jack2 codebase
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  1. /*
  2. Copyright (C) 2008-2011 Romain Moret at Grame
  3. This program is free software; you can redistribute it and/or modify
  4. it under the terms of the GNU General Public License as published by
  5. the Free Software Foundation; either version 2 of the License, or
  6. (at your option) any later version.
  7. This program is distributed in the hope that it will be useful,
  8. but WITHOUT ANY WARRANTY; without even the implied warranty of
  9. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  10. GNU General Public License for more details.
  11. You should have received a copy of the GNU General Public License
  12. along with this program; if not, write to the Free Software
  13. Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  14. */
  15. #include "JackNetTool.h"
  16. #ifdef __APPLE__
  17. #include <mach/mach_time.h>
  18. class HardwareClock
  19. {
  20. public:
  21. HardwareClock();
  22. void Reset();
  23. void Update();
  24. float GetDeltaTime() const;
  25. double GetTime() const;
  26. private:
  27. double m_clockToSeconds;
  28. uint64_t m_startAbsTime;
  29. uint64_t m_lastAbsTime;
  30. double m_time;
  31. float m_deltaTime;
  32. };
  33. HardwareClock::HardwareClock()
  34. {
  35. mach_timebase_info_data_t info;
  36. mach_timebase_info(&info);
  37. m_clockToSeconds = (double)info.numer/info.denom/1000000000.0;
  38. Reset();
  39. }
  40. void HardwareClock::Reset()
  41. {
  42. m_startAbsTime = mach_absolute_time();
  43. m_lastAbsTime = m_startAbsTime;
  44. m_time = m_startAbsTime*m_clockToSeconds;
  45. m_deltaTime = 1.0f/60.0f;
  46. }
  47. void HardwareClock::Update()
  48. {
  49. const uint64_t currentTime = mach_absolute_time();
  50. const uint64_t dt = currentTime - m_lastAbsTime;
  51. m_time = currentTime*m_clockToSeconds;
  52. m_deltaTime = (double)dt*m_clockToSeconds;
  53. m_lastAbsTime = currentTime;
  54. }
  55. float HardwareClock::GetDeltaTime() const
  56. {
  57. return m_deltaTime;
  58. }
  59. double HardwareClock::GetTime() const
  60. {
  61. return m_time;
  62. }
  63. #endif
  64. using namespace std;
  65. namespace Jack
  66. {
  67. // NetMidiBuffer**********************************************************************************
  68. NetMidiBuffer::NetMidiBuffer(session_params_t* params, uint32_t nports, char* net_buffer)
  69. {
  70. fNPorts = nports;
  71. fMaxBufsize = fNPorts * sizeof(sample_t) * params->fPeriodSize ;
  72. fMaxPcktSize = params->fMtu - sizeof(packet_header_t);
  73. fBuffer = new char[fMaxBufsize];
  74. fPortBuffer = new JackMidiBuffer* [fNPorts];
  75. for (int port_index = 0; port_index < fNPorts; port_index++)
  76. fPortBuffer[port_index] = NULL;
  77. fNetBuffer = net_buffer;
  78. fCycleSize = params->fMtu * (max(params->fSendMidiChannels, params->fReturnMidiChannels) *
  79. params->fPeriodSize * sizeof(sample_t) / (params->fMtu - sizeof(packet_header_t)));
  80. }
  81. NetMidiBuffer::~NetMidiBuffer()
  82. {
  83. delete[] fBuffer;
  84. delete[] fPortBuffer;
  85. }
  86. size_t NetMidiBuffer::GetCycleSize()
  87. {
  88. return fCycleSize;
  89. }
  90. int NetMidiBuffer::GetNumPackets(int data_size, int max_size)
  91. {
  92. return (data_size % max_size)
  93. ? (data_size / max_size + 1)
  94. : data_size / max_size;
  95. }
  96. void NetMidiBuffer::SetBuffer(int index, JackMidiBuffer* buffer)
  97. {
  98. fPortBuffer[index] = buffer;
  99. }
  100. JackMidiBuffer* NetMidiBuffer::GetBuffer(int index)
  101. {
  102. return fPortBuffer[index];
  103. }
  104. void NetMidiBuffer::DisplayEvents()
  105. {
  106. for (int port_index = 0; port_index < fNPorts; port_index++) {
  107. for (uint event = 0; event < fPortBuffer[port_index]->event_count; event++) {
  108. if (fPortBuffer[port_index]->IsValid())
  109. jack_info("port %d : midi event %u/%u -> time : %u, size : %u",
  110. port_index + 1, event + 1, fPortBuffer[port_index]->event_count,
  111. fPortBuffer[port_index]->events[event].time, fPortBuffer[port_index]->events[event].size);
  112. }
  113. }
  114. }
  115. int NetMidiBuffer::RenderFromJackPorts()
  116. {
  117. int pos = 0;
  118. size_t copy_size;
  119. for (int port_index = 0; port_index < fNPorts; port_index++) {
  120. char* write_pos = fBuffer + pos;
