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klatt.c 31KB

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  1. /*
  2. * Copyright (C) 2008 by Jonathan Duddington
  3. * email: [email protected]
  4. * Copyright (C) 2013-2016 Reece H. Dunn
  5. *
  6. * Based on a re-implementation by:
  7. * (c) 1993,94 Jon Iles and Nick Ing-Simmons
  8. * of the Klatt cascade-parallel formant synthesizer
  9. *
  10. * This program is free software; you can redistribute it and/or modify
  11. * it under the terms of the GNU General Public License as published by
  12. * the Free Software Foundation; either version 3 of the License, or
  13. * (at your option) any later version.
  14. *
  15. * This program is distributed in the hope that it will be useful,
  16. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  17. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  18. * GNU General Public License for more details.
  19. *
  20. * You should have received a copy of the GNU General Public License
  21. * along with this program; if not, see: <http://www.gnu.org/licenses/>.
  22. */
  23. // See URL: ftp://svr-ftp.eng.cam.ac.uk/pub/comp.speech/synthesis/klatt.3.04.tar.gz
  24. #include "config.h"
  25. #include <math.h>
  26. #include <stdint.h>
  27. #include <stdio.h>
  28. #include <stdlib.h>
  29. #include <string.h>
  30. #include <espeak-ng/espeak_ng.h>
  31. #include <espeak-ng/speak_lib.h>
  32. #include "phoneme.h"
  33. #include "voice.h"
  34. #include "synthesize.h"
  35. #include "klatt.h"
  36. extern unsigned char *out_ptr;
  37. extern unsigned char *out_end;
  38. static int nsamples;
  39. static int sample_count;
  40. #ifdef _MSC_VER
  41. #define getrandom(min, max) ((rand()%(int)(((max)+1)-(min)))+(min))
  42. #else
  43. #define getrandom(min, max) ((rand()%(long)(((max)+1)-(min)))+(min))
  44. #endif
  45. // function prototypes for functions private to this file
  46. static void flutter(klatt_frame_ptr);
  47. static double sampled_source(int);
  48. static double impulsive_source(void);
  49. static double natural_source(void);
  50. static void pitch_synch_par_reset(klatt_frame_ptr);
  51. static double gen_noise(double);
  52. static double DBtoLIN(long);
  53. static void frame_init(klatt_frame_ptr);
  54. static void setabc(long, long, resonator_ptr);
  55. static void SetSynth_Klatt(int length, frame_t *fr1, frame_t *fr2, voice_t *v, int control);
  56. static void setzeroabc(long, long, resonator_ptr);
  57. static klatt_frame_t kt_frame;
  58. static klatt_global_t kt_globals;
  59. #define NUMBER_OF_SAMPLES 100
  60. static int scale_wav_tab[] = { 45, 38, 45, 45, 55 }; // scale output from different voicing sources
  61. // For testing, this can be overwritten in KlattInit()
  62. static short natural_samples2[256] = {
  63. 2583, 2516, 2450, 2384, 2319, 2254, 2191, 2127,
  64. 2067, 2005, 1946, 1890, 1832, 1779, 1726, 1675,
  65. 1626, 1579, 1533, 1491, 1449, 1409, 1372, 1336,
  66. 1302, 1271, 1239, 1211, 1184, 1158, 1134, 1111,
  67. 1089, 1069, 1049, 1031, 1013, 996, 980, 965,
  68. 950, 936, 921, 909, 895, 881, 869, 855,
  69. 843, 830, 818, 804, 792, 779, 766, 754,
  70. 740, 728, 715, 702, 689, 676, 663, 651,
  71. 637, 626, 612, 601, 588, 576, 564, 552,
  72. 540, 530, 517, 507, 496, 485, 475, 464,
  73. 454, 443, 434, 424, 414, 404, 394, 385,
  74. 375, 366, 355, 347, 336, 328, 317, 308,
  75. 299, 288, 280, 269, 260, 250, 240, 231,
  76. 220, 212, 200, 192, 181, 172, 161, 152,
  77. 142, 133, 123, 113, 105, 94, 86, 76,
  78. 67, 57, 49, 39, 30, 22, 11, 4,
  79. -5, -14, -23, -32, -41, -50, -60, -69,
  80. -78, -87, -96, -107, -115, -126, -134, -144,
  81. -154, -164, -174, -183, -193, -203, -213, -222,
  82. -233, -242, -252, -262, -271, -281, -291, -301,
  83. -310, -320, -330, -339, -349, -357, -368, -377,
  84. -387, -397, -406, -417, -426, -436, -446, -456,
  85. -467, -477, -487, -499, -509, -521, -532, -543,
  86. -555, -567, -579, -591, -603, -616, -628, -641,
  87. -653, -666, -679, -692, -705, -717, -732, -743,
  88. -758, -769, -783, -795, -808, -820, -834, -845,
  89. -860, -872, -885, -898, -911, -926, -939, -955,
  90. -968, -986, -999, -1018, -1034, -1054, -1072, -1094,
  91. -1115, -1138, -1162, -1188, -1215, -1244, -1274, -1307,
  92. -1340, -1377, -1415, -1453, -1496, -1538, -1584, -1631,
  93. -1680, -1732, -1783, -1839, -1894, -1952, -2010, -2072,
  94. -2133, -2196, -2260, -2325, -2390, -2456, -2522, -2589,
  95. };
  96. static short natural_samples[100] = {
  97. -310, -400, 530, 356, 224, 89, 23, -10, -58, -16, 461, 599, 536, 701, 770,
  98. 605, 497, 461, 560, 404, 110, 224, 131, 104, -97, 155, 278, -154, -1165,
  99. -598, 737, 125, -592, 41, 11, -247, -10, 65, 92, 80, -304, 71, 167, -1, 122,
  100. 233, 161, -43, 278, 479, 485, 407, 266, 650, 134, 80, 236, 68, 260, 269, 179,
  101. 53, 140, 275, 293, 296, 104, 257, 152, 311, 182, 263, 245, 125, 314, 140, 44,
  102. 203, 230, -235, -286, 23, 107, 92, -91, 38, 464, 443, 176, 98, -784, -2449,
  103. -1891, -1045, -1600, -1462, -1384, -1261, -949, -730
  104. };
  105. /*
  106. function RESONATOR
  107. This is a generic resonator function. Internal memory for the resonator
  108. is stored in the globals structure.
