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wavegen.c 38KB

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  1. /*
  2. * Copyright (C) 2005 to 2013 by Jonathan Duddington
  3. * email: [email protected]
  4. * Copyright (C) 2015-2016 Reece H. Dunn
  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 3 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, see: <http://www.gnu.org/licenses/>.
  18. */
  19. // this version keeps wavemult window as a constant fraction
  20. // of the cycle length - but that spreads out the HF peaks too much
  21. #include "config.h"
  22. #include <math.h>
  23. #include <stdbool.h>
  24. #include <stdint.h>
  25. #include <stdio.h>
  26. #include <stdlib.h>
  27. #include <string.h>
  28. #include <espeak-ng/espeak_ng.h>
  29. #include <espeak-ng/speak_lib.h>
  30. #include "wavegen.h"
  31. #include "synthesize.h"
  32. #include "speech.h"
  33. #include "phoneme.h"
  34. #include "voice.h"
  35. #ifdef INCLUDE_KLATT
  36. #include "klatt.h"
  37. #endif
  38. #if HAVE_SONIC_H
  39. #include "sonic.h"
  40. #endif
  41. #include "sintab.h"
  42. #define N_WAV_BUF 10
  43. voice_t *wvoice = NULL;
  44. FILE *f_log = NULL;
  45. static int option_harmonic1 = 10;
  46. static int flutter_amp = 64;
  47. static int general_amplitude = 60;
  48. static int consonant_amp = 26;
  49. int embedded_value[N_EMBEDDED_VALUES];
  50. static int PHASE_INC_FACTOR;
  51. int samplerate = 0; // this is set by Wavegeninit()
  52. int samplerate_native = 0;
  53. static wavegen_peaks_t peaks[N_PEAKS];
  54. static int peak_harmonic[N_PEAKS];
  55. static int peak_height[N_PEAKS];
  56. int echo_head;
  57. int echo_tail;
  58. int echo_amp = 0;
  59. short echo_buf[N_ECHO_BUF];
  60. static int echo_length = 0; // period (in sample\) to ensure completion of echo at the end of speech, set in WavegenSetEcho()
  61. static int voicing;
  62. static RESONATOR rbreath[N_PEAKS];
  63. static int harm_sqrt_n = 0;
  64. #define N_LOWHARM 30
  65. #define MAX_HARMONIC 400 // 400 * 50Hz = 20 kHz, more than enough
  66. static int harm_inc[N_LOWHARM]; // only for these harmonics do we interpolate amplitude between steps
  67. static int *harmspect;
  68. static int hswitch = 0;
  69. static int hspect[2][MAX_HARMONIC]; // 2 copies, we interpolate between then
  70. static int max_hval = 0;
  71. static int nsamples = 0; // number to do
  72. static int modulation_type = 0;
  73. static int glottal_flag = 0;
  74. static int glottal_reduce = 0;
  75. WGEN_DATA wdata;
  76. static int amp_ix;
  77. static int amp_inc;
  78. static unsigned char *amplitude_env = NULL;
  79. static int samplecount = 0; // number done
  80. static int samplecount_start = 0; // count at start of this segment
  81. static int end_wave = 0; // continue to end of wave cycle
  82. static int wavephase;
  83. static int phaseinc;
  84. static int cycle_samples; // number of samples in a cycle at current pitch
  85. static int cbytes;
  86. static int hf_factor;
  87. static double minus_pi_t;
  88. static double two_pi_t;
  89. unsigned char *out_ptr;
  90. unsigned char *out_start;
  91. unsigned char *out_end;
  92. // the queue of operations passed to wavegen from sythesize
  93. intptr_t wcmdq[N_WCMDQ][4];
  94. int wcmdq_head = 0;
  95. int wcmdq_tail = 0;
  96. // pitch,speed,
  97. int embedded_default[N_EMBEDDED_VALUES] = { 0, 50, espeakRATE_NORMAL, 100, 50, 0, 0, 0, espeakRATE_NORMAL, 0, 0, 0, 0, 0, 0 };
  98. static int embedded_max[N_EMBEDDED_VALUES] = { 0, 0x7fff, 750, 300, 99, 99, 99, 0, 750, 0, 0, 0, 0, 4, 0 };
  99. int current_source_index = 0;
  100. #if HAVE_SONIC_H
  101. static sonicStream sonicSpeedupStream = NULL;
  102. double sonicSpeed = 1.0;
  103. #endif
  104. // 1st index=roughness
  105. // 2nd index=modulation_type
  106. // value: bits 0-3 amplitude (16ths), bits 4-7 every n cycles
  107. #define N_ROUGHNESS 8
  108. static unsigned char modulation_tab[N_ROUGHNESS][8] = {
  109. { 0, 0x00, 0x00, 0x00, 0, 0x46, 0xf2, 0x29 },
  110. { 0, 0x2f, 0x00, 0x2f, 0, 0x45, 0xf2, 0x29 },
  111. { 0, 0x2f, 0x00, 0x2e, 0, 0x45, 0xf2, 0x28 },
  112. { 0, 0x2e, 0x00, 0x2d, 0, 0x34, 0xf2, 0x28 },
  113. { 0, 0x2d, 0x2d, 0x2c, 0, 0x34, 0xf2, 0x28 },
  114. { 0, 0x2b, 0x2b, 0x2b, 0, 0x34, 0xf2, 0x28 },
  115. { 0, 0x2a, 0x2a, 0x2a, 0, 0x34, 0xf2, 0x28 },
  116. { 0, 0x29, 0x29, 0x29, 0, 0x34, 0xf2, 0x28 },
  117. };
  118. // Flutter table, to add natural variations to the pitch
  119. #define N_FLUTTER 0x170
  120. static int Flutter_inc;
  121. static const unsigned char Flutter_tab[N_FLUTTER] = {
  122. 0x80, 0x9b, 0xb5, 0xcb, 0xdc, 0xe8, 0xed, 0xec,
  123. 0xe6, 0xdc, 0xce, 0xbf, 0xb0, 0xa3, 0x98, 0x90,
  124. 0x8c, 0x8b, 0x8c, 0x8f, 0x92, 0x94, 0x95, 0x92,
  125. 0x8c, 0x83, 0x78, 0x69, 0x59, 0x49, 0x3c, 0x31,
  126. 0x2a, 0x29, 0x2d, 0x36, 0x44, 0x56, 0x69, 0x7d,
  127. 0x8f, 0x9f, 0xaa, 0xb1, 0xb2, 0xad, 0xa4, 0x96,
