| 1 | /*
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| 2 |  Fit d'une gaussienne par une methode de chi2
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| 3 | */
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| 4 | #include <machdefs.h>
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| 5 | #include <stdlib.h>
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| 6 | #include <stdio.h>
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| 7 | #include <iostream>
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| 8 | #include <math.h>
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| 9 | #include <string.h>
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| 10 | 
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| 11 | #include "sopnamsp.h"
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| 12 | #include "nbrandom.h"
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| 13 | #include "minuitadapt.h"
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| 14 | 
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| 15 | // Ne pas changer NPAR
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| 16 | #define NPAR 7
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| 17 | 
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| 18 | const int DIMX = 25;
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| 19 | const int DIMY = 25;
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| 20 | const double HAUT=10000.;
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| 21 | const double X0=0., Y0=0.;
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| 22 | const double SX=5., SY=5., RHO=0.05;
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| 23 | const double FOND=100.;
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| 24 | //                         vol    x0    y0    sx    sy   rho  fond
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| 25 | const bool FIX[NPAR]={false,false,false,false,false,false,false};
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| 26 | const double ERR=5.;
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| 27 | const double ERRMIN=ERR*sqrt(FOND);
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| 28 | const double nSX=7., nSY=5.;
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| 29 | const bool USERGRAD=false;
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| 30 | const bool DOIMPROVE=true;
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| 31 | const bool DOMINOS=true;
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| 32 | const bool DOCONT=true;
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| 33 | const bool DOSCAN=true;
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| 34 | #define VARAND (drandpm1())
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| 35 | //#define VARAND 1.
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| 36 | #define MAXCALL 99999
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| 37 | 
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| 38 | void fcn(int_4 *,double *,double *,double *,int_4 *,double futils(double *));
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| 39 | double futils(double *x) {return 0.;}
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| 40 | double Gauss2D(double x,double y,double *param);
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| 41 | double dGauss2D(double x,double y,double *param,double *dparam);
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| 42 | 
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| 43 | double X[DIMX], Y[DIMY], Z[DIMX][DIMY], EZ[DIMX][DIMY];
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| 44 | int_4 IFLAG[10]={0,0,0,0,0,0,0,0,0,0};
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| 45 | 
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| 46 | /*==========================================================================*/
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| 47 | int main(int nargv, char *argv[])
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| 48 | {
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| 49 |  /* initialisation */
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| 50 |  if(DIMX*DIMY<=NPAR) exit(-1);
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| 51 | 
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| 52 |  int nran=0;
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| 53 |  if(nargv>1) nran=atoi(argv[1]);
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| 54 |  for(int i=0;i<nran;i++) drand01();
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| 55 | 
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| 56 |  /* compute volume */
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| 57 |  double vol=HAUT*(2*M_PI*SX*SY)/sqrt(1.-RHO*RHO);
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| 58 |  cout<<"haut="<<HAUT<<" vol="<<vol<<endl;
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| 59 |  cout<<"Fond="<<FOND<<endl;
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| 60 | 
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| 61 |  /* remplissage de la densite de probabilite a fiter */
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| 62 |  double par[NPAR],epar[NPAR];
