panning.c 14 KB

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  1. /**
  2. * OpenAL cross platform audio library
  3. * Copyright (C) 1999-2010 by authors.
  4. * This library is free software; you can redistribute it and/or
  5. * modify it under the terms of the GNU Library General Public
  6. * License as published by the Free Software Foundation; either
  7. * version 2 of the License, or (at your option) any later version.
  8. *
  9. * This library is distributed in the hope that it will be useful,
  10. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  12. * Library General Public License for more details.
  13. *
  14. * You should have received a copy of the GNU Library General Public
  15. * License along with this library; if not, write to the
  16. * Free Software Foundation, Inc., 59 Temple Place - Suite 330,
  17. * Boston, MA 02111-1307, USA.
  18. * Or go to http://www.gnu.org/copyleft/lgpl.html
  19. */
  20. #include "config.h"
  21. #include <math.h>
  22. #include <stdlib.h>
  23. #include <string.h>
  24. #include <ctype.h>
  25. #include <assert.h>
  26. #include "alMain.h"
  27. #include "AL/al.h"
  28. #include "AL/alc.h"
  29. #include "alu.h"
  30. static void SetSpeakerArrangement(const char *name, ALfp SpeakerAngle[MAXCHANNELS],
  31. Channel Speaker2Chan[MAXCHANNELS], ALint chans)
  32. {
  33. char layout_str[256];
  34. char *confkey, *next;
  35. char *sep, *end;
  36. Channel val;
  37. int i;
  38. if(!ConfigValueExists(NULL, name))
  39. name = "layout";
  40. strncpy(layout_str, GetConfigValue(NULL, name, ""), sizeof(layout_str));
  41. layout_str[sizeof(layout_str)-1] = 0;
  42. if(!layout_str[0])
  43. return;
  44. next = confkey = layout_str;
  45. while(next && *next)
  46. {
  47. confkey = next;
  48. next = strchr(confkey, ',');
  49. if(next)
  50. {
  51. *next = 0;
  52. do {
  53. next++;
  54. } while(isspace(*next) || *next == ',');
  55. }
  56. sep = strchr(confkey, '=');
  57. if(!sep || confkey == sep)
  58. continue;
  59. end = sep - 1;
  60. while(isspace(*end) && end != confkey)
  61. end--;
  62. *(++end) = 0;
  63. if(strcmp(confkey, "fl") == 0 || strcmp(confkey, "front-left") == 0)
  64. val = FRONT_LEFT;
  65. else if(strcmp(confkey, "fr") == 0 || strcmp(confkey, "front-right") == 0)
  66. val = FRONT_RIGHT;
  67. else if(strcmp(confkey, "fc") == 0 || strcmp(confkey, "front-center") == 0)
  68. val = FRONT_CENTER;
  69. else if(strcmp(confkey, "bl") == 0 || strcmp(confkey, "back-left") == 0)
  70. val = BACK_LEFT;
  71. else if(strcmp(confkey, "br") == 0 || strcmp(confkey, "back-right") == 0)
  72. val = BACK_RIGHT;
