Diff for /imach/src/imach.c between versions 1.8 and 1.76

version 1.8, 2001/05/02 17:54:31 version 1.76, 2003/05/16 10:44:42
Line 1 Line 1
      /* $Id$
 /*********************** Imach **************************************             Interpolated Markov Chain
   This program computes Healthy Life Expectancies from cross-longitudinal  
   data. Cross-longitudinal consist in a first survey ("cross") where    Short summary of the programme:
   individuals from different ages are interviewed on their health status    
   or degree of  disability. At least a second wave of interviews    This program computes Healthy Life Expectancies from
   ("longitudinal") should  measure each new individual health status.    cross-longitudinal data. Cross-longitudinal data consist in: -1- a
   Health expectancies are computed from the transistions observed between    first survey ("cross") where individuals from different ages are
   waves and are computed for each degree of severity of disability (number    interviewed on their health status or degree of disability (in the
   of life states). More degrees you consider, more time is necessary to    case of a health survey which is our main interest) -2- at least a
   reach the Maximum Likelihood of the parameters involved in the model.    second wave of interviews ("longitudinal") which measure each change
   The simplest model is the multinomial logistic model where pij is    (if any) in individual health status.  Health expectancies are
   the probabibility to be observed in state j at the second wave conditional    computed from the time spent in each health state according to a
   to be observed in state i at the first wave. Therefore the model is:    model. More health states you consider, more time is necessary to reach the
   log(pij/pii)= aij + bij*age+ cij*sex + etc , where 'age' is age and 'sex'    Maximum Likelihood of the parameters involved in the model.  The
   is a covariate. If you want to have a more complex model than "constant and    simplest model is the multinomial logistic model where pij is the
   age", you should modify the program where the markup    probability to be observed in state j at the second wave
     *Covariates have to be included here again* invites you to do it.    conditional to be observed in state i at the first wave. Therefore
   More covariates you add, less is the speed of the convergence.    the model is: log(pij/pii)= aij + bij*age+ cij*sex + etc , where
     'age' is age and 'sex' is a covariate. If you want to have a more
   The advantage that this computer programme claims, comes from that if the    complex model than "constant and age", you should modify the program
   delay between waves is not identical for each individual, or if some    where the markup *Covariates have to be included here again* invites
   individual missed an interview, the information is not rounded or lost, but    you to do it.  More covariates you add, slower the
   taken into account using an interpolation or extrapolation.    convergence.
   hPijx is the probability to be  
   observed in state i at age x+h conditional to the observed state i at age    The advantage of this computer programme, compared to a simple
   x. The delay 'h' can be split into an exact number (nh*stepm) of    multinomial logistic model, is clear when the delay between waves is not
   unobserved intermediate  states. This elementary transition (by month or    identical for each individual. Also, if a individual missed an
   quarter trimester, semester or year) is model as a multinomial logistic.    intermediate interview, the information is lost, but taken into
   The hPx matrix is simply the matrix product of nh*stepm elementary matrices    account using an interpolation or extrapolation.  
   and the contribution of each individual to the likelihood is simply hPijx.  
     hPijx is the probability to be observed in state i at age x+h
   Also this programme outputs the covariance matrix of the parameters but also    conditional to the observed state i at age x. The delay 'h' can be
   of the life expectancies. It also computes the prevalence limits.    split into an exact number (nh*stepm) of unobserved intermediate
      states. This elementary transition (by month, quarter,
   Authors: Nicolas Brouard (brouard@ined.fr) and Agnès Lièvre (lievre@ined.fr).    semester or year) is modelled as a multinomial logistic.  The hPx
            Institut national d'études démographiques, Paris.    matrix is simply the matrix product of nh*stepm elementary matrices
   This software have been partly granted by Euro-REVES, a concerted action    and the contribution of each individual to the likelihood is simply
   from the European Union.    hPijx.
   It is copyrighted identically to a GNU software product, ie programme and  
   software can be distributed freely for non commercial use. Latest version    Also this programme outputs the covariance matrix of the parameters but also
   can be accessed at http://euroreves.ined.fr/imach .    of the life expectancies. It also computes the stable prevalence. 
   **********************************************************************/    
      Authors: Nicolas Brouard (brouard@ined.fr) and Agnès Lièvre (lievre@ined.fr).
 #include <math.h>             Institut national d'études démographiques, Paris.
 #include <stdio.h>    This software have been partly granted by Euro-REVES, a concerted action
 #include <stdlib.h>    from the European Union.
 #include <unistd.h>    It is copyrighted identically to a GNU software product, ie programme and
     software can be distributed freely for non commercial use. Latest version
 #define MAXLINE 256    can be accessed at http://euroreves.ined.fr/imach .
 #define FILENAMELENGTH 80  
 /*#define DEBUG*/    Help to debug: LD_PRELOAD=/usr/local/lib/libnjamd.so ./imach foo.imach
 #define windows    or better on gdb : set env LD_PRELOAD=/usr/local/lib/libnjamd.so
 #define GLOCK_ERROR_NOPATH              -1      /* empty path */    
 #define GLOCK_ERROR_GETCWD              -2      /* cannot get cwd */    **********************************************************************/
   /*
 #define MAXPARM 30 /* Maximum number of parameters for the optimization */    main
 #define NPARMAX 64 /* (nlstate+ndeath-1)*nlstate*ncovmodel */    read parameterfile
     read datafile
 #define NINTERVMAX 8    concatwav
 #define NLSTATEMAX 8 /* Maximum number of live states (for func) */    if (mle >= 1)
 #define NDEATHMAX 8 /* Maximum number of dead states (for func) */      mlikeli
 #define NCOVMAX 8 /* Maximum number of covariates */    print results files
 #define MAXN 20000    if mle==1 
 #define YEARM 12. /* Number of months per year */       computes hessian
 #define AGESUP 130    read end of parameter file: agemin, agemax, bage, fage, estepm
 #define AGEBASE 40        begin-prev-date,...
     open gnuplot file
     open html file
 int nvar;    stable prevalence
 int cptcovn, cptcovage=0, cptcoveff=0,cptcov;     for age prevalim()
 int npar=NPARMAX;    h Pij x
 int nlstate=2; /* Number of live states */    variance of p varprob
 int ndeath=1; /* Number of dead states */    forecasting if prevfcast==1 prevforecast call prevalence()
 int ncovmodel, ncov;     /* Total number of covariables including constant a12*1 +b12*x ncovmodel=2 */    health expectancies
     Variance-covariance of DFLE
 int *wav; /* Number of waves for this individuual 0 is possible */    prevalence()
 int maxwav; /* Maxim number of waves */     movingaverage()
 int jmin, jmax; /* min, max spacing between 2 waves */    varevsij() 
 int mle, weightopt;    if popbased==1 varevsij(,popbased)
 int **mw; /* mw[mi][i] is number of the mi wave for this individual */    total life expectancies
 int **dh; /* dh[mi][i] is number of steps between mi,mi+1 for this individual */    Variance of stable prevalence
 double jmean; /* Mean space between 2 waves */   end
 double **oldm, **newm, **savm; /* Working pointers to matrices */  */
 double **oldms, **newms, **savms; /* Fixed working pointers to matrices */  
 FILE *fic,*ficpar, *ficparo,*ficres,  *ficrespl, *ficrespij, *ficrest;  
 FILE *ficgp, *fichtm;  
 FILE *ficreseij;   
   char filerese[FILENAMELENGTH];  #include <math.h>
  FILE  *ficresvij;  #include <stdio.h>
   char fileresv[FILENAMELENGTH];  #include <stdlib.h>
  FILE  *ficresvpl;  #include <unistd.h>
   char fileresvpl[FILENAMELENGTH];  
   #define MAXLINE 256
 #define NR_END 1  #define GNUPLOTPROGRAM "gnuplot"
 #define FREE_ARG char*  /*#define GNUPLOTPROGRAM "..\\gp37mgw\\wgnuplot"*/
 #define FTOL 1.0e-10  #define FILENAMELENGTH 80
   /*#define DEBUG*/
 #define NRANSI  #define windows
 #define ITMAX 200  #define GLOCK_ERROR_NOPATH              -1      /* empty path */
   #define GLOCK_ERROR_GETCWD              -2      /* cannot get cwd */
 #define TOL 2.0e-4  
   #define MAXPARM 30 /* Maximum number of parameters for the optimization */
 #define CGOLD 0.3819660  #define NPARMAX 64 /* (nlstate+ndeath-1)*nlstate*ncovmodel */
 #define ZEPS 1.0e-10  
 #define SHFT(a,b,c,d) (a)=(b);(b)=(c);(c)=(d);  #define NINTERVMAX 8
   #define NLSTATEMAX 8 /* Maximum number of live states (for func) */
 #define GOLD 1.618034  #define NDEATHMAX 8 /* Maximum number of dead states (for func) */
 #define GLIMIT 100.0  #define NCOVMAX 8 /* Maximum number of covariates */
 #define TINY 1.0e-20  #define MAXN 20000
   #define YEARM 12. /* Number of months per year */
 static double maxarg1,maxarg2;  #define AGESUP 130
 #define FMAX(a,b) (maxarg1=(a),maxarg2=(b),(maxarg1)>(maxarg2)? (maxarg1):(maxarg2))  #define AGEBASE 40
 #define FMIN(a,b) (maxarg1=(a),maxarg2=(b),(maxarg1)<(maxarg2)? (maxarg1):(maxarg2))  #ifdef windows
    #define DIRSEPARATOR '\\'
 #define SIGN(a,b) ((b)>0.0 ? fabs(a) : -fabs(a))  #define ODIRSEPARATOR '/'
 #define rint(a) floor(a+0.5)  #else
   #define DIRSEPARATOR '/'
 static double sqrarg;  #define ODIRSEPARATOR '\\'
 #define SQR(a) ((sqrarg=(a)) == 0.0 ? 0.0 :sqrarg*sqrarg)  #endif
 #define SWAP(a,b) {temp=(a);(a)=(b);(b)=temp;}  
   char version[80]="Imach version 0.95a, May 2003, INED-EUROREVES ";
 int imx;  int erreur; /* Error number */
 int stepm;  int nvar;
 /* Stepm, step in month: minimum step interpolation*/  int cptcovn=0, cptcovage=0, cptcoveff=0,cptcov;
   int npar=NPARMAX;
 int m,nb;  int nlstate=2; /* Number of live states */
 int *num, firstpass=0, lastpass=4,*cod, *ncodemax, *Tage;  int ndeath=1; /* Number of dead states */
 double **agev,*moisnais, *annais, *moisdc, *andc,**mint, **anint;  int ncovmodel, ncovcol;     /* Total number of covariables including constant a12*1 +b12*x ncovmodel=2 */
 double **pmmij;  int popbased=0;
   
 double *weight;  int *wav; /* Number of waves for this individuual 0 is possible */
 int **s; /* Status */  int maxwav; /* Maxim number of waves */
 double *agedc, **covar, idx;  int jmin, jmax; /* min, max spacing between 2 waves */
 int **nbcode, *Tcode, *Tvar, **codtab, **Tvard, *Tprod, cptcovprod, *Tvaraff;  int mle, weightopt;
   int **mw; /* mw[mi][i] is number of the mi wave for this individual */
 double ftol=FTOL; /* Tolerance for computing Max Likelihood */  int **dh; /* dh[mi][i] is number of steps between mi,mi+1 for this individual */
 double ftolhess; /* Tolerance for computing hessian */  int **bh; /* bh[mi][i] is the bias (+ or -) for this individual if the delay between
              * wave mi and wave mi+1 is not an exact multiple of stepm. */
 /**************** split *************************/  double jmean; /* Mean space between 2 waves */
 static  int split( char *path, char *dirc, char *name )  double **oldm, **newm, **savm; /* Working pointers to matrices */
 {  double **oldms, **newms, **savms; /* Fixed working pointers to matrices */
    char *s;                             /* pointer */  FILE *fic,*ficpar, *ficparo,*ficres,  *ficrespl, *ficrespij, *ficrest,*ficresf,*ficrespop;
    int  l1, l2;                         /* length counters */  FILE *ficlog, *ficrespow;
   FILE *ficgp,*ficresprob,*ficpop, *ficresprobcov, *ficresprobcor;
    l1 = strlen( path );                 /* length of path */  FILE *ficresprobmorprev;
    if ( l1 == 0 ) return( GLOCK_ERROR_NOPATH );  FILE *fichtm; /* Html File */
    s = strrchr( path, '\\' );           /* find last / */  FILE *ficreseij;
    if ( s == NULL ) {                   /* no directory, so use current */  char filerese[FILENAMELENGTH];
 #if     defined(__bsd__)                /* get current working directory */  FILE  *ficresvij;
       extern char       *getwd( );  char fileresv[FILENAMELENGTH];
   FILE  *ficresvpl;
       if ( getwd( dirc ) == NULL ) {  char fileresvpl[FILENAMELENGTH];
 #else  char title[MAXLINE];
       extern char       *getcwd( );  char optionfile[FILENAMELENGTH], datafile[FILENAMELENGTH],  filerespl[FILENAMELENGTH];
   char optionfilext[10], optionfilefiname[FILENAMELENGTH], plotcmd[FILENAMELENGTH];
       if ( getcwd( dirc, FILENAME_MAX ) == NULL ) {  
 #endif  char fileres[FILENAMELENGTH], filerespij[FILENAMELENGTH], filereso[FILENAMELENGTH], rfileres[FILENAMELENGTH];
          return( GLOCK_ERROR_GETCWD );  char filelog[FILENAMELENGTH]; /* Log file */
       }  char filerest[FILENAMELENGTH];
       strcpy( name, path );             /* we've got it */  char fileregp[FILENAMELENGTH];
    } else {                             /* strip direcotry from path */  char popfile[FILENAMELENGTH];
       s++;                              /* after this, the filename */  
       l2 = strlen( s );                 /* length of filename */  char optionfilegnuplot[FILENAMELENGTH], optionfilehtm[FILENAMELENGTH];
       if ( l2 == 0 ) return( GLOCK_ERROR_NOPATH );  
       strcpy( name, s );                /* save file name */  #define NR_END 1
       strncpy( dirc, path, l1 - l2 );   /* now the directory */  #define FREE_ARG char*
       dirc[l1-l2] = 0;                  /* add zero */  #define FTOL 1.0e-10
    }  
    l1 = strlen( dirc );                 /* length of directory */  #define NRANSI 
    if ( dirc[l1-1] != '\\' ) { dirc[l1] = '\\'; dirc[l1+1] = 0; }  #define ITMAX 200 
    return( 0 );                         /* we're done */  
 }  #define TOL 2.0e-4 
   
   #define CGOLD 0.3819660 
 /******************************************/  #define ZEPS 1.0e-10 
   #define SHFT(a,b,c,d) (a)=(b);(b)=(c);(c)=(d); 
 void replace(char *s, char*t)  
 {  #define GOLD 1.618034 
   int i;  #define GLIMIT 100.0 
   int lg=20;  #define TINY 1.0e-20 
   i=0;  
   lg=strlen(t);  static double maxarg1,maxarg2;
   for(i=0; i<= lg; i++) {  #define FMAX(a,b) (maxarg1=(a),maxarg2=(b),(maxarg1)>(maxarg2)? (maxarg1):(maxarg2))
     (s[i] = t[i]);  #define FMIN(a,b) (maxarg1=(a),maxarg2=(b),(maxarg1)<(maxarg2)? (maxarg1):(maxarg2))
     if (t[i]== '\\') s[i]='/';    
   }  #define SIGN(a,b) ((b)>0.0 ? fabs(a) : -fabs(a))
 }  #define rint(a) floor(a+0.5)
   
 int nbocc(char *s, char occ)  static double sqrarg;
 {  #define SQR(a) ((sqrarg=(a)) == 0.0 ? 0.0 :sqrarg*sqrarg)
   int i,j=0;  #define SWAP(a,b) {temp=(a);(a)=(b);(b)=temp;} 
   int lg=20;  
   i=0;  int imx; 
   lg=strlen(s);  int stepm;
   for(i=0; i<= lg; i++) {  /* Stepm, step in month: minimum step interpolation*/
   if  (s[i] == occ ) j++;  
   }  int estepm;
   return j;  /* Estepm, step in month to interpolate survival function in order to approximate Life Expectancy*/
 }  
   int m,nb;
 void cutv(char *u,char *v, char*t, char occ)  int *num, firstpass=0, lastpass=4,*cod, *ncodemax, *Tage;
 {  double **agev,*moisnais, *annais, *moisdc, *andc,**mint, **anint;
   int i,lg,j,p=0;  double **pmmij, ***probs;
   i=0;  double dateintmean=0;
   for(j=0; j<=strlen(t)-1; j++) {  
     if((t[j]!= occ) && (t[j+1]== occ)) p=j+1;  double *weight;
   }  int **s; /* Status */
   double *agedc, **covar, idx;
   lg=strlen(t);  int **nbcode, *Tcode, *Tvar, **codtab, **Tvard, *Tprod, cptcovprod, *Tvaraff;
   for(j=0; j<p; j++) {  
     (u[j] = t[j]);  double ftol=FTOL; /* Tolerance for computing Max Likelihood */
   }  double ftolhess; /* Tolerance for computing hessian */
      u[p]='\0';  
   /**************** split *************************/
    for(j=0; j<= lg; j++) {  static  int split( char *path, char *dirc, char *name, char *ext, char *finame )
     if (j>=(p+1))(v[j-p-1] = t[j]);  {
   }    char  *ss;                            /* pointer */
 }    int   l1, l2;                         /* length counters */
   
 /********************** nrerror ********************/    l1 = strlen(path );                   /* length of path */
     if ( l1 == 0 ) return( GLOCK_ERROR_NOPATH );
 void nrerror(char error_text[])    ss= strrchr( path, DIRSEPARATOR );            /* find last / */
 {    if ( ss == NULL ) {                   /* no directory, so use current */
   fprintf(stderr,"ERREUR ...\n");      /*if(strrchr(path, ODIRSEPARATOR )==NULL)
   fprintf(stderr,"%s\n",error_text);        printf("Warning you should use %s as a separator\n",DIRSEPARATOR);*/
   exit(1);      /* get current working directory */
 }      /*    extern  char* getcwd ( char *buf , int len);*/
 /*********************** vector *******************/      if ( getcwd( dirc, FILENAME_MAX ) == NULL ) {
 double *vector(int nl, int nh)        return( GLOCK_ERROR_GETCWD );
 {      }
   double *v;      strcpy( name, path );               /* we've got it */
   v=(double *) malloc((size_t)((nh-nl+1+NR_END)*sizeof(double)));    } else {                              /* strip direcotry from path */
   if (!v) nrerror("allocation failure in vector");      ss++;                               /* after this, the filename */
   return v-nl+NR_END;      l2 = strlen( ss );                  /* length of filename */
 }      if ( l2 == 0 ) return( GLOCK_ERROR_NOPATH );
       strcpy( name, ss );         /* save file name */
 /************************ free vector ******************/      strncpy( dirc, path, l1 - l2 );     /* now the directory */
 void free_vector(double*v, int nl, int nh)      dirc[l1-l2] = 0;                    /* add zero */
 {    }
   free((FREE_ARG)(v+nl-NR_END));    l1 = strlen( dirc );                  /* length of directory */
 }  #ifdef windows
     if ( dirc[l1-1] != '\\' ) { dirc[l1] = '\\'; dirc[l1+1] = 0; }
 /************************ivector *******************************/  #else
 int *ivector(long nl,long nh)    if ( dirc[l1-1] != '/' ) { dirc[l1] = '/'; dirc[l1+1] = 0; }
 {  #endif
   int *v;    ss = strrchr( name, '.' );            /* find last / */
   v=(int *) malloc((size_t)((nh-nl+1+NR_END)*sizeof(int)));    ss++;
   if (!v) nrerror("allocation failure in ivector");    strcpy(ext,ss);                       /* save extension */
   return v-nl+NR_END;    l1= strlen( name);
 }    l2= strlen(ss)+1;
     strncpy( finame, name, l1-l2);
 /******************free ivector **************************/    finame[l1-l2]= 0;
 void free_ivector(int *v, long nl, long nh)    return( 0 );                          /* we're done */
 {  }
   free((FREE_ARG)(v+nl-NR_END));  
 }  
   /******************************************/
 /******************* imatrix *******************************/  
 int **imatrix(long nrl, long nrh, long ncl, long nch)  void replace(char *s, char*t)
      /* allocate a int matrix with subscript range m[nrl..nrh][ncl..nch] */  {
 {    int i;
   long i, nrow=nrh-nrl+1,ncol=nch-ncl+1;    int lg=20;
   int **m;    i=0;
      lg=strlen(t);
   /* allocate pointers to rows */    for(i=0; i<= lg; i++) {
   m=(int **) malloc((size_t)((nrow+NR_END)*sizeof(int*)));      (s[i] = t[i]);
   if (!m) nrerror("allocation failure 1 in matrix()");      if (t[i]== '\\') s[i]='/';
   m += NR_END;    }
   m -= nrl;  }
    
    int nbocc(char *s, char occ)
   /* allocate rows and set pointers to them */  {
   m[nrl]=(int *) malloc((size_t)((nrow*ncol+NR_END)*sizeof(int)));    int i,j=0;
   if (!m[nrl]) nrerror("allocation failure 2 in matrix()");    int lg=20;
   m[nrl] += NR_END;    i=0;
   m[nrl] -= ncl;    lg=strlen(s);
      for(i=0; i<= lg; i++) {
   for(i=nrl+1;i<=nrh;i++) m[i]=m[i-1]+ncol;    if  (s[i] == occ ) j++;
      }
   /* return pointer to array of pointers to rows */    return j;
   return m;  }
 }  
   void cutv(char *u,char *v, char*t, char occ)
 /****************** free_imatrix *************************/  {
 void free_imatrix(m,nrl,nrh,ncl,nch)    /* cuts string t into u and v where u is ended by char occ excluding it
       int **m;       and v is after occ excluding it too : ex cutv(u,v,"abcdef2ghi2j",2)
       long nch,ncl,nrh,nrl;       gives u="abcedf" and v="ghi2j" */
      /* free an int matrix allocated by imatrix() */    int i,lg,j,p=0;
 {    i=0;
   free((FREE_ARG) (m[nrl]+ncl-NR_END));    for(j=0; j<=strlen(t)-1; j++) {
   free((FREE_ARG) (m+nrl-NR_END));      if((t[j]!= occ) && (t[j+1]== occ)) p=j+1;
 }    }
   
 /******************* matrix *******************************/    lg=strlen(t);
 double **matrix(long nrl, long nrh, long ncl, long nch)    for(j=0; j<p; j++) {
 {      (u[j] = t[j]);
   long i, nrow=nrh-nrl+1, ncol=nch-ncl+1;    }
   double **m;       u[p]='\0';
   
   m=(double **) malloc((size_t)((nrow+NR_END)*sizeof(double*)));     for(j=0; j<= lg; j++) {
   if (!m) nrerror("allocation failure 1 in matrix()");      if (j>=(p+1))(v[j-p-1] = t[j]);
   m += NR_END;    }
   m -= nrl;  }
   
   m[nrl]=(double *) malloc((size_t)((nrow*ncol+NR_END)*sizeof(double)));  /********************** nrerror ********************/
   if (!m[nrl]) nrerror("allocation failure 2 in matrix()");  
   m[nrl] += NR_END;  void nrerror(char error_text[])
   m[nrl] -= ncl;  {
     fprintf(stderr,"ERREUR ...\n");
   for (i=nrl+1; i<=nrh; i++) m[i]=m[i-1]+ncol;    fprintf(stderr,"%s\n",error_text);
   return m;    exit(EXIT_FAILURE);
 }  }
   /*********************** vector *******************/
 /*************************free matrix ************************/  double *vector(int nl, int nh)
 void free_matrix(double **m, long nrl, long nrh, long ncl, long nch)  {
 {    double *v;
   free((FREE_ARG)(m[nrl]+ncl-NR_END));    v=(double *) malloc((size_t)((nh-nl+1+NR_END)*sizeof(double)));
   free((FREE_ARG)(m+nrl-NR_END));    if (!v) nrerror("allocation failure in vector");
 }    return v-nl+NR_END;
   }
 /******************* ma3x *******************************/  
 double ***ma3x(long nrl, long nrh, long ncl, long nch, long nll, long nlh)  /************************ free vector ******************/
 {  void free_vector(double*v, int nl, int nh)
   long i, j, nrow=nrh-nrl+1, ncol=nch-ncl+1, nlay=nlh-nll+1;  {
   double ***m;    free((FREE_ARG)(v+nl-NR_END));
   }
   m=(double ***) malloc((size_t)((nrow+NR_END)*sizeof(double*)));  
   if (!m) nrerror("allocation failure 1 in matrix()");  /************************ivector *******************************/
   m += NR_END;  char *cvector(long nl,long nh)
   m -= nrl;  {
     char *v;
   m[nrl]=(double **) malloc((size_t)((nrow*ncol+NR_END)*sizeof(double)));    v=(char *) malloc((size_t)((nh-nl+1+NR_END)*sizeof(char)));
   if (!m[nrl]) nrerror("allocation failure 2 in matrix()");    if (!v) nrerror("allocation failure in cvector");
   m[nrl] += NR_END;    return v-nl+NR_END;
   m[nrl] -= ncl;  }
   
   for (i=nrl+1; i<=nrh; i++) m[i]=m[i-1]+ncol;  /******************free ivector **************************/
   void free_cvector(char *v, long nl, long nh)
   m[nrl][ncl]=(double *) malloc((size_t)((nrow*ncol*nlay+NR_END)*sizeof(double)));  {
   if (!m[nrl][ncl]) nrerror("allocation failure 3 in matrix()");    free((FREE_ARG)(v+nl-NR_END));
   m[nrl][ncl] += NR_END;  }
   m[nrl][ncl] -= nll;  
   for (j=ncl+1; j<=nch; j++)  /************************ivector *******************************/
     m[nrl][j]=m[nrl][j-1]+nlay;  int *ivector(long nl,long nh)
    {
   for (i=nrl+1; i<=nrh; i++) {    int *v;
     m[i][ncl]=m[i-1l][ncl]+ncol*nlay;    v=(int *) malloc((size_t)((nh-nl+1+NR_END)*sizeof(int)));
     for (j=ncl+1; j<=nch; j++)    if (!v) nrerror("allocation failure in ivector");
       m[i][j]=m[i][j-1]+nlay;    return v-nl+NR_END;
   }  }
   return m;  
 }  /******************free ivector **************************/
   void free_ivector(int *v, long nl, long nh)
 /*************************free ma3x ************************/  {
 void free_ma3x(double ***m, long nrl, long nrh, long ncl, long nch,long nll, long nlh)    free((FREE_ARG)(v+nl-NR_END));
 {  }
   free((FREE_ARG)(m[nrl][ncl]+ nll-NR_END));  
   free((FREE_ARG)(m[nrl]+ncl-NR_END));  /******************* imatrix *******************************/
   free((FREE_ARG)(m+nrl-NR_END));  int **imatrix(long nrl, long nrh, long ncl, long nch) 
 }       /* allocate a int matrix with subscript range m[nrl..nrh][ncl..nch] */ 
   { 
 /***************** f1dim *************************/    long i, nrow=nrh-nrl+1,ncol=nch-ncl+1; 
 extern int ncom;    int **m; 
 extern double *pcom,*xicom;    
 extern double (*nrfunc)(double []);    /* allocate pointers to rows */ 
      m=(int **) malloc((size_t)((nrow+NR_END)*sizeof(int*))); 
 double f1dim(double x)    if (!m) nrerror("allocation failure 1 in matrix()"); 
 {    m += NR_END; 
   int j;    m -= nrl; 
   double f;    
   double *xt;    
      /* allocate rows and set pointers to them */ 
   xt=vector(1,ncom);    m[nrl]=(int *) malloc((size_t)((nrow*ncol+NR_END)*sizeof(int))); 
   for (j=1;j<=ncom;j++) xt[j]=pcom[j]+x*xicom[j];    if (!m[nrl]) nrerror("allocation failure 2 in matrix()"); 
   f=(*nrfunc)(xt);    m[nrl] += NR_END; 
   free_vector(xt,1,ncom);    m[nrl] -= ncl; 
   return f;    
 }    for(i=nrl+1;i<=nrh;i++) m[i]=m[i-1]+ncol; 
     
