| [801] | 1 | // Dominique YVON, CEA/DAPNIA/SPP 02/2000 | 
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|  | 2 |  | 
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|  | 3 | #include <math.h> | 
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|  | 4 | #include <iostream> | 
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|  | 5 | #include <iostream> | 
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|  | 6 | #include <fstream> | 
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|  | 7 | #ifdef __MWERKS__ | 
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| [1148] | 8 |  | 
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| [801] | 9 | #include "unixmac.h" | 
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|  | 10 | #endif | 
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|  | 11 | #include "sigcalctools.h" | 
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|  | 12 | #include "lightdipole.h" | 
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|  | 13 |  | 
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|  | 14 | //_______________ ici toutes les frequences sont en Hz ___________________________ | 
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|  | 15 |  | 
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|  | 16 | static SigCalcTool* pSigToolcur; | 
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|  | 17 |  | 
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|  | 18 | double SigCalGLFreqFunc1(double freq) { | 
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|  | 19 | double temp1=(pSigToolcur->pLSrc)->spectre(freq); | 
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|  | 20 | double temp2=(pSigToolcur->pLobe)->spectre(freq); | 
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|  | 21 | double temp3=(pSigToolcur->pFilter)->transmission(freq); | 
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|  | 22 |  | 
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|  | 23 | return  temp1*temp2*temp3; | 
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|  | 24 | } | 
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|  | 25 |  | 
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|  | 26 | double SigCalGLFreqFunc2(double freq) | 
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|  | 27 | { | 
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|  | 28 | // Integration function for GLInteg | 
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|  | 29 | double temp1= | 
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|  | 30 | (pSigToolcur->pLSrc)->powSpecDens((pSigToolcur->VPointe).Theta(),(pSigToolcur->VPointe).Phi(),freq); | 
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|  | 31 | double temp2=(pSigToolcur->pLobe)->weigth(pSigToolcur->VCur,pSigToolcur->VPointe,pSigToolcur->VY,freq); | 
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|  | 32 | double temp3=(pSigToolcur->pFilter)->transmission(freq); | 
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|  | 33 | return temp1*temp2*temp3; | 
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|  | 34 | } | 
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|  | 35 |  | 
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|  | 36 | SigCalcTool::SigCalcTool(AbsLightSource* pLightSrc, AbsLobeNoPolar* pLobeNoPolar, | 
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| [1148] | 37 | SpectralResponse* pFilt):pLSrc(pLightSrc) | 
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|  | 38 | {       pLobe=pLobeNoPolar; | 
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|  | 39 | pFilter=pFilt; | 
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|  | 40 |  | 
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| [801] | 41 | SigCalcToolInit(); | 
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|  | 42 | } | 
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|  | 43 |  | 
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|  | 44 | void SigCalcTool::SigCalcToolInit() | 
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|  | 45 | {       emptySignal=false; | 
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|  | 46 | // Compute frequency integration boundaries | 
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|  | 47 | cout<< "Initialisation Calctool"<<endl; | 
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|  | 48 | FreqMin=max(pLobe->minFreq(), pFilter->minFreq()); | 
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|  | 49 | FreqMax=min(pLobe->maxFreq(), pFilter->maxFreq()); | 
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|  | 50 | if(FreqMax<FreqMin) { | 
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|  | 51 | emptySignal=true; | 
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|  | 52 | cerr<< "Frequency max is lower than Frequency Min in SigCalcTool"<<endl; | 
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|  | 53 | cerr<< "check consistency of lobes and Filters"<<endl; | 
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|  | 54 | } | 
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|  | 55 | // Computation Options | 
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|  | 56 | if(pLSrc->IsMappedPowerSrc()) | 
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|  | 57 | {  if(!pLobe->IsFreqSep()) | 
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|  | 58 | { cerr<<" Sigcalctool error: using a LightMapPowerInband with a lobe non freq separable"<<endl; | 
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|  | 59 | cerr<<" Did you change lobe between constructing the map and running sigcalctool?"<<endl; | 
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|  | 60 | cerr<<" Program exited"<<endl; | 
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|  | 61 | exit(-1.); | 
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|  | 62 | } | 
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|  | 63 | Option=IsLightMapPowerInband; | 
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|  | 64 | pIntegrale= new GLInteg(); | 
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|  | 65 | // Pour eviter un plantage dans ~SigCalcTool | 
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|  | 66 | } | 
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|  | 67 |  | 
