| 1 | //-------------------------------------------------------------------------- | 
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| 2 | // File and Version Information: | 
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| 3 | //      $Id: radspec.cc,v 1.3 1999-11-29 14:16:06 ansari Exp $ | 
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| 4 | // | 
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| 5 | // Description: | 
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| 6 | //      Aim of the class: To give the energy density | 
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| 7 | //                        The unity used here is W/m^2/Hz/sr | 
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| 8 | // | 
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| 9 | // History (add to end): | 
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| 10 | //      Sophie   Oct, 1999  - creation | 
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| 11 | // | 
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| 12 | //------------------------------------------------------------------------ | 
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| 13 |  | 
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| 14 | //--------------- | 
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| 15 | // C++ Headers -- | 
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| 16 | //--------------- | 
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| 17 | #include "machdefs.h" | 
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| 18 | #include <iostream.h> | 
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| 19 | #include <typeinfo> | 
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| 20 | #include <math.h> | 
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| 21 |  | 
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| 22 | #include "radspec.h" | 
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| 23 | #include "integ.h" | 
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| 24 |  | 
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| 25 | //---------------- | 
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| 26 | // Constructor -- | 
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| 27 | //---------------- | 
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| 28 | RadSpectra::RadSpectra(double numin, double numax) | 
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| 29 | { | 
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| 30 | _numin = numin; | 
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| 31 | _numax = numax; | 
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| 32 | } | 
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| 33 |  | 
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| 34 |  | 
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| 35 | //-------------- | 
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| 36 | // Destructor -- | 
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| 37 | //-------------- | 
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| 38 | RadSpectra::~RadSpectra() | 
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| 39 | { | 
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| 40 | } | 
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| 41 |  | 
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| 42 | //              --------------------------- | 
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| 43 | //              --  Function Definitions -- | 
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| 44 | //              --------------------------- | 
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| 45 |  | 
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| 46 | double | 
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| 47 | RadSpectra::minFreq()  const | 
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| 48 | { | 
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| 49 | return _numin; | 
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| 50 | } | 
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| 51 |  | 
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| 52 | double | 
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| 53 | RadSpectra::maxFreq()  const | 
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| 54 | { | 
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| 55 | return _numax; | 
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| 56 | } | 
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| 57 |  | 
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| 58 | double | 
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| 59 | RadSpectra::meanFreq()  const | 
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| 60 | { | 
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| 61 | double result = (_numax+_numin)/2.; | 
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| 62 | return result; | 
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| 63 | } | 
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| 64 |  | 
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| 65 |  | 
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| 66 |  | 
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| 67 | // peakFreq returns the value of the frequency for the | 
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| 68 | // peak of the spectrum. | 
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| 69 | double | 
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| 70 | RadSpectra::peakFreq()  const | 
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| 71 | { | 
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| 72 | double maxAnswer = -1.e99; | 
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| 73 | double maxNu = -10; | 
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| 74 | double nu; | 
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| 75 | for (int i=1; i<1000;i++) | 
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| 76 | { | 
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| 77 | nu=(_numax-_numin)*i/1000.+_numin; | 
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| 78 | double lookForMax = flux(nu); | 
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| 79 | if(maxAnswer <= lookForMax) { | 
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| 80 | maxAnswer= lookForMax; | 
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| 81 | maxNu    = nu; | 
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| 82 | } | 
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| 83 | } | 
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| 84 | return maxNu; | 
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| 85 | } | 
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| 86 |  | 
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| 87 | // To change min-max frequency | 
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| 88 | void | 
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| 89 | RadSpectra::setMinMaxFreq(double numin, double numax) | 