  109. */
  110. static double resonator(resonator_ptr r, double input)
  111. {
  112. double x;
  113. x = (double)((double)r->a * (double)input + (double)r->b * (double)r->p1 + (double)r->c * (double)r->p2);
  114. r->p2 = (double)r->p1;
  115. r->p1 = (double)x;
  116. return (double)x;
  117. }
  118. static double resonator2(resonator_ptr r, double input)
  119. {
  120. double x;
  121. x = (double)((double)r->a * (double)input + (double)r->b * (double)r->p1 + (double)r->c * (double)r->p2);
  122. r->p2 = (double)r->p1;
  123. r->p1 = (double)x;
  124. r->a += r->a_inc;
  125. r->b += r->b_inc;
  126. r->c += r->c_inc;
  127. return (double)x;
  128. }
  129. static double antiresonator2(resonator_ptr r, double input)
  130. {
  131. register double x = (double)r->a * (double)input + (double)r->b * (double)r->p1 + (double)r->c * (double)r->p2;
  132. r->p2 = (double)r->p1;
  133. r->p1 = (double)input;
  134. r->a += r->a_inc;
  135. r->b += r->b_inc;
  136. r->c += r->c_inc;
  137. return (double)x;
  138. }
  139. /*
  140. function FLUTTER
  141. This function adds F0 flutter, as specified in:
  142. "Analysis, synthesis and perception of voice quality variations among
  143. female and male talkers" D.H. Klatt and L.C. Klatt JASA 87(2) February 1990.
  144. Flutter is added by applying a quasi-random element constructed from three
  145. slowly varying sine waves.
  146. */
  147. static void flutter(klatt_frame_ptr frame)
  148. {
  149. static int time_count;
  150. double delta_f0;
  151. double fla, flb, flc, fld, fle;
  152. fla = (double)kt_globals.f0_flutter / 50;
  153. flb = (double)kt_globals.original_f0 / 100;
  154. flc = sin(M_PI*12.7*time_count); // because we are calling flutter() more frequently, every 2.9mS
  155. fld = sin(M_PI*7.1*time_count);
  156. fle = sin(M_PI*4.7*time_count);
  157. delta_f0 = fla * flb * (flc + fld + fle) * 10;
  158. frame->F0hz10 = frame->F0hz10 + (long)delta_f0;
  159. time_count++;
  160. }
  161. /*
  162. function SAMPLED_SOURCE
  163. Allows the use of a glottal excitation waveform sampled from a real
  164. voice.
  165. */
  166. static double sampled_source(int source_num)
  167. {
  168. int itemp;
  169. double ftemp;
  170. double result;
  171. double diff_value;
  172. int current_value;
  173. int next_value;
  174. double temp_diff;
  175. short *samples;
  176. if (source_num == 0) {
  177. samples = natural_samples;
  178. kt_globals.num_samples = 100;
  179. } else {
  180. samples = natural_samples2;
  181. kt_globals.num_samples = 256;
  182. }
  183. if (kt_globals.T0 != 0) {
  184. ftemp = (double)kt_globals.nper;
  185. ftemp = ftemp / kt_globals.T0;
  186. ftemp = ftemp * kt_globals.num_samples;
  187. itemp = (int)ftemp;
  188. temp_diff = ftemp - (double)itemp;
  189. current_value = samples[itemp];
  190. next_value = samples[itemp+1];
  191. diff_value = (double)next_value - (double)current_value;
  192. diff_value = diff_value * temp_diff;
  193. result = samples[itemp] + diff_value;
  194. result = result * kt_globals.sample_factor;
  195. } else
  196. result = 0;
  197. return result;
  198. }
  199. /*
  200. function PARWAVE
  201. Converts synthesis parameters to a waveform.
  202. */
  203. static int parwave(klatt_frame_ptr frame, WGEN_DATA *wdata)
  204. {
  205. double temp;
  206. int value;
  207. double outbypas;
  208. double out;
  209. long n4;
  210. double frics;
  211. double glotout;
  212. double aspiration;
  213. double casc_next_in;
  214. double par_glotout;
  215. static double noise;
  216. static double voice;
  217. static double vlast;
  218. static double glotlast;
  219. static double sourc;
  220. int ix;
  221. flutter(frame); // add f0 flutter
  222. // MAIN LOOP, for each output sample of current frame:
  223. for (kt_globals.ns = 0; kt_globals.ns < kt_globals.nspfr; kt_globals.ns++) {
  224. // Get low-passed random number for aspiration and frication noise
  225. noise = gen_noise(noise);
  226. // Amplitude modulate noise (reduce noise amplitude during
  227. // second half of glottal period) if voicing simultaneously present.
  228. if (kt_globals.nper > kt_globals.nmod)
  229. noise *= (double)0.5;
  230. // Compute frication noise
  231. frics = kt_globals.amp_frica * noise;
  232. // Compute voicing waveform. Run glottal source simulation at 4
  233. // times normal sample rate to minimize quantization noise in
  234. // period of female voice.
