jack2 codebase
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  1. /*
  2. * ALSA RAWMIDI < - > JACK MIDI bridge
  3. *
  4. * Copyright (c) 2006,2007 Dmitry S. Baikov
  5. *
  6. * This program is free software; you can redistribute it and/or modify
  7. * it under the terms of the GNU General Public License as published by
  8. * the Free Software Foundation; either version 2 of the License, or
  9. * (at your option) any later version.
  10. *
  11. * This program is distributed in the hope that it will be useful,
  12. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  13. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  14. * GNU General Public License for more details.
  15. *
  16. * You should have received a copy of the GNU General Public License
  17. * along with this program; if not, write to the Free Software
  18. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  19. */
  20. /* Required for clock_nanosleep(). Thanks, Nedko */
  21. #define _GNU_SOURCE
  22. #include <stdlib.h>
  23. #include <unistd.h>
  24. #include <errno.h>
  25. #include <pthread.h>
  26. #include <time.h>
  27. #include <limits.h>
  28. #include <ctype.h>
  29. #include <alsa/asoundlib.h>
  30. #include "ringbuffer.h"
  31. #include "midiport.h"
  32. #include "alsa_midi_impl.h"
  33. #include "midi_pack.h"
  34. #include "midi_unpack.h"
  35. #include "JackError.h"
  36. extern int clock_nanosleep(clockid_t clock_id, int flags, const struct timespec *req, struct timespec *rem);
  37. enum {
  38. NANOSLEEP_RESOLUTION = 7000
  39. };
  40. #define NFRAMES_INF INT_MAX
  41. enum {
  42. #ifndef JACK_MIDI_DEBUG
  43. MAX_PFDS = 64,
  44. MAX_PORTS = MAX_PFDS-1,
  45. MAX_EVENTS = 4096,
  46. MAX_DATA = 64*1024,
  47. MIDI_THREAD_PRIO = 80
  48. #else
  49. MAX_PFDS = 6,
  50. MAX_PORTS = MAX_PFDS-1,
  51. MAX_EVENTS = 16,
  52. MAX_DATA = 64,
  53. MIDI_THREAD_PRIO = 80
  54. #endif
  55. };
  56. enum PortState {
  57. PORT_DESTROYED,
  58. PORT_CREATED,
  59. PORT_ADDED_TO_JACK,
  60. PORT_ADDED_TO_MIDI,
  61. PORT_REMOVED_FROM_MIDI,
  62. PORT_REMOVED_FROM_JACK,
  63. PORT_ZOMBIFIED,
  64. };
  65. typedef struct {
  66. int id[4]; //card, dev, dir, sub;
  67. } alsa_id_t;
  68. typedef struct {
  69. jack_time_t time;
  70. int size;
  71. int overruns;
  72. } event_head_t;
  73. typedef struct midi_port_t midi_port_t;
  74. struct midi_port_t {
  75. midi_port_t *next;
  76. enum PortState state;
  77. alsa_id_t id;
  78. char dev[16];
  79. char name[64];
  80. jack_port_t *jack;
  81. snd_rawmidi_t *rawmidi;
  82. int npfds;
  83. int is_ready;
  84. jack_ringbuffer_t *event_ring;
  85. jack_ringbuffer_t *data_ring;
  86. };
  87. typedef struct input_port_t {
  88. midi_port_t base;
  89. // jack
  90. midi_unpack_t unpack;
  91. // midi
  92. int overruns;
  93. } input_port_t;
  94. typedef struct output_port_t {
  95. midi_port_t base;
  96. // jack
  97. midi_pack_t packer;
  98. // midi
  99. event_head_t next_event;
  100. int todo;
  101. } output_port_t;
  102. typedef struct alsa_rawmidi_t alsa_rawmidi_t;
  103. typedef struct {
  104. alsa_rawmidi_t *midi;
  105. midi_port_t *port;
  106. void *buffer;
  107. jack_time_t frame_time;
  108. jack_nframes_t nframes;
  109. } process_jack_t;
  110. typedef struct {
  111. alsa_rawmidi_t *midi;
  112. int mode;
  113. midi_port_t *port;
  114. struct pollfd *rpfds;
  115. struct pollfd *wpfds;
  116. int max_pfds;
  117. jack_nframes_t cur_frames;
  118. jack_time_t cur_time;
  119. jack_time_t next_time;
  120. } process_midi_t;
  121. typedef struct midi_stream_t {
  122. alsa_rawmidi_t *owner;
  123. int mode;
  124. const char *name;
  125. pthread_t thread;
  126. int wake_pipe[2];
  127. struct {
  128. jack_ringbuffer_t *new_ports;
  129. int nports;
  130. midi_port_t *ports[MAX_PORTS];
  131. } jack, midi;
  132. size_t port_size;
  133. int (*port_init)(alsa_rawmidi_t *midi, midi_port_t *port);
  134. void (*port_close)(alsa_rawmidi_t *midi, midi_port_t *port);
  135. void (*process_jack)(process_jack_t *j);
  136. int (*process_midi)(process_midi_t *m);
  137. } midi_stream_t;
  138. struct alsa_rawmidi_t {
  139. alsa_midi_t ops;