  73. else if(strcmp(confkey, "bc") == 0 || strcmp(confkey, "back-center") == 0)
  74. val = BACK_CENTER;
  75. else if(strcmp(confkey, "sl") == 0 || strcmp(confkey, "side-left") == 0)
  76. val = SIDE_LEFT;
  77. else if(strcmp(confkey, "sr") == 0 || strcmp(confkey, "side-right") == 0)
  78. val = SIDE_RIGHT;
  79. else
  80. {
  81. AL_PRINT("Unknown speaker for %s: \"%s\"\n", name, confkey);
  82. continue;
  83. }
  84. *(sep++) = 0;
  85. while(isspace(*sep))
  86. sep++;
  87. for(i = 0;i < chans;i++)
  88. {
  89. if(Speaker2Chan[i] == val)
  90. {
  91. long angle = strtol(sep, NULL, 10);
  92. if(angle >= -180 && angle <= 180)
  93. SpeakerAngle[i] = ALfpMult(int2ALfp(angle), float2ALfp(M_PI/180.0f));
  94. else
  95. AL_PRINT("Invalid angle for speaker \"%s\": %ld\n", confkey, angle);
  96. break;
  97. }
  98. }
  99. }
  100. for(i = 0;i < chans;i++)
  101. {
  102. int min = i;
  103. int i2;
  104. for(i2 = i+1;i2 < chans;i2++)
  105. {
  106. if(SpeakerAngle[i2] < SpeakerAngle[min])
  107. min = i2;
  108. }
  109. if(min != i)
  110. {
  111. ALfp tmpf;
  112. Channel tmpc;
  113. tmpf = SpeakerAngle[i];
  114. SpeakerAngle[i] = SpeakerAngle[min];
  115. SpeakerAngle[min] = tmpf;
  116. tmpc = Speaker2Chan[i];
  117. Speaker2Chan[i] = Speaker2Chan[min];
  118. Speaker2Chan[min] = tmpc;
  119. }
  120. }
  121. }
  122. static ALfp aluLUTpos2Angle(ALint pos)
  123. {
  124. if(pos < QUADRANT_NUM)
  125. return aluAtan(ALfpDiv(int2ALfp(pos), int2ALfp(QUADRANT_NUM - pos)));
  126. if(pos < 2 * QUADRANT_NUM)
  127. return (float2ALfp(M_PI_2) + aluAtan(ALfpDiv(int2ALfp(pos - QUADRANT_NUM),int2ALfp(2 * QUADRANT_NUM - pos))));
  128. if(pos < 3 * QUADRANT_NUM)
  129. return (aluAtan(ALfpDiv(int2ALfp(pos - 2 * QUADRANT_NUM), int2ALfp(3 * QUADRANT_NUM - pos))) - float2ALfp(M_PI));
  130. return (aluAtan(ALfpDiv(int2ALfp(pos - 3 * QUADRANT_NUM), int2ALfp(4 * QUADRANT_NUM - pos))) - float2ALfp(M_PI));
  131. }
  132. ALint aluCart2LUTpos(ALfp re, ALfp im)
  133. {
  134. ALint pos = 0;
  135. ALfp denom = (aluFabs(re) + aluFabs(im));
  136. if(denom > int2ALfp(0))
  137. pos = (ALint)ALfp2int(ALfpDiv(ALfpMult(int2ALfp(QUADRANT_NUM),aluFabs(im)), (denom + float2ALfp(0.5))));
  138. if(re < int2ALfp(0))
  139. pos = 2 * QUADRANT_NUM - pos;
  140. if(im < int2ALfp(0))
  141. pos = LUT_NUM - pos;
  142. return pos%LUT_NUM;
  143. }
  144. ALvoid aluInitPanning(ALCdevice *Device)
  145. {
  146. ALfp SpeakerAngle[MAXCHANNELS];
  147. ALfp (*Matrix)[MAXCHANNELS];
  148. Channel *Speaker2Chan;
  149. ALfp Alpha, Theta;
  150. ALfp *PanningLUT;
  151. ALint pos, offset;
  152. ALuint s, s2;
  153. for(s = 0;s < MAXCHANNELS;s++)
  154. {