  128. 0x87, 0x78, 0x69, 0x5c, 0x53, 0x4f, 0x4f, 0x55,
  129. 0x5e, 0x6b, 0x7a, 0x88, 0x96, 0xa2, 0xab, 0xb0,
  130. 0xb1, 0xae, 0xa8, 0xa0, 0x98, 0x91, 0x8b, 0x88,
  131. 0x89, 0x8d, 0x94, 0x9d, 0xa8, 0xb2, 0xbb, 0xc0,
  132. 0xc1, 0xbd, 0xb4, 0xa5, 0x92, 0x7c, 0x63, 0x4a,
  133. 0x32, 0x1e, 0x0e, 0x05, 0x02, 0x05, 0x0f, 0x1e,
  134. 0x30, 0x44, 0x59, 0x6d, 0x7f, 0x8c, 0x96, 0x9c,
  135. 0x9f, 0x9f, 0x9d, 0x9b, 0x99, 0x99, 0x9c, 0xa1,
  136. 0xa9, 0xb3, 0xbf, 0xca, 0xd5, 0xdc, 0xe0, 0xde,
  137. 0xd8, 0xcc, 0xbb, 0xa6, 0x8f, 0x77, 0x60, 0x4b,
  138. 0x3a, 0x2e, 0x28, 0x29, 0x2f, 0x3a, 0x48, 0x59,
  139. 0x6a, 0x7a, 0x86, 0x90, 0x94, 0x95, 0x91, 0x89,
  140. 0x80, 0x75, 0x6b, 0x62, 0x5c, 0x5a, 0x5c, 0x61,
  141. 0x69, 0x74, 0x80, 0x8a, 0x94, 0x9a, 0x9e, 0x9d,
  142. 0x98, 0x90, 0x86, 0x7c, 0x71, 0x68, 0x62, 0x60,
  143. 0x63, 0x6b, 0x78, 0x88, 0x9b, 0xaf, 0xc2, 0xd2,
  144. 0xdf, 0xe6, 0xe7, 0xe2, 0xd7, 0xc6, 0xb2, 0x9c,
  145. 0x84, 0x6f, 0x5b, 0x4b, 0x40, 0x39, 0x37, 0x38,
  146. 0x3d, 0x43, 0x4a, 0x50, 0x54, 0x56, 0x55, 0x52,
  147. 0x4d, 0x48, 0x42, 0x3f, 0x3e, 0x41, 0x49, 0x56,
  148. 0x67, 0x7c, 0x93, 0xab, 0xc3, 0xd9, 0xea, 0xf6,
  149. 0xfc, 0xfb, 0xf4, 0xe7, 0xd5, 0xc0, 0xaa, 0x94,
  150. 0x80, 0x71, 0x64, 0x5d, 0x5a, 0x5c, 0x61, 0x68,
  151. 0x70, 0x77, 0x7d, 0x7f, 0x7f, 0x7b, 0x74, 0x6b,
  152. 0x61, 0x57, 0x4e, 0x48, 0x46, 0x48, 0x4e, 0x59,
  153. 0x66, 0x75, 0x84, 0x93, 0x9f, 0xa7, 0xab, 0xaa,
  154. 0xa4, 0x99, 0x8b, 0x7b, 0x6a, 0x5b, 0x4e, 0x46,
  155. 0x43, 0x45, 0x4d, 0x5a, 0x6b, 0x7f, 0x92, 0xa6,
  156. 0xb8, 0xc5, 0xcf, 0xd3, 0xd2, 0xcd, 0xc4, 0xb9,
  157. 0xad, 0xa1, 0x96, 0x8e, 0x89, 0x87, 0x87, 0x8a,
  158. 0x8d, 0x91, 0x92, 0x91, 0x8c, 0x84, 0x78, 0x68,
  159. 0x55, 0x41, 0x2e, 0x1c, 0x0e, 0x05, 0x01, 0x05,
  160. 0x0f, 0x1f, 0x34, 0x4d, 0x68, 0x81, 0x9a, 0xb0,
  161. 0xc1, 0xcd, 0xd3, 0xd3, 0xd0, 0xc8, 0xbf, 0xb5,
  162. 0xab, 0xa4, 0x9f, 0x9c, 0x9d, 0xa0, 0xa5, 0xaa,
  163. 0xae, 0xb1, 0xb0, 0xab, 0xa3, 0x96, 0x87, 0x76,
  164. 0x63, 0x51, 0x42, 0x36, 0x2f, 0x2d, 0x31, 0x3a,
  165. 0x48, 0x59, 0x6b, 0x7e, 0x8e, 0x9c, 0xa6, 0xaa,
  166. 0xa9, 0xa3, 0x98, 0x8a, 0x7b, 0x6c, 0x5d, 0x52,
  167. 0x4a, 0x48, 0x4a, 0x50, 0x5a, 0x67, 0x75, 0x82
  168. };
  169. // waveform shape table for HF peaks, formants 6,7,8
  170. #define N_WAVEMULT 128
  171. static int wavemult_offset = 0;
  172. static int wavemult_max = 0;
  173. // the presets are for 22050 Hz sample rate.
  174. // A different rate will need to recalculate the presets in WavegenInit()
  175. static unsigned char wavemult[N_WAVEMULT] = {
  176. 0, 0, 0, 2, 3, 5, 8, 11, 14, 18, 22, 27, 32, 37, 43, 49,
  177. 55, 62, 69, 76, 83, 90, 98, 105, 113, 121, 128, 136, 144, 152, 159, 166,
  178. 174, 181, 188, 194, 201, 207, 213, 218, 224, 228, 233, 237, 240, 244, 246, 249,
  179. 251, 252, 253, 253, 253, 253, 252, 251, 249, 246, 244, 240, 237, 233, 228, 224,
  180. 218, 213, 207, 201, 194, 188, 181, 174, 166, 159, 152, 144, 136, 128, 121, 113,
  181. 105, 98, 90, 83, 76, 69, 62, 55, 49, 43, 37, 32, 27, 22, 18, 14,
  182. 11, 8, 5, 3, 2, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  183. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0
  184. };
  185. // set from y = pow(2,x) * 128, x=-1 to 1
  186. unsigned char pitch_adjust_tab[MAX_PITCH_VALUE+1] = {
  187. 64, 65, 66, 67, 68, 69, 70, 71,
  188. 72, 73, 74, 75, 76, 77, 78, 79,
  189. 80, 81, 82, 83, 84, 86, 87, 88,
  190. 89, 91, 92, 93, 94, 96, 97, 98,
  191. 100, 101, 103, 104, 105, 107, 108, 110,
  192. 111, 113, 115, 116, 118, 119, 121, 123,
  193. 124, 126, 128, 130, 132, 133, 135, 137,
  194. 139, 141, 143, 145, 147, 149, 151, 153,
  195. 155, 158, 160, 162, 164, 167, 169, 171,
  196. 174, 176, 179, 181, 184, 186, 189, 191,
  197. 194, 197, 199, 202, 205, 208, 211, 214,
  198. 217, 220, 223, 226, 229, 232, 236, 239,
  199. 242, 246, 249, 252, 254, 255
  200. };
  201. void WcmdqStop()
  202. {
  203. wcmdq_head = 0;
  204. wcmdq_tail = 0;
  205. #if HAVE_SONIC_H
  206. if (sonicSpeedupStream != NULL) {
  207. sonicDestroyStream(sonicSpeedupStream);
  208. sonicSpeedupStream = NULL;
  209. }
  210. #endif
  211. if (mbrola_name[0] != 0)
  212. MbrolaReset();
  213. }
  214. int WcmdqFree()
  215. {
  216. int i;
  217. i = wcmdq_head - wcmdq_tail;
  218. if (i <= 0) i += N_WCMDQ;
  219. return i;
  220. }
  221. int WcmdqUsed()
  222. {
  223. return N_WCMDQ - WcmdqFree();
  224. }
  225. void WcmdqInc()
  226. {
  227. wcmdq_tail++;
  228. if (wcmdq_tail >= N_WCMDQ) wcmdq_tail = 0;
  229. }
  230. static void WcmdqIncHead()
  231. {
  232. wcmdq_head++;
  233. if (wcmdq_head >= N_WCMDQ) wcmdq_head = 0;
  234. }
  235. #define PEAKSHAPEW 256
  236. unsigned char pk_shape1[PEAKSHAPEW+1] = {
  237. 255, 254, 254, 254, 254, 254, 253, 253, 252, 251, 251, 250, 249, 248, 247, 246,
  238. 245, 244, 242, 241, 239, 238, 236, 234, 233, 231, 229, 227, 225, 223, 220, 218,