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|  | 68 | else if(pLSrc->IsFreqSep()&&pLobe->IsFreqSep()) { | 
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|  | 69 | Option=AllSeparable; | 
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|  | 70 | pIntegrale= new GLInteg(SigCalGLFreqFunc1,FreqMin,FreqMax); //en Hz. | 
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|  | 71 | pSigToolcur=this; | 
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|  | 72 | pIntegrale->NStep(200);                 // Integration tres srieuse | 
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|  | 73 | IntegSpectOverFreq=pIntegrale->Value(); | 
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|  | 74 | } | 
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|  | 75 |  | 
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|  | 76 | else | 
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|  | 77 | {       Option=NonSeparable; | 
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|  | 78 | pIntegrale= new GLInteg(SigCalGLFreqFunc2,FreqMin,FreqMax); | 
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|  | 79 | pIntegrale->NStep(10);                // Pour aller plus vite. Serieux si le filtre est "compact" | 
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|  | 80 | } | 
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|  | 81 | // Computation Resolution | 
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|  | 82 | RAngComp=pLSrc->LSrcResol();      // On integre sur la resolution de la carte | 
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|  | 83 | if(RAngComp==0.) | 
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|  | 84 | {       RAngComp=pLobe->lobeResol(); | 
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|  | 85 | if(RAngComp==0.) | 
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|  | 86 | {       cerr<<" Bizarre un lobe de resolution nulle?"<<endl; | 
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|  | 87 | RAngComp= 5.e-4;        // Radians | 
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|  | 88 | // On prend la resolution nominale de Planck | 
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|  | 89 | } | 
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|  | 90 | } | 
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|  | 91 | if(RAngComp<pLobe->lobeResol()) | 
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|  | 92 | {       cerr<<" SigCalcTool: LightSource resolution lower than expected lobe resolution"<<endl; | 
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|  | 93 | cerr<<" Not healthy: Ckeck consistency"<<endl; | 
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|  | 94 | } | 
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|  | 95 | cout<<"Resolution de calcul: "<<RAngComp<<" Radian"<<endl<<endl; | 
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|  | 96 | } | 
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|  | 97 |  | 
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|  | 98 |  | 
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| [1148] | 99 |  | 
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| [801] | 100 | double SigCalcTool::compPixel(UnitVector& VP, UnitVector& VdirectY){ | 
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|  | 101 | double returnRes=0.; | 
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|  | 102 | VPointe=VP; | 
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|  | 103 | VY=VdirectY; | 
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|  | 104 | VX=VY^VP; | 
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|  | 105 | if(!emptySignal) returnRes=powerInteg(); // On integre sur la sphere | 
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|  | 106 | return returnRes; | 
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|  | 107 | } | 
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|  | 108 |  | 
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|  | 109 |  | 
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|  | 110 | double SigCalcTool::calcPowerDens() const{ | 
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|  | 111 | // Compute the power integrated on frequency dependance, (Lobe and LightSource) | 
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|  | 112 | pSigToolcur=(SigCalcTool*) this; | 
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|  | 113 | double returnRes; | 
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|  | 114 | double poidlobe; | 
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|  | 115 | double Puiss; | 
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|  | 116 | switch (Option) | 
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|  | 117 | { | 
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|  | 118 | case AllSeparable: | 
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|  | 119 | { | 
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|  | 120 | poidlobe=(pSigToolcur->pLobe)->weigthAmpl(VCur,VPointe,VY);  // ss dimensions | 
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|  | 121 | /* | 
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|  | 122 | if (poidlobe>.1) | 
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|  | 123 | { cout<<poidlobe<<endl; | 
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|  | 124 | } | 
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|  | 125 | */ | 
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|  | 126 |  | 
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|  | 127 | Puiss=(pSigToolcur->pLSrc)->powerDensAmpli(VCur.Theta(),VCur.Phi()); | 
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|  | 128 | // W m-2 st-1 Hz-1 | 
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|  | 129 | returnRes=Puiss * poidlobe * IntegSpectOverFreq;      // W / m2 / st | 
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|  | 130 | return returnRes; | 
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|  | 131 | } | 
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|  | 132 | case IsLightMapPowerInband: | 
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|  | 133 | { | 
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|  | 134 | //     cout<<"VCur.Theta: "<<VCur.Theta()<<"VCur.Phi(): "<<VCur.Phi()<<endl; | 