  140. jack_client_t *client;
  141. int keep_walking;
  142. struct {
  143. pthread_t thread;
  144. midi_port_t *ports;
  145. int wake_pipe[2];
  146. } scan;
  147. midi_stream_t in;
  148. midi_stream_t out;
  149. int midi_in_cnt;
  150. int midi_out_cnt;
  151. };
  152. static int input_port_init(alsa_rawmidi_t *midi, midi_port_t *port);
  153. static void input_port_close(alsa_rawmidi_t *midi, midi_port_t *port);
  154. static void do_jack_input(process_jack_t *j);
  155. static int do_midi_input(process_midi_t *m);
  156. static int output_port_init(alsa_rawmidi_t *midi, midi_port_t *port);
  157. static void output_port_close(alsa_rawmidi_t *midi, midi_port_t *port);
  158. static void do_jack_output(process_jack_t *j);
  159. static int do_midi_output(process_midi_t *m);
  160. static
  161. int stream_init(midi_stream_t *s, alsa_rawmidi_t *midi, const char *name)
  162. {
  163. s->owner = midi;
  164. s->name = name;
  165. if (pipe(s->wake_pipe)==-1) {
  166. s->wake_pipe[0] = -1;
  167. error_log("pipe() in stream_init(%s) failed: %s", name, strerror(errno));
  168. return -errno;
  169. }
  170. s->jack.new_ports = jack_ringbuffer_create(sizeof(midi_port_t*)*MAX_PORTS);
  171. s->midi.new_ports = jack_ringbuffer_create(sizeof(midi_port_t*)*MAX_PORTS);
  172. if (!s->jack.new_ports || !s->midi.new_ports)
  173. return -ENOMEM;
  174. return 0;
  175. }
  176. static
  177. void stream_close(midi_stream_t *s)
  178. {
  179. if (s->wake_pipe[0] != -1) {
  180. close(s->wake_pipe[0]);
  181. close(s->wake_pipe[1]);
  182. }
  183. if (s->jack.new_ports)
  184. jack_ringbuffer_free(s->jack.new_ports);
  185. if (s->midi.new_ports)
  186. jack_ringbuffer_free(s->midi.new_ports);
  187. }
  188. static void alsa_rawmidi_delete(alsa_midi_t *m);
  189. static int alsa_rawmidi_attach(alsa_midi_t *m);
  190. static int alsa_rawmidi_detach(alsa_midi_t *m);
  191. static int alsa_rawmidi_start(alsa_midi_t *m);
  192. static int alsa_rawmidi_stop(alsa_midi_t *m);
  193. static void alsa_rawmidi_read(alsa_midi_t *m, jack_nframes_t nframes);
  194. static void alsa_rawmidi_write(alsa_midi_t *m, jack_nframes_t nframes);
  195. alsa_midi_t* alsa_rawmidi_new(jack_client_t *jack)
  196. {
  197. alsa_rawmidi_t *midi = calloc(1, sizeof(alsa_rawmidi_t));
  198. if (!midi)
  199. goto fail_0;
  200. midi->client = jack;
  201. if (pipe(midi->scan.wake_pipe)==-1) {
  202. error_log("pipe() in alsa_midi_new failed: %s", strerror(errno));
  203. goto fail_1;
  204. }
  205. if (stream_init(&midi->in, midi, "in"))
  206. goto fail_2;
  207. midi->in.mode = POLLIN;
  208. midi->in.port_size = sizeof(input_port_t);
  209. midi->in.port_init = input_port_init;
  210. midi->in.port_close = input_port_close;
  211. midi->in.process_jack = do_jack_input;
  212. midi->in.process_midi = do_midi_input;
  213. if (stream_init(&midi->out, midi, "out"))
  214. goto fail_3;
  215. midi->out.mode = POLLOUT;
  216. midi->out.port_size = sizeof(output_port_t);
  217. midi->out.port_init = output_port_init;
  218. midi->out.port_close = output_port_close;
  219. midi->out.process_jack = do_jack_output;
  220. midi->out.process_midi = do_midi_output;
  221. midi->ops.destroy = alsa_rawmidi_delete;
  222. midi->ops.attach = alsa_rawmidi_attach;
  223. midi->ops.detach = alsa_rawmidi_detach;
  224. midi->ops.start = alsa_rawmidi_start;
  225. midi->ops.stop = alsa_rawmidi_stop;
  226. midi->ops.read = alsa_rawmidi_read;
  227. midi->ops.write = alsa_rawmidi_write;
  228. midi->midi_in_cnt = 0;
  229. midi->midi_out_cnt = 0;
  230. return &midi->ops;
  231. fail_3:
  232. stream_close(&midi->out);
  233. fail_2:
  234. stream_close(&midi->in);
  235. close(midi->scan.wake_pipe[1]);
  236. close(midi->scan.wake_pipe[0]);
  237. fail_1:
  238. free(midi);
  239. fail_0:
  240. return NULL;
  241. }
  242. static
  243. midi_port_t** scan_port_del(alsa_rawmidi_t *midi, midi_port_t **list);
  244. static
  245. void alsa_rawmidi_delete(alsa_midi_t *m)
  246. {
  247. alsa_rawmidi_t *midi = (alsa_rawmidi_t*)m;
  248. alsa_rawmidi_detach(m);
  249. stream_close(&midi->out);
  250. stream_close(&midi->in);
  251. close(midi->scan.wake_pipe[0]);
  252. close(midi->scan.wake_pipe[1]);
