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				synced 2025-11-03 20:38:59 +00:00 
			
		
		
		
	
		
			
	
	
		
			701 lines
		
	
	
		
			20 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
		
		
			
		
	
	
			701 lines
		
	
	
		
			20 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
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								   /******************************************************************
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								       iLBC Speech Coder ANSI-C Source Code
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								       enhancer.c
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								       Copyright (C) The Internet Society (2004).
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								       All Rights Reserved.
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								   ******************************************************************/
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								   #include <math.h>
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								   #include <string.h>
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								   #include "iLBC_define.h"
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								   #include "constants.h"
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								   #include "filter.h"
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								   /*----------------------------------------------------------------*
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								    * Find index in array such that the array element with said
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								    * index is the element of said array closest to "value"
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								    * according to the squared-error criterion
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								    *---------------------------------------------------------------*/
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								   void NearestNeighbor(
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								       int   *index,   /* (o) index of array element closest
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								                              to value */
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								       float *array,   /* (i) data array */
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								       float value,/* (i) value */
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								       int arlength/* (i) dimension of data array */
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								   ){
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								       int i;
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								       float bestcrit,crit;
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								       crit=array[0]-value;
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								       bestcrit=crit*crit;
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								       *index=0;
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								       for (i=1; i<arlength; i++) {
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								           crit=array[i]-value;
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								           crit=crit*crit;
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								           if (crit<bestcrit) {
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								               bestcrit=crit;
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								               *index=i;
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								           }
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								       }
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								   }
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								   /*----------------------------------------------------------------*
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								    * compute cross correlation between sequences
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								    *---------------------------------------------------------------*/
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								   void mycorr1(
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								       float* corr,    /* (o) correlation of seq1 and seq2 */
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								       float* seq1,    /* (i) first sequence */
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								       int dim1,           /* (i) dimension first seq1 */
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								       const float *seq2,  /* (i) second sequence */
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								       int dim2        /* (i) dimension seq2 */
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								   ){
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								       int i,j;
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								       for (i=0; i<=dim1-dim2; i++) {
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								           corr[i]=0.0;
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								           for (j=0; j<dim2; j++) {
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								               corr[i] += seq1[i+j] * seq2[j];
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								           }
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								       }
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								   }
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								   /*----------------------------------------------------------------*
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								    * upsample finite array assuming zeros outside bounds
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								    *---------------------------------------------------------------*/
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								   void enh_upsample(
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								       float* useq1,   /* (o) upsampled output sequence */
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								       float* seq1,/* (i) unupsampled sequence */
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								       int dim1,       /* (i) dimension seq1 */
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								       int hfl         /* (i) polyphase filter length=2*hfl+1 */
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								   ){
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								       float *pu,*ps;
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								       int i,j,k,q,filterlength,hfl2;
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								       const float *polyp[ENH_UPS0]; /* pointers to
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								                                        polyphase columns */
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								       const float *pp;
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								       /* define pointers for filter */
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								       filterlength=2*hfl+1;
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								       if ( filterlength > dim1 ) {
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								           hfl2=(int) (dim1/2);
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								           for (j=0; j<ENH_UPS0; j++) {
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								               polyp[j]=polyphaserTbl+j*filterlength+hfl-hfl2;
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								           }
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								           hfl=hfl2;
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								           filterlength=2*hfl+1;
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								       }
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								       else {
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								           for (j=0; j<ENH_UPS0; j++) {
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								               polyp[j]=polyphaserTbl+j*filterlength;
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								           }
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								       }
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								       /* filtering: filter overhangs left side of sequence */
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								       pu=useq1;
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								       for (i=hfl; i<filterlength; i++) {
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								           for (j=0; j<ENH_UPS0; j++) {
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								               *pu=0.0;
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								               pp = polyp[j];
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								               ps = seq1+i;
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								               for (k=0; k<=i; k++) {
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								                   *pu += *ps-- * *pp++;
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								               }
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								               pu++;
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								           }
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								       }
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								       /* filtering: simple convolution=inner products */
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								       for (i=filterlength; i<dim1; i++) {
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								           for (j=0;j<ENH_UPS0; j++){
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								               *pu=0.0;
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								               pp = polyp[j];
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								               ps = seq1+i;