  235. for (n4 = 0; n4 < 4; n4++) {
  236. switch (kt_globals.glsource)
  237. {
  238. case IMPULSIVE:
  239. voice = impulsive_source();
  240. break;
  241. case NATURAL:
  242. voice = natural_source();
  243. break;
  244. case SAMPLED:
  245. voice = sampled_source(0);
  246. break;
  247. case SAMPLED2:
  248. voice = sampled_source(1);
  249. break;
  250. }
  251. // Reset period when counter 'nper' reaches T0
  252. if (kt_globals.nper >= kt_globals.T0) {
  253. kt_globals.nper = 0;
  254. pitch_synch_par_reset(frame);
  255. }
  256. // Low-pass filter voicing waveform before downsampling from 4*samrate
  257. // to samrate samples/sec. Resonator f=.09*samrate, bw=.06*samrate
  258. voice = resonator(&(kt_globals.rsn[RLP]), voice);
  259. // Increment counter that keeps track of 4*samrate samples per sec
  260. kt_globals.nper++;
  261. }
  262. // Tilt spectrum of voicing source down by soft low-pass filtering, amount
  263. // of tilt determined by TLTdb
  264. voice = (voice * kt_globals.onemd) + (vlast * kt_globals.decay);
  265. vlast = voice;
  266. // Add breathiness during glottal open phase. Amount of breathiness
  267. // determined by parameter Aturb Use nrand rather than noise because
  268. // noise is low-passed.
  269. if (kt_globals.nper < kt_globals.nopen)
  270. voice += kt_globals.amp_breth * kt_globals.nrand;
  271. // Set amplitude of voicing
  272. glotout = kt_globals.amp_voice * voice;
  273. par_glotout = kt_globals.par_amp_voice * voice;
  274. // Compute aspiration amplitude and add to voicing source
  275. aspiration = kt_globals.amp_aspir * noise;
  276. glotout += aspiration;
  277. par_glotout += aspiration;
  278. // Cascade vocal tract, excited by laryngeal sources.
  279. // Nasal antiresonator, then formants FNP, F5, F4, F3, F2, F1
  280. out = 0;
  281. if (kt_globals.synthesis_model != ALL_PARALLEL) {
  282. casc_next_in = antiresonator2(&(kt_globals.rsn[Rnz]), glotout);
  283. casc_next_in = resonator(&(kt_globals.rsn[Rnpc]), casc_next_in);
  284. casc_next_in = resonator(&(kt_globals.rsn[R8c]), casc_next_in);
  285. casc_next_in = resonator(&(kt_globals.rsn[R7c]), casc_next_in);
  286. casc_next_in = resonator(&(kt_globals.rsn[R6c]), casc_next_in);
  287. casc_next_in = resonator2(&(kt_globals.rsn[R5c]), casc_next_in);
  288. casc_next_in = resonator2(&(kt_globals.rsn[R4c]), casc_next_in);
  289. casc_next_in = resonator2(&(kt_globals.rsn[R3c]), casc_next_in);
  290. casc_next_in = resonator2(&(kt_globals.rsn[R2c]), casc_next_in);
  291. out = resonator2(&(kt_globals.rsn[R1c]), casc_next_in);
  292. }
  293. // Excite parallel F1 and FNP by voicing waveform
  294. sourc = par_glotout; // Source is voicing plus aspiration
  295. // Standard parallel vocal tract Formants F6,F5,F4,F3,F2,
  296. // outputs added with alternating sign. Sound source for other
  297. // parallel resonators is frication plus first difference of
  298. // voicing waveform.
  299. out += resonator(&(kt_globals.rsn[R1p]), sourc);
  300. out += resonator(&(kt_globals.rsn[Rnpp]), sourc);
  301. sourc = frics + par_glotout - glotlast;
  302. glotlast = par_glotout;
  303. for (ix = R2p; ix <= R6p; ix++)
  304. out = resonator(&(kt_globals.rsn[ix]), sourc) - out;
  305. outbypas = kt_globals.amp_bypas * sourc;
  306. out = outbypas - out;
  307. out = resonator(&(kt_globals.rsn[Rout]), out);
  308. temp = (int)(out * wdata->amplitude * kt_globals.amp_gain0); // Convert back to integer
  309. // mix with a recorded WAV if required for this phoneme
  310. signed char c;
  311. int sample;
  312. if (wdata->mix_wavefile_ix < wdata->n_mix_wavefile) {
  313. if (wdata->mix_wave_scale == 0) {
  314. // a 16 bit sample
  315. c = wdata->mix_wavefile[wdata->mix_wavefile_ix+1];
  316. sample = wdata->mix_wavefile[wdata->mix_wavefile_ix] + (c * 256);
  317. wdata->mix_wavefile_ix += 2;
  318. } else {
  319. // a 8 bit sample, scaled
  320. sample = (signed char)wdata->mix_wavefile[wdata->mix_wavefile_ix++] * wdata->mix_wave_scale;
  321. }
  322. int z2 = sample * wdata->amplitude_v / 1024;
  323. z2 = (z2 * wdata->mix_wave_amp)/40;
  324. temp += z2;
  325. }
  326. // if fadeout is set, fade to zero over 64 samples, to avoid clicks at end of synthesis
  327. if (kt_globals.fadeout > 0) {
  328. kt_globals.fadeout--;
  329. temp = (temp * kt_globals.fadeout) / 64;
  330. }
  331. value = (int)temp + ((echo_buf[echo_tail++]*echo_amp) >> 8);
  332. if (echo_tail >= N_ECHO_BUF)
  333. echo_tail = 0;
  334. if (value < -32768)
  335. value = -32768;
  336. if (value > 32767)
  337. value = 32767;
  338. *out_ptr++ = value;
  339. *out_ptr++ = value >> 8;
  340. echo_buf[echo_head++] = value;
  341. if (echo_head >= N_ECHO_BUF)
  342. echo_head = 0;
  343. sample_count++;
  344. if (out_ptr + 2 > out_end)
  345. return 1;
  346. }
  347. return 0;
  348. }
  349. void KlattReset(int control)
  350. {
  351. int r_ix;
  352. if (control == 2) {
  353. // Full reset
  354. kt_globals.FLPhz = (950 * kt_globals.samrate) / 10000;
  355. kt_globals.BLPhz = (630 * kt_globals.samrate) / 10000;
  356. kt_globals.minus_pi_t = -M_PI / kt_globals.samrate;
  357. kt_globals.two_pi_t = -2.0 * kt_globals.minus_pi_t;
  358. setabc(kt_globals.FLPhz, kt_globals.BLPhz, &(kt_globals.rsn[RLP]));
  359. }
  360. if (control > 0) {
  361. kt_globals.nper = 0;
  362. kt_globals.T0 = 0;
  363. kt_globals.nopen = 0;
  364. kt_globals.nmod = 0;
  365. for (r_ix = RGL; r_ix < N_RSN; r_ix++) {
  366. kt_globals.rsn[r_ix].p1 = 0;
  367. kt_globals.rsn[r_ix].p2 = 0;
  368. }
  369. }
  370. for (r_ix = 0; r_ix <= R6p; r_ix++) {
  371. kt_globals.rsn[r_ix].p1 = 0;
  372. kt_globals.rsn[r_ix].p2 = 0;