  121. copy_size = sizeof(JackMidiBuffer) + fPortBuffer[port_index]->event_count * sizeof(JackMidiEvent);
  122. memcpy(fBuffer + pos, fPortBuffer[port_index], copy_size);
  123. pos += copy_size;
  124. memcpy(fBuffer + pos, fPortBuffer[port_index] + (fPortBuffer[port_index]->buffer_size - fPortBuffer[port_index]->write_pos),
  125. fPortBuffer[port_index]->write_pos);
  126. pos += fPortBuffer[port_index]->write_pos;
  127. JackMidiBuffer* midi_buffer = reinterpret_cast<JackMidiBuffer*>(write_pos);
  128. MidiBufferHToN(midi_buffer, midi_buffer);
  129. }
  130. return pos;
  131. }
  132. void NetMidiBuffer::RenderToJackPorts()
  133. {
  134. int pos = 0;
  135. int copy_size;
  136. for (int port_index = 0; port_index < fNPorts; port_index++) {
  137. JackMidiBuffer* midi_buffer = reinterpret_cast<JackMidiBuffer*>(fBuffer + pos);
  138. MidiBufferNToH(midi_buffer, midi_buffer);
  139. copy_size = sizeof(JackMidiBuffer) + reinterpret_cast<JackMidiBuffer*>(fBuffer + pos)->event_count * sizeof(JackMidiEvent);
  140. memcpy(fPortBuffer[port_index], fBuffer + pos, copy_size);
  141. pos += copy_size;
  142. memcpy(fPortBuffer[port_index] + (fPortBuffer[port_index]->buffer_size - fPortBuffer[port_index]->write_pos),
  143. fBuffer + pos, fPortBuffer[port_index]->write_pos);
  144. pos += fPortBuffer[port_index]->write_pos;
  145. }
  146. }
  147. void NetMidiBuffer::RenderFromNetwork(int sub_cycle, size_t copy_size)
  148. {
  149. memcpy(fBuffer + sub_cycle * fMaxPcktSize, fNetBuffer, copy_size);
  150. }
  151. int NetMidiBuffer::RenderToNetwork(int sub_cycle, size_t total_size)
  152. {
  153. int size = total_size - sub_cycle * fMaxPcktSize;
  154. int copy_size = (size <= fMaxPcktSize) ? size : fMaxPcktSize;
  155. memcpy(fNetBuffer, fBuffer + sub_cycle * fMaxPcktSize, copy_size);
  156. return copy_size;
  157. }
  158. // net audio buffer *********************************************************************************
  159. NetFloatAudioBuffer::NetFloatAudioBuffer(session_params_t* params, uint32_t nports, char* net_buffer)
  160. : fPortBuffer(params, nports), fNetBuffer(net_buffer)
  161. {}
  162. NetFloatAudioBuffer::~NetFloatAudioBuffer()
  163. {}
  164. size_t NetFloatAudioBuffer::GetCycleSize()
  165. {
  166. return fPortBuffer.GetCycleSize();
  167. }
  168. void NetFloatAudioBuffer::SetBuffer(int index, sample_t* buffer)
  169. {
  170. fPortBuffer.SetBuffer(index, buffer);
  171. }
  172. sample_t* NetFloatAudioBuffer::GetBuffer(int index)
  173. {
  174. return fPortBuffer.GetBuffer(index);
  175. }
  176. void NetFloatAudioBuffer::RenderFromJackPorts()
  177. {
  178. fPortBuffer.RenderFromJackPorts();
  179. }
  180. void NetFloatAudioBuffer::RenderToJackPorts()
  181. {
  182. fPortBuffer.RenderToJackPorts();
  183. }
  184. //network<->buffer
  185. int NetFloatAudioBuffer::RenderFromNetwork(int cycle, int sub_cycle, size_t copy_size, uint32_t port_num)
  186. {
  187. return fPortBuffer.RenderFromNetwork(fNetBuffer, cycle, sub_cycle, copy_size, port_num);
  188. }
  189. int NetFloatAudioBuffer::RenderToNetwork(int sub_cycle, uint32_t& port_num)
  190. {
  191. return fPortBuffer.RenderToNetwork(fNetBuffer, sub_cycle, port_num);
  192. }
  193. void NetFloatAudioBuffer::ActivePortsToNetwork(char* net_buffer, uint32_t& port_num)
  194. {
  195. fPortBuffer.ActivePortsToNetwork(net_buffer, port_num);
  196. }
  197. void NetFloatAudioBuffer::ActivePortsFromNetwork(char* net_buffer, uint32_t port_num)
  198. {
  199. fPortBuffer.ActivePortsFromNetwork(net_buffer, port_num);
  200. }
  201. // Celt audio buffer *********************************************************************************
  202. #if HAVE_CELT
  203. #define KPS 32
  204. #define KPS_DIV 8
  205. NetCeltAudioBuffer::NetCeltAudioBuffer(session_params_t* params, uint32_t nports, char* net_buffer, int kbps)
  206. : fNetBuffer(net_buffer)
  207. {
  208. int res1, res2;
  209. fNPorts = nports;
  210. fPeriodSize = params->fPeriodSize;
  211. fCeltMode = new CELTMode *[fNPorts];
  212. fCeltEncoder = new CELTEncoder *[fNPorts];
  213. fCeltDecoder = new CELTDecoder *[fNPorts];
  214. memset(fCeltMode, 0, fNPorts * sizeof(CELTMode*));
  215. memset(fCeltEncoder, 0, fNPorts * sizeof(CELTEncoder*));
  216. memset(fCeltDecoder, 0, fNPorts * sizeof(CELTDecoder*));
  217. int error = CELT_OK;
  218. for (int i = 0; i < fNPorts; i++) {
