f_midi.c 33 KB

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  1. // SPDX-License-Identifier: GPL-2.0+
  2. /*
  3. * f_midi.c -- USB MIDI class function driver
  4. *
  5. * Copyright (C) 2006 Thumtronics Pty Ltd.
  6. * Developed for Thumtronics by Grey Innovation
  7. * Ben Williamson <ben.williamson@greyinnovation.com>
  8. *
  9. * Rewritten for the composite framework
  10. * Copyright (C) 2011 Daniel Mack <zonque@gmail.com>
  11. *
  12. * Based on drivers/usb/gadget/f_audio.c,
  13. * Copyright (C) 2008 Bryan Wu <cooloney@kernel.org>
  14. * Copyright (C) 2008 Analog Devices, Inc
  15. *
  16. * and drivers/usb/gadget/midi.c,
  17. * Copyright (C) 2006 Thumtronics Pty Ltd.
  18. * Ben Williamson <ben.williamson@greyinnovation.com>
  19. */
  20. #include <linux/kernel.h>
  21. #include <linux/module.h>
  22. #include <linux/slab.h>
  23. #include <linux/device.h>
  24. #include <linux/kfifo.h>
  25. #include <linux/spinlock.h>
  26. #include <sound/core.h>
  27. #include <sound/initval.h>
  28. #include <sound/rawmidi.h>
  29. #include <linux/usb/ch9.h>
  30. #include <linux/usb/gadget.h>
  31. #include <linux/usb/audio.h>
  32. #include <linux/usb/midi.h>
  33. #include "u_f.h"
  34. #include "u_midi.h"
  35. MODULE_AUTHOR("Ben Williamson");
  36. MODULE_LICENSE("GPL v2");
  37. static const char f_midi_shortname[] = "f_midi";
  38. static const char f_midi_longname[] = "MIDI Gadget";
  39. /*
  40. * We can only handle 16 cables on one single endpoint, as cable numbers are
  41. * stored in 4-bit fields. And as the interface currently only holds one
  42. * single endpoint, this is the maximum number of ports we can allow.
  43. */
  44. #define MAX_PORTS 16
  45. /* MIDI message states */
  46. enum {
  47. STATE_INITIAL = 0, /* pseudo state */
  48. STATE_1PARAM,
  49. STATE_2PARAM_1,
  50. STATE_2PARAM_2,
  51. STATE_SYSEX_0,
  52. STATE_SYSEX_1,
  53. STATE_SYSEX_2,
  54. STATE_REAL_TIME,
  55. STATE_FINISHED, /* pseudo state */
  56. };
  57. /*
  58. * This is a gadget, and the IN/OUT naming is from the host's perspective.
  59. * USB -> OUT endpoint -> rawmidi
  60. * USB <- IN endpoint <- rawmidi
  61. */
  62. struct gmidi_in_port {
  63. struct snd_rawmidi_substream *substream;
  64. int active;
  65. uint8_t cable;
  66. uint8_t state;
  67. uint8_t data[2];
  68. };
  69. struct f_midi {
  70. struct usb_function func;
  71. struct usb_gadget *gadget;
  72. struct usb_ep *in_ep, *out_ep;
  73. struct snd_card *card;
  74. struct snd_rawmidi *rmidi;
  75. u8 ms_id;
  76. struct snd_rawmidi_substream *out_substream[MAX_PORTS];
  77. unsigned long out_triggered;
  78. struct tasklet_struct tasklet;
  79. unsigned int in_ports;
  80. unsigned int out_ports;
  81. int index;
  82. char *id;
  83. unsigned int buflen, qlen;
  84. /* This fifo is used as a buffer ring for pre-allocated IN usb_requests */
  85. DECLARE_KFIFO_PTR(in_req_fifo, struct usb_request *);
  86. spinlock_t transmit_lock;
  87. unsigned int in_last_port;
  88. unsigned char free_ref;
  89. struct gmidi_in_port in_ports_array[/* in_ports */];
  90. };
  91. static inline struct f_midi *func_to_midi(struct usb_function *f)
  92. {
  93. return container_of(f, struct f_midi, func);
  94. }
  95. static void f_midi_transmit(struct f_midi *midi);
  96. static void f_midi_rmidi_free(struct snd_rawmidi *rmidi);
  97. DECLARE_UAC_AC_HEADER_DESCRIPTOR(1);
  98. DECLARE_USB_MIDI_OUT_JACK_DESCRIPTOR(1);
  99. DECLARE_USB_MS_ENDPOINT_DESCRIPTOR(16);
  100. /* B.3.1 Standard AC Interface Descriptor */
  101. static struct usb_interface_descriptor ac_interface_desc = {
  102. .bLength = USB_DT_INTERFACE_SIZE,
  103. .bDescriptorType = USB_DT_INTERFACE,
  104. /* .bInterfaceNumber = DYNAMIC */
  105. /* .bNumEndpoints = DYNAMIC */
  106. .bInterfaceClass = USB_CLASS_AUDIO,
  107. .bInterfaceSubClass = USB_SUBCLASS_AUDIOCONTROL,
  108. /* .iInterface = DYNAMIC */
  109. };
  110. /* B.3.2 Class-Specific AC Interface Descriptor */
  111. static struct uac1_ac_header_descriptor_1 ac_header_desc = {
  112. .bLength = UAC_DT_AC_HEADER_SIZE(1),
  113. .bDescriptorType = USB_DT_CS_INTERFACE,
  114. .bDescriptorSubtype = USB_MS_HEADER,
  115. .bcdADC = cpu_to_le16(0x0100),
  116. .wTotalLength = cpu_to_le16(UAC_DT_AC_HEADER_SIZE(1)),
  117. .bInCollection = 1,
  118. /* .baInterfaceNr = DYNAMIC */
  119. };
  120. /* B.4.1 Standard MS Interface Descriptor */
  121. static struct usb_interface_descriptor ms_interface_desc = {
  122. .bLength = USB_DT_INTERFACE_SIZE,
  123. .bDescriptorType = USB_DT_INTERFACE,
  124. /* .bInterfaceNumber = DYNAMIC */
  125. .bNumEndpoints = 2,
  126. .bInterfaceClass = USB_CLASS_AUDIO,
  127. .bInterfaceSubClass = USB_SUBCLASS_MIDISTREAMING,
  128. /* .iInterface = DYNAMIC */
  129. };
  130. /* B.4.2 Class-Specific MS Interface Descriptor */
  131. static struct usb_ms_header_descriptor ms_header_desc = {
  132. .bLength = USB_DT_MS_HEADER_SIZE,