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|  | 135 | poidlobe= (pSigToolcur->pLobe)->weigthAmpl(VCur,VPointe,VY); | 
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|  | 136 | Puiss= (pSigToolcur->pLSrc)->powerDensAmpli(VCur.Theta(),VCur.Phi()); | 
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|  | 137 | returnRes=Puiss * poidlobe; | 
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|  | 138 | return returnRes; | 
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|  | 139 | } | 
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|  | 140 |  | 
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|  | 141 | default: | 
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|  | 142 | {  // Cas NonSeparable | 
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|  | 143 | // Integration over at coordinates | 
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|  | 144 | returnRes=pIntegrale->Value(); | 
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|  | 145 | return returnRes; | 
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|  | 146 | } | 
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|  | 147 |  | 
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|  | 148 | } | 
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|  | 149 | } | 
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|  | 150 |  | 
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|  | 151 |  | 
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|  | 152 | #define NBStepCircleMin (12) | 
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|  | 153 |  | 
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|  | 154 | double SigCalcTool::powerInteg() { | 
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|  | 155 | // compute power on detector | 
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|  | 156 |  | 
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|  | 157 | double powerInteg=0.; | 
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|  | 158 | // Sum of the incominig power on detector. | 
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|  | 159 | UnitVector VPoin; | 
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|  | 160 | // VPointe Boresigth du telescope microonde | 
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|  | 161 | // VPoin direction priviliegiee du lobe, autour de laquelle on calcule | 
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|  | 162 | // VCur, vecteur courant du calcul. | 
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|  | 163 | //  double thetaCur, phiCur;    // Coordinates of VCur | 
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|  | 164 | // Units is radian | 
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|  | 165 |  | 
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|  | 166 |  | 
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|  | 167 |  | 
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|  | 168 | //------Initialisation of Lobe integration------------------------------------------ | 
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|  | 169 | double angShift=0.;       // Angular distance from VPoin | 
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|  | 170 | double angShiftLimit;         // On calcule jusqu'a angShiftLimit de VPoin | 
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|  | 171 |  | 
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|  | 172 | if(pLSrc->IsQPtSrc()) | 
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|  | 173 | {      double ang1=pLSrc->getAngSize()+pLobe->AngleMax(); | 
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|  | 174 | VPoin=pLobe->VecShift(VPointe, VY); | 
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|  | 175 | if (ang1>=M_PI) { } //rien | 
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|  | 176 | else | 
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|  | 177 | {  double cosinus=VPoin*pLSrc->GetVSrcCenter(); | 
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|  | 178 | if (cosinus<cos(ang1)) return 0.; | 
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|  | 179 | //C'est le cas ou la source est trop loin de la direction pointe | 
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|  | 180 | } | 
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|  | 181 | // Maintenant on intgre | 
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|  | 182 | angShiftLimit=ang1; | 
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|  | 183 | } | 
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|  | 184 | else | 
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|  | 185 | { | 
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|  | 186 | VPoin=pLobe->VecShift(VPointe, VY); | 
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|  | 187 | angShiftLimit=pLobe->AngleMax(); | 
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|  | 188 | } | 
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|  | 189 |  | 
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|  | 190 | // On va tourner autour de VPoin | 
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|  | 191 | // Compute unit vector perpendicular to Vpoin at same theta | 
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|  | 192 | UnitVector VPerp; | 
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|  | 193 | VPerp=VPoin.VperpPhi(); | 
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|  | 194 |  | 
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| [1191] | 195 | double dAngShift=AngResComp(0.); | 
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| [801] | 196 | // AngleSteps are not necessarily constant. | 
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|  | 197 | double lastAngShiftMax; | 
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|  | 198 | // Needed to compute accurately solid angle values | 
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|  | 199 |  | 
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|  | 200 | VCur=VPoin; | 
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|  | 201 |  | 
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|  | 202 | powerInteg+=calcPowerDens()*diffSolidAng(0.,dAngShift/2.); | 
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|  | 203 | lastAngShiftMax= dAngShift/2.; | 