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								               for (k=0; k<filterlength; k++) {
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								                   *pu += *ps-- * *pp++;
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								               }
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								               pu++;
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								           }
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								       }
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								       /* filtering: filter overhangs right side of sequence */
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								       for (q=1; q<=hfl; q++) {
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								           for (j=0; j<ENH_UPS0; j++) {
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								               *pu=0.0;
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								               pp = polyp[j]+q;
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								               ps = seq1+dim1-1;
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								               for (k=0; k<filterlength-q; k++) {
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								                   *pu += *ps-- * *pp++;
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								               }
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								               pu++;
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								           }
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								       }
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								   }
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								   /*----------------------------------------------------------------*
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								    * find segment starting near idata+estSegPos that has highest
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								    * correlation with idata+centerStartPos through
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								    * idata+centerStartPos+ENH_BLOCKL-1 segment is found at a
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								    * resolution of ENH_UPSO times the original of the original
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								    * sampling rate
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								    *---------------------------------------------------------------*/
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								   void refiner(
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								       float *seg,         /* (o) segment array */
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								       float *updStartPos, /* (o) updated start point */
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								       float* idata,       /* (i) original data buffer */
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								       int idatal,         /* (i) dimension of idata */
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								       int centerStartPos, /* (i) beginning center segment */
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								       float estSegPos,/* (i) estimated beginning other segment */
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								       float period    /* (i) estimated pitch period */
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								   ){
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								       int estSegPosRounded,searchSegStartPos,searchSegEndPos,corrdim;
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								       int tloc,tloc2,i,st,en,fraction;
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								       float vect[ENH_VECTL],corrVec[ENH_CORRDIM],maxv;
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								       float corrVecUps[ENH_CORRDIM*ENH_UPS0];
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								       /* defining array bounds */
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								       estSegPosRounded=(int)(estSegPos - 0.5);
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								       searchSegStartPos=estSegPosRounded-ENH_SLOP;
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								       if (searchSegStartPos<0) {
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								           searchSegStartPos=0;
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								       }
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								       searchSegEndPos=estSegPosRounded+ENH_SLOP;
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								       if (searchSegEndPos+ENH_BLOCKL >= idatal) {
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								           searchSegEndPos=idatal-ENH_BLOCKL-1;
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								       }
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								       corrdim=searchSegEndPos-searchSegStartPos+1;
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								       /* compute upsampled correlation (corr33) and find
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								          location of max */
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								       mycorr1(corrVec,idata+searchSegStartPos,
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								           corrdim+ENH_BLOCKL-1,idata+centerStartPos,ENH_BLOCKL);
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								       enh_upsample(corrVecUps,corrVec,corrdim,ENH_FL0);
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								       tloc=0; maxv=corrVecUps[0];
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								       for (i=1; i<ENH_UPS0*corrdim; i++) {
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								           if (corrVecUps[i]>maxv) {
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								               tloc=i;
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								               maxv=corrVecUps[i];
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								           }
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								       }
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								       /* make vector can be upsampled without ever running outside
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								          bounds */
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								       *updStartPos= (float)searchSegStartPos +
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								           (float)tloc/(float)ENH_UPS0+(float)1.0;
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								       tloc2=(int)(tloc/ENH_UPS0);
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								       if (tloc>tloc2*ENH_UPS0) {
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								           tloc2++;
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								       }
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								       st=searchSegStartPos+tloc2-ENH_FL0;
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								       if (st<0) {
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								           memset(vect,0,-st*sizeof(float));
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								           memcpy(&vect[-st],idata, (ENH_VECTL+st)*sizeof(float));
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								       }
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								       else {
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								           en=st+ENH_VECTL;
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								           if (en>idatal) {
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								               memcpy(vect, &idata[st],
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								                   (ENH_VECTL-(en-idatal))*sizeof(float));
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								               memset(&vect[ENH_VECTL-(en-idatal)], 0,
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								                   (en-idatal)*sizeof(float));
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								           }
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								           else {
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								               memcpy(vect, &idata[st], ENH_VECTL*sizeof(float));
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								           }
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								       }
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								       fraction=tloc2*ENH_UPS0-tloc;
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								       /* compute the segment (this is actually a convolution) */
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								       mycorr1(seg,vect,ENH_VECTL,polyphaserTbl+(2*ENH_FL0+1)*fraction,
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								           2*ENH_FL0+1);
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								   }
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								   /*----------------------------------------------------------------*
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								    * find the smoothed output data
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								    *---------------------------------------------------------------*/
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								   void smath(
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								       float *odata,   /* (o) smoothed output */
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								       float *sseq,/* (i) said second sequence of waveforms */
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						||
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								       int hl,         /* (i) 2*hl+1 is sseq dimension */
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								       float alpha0/* (i) max smoothing energy fraction */
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								   ){
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								       int i,k;
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								 | 
							