  133. .bDescriptorType = USB_DT_CS_INTERFACE,
  134. .bDescriptorSubtype = USB_MS_HEADER,
  135. .bcdMSC = cpu_to_le16(0x0100),
  136. /* .wTotalLength = DYNAMIC */
  137. };
  138. /* B.5.1 Standard Bulk OUT Endpoint Descriptor */
  139. static struct usb_endpoint_descriptor bulk_out_desc = {
  140. .bLength = USB_DT_ENDPOINT_AUDIO_SIZE,
  141. .bDescriptorType = USB_DT_ENDPOINT,
  142. .bEndpointAddress = USB_DIR_OUT,
  143. .bmAttributes = USB_ENDPOINT_XFER_BULK,
  144. };
  145. static struct usb_ss_ep_comp_descriptor bulk_out_ss_comp_desc = {
  146. .bLength = sizeof(bulk_out_ss_comp_desc),
  147. .bDescriptorType = USB_DT_SS_ENDPOINT_COMP,
  148. /* .bMaxBurst = 0, */
  149. /* .bmAttributes = 0, */
  150. };
  151. /* B.5.2 Class-specific MS Bulk OUT Endpoint Descriptor */
  152. static struct usb_ms_endpoint_descriptor_16 ms_out_desc = {
  153. /* .bLength = DYNAMIC */
  154. .bDescriptorType = USB_DT_CS_ENDPOINT,
  155. .bDescriptorSubtype = USB_MS_GENERAL,
  156. /* .bNumEmbMIDIJack = DYNAMIC */
  157. /* .baAssocJackID = DYNAMIC */
  158. };
  159. /* B.6.1 Standard Bulk IN Endpoint Descriptor */
  160. static struct usb_endpoint_descriptor bulk_in_desc = {
  161. .bLength = USB_DT_ENDPOINT_AUDIO_SIZE,
  162. .bDescriptorType = USB_DT_ENDPOINT,
  163. .bEndpointAddress = USB_DIR_IN,
  164. .bmAttributes = USB_ENDPOINT_XFER_BULK,
  165. };
  166. static struct usb_ss_ep_comp_descriptor bulk_in_ss_comp_desc = {
  167. .bLength = sizeof(bulk_in_ss_comp_desc),
  168. .bDescriptorType = USB_DT_SS_ENDPOINT_COMP,
  169. /* .bMaxBurst = 0, */
  170. /* .bmAttributes = 0, */
  171. };
  172. /* B.6.2 Class-specific MS Bulk IN Endpoint Descriptor */
  173. static struct usb_ms_endpoint_descriptor_16 ms_in_desc = {
  174. /* .bLength = DYNAMIC */
  175. .bDescriptorType = USB_DT_CS_ENDPOINT,
  176. .bDescriptorSubtype = USB_MS_GENERAL,
  177. /* .bNumEmbMIDIJack = DYNAMIC */
  178. /* .baAssocJackID = DYNAMIC */
  179. };
  180. /* string IDs are assigned dynamically */
  181. #define STRING_FUNC_IDX 0
  182. static struct usb_string midi_string_defs[] = {
  183. [STRING_FUNC_IDX].s = "MIDI function",
  184. { } /* end of list */
  185. };
  186. static struct usb_gadget_strings midi_stringtab = {
  187. .language = 0x0409, /* en-us */
  188. .strings = midi_string_defs,
  189. };
  190. static struct usb_gadget_strings *midi_strings[] = {
  191. &midi_stringtab,
  192. NULL,
  193. };
  194. static inline struct usb_request *midi_alloc_ep_req(struct usb_ep *ep,
  195. unsigned length)
  196. {
  197. return alloc_ep_req(ep, length);
  198. }
  199. static const uint8_t f_midi_cin_length[] = {
  200. 0, 0, 2, 3, 3, 1, 2, 3, 3, 3, 3, 3, 2, 2, 3, 1
  201. };
  202. /*
  203. * Receives a chunk of MIDI data.
  204. */
  205. static void f_midi_read_data(struct usb_ep *ep, int cable,
  206. uint8_t *data, int length)
  207. {
  208. struct f_midi *midi = ep->driver_data;
  209. struct snd_rawmidi_substream *substream = midi->out_substream[cable];
  210. if (!substream)
  211. /* Nobody is listening - throw it on the floor. */
  212. return;
  213. if (!test_bit(cable, &midi->out_triggered))
  214. return;
  215. snd_rawmidi_receive(substream, data, length);
  216. }
  217. static void f_midi_handle_out_data(struct usb_ep *ep, struct usb_request *req)
  218. {
  219. unsigned int i;
  220. u8 *buf = req->buf;
  221. for (i = 0; i + 3 < req->actual; i += 4)
  222. if (buf[i] != 0) {
  223. int cable = buf[i] >> 4;
  224. int length = f_midi_cin_length[buf[i] & 0x0f];
  225. f_midi_read_data(ep, cable, &buf[i + 1], length);
  226. }
  227. }
  228. static void
  229. f_midi_complete(struct usb_ep *ep, struct usb_request *req)
  230. {
  231. struct f_midi *midi = ep->driver_data;
  232. struct usb_composite_dev *cdev = midi->func.config->cdev;
  233. int status = req->status;
  234. switch (status) {
  235. case 0: /* normal completion */
  236. if (ep == midi->out_ep) {
  237. /* We received stuff. req is queued again, below */
  238. f_midi_handle_out_data(ep, req);
  239. } else if (ep == midi->in_ep) {
  240. /* Our transmit completed. See if there's more to go.
  241. * f_midi_transmit eats req, don't queue it again. */
  242. req->length = 0;
  243. f_midi_transmit(midi);
  244. return;
  245. }
  246. break;
  247. /* this endpoint is normally active while we're configured */
  248. case -ECONNABORTED: /* hardware forced ep reset */
  249. case -ECONNRESET: /* request dequeued */
  250. case -ESHUTDOWN: /* disconnect from host */
  251. VDBG(cdev, "%s gone (%d), %d/%d\n", ep->name, status,
  252. req->actual, req->length);
  253. if (ep == midi->out_ep) {
  254. f_midi_handle_out_data(ep, req);
  255. /* We don't need to free IN requests because it's handled
  256. * by the midi->in_req_fifo. */
  257. free_ep_req(ep, req);
  258. }
  259. return;
  260. case -EOVERFLOW: /* buffer overrun on read means that
  261. * we didn't provide a big enough buffer.