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| 63 |  printf("Donnees a fiter %d :\n",DIMX*DIMY);
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| 64 |    par[0]=vol; par[1]=X0; par[2]=Y0;
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| 65 |    par[3]=SX; par[4]=SY; par[5]=RHO;
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| 66 |    par[6]=FOND;
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| 67 |  for(int i=0;i<DIMX;i++) {
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| 68 |    X[i] = X0 +nSX*SX*(2.*(i+0.5)/DIMX-1.);
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| 69 |    for(int j=0;j<DIMY;j++) {
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| 70 |      Y[j] = Y0 +nSY*SY*(2.*(j+0.5)/DIMY-1.);
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| 71 |      double f = Gauss2D(X[i],Y[j],par);
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| 72 |      Z[i][j] = f;
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| 73 |      double ef = (fabs(f)>1.) ? ERR*sqrt(fabs(f)): ERR;
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| 74 |      EZ[i][j] = (ef>ERRMIN)? ef: ERRMIN;
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| 75 |      Z[i][j] += EZ[i][j]*NorRand();
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| 76 |    }
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| 77 |  }
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| 78 | 
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| 79 | /*********************** minuit minimisation ***********************/
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| 80 |  printf("\n\n");
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| 81 |  MinuitAdapt MMM(fcn,futils);
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| 82 | 
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| 83 |  /* initialise */
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| 84 |  MMM.SetTitle("Minuit fit Gaussienne 2D+Fond");
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| 85 |  MMM.Clear();
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| 86 |  MMM.SetRandom(1000000);
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| 87 | 
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| 88 |  /* set print and warning level, precision etc... (-1,0,1,2,3) */
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| 89 |  MMM.PrintLevel(1);
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| 90 |  MMM.SetWidthPage(120);
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| 91 |  MMM.SetWarnings(true);
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| 92 |  MMM.SetErrorDef(1.);
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| 93 |  MMM.SetEpsMachine(1.e-13);
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| 94 |  MMM.SetStrategy(1);
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| 95 |  if(USERGRAD) MMM.SetGradient(1); else MMM.SetGradient(-1);
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| 96 | 
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| 97 |  /* set parameters */
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| 98 |  MMM.DefineParameter(1,"Vol",vol,fabs(vol)/50.);
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| 99 |  MMM.DefineParameter(2,"X0",X0,SX/5.);
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| 100 |  MMM.DefineParameter(3,"Y0",Y0,SY/5.);
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| 101 |  MMM.DefineParameter(4,"Sx",SX,SX/5.,0.01*SX,10.*SX);
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| 102 |  MMM.DefineParameter(5,"Sy",SY,SY/5.,0.01*SY,10.*SY);
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| 103 |  MMM.DefineParameter(6,"Rho",RHO,0.0001,-1.,1.);
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| 104 |  double x=(FOND!=0.)? fabs(FOND)/10.: 0.01;
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| 105 |  MMM.DefineParameter(7,"Fond",FOND,x);
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| 106 | 
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| 107 |  /* set parameters */
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| 108 |    x = (FIX[0])? vol: vol+VARAND*vol/5.;
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| 109 |  MMM.SetParameter(1,x);
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| 110 |    x = (FIX[1])? X0: X0+VARAND*SX;
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| 111 |  MMM.SetParameter(2,x);
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| 112 |    x=(FIX[2])? Y0: Y0+VARAND*SY;
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| 113 |  MMM.SetParameter(3,x);
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| 114 |    x=(FIX[3])? SX: SX+VARAND*SX/2.;
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| 115 |  MMM.SetParameter(4,x);
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| 116 |    x=(FIX[4])? SY: SY+VARAND*SY/2.;
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| 117 |  MMM.SetParameter(5,x);
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| 118 |    x=(FIX[5])? RHO: 0.;
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| 119 |  MMM.SetParameter(6,x);
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| 120 |    x=(FIX[6])? FOND: FOND+VARAND*FOND/3.;