  373. }
  374. }
  375. /*
  376. function FRAME_INIT
  377. Use parameters from the input frame to set up resonator coefficients.
  378. */
  379. static void frame_init(klatt_frame_ptr frame)
  380. {
  381. double amp_par[7];
  382. static double amp_par_factor[7] = { 0.6, 0.4, 0.15, 0.06, 0.04, 0.022, 0.03 };
  383. long Gain0_tmp;
  384. int ix;
  385. kt_globals.original_f0 = frame->F0hz10 / 10;
  386. frame->AVdb_tmp = frame->AVdb - 7;
  387. if (frame->AVdb_tmp < 0)
  388. frame->AVdb_tmp = 0;
  389. kt_globals.amp_aspir = DBtoLIN(frame->ASP) * 0.05;
  390. kt_globals.amp_frica = DBtoLIN(frame->AF) * 0.25;
  391. kt_globals.par_amp_voice = DBtoLIN(frame->AVpdb);
  392. kt_globals.amp_bypas = DBtoLIN(frame->AB) * 0.05;
  393. for (ix = 0; ix <= 6; ix++) {
  394. // parallel amplitudes F1 to F6, and parallel nasal pole
  395. amp_par[ix] = DBtoLIN(frame->Ap[ix]) * amp_par_factor[ix];
  396. }
  397. Gain0_tmp = frame->Gain0 - 3;
  398. if (Gain0_tmp <= 0)
  399. Gain0_tmp = 57;
  400. kt_globals.amp_gain0 = DBtoLIN(Gain0_tmp) / kt_globals.scale_wav;
  401. // Set coefficients of variable cascade resonators
  402. for (ix = 1; ix <= 9; ix++) {
  403. // formants 1 to 8, plus nasal pole
  404. setabc(frame->Fhz[ix], frame->Bhz[ix], &(kt_globals.rsn[ix]));
  405. if (ix <= 5) {
  406. setabc(frame->Fhz_next[ix], frame->Bhz_next[ix], &(kt_globals.rsn_next[ix]));
  407. kt_globals.rsn[ix].a_inc = (kt_globals.rsn_next[ix].a - kt_globals.rsn[ix].a) / 64.0;
  408. kt_globals.rsn[ix].b_inc = (kt_globals.rsn_next[ix].b - kt_globals.rsn[ix].b) / 64.0;
  409. kt_globals.rsn[ix].c_inc = (kt_globals.rsn_next[ix].c - kt_globals.rsn[ix].c) / 64.0;
  410. }
  411. }
  412. // nasal zero anti-resonator
  413. setzeroabc(frame->Fhz[F_NZ], frame->Bhz[F_NZ], &(kt_globals.rsn[Rnz]));
  414. setzeroabc(frame->Fhz_next[F_NZ], frame->Bhz_next[F_NZ], &(kt_globals.rsn_next[Rnz]));
  415. kt_globals.rsn[F_NZ].a_inc = (kt_globals.rsn_next[F_NZ].a - kt_globals.rsn[F_NZ].a) / 64.0;
  416. kt_globals.rsn[F_NZ].b_inc = (kt_globals.rsn_next[F_NZ].b - kt_globals.rsn[F_NZ].b) / 64.0;
  417. kt_globals.rsn[F_NZ].c_inc = (kt_globals.rsn_next[F_NZ].c - kt_globals.rsn[F_NZ].c) / 64.0;
  418. // Set coefficients of parallel resonators, and amplitude of outputs
  419. for (ix = 0; ix <= 6; ix++) {
  420. setabc(frame->Fhz[ix], frame->Bphz[ix], &(kt_globals.rsn[Rparallel+ix]));
  421. kt_globals.rsn[Rparallel+ix].a *= amp_par[ix];
  422. }
  423. // output low-pass filter
  424. setabc((long)0.0, (long)(kt_globals.samrate/2), &(kt_globals.rsn[Rout]));
  425. }
  426. /*
  427. function IMPULSIVE_SOURCE
  428. Generate a low pass filtered train of impulses as an approximation of
  429. a natural excitation waveform. Low-pass filter the differentiated impulse
  430. with a critically-damped second-order filter, time constant proportional
  431. to Kopen.
  432. */
  433. static double impulsive_source()
  434. {
  435. static double doublet[] = { 0.0, 13000000.0, -13000000.0 };
  436. static double vwave;
  437. if (kt_globals.nper < 3)
  438. vwave = doublet[kt_globals.nper];
  439. else
  440. vwave = 0.0;
  441. return resonator(&(kt_globals.rsn[RGL]), vwave);
  442. }
  443. /*
  444. function NATURAL_SOURCE
  445. Vwave is the differentiated glottal flow waveform, there is a weak
  446. spectral zero around 800 Hz, magic constants a,b reset pitch synchronously.
