jack2 codebase
You can not select more than 25 topics Topics must start with a letter or number, can include dashes ('-') and can be up to 35 characters long.

1126 lines
40KB

  1. /*
  2. Copyright (C) 2001 Paul Davis
  3. Copyright (C) 2008 Romain Moret at Grame
  4. This program is free software; you can redistribute it and/or modify
  5. it under the terms of the GNU General Public License as published by
  6. the Free Software Foundation; either version 2 of the License, or
  7. (at your option) any later version.
  8. This program is distributed in the hope that it will be useful,
  9. but WITHOUT ANY WARRANTY; without even the implied warranty of
  10. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  11. GNU General Public License for more details.
  12. You should have received a copy of the GNU General Public License
  13. along with this program; if not, write to the Free Software
  14. Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  15. */
  16. #ifdef WIN32
  17. #include <malloc.h>
  18. #endif
  19. #include "JackNetOneDriver.h"
  20. #include "JackEngineControl.h"
  21. #include "JackGraphManager.h"
  22. #include "JackWaitThreadedDriver.h"
  23. #include "JackTools.h"
  24. #include "driver_interface.h"
  25. #include "netjack.h"
  26. #include "netjack_packet.h"
  27. #if HAVE_SAMPLERATE
  28. #include "samplerate.h"
  29. #endif
  30. #if HAVE_CELT
  31. #include "celt/celt.h"
  32. #endif
  33. #define MIN(x,y) ((x)<(y) ? (x) : (y))
  34. using namespace std;
  35. namespace Jack
  36. {
  37. JackNetOneDriver::JackNetOneDriver ( const char* name, const char* alias, JackLockedEngine* engine, JackSynchro* table,
  38. int port, int mtu, int capture_ports, int playback_ports, int midi_input_ports, int midi_output_ports,
  39. int sample_rate, int period_size, int resample_factor,
  40. const char* net_name, uint transport_sync, int bitdepth, int use_autoconfig,
  41. int latency, int redundancy, int dont_htonl_floats, int always_deadline, int jitter_val )
  42. : JackAudioDriver ( name, alias, engine, table )
  43. {
  44. jack_log ( "JackNetOneDriver::JackNetOneDriver port %d", port );
  45. #ifdef WIN32
  46. WSADATA wsa;
  47. int rc = WSAStartup(MAKEWORD(2,0),&wsa);
  48. #endif
  49. netjack_init( & (this->netj),
  50. NULL, // client
  51. name,
  52. capture_ports,
  53. playback_ports,
  54. midi_input_ports,
  55. midi_output_ports,
  56. sample_rate,
  57. period_size,
  58. port,
  59. transport_sync,
  60. resample_factor,
  61. 0,
  62. bitdepth,
  63. use_autoconfig,
  64. latency,
  65. redundancy,
  66. dont_htonl_floats,
  67. always_deadline,
  68. jitter_val);
  69. }
  70. JackNetOneDriver::~JackNetOneDriver()
  71. {
  72. // No destructor yet.
  73. }
  74. //open, close, attach and detach------------------------------------------------------
  75. int JackNetOneDriver::Open ( jack_nframes_t buffer_size, jack_nframes_t samplerate, bool capturing, bool playing,
  76. int inchannels, int outchannels, bool monitor,
  77. const char* capture_driver_name, const char* playback_driver_name,
  78. jack_nframes_t capture_latency, jack_nframes_t playback_latency )
  79. {
  80. if ( JackAudioDriver::Open ( buffer_size,
  81. samplerate,
  82. capturing,
  83. playing,
  84. inchannels,
  85. outchannels,
  86. monitor,
  87. capture_driver_name,
  88. playback_driver_name,
  89. capture_latency,
  90. playback_latency ) == 0 )
  91. {
  92. fEngineControl->fPeriod = 0;
  93. fEngineControl->fComputation = 500 * 1000;
  94. fEngineControl->fConstraint = 500 * 1000;
  95. return 0;
  96. }
  97. else
  98. {
  99. jack_error( "open fail" );
  100. return -1;
  101. }
  102. }
  103. int JackNetOneDriver::Close()
  104. {
  105. FreePorts();
  106. netjack_release( &netj );
  107. return JackDriver::Close();
  108. }
  109. int JackNetOneDriver::Attach()
  110. {
  111. return 0;
  112. }
  113. int JackNetOneDriver::Detach()
  114. {
  115. return 0;
  116. }
  117. int JackNetOneDriver::AllocPorts()
  118. {
  119. jack_port_id_t port_id;
  120. char buf[64];
  121. unsigned int chn;
  122. //if (netj.handle_transport_sync)
  123. // jack_set_sync_callback(netj.client, (JackSyncCallback) net_driver_sync_cb, NULL);
  124. for (chn = 0; chn < netj.capture_channels_audio; chn++) {
  125. snprintf (buf, sizeof(buf) - 1, "system:capture_%u", chn + 1);
  126. if ( ( port_id = fGraphManager->AllocatePort ( fClientControl.fRefNum, buf, JACK_DEFAULT_AUDIO_TYPE,
  127. CaptureDriverFlags, fEngineControl->fBufferSize ) ) == NO_PORT )
  128. {
  129. jack_error ( "driver: cannot register port for %s", buf );
  130. return -1;
  131. }
  132. //port = fGraphManager->GetPort ( port_id );
  133. netj.capture_ports =
  134. jack_slist_append (netj.capture_ports, (void *)(intptr_t)port_id);
  135. if( netj.bitdepth == CELT_MODE ) {
  136. #if HAVE_CELT
  137. #if HAVE_CELT_API_0_7
  138. celt_int32 lookahead;
  139. CELTMode *celt_mode = celt_mode_create( netj.sample_rate, netj.period_size, NULL );
  140. netj.capture_srcs = jack_slist_append(netj.capture_srcs, celt_decoder_create( celt_mode, 1, NULL ) );
  141. #else
  142. celt_int32_t lookahead;
  143. CELTMode *celt_mode = celt_mode_create( netj.sample_rate, 1, netj.period_size, NULL );
  144. netj.capture_srcs = jack_slist_append(netj.capture_srcs, celt_decoder_create( celt_mode ) );
  145. #endif
  146. celt_mode_info( celt_mode, CELT_GET_LOOKAHEAD, &lookahead );