  219. fCeltMode[i] = celt_mode_create(params->fSampleRate, params->fPeriodSize, &error);
  220. if (error != CELT_OK)
  221. goto error;
  222. #if HAVE_CELT_API_0_11
  223. fCeltEncoder[i] = celt_encoder_create_custom(fCeltMode[i], 1, &error);
  224. if (error != CELT_OK)
  225. goto error;
  226. celt_encoder_ctl(fCeltEncoder[i], CELT_SET_COMPLEXITY(1));
  227. fCeltDecoder[i] = celt_decoder_create_custom(fCeltMode[i], 1, &error);
  228. if (error != CELT_OK)
  229. goto error;
  230. celt_decoder_ctl(fCeltDecoder[i], CELT_SET_COMPLEXITY(1));
  231. #elif HAVE_CELT_API_0_7 || HAVE_CELT_API_0_8
  232. fCeltEncoder[i] = celt_encoder_create(fCeltMode[i], 1, &error);
  233. if (error != CELT_OK)
  234. goto error;
  235. celt_encoder_ctl(fCeltEncoder[i], CELT_SET_COMPLEXITY(1));
  236. fCeltDecoder[i] = celt_decoder_create(fCeltMode[i], 1, &error);
  237. if (error != CELT_OK)
  238. goto error;
  239. celt_decoder_ctl(fCeltDecoder[i], CELT_SET_COMPLEXITY(1));
  240. #else
  241. fCeltEncoder[i] = celt_encoder_create(fCeltMode[i]);
  242. if (error != CELT_OK)
  243. goto error;
  244. celt_encoder_ctl(fCeltEncoder[i], CELT_SET_COMPLEXITY(1));
  245. fCeltDecoder[i] = celt_decoder_create(fCeltMode[i]);
  246. if (error != CELT_OK)
  247. goto error;
  248. celt_decoder_ctl(fCeltDecoder[i], CELT_SET_COMPLEXITY(1));
  249. #endif
  250. }
  251. fPortBuffer = new sample_t* [fNPorts];
  252. for (int port_index = 0; port_index < fNPorts; port_index++) {
  253. fPortBuffer[port_index] = NULL;
  254. }
  255. fCompressedSizeByte = (kbps * params->fPeriodSize * 1024) / (params->fSampleRate * 8);
  256. fCompressedBuffer = new unsigned char* [fNPorts];
  257. for (int port_index = 0; port_index < fNPorts; port_index++) {
  258. fCompressedBuffer[port_index] = new unsigned char[fCompressedSizeByte];
  259. }
  260. jack_log("NetCeltAudioBuffer fCompressedSizeByte %d", fCompressedSizeByte);
  261. res1 = (fNPorts * fCompressedSizeByte) % PACKET_AVAILABLE_SIZE(params);
  262. res2 = (fNPorts * fCompressedSizeByte) / PACKET_AVAILABLE_SIZE(params);
  263. fNumPackets = (res1) ? (res2 + 1) : res2;
  264. jack_log("NetCeltAudioBuffer res1 = %d res2 = %d", res1, res2);
  265. fSubPeriodBytesSize = fCompressedSizeByte / fNumPackets;
  266. fLastSubPeriodBytesSize = fSubPeriodBytesSize + fCompressedSizeByte % fNumPackets;
  267. jack_log("NetCeltAudioBuffer fNumPackets = %d fSubPeriodBytesSize = %d, fLastSubPeriodBytesSize = %d", fNumPackets, fSubPeriodBytesSize, fLastSubPeriodBytesSize);
  268. fCycleDuration = float(fSubPeriodBytesSize / sizeof(sample_t)) / float(params->fSampleRate);
  269. fCycleSize = params->fMtu * fNumPackets;
  270. fLastSubCycle = -1;
  271. return;
  272. error:
  273. FreeCelt();
  274. throw std::bad_alloc();
  275. }
  276. NetCeltAudioBuffer::~NetCeltAudioBuffer()
  277. {
  278. FreeCelt();
  279. for (int port_index = 0; port_index < fNPorts; port_index++) {
  280. delete [] fCompressedBuffer[port_index];
  281. }
  282. delete [] fCompressedBuffer;
  283. delete [] fPortBuffer;
  284. }
  285. void NetCeltAudioBuffer::FreeCelt()
  286. {
  287. for (int i = 0; i < fNPorts; i++) {
  288. if (fCeltEncoder[i]) {
  289. celt_encoder_destroy(fCeltEncoder[i]);
  290. }
  291. if (fCeltDecoder[i]) {
  292. celt_decoder_destroy(fCeltDecoder[i]);
  293. }
  294. if (fCeltMode[i]) {
  295. celt_mode_destroy(fCeltMode[i]);
  296. }
  297. }
  298. delete [] fCeltMode;
  299. delete [] fCeltEncoder;
  300. delete [] fCeltDecoder;
  301. }
  302. size_t NetCeltAudioBuffer::GetCycleSize()
  303. {
  304. return fCycleSize;
  305. }
  306. float NetCeltAudioBuffer::GetCycleDuration()
  307. {
  308. return fCycleDuration;
  309. }
  310. int NetCeltAudioBuffer::GetNumPackets()
  311. {
  312. return fNumPackets;
  313. }
  314. void NetCeltAudioBuffer::SetBuffer(int index, sample_t* buffer)
  315. {
  316. assert(fPortBuffer);
  317. fPortBuffer[index] = buffer;
  318. }
  319. sample_t* NetCeltAudioBuffer::GetBuffer(int index)
  320. {
  321. assert(fPortBuffer);
  322. return fPortBuffer[index];
  323. }
  324. void NetCeltAudioBuffer::RenderFromJackPorts()
  325. {
  326. float floatbuf[fPeriodSize];
  327. for (int port_index = 0; port_index < fNPorts; port_index++) {
  328. memcpy(floatbuf, fPortBuffer[port_index], fPeriodSize * sizeof(float));
  329. #if HAVE_CELT_API_0_8 || HAVE_CELT_API_0_11