  447. */
  448. static double natural_source()
  449. {
  450. double lgtemp;
  451. static double vwave;
  452. if (kt_globals.nper < kt_globals.nopen) {
  453. kt_globals.pulse_shape_a -= kt_globals.pulse_shape_b;
  454. vwave += kt_globals.pulse_shape_a;
  455. lgtemp = vwave * 0.028;
  456. return lgtemp;
  457. }
  458. vwave = 0.0;
  459. return 0.0;
  460. }
  461. /*
  462. function PITCH_SYNC_PAR_RESET
  463. Reset selected parameters pitch-synchronously.
  464. Constant B0 controls shape of glottal pulse as a function
  465. of desired duration of open phase N0
  466. (Note that N0 is specified in terms of 40,000 samples/sec of speech)
  467. Assume voicing waveform V(t) has form: k1 t**2 - k2 t**3
  468. If the radiation characterivative, a temporal derivative
  469. is folded in, and we go from continuous time to discrete
  470. integers n: dV/dt = vwave[n]
  471. = sum over i=1,2,...,n of { a - (i * b) }
  472. = a n - b/2 n**2
  473. where the constants a and b control the detailed shape
  474. and amplitude of the voicing waveform over the open
  475. potion of the voicing cycle "nopen".
  476. Let integral of dV/dt have no net dc flow --> a = (b * nopen) / 3
  477. Let maximum of dUg(n)/dn be constant --> b = gain / (nopen * nopen)
  478. meaning as nopen gets bigger, V has bigger peak proportional to n
  479. Thus, to generate the table below for 40 <= nopen <= 263:
  480. B0[nopen - 40] = 1920000 / (nopen * nopen)
  481. */
  482. static void pitch_synch_par_reset(klatt_frame_ptr frame)
  483. {
  484. long temp;
  485. double temp1;
  486. static long skew;
  487. static short B0[224] = {
  488. 1200, 1142, 1088, 1038, 991, 948, 907, 869, 833, 799, 768, 738, 710, 683, 658,
  489. 634, 612, 590, 570, 551, 533, 515, 499, 483, 468, 454, 440, 427, 415, 403,
  490. 391, 380, 370, 360, 350, 341, 332, 323, 315, 307, 300, 292, 285, 278, 272,
  491. 265, 259, 253, 247, 242, 237, 231, 226, 221, 217, 212, 208, 204, 199, 195,
  492. 192, 188, 184, 180, 177, 174, 170, 167, 164, 161, 158, 155, 153, 150, 147,
  493. 145, 142, 140, 137, 135, 133, 131, 128, 126, 124, 122, 120, 119, 117, 115,
  494. 113, 111, 110, 108, 106, 105, 103, 102, 100, 99, 97, 96, 95, 93, 92, 91, 90,
  495. 88, 87, 86, 85, 84, 83, 82, 80, 79, 78, 77, 76, 75, 75, 74, 73, 72, 71,
  496. 70, 69, 68, 68, 67, 66, 65, 64, 64, 63, 62, 61, 61, 60, 59, 59, 58, 57,
  497. 57, 56, 56, 55, 55, 54, 54, 53, 53, 52, 52, 51, 51, 50, 50, 49, 49, 48, 48,
  498. 47, 47, 46, 46, 45, 45, 44, 44, 43, 43, 42, 42, 41, 41, 41, 41, 40, 40,
  499. 39, 39, 38, 38, 38, 38, 37, 37, 36, 36, 36, 36, 35, 35, 35, 35, 34, 34, 33,
  500. 33, 33, 33, 32, 32, 32, 32, 31, 31, 31, 31, 30, 30, 30, 30, 29, 29, 29, 29,
  501. 28, 28, 28, 28, 27, 27
  502. };
  503. if (frame->F0hz10 > 0) {
  504. // T0 is 4* the number of samples in one pitch period
  505. kt_globals.T0 = (40 * kt_globals.samrate) / frame->F0hz10;
  506. kt_globals.amp_voice = DBtoLIN(frame->AVdb_tmp);
  507. // Duration of period before amplitude modulation
  508. kt_globals.nmod = kt_globals.T0;
  509. if (frame->AVdb_tmp > 0)
  510. kt_globals.nmod >>= 1;
  511. // Breathiness of voicing waveform
  512. kt_globals.amp_breth = DBtoLIN(frame->Aturb) * 0.1;
  513. // Set open phase of glottal period where 40 <= open phase <= 263
  514. kt_globals.nopen = 4 * frame->Kopen;
  515. if ((kt_globals.glsource == IMPULSIVE) && (kt_globals.nopen > 263))
  516. kt_globals.nopen = 263;
  517. if (kt_globals.nopen >= (kt_globals.T0-1))
  518. kt_globals.nopen = kt_globals.T0 - 2;
  519. if (kt_globals.nopen < 40) {
  520. // F0 max = 1000 Hz
  521. kt_globals.nopen = 40;
  522. }
  523. // Reset a & b, which determine shape of "natural" glottal waveform
  524. kt_globals.pulse_shape_b = B0[kt_globals.nopen-40];
  525. kt_globals.pulse_shape_a = (kt_globals.pulse_shape_b * kt_globals.nopen) * 0.333;
  526. // Reset width of "impulsive" glottal pulse
  527. temp = kt_globals.samrate / kt_globals.nopen;
  528. setabc((long)0, temp, &(kt_globals.rsn[RGL]));
  529. // Make gain at F1 about constant
  530. temp1 = kt_globals.nopen *.00833;
  531. kt_globals.rsn[RGL].a *= temp1 * temp1;
  532. // Truncate skewness so as not to exceed duration of closed phase
  533. // of glottal period.