								       float w00,w10,w11,A,B,C,*psseq,err,errs;
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						||
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								       float surround[BLOCKL_MAX]; /* shape contributed by other than
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								 | 
							
								                                      current */
							 | 
						||
| 
								 | 
							
								       float wt[2*ENH_HL+1];       /* waveform weighting to get
							 | 
						||
| 
								 | 
							
								                                      surround shape */
							 | 
						||
| 
								 | 
							
								       float denom;
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       /* create shape of contribution from all waveforms except the
							 | 
						||
| 
								 | 
							
								          current one */
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       for (i=1; i<=2*hl+1; i++) {
							 | 
						||
| 
								 | 
							
								           wt[i-1] = (float)0.5*(1 - (float)cos(2*PI*i/(2*hl+2)));
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								       wt[hl]=0.0; /* for clarity, not used */
							 | 
						||
| 
								 | 
							
								       for (i=0; i<ENH_BLOCKL; i++) {
							 | 
						||
| 
								 | 
							
								           surround[i]=sseq[i]*wt[0];
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       for (k=1; k<hl; k++) {
							 | 
						||
| 
								 | 
							
								           psseq=sseq+k*ENH_BLOCKL;
							 | 
						||
| 
								 | 
							
								           for(i=0;i<ENH_BLOCKL; i++) {
							 | 
						||
| 
								 | 
							
								               surround[i]+=psseq[i]*wt[k];
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								       for (k=hl+1; k<=2*hl; k++) {
							 | 
						||
| 
								 | 
							
								           psseq=sseq+k*ENH_BLOCKL;
							 | 
						||
| 
								 | 
							
								           for(i=0;i<ENH_BLOCKL; i++) {
							 | 
						||
| 
								 | 
							
								               surround[i]+=psseq[i]*wt[k];
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       /* compute some inner products */
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       w00 = w10 = w11 = 0.0;
							 | 
						||
| 
								 | 
							
								       psseq=sseq+hl*ENH_BLOCKL; /* current block  */
							 | 
						||
| 
								 | 
							
								       for (i=0; i<ENH_BLOCKL;i++) {
							 | 
						||
| 
								 | 
							
								           w00+=psseq[i]*psseq[i];
							 | 
						||
| 
								 | 
							
								           w11+=surround[i]*surround[i];
							 | 
						||
| 
								 | 
							
								           w10+=surround[i]*psseq[i];
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       if (fabs(w11) < 1.0) {
							 | 
						||
| 
								 | 
							
								           w11=1.0;
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								       C = (float)sqrt( w00/w11);
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       /* first try enhancement without power-constraint */
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       errs=0.0;
							 | 
						||
| 
								 | 
							
								       psseq=sseq+hl*ENH_BLOCKL;
							 | 
						||
| 
								 | 
							
								       for (i=0; i<ENH_BLOCKL; i++) {
							 | 
						||
| 
								 | 
							
								           odata[i]=C*surround[i];
							 | 
						||
| 
								 | 
							
								           err=psseq[i]-odata[i];
							 | 
						||
| 
								 | 
							
								           errs+=err*err;
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       /* if constraint violated by first try, add constraint */
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       if (errs > alpha0 * w00) {
							 | 
						||
| 
								 | 
							
								           if ( w00 < 1) {
							 | 
						||
| 
								 | 
							
								               w00=1;
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								           denom = (w11*w00-w10*w10)/(w00*w00);
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           if (denom > 0.0001) { /* eliminates numerical problems
							 | 
						||
| 
								 | 
							
