1 /*
2  * Revision 1.2  1996/08/20  20:18:55  jaf
3  * Removed all static local variables that were SAVE'd in the Fortran
4  * code, and put them in struct lpc10_decoder_state that is passed as an
5  * argument.
6  *
7  * Removed init function, since all initialization is now done in
8  * init_lpc10_decoder_state().
9  *
10  * Revision 1.1  1996/08/19  22:32:58  jaf
11  * Initial revision
12  *
13 */
14 
15 /*  -- translated by f2c (version 19951025).
16    You must link the resulting object file with the libraries:
17 	-lf2c -lm   (in that order)
18 */
19 
20 #include "f2c.h"
21 
22 int bsynz_(real *coef, integer *ip, integer *iv, real *sout, real *rms, real *ratio, real *g2pass, struct lpc10_decoder_state *st);
23 
24 /* Common Block Declarations */
25 
26 extern struct {
27     integer order, lframe;
28     logical corrp;
29 } contrl_;
30 
31 #define contrl_1 contrl_
32 
33 /* ***************************************************************** */
34 
35 /* 	BSYNZ Version 54 */
36 
37 /*
38  * Revision 1.2  1996/08/20  20:18:55  jaf
39  * Removed all static local variables that were SAVE'd in the Fortran
40  * code, and put them in struct lpc10_decoder_state that is passed as an
41  * argument.
42  *
43  * Removed init function, since all initialization is now done in
44  * init_lpc10_decoder_state().
45  *
46  * Revision 1.1  1996/08/19  22:32:58  jaf
47  * Initial revision
48  * */
49 /* Revision 1.4  1996/03/27  18:11:22  jaf */
50 /* Changed the range of NOISE printed out in the debugging statements, */
51 /* even though they are commented out.  I didn't discover this until I */
52 /* tried comparing two different versions of the LPC-10 coder, each with */
53 /* full tracing enabled. */
54 
55 /* Revision 1.3  1996/03/26  19:33:23  jaf */
56 /* Commented out trace statements. */
57 
58 /* Revision 1.2  1996/03/20  17:12:54  jaf */
59 /* Added comments about which indices of array arguments are read or */
60 /* written. */
61 
62 /* Rearranged local variable declarations to indicate which need to be */
63 /* saved from one invocation to the next.  Added entry INITBSYNZ to */
64 /* reinitialize the local state variables, if desired. */
65 
66 /* Revision 1.1  1996/02/07 14:43:15  jaf */
67 /* Initial revision */
68 
69 
70 /* ***************************************************************** */
71 
72 /*   Synthesize One Pitch Epoch */
73 
74 /* Input: */
75 /*  COEF  - Predictor coefficients */
76 /*          Indices 1 through ORDER read. */
77 /*  IP    - Pitch period (number of samples to synthesize) */
78 /*  IV    - Voicing for the current epoch */
79 /*  RMS   - Energy for the current epoch */
80 /*  RATIO - Energy slope for plosives */
81 /*  G2PASS- Sharpening factor for 2 pass synthesis */
82 /* Output: */
83 /*  SOUT  - Synthesized speech */
84 /*          Indices 1 through IP written. */
85 
86 /* This subroutine maintains local state from one call to the next.  If */
87 /* you want to switch to using a new audio stream for this filter, or */
88 /* reinitialize its state for any other reason, call the ENTRY */
89 /* INITBSYNZ. */
90 
bsynz_(real * coef,integer * ip,integer * iv,real * sout,real * rms,real * ratio,real * g2pass,struct lpc10_decoder_state * st)91 /* Subroutine */ int bsynz_(real *coef, integer *ip, integer *iv,