 /*****************brent *************************/    /* return pointer to array of pointers to rows */ 
 double brent(double ax, double bx, double cx, double (*f)(double), double tol,  double *xmin)    return m; 
 {  } 
   int iter;  
   double a,b,d,etemp;  /****************** free_imatrix *************************/
   double fu,fv,fw,fx;  void free_imatrix(m,nrl,nrh,ncl,nch)
   double ftemp;        int **m;
   double p,q,r,tol1,tol2,u,v,w,x,xm;        long nch,ncl,nrh,nrl; 
   double e=0.0;       /* free an int matrix allocated by imatrix() */ 
    { 
   a=(ax < cx ? ax : cx);    free((FREE_ARG) (m[nrl]+ncl-NR_END)); 
   b=(ax > cx ? ax : cx);    free((FREE_ARG) (m+nrl-NR_END)); 
   x=w=v=bx;  } 
   fw=fv=fx=(*f)(x);  
   for (iter=1;iter<=ITMAX;iter++) {  /******************* matrix *******************************/
     xm=0.5*(a+b);  double **matrix(long nrl, long nrh, long ncl, long nch)
     tol2=2.0*(tol1=tol*fabs(x)+ZEPS);  {
     /*          if (2.0*fabs(fp-(*fret)) <= ftol*(fabs(fp)+fabs(*fret)))*/    long i, nrow=nrh-nrl+1, ncol=nch-ncl+1;
     printf(".");fflush(stdout);    double **m;
 #ifdef DEBUG  
     printf("br %d,x=%.10e xm=%.10e b=%.10e a=%.10e tol=%.10e tol1=%.10e tol2=%.10e x-xm=%.10e fx=%.12e fu=%.12e,fw=%.12e,ftemp=%.12e,ftol=%.12e\n",iter,x,xm,b,a,tol,tol1,tol2,(x-xm),fx,fu,fw,ftemp,ftol);    m=(double **) malloc((size_t)((nrow+NR_END)*sizeof(double*)));
     /*          if ((fabs(x-xm) <= (tol2-0.5*(b-a)))||(2.0*fabs(fu-ftemp) <= ftol*1.e-2*(fabs(fu)+fabs(ftemp)))) { */    if (!m) nrerror("allocation failure 1 in matrix()");
 #endif    m += NR_END;
     if (fabs(x-xm) <= (tol2-0.5*(b-a))){    m -= nrl;
       *xmin=x;  
       return fx;    m[nrl]=(double *) malloc((size_t)((nrow*ncol+NR_END)*sizeof(double)));
     }    if (!m[nrl]) nrerror("allocation failure 2 in matrix()");
     ftemp=fu;    m[nrl] += NR_END;
     if (fabs(e) > tol1) {    m[nrl] -= ncl;
       r=(x-w)*(fx-fv);  
       q=(x-v)*(fx-fw);    for (i=nrl+1; i<=nrh; i++) m[i]=m[i-1]+ncol;
       p=(x-v)*q-(x-w)*r;    return m;
       q=2.0*(q-r);    /* print *(*(m+1)+70) ou print m[1][70]; print m+1 or print &(m[1]) 
       if (q > 0.0) p = -p;     */
       q=fabs(q);  }
       etemp=e;  
       e=d;  /*************************free matrix ************************/
       if (fabs(p) >= fabs(0.5*q*etemp) || p <= q*(a-x) || p >= q*(b-x))  void free_matrix(double **m, long nrl, long nrh, long ncl, long nch)
         d=CGOLD*(e=(x >= xm ? a-x : b-x));  {
       else {    free((FREE_ARG)(m[nrl]+ncl-NR_END));
         d=p/q;    free((FREE_ARG)(m+nrl-NR_END));
         u=x+d;  }
         if (u-a < tol2 || b-u < tol2)  
           d=SIGN(tol1,xm-x);  /******************* ma3x *******************************/
       }  double ***ma3x(long nrl, long nrh, long ncl, long nch, long nll, long nlh)
     } else {  {
       d=CGOLD*(e=(x >= xm ? a-x : b-x));    long i, j, nrow=nrh-nrl+1, ncol=nch-ncl+1, nlay=nlh-nll+1;
     }    double ***m;
     u=(fabs(d) >= tol1 ? x+d : x+SIGN(tol1,d));  
     fu=(*f)(u);    m=(double ***) malloc((size_t)((nrow+NR_END)*sizeof(double*)));
     if (fu <= fx) {    if (!m) nrerror("allocation failure 1 in matrix()");
       if (u >= x) a=x; else b=x;    m += NR_END;
       SHFT(v,w,x,u)    m -= nrl;
         SHFT(fv,fw,fx,fu)  
         } else {    m[nrl]=(double **) malloc((size_t)((nrow*ncol+NR_END)*sizeof(double)));
           if (u < x) a=u; else b=u;    if (!m[nrl]) nrerror("allocation failure 2 in matrix()");
           if (fu <= fw || w == x) {    m[nrl] += NR_END;
             v=w;    m[nrl] -= ncl;
             w=u;  
             fv=fw;    for (i=nrl+1; i<=nrh; i++) m[i]=m[i-1]+ncol;
             fw=fu;  
           } else if (fu <= fv || v == x || v == w) {    m[nrl][ncl]=(double *) malloc((size_t)((nrow*ncol*nlay+NR_END)*sizeof(double)));
             v=u;    if (!m[nrl][ncl]) nrerror("allocation failure 3 in matrix()");
             fv=fu;    m[nrl][ncl] += NR_END;
           }    m[nrl][ncl] -= nll;
         }    for (j=ncl+1; j<=nch; j++) 
   }      m[nrl][j]=m[nrl][j-1]+nlay;
   nrerror("Too many iterations in brent");    
   *xmin=x;    for (i=nrl+1; i<=nrh; i++) {
   return fx;      m[i][ncl]=m[i-1l][ncl]+ncol*nlay;
 }      for (j=ncl+1; j<=nch; j++) 
         m[i][j]=m[i][j-1]+nlay;
 /****************** mnbrak ***********************/    }
     return m; 
 void mnbrak(double *ax, double *bx, double *cx, double *fa, double *fb, double *fc,    /*  gdb: p *(m+1) <=> p m[1] and p (m+1) <=> p (m+1) <=> p &(m[1])
             double (*func)(double))             &(m[i][j][k]) <=> *((*(m+i) + j)+k)
 {    */
   double ulim,u,r,q, dum;  }
   double fu;  
    /*************************free ma3x ************************/
   *fa=(*func)(*ax);  void free_ma3x(double ***m, long nrl, long nrh, long ncl, long nch,long nll, long nlh)
   *fb=(*func)(*bx);  {
   if (*fb > *fa) {    free((FREE_ARG)(m[nrl][ncl]+ nll-NR_END));
     SHFT(dum,*ax,*bx,dum)    free((FREE_ARG)(m[nrl]+ncl-NR_END));
       SHFT(dum,*fb,*fa,dum)    free((FREE_ARG)(m+nrl-NR_END));
       }  }
   *cx=(*bx)+GOLD*(*bx-*ax);  
   *fc=(*func)(*cx);  /***************** f1dim *************************/
   while (*fb > *fc) {  extern int ncom; 
     r=(*bx-*ax)*(*fb-*fc);  extern double *pcom,*xicom;
     q=(*bx-*cx)*(*fb-*fa);  extern double (*nrfunc)(double []); 
     u=(*bx)-((*bx-*cx)*q-(*bx-*ax)*r)/   
       (2.0*SIGN(FMAX(fabs(q-r),TINY),q-r));  double f1dim(double x) 
     ulim=(*bx)+GLIMIT*(*cx-*bx);  { 
     if ((*bx-u)*(u-*cx) > 0.0) {    int j; 
       fu=(*func)(u);    double f;
     } else if ((*cx-u)*(u-ulim) > 0.0) {    double *xt; 
       fu=(*func)(u);   
       if (fu < *fc) {    xt=vector(1,ncom); 
         SHFT(*bx,*cx,u,*cx+GOLD*(*cx-*bx))    for (j=1;j<=ncom;j++) xt[j]=pcom[j]+x*xicom[j]; 
           SHFT(*fb,*fc,fu,(*func)(u))    f=(*nrfunc)(xt); 
           }    free_vector(xt,1,ncom); 
     } else if ((u-ulim)*(ulim-*cx) >= 0.0) {    return f; 
       u=ulim;  } 
       fu=(*func)(u);  
     } else {  /*****************brent *************************/
       u=(*cx)+GOLD*(*cx-*bx);  double brent(double ax, double bx, double cx, double (*f)(double), double tol,  double *xmin) 
       fu=(*func)(u);  { 
     }    int iter; 
     SHFT(*ax,*bx,*cx,u)    double a,b,d,etemp;
       SHFT(*fa,*fb,*fc,fu)    double fu,fv,fw,fx;
       }    double ftemp;
 }    double p,q,r,tol1,tol2,u,v,w,x,xm; 
     double e=0.0; 
 /*************** linmin ************************/   
     a=(ax < cx ? ax : cx); 
 int ncom;    b=(ax > cx ? ax : cx); 
 double *pcom,*xicom;    x=w=v=bx; 
 double (*nrfunc)(double []);    fw=fv=fx=(*f)(x); 
      for (iter=1;iter<=ITMAX;iter++) { 
 void linmin(double p[], double xi[], int n, double *fret,double (*func)(double []))      xm=0.5*(a+b); 
 {      tol2=2.0*(tol1=tol*fabs(x)+ZEPS); 
   double brent(double ax, double bx, double cx,      /*          if (2.0*fabs(fp-(*fret)) <= ftol*(fabs(fp)+fabs(*fret)))*/
                double (*f)(double), double tol, double *xmin);      printf(".");fflush(stdout);
   double f1dim(double x);      fprintf(ficlog,".");fflush(ficlog);
   void mnbrak(double *ax, double *bx, double *cx, double *fa, double *fb,  #ifdef DEBUG
               double *fc, double (*func)(double));      printf("br %d,x=%.10e xm=%.10e b=%.10e a=%.10e tol=%.10e tol1=%.10e tol2=%.10e x-xm=%.10e fx=%.12e fu=%.12e,fw=%.12e,ftemp=%.12e,ftol=%.12e\n",iter,x,xm,b,a,tol,tol1,tol2,(x-xm),fx,fu,fw,ftemp,ftol);
   int j;      fprintf(ficlog,"br %d,x=%.10e xm=%.10e b=%.10e a=%.10e tol=%.10e tol1=%.10e tol2=%.10e x-xm=%.10e fx=%.12e fu=%.12e,fw=%.12e,ftemp=%.12e,ftol=%.12e\n",iter,x,xm,b,a,tol,tol1,tol2,(x-xm),fx,fu,fw,ftemp,ftol);
   double xx,xmin,bx,ax;      /*          if ((fabs(x-xm) <= (tol2-0.5*(b-a)))||(2.0*fabs(fu-ftemp) <= ftol*1.e-2*(fabs(fu)+fabs(ftemp)))) { */
   double fx,fb,fa;  #endif
        if (fabs(x-xm) <= (tol2-0.5*(b-a))){ 
   ncom=n;        *xmin=x; 
   pcom=vector(1,n);        return fx; 
   xicom=vector(1,n);      } 
   nrfunc=func;      ftemp=fu;
   for (j=1;j<=n;j++) {      if (fabs(e) > tol1) { 
     pcom[j]=p[j];        r=(x-w)*(fx-fv); 
     xicom[j]=xi[j];        q=(x-v)*(fx-fw); 
   }        p=(x-v)*q-(x-w)*r; 
   ax=0.0;        q=2.0*(q-r); 
   xx=1.0;        if (q > 0.0) p = -p; 
   mnbrak(&ax,&xx,&bx,&fa,&fx,&fb,f1dim);        q=fabs(q); 
   *fret=brent(ax,xx,bx,f1dim,TOL,&xmin);        etemp=e; 
 #ifdef DEBUG        e=d; 
   printf("retour brent fret=%.12e xmin=%.12e\n",*fret,xmin);        if (fabs(p) >= fabs(0.5*q*etemp) || p <= q*(a-x) || p >= q*(b-x)) 
 #endif          d=CGOLD*(e=(x >= xm ? a-x : b-x)); 
   for (j=1;j<=n;j++) {        else { 
     xi[j] *= xmin;          d=p/q; 
     p[j] += xi[j];          u=x+d; 
   }          if (u-a < tol2 || b-u < tol2) 
   free_vector(xicom,1,n);            d=SIGN(tol1,xm-x); 
   free_vector(pcom,1,n);        } 
 }      } else { 
         d=CGOLD*(e=(x >= xm ? a-x : b-x)); 
 /*************** powell ************************/      } 
 void powell(double p[], double **xi, int n, double ftol, int *iter, double *fret,      u=(fabs(d) >= tol1 ? x+d : x+SIGN(tol1,d)); 
             double (*func)(double []))      fu=(*f)(u); 
 {      if (fu <= fx) { 
   void linmin(double p[], double xi[], int n, double *fret,        if (u >= x) a=x; else b=x; 
               double (*func)(double []));        SHFT(v,w,x,u) 
   int i,ibig,j;          SHFT(fv,fw,fx,fu) 
   double del,t,*pt,*ptt,*xit;          } else { 
   double fp,fptt;            if (u < x) a=u; else b=u; 
   double *xits;            if (fu <= fw || w == x) { 
   pt=vector(1,n);              v=w; 
   ptt=vector(1,n);              w=u; 
   xit=vector(1,n);              fv=fw; 
   xits=vector(1,n);              fw=fu; 
   *fret=(*func)(p);            } else if (fu <= fv || v == x || v == w) { 
   for (j=1;j<=n;j++) pt[j]=p[j];              v=u; 
   for (*iter=1;;++(*iter)) {              fv=fu; 
     fp=(*fret);            } 
     ibig=0;          } 
     del=0.0;    } 
     printf("\nPowell iter=%d -2*LL=%.12f",*iter,*fret);    nrerror("Too many iterations in brent"); 
     for (i=1;i<=n;i++)    *xmin=x; 
       printf(" %d %.12f",i, p[i]);    return fx; 
     printf("\n");  } 
     for (i=1;i<=n;i++) {  
       for (j=1;j<=n;j++) xit[j]=xi[j][i];  /****************** mnbrak ***********************/
       fptt=(*fret);  
 #ifdef DEBUG  void mnbrak(double *ax, double *bx, double *cx, double *fa, double *fb, double *fc, 
       printf("fret=%lf \n",*fret);              double (*func)(double)) 
 #endif  { 
       printf("%d",i);fflush(stdout);    double ulim,u,r,q, dum;
       linmin(p,xit,n,fret,func);    double fu; 
       if (fabs(fptt-(*fret)) > del) {   
         del=fabs(fptt-(*fret));    *fa=(*func)(*ax); 
         ibig=i;    *fb=(*func)(*bx); 
       }    if (*fb > *fa) { 
 #ifdef DEBUG      SHFT(dum,*ax,*bx,dum) 
       printf("%d %.12e",i,(*fret));        SHFT(dum,*fb,*fa,dum) 
       for (j=1;j<=n;j++) {        } 
         xits[j]=FMAX(fabs(p[j]-pt[j]),1.e-5);    *cx=(*bx)+GOLD*(*bx-*ax); 
         printf(" x(%d)=%.12e",j,xit[j]);    *fc=(*func)(*cx); 
       }    while (*fb > *fc) { 
       for(j=1;j<=n;j++)      r=(*bx-*ax)*(*fb-*fc); 
         printf(" p=%.12e",p[j]);      q=(*bx-*cx)*(*fb-*fa); 
       printf("\n");      u=(*bx)-((*bx-*cx)*q-(*bx-*ax)*r)/ 
 #endif        (2.0*SIGN(FMAX(fabs(q-r),TINY),q-r)); 
     }      ulim=(*bx)+GLIMIT*(*cx-*bx); 
     if (2.0*fabs(fp-(*fret)) <= ftol*(fabs(fp)+fabs(*fret))) {      if ((*bx-u)*(u-*cx) > 0.0) { 
 #ifdef DEBUG        fu=(*func)(u); 
       int k[2],l;      } else if ((*cx-u)*(u-ulim) > 0.0) { 
       k[0]=1;        fu=(*func)(u); 
       k[1]=-1;        if (fu < *fc) { 
       printf("Max: %.12e",(*func)(p));          SHFT(*bx,*cx,u,*cx+GOLD*(*cx-*bx)) 
       for (j=1;j<=n;j++)            SHFT(*fb,*fc,fu,(*func)(u)) 
         printf(" %.12e",p[j]);            } 
       printf("\n");      } else if ((u-ulim)*(ulim-*cx) >= 0.0) { 
       for(l=0;l<=1;l++) {        u=ulim; 
         for (j=1;j<=n;j++) {        fu=(*func)(u); 
           ptt[j]=p[j]+(p[j]-pt[j])*k[l];      } else { 
           printf("l=%d j=%d ptt=%.12e, xits=%.12e, p=%.12e, xit=%.12e", l,j,ptt[j],xits[j],p[j],xit[j]);        u=(*cx)+GOLD*(*cx-*bx); 
         }        fu=(*func)(u); 
         printf("func(ptt)=%.12e, deriv=%.12e\n",(*func)(ptt),(ptt[j]-p[j])/((*func)(ptt)-(*func)(p)));      } 
       }      SHFT(*ax,*bx,*cx,u) 
 #endif        SHFT(*fa,*fb,*fc,fu) 
         } 
   } 
       free_vector(xit,1,n);  
       free_vector(xits,1,n);  /*************** linmin ************************/
       free_vector(ptt,1,n);  
       free_vector(pt,1,n);  int ncom; 
       return;  double *pcom,*xicom;
     }  double (*nrfunc)(double []); 
     if (*iter == ITMAX) nrerror("powell exceeding maximum iterations.");   
     for (j=1;j<=n;j++) {  void linmin(double p[], double xi[], int n, double *fret,double (*func)(double [])) 
       ptt[j]=2.0*p[j]-pt[j];  { 
       xit[j]=p[j]-pt[j];    double brent(double ax, double bx, double cx, 
       pt[j]=p[j];                 double (*f)(double), double tol, double *xmin); 
     }    double f1dim(double x); 
     fptt=(*func)(ptt);    void mnbrak(double *ax, double *bx, double *cx, double *fa, double *fb, 
     if (fptt < fp) {                double *fc, double (*func)(double)); 
       t=2.0*(fp-2.0*(*fret)+fptt)*SQR(fp-(*fret)-del)-del*SQR(fp-fptt);    int j; 
       if (t < 0.0) {    double xx,xmin,bx,ax; 
         linmin(p,xit,n,fret,func);    double fx,fb,fa;
         for (j=1;j<=n;j++) {   
           xi[j][ibig]=xi[j][n];    ncom=n; 
           xi[j][n]=xit[j];    pcom=vector(1,n); 
         }    xicom=vector(1,n); 
 #ifdef DEBUG    nrfunc=func; 
         printf("Direction changed  last moved %d in place of ibig=%d, new last is the average:\n",n,ibig);    for (j=1;j<=n;j++) { 
         for(j=1;j<=n;j++)      pcom[j]=p[j]; 
           printf(" %.12e",xit[j]);      xicom[j]=xi[j]; 
         printf("\n");    } 
 #endif    ax=0.0; 
       }    xx=1.0; 
     }    mnbrak(&ax,&xx,&bx,&fa,&fx,&fb,f1dim); 
   }    *fret=brent(ax,xx,bx,f1dim,TOL,&xmin); 
 }  #ifdef DEBUG
     printf("retour brent fret=%.12e xmin=%.12e\n",*fret,xmin);
 /**** Prevalence limit ****************/    fprintf(ficlog,"retour brent fret=%.12e xmin=%.12e\n",*fret,xmin);
   #endif
 double **prevalim(double **prlim, int nlstate, double x[], double age, double **oldm, double **savm, double ftolpl, int ij)    for (j=1;j<=n;j++) { 
 {      xi[j] *= xmin; 
   /* Computes the prevalence limit in each live state at age x by left multiplying the unit      p[j] += xi[j]; 
      matrix by transitions matrix until convergence is reached */    } 
     free_vector(xicom,1,n); 
   int i, ii,j,k;    free_vector(pcom,1,n); 
   double min, max, maxmin, maxmax,sumnew=0.;  } 
   double **matprod2();  
   double **out, cov[NCOVMAX], **pmij();  /*************** powell ************************/
   double **newm;  void powell(double p[], double **xi, int n, double ftol, int *iter, double *fret, 
   double agefin, delaymax=50 ; /* Max number of years to converge */              double (*func)(double [])) 
   { 
   for (ii=1;ii<=nlstate+ndeath;ii++)    void linmin(double p[], double xi[], int n, double *fret, 
     for (j=1;j<=nlstate+ndeath;j++){                double (*func)(double [])); 
       oldm[ii][j]=(ii==j ? 1.0 : 0.0);    int i,ibig,j; 
     }    double del,t,*pt,*ptt,*xit;
     double fp,fptt;
    cov[1]=1.;    double *xits;
      pt=vector(1,n); 
  /* Even if hstepm = 1, at least one multiplication by the unit matrix */    ptt=vector(1,n); 
   for(agefin=age-stepm/YEARM; agefin>=age-delaymax; agefin=agefin-stepm/YEARM){    xit=vector(1,n); 
     newm=savm;    xits=vector(1,n); 
     /* Covariates have to be included here again */    *fret=(*func)(p); 
      cov[2]=agefin;    for (j=1;j<=n;j++) pt[j]=p[j]; 
      for (*iter=1;;++(*iter)) { 
       for (k=1; k<=cptcovn;k++) {      fp=(*fret); 
         cov[2+k]=nbcode[Tvar[k]][codtab[ij][Tvar[k]]];      ibig=0; 
         /*printf("ij=%d Tvar[k]=%d nbcode=%d cov=%lf\n",ij, Tvar[k],nbcode[Tvar[k]][codtab[ij][Tvar[k]]],cov[2+k]);*/      del=0.0; 
       }      printf("\nPowell iter=%d -2*LL=%.12f",*iter,*fret);
       for (k=1; k<=cptcovage;k++)      fprintf(ficlog,"\nPowell iter=%d -2*LL=%.12f",*iter,*fret);
         cov[2+Tage[k]]=cov[2+Tage[k]]*cov[2];      fprintf(ficrespow,"%d %.12f",*iter,*fret);
       for (k=1; k<=cptcovprod;k++)      for (i=1;i<=n;i++) {
         cov[2+Tprod[k]]=nbcode[Tvard[k][1]][codtab[ij][Tvard[k][1]]]*nbcode[Tvard[k][2]][codtab[ij][Tvard[k][2]]];        printf(" %d %.12f",i, p[i]);
         fprintf(ficlog," %d %.12lf",i, p[i]);
       /*printf("ij=%d cptcovprod=%d tvar=%d ", ij, cptcovprod, Tvar[1]);*/        fprintf(ficrespow," %.12lf", p[i]);
       /*printf("ij=%d cov[3]=%lf cov[4]=%lf \n",ij, cov[3],cov[4]);*/      }
       printf("\n");
     out=matprod2(newm, pmij(pmmij,cov,ncovmodel,x,nlstate),1,nlstate+ndeath,1,nlstate+ndeath,1,nlstate+ndeath, oldm);      fprintf(ficlog,"\n");
       fprintf(ficrespow,"\n");
     savm=oldm;      for (i=1;i<=n;i++) { 
     oldm=newm;        for (j=1;j<=n;j++) xit[j]=xi[j][i]; 
     maxmax=0.;        fptt=(*fret); 
     for(j=1;j<=nlstate;j++){  #ifdef DEBUG
       min=1.;        printf("fret=%lf \n",*fret);
       max=0.;        fprintf(ficlog,"fret=%lf \n",*fret);
       for(i=1; i<=nlstate; i++) {  #endif
         sumnew=0;        printf("%d",i);fflush(stdout);
         for(k=1; k<=ndeath; k++) sumnew+=newm[i][nlstate+k];        fprintf(ficlog,"%d",i);fflush(ficlog);
         prlim[i][j]= newm[i][j]/(1-sumnew);        linmin(p,xit,n,fret,func); 
         max=FMAX(max,prlim[i][j]);        if (fabs(fptt-(*fret)) > del) { 
         min=FMIN(min,prlim[i][j]);          del=fabs(fptt-(*fret)); 
       }          ibig=i; 
       maxmin=max-min;        } 
       maxmax=FMAX(maxmax,maxmin);  #ifdef DEBUG
     }        printf("%d %.12e",i,(*fret));
     if(maxmax < ftolpl){        fprintf(ficlog,"%d %.12e",i,(*fret));
       return prlim;        for (j=1;j<=n;j++) {
     }          xits[j]=FMAX(fabs(p[j]-pt[j]),1.e-5);
   }          printf(" x(%d)=%.12e",j,xit[j]);
 }          fprintf(ficlog," x(%d)=%.12e",j,xit[j]);
         }
 /*************** transition probabilities **********/        for(j=1;j<=n;j++) {
           printf(" p=%.12e",p[j]);
 double **pmij(double **ps, double *cov, int ncovmodel, double *x, int nlstate )          fprintf(ficlog," p=%.12e",p[j]);
 {        }
   double s1, s2;        printf("\n");
   /*double t34;*/        fprintf(ficlog,"\n");
   int i,j,j1, nc, ii, jj;  #endif
       } 
     for(i=1; i<= nlstate; i++){      if (2.0*fabs(fp-(*fret)) <= ftol*(fabs(fp)+fabs(*fret))) {
     for(j=1; j<i;j++){  #ifdef DEBUG
       for (nc=1, s2=0.;nc <=ncovmodel; nc++){        int k[2],l;
         /*s2 += param[i][j][nc]*cov[nc];*/        k[0]=1;
         s2 += x[(i-1)*nlstate*ncovmodel+(j-1)*ncovmodel+nc+(i-1)*(ndeath-1)*ncovmodel]*cov[nc];        k[1]=-1;
         /*printf("Int j<i s1=%.17e, s2=%.17e\n",s1,s2);*/        printf("Max: %.12e",(*func)(p));
       }        fprintf(ficlog,"Max: %.12e",(*func)(p));
       ps[i][j]=s2;        for (j=1;j<=n;j++) {
       /*printf("s1=%.17e, s2=%.17e\n",s1,s2);*/          printf(" %.12e",p[j]);
     }          fprintf(ficlog," %.12e",p[j]);
     for(j=i+1; j<=nlstate+ndeath;j++){        }
       for (nc=1, s2=0.;nc <=ncovmodel; nc++){        printf("\n");
         s2 += x[(i-1)*nlstate*ncovmodel+(j-2)*ncovmodel+nc+(i-1)*(ndeath-1)*ncovmodel]*cov[nc];        fprintf(ficlog,"\n");
         /*printf("Int j>i s1=%.17e, s2=%.17e %lx %lx\n",s1,s2,s1,s2);*/        for(l=0;l<=1;l++) {
       }          for (j=1;j<=n;j++) {
       ps[i][j]=s2;            ptt[j]=p[j]+(p[j]-pt[j])*k[l];
     }            printf("l=%d j=%d ptt=%.12e, xits=%.12e, p=%.12e, xit=%.12e", l,j,ptt[j],xits[j],p[j],xit[j]);
   }            fprintf(ficlog,"l=%d j=%d ptt=%.12e, xits=%.12e, p=%.12e, xit=%.12e", l,j,ptt[j],xits[j],p[j],xit[j]);
   for(i=1; i<= nlstate; i++){          }
      s1=0;          printf("func(ptt)=%.12e, deriv=%.12e\n",(*func)(ptt),(ptt[j]-p[j])/((*func)(ptt)-(*func)(p)));
     for(j=1; j<i; j++)          fprintf(ficlog,"func(ptt)=%.12e, deriv=%.12e\n",(*func)(ptt),(ptt[j]-p[j])/((*func)(ptt)-(*func)(p)));
       s1+=exp(ps[i][j]);        }
     for(j=i+1; j<=nlstate+ndeath; j++)  #endif
       s1+=exp(ps[i][j]);  
     ps[i][i]=1./(s1+1.);  
     for(j=1; j<i; j++)        free_vector(xit,1,n); 
       ps[i][j]= exp(ps[i][j])*ps[i][i];        free_vector(xits,1,n); 
     for(j=i+1; j<=nlstate+ndeath; j++)        free_vector(ptt,1,n); 
       ps[i][j]= exp(ps[i][j])*ps[i][i];        free_vector(pt,1,n); 
     /* ps[i][nlstate+1]=1.-s1- ps[i][i];*/ /* Sum should be 1 */        return; 
   } /* end i */      } 
       if (*iter == ITMAX) nrerror("powell exceeding maximum iterations."); 
   for(ii=nlstate+1; ii<= nlstate+ndeath; ii++){      for (j=1;j<=n;j++) { 
     for(jj=1; jj<= nlstate+ndeath; jj++){        ptt[j]=2.0*p[j]-pt[j]; 
       ps[ii][jj]=0;        xit[j]=p[j]-pt[j]; 
       ps[ii][ii]=1;        pt[j]=p[j]; 
     }      } 
   }      fptt=(*func)(ptt); 
       if (fptt < fp) { 
   /*   for(ii=1; ii<= nlstate+ndeath; ii++){        t=2.0*(fp-2.0*(*fret)+fptt)*SQR(fp-(*fret)-del)-del*SQR(fp-fptt); 
     for(jj=1; jj<= nlstate+ndeath; jj++){        if (t < 0.0) { 
      printf("%lf ",ps[ii][jj]);          linmin(p,xit,n,fret,func); 
    }          for (j=1;j<=n;j++) { 
     printf("\n ");            xi[j][ibig]=xi[j][n]; 
     }            xi[j][n]=xit[j]; 
     printf("\n ");printf("%lf ",cov[2]);*/          }
 /*  #ifdef DEBUG
   for(i=1; i<= npar; i++) printf("%f ",x[i]);          printf("Direction changed  last moved %d in place of ibig=%d, new last is the average:\n",n,ibig);
   goto end;*/          fprintf(ficlog,"Direction changed  last moved %d in place of ibig=%d, new last is the average:\n",n,ibig);
     return ps;          for(j=1;j<=n;j++){
 }            printf(" %.12e",xit[j]);
             fprintf(ficlog," %.12e",xit[j]);
 /**************** Product of 2 matrices ******************/          }
           printf("\n");
 double **matprod2(double **out, double **in,long nrl, long nrh, long ncl, long nch, long ncolol, long ncoloh, double **b)          fprintf(ficlog,"\n");
 {  #endif
   /* Computes the matric product of in(1,nrh-nrl+1)(1,nch-ncl+1) times        }
      b(1,nch-ncl+1)(1,ncoloh-ncolol+1) into out(...) */      } 
   /* in, b, out are matrice of pointers which should have been initialized    } 
      before: only the contents of out is modified. The function returns  } 
      a pointer to pointers identical to out */  
   long i, j, k;  /**** Prevalence limit (stable prevalence)  ****************/
   for(i=nrl; i<= nrh; i++)  
     for(k=ncolol; k<=ncoloh; k++)  double **prevalim(double **prlim, int nlstate, double x[], double age, double **oldm, double **savm, double ftolpl, int ij)
       for(j=ncl,out[i][k]=0.; j<=nch; j++)  {
         out[i][k] +=in[i][j]*b[j][k];    /* Computes the prevalence limit in each live state at age x by left multiplying the unit
        matrix by transitions matrix until convergence is reached */
   return out;  
 }    int i, ii,j,k;
     double min, max, maxmin, maxmax,sumnew=0.;
     double **matprod2();
 /************* Higher Matrix Product ***************/    double **out, cov[NCOVMAX], **pmij();
     double **newm;
 double ***hpxij(double ***po, int nhstepm, double age, int hstepm, double *x, int nlstate, int stepm, double **oldm, double **savm, int ij )    double agefin, delaymax=50 ; /* Max number of years to converge */
 {  
   /* Computes the transition matrix starting at age 'age' over 'nhstepm*hstepm*stepm' month    for (ii=1;ii<=nlstate+ndeath;ii++)
      duration (i.e. until      for (j=1;j<=nlstate+ndeath;j++){
      age (in years)  age+nhstepm*stepm/12) by multiplying nhstepm*hstepm matrices.        oldm[ii][j]=(ii==j ? 1.0 : 0.0);
      Output is stored in matrix po[i][j][h] for h every 'hstepm' step      }
      (typically every 2 years instead of every month which is too big).  
      Model is determined by parameters x and covariates have to be     cov[1]=1.;
      included manually here.   
    /* Even if hstepm = 1, at least one multiplication by the unit matrix */
      */    for(agefin=age-stepm/YEARM; agefin>=age-delaymax; agefin=agefin-stepm/YEARM){
       newm=savm;
   int i, j, d, h, k;      /* Covariates have to be included here again */
   double **out, cov[NCOVMAX];       cov[2]=agefin;
   double **newm;    
         for (k=1; k<=cptcovn;k++) {
   /* Hstepm could be zero and should return the unit matrix */          cov[2+k]=nbcode[Tvar[k]][codtab[ij][Tvar[k]]];
   for (i=1;i<=nlstate+ndeath;i++)          /*      printf("ij=%d k=%d Tvar[k]=%d nbcode=%d cov=%lf codtab[ij][Tvar[k]]=%d \n",ij,k, Tvar[k],nbcode[Tvar[k]][codtab[ij][Tvar[k]]],cov[2+k], codtab[ij][Tvar[k]]);*/
     for (j=1;j<=nlstate+ndeath;j++){        }
       oldm[i][j]=(i==j ? 1.0 : 0.0);        for (k=1; k<=cptcovage;k++) cov[2+Tage[k]]=cov[2+Tage[k]]*cov[2];
       po[i][j][0]=(i==j ? 1.0 : 0.0);        for (k=1; k<=cptcovprod;k++)
     }          cov[2+Tprod[k]]=nbcode[Tvard[k][1]][codtab[ij][Tvard[k][1]]]*nbcode[Tvard[k][2]][codtab[ij][Tvard[k][2]]];
   /* Even if hstepm = 1, at least one multiplication by the unit matrix */  
   for(h=1; h <=nhstepm; h++){        /*printf("ij=%d cptcovprod=%d tvar=%d ", ij, cptcovprod, Tvar[1]);*/
     for(d=1; d <=hstepm; d++){        /*printf("ij=%d cov[3]=%lf cov[4]=%lf \n",ij, cov[3],cov[4]);*/
       newm=savm;        /*printf("ij=%d cov[3]=%lf \n",ij, cov[3]);*/
       /* Covariates have to be included here again */      out=matprod2(newm, pmij(pmmij,cov,ncovmodel,x,nlstate),1,nlstate+ndeath,1,nlstate+ndeath,1,nlstate+ndeath, oldm);
       cov[1]=1.;  
       cov[2]=age+((h-1)*hstepm + (d-1))*stepm/YEARM;      savm=oldm;
       for (k=1; k<=cptcovn;k++) cov[2+k]=nbcode[Tvar[k]][codtab[ij][Tvar[k]]];      oldm=newm;
 for (k=1; k<=cptcovage;k++)      maxmax=0.;
         cov[2+Tage[k]]=cov[2+Tage[k]]*cov[2];      for(j=1;j<=nlstate;j++){
    for (k=1; k<=cptcovprod;k++)        min=1.;
         cov[2+Tprod[k]]=nbcode[Tvard[k][1]][codtab[ij][Tvard[k][1]]]*nbcode[Tvard[k][2]][codtab[ij][Tvard[k][2]]];        max=0.;
         for(i=1; i<=nlstate; i++) {
           sumnew=0;
       /*printf("hxi cptcov=%d cptcode=%d\n",cptcov,cptcode);*/          for(k=1; k<=ndeath; k++) sumnew+=newm[i][nlstate+k];
       /*printf("h=%d d=%d age=%f cov=%f\n",h,d,age,cov[2]);*/          prlim[i][j]= newm[i][j]/(1-sumnew);
       out=matprod2(newm,oldm,1,nlstate+ndeath,1,nlstate+ndeath,1,nlstate+ndeath,          max=FMAX(max,prlim[i][j]);
                    pmij(pmmij,cov,ncovmodel,x,nlstate));          min=FMIN(min,prlim[i][j]);
       savm=oldm;        }
       oldm=newm;        maxmin=max-min;
     }        maxmax=FMAX(maxmax,maxmin);
     for(i=1; i<=nlstate+ndeath; i++)      }
       for(j=1;j<=nlstate+ndeath;j++) {      if(maxmax < ftolpl){
         po[i][j][h]=newm[i][j];        return prlim;
         /*printf("i=%d j=%d h=%d po[i][j][h]=%f ",i,j,h,po[i][j][h]);      }
          */    }
       }  }
   } /* end h */  
   return po;  /*************** transition probabilities ***************/ 
 }  
   double **pmij(double **ps, double *cov, int ncovmodel, double *x, int nlstate )
   {
 /*************** log-likelihood *************/    double s1, s2;
 double func( double *x)    /*double t34;*/
 {    int i,j,j1, nc, ii, jj;
   int i, ii, j, k, mi, d, kk;  
   double l, ll[NLSTATEMAX], cov[NCOVMAX];      for(i=1; i<= nlstate; i++){
   double **out;      for(j=1; j<i;j++){
   double sw; /* Sum of weights */        for (nc=1, s2=0.;nc <=ncovmodel; nc++){
   double lli; /* Individual log likelihood */          /*s2 += param[i][j][nc]*cov[nc];*/
   long ipmx;          s2 += x[(i-1)*nlstate*ncovmodel+(j-1)*ncovmodel+nc+(i-1)*(ndeath-1)*ncovmodel]*cov[nc];
   /*extern weight */          /*printf("Int j<i s1=%.17e, s2=%.17e\n",s1,s2);*/
   /* We are differentiating ll according to initial status */        }
   /*  for (i=1;i<=npar;i++) printf("%f ", x[i]);*/        ps[i][j]=s2;
   /*for(i=1;i<imx;i++)        /*printf("s1=%.17e, s2=%.17e\n",s1,s2);*/
     printf(" %d\n",s[4][i]);      }
   */      for(j=i+1; j<=nlstate+ndeath;j++){
   cov[1]=1.;        for (nc=1, s2=0.;nc <=ncovmodel; nc++){
           s2 += x[(i-1)*nlstate*ncovmodel+(j-2)*ncovmodel+nc+(i-1)*(ndeath-1)*ncovmodel]*cov[nc];
   for(k=1; k<=nlstate; k++) ll[k]=0.;          /*printf("Int j>i s1=%.17e, s2=%.17e %lx %lx\n",s1,s2,s1,s2);*/
   for (i=1,ipmx=0, sw=0.; i<=imx; i++){        }
     for (k=1; k<=cptcovn;k++) cov[2+k]=covar[Tvar[k]][i];        ps[i][j]=s2;
     for(mi=1; mi<= wav[i]-1; mi++){      }
       for (ii=1;ii<=nlstate+ndeath;ii++)    }
         for (j=1;j<=nlstate+ndeath;j++) oldm[ii][j]=(ii==j ? 1.0 : 0.0);      /*ps[3][2]=1;*/
       for(d=0; d<dh[mi][i]; d++){  
         newm=savm;    for(i=1; i<= nlstate; i++){
         cov[2]=agev[mw[mi][i]][i]+d*stepm/YEARM;       s1=0;
         for (kk=1; kk<=cptcovage;kk++) {      for(j=1; j<i; j++)
           cov[Tage[kk]+2]=covar[Tvar[Tage[kk]]][i]*cov[2];        s1+=exp(ps[i][j]);
         }      for(j=i+1; j<=nlstate+ndeath; j++)
                s1+=exp(ps[i][j]);
         out=matprod2(newm,oldm,1,nlstate+ndeath,1,nlstate+ndeath,      ps[i][i]=1./(s1+1.);
                      1,nlstate+ndeath,pmij(pmmij,cov,ncovmodel,x,nlstate));      for(j=1; j<i; j++)
         savm=oldm;        ps[i][j]= exp(ps[i][j])*ps[i][i];
         oldm=newm;      for(j=i+1; j<=nlstate+ndeath; j++)
                ps[i][j]= exp(ps[i][j])*ps[i][i];
              /* ps[i][nlstate+1]=1.-s1- ps[i][i];*/ /* Sum should be 1 */
       } /* end mult */    } /* end i */
        
       lli=log(out[s[mw[mi][i]][i]][s[mw[mi+1][i]][i]]);    for(ii=nlstate+1; ii<= nlstate+ndeath; ii++){
       /* printf(" %f ",out[s[mw[mi][i]][i]][s[mw[mi+1][i]][i]]);*/      for(jj=1; jj<= nlstate+ndeath; jj++){
       ipmx +=1;        ps[ii][jj]=0;
       sw += weight[i];        ps[ii][ii]=1;
       ll[s[mw[mi][i]][i]] += 2*weight[i]*lli;      }
     } /* end of wave */    }
   } /* end of individual */  
   
   for(k=1,l=0.; k<=nlstate; k++) l += ll[k];    /*   for(ii=1; ii<= nlstate+ndeath; ii++){
   /* printf("l1=%f l2=%f ",ll[1],ll[2]); */      for(jj=1; jj<= nlstate+ndeath; jj++){
   l= l*ipmx/sw; /* To get the same order of magnitude as if weight=1 for every body */       printf("%lf ",ps[ii][jj]);
   return -l;     }
 }      printf("\n ");
       }
       printf("\n ");printf("%lf ",cov[2]);*/
 /*********** Maximum Likelihood Estimation ***************/  /*
     for(i=1; i<= npar; i++) printf("%f ",x[i]);
 void mlikeli(FILE *ficres,double p[], int npar, int ncovmodel, int nlstate, double ftol, double (*func)(double []))    goto end;*/
 {      return ps;
   int i,j, iter;  }
   double **xi,*delti;  
   double fret;  /**************** Product of 2 matrices ******************/
   xi=matrix(1,npar,1,npar);  
   for (i=1;i<=npar;i++)  double **matprod2(double **out, double **in,long nrl, long nrh, long ncl, long nch, long ncolol, long ncoloh, double **b)
     for (j=1;j<=npar;j++)  {
       xi[i][j]=(i==j ? 1.0 : 0.0);    /* Computes the matrix product of in(1,nrh-nrl+1)(1,nch-ncl+1) times
   printf("Powell\n");       b(1,nch-ncl+1)(1,ncoloh-ncolol+1) into out(...) */
   powell(p,xi,npar,ftol,&iter,&fret,func);    /* in, b, out are matrice of pointers which should have been initialized 
        before: only the contents of out is modified. The function returns
    printf("\n#Number of iterations = %d, -2 Log likelihood = %.12f\n",iter,func(p));       a pointer to pointers identical to out */
   fprintf(ficres,"#Number of iterations = %d, -2 Log likelihood = %.12f ",iter,func(p));    long i, j, k;
     for(i=nrl; i<= nrh; i++)
 }      for(k=ncolol; k<=ncoloh; k++)
         for(j=ncl,out[i][k]=0.; j<=nch; j++)
 /**** Computes Hessian and covariance matrix ***/          out[i][k] +=in[i][j]*b[j][k];
 void hesscov(double **matcov, double p[], int npar, double delti[], double ftolhess, double (*func)(double []))  
 {    return out;
   double  **a,**y,*x,pd;  }
   double **hess;  
   int i, j,jk;  
   int *indx;  /************* Higher Matrix Product ***************/
   