  262. */
  263. default:
  264. DBG(cdev, "%s complete --> %d, %d/%d\n", ep->name,
  265. status, req->actual, req->length);
  266. break;
  267. case -EREMOTEIO: /* short read */
  268. break;
  269. }
  270. status = usb_ep_queue(ep, req, GFP_ATOMIC);
  271. if (status) {
  272. ERROR(cdev, "kill %s: resubmit %d bytes --> %d\n",
  273. ep->name, req->length, status);
  274. usb_ep_set_halt(ep);
  275. /* FIXME recover later ... somehow */
  276. }
  277. }
  278. static void f_midi_drop_out_substreams(struct f_midi *midi)
  279. {
  280. unsigned int i;
  281. for (i = 0; i < midi->in_ports; i++) {
  282. struct gmidi_in_port *port = midi->in_ports_array + i;
  283. struct snd_rawmidi_substream *substream = port->substream;
  284. if (port->active && substream)
  285. snd_rawmidi_drop_output(substream);
  286. }
  287. }
  288. static int f_midi_start_ep(struct f_midi *midi,
  289. struct usb_function *f,
  290. struct usb_ep *ep)
  291. {
  292. int err;
  293. struct usb_composite_dev *cdev = f->config->cdev;
  294. usb_ep_disable(ep);
  295. err = config_ep_by_speed(midi->gadget, f, ep);
  296. if (err) {
  297. ERROR(cdev, "can't configure %s: %d\n", ep->name, err);
  298. return err;
  299. }
  300. err = usb_ep_enable(ep);
  301. if (err) {
  302. ERROR(cdev, "can't start %s: %d\n", ep->name, err);
  303. return err;
  304. }
  305. ep->driver_data = midi;
  306. return 0;
  307. }
  308. static int f_midi_set_alt(struct usb_function *f, unsigned intf, unsigned alt)
  309. {
  310. struct f_midi *midi = func_to_midi(f);
  311. unsigned i;
  312. int err;
  313. /* we only set alt for MIDIStreaming interface */
  314. if (intf != midi->ms_id)
  315. return 0;
  316. err = f_midi_start_ep(midi, f, midi->in_ep);
  317. if (err)
  318. return err;
  319. err = f_midi_start_ep(midi, f, midi->out_ep);
  320. if (err)
  321. return err;
  322. /* pre-allocate write usb requests to use on f_midi_transmit. */
  323. while (kfifo_avail(&midi->in_req_fifo)) {
  324. struct usb_request *req =
  325. midi_alloc_ep_req(midi->in_ep, midi->buflen);
  326. if (req == NULL)
  327. return -ENOMEM;
  328. req->length = 0;
  329. req->complete = f_midi_complete;
  330. kfifo_put(&midi->in_req_fifo, req);
  331. }
  332. /* allocate a bunch of read buffers and queue them all at once. */
  333. for (i = 0; i < midi->qlen && err == 0; i++) {
  334. struct usb_request *req =
  335. midi_alloc_ep_req(midi->out_ep, midi->buflen);
  336. if (req == NULL)
  337. return -ENOMEM;
  338. req->complete = f_midi_complete;
  339. err = usb_ep_queue(midi->out_ep, req, GFP_ATOMIC);
  340. if (err) {
  341. ERROR(midi, "%s: couldn't enqueue request: %d\n",
  342. midi->out_ep->name, err);
  343. if (req->buf != NULL)
  344. free_ep_req(midi->out_ep, req);
  345. return err;
  346. }
  347. }
  348. return 0;
  349. }
  350. static void f_midi_disable(struct usb_function *f)
  351. {
  352. struct f_midi *midi = func_to_midi(f);
  353. struct usb_composite_dev *cdev = f->config->cdev;
  354. struct usb_request *req = NULL;
  355. DBG(cdev, "disable\n");
  356. /*
  357. * just disable endpoints, forcing completion of pending i/o.
  358. * all our completion handlers free their requests in this case.
  359. */
  360. usb_ep_disable(midi->in_ep);
  361. usb_ep_disable(midi->out_ep);
  362. /* release IN requests */
  363. while (kfifo_get(&midi->in_req_fifo, &req))
  364. free_ep_req(midi->in_ep, req);
  365. f_midi_drop_out_substreams(midi);
  366. }
  367. static int f_midi_snd_free(struct snd_device *device)
  368. {
  369. return 0;
  370. }
  371. /*
  372. * Converts MIDI commands to USB MIDI packets.
  373. */
  374. static void f_midi_transmit_byte(struct usb_request *req,
  375. struct gmidi_in_port *port, uint8_t b)
  376. {
  377. uint8_t p[4] = { port->cable << 4, 0, 0, 0 };
  378. uint8_t next_state = STATE_INITIAL;
  379. switch (b) {
  380. case 0xf8 ... 0xff:
  381. /* System Real-Time Messages */
  382. p[0] |= 0x0f;
  383. p[1] = b;
  384. next_state = port->state;
  385. port->state = STATE_REAL_TIME;
  386. break;
  387. case 0xf7:
  388. /* End of SysEx */
  389. switch (port->state) {
  390. case STATE_SYSEX_0:
  391. p[0] |= 0x05;
  392. p[1] = 0xf7;
  393. next_state = STATE_FINISHED;
  394. break;
  395. case STATE_SYSEX_1:
  396. p[0] |= 0x06;
  397. p[1] = port->data[0];
  398. p[2] = 0xf7;
  399. next_state = STATE_FINISHED;
  400. break;
  401. case STATE_SYSEX_2:
  402. p[0] |= 0x07;
  403. p[1] = port->data[0];
  404. p[2] = port->data[1];
  405. p[3] = 0xf7;
  406. next_state = STATE_FINISHED;
  407. break;
  408. default:
  409. /* Ignore byte */
  410. next_state = port->state;
  411. port->state = STATE_INITIAL;
  412. }
  413. break;
  414. case 0xf0 ... 0xf6:
  415. /* System Common Messages */
  416. port->data[0] = port->data[1] = 0;
  417. port->state = STATE_INITIAL;
  418. switch (b) {
  419. case 0xf0:
  420. port->data[0] = b;
  421. port->data[1] = 0;
  422. next_state = STATE_SYSEX_1;
  423. break;
  424. case 0xf1:
  425. case 0xf3:
  426. port->data[0] = b;
  427. next_state = STATE_1PARAM;
  428. break;
  429. case 0xf2:
  430. port->data[0] = b;
  431. next_state = STATE_2PARAM_1;
  432. break;
  433. case 0xf4:
  434. case 0xf5:
  435. next_state = STATE_INITIAL;
  436. break;
  437. case 0xf6:
  438. p[0] |= 0x05;
  439. p[1] = 0xf6;
  440. next_state = STATE_FINISHED;
  441. break;
  442. }
  443. break;
  444. case 0x80 ... 0xef:
  445. /*
  446. * Channel Voice Messages, Channel Mode Messages
  447. * and Control Change Messages.