  147. netj.codec_latency = 2*lookahead;
  148. #endif
  149. } else {
  150. #if HAVE_SAMPLERATE
  151. netj.capture_srcs = jack_slist_append(netj.capture_srcs, (void *)src_new(SRC_LINEAR, 1, NULL));
  152. #endif
  153. }
  154. }
  155. for (chn = netj.capture_channels_audio; chn < netj.capture_channels; chn++) {
  156. snprintf (buf, sizeof(buf) - 1, "system:capture_%u", chn + 1);
  157. if ( ( port_id = fGraphManager->AllocatePort ( fClientControl.fRefNum, buf, JACK_DEFAULT_MIDI_TYPE,
  158. CaptureDriverFlags, fEngineControl->fBufferSize ) ) == NO_PORT )
  159. {
  160. jack_error ( "driver: cannot register port for %s", buf );
  161. return -1;
  162. }
  163. //port = fGraphManager->GetPort ( port_id );
  164. netj.capture_ports =
  165. jack_slist_append (netj.capture_ports, (void *)(intptr_t)port_id);
  166. }
  167. for (chn = 0; chn < netj.playback_channels_audio; chn++) {
  168. snprintf (buf, sizeof(buf) - 1, "system:playback_%u", chn + 1);
  169. if ( ( port_id = fGraphManager->AllocatePort ( fClientControl.fRefNum, buf, JACK_DEFAULT_AUDIO_TYPE,
  170. PlaybackDriverFlags, fEngineControl->fBufferSize ) ) == NO_PORT )
  171. {
  172. jack_error ( "driver: cannot register port for %s", buf );
  173. return -1;
  174. }
  175. //port = fGraphManager->GetPort ( port_id );
  176. netj.playback_ports =
  177. jack_slist_append (netj.playback_ports, (void *)(intptr_t)port_id);
  178. if( netj.bitdepth == CELT_MODE ) {
  179. #if HAVE_CELT
  180. #if HAVE_CELT_API_0_7
  181. CELTMode *celt_mode = celt_mode_create( netj.sample_rate, netj.period_size, NULL );
  182. netj.playback_srcs = jack_slist_append(netj.playback_srcs, celt_encoder_create( celt_mode, 1, NULL ) );
  183. #else
  184. CELTMode *celt_mode = celt_mode_create( netj.sample_rate, 1, netj.period_size, NULL );
  185. netj.playback_srcs = jack_slist_append(netj.playback_srcs, celt_encoder_create( celt_mode ) );
  186. #endif
  187. #endif
  188. } else {
  189. #if HAVE_SAMPLERATE
  190. netj.playback_srcs = jack_slist_append(netj.playback_srcs, (void *)src_new(SRC_LINEAR, 1, NULL));
  191. #endif
  192. }
  193. }
  194. for (chn = netj.playback_channels_audio; chn < netj.playback_channels; chn++) {
  195. snprintf (buf, sizeof(buf) - 1, "system:playback_%u", chn + 1);
  196. if ( ( port_id = fGraphManager->AllocatePort ( fClientControl.fRefNum, buf, JACK_DEFAULT_MIDI_TYPE,
  197. PlaybackDriverFlags, fEngineControl->fBufferSize ) ) == NO_PORT )
  198. {
  199. jack_error ( "driver: cannot register port for %s", buf );
  200. return -1;
  201. }
  202. //port = fGraphManager->GetPort ( port_id );
  203. netj.playback_ports =
  204. jack_slist_append (netj.playback_ports, (void *)(intptr_t)port_id);
  205. }
  206. return 0;
  207. }
  208. //init and restart--------------------------------------------------------------------
  209. bool JackNetOneDriver::Initialize()
  210. {
  211. jack_log ( "JackNetOneDriver::Init()" );
  212. if( global_packcache != NULL ) {
  213. FreePorts();
  214. netjack_release( &netj );
  215. }
  216. //display some additional infos
  217. jack_info ( "NetOne driver started" );
  218. if( netjack_startup( &netj ) ) {
  219. return false;
  220. }
  221. //register jack ports
  222. if ( AllocPorts() != 0 )
  223. {
  224. jack_error ( "Can't allocate ports." );
  225. return false;
  226. }
  227. //monitor
  228. //driver parametering
  229. JackAudioDriver::SetBufferSize ( netj.period_size );
  230. JackAudioDriver::SetSampleRate ( netj.sample_rate );
  231. JackDriver::NotifyBufferSize ( netj.period_size );
  232. JackDriver::NotifySampleRate ( netj.sample_rate );
  233. //transport engine parametering
  234. fEngineControl->fTransport.SetNetworkSync ( true );
  235. return true;
  236. }
  237. //jack ports and buffers--------------------------------------------------------------
  238. //driver processes--------------------------------------------------------------------
  239. int JackNetOneDriver::Read()
  240. {
  241. int delay;
  242. delay = netjack_wait( &netj );
  243. if( delay ) {
  244. NotifyXRun(fBeginDateUst, (float) delay);
  245. jack_error( "netxruns... duration: %dms", delay/1000 );
  246. }
  247. if( (netj.num_lost_packets * netj.period_size / netj.sample_rate) > 2 )
  248. JackTools::ThrowJackNetException();
  249. //netjack_read( &netj, netj.period_size );
  250. JackDriver::CycleTakeBeginTime();
  251. jack_position_t local_trans_pos;
  252. jack_transport_state_t local_trans_state;
  253. unsigned int *packet_buf, *packet_bufX;
  254. if( ! netj.packet_data_valid ) {
  255. jack_log( "data not valid" );
  256. render_payload_to_jack_ports (netj.bitdepth, NULL, netj.net_period_down, netj.capture_ports, netj.capture_srcs, netj.period_size, netj.dont_htonl_floats );
  257. return 0;
  258. }
  259. packet_buf = netj.rx_buf;
  260. jacknet_packet_header *pkthdr = (jacknet_packet_header *)packet_buf;
  261. packet_bufX = packet_buf + sizeof(jacknet_packet_header) / sizeof(jack_default_audio_sample_t);
  262. netj.reply_port = pkthdr->reply_port;
  263. netj.latency = pkthdr->latency;
  264. // Special handling for latency=0
  265. if( netj.latency == 0 )
  266. netj.resync_threshold = 0;
  267. else
  268. netj.resync_threshold = MIN( 15, pkthdr->latency-1 );
  269. // check whether, we should handle the transport sync stuff, or leave trnasports untouched.