  330. int res = celt_encode_float(fCeltEncoder[port_index], floatbuf, fPeriodSize, fCompressedBuffer[port_index], fCompressedSizeByte);
  331. #else
  332. int res = celt_encode_float(fCeltEncoder[port_index], floatbuf, NULL, fCompressedBuffer[port_index], fCompressedSizeByte);
  333. #endif
  334. if (res != fCompressedSizeByte) {
  335. jack_error("celt_encode_float error fCompressedSizeByte = %d res = %d", fCompressedSizeByte, res);
  336. }
  337. }
  338. }
  339. void NetCeltAudioBuffer::RenderToJackPorts()
  340. {
  341. for (int port_index = 0; port_index < fNPorts; port_index++) {
  342. #if HAVE_CELT_API_0_8 || HAVE_CELT_API_0_11
  343. int res = celt_decode_float(fCeltDecoder[port_index], fCompressedBuffer[port_index], fCompressedSizeByte, fPortBuffer[port_index], fPeriodSize);
  344. #else
  345. int res = celt_decode_float(fCeltDecoder[port_index], fCompressedBuffer[port_index], fCompressedSizeByte, fPortBuffer[port_index]);
  346. #endif
  347. if (res != CELT_OK) {
  348. jack_error("celt_decode_float error fCompressedSizeByte = %d res = %d", fCompressedSizeByte, res);
  349. }
  350. }
  351. // reset for next cycle
  352. fLastSubCycle = -1;
  353. }
  354. //network<->buffer
  355. int NetCeltAudioBuffer::RenderFromNetwork(int cycle, int sub_cycle, size_t copy_size, uint32_t port_num)
  356. {
  357. int res = 0;
  358. // Last packet of the cycle
  359. if (sub_cycle == fNumPackets - 1) {
  360. for (int port_index = 0; port_index < fNPorts; port_index++) {
  361. memcpy(fCompressedBuffer[port_index] + sub_cycle * fSubPeriodBytesSize, fNetBuffer + port_index * fLastSubPeriodBytesSize, fLastSubPeriodBytesSize);
  362. }
  363. } else {
  364. for (int port_index = 0; port_index < fNPorts; port_index++) {
  365. memcpy(fCompressedBuffer[port_index] + sub_cycle * fSubPeriodBytesSize, fNetBuffer + port_index * fSubPeriodBytesSize, fSubPeriodBytesSize);
  366. }
  367. }
  368. if (sub_cycle != fLastSubCycle + 1) {
  369. jack_error("Packet(s) missing from... %d %d", fLastSubCycle, sub_cycle);
  370. res = NET_PACKET_ERROR;
  371. }
  372. fLastSubCycle = sub_cycle;
  373. return res;
  374. }
  375. int NetCeltAudioBuffer::RenderToNetwork(int sub_cycle, uint32_t& port_num)
  376. {
  377. port_num = fNPorts;
  378. // Last packet of the cycle
  379. if (sub_cycle == fNumPackets - 1) {
  380. for (int port_index = 0; port_index < fNPorts; port_index++) {
  381. memcpy(fNetBuffer + port_index * fLastSubPeriodBytesSize, fCompressedBuffer[port_index] + sub_cycle * fSubPeriodBytesSize, fLastSubPeriodBytesSize);
  382. }
  383. return fNPorts * fLastSubPeriodBytesSize;
  384. } else {
  385. for (int port_index = 0; port_index < fNPorts; port_index++) {
  386. memcpy(fNetBuffer + port_index * fSubPeriodBytesSize, fCompressedBuffer[port_index] + sub_cycle * fSubPeriodBytesSize, fSubPeriodBytesSize);
  387. }
  388. return fNPorts * fSubPeriodBytesSize;
  389. }
  390. }
  391. #endif
  392. NetIntAudioBuffer::NetIntAudioBuffer(session_params_t* params, uint32_t nports, char* net_buffer)
  393. : fNetBuffer(net_buffer)
  394. {
  395. int res1, res2;
  396. fNPorts = nports;
  397. fPeriodSize = params->fPeriodSize;
  398. fPortBuffer = new sample_t* [fNPorts];
  399. for (int port_index = 0; port_index < fNPorts; port_index++) {
  400. fPortBuffer[port_index] = NULL;
  401. }
  402. fIntBuffer = new short* [fNPorts];
  403. for (int port_index = 0; port_index < fNPorts; port_index++) {
  404. fIntBuffer[port_index] = new short[fPeriodSize];
  405. }
  406. fCompressedSizeByte = (params->fPeriodSize * sizeof(short));
  407. jack_log("fCompressedSizeByte %d", fCompressedSizeByte);
  408. res1 = (fNPorts * fCompressedSizeByte) % PACKET_AVAILABLE_SIZE(params);
  409. res2 = (fNPorts * fCompressedSizeByte) / PACKET_AVAILABLE_SIZE(params);
  410. jack_log("res1 = %d res2 = %d", res1, res2);
  411. fNumPackets = (res1) ? (res2 + 1) : res2;
  412. fSubPeriodBytesSize = fCompressedSizeByte / fNumPackets;
  413. fSubPeriodSize = fSubPeriodBytesSize / sizeof(short);
  414. fLastSubPeriodBytesSize = fSubPeriodBytesSize + fCompressedSizeByte % fNumPackets;
  415. fLastSubPeriodSize = fLastSubPeriodBytesSize / sizeof(short);
  416. jack_log("fNumPackets = %d fSubPeriodBytesSize = %d, fLastSubPeriodBytesSize = %d", fNumPackets, fSubPeriodBytesSize, fLastSubPeriodBytesSize);
  417. fCycleDuration = float(fSubPeriodBytesSize / sizeof(sample_t)) / float(params->fSampleRate);