  448. */
  449. port->data[0] = b;
  450. port->data[1] = 0;
  451. port->state = STATE_INITIAL;
  452. if (b >= 0xc0 && b <= 0xdf)
  453. next_state = STATE_1PARAM;
  454. else
  455. next_state = STATE_2PARAM_1;
  456. break;
  457. case 0x00 ... 0x7f:
  458. /* Message parameters */
  459. switch (port->state) {
  460. case STATE_1PARAM:
  461. if (port->data[0] < 0xf0)
  462. p[0] |= port->data[0] >> 4;
  463. else
  464. p[0] |= 0x02;
  465. p[1] = port->data[0];
  466. p[2] = b;
  467. /* This is to allow Running State Messages */
  468. next_state = STATE_1PARAM;
  469. break;
  470. case STATE_2PARAM_1:
  471. port->data[1] = b;
  472. next_state = STATE_2PARAM_2;
  473. break;
  474. case STATE_2PARAM_2:
  475. if (port->data[0] < 0xf0)
  476. p[0] |= port->data[0] >> 4;
  477. else
  478. p[0] |= 0x03;
  479. p[1] = port->data[0];
  480. p[2] = port->data[1];
  481. p[3] = b;
  482. /* This is to allow Running State Messages */
  483. next_state = STATE_2PARAM_1;
  484. break;
  485. case STATE_SYSEX_0:
  486. port->data[0] = b;
  487. next_state = STATE_SYSEX_1;
  488. break;
  489. case STATE_SYSEX_1:
  490. port->data[1] = b;
  491. next_state = STATE_SYSEX_2;
  492. break;
  493. case STATE_SYSEX_2:
  494. p[0] |= 0x04;
  495. p[1] = port->data[0];
  496. p[2] = port->data[1];
  497. p[3] = b;
  498. next_state = STATE_SYSEX_0;
  499. break;
  500. }
  501. break;
  502. }
  503. /* States where we have to write into the USB request */
  504. if (next_state == STATE_FINISHED ||
  505. port->state == STATE_SYSEX_2 ||
  506. port->state == STATE_1PARAM ||
  507. port->state == STATE_2PARAM_2 ||
  508. port->state == STATE_REAL_TIME) {
  509. unsigned int length = req->length;
  510. u8 *buf = (u8 *)req->buf + length;
  511. memcpy(buf, p, sizeof(p));
  512. req->length = length + sizeof(p);
  513. if (next_state == STATE_FINISHED) {
  514. next_state = STATE_INITIAL;
  515. port->data[0] = port->data[1] = 0;
  516. }
  517. }
  518. port->state = next_state;
  519. }
  520. static int f_midi_do_transmit(struct f_midi *midi, struct usb_ep *ep)
  521. {
  522. struct usb_request *req = NULL;
  523. unsigned int len, i;
  524. bool active = false;
  525. int err;
  526. /*
  527. * We peek the request in order to reuse it if it fails to enqueue on
  528. * its endpoint
  529. */
  530. len = kfifo_peek(&midi->in_req_fifo, &req);
  531. if (len != 1) {
  532. ERROR(midi, "%s: Couldn't get usb request\n", __func__);
  533. return -1;
  534. }
  535. /*
  536. * If buffer overrun, then we ignore this transmission.
  537. * IMPORTANT: This will cause the user-space rawmidi device to block
  538. * until a) usb requests have been completed or b) snd_rawmidi_write()
  539. * times out.
  540. */
  541. if (req->length > 0)
  542. return 0;
  543. for (i = midi->in_last_port; i < midi->in_ports; ++i) {
  544. struct gmidi_in_port *port = midi->in_ports_array + i;
  545. struct snd_rawmidi_substream *substream = port->substream;
  546. if (!port->active || !substream)
  547. continue;
  548. while (req->length + 3 < midi->buflen) {
  549. uint8_t b;
  550. if (snd_rawmidi_transmit(substream, &b, 1) != 1) {
  551. port->active = 0;
  552. break;
  553. }
  554. f_midi_transmit_byte(req, port, b);
  555. }
  556. active = !!port->active;
  557. if (active)
  558. break;
  559. }
  560. midi->in_last_port = active ? i : 0;
  561. if (req->length <= 0)
  562. goto done;
  563. err = usb_ep_queue(ep, req, GFP_ATOMIC);
  564. if (err < 0) {
  565. ERROR(midi, "%s failed to queue req: %d\n",
  566. midi->in_ep->name, err);
  567. req->length = 0; /* Re-use request next time. */
  568. } else {
  569. /* Upon success, put request at the back of the queue. */
  570. kfifo_skip(&midi->in_req_fifo);
  571. kfifo_put(&midi->in_req_fifo, req);
  572. }
  573. done:
  574. return active;
  575. }
  576. static void f_midi_transmit(struct f_midi *midi)
  577. {
  578. struct usb_ep *ep = midi->in_ep;
  579. int ret;
  580. unsigned long flags;
  581. /* We only care about USB requests if IN endpoint is enabled */
  582. if (!ep || !ep->enabled)
  583. goto drop_out;
  584. spin_lock_irqsave(&midi->transmit_lock, flags);
  585. do {
  586. ret = f_midi_do_transmit(midi, ep);
  587. if (ret < 0) {
  588. spin_unlock_irqrestore(&midi->transmit_lock, flags);
  589. goto drop_out;
  590. }