   double hessii(double p[], double delta, int theta, double delti[]);  double ***hpxij(double ***po, int nhstepm, double age, int hstepm, double *x, int nlstate, int stepm, double **oldm, double **savm, int ij )
   double hessij(double p[], double delti[], int i, int j);  {
   void lubksb(double **a, int npar, int *indx, double b[]) ;    /* Computes the transition matrix starting at age 'age' over 
   void ludcmp(double **a, int npar, int *indx, double *d) ;       'nhstepm*hstepm*stepm' months (i.e. until
        age (in years)  age+nhstepm*hstepm*stepm/12) by multiplying 
        nhstepm*hstepm matrices. 
   hess=matrix(1,npar,1,npar);       Output is stored in matrix po[i][j][h] for h every 'hstepm' step 
        (typically every 2 years instead of every month which is too big 
   printf("\nCalculation of the hessian matrix. Wait...\n");       for the memory).
   for (i=1;i<=npar;i++){       Model is determined by parameters x and covariates have to be 
     printf("%d",i);fflush(stdout);       included manually here. 
     hess[i][i]=hessii(p,ftolhess,i,delti);  
     /*printf(" %f ",p[i]);*/       */
   }  
     int i, j, d, h, k;
   for (i=1;i<=npar;i++) {    double **out, cov[NCOVMAX];
     for (j=1;j<=npar;j++)  {    double **newm;
       if (j>i) {  
         printf(".%d%d",i,j);fflush(stdout);    /* Hstepm could be zero and should return the unit matrix */
         hess[i][j]=hessij(p,delti,i,j);    for (i=1;i<=nlstate+ndeath;i++)
         hess[j][i]=hess[i][j];      for (j=1;j<=nlstate+ndeath;j++){
       }        oldm[i][j]=(i==j ? 1.0 : 0.0);
     }        po[i][j][0]=(i==j ? 1.0 : 0.0);
   }      }
   printf("\n");    /* Even if hstepm = 1, at least one multiplication by the unit matrix */
     for(h=1; h <=nhstepm; h++){
   printf("\nInverting the hessian to get the covariance matrix. Wait...\n");      for(d=1; d <=hstepm; d++){
          newm=savm;
   a=matrix(1,npar,1,npar);        /* Covariates have to be included here again */
   y=matrix(1,npar,1,npar);        cov[1]=1.;
   x=vector(1,npar);        cov[2]=age+((h-1)*hstepm + (d-1))*stepm/YEARM;
   indx=ivector(1,npar);        for (k=1; k<=cptcovn;k++) cov[2+k]=nbcode[Tvar[k]][codtab[ij][Tvar[k]]];
   for (i=1;i<=npar;i++)        for (k=1; k<=cptcovage;k++)
     for (j=1;j<=npar;j++) a[i][j]=hess[i][j];          cov[2+Tage[k]]=cov[2+Tage[k]]*cov[2];
   ludcmp(a,npar,indx,&pd);        for (k=1; k<=cptcovprod;k++)
           cov[2+Tprod[k]]=nbcode[Tvard[k][1]][codtab[ij][Tvard[k][1]]]*nbcode[Tvard[k][2]][codtab[ij][Tvard[k][2]]];
   for (j=1;j<=npar;j++) {  
     for (i=1;i<=npar;i++) x[i]=0;  
     x[j]=1;        /*printf("hxi cptcov=%d cptcode=%d\n",cptcov,cptcode);*/
     lubksb(a,npar,indx,x);        /*printf("h=%d d=%d age=%f cov=%f\n",h,d,age,cov[2]);*/
     for (i=1;i<=npar;i++){        out=matprod2(newm,oldm,1,nlstate+ndeath,1,nlstate+ndeath,1,nlstate+ndeath, 
       matcov[i][j]=x[i];                     pmij(pmmij,cov,ncovmodel,x,nlstate));
     }        savm=oldm;
   }        oldm=newm;
       }
   printf("\n#Hessian matrix#\n");      for(i=1; i<=nlstate+ndeath; i++)
   for (i=1;i<=npar;i++) {        for(j=1;j<=nlstate+ndeath;j++) {
     for (j=1;j<=npar;j++) {          po[i][j][h]=newm[i][j];
       printf("%.3e ",hess[i][j]);          /*printf("i=%d j=%d h=%d po[i][j][h]=%f ",i,j,h,po[i][j][h]);
     }           */
     printf("\n");        }
   }    } /* end h */
     return po;
   /* Recompute Inverse */  }
   for (i=1;i<=npar;i++)  
     for (j=1;j<=npar;j++) a[i][j]=matcov[i][j];  
   ludcmp(a,npar,indx,&pd);  /*************** log-likelihood *************/
   double func( double *x)
   /*  printf("\n#Hessian matrix recomputed#\n");  {
     int i, ii, j, k, mi, d, kk;
   for (j=1;j<=npar;j++) {    double l, ll[NLSTATEMAX], cov[NCOVMAX];
     for (i=1;i<=npar;i++) x[i]=0;    double **out;
     x[j]=1;    double sw; /* Sum of weights */
     lubksb(a,npar,indx,x);    double lli; /* Individual log likelihood */
     for (i=1;i<=npar;i++){    int s1, s2;
       y[i][j]=x[i];    double bbh, survp;
       printf("%.3e ",y[i][j]);    long ipmx;
     }    /*extern weight */
     printf("\n");    /* We are differentiating ll according to initial status */
   }    /*  for (i=1;i<=npar;i++) printf("%f ", x[i]);*/
   */    /*for(i=1;i<imx;i++) 
       printf(" %d\n",s[4][i]);
   free_matrix(a,1,npar,1,npar);    */
   free_matrix(y,1,npar,1,npar);    cov[1]=1.;
   free_vector(x,1,npar);  
   free_ivector(indx,1,npar);    for(k=1; k<=nlstate; k++) ll[k]=0.;
   free_matrix(hess,1,npar,1,npar);  
     if(mle==1){
       for (i=1,ipmx=0, sw=0.; i<=imx; i++){
 }        for (k=1; k<=cptcovn;k++) cov[2+k]=covar[Tvar[k]][i];
         for(mi=1; mi<= wav[i]-1; mi++){
 /*************** hessian matrix ****************/          for (ii=1;ii<=nlstate+ndeath;ii++)
 double hessii( double x[], double delta, int theta, double delti[])            for (j=1;j<=nlstate+ndeath;j++){
 {              oldm[ii][j]=(ii==j ? 1.0 : 0.0);
   int i;              savm[ii][j]=(ii==j ? 1.0 : 0.0);
   int l=1, lmax=20;            }
   double k1,k2;          for(d=0; d<dh[mi][i]; d++){
   double p2[NPARMAX+1];            newm=savm;
   double res;            cov[2]=agev[mw[mi][i]][i]+d*stepm/YEARM;
   double delt, delts, nkhi=10.,nkhif=1., khi=1.e-4;            for (kk=1; kk<=cptcovage;kk++) {
   double fx;              cov[Tage[kk]+2]=covar[Tvar[Tage[kk]]][i]*cov[2];
   int k=0,kmax=10;            }
   double l1;            out=matprod2(newm,oldm,1,nlstate+ndeath,1,nlstate+ndeath,
                          1,nlstate+ndeath,pmij(pmmij,cov,ncovmodel,x,nlstate));
   fx=func(x);            savm=oldm;
   for (i=1;i<=npar;i++) p2[i]=x[i];            oldm=newm;
   for(l=0 ; l <=lmax; l++){          } /* end mult */
     l1=pow(10,l);        
     delts=delt;          /*lli=log(out[s[mw[mi][i]][i]][s[mw[mi+1][i]][i]]);*/ /* Original formula */
     for(k=1 ; k <kmax; k=k+1){          /* But now since version 0.9 we anticipate for bias and large stepm.
       delt = delta*(l1*k);           * If stepm is larger than one month (smallest stepm) and if the exact delay 
       p2[theta]=x[theta] +delt;           * (in months) between two waves is not a multiple of stepm, we rounded to 
       k1=func(p2)-fx;           * the nearest (and in case of equal distance, to the lowest) interval but now
       p2[theta]=x[theta]-delt;           * we keep into memory the bias bh[mi][i] and also the previous matrix product
       k2=func(p2)-fx;           * (i.e to dh[mi][i]-1) saved in 'savm'. The we inter(extra)polate the
       /*res= (k1-2.0*fx+k2)/delt/delt; */           * probability in order to take into account the bias as a fraction of the way
       res= (k1+k2)/delt/delt/2.; /* Divided by because L and not 2*L */           * from savm to out if bh is neagtive or even beyond if bh is positive. bh varies
                 * -stepm/2 to stepm/2 .
 #ifdef DEBUG           * For stepm=1 the results are the same as for previous versions of Imach.
       printf("%d %d k1=%.12e k2=%.12e xk1=%.12e xk2=%.12e delt=%.12e res=%.12e l=%d k=%d,fx=%.12e\n",theta,theta,k1,k2,x[theta]+delt,x[theta]-delt,delt,res, l, k,fx);           * For stepm > 1 the results are less biased than in previous versions. 
 #endif           */
       /*if(fabs(k1-2.0*fx+k2) <1.e-13){ */          s1=s[mw[mi][i]][i];
       if((k1 <khi/nkhi/2.) || (k2 <khi/nkhi/2.)){          s2=s[mw[mi+1][i]][i];
         k=kmax;          bbh=(double)bh[mi][i]/(double)stepm; 
       }          /* bias is positive if real duration
       else if((k1 >khi/nkhif) || (k2 >khi/nkhif)){ /* Keeps lastvalue before 3.84/2 KHI2 5% 1d.f. */           * is higher than the multiple of stepm and negative otherwise.
         k=kmax; l=lmax*10.;           */
       }          /* lli= (savm[s1][s2]>1.e-8 ?(1.+bbh)*log(out[s1][s2])- bbh*log(savm[s1][s2]):log((1.+bbh)*out[s1][s2]));*/
       else if((k1 >khi/nkhi) || (k2 >khi/nkhi)){          if( s2 > nlstate){ 
         delts=delt;            /* i.e. if s2 is a death state and if the date of death is known then the contribution
       }               to the likelihood is the probability to die between last step unit time and current 
     }               step unit time, which is also the differences between probability to die before dh 
   }               and probability to die before dh-stepm . 
   delti[theta]=delts;               In version up to 0.92 likelihood was computed
   return res;          as if date of death was unknown. Death was treated as any other
            health state: the date of the interview describes the actual state
 }          and not the date of a change in health state. The former idea was
           to consider that at each interview the state was recorded
 double hessij( double x[], double delti[], int thetai,int thetaj)          (healthy, disable or death) and IMaCh was corrected; but when we
 {          introduced the exact date of death then we should have modified
   int i;          the contribution of an exact death to the likelihood. This new
   int l=1, l1, lmax=20;          contribution is smaller and very dependent of the step unit
   double k1,k2,k3,k4,res,fx;          stepm. It is no more the probability to die between last interview
   double p2[NPARMAX+1];          and month of death but the probability to survive from last
   int k;          interview up to one month before death multiplied by the
           probability to die within a month. Thanks to Chris
   fx=func(x);          Jackson for correcting this bug.  Former versions increased
   for (k=1; k<=2; k++) {          mortality artificially. The bad side is that we add another loop
     for (i=1;i<=npar;i++) p2[i]=x[i];          which slows down the processing. The difference can be up to 10%
     p2[thetai]=x[thetai]+delti[thetai]/k;          lower mortality.
     p2[thetaj]=x[thetaj]+delti[thetaj]/k;            */
     k1=func(p2)-fx;            lli=log(out[s1][s2] - savm[s1][s2]);
            }else{
     p2[thetai]=x[thetai]+delti[thetai]/k;            lli= log((1.+bbh)*out[s1][s2]- bbh*savm[s1][s2]); /* linear interpolation */
     p2[thetaj]=x[thetaj]-delti[thetaj]/k;            /*  lli= (savm[s1][s2]>(double)1.e-8 ?log((1.+bbh)*out[s1][s2]- bbh*(savm[s1][s2])):log((1.+bbh)*out[s1][s2]));*/ /* linear interpolation */
     k2=func(p2)-fx;          } 
            /*lli=(1.+bbh)*log(out[s1][s2])- bbh*log(savm[s1][s2]);*/
     p2[thetai]=x[thetai]-delti[thetai]/k;          /*if(lli ==000.0)*/
     p2[thetaj]=x[thetaj]+delti[thetaj]/k;          /*printf("bbh= %f lli=%f savm=%f out=%f %d\n",bbh,lli,savm[s1][s2], out[s[mw[mi][i]][i]][s[mw[mi+1][i]][i]],i); */
     k3=func(p2)-fx;          ipmx +=1;
            sw += weight[i];
     p2[thetai]=x[thetai]-delti[thetai]/k;          ll[s[mw[mi][i]][i]] += 2*weight[i]*lli;
     p2[thetaj]=x[thetaj]-delti[thetaj]/k;        } /* end of wave */
     k4=func(p2)-fx;      } /* end of individual */
     res=(k1-k2-k3+k4)/4.0/delti[thetai]*k/delti[thetaj]*k/2.; /* Because of L not 2*L */    }  else if(mle==2){
 #ifdef DEBUG      for (i=1,ipmx=0, sw=0.; i<=imx; i++){
     printf("%d %d k=%d, k1=%.12e k2=%.12e k3=%.12e k4=%.12e delti/k=%.12e deltj/k=%.12e, xi-de/k=%.12e xj-de/k=%.12e  res=%.12e k1234=%.12e,k1-2=%.12e,k3-4=%.12e\n",thetai,thetaj,k,k1,k2,k3,k4,delti[thetai]/k,delti[thetaj]/k,x[thetai]-delti[thetai]/k,x[thetaj]-delti[thetaj]/k, res,k1-k2-k3+k4,k1-k2,k3-k4);        for (k=1; k<=cptcovn;k++) cov[2+k]=covar[Tvar[k]][i];
 #endif        for(mi=1; mi<= wav[i]-1; mi++){
   }          for (ii=1;ii<=nlstate+ndeath;ii++)
   return res;            for (j=1;j<=nlstate+ndeath;j++){
 }              oldm[ii][j]=(ii==j ? 1.0 : 0.0);
               savm[ii][j]=(ii==j ? 1.0 : 0.0);
 /************** Inverse of matrix **************/            }
 void ludcmp(double **a, int n, int *indx, double *d)          for(d=0; d<=dh[mi][i]; d++){
 {            newm=savm;
   int i,imax,j,k;            cov[2]=agev[mw[mi][i]][i]+d*stepm/YEARM;
   double big,dum,sum,temp;            for (kk=1; kk<=cptcovage;kk++) {
   double *vv;              cov[Tage[kk]+2]=covar[Tvar[Tage[kk]]][i]*cov[2];
              }
   vv=vector(1,n);            out=matprod2(newm,oldm,1,nlstate+ndeath,1,nlstate+ndeath,
   *d=1.0;                         1,nlstate+ndeath,pmij(pmmij,cov,ncovmodel,x,nlstate));
   for (i=1;i<=n;i++) {            savm=oldm;
     big=0.0;            oldm=newm;
     for (j=1;j<=n;j++)          } /* end mult */
       if ((temp=fabs(a[i][j])) > big) big=temp;        
     if (big == 0.0) nrerror("Singular matrix in routine ludcmp");          /*lli=log(out[s[mw[mi][i]][i]][s[mw[mi+1][i]][i]]);*/ /* Original formula */
     vv[i]=1.0/big;          /* But now since version 0.9 we anticipate for bias and large stepm.
   }           * If stepm is larger than one month (smallest stepm) and if the exact delay 
   for (j=1;j<=n;j++) {           * (in months) between two waves is not a multiple of stepm, we rounded to 
     for (i=1;i<j;i++) {           * the nearest (and in case of equal distance, to the lowest) interval but now
       sum=a[i][j];           * we keep into memory the bias bh[mi][i] and also the previous matrix product
       for (k=1;k<i;k++) sum -= a[i][k]*a[k][j];           * (i.e to dh[mi][i]-1) saved in 'savm'. The we inter(extra)polate the
       a[i][j]=sum;           * probability in order to take into account the bias as a fraction of the way
     }           * from savm to out if bh is neagtive or even beyond if bh is positive. bh varies
     big=0.0;           * -stepm/2 to stepm/2 .
     for (i=j;i<=n;i++) {           * For stepm=1 the results are the same as for previous versions of Imach.
       sum=a[i][j];           * For stepm > 1 the results are less biased than in previous versions. 
       for (k=1;k<j;k++)           */
         sum -= a[i][k]*a[k][j];          s1=s[mw[mi][i]][i];
       a[i][j]=sum;          s2=s[mw[mi+1][i]][i];
       if ( (dum=vv[i]*fabs(sum)) >= big) {          bbh=(double)bh[mi][i]/(double)stepm; 
         big=dum;          /* bias is positive if real duration
         imax=i;           * is higher than the multiple of stepm and negative otherwise.
       }           */
     }          lli= (savm[s1][s2]>(double)1.e-8 ?log((1.+bbh)*out[s1][s2]- bbh*(savm[s1][s2])):log((1.+bbh)*out[s1][s2])); /* linear interpolation */
     if (j != imax) {          /* lli= (savm[s1][s2]>1.e-8 ?(1.+bbh)*log(out[s1][s2])- bbh*log(savm[s1][s2]):log((1.+bbh)*out[s1][s2]));*/
       for (k=1;k<=n;k++) {          /*lli= (savm[s1][s2]>1.e-8 ?(1.+bbh)*log(out[s1][s2])- bbh*log(savm[s1][s2]):log((1.-+bh)*out[s1][s2])); */ /* exponential interpolation */
         dum=a[imax][k];          /*lli=(1.+bbh)*log(out[s1][s2])- bbh*log(savm[s1][s2]);*/
         a[imax][k]=a[j][k];          /*if(lli ==000.0)*/
         a[j][k]=dum;          /*printf("bbh= %f lli=%f savm=%f out=%f %d\n",bbh,lli,savm[s1][s2], out[s[mw[mi][i]][i]][s[mw[mi+1][i]][i]],i); */
       }          ipmx +=1;
       *d = -(*d);          sw += weight[i];
       vv[imax]=vv[j];          ll[s[mw[mi][i]][i]] += 2*weight[i]*lli;
     }        } /* end of wave */
     indx[j]=imax;      } /* end of individual */
     if (a[j][j] == 0.0) a[j][j]=TINY;    }  else if(mle==3){  /* exponential inter-extrapolation */
     if (j != n) {      for (i=1,ipmx=0, sw=0.; i<=imx; i++){
       dum=1.0/(a[j][j]);        for (k=1; k<=cptcovn;k++) cov[2+k]=covar[Tvar[k]][i];
       for (i=j+1;i<=n;i++) a[i][j] *= dum;        for(mi=1; mi<= wav[i]-1; mi++){
     }          for (ii=1;ii<=nlstate+ndeath;ii++)
   }            for (j=1;j<=nlstate+ndeath;j++){
   free_vector(vv,1,n);  /* Doesn't work */              oldm[ii][j]=(ii==j ? 1.0 : 0.0);
 ;              savm[ii][j]=(ii==j ? 1.0 : 0.0);
 }            }
           for(d=0; d<dh[mi][i]; d++){
 void lubksb(double **a, int n, int *indx, double b[])            newm=savm;
 {            cov[2]=agev[mw[mi][i]][i]+d*stepm/YEARM;
   int i,ii=0,ip,j;            for (kk=1; kk<=cptcovage;kk++) {
   double sum;              cov[Tage[kk]+2]=covar[Tvar[Tage[kk]]][i]*cov[2];
              }
   for (i=1;i<=n;i++) {            out=matprod2(newm,oldm,1,nlstate+ndeath,1,nlstate+ndeath,
     ip=indx[i];                         1,nlstate+ndeath,pmij(pmmij,cov,ncovmodel,x,nlstate));
     sum=b[ip];            savm=oldm;
     b[ip]=b[i];            oldm=newm;
     if (ii)          } /* end mult */
       for (j=ii;j<=i-1;j++) sum -= a[i][j]*b[j];        
     else if (sum) ii=i;          /*lli=log(out[s[mw[mi][i]][i]][s[mw[mi+1][i]][i]]);*/ /* Original formula */
     b[i]=sum;          /* But now since version 0.9 we anticipate for bias and large stepm.
   }           * If stepm is larger than one month (smallest stepm) and if the exact delay 
   for (i=n;i>=1;i--) {           * (in months) between two waves is not a multiple of stepm, we rounded to 
     sum=b[i];           * the nearest (and in case of equal distance, to the lowest) interval but now
     for (j=i+1;j<=n;j++) sum -= a[i][j]*b[j];           * we keep into memory the bias bh[mi][i] and also the previous matrix product
     b[i]=sum/a[i][i];           * (i.e to dh[mi][i]-1) saved in 'savm'. The we inter(extra)polate the
   }           * probability in order to take into account the bias as a fraction of the way
 }           * from savm to out if bh is neagtive or even beyond if bh is positive. bh varies
            * -stepm/2 to stepm/2 .
 /************ Frequencies ********************/           * For stepm=1 the results are the same as for previous versions of Imach.
 void  freqsummary(char fileres[], int agemin, int agemax, int **s, double **agev, int nlstate, int imx, int *Tvar, int **nbcode, int *ncodemax)           * For stepm > 1 the results are less biased than in previous versions. 
 {  /* Some frequencies */           */
            s1=s[mw[mi][i]][i];
   int i, m, jk, k1, i1, j1, bool, z1,z2,j;          s2=s[mw[mi+1][i]][i];
   double ***freq; /* Frequencies */          bbh=(double)bh[mi][i]/(double)stepm; 
   double *pp;          /* bias is positive if real duration
   double pos;           * is higher than the multiple of stepm and negative otherwise.
   FILE *ficresp;           */
   char fileresp[FILENAMELENGTH];          /* lli= (savm[s1][s2]>(double)1.e-8 ?log((1.+bbh)*out[s1][s2]- bbh*(savm[s1][s2])):log((1.+bbh)*out[s1][s2])); */ /* linear interpolation */
           lli= (savm[s1][s2]>1.e-8 ?(1.+bbh)*log(out[s1][s2])- bbh*log(savm[s1][s2]):log((1.+bbh)*out[s1][s2])); /* exponential inter-extrapolation */
   pp=vector(1,nlstate);          /*lli=(1.+bbh)*log(out[s1][s2])- bbh*log(savm[s1][s2]);*/
           /*if(lli ==000.0)*/
   strcpy(fileresp,"p");          /*printf("bbh= %f lli=%f savm=%f out=%f %d\n",bbh,lli,savm[s1][s2], out[s[mw[mi][i]][i]][s[mw[mi+1][i]][i]],i); */
   strcat(fileresp,fileres);          ipmx +=1;
   if((ficresp=fopen(fileresp,"w"))==NULL) {          sw += weight[i];
     printf("Problem with prevalence resultfile: %s\n", fileresp);          ll[s[mw[mi][i]][i]] += 2*weight[i]*lli;
     exit(0);        } /* end of wave */
   }      } /* end of individual */
   freq= ma3x(-1,nlstate+ndeath,-1,nlstate+ndeath,agemin,agemax+3);    }else{  /* ml=4 no inter-extrapolation */
   j1=0;      for (i=1,ipmx=0, sw=0.; i<=imx; i++){
         for (k=1; k<=cptcovn;k++) cov[2+k]=covar[Tvar[k]][i];
   j=cptcoveff;        for(mi=1; mi<= wav[i]-1; mi++){
   if (cptcovn<1) {j=1;ncodemax[1]=1;}          for (ii=1;ii<=nlstate+ndeath;ii++)
             for (j=1;j<=nlstate+ndeath;j++){
   for(k1=1; k1<=j;k1++){              oldm[ii][j]=(ii==j ? 1.0 : 0.0);
    for(i1=1; i1<=ncodemax[k1];i1++){              savm[ii][j]=(ii==j ? 1.0 : 0.0);
        j1++;            }
        /*printf("cptcoveff=%d Tvaraff=%d", cptcoveff,Tvaraff[1]);          for(d=0; d<dh[mi][i]; d++){
          scanf("%d", i);*/            newm=savm;
         for (i=-1; i<=nlstate+ndeath; i++)              cov[2]=agev[mw[mi][i]][i]+d*stepm/YEARM;
          for (jk=-1; jk<=nlstate+ndeath; jk++)              for (kk=1; kk<=cptcovage;kk++) {
            for(m=agemin; m <= agemax+3; m++)              cov[Tage[kk]+2]=covar[Tvar[Tage[kk]]][i]*cov[2];
              freq[i][jk][m]=0;            }
                  
        for (i=1; i<=imx; i++) {            out=matprod2(newm,oldm,1,nlstate+ndeath,1,nlstate+ndeath,
          bool=1;                         1,nlstate+ndeath,pmij(pmmij,cov,ncovmodel,x,nlstate));
          if  (cptcovn>0) {            savm=oldm;
            for (z1=1; z1<=cptcoveff; z1++)            oldm=newm;
              if (covar[Tvaraff[z1]][i]!= nbcode[Tvaraff[z1]][codtab[j1][z1]])          } /* end mult */
                bool=0;        
          }          lli=log(out[s[mw[mi][i]][i]][s[mw[mi+1][i]][i]]); /* Original formula */
           if (bool==1) {          ipmx +=1;
            for(m=firstpass; m<=lastpass-1; m++){          sw += weight[i];
              if(agev[m][i]==0) agev[m][i]=agemax+1;          ll[s[mw[mi][i]][i]] += 2*weight[i]*lli;
              if(agev[m][i]==1) agev[m][i]=agemax+2;        } /* end of wave */
              freq[s[m][i]][s[m+1][i]][(int)agev[m][i]] += weight[i];      } /* end of individual */
              freq[s[m][i]][s[m+1][i]][(int) agemax+3] += weight[i];    } /* End of if */
            }    for(k=1,l=0.; k<=nlstate; k++) l += ll[k];
          }    /* printf("l1=%f l2=%f ",ll[1],ll[2]); */
        }    l= l*ipmx/sw; /* To get the same order of magnitude as if weight=1 for every body */
         if  (cptcovn>0) {    return -l;
          fprintf(ficresp, "\n#********** Variable ");  }
          for (z1=1; z1<=cptcoveff; z1++) fprintf(ficresp, "V%d=%d ",Tvaraff[z1],nbcode[Tvaraff[z1]][codtab[j1][z1]]);  
        fprintf(ficresp, "**********\n#");  
         }  /*********** Maximum Likelihood Estimation ***************/
        for(i=1; i<=nlstate;i++)  
          fprintf(ficresp, " Age Prev(%d) N(%d) N",i,i);  void mlikeli(FILE *ficres,double p[], int npar, int ncovmodel, int nlstate, double ftol, double (*func)(double []))
        fprintf(ficresp, "\n");  {
            int i,j, iter;
   for(i=(int)agemin; i <= (int)agemax+3; i++){    double **xi;
     if(i==(int)agemax+3)    double fret;
       printf("Total");    char filerespow[FILENAMELENGTH];
     else    xi=matrix(1,npar,1,npar);
       printf("Age %d", i);    for (i=1;i<=npar;i++)
     for(jk=1; jk <=nlstate ; jk++){      for (j=1;j<=npar;j++)
       for(m=-1, pp[jk]=0; m <=nlstate+ndeath ; m++)        xi[i][j]=(i==j ? 1.0 : 0.0);
         pp[jk] += freq[jk][m][i];    printf("Powell\n");  fprintf(ficlog,"Powell\n");
     }    strcpy(filerespow,"pow"); 
     for(jk=1; jk <=nlstate ; jk++){    strcat(filerespow,fileres);
       for(m=-1, pos=0; m <=0 ; m++)    if((ficrespow=fopen(filerespow,"w"))==NULL) {
         pos += freq[jk][m][i];      printf("Problem with resultfile: %s\n", filerespow);
       if(pp[jk]>=1.e-10)      fprintf(ficlog,"Problem with resultfile: %s\n", filerespow);
         printf(" %d.=%.0f loss[%d]=%.1f%%",jk,pp[jk],jk,100*pos/pp[jk]);    }
       else    fprintf(ficrespow,"# Powell\n# iter -2*LL");
         printf(" %d.=%.0f loss[%d]=NaNQ%%",jk,pp[jk],jk);    for (i=1;i<=nlstate;i++)
     }      for(j=1;j<=nlstate+ndeath;j++)
     for(jk=1; jk <=nlstate ; jk++){        if(j!=i)fprintf(ficrespow," p%1d%1d",i,j);
       for(m=1, pp[jk]=0; m <=nlstate+ndeath; m++)    fprintf(ficrespow,"\n");
         pp[jk] += freq[jk][m][i];    powell(p,xi,npar,ftol,&iter,&fret,func);
     }  
     for(jk=1,pos=0; jk <=nlstate ; jk++)    fclose(ficrespow);
       pos += pp[jk];    printf("\n#Number of iterations = %d, -2 Log likelihood = %.12f\n",iter,func(p));
     for(jk=1; jk <=nlstate ; jk++){    fprintf(ficlog,"\n#Number of iterations = %d, -2 Log likelihood = %.12f \n",iter,func(p));
       if(pos>=1.e-5)    fprintf(ficres,"#Number of iterations = %d, -2 Log likelihood = %.12f \n",iter,func(p));
         printf(" %d.=%.0f prev[%d]=%.1f%%",jk,pp[jk],jk,100*pp[jk]/pos);  
       else  }
         printf(" %d.=%.0f prev[%d]=NaNQ%%",jk,pp[jk],jk);  
       if( i <= (int) agemax){  /**** Computes Hessian and covariance matrix ***/
         if(pos>=1.e-5)  void hesscov(double **matcov, double p[], int npar, double delti[], double ftolhess, double (*func)(double []))
           fprintf(ficresp," %d %.5f %.0f %.0f",i,pp[jk]/pos, pp[jk],pos);  {
       else    double  **a,**y,*x,pd;
           fprintf(ficresp," %d NaNq %.0f %.0f",i,pp[jk],pos);    double **hess;
       }    int i, j,jk;
     }    int *indx;
     for(jk=-1; jk <=nlstate+ndeath; jk++)  
       for(m=-1; m <=nlstate+ndeath; m++)    double hessii(double p[], double delta, int theta, double delti[]);
         if(freq[jk][m][i] !=0 ) printf(" %d%d=%.0f",jk,m,freq[jk][m][i]);    double hessij(double p[], double delti[], int i, int j);
     if(i <= (int) agemax)    void lubksb(double **a, int npar, int *indx, double b[]) ;
       fprintf(ficresp,"\n");    void ludcmp(double **a, int npar, int *indx, double *d) ;
     printf("\n");  
     }    hess=matrix(1,npar,1,npar);
     }  
  }    printf("\nCalculation of the hessian matrix. Wait...\n");
      fprintf(ficlog,"\nCalculation of the hessian matrix. Wait...\n");
   fclose(ficresp);    for (i=1;i<=npar;i++){
   free_ma3x(freq,-1,nlstate+ndeath,-1,nlstate+ndeath,(int) agemin,(int) agemax+3);      printf("%d",i);fflush(stdout);
   free_vector(pp,1,nlstate);      fprintf(ficlog,"%d",i);fflush(ficlog);
       hess[i][i]=hessii(p,ftolhess,i,delti);
 }  /* End of Freq */      /*printf(" %f ",p[i]);*/
       /*printf(" %lf ",hess[i][i]);*/
 /************* Waves Concatenation ***************/    }
     
 void  concatwav(int wav[], int **dh, int **mw, int **s, double *agedc, double **agev, int  firstpass, int lastpass, int imx, int nlstate, int stepm)    for (i=1;i<=npar;i++) {
 {      for (j=1;j<=npar;j++)  {
   /* Concatenates waves: wav[i] is the number of effective (useful waves) of individual i.        if (j>i) { 
      Death is a valid wave (if date is known).          printf(".%d%d",i,j);fflush(stdout);
      mw[mi][i] is the mi (mi=1 to wav[i])  effective wave of individual i          fprintf(ficlog,".%d%d",i,j);fflush(ficlog);
      dh[m][i] of dh[mw[mi][i][i] is the delay between two effective waves m=mw[mi][i]          hess[i][j]=hessij(p,delti,i,j);
      and mw[mi+1][i]. dh depends on stepm.          hess[j][i]=hess[i][j];    
      */          /*printf(" %lf ",hess[i][j]);*/
         }
   int i, mi, m;      }
   /* int j, k=0,jk, ju, jl,jmin=1e+5, jmax=-1;    }
      double sum=0., jmean=0.;*/    printf("\n");
     fprintf(ficlog,"\n");
 int j, k=0,jk, ju, jl;  
      double sum=0.;    printf("\nInverting the hessian to get the covariance matrix. Wait...\n");
 jmin=1e+5;    fprintf(ficlog,"\nInverting the hessian to get the covariance matrix. Wait...\n");
  jmax=-1;    
 jmean=0.;    a=matrix(1,npar,1,npar);
   for(i=1; i<=imx; i++){    y=matrix(1,npar,1,npar);
     mi=0;    x=vector(1,npar);
     m=firstpass;    indx=ivector(1,npar);
     while(s[m][i] <= nlstate){    for (i=1;i<=npar;i++)
       if(s[m][i]>=1)      for (j=1;j<=npar;j++) a[i][j]=hess[i][j];
         mw[++mi][i]=m;    ludcmp(a,npar,indx,&pd);
       if(m >=lastpass)  
         break;    for (j=1;j<=npar;j++) {
       else      for (i=1;i<=npar;i++) x[i]=0;
         m++;      x[j]=1;
     }/* end while */      lubksb(a,npar,indx,x);
     if (s[m][i] > nlstate){      for (i=1;i<=npar;i++){ 
       mi++;     /* Death is another wave */        matcov[i][j]=x[i];
       /* if(mi==0)  never been interviewed correctly before death */      }
          /* Only death is a correct wave */    }
       mw[mi][i]=m;  
     }    printf("\n#Hessian matrix#\n");
     fprintf(ficlog,"\n#Hessian matrix#\n");
     wav[i]=mi;    for (i=1;i<=npar;i++) { 
     if(mi==0)      for (j=1;j<=npar;j++) { 
       printf("Warning, no any valid information for:%d line=%d\n",num[i],i);        printf("%.3e ",hess[i][j]);
   }        fprintf(ficlog,"%.3e ",hess[i][j]);
       }
   for(i=1; i<=imx; i++){      printf("\n");
     for(mi=1; mi<wav[i];mi++){      fprintf(ficlog,"\n");
       if (stepm <=0)    }
         dh[mi][i]=1;  
       else{    /* Recompute Inverse */
         if (s[mw[mi+1][i]][i] > nlstate) {    for (i=1;i<=npar;i++)
           j= rint(agedc[i]*12-agev[mw[mi][i]][i]*12);      for (j=1;j<=npar;j++) a[i][j]=matcov[i][j];
           /*if ((j<0) || (j>28)) printf("j=%d num=%d ",j,i);*/    ludcmp(a,npar,indx,&pd);
           if(j==0) j=1;  /* Survives at least one month after exam */  
           k=k+1;    /*  printf("\n#Hessian matrix recomputed#\n");
           if (j >= jmax) jmax=j;  
           else if (j <= jmin)jmin=j;    for (j=1;j<=npar;j++) {
           sum=sum+j;      for (i=1;i<=npar;i++) x[i]=0;
         }      x[j]=1;
         else{      lubksb(a,npar,indx,x);
           j= rint( (agev[mw[mi+1][i]][i]*12 - agev[mw[mi][i]][i]*12));      for (i=1;i<=npar;i++){ 
           /*if ((j<0) || (j>28)) printf("j=%d num=%d ",j,i);*/        y[i][j]=x[i];
           k=k+1;        printf("%.3e ",y[i][j]);
           if (j >= jmax) jmax=j;        fprintf(ficlog,"%.3e ",y[i][j]);
           else if (j <= jmin)jmin=j;      }
           sum=sum+j;      printf("\n");
         }      fprintf(ficlog,"\n");
         jk= j/stepm;    }
         jl= j -jk*stepm;    */
         ju= j -(jk+1)*stepm;  
         if(jl <= -ju)    free_matrix(a,1,npar,1,npar);
           dh[mi][i]=jk;    free_matrix(y,1,npar,1,npar);
         else    free_vector(x,1,npar);
           dh[mi][i]=jk+1;    free_ivector(indx,1,npar);
         if(dh[mi][i]==0)    free_matrix(hess,1,npar,1,npar);
           dh[mi][i]=1; /* At least one step */  
       }  
     }  }
   }  
   jmean=sum/k;  /*************** hessian matrix ****************/
   printf("Delay (in months) between two waves Min=%d Max=%d Mean=%f\n\n ",jmin, jmax,jmean);  double hessii( double x[], double delta, int theta, double delti[])
 }  {
 /*********** Tricode ****************************/    int i;
 void tricode(int *Tvar, int **nbcode, int imx)    int l=1, lmax=20;
 {    double k1,k2;
   int Ndum[20],ij=1, k, j, i;    double p2[NPARMAX+1];
   int cptcode=0;    double res;
   cptcoveff=0;    double delt, delts, nkhi=10.,nkhif=1., khi=1.e-4;
      double fx;
   for (k=0; k<19; k++) Ndum[k]=0;    int k=0,kmax=10;
   for (k=1; k<=7; k++) ncodemax[k]=0;    double l1;
   
   for (j=1; j<=(cptcovn+2*cptcovprod); j++) {    fx=func(x);
     for (i=1; i<=imx; i++) {    for (i=1;i<=npar;i++) p2[i]=x[i];
       ij=(int)(covar[Tvar[j]][i]);    for(l=0 ; l <=lmax; l++){
       Ndum[ij]++;      l1=pow(10,l);
       /*printf("i=%d ij=%d Ndum[ij]=%d imx=%d",i,ij,Ndum[ij],imx);*/      delts=delt;
       if (ij > cptcode) cptcode=ij;      for(k=1 ; k <kmax; k=k+1){
     }        delt = delta*(l1*k);
         p2[theta]=x[theta] +delt;
     for (i=0; i<=cptcode; i++) {        k1=func(p2)-fx;
       if(Ndum[i]!=0) ncodemax[j]++;        p2[theta]=x[theta]-delt;
     }        k2=func(p2)-fx;
     ij=1;        /*res= (k1-2.0*fx+k2)/delt/delt; */
         res= (k1+k2)/delt/delt/2.; /* Divided by because L and not 2*L */
         
     for (i=1; i<=ncodemax[j]; i++) {  #ifdef DEBUG
       for (k=0; k<=19; k++) {        printf("%d %d k1=%.12e k2=%.12e xk1=%.12e xk2=%.12e delt=%.12e res=%.12e l=%d k=%d,fx=%.12e\n",theta,theta,k1,k2,x[theta]+delt,x[theta]-delt,delt,res, l, k,fx);
         if (Ndum[k] != 0) {        fprintf(ficlog,"%d %d k1=%.12e k2=%.12e xk1=%.12e xk2=%.12e delt=%.12e res=%.12e l=%d k=%d,fx=%.12e\n",theta,theta,k1,k2,x[theta]+delt,x[theta]-delt,delt,res, l, k,fx);
           nbcode[Tvar[j]][ij]=k;  #endif
           ij++;        /*if(fabs(k1-2.0*fx+k2) <1.e-13){ */
         }        if((k1 <khi/nkhi/2.) || (k2 <khi/nkhi/2.)){
         if (ij > ncodemax[j]) break;          k=kmax;
       }          }
     }        else if((k1 >khi/nkhif) || (k2 >khi/nkhif)){ /* Keeps lastvalue before 3.84/2 KHI2 5% 1d.f. */
   }            k=kmax; l=lmax*10.;
         }
  for (k=0; k<19; k++) Ndum[k]=0;        else if((k1 >khi/nkhi) || (k2 >khi/nkhi)){ 
           delts=delt;
  for (i=1; i<=ncovmodel; i++) {        }
       ij=Tvar[i];      }
       Ndum[ij]++;    }
     }    delti[theta]=delts;
     return res; 
  ij=1;    
  for (i=1; i<=10; i++) {  }
    if((Ndum[i]!=0) && (i<=ncov)){  
      Tvaraff[ij]=i;  double hessij( double x[], double delti[], int thetai,int thetaj)
      ij++;  {
    }    int i;
  }    int l=1, l1, lmax=20;
      double k1,k2,k3,k4,res,fx;
     cptcoveff=ij-1;    double p2[NPARMAX+1];
 }    int k;
   
 /*********** Health Expectancies ****************/    fx=func(x);
     for (k=1; k<=2; k++) {
 void evsij(char fileres[], double ***eij, double x[], int nlstate, int stepm, int bage, int fage, double **oldm, double **savm, int ij)      for (i=1;i<=npar;i++) p2[i]=x[i];
 {      p2[thetai]=x[thetai]+delti[thetai]/k;
   /* Health expectancies */      p2[thetaj]=x[thetaj]+delti[thetaj]/k;
   int i, j, nhstepm, hstepm, h;      k1=func(p2)-fx;
   double age, agelim,hf;    
   double ***p3mat;      p2[thetai]=x[thetai]+delti[thetai]/k;
        p2[thetaj]=x[thetaj]-delti[thetaj]/k;
   fprintf(ficreseij,"# Health expectancies\n");      k2=func(p2)-fx;
   fprintf(ficreseij,"# Age");    
   for(i=1; i<=nlstate;i++)      p2[thetai]=x[thetai]-delti[thetai]/k;
     for(j=1; j<=nlstate;j++)      p2[thetaj]=x[thetaj]+delti[thetaj]/k;
       fprintf(ficreseij," %1d-%1d",i,j);      k3=func(p2)-fx;
   fprintf(ficreseij,"\n");    
       p2[thetai]=x[thetai]-delti[thetai]/k;
   hstepm=1*YEARM; /*  Every j years of age (in month) */      p2[thetaj]=x[thetaj]-delti[thetaj]/k;
   hstepm=hstepm/stepm; /* Typically in stepm units, if j= 2 years, = 2/6 months = 4 */      k4=func(p2)-fx;
       res=(k1-k2-k3+k4)/4.0/delti[thetai]*k/delti[thetaj]*k/2.; /* Because of L not 2*L */
   agelim=AGESUP;  #ifdef DEBUG
   for (age=bage; age<=fage; age ++){ /* If stepm=6 months */      printf("%d %d k=%d, k1=%.12e k2=%.12e k3=%.12e k4=%.12e delti/k=%.12e deltj/k=%.12e, xi-de/k=%.12e xj-de/k=%.12e  res=%.12e k1234=%.12e,k1-2=%.12e,k3-4=%.12e\n",thetai,thetaj,k,k1,k2,k3,k4,delti[thetai]/k,delti[thetaj]/k,x[thetai]-delti[thetai]/k,x[thetaj]-delti[thetaj]/k, res,k1-k2-k3+k4,k1-k2,k3-k4);
     /* nhstepm age range expressed in number of stepm */      fprintf(ficlog,"%d %d k=%d, k1=%.12e k2=%.12e k3=%.12e k4=%.12e delti/k=%.12e deltj/k=%.12e, xi-de/k=%.12e xj-de/k=%.12e  res=%.12e k1234=%.12e,k1-2=%.12e,k3-4=%.12e\n",thetai,thetaj,k,k1,k2,k3,k4,delti[thetai]/k,delti[thetaj]/k,x[thetai]-delti[thetai]/k,x[thetaj]-delti[thetaj]/k, res,k1-k2-k3+k4,k1-k2,k3-k4);
     nhstepm=(int) rint((agelim-age)*YEARM/stepm);  #endif
     /* Typically if 20 years = 20*12/6=40 stepm */    }
     if (stepm >= YEARM) hstepm=1;    return res;
     nhstepm = nhstepm/hstepm;/* Expressed in hstepm, typically 40/4=10 */  }
     p3mat=ma3x(1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);  
     /* Computed by stepm unit matrices, product of hstepm matrices, stored  /************** Inverse of matrix **************/
        in an array of nhstepm length: nhstepm=10, hstepm=4, stepm=6 months */  void ludcmp(double **a, int n, int *indx, double *d) 
     hpxij(p3mat,nhstepm,age,hstepm,x,nlstate,stepm,oldm, savm, ij);    { 
     int i,imax,j,k; 
     double big,dum,sum,temp; 
     for(i=1; i<=nlstate;i++)    double *vv; 
       for(j=1; j<=nlstate;j++)   
         for (h=0, eij[i][j][(int)age]=0; h<=nhstepm; h++){    vv=vector(1,n); 
           eij[i][j][(int)age] +=p3mat[i][j][h];    *d=1.0; 
         }    for (i=1;i<=n;i++) { 
          big=0.0; 
     hf=1;      for (j=1;j<=n;j++) 
     if (stepm >= YEARM) hf=stepm/YEARM;        if ((temp=fabs(a[i][j])) > big) big=temp; 
     fprintf(ficreseij,"%.0f",age );      if (big == 0.0) nrerror("Singular matrix in routine ludcmp"); 
     for(i=1; i<=nlstate;i++)      vv[i]=1.0/big; 
       for(j=1; j<=nlstate;j++){    } 
         fprintf(ficreseij," %.4f", hf*eij[i][j][(int)age]);    for (j=1;j<=n;j++) { 
       }      for (i=1;i<j;i++) { 
     fprintf(ficreseij,"\n");        sum=a[i][j]; 
     free_ma3x(p3mat,1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);        for (k=1;k<i;k++) sum -= a[i][k]*a[k][j]; 
   }        a[i][j]=sum; 
 }      } 
       big=0.0; 
 /************ Variance ******************/      for (i=j;i<=n;i++) { 
 void varevsij(char fileres[], double ***vareij, double **matcov, double x[], double delti[], int nlstate, int stepm, double bage, double fage, double **oldm, double **savm, double **prlim, double ftolpl, int ij)        sum=a[i][j]; 
 {        for (k=1;k<j;k++) 
   /* Variance of health expectancies */          sum -= a[i][k]*a[k][j]; 
   /*  double **prevalim(double **prlim, int nlstate, double *xp, double age, double **oldm, double ** savm,double ftolpl);*/        a[i][j]=sum; 
   double **newm;        if ( (dum=vv[i]*fabs(sum)) >= big) { 
   double **dnewm,**doldm;          big=dum; 
   int i, j, nhstepm, hstepm, h;          imax=i; 
   int k, cptcode;        } 
    double *xp;      } 
   double **gp, **gm;      if (j != imax) { 
   double ***gradg, ***trgradg;        for (k=1;k<=n;k++) { 
   double ***p3mat;          dum=a[imax][k]; 
   double age,agelim;          a[imax][k]=a[j][k]; 
   int theta;          a[j][k]=dum; 
         } 
    fprintf(ficresvij,"# Covariances of life expectancies\n");        *d = -(*d); 
   fprintf(ficresvij,"# Age");        vv[imax]=vv[j]; 
   for(i=1; i<=nlstate;i++)      } 
     for(j=1; j<=nlstate;j++)      indx[j]=imax; 
       fprintf(ficresvij," Cov(e%1d, e%1d)",i,j);      if (a[j][j] == 0.0) a[j][j]=TINY; 
   fprintf(ficresvij,"\n");      if (j != n) { 
         dum=1.0/(a[j][j]); 
   xp=vector(1,npar);        for (i=j+1;i<=n;i++) a[i][j] *= dum; 
   dnewm=matrix(1,nlstate,1,npar);      } 
   doldm=matrix(1,nlstate,1,nlstate);    } 
      free_vector(vv,1,n);  /* Doesn't work */
   hstepm=1*YEARM; /* Every year of age */  ;
   hstepm=hstepm/stepm; /* Typically in stepm units, if j= 2 years, = 2/6 months = 4 */  } 
   agelim = AGESUP;  
   for (age=bage; age<=fage; age ++){ /* If stepm=6 months */  void lubksb(double **a, int n, int *indx, double b[]) 
     nhstepm=(int) rint((agelim-age)*YEARM/stepm); /* Typically 20 years = 20*12/6=40 */  { 
     if (stepm >= YEARM) hstepm=1;    int i,ii=0,ip,j; 
     nhstepm = nhstepm/hstepm; /* Typically 40/4=10 */    double sum; 
     p3mat=ma3x(1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);   
     gradg=ma3x(0,nhstepm,1,npar,1,nlstate);    for (i=1;i<=n;i++) { 
     gp=matrix(0,nhstepm,1,nlstate);      ip=indx[i]; 
     gm=matrix(0,nhstepm,1,nlstate);      sum=b[ip]; 
       b[ip]=b[i]; 
     for(theta=1; theta <=npar; theta++){      if (ii) 
       for(i=1; i<=npar; i++){ /* Computes gradient */        for (j=ii;j<=i-1;j++) sum -= a[i][j]*b[j]; 
         xp[i] = x[i] + (i==theta ?delti[theta]:0);      else if (sum) ii=i; 
       }      b[i]=sum; 
       hpxij(p3mat,nhstepm,age,hstepm,xp,nlstate,stepm,oldm,savm, ij);      } 
       prevalim(prlim,nlstate,xp,age,oldm,savm,ftolpl,ij);    for (i=n;i>=1;i--) { 
       for(j=1; j<= nlstate; j++){      sum=b[i]; 
         for(h=0; h<=nhstepm; h++){      for (j=i+1;j<=n;j++) sum -= a[i][j]*b[j]; 
           for(i=1, gp[h][j]=0.;i<=nlstate;i++)      b[i]=sum/a[i][i]; 
             gp[h][j] += prlim[i][i]*p3mat[i][j][h];    } 
         }  } 
       }  
      /************ Frequencies ********************/
       for(i=1; i<=npar; i++) /* Computes gradient */  void  freqsummary(char fileres[], int iagemin, int iagemax, int **s, double **agev, int nlstate, int imx, int *Tvaraff, int **nbcode, int *ncodemax,double **mint,double **anint, double dateprev1,double dateprev2,double jprev1, double mprev1,double anprev1,double jprev2, double mprev2,double anprev2)
         xp[i] = x[i] - (i==theta ?delti[theta]:0);  {  /* Some frequencies */
       hpxij(p3mat,nhstepm,age,hstepm,xp,nlstate,stepm,oldm,savm, ij);      
       prevalim(prlim,nlstate,xp,age,oldm,savm,ftolpl,ij);    int i, m, jk, k1,i1, j1, bool, z1,z2,j;
       for(j=1; j<= nlstate; j++){    int first;
         for(h=0; h<=nhstepm; h++){    double ***freq; /* Frequencies */
           for(i=1, gm[h][j]=0.;i<=nlstate;i++)    double *pp, **prop;
             gm[h][j] += prlim[i][i]*p3mat[i][j][h];    double pos,posprop, k2, dateintsum=0,k2cpt=0;
         }    FILE *ficresp;
       }    char fileresp[FILENAMELENGTH];
       for(j=1; j<= nlstate; j++)    
         for(h=0; h<=nhstepm; h++){    pp=vector(1,nlstate);
           gradg[h][theta][j]= (gp[h][j]-gm[h][j])/2./delti[theta];    prop=matrix(1,nlstate,iagemin,iagemax+3);
         }    strcpy(fileresp,"p");
     } /* End theta */    strcat(fileresp,fileres);
     if((ficresp=fopen(fileresp,"w"))==NULL) {
     trgradg =ma3x(0,nhstepm,1,nlstate,1,npar);      printf("Problem with prevalence resultfile: %s\n", fileresp);
       fprintf(ficlog,"Problem with prevalence resultfile: %s\n", fileresp);
     for(h=0; h<=nhstepm; h++)      exit(0);
       for(j=1; j<=nlstate;j++)    }
         for(theta=1; theta <=npar; theta++)    freq= ma3x(-1,nlstate+ndeath,-1,nlstate+ndeath,iagemin,iagemax+3);
           trgradg[h][j][theta]=gradg[h][theta][j];    j1=0;
     