								                                    for if smooth */
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								               A = (float)sqrt( (alpha0- alpha0*alpha0/4)/denom);
							 | 
						||
| 
								 | 
							
								               B = -alpha0/2 - A * w10/w00;
							 | 
						||
| 
								 | 
							
								               B = B+1;
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								           else { /* essentially no difference between cycles;
							 | 
						||
| 
								 | 
							
								                     smoothing not needed */
							 | 
						||
| 
								 | 
							
								               A= 0.0;
							 | 
						||
| 
								 | 
							
								               B= 1.0;
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           /* create smoothed sequence */
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           psseq=sseq+hl*ENH_BLOCKL;
							 | 
						||
| 
								 | 
							
								           for (i=0; i<ENH_BLOCKL; i++) {
							 | 
						||
| 
								 | 
							
								               odata[i]=A*surround[i]+B*psseq[i];
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								   }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								   /*----------------------------------------------------------------*
							 | 
						||
| 
								 | 
							
								    * get the pitch-synchronous sample sequence
							 | 
						||
| 
								 | 
							
								    *---------------------------------------------------------------*/
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								   void getsseq(
							 | 
						||
| 
								 | 
							
								       float *sseq,    /* (o) the pitch-synchronous sequence */
							 | 
						||
| 
								 | 
							
								       float *idata,       /* (i) original data */
							 | 
						||
| 
								 | 
							
								       int idatal,         /* (i) dimension of data */
							 | 
						||
| 
								 | 
							
								       int centerStartPos, /* (i) where current block starts */
							 | 
						||
| 
								 | 
							
								       float *period,      /* (i) rough-pitch-period array */
							 | 
						||
| 
								 | 
							
								       float *plocs,       /* (i) where periods of period array
							 | 
						||
| 
								 | 
							
								                                  are taken */
							 | 
						||
| 
								 | 
							
								       int periodl,    /* (i) dimension period array */
							 | 
						||
| 
								 | 
							
								       int hl              /* (i) 2*hl+1 is the number of sequences */
							 | 
						||
| 
								 | 
							
								   ){
							 | 
						||
| 
								 | 
							
								       int i,centerEndPos,q;
							 | 
						||
| 
								 | 
							
								       float blockStartPos[2*ENH_HL+1];
							 | 
						||
| 
								 | 
							
								       int lagBlock[2*ENH_HL+1];
							 | 
						||
| 
								 | 
							
								       float plocs2[ENH_PLOCSL];
							 | 
						||
| 
								 | 
							
								       float *psseq;
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       centerEndPos=centerStartPos+ENH_BLOCKL-1;
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       /* present */
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       NearestNeighbor(lagBlock+hl,plocs,
							 | 
						||
| 
								 | 
							
								           (float)0.5*(centerStartPos+centerEndPos),periodl);
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       blockStartPos[hl]=(float)centerStartPos;
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       psseq=sseq+ENH_BLOCKL*hl;
							 | 
						||
| 
								 | 
							
								       memcpy(psseq, idata+centerStartPos, ENH_BLOCKL*sizeof(float));
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       /* past */
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       for (q=hl-1; q>=0; q--) {
							 | 
						||
| 
								 | 
							
								           blockStartPos[q]=blockStartPos[q+1]-period[lagBlock[q+1]];
							 | 
						||
| 
								 | 
							
								           NearestNeighbor(lagBlock+q,plocs,
							 | 
						||
| 
								 | 
							
								               blockStartPos[q]+
							 | 
						||
| 
								 | 
							
								               ENH_BLOCKL_HALF-period[lagBlock[q+1]], periodl);
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           if (blockStartPos[q]-ENH_OVERHANG>=0) {
							 | 
						||
| 
								 | 
							
								               refiner(sseq+q*ENH_BLOCKL, blockStartPos+q, idata,
							 | 
						||
| 
								 | 
							