  534. temp = kt_globals.T0 - kt_globals.nopen;
  535. if (frame->Kskew > temp)
  536. frame->Kskew = temp;
  537. if (skew >= 0)
  538. skew = frame->Kskew;
  539. else
  540. skew = -frame->Kskew;
  541. // Add skewness to closed portion of voicing period
  542. kt_globals.T0 = kt_globals.T0 + skew;
  543. skew = -skew;
  544. } else {
  545. kt_globals.T0 = 4; // Default for f0 undefined
  546. kt_globals.amp_voice = 0.0;
  547. kt_globals.nmod = kt_globals.T0;
  548. kt_globals.amp_breth = 0.0;
  549. kt_globals.pulse_shape_a = 0.0;
  550. kt_globals.pulse_shape_b = 0.0;
  551. }
  552. // Reset these pars pitch synchronously or at update rate if f0=0
  553. if ((kt_globals.T0 != 4) || (kt_globals.ns == 0)) {
  554. // Set one-pole low-pass filter that tilts glottal source
  555. kt_globals.decay = (0.033 * frame->TLTdb);
  556. if (kt_globals.decay > 0.0)
  557. kt_globals.onemd = 1.0 - kt_globals.decay;
  558. else
  559. kt_globals.onemd = 1.0;
  560. }
  561. }
  562. /*
  563. function SETABC
  564. Convert formant freqencies and bandwidth into resonator difference
  565. equation constants.
  566. */
  567. static void setabc(long int f, long int bw, resonator_ptr rp)
  568. {
  569. double r;
  570. double arg;
  571. // Let r = exp(-pi bw t)
  572. arg = kt_globals.minus_pi_t * bw;
  573. r = exp(arg);
  574. // Let c = -r**2
  575. rp->c = -(r * r);
  576. // Let b = r * 2*cos(2 pi f t)
  577. arg = kt_globals.two_pi_t * f;
  578. rp->b = r * cos(arg) * 2.0;
  579. // Let a = 1.0 - b - c
  580. rp->a = 1.0 - rp->b - rp->c;
  581. }
  582. /*
  583. function SETZEROABC
  584. Convert formant freqencies and bandwidth into anti-resonator difference
  585. equation constants.
  586. */
  587. static void setzeroabc(long int f, long int bw, resonator_ptr rp)
  588. {
  589. double r;
  590. double arg;
  591. f = -f;
  592. // First compute ordinary resonator coefficients
  593. // Let r = exp(-pi bw t)
  594. arg = kt_globals.minus_pi_t * bw;
  595. r = exp(arg);
  596. // Let c = -r**2
  597. rp->c = -(r * r);
  598. // Let b = r * 2*cos(2 pi f t)
  599. arg = kt_globals.two_pi_t * f;
  600. rp->b = r * cos(arg) * 2.;
  601. // Let a = 1.0 - b - c
  602. rp->a = 1.0 - rp->b - rp->c;
  603. // Now convert to antiresonator coefficients (a'=1/a, b'=b/a, c'=c/a)
  604. // If f == 0 then rp->a gets set to 0 which makes a'=1/a set a', b' and c' to
  605. // INF, causing an audible sound spike when triggered (e.g. apiration with the
  606. // nasal register set to f=0, bw=0).
  607. if (rp->a != 0) {
  608. // Now convert to antiresonator coefficients (a'=1/a, b'=b/a, c'=c/a)
  609. rp->a = 1.0 / rp->a;
  610. rp->c *= -rp->a;
  611. rp->b *= -rp->a;
  612. }
  613. }
  614. /*
  615. function GEN_NOISE
  616. Random number generator (return a number between -8191 and +8191)
  617. Noise spectrum is tilted down by soft low-pass filter having a pole near
  618. the origin in the z-plane, i.e. output = input + (0.75 * lastoutput)
  619. */
  620. static double gen_noise(double noise)
  621. {
  622. long temp;
  623. static double nlast;
  624. temp = (long)getrandom(-8191, 8191);
  625. kt_globals.nrand = (long)temp;
  626. noise = kt_globals.nrand + (0.75 * nlast);
  627. nlast = noise;
  628. return noise;
  629. }
  630. /*
  631. function DBTOLIN
  632. Convert from decibels to a linear scale factor
  633. Conversion table, db to linear, 87 dB --> 32767
  634. 86 dB --> 29491 (1 dB down = 0.5**1/6)
  635. ...
  636. 81 dB --> 16384 (6 dB down = 0.5)
  637. ...
  638. 0 dB --> 0
  639. The just noticeable difference for a change in intensity of a vowel
  640. is approximately 1 dB. Thus all amplitudes are quantized to 1 dB
  641. steps.