  270. if (netj.handle_transport_sync) {
  271. #if 1
  272. unsigned int compensated_tranport_pos = (pkthdr->transport_frame + (pkthdr->latency * netj.period_size) + netj.codec_latency);
  273. // read local transport info....
  274. //local_trans_state = jack_transport_query(netj.client, &local_trans_pos);
  275. local_trans_state = fEngineControl->fTransport.Query ( &local_trans_pos );
  276. // Now check if we have to start or stop local transport to sync to remote...
  277. switch (pkthdr->transport_state) {
  278. case JackTransportStarting:
  279. // the master transport is starting... so we set our reply to the sync_callback;
  280. if (local_trans_state == JackTransportStopped) {
  281. fEngineControl->fTransport.SetCommand ( TransportCommandStart );
  282. //jack_transport_start(netj.client);
  283. //last_transport_state = JackTransportStopped;
  284. netj.sync_state = 0;
  285. jack_info("locally stopped... starting...");
  286. }
  287. if (local_trans_pos.frame != compensated_tranport_pos)
  288. {
  289. jack_position_t new_pos = local_trans_pos;
  290. new_pos.frame = compensated_tranport_pos + 2*netj.period_size;
  291. new_pos.valid = (jack_position_bits_t) 0;
  292. fEngineControl->fTransport.RequestNewPos ( &new_pos );
  293. //jack_transport_locate(netj.client, compensated_tranport_pos);
  294. //last_transport_state = JackTransportRolling;
  295. netj.sync_state = 0;
  296. jack_info("starting locate to %d", compensated_tranport_pos );
  297. }
  298. break;
  299. case JackTransportStopped:
  300. netj.sync_state = 1;
  301. if (local_trans_pos.frame != (pkthdr->transport_frame)) {
  302. jack_position_t new_pos = local_trans_pos;
  303. new_pos.frame = pkthdr->transport_frame;
  304. new_pos.valid = (jack_position_bits_t)0;
  305. fEngineControl->fTransport.RequestNewPos ( &new_pos );
  306. //jack_transport_locate(netj.client, (pkthdr->transport_frame));
  307. jack_info("transport is stopped locate to %d", pkthdr->transport_frame);
  308. }
  309. if (local_trans_state != JackTransportStopped)
  310. //jack_transport_stop(netj.client);
  311. fEngineControl->fTransport.SetCommand ( TransportCommandStop );
  312. break;
  313. case JackTransportRolling:
  314. netj.sync_state = 1;
  315. // if(local_trans_pos.frame != (pkthdr->transport_frame + (pkthdr->latency) * netj.period_size)) {
  316. // jack_transport_locate(netj.client, (pkthdr->transport_frame + (pkthdr->latency + 2) * netj.period_size));
  317. // jack_info("running locate to %d", pkthdr->transport_frame + (pkthdr->latency)*netj.period_size);
  318. // }
  319. if (local_trans_state != JackTransportRolling)
  320. fEngineControl->fTransport.SetState ( JackTransportRolling );
  321. break;
  322. case JackTransportLooping:
  323. break;
  324. }
  325. #endif
  326. }
  327. render_payload_to_jack_ports (netj.bitdepth, packet_bufX, netj.net_period_down, netj.capture_ports, netj.capture_srcs, netj.period_size, netj.dont_htonl_floats );
  328. packet_cache_release_packet(global_packcache, netj.expected_framecnt );
  329. return 0;
  330. }
  331. int JackNetOneDriver::Write()
  332. {
  333. int syncstate = netj.sync_state | ((fEngineControl->fTransport.GetState() == JackTransportNetStarting) ? 1 : 0 );
  334. uint32_t *packet_buf, *packet_bufX;
  335. int packet_size = get_sample_size(netj.bitdepth) * netj.playback_channels * netj.net_period_up + sizeof(jacknet_packet_header);
  336. jacknet_packet_header *pkthdr;
  337. packet_buf = (uint32_t *) alloca(packet_size);
  338. pkthdr = (jacknet_packet_header *)packet_buf;
  339. if( netj.running_free ) {
  340. return 0;
  341. }
  342. // offset packet_bufX by the packetheader.
