac1->g_audio.func.name = "uac1_func";
  1480. uac1->g_audio.func.bind = f_audio_bind;
  1481. uac1->g_audio.func.unbind = f_audio_unbind;
  1482. uac1->g_audio.func.set_alt = f_audio_set_alt;
  1483. uac1->g_audio.func.get_alt = f_audio_get_alt;
  1484. uac1->g_audio.func.setup = f_audio_setup;
  1485. uac1->g_audio.func.disable = f_audio_disable;
  1486. uac1->g_audio.func.suspend = f_audio_suspend;
  1487. uac1->g_audio.func.free_func = f_audio_free;
  1488. return &uac1->g_audio.func;
  1489. }
  1490. DECLARE_USB_FUNCTION_INIT(uac1, f_audio_alloc_inst, f_audio_alloc);
  1491. MODULE_LICENSE("GPL");
  1492. MODULE_AUTHOR("Ruslan Bilovol");