  239. 216, 213, 211, 209, 207, 205, 203, 201, 199, 197, 195, 193, 191, 189, 187, 185,
  240. 183, 180, 178, 176, 173, 171, 169, 166, 164, 161, 159, 156, 154, 151, 148, 146,
  241. 143, 140, 138, 135, 132, 129, 126, 123, 120, 118, 115, 112, 108, 105, 102, 99,
  242. 96, 95, 93, 91, 90, 88, 86, 85, 83, 82, 80, 79, 77, 76, 74, 73,
  243. 72, 70, 69, 68, 67, 66, 64, 63, 62, 61, 60, 59, 58, 57, 56, 55,
  244. 55, 54, 53, 52, 52, 51, 50, 50, 49, 48, 48, 47, 47, 46, 46, 46,
  245. 45, 45, 45, 44, 44, 44, 44, 44, 44, 44, 43, 43, 43, 43, 44, 43,
  246. 42, 42, 41, 40, 40, 39, 38, 38, 37, 36, 36, 35, 35, 34, 33, 33,
  247. 32, 32, 31, 30, 30, 29, 29, 28, 28, 27, 26, 26, 25, 25, 24, 24,
  248. 23, 23, 22, 22, 21, 21, 20, 20, 19, 19, 18, 18, 18, 17, 17, 16,
  249. 16, 15, 15, 15, 14, 14, 13, 13, 13, 12, 12, 11, 11, 11, 10, 10,
  250. 10, 9, 9, 9, 8, 8, 8, 7, 7, 7, 7, 6, 6, 6, 5, 5,
  251. 5, 5, 4, 4, 4, 4, 4, 3, 3, 3, 3, 2, 2, 2, 2, 2,
  252. 2, 1, 1, 1, 1, 1, 1, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  253. 0
  254. };
  255. static unsigned char pk_shape2[PEAKSHAPEW+1] = {
  256. 255, 254, 254, 254, 254, 254, 254, 254, 254, 254, 253, 253, 253, 253, 252, 252,
  257. 252, 251, 251, 251, 250, 250, 249, 249, 248, 248, 247, 247, 246, 245, 245, 244,
  258. 243, 243, 242, 241, 239, 237, 235, 233, 231, 229, 227, 225, 223, 221, 218, 216,
  259. 213, 211, 208, 205, 203, 200, 197, 194, 191, 187, 184, 181, 178, 174, 171, 167,
  260. 163, 160, 156, 152, 148, 144, 140, 136, 132, 127, 123, 119, 114, 110, 105, 100,
  261. 96, 94, 91, 88, 86, 83, 81, 78, 76, 74, 71, 69, 66, 64, 62, 60,
  262. 57, 55, 53, 51, 49, 47, 44, 42, 40, 38, 36, 34, 32, 30, 29, 27,
  263. 25, 23, 21, 19, 18, 16, 14, 12, 11, 9, 7, 6, 4, 3, 1, 0,
  264. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  265. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  266. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  267. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  268. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  269. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  270. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  271. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  272. 0
  273. };
  274. static unsigned char *pk_shape;
  275. void WavegenInit(int rate, int wavemult_fact)
  276. {
  277. int ix;
  278. double x;
  279. if (wavemult_fact == 0)
  280. wavemult_fact = 60; // default
  281. wvoice = NULL;
  282. samplerate = samplerate_native = rate;
  283. PHASE_INC_FACTOR = 0x8000000 / samplerate; // assumes pitch is Hz*32
  284. Flutter_inc = (64 * samplerate)/rate;
  285. samplecount = 0;
  286. nsamples = 0;
  287. wavephase = 0x7fffffff;
  288. max_hval = 0;
  289. wdata.amplitude = 32;
  290. wdata.amplitude_fmt = 100;
  291. for (ix = 0; ix < N_EMBEDDED_VALUES; ix++)
  292. embedded_value[ix] = embedded_default[ix];
  293. // set up window to generate a spread of harmonics from a
  294. // single peak for HF peaks
  295. wavemult_max = (samplerate * wavemult_fact)/(256 * 50);
  296. if (wavemult_max > N_WAVEMULT) wavemult_max = N_WAVEMULT;
  297. wavemult_offset = wavemult_max/2;
  298. if (samplerate != 22050) {
  299. // wavemult table has preset values for 22050 Hz, we only need to
  300. // recalculate them if we have a different sample rate
  301. for (ix = 0; ix < wavemult_max; ix++) {
  302. x = 127*(1.0 - cos((M_PI*2)*ix/wavemult_max));
  303. wavemult[ix] = (int)x;
  304. }
  305. }
  306. pk_shape = pk_shape2;
  307. #ifdef INCLUDE_KLATT
  308. KlattInit();
  309. #endif
  310. }
  311. int GetAmplitude(void)
  312. {
  313. int amp;
  314. // normal, none, reduced, moderate, strong
  315. static const unsigned char amp_emphasis[5] = { 16, 16, 10, 16, 22 };
  316. amp = (embedded_value[EMBED_A])*55/100;
  317. general_amplitude = amp * amp_emphasis[embedded_value[EMBED_F]] / 16;
  318. return general_amplitude;
  319. }
  320. static void WavegenSetEcho(void)
  321. {
  322. if (wvoice == NULL)
  323. return;
  324. int delay;
  325. int amp;
  326. voicing = wvoice->voicing;
  327. delay = wvoice->echo_delay;
  328. amp = wvoice->echo_amp;
  329. if (delay >= N_ECHO_BUF)
  330. delay = N_ECHO_BUF-1;
  331. if (amp > 100)
  332. amp = 100;
  333. memset(echo_buf, 0, sizeof(echo_buf));
  334. echo_tail = 0;
  335. if (embedded_value[EMBED_H] > 0) {
  336. // set echo from an embedded command in the text
  337. amp = embedded_value[EMBED_H];
  338. delay = 130;
  339. }
  340. if (delay == 0)
  341. amp = 0;
  342. echo_head = (delay * samplerate)/1000;
  343. echo_length = echo_head; // ensure completion of echo at the end of speech. Use 1 delay period?
  344. if (amp == 0)
  345. echo_length = 0;
  346. if (amp > 20)
  347. echo_length = echo_head * 2; // perhaps allow 2 echo periods if the echo is loud.
  348. // echo_amp units are 1/256ths of the amplitude of the original sound.