  343. packet_bufX = packet_buf + sizeof(jacknet_packet_header) / sizeof(jack_default_audio_sample_t);
  344. pkthdr->sync_state = syncstate;;
  345. pkthdr->latency = netj.time_to_deadline;
  346. //printf( "time to deadline = %d goodness=%d\n", (int)netj.time_to_deadline, netj.deadline_goodness );
  347. pkthdr->framecnt = netj.expected_framecnt;
  348. render_jack_ports_to_payload(netj.bitdepth, netj.playback_ports, netj.playback_srcs, netj.period_size, packet_bufX, netj.net_period_up, netj.dont_htonl_floats );
  349. packet_header_hton(pkthdr);
  350. if (netj.srcaddress_valid)
  351. {
  352. unsigned int r;
  353. #ifdef __APPLE__
  354. static const int flag = 0;
  355. #else
  356. static const int flag = 0;
  357. #endif
  358. if (netj.reply_port)
  359. netj.syncsource_address.sin_port = htons(netj.reply_port);
  360. for( r=0; r<netj.redundancy; r++ )
  361. netjack_sendto(netj.sockfd, (char *)packet_buf, packet_size,
  362. flag, (struct sockaddr*)&(netj.syncsource_address), sizeof(struct sockaddr_in), netj.mtu);
  363. }
  364. return 0;
  365. }
  366. void
  367. JackNetOneDriver::FreePorts ()
  368. {
  369. JSList *node = netj.capture_ports;
  370. while( node != NULL ) {
  371. JSList *this_node = node;
  372. jack_port_id_t port_id = (jack_port_id_t)(intptr_t) node->data;
  373. node = jack_slist_remove_link( node, this_node );
  374. jack_slist_free_1( this_node );
  375. fGraphManager->ReleasePort( fClientControl.fRefNum, port_id );
  376. }
  377. netj.capture_ports = NULL;
  378. node = netj.playback_ports;
  379. while( node != NULL ) {
  380. JSList *this_node = node;
  381. jack_port_id_t port_id = (jack_port_id_t)(intptr_t) node->data;
  382. node = jack_slist_remove_link( node, this_node );
  383. jack_slist_free_1( this_node );
  384. fGraphManager->ReleasePort( fClientControl.fRefNum, port_id );
  385. }
  386. netj.playback_ports = NULL;
  387. if( netj.bitdepth == CELT_MODE ) {
  388. #if HAVE_CELT
  389. node = netj.playback_srcs;
  390. while( node != NULL ) {
  391. JSList *this_node = node;
  392. CELTEncoder *enc = (CELTEncoder *) node->data;
  393. node = jack_slist_remove_link( node, this_node );
  394. jack_slist_free_1( this_node );
  395. celt_encoder_destroy( enc );
  396. }
  397. netj.playback_srcs = NULL;
  398. node = netj.capture_srcs;
  399. while( node != NULL ) {
  400. JSList *this_node = node;
  401. CELTDecoder *dec = (CELTDecoder *) node->data;
  402. node = jack_slist_remove_link( node, this_node );
  403. jack_slist_free_1( this_node );
  404. celt_decoder_destroy( dec );
  405. }
  406. netj.capture_srcs = NULL;
  407. #endif
  408. } else {
  409. #if HAVE_SAMPLERATE
  410. node = netj.playback_srcs;
  411. while( node != NULL ) {
  412. JSList *this_node = node;
  413. SRC_STATE *state = (SRC_STATE *) node->data;
  414. node = jack_slist_remove_link( node, this_node );
  415. jack_slist_free_1( this_node );
  416. src_delete( state );
  417. }
  418. netj.playback_srcs = NULL;
  419. node = netj.capture_srcs;
  420. while( node != NULL ) {
  421. JSList *this_node = node;
  422. SRC_STATE *state = (SRC_STATE *) node->data;
  423. node = jack_slist_remove_link( node, this_node );
  424. jack_slist_free_1( this_node );
  425. src_delete( state );
  426. }
  427. netj.capture_srcs = NULL;
  428. #endif
  429. }
  430. }
  431. //Render functions--------------------------------------------------------------------
  432. // render functions for float
  433. void
  434. JackNetOneDriver::render_payload_to_jack_ports_float ( void *packet_payload, jack_nframes_t net_period_down, JSList *capture_ports, JSList *capture_srcs, jack_nframes_t nframes, int dont_htonl_floats)
  435. {
  436. uint32_t chn = 0;
  437. JSList *node = capture_ports;
  438. #if HAVE_SAMPLERATE
  439. JSList *src_node = capture_srcs;
  440. #endif
  441. uint32_t *packet_bufX = (uint32_t *)packet_payload;
  442. if( !packet_payload )
  443. return;
  444. while (node != NULL)
  445. {
  446. unsigned int i;
  447. int_float_t val;
  448. #if HAVE_SAMPLERATE
  449. SRC_DATA src;
  450. #endif
  451. jack_port_id_t port_id = (jack_port_id_t)(intptr_t) node->data;
  452. JackPort *port = fGraphManager->GetPort( port_id );
  453. jack_default_audio_sample_t* buf =
  454. (jack_default_audio_sample_t*)fGraphManager->GetBuffer(port_id, fEngineControl->fBufferSize);
  455. const char *porttype = port->GetType();
  456. if (strncmp (porttype, JACK_DEFAULT_AUDIO_TYPE, jack_port_type_size()) == 0)
  457. {
  458. #if HAVE_SAMPLERATE
  459. // audio port, resample if necessary
  460. if (net_period_down != nframes)
  461. {
  462. SRC_STATE *src_state = (SRC_STATE *)src_node->data;
  463. for (i = 0; i < net_period_down; i++)
  464. {
  465. packet_bufX[i] = ntohl (packet_bufX[i]);