92 	real *sout, real *rms, real *ratio, real *g2pass,
93 			    struct lpc10_decoder_state *st)
94 {
95     /* Initialized data */
96 
97     integer *ipo;
98     real *rmso;
99     static integer kexc[25] = { 8,-16,26,-48,86,-162,294,-502,718,-728,184,
100 	    672,-610,-672,184,728,718,502,294,162,86,48,26,16,8 };
101     real *exc;
102     real *exc2;
103     real *lpi1;
104     real *lpi2;
105     real *lpi3;
106     real *hpi1;
107     real *hpi2;
108     real *hpi3;
109 
110     /* System generated locals */
111     integer i__1, i__2;
112     real r__1, r__2;
113 
114     /* Builtin functions */
115     double sqrt(doublereal);
116 
117     /* Local variables */
118     real gain, xssq;
119     integer i__, j, k;
120     real noise[166], pulse;
121     integer px;
122     real sscale;
123     extern integer random_(struct lpc10_decoder_state *);
124     real xy, sum, ssq;
125     real lpi0, hpi0;
126 
127 /*   LPC Processing control variables: */
128 
129 /* *** Read-only: initialized in setup */
130 
131 /*  Files for Speech, Parameter, and Bitstream Input & Output, */
132 /*    and message and debug outputs. */
133 
134 /* Here are the only files which use these variables: */
135 
136 /* lpcsim.f setup.f trans.f error.f vqsetup.f */
137 
138 /* Many files which use fdebug are not listed, since it is only used in */
139 /* those other files conditionally, to print trace statements. */
140 /* 	integer fsi, fso, fpi, fpo, fbi, fbo, pbin, fmsg, fdebug */
141 /*  LPC order, Frame size, Quantization rate, Bits per frame, */
142 /*    Error correction */
143 /* Subroutine SETUP is the only place where order is assigned a value, */
144 /* and that value is 10.  It could increase efficiency 1% or so to */
145 /* declare order as a constant (i.e., a Fortran PARAMETER) instead of as
146 */
147 /* a variable in a COMMON block, since it is used in many places in the */
148 /* core of the coding and decoding routines.  Actually, I take that back.
149 */
150 /* At least when compiling with f2c, the upper bound of DO loops is */
151 /* stored in a local variable before the DO loop begins, and then that is
152 */
153 /* compared against on each iteration. */
154 /* Similarly for lframe, which is given a value of MAXFRM in SETUP. */
155 /* Similarly for quant, which is given a value of 2400 in SETUP.  quant */
156 /* is used in only a few places, and never in the core coding and */
157 /* decoding routines, so it could be eliminated entirely. */
158 /* nbits is similar to quant, and is given a value of 54 in SETUP. */
159 /* corrp is given a value of .TRUE. in SETUP, and is only used in the */
160 /* subroutines ENCODE and DECODE.  It doesn't affect the speed of the */
161 /* coder significantly whether it is .TRUE. or .FALSE., or whether it is
162 */
163 /* a constant or a variable, since it is only examined once per frame. */
164 /* Leaving it as a variable that is set to .TRUE.  seems like a good */
165 /* idea, since it does enable some error-correction capability for */
166 /* unvoiced frames, with no change in the coding rate, and no noticeable
167 */
168 /* quality difference in the decoded speech. */
169 /* 	integer quant, nbits */
170 /* *** Read/write: variables for debugging, not needed for LPC algorithm