  349. echo_amp = amp;
  350. // compensate (partially) for increase in amplitude due to echo
  351. general_amplitude = GetAmplitude();
  352. general_amplitude = ((general_amplitude * (500-amp))/500);
  353. }
  354. int PeaksToHarmspect(wavegen_peaks_t *peaks, int pitch, int *htab, int control)
  355. {
  356. if (wvoice == NULL)
  357. return 1;
  358. // Calculate the amplitude of each harmonics from the formants
  359. // Only for formants 0 to 5
  360. // control 0=initial call, 1=every 64 cycles
  361. // pitch and freqs are Hz<<16
  362. int f;
  363. wavegen_peaks_t *p;
  364. int fp; // centre freq of peak
  365. int fhi; // high freq of peak
  366. int h; // harmonic number
  367. int pk;
  368. int hmax;
  369. int hmax_samplerate; // highest harmonic allowed for the samplerate
  370. int x;
  371. int ix;
  372. int h1;
  373. // initialise as much of *out as we will need
  374. hmax = (peaks[wvoice->n_harmonic_peaks].freq + peaks[wvoice->n_harmonic_peaks].right)/pitch;
  375. if (hmax >= MAX_HARMONIC)
  376. hmax = MAX_HARMONIC-1;
  377. // restrict highest harmonic to half the samplerate
  378. hmax_samplerate = (((samplerate * 19)/40) << 16)/pitch; // only 95% of Nyquist freq
  379. if (hmax > hmax_samplerate)
  380. hmax = hmax_samplerate;
  381. for (h = 0; h <= hmax; h++)
  382. htab[h] = 0;
  383. for (pk = 0; pk <= wvoice->n_harmonic_peaks; pk++) {
  384. p = &peaks[pk];
  385. if ((p->height == 0) || (fp = p->freq) == 0)
  386. continue;
  387. fhi = p->freq + p->right;
  388. h = ((p->freq - p->left) / pitch) + 1;
  389. if (h <= 0) h = 1;
  390. for (f = pitch*h; f < fp; f += pitch)
  391. htab[h++] += pk_shape[(fp-f)/(p->left>>8)] * p->height;
  392. for (; f < fhi; f += pitch)
  393. htab[h++] += pk_shape[(f-fp)/(p->right>>8)] * p->height;
  394. }
  395. int y;
  396. int h2;
  397. // increase bass
  398. y = peaks[1].height * 10; // addition as a multiple of 1/256s
  399. h2 = (1000<<16)/pitch; // decrease until 1000Hz
  400. if (h2 > 0) {
  401. x = y/h2;
  402. h = 1;
  403. while (y > 0) {
  404. htab[h++] += y;
  405. y -= x;
  406. }
  407. }
  408. // find the nearest harmonic for HF peaks where we don't use shape
  409. for (; pk < N_PEAKS; pk++) {
  410. x = peaks[pk].height >> 14;
  411. peak_height[pk] = (x * x * 5)/2;
  412. // find the nearest harmonic for HF peaks where we don't use shape
  413. if (control == 0) {
  414. // set this initially, but make changes only at the quiet point
  415. peak_harmonic[pk] = peaks[pk].freq / pitch;
  416. }
  417. // only use harmonics up to half the samplerate
  418. if (peak_harmonic[pk] >= hmax_samplerate)
  419. peak_height[pk] = 0;
  420. }
  421. // convert from the square-rooted values
  422. f = 0;
  423. for (h = 0; h <= hmax; h++, f += pitch) {
  424. x = htab[h] >> 15;
  425. htab[h] = (x * x) >> 8;
  426. if ((ix = (f >> 19)) < N_TONE_ADJUST)
  427. htab[h] = (htab[h] * wvoice->tone_adjust[ix]) >> 13; // index tone_adjust with Hz/8
  428. }
  429. // adjust the amplitude of the first harmonic, affects tonal quality
  430. h1 = htab[1] * option_harmonic1;
  431. htab[1] = h1/8;
  432. // calc intermediate increments of LF harmonics
  433. if (control & 1) {
  434. for (h = 1; h < N_LOWHARM; h++)
  435. harm_inc[h] = (htab[h] - harmspect[h]) >> 3;
  436. }
  437. return hmax; // highest harmonic number
  438. }
  439. static void AdvanceParameters()
  440. {
  441. // Called every 64 samples to increment the formant freq, height, and widths
  442. if (wvoice == NULL)
  443. return;
  444. int x;
  445. int ix;
  446. static int Flutter_ix = 0;
  447. // advance the pitch
  448. wdata.pitch_ix += wdata.pitch_inc;
  449. if ((ix = wdata.pitch_ix>>8) > 127) ix = 127;
  450. x = wdata.pitch_env[ix] * wdata.pitch_range;
  451. wdata.pitch = (x>>8) + wdata.pitch_base;
  452. amp_ix += amp_inc;
  453. /* add pitch flutter */
  454. if (Flutter_ix >= (N_FLUTTER*64))
  455. Flutter_ix = 0;
  456. x = ((int)(Flutter_tab[Flutter_ix >> 6])-0x80) * flutter_amp;
  457. Flutter_ix += Flutter_inc;
  458. wdata.pitch += x;
  459. if (wdata.pitch < 102400)
  460. wdata.pitch = 102400; // min pitch, 25 Hz (25 << 12)
  461. if (samplecount == samplecount_start)
  462. return;
  463. for (ix = 0; ix <= wvoice->n_harmonic_peaks; ix++) {
  464. peaks[ix].freq1 += peaks[ix].freq_inc;
  465. peaks[ix].freq = (int)peaks[ix].freq1;
  466. peaks[ix].height1 += peaks[ix].height_inc;
  467. if ((peaks[ix].height = (int)peaks[ix].height1) < 0)
  468. peaks[ix].height = 0;
  469. peaks[ix].left1 += peaks[ix].left_inc;
  470. peaks[ix].left = (int)peaks[ix].left1;
  471. if (ix < 3) {
  472. peaks[ix].right1 += peaks[ix].right_inc;
  473. peaks[ix].right = (int)peaks[ix].right1;
  474. } else
  475. peaks[ix].right = peaks[ix].left;
  476. }
  477. for (; ix < 8; ix++) {
  478. // formants 6,7,8 don't have a width parameter
  479. if (ix < 7) {
  480. peaks[ix].freq1 += peaks[ix].freq_inc;
  481. peaks[ix].freq = (int)peaks[ix].freq1;
  482. }
  483. peaks[ix].height1 += peaks[ix].height_inc;
  484. if ((peaks[ix].height = (int)peaks[ix].height1) < 0)
  485. peaks[ix].height = 0;
  486. }
  487. }
  488. static double resonator(RESONATOR *r, double input)
  489. {
  490. double x;
  491. x = r->a * input + r->b * r->x1 + r->c * r->x2;
  492. r->x2 = r->x1;
  493. r->x1 = x;
  494. return x;
  495. }
  496. static void setresonator(RESONATOR *rp, int freq, int bwidth, int init)
  497. {
  498. // freq Frequency of resonator in Hz
  499. // bwidth Bandwidth of resonator in Hz
  500. // init Initialize internal data
  501. double x;
  502. double arg;
  503. if (init) {
  504. rp->x1 = 0;
  505. rp->x2 = 0;
  506. }
  507. arg = minus_pi_t * bwidth;
  508. x = exp(arg);
  509. rp->c = -(x * x);
  510. arg = two_pi_t * freq;