  466. }
  467. src.data_in = (float *) packet_bufX;
  468. src.input_frames = net_period_down;
  469. src.data_out = buf;
  470. src.output_frames = nframes;
  471. src.src_ratio = (float) nframes / (float) net_period_down;
  472. src.end_of_input = 0;
  473. src_set_ratio (src_state, src.src_ratio);
  474. src_process (src_state, &src);
  475. src_node = jack_slist_next (src_node);
  476. }
  477. else
  478. #endif
  479. {
  480. if( dont_htonl_floats )
  481. {
  482. memcpy( buf, packet_bufX, net_period_down*sizeof(jack_default_audio_sample_t));
  483. }
  484. else
  485. {
  486. for (i = 0; i < net_period_down; i++)
  487. {
  488. val.i = packet_bufX[i];
  489. val.i = ntohl (val.i);
  490. buf[i] = val.f;
  491. }
  492. }
  493. }
  494. }
  495. else if (strncmp (porttype, JACK_DEFAULT_MIDI_TYPE, jack_port_type_size()) == 0)
  496. {
  497. // midi port, decode midi events
  498. // convert the data buffer to a standard format (uint32_t based)
  499. unsigned int buffer_size_uint32 = net_period_down;
  500. uint32_t * buffer_uint32 = (uint32_t*)packet_bufX;
  501. decode_midi_buffer (buffer_uint32, buffer_size_uint32, buf);
  502. }
  503. packet_bufX = (packet_bufX + net_period_down);
  504. node = jack_slist_next (node);
  505. chn++;
  506. }
  507. }
  508. void
  509. JackNetOneDriver::render_jack_ports_to_payload_float (JSList *playback_ports, JSList *playback_srcs, jack_nframes_t nframes, void *packet_payload, jack_nframes_t net_period_up, int dont_htonl_floats )
  510. {
  511. uint32_t chn = 0;
  512. JSList *node = playback_ports;
  513. #if HAVE_SAMPLERATE
  514. JSList *src_node = playback_srcs;
  515. #endif
  516. uint32_t *packet_bufX = (uint32_t *) packet_payload;
  517. while (node != NULL)
  518. {
  519. #if HAVE_SAMPLERATE
  520. SRC_DATA src;
  521. #endif
  522. unsigned int i;
  523. int_float_t val;
  524. jack_port_id_t port_id = (jack_port_id_t)(intptr_t) node->data;
  525. JackPort *port = fGraphManager->GetPort( port_id );
  526. jack_default_audio_sample_t* buf =
  527. (jack_default_audio_sample_t*)fGraphManager->GetBuffer(port_id, fEngineControl->fBufferSize);
  528. const char *porttype = port->GetType();
  529. if (strncmp (porttype, JACK_DEFAULT_AUDIO_TYPE, jack_port_type_size()) == 0)
  530. {
  531. // audio port, resample if necessary
  532. #if HAVE_SAMPLERATE
  533. if (net_period_up != nframes) {
  534. SRC_STATE *src_state = (SRC_STATE *) src_node->data;
  535. src.data_in = buf;
  536. src.input_frames = nframes;
  537. src.data_out = (float *) packet_bufX;
  538. src.output_frames = net_period_up;
  539. src.src_ratio = (float) net_period_up / (float) nframes;
  540. src.end_of_input = 0;
  541. src_set_ratio (src_state, src.src_ratio);
  542. src_process (src_state, &src);
  543. for (i = 0; i < net_period_up; i++)
  544. {
  545. packet_bufX[i] = htonl (packet_bufX[i]);
  546. }
  547. src_node = jack_slist_next (src_node);
  548. }
  549. else
  550. #endif
  551. {
  552. if( dont_htonl_floats )
  553. {
  554. memcpy( packet_bufX, buf, net_period_up*sizeof(jack_default_audio_sample_t) );
  555. }
  556. else
  557. {
  558. for (i = 0; i < net_period_up; i++)
  559. {
  560. val.f = buf[i];
  561. val.i = htonl (val.i);
  562. packet_bufX[i] = val.i;
  563. }
  564. }
  565. }
  566. }
  567. else if (strncmp(porttype, JACK_DEFAULT_MIDI_TYPE, jack_port_type_size()) == 0)
  568. {
  569. // encode midi events from port to packet
  570. // convert the data buffer to a standard format (uint32_t based)
  571. unsigned int buffer_size_uint32 = net_period_up;
  572. uint32_t * buffer_uint32 = (uint32_t*) packet_bufX;
  573. encode_midi_buffer (buffer_uint32, buffer_size_uint32, buf);
  574. }
  575. packet_bufX = (packet_bufX + net_period_up);
  576. node = jack_slist_next (node);
  577. chn++;
  578. }
  579. }
  580. #if HAVE_CELT
  581. // render functions for celt.
  582. void
  583. JackNetOneDriver::render_payload_to_jack_ports_celt (void *packet_payload, jack_nframes_t net_period_down, JSList *capture_ports, JSList *capture_srcs, jack_nframes_t nframes)
  584. {
  585. uint32_t chn = 0;
  586. JSList *node = capture_ports;
  587. JSList *src_node = capture_srcs;
  588. unsigned char *packet_bufX = (unsigned char *)packet_payload;
  589. while (node != NULL)
  590. {
  591. jack_port_id_t port_id = (jack_port_id_t) (intptr_t)node->data;
  592. JackPort *port = fGraphManager->GetPort( port_id );
  593. jack_default_audio_sample_t* buf =
  594. (jack_default_audio_sample_t*)fGraphManager->GetBuffer(port_id, fEngineControl->fBufferSize);
  595. const char *portname = port->GetType();
  596. if (strncmp(portname, JACK_DEFAULT_AUDIO_TYPE, jack_port_type_size()) == 0)
  597. {
  598. // audio port, decode celt data.