171 */
172 
173 /*  Current frame, Unstable frames, Output clip count, Max onset buffer,
174 */
175 /*    Debug listing detail level, Line count on listing page */
176 
177 /* nframe is not needed for an embedded LPC10 at all. */
178 /* nunsfm is initialized to 0 in SETUP, and incremented in subroutine */
179 /* ERROR, which is only called from RCCHK.  When LPC10 is embedded into */
180 /* an application, I would recommend removing the call to ERROR in RCCHK,
181 */
182 /* and remove ERROR and nunsfm completely. */
183 /* iclip is initialized to 0 in SETUP, and incremented in entry SWRITE in
184 */
185 /* sread.f.  When LPC10 is embedded into an application, one might want */
186 /* to cause it to be incremented in a routine that takes the output of */
187 /* SYNTHS and sends it to an audio device.  It could be optionally */
188 /* displayed, for those that might want to know what it is. */
189 /* maxosp is never initialized to 0 in SETUP, although it probably should
190 */
191 /* be, and it is updated in subroutine ANALYS.  I doubt that its value */
192 /* would be of much interest to an application in which LPC10 is */
193 /* embedded. */
194 /* listl and lincnt are not needed for an embedded LPC10 at all. */
195 /* 	integer nframe, nunsfm, iclip, maxosp, listl, lincnt */
196 /* 	common /contrl/ fsi, fso, fpi, fpo, fbi, fbo, pbin, fmsg, fdebug */
197 /* 	common /contrl/ quant, nbits */
198 /* 	common /contrl/ nframe, nunsfm, iclip, maxosp, listl, lincnt */
199 /*       Function return value definitions */
200 /* 	Parameters/constants */
201 /*       KEXC is not a Fortran PARAMETER, but it is an array initialized
202 */
203 /*       with a DATA statement that is never modified. */
204 /*       Local variables that need not be saved */
205 /*       NOISE is declared with range (1:MAXPIT+MAXORD), but only indices
206 */
207 /*       ORDER+1 through ORDER+IP are ever used, and I think that IP */
208 /*       .LE. MAXPIT.  Why not declare it to be in the range (1:MAXPIT) */
209 /*       and use that range? */
210 /*       Local state */
211 /*       I believe that only indices 1 through ORDER of EXC need to be */
212 /*       saved from one invocation to the next, but we may as well save */
213 /*       the whole array. */
214 /*       None of these local variables were given initial values in the */
215 /*       original code.  I'm guessing that 0 is a reasonable initial */
216 /*       value for all of them. */
217     /* Parameter adjustments */
218     if (coef) {
219 	--coef;
220 	}
221     if (sout) {
222 	--sout;
223 	}
224 
225     /* Function Body */
226     ipo = &(st->ipo);
227     exc = &(st->exc[0]);
228     exc2 = &(st->exc2[0]);
229     lpi1 = &(st->lpi1);
230     lpi2 = &(st->lpi2);
231     lpi3 = &(st->lpi3);
232     hpi1 = &(st->hpi1);
233     hpi2 = &(st->hpi2);
234     hpi3 = &(st->hpi3);
235     rmso = &(st->rmso_bsynz);
236 
237 /*                  MAXPIT+MAXORD=166 */
238 /*  Calculate history scale factor XY and scale filter state */
239 /* Computing MIN */
240     r__1 = *rmso / (*rms + 1e-6f);
241     xy = min(r__1,8.f);
242     *rmso = *rms;
243     i__1 = contrl_1.order;
244     for (i__ = 1; i__ <= i__1; ++i__) {
245 	exc2[i__ - 1] = exc2[*ipo + i__ - 1] * xy;
246     }