  155. for(s2 = 0;s2 < MAXCHANNELS;s2++)
  156. Device->ChannelMatrix[s][s2] = ((s==s2) ? int2ALfp(1) : int2ALfp(0));
  157. }
  158. Speaker2Chan = Device->Speaker2Chan;
  159. Matrix = Device->ChannelMatrix;
  160. switch(Device->FmtChans)
  161. {
  162. case DevFmtMono:
  163. Matrix[FRONT_LEFT][FRONT_CENTER] = aluSqrt(float2ALfp(0.5));
  164. Matrix[FRONT_RIGHT][FRONT_CENTER] = aluSqrt(float2ALfp(0.5));
  165. Matrix[SIDE_LEFT][FRONT_CENTER] = aluSqrt(float2ALfp(0.5));
  166. Matrix[SIDE_RIGHT][FRONT_CENTER] = aluSqrt(float2ALfp(0.5));
  167. Matrix[BACK_LEFT][FRONT_CENTER] = aluSqrt(float2ALfp(0.5));
  168. Matrix[BACK_RIGHT][FRONT_CENTER] = aluSqrt(float2ALfp(0.5));
  169. Matrix[BACK_CENTER][FRONT_CENTER] = int2ALfp(1);
  170. Device->NumChan = 1;
  171. Speaker2Chan[0] = FRONT_CENTER;
  172. SpeakerAngle[0] = int2ALfp(0);
  173. break;
  174. case DevFmtStereo:
  175. #ifdef APPORTABLE_OPTIMIZED_OUT
  176. // Leave as identity matrix if Apportable-optimized
  177. Matrix[FRONT_CENTER][FRONT_LEFT] = aluSqrt(float2ALfp(0.5));
  178. Matrix[FRONT_CENTER][FRONT_RIGHT] = aluSqrt(float2ALfp(0.5));
  179. Matrix[SIDE_LEFT][FRONT_LEFT] = int2ALfp(1);
  180. Matrix[SIDE_RIGHT][FRONT_RIGHT] = int2ALfp(1);
  181. Matrix[BACK_LEFT][FRONT_LEFT] = int2ALfp(1);
  182. Matrix[BACK_RIGHT][FRONT_RIGHT] = int2ALfp(1);
  183. Matrix[BACK_CENTER][FRONT_LEFT] = aluSqrt(float2ALfp(0.5));
  184. Matrix[BACK_CENTER][FRONT_RIGHT] = aluSqrt(float2ALfp(0.5));
  185. #endif
  186. Device->NumChan = 2;
  187. Speaker2Chan[0] = FRONT_LEFT;
  188. Speaker2Chan[1] = FRONT_RIGHT;
  189. SpeakerAngle[0] = float2ALfp(-90.0f * M_PI/180.0f);
  190. SpeakerAngle[1] = float2ALfp( 90.0f * M_PI/180.0f);
  191. SetSpeakerArrangement("layout_STEREO", SpeakerAngle, Speaker2Chan, Device->NumChan);
  192. break;
  193. #ifdef STEREO_ONLY
  194. case DevFmtQuad:
  195. case DevFmtX51:
  196. case DevFmtX61:
  197. case DevFmtX71:
  198. break;
  199. #else
  200. case DevFmtQuad:
  201. Matrix[FRONT_CENTER][FRONT_LEFT] = aluSqrt(float2ALfp(0.5));
  202. Matrix[FRONT_CENTER][FRONT_RIGHT] = aluSqrt(float2ALfp(0.5));
  203. Matrix[SIDE_LEFT][FRONT_LEFT] = aluSqrt(float2ALfp(0.5));
  204. Matrix[SIDE_LEFT][BACK_LEFT] = aluSqrt(float2ALfp(0.5));
  205. Matrix[SIDE_RIGHT][FRONT_RIGHT] = aluSqrt(float2ALfp(0.5));
  206. Matrix[SIDE_RIGHT][BACK_RIGHT] = aluSqrt(float2ALfp(0.5));
  207. Matrix[BACK_CENTER][BACK_LEFT] = aluSqrt(float2ALfp(0.5));
  208. Matrix[BACK_CENTER][BACK_RIGHT] = aluSqrt(float2ALfp(0.5));
  209. Device->NumChan = 4;
  210. Speaker2Chan[0] = BACK_LEFT;
  211. Speaker2Chan[1] = FRONT_LEFT;
  212. Speaker2Chan[2] = FRONT_RIGHT;
  213. Speaker2Chan[3] = BACK_RIGHT;