  642. */
  643. static double DBtoLIN(long dB)
  644. {
  645. static short amptable[88] = {
  646. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 6, 7,
  647. 8, 9, 10, 11, 13, 14, 16, 18, 20, 22, 25, 28, 32,
  648. 35, 40, 45, 51, 57, 64, 71, 80, 90, 101, 114, 128,
  649. 142, 159, 179, 202, 227, 256, 284, 318, 359, 405,
  650. 455, 512, 568, 638, 719, 881, 911, 1024, 1137, 1276,
  651. 1438, 1622, 1823, 2048, 2273, 2552, 2875, 3244, 3645,
  652. 4096, 4547, 5104, 5751, 6488, 7291, 8192, 9093, 10207,
  653. 11502, 12976, 14582, 16384, 18350, 20644, 23429,
  654. 26214, 29491, 32767
  655. };
  656. if ((dB < 0) || (dB > 87))
  657. return 0;
  658. return (double)(amptable[dB]) * 0.001;
  659. }
  660. static klatt_peaks_t peaks[N_PEAKS];
  661. static int end_wave;
  662. static int klattp[N_KLATTP];
  663. static double klattp1[N_KLATTP];
  664. static double klattp_inc[N_KLATTP];
  665. int Wavegen_Klatt(int length, int resume, frame_t *fr1, frame_t *fr2, WGEN_DATA *wdata, voice_t *wvoice)
  666. {
  667. if (resume == 0)
  668. SetSynth_Klatt(length, fr1, fr2, wvoice, 1);
  669. int pk;
  670. int x;
  671. int ix;
  672. int fade;
  673. if (resume == 0)
  674. sample_count = 0;
  675. while (sample_count < nsamples) {
  676. kt_frame.F0hz10 = (wdata->pitch * 10) / 4096;
  677. // formants F6,F7,F8 are fixed values for cascade resonators, set in KlattInit()
  678. // but F6 is used for parallel resonator
  679. // F0 is used for the nasal zero
  680. for (ix = 0; ix < 6; ix++) {
  681. kt_frame.Fhz[ix] = peaks[ix].freq;
  682. if (ix < 4)
  683. kt_frame.Bhz[ix] = peaks[ix].bw;
  684. }
  685. for (ix = 1; ix < 7; ix++)
  686. kt_frame.Ap[ix] = peaks[ix].ap;
  687. kt_frame.AVdb = klattp[KLATT_AV];
  688. kt_frame.AVpdb = klattp[KLATT_AVp];
  689. kt_frame.AF = klattp[KLATT_Fric];
  690. kt_frame.AB = klattp[KLATT_FricBP];
  691. kt_frame.ASP = klattp[KLATT_Aspr];
  692. kt_frame.Aturb = klattp[KLATT_Turb];
  693. kt_frame.Kskew = klattp[KLATT_Skew];
  694. kt_frame.TLTdb = klattp[KLATT_Tilt];
  695. kt_frame.Kopen = klattp[KLATT_Kopen];
  696. // advance formants
  697. for (pk = 0; pk < N_PEAKS; pk++) {
  698. peaks[pk].freq1 += peaks[pk].freq_inc;
  699. peaks[pk].freq = (int)peaks[pk].freq1;
  700. peaks[pk].bw1 += peaks[pk].bw_inc;
  701. peaks[pk].bw = (int)peaks[pk].bw1;
  702. peaks[pk].bp1 += peaks[pk].bp_inc;
  703. peaks[pk].bp = (int)peaks[pk].bp1;
  704. peaks[pk].ap1 += peaks[pk].ap_inc;
  705. peaks[pk].ap = (int)peaks[pk].ap1;
  706. }
  707. // advance other parameters
  708. for (ix = 0; ix < N_KLATTP; ix++) {
  709. klattp1[ix] += klattp_inc[ix];
  710. klattp[ix] = (int)klattp1[ix];
  711. }
  712. for (ix = 0; ix <= 6; ix++) {
  713. kt_frame.Fhz_next[ix] = peaks[ix].freq;
  714. if (ix < 4)
  715. kt_frame.Bhz_next[ix] = peaks[ix].bw;
  716. }
  717. // advance the pitch
  718. wdata->pitch_ix += wdata->pitch_inc;
  719. if ((ix = wdata->pitch_ix>>8) > 127) ix = 127;
  720. x = wdata->pitch_env[ix] * wdata->pitch_range;
  721. wdata->pitch = (x>>8) + wdata->pitch_base;
  722. kt_globals.nspfr = (nsamples - sample_count);
  723. if (kt_globals.nspfr > STEPSIZE)
  724. kt_globals.nspfr = STEPSIZE;
  725. frame_init(&kt_frame); // get parameters for next frame of speech
  726. if (parwave(&kt_frame, wdata) == 1)
  727. return 1; // output buffer is full
  728. }
  729. if (end_wave > 0) {
  730. fade = 64; // not followed by formant synthesis
  731. // fade out to avoid a click
  732. kt_globals.fadeout = fade;
  733. end_wave = 0;
  734. sample_count -= fade;
  735. kt_globals.nspfr = fade;
  736. if (parwave(&kt_frame, wdata) == 1)
  737. return 1; // output buffer is full
  738. }
  739. return 0;
  740. }
  741. static void SetSynth_Klatt(int length, frame_t *fr1, frame_t *fr2, voice_t *wvoice, int control)
  742. {
  743. int ix;
  744. double next;
  745. int qix;
  746. int cmd;
  747. frame_t *fr3;
  748. static frame_t prev_fr;
  749. if (wvoice != NULL) {
  750. if ((wvoice->klattv[0] > 0) && (wvoice->klattv[0] <= 4 )) {
  751. kt_globals.glsource = wvoice->klattv[0];
  752. kt_globals.scale_wav = scale_wav_tab[kt_globals.glsource];
  753. }
  754. kt_globals.f0_flutter = wvoice->flutter/32;
  755. }
  756. end_wave = 0;
  757. if (control & 2)
  758. end_wave = 1; // fadeout at the end
  759. if (control & 1) {
  760. end_wave = 1;
  761. for (qix = wcmdq_head+1;; qix++) {
  762. if (qix >= N_WCMDQ) qix = 0;
  763. if (qix == wcmdq_tail) break;
  764. cmd = wcmdq[qix][0];
  765. if (cmd == WCMD_KLATT) {
  766. end_wave = 0; // next wave generation is from another spectrum
  767. fr3 = (frame_t *)wcmdq[qix][2];
  768. for (ix = 1; ix < 6; ix++) {
  769. if (fr3->ffreq[ix] != fr2->ffreq[ix]) {
  770. // there is a discontinuity in formants
  771. end_wave = 2;
  772. break;
  773. }
  774. }
  775. break;
  776. }
  777. if ((cmd == WCMD_WAVE) || (cmd == WCMD_PAUSE))
  778. break; // next is not from spectrum, so continue until end of wave cycle
  779. }
  780. }
  781. if (control & 1) {
  782. for (ix = 1; ix < 6; ix++) {
  783. if (prev_fr.ffreq[ix] != fr1->ffreq[ix]) {
  784. // Discontinuity in formants.