  591. } while (ret);
  592. spin_unlock_irqrestore(&midi->transmit_lock, flags);
  593. return;
  594. drop_out:
  595. f_midi_drop_out_substreams(midi);
  596. }
  597. static void f_midi_in_tasklet(unsigned long data)
  598. {
  599. struct f_midi *midi = (struct f_midi *) data;
  600. f_midi_transmit(midi);
  601. }
  602. static int f_midi_in_open(struct snd_rawmidi_substream *substream)
  603. {
  604. struct f_midi *midi = substream->rmidi->private_data;
  605. struct gmidi_in_port *port;
  606. if (substream->number >= midi->in_ports)
  607. return -EINVAL;
  608. VDBG(midi, "%s()\n", __func__);
  609. port = midi->in_ports_array + substream->number;
  610. port->substream = substream;
  611. port->state = STATE_INITIAL;
  612. return 0;
  613. }
  614. static int f_midi_in_close(struct snd_rawmidi_substream *substream)
  615. {
  616. struct f_midi *midi = substream->rmidi->private_data;
  617. VDBG(midi, "%s()\n", __func__);
  618. return 0;
  619. }
  620. static void f_midi_in_trigger(struct snd_rawmidi_substream *substream, int up)
  621. {
  622. struct f_midi *midi = substream->rmidi->private_data;
  623. if (substream->number >= midi->in_ports)
  624. return;
  625. VDBG(midi, "%s() %d\n", __func__, up);
  626. midi->in_ports_array[substream->number].active = up;
  627. if (up)
  628. tasklet_hi_schedule(&midi->tasklet);
  629. }
  630. static int f_midi_out_open(struct snd_rawmidi_substream *substream)
  631. {
  632. struct f_midi *midi = substream->rmidi->private_data;
  633. if (substream->number >= MAX_PORTS)
  634. return -EINVAL;
  635. VDBG(midi, "%s()\n", __func__);
  636. midi->out_substream[substream->number] = substream;
  637. return 0;
  638. }
  639. static int f_midi_out_close(struct snd_rawmidi_substream *substream)
  640. {
  641. struct f_midi *midi = substream->rmidi->private_data;
  642. VDBG(midi, "%s()\n", __func__);
  643. return 0;
  644. }
  645. static void f_midi_out_trigger(struct snd_rawmidi_substream *substream, int up)
  646. {
  647. struct f_midi *midi = substream->rmidi->private_data;
  648. VDBG(midi, "%s()\n", __func__);
  649. if (up)
  650. set_bit(substream->number, &midi->out_triggered);
  651. else
  652. clear_bit(substream->number, &midi->out_triggered);
  653. }
  654. static const struct snd_rawmidi_ops gmidi_in_ops = {
  655. .open = f_midi_in_open,
  656. .close = f_midi_in_close,
  657. .trigger = f_midi_in_trigger,
  658. };
  659. static const struct snd_rawmidi_ops gmidi_out_ops = {
  660. .open = f_midi_out_open,
  661. .close = f_midi_out_close,
  662. .trigger = f_midi_out_trigger
  663. };
  664. static inline void f_midi_unregister_card(struct f_midi *midi)
  665. {
  666. if (midi->card) {
  667. snd_card_free(midi->card);
  668. midi->card = NULL;
  669. }
  670. }
  671. /* register as a sound "card" */
  672. static int f_midi_register_card(struct f_midi *midi)
  673. {
  674. struct snd_card *card;
  675. struct snd_rawmidi *rmidi;
  676. int err;
  677. static struct snd_device_ops ops = {
  678. .dev_free = f_midi_snd_free,
  679. };
  680. err = snd_card_new(&midi->gadget->dev, midi->index, midi->id,
  681. THIS_MODULE, 0, &card);
  682. if (err < 0) {
  683. ERROR(midi, "snd_card_new() failed\n");
  684. goto fail;
  685. }
  686. midi->card = card;
  687. err = snd_device_new(card, SNDRV_DEV_LOWLEVEL, midi, &ops);
  688. if (err < 0) {
  689. ERROR(midi, "snd_device_new() failed: error %d\n", err);
  690. goto fail;
  691. }
  692. strcpy(card->driver, f_midi_longname);
  693. strcpy(card->longname, f_midi_longname);
  694. strcpy(card->shortname, f_midi_shortname);
  695. /* Set up rawmidi */
  696. snd_component_add(card, "MIDI");
  697. err = snd_rawmidi_new(card, card->longname, 0,
  698. midi->out_ports, midi->in_ports, &rmidi);
  699. if (err < 0) {
  700. ERROR(midi, "snd_rawmidi_new() failed: error %d\n", err);
  701. goto fail;
  702. }
  703. midi->rmidi = rmidi;
  704. midi->in_last_port = 0;
  705. strcpy(rmidi->name, card->shortname);
  706. rmidi->info_flags = SNDRV_RAWMIDI_INFO_OUTPUT |
  707. SNDRV_RAWMIDI_INFO_INPUT |
  708. SNDRV_RAWMIDI_INFO_DUPLEX;
  709. rmidi->private_data = midi;
  710. rmidi->private_free = f_midi_rmidi_free;
  711. midi->free_ref++;
  712. /*
  713. * Yes, rawmidi OUTPUT = USB IN, and rawmidi INPUT = USB OUT.
  714. * It's an upside-down world being a gadget.