  418. fCycleSize = params->fMtu * fNumPackets;
  419. fLastSubCycle = -1;
  420. return;
  421. }
  422. NetIntAudioBuffer::~NetIntAudioBuffer()
  423. {
  424. for (int port_index = 0; port_index < fNPorts; port_index++) {
  425. delete [] fIntBuffer[port_index];
  426. }
  427. delete [] fIntBuffer;
  428. delete [] fPortBuffer;
  429. }
  430. size_t NetIntAudioBuffer::GetCycleSize()
  431. {
  432. return fCycleSize;
  433. }
  434. float NetIntAudioBuffer::GetCycleDuration()
  435. {
  436. return fCycleDuration;
  437. }
  438. int NetIntAudioBuffer::GetNumPackets()
  439. {
  440. return fNumPackets;
  441. }
  442. void NetIntAudioBuffer::SetBuffer(int index, sample_t* buffer)
  443. {
  444. fPortBuffer[index] = buffer;
  445. }
  446. sample_t* NetIntAudioBuffer::GetBuffer(int index)
  447. {
  448. return fPortBuffer[index];
  449. }
  450. void NetIntAudioBuffer::RenderFromJackPorts()
  451. {
  452. for (int port_index = 0; port_index < fNPorts; port_index++) {
  453. for (unsigned int frame = 0; frame < fPeriodSize; frame++) {
  454. fIntBuffer[port_index][frame] = short(fPortBuffer[port_index][frame] * 32768.f);
  455. }
  456. }
  457. }
  458. void NetIntAudioBuffer::RenderToJackPorts()
  459. {
  460. float coef = 1.f / 32768.f;
  461. for (int port_index = 0; port_index < fNPorts; port_index++) {
  462. for (unsigned int frame = 0; frame < fPeriodSize; frame++) {
  463. fPortBuffer[port_index][frame] = float(fIntBuffer[port_index][frame] * coef);
  464. }
  465. }
  466. // reset for next cycle
  467. fLastSubCycle = -1;
  468. }
  469. //network<->buffer
  470. int NetIntAudioBuffer::RenderFromNetwork(int cycle, int sub_cycle, size_t copy_size, uint32_t port_num)
  471. {
  472. int res = 0;
  473. if (sub_cycle == fNumPackets - 1) {
  474. for (int port_index = 0; port_index < fNPorts; port_index++) {
  475. memcpy(fIntBuffer[port_index] + sub_cycle * fSubPeriodSize, fNetBuffer + port_index * fLastSubPeriodBytesSize, fLastSubPeriodBytesSize);
  476. }
  477. } else {
  478. for (int port_index = 0; port_index < fNPorts; port_index++) {
  479. memcpy(fIntBuffer[port_index] + sub_cycle * fSubPeriodSize, fNetBuffer + port_index * fSubPeriodBytesSize, fSubPeriodBytesSize);
  480. }
  481. }
  482. if (sub_cycle != fLastSubCycle + 1) {
  483. jack_error("Packet(s) missing from... %d %d", fLastSubCycle, sub_cycle);
  484. res = NET_PACKET_ERROR;
  485. }
  486. fLastSubCycle = sub_cycle;
  487. return res;
  488. }
  489. int NetIntAudioBuffer::RenderToNetwork(int sub_cycle, uint32_t& port_num)
  490. {
  491. port_num = fNPorts;
  492. // Last packet of the cycle
  493. if (sub_cycle == fNumPackets - 1) {
  494. for (int port_index = 0; port_index < fNPorts; port_index++) {
  495. memcpy(fNetBuffer + port_index * fLastSubPeriodBytesSize, fIntBuffer[port_index] + sub_cycle * fSubPeriodSize, fLastSubPeriodBytesSize);
  496. }
  497. return fNPorts * fLastSubPeriodBytesSize;
  498. } else {
  499. for (int port_index = 0; port_index < fNPorts; port_index++) {
  500. memcpy(fNetBuffer + port_index * fSubPeriodBytesSize, fIntBuffer[port_index] + sub_cycle * fSubPeriodSize, fSubPeriodBytesSize);
  501. }
  502. return fNPorts * fSubPeriodBytesSize;
  503. }
  504. }
  505. // Buffered
  506. /*
  507. NetBufferedAudioBuffer::NetBufferedAudioBuffer(session_params_t* params, uint32_t nports, char* net_buffer)
  508. {
  509. fMaxCycle = 0;
  510. fNetBuffer = net_buffer;
  511. for (int i = 0; i < AUDIO_BUFFER_SIZE; i++) {
  512. fPortBuffer[i].Init(params, nports);
  513. }
  514. fJackPortBuffer = new sample_t* [nports];
  515. for (uint32_t port_index = 0; port_index < nports; port_index++)
  516. fJackPortBuffer[port_index] = NULL;
  517. }
  518. NetBufferedAudioBuffer::~NetBufferedAudioBuffer()
  519. {
  520. delete [] fJackPortBuffer;
  521. }
  522. size_t NetBufferedAudioBuffer::GetCycleSize()
  523. {
  524. return fPortBuffer[0].GetCycleSize();
  525. }
  526. void NetBufferedAudioBuffer::SetBuffer(int index, sample_t* buffer)
  527. {
  528. fJackPortBuffer[index] = buffer;
  529. }
  530. sample_t* NetBufferedAudioBuffer::GetBuffer(int index)
  531. {
  532. return fJackPortBuffer[index];
  533. }
  534. void NetBufferedAudioBuffer::RenderFromJackPorts (int sub_cycle)
  535. {
  536. fPortBuffer[0].RenderFromJackPorts(fNetBuffer, sub_cycle); // Always use first buffer...