  253. free(midi);
  254. }
  255. static void* scan_thread(void *);
  256. static void *midi_thread(void *arg);
  257. static
  258. int alsa_rawmidi_attach(alsa_midi_t *m)
  259. {
  260. return 0;
  261. }
  262. static
  263. int alsa_rawmidi_detach(alsa_midi_t *m)
  264. {
  265. alsa_rawmidi_t *midi = (alsa_rawmidi_t*)m;
  266. midi_port_t **list;
  267. alsa_rawmidi_stop(m);
  268. list = &midi->scan.ports;
  269. while (*list) {
  270. (*list)->state = PORT_REMOVED_FROM_JACK;
  271. list = scan_port_del(midi, list);
  272. }
  273. return 0;
  274. }
  275. static
  276. int alsa_rawmidi_start(alsa_midi_t *m)
  277. {
  278. alsa_rawmidi_t *midi = (alsa_rawmidi_t*)m;
  279. int err;
  280. char c = 'q';
  281. if (midi->keep_walking == 1)
  282. return -EALREADY;
  283. midi->keep_walking = 1;
  284. if ((err = jack_client_create_thread(midi->client, &midi->in.thread, MIDI_THREAD_PRIO, jack_is_realtime(midi->client), midi_thread, &midi->in))) {
  285. midi->keep_walking = 0;
  286. return err;
  287. }
  288. if ((err = jack_client_create_thread(midi->client, &midi->out.thread, MIDI_THREAD_PRIO, jack_is_realtime(midi->client), midi_thread, &midi->out))) {
  289. midi->keep_walking = 0;
  290. write(midi->in.wake_pipe[1], &c, 1);
  291. pthread_join(midi->in.thread, NULL);
  292. return err;
  293. }
  294. if ((err = jack_client_create_thread(midi->client, &midi->scan.thread, 0, 0, scan_thread, midi))) {
  295. midi->keep_walking = 0;
  296. write(midi->in.wake_pipe[1], &c, 1);
  297. write(midi->out.wake_pipe[1], &c, 1);
  298. pthread_join(midi->in.thread, NULL);
  299. pthread_join(midi->out.thread, NULL);
  300. return err;
  301. }
  302. return 0;
  303. }
  304. static
  305. int alsa_rawmidi_stop(alsa_midi_t *m)
  306. {
  307. alsa_rawmidi_t *midi = (alsa_rawmidi_t*)m;
  308. char c = 'q';
  309. if (midi->keep_walking == 0)
  310. return -EALREADY;
  311. midi->keep_walking = 0;
  312. write(midi->in.wake_pipe[1], &c, 1);
  313. write(midi->out.wake_pipe[1], &c, 1);
  314. write(midi->scan.wake_pipe[1], &c, 1);
  315. pthread_join(midi->in.thread, NULL);
  316. pthread_join(midi->out.thread, NULL);
  317. pthread_join(midi->scan.thread, NULL);
  318. // ports are freed in alsa_midi_detach()
  319. return 0;
  320. }
  321. static void jack_process(midi_stream_t *str, jack_nframes_t nframes);
  322. static
  323. void alsa_rawmidi_read(alsa_midi_t *m, jack_nframes_t nframes)
  324. {
  325. alsa_rawmidi_t *midi = (alsa_rawmidi_t*)m;
  326. jack_process(&midi->in, nframes);
  327. }
  328. static
  329. void alsa_rawmidi_write(alsa_midi_t *m, jack_nframes_t nframes)
  330. {
  331. alsa_rawmidi_t *midi = (alsa_rawmidi_t*)m;
  332. jack_process(&midi->out, nframes);
  333. }
  334. /*
  335. * -----------------------------------------------------------------------------
  336. */
  337. static inline
  338. int can_pass(size_t sz, jack_ringbuffer_t *in, jack_ringbuffer_t *out)
  339. {
  340. return jack_ringbuffer_read_space(in) >= sz && jack_ringbuffer_write_space(out) >= sz;
  341. }
  342. static
  343. void midi_port_init(const alsa_rawmidi_t *midi, midi_port_t *port, snd_rawmidi_info_t *info, const alsa_id_t *id)
  344. {
  345. const char *name;
  346. char *c;
  347. port->id = *id;
  348. snprintf(port->dev, sizeof(port->dev), "hw:%d,%d,%d", id->id[0], id->id[1], id->id[3]);
  349. name = snd_rawmidi_info_get_subdevice_name(info);
  350. if (!strlen(name))
  351. name = snd_rawmidi_info_get_name(info);
  352. snprintf(port->name, sizeof(port->name), "%s %s %s", port->id.id[2] ? "out":"in", port->dev, name);
  353. // replace all offending characters with '-'
  354. for (c=port->name; *c; ++c)
  355. if (!isalnum(*c))
  356. *c = '-';
  357. port->state = PORT_CREATED;
  358. }
  359. static
  360. inline int midi_port_open_jack(alsa_rawmidi_t *midi, midi_port_t *port, int type, const char *alias)
  361. {
  362. char name[128];
  363. if (type & JackPortIsOutput)
  364. snprintf(name, sizeof(name), "system:midi_capture_%d", ++midi->midi_in_cnt);
  365. else
  366. snprintf(name, sizeof(name), "system:midi_playback_%d", ++midi->midi_out_cnt);