  715. */
  716. snd_rawmidi_set_ops(rmidi, SNDRV_RAWMIDI_STREAM_OUTPUT, &gmidi_in_ops);
  717. snd_rawmidi_set_ops(rmidi, SNDRV_RAWMIDI_STREAM_INPUT, &gmidi_out_ops);
  718. /* register it - we're ready to go */
  719. err = snd_card_register(card);
  720. if (err < 0) {
  721. ERROR(midi, "snd_card_register() failed\n");
  722. goto fail;
  723. }
  724. VDBG(midi, "%s() finished ok\n", __func__);
  725. return 0;
  726. fail:
  727. f_midi_unregister_card(midi);
  728. return err;
  729. }
  730. /* MIDI function driver setup/binding */
  731. static int f_midi_bind(struct usb_configuration *c, struct usb_function *f)
  732. {
  733. struct usb_descriptor_header **midi_function;
  734. struct usb_midi_in_jack_descriptor jack_in_ext_desc[MAX_PORTS];
  735. struct usb_midi_in_jack_descriptor jack_in_emb_desc[MAX_PORTS];
  736. struct usb_midi_out_jack_descriptor_1 jack_out_ext_desc[MAX_PORTS];
  737. struct usb_midi_out_jack_descriptor_1 jack_out_emb_desc[MAX_PORTS];
  738. struct usb_composite_dev *cdev = c->cdev;
  739. struct f_midi *midi = func_to_midi(f);
  740. struct usb_string *us;
  741. int status, n, jack = 1, i = 0, endpoint_descriptor_index = 0;
  742. midi->gadget = cdev->gadget;
  743. tasklet_init(&midi->tasklet, f_midi_in_tasklet, (unsigned long) midi);
  744. status = f_midi_register_card(midi);
  745. if (status < 0)
  746. goto fail_register;
  747. /* maybe allocate device-global string ID */
  748. us = usb_gstrings_attach(c->cdev, midi_strings,
  749. ARRAY_SIZE(midi_string_defs));
  750. if (IS_ERR(us)) {
  751. status = PTR_ERR(us);
  752. goto fail;
  753. }
  754. ac_interface_desc.iInterface = us[STRING_FUNC_IDX].id;
  755. /* We have two interfaces, AudioControl and MIDIStreaming */
  756. status = usb_interface_id(c, f);
  757. if (status < 0)
  758. goto fail;
  759. ac_interface_desc.bInterfaceNumber = status;
  760. status = usb_interface_id(c, f);
  761. if (status < 0)
  762. goto fail;
  763. ms_interface_desc.bInterfaceNumber = status;
  764. ac_header_desc.baInterfaceNr[0] = status;
  765. midi->ms_id = status;
  766. status = -ENODEV;
  767. /* allocate instance-specific endpoints */
  768. midi->in_ep = usb_ep_autoconfig(cdev->gadget, &bulk_in_desc);
  769. if (!midi->in_ep)
  770. goto fail;
  771. midi->out_ep = usb_ep_autoconfig(cdev->gadget, &bulk_out_desc);
  772. if (!midi->out_ep)
  773. goto fail;
  774. /* allocate temporary function list */
  775. midi_function = kcalloc((MAX_PORTS * 4) + 11, sizeof(*midi_function),
  776. GFP_KERNEL);
  777. if (!midi_function) {
  778. status = -ENOMEM;
  779. goto fail;
  780. }
  781. /*
  782. * construct the function's descriptor set. As the number of
  783. * input and output MIDI ports is configurable, we have to do
  784. * it that way.
  785. */
  786. /* add the headers - these are always the same */
  787. midi_function[i++] = (struct usb_descriptor_header *) &ac_interface_desc;
  788. midi_function[i++] = (struct usb_descriptor_header *) &ac_header_desc;
  789. midi_function[i++] = (struct usb_descriptor_header *) &ms_interface_desc;
  790. /* calculate the header's wTotalLength */
  791. n = USB_DT_MS_HEADER_SIZE
  792. + (midi->in_ports + midi->out_ports) *
  793. (USB_DT_MIDI_IN_SIZE + USB_DT_MIDI_OUT_SIZE(1));
  794. ms_header_desc.wTotalLength = cpu_to_le16(n);
  795. midi_function[i++] = (struct usb_descriptor_header *) &ms_header_desc;
  796. /* configure the external IN jacks, each linked to an embedded OUT jack */
  797. for (n = 0; n < midi->in_ports; n++) {
  798. struct usb_midi_in_jack_descriptor *in_ext = &jack_in_ext_desc[n];
  799. struct usb_midi_out_jack_descriptor_1 *out_emb = &jack_out_emb_desc[n];
  800. in_ext->bLength = USB_DT_MIDI_IN_SIZE;
  801. in_ext->bDescriptorType = USB_DT_CS_INTERFACE;
  802. in_ext->bDescriptorSubtype = USB_MS_MIDI_IN_JACK;
  803. in_ext->bJackType = USB_MS_EXTERNAL;
  804. in_ext->bJackID = jack++;
  805. in_ext->iJack = 0;
  806. midi_function[i++] = (struct usb_descriptor_header *) in_ext;
  807. out_emb->bLength = USB_DT_MIDI_OUT_SIZE(1);
  808. out_emb->bDescriptorType = USB_DT_CS_INTERFACE;
  809. out_emb->bDescriptorSubtype = USB_MS_MIDI_OUT_JACK;
  810. out_emb->bJackType = USB_MS_EMBEDDED;
  811. out_emb->bJackID = jack++;
  812. out_emb->bNrInputPins = 1;
  813. out_emb->pins[0].baSourcePin = 1;
  814. out_emb->pins[0].baSourceID = in_ext->bJackID;
  815. out_emb->iJack = 0;
  816. midi_function[i++] = (struct usb_descriptor_header *) out_emb;
  817. /* link it to the endpoint */
  818. ms_in_desc.baAssocJackID[n] = out_emb->bJackID;
  819. }
  820. /* configure the external OUT jacks, each linked to an embedded IN jack */
  821. for (n = 0; n < midi->out_ports; n++) {
  822. struct usb_midi_in_jack_descriptor *in_emb = &jack_in_emb_desc[n];
  823. struct usb_midi_out_jack_descriptor_1 *out_ext = &jack_out_ext_desc[n];
  824. in_emb->bLength = USB_DT_MIDI_IN_SIZE;
  825. in_emb->bDescriptorType = USB_DT_CS_INTERFACE;
  826. in_emb->bDescriptorSubtype = USB_MS_MIDI_IN_JACK;
  827. in_emb->bJackType = USB_MS_EMBEDDED;
  828. in_emb->bJackID = jack++;
  829. in_emb->iJack = 0;
  830. midi_function[i++] = (struct usb_descriptor_header *) in_emb;