								                   idatal, centerStartPos, blockStartPos[q],
							 | 
						||
| 
								 | 
							
								                   period[lagBlock[q+1]]);
							 | 
						||
| 
								 | 
							
								           } else {
							 | 
						||
| 
								 | 
							
								               psseq=sseq+q*ENH_BLOCKL;
							 | 
						||
| 
								 | 
							
								               memset(psseq, 0, ENH_BLOCKL*sizeof(float));
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       /* future */
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       for (i=0; i<periodl; i++) {
							 | 
						||
| 
								 | 
							
								           plocs2[i]=plocs[i]-period[i];
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								       for (q=hl+1; q<=2*hl; q++) {
							 | 
						||
| 
								 | 
							
								           NearestNeighbor(lagBlock+q,plocs2,
							 | 
						||
| 
								 | 
							
								               blockStartPos[q-1]+ENH_BLOCKL_HALF,periodl);
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           blockStartPos[q]=blockStartPos[q-1]+period[lagBlock[q]];
							 | 
						||
| 
								 | 
							
								           if (blockStartPos[q]+ENH_BLOCKL+ENH_OVERHANG<idatal) {
							 | 
						||
| 
								 | 
							
								               refiner(sseq+ENH_BLOCKL*q, blockStartPos+q, idata,
							 | 
						||
| 
								 | 
							
								                   idatal, centerStartPos, blockStartPos[q],
							 | 
						||
| 
								 | 
							
								                   period[lagBlock[q]]);
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								           else {
							 | 
						||
| 
								 | 
							
								               psseq=sseq+q*ENH_BLOCKL;
							 | 
						||
| 
								 | 
							
								               memset(psseq, 0, ENH_BLOCKL*sizeof(float));
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								   }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								   /*----------------------------------------------------------------*
							 | 
						||
| 
								 | 
							
								    * perform enhancement on idata+centerStartPos through
							 | 
						||
| 
								 | 
							
								    * idata+centerStartPos+ENH_BLOCKL-1
							 | 
						||
| 
								 | 
							
								    *---------------------------------------------------------------*/
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								   void enhancer(
							 | 
						||
| 
								 | 
							
								       float *odata,       /* (o) smoothed block, dimension blockl */
							 | 
						||
| 
								 | 
							
								       float *idata,       /* (i) data buffer used for enhancing */
							 | 
						||
| 
								 | 
							
								       int idatal,         /* (i) dimension idata */
							 | 
						||
| 
								 | 
							
								       int centerStartPos, /* (i) first sample current block
							 | 
						||
| 
								 | 
							
								                                  within idata */
							 | 
						||
| 
								 | 
							
								       float alpha0,       /* (i) max correction-energy-fraction
							 | 
						||
| 
								 | 
							
								                                 (in [0,1]) */
							 | 
						||
| 
								 | 
							
								       float *period,      /* (i) pitch period array */
							 | 
						||
| 
								 | 
							
								       float *plocs,       /* (i) locations where period array
							 | 
						||
| 
								 | 
							
								                                  values valid */
							 | 
						||
| 
								 | 
							
								       int periodl         /* (i) dimension of period and plocs */
							 | 
						||
| 
								 | 
							
								   ){
							 | 
						||
| 
								 | 
							
								       float sseq[(2*ENH_HL+1)*ENH_BLOCKL];
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       /* get said second sequence of segments */
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       getsseq(sseq,idata,idatal,centerStartPos,period,
							 | 
						||
| 
								 | 
							
								           plocs,periodl,ENH_HL);
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       /* compute the smoothed output from said second sequence */
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       smath(odata,sseq,ENH_HL,alpha0);
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								   }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								   /*----------------------------------------------------------------*
							 | 
						||
| 
								 | 
							