  511. rp->b = x * cos(arg) * 2.0;
  512. rp->a = 1.0 - rp->b - rp->c;
  513. }
  514. void InitBreath(void)
  515. {
  516. int ix;
  517. minus_pi_t = -M_PI / samplerate;
  518. two_pi_t = -2.0 * minus_pi_t;
  519. for (ix = 0; ix < N_PEAKS; ix++)
  520. setresonator(&rbreath[ix], 2000, 200, 1);
  521. }
  522. static void SetBreath()
  523. {
  524. int pk;
  525. if (wvoice == NULL || wvoice->breath[0] == 0)
  526. return;
  527. for (pk = 1; pk < N_PEAKS; pk++) {
  528. if (wvoice->breath[pk] != 0) {
  529. // breath[0] indicates that some breath formants are needed
  530. // set the freq from the current synthesis formant and the width from the voice data
  531. setresonator(&rbreath[pk], peaks[pk].freq >> 16, wvoice->breathw[pk], 0);
  532. }
  533. }
  534. }
  535. static int ApplyBreath(void)
  536. {
  537. if (wvoice == NULL)
  538. return 0;
  539. int value = 0;
  540. int noise;
  541. int ix;
  542. int amp;
  543. // use two random numbers, for alternate formants
  544. noise = (rand() & 0x3fff) - 0x2000;
  545. for (ix = 1; ix < N_PEAKS; ix++) {
  546. if ((amp = wvoice->breath[ix]) != 0) {
  547. amp *= (peaks[ix].height >> 14);
  548. value += (int)resonator(&rbreath[ix], noise) * amp;
  549. }
  550. }
  551. return value;
  552. }
  553. static int Wavegen()
  554. {
  555. if (wvoice == NULL)
  556. return 0;
  557. unsigned short waveph;
  558. unsigned short theta;
  559. int total;
  560. int h;
  561. int ix;
  562. int z, z1, z2;
  563. int echo;
  564. int ov;
  565. static int maxh, maxh2;
  566. int pk;
  567. signed char c;
  568. int sample;
  569. int amp;
  570. int modn_amp = 1, modn_period;
  571. static int agc = 256;
  572. static int h_switch_sign = 0;
  573. static int cycle_count = 0;
  574. static int amplitude2 = 0; // adjusted for pitch
  575. // continue until the output buffer is full, or
  576. // the required number of samples have been produced
  577. for (;;) {
  578. if ((end_wave == 0) && (samplecount == nsamples))
  579. return 0;
  580. if ((samplecount & 0x3f) == 0) {
  581. // every 64 samples, adjust the parameters
  582. if (samplecount == 0) {
  583. hswitch = 0;
  584. harmspect = hspect[0];
  585. maxh2 = PeaksToHarmspect(peaks, wdata.pitch<<4, hspect[0], 0);
  586. // adjust amplitude to compensate for fewer harmonics at higher pitch
  587. amplitude2 = (wdata.amplitude * (wdata.pitch >> 8) * wdata.amplitude_fmt)/(10000 << 3);
  588. // switch sign of harmonics above about 900Hz, to reduce max peak amplitude
  589. h_switch_sign = 890 / (wdata.pitch >> 12);
  590. } else
  591. AdvanceParameters();
  592. // pitch is Hz<<12
  593. phaseinc = (wdata.pitch>>7) * PHASE_INC_FACTOR;
  594. cycle_samples = samplerate/(wdata.pitch >> 12); // sr/(pitch*2)
  595. hf_factor = wdata.pitch >> 11;
  596. maxh = maxh2;
  597. harmspect = hspect[hswitch];
  598. hswitch ^= 1;
  599. maxh2 = PeaksToHarmspect(peaks, wdata.pitch<<4, hspect[hswitch], 1);
  600. SetBreath();
  601. } else if ((samplecount & 0x07) == 0) {
  602. for (h = 1; h < N_LOWHARM && h <= maxh2 && h <= maxh; h++)
  603. harmspect[h] += harm_inc[h];
  604. // bring automatic gain control back towards unity
  605. if (agc < 256) agc++;
  606. }
  607. samplecount++;
  608. if (wavephase > 0) {
  609. wavephase += phaseinc;
  610. if (wavephase < 0) {
  611. // sign has changed, reached a quiet point in the waveform
  612. cbytes = wavemult_offset - (cycle_samples)/2;
  613. if (samplecount > nsamples)
  614. return 0;
  615. cycle_count++;
  616. for (pk = wvoice->n_harmonic_peaks+1; pk < N_PEAKS; pk++) {
  617. // find the nearest harmonic for HF peaks where we don't use shape
  618. peak_harmonic[pk] = ((peaks[pk].freq / (wdata.pitch*8)) + 1) / 2;
  619. }
  620. // adjust amplitude to compensate for fewer harmonics at higher pitch
  621. amplitude2 = (wdata.amplitude * (wdata.pitch >> 8) * wdata.amplitude_fmt)/(10000 << 3);
  622. if (glottal_flag > 0) {
  623. if (glottal_flag == 3) {
  624. if ((nsamples-samplecount) < (cycle_samples*2)) {
  625. // Vowel before glottal-stop.
  626. // This is the start of the penultimate cycle, reduce its amplitude
  627. glottal_flag = 2;
  628. amplitude2 = (amplitude2 * glottal_reduce)/256;
  629. }
  630. } else if (glottal_flag == 4) {
  631. // Vowel following a glottal-stop.
  632. // This is the start of the second cycle, reduce its amplitude
  633. glottal_flag = 2;
  634. amplitude2 = (amplitude2 * glottal_reduce)/256;
  635. } else
  636. glottal_flag--;
  637. }
  638. if (amplitude_env != NULL) {
  639. // amplitude envelope is only used for creaky voice effect on certain vowels/tones
  640. if ((ix = amp_ix>>8) > 127) ix = 127;
  641. amp = amplitude_env[ix];
  642. amplitude2 = (amplitude2 * amp)/128;
  643. }
  644. // introduce roughness into the sound by reducing the amplitude of
  645. modn_period = 0;
  646. if (voice->roughness < N_ROUGHNESS) {
  647. modn_period = modulation_tab[voice->roughness][modulation_type];
  648. modn_amp = modn_period & 0xf;
  649. modn_period = modn_period >> 4;
  650. }
  651. if (modn_period != 0) {
  652. if (modn_period == 0xf) {
  653. // just once */
  654. amplitude2 = (amplitude2 * modn_amp)/16;
  655. modulation_type = 0;
  656. } else {
  657. // reduce amplitude every [modn_period} cycles
  658. if ((cycle_count % modn_period) == 0)
  659. amplitude2 = (amplitude2 * modn_amp)/16;
  660. }
  661. }
  662. }
  663. } else
  664. wavephase += phaseinc;
  665. waveph = (unsigned short)(wavephase >> 16);
  666. total = 0;
  667. // apply HF peaks, formants 6,7,8
  668. // add a single harmonic and then spread this my multiplying by a
  669. // window. This is to reduce the processing power needed to add the
  670. // higher frequence harmonics.