  367. port->jack = jack_port_register(midi->client, name, JACK_DEFAULT_MIDI_TYPE,
  368. type | JackPortIsPhysical | JackPortIsTerminal, 0);
  369. if (port->jack)
  370. jack_port_set_alias(port->jack, alias);
  371. return port->jack == NULL;
  372. }
  373. static
  374. int midi_port_open(alsa_rawmidi_t *midi, midi_port_t *port)
  375. {
  376. int err;
  377. int type;
  378. char name[64];
  379. snd_rawmidi_t **in = NULL;
  380. snd_rawmidi_t **out = NULL;
  381. if (port->id.id[2] == 0) {
  382. in = &port->rawmidi;
  383. type = JackPortIsOutput;
  384. } else {
  385. out = &port->rawmidi;
  386. type = JackPortIsInput;
  387. }
  388. if ((err = snd_rawmidi_open(in, out, port->dev, SND_RAWMIDI_NONBLOCK))<0)
  389. return err;
  390. /* Some devices (emu10k1) have subdevs with the same name,
  391. * and we need to generate unique port name for jack */
  392. snprintf(name, sizeof(name), "%s", port->name);
  393. if (midi_port_open_jack(midi, port, type, name)) {
  394. int num;
  395. num = port->id.id[3] ? port->id.id[3] : port->id.id[1];
  396. snprintf(name, sizeof(name), "%s %d", port->name, num);
  397. if (midi_port_open_jack(midi, port, type, name))
  398. return 2;
  399. }
  400. if ((port->event_ring = jack_ringbuffer_create(MAX_EVENTS*sizeof(event_head_t)))==NULL)
  401. return 3;
  402. if ((port->data_ring = jack_ringbuffer_create(MAX_DATA))==NULL)
  403. return 4;
  404. return 0;
  405. }
  406. static
  407. void midi_port_close(const alsa_rawmidi_t *midi, midi_port_t *port)
  408. {
  409. if (port->data_ring) {
  410. jack_ringbuffer_free(port->data_ring);
  411. port->data_ring = NULL;
  412. }
  413. if (port->event_ring) {
  414. jack_ringbuffer_free(port->event_ring);
  415. port->event_ring = NULL;
  416. }
  417. if (port->jack) {
  418. jack_port_unregister(midi->client, port->jack);
  419. port->jack = NULL;
  420. }
  421. if (port->rawmidi) {
  422. snd_rawmidi_close(port->rawmidi);
  423. port->rawmidi = NULL;
  424. }
  425. }
  426. /*
  427. * ------------------------- Port scanning -------------------------------
  428. */
  429. static
  430. int alsa_id_before(const alsa_id_t *p1, const alsa_id_t *p2)
  431. {
  432. int i;
  433. for (i=0; i<4; ++i) {
  434. if (p1->id[i] < p2->id[i])
  435. return 1;
  436. else if (p1->id[i] > p2->id[i])
  437. return 0;
  438. }
  439. return 0;
  440. }
  441. static
  442. void alsa_get_id(alsa_id_t *id, snd_rawmidi_info_t *info)
  443. {
  444. id->id[0] = snd_rawmidi_info_get_card(info);
  445. id->id[1] = snd_rawmidi_info_get_device(info);
  446. id->id[2] = snd_rawmidi_info_get_stream(info) == SND_RAWMIDI_STREAM_OUTPUT ? 1 : 0;
  447. id->id[3] = snd_rawmidi_info_get_subdevice(info);
  448. }
  449. #include <stdio.h>
  450. static inline
  451. void alsa_error(const char *func, int err)
  452. {
  453. error_log("%s() failed", snd_strerror(err));
  454. }
  455. typedef struct {
  456. alsa_rawmidi_t *midi;
  457. midi_port_t **iterator;
  458. snd_ctl_t *ctl;
  459. snd_rawmidi_info_t *info;
  460. } scan_t;
  461. static midi_port_t** scan_port_del(alsa_rawmidi_t *midi, midi_port_t **list);
  462. static
  463. void scan_cleanup(alsa_rawmidi_t *midi)
  464. {
  465. midi_port_t **list = &midi->scan.ports;
  466. while (*list)
  467. list = scan_port_del(midi, list);
  468. }
  469. static void scan_card(scan_t *scan);
  470. static midi_port_t** scan_port_open(alsa_rawmidi_t *midi, midi_port_t **list);
  471. void scan_cycle(alsa_rawmidi_t *midi)
  472. {
  473. int card = -1, err;
  474. scan_t scan;
  475. midi_port_t **ports;
  476. //debug_log("scan: cleanup");
  477. scan_cleanup(midi);
  478. scan.midi = midi;
  479. scan.iterator = &midi->scan.ports;
  480. snd_rawmidi_info_alloca(&scan.info);
  481. //debug_log("scan: rescan");
  482. while ((err = snd_card_next(&card))>=0 && card>=0) {
  483. char name[32];
  484. snprintf(name, sizeof(name), "hw:%d", card);
  485. if ((err = snd_ctl_open(&scan.ctl, name, SND_CTL_NONBLOCK))>=0) {
  486. scan_card(&scan);
  487. snd_ctl_close(scan.ctl);
  488. } else
  489. alsa_error("scan: snd_ctl_open", err);
  490. }
  491. // delayed open to workaround alsa<1.0.14 bug (can't open more than 1 subdevice if ctl is opened).