     for(i=1;i<=nlstate;i++)    j=cptcoveff;
       for(j=1;j<=nlstate;j++)    if (cptcovn<1) {j=1;ncodemax[1]=1;}
         vareij[i][j][(int)age] =0.;  
     for(h=0;h<=nhstepm;h++){    first=1;
       for(k=0;k<=nhstepm;k++){  
         matprod2(dnewm,trgradg[h],1,nlstate,1,npar,1,npar,matcov);    for(k1=1; k1<=j;k1++){
         matprod2(doldm,dnewm,1,nlstate,1,npar,1,nlstate,gradg[k]);      for(i1=1; i1<=ncodemax[k1];i1++){
         for(i=1;i<=nlstate;i++)        j1++;
           for(j=1;j<=nlstate;j++)        /*printf("cptcoveff=%d Tvaraff=%d", cptcoveff,Tvaraff[1]);
             vareij[i][j][(int)age] += doldm[i][j];          scanf("%d", i);*/
       }        for (i=-1; i<=nlstate+ndeath; i++)  
     }          for (jk=-1; jk<=nlstate+ndeath; jk++)  
     h=1;            for(m=iagemin; m <= iagemax+3; m++)
     if (stepm >= YEARM) h=stepm/YEARM;              freq[i][jk][m]=0;
     fprintf(ficresvij,"%.0f ",age );  
     for(i=1; i<=nlstate;i++)      for (i=1; i<=nlstate; i++)  
       for(j=1; j<=nlstate;j++){        for(m=iagemin; m <= iagemax+3; m++)
         fprintf(ficresvij," %.4f", h*vareij[i][j][(int)age]);          prop[i][m]=0;
       }        
     fprintf(ficresvij,"\n");        dateintsum=0;
     free_matrix(gp,0,nhstepm,1,nlstate);        k2cpt=0;
     free_matrix(gm,0,nhstepm,1,nlstate);        for (i=1; i<=imx; i++) {
     free_ma3x(gradg,0,nhstepm,1,npar,1,nlstate);          bool=1;
     free_ma3x(trgradg,0,nhstepm,1,nlstate,1,npar);          if  (cptcovn>0) {
     free_ma3x(p3mat,1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);            for (z1=1; z1<=cptcoveff; z1++) 
   } /* End age */              if (covar[Tvaraff[z1]][i]!= nbcode[Tvaraff[z1]][codtab[j1][z1]]) 
                  bool=0;
   free_vector(xp,1,npar);          }
   free_matrix(doldm,1,nlstate,1,npar);          if (bool==1){
   free_matrix(dnewm,1,nlstate,1,nlstate);            for(m=firstpass; m<=lastpass; m++){
               k2=anint[m][i]+(mint[m][i]/12.);
 }              if ((k2>=dateprev1) && (k2<=dateprev2)) {
                 if(agev[m][i]==0) agev[m][i]=iagemax+1;
 /************ Variance of prevlim ******************/                if(agev[m][i]==1) agev[m][i]=iagemax+2;
 void varprevlim(char fileres[], double **varpl, double **matcov, double x[], double delti[], int nlstate, int stepm, double bage, double fage, double **oldm, double **savm, double **prlim, double ftolpl, int ij)                if (s[m][i]>0 && s[m][i]<=nlstate) prop[s[m][i]][(int)agev[m][i]] += weight[i];
 {                if (m<lastpass) {
   /* Variance of prevalence limit */                  freq[s[m][i]][s[m+1][i]][(int)agev[m][i]] += weight[i];
   /*  double **prevalim(double **prlim, int nlstate, double *xp, double age, double **oldm, double ** savm,double ftolpl);*/                  freq[s[m][i]][s[m+1][i]][iagemax+3] += weight[i];
   double **newm;                }
   double **dnewm,**doldm;                
   int i, j, nhstepm, hstepm;                if ((agev[m][i]>1) && (agev[m][i]< (iagemax+3))) {
   int k, cptcode;                  dateintsum=dateintsum+k2;
   double *xp;                  k2cpt++;
   double *gp, *gm;                }
   double **gradg, **trgradg;              }
   double age,agelim;            }
   int theta;          }
            }
   fprintf(ficresvpl,"# Standard deviation of prevalences limit\n");         
   fprintf(ficresvpl,"# Age");        fprintf(ficresp, "#Count between %.lf/%.lf/%.lf and %.lf/%.lf/%.lf\n",jprev1, mprev1,anprev1,jprev2, mprev2,anprev2);
   for(i=1; i<=nlstate;i++)  
       fprintf(ficresvpl," %1d-%1d",i,i);        if  (cptcovn>0) {
   fprintf(ficresvpl,"\n");          fprintf(ficresp, "\n#********** Variable "); 
           for (z1=1; z1<=cptcoveff; z1++) fprintf(ficresp, "V%d=%d ",Tvaraff[z1],nbcode[Tvaraff[z1]][codtab[j1][z1]]);
   xp=vector(1,npar);          fprintf(ficresp, "**********\n#");
   dnewm=matrix(1,nlstate,1,npar);        }
   doldm=matrix(1,nlstate,1,nlstate);        for(i=1; i<=nlstate;i++) 
            fprintf(ficresp, " Age Prev(%d) N(%d) N",i,i);
   hstepm=1*YEARM; /* Every year of age */        fprintf(ficresp, "\n");
   hstepm=hstepm/stepm; /* Typically in stepm units, if j= 2 years, = 2/6 months = 4 */        
   agelim = AGESUP;        for(i=iagemin; i <= iagemax+3; i++){
   for (age=bage; age<=fage; age ++){ /* If stepm=6 months */          if(i==iagemax+3){
     nhstepm=(int) rint((agelim-age)*YEARM/stepm); /* Typically 20 years = 20*12/6=40 */            fprintf(ficlog,"Total");
     if (stepm >= YEARM) hstepm=1;          }else{
     nhstepm = nhstepm/hstepm; /* Typically 40/4=10 */            if(first==1){
     gradg=matrix(1,npar,1,nlstate);              first=0;
     gp=vector(1,nlstate);              printf("See log file for details...\n");
     gm=vector(1,nlstate);            }
             fprintf(ficlog,"Age %d", i);
     for(theta=1; theta <=npar; theta++){          }
       for(i=1; i<=npar; i++){ /* Computes gradient */          for(jk=1; jk <=nlstate ; jk++){
         xp[i] = x[i] + (i==theta ?delti[theta]:0);            for(m=-1, pp[jk]=0; m <=nlstate+ndeath ; m++)
       }              pp[jk] += freq[jk][m][i]; 
       prevalim(prlim,nlstate,xp,age,oldm,savm,ftolpl,ij);          }
       for(i=1;i<=nlstate;i++)          for(jk=1; jk <=nlstate ; jk++){
         gp[i] = prlim[i][i];            for(m=-1, pos=0; m <=0 ; m++)
                  pos += freq[jk][m][i];
       for(i=1; i<=npar; i++) /* Computes gradient */            if(pp[jk]>=1.e-10){
         xp[i] = x[i] - (i==theta ?delti[theta]:0);              if(first==1){
       prevalim(prlim,nlstate,xp,age,oldm,savm,ftolpl,ij);              printf(" %d.=%.0f loss[%d]=%.1f%%",jk,pp[jk],jk,100*pos/pp[jk]);
       for(i=1;i<=nlstate;i++)              }
         gm[i] = prlim[i][i];              fprintf(ficlog," %d.=%.0f loss[%d]=%.1f%%",jk,pp[jk],jk,100*pos/pp[jk]);
             }else{
       for(i=1;i<=nlstate;i++)              if(first==1)
         gradg[theta][i]= (gp[i]-gm[i])/2./delti[theta];                printf(" %d.=%.0f loss[%d]=NaNQ%%",jk,pp[jk],jk);
     } /* End theta */              fprintf(ficlog," %d.=%.0f loss[%d]=NaNQ%%",jk,pp[jk],jk);
             }
     trgradg =matrix(1,nlstate,1,npar);          }
   
     for(j=1; j<=nlstate;j++)          for(jk=1; jk <=nlstate ; jk++){
       for(theta=1; theta <=npar; theta++)            for(m=0, pp[jk]=0; m <=nlstate+ndeath; m++)
         trgradg[j][theta]=gradg[theta][j];              pp[jk] += freq[jk][m][i];
           }       
     for(i=1;i<=nlstate;i++)          for(jk=1,pos=0,posprop=0; jk <=nlstate ; jk++){
       varpl[i][(int)age] =0.;            pos += pp[jk];
     matprod2(dnewm,trgradg,1,nlstate,1,npar,1,npar,matcov);            posprop += prop[jk][i];
     matprod2(doldm,dnewm,1,nlstate,1,npar,1,nlstate,gradg);          }
     for(i=1;i<=nlstate;i++)          for(jk=1; jk <=nlstate ; jk++){
       varpl[i][(int)age] = doldm[i][i]; /* Covariances are useless */            if(pos>=1.e-5){
               if(first==1)
     fprintf(ficresvpl,"%.0f ",age );                printf(" %d.=%.0f prev[%d]=%.1f%%",jk,pp[jk],jk,100*pp[jk]/pos);
     for(i=1; i<=nlstate;i++)              fprintf(ficlog," %d.=%.0f prev[%d]=%.1f%%",jk,pp[jk],jk,100*pp[jk]/pos);
       fprintf(ficresvpl," %.5f (%.5f)",prlim[i][i],sqrt(varpl[i][(int)age]));            }else{
     fprintf(ficresvpl,"\n");              if(first==1)
     free_vector(gp,1,nlstate);                printf(" %d.=%.0f prev[%d]=NaNQ%%",jk,pp[jk],jk);
     free_vector(gm,1,nlstate);              fprintf(ficlog," %d.=%.0f prev[%d]=NaNQ%%",jk,pp[jk],jk);
     free_matrix(gradg,1,npar,1,nlstate);            }
     free_matrix(trgradg,1,nlstate,1,npar);            if( i <= iagemax){
   } /* End age */              if(pos>=1.e-5){
                 fprintf(ficresp," %d %.5f %.0f %.0f",i,prop[jk][i]/posprop, prop[jk][i],posprop);
   free_vector(xp,1,npar);                probs[i][jk][j1]= pp[jk]/pos;
   free_matrix(doldm,1,nlstate,1,npar);                /*printf("\ni=%d jk=%d j1=%d %.5f %.0f %.0f %f",i,jk,j1,pp[jk]/pos, pp[jk],pos,probs[i][jk][j1]);*/
   free_matrix(dnewm,1,nlstate,1,nlstate);              }
               else
 }                fprintf(ficresp," %d NaNq %.0f %.0f",i,prop[jk][i],posprop);
             }
           }
           
 /***********************************************/          for(jk=-1; jk <=nlstate+ndeath; jk++)
 /**************** Main Program *****************/            for(m=-1; m <=nlstate+ndeath; m++)
 /***********************************************/              if(freq[jk][m][i] !=0 ) {
               if(first==1)
 /*int main(int argc, char *argv[])*/                printf(" %d%d=%.0f",jk,m,freq[jk][m][i]);
 int main()                fprintf(ficlog," %d%d=%.0f",jk,m,freq[jk][m][i]);
 {              }
           if(i <= iagemax)
   int i,j, k, n=MAXN,iter,m,size,cptcode, cptcod;            fprintf(ficresp,"\n");
   double agedeb, agefin,hf;          if(first==1)
   double agemin=1.e20, agemax=-1.e20;            printf("Others in log...\n");
           fprintf(ficlog,"\n");
   double fret;        }
   double **xi,tmp,delta;      }
     }
   double dum; /* Dummy variable */    dateintmean=dateintsum/k2cpt; 
   double ***p3mat;   
   int *indx;    fclose(ficresp);
   char line[MAXLINE], linepar[MAXLINE];    free_ma3x(freq,-1,nlstate+ndeath,-1,nlstate+ndeath, iagemin, iagemax+3);
   char title[MAXLINE];    free_vector(pp,1,nlstate);
   char optionfile[FILENAMELENGTH], datafile[FILENAMELENGTH],  filerespl[FILENAMELENGTH];    free_matrix(prop,1,nlstate,iagemin, iagemax+3);
   char fileres[FILENAMELENGTH], filerespij[FILENAMELENGTH], filereso[FILENAMELENGTH];    /* End of Freq */
   char filerest[FILENAMELENGTH];  }
   char fileregp[FILENAMELENGTH];  
   char path[80],pathc[80],pathcd[80],pathtot[80],model[20];  /************ Prevalence ********************/
   int firstobs=1, lastobs=10;  void prevalence(double agemin, double agemax, int **s, double **agev, int nlstate, int imx, int *Tvar, int **nbcode, int *ncodemax,double **mint,double **anint, double dateprev1,double dateprev2, int firstpass, int lastpass)
   int sdeb, sfin; /* Status at beginning and end */  {  
   int c,  h , cpt,l;    /* Compute observed prevalence between dateprev1 and dateprev2 by counting the number of people
   int ju,jl, mi;       in each health status at the date of interview (if between dateprev1 and dateprev2).
   int i1,j1, k1,k2,k3,jk,aa,bb, stepsize, ij;       We still use firstpass and lastpass as another selection.
   int jnais,jdc,jint4,jint1,jint2,jint3,**outcome,**adl,*tab;    */
     
   int hstepm, nhstepm;    int i, m, jk, k1, i1, j1, bool, z1,z2,j;
   double bage, fage, age, agelim, agebase;    double ***freq; /* Frequencies */
   double ftolpl=FTOL;    double *pp, **prop;
   double **prlim;    double pos,posprop; 
   double *severity;    double  y2; /* in fractional years */
   double ***param; /* Matrix of parameters */    int iagemin, iagemax;
   double  *p;  
   double **matcov; /* Matrix of covariance */    iagemin= (int) agemin;
   double ***delti3; /* Scale */    iagemax= (int) agemax;
   double *delti; /* Scale */    /*pp=vector(1,nlstate);*/
   double ***eij, ***vareij;    prop=matrix(1,nlstate,iagemin,iagemax+3); 
   double **varpl; /* Variances of prevalence limits by age */    /*  freq=ma3x(-1,nlstate+ndeath,-1,nlstate+ndeath,iagemin,iagemax+3);*/
   double *epj, vepp;    j1=0;
   char version[80]="Imach version 62c, May 1999, INED-EUROREVES ";    
   char *alph[]={"a","a","b","c","d","e"}, str[4];    j=cptcoveff;
     if (cptcovn<1) {j=1;ncodemax[1]=1;}
   char z[1]="c", occ;    
 #include <sys/time.h>    for(k1=1; k1<=j;k1++){
 #include <time.h>      for(i1=1; i1<=ncodemax[k1];i1++){
   char stra[80], strb[80], strc[80], strd[80],stre[80],modelsav[80];        j1++;
   /* long total_usecs;        
   struct timeval start_time, end_time;        for (i=1; i<=nlstate; i++)  
            for(m=iagemin; m <= iagemax+3; m++)
   gettimeofday(&start_time, (struct timezone*)0); */ /* at first time */            prop[i][m]=0.0;
        
         for (i=1; i<=imx; i++) { /* Each individual */
   printf("\nIMACH, Version 0.64a");          bool=1;
   printf("\nEnter the parameter file name: ");          if  (cptcovn>0) {
             for (z1=1; z1<=cptcoveff; z1++) 
 #ifdef windows              if (covar[Tvaraff[z1]][i]!= nbcode[Tvaraff[z1]][codtab[j1][z1]]) 
   scanf("%s",pathtot);                bool=0;
   getcwd(pathcd, size);          } 
   /*cygwin_split_path(pathtot,path,optionfile);          if (bool==1) { 
     printf("pathtot=%s, path=%s, optionfile=%s\n",pathtot,path,optionfile);*/            for(m=firstpass; m<=lastpass; m++){/* Other selection (we can limit to certain interviews*/
   /* cutv(path,optionfile,pathtot,'\\');*/              y2=anint[m][i]+(mint[m][i]/12.); /* Fractional date in year */
               if ((y2>=dateprev1) && (y2<=dateprev2)) { /* Here is the main selection (fractional years) */
 split(pathtot, path,optionfile);                if(agev[m][i]==0) agev[m][i]=iagemax+1;
   chdir(path);                if(agev[m][i]==1) agev[m][i]=iagemax+2;
   replace(pathc,path);                if((int)agev[m][i] <iagemin || (int)agev[m][i] >iagemax+3) printf("Error on individual =%d agev[m][i]=%f m=%d\n",i, agev[m][i],m); 
 #endif                if (s[m][i]>0 && s[m][i]<=nlstate) { 
 #ifdef unix                  /*if(i>4620) printf(" i=%d m=%d s[m][i]=%d (int)agev[m][i]=%d weight[i]=%f prop=%f\n",i,m,s[m][i],(int)agev[m][m],weight[i],prop[s[m][i]][(int)agev[m][i]]);*/
   scanf("%s",optionfile);                  prop[s[m][i]][(int)agev[m][i]] += weight[i];
 #endif                  prop[s[m][i]][iagemax+3] += weight[i]; 
                 } 
 /*-------- arguments in the command line --------*/              }
             } /* end selection of waves */
   strcpy(fileres,"r");          }
   strcat(fileres, optionfile);        }
         for(i=iagemin; i <= iagemax+3; i++){  
   /*---------arguments file --------*/          
           for(jk=1,posprop=0; jk <=nlstate ; jk++) { 
   if((ficpar=fopen(optionfile,"r"))==NULL)    {            posprop += prop[jk][i]; 
     printf("Problem with optionfile %s\n",optionfile);          } 
     goto end;  
   }          for(jk=1; jk <=nlstate ; jk++){     
             if( i <=  iagemax){ 
   strcpy(filereso,"o");              if(posprop>=1.e-5){ 
   strcat(filereso,fileres);                probs[i][jk][j1]= prop[jk][i]/posprop;
   if((ficparo=fopen(filereso,"w"))==NULL) {              } 
     printf("Problem with Output resultfile: %s\n", filereso);goto end;            } 
   }          }/* end jk */ 
         }/* end i */ 
   /* Reads comments: lines beginning with '#' */      } /* end i1 */
   while((c=getc(ficpar))=='#' && c!= EOF){    } /* end k1 */
     ungetc(c,ficpar);    
     fgets(line, MAXLINE, ficpar);    /*  free_ma3x(freq,-1,nlstate+ndeath,-1,nlstate+ndeath, iagemin, iagemax+3);*/
     puts(line);    /*free_vector(pp,1,nlstate);*/
     fputs(line,ficparo);    free_matrix(prop,1,nlstate, iagemin,iagemax+3);
   }  }  /* End of prevalence */
   ungetc(c,ficpar);  
   /************* Waves Concatenation ***************/
   fscanf(ficpar,"title=%s datafile=%s lastobs=%d firstpass=%d lastpass=%d\nftol=%lf stepm=%d ncov=%d nlstate=%d ndeath=%d maxwav=%d mle=%d weight=%d\nmodel=%s\n",title, datafile, &lastobs, &firstpass,&lastpass,&ftol, &stepm, &ncov, &nlstate,&ndeath, &maxwav, &mle, &weightopt,model);  
   printf("title=%s datafile=%s lastobs=%d firstpass=%d lastpass=%d\nftol=%e stepm=%d ncov=%d nlstate=%d ndeath=%d maxwav=%d mle=%d weight=%d\nmodel=%s\n", title, datafile, lastobs, firstpass,lastpass,ftol, stepm, ncov, nlstate,ndeath, maxwav, mle, weightopt,model);  void  concatwav(int wav[], int **dh, int **bh,  int **mw, int **s, double *agedc, double **agev, int  firstpass, int lastpass, int imx, int nlstate, int stepm)
   fprintf(ficparo,"title=%s datafile=%s lastobs=%d firstpass=%d lastpass=%d\nftol=%e stepm=%d ncov=%d nlstate=%d ndeath=%d maxwav=%d mle=%d weight=%d\nmodel=%s\n", title, datafile, lastobs, firstpass,lastpass,ftol,stepm,ncov,nlstate,ndeath,maxwav, mle, weightopt,model);  {
     /* Concatenates waves: wav[i] is the number of effective (useful waves) of individual i.
   covar=matrix(0,NCOVMAX,1,n);       Death is a valid wave (if date is known).
   cptcovn=0;       mw[mi][i] is the mi (mi=1 to wav[i])  effective wave of individual i
   if (strlen(model)>1) cptcovn=nbocc(model,'+')+1;       dh[m][i] or dh[mw[mi][i]][i] is the delay between two effective waves m=mw[mi][i]
        and mw[mi+1][i]. dh depends on stepm.
   ncovmodel=2+cptcovn;       */
   nvar=ncovmodel-1; /* Suppressing age as a basic covariate */  
      int i, mi, m;
   /* Read guess parameters */    /* int j, k=0,jk, ju, jl,jmin=1e+5, jmax=-1;
   /* Reads comments: lines beginning with '#' */       double sum=0., jmean=0.;*/
   while((c=getc(ficpar))=='#' && c!= EOF){    int first;
     ungetc(c,ficpar);    int j, k=0,jk, ju, jl;
     fgets(line, MAXLINE, ficpar);    double sum=0.;
     puts(line);    first=0;
     fputs(line,ficparo);    jmin=1e+5;
   }    jmax=-1;
   ungetc(c,ficpar);    jmean=0.;
      for(i=1; i<=imx; i++){
   param= ma3x(1,nlstate,1,nlstate+ndeath-1,1,ncovmodel);      mi=0;
     for(i=1; i <=nlstate; i++)      m=firstpass;
     for(j=1; j <=nlstate+ndeath-1; j++){      while(s[m][i] <= nlstate){
       fscanf(ficpar,"%1d%1d",&i1,&j1);        if(s[m][i]>=1)
       fprintf(ficparo,"%1d%1d",i1,j1);          mw[++mi][i]=m;
       printf("%1d%1d",i,j);        if(m >=lastpass)
       for(k=1; k<=ncovmodel;k++){          break;
         fscanf(ficpar," %lf",&param[i][j][k]);        else
         printf(" %lf",param[i][j][k]);          m++;
         fprintf(ficparo," %lf",param[i][j][k]);      }/* end while */
       }      if (s[m][i] > nlstate){
       fscanf(ficpar,"\n");        mi++;     /* Death is another wave */
       printf("\n");        /* if(mi==0)  never been interviewed correctly before death */
       fprintf(ficparo,"\n");           /* Only death is a correct wave */
     }        mw[mi][i]=m;
        }
   npar= (nlstate+ndeath-1)*nlstate*ncovmodel;  
   p=param[1][1];      wav[i]=mi;
        if(mi==0){
   /* Reads comments: lines beginning with '#' */        if(first==0){
   while((c=getc(ficpar))=='#' && c!= EOF){          printf("Warning, no any valid information for:%d line=%d and may be others, see log file\n",num[i],i);
     ungetc(c,ficpar);          first=1;
     fgets(line, MAXLINE, ficpar);        }
     puts(line);        if(first==1){
     fputs(line,ficparo);          fprintf(ficlog,"Warning, no any valid information for:%d line=%d\n",num[i],i);
   }        }
   ungetc(c,ficpar);      } /* end mi==0 */
     }
   delti3= ma3x(1,nlstate,1,nlstate+ndeath-1,1,ncovmodel);  
   delti=vector(1,npar); /* Scale of each paramater (output from hesscov) */    for(i=1; i<=imx; i++){
   for(i=1; i <=nlstate; i++){      for(mi=1; mi<wav[i];mi++){
     for(j=1; j <=nlstate+ndeath-1; j++){        if (stepm <=0)
       fscanf(ficpar,"%1d%1d",&i1,&j1);          dh[mi][i]=1;
       printf("%1d%1d",i,j);        else{
       fprintf(ficparo,"%1d%1d",i1,j1);          if (s[mw[mi+1][i]][i] > nlstate) {
       for(k=1; k<=ncovmodel;k++){            if (agedc[i] < 2*AGESUP) {
         fscanf(ficpar,"%le",&delti3[i][j][k]);            j= rint(agedc[i]*12-agev[mw[mi][i]][i]*12); 
         printf(" %le",delti3[i][j][k]);            if(j==0) j=1;  /* Survives at least one month after exam */
         fprintf(ficparo," %le",delti3[i][j][k]);            k=k+1;
       }            if (j >= jmax) jmax=j;
       fscanf(ficpar,"\n");            if (j <= jmin) jmin=j;
       printf("\n");            sum=sum+j;
       fprintf(ficparo,"\n");            /*if (j<0) printf("j=%d num=%d \n",j,i); */
     }            /*      printf("%d %d %d %d\n", s[mw[mi][i]][i] ,s[mw[mi+1][i]][i],j,i);*/
   }            /*printf("%d %lf %d %d %d\n", i,agev[mw[mi][i]][i],j,s[mw[mi][i]][i] ,s[mw[mi+1][i]][i]);*/
   delti=delti3[1][1];            }
            }
   /* Reads comments: lines beginning with '#' */          else{
   while((c=getc(ficpar))=='#' && c!= EOF){            j= rint( (agev[mw[mi+1][i]][i]*12 - agev[mw[mi][i]][i]*12));
     ungetc(c,ficpar);            /*      printf("%d %d %d %d\n", s[mw[mi][i]][i] ,s[mw[mi+1][i]][i],j,i);*/
     fgets(line, MAXLINE, ficpar);            k=k+1;
     puts(line);            if (j >= jmax) jmax=j;
     fputs(line,ficparo);            else if (j <= jmin)jmin=j;
   }            /*        if (j<10) printf("j=%d jmin=%d num=%d ",j,jmin,i); */
   ungetc(c,ficpar);            /*printf("%d %lf %d %d %d\n", i,agev[mw[mi][i]][i],j,s[mw[mi][i]][i] ,s[mw[mi+1][i]][i]);*/
              sum=sum+j;
   matcov=matrix(1,npar,1,npar);          }
   for(i=1; i <=npar; i++){          jk= j/stepm;
     fscanf(ficpar,"%s",&str);          jl= j -jk*stepm;
     printf("%s",str);          ju= j -(jk+1)*stepm;
     fprintf(ficparo,"%s",str);          if(mle <=1){ 
     for(j=1; j <=i; j++){            if(jl==0){
       fscanf(ficpar," %le",&matcov[i][j]);              dh[mi][i]=jk;
       printf(" %.5le",matcov[i][j]);              bh[mi][i]=0;
       fprintf(ficparo," %.5le",matcov[i][j]);            }else{ /* We want a negative bias in order to only have interpolation ie
     }                    * at the price of an extra matrix product in likelihood */
     fscanf(ficpar,"\n");              dh[mi][i]=jk+1;
     printf("\n");              bh[mi][i]=ju;
     fprintf(ficparo,"\n");            }
   }          }else{
   for(i=1; i <=npar; i++)            if(jl <= -ju){
     for(j=i+1;j<=npar;j++)              dh[mi][i]=jk;
       matcov[i][j]=matcov[j][i];              bh[mi][i]=jl;       /* bias is positive if real duration
                                       * is higher than the multiple of stepm and negative otherwise.
   printf("\n");                                   */
             }
             else{
     /*-------- data file ----------*/              dh[mi][i]=jk+1;
     if((ficres =fopen(fileres,"w"))==NULL) {              bh[mi][i]=ju;
       printf("Problem with resultfile: %s\n", fileres);goto end;            }
     }            if(dh[mi][i]==0){
     fprintf(ficres,"#%s\n",version);              dh[mi][i]=1; /* At least one step */
                  bh[mi][i]=ju; /* At least one step */
     if((fic=fopen(datafile,"r"))==NULL)    {              /*  printf(" bh=%d ju=%d jl=%d dh=%d jk=%d stepm=%d %d\n",bh[mi][i],ju,jl,dh[mi][i],jk,stepm,i);*/
       printf("Problem with datafile: %s\n", datafile);goto end;            }
     }          }
         } /* end if mle */
     n= lastobs;      } /* end wave */
     severity = vector(1,maxwav);    }
     outcome=imatrix(1,maxwav+1,1,n);    jmean=sum/k;
     num=ivector(1,n);    printf("Delay (in months) between two waves Min=%d Max=%d Mean=%f\n\n ",jmin, jmax,jmean);
     moisnais=vector(1,n);    fprintf(ficlog,"Delay (in months) between two waves Min=%d Max=%d Mean=%f\n\n ",jmin, jmax,jmean);
     annais=vector(1,n);   }
     moisdc=vector(1,n);  
     andc=vector(1,n);  /*********** Tricode ****************************/
     agedc=vector(1,n);  void tricode(int *Tvar, int **nbcode, int imx)
     cod=ivector(1,n);  {
     weight=vector(1,n);    
     for(i=1;i<=n;i++) weight[i]=1.0; /* Equal weights, 1 by default */    int Ndum[20],ij=1, k, j, i, maxncov=19;
     mint=matrix(1,maxwav,1,n);    int cptcode=0;
     anint=matrix(1,maxwav,1,n);    cptcoveff=0; 
     s=imatrix(1,maxwav+1,1,n);   
     adl=imatrix(1,maxwav+1,1,n);        for (k=0; k<maxncov; k++) Ndum[k]=0;
     tab=ivector(1,NCOVMAX);    for (k=1; k<=7; k++) ncodemax[k]=0;
     ncodemax=ivector(1,8);  
     for (j=1; j<=(cptcovn+2*cptcovprod); j++) {
     i=1;      for (i=1; i<=imx; i++) { /*reads the data file to get the maximum 
     while (fgets(line, MAXLINE, fic) != NULL)    {                                 modality*/ 
       if ((i >= firstobs) && (i <=lastobs)) {        ij=(int)(covar[Tvar[j]][i]); /* ij is the modality of this individual*/
                Ndum[ij]++; /*store the modality */
         for (j=maxwav;j>=1;j--){        /*printf("i=%d ij=%d Ndum[ij]=%d imx=%d",i,ij,Ndum[ij],imx);*/
           cutv(stra, strb,line,' '); s[j][i]=atoi(strb);        if (ij > cptcode) cptcode=ij; /* getting the maximum of covariable 
           strcpy(line,stra);                                         Tvar[j]. If V=sex and male is 0 and 
           cutv(stra, strb,line,'/'); anint[j][i]=(double)(atoi(strb)); strcpy(line,stra);                                         female is 1, then  cptcode=1.*/
           cutv(stra, strb,line,' '); mint[j][i]=(double)(atoi(strb)); strcpy(line,stra);      }
         }  
              for (i=0; i<=cptcode; i++) {
         cutv(stra, strb,line,'/'); andc[i]=(double)(atoi(strb)); strcpy(line,stra);        if(Ndum[i]!=0) ncodemax[j]++; /* Nomber of modalities of the j th covariates. In fact ncodemax[j]=2 (dichotom. variables) but it can be more */
         cutv(stra, strb,line,' '); moisdc[i]=(double)(atoi(strb)); strcpy(line,stra);      }
   
         cutv(stra, strb,line,'/'); annais[i]=(double)(atoi(strb)); strcpy(line,stra);      ij=1; 
         cutv(stra, strb,line,' '); moisnais[i]=(double)(atoi(strb)); strcpy(line,stra);      for (i=1; i<=ncodemax[j]; i++) {
         for (k=0; k<= maxncov; k++) {
         cutv(stra, strb,line,' '); weight[i]=(double)(atoi(strb)); strcpy(line,stra);          if (Ndum[k] != 0) {
         for (j=ncov;j>=1;j--){            nbcode[Tvar[j]][ij]=k; 
           cutv(stra, strb,line,' '); covar[j][i]=(double)(atoi(strb)); strcpy(line,stra);            /* store the modality in an array. k is a modality. If we have model=V1+V1*sex then: nbcode[1][1]=0 ; nbcode[1][2]=1; nbcode[2][1]=0 ; nbcode[2][2]=1; */
         }            
         num[i]=atol(stra);            ij++;
           }
         /*printf("%d %.lf %.lf %.lf %.lf/%.lf %.lf/%.lf %.lf/%.lf %d %.lf/%.lf %d %.lf/%.lf %d %.lf/%.lf %d\n",num[i],(covar[1][i]), (covar[2][i]), (weight[i]), (moisnais[i]), (annais[i]), (moisdc[i]), (andc[i]), (mint[1][i]), (anint[1][i]), (s[1][i]),  (mint[2][i]), (anint[2][i]), (s[2][i]),  (mint[3][i]), (anint[3][i]), (s[3][i]),  (mint[4][i]), (anint[4][i]), (s[4][i]));*/          if (ij > ncodemax[j]) break; 
         }  
         i=i+1;      } 
       }    }  
     }  
    for (k=0; k< maxncov; k++) Ndum[k]=0;
     /*scanf("%d",i);*/  
   imx=i-1; /* Number of individuals */   for (i=1; i<=ncovmodel-2; i++) { 
      /* Listing of all covariables in staement model to see if some covariates appear twice. For example, V1 appears twice in V1+V1*V2.*/
   /* Calculation of the number of parameter from char model*/     ij=Tvar[i];
   Tvar=ivector(1,15);     Ndum[ij]++;
   Tprod=ivector(1,15);   }
   Tvaraff=ivector(1,15);  
   Tvard=imatrix(1,15,1,2);   ij=1;
   Tage=ivector(1,15);         for (i=1; i<= maxncov; i++) {
         if((Ndum[i]!=0) && (i<=ncovcol)){
   if (strlen(model) >1){       Tvaraff[ij]=i; /*For printing */
     j=0, j1=0, k1=1, k2=1;       ij++;
     j=nbocc(model,'+');     }
     j1=nbocc(model,'*');   }
     cptcovn=j+1;   
     cptcovprod=j1;   cptcoveff=ij-1; /*Number of simple covariates*/
      }
      
     strcpy(modelsav,model);  /*********** Health Expectancies ****************/
     if ((strcmp(model,"age")==0) || (strcmp(model,"age*age")==0)){  
       printf("Error. Non available option model=%s ",model);  void evsij(char fileres[], double ***eij, double x[], int nlstate, int stepm, int bage, int fage, double **oldm, double **savm, int ij, int estepm,double delti[],double **matcov )
       goto end;  
     }  {
        /* Health expectancies */
     for(i=(j+1); i>=1;i--){    int i, j, nhstepm, hstepm, h, nstepm, k, cptj;
       cutv(stra,strb,modelsav,'+');    double age, agelim, hf;
       if (nbocc(modelsav,'+')==0) strcpy(strb,modelsav);    double ***p3mat,***varhe;
       /*      printf("i=%d a=%s b=%s sav=%s\n",i, stra,strb,modelsav);*/    double **dnewm,**doldm;
       /*scanf("%d",i);*/    double *xp;
       if (strchr(strb,'*')) {    double **gp, **gm;
         cutv(strd,strc,strb,'*');    double ***gradg, ***trgradg;
         if (strcmp(strc,"age")==0) {    int theta;
           cptcovprod--;  
           cutv(strb,stre,strd,'V');    varhe=ma3x(1,nlstate*nlstate,1,nlstate*nlstate,(int) bage, (int) fage);
           Tvar[i]=atoi(stre);    xp=vector(1,npar);
           cptcovage++;    dnewm=matrix(1,nlstate*nlstate,1,npar);
             Tage[cptcovage]=i;    doldm=matrix(1,nlstate*nlstate,1,nlstate*nlstate);
             /*printf("stre=%s ", stre);*/    
         }    fprintf(ficreseij,"# Health expectancies\n");
         else if (strcmp(strd,"age")==0) {    fprintf(ficreseij,"# Age");
           cptcovprod--;    for(i=1; i<=nlstate;i++)
           cutv(strb,stre,strc,'V');      for(j=1; j<=nlstate;j++)
           Tvar[i]=atoi(stre);        fprintf(ficreseij," %1d-%1d (SE)",i,j);
           cptcovage++;    fprintf(ficreseij,"\n");
           Tage[cptcovage]=i;  
         }    if(estepm < stepm){
         else {      printf ("Problem %d lower than %d\n",estepm, stepm);
           cutv(strb,stre,strc,'V');    }
           Tvar[i]=ncov+k1;    else  hstepm=estepm;   
           cutv(strb,strc,strd,'V');    /* We compute the life expectancy from trapezoids spaced every estepm months
           Tprod[k1]=i;     * This is mainly to measure the difference between two models: for example
           Tvard[k1][1]=atoi(strc);     * if stepm=24 months pijx are given only every 2 years and by summing them
           Tvard[k1][2]=atoi(stre);     * we are calculating an estimate of the Life Expectancy assuming a linear 
           Tvar[cptcovn+k2]=Tvard[k1][1];     * progression in between and thus overestimating or underestimating according
           Tvar[cptcovn+k2+1]=Tvard[k1][2];     * to the curvature of the survival function. If, for the same date, we 
           for (k=1; k<=lastobs;k++)     * estimate the model with stepm=1 month, we can keep estepm to 24 months
             covar[ncov+k1][k]=covar[atoi(stre)][k]*covar[atoi(strc)][k];     * to compare the new estimate of Life expectancy with the same linear 
           k1++;     * hypothesis. A more precise result, taking into account a more precise
           k2=k2+2;     * curvature will be obtained if estepm is as small as stepm. */
         }  
       }    /* For example we decided to compute the life expectancy with the smallest unit */
       else {    /* hstepm beeing the number of stepms, if hstepm=1 the length of hstepm is stepm. 
         /*printf("d=%s c=%s b=%s\n", strd,strc,strb);*/       nhstepm is the number of hstepm from age to agelim 
        /*  scanf("%d",i);*/       nstepm is the number of stepm from age to agelin. 
       cutv(strd,strc,strb,'V');       Look at hpijx to understand the reason of that which relies in memory size
       Tvar[i]=atoi(strc);       and note for a fixed period like estepm months */
       }    /* We decided (b) to get a life expectancy respecting the most precise curvature of the
       strcpy(modelsav,stra);         survival function given by stepm (the optimization length). Unfortunately it
       /*printf("a=%s b=%s sav=%s\n", stra,strb,modelsav);       means that if the survival funtion is printed only each two years of age and if
         scanf("%d",i);*/       you sum them up and add 1 year (area under the trapezoids) you won't get the same 
     }       results. So we changed our mind and took the option of the best precision.
 }    */
      hstepm=hstepm/stepm; /* Typically in stepm units, if stepm=6 & estepm=24 , = 24/6 months = 4 */ 
   /*printf("tvar1=%d tvar2=%d tvar3=%d cptcovage=%d Tage=%d",Tvar[1],Tvar[2],Tvar[3],cptcovage,Tage[1]);  
   printf("cptcovprod=%d ", cptcovprod);    agelim=AGESUP;
   scanf("%d ",i);*/    for (age=bage; age<=fage; age ++){ /* If stepm=6 months */
     fclose(fic);      /* nhstepm age range expressed in number of stepm */
       nstepm=(int) rint((agelim-age)*YEARM/stepm); 
     /*  if(mle==1){*/      /* Typically if 20 years nstepm = 20*12/6=40 stepm */ 
     if (weightopt != 1) { /* Maximisation without weights*/      /* if (stepm >= YEARM) hstepm=1;*/
       for(i=1;i<=n;i++) weight[i]=1.0;      nhstepm = nstepm/hstepm;/* Expressed in hstepm, typically nhstepm=40/4=10 */
     }      p3mat=ma3x(1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);
     /*-calculation of age at interview from date of interview and age at death -*/      gradg=ma3x(0,nhstepm,1,npar,1,nlstate*nlstate);
     agev=matrix(1,maxwav,1,imx);      gp=matrix(0,nhstepm,1,nlstate*nlstate);
          gm=matrix(0,nhstepm,1,nlstate*nlstate);
     for (i=1; i<=imx; i++)  {  
       agedc[i]=(moisdc[i]/12.+andc[i])-(moisnais[i]/12.+annais[i]);      /* Computed by stepm unit matrices, product of hstepm matrices, stored
       for(m=1; (m<= maxwav); m++){         in an array of nhstepm length: nhstepm=10, hstepm=4, stepm=6 months */
         if(s[m][i] >0){      hpxij(p3mat,nhstepm,age,hstepm,x,nlstate,stepm,oldm, savm, ij);  
           if (s[m][i] == nlstate+1) {   
             if(agedc[i]>0)  
               if(moisdc[i]!=99 && andc[i]!=9999)      hf=hstepm*stepm/YEARM;  /* Duration of hstepm expressed in year unit. */
               agev[m][i]=agedc[i];  
             else {      /* Computing Variances of health expectancies */
               if (andc[i]!=9999){  
               printf("Warning negative age at death: %d line:%d\n",num[i],i);       for(theta=1; theta <=npar; theta++){
               agev[m][i]=-1;        for(i=1; i<=npar; i++){ 
               }          xp[i] = x[i] + (i==theta ?delti[theta]:0);
             }        }
           }        hpxij(p3mat,nhstepm,age,hstepm,xp,nlstate,stepm,oldm,savm, ij);  
           else if(s[m][i] !=9){ /* Should no more exist */    
             agev[m][i]=(mint[m][i]/12.+1./24.+anint[m][i])-(moisnais[i]/12.+1./24.+annais[i]);        cptj=0;
             if(mint[m][i]==99 || anint[m][i]==9999)        for(j=1; j<= nlstate; j++){
               agev[m][i]=1;          for(i=1; i<=nlstate; i++){
             else if(agev[m][i] <agemin){            cptj=cptj+1;
               agemin=agev[m][i];            for(h=0, gp[h][cptj]=0.; h<=nhstepm-1; h++){
               /*printf(" Min anint[%d][%d]=%.2f annais[%d]=%.2f, agemin=%.2f\n",m,i,anint[m][i], i,annais[i], agemin);*/              gp[h][cptj] = (p3mat[i][j][h]+p3mat[i][j][h+1])/2.;
             }            }
             else if(agev[m][i] >agemax){          }
               agemax=agev[m][i];        }
              /* printf(" anint[%d][%d]=%.0f annais[%d]=%.0f, agemax=%.0f\n",m,i,anint[m][i], i,annais[i], agemax);*/       
             }       
             /*agev[m][i]=anint[m][i]-annais[i];*/        for(i=1; i<=npar; i++) 
             /*   agev[m][i] = age[i]+2*m;*/          xp[i] = x[i] - (i==theta ?delti[theta]:0);
           }        hpxij(p3mat,nhstepm,age,hstepm,xp,nlstate,stepm,oldm,savm, ij);  
           else { /* =9 */        
             agev[m][i]=1;        cptj=0;
             s[m][i]=-1;        for(j=1; j<= nlstate; j++){
           }          for(i=1;i<=nlstate;i++){
         }            cptj=cptj+1;
         else /*= 0 Unknown */            for(h=0, gm[h][cptj]=0.; h<=nhstepm-1; h++){
           agev[m][i]=1;              gm[h][cptj] = (p3mat[i][j][h]+p3mat[i][j][h+1])/2.;
       }            }
              }
     }        }
     for (i=1; i<=imx; i++)  {        for(j=1; j<= nlstate*nlstate; j++)
       for(m=1; (m<= maxwav); m++){          for(h=0; h<=nhstepm-1; h++){
         if (s[m][i] > (nlstate+ndeath)) {            gradg[h][theta][j]= (gp[h][j]-gm[h][j])/2./delti[theta];
           printf("Error: Wrong value in nlstate or ndeath\n");            }
           goto end;       } 
         }     
       }  /* End theta */
     }  
        trgradg =ma3x(0,nhstepm,1,nlstate*nlstate,1,npar);
 printf("Total number of individuals= %d, Agemin = %.2f, Agemax= %.2f\n\n", imx, agemin, agemax);  
        for(h=0; h<=nhstepm-1; h++)
     free_vector(severity,1,maxwav);        for(j=1; j<=nlstate*nlstate;j++)
     free_imatrix(outcome,1,maxwav+1,1,n);          for(theta=1; theta <=npar; theta++)
     free_vector(moisnais,1,n);            trgradg[h][j][theta]=gradg[h][theta][j];
     free_vector(annais,1,n);       
     free_matrix(mint,1,maxwav,1,n);  
     free_matrix(anint,1,maxwav,1,n);       for(i=1;i<=nlstate*nlstate;i++)
     free_vector(moisdc,1,n);        for(j=1;j<=nlstate*nlstate;j++)
     free_vector(andc,1,n);          varhe[i][j][(int)age] =0.;
   
           printf("%d|",(int)age);fflush(stdout);
     wav=ivector(1,imx);       fprintf(ficlog,"%d|",(int)age);fflush(ficlog);
     dh=imatrix(1,lastpass-firstpass+1,1,imx);       for(h=0;h<=nhstepm-1;h++){
     mw=imatrix(1,lastpass-firstpass+1,1,imx);        for(k=0;k<=nhstepm-1;k++){
              matprod2(dnewm,trgradg[h],1,nlstate*nlstate,1,npar,1,npar,matcov);
     /* Concatenates waves */          matprod2(doldm,dnewm,1,nlstate*nlstate,1,npar,1,nlstate*nlstate,gradg[k]);
       concatwav(wav, dh, mw, s, agedc, agev,  firstpass, lastpass, imx, nlstate, stepm);          for(i=1;i<=nlstate*nlstate;i++)
             for(j=1;j<=nlstate*nlstate;j++)
               varhe[i][j][(int)age] += doldm[i][j]*hf*hf;
       Tcode=ivector(1,100);        }
       nbcode=imatrix(0,NCOVMAX,0,NCOVMAX);      }
       ncodemax[1]=1;      /* Computing expectancies */
       if (cptcovn > 0) tricode(Tvar,nbcode,imx);      for(i=1; i<=nlstate;i++)
              for(j=1; j<=nlstate;j++)
    codtab=imatrix(1,100,1,10);          for (h=0, eij[i][j][(int)age]=0; h<=nhstepm-1; h++){
    h=0;            eij[i][j][(int)age] += (p3mat[i][j][h]+p3mat[i][j][h+1])/2.0*hf;
    m=pow(2,cptcoveff);            
    /* if((int)age==70)printf("i=%2d,j=%2d,h=%2d,age=%3d,%9.4f,%9.4f,%9.4f\n",i,j,h,(int)age,p3mat[i][j][h],hf,eij[i][j][(int)age]);*/
    for(k=1;k<=cptcoveff; k++){  
      for(i=1; i <=(m/pow(2,k));i++){          }
        for(j=1; j <= ncodemax[k]; j++){  
          for(cpt=1; cpt <=(m/pow(2,cptcoveff+1-k)); cpt++){      fprintf(ficreseij,"%3.0f",age );
            h++;      cptj=0;
            if (h>m) h=1;codtab[h][k]=j;      for(i=1; i<=nlstate;i++)
          }        for(j=1; j<=nlstate;j++){
        }          cptj++;
      }          fprintf(ficreseij," %9.4f (%.4f)", eij[i][j][(int)age], sqrt(varhe[cptj][cptj][(int)age]) );
    }        }
       fprintf(ficreseij,"\n");
      