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|  | 204 |  | 
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|  | 205 | long NbPasOneCircle; | 
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|  | 206 | long CircleNumber=0;   // no du cercle en cour: | 
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|  | 207 | // Gestion des dcalages pour un echantillonnage en quinconce | 
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|  | 208 | double solidAngStepCircle; | 
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|  | 209 | float stepAngCircle; | 
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|  | 210 |  | 
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|  | 211 | ///---------- Lobe integration----------------------------------------- | 
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|  | 212 | // generate vectors around VPoin at angular distance angShift. | 
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|  | 213 | // Compute power flux from foreground in this direction | 
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|  | 214 | // Weigth  with weigth function and solid angle | 
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|  | 215 | dAngShift=AngResComp(lastAngShiftMax); | 
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|  | 216 |  | 
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|  | 217 | while((lastAngShiftMax+dAngShift)<angShiftLimit){ | 
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|  | 218 | CircleNumber++; | 
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|  | 219 | angShift=lastAngShiftMax+dAngShift/2.; | 
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|  | 220 |  | 
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|  | 221 | VCur=VPoin.Rotate(VPerp,angShift); | 
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|  | 222 |  | 
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|  | 223 | // Compute number of step and associates on a circle | 
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|  | 224 | NbPasOneCircle=(long) (2*M_PI*sin(angShift)/sin(dAngShift)); | 
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|  | 225 | if(NbPasOneCircle<NBStepCircleMin) NbPasOneCircle=NBStepCircleMin; | 
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|  | 226 | stepAngCircle=2*M_PI/NbPasOneCircle; | 
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|  | 227 | solidAngStepCircle= diffSolidAng(lastAngShiftMax,angShift+dAngShift/2.)/NbPasOneCircle; | 
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|  | 228 | // MRotAround=RotVec(VPoin,stepAngCircle); | 
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|  | 229 |  | 
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|  | 230 | //----------- integrate on a circle ------------------- | 
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|  | 231 | if((CircleNumber%2)==0) VCur=VCur.Rotate(VPoin,stepAngCircle/2.); | 
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|  | 232 | // Pour un echantillonnage en quinconce | 
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|  | 233 |  | 
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|  | 234 | for(long i=0;i<NbPasOneCircle;i++) | 
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|  | 235 | { | 
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|  | 236 | //cout<< "rotation numb: "<< i<<endl; | 
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|  | 237 | powerInteg+=calcPowerDens()*solidAngStepCircle; | 
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|  | 238 | VCur=VCur.Rotate(VPoin,stepAngCircle); | 
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|  | 239 | }   // end of circle | 
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|  | 240 |  | 
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|  | 241 | lastAngShiftMax+=dAngShift; | 
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|  | 242 | dAngShift=AngResComp(lastAngShiftMax); | 
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|  | 243 | } | 
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|  | 244 |  | 
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|  | 245 | // On s'occupe des effets de bord: un dernier tour! | 
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|  | 246 | // On change le code pour eviter les instabilites dues a dAngShift tres petit | 
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|  | 247 | CircleNumber++; | 
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|  | 248 | angShift=(angShiftLimit+lastAngShiftMax)/2.; | 
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|  | 249 |  | 
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|  | 250 | VCur=VPoin.Rotate(VPerp,angShift); | 
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|  | 251 | // Compute number of step and associates on a circle | 
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|  | 252 | NbPasOneCircle=(long) 2*M_PI*sin(angShift)/sin(AngResComp(angShift)); | 
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|  | 253 | if(NbPasOneCircle<NBStepCircleMin) NbPasOneCircle=NBStepCircleMin; | 
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|  | 254 | stepAngCircle=2*M_PI/NbPasOneCircle; | 
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|  | 255 | solidAngStepCircle= diffSolidAng(lastAngShiftMax,angShiftLimit)/NbPasOneCircle; | 
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|  | 256 |  | 
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|  | 257 | //----------- integrate on last circle ------------------- | 
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|  | 258 | for(long i=0;i<NbPasOneCircle;i++) | 
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|  | 259 | { | 
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|  | 260 | powerInteg+=calcPowerDens()*solidAngStepCircle; | 
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|  | 261 | VCur=VCur.Rotate(VPoin,stepAngCircle); | 
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|  | 262 | } | 
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|  | 263 | //end of last circle | 
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|  | 264 |  | 
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|  | 265 | //end of integration | 
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|  | 266 |  | 