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| 90 | { | 
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| 91 | _numin = numin; | 
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| 92 | _numax = numax; | 
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| 93 | } | 
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| 94 |  | 
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| 95 | // the RadSpectra_fluxFunction function is used to call TrpzInteg double(double) | 
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| 96 | // (integration over a range of frequencies) | 
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| 97 | static RadSpectra* _raypourfinteg = NULL; | 
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| 98 | static double RadSpectra_fluxFunction(double nu) | 
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| 99 | { | 
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| 100 | return(_raypourfinteg->flux(nu)); | 
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| 101 | } | 
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| 102 |  | 
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| 103 | double | 
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| 104 | RadSpectra::integratedFlux(double f1, double f2)  const | 
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| 105 | { | 
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| 106 | //   cout << endl; | 
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| 107 | //   cout <<  this->minFreq() << " = " << this->maxFreq() << endl; | 
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| 108 | //   cout <<  f1 << " = " << f2 << endl; | 
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| 109 | if(f1 < this->minFreq()) f1 = this->minFreq(); | 
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| 110 | if(f2 > this->maxFreq()) f2 = this->maxFreq(); | 
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| 111 | _raypourfinteg = const_cast<RadSpectra *>(this); | 
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| 112 | TrpzInteg I(RadSpectra_fluxFunction , f1, f2); | 
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| 113 | double val = (double)I; | 
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| 114 | _raypourfinteg = NULL;  // On ne peut pas faire ca avant la destruction de I | 
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| 115 | return(val); | 
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| 116 | } | 
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| 117 | double | 
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| 118 | RadSpectra::integratedFlux()  const | 
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| 119 | { | 
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| 120 | return integratedFlux(this->minFreq(),this->maxFreq()); | 
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| 121 | } | 
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| 122 |  | 
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| 123 | // integration using the logarithm !! | 
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| 124 | // Carefull!! Base 10.... | 
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| 125 | static RadSpectra* _rayIntLog = NULL; | 
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| 126 |  | 
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| 127 | static double RadSpectra_logFluxFunction(double tau) | 
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| 128 | { | 
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| 129 | double value = _rayIntLog->flux(pow(10,tau))*pow(10,tau); | 
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| 130 | return(value); | 
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| 131 | } | 
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| 132 |  | 
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| 133 | double | 
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| 134 | RadSpectra::logIntegratedFlux(double f1, double f2)  const | 
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| 135 | { | 
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| 136 | if(f1 < this->minFreq()) f1 = this->minFreq(); | 
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| 137 | if(f2 > this->maxFreq()) f2 = this->maxFreq(); | 
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| 138 |  | 
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| 139 | double f1Log = log10(f1); | 
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| 140 | double f2Log = log10(f2); | 
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| 141 | if(f1Log < -1.e99) f1Log = -1.e99; | 
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| 142 | if(f2Log > 1.e99)  f2Log = 1.e99; | 
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| 143 | _rayIntLog = const_cast<RadSpectra *>(this); | 
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| 144 | TrpzInteg I(RadSpectra_logFluxFunction,f1Log,f2Log); | 
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| 145 | double value = (double)I * log(10.); | 
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| 146 | _rayIntLog = NULL; | 
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| 147 | return(value); | 
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| 148 | } | 
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| 149 |  | 
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| 150 | double | 
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| 151 | RadSpectra::logIntegratedFlux()  const | 
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| 152 | { | 
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| 153 | return logIntegratedFlux(_numin,_numax); | 
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| 154 | } | 
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| 155 |  | 
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| 156 | // the RadSpectra_filteredFlux function is used to call TrpzInteg double(double) | 
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| 157 | // (integration over a range of frequencies with a filter) | 
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| 158 | static SpectralResponse* _filter = NULL ; | 
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| 159 | static double RadSpectra_filteredFlux(double nu) | 
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| 160 | { | 
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| 161 | double flux = _raypourfinteg->flux(nu); | 
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| 162 | return(flux * _filter->transmission(nu)); | 
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| 163 | } | 
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| 164 |  | 
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| 165 |  | 
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| 166 | double | 
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| 167 | RadSpectra::filteredIntegratedFlux(SpectralResponse const& filter, double f1, double f2) const | 
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| 168 | { | 