    /*for(i=1; i <=m ;i++){      free_matrix(gm,0,nhstepm,1,nlstate*nlstate);
      for(k=1; k <=cptcovn; k++){      free_matrix(gp,0,nhstepm,1,nlstate*nlstate);
        printf("i=%d k=%d %d %d",i,k,codtab[i][k], cptcoveff);      free_ma3x(gradg,0,nhstepm,1,npar,1,nlstate*nlstate);
      }      free_ma3x(trgradg,0,nhstepm,1,nlstate*nlstate,1,npar);
      printf("\n");      free_ma3x(p3mat,1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);
    }    }
    scanf("%d",i);*/    printf("\n");
        fprintf(ficlog,"\n");
    /* Calculates basic frequencies. Computes observed prevalence at single age  
        and prints on file fileres'p'. */    free_vector(xp,1,npar);
   freqsummary(fileres, agemin, agemax, s, agev, nlstate, imx,Tvar,nbcode, ncodemax);    free_matrix(dnewm,1,nlstate*nlstate,1,npar);
     free_matrix(doldm,1,nlstate*nlstate,1,nlstate*nlstate);
     pmmij= matrix(1,nlstate+ndeath,1,nlstate+ndeath); /* creation */    free_ma3x(varhe,1,nlstate*nlstate,1,nlstate*nlstate,(int) bage, (int)fage);
     oldms= matrix(1,nlstate+ndeath,1,nlstate+ndeath); /* creation */  }
     newms= matrix(1,nlstate+ndeath,1,nlstate+ndeath); /* creation */  
     savms= matrix(1,nlstate+ndeath,1,nlstate+ndeath); /* creation */  /************ Variance ******************/
     oldm=oldms; newm=newms; savm=savms; /* Keeps fixed addresses to free */  void varevsij(char optionfilefiname[], double ***vareij, double **matcov, double x[], double delti[], int nlstate, int stepm, double bage, double fage, double **oldm, double **savm, double **prlim, double ftolpl, int ij, int estepm, int cptcov, int cptcod, int popbased, int mobilav)
      {
     /* For Powell, parameters are in a vector p[] starting at p[1]    /* Variance of health expectancies */
        so we point p on param[1][1] so that p[1] maps on param[1][1][1] */    /*  double **prevalim(double **prlim, int nlstate, double *xp, double age, double **oldm, double ** savm,double ftolpl);*/
     p=param[1][1]; /* *(*(*(param +1)+1)+0) */    /* double **newm;*/
     double **dnewm,**doldm;
     if(mle==1){    double **dnewmp,**doldmp;
     mlikeli(ficres,p, npar, ncovmodel, nlstate, ftol, func);    int i, j, nhstepm, hstepm, h, nstepm ;
     }    int k, cptcode;
        double *xp;
     /*--------- results files --------------*/    double **gp, **gm;  /* for var eij */
     fprintf(ficres,"\ntitle=%s datafile=%s lastobs=%d firstpass=%d lastpass=%d\nftol=%e stepm=%d ncov=%d nlstate=%d ndeath=%d maxwav=%d mle=%d weight=%d\nmodel=%s\n", title, datafile, lastobs, firstpass,lastpass,ftol, stepm, ncov, nlstate, ndeath, maxwav, mle,weightopt,model);    double ***gradg, ***trgradg; /*for var eij */
        double **gradgp, **trgradgp; /* for var p point j */
    jk=1;    double *gpp, *gmp; /* for var p point j */
    fprintf(ficres,"# Parameters\n");    double **varppt; /* for var p point j nlstate to nlstate+ndeath */
    printf("# Parameters\n");    double ***p3mat;
    for(i=1,jk=1; i <=nlstate; i++){    double age,agelim, hf;
      for(k=1; k <=(nlstate+ndeath); k++){    double ***mobaverage;
        if (k != i)    int theta;
          {    char digit[4];
            printf("%d%d ",i,k);    char digitp[25];
            fprintf(ficres,"%1d%1d ",i,k);  
            for(j=1; j <=ncovmodel; j++){    char fileresprobmorprev[FILENAMELENGTH];
              printf("%f ",p[jk]);  
              fprintf(ficres,"%f ",p[jk]);    if(popbased==1){
              jk++;      if(mobilav!=0)
            }        strcpy(digitp,"-populbased-mobilav-");
            printf("\n");      else strcpy(digitp,"-populbased-nomobil-");
            fprintf(ficres,"\n");    }
          }    else 
      }      strcpy(digitp,"-stablbased-");
    }  
  if(mle==1){    if (mobilav!=0) {
     /* Computing hessian and covariance matrix */      mobaverage= ma3x(1, AGESUP,1,NCOVMAX, 1,NCOVMAX);
     ftolhess=ftol; /* Usually correct */      if (movingaverage(probs, bage, fage, mobaverage,mobilav)!=0){
     hesscov(matcov, p, npar, delti, ftolhess, func);        fprintf(ficlog," Error in movingaverage mobilav=%d\n",mobilav);
  }        printf(" Error in movingaverage mobilav=%d\n",mobilav);
     fprintf(ficres,"# Scales\n");      }
     printf("# Scales\n");    }
      for(i=1,jk=1; i <=nlstate; i++){  
       for(j=1; j <=nlstate+ndeath; j++){    strcpy(fileresprobmorprev,"prmorprev"); 
         if (j!=i) {    sprintf(digit,"%-d",ij);
           fprintf(ficres,"%1d%1d",i,j);    /*printf("DIGIT=%s, ij=%d ijr=%-d|\n",digit, ij,ij);*/
           printf("%1d%1d",i,j);    strcat(fileresprobmorprev,digit); /* Tvar to be done */
           for(k=1; k<=ncovmodel;k++){    strcat(fileresprobmorprev,digitp); /* Popbased or not, mobilav or not */
             printf(" %.5e",delti[jk]);    strcat(fileresprobmorprev,fileres);
             fprintf(ficres," %.5e",delti[jk]);    if((ficresprobmorprev=fopen(fileresprobmorprev,"w"))==NULL) {
             jk++;      printf("Problem with resultfile: %s\n", fileresprobmorprev);
           }      fprintf(ficlog,"Problem with resultfile: %s\n", fileresprobmorprev);
           printf("\n");    }
           fprintf(ficres,"\n");    printf("Computing total mortality p.j=w1*p1j+w2*p2j+..: result on file '%s' \n",fileresprobmorprev);
         }    fprintf(ficlog,"Computing total mortality p.j=w1*p1j+w2*p2j+..: result on file '%s' \n",fileresprobmorprev);
       }    fprintf(ficresprobmorprev,"# probabilities of dying before estepm=%d months for people of exact age and weighted probabilities w1*p1j+w2*p2j+... stand dev in()\n",estepm);
       }    fprintf(ficresprobmorprev,"# Age cov=%-d",ij);
        for(j=nlstate+1; j<=(nlstate+ndeath);j++){
     k=1;      fprintf(ficresprobmorprev," p.%-d SE",j);
     fprintf(ficres,"# Covariance\n");      for(i=1; i<=nlstate;i++)
     printf("# Covariance\n");        fprintf(ficresprobmorprev," w%1d p%-d%-d",i,i,j);
     for(i=1;i<=npar;i++){    }  
       /*  if (k>nlstate) k=1;    fprintf(ficresprobmorprev,"\n");
       i1=(i-1)/(ncovmodel*nlstate)+1;    if((ficgp=fopen(optionfilegnuplot,"a"))==NULL) {
       fprintf(ficres,"%s%d%d",alph[k],i1,tab[i]);      printf("Problem with gnuplot file: %s\n", optionfilegnuplot);
       printf("%s%d%d",alph[k],i1,tab[i]);*/      fprintf(ficlog,"Problem with gnuplot file: %s\n", optionfilegnuplot);
       fprintf(ficres,"%3d",i);      exit(0);
       printf("%3d",i);    }
       for(j=1; j<=i;j++){    else{
         fprintf(ficres," %.5e",matcov[i][j]);      fprintf(ficgp,"\n# Routine varevsij");
         printf(" %.5e",matcov[i][j]);    }
       }    if((fichtm=fopen(optionfilehtm,"a"))==NULL) {
       fprintf(ficres,"\n");      printf("Problem with html file: %s\n", optionfilehtm);
       printf("\n");      fprintf(ficlog,"Problem with html file: %s\n", optionfilehtm);
       k++;      exit(0);
     }    }
        else{
     while((c=getc(ficpar))=='#' && c!= EOF){      fprintf(fichtm,"\n<li><h4> Computing probabilities of dying over estepm months as a weighted average (i.e global mortality independent of initial healh state)</h4></li>\n");
       ungetc(c,ficpar);      fprintf(fichtm,"\n<br>%s  <br>\n",digitp);
       fgets(line, MAXLINE, ficpar);    }
       puts(line);    varppt = matrix(nlstate+1,nlstate+ndeath,nlstate+1,nlstate+ndeath);
       fputs(line,ficparo);  
     }    fprintf(ficresvij,"# Variance and covariance of health expectancies e.j \n#  (weighted average of eij where weights are the stable prevalence in health states i\n");
     ungetc(c,ficpar);    fprintf(ficresvij,"# Age");
      for(i=1; i<=nlstate;i++)
     fscanf(ficpar,"agemin=%lf agemax=%lf bage=%lf fage=%lf\n",&agemin,&agemax, &bage, &fage);      for(j=1; j<=nlstate;j++)
            fprintf(ficresvij," Cov(e%1d, e%1d)",i,j);
     if (fage <= 2) {    fprintf(ficresvij,"\n");
       bage = agemin;  
       fage = agemax;    xp=vector(1,npar);
     }    dnewm=matrix(1,nlstate,1,npar);
     doldm=matrix(1,nlstate,1,nlstate);
     fprintf(ficres,"# agemin agemax for life expectancy, bage fage (if mle==0 ie no data nor Max likelihood).\n");    dnewmp= matrix(nlstate+1,nlstate+ndeath,1,npar);
     fprintf(ficres,"agemin=%.0f agemax=%.0f bage=%.0f fage=%.0f\n",agemin,agemax,bage,fage);    doldmp= matrix(nlstate+1,nlstate+ndeath,nlstate+1,nlstate+ndeath);
   
        gradgp=matrix(1,npar,nlstate+1,nlstate+ndeath);
 /*------------ gnuplot -------------*/    gpp=vector(nlstate+1,nlstate+ndeath);
 chdir(pathcd);    gmp=vector(nlstate+1,nlstate+ndeath);
   if((ficgp=fopen("graph.plt","w"))==NULL) {    trgradgp =matrix(nlstate+1,nlstate+ndeath,1,npar); /* mu or p point j*/
     printf("Problem with file graph.gp");goto end;    
   }    if(estepm < stepm){
 #ifdef windows      printf ("Problem %d lower than %d\n",estepm, stepm);
   fprintf(ficgp,"cd \"%s\" \n",pathc);    }
 #endif    else  hstepm=estepm;   
 m=pow(2,cptcoveff);    /* For example we decided to compute the life expectancy with the smallest unit */
      /* hstepm beeing the number of stepms, if hstepm=1 the length of hstepm is stepm. 
  /* 1eme*/       nhstepm is the number of hstepm from age to agelim 
   for (cpt=1; cpt<= nlstate ; cpt ++) {       nstepm is the number of stepm from age to agelin. 
    for (k1=1; k1<= m ; k1 ++) {       Look at hpijx to understand the reason of that which relies in memory size
        and note for a fixed period like k years */
 #ifdef windows    /* We decided (b) to get a life expectancy respecting the most precise curvature of the
     fprintf(ficgp,"set xlabel \"Age\" \nset ylabel \"Probability\" \nset ter gif small size 400,300\nplot [%.f:%.f] \"vpl%s\" every :::%d::%d u 1:2 \"\%%lf",agemin,fage,fileres,k1-1,k1-1);       survival function given by stepm (the optimization length). Unfortunately it
 #endif       means that if the survival funtion is printed every two years of age and if
 #ifdef unix       you sum them up and add 1 year (area under the trapezoids) you won't get the same 
 fprintf(ficgp,"set xlabel \"Age\" \nset ylabel \"Probability\" \nplot [%.f:%.f] \"vpl%s\" u 1:2 \"\%%lf",agemin,fage,fileres);       results. So we changed our mind and took the option of the best precision.
 #endif    */
     hstepm=hstepm/stepm; /* Typically in stepm units, if stepm=6 & estepm=24 , = 24/6 months = 4 */ 
 for (i=1; i<= nlstate ; i ++) {    agelim = AGESUP;
   if (i==cpt) fprintf(ficgp," \%%lf (\%%lf)");    for (age=bage; age<=fage; age ++){ /* If stepm=6 months */
   else fprintf(ficgp," \%%*lf (\%%*lf)");      nstepm=(int) rint((agelim-age)*YEARM/stepm); /* Typically 20 years = 20*12/6=40 */ 
 }      nhstepm = nstepm/hstepm;/* Expressed in hstepm, typically nhstepm=40/4=10 */
     fprintf(ficgp,"\" t\"Stationary prevalence\" w l 0,\"vpl%s\" every :::%d::%d u 1:($2+2*$3) \"\%%lf",fileres,k1-1,k1-1);      p3mat=ma3x(1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);
     for (i=1; i<= nlstate ; i ++) {      gradg=ma3x(0,nhstepm,1,npar,1,nlstate);
   if (i==cpt) fprintf(ficgp," \%%lf (\%%lf)");      gp=matrix(0,nhstepm,1,nlstate);
   else fprintf(ficgp," \%%*lf (\%%*lf)");      gm=matrix(0,nhstepm,1,nlstate);
 }  
   fprintf(ficgp,"\" t\"95\%% CI\" w l 1,\"vpl%s\" every :::%d::%d u 1:($2-2*$3) \"\%%lf",fileres,k1-1,k1-1);  
      for (i=1; i<= nlstate ; i ++) {      for(theta=1; theta <=npar; theta++){
   if (i==cpt) fprintf(ficgp," \%%lf (\%%lf)");        for(i=1; i<=npar; i++){ /* Computes gradient x + delta*/
   else fprintf(ficgp," \%%*lf (\%%*lf)");          xp[i] = x[i] + (i==theta ?delti[theta]:0);
 }          }
      fprintf(ficgp,"\" t\"\" w l 1,\"p%s\" every :::%d::%d u 1:($%d) t\"Observed prevalence \" w l 2",fileres,k1-1,k1-1,2+4*(cpt-1));        hpxij(p3mat,nhstepm,age,hstepm,xp,nlstate,stepm,oldm,savm, ij);  
 #ifdef unix        prevalim(prlim,nlstate,xp,age,oldm,savm,ftolpl,ij);
 fprintf(ficgp,"\nset ter gif small size 400,300");  
 #endif        if (popbased==1) {
 fprintf(ficgp,"\nset out \"v%s%d%d.gif\" \nreplot\n\n",strtok(optionfile, "."),cpt,k1);          if(mobilav ==0){
    }            for(i=1; i<=nlstate;i++)
   }              prlim[i][i]=probs[(int)age][i][ij];
   /*2 eme*/          }else{ /* mobilav */ 
             for(i=1; i<=nlstate;i++)
   for (k1=1; k1<= m ; k1 ++) {              prlim[i][i]=mobaverage[(int)age][i][ij];
     fprintf(ficgp,"set ylabel \"Years\" \nset ter gif small size 400,300\nplot [%.f:%.f] ",agemin,fage);          }
            }
     for (i=1; i<= nlstate+1 ; i ++) {    
       k=2*i;        for(j=1; j<= nlstate; j++){
       fprintf(ficgp,"\"t%s\" every :::%d::%d u 1:2 \"\%%lf",fileres,k1-1,k1-1);          for(h=0; h<=nhstepm; h++){
       for (j=1; j<= nlstate+1 ; j ++) {            for(i=1, gp[h][j]=0.;i<=nlstate;i++)
   if (j==i) fprintf(ficgp," \%%lf (\%%lf)");              gp[h][j] += prlim[i][i]*p3mat[i][j][h];
   else fprintf(ficgp," \%%*lf (\%%*lf)");          }
 }          }
       if (i== 1) fprintf(ficgp,"\" t\"TLE\" w l ,");        /* This for computing probability of death (h=1 means
       else fprintf(ficgp,"\" t\"LE in state (%d)\" w l ,",i-1);           computed over hstepm matrices product = hstepm*stepm months) 
     fprintf(ficgp,"\"t%s\" every :::%d::%d u 1:($2-$3*2) \"\%%lf",fileres,k1-1,k1-1);           as a weighted average of prlim.
       for (j=1; j<= nlstate+1 ; j ++) {        */
         if (j==i) fprintf(ficgp," \%%lf (\%%lf)");        for(j=nlstate+1;j<=nlstate+ndeath;j++){
         else fprintf(ficgp," \%%*lf (\%%*lf)");          for(i=1,gpp[j]=0.; i<= nlstate; i++)
 }              gpp[j] += prlim[i][i]*p3mat[i][j][1];
       fprintf(ficgp,"\" t\"\" w l 0,");        }    
      fprintf(ficgp,"\"t%s\" every :::%d::%d u 1:($2+$3*2) \"\%%lf",fileres,k1-1,k1-1);        /* end probability of death */
       for (j=1; j<= nlstate+1 ; j ++) {  
   if (j==i) fprintf(ficgp," \%%lf (\%%lf)");        for(i=1; i<=npar; i++) /* Computes gradient x - delta */
   else fprintf(ficgp," \%%*lf (\%%*lf)");          xp[i] = x[i] - (i==theta ?delti[theta]:0);
 }          hpxij(p3mat,nhstepm,age,hstepm,xp,nlstate,stepm,oldm,savm, ij);  
       if (i== (nlstate+1)) fprintf(ficgp,"\" t\"\" w l 0");        prevalim(prlim,nlstate,xp,age,oldm,savm,ftolpl,ij);
       else fprintf(ficgp,"\" t\"\" w l 0,");   
     }        if (popbased==1) {
     fprintf(ficgp,"\nset out \"e%s%d.gif\" \nreplot\n\n",strtok(optionfile, "."),k1);          if(mobilav ==0){
   }            for(i=1; i<=nlstate;i++)
                prlim[i][i]=probs[(int)age][i][ij];
   /*3eme*/          }else{ /* mobilav */ 
             for(i=1; i<=nlstate;i++)
   for (k1=1; k1<= m ; k1 ++) {              prlim[i][i]=mobaverage[(int)age][i][ij];
     for (cpt=1; cpt<= nlstate ; cpt ++) {          }
       k=2+nlstate*(cpt-1);        }
       fprintf(ficgp,"set ter gif small size 400,300\nplot [%.f:%.f] \"e%s\" every :::%d::%d u 1:%d t \"e%d1\" w l",agemin,fage,fileres,k1-1,k1-1,k,cpt);  
       for (i=1; i< nlstate ; i ++) {        for(j=1; j<= nlstate; j++){
         fprintf(ficgp,",\"e%s\" every :::%d::%d u 1:%d t \"e%d%d\" w l",fileres,k1-1,k1-1,k+i,cpt,i+1);          for(h=0; h<=nhstepm; h++){
       }            for(i=1, gm[h][j]=0.;i<=nlstate;i++)
       fprintf(ficgp,"\nset out \"exp%s%d%d.gif\" \nreplot\n\n",strtok(optionfile, "."),cpt,k1);              gm[h][j] += prlim[i][i]*p3mat[i][j][h];
     }          }
   }        }
          /* This for computing probability of death (h=1 means
   /* CV preval stat */           computed over hstepm matrices product = hstepm*stepm months) 
   for (k1=1; k1<= m ; k1 ++) {           as a weighted average of prlim.
     for (cpt=1; cpt<nlstate ; cpt ++) {        */
       k=3;        for(j=nlstate+1;j<=nlstate+ndeath;j++){
       fprintf(ficgp,"set xlabel \"Age\" \nset ylabel \"Probability\" \nset ter gif small size 400,300\nplot [%.f:%.f] \"pij%s\" u ($1==%d ? ($3):1/0):($%d/($%d",agemin,agemax,fileres,k1,k+cpt+1,k+1);          for(i=1,gmp[j]=0.; i<= nlstate; i++)
       for (i=1; i< nlstate ; i ++)           gmp[j] += prlim[i][i]*p3mat[i][j][1];
         fprintf(ficgp,"+$%d",k+i+1);        }    
       fprintf(ficgp,")) t\"prev(%d,%d)\" w l",cpt,cpt+1);        /* end probability of death */
        
       l=3+(nlstate+ndeath)*cpt;        for(j=1; j<= nlstate; j++) /* vareij */
       fprintf(ficgp,",\"pij%s\" u ($1==%d ? ($3):1/0):($%d/($%d",fileres,k1,l+cpt+1,l+1);          for(h=0; h<=nhstepm; h++){
       for (i=1; i< nlstate ; i ++) {            gradg[h][theta][j]= (gp[h][j]-gm[h][j])/2./delti[theta];
         l=3+(nlstate+ndeath)*cpt;          }
         fprintf(ficgp,"+$%d",l+i+1);  
       }        for(j=nlstate+1; j<= nlstate+ndeath; j++){ /* var mu */
       fprintf(ficgp,")) t\"prev(%d,%d)\" w l\n",cpt+1,cpt+1);            gradgp[theta][j]= (gpp[j]-gmp[j])/2./delti[theta];
       fprintf(ficgp,"set out \"p%s%d%d.gif\" \nreplot\n\n",strtok(optionfile, "."),cpt,k1);        }
     }  
   }      } /* End theta */
   
   /* proba elementaires */      trgradg =ma3x(0,nhstepm,1,nlstate,1,npar); /* veij */
    for(i=1,jk=1; i <=nlstate; i++){  
     for(k=1; k <=(nlstate+ndeath); k++){      for(h=0; h<=nhstepm; h++) /* veij */
       if (k != i) {        for(j=1; j<=nlstate;j++)
         for(j=1; j <=ncovmodel; j++){          for(theta=1; theta <=npar; theta++)
           /*fprintf(ficgp,"%s%1d%1d=%f ",alph[j],i,k,p[jk]);*/            trgradg[h][j][theta]=gradg[h][theta][j];
           /*fprintf(ficgp,"%s",alph[1]);*/  
           fprintf(ficgp,"p%d=%f ",jk,p[jk]);      for(j=nlstate+1; j<=nlstate+ndeath;j++) /* mu */
           jk++;        for(theta=1; theta <=npar; theta++)
           fprintf(ficgp,"\n");          trgradgp[j][theta]=gradgp[theta][j];
         }    
       }  
     }      hf=hstepm*stepm/YEARM;  /* Duration of hstepm expressed in year unit. */
     }      for(i=1;i<=nlstate;i++)
         for(j=1;j<=nlstate;j++)
   for(jk=1; jk <=m; jk++) {          vareij[i][j][(int)age] =0.;
   fprintf(ficgp,"\nset ter gif small size 400,300\nset log y\nplot  [%.f:%.f] ",agemin,agemax);  
    i=1;      for(h=0;h<=nhstepm;h++){
    for(k2=1; k2<=nlstate; k2++) {        for(k=0;k<=nhstepm;k++){
      k3=i;          matprod2(dnewm,trgradg[h],1,nlstate,1,npar,1,npar,matcov);
      for(k=1; k<=(nlstate+ndeath); k++) {          matprod2(doldm,dnewm,1,nlstate,1,npar,1,nlstate,gradg[k]);
        if (k != k2){          for(i=1;i<=nlstate;i++)
         fprintf(ficgp," exp(p%d+p%d*x",i,i+1);            for(j=1;j<=nlstate;j++)
 ij=1;              vareij[i][j][(int)age] += doldm[i][j]*hf*hf;
         for(j=3; j <=ncovmodel; j++) {        }
           if(((j-2)==Tage[ij]) &&(ij <=cptcovage)) {      }
             fprintf(ficgp,"+p%d*%d*x",i+j-1,nbcode[Tvar[j-2]][codtab[jk][Tvar[j-2]]]);    
             ij++;      /* pptj */
           }      matprod2(dnewmp,trgradgp,nlstate+1,nlstate+ndeath,1,npar,1,npar,matcov);
           else      matprod2(doldmp,dnewmp,nlstate+1,nlstate+ndeath,1,npar,nlstate+1,nlstate+ndeath,gradgp);
           fprintf(ficgp,"+p%d*%d",i+j-1,nbcode[Tvar[j-2]][codtab[jk][j-2]]);      for(j=nlstate+1;j<=nlstate+ndeath;j++)
         }        for(i=nlstate+1;i<=nlstate+ndeath;i++)
           fprintf(ficgp,")/(1");          varppt[j][i]=doldmp[j][i];
              /* end ppptj */
         for(k1=1; k1 <=nlstate; k1++){        /*  x centered again */
           fprintf(ficgp,"+exp(p%d+p%d*x",k3+(k1-1)*ncovmodel,k3+(k1-1)*ncovmodel+1);      hpxij(p3mat,nhstepm,age,hstepm,x,nlstate,stepm,oldm,savm, ij);  
 ij=1;      prevalim(prlim,nlstate,x,age,oldm,savm,ftolpl,ij);
           for(j=3; j <=ncovmodel; j++){   
           if(((j-2)==Tage[ij]) &&(ij <=cptcovage)) {      if (popbased==1) {
             fprintf(ficgp,"+p%d*%d*x",k3+(k1-1)*ncovmodel+1+j-2,nbcode[Tvar[j-2]][codtab[jk][Tvar[j-2]]]);        if(mobilav ==0){
             ij++;          for(i=1; i<=nlstate;i++)
           }            prlim[i][i]=probs[(int)age][i][ij];
           else        }else{ /* mobilav */ 
             fprintf(ficgp,"+p%d*%d",k3+(k1-1)*ncovmodel+1+j-2,nbcode[Tvar[j-2]][codtab[jk][j-2]]);          for(i=1; i<=nlstate;i++)
           }            prlim[i][i]=mobaverage[(int)age][i][ij];
           fprintf(ficgp,")");        }
         }      }
         fprintf(ficgp,") t \"p%d%d\" ", k2,k);               
         if ((k+k2)!= (nlstate*2+ndeath)) fprintf(ficgp,",");      /* This for computing probability of death (h=1 means
         i=i+ncovmodel;         computed over hstepm (estepm) matrices product = hstepm*stepm months) 
        }         as a weighted average of prlim.
      }      */
    }      for(j=nlstate+1;j<=nlstate+ndeath;j++){
    fprintf(ficgp,"\nset out \"pe%s%d.gif\" \nreplot\n\n",strtok(optionfile, "."),jk);        for(i=1,gmp[j]=0.;i<= nlstate; i++) 
   }          gmp[j] += prlim[i][i]*p3mat[i][j][1]; 
          }    
   fclose(ficgp);      /* end probability of death */
      
 chdir(path);      fprintf(ficresprobmorprev,"%3d %d ",(int) age, ij);
     free_matrix(agev,1,maxwav,1,imx);      for(j=nlstate+1; j<=(nlstate+ndeath);j++){
     free_ivector(wav,1,imx);        fprintf(ficresprobmorprev," %11.3e %11.3e",gmp[j], sqrt(varppt[j][j]));
     free_imatrix(dh,1,lastpass-firstpass+1,1,imx);        for(i=1; i<=nlstate;i++){
     free_imatrix(mw,1,lastpass-firstpass+1,1,imx);          fprintf(ficresprobmorprev," %11.3e %11.3e ",prlim[i][i],p3mat[i][j][1]);
            }
     free_imatrix(s,1,maxwav+1,1,n);      } 
          fprintf(ficresprobmorprev,"\n");
      
     free_ivector(num,1,n);      fprintf(ficresvij,"%.0f ",age );
     free_vector(agedc,1,n);      for(i=1; i<=nlstate;i++)
     free_vector(weight,1,n);        for(j=1; j<=nlstate;j++){
     /*free_matrix(covar,1,NCOVMAX,1,n);*/          fprintf(ficresvij," %.4f", vareij[i][j][(int)age]);
     fclose(ficparo);        }
     fclose(ficres);      fprintf(ficresvij,"\n");
     /*  }*/      free_matrix(gp,0,nhstepm,1,nlstate);
          free_matrix(gm,0,nhstepm,1,nlstate);
    /*________fin mle=1_________*/      free_ma3x(gradg,0,nhstepm,1,npar,1,nlstate);
          free_ma3x(trgradg,0,nhstepm,1,nlstate,1,npar);
       free_ma3x(p3mat,1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);
      } /* End age */
     /* No more information from the sample is required now */    free_vector(gpp,nlstate+1,nlstate+ndeath);
   /* Reads comments: lines beginning with '#' */    free_vector(gmp,nlstate+1,nlstate+ndeath);
   while((c=getc(ficpar))=='#' && c!= EOF){    free_matrix(gradgp,1,npar,nlstate+1,nlstate+ndeath);
     ungetc(c,ficpar);    free_matrix(trgradgp,nlstate+1,nlstate+ndeath,1,npar); /* mu or p point j*/
     fgets(line, MAXLINE, ficpar);    fprintf(ficgp,"\nset noparametric;set nolabel; set ter png small;set size 0.65, 0.65");
     puts(line);    /* for(j=nlstate+1; j<= nlstate+ndeath; j++){ *//* Only the first actually */
     fputs(line,ficparo);    fprintf(ficgp,"\n set log y; set nolog x;set xlabel \"Age\"; set ylabel \"Force of mortality (year-1)\";");
   }  /*   fprintf(ficgp,"\n plot \"%s\"  u 1:($3*%6.3f) not w l 1 ",fileresprobmorprev,YEARM/estepm); */
   ungetc(c,ficpar);  /*   fprintf(ficgp,"\n replot \"%s\"  u 1:(($3+1.96*$4)*%6.3f) t \"95\%% interval\" w l 2 ",fileresprobmorprev,YEARM/estepm); */
    /*   fprintf(ficgp,"\n replot \"%s\"  u 1:(($3-1.96*$4)*%6.3f) not w l 2 ",fileresprobmorprev,YEARM/estepm); */
   fscanf(ficpar,"agemin=%lf agemax=%lf bage=%lf fage=%lf\n",&agemin,&agemax, &bage, &fage);    fprintf(ficgp,"\n plot \"%s\"  u 1:($3) not w l 1 ",fileresprobmorprev);
   printf("agemin=%.0f agemax=%.0f bage=%.0f fage=%.0f\n",agemin,agemax, bage, fage);    fprintf(ficgp,"\n replot \"%s\"  u 1:(($3+1.96*$4)) t \"95\%% interval\" w l 2 ",fileresprobmorprev);
   fprintf(ficparo,"agemin=%.0f agemax=%.0f bage=%.0f fage=%.0f\n",agemin,agemax,bage,fage);    fprintf(ficgp,"\n replot \"%s\"  u 1:(($3-1.96*$4)) not w l 2 ",fileresprobmorprev);
 /*--------- index.htm --------*/    fprintf(fichtm,"\n<br> File (multiple files are possible if covariates are present): <A href=\"%s\">%s</a>\n",fileresprobmorprev,fileresprobmorprev);
     fprintf(fichtm,"\n<br> Probability is computed over estepm=%d months. <br> <img src=\"varmuptjgr%s%s%s.png\"> <br>\n", estepm,digitp,optionfilefiname,digit);
   if((fichtm=fopen("index.htm","w"))==NULL)    {    /*  fprintf(fichtm,"\n<br> Probability is computed over estepm=%d months and then divided by estepm and multiplied by %.0f in order to have the probability to die over a year <br> <img src=\"varmuptjgr%s%s.png\"> <br>\n", stepm,YEARM,digitp,digit);
     printf("Problem with index.htm \n");goto end;  */
   }    fprintf(ficgp,"\nset out \"varmuptjgr%s%s%s.png\";replot;",digitp,optionfilefiname,digit);
   
  fprintf(fichtm,"<body><ul> <font size=\"6\">Imach, Version 0.64a </font> <hr size=\"2\" color=\"#EC5E5E\">    free_vector(xp,1,npar);
 Titre=%s <br>Datafile=%s Firstpass=%d Lastpass=%d Stepm=%d Weight=%d Model=%s<br>    free_matrix(doldm,1,nlstate,1,nlstate);
 Total number of observations=%d <br>    free_matrix(dnewm,1,nlstate,1,npar);
 Interval (in months) between two waves: Min=%d Max=%d Mean=%.2lf<br>    free_matrix(doldmp,nlstate+1,nlstate+ndeath,nlstate+1,nlstate+ndeath);
 <hr  size=\"2\" color=\"#EC5E5E\">    free_matrix(dnewmp,nlstate+1,nlstate+ndeath,1,npar);
 <li>Outputs files<br><br>\n    free_matrix(varppt,nlstate+1,nlstate+ndeath,nlstate+1,nlstate+ndeath);
         - Observed prevalence in each state: <a href=\"p%s\">p%s</a> <br>\n    if (mobilav!=0) free_ma3x(mobaverage,1, AGESUP,1,NCOVMAX, 1,NCOVMAX);
 - Estimated parameters and the covariance matrix: <a href=\"%s\">%s</a> <br>    fclose(ficresprobmorprev);
         - Stationary prevalence in each state: <a href=\"pl%s\">pl%s</a> <br>    fclose(ficgp);
         - Transition probabilities: <a href=\"pij%s\">pij%s</a><br>    fclose(fichtm);
         - Copy of the parameter file: <a href=\"o%s\">o%s</a><br>  }  
         - Life expectancies by age and initial health status: <a href=\"e%s\">e%s</a> <br>  
         - Variances of life expectancies by age and initial health status: <a href=\"v%s\">v%s</a><br>  /************ Variance of prevlim ******************/
         - Health expectancies with their variances: <a href=\"t%s\">t%s</a> <br>  void varprevlim(char fileres[], double **varpl, double **matcov, double x[], double delti[], int nlstate, int stepm, double bage, double fage, double **oldm, double **savm, double **prlim, double ftolpl, int ij)
         - Standard deviation of stationary prevalences: <a href=\"vpl%s\">vpl%s</a> <br><br>",title,datafile,firstpass,lastpass,stepm, weightopt,model,imx,jmin,jmax,jmean,fileres,fileres,fileres,fileres,fileres,fileres,fileres,fileres,fileres,fileres,fileres,fileres,fileres,fileres,fileres,fileres,fileres,fileres);  {
     /* Variance of prevalence limit */
  fprintf(fichtm," <li>Graphs</li><p>");    /*  double **prevalim(double **prlim, int nlstate, double *xp, double age, double **oldm, double **savm,double ftolpl);*/
     double **newm;
  m=cptcoveff;    double **dnewm,**doldm;
  if (cptcovn < 1) {m=1;ncodemax[1]=1;}    int i, j, nhstepm, hstepm;
     int k, cptcode;
  j1=0;    double *xp;
  for(k1=1; k1<=m;k1++){    double *gp, *gm;
    for(i1=1; i1<=ncodemax[k1];i1++){    double **gradg, **trgradg;
        j1++;    double age,agelim;
        if (cptcovn > 0) {    int theta;
          fprintf(fichtm,"<hr  size=\"2\" color=\"#EC5E5E\">************ Results for covariates");     
          for (cpt=1; cpt<=cptcoveff;cpt++)    fprintf(ficresvpl,"# Standard deviation of stable prevalences \n");
            fprintf(fichtm," V%d=%d ",Tvaraff[cpt],nbcode[Tvaraff[cpt]][codtab[j1][cpt]]);    fprintf(ficresvpl,"# Age");
          fprintf(fichtm," ************\n<hr size=\"2\" color=\"#EC5E5E\">");    for(i=1; i<=nlstate;i++)
        }        fprintf(ficresvpl," %1d-%1d",i,i);
        fprintf(fichtm,"<br>- Probabilities: pe%s%d.gif<br>    fprintf(ficresvpl,"\n");
 <img src=\"pe%s%d.gif\">",strtok(optionfile, "."),j1,strtok(optionfile, "."),j1);      
        for(cpt=1; cpt<nlstate;cpt++){    xp=vector(1,npar);
          fprintf(fichtm,"<br>- Prevalence of disability : p%s%d%d.gif<br>    dnewm=matrix(1,nlstate,1,npar);
 <img src=\"p%s%d%d.gif\">",strtok(optionfile, "."),cpt,j1,strtok(optionfile, "."),cpt,j1);    doldm=matrix(1,nlstate,1,nlstate);
        }    
     for(cpt=1; cpt<=nlstate;cpt++) {    hstepm=1*YEARM; /* Every year of age */
        fprintf(fichtm,"<br>- Observed and stationary prevalence (with confident    hstepm=hstepm/stepm; /* Typically in stepm units, if j= 2 years, = 2/6 months = 4 */ 
 interval) in state (%d): v%s%d%d.gif <br>    agelim = AGESUP;
 <img src=\"v%s%d%d.gif\">",cpt,strtok(optionfile, "."),cpt,j1,strtok(optionfile, "."),cpt,j1);      for (age=bage; age<=fage; age ++){ /* If stepm=6 months */
      }      nhstepm=(int) rint((agelim-age)*YEARM/stepm); /* Typically 20 years = 20*12/6=40 */ 
      for(cpt=1; cpt<=nlstate;cpt++) {      if (stepm >= YEARM) hstepm=1;
         fprintf(fichtm,"\n<br>- Health life expectancies by age and initial health state (%d): exp%s%d%d.gif <br>      nhstepm = nhstepm/hstepm; /* Typically 40/4=10 */
 <img src=\"exp%s%d%d.gif\">",cpt,strtok(optionfile, "."),cpt,j1,strtok(optionfile, "."),cpt,j1);      gradg=matrix(1,npar,1,nlstate);
      }      gp=vector(1,nlstate);
      fprintf(fichtm,"\n<br>- Total life expectancy by age and      gm=vector(1,nlstate);
 health expectancies in states (1) and (2): e%s%d.gif<br>  
 <img src=\"e%s%d.gif\">",strtok(optionfile, "."),j1,strtok(optionfile, "."),j1);      for(theta=1; theta <=npar; theta++){
 fprintf(fichtm,"\n</body>");        for(i=1; i<=npar; i++){ /* Computes gradient */
    }          xp[i] = x[i] + (i==theta ?delti[theta]:0);
  }        }
 fclose(fichtm);        prevalim(prlim,nlstate,xp,age,oldm,savm,ftolpl,ij);
         for(i=1;i<=nlstate;i++)
   /*--------------- Prevalence limit --------------*/          gp[i] = prlim[i][i];
        