  671. cbytes++;
  672. if (cbytes >= 0 && cbytes < wavemult_max) {
  673. for (pk = wvoice->n_harmonic_peaks+1; pk < N_PEAKS; pk++) {
  674. theta = peak_harmonic[pk] * waveph;
  675. total += (long)sin_tab[theta >> 5] * peak_height[pk];
  676. }
  677. // spread the peaks by multiplying by a window
  678. total = (long)(total / hf_factor) * wavemult[cbytes];
  679. }
  680. // apply main peaks, formants 0 to 5
  681. #ifdef USE_ASSEMBLER_1
  682. // use an optimised routine for this loop, if available
  683. total += AddSineWaves(waveph, h_switch_sign, maxh, harmspect); // call an assembler code routine
  684. #else
  685. theta = waveph;
  686. for (h = 1; h <= h_switch_sign; h++) {
  687. total += ((int)sin_tab[theta >> 5] * harmspect[h]);
  688. theta += waveph;
  689. }
  690. while (h <= maxh) {
  691. total -= ((int)sin_tab[theta >> 5] * harmspect[h]);
  692. theta += waveph;
  693. h++;
  694. }
  695. #endif
  696. if (voicing != 64)
  697. total = (total >> 6) * voicing;
  698. if (wvoice->breath[0])
  699. total += ApplyBreath();
  700. // mix with sampled wave if required
  701. z2 = 0;
  702. if (wdata.mix_wavefile_ix < wdata.n_mix_wavefile) {
  703. if (wdata.mix_wave_scale == 0) {
  704. // a 16 bit sample
  705. c = wdata.mix_wavefile[wdata.mix_wavefile_ix+wdata.mix_wavefile_offset+1];
  706. sample = wdata.mix_wavefile[wdata.mix_wavefile_ix+wdata.mix_wavefile_offset] + (c * 256);
  707. wdata.mix_wavefile_ix += 2;
  708. } else {
  709. // a 8 bit sample, scaled
  710. sample = (signed char)wdata.mix_wavefile[wdata.mix_wavefile_offset+wdata.mix_wavefile_ix++] * wdata.mix_wave_scale;
  711. }
  712. z2 = (sample * wdata.amplitude_v) >> 10;
  713. z2 = (z2 * wdata.mix_wave_amp)/32;
  714. if ((wdata.mix_wavefile_ix + wdata.mix_wavefile_offset) >= wdata.mix_wavefile_max) // reached the end of available WAV data
  715. wdata.mix_wavefile_offset -= (wdata.mix_wavefile_max*3)/4;
  716. }
  717. z1 = z2 + (((total>>8) * amplitude2) >> 13);
  718. echo = (echo_buf[echo_tail++] * echo_amp);
  719. z1 += echo >> 8;
  720. if (echo_tail >= N_ECHO_BUF)
  721. echo_tail = 0;
  722. z = (z1 * agc) >> 8;
  723. // check for overflow, 16bit signed samples
  724. if (z >= 32768) {
  725. ov = 8388608/z1 - 1; // 8388608 is 2^23, i.e. max value * 256
  726. if (ov < agc) agc = ov; // set agc to number of 1/256ths to multiply the sample by
  727. z = (z1 * agc) >> 8; // reduce sample by agc value to prevent overflow
  728. } else if (z <= -32768) {
  729. ov = -8388608/z1 - 1;
  730. if (ov < agc) agc = ov;
  731. z = (z1 * agc) >> 8;
  732. }
  733. *out_ptr++ = z;
  734. *out_ptr++ = z >> 8;
  735. echo_buf[echo_head++] = z;
  736. if (echo_head >= N_ECHO_BUF)
  737. echo_head = 0;
  738. if (out_ptr + 2 > out_end)
  739. return 1;
  740. }
  741. }
  742. static int PlaySilence(int length, bool resume)
  743. {
  744. static int n_samples;
  745. int value = 0;
  746. nsamples = 0;
  747. samplecount = 0;
  748. wavephase = 0x7fffffff;
  749. if (length == 0)
  750. return 0;
  751. if (resume == false)
  752. n_samples = length;
  753. while (n_samples-- > 0) {
  754. value = (echo_buf[echo_tail++] * echo_amp) >> 8;
  755. if (echo_tail >= N_ECHO_BUF)
  756. echo_tail = 0;
  757. *out_ptr++ = value;
  758. *out_ptr++ = value >> 8;
  759. echo_buf[echo_head++] = value;
  760. if (echo_head >= N_ECHO_BUF)
  761. echo_head = 0;
  762. if (out_ptr + 2 > out_end)
  763. return 1;
  764. }
  765. return 0;
  766. }
  767. static int PlayWave(int length, bool resume, unsigned char *data, int scale, int amp)
  768. {
  769. static int n_samples;
  770. static int ix = 0;
  771. int value;
  772. signed char c;
  773. if (resume == false) {
  774. n_samples = length;
  775. ix = 0;
  776. }
  777. nsamples = 0;
  778. samplecount = 0;
  779. while (n_samples-- > 0) {
  780. if (scale == 0) {
  781. // 16 bits data
  782. c = data[ix+1];
  783. value = data[ix] + (c * 256);
  784. ix += 2;
  785. } else {
  786. // 8 bit data, shift by the specified scale factor
  787. value = (signed char)data[ix++] * scale;
  788. }
  789. value *= (consonant_amp * general_amplitude); // reduce strength of consonant
  790. value = value >> 10;
  791. value = (value * amp)/32;
  792. value += ((echo_buf[echo_tail++] * echo_amp) >> 8);
  793. if (value > 32767)
  794. value = 32768;
  795. else if (value < -32768)
  796. value = -32768;
  797. if (echo_tail >= N_ECHO_BUF)
  798. echo_tail = 0;
  799. out_ptr[0] = value;
  800. out_ptr[1] = value >> 8;
  801. out_ptr += 2;
  802. echo_buf[echo_head++] = (value*3)/4;
  803. if (echo_head >= N_ECHO_BUF)
  804. echo_head = 0;
  805. if (out_ptr + 2 > out_end)
  806. return 1;
  807. }
  808. return 0;
  809. }
  810. static int SetWithRange0(int value, int max)
  811. {
  812. if (value < 0)
  813. return 0;
  814. if (value > max)
  815. return max;
  816. return value;
  817. }
  818. static void SetPitchFormants()
  819. {
  820. if (wvoice == NULL)
  821. return;
  822. int ix;
  823. int factor = 256;
  824. int pitch_value;
  825. // adjust formants to give better results for a different voice pitch
  826. if ((pitch_value = embedded_value[EMBED_P]) > MAX_PITCH_VALUE)
  827. pitch_value = MAX_PITCH_VALUE;
  828. if (pitch_value > 50) {
  829. // only adjust if the pitch is higher than normal
  830. factor = 256 + (25 * (pitch_value - 50))/50;
  831. }
  832. for (ix = 0; ix <= 5; ix++)
  833. wvoice->freq[ix] = (wvoice->freq2[ix] * factor)/256;
  834. factor = embedded_value[EMBED_T]*3;
  835. wvoice->height[0] = (wvoice->height2[0] * (256 - factor*2))/256;
  836. wvoice->height[1] = (wvoice->height2[1] * (256 - factor))/256;
  837. }
  838. void SetEmbedded(int control, int value)
  839. {
  840. // there was an embedded command in the text at this point
  841. int sign = 0;
  842. int command;
  843. command = control & 0x1f;
  844. if ((control & 0x60) == 0x60)
  845. sign = -1;
  846. else if ((control & 0x60) == 0x40)
  847. sign = 1;
  848. if (command < N_EMBEDDED_VALUES) {
  849. if (sign == 0)