  831. out_ext->bLength = USB_DT_MIDI_OUT_SIZE(1);
  832. out_ext->bDescriptorType = USB_DT_CS_INTERFACE;
  833. out_ext->bDescriptorSubtype = USB_MS_MIDI_OUT_JACK;
  834. out_ext->bJackType = USB_MS_EXTERNAL;
  835. out_ext->bJackID = jack++;
  836. out_ext->bNrInputPins = 1;
  837. out_ext->iJack = 0;
  838. out_ext->pins[0].baSourceID = in_emb->bJackID;
  839. out_ext->pins[0].baSourcePin = 1;
  840. midi_function[i++] = (struct usb_descriptor_header *) out_ext;
  841. /* link it to the endpoint */
  842. ms_out_desc.baAssocJackID[n] = in_emb->bJackID;
  843. }
  844. /* configure the endpoint descriptors ... */
  845. ms_out_desc.bLength = USB_DT_MS_ENDPOINT_SIZE(midi->in_ports);
  846. ms_out_desc.bNumEmbMIDIJack = midi->in_ports;
  847. ms_in_desc.bLength = USB_DT_MS_ENDPOINT_SIZE(midi->out_ports);
  848. ms_in_desc.bNumEmbMIDIJack = midi->out_ports;
  849. /* ... and add them to the list */
  850. endpoint_descriptor_index = i;
  851. midi_function[i++] = (struct usb_descriptor_header *) &bulk_out_desc;
  852. midi_function[i++] = (struct usb_descriptor_header *) &ms_out_desc;
  853. midi_function[i++] = (struct usb_descriptor_header *) &bulk_in_desc;
  854. midi_function[i++] = (struct usb_descriptor_header *) &ms_in_desc;
  855. midi_function[i++] = NULL;
  856. /*
  857. * support all relevant hardware speeds... we expect that when
  858. * hardware is dual speed, all bulk-capable endpoints work at
  859. * both speeds
  860. */
  861. /* copy descriptors, and track endpoint copies */
  862. f->fs_descriptors = usb_copy_descriptors(midi_function);
  863. if (!f->fs_descriptors)
  864. goto fail_f_midi;
  865. if (gadget_is_dualspeed(c->cdev->gadget)) {
  866. bulk_in_desc.wMaxPacketSize = cpu_to_le16(512);
  867. bulk_out_desc.wMaxPacketSize = cpu_to_le16(512);
  868. f->hs_descriptors = usb_copy_descriptors(midi_function);
  869. if (!f->hs_descriptors)
  870. goto fail_f_midi;
  871. }
  872. if (gadget_is_superspeed(c->cdev->gadget)) {
  873. bulk_in_desc.wMaxPacketSize = cpu_to_le16(1024);
  874. bulk_out_desc.wMaxPacketSize = cpu_to_le16(1024);
  875. i = endpoint_descriptor_index;
  876. midi_function[i++] = (struct usb_descriptor_header *)
  877. &bulk_out_desc;
  878. midi_function[i++] = (struct usb_descriptor_header *)
  879. &bulk_out_ss_comp_desc;
  880. midi_function[i++] = (struct usb_descriptor_header *)
  881. &ms_out_desc;
  882. midi_function[i++] = (struct usb_descriptor_header *)
  883. &bulk_in_desc;
  884. midi_function[i++] = (struct usb_descriptor_header *)
  885. &bulk_in_ss_comp_desc;
  886. midi_function[i++] = (struct usb_descriptor_header *)
  887. &ms_in_desc;
  888. f->ss_descriptors = usb_copy_descriptors(midi_function);
  889. if (!f->ss_descriptors)
  890. goto fail_f_midi;
  891. }
  892. kfree(midi_function);
  893. return 0;
  894. fail_f_midi:
  895. kfree(midi_function);
  896. usb_free_all_descriptors(f);
  897. fail:
  898. f_midi_unregister_card(midi);
  899. fail_register:
  900. ERROR(cdev, "%s: can't bind, err %d\n", f->name, status);
  901. return status;
  902. }
  903. static inline struct f_midi_opts *to_f_midi_opts(struct config_item *item)
  904. {
  905. return container_of(to_config_group(item), struct f_midi_opts,
  906. func_inst.group);
  907. }
  908. static void midi_attr_release(struct config_item *item)
  909. {
  910. struct f_midi_opts *opts = to_f_midi_opts(item);
  911. usb_put_function_instance(&opts->func_inst);
  912. }
  913. static struct configfs_item_operations midi_item_ops = {
  914. .release = midi_attr_release,
  915. };
  916. #define F_MIDI_OPT(name, test_limit, limit) \
  917. static ssize_t f_midi_opts_##name##_show(struct config_item *item, char *page) \
  918. { \
  919. struct f_midi_opts *opts = to_f_midi_opts(item); \
  920. int result; \
  921. \
  922. mutex_lock(&opts->lock); \
  923. result = sprintf(page, "%d\n", opts->name); \
  924. mutex_unlock(&opts->lock); \
  925. \
  926. return result; \
  927. } \
  928. \
  929. static ssize_t f_midi_opts_##name##_store(struct config_item *item, \
  930. const char *page, size_t len) \
  931. { \
  932. struct f_midi_opts *opts = to_f_midi_opts(item); \
  933. int ret; \
  934. u32 num; \
  935. \
  936. mutex_lock(&opts->lock); \
  937. if (opts->refcnt) { \
  938. ret = -EBUSY; \
  939. goto end; \
  940. } \
  941. \
  942. ret = kstrtou32(page, 0, &num); \
  943. if (ret) \
  944. goto end; \
  945. \
  946. if (test_limit && num > limit) { \
  947. ret = -EINVAL; \
  948. goto end; \
  949. } \
  950. opts->name = num; \
  951. ret = len; \
  952. \
  953. end: \
  954. mutex_unlock(&opts->lock); \
  955. return ret; \
  956. } \
  957. \
  958. CONFIGFS_ATTR(f_midi_opts_, name);
  959. F_MIDI_OPT(index, true, SNDRV_CARDS);
  960. F_MIDI_OPT(buflen, false, 0);
  961. F_MIDI_OPT(qlen, false, 0);
  962. F_MIDI_OPT(in_ports, true, MAX_PORTS);
  963. F_MIDI_OPT(out_ports, true, MAX_PORTS);
  964. static ssize_t f_midi_opts_id_show(struct config_item *item, char *page)
  965. {
  966. struct f_midi_opts *opts = to_f_midi_opts(item);
  967. int result;
  968. mutex_lock(&opts->lock);
  969. if (opts->id) {