  599. CELTDecoder *decoder = (CELTDecoder *)src_node->data;
  600. if( !packet_payload )
  601. celt_decode_float( decoder, NULL, net_period_down, buf );
  602. else
  603. celt_decode_float( decoder, packet_bufX, net_period_down, buf );
  604. src_node = jack_slist_next (src_node);
  605. }
  606. else if (strncmp(portname, JACK_DEFAULT_MIDI_TYPE, jack_port_type_size()) == 0)
  607. {
  608. // midi port, decode midi events
  609. // convert the data buffer to a standard format (uint32_t based)
  610. unsigned int buffer_size_uint32 = net_period_down / 2;
  611. uint32_t * buffer_uint32 = (uint32_t*) packet_bufX;
  612. if( packet_payload )
  613. decode_midi_buffer (buffer_uint32, buffer_size_uint32, buf);
  614. }
  615. packet_bufX = (packet_bufX + net_period_down);
  616. node = jack_slist_next (node);
  617. chn++;
  618. }
  619. }
  620. void
  621. JackNetOneDriver::render_jack_ports_to_payload_celt (JSList *playback_ports, JSList *playback_srcs, jack_nframes_t nframes, void *packet_payload, jack_nframes_t net_period_up)
  622. {
  623. uint32_t chn = 0;
  624. JSList *node = playback_ports;
  625. JSList *src_node = playback_srcs;
  626. unsigned char *packet_bufX = (unsigned char *)packet_payload;
  627. while (node != NULL)
  628. {
  629. jack_port_id_t port_id = (jack_port_id_t) (intptr_t) node->data;
  630. JackPort *port = fGraphManager->GetPort( port_id );
  631. jack_default_audio_sample_t* buf =
  632. (jack_default_audio_sample_t*)fGraphManager->GetBuffer(port_id, fEngineControl->fBufferSize);
  633. const char *portname = port->GetType();
  634. if (strncmp (portname, JACK_DEFAULT_AUDIO_TYPE, jack_port_type_size()) == 0)
  635. {
  636. // audio port, encode celt data.
  637. int encoded_bytes;
  638. float *floatbuf = (float *)alloca (sizeof(float) * nframes );
  639. memcpy( floatbuf, buf, nframes*sizeof(float) );
  640. CELTEncoder *encoder = (CELTEncoder *)src_node->data;
  641. encoded_bytes = celt_encode_float( encoder, floatbuf, NULL, packet_bufX, net_period_up );
  642. if( encoded_bytes != (int)net_period_up )
  643. jack_error( "something in celt changed. netjack needs to be changed to handle this." );
  644. src_node = jack_slist_next( src_node );
  645. }
  646. else if (strncmp(portname, JACK_DEFAULT_MIDI_TYPE, jack_port_type_size()) == 0)
  647. {
  648. // encode midi events from port to packet
  649. // convert the data buffer to a standard format (uint32_t based)
  650. unsigned int buffer_size_uint32 = net_period_up / 2;
  651. uint32_t * buffer_uint32 = (uint32_t*) packet_bufX;
  652. encode_midi_buffer (buffer_uint32, buffer_size_uint32, buf);
  653. }
  654. packet_bufX = (packet_bufX + net_period_up);
  655. node = jack_slist_next (node);
  656. chn++;
  657. }
  658. }
  659. #endif
  660. /* Wrapper functions with bitdepth argument... */
  661. void
  662. JackNetOneDriver::render_payload_to_jack_ports (int bitdepth, void *packet_payload, jack_nframes_t net_period_down, JSList *capture_ports, JSList *capture_srcs, jack_nframes_t nframes, int dont_htonl_floats)
  663. {
  664. #if HAVE_CELT
  665. if (bitdepth == CELT_MODE)
  666. render_payload_to_jack_ports_celt (packet_payload, net_period_down, capture_ports, capture_srcs, nframes);
  667. else
  668. #endif
  669. render_payload_to_jack_ports_float (packet_payload, net_period_down, capture_ports, capture_srcs, nframes, dont_htonl_floats);
  670. }
  671. void
  672. JackNetOneDriver::render_jack_ports_to_payload (int bitdepth, JSList *playback_ports, JSList *playback_srcs, jack_nframes_t nframes, void *packet_payload, jack_nframes_t net_period_up, int dont_htonl_floats)
  673. {
  674. #if HAVE_CELT
  675. if (bitdepth == CELT_MODE)
  676. render_jack_ports_to_payload_celt (playback_ports, playback_srcs, nframes, packet_payload, net_period_up);
  677. else
  678. #endif
  679. render_jack_ports_to_payload_float (playback_ports, playback_srcs, nframes, packet_payload, net_period_up, dont_htonl_floats);
  680. }
  681. //driver loader-----------------------------------------------------------------------
  682. #ifdef __cplusplus
  683. extern "C"
  684. {
  685. #endif
  686. SERVER_EXPORT jack_driver_desc_t* driver_get_descriptor ()
  687. {
  688. jack_driver_desc_t* desc = ( jack_driver_desc_t* ) calloc ( 1, sizeof ( jack_driver_desc_t ) );
  689. jack_driver_param_desc_t * params;
  690. strcpy ( desc->name, "netone" ); // size MUST be less then JACK_DRIVER_NAME_MAX + 1
  691. strcpy ( desc->desc, "netjack one slave backend component" ); // size MUST be less then JACK_DRIVER_PARAM_DESC + 1
  692. desc->nparams = 18;
  693. params = ( jack_driver_param_desc_t* ) calloc ( desc->nparams, sizeof ( jack_driver_param_desc_t ) );