  537. }
  538. void NetBufferedAudioBuffer::RenderToJackPorts (int cycle, int sub_cycle)
  539. {
  540. if (cycle < fMaxCycle) {
  541. jack_info("Wrong order fCycle %d sub_cycle %d fMaxCycle %d", cycle, sub_cycle, fMaxCycle);
  542. }
  543. fPortBuffer[cycle % AUDIO_BUFFER_SIZE].RenderToJackPorts(fNetBuffer, sub_cycle);
  544. }
  545. void NetBufferedAudioBuffer::FinishRenderToJackPorts (int cycle)
  546. {
  547. fMaxCycle = std::max(fMaxCycle, cycle);
  548. fPortBuffer[(cycle + 1) % AUDIO_BUFFER_SIZE].Copy(fJackPortBuffer); // Copy internal buffer in JACK ports
  549. }
  550. */
  551. // SessionParams ************************************************************************************
  552. SERVER_EXPORT void SessionParamsHToN(session_params_t* src_params, session_params_t* dst_params)
  553. {
  554. memcpy(dst_params, src_params, sizeof(session_params_t));
  555. dst_params->fPacketID = htonl(src_params->fPacketID);
  556. dst_params->fMtu = htonl(src_params->fMtu);
  557. dst_params->fID = htonl(src_params->fID);
  558. dst_params->fTransportSync = htonl(src_params->fTransportSync);
  559. dst_params->fSendAudioChannels = htonl(src_params->fSendAudioChannels);
  560. dst_params->fReturnAudioChannels = htonl(src_params->fReturnAudioChannels);
  561. dst_params->fSendMidiChannels = htonl(src_params->fSendMidiChannels);
  562. dst_params->fReturnMidiChannels = htonl(src_params->fReturnMidiChannels);
  563. dst_params->fSampleRate = htonl(src_params->fSampleRate);
  564. dst_params->fPeriodSize = htonl(src_params->fPeriodSize);
  565. dst_params->fSampleEncoder = htonl(src_params->fSampleEncoder);
  566. dst_params->fSlaveSyncMode = htonl(src_params->fSlaveSyncMode);
  567. dst_params->fNetworkLatency = htonl(src_params->fNetworkLatency);
  568. }
  569. SERVER_EXPORT void SessionParamsNToH(session_params_t* src_params, session_params_t* dst_params)
  570. {
  571. memcpy(dst_params, src_params, sizeof(session_params_t));
  572. dst_params->fPacketID = ntohl(src_params->fPacketID);
  573. dst_params->fMtu = ntohl(src_params->fMtu);
  574. dst_params->fID = ntohl(src_params->fID);
  575. dst_params->fTransportSync = ntohl(src_params->fTransportSync);
  576. dst_params->fSendAudioChannels = ntohl(src_params->fSendAudioChannels);
  577. dst_params->fReturnAudioChannels = ntohl(src_params->fReturnAudioChannels);
  578. dst_params->fSendMidiChannels = ntohl(src_params->fSendMidiChannels);
  579. dst_params->fReturnMidiChannels = ntohl(src_params->fReturnMidiChannels);
  580. dst_params->fSampleRate = ntohl(src_params->fSampleRate);
  581. dst_params->fPeriodSize = ntohl(src_params->fPeriodSize);
  582. dst_params->fSampleEncoder = ntohl(src_params->fSampleEncoder);
  583. dst_params->fSlaveSyncMode = ntohl(src_params->fSlaveSyncMode);
  584. dst_params->fNetworkLatency = ntohl(src_params->fNetworkLatency);
  585. }
  586. SERVER_EXPORT void SessionParamsDisplay(session_params_t* params)
  587. {
  588. char encoder[16];
  589. switch (params->fSampleEncoder)
  590. {
  591. case JackFloatEncoder:
  592. strcpy(encoder, "float");
  593. break;
  594. case JackIntEncoder:
  595. strcpy(encoder, "integer");
  596. break;
  597. case JackCeltEncoder:
  598. strcpy(encoder, "CELT");
  599. break;
  600. }
  601. jack_info("**************** Network parameters ****************");
  602. jack_info("Name : %s", params->fName);
  603. jack_info("Protocol revision : %d", params->fProtocolVersion);
  604. jack_info("MTU : %u", params->fMtu);
  605. jack_info("Master name : %s", params->fMasterNetName);
  606. jack_info("Slave name : %s", params->fSlaveNetName);
  607. jack_info("ID : %u", params->fID);
  608. jack_info("Transport Sync : %s", (params->fTransportSync) ? "yes" : "no");
  609. jack_info("Send channels (audio - midi) : %d - %d", params->fSendAudioChannels, params->fSendMidiChannels);
  610. jack_info("Return channels (audio - midi) : %d - %d", params->fReturnAudioChannels, params->fReturnMidiChannels);
  611. jack_info("Sample rate : %u frames per second", params->fSampleRate);
  612. jack_info("Period size : %u frames per period", params->fPeriodSize);
  613. jack_info("Network latency : %u cycles", params->fNetworkLatency);
  614. switch (params->fSampleEncoder) {
  615. case (JackFloatEncoder):
  616. jack_info("SampleEncoder : %s", "Float");
  617. break;
  618. case (JackIntEncoder):
  619. jack_info("SampleEncoder : %s", "16 bits integer");
  620. break;
  621. case (JackCeltEncoder):
  622. jack_info("SampleEncoder : %s", "CELT");
  623. jack_info("kBits : %d", params->fKBps);
  624. break;
  625. };
  626. jack_info("Slave mode : %s", (params->fSlaveSyncMode) ? "sync" : "async");
  627. jack_info("****************************************************");
  628. }
  629. SERVER_EXPORT sync_packet_type_t GetPacketType(session_params_t* params)
  630. {
