[1187] | 1 | #include <iostream>
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| 2 | #include "ptsrcinbandcalctools.h"
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| 3 | #include "lightptsrclevsinband.h"
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| 4 | #include "spherehealpix.h"
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| 5 |
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| 6 | PtSrcInBandCalTools::PtSrcInBandCalTools(LightPtSrcLevSInBand* pLightSource,MeanFreqLobe* pLob, LevSPanckBand thisBand)
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| 7 | :pLightSrc(pLightSource), Band(thisBand)
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| 8 | { pLobe=pLob;
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| 9 | FreqMax=pLobe->maxFreq();
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| 10 | FreqMin=pLobe->minFreq();
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| 11 | pFilter=pLob->pRespShape;
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| 12 | RAngComp = pLobe->lobeResol();
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| 13 | }
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| 14 |
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| 15 | double PtSrcInBandCalTools::compPixel(UnitVector& VP, UnitVector& VY)
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| 16 | { double OuvAng=pLobe->AngleMax();
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| 17 | double thetaPointe=VP.Theta();
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| 18 | double PhiPointe=VP.Phi();
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| 19 |
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| 20 | double ThetaMin=thetaPointe-OuvAng; if(ThetaMin<0.) ThetaMin=0.;
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| 21 | double ThetaMax=thetaPointe+OuvAng; if(ThetaMax>M_PI) ThetaMax=M_PI;
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| 22 |
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| 23 | /*
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| 24 | cout<< "test Passage"<<endl;
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| 25 | cout<<VP.Theta()<<'\t'<<VP.Phi()<<'\t'<<VY.Theta()<<'\t'<<VY.Phi()<<endl;
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| 26 | */
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| 27 | double deltaPhi;
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| 28 | { // Compute limits in Phi
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| 29 | double deltaPhi1;
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| 30 | if(ThetaMin!=0.) deltaPhi1=OuvAng/sin(ThetaMin);
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| 31 | else deltaPhi1=M_PI;
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| 32 | double deltaPhi2;
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| 33 | if(ThetaMax!=0.) deltaPhi2=OuvAng/sin(ThetaMax);
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| 34 | else deltaPhi2=M_PI;
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| 35 |
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| 36 | // Compute deltaPhi
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| 37 | if(deltaPhi1>deltaPhi2) deltaPhi=deltaPhi1;
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| 38 | else deltaPhi=deltaPhi2;
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| 39 | }
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| 40 | double PhiMin=PhiPointe-deltaPhi;
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| 41 | double PhiMax=PhiPointe+deltaPhi;
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| 42 |
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| 43 | /* // Useless!
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| 44 | if((PhiMin<-M_PI)||(PhiMax>M_PI))
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| 45 | { PhiMin=-M_PI;
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| 46 | PhiMax=M_PI;
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| 47 | }
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| 48 | */
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| 49 | double PowerTot=0.;
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| 50 |
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| 51 | const UnitVector VecBidon(ThetaMin,0.);
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| 52 | multimap <UnitVector,LevSPtSrcData,LevSPtSrcCmpUnitVec>::iterator iterlow=pLightSrc->MapOfPtSrc.lower_bound(VecBidon);
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| 53 | const UnitVector VecBidon2(ThetaMax,0.);
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| 54 | multimap <UnitVector,LevSPtSrcData,LevSPtSrcCmpUnitVec>::iterator iterhigh=pLightSrc->MapOfPtSrc.upper_bound(VecBidon2);
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| 55 |
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| 56 | multimap <UnitVector,LevSPtSrcData,LevSPtSrcCmpUnitVec>::iterator iter;
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| 57 | double PhiSrc;
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| 58 |
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| 59 | // long compteur=0;
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| 60 | // long compteur2=0;
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| 61 |
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| 62 | for(iter=iterlow; iter!=iterhigh; iter++)
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| 63 | { PhiSrc=(*iter).first.Phi();
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| 64 | if( (PhiSrc>PhiMin) && (PhiSrc<PhiMax) )
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| 65 | { double poid=pLobe->weigthAmpl((*iter).first,VP,VY);
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| 66 | PowerTot+=(*iter).second.getPower(Band)*poid;
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| 67 | // compteur++;
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| 68 | // if (poid!=0.) compteur2++;
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| 69 | }
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| 70 | }
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| 71 | return PowerTot;
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| 72 | }
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| 73 |
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| 74 | double PtSrcInBandCalTools::CalcLobeSize(double frequency)
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| 75 | // I KNOW! Awfully heavy. But It's the cost of generality.