								    * cross correlation
							 | 
						||
| 
								 | 
							
								    *---------------------------------------------------------------*/
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								   float xCorrCoef(
							 | 
						||
| 
								 | 
							
								       float *target,      /* (i) first array */
							 | 
						||
| 
								 | 
							
								       float *regressor,   /* (i) second array */
							 | 
						||
| 
								 | 
							
								       int subl        /* (i) dimension arrays */
							 | 
						||
| 
								 | 
							
								   ){
							 | 
						||
| 
								 | 
							
								       int i;
							 | 
						||
| 
								 | 
							
								       float ftmp1, ftmp2;
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       ftmp1 = 0.0;
							 | 
						||
| 
								 | 
							
								       ftmp2 = 0.0;
							 | 
						||
| 
								 | 
							
								       for (i=0; i<subl; i++) {
							 | 
						||
| 
								 | 
							
								           ftmp1 += target[i]*regressor[i];
							 | 
						||
| 
								 | 
							
								           ftmp2 += regressor[i]*regressor[i];
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       if (ftmp1 > 0.0) {
							 | 
						||
| 
								 | 
							
								           return (float)(ftmp1*ftmp1/ftmp2);
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       else {
							 | 
						||
| 
								 | 
							
								           return (float)0.0;
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								   }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								   /*----------------------------------------------------------------*
							 | 
						||
| 
								 | 
							
								    * interface for enhancer
							 | 
						||
| 
								 | 
							
								    *---------------------------------------------------------------*/
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								   int enhancerInterface(
							 | 
						||
| 
								 | 
							
								       float *out,                     /* (o) enhanced signal */
							 | 
						||
| 
								 | 
							
								       float *in,                      /* (i) unenhanced signal */
							 | 
						||
| 
								 | 
							
								       iLBC_Dec_Inst_t *iLBCdec_inst   /* (i) buffers etc */
							 | 
						||
| 
								 | 
							
								   ){
							 | 
						||
| 
								 | 
							
								       float *enh_buf, *enh_period;
							 | 
						||
| 
								 | 
							
								       int iblock, isample;
							 | 
						||
| 
								 | 
							
								       int lag=0, ilag, i, ioffset;
							 | 
						||
| 
								 | 
							
								       float cc, maxcc;
							 | 
						||
| 
								 | 
							
								       float ftmp1, ftmp2;
							 | 
						||
| 
								 | 
							
								       float *inPtr, *enh_bufPtr1, *enh_bufPtr2;
							 | 
						||
| 
								 | 
							
								       float plc_pred[ENH_BLOCKL];
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       float lpState[6], downsampled[(ENH_NBLOCKS*ENH_BLOCKL+120)/2];
							 | 
						||
| 
								 | 
							
								       int inLen=ENH_NBLOCKS*ENH_BLOCKL+120;
							 | 
						||
| 
								 | 
							
								       int start, plc_blockl, inlag;
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       enh_buf=iLBCdec_inst->enh_buf;
							 | 
						||
| 
								 | 
							
								       enh_period=iLBCdec_inst->enh_period;
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       memmove(enh_buf, &enh_buf[iLBCdec_inst->blockl],
							 | 
						||
| 
								 | 
							
								           (ENH_BUFL-iLBCdec_inst->blockl)*sizeof(float));
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       memcpy(&enh_buf[ENH_BUFL-iLBCdec_inst->blockl], in,
							 | 
						||
| 
								 | 
							
								           iLBCdec_inst->blockl*sizeof(float));
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       if (iLBCdec_inst->mode==30)
							 | 
						||
| 
								 | 
							
								           plc_blockl=ENH_BLOCKL;
							 | 
						||
| 
								 | 
							
								       else
							 | 
						||
| 
								 | 
							
								           plc_blockl=40;
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       /* when 20 ms frame, move processing one block */
							 | 
						||
| 
								 | 
							
								       ioffset=0;
							 | 
						||
| 
								 | 
							
								       if (iLBCdec_inst->mode==20) ioffset=1;
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       i=3-ioffset;
							 | 
						||
| 
								 | 
							
								       memmove(enh_period, &enh_period[i],
							 | 
						||
| 
								 | 
							
								           (ENH_NBLOCKS_TOT-i)*sizeof(float));
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       /* Set state information to the 6 samples right before
							 | 
						||
| 
								 | 
							
								          the samples to be downsampled. */
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       memcpy(lpState,
							 | 
						||
| 
								 | 
							
								           enh_buf+(ENH_NBLOCKS_EXTRA+ioffset)*ENH_BLOCKL-126,
							 | 
						||
| 
								 | 
							