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| 121 |  MMM.SetParameter(7,x);
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| 122 | 
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| 123 |  /* fix parameters */
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| 124 |  for(int i=0;i<NPAR;i++) if(FIX[i]) MMM.SetFix(i+1);
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| 125 |  MMM.ShowParameter();
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| 126 | 
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| 127 |  /* minimize */
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| 128 |  MMM.Migrad(MAXCALL,0.01);
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| 129 |  //MMM.Minimize(MAXCALL,0.01);
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| 130 |  //MMM.Simplex(MAXCALL,0.01);
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| 131 |  //MMM.Seek(MAXCALL,5.);
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| 132 |  MMM.ShowFcnValue();
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| 133 | 
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| 134 |  if(DOIMPROVE) MMM.Improve(MAXCALL);
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| 135 |  MMM.ShowFcnValue();
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| 136 | 
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| 137 |  if(DOMINOS) MMM.Minos(MAXCALL);
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| 138 |  MMM.ShowFcnValue();
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| 139 | 
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| 140 |  /* get parameters and errors */
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| 141 |  cout<<endl;
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| 142 |  for(int i=0;i<NPAR;i++) {
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| 143 |    string dum; int_4 ivarbl;
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| 144 |    double b1,b2,eparab,eplus,eminus,globcc;
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| 145 |    MMM.GetParameter(i+1,dum,par[i],epar[i],b1,b2,ivarbl);
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| 146 |    MMM.GetErrors(i+1,eplus,eminus,eparab,globcc);
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| 147 |    printf("> parameter %d \"%s\" = %g %g (%g,%g) int var=%d\n"
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| 148 |          ,i+1,dum.c_str(),par[i],epar[i],b1,b2,ivarbl);
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| 149 |    printf("            e+=%g e-=%g eparab=%g globcc=%g\n"
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| 150 |          ,eplus,eminus,eparab,globcc);
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| 151 |  }
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| 152 |  fflush(stdout);
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| 153 |  cout<<"haut(sig)="<<par[0]*sqrt(1-RHO*RHO)/(2*M_PI*SX*SY)
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| 154 |      <<"  haut(sig_fit)="<<par[0]*sqrt(1-par[5]*par[5])/(2*M_PI*par[3]*par[4])<<endl;
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| 155 | 
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| 156 |  TMatrix<r_8> emat = MMM.GetErrorsMatrix();
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| 157 |  cout<<"GetErrorsMatrix:"<<emat<<endl;
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| 158 | 
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| 159 |  /* get covariance matrix */
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| 160 |  MMM.ShowCovariance();
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| 161 |  MMM.ShowCorrelations();
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| 162 |  MMM.ShowEigenValues();
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| 163 | 
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| 164 |  /* contour plot */
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| 165 |  if(DOCONT) {
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| 166 |    for(int i=1;i<NPAR;i++) {
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| 167 |      if(FIX[i]) continue;
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| 168 |      for(int j=i+1;j<=NPAR;j++) {
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| 169 |        if(FIX[j]) continue;
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| 170 |        //MMM.DrawContour(i,j,20);
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| 171 |        TVector<r_8> xcont,ycont;
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| 172 |        int_4 ncontok = MMM.GetContour(i,j,20,xcont,ycont);
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| 173 |        cout<<"Contour "<<i<<" "<<j<<" ncontok="<<ncontok<<endl;
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| 174 |        if(ncontok<1) continue;
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| 175 |        for(int k=0;k<ncontok;k++) cout<<" ("<<xcont[k]<<","<<ycont[k]<<")";
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| 176 |        cout<<endl;
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| 177 |      }
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| 178 |    }
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| 179 |  }