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|  | 267 | // cout<<"On a termine un point, OUFF"<< endl; | 
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|  | 268 | return powerInteg; | 
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|  | 269 | } | 
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|  | 270 |  | 
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|  | 271 | /* | 
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|  | 272 | double SigCalcTool::CalcInBandPower(double theta, double phi) | 
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|  | 273 | { | 
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|  | 274 | double returnRes=0.; | 
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|  | 275 | UnitVector VP(theta,phi); | 
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|  | 276 | UnitVector VYbidon=VP.VperpPhi(); | 
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|  | 277 | // Compute unit vector perpendicular to Vpoin at same theta | 
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|  | 278 | VCur=VP; | 
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|  | 279 | VPointe=VP; | 
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|  | 280 | VY=VYbidon; | 
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|  | 281 | VX=VY^VP; | 
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|  | 282 | if(!emptySignal) returnRes=calcPowerDens(); // On integre sur la frequence | 
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|  | 283 | return returnRes; | 
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|  | 284 | } | 
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|  | 285 | */ | 
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|  | 286 |  | 
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|  | 287 | double SigCalcTool::AngResComp(double angle) const | 
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|  | 288 | { | 
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|  | 289 | double AngRes; | 
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|  | 290 | if(pLSrc->IsQPtSrc()) AngRes=RAngComp; | 
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|  | 291 | else AngRes=RAngComp*pLobe->ResolutionCurve(angle); | 
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|  | 292 | return AngRes; | 
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|  | 293 | } | 
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|  | 294 |  | 
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|  | 295 | double SigCalcTool::CalcLobeSize(double frequency) | 
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|  | 296 | { | 
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|  | 297 | // Compute lobe extension in steradians | 
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|  | 298 |  | 
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|  | 299 | if(frequency== -10.) frequency=(FreqMin+FreqMax)/2.; | 
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|  | 300 |  | 
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|  | 301 | double SizeInteg=0.; | 
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|  | 302 | // Sum of the incominig power on detector. | 
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|  | 303 | UnitVector VPoin; | 
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|  | 304 | // VPointe Boresigth du telescope microonde | 
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|  | 305 | // VPoin direction priviliegiee du lobe, autour de laquelle on calcule | 
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|  | 306 | // VCur, vecteur courant du calcul. | 
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|  | 307 |  | 
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|  | 308 | //------Initialisation of Lobe integration------------------------------------------ | 
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|  | 309 | double angShift=0.;                           // Angular distance from VPoin | 
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|  | 310 | double angShiftLimit=pLobe->AngleMax();               // On calcule jusqu'a angShiftLimit de VPoin | 
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|  | 311 |  | 
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|  | 312 |  | 
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|  | 313 | // On va tourner autour de VPoin | 
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|  | 314 | // Compute unit vector perpendicular to Vpoin at same theta | 
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|  | 315 | UnitVector VPerp; | 
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|  | 316 | VPerp=VPoin.VperpPhi(); | 
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|  | 317 |  | 
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| [1191] | 318 | double dAngShift=AngResComp(0.); | 
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| [801] | 319 | // AngleSteps are not necessarily constant. | 
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|  | 320 | double lastAngShiftMax; | 
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|  | 321 | // Needed to compute accurately solid angle values | 
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|  | 322 | UnitVector VCur; | 
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|  | 323 | VCur=VPoin; | 
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|  | 324 |  | 
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|  | 325 | SizeInteg+= pLobe->weigth(VCur,VPoin,VPerp,frequency)*diffSolidAng(0.,dAngShift/2.); | 
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|  | 326 | lastAngShiftMax= dAngShift/2.; | 
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|  | 327 |  | 
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|  | 328 | long NbPasOneCircle; | 
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|  | 329 | long CircleNumber=0;   // no du cercle en cour: | 
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|  | 330 | // Gestion des dcalages pour un echantillonnage en quinconce | 
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|  | 331 | double solidAngStepCircle; | 
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|  | 332 | float stepAngCircle; | 
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|  | 333 |  | 