  214. SpeakerAngle[0] = float2ALfp(-135.0f * M_PI/180.0f);
  215. SpeakerAngle[1] = float2ALfp( -45.0f * M_PI/180.0f);
  216. SpeakerAngle[2] = float2ALfp( 45.0f * M_PI/180.0f);
  217. SpeakerAngle[3] = float2ALfp( 135.0f * M_PI/180.0f);
  218. SetSpeakerArrangement("layout_QUAD", SpeakerAngle, Speaker2Chan, Device->NumChan);
  219. break;
  220. case DevFmtX51:
  221. Matrix[SIDE_LEFT][FRONT_LEFT] = aluSqrt(float2ALfp(0.5));
  222. Matrix[SIDE_LEFT][BACK_LEFT] = aluSqrt(float2ALfp(0.5));
  223. Matrix[SIDE_RIGHT][FRONT_RIGHT] = aluSqrt(float2ALfp(0.5));
  224. Matrix[SIDE_RIGHT][BACK_RIGHT] = aluSqrt(float2ALfp(0.5));
  225. Matrix[BACK_CENTER][BACK_LEFT] = aluSqrt(float2ALfp(0.5));
  226. Matrix[BACK_CENTER][BACK_RIGHT] = aluSqrt(float2ALfp(0.5));
  227. Device->NumChan = 5;
  228. Speaker2Chan[0] = BACK_LEFT;
  229. Speaker2Chan[1] = FRONT_LEFT;
  230. Speaker2Chan[2] = FRONT_CENTER;
  231. Speaker2Chan[3] = FRONT_RIGHT;
  232. Speaker2Chan[4] = BACK_RIGHT;
  233. SpeakerAngle[0] = float2ALfp(-110.0f * M_PI/180.0f);
  234. SpeakerAngle[1] = float2ALfp( -30.0f * M_PI/180.0f);
  235. SpeakerAngle[2] = float2ALfp( 0.0f * M_PI/180.0f);
  236. SpeakerAngle[3] = float2ALfp( 30.0f * M_PI/180.0f);
  237. SpeakerAngle[4] = float2ALfp( 110.0f * M_PI/180.0f);
  238. SetSpeakerArrangement("layout_51CHN", SpeakerAngle, Speaker2Chan, Device->NumChan);
  239. break;
  240. case DevFmtX61:
  241. Matrix[BACK_LEFT][BACK_CENTER] = aluSqrt(float2ALfp(0.5));
  242. Matrix[BACK_LEFT][SIDE_LEFT] = aluSqrt(float2ALfp(0.5));
  243. Matrix[BACK_RIGHT][BACK_CENTER] = aluSqrt(float2ALfp(0.5));
  244. Matrix[BACK_RIGHT][SIDE_RIGHT] = aluSqrt(float2ALfp(0.5));
  245. Device->NumChan = 6;
  246. Speaker2Chan[0] = SIDE_LEFT;
  247. Speaker2Chan[1] = FRONT_LEFT;
  248. Speaker2Chan[2] = FRONT_CENTER;
  249. Speaker2Chan[3] = FRONT_RIGHT;
  250. Speaker2Chan[4] = SIDE_RIGHT;
  251. Speaker2Chan[5] = BACK_CENTER;
  252. SpeakerAngle[0] = float2ALfp(-90.0f * M_PI/180.0f);
  253. SpeakerAngle[1] = float2ALfp(-30.0f * M_PI/180.0f);
  254. SpeakerAngle[2] = float2ALfp( 0.0f * M_PI/180.0f);
  255. SpeakerAngle[3] = float2ALfp( 30.0f * M_PI/180.0f);
  256. SpeakerAngle[4] = float2ALfp( 90.0f * M_PI/180.0f);
  257. SpeakerAngle[5] = float2ALfp(180.0f * M_PI/180.0f);
  258. SetSpeakerArrangement("layout_61CHN", SpeakerAngle, Speaker2Chan, Device->NumChan);
  259. break;
  260. case DevFmtX71:
  261. Matrix[BACK_CENTER][BACK_LEFT] = aluSqrt(float2ALfp(0.5));
  262. Matrix[BACK_CENTER][BACK_RIGHT] = aluSqrt(float2ALfp(0.5));
  263. Device->NumChan = 7;
  264. Speaker2Chan[0] = BACK_LEFT;
  265. Speaker2Chan[1] = SIDE_LEFT;