  631. switch (params->fPacketID)
  632. {
  633. case 0:
  634. return SLAVE_AVAILABLE;
  635. case 1:
  636. return SLAVE_SETUP;
  637. case 2:
  638. return START_MASTER;
  639. case 3:
  640. return START_SLAVE;
  641. case 4:
  642. return KILL_MASTER;
  643. }
  644. return INVALID;
  645. }
  646. SERVER_EXPORT int SetPacketType(session_params_t* params, sync_packet_type_t packet_type)
  647. {
  648. switch (packet_type)
  649. {
  650. case INVALID:
  651. return -1;
  652. case SLAVE_AVAILABLE:
  653. params->fPacketID = 0;
  654. break;
  655. case SLAVE_SETUP:
  656. params->fPacketID = 1;
  657. break;
  658. case START_MASTER:
  659. params->fPacketID = 2;
  660. break;
  661. case START_SLAVE:
  662. params->fPacketID = 3;
  663. break;
  664. case KILL_MASTER:
  665. params->fPacketID = 4;
  666. }
  667. return 0;
  668. }
  669. // Packet header **********************************************************************************
  670. SERVER_EXPORT void PacketHeaderHToN(packet_header_t* src_header, packet_header_t* dst_header)
  671. {
  672. memcpy(dst_header, src_header, sizeof(packet_header_t));
  673. dst_header->fID = htonl(src_header->fID);
  674. dst_header->fNumPacket = htonl(src_header->fNumPacket);
  675. dst_header->fPacketSize = htonl(src_header->fPacketSize);
  676. dst_header->fActivePorts = htonl(src_header->fActivePorts);
  677. dst_header->fCycle = htonl(src_header->fCycle);
  678. dst_header->fSubCycle = htonl(src_header->fSubCycle);
  679. dst_header->fIsLastPckt = htonl(src_header->fIsLastPckt);
  680. }
  681. SERVER_EXPORT void PacketHeaderNToH(packet_header_t* src_header, packet_header_t* dst_header)
  682. {
  683. memcpy(dst_header, src_header, sizeof(packet_header_t));
  684. dst_header->fID = ntohl(src_header->fID);
  685. dst_header->fNumPacket = ntohl(src_header->fNumPacket);
  686. dst_header->fPacketSize = ntohl(src_header->fPacketSize);
  687. dst_header->fActivePorts = ntohl(src_header->fActivePorts);
  688. dst_header->fCycle = ntohl(src_header->fCycle);
  689. dst_header->fSubCycle = ntohl(src_header->fSubCycle);
  690. dst_header->fIsLastPckt = ntohl(src_header->fIsLastPckt);
  691. }
  692. SERVER_EXPORT void PacketHeaderDisplay(packet_header_t* header)
  693. {
  694. char bitdepth[16];
  695. jack_info("********************Header********************");
  696. jack_info("Data type : %c", header->fDataType);
  697. jack_info("Data stream : %c", header->fDataStream);
  698. jack_info("ID : %u", header->fID);
  699. jack_info("Cycle : %u", header->fCycle);
  700. jack_info("SubCycle : %u", header->fSubCycle);
  701. jack_info("Active ports : %u", header->fActivePorts);
  702. jack_info("DATA packets : %u", header->fNumPacket);
  703. jack_info("DATA size : %u", header->fPacketSize);
  704. jack_info("Last packet : '%s'", (header->fIsLastPckt) ? "yes" : "no");
  705. jack_info("Bitdepth : %s", bitdepth);
  706. jack_info("**********************************************");
  707. }
  708. SERVER_EXPORT void NetTransportDataDisplay(net_transport_data_t* data)
  709. {
  710. jack_info("********************Network Transport********************");
  711. jack_info("Transport new state : %u", data->fNewState);
  712. jack_info("Transport timebase master : %u", data->fTimebaseMaster);
  713. jack_info("Transport cycle state : %u", data->fState);
  714. jack_info("**********************************************");
  715. }
  716. SERVER_EXPORT void MidiBufferHToN(JackMidiBuffer* src_buffer, JackMidiBuffer* dst_buffer)
  717. {
  718. dst_buffer->magic = htonl(src_buffer->magic);
  719. dst_buffer->buffer_size = htonl(src_buffer->buffer_size);
  720. dst_buffer->nframes = htonl(src_buffer->nframes);
  721. dst_buffer->write_pos = htonl(src_buffer->write_pos);
  722. dst_buffer->event_count = htonl(src_buffer->event_count);
  723. dst_buffer->lost_events = htonl(src_buffer->lost_events);
  724. dst_buffer->mix_index = htonl(src_buffer->mix_index);
  725. }
  726. SERVER_EXPORT void MidiBufferNToH(JackMidiBuffer* src_buffer, JackMidiBuffer* dst_buffer)
  727. {
  728. dst_buffer->magic = ntohl(src_buffer->magic);
  729. dst_buffer->buffer_size = ntohl(src_buffer->buffer_size);
  730. dst_buffer->nframes = ntohl(src_buffer->nframes);
  731. dst_buffer->write_pos = ntohl(src_buffer->write_pos);
  732. dst_buffer->event_count = ntohl(src_buffer->event_count);
  733. dst_buffer->lost_events = ntohl(src_buffer->lost_events);
  734. dst_buffer->mix_index = ntohl(src_buffer->mix_index);
  735. }
  736. SERVER_EXPORT void TransportDataHToN(net_transport_data_t* src_params, net_transport_data_t* dst_params)
  737. {
  738. dst_params->fNewState = htonl(src_params->fNewState);
  739. dst_params->fTimebaseMaster = htonl(src_params->fTimebaseMaster);
  740. dst_params->fState = htonl(src_params->fState);
  741. dst_params->fPosition.unique_1 = htonll(src_params->fPosition.unique_1);