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|  | 334 | ///---------- Lobe integration----------------------------------------- | 
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|  | 335 | // generate vectors around VPoin at angular distance angShift. | 
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|  | 336 | // Compute power flux from foreground in this direction | 
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|  | 337 | // Weigth  with weigth function and solid angle | 
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|  | 338 | dAngShift=AngResComp(lastAngShiftMax); | 
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|  | 339 |  | 
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|  | 340 | while((lastAngShiftMax+dAngShift)<angShiftLimit) | 
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|  | 341 | { | 
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|  | 342 | CircleNumber++; | 
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|  | 343 | angShift=lastAngShiftMax+dAngShift/2.; | 
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|  | 344 |  | 
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|  | 345 | VCur=VPoin.Rotate(VPerp,angShift); | 
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|  | 346 |  | 
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|  | 347 | // Compute number of step and associates on a circle | 
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|  | 348 | NbPasOneCircle=(long) (2*M_PI*sin(angShift)/sin(dAngShift)); | 
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|  | 349 | if(NbPasOneCircle<NBStepCircleMin) NbPasOneCircle=NBStepCircleMin; | 
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|  | 350 | stepAngCircle=2*M_PI/NbPasOneCircle; | 
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|  | 351 | solidAngStepCircle= diffSolidAng(lastAngShiftMax,angShift+dAngShift/2.)/NbPasOneCircle; | 
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|  | 352 |  | 
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|  | 353 | //----------- integrate on a circle ------------------- | 
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|  | 354 | if((CircleNumber%2)==0) VCur=VCur.Rotate(VPoin,stepAngCircle/2.); | 
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|  | 355 | // Pour un echantillonnage en quinconce | 
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|  | 356 |  | 
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|  | 357 | for(long i=0;i<NbPasOneCircle;i++) | 
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|  | 358 | { | 
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|  | 359 | SizeInteg+= pLobe->weigth(VCur,VPoin,VPerp,frequency)*diffSolidAng(0.,dAngShift/2.); | 
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|  | 360 | VCur=VCur.Rotate(VPoin,stepAngCircle); | 
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|  | 361 | }   // end of circle | 
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|  | 362 |  | 
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|  | 363 | lastAngShiftMax+=dAngShift; | 
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|  | 364 | dAngShift=AngResComp(lastAngShiftMax); | 
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|  | 365 | } | 
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|  | 366 |  | 
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|  | 367 | // On s'occupe des effets de bord: un dernier tour! | 
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|  | 368 | // On change le code pour eviter les instabilites dues a dAngShift tres petit | 
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|  | 369 | CircleNumber++; | 
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|  | 370 | angShift=(angShiftLimit+lastAngShiftMax)/2.; | 
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|  | 371 |  | 
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|  | 372 | VCur=VPoin.Rotate(VPerp,angShift); | 
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|  | 373 | // Compute number of step and associates on a circle | 
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|  | 374 | NbPasOneCircle=(long) 2*M_PI*sin(angShift)/sin(AngResComp(angShift)); | 
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|  | 375 | if(NbPasOneCircle<NBStepCircleMin) NbPasOneCircle=NBStepCircleMin; | 
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|  | 376 | stepAngCircle=2*M_PI/NbPasOneCircle; | 
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|  | 377 | solidAngStepCircle= diffSolidAng(lastAngShiftMax,angShiftLimit)/NbPasOneCircle; | 
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|  | 378 |  | 
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|  | 379 | //----------- integrate on last circle ------------------- | 
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|  | 380 | for(long i=0;i<NbPasOneCircle;i++) | 
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|  | 381 | { | 
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|  | 382 | SizeInteg+= pLobe->weigth(VCur,VPoin,VPerp,frequency)*diffSolidAng(0.,dAngShift/2.); | 
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|  | 383 | VCur=VCur.Rotate(VPoin,stepAngCircle); | 
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|  | 384 | } | 
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|  | 385 | //end of last circle | 
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|  | 386 |  | 
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|  | 387 | //end of integration | 
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|  | 388 |  | 
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|  | 389 | return SizeInteg; | 
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|  | 390 | } | 
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|  | 391 |  | 
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|  | 392 | // should be included as a class member, would template member function | 
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|  | 393 | // work on all compilers | 
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|  | 394 |  | 
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|  | 395 | static AbsLobeNoPolar* AddInBandPowerpLobe; | 
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|  | 396 | static AbsLightSource* AddInBandPowerpLSrc; | 