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| 76 | // This function should be called only once!
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| 77 | { double AngMax=pLobe->AngleMax();
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| 78 |
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| 79 | // On cherche la resolution healpix correspondante
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| 80 | double x= 0.5*M_PI/RAngComp;
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| 81 | long nlat=1;
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| 82 | while (x>1.)
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| 83 | {x/=2.; nlat*=2;}
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| 84 |
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| 85 | // On reserve une sphere pour en connaitres les coordonnes
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| 86 | SphereHEALPix<uint_2> dummSphere(nlat);
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| 87 |
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| 88 | double SolidAngPixel = dummSphere.PixSolAngle();
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| 89 | long Nbtranch = dummSphere.NbThetaSlices()*AngMax/M_PI;
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| 90 | double thetaStep=M_PI/Nbtranch+1.;
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| 91 |
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| 92 | TVector<uint_2> VecValues;
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| 93 | TVector<int_4> VecIndice;
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| 94 | r_8 dumTheta;
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| 95 | r_8 dumPhi;
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| 96 |
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| 97 | double AngSolid=0.;
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| 98 | UnitVector VZ(0.,0.,1.);
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| 99 |
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| 100 | for(double ThetaAnn=0.5*thetaStep;ThetaAnn<AngMax; ThetaAnn+=thetaStep)
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| 101 | { // Obtient l'indice d'un pixel sur l'anneau theta=ThetaAnn
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| 102 | int_4 index=dummSphere.PixIndexSph(ThetaAnn,0.);
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| 103 | dummSphere.GetThetaSlice(index,dumTheta,dumPhi,VecIndice,VecValues);
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| 104 |
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| 105 | double theta,phi;
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| 106 | // Somme la valeur du lobe sur les pointe d'un anneau
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| 107 | for(long index=0; index<VecIndice.Size(); index++)
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| 108 | { int_4 ind=VecIndice(index);
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| 109 | dummSphere.PixThetaPhi(ind,theta,phi);
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| 110 | UnitVector VInteg(theta, phi);
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| 111 | UnitVector VY=VZ^VInteg;
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| 112 |
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| 113 | AngSolid+= pLobe->weigthAmpl(VInteg,VZ,VY)*SolidAngPixel;
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| 114 | }
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| 115 | }
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| 116 | cout<<AngSolid<<endl;
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| 117 |
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| 118 | return AngSolid;
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| 119 | }
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| 120 |
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| 121 | /*
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| 122 | double PtSrcInBandCalTools::powerInteg(double ThetaMin, double ThetaMax,
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| 123 | double PhiMin, double PhiMax, UnitVector& VP, UnitVector& VY, bool InvLog)
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| 124 | {
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| 125 | const UnitVector VecBidon(ThetaMin,0.);
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| 126 | multimap <UnitVector,LevSPtSrcData,LevSPtSrcCmpUnitVec>::iterator iterlow=pLightSrc->MapOfPtSrc.lower_bound(VecBidon);
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| 127 | const UnitVector VecBidon2(ThetaMax,0.);
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| 128 | multimap <UnitVector,LevSPtSrcData,LevSPtSrcCmpUnitVec>::iterator iterhigh=pLightSrc->MapOfPtSrc.upper_bound(VecBidon2);
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| 129 |
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| 130 | multimap <UnitVector,LevSPtSrcData,LevSPtSrcCmpUnitVec>::iterator iter;
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| 131 | double Power=0.;
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| 132 | double PhiSrc;
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| 133 | bool test;
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| 134 |
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| 135 | // long compteur=0;
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| 136 | // long compteur2=0;
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| 137 |
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| 138 | for(iter=iterlow; iter!=iterhigh; iter++)
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| 139 | { PhiSrc=(*iter).first.Phi();
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| 140 | test=(PhiSrc>PhiMin) && (PhiSrc<PhiMax);
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| 141 | if (InvLog) test= (!test);
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| 142 | if(test)
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| 143 | { double poid=pLobe->weigthAmpl((*iter).first,VP,VY);
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| 144 | Power+=(*iter).second.getPower(Band)*poid;
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| 145 | // compteur++;
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| 146 | // if (poid!=0.) compteur2++;
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| 147 | }
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| 148 | }
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| 149 | return Power;
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| 150 | }
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| 151 | */
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