  492. ports = &midi->scan.ports;
  493. while (*ports) {
  494. midi_port_t *port = *ports;
  495. if (port->state == PORT_CREATED)
  496. ports = scan_port_open(midi, ports);
  497. else
  498. ports = &port->next;
  499. }
  500. }
  501. static void scan_device(scan_t *scan);
  502. static
  503. void scan_card(scan_t *scan)
  504. {
  505. int device = -1;
  506. int err;
  507. while ((err = snd_ctl_rawmidi_next_device(scan->ctl, &device))>=0 && device >=0) {
  508. snd_rawmidi_info_set_device(scan->info, device);
  509. snd_rawmidi_info_set_stream(scan->info, SND_RAWMIDI_STREAM_INPUT);
  510. snd_rawmidi_info_set_subdevice(scan->info, 0);
  511. if ((err = snd_ctl_rawmidi_info(scan->ctl, scan->info))>=0)
  512. scan_device(scan);
  513. else if (err != -ENOENT)
  514. alsa_error("scan: snd_ctl_rawmidi_info on device", err);
  515. snd_rawmidi_info_set_stream(scan->info, SND_RAWMIDI_STREAM_OUTPUT);
  516. snd_rawmidi_info_set_subdevice(scan->info, 0);
  517. if ((err = snd_ctl_rawmidi_info(scan->ctl, scan->info))>=0)
  518. scan_device(scan);
  519. else if (err != -ENOENT)
  520. alsa_error("scan: snd_ctl_rawmidi_info on device", err);
  521. }
  522. }
  523. static void scan_port_update(scan_t *scan);
  524. static
  525. void scan_device(scan_t *scan)
  526. {
  527. int err;
  528. int sub, nsubs = 0;
  529. nsubs = snd_rawmidi_info_get_subdevices_count(scan->info);
  530. for (sub=0; sub<nsubs; ++sub) {
  531. snd_rawmidi_info_set_subdevice(scan->info, sub);
  532. if ((err = snd_ctl_rawmidi_info(scan->ctl, scan->info)) < 0) {
  533. alsa_error("scan: snd_ctl_rawmidi_info on subdevice", err);
  534. continue;
  535. }
  536. scan_port_update(scan);
  537. }
  538. }
  539. static midi_port_t** scan_port_add(scan_t *scan, const alsa_id_t *id, midi_port_t **list);
  540. static
  541. void scan_port_update(scan_t *scan)
  542. {
  543. midi_port_t **list = scan->iterator;
  544. alsa_id_t id;
  545. alsa_get_id(&id, scan->info);
  546. while (*list && alsa_id_before(&(*list)->id, &id))
  547. list = scan_port_del(scan->midi, list);
  548. if (!*list || alsa_id_before(&id, &(*list)->id))
  549. list = scan_port_add(scan, &id, list);
  550. else if (*list)
  551. list = &(*list)->next;
  552. scan->iterator = list;
  553. }
  554. static
  555. midi_port_t** scan_port_add(scan_t *scan, const alsa_id_t *id, midi_port_t **list)
  556. {
  557. midi_port_t *port;
  558. midi_stream_t *str = id->id[2] ? &scan->midi->out : &scan->midi->in;
  559. port = calloc(1, str->port_size);
  560. if (!port)
  561. return list;
  562. midi_port_init(scan->midi, port, scan->info, id);
  563. port->next = *list;
  564. *list = port;
  565. info_log("scan: added port %s %s", port->dev, port->name);
  566. return &port->next;
  567. }
  568. static
  569. midi_port_t** scan_port_open(alsa_rawmidi_t *midi, midi_port_t **list)
  570. {
  571. int ret;
  572. midi_stream_t *str;
  573. midi_port_t *port;
  574. port = *list;
  575. str = port->id.id[2] ? &midi->out : &midi->in;
  576. if (jack_ringbuffer_write_space(str->jack.new_ports) < sizeof(port))
  577. goto fail_0;
  578. ret = midi_port_open(midi, port);
  579. if (ret)
  580. goto fail_1;
  581. if ((str->port_init)(midi, port))
  582. goto fail_2;
  583. port->state = PORT_ADDED_TO_JACK;
  584. jack_ringbuffer_write(str->jack.new_ports, (char*) &port, sizeof(port));
  585. info_log("scan: opened port %s %s", port->dev, port->name);
  586. return &port->next;
  587. fail_2:
  588. (str->port_close)(midi, port);
  589. fail_1:
  590. midi_port_close(midi, port);
  591. port->state = PORT_ZOMBIFIED;
  592. error_log("scan: can't open port %s %s, error code %d, zombified", port->dev, port->name, ret);
  593. return &port->next;
  594. fail_0:
  595. error_log("scan: can't open port %s %s", port->dev, port->name);
  596. return &port->next;
  597. }
  598. static
  599. midi_port_t** scan_port_del(alsa_rawmidi_t *midi, midi_port_t **list)
  600. {
  601. midi_port_t *port = *list;
  602. if (port->state == PORT_REMOVED_FROM_JACK) {
  603. info_log("scan: deleted port %s %s", port->dev, port->name);
  604. *list = port->next;
  605. if (port->id.id[2] )
  606. (midi->out.port_close)(midi, port);
  607. else
  608. (midi->in.port_close)(midi, port);
  609. midi_port_close(midi, port);
  610. free(port);
  611. return list;
  612. } else {
  613. //debug_log("can't delete port %s, wrong state: %d", port->name, (int)port->state);
  614. return &port->next;
  615. }
  616. }
  617. void* scan_thread(void *arg)
  618. {
  619. alsa_rawmidi_t *midi = arg;
  620. struct pollfd wakeup;
  621. wakeup.fd = midi->scan.wake_pipe[0];
  622. wakeup.events = POLLIN|POLLERR|POLLNVAL;
  623. while (midi->keep_walking) {
  624. int res;
  625. //error_log("scanning....");
  626. scan_cycle(midi);
  627. res = poll(&wakeup, 1, 2000);
  628. if (res>0) {
  629. char c;
  630. read(wakeup.fd, &c, 1);
  631. } else if (res<0 && errno != EINTR)
  632. break;
  633. }
  634. return NULL;
  635. }
  636. /*
  637. * ------------------------------- Input/Output ------------------------------
  638. */
  639. static
  640. void jack_add_ports(midi_stream_t *str)
  641. {
  642. midi_port_t *port;
  643. while (can_pass(sizeof(port), str->jack.new_ports, str->midi.new_ports) && str->jack.nports < MAX_PORTS) {