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|  | 397 | static SpectralResponse* AddInBandPowerpFilter; | 
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|  | 398 | static double AIBtheta; | 
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|  | 399 | static double AIBphi; | 
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|  | 400 |  | 
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|  | 401 | static double AddInBandPowerFreqFunc1(double freq) | 
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|  | 402 | {  // Integration function for GLInteg | 
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|  | 403 | double temp1= AddInBandPowerpLSrc->powSpecDens(AIBtheta,AIBphi,freq); | 
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|  | 404 | double temp2= AddInBandPowerpLobe->spectre(freq); | 
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|  | 405 | double temp3= AddInBandPowerpFilter->transmission(freq); | 
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|  | 406 | return temp1*temp2*temp3; | 
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|  | 407 | } | 
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|  | 408 |  | 
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|  | 409 | template <class T> void addInInBandPowerMap(PixelMap<T>& Map, SigCalcTool& Tool) | 
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|  | 410 | {       // No spatial integration on the lobe | 
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|  | 411 | // Valid if lobe is separable in frequency | 
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|  | 412 | // Test | 
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|  | 413 | AddInBandPowerpLobe=Tool.getpLobe(); | 
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|  | 414 | AddInBandPowerpLSrc=Tool.getpLSrc(); | 
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|  | 415 | AddInBandPowerpFilter=Tool.getpFilter(); | 
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|  | 416 | if(!AddInBandPowerpLobe->IsFreqSep()) | 
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|  | 417 | {     cerr<<" Adding power to a map using a lobe non separable in frequency is inconsistent"<<endl; | 
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|  | 418 | cerr<<" No power added, addInBandPower skipped"<<endl; | 
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|  | 419 | return; | 
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|  | 420 | } | 
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|  | 421 |  | 
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|  | 422 | long PixelNumber= Map.NbPixels(); | 
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|  | 423 | double out; | 
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|  | 424 | T temp; | 
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|  | 425 | if(Tool.getOption()==AllSeparable) | 
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|  | 426 | {             // Fast ! | 
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|  | 427 | double FreqIntFactor=Tool.getIntegSpectOverFreq(); | 
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|  | 428 | for(long k=0; k<PixelNumber; k++) | 
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|  | 429 | {  Map.PixThetaPhi(k,AIBtheta,AIBphi); | 
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|  | 430 | out= AddInBandPowerpLSrc->powerDensAmpli(AIBtheta,AIBphi)*FreqIntFactor; | 
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|  | 431 | // Lobe weigth do no enters here | 
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|  | 432 | temp= (T) out; | 
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|  | 433 | Map(k)+= temp; | 
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|  | 434 | // if((k%200)==0) cout<<"200 points calculs "<<"NbPoint Total= "<<k<<endl; | 
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|  | 435 | } | 
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|  | 436 |  | 
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|  | 437 | } | 
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|  | 438 | else | 
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|  | 439 | { | 
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|  | 440 | if(AddInBandPowerpLSrc->IsFreqSep()) | 
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|  | 441 | { double FreqMax=Tool.getFreqMax(); | 
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|  | 442 | double FreqMin=Tool.getFreqMin(); | 
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|  | 443 | double out; | 
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|  | 444 | GLInteg Integrale(AddInBandPowerFreqFunc1,FreqMin,FreqMax); | 
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|  | 445 | Integrale.NStep(10);      // Serieux! | 
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|  | 446 | for(long k=0; k<PixelNumber; k++) | 
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|  | 447 | { | 
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|  | 448 | Map.PixThetaPhi(k,AIBtheta,AIBphi); | 
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|  | 449 | // Lobe weigth do no enters here | 
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|  | 450 | out=Integrale.Value(); | 
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|  | 451 | // Lobe weigth do no enters here | 
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|  | 452 | temp= (T) out; | 
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|  | 453 | Map(k)+= temp; | 
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|  | 454 | } | 
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|  | 455 | } | 
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|  | 456 | } | 
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|  | 457 | return; | 
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|  | 458 | } | 
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|  | 459 |  | 
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|  | 460 | template void addInInBandPowerMap(PixelMap<float>& Map, SigCalcTool& tool); | 
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|  | 461 | template void addInInBandPowerMap(PixelMap<double>& Map, SigCalcTool& tool); | 
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