  785. // end_wave was set in SetSynth_Klatt() to fade out the previous frame
  786. KlattReset(0);
  787. break;
  788. }
  789. }
  790. memcpy(&prev_fr, fr2, sizeof(prev_fr));
  791. }
  792. for (ix = 0; ix < N_KLATTP; ix++) {
  793. if ((ix >= 5) && ((fr1->frflags & FRFLAG_KLATT) == 0)) {
  794. klattp1[ix] = klattp[ix] = 0;
  795. klattp_inc[ix] = 0;
  796. } else {
  797. klattp1[ix] = klattp[ix] = fr1->klattp[ix];
  798. klattp_inc[ix] = (double)((fr2->klattp[ix] - klattp[ix]) * STEPSIZE)/length;
  799. }
  800. }
  801. nsamples = length;
  802. for (ix = 1; ix < 6; ix++) {
  803. peaks[ix].freq1 = (fr1->ffreq[ix] * wvoice->freq[ix] / 256.0) + wvoice->freqadd[ix];
  804. peaks[ix].freq = (int)peaks[ix].freq1;
  805. next = (fr2->ffreq[ix] * wvoice->freq[ix] / 256.0) + wvoice->freqadd[ix];
  806. peaks[ix].freq_inc = ((next - peaks[ix].freq1) * STEPSIZE) / length;
  807. if (ix < 4) {
  808. // klatt bandwidth for f1, f2, f3 (others are fixed)
  809. peaks[ix].bw1 = fr1->bw[ix] * 2;
  810. peaks[ix].bw = (int)peaks[ix].bw1;
  811. next = fr2->bw[ix] * 2;
  812. peaks[ix].bw_inc = ((next - peaks[ix].bw1) * STEPSIZE) / length;
  813. }
  814. }
  815. // nasal zero frequency
  816. peaks[0].freq1 = fr1->klattp[KLATT_FNZ] * 2;
  817. if (peaks[0].freq1 == 0)
  818. peaks[0].freq1 = kt_frame.Fhz[F_NP]; // if no nasal zero, set it to same freq as nasal pole
  819. peaks[0].freq = (int)peaks[0].freq1;
  820. next = fr2->klattp[KLATT_FNZ] * 2;
  821. if (next == 0)
  822. next = kt_frame.Fhz[F_NP];
  823. peaks[0].freq_inc = ((next - peaks[0].freq1) * STEPSIZE) / length;
  824. peaks[0].bw1 = 89;
  825. peaks[0].bw = 89;
  826. peaks[0].bw_inc = 0;
  827. if (fr1->frflags & FRFLAG_KLATT) {
  828. // the frame contains additional parameters for parallel resonators
  829. for (ix = 1; ix < 7; ix++) {
  830. peaks[ix].bp1 = fr1->klatt_bp[ix] * 4; // parallel bandwidth
  831. peaks[ix].bp = (int)peaks[ix].bp1;
  832. next = fr2->klatt_bp[ix] * 4;
  833. peaks[ix].bp_inc = ((next - peaks[ix].bp1) * STEPSIZE) / length;
  834. peaks[ix].ap1 = fr1->klatt_ap[ix]; // parallal amplitude
  835. peaks[ix].ap = (int)peaks[ix].ap1;
  836. next = fr2->klatt_ap[ix];
  837. peaks[ix].ap_inc = ((next - peaks[ix].ap1) * STEPSIZE) / length;
  838. }
  839. }
  840. }
  841. void KlattInit()
  842. {
  843. static short formant_hz[10] = { 280, 688, 1064, 2806, 3260, 3700, 6500, 7000, 8000, 280 };
  844. static short bandwidth[10] = { 89, 160, 70, 160, 200, 200, 500, 500, 500, 89 };
  845. static short parallel_amp[10] = { 0, 59, 59, 59, 59, 59, 59, 0, 0, 0 };
  846. static short parallel_bw[10] = { 59, 59, 89, 149, 200, 200, 500, 0, 0, 0 };
  847. int ix;
  848. sample_count = 0;
  849. kt_globals.synthesis_model = CASCADE_PARALLEL;
  850. kt_globals.samrate = 22050;
  851. kt_globals.glsource = IMPULSIVE;
  852. kt_globals.scale_wav = scale_wav_tab[kt_globals.glsource];
  853. kt_globals.natural_samples = natural_samples;
  854. kt_globals.num_samples = NUMBER_OF_SAMPLES;
  855. kt_globals.sample_factor = 3.0;
  856. kt_globals.nspfr = (kt_globals.samrate * 10) / 1000;
  857. kt_globals.outsl = 0;
  858. kt_globals.f0_flutter = 20;
  859. KlattReset(2);
  860. // set default values for frame parameters
  861. for (ix = 0; ix <= 9; ix++) {
  862. kt_frame.Fhz[ix] = formant_hz[ix];
  863. kt_frame.Bhz[ix] = bandwidth[ix];
  864. kt_frame.Ap[ix] = parallel_amp[ix];
  865. kt_frame.Bphz[ix] = parallel_bw[ix];
  866. }
  867. kt_frame.Bhz_next[F_NZ] = bandwidth[F_NZ];
  868. kt_frame.F0hz10 = 1000;
  869. kt_frame.AVdb = 59;
  870. kt_frame.ASP = 0;
  871. kt_frame.Kopen = 40;
  872. kt_frame.Aturb = 0;
  873. kt_frame.TLTdb = 0;
  874. kt_frame.AF = 50;
  875. kt_frame.Kskew = 0;
  876. kt_frame.AB = 0;
  877. kt_frame.AVpdb = 0;
  878. kt_frame.Gain0 = 62;
  879. }