  644. jack_ringbuffer_read(str->jack.new_ports, (char*)&port, sizeof(port));
  645. str->jack.ports[str->jack.nports++] = port;
  646. port->state = PORT_ADDED_TO_MIDI;
  647. jack_ringbuffer_write(str->midi.new_ports, (char*)&port, sizeof(port));
  648. }
  649. }
  650. static
  651. void jack_process(midi_stream_t *str, jack_nframes_t nframes)
  652. {
  653. int r, w;
  654. process_jack_t proc;
  655. jack_nframes_t cur_frames;
  656. if (!str->owner->keep_walking)
  657. return;
  658. proc.midi = str->owner;
  659. proc.nframes = nframes;
  660. proc.frame_time = jack_last_frame_time(proc.midi->client);
  661. cur_frames = jack_frame_time(proc.midi->client);
  662. int periods_diff = cur_frames - proc.frame_time;
  663. if (periods_diff < proc.nframes) {
  664. int periods_lost = periods_diff / proc.nframes;
  665. proc.frame_time += periods_lost * proc.nframes;
  666. debug_log("xrun detected: %d periods lost", periods_lost);
  667. }
  668. // process existing ports
  669. for (r=0, w=0; r<str->jack.nports; ++r) {
  670. midi_port_t *port = str->jack.ports[r];
  671. proc.port = port;
  672. assert (port->state > PORT_ADDED_TO_JACK && port->state < PORT_REMOVED_FROM_JACK);
  673. proc.buffer = jack_port_get_buffer(port->jack, nframes);
  674. if (str->mode == POLLIN)
  675. jack_midi_clear_buffer(proc.buffer);
  676. if (port->state == PORT_REMOVED_FROM_MIDI) {
  677. port->state = PORT_REMOVED_FROM_JACK; // this signals to scan thread
  678. continue; // this effectively removes port from the midi->in.jack.ports[]
  679. }
  680. (str->process_jack)(&proc);
  681. if (r != w)
  682. str->jack.ports[w] = port;
  683. ++w;
  684. }
  685. if (str->jack.nports != w) {
  686. debug_log("jack_%s: nports %d -> %d", str->name, str->jack.nports, w);
  687. }
  688. str->jack.nports = w;
  689. jack_add_ports(str); // it makes no sense to add them earlier since they have no data yet
  690. // wake midi thread
  691. write(str->wake_pipe[1], &r, 1);
  692. }
  693. static
  694. void *midi_thread(void *arg)
  695. {
  696. midi_stream_t *str = arg;
  697. alsa_rawmidi_t *midi = str->owner;
  698. struct pollfd pfds[MAX_PFDS];
  699. int npfds;
  700. jack_time_t wait_nsec = 1000*1000*1000; // 1 sec
  701. process_midi_t proc;
  702. proc.midi = midi;
  703. proc.mode = str->mode;
  704. pfds[0].fd = str->wake_pipe[0];
  705. pfds[0].events = POLLIN|POLLERR|POLLNVAL;
  706. npfds = 1;
  707. if (jack_is_realtime(midi->client))
  708. set_threaded_log_function();
  709. //debug_log("midi_thread(%s): enter", str->name);
  710. while (midi->keep_walking) {
  711. int poll_timeout;
  712. int wait_nanosleep;
  713. int r=1, w=1; // read,write pos in pfds
  714. int rp=0, wp=0; // read, write pos in ports
  715. // sleep
  716. //if (wait_nsec != 1000*1000*1000) {
  717. // debug_log("midi_thread(%s): ", str->name);
  718. // assert (wait_nsec == 1000*1000*1000);
  719. //}
  720. poll_timeout = wait_nsec / (1000*1000);
  721. wait_nanosleep = wait_nsec % (1000*1000);
  722. if (wait_nanosleep > NANOSLEEP_RESOLUTION) {
  723. struct timespec ts;
  724. ts.tv_sec = 0;
  725. ts.tv_nsec = wait_nanosleep;
  726. clock_nanosleep(CLOCK_MONOTONIC, 0, &ts, NULL);
  727. }
  728. int res = poll((struct pollfd*)&pfds, npfds, poll_timeout);
  729. //debug_log("midi_thread(%s): poll exit: %d", str->name, res);
  730. if (!midi->keep_walking)
  731. break;
  732. if (res < 0) {
  733. if (errno == EINTR)
  734. continue;
  735. error_log("midi_thread(%s) poll failed: %s", str->name, strerror(errno));
  736. break;
  737. }
  738. // check wakeup pipe
  739. if (pfds[0].revents & ~POLLIN)
  740. break;
  741. if (pfds[0].revents & POLLIN) {
  742. char c;
  743. read(pfds[0].fd, &c, 1);
  744. }
  745. // add new ports
  746. while (jack_ringbuffer_read_space(str->midi.new_ports) >= sizeof(midi_port_t*) && str->midi.nports < MAX_PORTS) {
  747. midi_port_t *port;
  748. jack_ringbuffer_read(str->midi.new_ports, (char*)&port, sizeof(port));
  749. str->midi.ports[str->midi.nports++] = port;
  750. debug_log("midi_thread(%s): added port %s", str->name, port->name);
  751. }
  752. // if (res == 0)
  753. // continue;
  754. // process ports
  755. proc.cur_time = 0; //jack_frame_time(midi->client);
  756. proc.next_time = NFRAMES_INF;
  757. for (rp = 0; rp < str->midi.nports; ++rp) {
  758. midi_port_t *port = str->midi.ports[rp];
  759. proc.cur_time = jack_frame_time(midi->client);
  760. proc.port = port;
  761. proc.rpfds = &pfds[r];
  762. proc.wpfds = &pfds[w];
  763. proc.max_pfds = MAX_PFDS - w;
  764. r += port->npfds;
  765. if (!(str->process_midi)(&proc)) {
  766. port->state = PORT_REMOVED_FROM_MIDI; // this signals to jack thread
  767. continue; // this effectively removes port from array
  768. }
  769. w += port->npfds;
  770. if (rp != wp)
  771. str->midi.ports[wp] = port;
  772. ++wp;
  773. }
  774. if (str->midi.nports != wp) {
  775. debug_log("midi_%s: nports %d -> %d", str->name, str->midi.nports, wp);
  776. }
  777. str->midi.nports = wp;
  778. if (npfds != w) {
  779. debug_log("midi_%s: npfds %d -> %d", str->name, npfds, w);
  780. }
  781. npfds = w;
  782. /*
  783. * Input : ports do not set proc.next_time.