								           6*sizeof(float));
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       /* Down sample a factor 2 to save computations */
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       DownSample(enh_buf+(ENH_NBLOCKS_EXTRA+ioffset)*ENH_BLOCKL-120,
							 | 
						||
| 
								 | 
							
								                   lpFilt_coefsTbl, inLen-ioffset*ENH_BLOCKL,
							 | 
						||
| 
								 | 
							
								                   lpState, downsampled);
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       /* Estimate the pitch in the down sampled domain. */
							 | 
						||
| 
								 | 
							
								       for (iblock = 0; iblock<ENH_NBLOCKS-ioffset; iblock++) {
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           lag = 10;
							 | 
						||
| 
								 | 
							
								           maxcc = xCorrCoef(downsampled+60+iblock*
							 | 
						||
| 
								 | 
							
								               ENH_BLOCKL_HALF, downsampled+60+iblock*
							 | 
						||
| 
								 | 
							
								               ENH_BLOCKL_HALF-lag, ENH_BLOCKL_HALF);
							 | 
						||
| 
								 | 
							
								           for (ilag=11; ilag<60; ilag++) {
							 | 
						||
| 
								 | 
							
								               cc = xCorrCoef(downsampled+60+iblock*
							 | 
						||
| 
								 | 
							
								                   ENH_BLOCKL_HALF, downsampled+60+iblock*
							 | 
						||
| 
								 | 
							
								                   ENH_BLOCKL_HALF-ilag, ENH_BLOCKL_HALF);
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								               if (cc > maxcc) {
							 | 
						||
| 
								 | 
							
								                   maxcc = cc;
							 | 
						||
| 
								 | 
							
								                   lag = ilag;
							 | 
						||
| 
								 | 
							
								               }
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           /* Store the estimated lag in the non-downsampled domain */
							 | 
						||
| 
								 | 
							
								           enh_period[iblock+ENH_NBLOCKS_EXTRA+ioffset] = (float)lag*2;
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       /* PLC was performed on the previous packet */
							 | 
						||
| 
								 | 
							
								       if (iLBCdec_inst->prev_enh_pl==1) {
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           inlag=(int)enh_period[ENH_NBLOCKS_EXTRA+ioffset];
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           lag = inlag-1;
							 | 
						||
| 
								 | 
							
								           maxcc = xCorrCoef(in, in+lag, plc_blockl);
							 | 
						||
| 
								 | 
							
								           for (ilag=inlag; ilag<=inlag+1; ilag++) {
							 | 
						||
| 
								 | 
							
								               cc = xCorrCoef(in, in+ilag, plc_blockl);
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								               if (cc > maxcc) {
							 | 
						||
| 
								 | 
							
								                   maxcc = cc;
							 | 
						||
| 
								 | 
							
								                   lag = ilag;
							 | 
						||
| 
								 | 
							
								               }
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           enh_period[ENH_NBLOCKS_EXTRA+ioffset-1]=(float)lag;
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           /* compute new concealed residual for the old lookahead,
							 | 
						||
| 
								 | 
							
								              mix the forward PLC with a backward PLC from
							 | 
						||
| 
								 | 
							
								              the new frame */
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           inPtr=&in[lag-1];
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           enh_bufPtr1=&plc_pred[plc_blockl-1];
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           if (lag>plc_blockl) {
							 | 
						||
| 
								 | 
							
								               start=plc_blockl;
							 | 
						||
| 
								 | 
							
								           } else {
							 | 
						||
| 
								 | 
							
								               start=lag;
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           for (isample = start; isample>0; isample--) {
							 | 
						||
| 
								 | 
							
								               *enh_bufPtr1-- = *inPtr--;
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           enh_bufPtr2=&enh_buf[ENH_BUFL-1-iLBCdec_inst->blockl];
							 | 
						||
| 
								 | 
							
								           for (isample = (plc_blockl-1-lag); isample>=0; isample--) {
							 | 
						||
| 
								 | 
							