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| 169 | _raypourfinteg = const_cast<RadSpectra *>(this); | 
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| 170 | _filter = const_cast<SpectralResponse *>(&filter); | 
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| 171 | if(f1 < this->minFreq()) f1 = this->minFreq(); | 
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| 172 | if(f2 > this->maxFreq()) f2 = this->maxFreq(); | 
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| 173 |  | 
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| 174 | TrpzInteg I(RadSpectra_filteredFlux,f1,f2); | 
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| 175 | double val = (double)I; | 
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| 176 | _raypourfinteg = NULL; | 
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| 177 | _filter = NULL; | 
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| 178 | return(val); | 
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| 179 | } | 
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| 180 |  | 
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| 181 | double | 
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| 182 | RadSpectra::filteredIntegratedFlux(SpectralResponse const& filter) | 
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| 183 | { | 
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| 184 | double minOfMin = filter.minFreq(); | 
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| 185 | double maxOfMax = filter.maxFreq(); | 
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| 186 | if(minOfMin < this->minFreq()) minOfMin = this->minFreq(); | 
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| 187 | if(maxOfMax > this->maxFreq()) maxOfMax = this->maxFreq(); | 
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| 188 | return(filteredIntegratedFlux(filter, minOfMin, maxOfMax ) ); | 
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| 189 | } | 
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| 190 |  | 
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| 191 |  | 
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| 192 | // the RadSpectraVec_filteredFlux function is used to call TrpzInteg double(double) | 
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| 193 | // (integration over a range of frequencies with a filter) | 
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| 194 | static double RadSpectra_logFilteredFlux(double tau) | 
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| 195 | { | 
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| 196 | double nu = pow(10,tau); | 
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| 197 | double flux = _raypourfinteg->flux(nu)*nu; | 
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| 198 | double result = flux * _filter->transmission(nu); | 
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| 199 | return(result); | 
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| 200 | } | 
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| 201 |  | 
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| 202 |  | 
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| 203 | double | 
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| 204 | RadSpectra::filteredLogIntFlux(SpectralResponse const& filter, double f1, double f2) const | 
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| 205 | { | 
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| 206 |  | 
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| 207 | _raypourfinteg = NULL; | 
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| 208 | _filter = NULL; | 
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| 209 | if(f1 < this->minFreq()) f1 = this->minFreq(); | 
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| 210 | if(f2 > this->maxFreq()) f2 = this->maxFreq(); | 
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| 211 |  | 
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| 212 | double f1Log = log10(f1); | 
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| 213 | double f2Log = log10(f2); | 
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| 214 | if(f1Log < -1.e99) f1Log = -1.e99; | 
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| 215 | if(f2Log > 1.e99)  f2Log = 1.e99; | 
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| 216 | _raypourfinteg = const_cast<RadSpectra *>(this); | 
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| 217 | _filter = const_cast<SpectralResponse *>(&filter); | 
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| 218 | TrpzInteg I(RadSpectra_logFilteredFlux,f1Log,f2Log); | 
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| 219 | double val = (double)I; | 
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| 220 | _raypourfinteg = NULL; | 
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| 221 | _filter = NULL; | 
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| 222 | return(val* log(10.)); | 
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| 223 | } | 
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| 224 |  | 
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| 225 | double | 
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| 226 | RadSpectra::filteredLogIntFlux(SpectralResponse const& filter) | 
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| 227 | { | 
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| 228 | return(filteredLogIntFlux(filter, filter.minFreq(), filter.maxFreq() ) ); | 
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| 229 | } | 
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| 230 |  | 
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| 231 |  | 
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| 232 |  | 
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| 233 |  | 
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| 234 | void | 
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| 235 | RadSpectra::Print(ostream& os) const | 
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| 236 | { | 
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| 237 | //  os << "RadSpectra::Print (" << typeid(*this).name() | 
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| 238 | //     << ") - Fmin,Fmax= " << minFreq() << "," << maxFreq() << endl; | 
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| 239 | os << "RadSpectra::Print  - Fmin,Fmax= " << minFreq() << "," << maxFreq() << endl; | 
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| 240 | os << "MeanFreq= " << meanFreq() << "  Emission= " << flux(meanFreq()) << endl; | 
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| 241 | os << "PeakFreq= " << peakFreq() << "  Emission= " << flux(peakFreq()) << endl; | 
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| 242 |  | 
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| 243 | } | 
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| 244 |  | 
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| 245 |  | 
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