  742. dst_params->fPosition.usecs = htonl(src_params->fPosition.usecs);
  743. dst_params->fPosition.frame_rate = htonl(src_params->fPosition.frame_rate);
  744. dst_params->fPosition.frame = htonl(src_params->fPosition.frame);
  745. dst_params->fPosition.valid = (jack_position_bits_t)htonl((uint32_t)src_params->fPosition.valid);
  746. dst_params->fPosition.bar = htonl(src_params->fPosition.bar);
  747. dst_params->fPosition.beat = htonl(src_params->fPosition.beat);
  748. dst_params->fPosition.tick = htonl(src_params->fPosition.tick);
  749. dst_params->fPosition.bar_start_tick = htonll((uint64_t)src_params->fPosition.bar_start_tick);
  750. dst_params->fPosition.beats_per_bar = htonl((uint32_t)src_params->fPosition.beats_per_bar);
  751. dst_params->fPosition.beat_type = htonl((uint32_t)src_params->fPosition.beat_type);
  752. dst_params->fPosition.ticks_per_beat = htonll((uint64_t)src_params->fPosition.ticks_per_beat);
  753. dst_params->fPosition.beats_per_minute = htonll((uint64_t)src_params->fPosition.beats_per_minute);
  754. dst_params->fPosition.frame_time = htonll((uint64_t)src_params->fPosition.frame_time);
  755. dst_params->fPosition.next_time = htonll((uint64_t)src_params->fPosition.next_time);
  756. dst_params->fPosition.bbt_offset = htonl(src_params->fPosition.bbt_offset);
  757. dst_params->fPosition.audio_frames_per_video_frame = htonl((uint32_t)src_params->fPosition.audio_frames_per_video_frame);
  758. dst_params->fPosition.video_offset = htonl(src_params->fPosition.video_offset);
  759. dst_params->fPosition.unique_2 = htonll(src_params->fPosition.unique_2);
  760. }
  761. SERVER_EXPORT void TransportDataNToH(net_transport_data_t* src_params, net_transport_data_t* dst_params)
  762. {
  763. dst_params->fNewState = ntohl(src_params->fNewState);
  764. dst_params->fTimebaseMaster = ntohl(src_params->fTimebaseMaster);
  765. dst_params->fState = ntohl(src_params->fState);
  766. dst_params->fPosition.unique_1 = ntohll(src_params->fPosition.unique_1);
  767. dst_params->fPosition.usecs = ntohl(src_params->fPosition.usecs);
  768. dst_params->fPosition.frame_rate = ntohl(src_params->fPosition.frame_rate);
  769. dst_params->fPosition.frame = ntohl(src_params->fPosition.frame);
  770. dst_params->fPosition.valid = (jack_position_bits_t)ntohl((uint32_t)src_params->fPosition.valid);
  771. dst_params->fPosition.bar = ntohl(src_params->fPosition.bar);
  772. dst_params->fPosition.beat = ntohl(src_params->fPosition.beat);
  773. dst_params->fPosition.tick = ntohl(src_params->fPosition.tick);
  774. dst_params->fPosition.bar_start_tick = ntohll((uint64_t)src_params->fPosition.bar_start_tick);
  775. dst_params->fPosition.beats_per_bar = ntohl((uint32_t)src_params->fPosition.beats_per_bar);
  776. dst_params->fPosition.beat_type = ntohl((uint32_t)src_params->fPosition.beat_type);
  777. dst_params->fPosition.ticks_per_beat = ntohll((uint64_t)src_params->fPosition.ticks_per_beat);
  778. dst_params->fPosition.beats_per_minute = ntohll((uint64_t)src_params->fPosition.beats_per_minute);
  779. dst_params->fPosition.frame_time = ntohll((uint64_t)src_params->fPosition.frame_time);
  780. dst_params->fPosition.next_time = ntohll((uint64_t)src_params->fPosition.next_time);
  781. dst_params->fPosition.bbt_offset = ntohl(src_params->fPosition.bbt_offset);
  782. dst_params->fPosition.audio_frames_per_video_frame = ntohl((uint32_t)src_params->fPosition.audio_frames_per_video_frame);
  783. dst_params->fPosition.video_offset = ntohl(src_params->fPosition.video_offset);
  784. dst_params->fPosition.unique_2 = ntohll(src_params->fPosition.unique_2);
  785. }
  786. // Utility *******************************************************************************************************
  787. SERVER_EXPORT int SocketAPIInit()
  788. {
  789. #ifdef WIN32
  790. WORD wVersionRequested = MAKEWORD(2, 2);
  791. WSADATA wsaData;
  792. if (WSAStartup(wVersionRequested, &wsaData) != 0) {
  793. jack_error("WSAStartup error : %s", strerror(NET_ERROR_CODE));
  794. return -1;
  795. }
  796. if (LOBYTE(wsaData.wVersion) != 2 || HIBYTE(wsaData.wVersion) != 2) {
  797. jack_error("Could not find a useable version of Winsock.dll\n");
  798. WSACleanup();
  799. return -1;
  800. }
  801. #endif
  802. return 0;
  803. }
  804. SERVER_EXPORT int SocketAPIEnd()
  805. {
  806. #ifdef WIN32
  807. return WSACleanup();
  808. #endif
  809. return 0;
  810. }
  811. SERVER_EXPORT const char* GetTransportState(int transport_state)
  812. {
  813. switch (transport_state)
  814. {
  815. case JackTransportRolling:
  816. return "rolling";
  817. case JackTransportStarting:
  818. return "starting";
  819. case JackTransportStopped:
  820. return "stopped";
  821. case JackTransportNetStarting:
  822. return "netstarting";
  823. }
  824. return NULL;
  825. }
  826. }