  970. result = strlcpy(page, opts->id, PAGE_SIZE);
  971. } else {
  972. page[0] = 0;
  973. result = 0;
  974. }
  975. mutex_unlock(&opts->lock);
  976. return result;
  977. }
  978. static ssize_t f_midi_opts_id_store(struct config_item *item,
  979. const char *page, size_t len)
  980. {
  981. struct f_midi_opts *opts = to_f_midi_opts(item);
  982. int ret;
  983. char *c;
  984. mutex_lock(&opts->lock);
  985. if (opts->refcnt) {
  986. ret = -EBUSY;
  987. goto end;
  988. }
  989. c = kstrndup(page, len, GFP_KERNEL);
  990. if (!c) {
  991. ret = -ENOMEM;
  992. goto end;
  993. }
  994. if (opts->id_allocated)
  995. kfree(opts->id);
  996. opts->id = c;
  997. opts->id_allocated = true;
  998. ret = len;
  999. end:
  1000. mutex_unlock(&opts->lock);
  1001. return ret;
  1002. }
  1003. CONFIGFS_ATTR(f_midi_opts_, id);
  1004. static struct configfs_attribute *midi_attrs[] = {
  1005. &f_midi_opts_attr_index,
  1006. &f_midi_opts_attr_buflen,
  1007. &f_midi_opts_attr_qlen,
  1008. &f_midi_opts_attr_in_ports,
  1009. &f_midi_opts_attr_out_ports,
  1010. &f_midi_opts_attr_id,
  1011. NULL,
  1012. };
  1013. static const struct config_item_type midi_func_type = {
  1014. .ct_item_ops = &midi_item_ops,
  1015. .ct_attrs = midi_attrs,
  1016. .ct_owner = THIS_MODULE,
  1017. };
  1018. static void f_midi_free_inst(struct usb_function_instance *f)
  1019. {
  1020. struct f_midi_opts *opts;
  1021. opts = container_of(f, struct f_midi_opts, func_inst);
  1022. if (opts->id_allocated)
  1023. kfree(opts->id);
  1024. kfree(opts);
  1025. }
  1026. static struct usb_function_instance *f_midi_alloc_inst(void)
  1027. {
  1028. struct f_midi_opts *opts;
  1029. opts = kzalloc(sizeof(*opts), GFP_KERNEL);
  1030. if (!opts)
  1031. return ERR_PTR(-ENOMEM);
  1032. mutex_init(&opts->lock);
  1033. opts->func_inst.free_func_inst = f_midi_free_inst;
  1034. opts->index = SNDRV_DEFAULT_IDX1;
  1035. opts->id = SNDRV_DEFAULT_STR1;
  1036. opts->buflen = 512;
  1037. opts->qlen = 32;
  1038. opts->in_ports = 1;
  1039. opts->out_ports = 1;
  1040. config_group_init_type_name(&opts->func_inst.group, "",
  1041. &midi_func_type);
  1042. return &opts->func_inst;
  1043. }
  1044. static void f_midi_free(struct usb_function *f)
  1045. {
  1046. struct f_midi *midi;
  1047. struct f_midi_opts *opts;
  1048. midi = func_to_midi(f);
  1049. opts = container_of(f->fi, struct f_midi_opts, func_inst);
  1050. mutex_lock(&opts->lock);
  1051. if (!--midi->free_ref) {
  1052. kfree(midi->id);
  1053. kfifo_free(&midi->in_req_fifo);
  1054. kfree(midi);
  1055. --opts->refcnt;
  1056. }
  1057. mutex_unlock(&opts->lock);
  1058. }
  1059. static void f_midi_rmidi_free(struct snd_rawmidi *rmidi)
  1060. {
  1061. f_midi_free(rmidi->private_data);
  1062. }
  1063. static void f_midi_unbind(struct usb_configuration *c, struct usb_function *f)
  1064. {
  1065. struct usb_composite_dev *cdev = f->config->cdev;
  1066. struct f_midi *midi = func_to_midi(f);
  1067. struct snd_card *card;
  1068. DBG(cdev, "unbind\n");
  1069. /* just to be sure */
  1070. f_midi_disable(f);
  1071. card = midi->card;
  1072. midi->card = NULL;
  1073. if (card)
  1074. snd_card_free_when_closed(card);
  1075. usb_free_all_descriptors(f);
  1076. }
  1077. static struct usb_function *f_midi_alloc(struct usb_function_instance *fi)
  1078. {
  1079. struct f_midi *midi = NULL;
  1080. struct f_midi_opts *opts;
  1081. int status, i;
  1082. opts = container_of(fi, struct f_midi_opts, func_inst);
  1083. mutex_lock(&opts->lock);
  1084. /* sanity check */
  1085. if (opts->in_ports > MAX_PORTS || opts->out_ports > MAX_PORTS) {
  1086. status = -EINVAL;
  1087. goto setup_fail;
  1088. }
  1089. /* allocate and initialize one new instance */
  1090. midi = kzalloc(struct_size(midi, in_ports_array, opts->in_ports),
  1091. GFP_KERNEL);
  1092. if (!midi) {
  1093. status = -ENOMEM;
  1094. goto setup_fail;
  1095. }
  1096. for (i = 0; i < opts->in_ports; i++)
  1097. midi->in_ports_array[i].cable = i;
  1098. /* set up ALSA midi devices */
  1099. midi->id = kstrdup(opts->id, GFP_KERNEL);
  1100. if (opts->id && !midi->id) {
  1101. status = -ENOMEM;
  1102. goto setup_fail;
  1103. }
  1104. midi->in_ports = opts->in_ports;
  1105. midi->out_ports = opts->out_ports;
  1106. midi->index = opts->index;
  1107. midi->buflen = opts->buflen;
  1108. midi->qlen = opts->qlen;
  1109. midi->in_last_port = 0;
  1110. midi->free_ref = 1;
  1111. status = kfifo_alloc(&midi->in_req_fifo, midi->qlen, GFP_KERNEL);
  1112. if (status)
  1113. goto setup_fail;
  1114. spin_lock_init(&midi->transmit_lock);
  1115. ++opts->refcnt;
  1116. mutex_unlock(&opts->lock);
  1117. midi->func.name = "gmidi function";
  1118. midi->func.bind = f_midi_bind;
  1119. midi->func.unbind = f_midi_unbind;
  1120. midi->func.set_alt = f_midi_set_alt;
  1121. midi->func.disable = f_midi_disable;
  1122. midi->func.free_func = f_midi_free;
  1123. return &midi->func;
  1124. setup_fail:
  1125. mutex_unlock(&opts->lock);
  1126. kfree(midi);
  1127. return ERR_PTR(status);
  1128. }
  1129. DECLARE_USB_FUNCTION_INIT(midi, f_midi_alloc_inst, f_midi_alloc);