  266. Speaker2Chan[2] = FRONT_LEFT;
  267. Speaker2Chan[3] = FRONT_CENTER;
  268. Speaker2Chan[4] = FRONT_RIGHT;
  269. Speaker2Chan[5] = SIDE_RIGHT;
  270. Speaker2Chan[6] = BACK_RIGHT;
  271. SpeakerAngle[0] = float2ALfp(-150.0f * M_PI/180.0f);
  272. SpeakerAngle[1] = float2ALfp( -90.0f * M_PI/180.0f);
  273. SpeakerAngle[2] = float2ALfp( -30.0f * M_PI/180.0f);
  274. SpeakerAngle[3] = float2ALfp( 0.0f * M_PI/180.0f);
  275. SpeakerAngle[4] = float2ALfp( 30.0f * M_PI/180.0f);
  276. SpeakerAngle[5] = float2ALfp( 90.0f * M_PI/180.0f);
  277. SpeakerAngle[6] = float2ALfp( 150.0f * M_PI/180.0f);
  278. SetSpeakerArrangement("layout_71CHN", SpeakerAngle, Speaker2Chan, Device->NumChan);
  279. break;
  280. #endif
  281. }
  282. if(GetConfigValueBool(NULL, "scalemix", 0))
  283. {
  284. ALfp maxout = int2ALfp(1);;
  285. for(s = 0;s < MAXCHANNELS;s++)
  286. {
  287. ALfp out = int2ALfp(0);
  288. for(s2 = 0;s2 < MAXCHANNELS;s2++)
  289. out = (out + Device->ChannelMatrix[s2][s]);
  290. maxout = __max(maxout, out);
  291. }
  292. maxout = ALfpDiv(int2ALfp(1),maxout);
  293. for(s = 0;s < MAXCHANNELS;s++)
  294. {
  295. for(s2 = 0;s2 < MAXCHANNELS;s2++)
  296. Device->ChannelMatrix[s2][s] = ALfpMult(Device->ChannelMatrix[s2][s],maxout);
  297. }
  298. }
  299. PanningLUT = Device->PanningLUT;
  300. for(pos = 0; pos < LUT_NUM; pos++)
  301. {
  302. /* clear all values */
  303. offset = MAXCHANNELS * pos;
  304. for(s = 0; s < MAXCHANNELS; s++)
  305. PanningLUT[offset+s] = int2ALfp(0);
  306. if(Device->NumChan == 1)
  307. {
  308. PanningLUT[offset + Speaker2Chan[0]] = int2ALfp(1);
  309. continue;
  310. }
  311. /* source angle */
  312. Theta = aluLUTpos2Angle(pos);
  313. /* set panning values */
  314. for(s = 0; s < Device->NumChan - 1; s++)
  315. {
  316. if(Theta >= SpeakerAngle[s] && Theta < SpeakerAngle[s+1])
  317. {
  318. /* source between speaker s and speaker s+1 */
  319. Alpha = ALfpDiv(ALfpMult(float2ALfp(M_PI_2), (Theta-SpeakerAngle[s])),
  320. (SpeakerAngle[s+1]-SpeakerAngle[s]));
  321. PanningLUT[offset + Speaker2Chan[s]] = __cos(Alpha);
  322. PanningLUT[offset + Speaker2Chan[s+1]] = __sin(Alpha);
  323. break;
  324. }
  325. }
  326. if(s == Device->NumChan - 1)
  327. {
  328. /* source between last and first speaker */
  329. if(Theta < SpeakerAngle[0])
  330. Theta = (Theta + float2ALfp(2.0f * M_PI));
  331. Alpha = ALfpDiv(ALfpMult(float2ALfp(M_PI_2), (Theta-SpeakerAngle[s])),
  332. (float2ALfp(2.0f * M_PI) + SpeakerAngle[0]-SpeakerAngle[s]));
  333. PanningLUT[offset + Speaker2Chan[s]] = __cos(Alpha);
  334. PanningLUT[offset + Speaker2Chan[0]] = __sin(Alpha);
  335. }
  336. }
  337. }