   strcpy(filerespl,"pl");        for(i=1; i<=npar; i++) /* Computes gradient */
   strcat(filerespl,fileres);          xp[i] = x[i] - (i==theta ?delti[theta]:0);
   if((ficrespl=fopen(filerespl,"w"))==NULL) {        prevalim(prlim,nlstate,xp,age,oldm,savm,ftolpl,ij);
     printf("Problem with Prev limit resultfile: %s\n", filerespl);goto end;        for(i=1;i<=nlstate;i++)
   }          gm[i] = prlim[i][i];
   printf("Computing prevalence limit: result on file '%s' \n", filerespl);  
   fprintf(ficrespl,"#Prevalence limit\n");        for(i=1;i<=nlstate;i++)
   fprintf(ficrespl,"#Age ");          gradg[theta][i]= (gp[i]-gm[i])/2./delti[theta];
   for(i=1; i<=nlstate;i++) fprintf(ficrespl,"%d-%d ",i,i);      } /* End theta */
   fprintf(ficrespl,"\n");  
        trgradg =matrix(1,nlstate,1,npar);
   prlim=matrix(1,nlstate,1,nlstate);  
   pmmij= matrix(1,nlstate+ndeath,1,nlstate+ndeath); /* creation */      for(j=1; j<=nlstate;j++)
   oldms= matrix(1,nlstate+ndeath,1,nlstate+ndeath); /* creation */        for(theta=1; theta <=npar; theta++)
   newms= matrix(1,nlstate+ndeath,1,nlstate+ndeath); /* creation */          trgradg[j][theta]=gradg[theta][j];
   savms= matrix(1,nlstate+ndeath,1,nlstate+ndeath); /* creation */  
   oldm=oldms; newm=newms; savm=savms; /* Keeps fixed addresses to free */      for(i=1;i<=nlstate;i++)
   k=0;        varpl[i][(int)age] =0.;
   agebase=agemin;      matprod2(dnewm,trgradg,1,nlstate,1,npar,1,npar,matcov);
   agelim=agemax;      matprod2(doldm,dnewm,1,nlstate,1,npar,1,nlstate,gradg);
   ftolpl=1.e-10;      for(i=1;i<=nlstate;i++)
   i1=cptcoveff;        varpl[i][(int)age] = doldm[i][i]; /* Covariances are useless */
   if (cptcovn < 1){i1=1;}  
       fprintf(ficresvpl,"%.0f ",age );
   for(cptcov=1;cptcov<=i1;cptcov++){      for(i=1; i<=nlstate;i++)
     for(cptcod=1;cptcod<=ncodemax[cptcov];cptcod++){        fprintf(ficresvpl," %.5f (%.5f)",prlim[i][i],sqrt(varpl[i][(int)age]));
         k=k+1;      fprintf(ficresvpl,"\n");
         /*printf("cptcov=%d cptcod=%d codtab=%d nbcode=%d\n",cptcov, cptcod,Tcode[cptcode],codtab[cptcod][cptcov]);*/      free_vector(gp,1,nlstate);
         fprintf(ficrespl,"\n#******");      free_vector(gm,1,nlstate);
         for(j=1;j<=cptcoveff;j++)      free_matrix(gradg,1,npar,1,nlstate);
           fprintf(ficrespl," V%d=%d ",Tvaraff[j],nbcode[Tvaraff[j]][codtab[k][j]]);      free_matrix(trgradg,1,nlstate,1,npar);
         fprintf(ficrespl,"******\n");    } /* End age */
          
         for (age=agebase; age<=agelim; age++){    free_vector(xp,1,npar);
           prevalim(prlim, nlstate, p, age, oldm, savm,ftolpl,k);    free_matrix(doldm,1,nlstate,1,npar);
           fprintf(ficrespl,"%.0f",age );    free_matrix(dnewm,1,nlstate,1,nlstate);
           for(i=1; i<=nlstate;i++)  
           fprintf(ficrespl," %.5f", prlim[i][i]);  }
           fprintf(ficrespl,"\n");  
         }  /************ Variance of one-step probabilities  ******************/
       }  void varprob(char optionfilefiname[], double **matcov, double x[], double delti[], int nlstate, double bage, double fage, int ij, int *Tvar, int **nbcode, int *ncodemax)
     }  {
   fclose(ficrespl);    int i, j=0,  i1, k1, l1, t, tj;
   /*------------- h Pij x at various ages ------------*/    int k2, l2, j1,  z1;
      int k=0,l, cptcode;
   strcpy(filerespij,"pij");  strcat(filerespij,fileres);    int first=1, first1;
   if((ficrespij=fopen(filerespij,"w"))==NULL) {    double cv12, mu1, mu2, lc1, lc2, v12, v21, v11, v22,v1,v2, c12, tnalp;
     printf("Problem with Pij resultfile: %s\n", filerespij);goto end;    double **dnewm,**doldm;
   }    double *xp;
   printf("Computing pij: result on file '%s' \n", filerespij);    double *gp, *gm;
      double **gradg, **trgradg;
   stepsize=(int) (stepm+YEARM-1)/YEARM;    double **mu;
   if (stepm<=24) stepsize=2;    double age,agelim, cov[NCOVMAX];
     double std=2.0; /* Number of standard deviation wide of confidence ellipsoids */
   agelim=AGESUP;    int theta;
   hstepm=stepsize*YEARM; /* Every year of age */    char fileresprob[FILENAMELENGTH];
   hstepm=hstepm/stepm; /* Typically 2 years, = 2/6 months = 4 */    char fileresprobcov[FILENAMELENGTH];
      char fileresprobcor[FILENAMELENGTH];
   k=0;  
   for(cptcov=1;cptcov<=i1;cptcov++){    double ***varpij;
     for(cptcod=1;cptcod<=ncodemax[cptcov];cptcod++){  
       k=k+1;    strcpy(fileresprob,"prob"); 
         fprintf(ficrespij,"\n#****** ");    strcat(fileresprob,fileres);
         for(j=1;j<=cptcoveff;j++)    if((ficresprob=fopen(fileresprob,"w"))==NULL) {
           fprintf(ficrespij,"V%d=%d ",Tvaraff[j],nbcode[Tvaraff[j]][codtab[k][j]]);      printf("Problem with resultfile: %s\n", fileresprob);
         fprintf(ficrespij,"******\n");      fprintf(ficlog,"Problem with resultfile: %s\n", fileresprob);
            }
         for (agedeb=fage; agedeb>=bage; agedeb--){ /* If stepm=6 months */    strcpy(fileresprobcov,"probcov"); 
           nhstepm=(int) rint((agelim-agedeb)*YEARM/stepm); /* Typically 20 years = 20*12/6=40 */    strcat(fileresprobcov,fileres);
           nhstepm = nhstepm/hstepm; /* Typically 40/4=10 */    if((ficresprobcov=fopen(fileresprobcov,"w"))==NULL) {
           p3mat=ma3x(1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);      printf("Problem with resultfile: %s\n", fileresprobcov);
           oldm=oldms;savm=savms;      fprintf(ficlog,"Problem with resultfile: %s\n", fileresprobcov);
           hpxij(p3mat,nhstepm,agedeb,hstepm,p,nlstate,stepm,oldm,savm, k);      }
           fprintf(ficrespij,"# Age");    strcpy(fileresprobcor,"probcor"); 
           for(i=1; i<=nlstate;i++)    strcat(fileresprobcor,fileres);
             for(j=1; j<=nlstate+ndeath;j++)    if((ficresprobcor=fopen(fileresprobcor,"w"))==NULL) {
               fprintf(ficrespij," %1d-%1d",i,j);      printf("Problem with resultfile: %s\n", fileresprobcor);
           fprintf(ficrespij,"\n");      fprintf(ficlog,"Problem with resultfile: %s\n", fileresprobcor);
           for (h=0; h<=nhstepm; h++){    }
             fprintf(ficrespij,"%d %.0f %.0f",k,agedeb, agedeb+ h*hstepm/YEARM*stepm );    printf("Computing standard deviation of one-step probabilities: result on file '%s' \n",fileresprob);
             for(i=1; i<=nlstate;i++)    fprintf(ficlog,"Computing standard deviation of one-step probabilities: result on file '%s' \n",fileresprob);
               for(j=1; j<=nlstate+ndeath;j++)    printf("Computing matrix of variance covariance of one-step probabilities: result on file '%s' \n",fileresprobcov);
                 fprintf(ficrespij," %.5f", p3mat[i][j][h]);    fprintf(ficlog,"Computing matrix of variance covariance of one-step probabilities: result on file '%s' \n",fileresprobcov);
             fprintf(ficrespij,"\n");    printf("and correlation matrix of one-step probabilities: result on file '%s' \n",fileresprobcor);
           }    fprintf(ficlog,"and correlation matrix of one-step probabilities: result on file '%s' \n",fileresprobcor);
           free_ma3x(p3mat,1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);    
           fprintf(ficrespij,"\n");    fprintf(ficresprob,"#One-step probabilities and stand. devi in ()\n");
         }    fprintf(ficresprob,"# Age");
     }    fprintf(ficresprobcov,"#One-step probabilities and covariance matrix\n");
   }    fprintf(ficresprobcov,"# Age");
     fprintf(ficresprobcor,"#One-step probabilities and correlation matrix\n");
   fclose(ficrespij);    fprintf(ficresprobcov,"# Age");
   
   /*---------- Health expectancies and variances ------------*/  
     for(i=1; i<=nlstate;i++)
   strcpy(filerest,"t");      for(j=1; j<=(nlstate+ndeath);j++){
   strcat(filerest,fileres);        fprintf(ficresprob," p%1d-%1d (SE)",i,j);
   if((ficrest=fopen(filerest,"w"))==NULL) {        fprintf(ficresprobcov," p%1d-%1d ",i,j);
     printf("Problem with total LE resultfile: %s\n", filerest);goto end;        fprintf(ficresprobcor," p%1d-%1d ",i,j);
   }      }  
   printf("Computing Total LEs with variances: file '%s' \n", filerest);   /* fprintf(ficresprob,"\n");
     fprintf(ficresprobcov,"\n");
     fprintf(ficresprobcor,"\n");
   strcpy(filerese,"e");   */
   strcat(filerese,fileres);   xp=vector(1,npar);
   if((ficreseij=fopen(filerese,"w"))==NULL) {    dnewm=matrix(1,(nlstate)*(nlstate+ndeath),1,npar);
     printf("Problem with Health Exp. resultfile: %s\n", filerese); exit(0);    doldm=matrix(1,(nlstate)*(nlstate+ndeath),1,(nlstate)*(nlstate+ndeath));
   }    mu=matrix(1,(nlstate)*(nlstate+ndeath), (int) bage, (int)fage);
   printf("Computing Health Expectancies: result on file '%s' \n", filerese);    varpij=ma3x(1,nlstate*(nlstate+ndeath),1,nlstate*(nlstate+ndeath),(int) bage, (int) fage);
     first=1;
  strcpy(fileresv,"v");    if((ficgp=fopen(optionfilegnuplot,"a"))==NULL) {
   strcat(fileresv,fileres);      printf("Problem with gnuplot file: %s\n", optionfilegnuplot);
   if((ficresvij=fopen(fileresv,"w"))==NULL) {      fprintf(ficlog,"Problem with gnuplot file: %s\n", optionfilegnuplot);
     printf("Problem with variance resultfile: %s\n", fileresv);exit(0);      exit(0);
   }    }
   printf("Computing Variance-covariance of DFLEs: file '%s' \n", fileresv);    else{
       fprintf(ficgp,"\n# Routine varprob");
   k=0;    }
   for(cptcov=1;cptcov<=i1;cptcov++){    if((fichtm=fopen(optionfilehtm,"a"))==NULL) {
     for(cptcod=1;cptcod<=ncodemax[cptcov];cptcod++){      printf("Problem with html file: %s\n", optionfilehtm);
       k=k+1;      fprintf(ficlog,"Problem with html file: %s\n", optionfilehtm);
       fprintf(ficrest,"\n#****** ");      exit(0);
       for(j=1;j<=cptcoveff;j++)    }
         fprintf(ficrest,"V%d=%d ",Tvaraff[j],nbcode[Tvaraff[j]][codtab[k][j]]);    else{
       fprintf(ficrest,"******\n");      fprintf(fichtm,"\n<li><h4> Computing and drawing one step probabilities with their confidence intervals</h4></li>\n");
       fprintf(fichtm,"\n");
       fprintf(ficreseij,"\n#****** ");  
       for(j=1;j<=cptcoveff;j++)      fprintf(fichtm,"\n<li><h4> Computing matrix of variance-covariance of step probabilities</h4></li>\n");
         fprintf(ficreseij,"V%d=%d ",j,nbcode[j][codtab[k][j]]);      fprintf(fichtm,"\nWe have drawn ellipsoids of confidence around the p<inf>ij</inf>, p<inf>kl</inf> to understand the covariance between two incidences. They are expressed in year<sup>-1</sup> in order to be less dependent of stepm.<br>\n");
       fprintf(ficreseij,"******\n");      fprintf(fichtm,"\n<br> We have drawn x'cov<sup>-1</sup>x = 4 where x is the column vector (pij,pkl). It means that if pij and pkl where uncorrelated the (2X2) matrix would have been (1/(var pij), 0 , 0, 1/(var pkl)), and the confidence interval would be 2 standard deviations wide on each axis. <br> When both incidences are correlated we diagonalised the inverse of the covariance matrix and made the appropriate rotation.<br> \n");
   
       fprintf(ficresvij,"\n#****** ");    }
       for(j=1;j<=cptcoveff;j++)  
         fprintf(ficresvij,"V%d=%d ",j,nbcode[j][codtab[k][j]]);    cov[1]=1;
       fprintf(ficresvij,"******\n");    tj=cptcoveff;
     if (cptcovn<1) {tj=1;ncodemax[1]=1;}
       eij=ma3x(1,nlstate,1,nlstate,(int) bage, (int) fage);    j1=0;
       oldm=oldms;savm=savms;    for(t=1; t<=tj;t++){
       evsij(fileres, eij, p, nlstate, stepm, (int) bage, (int)fage, oldm, savm, k);        for(i1=1; i1<=ncodemax[t];i1++){ 
       vareij=ma3x(1,nlstate,1,nlstate,(int) bage, (int) fage);        j1++;
       oldm=oldms;savm=savms;        if  (cptcovn>0) {
       varevsij(fileres, vareij, matcov, p, delti, nlstate, stepm, (int) bage, (int) fage, oldm, savm, prlim, ftolpl,k);          fprintf(ficresprob, "\n#********** Variable "); 
                for (z1=1; z1<=cptcoveff; z1++) fprintf(ficresprob, "V%d=%d ",Tvaraff[z1],nbcode[Tvaraff[z1]][codtab[j1][z1]]);
       fprintf(ficrest,"#Total LEs with variances: e.. (std) ");          fprintf(ficresprob, "**********\n#\n");
       for (i=1;i<=nlstate;i++) fprintf(ficrest,"e.%d (std) ",i);          fprintf(ficresprobcov, "\n#********** Variable "); 
       fprintf(ficrest,"\n");          for (z1=1; z1<=cptcoveff; z1++) fprintf(ficresprobcov, "V%d=%d ",Tvaraff[z1],nbcode[Tvaraff[z1]][codtab[j1][z1]]);
                  fprintf(ficresprobcov, "**********\n#\n");
       hf=1;          
       if (stepm >= YEARM) hf=stepm/YEARM;          fprintf(ficgp, "\n#********** Variable "); 
       epj=vector(1,nlstate+1);          for (z1=1; z1<=cptcoveff; z1++) fprintf(ficgp, " V%d=%d ",Tvaraff[z1],nbcode[Tvaraff[z1]][codtab[j1][z1]]);
       for(age=bage; age <=fage ;age++){          fprintf(ficgp, "**********\n#\n");
         prevalim(prlim, nlstate, p, age, oldm, savm,ftolpl,k);          
         fprintf(ficrest," %.0f",age);          
         for(j=1, epj[nlstate+1]=0.;j <=nlstate;j++){          fprintf(fichtm, "\n<hr  size=\"2\" color=\"#EC5E5E\">********** Variable "); 
           for(i=1, epj[j]=0.;i <=nlstate;i++) {          for (z1=1; z1<=cptcoveff; z1++) fprintf(fichtm, "V%d=%d ",Tvaraff[z1],nbcode[Tvaraff[z1]][codtab[j1][z1]]);
             epj[j] += prlim[i][i]*hf*eij[i][j][(int)age];          fprintf(fichtm, "**********\n<hr size=\"2\" color=\"#EC5E5E\">");
           }          
           epj[nlstate+1] +=epj[j];          fprintf(ficresprobcor, "\n#********** Variable ");    
         }          for (z1=1; z1<=cptcoveff; z1++) fprintf(ficresprobcor, "V%d=%d ",Tvaraff[z1],nbcode[Tvaraff[z1]][codtab[j1][z1]]);
         for(i=1, vepp=0.;i <=nlstate;i++)          fprintf(ficresprobcor, "**********\n#");    
           for(j=1;j <=nlstate;j++)        }
             vepp += vareij[i][j][(int)age];        
         fprintf(ficrest," %.2f (%.2f)", epj[nlstate+1],hf*sqrt(vepp));        for (age=bage; age<=fage; age ++){ 
         for(j=1;j <=nlstate;j++){          cov[2]=age;
           fprintf(ficrest," %.2f (%.2f)", epj[j],hf*sqrt(vareij[j][j][(int)age]));          for (k=1; k<=cptcovn;k++) {
         }            cov[2+k]=nbcode[Tvar[k]][codtab[j1][Tvar[k]]];
         fprintf(ficrest,"\n");          }
       }          for (k=1; k<=cptcovage;k++) cov[2+Tage[k]]=cov[2+Tage[k]]*cov[2];
     }          for (k=1; k<=cptcovprod;k++)
   }            cov[2+Tprod[k]]=nbcode[Tvard[k][1]][codtab[ij][Tvard[k][1]]]*nbcode[Tvard[k][2]][codtab[ij][Tvard[k][2]]];
                  
  fclose(ficreseij);          gradg=matrix(1,npar,1,(nlstate)*(nlstate+ndeath));
  fclose(ficresvij);          trgradg=matrix(1,(nlstate)*(nlstate+ndeath),1,npar);
   fclose(ficrest);          gp=vector(1,(nlstate)*(nlstate+ndeath));
   fclose(ficpar);          gm=vector(1,(nlstate)*(nlstate+ndeath));
   free_vector(epj,1,nlstate+1);      
   /*  scanf("%d ",i); */          for(theta=1; theta <=npar; theta++){
             for(i=1; i<=npar; i++)
   /*------- Variance limit prevalence------*/                xp[i] = x[i] + (i==theta ?delti[theta]:(double)0);
             
 strcpy(fileresvpl,"vpl");            pmij(pmmij,cov,ncovmodel,xp,nlstate);
   strcat(fileresvpl,fileres);            
   if((ficresvpl=fopen(fileresvpl,"w"))==NULL) {            k=0;
     printf("Problem with variance prev lim resultfile: %s\n", fileresvpl);            for(i=1; i<= (nlstate); i++){
     exit(0);              for(j=1; j<=(nlstate+ndeath);j++){
   }                k=k+1;
   printf("Computing Variance-covariance of Prevalence limit: file '%s' \n", fileresvpl);                gp[k]=pmmij[i][j];
               }
  k=0;            }
  for(cptcov=1;cptcov<=i1;cptcov++){            
    for(cptcod=1;cptcod<=ncodemax[cptcov];cptcod++){            for(i=1; i<=npar; i++)
      k=k+1;              xp[i] = x[i] - (i==theta ?delti[theta]:(double)0);
      fprintf(ficresvpl,"\n#****** ");      
      for(j=1;j<=cptcoveff;j++)            pmij(pmmij,cov,ncovmodel,xp,nlstate);
        fprintf(ficresvpl,"V%d=%d ",Tvaraff[j],nbcode[Tvaraff[j]][codtab[k][j]]);            k=0;
      fprintf(ficresvpl,"******\n");            for(i=1; i<=(nlstate); i++){
                    for(j=1; j<=(nlstate+ndeath);j++){
      varpl=matrix(1,nlstate,(int) bage, (int) fage);                k=k+1;
      oldm=oldms;savm=savms;                gm[k]=pmmij[i][j];
      varprevlim(fileres, varpl, matcov, p, delti, nlstate, stepm, (int) bage, (int) fage, oldm, savm, prlim, ftolpl,k);              }
    }            }
  }       
             for(i=1; i<= (nlstate)*(nlstate+ndeath); i++) 
   fclose(ficresvpl);              gradg[theta][i]=(gp[i]-gm[i])/(double)2./delti[theta];  
           }
   /*---------- End : free ----------------*/  
   free_matrix(varpl,1,nlstate,(int) bage, (int)fage);          for(j=1; j<=(nlstate)*(nlstate+ndeath);j++)
              for(theta=1; theta <=npar; theta++)
   free_ma3x(vareij,1,nlstate,1,nlstate,(int) bage, (int)fage);              trgradg[j][theta]=gradg[theta][j];
   free_ma3x(eij,1,nlstate,1,nlstate,(int) bage, (int)fage);          
            matprod2(dnewm,trgradg,1,(nlstate)*(nlstate+ndeath),1,npar,1,npar,matcov); 
            matprod2(doldm,dnewm,1,(nlstate)*(nlstate+ndeath),1,npar,1,(nlstate)*(nlstate+ndeath),gradg);
   free_matrix(pmmij,1,nlstate+ndeath,1,nlstate+ndeath);          free_vector(gp,1,(nlstate+ndeath)*(nlstate+ndeath));
   free_matrix(oldms, 1,nlstate+ndeath,1,nlstate+ndeath);          free_vector(gm,1,(nlstate+ndeath)*(nlstate+ndeath));
   free_matrix(newms, 1,nlstate+ndeath,1,nlstate+ndeath);          free_matrix(trgradg,1,(nlstate+ndeath)*(nlstate+ndeath),1,npar);
   free_matrix(savms, 1,nlstate+ndeath,1,nlstate+ndeath);          free_matrix(gradg,1,(nlstate+ndeath)*(nlstate+ndeath),1,npar);
    
   free_matrix(matcov,1,npar,1,npar);          pmij(pmmij,cov,ncovmodel,x,nlstate);
   free_vector(delti,1,npar);          
            k=0;
   free_ma3x(param,1,nlstate,1, nlstate+ndeath-1,1,ncovmodel);          for(i=1; i<=(nlstate); i++){
             for(j=1; j<=(nlstate+ndeath);j++){
   printf("End of Imach\n");              k=k+1;
   /*  gettimeofday(&end_time, (struct timezone*)0);*/  /* after time */              mu[k][(int) age]=pmmij[i][j];
              }
   /* printf("Total time was %d Sec. %d uSec.\n", end_time.tv_sec -start_time.tv_sec, end_time.tv_usec -start_time.tv_usec);*/          }
   /*printf("Total time was %d uSec.\n", total_usecs);*/          for(i=1;i<=(nlstate)*(nlstate+ndeath);i++)
   /*------ End -----------*/            for(j=1;j<=(nlstate)*(nlstate+ndeath);j++)
               varpij[i][j][(int)age] = doldm[i][j];
  end:  
 #ifdef windows          /*printf("\n%d ",(int)age);
  chdir(pathcd);            for (i=1; i<=(nlstate)*(nlstate+ndeath);i++){
 #endif            printf("%e [%e ;%e] ",gm[i],gm[i]-2*sqrt(doldm[i][i]),gm[i]+2*sqrt(doldm[i][i]));
  /*system("wgnuplot graph.plt");*/            fprintf(ficlog,"%e [%e ;%e] ",gm[i],gm[i]-2*sqrt(doldm[i][i]),gm[i]+2*sqrt(doldm[i][i]));
  system("../gp37mgw/wgnuplot graph.plt");            }*/
   
 #ifdef windows          fprintf(ficresprob,"\n%d ",(int)age);
   while (z[0] != 'q') {          fprintf(ficresprobcov,"\n%d ",(int)age);
     chdir(pathcd);          fprintf(ficresprobcor,"\n%d ",(int)age);
     printf("\nType e to edit output files, c to start again, and q for exiting: ");  
     scanf("%s",z);          for (i=1; i<=(nlstate)*(nlstate+ndeath);i++)
     if (z[0] == 'c') system("./imach");            fprintf(ficresprob,"%11.3e (%11.3e) ",mu[i][(int) age],sqrt(varpij[i][i][(int)age]));
     else if (z[0] == 'e') {          for (i=1; i<=(nlstate)*(nlstate+ndeath);i++){
       chdir(path);            fprintf(ficresprobcov,"%11.3e ",mu[i][(int) age]);
       system("index.htm");            fprintf(ficresprobcor,"%11.3e ",mu[i][(int) age]);
     }          }
     else if (z[0] == 'q') exit(0);          i=0;
   }          for (k=1; k<=(nlstate);k++){
 #endif            for (l=1; l<=(nlstate+ndeath);l++){ 
 }              i=i++;
               fprintf(ficresprobcov,"\n%d %d-%d",(int)age,k,l);
               fprintf(ficresprobcor,"\n%d %d-%d",(int)age,k,l);
               for (j=1; j<=i;j++){
                 fprintf(ficresprobcov," %11.3e",varpij[i][j][(int)age]);
                 fprintf(ficresprobcor," %11.3e",varpij[i][j][(int) age]/sqrt(varpij[i][i][(int) age])/sqrt(varpij[j][j][(int)age]));
               }
             }
           }/* end of loop for state */
         } /* end of loop for age */
   
         /* Confidence intervalle of pij  */
         /*
           fprintf(ficgp,"\nset noparametric;unset label");
           fprintf(ficgp,"\nset log y;unset log x; set xlabel \"Age\";set ylabel \"probability (year-1)\"");
           fprintf(ficgp,"\nset ter png small\nset size 0.65,0.65");
           fprintf(fichtm,"\n<br>Probability with  confidence intervals expressed in year<sup>-1</sup> :<a href=\"pijgr%s.png\">pijgr%s.png</A>, ",optionfilefiname,optionfilefiname);
           fprintf(fichtm,"\n<br><img src=\"pijgr%s.png\"> ",optionfilefiname);
           fprintf(ficgp,"\nset out \"pijgr%s.png\"",optionfilefiname);
           fprintf(ficgp,"\nplot \"%s\" every :::%d::%d u 1:2 \"\%%lf",k1,k2,xfilevarprob);
         */
   
         /* Drawing ellipsoids of confidence of two variables p(k1-l1,k2-l2)*/
         first1=1;
         for (k2=1; k2<=(nlstate);k2++){
           for (l2=1; l2<=(nlstate+ndeath);l2++){ 
             if(l2==k2) continue;
             j=(k2-1)*(nlstate+ndeath)+l2;
             for (k1=1; k1<=(nlstate);k1++){
               for (l1=1; l1<=(nlstate+ndeath);l1++){ 
                 if(l1==k1) continue;
                 i=(k1-1)*(nlstate+ndeath)+l1;
                 if(i<=j) continue;
                 for (age=bage; age<=fage; age ++){ 
                   if ((int)age %5==0){
                     v1=varpij[i][i][(int)age]/stepm*YEARM/stepm*YEARM;
                     v2=varpij[j][j][(int)age]/stepm*YEARM/stepm*YEARM;
                     cv12=varpij[i][j][(int)age]/stepm*YEARM/stepm*YEARM;
                     mu1=mu[i][(int) age]/stepm*YEARM ;
                     mu2=mu[j][(int) age]/stepm*YEARM;
                     c12=cv12/sqrt(v1*v2);
                     /* Computing eigen value of matrix of covariance */
                     lc1=((v1+v2)+sqrt((v1+v2)*(v1+v2) - 4*(v1*v2-cv12*cv12)))/2.;
                     lc2=((v1+v2)-sqrt((v1+v2)*(v1+v2) - 4*(v1*v2-cv12*cv12)))/2.;
                     /* Eigen vectors */
                     v11=(1./sqrt(1+(v1-lc1)*(v1-lc1)/cv12/cv12));
                     /*v21=sqrt(1.-v11*v11); *//* error */
                     v21=(lc1-v1)/cv12*v11;
                     v12=-v21;
                     v22=v11;
                     tnalp=v21/v11;
                     if(first1==1){
                       first1=0;
                       printf("%d %d%d-%d%d mu %.4e %.4e Var %.4e %.4e cor %.3f cov %.4e Eig %.3e %.3e 1stv %.3f %.3f tang %.3f\nOthers in log...\n",(int) age,k1,l1,k2,l2,mu1,mu2,v1,v2,c12,cv12,lc1,lc2,v11,v21,tnalp);
                     }
                     fprintf(ficlog,"%d %d%d-%d%d mu %.4e %.4e Var %.4e %.4e cor %.3f cov %.4e Eig %.3e %.3e 1stv %.3f %.3f tan %.3f\n",(int) age,k1,l1,k2,l2,mu1,mu2,v1,v2,c12,cv12,lc1,lc2,v11,v21,tnalp);
                     /*printf(fignu*/
                     /* mu1+ v11*lc1*cost + v12*lc2*sin(t) */
                     /* mu2+ v21*lc1*cost + v22*lc2*sin(t) */
                     if(first==1){
                       first=0;
                       fprintf(ficgp,"\nset parametric;unset label");
                       fprintf(ficgp,"\nset log y;set log x; set xlabel \"p%1d%1d (year-1)\";set ylabel \"p%1d%1d (year-1)\"",k1,l1,k2,l2);
                       fprintf(ficgp,"\nset ter png small\nset size 0.65,0.65");
                       fprintf(fichtm,"\n<br>Ellipsoids of confidence cov(p%1d%1d,p%1d%1d) expressed in year<sup>-1</sup> :<a href=\"varpijgr%s%d%1d%1d-%1d%1d.png\">varpijgr%s%d%1d%1d-%1d%1d.png</A>, ",k1,l1,k2,l2,optionfilefiname, j1,k1,l1,k2,l2,optionfilefiname, j1,k1,l1,k2,l2);
                       fprintf(fichtm,"\n<br><img src=\"varpijgr%s%d%1d%1d-%1d%1d.png\"> ",optionfilefiname, j1,k1,l1,k2,l2);
                       fprintf(fichtm,"\n<br> Correlation at age %d (%.3f),",(int) age, c12);
                       fprintf(ficgp,"\nset out \"varpijgr%s%d%1d%1d-%1d%1d.png\"",optionfilefiname, j1,k1,l1,k2,l2);
                       fprintf(ficgp,"\nset label \"%d\" at %11.3e,%11.3e center",(int) age, mu1,mu2);
                       fprintf(ficgp,"\n# Age %d, p%1d%1d - p%1d%1d",(int) age, k1,l1,k2,l2);
                       fprintf(ficgp,"\nplot [-pi:pi] %11.3e+ %.3f*(%11.3e*%11.3e*cos(t)+%11.3e*%11.3e*sin(t)), %11.3e +%.3f*(%11.3e*%11.3e*cos(t)+%11.3e*%11.3e*sin(t)) not",\
                               mu1,std,v11,sqrt(lc1),v12,sqrt(lc2),\
                               mu2,std,v21,sqrt(lc1),v22,sqrt(lc2));
                     }else{
                       first=0;
                       fprintf(fichtm," %d (%.3f),",(int) age, c12);
                       fprintf(ficgp,"\n# Age %d, p%1d%1d - p%1d%1d",(int) age, k1,l1,k2,l2);
                       fprintf(ficgp,"\nset label \"%d\" at %11.3e,%11.3e center",(int) age, mu1,mu2);
                       fprintf(ficgp,"\nreplot %11.3e+ %.3f*(%11.3e*%11.3e*cos(t)+%11.3e*%11.3e*sin(t)), %11.3e +%.3f*(%11.3e*%11.3e*cos(t)+%11.3e*%11.3e*sin(t)) not",\
                               mu1,std,v11,sqrt(lc1),v12,sqrt(lc2),\
                               mu2,std,v21,sqrt(lc1),v22,sqrt(lc2));
                     }/* if first */
                   } /* age mod 5 */
                 } /* end loop age */
                 fprintf(ficgp,"\nset out \"varpijgr%s%d%1d%1d-%1d%1d.png\";replot;",optionfilefiname, j1,k1,l1,k2,l2);
                 first=1;
               } /*l12 */
             } /* k12 */
           } /*l1 */
         }/* k1 */
       } /* loop covariates */
     }
     free_ma3x(varpij,1,nlstate,1,nlstate+ndeath,(int) bage, (int)fage);
     free_matrix(mu,1,(nlstate+ndeath)*(nlstate+ndeath),(int) bage, (int)fage);
     free_vector(xp,1,npar);
     fclose(ficresprob);
     fclose(ficresprobcov);
     fclose(ficresprobcor);
     fclose(ficgp);
     fclose(fichtm);
   }
   
   
   /******************* Printing html file ***********/
   void printinghtml(char fileres[], char title[], char datafile[], int firstpass, \
                     int lastpass, int stepm, int weightopt, char model[],\
                     int imx,int jmin, int jmax, double jmeanint,char rfileres[],\
                     int popforecast, int estepm ,\
                     double jprev1, double mprev1,double anprev1, \
                     double jprev2, double mprev2,double anprev2){
     int jj1, k1, i1, cpt;
     /*char optionfilehtm[FILENAMELENGTH];*/
     if((fichtm=fopen(optionfilehtm,"a"))==NULL)    {
       printf("Problem with %s \n",optionfilehtm), exit(0);
       fprintf(ficlog,"Problem with %s \n",optionfilehtm), exit(0);
     }
   
      fprintf(fichtm,"<ul><li><h4>Result files (first order: no variance)</h4>\n
    - Observed prevalence in each state (during the period defined between %.lf/%.lf/%.lf and %.lf/%.lf/%.lf): <a href=\"p%s\">p%s</a> <br>\n
    - Estimated transition probabilities over %d (stepm) months: <a href=\"pij%s\">pij%s</a><br>\n
    - Stable prevalence in each health state: <a href=\"pl%s\">pl%s</a> <br>\n
    - Life expectancies by age and initial health status (estepm=%2d months): 
      <a href=\"e%s\">e%s</a> <br>\n</li>", \
     jprev1, mprev1,anprev1,jprev2, mprev2,anprev2,fileres,fileres,stepm,fileres,fileres,fileres,fileres,estepm,fileres,fileres);
   
   fprintf(fichtm," \n<ul><li><b>Graphs</b></li><p>");
   
    m=cptcoveff;
    if (cptcovn < 1) {m=1;ncodemax[1]=1;}
   
    jj1=0;
    for(k1=1; k1<=m;k1++){
      for(i1=1; i1<=ncodemax[k1];i1++){
        jj1++;
        if (cptcovn > 0) {
          fprintf(fichtm,"<hr  size=\"2\" color=\"#EC5E5E\">************ Results for covariates");
          for (cpt=1; cpt<=cptcoveff;cpt++) 
            fprintf(fichtm," V%d=%d ",Tvaraff[cpt],nbcode[Tvaraff[cpt]][codtab[jj1][cpt]]);
          fprintf(fichtm," ************\n<hr size=\"2\" color=\"#EC5E5E\">");
        }
        /* Pij */
        fprintf(fichtm,"<br>- Pij or Conditional probabilities to be observed in state j being in state i, %d (stepm) months before: pe%s%d1.png<br>
   <img src=\"pe%s%d1.png\">",stepm,strtok(optionfile, "."),jj1,strtok(optionfile, "."),jj1);     
        /* Quasi-incidences */
        fprintf(fichtm,"<br>- Pij or Conditional probabilities to be observed in state j being in state i %d (stepm) months before but expressed in per year i.e. quasi incidences if stepm is small and probabilities too: pe%s%d2.png<br>
   <img src=\"pe%s%d2.png\">",stepm,strtok(optionfile, "."),jj1,strtok(optionfile, "."),jj1); 
          /* Stable prevalence in each health state */
          for(cpt=1; cpt<nlstate;cpt++){
            fprintf(fichtm,"<br>- Stable prevalence in each health state : p%s%d%d.png<br>
   <img src=\"p%s%d%d.png\">",strtok(optionfile, "."),cpt,jj1,strtok(optionfile, "."),cpt,jj1);
          }
        for(cpt=1; cpt<=nlstate;cpt++) {
           fprintf(fichtm,"\n<br>- Health life expectancies by age and initial health state (%d): exp%s%d%d.png <br>
   <img src=\"exp%s%d%d.png\">",cpt,strtok(optionfile, "."),cpt,jj1,strtok(optionfile, "."),cpt,jj1);
        }
        fprintf(fichtm,"\n<br>- Total life expectancy by age and
   health expectancies in states (1) and (2): e%s%d.png<br>
   <img src=\"e%s%d.png\">",strtok(optionfile, "."),jj1,strtok(optionfile, "."),jj1);
      } /* end i1 */
    }/* End k1 */
    fprintf(fichtm,"</ul>");
   
   
    fprintf(fichtm,"\n<br><li><h4> Result files (second order: variances)</h4>\n
    - Parameter file with estimated parameters and covariance matrix: <a href=\"%s\">%s</a> <br>\n
    - Variance of one-step probabilities: <a href=\"prob%s\">prob%s</a> <br>\n
    - Variance-covariance of one-step probabilities: <a href=\"probcov%s\">probcov%s</a> <br>\n
    - Correlation matrix of one-step probabilities: <a href=\"probcor%s\">probcor%s</a> <br>\n
    - Variances and covariances of life expectancies by age and initial health status (estepm=%d months): <a href=\"v%s\">v%s</a><br>\n 
    - Health expectancies with their variances (no covariance): <a href=\"t%s\">t%s</a> <br>\n
    - Standard deviation of stable prevalences: <a href=\"vpl%s\">vpl%s</a> <br>\n",rfileres,rfileres,fileres,fileres,fileres,fileres,fileres,fileres, estepm, fileres,fileres,fileres,fileres,fileres,fileres);
   
   /*  if(popforecast==1) fprintf(fichtm,"\n */
   /*  - Prevalences forecasting: <a href=\"f%s\">f%s</a> <br>\n */
   /*  - Population forecasting (if popforecast=1): <a href=\"pop%s\">pop%s</a> <br>\n */
   /*      <br>",fileres,fileres,fileres,fileres); */
   /*  else  */
   /*    fprintf(fichtm,"\n No population forecast: popforecast = %d (instead of 1) or stepm = %d (instead of 1) or model=%s (instead of .)<br><br></li>\n",popforecast, stepm, model); */
   fprintf(fichtm," <ul><li><b>Graphs</b></li><p>");
   
    m=cptcoveff;
    if (cptcovn < 1) {m=1;ncodemax[1]=1;}
   
    jj1=0;
    for(k1=1; k1<=m;k1++){
      for(i1=1; i1<=ncodemax[k1];i1++){
        jj1++;
        if (cptcovn > 0) {
          fprintf(fichtm,"<hr  size=\"2\" color=\"#EC5E5E\">************ Results for covariates");
          for (cpt=1; cpt<=cptcoveff;cpt++) 
            fprintf(fichtm," V%d=%d ",Tvaraff[cpt],nbcode[Tvaraff[cpt]][codtab[jj1][cpt]]);
          fprintf(fichtm," ************\n<hr size=\"2\" color=\"#EC5E5E\">");
        }
        for(cpt=1; cpt<=nlstate;cpt++) {
          fprintf(fichtm,"<br>- Observed and period prevalence (with confident
   interval) in state (%d): v%s%d%d.png <br>
   <img src=\"v%s%d%d.png\">",cpt,strtok(optionfile, "."),cpt,jj1,strtok(optionfile, "."),cpt,jj1);  
        }
      } /* end i1 */
    }/* End k1 */
    fprintf(fichtm,"</ul>");
   fclose(fichtm);
   }
   
   /******************* Gnuplot file **************/
   void printinggnuplot(char fileres[], double ageminpar, double agemaxpar, double fage , char pathc[], double p[]){
   
     int m,cpt,k1,i,k,j,jk,k2,k3,ij,l;
     int ng;
     if((ficgp=fopen(optionfilegnuplot,"a"))==NULL) {
       printf("Problem with file %s",optionfilegnuplot);
       fprintf(ficlog,"Problem with file %s",optionfilegnuplot);
     }
   
     /*#ifdef windows */
       fprintf(ficgp,"cd \"%s\" \n",pathc);
       /*#endif */
   m=pow(2,cptcoveff);
     
    /* 1eme*/
     for (cpt=1; cpt<= nlstate ; cpt ++) {
      for (k1=1; k1<= m ; k1 ++) {
        fprintf(ficgp,"\nset out \"v%s%d%d.png\" \n",strtok(optionfile, "."),cpt,k1);
        fprintf(ficgp,"set xlabel \"Age\" \nset ylabel \"Probability\" \nset ter png small\nset size 0.65,0.65\nplot [%.f:%.f] \"vpl%s\" every :::%d::%d u 1:2 \"\%%lf",ageminpar,fage,fileres,k1-1,k1-1);
   
        for (i=1; i<= nlstate ; i ++) {
          if (i==cpt) fprintf(ficgp," \%%lf (\%%lf)");
          else fprintf(ficgp," \%%*lf (\%%*lf)");
        }
        fprintf(ficgp,"\" t\"Stable prevalence\" w l 0,\"vpl%s\" every :::%d::%d u 1:($2+1.96*$3) \"\%%lf",fileres,k1-1,k1-1);
        for (i=1; i<= nlstate ; i ++) {
          if (i==cpt) fprintf(ficgp," \%%lf (\%%lf)");
          else fprintf(ficgp," \%%*lf (\%%*lf)");
        } 
        fprintf(ficgp,"\" t\"95\%% CI\" w l 1,\"vpl%s\" every :::%d::%d u 1:($2-1.96*$3) \"\%%lf",fileres,k1-1,k1-1); 
        for (i=1; i<= nlstate ; i ++) {
          if (i==cpt) fprintf(ficgp," \%%lf (\%%lf)");
          else fprintf(ficgp," \%%*lf (\%%*lf)");
        }  
        fprintf(ficgp,"\" t\"\" w l 1,\"p%s\" every :::%d::%d u 1:($%d) t\"Observed prevalence \" w l 2",fileres,k1-1,k1-1,2+4*(cpt-1));
      }
     }
     /*2 eme*/
     
     for (k1=1; k1<= m ; k1 ++) { 
       fprintf(ficgp,"\nset out \"e%s%d.png\" \n",strtok(optionfile, "."),k1);
       fprintf(ficgp,"set ylabel \"Years\" \nset ter png small\nset size 0.65,0.65\nplot [%.f:%.f] ",ageminpar,fage);
       
       for (i=1; i<= nlstate+1 ; i ++) {
         k=2*i;
         fprintf(ficgp,"\"t%s\" every :::%d::%d u 1:2 \"\%%lf",fileres,k1-1,k1-1);
         for (j=1; j<= nlstate+1 ; j ++) {
           if (j==i) fprintf(ficgp," \%%lf (\%%lf)");
           else fprintf(ficgp," \%%*lf (\%%*lf)");
         }   
         if (i== 1) fprintf(ficgp,"\" t\"TLE\" w l ,");
         else fprintf(ficgp,"\" t\"LE in state (%d)\" w l ,",i-1);
         fprintf(ficgp,"\"t%s\" every :::%d::%d u 1:($2-$3*2) \"\%%lf",fileres,k1-1,k1-1);
         for (j=1; j<= nlstate+1 ; j ++) {
           if (j==i) fprintf(ficgp," \%%lf (\%%lf)");
           else fprintf(ficgp," \%%*lf (\%%*lf)");
         }   
         fprintf(ficgp,"\" t\"\" w l 0,");
         fprintf(ficgp,"\"t%s\" every :::%d::%d u 1:($2+$3*2) \"\%%lf",fileres,k1-1,k1-1);
         for (j=1; j<= nlstate+1 ; j ++) {
           if (j==i) fprintf(ficgp," \%%lf (\%%lf)");
           else fprintf(ficgp," \%%*lf (\%%*lf)");
         }   
         if (i== (nlstate+1)) fprintf(ficgp,"\" t\"\" w l 0");
         else fprintf(ficgp,"\" t\"\" w l 0,");
       }
     }
     