  850. embedded_value[command] = value;
  851. else
  852. embedded_value[command] += (value * sign);
  853. embedded_value[command] = SetWithRange0(embedded_value[command], embedded_max[command]);
  854. }
  855. switch (command)
  856. {
  857. case EMBED_T:
  858. WavegenSetEcho(); // and drop through to case P
  859. case EMBED_P:
  860. SetPitchFormants();
  861. break;
  862. case EMBED_A: // amplitude
  863. general_amplitude = GetAmplitude();
  864. break;
  865. case EMBED_F: // emphasis
  866. general_amplitude = GetAmplitude();
  867. break;
  868. case EMBED_H:
  869. WavegenSetEcho();
  870. break;
  871. }
  872. }
  873. void WavegenSetVoice(voice_t *v)
  874. {
  875. static voice_t v2;
  876. memcpy(&v2, v, sizeof(v2));
  877. wvoice = &v2;
  878. if (v->peak_shape == 0)
  879. pk_shape = pk_shape1;
  880. else
  881. pk_shape = pk_shape2;
  882. consonant_amp = (v->consonant_amp * 26) /100;
  883. if (samplerate <= 11000) {
  884. consonant_amp = consonant_amp*2; // emphasize consonants at low sample rates
  885. option_harmonic1 = 6;
  886. }
  887. WavegenSetEcho();
  888. SetPitchFormants();
  889. MarkerEvent(espeakEVENT_SAMPLERATE, 0, wvoice->samplerate, 0, out_ptr);
  890. }
  891. static void SetAmplitude(int length, unsigned char *amp_env, int value)
  892. {
  893. if (wvoice == NULL)
  894. return;
  895. amp_ix = 0;
  896. if (length == 0)
  897. amp_inc = 0;
  898. else
  899. amp_inc = (256 * ENV_LEN * STEPSIZE)/length;
  900. wdata.amplitude = (value * general_amplitude)/16;
  901. wdata.amplitude_v = (wdata.amplitude * wvoice->consonant_ampv * 15)/100; // for wave mixed with voiced sounds
  902. amplitude_env = amp_env;
  903. }
  904. void SetPitch2(voice_t *voice, int pitch1, int pitch2, int *pitch_base, int *pitch_range)
  905. {
  906. int x;
  907. int base;
  908. int range;
  909. int pitch_value;
  910. if (pitch1 > pitch2) {
  911. x = pitch1; // swap values
  912. pitch1 = pitch2;
  913. pitch2 = x;
  914. }
  915. if ((pitch_value = embedded_value[EMBED_P]) > MAX_PITCH_VALUE)
  916. pitch_value = MAX_PITCH_VALUE;
  917. pitch_value -= embedded_value[EMBED_T]; // adjust tone for announcing punctuation
  918. if (pitch_value < 0)
  919. pitch_value = 0;
  920. base = (voice->pitch_base * pitch_adjust_tab[pitch_value])/128;
  921. range = (voice->pitch_range * embedded_value[EMBED_R])/50;
  922. // compensate for change in pitch when the range is narrowed or widened
  923. base -= (range - voice->pitch_range)*18;
  924. *pitch_base = base + (pitch1 * range)/2;
  925. *pitch_range = base + (pitch2 * range)/2 - *pitch_base;
  926. }
  927. static void SetPitch(int length, unsigned char *env, int pitch1, int pitch2)
  928. {
  929. if (wvoice == NULL)
  930. return;
  931. // length in samples
  932. if ((wdata.pitch_env = env) == NULL)
  933. wdata.pitch_env = env_fall; // default
  934. wdata.pitch_ix = 0;
  935. if (length == 0)
  936. wdata.pitch_inc = 0;
  937. else
  938. wdata.pitch_inc = (256 * ENV_LEN * STEPSIZE)/length;
  939. SetPitch2(wvoice, pitch1, pitch2, &wdata.pitch_base, &wdata.pitch_range);
  940. // set initial pitch
  941. wdata.pitch = ((wdata.pitch_env[0] * wdata.pitch_range) >>8) + wdata.pitch_base; // Hz << 12
  942. flutter_amp = wvoice->flutter;
  943. }
  944. static void SetSynth(int length, int modn, frame_t *fr1, frame_t *fr2, voice_t *v)
  945. {
  946. if (wvoice == NULL || v == NULL)
  947. return;
  948. int ix;
  949. double next;
  950. int length2;
  951. int length4;
  952. int qix;
  953. int cmd;
  954. static int glottal_reduce_tab1[4] = { 0x30, 0x30, 0x40, 0x50 }; // vowel before [?], amp * 1/256
  955. static int glottal_reduce_tab2[4] = { 0x90, 0xa0, 0xb0, 0xc0 }; // vowel after [?], amp * 1/256
  956. harm_sqrt_n = 0;
  957. end_wave = 1;
  958. // any additional information in the param1 ?
  959. modulation_type = modn & 0xff;
  960. glottal_flag = 0;
  961. if (modn & 0x400) {
  962. glottal_flag = 3; // before a glottal stop
  963. glottal_reduce = glottal_reduce_tab1[(modn >> 8) & 3];
  964. }
  965. if (modn & 0x800) {
  966. glottal_flag = 4; // after a glottal stop
  967. glottal_reduce = glottal_reduce_tab2[(modn >> 8) & 3];
  968. }
  969. for (qix = wcmdq_head+1;; qix++) {
  970. if (qix >= N_WCMDQ) qix = 0;
  971. if (qix == wcmdq_tail) break;
  972. cmd = wcmdq[qix][0];
  973. if (cmd == WCMD_SPECT) {
  974. end_wave = 0; // next wave generation is from another spectrum
  975. break;
  976. }
  977. if ((cmd == WCMD_WAVE) || (cmd == WCMD_PAUSE))
  978. break; // next is not from spectrum, so continue until end of wave cycle
  979. }
  980. // round the length to a multiple of the stepsize
  981. length2 = (length + STEPSIZE/2) & ~0x3f;
  982. if (length2 == 0)
  983. length2 = STEPSIZE;
  984. // add this length to any left over from the previous synth
  985. samplecount_start = samplecount;
  986. nsamples += length2;
  987. length4 = length2/4;
  988. peaks[7].freq = (7800 * v->freq[7] + v->freqadd[7]*256) << 8;
  989. peaks[8].freq = (9000 * v->freq[8] + v->freqadd[8]*256) << 8;
  990. for (ix = 0; ix < 8; ix++) {
  991. if (ix < 7) {
  992. peaks[ix].freq1 = (fr1->ffreq[ix] * v->freq[ix] + v->freqadd[ix]*256) << 8;
  993. peaks[ix].freq = (int)peaks[ix].freq1;
  994. next = (fr2->ffreq[ix] * v->freq[ix] + v->freqadd[ix]*256) << 8;
  995. peaks[ix].freq_inc = ((next - peaks[ix].freq1) * (STEPSIZE/4)) / length4; // lower headroom for fixed point math
  996. }
  997. peaks[ix].height1 = (fr1->fheight[ix] * v->height[ix]) << 6;
  998. peaks[ix].height = (int)peaks[ix].height1;
  999. next = (fr2->fheight[ix] * v->height[ix]) << 6;
  1000. peaks[ix].height_inc = ((next - peaks[ix].height1) * STEPSIZE) / length2;
  1001. if ((ix <= 5) && (ix <= wvoice->n_harmonic_peaks)) {
  1002. peaks[ix].left1 = (fr1->fwidth[ix] * v->width[ix]) << 10;
  1003. peaks[ix].left = (int)peaks[ix].left1;
  1004. next = (fr2->fwidth[ix] * v->width[ix]) << 10;
  1005. peaks[ix].left_inc = ((next - peaks[ix].left1) * STEPSIZE) / length2;
  1006. if (ix < 3) {