  784. * Output: port sets proc.next_time ONLY if it does not have queued data.
  785. * So, zero timeout will not cause busy-looping.
  786. */
  787. if (proc.next_time < proc.cur_time) {
  788. debug_log("%s: late: next_time = %d, cur_time = %d", str->name, (int)proc.next_time, (int)proc.cur_time);
  789. wait_nsec = 0; // we are late
  790. } else if (proc.next_time != NFRAMES_INF) {
  791. jack_time_t wait_frames = proc.next_time - proc.cur_time;
  792. jack_nframes_t rate = jack_get_sample_rate(midi->client);
  793. wait_nsec = (wait_frames * (1000*1000*1000)) / rate;
  794. debug_log("midi_%s: timeout = %d", str->name, (int)wait_frames);
  795. } else
  796. wait_nsec = 1000*1000*1000;
  797. //debug_log("midi_thread(%s): wait_nsec = %lld", str->name, wait_nsec);
  798. }
  799. return NULL;
  800. }
  801. static
  802. int midi_is_ready(process_midi_t *proc)
  803. {
  804. midi_port_t *port = proc->port;
  805. if (port->npfds) {
  806. unsigned short revents = 0;
  807. int res = snd_rawmidi_poll_descriptors_revents(port->rawmidi, proc->rpfds, port->npfds, &revents);
  808. if (res) {
  809. error_log("snd_rawmidi_poll_descriptors_revents failed on port %s with: %s", port->name, snd_strerror(res));
  810. return 0;
  811. }
  812. if (revents & ~proc->mode) {
  813. debug_log("midi: port %s failed", port->name);
  814. return 0;
  815. }
  816. if (revents & proc->mode) {
  817. port->is_ready = 1;
  818. debug_log("midi: is_ready %s", port->name);
  819. }
  820. }
  821. return 1;
  822. }
  823. static
  824. int midi_update_pfds(process_midi_t *proc)
  825. {
  826. midi_port_t *port = proc->port;
  827. if (port->npfds == 0) {
  828. port->npfds = snd_rawmidi_poll_descriptors_count(port->rawmidi);
  829. if (port->npfds > proc->max_pfds) {
  830. debug_log("midi: not enough pfds for port %s", port->name);
  831. return 0;
  832. }
  833. snd_rawmidi_poll_descriptors(port->rawmidi, proc->wpfds, port->npfds);
  834. } else if (proc->rpfds != proc->wpfds) {
  835. memmove(proc->wpfds, proc->rpfds, sizeof(struct pollfd) * port->npfds);
  836. }
  837. return 1;
  838. }
  839. /*
  840. * ------------------------------------ Input ------------------------------
  841. */
  842. static
  843. int input_port_init(alsa_rawmidi_t *midi, midi_port_t *port)
  844. {
  845. input_port_t *in = (input_port_t*)port;
  846. midi_unpack_init(&in->unpack);
  847. return 0;
  848. }
  849. static
  850. void input_port_close(alsa_rawmidi_t *midi, midi_port_t *port)
  851. {}
  852. /*
  853. * Jack-level input.
  854. */
  855. static
  856. void do_jack_input(process_jack_t *p)
  857. {
  858. input_port_t *port = (input_port_t*) p->port;
  859. event_head_t event;
  860. while (jack_ringbuffer_read_space(port->base.event_ring) >= sizeof(event)) {
  861. jack_ringbuffer_data_t vec[2];
  862. jack_nframes_t time;
  863. int i, todo;
  864. jack_ringbuffer_read(port->base.event_ring, (char*)&event, sizeof(event));
  865. // TODO: take into account possible warping
  866. if ((event.time + p->nframes) < p->frame_time)
  867. time = 0;
  868. else if (event.time >= p->frame_time)
  869. time = p->nframes -1;
  870. else
  871. time = event.time + p->nframes - p->frame_time;
  872. jack_ringbuffer_get_read_vector(port->base.data_ring, vec);
  873. assert ((vec[0].len + vec[1].len) >= event.size);
  874. if (event.overruns)
  875. midi_unpack_reset(&port->unpack);
  876. todo = event.size;
  877. for (i=0; i<2 && todo>0; ++i) {
  878. int avail = todo < vec[i].len ? todo : vec[i].len;
  879. int done = midi_unpack_buf(&port->unpack, (unsigned char*)vec[i].buf, avail, p->buffer, time);
  880. if (done != avail) {
  881. debug_log("jack_in: buffer overflow in port %s", port->base.name);
  882. break;
  883. }
  884. todo -= done;
  885. }
  886. jack_ringbuffer_read_advance(port->base.data_ring, event.size);
  887. }
  888. }
  889. /*
  890. * Low level input.