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| 180 | 
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| 181 |  /* scan parameters */
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| 182 |  if(DOSCAN) {
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| 183 |    MMM.ShowFcnValue();
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| 184 |    for(int i=0;i<NPAR;i++) {
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| 185 |      if(FIX[i]) continue;
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| 186 |      MMM.Scan(i+1,par[i]-2.*epar[i],par[i]+2.*epar[i],20);
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| 187 |    }
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| 188 |    MMM.ShowFcnValue();
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| 189 |  }
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| 190 | 
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| 191 |  /* end */
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| 192 |  MMM.ShowRandom();
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| 193 |  MMM.Return();
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| 194 | 
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| 195 |  printf("\n\n");
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| 196 | /*******************************************************************/
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| 197 | 
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| 198 |  /* fin de minimisation, print ! */
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| 199 |  double xi2=0.;
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| 200 |  for(int i=0;i<DIMX;i++) for(int j=0;j<DIMY;j++) {
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| 201 |    double f = Z[i][j]-Gauss2D(X[i],Y[j],par);
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| 202 |    xi2 += f*f/(EZ[i][j]*EZ[i][j]);
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| 203 |  }
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| 204 |  cout<<"1: "<<vol<<"\tfit="<<par[0]<<"\tefit="<<epar[0]<<"\td="<<par[0]-vol;
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| 205 |    if(epar[0]>0.) cout<<"\td/e="<<(par[0]-vol)/epar[0]; cout<<endl;
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| 206 |  cout<<"2: "<<X0<<"\tfit="<<par[1]<<"\tefit="<<epar[1]<<"\td="<<par[1]-X0;
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| 207 |    if(epar[1]>0.) cout<<"\td/e="<<(par[1]-X0)/epar[1]; cout<<endl;
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| 208 |  cout<<"3: "<<Y0<<"\tfit="<<par[2]<<"\tefit="<<epar[2]<<"\td="<<par[2]-Y0;
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| 209 |    if(epar[2]>0.) cout<<"\td/e="<<(par[2]-Y0)/epar[2]; cout<<endl;
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| 210 |  cout<<"4: "<<SX<<"\tfit="<<par[3]<<"\tefit="<<epar[3]<<"\td="<<par[3]-SX;
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| 211 |    if(epar[3]>0.) cout<<"\td/e="<<(par[3]-SX)/epar[3]; cout<<endl;
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| 212 |  cout<<"5: "<<SY<<"\tfit="<<par[4]<<"\tefit="<<epar[4]<<"\td="<<par[4]-SY;
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| 213 |    if(epar[4]>0.) cout<<"\td/e="<<(par[4]-SY)/epar[4]; cout<<endl;
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| 214 |  cout<<"6: "<<RHO<<"\tfit="<<par[5]<<"\tefit="<<epar[5]<<"\td="<<par[5]-RHO;
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| 215 |    if(epar[5]>0.) cout<<"\td/e="<<(par[5]-RHO)/epar[5]; cout<<endl;
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| 216 |  cout<<"7: "<<FOND<<"\tfit="<<par[6]<<"\tefit="<<epar[6]<<"\td="<<par[6]-FOND;
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| 217 |    if(epar[6]>0.) cout<<"\td/e="<<(par[6]-FOND)/epar[6]; cout<<endl;
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| 218 |  cout<<"Xi2="<<xi2<<"\txi2/n="<<xi2/(DIMX*DIMY-NPAR)<<endl;
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| 219 | 
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| 220 |  exit(0);
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| 221 | }
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| 222 | 
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| 223 | void fcn(int_4 *npar,double *grad,double *fval,double *xval
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| 224 |         ,int_4 *iflag,double futils(double *))
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| 225 | {
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| 226 |   //cout<<"iflag="<<*iflag<<endl;
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| 227 |   IFLAG[0]++;
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| 228 |   if(*iflag>0 && *iflag<10) IFLAG[*iflag]++;
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| 229 | 
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| 230 |   // Read input,init,... data values
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| 231 |   //  if(*iflag==1) {...}
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| 232 | 
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| 233 |   // Instruct Minuit to redefine the problem
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| 234 |   // and forget about previously best fitted values.