247     *ipo = *ip;
248     if (*iv == 0) {
249 /*  Generate white noise for unvoiced */
250 	i__1 = *ip;
251 	for (i__ = 1; i__ <= i__1; ++i__) {
252 	    exc[contrl_1.order + i__ - 1] = (real) (random_(st) / 64);
253 	}
254 /*  Impulse doublet excitation for plosives */
255 /*       (RANDOM()+32768) is in the range 0 to 2**16-1.  Therefore the
256  */
257 /*       following expression should be evaluated using integers with
258 at */
259 /*       least 32 bits (16 isn't enough), and PX should be in the rang
260 e */
261 /*       ORDER+1+0 through ORDER+1+(IP-2) .EQ. ORDER+IP-1. */
262 	px = (random_(st) + 32768) * (*ip - 1) / 65536 + contrl_1.order + 1;
263 	r__1 = *ratio / 4 * 1.f;
264 	pulse = r__1 * 342;
265 	if (pulse > 2e3f) {
266 	    pulse = 2e3f;
267 	}
268 	exc[px - 1] += pulse;
269 	exc[px] -= pulse;
270 /*  Load voiced excitation */
271     } else {
272 	sscale = sqrt((real) (*ip)) / 6.928f;
273 	i__1 = *ip;
274 	for (i__ = 1; i__ <= i__1; ++i__) {
275 	    exc[contrl_1.order + i__ - 1] = 0.f;
276 	    if (i__ <= 25) {
277 		exc[contrl_1.order + i__ - 1] = sscale * kexc[i__ - 1];
278 	    }
279 	    lpi0 = exc[contrl_1.order + i__ - 1];
280 	    r__2 = exc[contrl_1.order + i__ - 1] * .125f + *lpi1 * .75f;
281 	    r__1 = r__2 + *lpi2 * .125f;
282 	    exc[contrl_1.order + i__ - 1] = r__1 + *lpi3 * 0.f;
283 	    *lpi3 = *lpi2;
284 	    *lpi2 = *lpi1;
285 	    *lpi1 = lpi0;
286 	}
287 	i__1 = *ip;
288 	for (i__ = 1; i__ <= i__1; ++i__) {
289 	    noise[contrl_1.order + i__ - 1] = random_(st) * 1.f / 64;
290 	    hpi0 = noise[contrl_1.order + i__ - 1];
291 	    r__2 = noise[contrl_1.order + i__ - 1] * -.125f + *hpi1 * .25f;
292 	    r__1 = r__2 + *hpi2 * -.125f;
293 	    noise[contrl_1.order + i__ - 1] = r__1 + *hpi3 * 0.f;
294 	    *hpi3 = *hpi2;
295 	    *hpi2 = *hpi1;
296 	    *hpi1 = hpi0;
297 	}
298 	i__1 = *ip;
299 	for (i__ = 1; i__ <= i__1; ++i__) {
300 	    exc[contrl_1.order + i__ - 1] += noise[contrl_1.order + i__ - 1];
301 	}
302     }
303 /*   Synthesis filters: */
304 /*    Modify the excitation with all-zero filter  1 + G*SUM */
305     xssq = 0.f;
306     i__1 = *ip;
307     for (i__ = 1; i__ <= i__1; ++i__) {
308 	k = contrl_1.order + i__;
309 	sum = 0.f;
310 	i__2 = contrl_1.order;
311 	for (j = 1; j <= i__2; ++j) {
312 	    sum += coef[j] * exc[k - j - 1];
313 	}
314 	sum *= *g2pass;
315 	exc2[k - 1] = sum + exc[k - 1];
316     }
317 /*   Synthesize using the all pole filter  1 / (1 - SUM) */
318     i__1 = *ip;
319     for (i__ = 1; i__ <= i__1; ++i__) {
320 	k = contrl_1.order + i__;
321 	sum = 0.f;
322 	i__2 = contrl_1.order;
323 	for (j = 1; j <= i__2; ++j) {
324 	    sum += coef[j] * exc2[k - j - 1];
325 	}
326 	exc2[k - 1] = sum + exc2[k - 1];
327 	xssq += exc2[k - 1] * exc2[k - 1];
328     }
329 /*  Save filter history for next epoch */
330     i__1 = contrl_1.order;
331     for (i__ = 1; i__ <= i__1; ++i__) {
332 	exc[i__ - 1] = exc[*ip + i__ - 1];
333 	exc2[i__ - 1] = exc2[*ip + i__ - 1];
334     }
335 /*  Apply gain to match RMS */
336     r__1 = *rms * *rms;
337     ssq = r__1 * *ip;
338     gain = sqrt(ssq / xssq);
339     i__1 = *ip;
340     for (i__ = 1; i__ <= i__1; ++i__) {
341 	sout[i__] = gain * exc2[contrl_1.order + i__ - 1];
342     }
343     return 0;
344 } /* bsynz_ */
345