  694. int i = 0;
  695. strcpy (params[i].name, "audio-ins");
  696. params[i].character = 'i';
  697. params[i].type = JackDriverParamUInt;
  698. params[i].value.ui = 2U;
  699. strcpy (params[i].short_desc, "Number of capture channels (defaults to 2)");
  700. strcpy (params[i].long_desc, params[i].short_desc);
  701. i++;
  702. strcpy (params[i].name, "audio-outs");
  703. params[i].character = 'o';
  704. params[i].type = JackDriverParamUInt;
  705. params[i].value.ui = 2U;
  706. strcpy (params[i].short_desc, "Number of playback channels (defaults to 2)");
  707. strcpy (params[i].long_desc, params[i].short_desc);
  708. i++;
  709. strcpy (params[i].name, "midi-ins");
  710. params[i].character = 'I';
  711. params[i].type = JackDriverParamUInt;
  712. params[i].value.ui = 1U;
  713. strcpy (params[i].short_desc, "Number of midi capture channels (defaults to 1)");
  714. strcpy (params[i].long_desc, params[i].short_desc);
  715. i++;
  716. strcpy (params[i].name, "midi-outs");
  717. params[i].character = 'O';
  718. params[i].type = JackDriverParamUInt;
  719. params[i].value.ui = 1U;
  720. strcpy (params[i].short_desc, "Number of midi playback channels (defaults to 1)");
  721. strcpy (params[i].long_desc, params[i].short_desc);
  722. i++;
  723. strcpy (params[i].name, "rate");
  724. params[i].character = 'r';
  725. params[i].type = JackDriverParamUInt;
  726. params[i].value.ui = 48000U;
  727. strcpy (params[i].short_desc, "Sample rate");
  728. strcpy (params[i].long_desc, params[i].short_desc);
  729. i++;
  730. strcpy (params[i].name, "period");
  731. params[i].character = 'p';
  732. params[i].type = JackDriverParamUInt;
  733. params[i].value.ui = 1024U;
  734. strcpy (params[i].short_desc, "Frames per period");
  735. strcpy (params[i].long_desc, params[i].short_desc);
  736. i++;
  737. strcpy (params[i].name, "num-periods");
  738. params[i].character = 'n';
  739. params[i].type = JackDriverParamUInt;
  740. params[i].value.ui = 5U;
  741. strcpy (params[i].short_desc,
  742. "Network latency setting in no. of periods");
  743. strcpy (params[i].long_desc, params[i].short_desc);
  744. i++;
  745. strcpy (params[i].name, "listen-port");
  746. params[i].character = 'l';
  747. params[i].type = JackDriverParamUInt;
  748. params[i].value.ui = 3000U;
  749. strcpy (params[i].short_desc,
  750. "The socket port we are listening on for sync packets");
  751. strcpy (params[i].long_desc, params[i].short_desc);
  752. i++;
  753. strcpy (params[i].name, "factor");
  754. params[i].character = 'f';
  755. params[i].type = JackDriverParamUInt;
  756. params[i].value.ui = 1U;
  757. strcpy (params[i].short_desc,
  758. "Factor for sample rate reduction");
  759. strcpy (params[i].long_desc, params[i].short_desc);
  760. i++;
  761. strcpy (params[i].name, "upstream-factor");
  762. params[i].character = 'u';
  763. params[i].type = JackDriverParamUInt;
  764. params[i].value.ui = 0U;
  765. strcpy (params[i].short_desc,
  766. "Factor for sample rate reduction on the upstream");
  767. strcpy (params[i].long_desc, params[i].short_desc);
  768. i++;
  769. strcpy (params[i].name, "celt");
  770. params[i].character = 'c';
  771. params[i].type = JackDriverParamUInt;
  772. params[i].value.ui = 0U;
  773. strcpy (params[i].short_desc,
  774. "sets celt encoding and number of kbits per channel");
  775. strcpy (params[i].long_desc, params[i].short_desc);
  776. i++;
  777. strcpy (params[i].name, "bit-depth");
  778. params[i].character = 'b';
  779. params[i].type = JackDriverParamUInt;
  780. params[i].value.ui = 0U;
  781. strcpy (params[i].short_desc,
  782. "Sample bit-depth (0 for float, 8 for 8bit and 16 for 16bit)");
  783. strcpy (params[i].long_desc, params[i].short_desc);
  784. i++;
  785. strcpy (params[i].name, "transport-sync");
  786. params[i].character = 't';
  787. params[i].type = JackDriverParamBool;
  788. params[i].value.ui = 1U;
  789. strcpy (params[i].short_desc,
  790. "Whether to slave the transport to the master transport");
  791. strcpy (params[i].long_desc, params[i].short_desc);
  792. i++;
  793. strcpy (params[i].name, "autoconf");
  794. params[i].character = 'a';
  795. params[i].type = JackDriverParamBool;
  796. params[i].value.ui = 1U;
  797. strcpy (params[i].short_desc,
  798. "Whether to use Autoconfig, or just start.");
  799. strcpy (params[i].long_desc, params[i].short_desc);
  800. i++;
  801. strcpy (params[i].name, "redundancy");
  802. params[i].character = 'R';
  803. params[i].type = JackDriverParamUInt;
  804. params[i].value.ui = 1U;
  805. strcpy (params[i].short_desc,
  806. "Send packets N times");
  807. strcpy (params[i].long_desc, params[i].short_desc);