  1007. peaks[ix].right1 = (fr1->fright[ix] * v->width[ix]) << 10;
  1008. peaks[ix].right = (int)peaks[ix].right1;
  1009. next = (fr2->fright[ix] * v->width[ix]) << 10;
  1010. peaks[ix].right_inc = ((next - peaks[ix].right1) * STEPSIZE) / length2;
  1011. } else
  1012. peaks[ix].right = peaks[ix].left;
  1013. }
  1014. }
  1015. }
  1016. static int Wavegen2(int length, int modulation, bool resume, frame_t *fr1, frame_t *fr2)
  1017. {
  1018. if (resume == false)
  1019. SetSynth(length, modulation, fr1, fr2, wvoice);
  1020. return Wavegen();
  1021. }
  1022. void Write4Bytes(FILE *f, int value)
  1023. {
  1024. // Write 4 bytes to a file, least significant first
  1025. int ix;
  1026. for (ix = 0; ix < 4; ix++) {
  1027. fputc(value & 0xff, f);
  1028. value = value >> 8;
  1029. }
  1030. }
  1031. static int WavegenFill2()
  1032. {
  1033. // Pick up next wavegen commands from the queue
  1034. // return: 0 output buffer has been filled
  1035. // return: 1 input command queue is now empty
  1036. intptr_t *q;
  1037. int length;
  1038. int result;
  1039. int marker_type;
  1040. static bool resume = false;
  1041. static int echo_complete = 0;
  1042. while (out_ptr < out_end) {
  1043. if (WcmdqUsed() <= 0) {
  1044. if (echo_complete > 0) {
  1045. // continue to play silence until echo is completed
  1046. resume = PlaySilence(echo_complete, resume);
  1047. if (resume == true)
  1048. return 0; // not yet finished
  1049. }
  1050. return 1; // queue empty, close sound channel
  1051. }
  1052. result = 0;
  1053. q = wcmdq[wcmdq_head];
  1054. length = q[1];
  1055. switch (q[0] & 0xff)
  1056. {
  1057. case WCMD_PITCH:
  1058. SetPitch(length, (unsigned char *)q[2], q[3] >> 16, q[3] & 0xffff);
  1059. break;
  1060. case WCMD_PAUSE:
  1061. if (resume == false)
  1062. echo_complete -= length;
  1063. wdata.n_mix_wavefile = 0;
  1064. wdata.amplitude_fmt = 100;
  1065. #ifdef INCLUDE_KLATT
  1066. KlattReset(1);
  1067. #endif
  1068. result = PlaySilence(length, resume);
  1069. break;
  1070. case WCMD_WAVE:
  1071. echo_complete = echo_length;
  1072. wdata.n_mix_wavefile = 0;
  1073. #ifdef INCLUDE_KLATT
  1074. KlattReset(1);
  1075. #endif
  1076. result = PlayWave(length, resume, (unsigned char *)q[2], q[3] & 0xff, q[3] >> 8);
  1077. break;
  1078. case WCMD_WAVE2:
  1079. // wave file to be played at the same time as synthesis
  1080. wdata.mix_wave_amp = q[3] >> 8;
  1081. wdata.mix_wave_scale = q[3] & 0xff;
  1082. wdata.n_mix_wavefile = (length & 0xffff);
  1083. wdata.mix_wavefile_max = (length >> 16) & 0xffff;
  1084. if (wdata.mix_wave_scale == 0) {
  1085. wdata.n_mix_wavefile *= 2;
  1086. wdata.mix_wavefile_max *= 2;
  1087. }
  1088. wdata.mix_wavefile_ix = 0;
  1089. wdata.mix_wavefile_offset = 0;
  1090. wdata.mix_wavefile = (unsigned char *)q[2];
  1091. break;
  1092. case WCMD_SPECT2: // as WCMD_SPECT but stop any concurrent wave file
  1093. wdata.n_mix_wavefile = 0; // ... and drop through to WCMD_SPECT case
  1094. case WCMD_SPECT:
  1095. echo_complete = echo_length;
  1096. result = Wavegen2(length & 0xffff, q[1] >> 16, resume, (frame_t *)q[2], (frame_t *)q[3]);
  1097. break;
  1098. #ifdef INCLUDE_KLATT
  1099. case WCMD_KLATT2: // as WCMD_SPECT but stop any concurrent wave file
  1100. wdata.n_mix_wavefile = 0; // ... and drop through to WCMD_SPECT case
  1101. case WCMD_KLATT:
  1102. echo_complete = echo_length;
  1103. result = Wavegen_Klatt2(length & 0xffff, resume, (frame_t *)q[2], (frame_t *)q[3]);
  1104. break;
  1105. #endif
  1106. case WCMD_MARKER:
  1107. marker_type = q[0] >> 8;
  1108. MarkerEvent(marker_type, q[1], q[2], q[3], out_ptr);
  1109. if (marker_type == 1) // word marker
  1110. current_source_index = q[1] & 0xffffff;
  1111. break;
  1112. case WCMD_AMPLITUDE:
  1113. SetAmplitude(length, (unsigned char *)q[2], q[3]);
  1114. break;
  1115. case WCMD_VOICE:
  1116. WavegenSetVoice((voice_t *)q[2]);
  1117. free((voice_t *)q[2]);
  1118. break;
  1119. case WCMD_EMBEDDED:
  1120. SetEmbedded(q[1], q[2]);
  1121. break;
  1122. case WCMD_MBROLA_DATA:
  1123. if (wvoice != NULL)
  1124. result = MbrolaFill(length, resume, (general_amplitude * wvoice->voicing)/64);
  1125. break;
  1126. case WCMD_FMT_AMPLITUDE:
  1127. if ((wdata.amplitude_fmt = q[1]) == 0)
  1128. wdata.amplitude_fmt = 100; // percentage, but value=0 means 100%
  1129. break;
  1130. #if HAVE_SONIC_H
  1131. case WCMD_SONIC_SPEED:
  1132. sonicSpeed = (double)q[1] / 1024;
  1133. break;
  1134. #endif
  1135. }
  1136. if (result == 0) {
  1137. WcmdqIncHead();
  1138. resume = false;
  1139. } else
  1140. resume = true;
  1141. }
  1142. return 0;
  1143. }
  1144. #if HAVE_SONIC_H
  1145. // Speed up the audio samples with libsonic.
  1146. static int SpeedUp(short *outbuf, int length_in, int length_out, int end_of_text)
  1147. {
  1148. if (length_in > 0) {
  1149. if (sonicSpeedupStream == NULL)
  1150. sonicSpeedupStream = sonicCreateStream(22050, 1);
  1151. if (sonicGetSpeed(sonicSpeedupStream) != sonicSpeed)
  1152. sonicSetSpeed(sonicSpeedupStream, sonicSpeed);
  1153. sonicWriteShortToStream(sonicSpeedupStream, outbuf, length_in);
  1154. }
  1155. if (sonicSpeedupStream == NULL)
  1156. return 0;
  1157. if (end_of_text)
  1158. sonicFlushStream(sonicSpeedupStream);
  1159. return sonicReadShortFromStream(sonicSpeedupStream, outbuf, length_out);
  1160. }
  1161. #endif
  1162. // Call WavegenFill2, and then speed up the output samples.
  1163. int WavegenFill(void)
  1164. {
  1165. int finished;
  1166. unsigned char *p_start;
  1167. p_start = out_ptr;
  1168. finished = WavegenFill2();
  1169. #if HAVE_SONIC_H
  1170. if (sonicSpeed > 1.0) {
  1171. int length;
  1172. int max_length;
  1173. max_length = (out_end - p_start);
  1174. length = 2*SpeedUp((short *)p_start, (out_ptr-p_start)/2, max_length/2, finished);
  1175. out_ptr = p_start + length;
  1176. if (length >= max_length)
  1177. finished = 0; // there may be more data to flush
  1178. }
  1179. #endif
  1180. return finished;
  1181. }