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| 235 |   //  if(*iflag==5) {...}
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| 236 | 
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| 237 |   // Always compute Chi2 or Likelyhood (here iflag==4)
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| 238 |  *fval=0.;
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| 239 |  for(int i=0;i<DIMX;i++) for(int j=0;j<DIMY;j++) {
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| 240 |    double f = Z[i][j]-Gauss2D(X[i],Y[j],xval);
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| 241 |    *fval += f*f/(EZ[i][j]*EZ[i][j]);
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| 242 |  }
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| 243 | 
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| 244 |  // Compute (optionnal) the first derivative of Chi2 / parameters
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| 245 |  if(*iflag==2) {
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| 246 |    // Return gradient of chi2 (if SET GRA called)
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| 247 |    // C'est DChi2/DPi = -2*sum{(Yi-F(Xi))/EYi^2 * dF/dPi(Xi)}
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| 248 |    double dpar[NPAR];
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| 249 |    for(int j=0;j<NPAR;j++) grad[j]=0.;
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| 250 |    for(int i=0;i<DIMX;i++) for(int j=0;j<DIMY;j++) {
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| 251 |      double f=-2.*(Z[i][j]-Gauss2D(X[i],Y[j],xval))/(EZ[i][j]*EZ[i][j]);
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| 252 |      dGauss2D(X[i],Y[j],xval,dpar);
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| 253 |      for(int k=0;k<NPAR;k++) grad[k]+= f*dpar[k];
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| 254 |    }
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| 255 |  }
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| 256 | 
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| 257 |  // Called at the end of the fit (on the Minuit RETURN)
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| 258 |  if(*iflag==3) {
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| 259 |    cout<<"Call fcn iflag="<<*iflag<<" npar="<<*npar<<endl;
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| 260 |    for(int k=0;k<NPAR;k++) cout<<" P"<<k+1<<"="<<xval[k];
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| 261 |    cout<<endl;
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| 262 |    cout<<"Number of fcn calls="<<IFLAG[0]<<endl;
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| 263 |    for(int k=1;k<10;k++)
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| 264 |      cout<<"  iflag="<<k<<" number of calls="<<IFLAG[k]<<endl;
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| 265 |  }
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| 266 | }
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| 267 | 
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| 268 | double Gauss2D(double x,double y,double *param)
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| 269 | // xc = (x-p1)/p3 ; yc = (y-p2)/p4
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| 270 | // f(x) = p0*(1-rho^2)/(2*Pi*p3*p4) * exp(-0.5*(xc^2+yc^2-2*p5*xc*yc))
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| 271 | {
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| 272 |  double N = sqrt(1.-param[5]*param[5])/(2*M_PI*param[3]*param[4]);
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| 273 |  double X = (x-param[1])/param[3];
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| 274 |  double Y = (y-param[2])/param[4];
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| 275 |  double z2 = (X*X + Y*Y - 2.*param[5]*X*Y)/2.;
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| 276 |  if(z2<100.) z2=exp(-z2); else z2=0.;
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| 277 |  return param[0]*N*z2 + param[6];
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| 278 | }
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| 279 | 
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| 280 | double dGauss2D(double x,double y,double *param,double *dparam)
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| 281 | {
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| 282 |  double unmr2 = 1.-param[5]*param[5];
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| 283 |  double N = sqrt(unmr2)/(2*M_PI*param[3]*param[4]);
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| 284 |  double X = (x-param[1])/param[3];
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| 285 |  double Y = (y-param[2])/param[4];
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| 286 | 
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| 287 |  double XmrY = X-param[5]*Y;
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| 288 |  double YmrX = Y-param[5]*X;
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| 289 |  double z2 = (X*(XmrY-param[5]*Y)+Y*Y)/2.;
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| 290 | 
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| 291 |  /* g(x,y) */
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| 292 |  double PSF = 0.;
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| 293 |  if(z2<100.) PSF = N * exp(-z2);
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| 294 |  /* dg(x,y)/d(Vol) */
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| 295 |  dparam[0] = PSF;
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| 296 |  /* dg(x,y)/d(x0) */
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| 297 |  dparam[1] =  param[0]* PSF* XmrY/param[3];
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| 298 |  /* dg(x,y)/d(y0) */
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| 299 |  dparam[2] =  param[0]* PSF* YmrX/param[4];
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| 300 |  /* dg(x,y)/d(sx)*/
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| 301 |  dparam[3] =  param[0]* PSF* (X*XmrY-1.)/param[3];
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| 302 |  /* dg(x,y)/d(sy) */
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| 303 |  dparam[4] =  param[0]* PSF* (Y*YmrX-1.)/param[4];
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| 304 |  /* dg(x,y)/d(rho) */
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| 305 |  dparam[5] =  param[0]* PSF* (X*Y-2.*param[5]/unmr2);
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| 306 |  /* dg(x,y)/d(Fond) */
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| 307 |  dparam[6] = 1.;
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| 308 | 
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| 309 |  return param[0] * PSF + param[6];
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| 310 | }
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