								               *enh_bufPtr1-- = *enh_bufPtr2--;
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           /* limit energy change */
							 | 
						||
| 
								 | 
							
								           ftmp2=0.0;
							 | 
						||
| 
								 | 
							
								           ftmp1=0.0;
							 | 
						||
| 
								 | 
							
								           for (i=0;i<plc_blockl;i++) {
							 | 
						||
| 
								 | 
							
								               ftmp2+=enh_buf[ENH_BUFL-1-iLBCdec_inst->blockl-i]*
							 | 
						||
| 
								 | 
							
								                   enh_buf[ENH_BUFL-1-iLBCdec_inst->blockl-i];
							 | 
						||
| 
								 | 
							
								               ftmp1+=plc_pred[i]*plc_pred[i];
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								           ftmp1=(float)sqrt(ftmp1/(float)plc_blockl);
							 | 
						||
| 
								 | 
							
								           ftmp2=(float)sqrt(ftmp2/(float)plc_blockl);
							 | 
						||
| 
								 | 
							
								           if (ftmp1>(float)2.0*ftmp2 && ftmp1>0.0) {
							 | 
						||
| 
								 | 
							
								               for (i=0;i<plc_blockl-10;i++) {
							 | 
						||
| 
								 | 
							
								                   plc_pred[i]*=(float)2.0*ftmp2/ftmp1;
							 | 
						||
| 
								 | 
							
								               }
							 | 
						||
| 
								 | 
							
								               for (i=plc_blockl-10;i<plc_blockl;i++) {
							 | 
						||
| 
								 | 
							
								                   plc_pred[i]*=(float)(i-plc_blockl+10)*
							 | 
						||
| 
								 | 
							
								                       ((float)1.0-(float)2.0*ftmp2/ftmp1)/(float)(10)+
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								                       (float)2.0*ftmp2/ftmp1;
							 | 
						||
| 
								 | 
							
								               }
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								           enh_bufPtr1=&enh_buf[ENH_BUFL-1-iLBCdec_inst->blockl];
							 | 
						||
| 
								 | 
							
								           for (i=0; i<plc_blockl; i++) {
							 | 
						||
| 
								 | 
							
								               ftmp1 = (float) (i+1) / (float) (plc_blockl+1);
							 | 
						||
| 
								 | 
							
								               *enh_bufPtr1 *= ftmp1;
							 | 
						||
| 
								 | 
							
								               *enh_bufPtr1 += ((float)1.0-ftmp1)*
							 | 
						||
| 
								 | 
							
								                                   plc_pred[plc_blockl-1-i];
							 | 
						||
| 
								 | 
							
								               enh_bufPtr1--;
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       if (iLBCdec_inst->mode==20) {
							 | 
						||
| 
								 | 
							
								           /* Enhancer with 40 samples delay */
							 | 
						||
| 
								 | 
							
								           for (iblock = 0; iblock<2; iblock++) {
							 | 
						||
| 
								 | 
							
								               enhancer(out+iblock*ENH_BLOCKL, enh_buf,
							 | 
						||
| 
								 | 
							
								                   ENH_BUFL, (5+iblock)*ENH_BLOCKL+40,
							 | 
						||
| 
								 | 
							
								                   ENH_ALPHA0, enh_period, enh_plocsTbl,
							 | 
						||
| 
								 | 
							
								                       ENH_NBLOCKS_TOT);
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								       } else if (iLBCdec_inst->mode==30) {
							 | 
						||
| 
								 | 
							
								           /* Enhancer with 80 samples delay */
							 | 
						||
| 
								 | 
							
								           for (iblock = 0; iblock<3; iblock++) {
							 | 
						||
| 
								 | 
							
								               enhancer(out+iblock*ENH_BLOCKL, enh_buf,
							 | 
						||
| 
								 | 
							
								                   ENH_BUFL, (4+iblock)*ENH_BLOCKL,
							 | 
						||
| 
								 | 
							
								                   ENH_ALPHA0, enh_period, enh_plocsTbl,
							 | 
						||
| 
								 | 
							
								                       ENH_NBLOCKS_TOT);
							 | 
						||
| 
								 | 
							
								           }
							 | 
						||
| 
								 | 
							
								       }
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								       return (lag*2);
							 | 
						||
| 
								 | 
							
								   }
							 |