  891. */
  892. static
  893. int do_midi_input(process_midi_t *proc)
  894. {
  895. input_port_t *port = (input_port_t*) proc->port;
  896. if (!midi_is_ready(proc))
  897. return 0;
  898. if (port->base.is_ready) {
  899. jack_ringbuffer_data_t vec[2];
  900. int res;
  901. jack_ringbuffer_get_write_vector(port->base.data_ring, vec);
  902. if (jack_ringbuffer_write_space(port->base.event_ring) < sizeof(event_head_t) || vec[0].len < 1) {
  903. port->overruns++;
  904. if (port->base.npfds) {
  905. debug_log("midi_in: internal overflow on %s", port->base.name);
  906. }
  907. // remove from poll to prevent busy-looping
  908. port->base.npfds = 0;
  909. return 1;
  910. }
  911. res = snd_rawmidi_read(port->base.rawmidi, vec[0].buf, vec[0].len);
  912. if (res < 0 && res != -EWOULDBLOCK) {
  913. error_log("midi_in: reading from port %s failed: %s", port->base.name, snd_strerror(res));
  914. return 0;
  915. } else if (res > 0) {
  916. event_head_t event;
  917. event.time = proc->cur_time;
  918. event.size = res;
  919. event.overruns = port->overruns;
  920. port->overruns = 0;
  921. debug_log("midi_in: read %d bytes at %d", (int)event.size, (int)event.time);
  922. jack_ringbuffer_write_advance(port->base.data_ring, event.size);
  923. jack_ringbuffer_write(port->base.event_ring, (char*)&event, sizeof(event));
  924. }
  925. port->base.is_ready = 0;
  926. }
  927. if (!midi_update_pfds(proc))
  928. return 0;
  929. return 1;
  930. }
  931. /*
  932. * ------------------------------------ Output ------------------------------
  933. */
  934. static int output_port_init(alsa_rawmidi_t *midi, midi_port_t *port)
  935. {
  936. output_port_t *out = (output_port_t*)port;
  937. midi_pack_reset(&out->packer);
  938. out->next_event.time = 0;
  939. out->next_event.size = 0;
  940. out->todo = 0;
  941. return 0;
  942. }
  943. static void output_port_close(alsa_rawmidi_t *midi, midi_port_t *port)
  944. {}
  945. static
  946. void do_jack_output(process_jack_t *proc)
  947. {
  948. output_port_t *port = (output_port_t*) proc->port;
  949. int nevents = jack_midi_get_event_count(proc->buffer);
  950. int i;
  951. if (nevents) {
  952. debug_log("jack_out: %d events in %s", nevents, port->base.name);
  953. }
  954. for (i=0; i<nevents; ++i) {
  955. jack_midi_event_t event;
  956. event_head_t hdr;
  957. jack_midi_event_get(&event, proc->buffer, i);
  958. if (jack_ringbuffer_write_space(port->base.data_ring) < event.size || jack_ringbuffer_write_space(port->base.event_ring) < sizeof(hdr)) {
  959. debug_log("jack_out: output buffer overflow on %s", port->base.name);
  960. break;
  961. }
  962. midi_pack_event(&port->packer, &event);
  963. jack_ringbuffer_write(port->base.data_ring, (char*)event.buffer, event.size);
  964. hdr.time = proc->frame_time + event.time + proc->nframes;
  965. hdr.size = event.size;
  966. jack_ringbuffer_write(port->base.event_ring, (char*)&hdr, sizeof(hdr));
  967. debug_log("jack_out: sent %d-byte event at %ld", (int)event.size, (long)event.time);
  968. }
  969. }
  970. static
  971. int do_midi_output(process_midi_t *proc)
  972. {
  973. int worked = 0;
  974. output_port_t *port = (output_port_t*) proc->port;
  975. if (!midi_is_ready(proc))
  976. return 0;
  977. // eat events
  978. while (port->next_event.time <= proc->cur_time) {
  979. port->todo += port->next_event.size;
  980. if (jack_ringbuffer_read(port->base.event_ring, (char*)&port->next_event, sizeof(port->next_event))!=sizeof(port->next_event)) {
  981. port->next_event.time = 0;
  982. port->next_event.size = 0;
  983. break;
  984. } else {
  985. debug_log("midi_out: at %ld got %d bytes for %ld", (long)proc->cur_time, (int)port->next_event.size, (long)port->next_event.time);
  986. }
  987. }
  988. if (port->todo) {
  989. debug_log("midi_out: todo = %d at %ld", (int)port->todo, (long)proc->cur_time);
  990. }
  991. // calc next wakeup time
  992. if (!port->todo && port->next_event.time && port->next_event.time < proc->next_time) {
  993. proc->next_time = port->next_event.time;
  994. debug_log("midi_out: next_time = %ld", (long)proc->next_time);
  995. }
  996. if (port->todo && port->base.is_ready) {
  997. // write data
  998. int size = port->todo;
  999. int res;
  1000. jack_ringbuffer_data_t vec[2];
  1001. jack_ringbuffer_get_read_vector(port->base.data_ring, vec);
  1002. if (size > vec[0].len) {
  1003. size = vec[0].len;
  1004. assert (size > 0);
  1005. }
  1006. res = snd_rawmidi_write(port->base.rawmidi, vec[0].buf, size);
  1007. if (res > 0) {
  1008. jack_ringbuffer_read_advance(port->base.data_ring, res);
  1009. debug_log("midi_out: written %d bytes to %s", res, port->base.name);
  1010. port->todo -= res;
  1011. worked = 1;
  1012. } else if (res == -EWOULDBLOCK) {
  1013. port->base.is_ready = 0;
  1014. debug_log("midi_out: -EWOULDBLOCK on %s", port->base.name);
  1015. return 1;
  1016. } else {
  1017. error_log("midi_out: writing to port %s failed: %s", port->base.name, snd_strerror(res));
  1018. return 0;
  1019. }
  1020. snd_rawmidi_drain(port->base.rawmidi);
  1021. }
  1022. // update pfds for this port
  1023. if (!midi_update_pfds(proc))
  1024. return 0;
  1025. if (!port->todo) {
  1026. int i;
  1027. if (worked) {
  1028. debug_log("midi_out: relaxing on %s", port->base.name);
  1029. }
  1030. for (i=0; i<port->base.npfds; ++i)
  1031. proc->wpfds[i].events &= ~POLLOUT;
  1032. } else {
  1033. int i;
  1034. for (i=0; i<port->base.npfds; ++i)
  1035. proc->wpfds[i].events |= POLLOUT;
  1036. }
  1037. return 1;
  1038. }