  808. i++;
  809. strcpy (params[i].name, "native-endian");
  810. params[i].character = 'e';
  811. params[i].type = JackDriverParamBool;
  812. params[i].value.ui = 0U;
  813. strcpy (params[i].short_desc,
  814. "Dont convert samples to network byte order.");
  815. strcpy (params[i].long_desc, params[i].short_desc);
  816. i++;
  817. strcpy (params[i].name, "jitterval");
  818. params[i].character = 'J';
  819. params[i].type = JackDriverParamInt;
  820. params[i].value.i = 0;
  821. strcpy (params[i].short_desc,
  822. "attempted jitterbuffer microseconds on master");
  823. strcpy (params[i].long_desc, params[i].short_desc);
  824. i++;
  825. strcpy (params[i].name, "always-deadline");
  826. params[i].character = 'D';
  827. params[i].type = JackDriverParamBool;
  828. params[i].value.ui = 0U;
  829. strcpy (params[i].short_desc,
  830. "always use deadline");
  831. strcpy (params[i].long_desc, params[i].short_desc);
  832. desc->params = params;
  833. return desc;
  834. }
  835. SERVER_EXPORT Jack::JackDriverClientInterface* driver_initialize ( Jack::JackLockedEngine* engine, Jack::JackSynchro* table, const JSList* params )
  836. {
  837. jack_nframes_t sample_rate = 48000;
  838. jack_nframes_t resample_factor = 1;
  839. jack_nframes_t period_size = 1024;
  840. unsigned int capture_ports = 2;
  841. unsigned int playback_ports = 2;
  842. unsigned int capture_ports_midi = 1;
  843. unsigned int playback_ports_midi = 1;
  844. unsigned int listen_port = 3000;
  845. unsigned int bitdepth = 0;
  846. unsigned int handle_transport_sync = 1;
  847. unsigned int use_autoconfig = 1;
  848. unsigned int latency = 5;
  849. unsigned int redundancy = 1;
  850. unsigned int mtu = 1400;
  851. unsigned int resample_factor_up = 1;
  852. int dont_htonl_floats = 0;
  853. int always_deadline = 0;
  854. int jitter_val = 0;
  855. const JSList * node;
  856. const jack_driver_param_t * param;
  857. for ( node = params; node; node = jack_slist_next ( node ) )
  858. {
  859. param = ( const jack_driver_param_t* ) node->data;
  860. switch ( param->character )
  861. {
  862. case 'i':
  863. capture_ports = param->value.ui;
  864. break;
  865. case 'o':
  866. playback_ports = param->value.ui;
  867. break;
  868. case 'I':
  869. capture_ports_midi = param->value.ui;
  870. break;
  871. case 'O':
  872. playback_ports_midi = param->value.ui;
  873. break;
  874. case 'r':
  875. sample_rate = param->value.ui;
  876. break;
  877. case 'p':
  878. period_size = param->value.ui;
  879. break;
  880. case 'l':
  881. listen_port = param->value.ui;
  882. break;
  883. case 'f':
  884. #if HAVE_SAMPLERATE
  885. resample_factor = param->value.ui;
  886. #else
  887. jack_error( "not built with libsamplerate support" );
  888. return NULL;
  889. #endif
  890. break;
  891. case 'u':
  892. #if HAVE_SAMPLERATE
  893. resample_factor_up = param->value.ui;
  894. #else
  895. jack_error( "not built with libsamplerate support" );
  896. return NULL;
  897. #endif
  898. break;
  899. case 'b':
  900. bitdepth = param->value.ui;
  901. break;
  902. case 'c':
  903. #if HAVE_CELT
  904. bitdepth = CELT_MODE;
  905. resample_factor = param->value.ui;
  906. #else
  907. jack_error( "not built with celt support" );
  908. return NULL;
  909. #endif
  910. break;
  911. case 't':
  912. handle_transport_sync = param->value.ui;
  913. break;
  914. case 'a':
  915. use_autoconfig = param->value.ui;
  916. break;
  917. case 'n':
  918. latency = param->value.ui;
  919. break;
  920. case 'R':
  921. redundancy = param->value.ui;
  922. break;
  923. case 'H':
  924. dont_htonl_floats = param->value.ui;
  925. break;
  926. case 'J':
  927. jitter_val = param->value.i;
  928. break;
  929. case 'D':
  930. always_deadline = param->value.ui;
  931. break;
  932. }
  933. }
  934. try
  935. {
  936. Jack::JackDriverClientInterface* driver =
  937. new Jack::JackWaitThreadedDriver (
  938. new Jack::JackNetOneDriver ( "system", "net_pcm", engine, table, listen_port, mtu,
  939. capture_ports_midi, playback_ports_midi, capture_ports, playback_ports,
  940. sample_rate, period_size, resample_factor,
  941. "net_pcm", handle_transport_sync, bitdepth, use_autoconfig, latency, redundancy,
  942. dont_htonl_floats, always_deadline, jitter_val ) );
  943. if ( driver->Open ( period_size, sample_rate, 1, 1, capture_ports, playback_ports,
  944. 0, "from_master_", "to_master_", 0, 0 ) == 0 )
  945. {
  946. return driver;
  947. }
  948. else
  949. {
  950. delete driver;
  951. return NULL;
  952. }
  953. }
  954. catch ( ... )
  955. {
  956. return NULL;
  957. }
  958. }
  959. #ifdef __cplusplus
  960. }
  961. #endif
  962. }