     /*3eme*/
     
     for (k1=1; k1<= m ; k1 ++) { 
       for (cpt=1; cpt<= nlstate ; cpt ++) {
         k=2+nlstate*(2*cpt-2);
         fprintf(ficgp,"\nset out \"exp%s%d%d.png\" \n",strtok(optionfile, "."),cpt,k1);
         fprintf(ficgp,"set ter png small\nset size 0.65,0.65\nplot [%.f:%.f] \"e%s\" every :::%d::%d u 1:%d t \"e%d1\" w l",ageminpar,fage,fileres,k1-1,k1-1,k,cpt);
         /*fprintf(ficgp,",\"e%s\" every :::%d::%d u 1:($%d-2*$%d) \"\%%lf ",fileres,k1-1,k1-1,k,k+1);
           for (i=1; i<= nlstate*2 ; i ++) fprintf(ficgp,"\%%lf (\%%lf) ");
           fprintf(ficgp,"\" t \"e%d1\" w l",cpt);
           fprintf(ficgp,",\"e%s\" every :::%d::%d u 1:($%d+2*$%d) \"\%%lf ",fileres,k1-1,k1-1,k,k+1);
           for (i=1; i<= nlstate*2 ; i ++) fprintf(ficgp,"\%%lf (\%%lf) ");
           fprintf(ficgp,"\" t \"e%d1\" w l",cpt);
           
         */
         for (i=1; i< nlstate ; i ++) {
           fprintf(ficgp," ,\"e%s\" every :::%d::%d u 1:%d t \"e%d%d\" w l",fileres,k1-1,k1-1,k+2*i,cpt,i+1);
           
         } 
       }
     }
     
     /* CV preval stable (period) */
     for (k1=1; k1<= m ; k1 ++) { 
       for (cpt=1; cpt<=nlstate ; cpt ++) {
         k=3;
         fprintf(ficgp,"\nset out \"p%s%d%d.png\" \n",strtok(optionfile, "."),cpt,k1);
         fprintf(ficgp,"set xlabel \"Age\" \nset ylabel \"Probability\" \nset ter png small\nset size 0.65,0.65\nplot [%.f:%.f] \"pij%s\" u ($1==%d ? ($3):1/0):($%d/($%d",ageminpar,agemaxpar,fileres,k1,k+cpt+1,k+1);
         
         for (i=1; i<= nlstate ; i ++)
           fprintf(ficgp,"+$%d",k+i+1);
         fprintf(ficgp,")) t\"prev(%d,%d)\" w l",cpt,cpt+1);
         
         l=3+(nlstate+ndeath)*cpt;
         fprintf(ficgp,",\"pij%s\" u ($1==%d ? ($3):1/0):($%d/($%d",fileres,k1,l+cpt+1,l+1);
         for (i=1; i< nlstate ; i ++) {
           l=3+(nlstate+ndeath)*cpt;
           fprintf(ficgp,"+$%d",l+i+1);
         }
         fprintf(ficgp,")) t\"prev(%d,%d)\" w l\n",cpt+1,cpt+1);   
       } 
     }  
     
     /* proba elementaires */
     for(i=1,jk=1; i <=nlstate; i++){
       for(k=1; k <=(nlstate+ndeath); k++){
         if (k != i) {
           for(j=1; j <=ncovmodel; j++){
             fprintf(ficgp,"p%d=%f ",jk,p[jk]);
             jk++; 
             fprintf(ficgp,"\n");
           }
         }
       }
      }
   
      for(ng=1; ng<=2;ng++){ /* Number of graphics: first is probabilities second is incidence per year*/
        for(jk=1; jk <=m; jk++) {
          fprintf(ficgp,"\nset out \"pe%s%d%d.png\" \n",strtok(optionfile, "."),jk,ng); 
          if (ng==2)
            fprintf(ficgp,"\nset ylabel \"Quasi-incidence per year\"\n");
          else
            fprintf(ficgp,"\nset title \"Probability\"\n");
          fprintf(ficgp,"\nset ter png small\nset size 0.65,0.65\nset log y\nplot  [%.f:%.f] ",ageminpar,agemaxpar);
          i=1;
          for(k2=1; k2<=nlstate; k2++) {
            k3=i;
            for(k=1; k<=(nlstate+ndeath); k++) {
              if (k != k2){
                if(ng==2)
                  fprintf(ficgp," %f*exp(p%d+p%d*x",YEARM/stepm,i,i+1);
                else
                  fprintf(ficgp," exp(p%d+p%d*x",i,i+1);
                ij=1;
                for(j=3; j <=ncovmodel; j++) {
                  if(((j-2)==Tage[ij]) &&(ij <=cptcovage)) {
                    fprintf(ficgp,"+p%d*%d*x",i+j-1,nbcode[Tvar[j-2]][codtab[jk][Tvar[j-2]]]);
                    ij++;
                  }
                  else
                    fprintf(ficgp,"+p%d*%d",i+j-1,nbcode[Tvar[j-2]][codtab[jk][j-2]]);
                }
                fprintf(ficgp,")/(1");
                
                for(k1=1; k1 <=nlstate; k1++){   
                  fprintf(ficgp,"+exp(p%d+p%d*x",k3+(k1-1)*ncovmodel,k3+(k1-1)*ncovmodel+1);
                  ij=1;
                  for(j=3; j <=ncovmodel; j++){
                    if(((j-2)==Tage[ij]) &&(ij <=cptcovage)) {
                      fprintf(ficgp,"+p%d*%d*x",k3+(k1-1)*ncovmodel+1+j-2,nbcode[Tvar[j-2]][codtab[jk][Tvar[j-2]]]);
                      ij++;
                    }
                    else
                      fprintf(ficgp,"+p%d*%d",k3+(k1-1)*ncovmodel+1+j-2,nbcode[Tvar[j-2]][codtab[jk][j-2]]);
                  }
                  fprintf(ficgp,")");
                }
                fprintf(ficgp,") t \"p%d%d\" ", k2,k);
                if ((k+k2)!= (nlstate*2+ndeath)) fprintf(ficgp,",");
                i=i+ncovmodel;
              }
            } /* end k */
          } /* end k2 */
        } /* end jk */
      } /* end ng */
      fclose(ficgp); 
   }  /* end gnuplot */
   
   
   /*************** Moving average **************/
   int movingaverage(double ***probs, double bage,double fage, double ***mobaverage, int mobilav){
   
     int i, cpt, cptcod;
     int modcovmax =1;
     int mobilavrange, mob;
     double age;
   
     modcovmax=2*cptcoveff;/* Max number of modalities. We suppose 
                              a covariate has 2 modalities */
     if (cptcovn<1) modcovmax=1; /* At least 1 pass */
   
     if(mobilav==1||mobilav ==3 ||mobilav==5 ||mobilav== 7){
       if(mobilav==1) mobilavrange=5; /* default */
       else mobilavrange=mobilav;
       for (age=bage; age<=fage; age++)
         for (i=1; i<=nlstate;i++)
           for (cptcod=1;cptcod<=modcovmax;cptcod++)
             mobaverage[(int)age][i][cptcod]=probs[(int)age][i][cptcod];
       /* We keep the original values on the extreme ages bage, fage and for 
          fage+1 and bage-1 we use a 3 terms moving average; for fage+2 bage+2
          we use a 5 terms etc. until the borders are no more concerned. 
       */ 
       for (mob=3;mob <=mobilavrange;mob=mob+2){
         for (age=bage+(mob-1)/2; age<=fage-(mob-1)/2; age++){
           for (i=1; i<=nlstate;i++){
             for (cptcod=1;cptcod<=modcovmax;cptcod++){
               mobaverage[(int)age][i][cptcod] =probs[(int)age][i][cptcod];
                 for (cpt=1;cpt<=(mob-1)/2;cpt++){
                   mobaverage[(int)age][i][cptcod] +=probs[(int)age-cpt][i][cptcod];
                   mobaverage[(int)age][i][cptcod] +=probs[(int)age+cpt][i][cptcod];
                 }
               mobaverage[(int)age][i][cptcod]=mobaverage[(int)age][i][cptcod]/mob;
             }
           }
         }/* end age */
       }/* end mob */
     }else return -1;
     return 0;
   }/* End movingaverage */
   
   
   /************** Forecasting ******************/
   prevforecast(char fileres[], double anproj1, double mproj1, double jproj1, double ageminpar, double agemax, double dateprev1, double dateprev2, int mobilav, double bage, double fage, int firstpass, int lastpass, double anproj2, double p[], int cptcoveff){
     /* proj1, year, month, day of starting projection 
        agemin, agemax range of age
        dateprev1 dateprev2 range of dates during which prevalence is computed
        anproj2 year of en of projection (same day and month as proj1).
     */
     int yearp, stepsize, hstepm, nhstepm, j, k, c, cptcod, i, h, i1;
     int *popage;
     double agec; /* generic age */
     double agelim, ppij, yp,yp1,yp2,jprojmean,mprojmean,anprojmean;
     double *popeffectif,*popcount;
     double ***p3mat;
     double ***mobaverage;
     char fileresf[FILENAMELENGTH];
   
     agelim=AGESUP;
     prevalence(ageminpar, agemax, s, agev, nlstate, imx, Tvar, nbcode, ncodemax, mint, anint, dateprev1, dateprev2, firstpass, lastpass);
    
     strcpy(fileresf,"f"); 
     strcat(fileresf,fileres);
     if((ficresf=fopen(fileresf,"w"))==NULL) {
       printf("Problem with forecast resultfile: %s\n", fileresf);
       fprintf(ficlog,"Problem with forecast resultfile: %s\n", fileresf);
     }
     printf("Computing forecasting: result on file '%s' \n", fileresf);
     fprintf(ficlog,"Computing forecasting: result on file '%s' \n", fileresf);
   
     if (cptcoveff==0) ncodemax[cptcoveff]=1;
   
     if (mobilav!=0) {
       mobaverage= ma3x(1, AGESUP,1,NCOVMAX, 1,NCOVMAX);
       if (movingaverage(probs, ageminpar, fage, mobaverage,mobilav)!=0){
         fprintf(ficlog," Error in movingaverage mobilav=%d\n",mobilav);
         printf(" Error in movingaverage mobilav=%d\n",mobilav);
       }
     }
   
     stepsize=(int) (stepm+YEARM-1)/YEARM;
     if (stepm<=12) stepsize=1;
     if(estepm < stepm){
       printf ("Problem %d lower than %d\n",estepm, stepm);
     }
     else  hstepm=estepm;   
   
     hstepm=hstepm/stepm; 
     yp1=modf(dateintmean,&yp);/* extracts integral of datemean in yp  and
                                  fractional in yp1 */
     anprojmean=yp;
     yp2=modf((yp1*12),&yp);
     mprojmean=yp;
     yp1=modf((yp2*30.5),&yp);
     jprojmean=yp;
     if(jprojmean==0) jprojmean=1;
     if(mprojmean==0) jprojmean=1;
   
     i1=cptcoveff;
     if (cptcovn < 1){i1=1;}
     
     fprintf(ficresf,"# Mean day of interviews %.lf/%.lf/%.lf (%.2f) between %.2f and %.2f \n",jprojmean,mprojmean,anprojmean,dateintmean,dateprev1,dateprev2); 
     
     fprintf(ficresf,"#****** Routine prevforecast **\n");
   
   /*            if (h==(int)(YEARM*yearp)){ */
     for(cptcov=1, k=0;cptcov<=i1;cptcov++){
       for(cptcod=1;cptcod<=ncodemax[cptcoveff];cptcod++){
         k=k+1;
         fprintf(ficresf,"\n#******");
         for(j=1;j<=cptcoveff;j++) {
           fprintf(ficresf," V%d=%d, hpijx=probability over h years, hp.jx is weighted by observed prev ",Tvaraff[j],nbcode[Tvaraff[j]][codtab[k][j]]);
         }
         fprintf(ficresf,"******\n");
         fprintf(ficresf,"# Covariate valuofcovar yearproj age");
         for(j=1; j<=nlstate+ndeath;j++){ 
           for(i=1; i<=nlstate;i++)              
             fprintf(ficresf," p%d%d",i,j);
           fprintf(ficresf," p.%d",j);
         }
         for (yearp=0; yearp<=(anproj2-anproj1);yearp +=stepsize) { 
           fprintf(ficresf,"\n");
           fprintf(ficresf,"\n# Forecasting at date %.lf/%.lf/%.lf ",jproj1,mproj1,anproj1+yearp);   
   
           for (agec=fage; agec>=(ageminpar-1); agec--){ 
             nhstepm=(int) rint((agelim-agec)*YEARM/stepm); 
             nhstepm = nhstepm/hstepm; 
             p3mat=ma3x(1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);
             oldm=oldms;savm=savms;
             hpxij(p3mat,nhstepm,agec,hstepm,p,nlstate,stepm,oldm,savm, k);  
           
             for (h=0; h<=nhstepm; h++){
               if (h*hstepm/YEARM*stepm ==yearp) {
                 fprintf(ficresf,"\n");
                 for(j=1;j<=cptcoveff;j++) 
                   fprintf(ficresf,"%d %d ",Tvaraff[j],nbcode[Tvaraff[j]][codtab[k][j]]);
                 fprintf(ficresf,"%.f %.f ",anproj1+yearp,agec+h*hstepm/YEARM*stepm);
               } 
               for(j=1; j<=nlstate+ndeath;j++) {
                 ppij=0.;
                 for(i=1; i<=nlstate;i++) {
                   if (mobilav==1) 
                     ppij=ppij+p3mat[i][j][h]*mobaverage[(int)agec][i][cptcod];
                   else {
                     ppij=ppij+p3mat[i][j][h]*probs[(int)(agec)][i][cptcod];
                   }
                   if (h*hstepm/YEARM*stepm== yearp) {
                     fprintf(ficresf," %.3f", p3mat[i][j][h]);
                   }
                 } /* end i */
                 if (h*hstepm/YEARM*stepm==yearp) {
                   fprintf(ficresf," %.3f", ppij);
                 }
               }/* end j */
             } /* end h */
             free_ma3x(p3mat,1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);
           } /* end agec */
         } /* end yearp */
       } /* end cptcod */
     } /* end  cptcov */
          
     if (mobilav!=0) free_ma3x(mobaverage,1, AGESUP,1,NCOVMAX, 1,NCOVMAX);
   
     fclose(ficresf);
   }
   
   /************** Forecasting *****not tested NB*************/
   populforecast(char fileres[], double anpyram,double mpyram,double jpyram,double ageminpar, double agemax,double dateprev1, double dateprev2, int mobilav, double agedeb, double fage, int popforecast, char popfile[], double anpyram1,double p[], int i2){
     
     int cpt, stepsize, hstepm, nhstepm, j,k,c, cptcod, i,h;
     int *popage;
     double calagedatem, agelim, kk1, kk2;
     double *popeffectif,*popcount;
     double ***p3mat,***tabpop,***tabpopprev;
     double ***mobaverage;
     char filerespop[FILENAMELENGTH];
   
     tabpop= ma3x(1, AGESUP,1,NCOVMAX, 1,NCOVMAX);
     tabpopprev= ma3x(1, AGESUP,1,NCOVMAX, 1,NCOVMAX);
     agelim=AGESUP;
     calagedatem=(anpyram+mpyram/12.+jpyram/365.-dateintmean)*YEARM;
     
     prevalence(ageminpar, agemax, s, agev, nlstate, imx, Tvar, nbcode, ncodemax, mint, anint, dateprev1, dateprev2, firstpass, lastpass);
     
     
     strcpy(filerespop,"pop"); 
     strcat(filerespop,fileres);
     if((ficrespop=fopen(filerespop,"w"))==NULL) {
       printf("Problem with forecast resultfile: %s\n", filerespop);
       fprintf(ficlog,"Problem with forecast resultfile: %s\n", filerespop);
     }
     printf("Computing forecasting: result on file '%s' \n", filerespop);
     fprintf(ficlog,"Computing forecasting: result on file '%s' \n", filerespop);
   
     if (cptcoveff==0) ncodemax[cptcoveff]=1;
   
     if (mobilav!=0) {
       mobaverage= ma3x(1, AGESUP,1,NCOVMAX, 1,NCOVMAX);
       if (movingaverage(probs, ageminpar, fage, mobaverage,mobilav)!=0){
         fprintf(ficlog," Error in movingaverage mobilav=%d\n",mobilav);
         printf(" Error in movingaverage mobilav=%d\n",mobilav);
       }
     }
   
     stepsize=(int) (stepm+YEARM-1)/YEARM;
     if (stepm<=12) stepsize=1;
     
     agelim=AGESUP;
     
     hstepm=1;
     hstepm=hstepm/stepm; 
     
     if (popforecast==1) {
       if((ficpop=fopen(popfile,"r"))==NULL) {
         printf("Problem with population file : %s\n",popfile);exit(0);
         fprintf(ficlog,"Problem with population file : %s\n",popfile);exit(0);
       } 
       popage=ivector(0,AGESUP);
       popeffectif=vector(0,AGESUP);
       popcount=vector(0,AGESUP);
       
       i=1;   
       while ((c=fscanf(ficpop,"%d %lf\n",&popage[i],&popcount[i])) != EOF) i=i+1;
      
       imx=i;
       for (i=1; i<imx;i++) popeffectif[popage[i]]=popcount[i];
     }
   
     for(cptcov=1,k=0;cptcov<=i2;cptcov++){
      for(cptcod=1;cptcod<=ncodemax[cptcoveff];cptcod++){
         k=k+1;
         fprintf(ficrespop,"\n#******");
         for(j=1;j<=cptcoveff;j++) {
           fprintf(ficrespop," V%d=%d ",Tvaraff[j],nbcode[Tvaraff[j]][codtab[k][j]]);
         }
         fprintf(ficrespop,"******\n");
         fprintf(ficrespop,"# Age");
         for(j=1; j<=nlstate+ndeath;j++) fprintf(ficrespop," P.%d",j);
         if (popforecast==1)  fprintf(ficrespop," [Population]");
         
         for (cpt=0; cpt<=0;cpt++) { 
           fprintf(ficrespop,"\n\n# Forecasting at date %.lf/%.lf/%.lf ",jpyram,mpyram,anpyram+cpt);   
           
           for (agedeb=(fage-((int)calagedatem %12/12.)); agedeb>=(ageminpar-((int)calagedatem %12)/12.); agedeb--){ 
             nhstepm=(int) rint((agelim-agedeb)*YEARM/stepm); 
             nhstepm = nhstepm/hstepm; 
             
             p3mat=ma3x(1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);
             oldm=oldms;savm=savms;
             hpxij(p3mat,nhstepm,agedeb,hstepm,p,nlstate,stepm,oldm,savm, k);  
           
             for (h=0; h<=nhstepm; h++){
               if (h==(int) (calagedatem+YEARM*cpt)) {
                 fprintf(ficrespop,"\n %3.f ",agedeb+h*hstepm/YEARM*stepm);
               } 
               for(j=1; j<=nlstate+ndeath;j++) {
                 kk1=0.;kk2=0;
                 for(i=1; i<=nlstate;i++) {              
                   if (mobilav==1) 
                     kk1=kk1+p3mat[i][j][h]*mobaverage[(int)agedeb+1][i][cptcod];
                   else {
                     kk1=kk1+p3mat[i][j][h]*probs[(int)(agedeb+1)][i][cptcod];
                   }
                 }
                 if (h==(int)(calagedatem+12*cpt)){
                   tabpop[(int)(agedeb)][j][cptcod]=kk1;
                     /*fprintf(ficrespop," %.3f", kk1);
                       if (popforecast==1) fprintf(ficrespop," [%.f]", kk1*popeffectif[(int)agedeb+1]);*/
                 }
               }
               for(i=1; i<=nlstate;i++){
                 kk1=0.;
                   for(j=1; j<=nlstate;j++){
                     kk1= kk1+tabpop[(int)(agedeb)][j][cptcod]; 
                   }
                     tabpopprev[(int)(agedeb)][i][cptcod]=tabpop[(int)(agedeb)][i][cptcod]/kk1*popeffectif[(int)(agedeb+(calagedatem+12*cpt)*hstepm/YEARM*stepm-1)];
               }
   
               if (h==(int)(calagedatem+12*cpt)) for(j=1; j<=nlstate;j++) 
                 fprintf(ficrespop," %15.2f",tabpopprev[(int)(agedeb+1)][j][cptcod]);
             }
             free_ma3x(p3mat,1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);
           }
         }
    
     /******/
   
         for (cpt=1; cpt<=(anpyram1-anpyram);cpt++) { 
           fprintf(ficrespop,"\n\n# Forecasting at date %.lf/%.lf/%.lf ",jpyram,mpyram,anpyram+cpt);   
           for (agedeb=(fage-((int)calagedatem %12/12.)); agedeb>=(ageminpar-((int)calagedatem %12)/12.); agedeb--){ 
             nhstepm=(int) rint((agelim-agedeb)*YEARM/stepm); 
             nhstepm = nhstepm/hstepm; 
             
             p3mat=ma3x(1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);
             oldm=oldms;savm=savms;
             hpxij(p3mat,nhstepm,agedeb,hstepm,p,nlstate,stepm,oldm,savm, k);  
             for (h=0; h<=nhstepm; h++){
               if (h==(int) (calagedatem+YEARM*cpt)) {
                 fprintf(ficresf,"\n %3.f ",agedeb+h*hstepm/YEARM*stepm);
               } 
               for(j=1; j<=nlstate+ndeath;j++) {
                 kk1=0.;kk2=0;
                 for(i=1; i<=nlstate;i++) {              
                   kk1=kk1+p3mat[i][j][h]*tabpopprev[(int)agedeb+1][i][cptcod];    
                 }
                 if (h==(int)(calagedatem+12*cpt)) fprintf(ficresf," %15.2f", kk1);        
               }
             }
             free_ma3x(p3mat,1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);
           }
         }
      } 
     }
    
     if (mobilav!=0) free_ma3x(mobaverage,1, AGESUP,1,NCOVMAX, 1,NCOVMAX);
   
     if (popforecast==1) {
       free_ivector(popage,0,AGESUP);
       free_vector(popeffectif,0,AGESUP);
       free_vector(popcount,0,AGESUP);
     }
     free_ma3x(tabpop,1, AGESUP,1,NCOVMAX, 1,NCOVMAX);
     free_ma3x(tabpopprev,1, AGESUP,1,NCOVMAX, 1,NCOVMAX);
     fclose(ficrespop);
   }
   
   /***********************************************/
   /**************** Main Program *****************/
   /***********************************************/
   
   int main(int argc, char *argv[])
   {
     int movingaverage(double ***probs, double bage,double fage, double ***mobaverage, int mobilav);
     int i,j, k, n=MAXN,iter,m,size=100,cptcode, cptcod;
     double agedeb, agefin,hf;
     double ageminpar=1.e20,agemin=1.e20, agemaxpar=-1.e20, agemax=-1.e20;
   
     double fret;
     double **xi,tmp,delta;
   
     double dum; /* Dummy variable */
     double ***p3mat;
     double ***mobaverage;
     int *indx;
     char line[MAXLINE], linepar[MAXLINE];
     char path[80],pathc[80],pathcd[80],pathtot[80],model[80];
     int firstobs=1, lastobs=10;
     int sdeb, sfin; /* Status at beginning and end */
     int c,  h , cpt,l;
     int ju,jl, mi;
     int i1,j1, k1,k2,k3,jk,aa,bb, stepsize, ij;
     int jnais,jdc,jint4,jint1,jint2,jint3,**outcome,*tab; 
     int mobilavproj=0 , prevfcast=0 ; /* moving average of prev, If prevfcast=1 prevalence projection */
     int mobilav=0,popforecast=0;
     int hstepm, nhstepm;
     double jprev1=1, mprev1=1,anprev1=2000,jprev2=1, mprev2=1,anprev2=2000;
     double jpyram=1, mpyram=1,anpyram=2000,jpyram1=1, mpyram1=1,anpyram1=2000;
   
     double bage, fage, age, agelim, agebase;
     double ftolpl=FTOL;
     double **prlim;
     double *severity;
     double ***param; /* Matrix of parameters */
     double  *p;
     double **matcov; /* Matrix of covariance */
     double ***delti3; /* Scale */
     double *delti; /* Scale */
     double ***eij, ***vareij;
     double **varpl; /* Variances of prevalence limits by age */
     double *epj, vepp;
     double kk1, kk2;
     double dateprev1, dateprev2,jproj1=1,mproj1=1,anproj1=2000,jproj2=1,mproj2=1,anproj2=2000;
   
     char *alph[]={"a","a","b","c","d","e"}, str[4];
   
   
     char z[1]="c", occ;
   #include <sys/time.h>
   #include <time.h>
     char stra[80], strb[80], strc[80], strd[80],stre[80],modelsav[80];
    
     /* long total_usecs;
        struct timeval start_time, end_time;
     
        gettimeofday(&start_time, (struct timezone*)0); */ /* at first time */
     getcwd(pathcd, size);
   
     printf("\n%s",version);
     if(argc <=1){
       printf("\nEnter the parameter file name: ");
       scanf("%s",pathtot);
     }
     else{
       strcpy(pathtot,argv[1]);
     }
     /*if(getcwd(pathcd, 80)!= NULL)printf ("Error pathcd\n");*/
     /*cygwin_split_path(pathtot,path,optionfile);
       printf("pathtot=%s, path=%s, optionfile=%s\n",pathtot,path,optionfile);*/
     /* cutv(path,optionfile,pathtot,'\\');*/
   
     split(pathtot,path,optionfile,optionfilext,optionfilefiname);
     printf("pathtot=%s, path=%s, optionfile=%s optionfilext=%s optionfilefiname=%s\n",pathtot,path,optionfile,optionfilext,optionfilefiname);
     chdir(path);
     replace(pathc,path);
   
     /*-------- arguments in the command line --------*/
   
     /* Log file */
     strcat(filelog, optionfilefiname);
     strcat(filelog,".log");    /* */
     if((ficlog=fopen(filelog,"w"))==NULL)    {
       printf("Problem with logfile %s\n",filelog);
       goto end;
     }
     fprintf(ficlog,"Log filename:%s\n",filelog);
     fprintf(ficlog,"\n%s",version);
     fprintf(ficlog,"\nEnter the parameter file name: ");
     fprintf(ficlog,"pathtot=%s, path=%s, optionfile=%s optionfilext=%s optionfilefiname=%s\n",pathtot,path,optionfile,optionfilext,optionfilefiname);
     fflush(ficlog);
   
     /* */
     strcpy(fileres,"r");
     strcat(fileres, optionfilefiname);
     strcat(fileres,".txt");    /* Other files have txt extension */
   
     /*---------arguments file --------*/
   
     if((ficpar=fopen(optionfile,"r"))==NULL)    {
       printf("Problem with optionfile %s\n",optionfile);
       fprintf(ficlog,"Problem with optionfile %s\n",optionfile);
       goto end;
     }
   
     strcpy(filereso,"o");
     strcat(filereso,fileres);
     if((ficparo=fopen(filereso,"w"))==NULL) {
       printf("Problem with Output resultfile: %s\n", filereso);
       fprintf(ficlog,"Problem with Output resultfile: %s\n", filereso);
       goto end;
     }
   
     /* Reads comments: lines beginning with '#' */
     while((c=getc(ficpar))=='#' && c!= EOF){
       ungetc(c,ficpar);
       fgets(line, MAXLINE, ficpar);
       puts(line);
       fputs(line,ficparo);
     }
     ungetc(c,ficpar);
   
     fscanf(ficpar,"title=%s datafile=%s lastobs=%d firstpass=%d lastpass=%d\nftol=%lf stepm=%d ncovcol=%d nlstate=%d ndeath=%d maxwav=%d mle=%d weight=%d model=%s\n",title, datafile, &lastobs, &firstpass,&lastpass,&ftol, &stepm, &ncovcol, &nlstate,&ndeath, &maxwav, &mle, &weightopt,model);
     printf("title=%s datafile=%s lastobs=%d firstpass=%d lastpass=%d\nftol=%e stepm=%d ncovcol=%d nlstate=%d ndeath=%d maxwav=%d mle=%d weight=%d\nmodel=%s\n", title, datafile, lastobs, firstpass,lastpass,ftol, stepm, ncovcol, nlstate,ndeath, maxwav, mle, weightopt,model);
     fprintf(ficparo,"title=%s datafile=%s lastobs=%d firstpass=%d lastpass=%d\nftol=%e stepm=%d ncovcol=%d nlstate=%d ndeath=%d maxwav=%d mle=%d weight=%d\nmodel=%s\n", title, datafile, lastobs, firstpass,lastpass,ftol,stepm,ncovcol,nlstate,ndeath,maxwav, mle, weightopt,model);
     while((c=getc(ficpar))=='#' && c!= EOF){
       ungetc(c,ficpar);
       fgets(line, MAXLINE, ficpar);
       puts(line);
       fputs(line,ficparo);
     }
     ungetc(c,ficpar);
     
      
     covar=matrix(0,NCOVMAX,1,n); 
     cptcovn=0; /*Number of covariates, i.e. number of '+' in model statement*/
     if (strlen(model)>1) cptcovn=nbocc(model,'+')+1;
   
     ncovmodel=2+cptcovn; /*Number of variables = cptcovn + intercept + age */
     nvar=ncovmodel-1; /* Suppressing age as a basic covariate */
     
     /* Read guess parameters */
     /* Reads comments: lines beginning with '#' */
     while((c=getc(ficpar))=='#' && c!= EOF){
       ungetc(c,ficpar);
       fgets(line, MAXLINE, ficpar);
       puts(line);
       fputs(line,ficparo);
     }
     ungetc(c,ficpar);
     
     param= ma3x(1,nlstate,1,nlstate+ndeath-1,1,ncovmodel);
     for(i=1; i <=nlstate; i++)
       for(j=1; j <=nlstate+ndeath-1; j++){
         fscanf(ficpar,"%1d%1d",&i1,&j1);
         fprintf(ficparo,"%1d%1d",i1,j1);
         if(mle==1)
           printf("%1d%1d",i,j);
         fprintf(ficlog,"%1d%1d",i,j);
         for(k=1; k<=ncovmodel;k++){
           fscanf(ficpar," %lf",&param[i][j][k]);
           if(mle==1){
             printf(" %lf",param[i][j][k]);
             fprintf(ficlog," %lf",param[i][j][k]);
           }
           else
             fprintf(ficlog," %lf",param[i][j][k]);
           fprintf(ficparo," %lf",param[i][j][k]);
         }
         fscanf(ficpar,"\n");
         if(mle==1)
           printf("\n");
         fprintf(ficlog,"\n");
         fprintf(ficparo,"\n");
       }
     
     npar= (nlstate+ndeath-1)*nlstate*ncovmodel; /* Number of parameters*/
   
     p=param[1][1];
     
     /* Reads comments: lines beginning with '#' */
     while((c=getc(ficpar))=='#' && c!= EOF){
       ungetc(c,ficpar);
       fgets(line, MAXLINE, ficpar);
       puts(line);
       fputs(line,ficparo);
     }
     ungetc(c,ficpar);
   
     delti3= ma3x(1,nlstate,1,nlstate+ndeath-1,1,ncovmodel);
     /* delti=vector(1,npar); *//* Scale of each paramater (output from hesscov) */
     for(i=1; i <=nlstate; i++){
       for(j=1; j <=nlstate+ndeath-1; j++){
         fscanf(ficpar,"%1d%1d",&i1,&j1);
         printf("%1d%1d",i,j);
         fprintf(ficparo,"%1d%1d",i1,j1);
         for(k=1; k<=ncovmodel;k++){
           fscanf(ficpar,"%le",&delti3[i][j][k]);
           printf(" %le",delti3[i][j][k]);
           fprintf(ficparo," %le",delti3[i][j][k]);
         }
         fscanf(ficpar,"\n");
         printf("\n");
         fprintf(ficparo,"\n");
       }
     }
     delti=delti3[1][1];
   
   
     /* free_ma3x(delti3,1,nlstate,1,nlstate+ndeath-1,1,ncovmodel); */ /* Hasn't to to freed here otherwise delti is no more allocated */
     
     /* Reads comments: lines beginning with '#' */
     while((c=getc(ficpar))=='#' && c!= EOF){
       ungetc(c,ficpar);
       fgets(line, MAXLINE, ficpar);
       puts(line);
       fputs(line,ficparo);
     }
     ungetc(c,ficpar);
     
     matcov=matrix(1,npar,1,npar);
     for(i=1; i <=npar; i++){
       fscanf(ficpar,"%s",&str);
       if(mle==1)
         printf("%s",str);
       fprintf(ficlog,"%s",str);
       fprintf(ficparo,"%s",str);
       for(j=1; j <=i; j++){
         fscanf(ficpar," %le",&matcov[i][j]);
         if(mle==1){
           printf(" %.5le",matcov[i][j]);
           fprintf(ficlog," %.5le",matcov[i][j]);
         }
         else
           fprintf(ficlog," %.5le",matcov[i][j]);
         fprintf(ficparo," %.5le",matcov[i][j]);
       }
       fscanf(ficpar,"\n");
       if(mle==1)
         printf("\n");
       fprintf(ficlog,"\n");
       fprintf(ficparo,"\n");
     }
     for(i=1; i <=npar; i++)
       for(j=i+1;j<=npar;j++)
         matcov[i][j]=matcov[j][i];
      
     if(mle==1)
       printf("\n");
     fprintf(ficlog,"\n");
   
   
     /*-------- Rewriting paramater file ----------*/
     strcpy(rfileres,"r");    /* "Rparameterfile */
     strcat(rfileres,optionfilefiname);    /* Parameter file first name*/
     strcat(rfileres,".");    /* */
     strcat(rfileres,optionfilext);    /* Other files have txt extension */
     if((ficres =fopen(rfileres,"w"))==NULL) {
       printf("Problem writing new parameter file: %s\n", fileres);goto end;
       fprintf(ficlog,"Problem writing new parameter file: %s\n", fileres);goto end;
     }
     fprintf(ficres,"#%s\n",version);
       
     /*-------- data file ----------*/
     if((fic=fopen(datafile,"r"))==NULL)    {
       printf("Problem with datafile: %s\n", datafile);goto end;
       fprintf(ficlog,"Problem with datafile: %s\n", datafile);goto end;
     }
   
     n= lastobs;
     severity = vector(1,maxwav);
     outcome=imatrix(1,maxwav+1,1,n);
     num=ivector(1,n);
     moisnais=vector(1,n);
     annais=vector(1,n);
     moisdc=vector(1,n);
     andc=vector(1,n);
     agedc=vector(1,n);
     cod=ivector(1,n);
     weight=vector(1,n);
     for(i=1;i<=n;i++) weight[i]=1.0; /* Equal weights, 1 by default */
     mint=matrix(1,maxwav,1,n);
     anint=matrix(1,maxwav,1,n);
     s=imatrix(1,maxwav+1,1,n);
     tab=ivector(1,NCOVMAX);
     ncodemax=ivector(1,8);
   
     i=1;
     while (fgets(line, MAXLINE, fic) != NULL)    {
       if ((i >= firstobs) && (i <=lastobs)) {
           
         for (j=maxwav;j>=1;j--){
           cutv(stra, strb,line,' '); s[j][i]=atoi(strb); 
           strcpy(line,stra);
           cutv(stra, strb,line,'/'); anint[j][i]=(double)(atoi(strb)); strcpy(line,stra);
           cutv(stra, strb,line,' '); mint[j][i]=(double)(atoi(strb)); strcpy(line,stra);
         }
           
         cutv(stra, strb,line,'/'); andc[i]=(double)(atoi(strb)); strcpy(line,stra);
         cutv(stra, strb,line,' '); moisdc[i]=(double)(atoi(strb)); strcpy(line,stra);
   
         cutv(stra, strb,line,'/'); annais[i]=(double)(atoi(strb)); strcpy(line,stra);
         cutv(stra, strb,line,' '); moisnais[i]=(double)(atoi(strb)); strcpy(line,stra);
   
         cutv(stra, strb,line,' '); weight[i]=(double)(atoi(strb)); strcpy(line,stra);
         for (j=ncovcol;j>=1;j--){
           cutv(stra, strb,line,' '); covar[j][i]=(double)(atoi(strb)); strcpy(line,stra);
         } 
         num[i]=atol(stra);
           
         /*if((s[2][i]==2) && (s[3][i]==-1)&&(s[4][i]==9)){
           printf("%d %.lf %.lf %.lf %.lf/%.lf %.lf/%.lf %.lf/%.lf %d %.lf/%.lf %d %.lf/%.lf %d %.lf/%.lf %d\n",num[i],(covar[1][i]), (covar[2][i]),weight[i], (moisnais[i]), (annais[i]), (moisdc[i]), (andc[i]), (mint[1][i]), (anint[1][i]), (s[1][i]),  (mint[2][i]), (anint[2][i]), (s[2][i]),  (mint[3][i]), (anint[3][i]), (s[3][i]),  (mint[4][i]), (anint[4][i]), (s[4][i])); ij=ij+1;}*/
   
         i=i+1;
       }
     }
     /* printf("ii=%d", ij);
        scanf("%d",i);*/
     imx=i-1; /* Number of individuals */
   
     /* for (i=1; i<=imx; i++){
       if ((s[1][i]==3) && (s[2][i]==2)) s[2][i]=3;
       if ((s[2][i]==3) && (s[3][i]==2)) s[3][i]=3;
       if ((s[3][i]==3) && (s[4][i]==2)) s[4][i]=3;
       }*/
      /*  for (i=1; i<=imx; i++){
        if (s[4][i]==9)  s[4][i]=-1; 
        printf("%d %.lf %.lf %.lf %.lf/%.lf %.lf/%.lf %.lf/%.lf %d %.lf/%.lf %d %.lf/%.lf %d %.lf/%.lf %d\n",num[i],(covar[1][i]), (covar[2][i]), (weight[i]), (moisnais[i]), (annais[i]), (moisdc[i]), (andc[i]), (mint[1][i]), (anint[1][i]), (s[1][i]),  (mint[2][i]), (anint[2][i]), (s[2][i]),  (mint[3][i]), (anint[3][i]), (s[3][i]),  (mint[4][i]), (anint[4][i]), (s[4][i]));}*/
     
    for (i=1; i<=imx; i++)
    
      /*if ((s[3][i]==3) ||  (s[4][i]==3)) weight[i]=0.08;
        else weight[i]=1;*/
   
     /* Calculation of the number of parameter from char model*/
     Tvar=ivector(1,15); /* stores the number n of the covariates in Vm+Vn at 1 and m at 2 */
     Tprod=ivector(1,15); 
     Tvaraff=ivector(1,15); 
     Tvard=imatrix(1,15,1,2);
     Tage=ivector(1,15);      
      
     if (strlen(model) >1){ /* If there is at least 1 covariate */
       j=0, j1=0, k1=1, k2=1;
       j=nbocc(model,'+'); /* j=Number of '+' */
       j1=nbocc(model,'*'); /* j1=Number of '*' */
       cptcovn=j+1; 
       cptcovprod=j1; /*Number of products */
       
       strcpy(modelsav,model); 
       if ((strcmp(model,"age")==0) || (strcmp(model,"age*age")==0)){
         printf("Error. Non available option model=%s ",model);
         fprintf(ficlog,"Error. Non available option model=%s ",model);
         goto end;
       }
       
       /* This loop fills the array Tvar from the string 'model'.*/
   
       for(i=(j+1); i>=1;i--){
         cutv(stra,strb,modelsav,'+'); /* keeps in strb after the last + */ 
         if (nbocc(modelsav,'+')==0) strcpy(strb,modelsav); /* and analyzes it */
         /*      printf("i=%d a=%s b=%s sav=%s\n",i, stra,strb,modelsav);*/
         /*scanf("%d",i);*/
         if (strchr(strb,'*')) {  /* Model includes a product */
           cutv(strd,strc,strb,'*'); /* strd*strc  Vm*Vn (if not *age)*/
           if (strcmp(strc,"age")==0) { /* Vn*age */
             cptcovprod--;
             cutv(strb,stre,strd,'V');
             Tvar[i]=atoi(stre); /* computes n in Vn and stores in Tvar*/
             cptcovage++;
               Tage[cptcovage]=i;
               /*printf("stre=%s ", stre);*/
           }
           else if (strcmp(strd,"age")==0) { /* or age*Vn */
             cptcovprod--;
             cutv(strb,stre,strc,'V');
             Tvar[i]=atoi(stre);
             cptcovage++;
             Tage[cptcovage]=i;
           }
           else {  /* Age is not in the model */
             cutv(strb,stre,strc,'V'); /* strc= Vn, stre is n*/
             Tvar[i]=ncovcol+k1;
             cutv(strb,strc,strd,'V'); /* strd was Vm, strc is m */
             Tprod[k1]=i;
             Tvard[k1][1]=atoi(strc); /* m*/
             Tvard[k1][2]=atoi(stre); /* n */
             Tvar[cptcovn+k2]=Tvard[k1][1];
             Tvar[cptcovn+k2+1]=Tvard[k1][2]; 
             for (k=1; k<=lastobs;k++) 
               covar[ncovcol+k1][k]=covar[atoi(stre)][k]*covar[atoi(strc)][k];
             k1++;
             k2=k2+2;
           }
         }
         else { /* no more sum */
           /*printf("d=%s c=%s b=%s\n", strd,strc,strb);*/
          /*  scanf("%d",i);*/
         cutv(strd,strc,strb,'V');
         Tvar[i]=atoi(strc);
         }
         strcpy(modelsav,stra);  
         /*printf("a=%s b=%s sav=%s\n", stra,strb,modelsav);
           scanf("%d",i);*/
       } /* end of loop + */
     } /* end model */
     
     /*The number n of Vn is stored in Tvar. cptcovage =number of age covariate. Tage gives the position of age. cptcovprod= number of products.
       If model=V1+V1*age then Tvar[1]=1 Tvar[2]=1 cptcovage=1 Tage[1]=2 cptcovprod=0*/
   
     /* printf("tvar1=%d tvar2=%d tvar3=%d cptcovage=%d Tage=%d",Tvar[1],Tvar[2],Tvar[3],cptcovage,Tage[1]);
     printf("cptcovprod=%d ", cptcovprod);
     fprintf(ficlog,"cptcovprod=%d ", cptcovprod);
   
     scanf("%d ",i);
     fclose(fic);*/
   
       /*  if(mle==1){*/
     if (weightopt != 1) { /* Maximisation without weights*/
       for(i=1;i<=n;i++) weight[i]=1.0;
     }
       /*-calculation of age at interview from date of interview and age at death -*/
     agev=matrix(1,maxwav,1,imx);
   
     for (i=1; i<=imx; i++) {
       for(m=2; (m<= maxwav); m++) {
         if (((int)mint[m][i]== 99) && (s[m][i] <= nlstate)){
           anint[m][i]=9999;
           s[m][i]=-1;
         }
         if((int)moisdc[i]==99 && (int)andc[i]==9999 && s[m][i]>nlstate){
           printf("Error! Date of death (month %2d and year %4d) of individual %d on line %d was unknown %d, set an arbitrary year of death\n",(int)moisdc[i],(int)andc[i],num[i],i);
           fprintf(ficlog,"Error! Date of death (month %2d and year %4d) of individual %d on line %d was unknown %d, set an arbitrary year of death\n",(int)moisdc[i],(int)andc[i],num[i],i);
           s[m][i]=-1;
         }
         if((int)moisdc[i]==99 && (int)andc[i]!=9999 && s[m][i]>nlstate){
           printf("Warning! Month of death of individual %d on line %d was unknown %2d, we set it to June\n",num[i],i,(int)moisdc[i]); 
           fprintf(ficlog,"Warning! Month of death of individual %d on line %d was unknown %f, we set it to June\n",num[i],i,moisdc[i]); 
           moisdc[i]=6;
           s[m][i]=-1;
         }
       }
     }
   
     for (i=1; i<=imx; i++)  {
       agedc[i]=(moisdc[i]/12.+andc[i])-(moisnais[i]/12.+annais[i]);
       for(m=firstpass; (m<= lastpass); m++){
         if(s[m][i] >0){
           if (s[m][i] >= nlstate+1) {
             if(agedc[i]>0)
               if((int)moisdc[i]!=99 && (int)andc[i]!=9999)
                 agev[m][i]=agedc[i];
             /*if(moisdc[i]==99 && andc[i]==9999) s[m][i]=-1;*/
               else {
                 if ((int)andc[i]!=9999){
                   printf("Warning negative age at death: %d line:%d\n",num[i],i);
                   fprintf(ficlog,"Warning negative age at death: %d line:%d\n",num[i],i);
                   agev[m][i]=-1;
                 }
               }
           }
           else if(s[m][i] !=9){ /* Standard case, age in fractional
                                    years but with the precision of a
                                    month */
             agev[m][i]=(mint[m][i]/12.+1./24.+anint[m][i])-(moisnais[i]/12.+1./24.+annais[i]);
             if((int)mint[m][i]==99 || (int)anint[m][i]==9999)
               agev[m][i]=1;
             else if(agev[m][i] <agemin){ 
               agemin=agev[m][i];
               /*printf(" Min anint[%d][%d]=%.2f annais[%d]=%.2f, agemin=%.2f\n",m,i,anint[m][i], i,annais[i], agemin);*/
             }
             else if(agev[m][i] >agemax){
               agemax=agev[m][i];
               /* printf(" anint[%d][%d]=%.0f annais[%d]=%.0f, agemax=%.0f\n",m,i,anint[m][i], i,annais[i], agemax);*/
             }
             /*agev[m][i]=anint[m][i]-annais[i];*/
             /*     agev[m][i] = age[i]+2*m;*/
           }
           else { /* =9 */
             agev[m][i]=1;
             s[m][i]=-1;
           }
         }
         else /*= 0 Unknown */
           agev[m][i]=1;
       }
       
     }
     for (i=1; i<=imx; i++)  {
       for(m=firstpass; (m<=lastpass); m++){
         if (s[m][i] > (nlstate+ndeath)) {
           printf("Error: on wave %d of individual %d status %d > (nlstate+ndeath)=(%d+%d)=%d\n",m,i,s[m][i],nlstate, ndeath, nlstate+ndeath);     
           fprintf(ficlog,"Error: on wave %d of individual %d status %d > (nlstate+ndeath)=(%d+%d)=%d\n",m,i,s[m][i],nlstate, ndeath, nlstate+ndeath);     
           goto end;
         }
       }
     }
   
     /*for (i=1; i<=imx; i++){
     for (m=firstpass; (m<lastpass); m++){
        printf("%d %d %.lf %d %d\n", num[i],(covar[1][i]),agev[m][i],s[m][i],s[m+1][i]);
   }
   
   }*/
   
     printf("Total number of individuals= %d, Agemin = %.2f, Agemax= %.2f\n\n", imx, agemin, agemax);
     fprintf(ficlog,"Total number of individuals= %d, Agemin = %.2f, Agemax= %.2f\n\n", imx, agemin, agemax); 
   
     free_vector(severity,1,maxwav);
     free_imatrix(outcome,1,maxwav+1,1,n);
     free_vector(moisnais,1,n);
     free_vector(annais,1,n);
     /* free_matrix(mint,1,maxwav,1,n);
        free_matrix(anint,1,maxwav,1,n);*/
     free_vector(moisdc,1,n);
     free_vector(andc,1,n);
   
      
     wav=ivector(1,imx);
     dh=imatrix(1,lastpass-firstpass+1,1,imx);
     bh=imatrix(1,lastpass-firstpass+1,1,imx);
     mw=imatrix(1,lastpass-firstpass+1,1,imx);
      
     /* Concatenates waves */
     concatwav(wav, dh, bh, mw, s, agedc, agev,  firstpass, lastpass, imx, nlstate, stepm);
   
     /* Routine tricode is to calculate cptcoveff (real number of unique covariates) and to associate covariable number and modality */
   
     Tcode=ivector(1,100);
     nbcode=imatrix(0,NCOVMAX,0,NCOVMAX); 
     ncodemax[1]=1;
     if (cptcovn > 0) tricode(Tvar,nbcode,imx);
         
     codtab=imatrix(1,100,1,10); /* Cross tabulation to get the order of 
                                    the estimations*/
     h=0;
     m=pow(2,cptcoveff);
    
     for(k=1;k<=cptcoveff; k++){
       for(i=1; i <=(m/pow(2,k));i++){
         for(j=1; j <= ncodemax[k]; j++){
           for(cpt=1; cpt <=(m/pow(2,cptcoveff+1-k)); cpt++){
             h++;
             if (h>m) h=1;codtab[h][k]=j;codtab[h][Tvar[k]]=j;
             /*  printf("h=%d k=%d j=%d codtab[h][k]=%d tvar[k]=%d \n",h, k,j,codtab[h][k],Tvar[k]);*/
           } 
         }
       }
     } 
     /* printf("codtab[1][2]=%d codtab[2][2]=%d",codtab[1][2],codtab[2][2]); 
        codtab[1][2]=1;codtab[2][2]=2; */
     /* for(i=1; i <=m ;i++){ 
        for(k=1; k <=cptcovn; k++){
        printf("i=%d k=%d %d %d ",i,k,codtab[i][k], cptcoveff);
        }
        printf("\n");
        }
        scanf("%d",i);*/
       
     /* Calculates basic frequencies. Computes observed prevalence at single age
        and prints on file fileres'p'. */
   
       pmmij= matrix(1,nlstate+ndeath,1,nlstate+ndeath); /* creation */
       oldms= matrix(1,nlstate+ndeath,1,nlstate+ndeath); /* creation */
       newms= matrix(1,nlstate+ndeath,1,nlstate+ndeath); /* creation */
       savms= matrix(1,nlstate+ndeath,1,nlstate+ndeath); /* creation */
       oldm=oldms; newm=newms; savm=savms; /* Keeps fixed addresses to free */
       
      
     /* For Powell, parameters are in a vector p[] starting at p[1]
        so we point p on param[1][1] so that p[1] maps on param[1][1][1] */
     p=param[1][1]; /* *(*(*(param +1)+1)+0) */
   
     if(mle>=1){ /* Could be 1 or 2 */
       mlikeli(ficres,p, npar, ncovmodel, nlstate, ftol, func);
     }
       
     /*--------- results files --------------*/
     fprintf(ficres,"title=%s datafile=%s lastobs=%d firstpass=%d lastpass=%d\nftol=%e stepm=%d ncovcol=%d nlstate=%d ndeath=%d maxwav=%d mle= 0 weight=%d\nmodel=%s\n", title, datafile, lastobs, firstpass,lastpass,ftol, stepm, ncovcol, nlstate, ndeath, maxwav, weightopt,model);
     
   
     jk=1;
     fprintf(ficres,"# Parameters nlstate*nlstate*ncov a12*1 + b12 * age + ...\n");
     printf("# Parameters nlstate*nlstate*ncov a12*1 + b12 * age + ...\n");
     fprintf(ficlog,"# Parameters nlstate*nlstate*ncov a12*1 + b12 * age + ...\n");
     for(i=1,jk=1; i <=nlstate; i++){
       for(k=1; k <=(nlstate+ndeath); k++){
         if (k != i) 
           {
             printf("%d%d ",i,k);
             fprintf(ficlog,"%d%d ",i,k);
             fprintf(ficres,"%1d%1d ",i,k);
             for(j=1; j <=ncovmodel; j++){
               printf("%f ",p[jk]);
               fprintf(ficlog,"%f ",p[jk]);
               fprintf(ficres,"%f ",p[jk]);
               jk++; 
             }
             printf("\n");
             fprintf(ficlog,"\n");
             fprintf(ficres,"\n");
           }
       }
     }
     if(mle==1){
       /* Computing hessian and covariance matrix */
       ftolhess=ftol; /* Usually correct */
       hesscov(matcov, p, npar, delti, ftolhess, func);
     }
     fprintf(ficres,"# Scales (for hessian or gradient estimation)\n");
     printf("# Scales (for hessian or gradient estimation)\n");
     fprintf(ficlog,"# Scales (for hessian or gradient estimation)\n");
     for(i=1,jk=1; i <=nlstate; i++){
       for(j=1; j <=nlstate+ndeath; j++){
         if (j!=i) {
           fprintf(ficres,"%1d%1d",i,j);
           printf("%1d%1d",i,j);
           fprintf(ficlog,"%1d%1d",i,j);
           for(k=1; k<=ncovmodel;k++){
             printf(" %.5e",delti[jk]);
             fprintf(ficlog," %.5e",delti[jk]);
             fprintf(ficres," %.5e",delti[jk]);
             jk++;
           }
           printf("\n");
           fprintf(ficlog,"\n");
           fprintf(ficres,"\n");
         }
       }
     }
      
     fprintf(ficres,"# Covariance matrix \n# 121 Var(a12)\n# 122 Cov(b12,a12) Var(b12)\n#   ...\n# 232 Cov(b23,a12)  Cov(b23,b12) ... Var (b23)\n");
     if(mle==1)
       printf("# Covariance matrix \n# 121 Var(a12)\n# 122 Cov(b12,a12) Var(b12)\n#   ...\n# 232 Cov(b23,a12)  Cov(b23,b12) ... Var (b23)\n");
     fprintf(ficlog,"# Covariance matrix \n# 121 Var(a12)\n# 122 Cov(b12,a12) Var(b12)\n#   ...\n# 232 Cov(b23,a12)  Cov(b23,b12) ... Var (b23)\n");
     for(i=1,k=1;i<=npar;i++){
       /*  if (k>nlstate) k=1;
           i1=(i-1)/(ncovmodel*nlstate)+1; 
           fprintf(ficres,"%s%d%d",alph[k],i1,tab[i]);
           printf("%s%d%d",alph[k],i1,tab[i]);
       */
       fprintf(ficres,"%3d",i);
       if(mle==1)
         printf("%3d",i);
       fprintf(ficlog,"%3d",i);
       for(j=1; j<=i;j++){
         fprintf(ficres," %.5e",matcov[i][j]);
         if(mle==1)
           printf(" %.5e",matcov[i][j]);
         fprintf(ficlog," %.5e",matcov[i][j]);
       }
       fprintf(ficres,"\n");
       if(mle==1)
         printf("\n");
       fprintf(ficlog,"\n");
       k++;
     }
      
     while((c=getc(ficpar))=='#' && c!= EOF){
       ungetc(c,ficpar);
       fgets(line, MAXLINE, ficpar);
       puts(line);
       fputs(line,ficparo);
     }
     ungetc(c,ficpar);
   
     estepm=0;
     fscanf(ficpar,"agemin=%lf agemax=%lf bage=%lf fage=%lf estepm=%d\n",&ageminpar,&agemaxpar, &bage, &fage, &estepm);
     if (estepm==0 || estepm < stepm) estepm=stepm;
     if (fage <= 2) {
       bage = ageminpar;
       fage = agemaxpar;
     }
      
     fprintf(ficres,"# agemin agemax for life expectancy, bage fage (if mle==0 ie no data nor Max likelihood).\n");
     fprintf(ficres,"agemin=%.0f agemax=%.0f bage=%.0f fage=%.0f estepm=%d\n",ageminpar,agemaxpar,bage,fage, estepm);
     fprintf(ficparo,"agemin=%.0f agemax=%.0f bage=%.0f fage=%.0f estepm=%d\n",ageminpar,agemaxpar,bage,fage, estepm);
      
     while((c=getc(ficpar))=='#' && c!= EOF){
       ungetc(c,ficpar);
       fgets(line, MAXLINE, ficpar);
       puts(line);
       fputs(line,ficparo);
     }
     ungetc(c,ficpar);
     
     fscanf(ficpar,"begin-prev-date=%lf/%lf/%lf end-prev-date=%lf/%lf/%lf mov_average=%d\n",&jprev1, &mprev1,&anprev1,&jprev2, &mprev2,&anprev2,&mobilav);
     fprintf(ficparo,"begin-prev-date=%.lf/%.lf/%.lf end-prev-date=%.lf/%.lf/%.lf mov_average=%d\n",jprev1, mprev1,anprev1,jprev2, mprev2,anprev2,mobilav);
     fprintf(ficres,"begin-prev-date=%.lf/%.lf/%.lf end-prev-date=%.lf/%.lf/%.lf mov_average=%d\n",jprev1, mprev1,anprev1,jprev2, mprev2,anprev2,mobilav);
     printf("begin-prev-date=%.lf/%.lf/%.lf end-prev-date=%.lf/%.lf/%.lf mov_average=%d\n",jprev1, mprev1,anprev1,jprev2, mprev2,anprev2,mobilav);
     fprintf(ficlog,"begin-prev-date=%.lf/%.lf/%.lf end-prev-date=%.lf/%.lf/%.lf mov_average=%d\n",jprev1, mprev1,anprev1,jprev2, mprev2,anprev2,mobilav);
      
     while((c=getc(ficpar))=='#' && c!= EOF){
       ungetc(c,ficpar);
       fgets(line, MAXLINE, ficpar);
       puts(line);
       fputs(line,ficparo);
     }
     ungetc(c,ficpar);
    
   
     dateprev1=anprev1+(mprev1-1)/12.+(jprev1-1)/365.;
     dateprev2=anprev2+(mprev2-1)/12.+(jprev2-1)/365.;
   
     fscanf(ficpar,"pop_based=%d\n",&popbased);
     fprintf(ficparo,"pop_based=%d\n",popbased);   
     fprintf(ficres,"pop_based=%d\n",popbased);   
     
     while((c=getc(ficpar))=='#' && c!= EOF){
       ungetc(c,ficpar);
       fgets(line, MAXLINE, ficpar);
       puts(line);
       fputs(line,ficparo);
     }
     ungetc(c,ficpar);
   
     fscanf(ficpar,"prevforecast=%d starting-proj-date=%lf/%lf/%lf final-proj-date=%lf/%lf/%lf mobil_average=%d\n",&prevfcast,&jproj1,&mproj1,&anproj1,&jproj2,&mproj2,&anproj2,&mobilavproj);
     fprintf(ficparo,"prevforecast=%d starting-proj-date=%.lf/%.lf/%.lf final-proj-date=%.lf/%.lf/%.lf mobil_average=%d\n",prevfcast,jproj1,mproj1,anproj1,jproj2,mproj2,anproj2,mobilavproj);
     printf("prevforecast=%d starting-proj-date=%.lf/%.lf/%.lf final-proj-date=%.lf/%.lf/%.lf mobil_average=%d\n",prevfcast,jproj1,mproj1,anproj1,jproj2,mproj2,anproj2,mobilavproj);
     fprintf(ficlog,"prevforecast=%d starting-proj-date=%.lf/%.lf/%.lf final-proj-date=%.lf/%.lf/%.lf mobil_average=%d\n",prevfcast,jproj1,mproj1,anproj1,jproj2,mproj2,anproj2,mobilavproj);
     fprintf(ficres,"prevforecast=%d starting-proj-date=%.lf/%.lf/%.lf final-proj-date=%.lf/%.lf/%.lf mobil_average=%d\n",prevfcast,jproj1,mproj1,anproj1,jproj2,mproj2,anproj2,mobilavproj);
     /* day and month of proj2 are not used but only year anproj2.*/
   
     while((c=getc(ficpar))=='#' && c!= EOF){
       ungetc(c,ficpar);
       fgets(line, MAXLINE, ficpar);
       puts(line);
       fputs(line,ficparo);
     }
     ungetc(c,ficpar);
   
     fscanf(ficpar,"popforecast=%d popfile=%s popfiledate=%lf/%lf/%lf last-popfiledate=%lf/%lf/%lf\n",&popforecast,popfile,&jpyram,&mpyram,&anpyram,&jpyram1,&mpyram1,&anpyram1);
     fprintf(ficparo,"popforecast=%d popfile=%s popfiledate=%.lf/%.lf/%.lf last-popfiledate=%.lf/%.lf/%.lf\n",popforecast,popfile,jpyram,mpyram,anpyram,jpyram1,mpyram1,anpyram1);
     fprintf(ficres,"popforecast=%d popfile=%s popfiledate=%.lf/%.lf/%.lf last-popfiledate=%.lf/%.lf/%.lf\n",popforecast,popfile,jpyram,mpyram,anpyram,jpyram1,mpyram1,anpyram1);
   
     probs= ma3x(1,AGESUP,1,NCOVMAX, 1,NCOVMAX);
     freqsummary(fileres, agemin, agemax, s, agev, nlstate, imx,Tvaraff,nbcode, ncodemax,mint,anint,dateprev1,dateprev2,jprev1, mprev1,anprev1,jprev2, mprev2,anprev2);
   
     /*------------ gnuplot -------------*/
     strcpy(optionfilegnuplot,optionfilefiname);
     strcat(optionfilegnuplot,".gp");
     if((ficgp=fopen(optionfilegnuplot,"w"))==NULL) {
       printf("Problem with file %s",optionfilegnuplot);
     }
     else{
       fprintf(ficgp,"\n# %s\n", version); 
       fprintf(ficgp,"# %s\n", optionfilegnuplot); 
       fprintf(ficgp,"set missing 'NaNq'\n");
     }
     fclose(ficgp);
     printinggnuplot(fileres, ageminpar,agemaxpar,fage, pathc,p);
     /*--------- index.htm --------*/
   
     strcpy(optionfilehtm,optionfile);
     strcat(optionfilehtm,".htm");
     if((fichtm=fopen(optionfilehtm,"w"))==NULL)    {
       printf("Problem with %s \n",optionfilehtm), exit(0);
     }
   
     fprintf(fichtm,"<body> <font size=\"2\">%s </font> <hr size=\"2\" color=\"#EC5E5E\"> \n
   Title=%s <br>Datafile=%s Firstpass=%d Lastpass=%d Stepm=%d Weight=%d Model=%s<br>\n
   \n
   Total number of observations=%d <br>\n
   Youngest age at first pass %.2f, oldest age %.2f<br>\n
   Interval (in months) between two waves: Min=%d Max=%d Mean=%.2lf<br>\n
   <hr  size=\"2\" color=\"#EC5E5E\">
    <ul><li><h4>Parameter files</h4>\n
    - Copy of the parameter file: <a href=\"o%s\">o%s</a><br>\n
    - Log file of the run: <a href=\"%s\">%s</a><br>\n
    - Gnuplot file name: <a href=\"%s\">%s</a></ul>\n",version,title,datafile,firstpass,lastpass,stepm, weightopt,model,imx,agemin,agemax,jmin,jmax,jmean,fileres,fileres,filelog,filelog,optionfilegnuplot,optionfilegnuplot);
      fclose(fichtm);
   
     printinghtml(fileres,title,datafile, firstpass, lastpass, stepm, weightopt,model,imx,jmin,jmax,jmean,rfileres,popforecast,estepm,jprev1,mprev1,anprev1,jprev2,mprev2,anprev2);
    
     /*------------ free_vector  -------------*/
     chdir(path);
    
     free_ivector(wav,1,imx);
     free_imatrix(dh,1,lastpass-firstpass+1,1,imx);
     free_imatrix(bh,1,lastpass-firstpass+1,1,imx);
     free_imatrix(mw,1,lastpass-firstpass+1,1,imx);   
     free_ivector(num,1,n);
     free_vector(agedc,1,n);
     /*free_matrix(covar,0,NCOVMAX,1,n);*/
     /*free_matrix(covar,1,NCOVMAX,1,n);*/
     fclose(ficparo);
     fclose(ficres);
   
   
     /*--------------- Prevalence limit  (stable prevalence) --------------*/
     
     strcpy(filerespl,"pl");
     strcat(filerespl,fileres);
     if((ficrespl=fopen(filerespl,"w"))==NULL) {
       printf("Problem with stable prevalence resultfile: %s\n", filerespl);goto end;
       fprintf(ficlog,"Problem with stable prevalence resultfile: %s\n", filerespl);goto end;
     }
     printf("Computing stable prevalence: result on file '%s' \n", filerespl);
     fprintf(ficlog,"Computing stable prevalence: result on file '%s' \n", filerespl);
     fprintf(ficrespl,"#Stable prevalence \n");
     fprintf(ficrespl,"#Age ");
     for(i=1; i<=nlstate;i++) fprintf(ficrespl,"%d-%d ",i,i);
     fprintf(ficrespl,"\n");
     
     prlim=matrix(1,nlstate,1,nlstate);
   
     agebase=ageminpar;
     agelim=agemaxpar;
     ftolpl=1.e-10;
     i1=cptcoveff;
     if (cptcovn < 1){i1=1;}
   
     for(cptcov=1,k=0;cptcov<=i1;cptcov++){
       for(cptcod=1;cptcod<=ncodemax[cptcov];cptcod++){
         k=k+1;
         /*printf("cptcov=%d cptcod=%d codtab=%d nbcode=%d\n",cptcov, cptcod,Tcode[cptcode],codtab[cptcod][cptcov]);*/
         fprintf(ficrespl,"\n#******");
         printf("\n#******");
         fprintf(ficlog,"\n#******");
         for(j=1;j<=cptcoveff;j++) {
           fprintf(ficrespl," V%d=%d ",Tvaraff[j],nbcode[Tvaraff[j]][codtab[k][j]]);
           printf(" V%d=%d ",Tvaraff[j],nbcode[Tvaraff[j]][codtab[k][j]]);
           fprintf(ficlog," V%d=%d ",Tvaraff[j],nbcode[Tvaraff[j]][codtab[k][j]]);
         }
         fprintf(ficrespl,"******\n");
         printf("******\n");
         fprintf(ficlog,"******\n");
           
         for (age=agebase; age<=agelim; age++){
           prevalim(prlim, nlstate, p, age, oldm, savm,ftolpl,k);
           fprintf(ficrespl,"%.0f ",age );
           for(j=1;j<=cptcoveff;j++)
             fprintf(ficrespl,"%d %d ",Tvaraff[j],nbcode[Tvaraff[j]][codtab[k][j]]);
           for(i=1; i<=nlstate;i++)
             fprintf(ficrespl," %.5f", prlim[i][i]);
           fprintf(ficrespl,"\n");
         }
       }
     }
     fclose(ficrespl);
   
     /*------------- h Pij x at various ages ------------*/
     
     strcpy(filerespij,"pij");  strcat(filerespij,fileres);
     if((ficrespij=fopen(filerespij,"w"))==NULL) {
       printf("Problem with Pij resultfile: %s\n", filerespij);goto end;
       fprintf(ficlog,"Problem with Pij resultfile: %s\n", filerespij);goto end;
     }
     printf("Computing pij: result on file '%s' \n", filerespij);
     fprintf(ficlog,"Computing pij: result on file '%s' \n", filerespij);
     
     stepsize=(int) (stepm+YEARM-1)/YEARM;
     /*if (stepm<=24) stepsize=2;*/
   
     agelim=AGESUP;
     hstepm=stepsize*YEARM; /* Every year of age */
     hstepm=hstepm/stepm; /* Typically 2 years, = 2/6 months = 4 */ 
   
     /* hstepm=1;   aff par mois*/
   
     fprintf(ficrespij,"#****** h Pij x Probability to be in state j at age x+h being in i at x ");
     for(cptcov=1,k=0;cptcov<=i1;cptcov++){
       for(cptcod=1;cptcod<=ncodemax[cptcov];cptcod++){
         k=k+1;
         fprintf(ficrespij,"\n#****** ");
         for(j=1;j<=cptcoveff;j++) 
           fprintf(ficrespij,"V%d=%d ",Tvaraff[j],nbcode[Tvaraff[j]][codtab[k][j]]);
         fprintf(ficrespij,"******\n");
           
         for (agedeb=fage; agedeb>=bage; agedeb--){ /* If stepm=6 months */
           nhstepm=(int) rint((agelim-agedeb)*YEARM/stepm); /* Typically 20 years = 20*12/6=40 */ 
           nhstepm = nhstepm/hstepm; /* Typically 40/4=10 */
   
           /*        nhstepm=nhstepm*YEARM; aff par mois*/
   
           p3mat=ma3x(1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);
           oldm=oldms;savm=savms;
           hpxij(p3mat,nhstepm,agedeb,hstepm,p,nlstate,stepm,oldm,savm, k);  
           fprintf(ficrespij,"# Cov Agex agex+h hpijx with i,j=");
           for(i=1; i<=nlstate;i++)
             for(j=1; j<=nlstate+ndeath;j++)
               fprintf(ficrespij," %1d-%1d",i,j);
           fprintf(ficrespij,"\n");
           for (h=0; h<=nhstepm; h++){
             fprintf(ficrespij,"%d %3.f %3.f",k,agedeb, agedeb+ h*hstepm/YEARM*stepm );
             for(i=1; i<=nlstate;i++)
               for(j=1; j<=nlstate+ndeath;j++)
                 fprintf(ficrespij," %.5f", p3mat[i][j][h]);
             fprintf(ficrespij,"\n");
           }
           free_ma3x(p3mat,1,nlstate+ndeath,1, nlstate+ndeath, 0,nhstepm);
           fprintf(ficrespij,"\n");
         }
       }
     }
   
     varprob(optionfilefiname, matcov, p, delti, nlstate, bage, fage,k,Tvar,nbcode, ncodemax);
   
     fclose(ficrespij);
   
   
     /*---------- Forecasting ------------------*/
     /*if((stepm == 1) && (strcmp(model,".")==0)){*/
     if(prevfcast==1){
       /*    if(stepm ==1){*/
         prevforecast(fileres, anproj1, mproj1, jproj1, agemin, agemax, dateprev1, dateprev2, mobilavproj, bage, fage, firstpass, lastpass, anproj2, p, cptcoveff);
         /* (popforecast==1) populforecast(fileres, anpyram,mpyram,jpyram, agemin,agemax, dateprev1, dateprev2,mobilav, agedeb, fage, popforecast, popfile, anpyram1,p, i1);*/
   /*      }  */
   /*      else{ */
   /*        erreur=108; */
   /*        printf("Warning %d!! You can only forecast the prevalences if the optimization\n  has been performed with stepm = 1 (month) instead of %d or model=. instead of '%s'\n", erreur, stepm, model); */
   /*        fprintf(ficlog,"Warning %d!! You can only forecast the prevalences if the optimization\n  has been performed with stepm = 1 (month) instead of %d or model=. instead of '%s'\n", erreur, stepm, model); */
   /*      } */
     }
     
   
     /*---------- Health expectancies and variances ------------*/
   
     strcpy(filerest,"t");
     strcat(filerest,fileres);
     if((ficrest=fopen(filerest,"w"))==NULL) {
       printf("Problem with total LE resultfile: %s\n", filerest);goto end;
       fprintf(ficlog,"Problem with total LE resultfile: %s\n", filerest);goto end;
     }
     printf("Computing Total LEs with variances: file '%s' \n", filerest); 
     fprintf(ficlog,"Computing Total LEs with variances: file '%s' \n", filerest); 
   
   
     strcpy(filerese,"e");
     strcat(filerese,fileres);
     if((ficreseij=fopen(filerese,"w"))==NULL) {
       printf("Problem with Health Exp. resultfile: %s\n", filerese); exit(0);
       fprintf(ficlog,"Problem with Health Exp. resultfile: %s\n", filerese); exit(0);
     }
     printf("Computing Health Expectancies: result on file '%s' \n", filerese);
     fprintf(ficlog,"Computing Health Expectancies: result on file '%s' \n", filerese);
   
     strcpy(fileresv,"v");
     strcat(fileresv,fileres);
     if((ficresvij=fopen(fileresv,"w"))==NULL) {
       printf("Problem with variance resultfile: %s\n", fileresv);exit(0);
       fprintf(ficlog,"Problem with variance resultfile: %s\n", fileresv);exit(0);
     }
     printf("Computing Variance-covariance of DFLEs: file '%s' \n", fileresv);
     fprintf(ficlog,"Computing Variance-covariance of DFLEs: file '%s' \n", fileresv);
   
     /* Computes prevalence between agemin (i.e minimal age computed) and no more ageminpar */
     prevalence(agemin, agemax, s, agev, nlstate, imx, Tvar, nbcode, ncodemax, mint, anint, dateprev1, dateprev2, firstpass, lastpass);
     /*  printf("ageminpar=%f, agemax=%f, s[lastpass][imx]=%d, agev[lastpass][imx]=%f, nlstate=%d, imx=%d,  mint[lastpass][imx]=%f, anint[lastpass][imx]=%f,dateprev1=%f, dateprev2=%f, firstpass=%d, lastpass=%d\n",\
   ageminpar, agemax, s[lastpass][imx], agev[lastpass][imx], nlstate, imx, mint[lastpass][imx],anint[lastpass][imx], dateprev1, dateprev2, firstpass, lastpass);
     */
   
     if (mobilav!=0) {
       mobaverage= ma3x(1, AGESUP,1,NCOVMAX, 1,NCOVMAX);
       if (movingaverage(probs, bage, fage, mobaverage,mobilav)!=0){
         fprintf(ficlog," Error in movingaverage mobilav=%d\n",mobilav);
         printf(" Error in movingaverage mobilav=%d\n",mobilav);
       }
     }
   
     for(cptcov=1,k=0;cptcov<=i1;cptcov++){
       for(cptcod=1;cptcod<=ncodemax[cptcov];cptcod++){
         k=k+1; 
         fprintf(ficrest,"\n#****** ");
         for(j=1;j<=cptcoveff;j++) 
           fprintf(ficrest,"V%d=%d ",Tvaraff[j],nbcode[Tvaraff[j]][codtab[k][j]]);
         fprintf(ficrest,"******\n");
   
         fprintf(ficreseij,"\n#****** ");
         for(j=1;j<=cptcoveff;j++) 
           fprintf(ficreseij,"V%d=%d ",Tvaraff[j],nbcode[Tvaraff[j]][codtab[k][j]]);
         fprintf(ficreseij,"******\n");
   
         fprintf(ficresvij,"\n#****** ");
         for(j=1;j<=cptcoveff;j++) 
           fprintf(ficresvij,"V%d=%d ",Tvaraff[j],nbcode[Tvaraff[j]][codtab[k][j]]);
         fprintf(ficresvij,"******\n");
   
         eij=ma3x(1,nlstate,1,nlstate,(int) bage, (int) fage);
         oldm=oldms;savm=savms;
         evsij(fileres, eij, p, nlstate, stepm, (int) bage, (int)fage, oldm, savm, k, estepm, delti, matcov);  
    
         vareij=ma3x(1,nlstate,1,nlstate,(int) bage, (int) fage);
         oldm=oldms;savm=savms;
         varevsij(optionfilefiname, vareij, matcov, p, delti, nlstate, stepm, (int) bage, (int) fage, oldm, savm, prlim, ftolpl,k, estepm, cptcov,cptcod,0, mobilav);
         if(popbased==1){
           varevsij(optionfilefiname, vareij, matcov, p, delti, nlstate, stepm, (int) bage, (int) fage, oldm, savm, prlim, ftolpl,k, estepm, cptcov,cptcod,popbased,mobilav);
         }
   
    
         fprintf(ficrest,"#Total LEs with variances: e.. (std) ");
         for (i=1;i<=nlstate;i++) fprintf(ficrest,"e.%d (std) ",i);
         fprintf(ficrest,"\n");
   
         epj=vector(1,nlstate+1);
         for(age=bage; age <=fage ;age++){
           prevalim(prlim, nlstate, p, age, oldm, savm,ftolpl,k);
           if (popbased==1) {
             if(mobilav ==0){
               for(i=1; i<=nlstate;i++)
                 prlim[i][i]=probs[(int)age][i][k];
             }else{ /* mobilav */ 
               for(i=1; i<=nlstate;i++)
                 prlim[i][i]=mobaverage[(int)age][i][k];
             }
           }
           
           fprintf(ficrest," %4.0f",age);
           for(j=1, epj[nlstate+1]=0.;j <=nlstate;j++){
             for(i=1, epj[j]=0.;i <=nlstate;i++) {
               epj[j] += prlim[i][i]*eij[i][j][(int)age];
               /*  printf("%lf %lf ", prlim[i][i] ,eij[i][j][(int)age]);*/
             }
             epj[nlstate+1] +=epj[j];
           }
   
           for(i=1, vepp=0.;i <=nlstate;i++)
             for(j=1;j <=nlstate;j++)
               vepp += vareij[i][j][(int)age];
           fprintf(ficrest," %7.3f (%7.3f)", epj[nlstate+1],sqrt(vepp));
           for(j=1;j <=nlstate;j++){
             fprintf(ficrest," %7.3f (%7.3f)", epj[j],sqrt(vareij[j][j][(int)age]));
           }
           fprintf(ficrest,"\n");
         }
         free_ma3x(eij,1,nlstate,1,nlstate,(int) bage, (int)fage);
         free_ma3x(vareij,1,nlstate,1,nlstate,(int) bage, (int)fage);
         free_vector(epj,1,nlstate+1);
       }
     }
     free_vector(weight,1,n);
     free_imatrix(Tvard,1,15,1,2);
     free_imatrix(s,1,maxwav+1,1,n);
     free_matrix(anint,1,maxwav,1,n); 
     free_matrix(mint,1,maxwav,1,n);
     free_ivector(cod,1,n);
     free_ivector(tab,1,NCOVMAX);
     fclose(ficreseij);
     fclose(ficresvij);
     fclose(ficrest);
     fclose(ficpar);
     
     /*------- Variance of stable prevalence------*/   
   
     strcpy(fileresvpl,"vpl");
     strcat(fileresvpl,fileres);
     if((ficresvpl=fopen(fileresvpl,"w"))==NULL) {
       printf("Problem with variance of stable prevalence  resultfile: %s\n", fileresvpl);
       exit(0);
     }
     printf("Computing Variance-covariance of stable prevalence: file '%s' \n", fileresvpl);
   
     for(cptcov=1,k=0;cptcov<=i1;cptcov++){
       for(cptcod=1;cptcod<=ncodemax[cptcov];cptcod++){
         k=k+1;
         fprintf(ficresvpl,"\n#****** ");
         for(j=1;j<=cptcoveff;j++) 
           fprintf(ficresvpl,"V%d=%d ",Tvaraff[j],nbcode[Tvaraff[j]][codtab[k][j]]);
         fprintf(ficresvpl,"******\n");
         
         varpl=matrix(1,nlstate,(int) bage, (int) fage);
         oldm=oldms;savm=savms;
         varprevlim(fileres, varpl, matcov, p, delti, nlstate, stepm, (int) bage, (int) fage, oldm, savm, prlim, ftolpl,k);
         free_matrix(varpl,1,nlstate,(int) bage, (int)fage);
       }
     }
   
     fclose(ficresvpl);
   
     /*---------- End : free ----------------*/
     free_matrix(pmmij,1,nlstate+ndeath,1,nlstate+ndeath);
     free_matrix(oldms, 1,nlstate+ndeath,1,nlstate+ndeath);
     free_matrix(newms, 1,nlstate+ndeath,1,nlstate+ndeath);
     free_matrix(savms, 1,nlstate+ndeath,1,nlstate+ndeath);
     
     free_matrix(covar,0,NCOVMAX,1,n);
     free_matrix(matcov,1,npar,1,npar);
     /*free_vector(delti,1,npar);*/
     free_ma3x(delti3,1,nlstate,1, nlstate+ndeath-1,1,ncovmodel); 
     free_matrix(agev,1,maxwav,1,imx);
     free_ma3x(param,1,nlstate,1, nlstate+ndeath-1,1,ncovmodel);
     if (mobilav!=0) free_ma3x(mobaverage,1, AGESUP,1,NCOVMAX, 1,NCOVMAX);
     free_ma3x(probs,1,AGESUP,1,NCOVMAX, 1,NCOVMAX);
   
     free_ivector(ncodemax,1,8);
     free_ivector(Tvar,1,15);
     free_ivector(Tprod,1,15);
     free_ivector(Tvaraff,1,15);
     free_ivector(Tage,1,15);
     free_ivector(Tcode,1,100);
   
     /*  fclose(fichtm);*/
     /*  fclose(ficgp);*/ /* ALready done */
     
   
     if(erreur >0){
       printf("End of Imach with error or warning %d\n",erreur);
       fprintf(ficlog,"End of Imach with error or warning %d\n",erreur);
     }else{
      printf("End of Imach\n");
      fprintf(ficlog,"End of Imach\n");
     }
     printf("See log file on %s\n",filelog);
     fclose(ficlog);
     /*  gettimeofday(&end_time, (struct timezone*)0);*/  /* after time */
     
     /* printf("Total time was %d Sec. %d uSec.\n", end_time.tv_sec -start_time.tv_sec, end_time.tv_usec -start_time.tv_usec);*/
     /*printf("Total time was %d uSec.\n", total_usecs);*/
     /*------ End -----------*/
   
     end:
   #ifdef windows
     /* chdir(pathcd);*/
   #endif 
    /*system("wgnuplot graph.plt");*/
    /*system("../gp37mgw/wgnuplot graph.plt");*/
    /*system("cd ../gp37mgw");*/
    /* system("..\\gp37mgw\\wgnuplot graph.plt");*/
     strcpy(plotcmd,GNUPLOTPROGRAM);
     strcat(plotcmd," ");
     strcat(plotcmd,optionfilegnuplot);
     printf("Starting graphs with: %s",plotcmd);fflush(stdout);
     system(plotcmd);
     printf(" Wait...");
   
    /*#ifdef windows*/
     while (z[0] != 'q') {
       /* chdir(path); */
       printf("\nType e to edit output files, g to graph again, c to start again, and q for exiting: ");
       scanf("%s",z);
       if (z[0] == 'c') system("./imach");
       else if (z[0] == 'e') system(optionfilehtm);
       else if (z[0] == 'g') system(plotcmd);
       else if (z[0] == 'q') exit(0);
     }
     /*#endif */
   }
   
   

Removed from v.1.8  
changed lines
  Added in v.1.76


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