| [601] | 1 | //--------------------------------------------------------------------------
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 | 2 | // File and Version Information:
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| [2615] | 3 | //      $Id: radspec.cc,v 1.8 2004-09-10 09:54:40 cmv Exp $
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| [601] | 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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| [2615] | 17 | #include "sopnamsp.h"
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| [601] | 18 | #include "machdefs.h"
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| [2322] | 19 | #include <iostream>
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| [601] | 20 | #include <typeinfo>
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 | 21 | #include <math.h>
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 | 22 | 
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 | 23 | #include "radspec.h"
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 | 24 | #include "integ.h"
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| [927] | 25 | /*!
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 | 26 |    \defgroup SkyT SkyT module
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 | 27 |    This module contains classes and functions which define 
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 | 28 |    several radiation spectra and filter responses
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 | 29 | */
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| [601] | 30 | 
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| [909] | 31 | /*! 
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| [927] | 32 |  * \class SOPHYA::RadSpectra
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 | 33 |  * \ingroup SkyT
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| [909] | 34 |  * This class is an abstract base class for radiation emission spectra. The flux() function returns the value of the flux (the spectral      <BR>
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 | 35 |  * energy distribution) as a function of the frequency.  As in the SpectralResponse class, the () operator has been redefined <BR>
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 | 36 |  * at this level, so that the user can access the flux value, either by  calling the function or directly by using this operator. <BR>
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 | 37 |  * For all the sub-classes, \nu is given in units of Hz and
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 | 38 |  * the flux is returned in units of W/m^2/sr/Hz.
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 | 39 | */
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 | 40 | 
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 | 41 | 
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| [601] | 42 | //----------------
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 | 43 | // Constructor --
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 | 44 | //----------------
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| [909] | 45 | /*! Default constructor */
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 | 46 | /*!
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 | 47 |   The constructor takes as an argument the minimum
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 | 48 |   and the maximum frequency of the spectrum, if any. <BR>
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 | 49 |   In the case the user does not want to specify these
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 | 50 |   values, there are set respectively to 0. and 9.E49
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 | 51 |   by default.
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 | 52 | */
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| [601] | 53 | RadSpectra::RadSpectra(double numin, double numax)
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 | 54 | {
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 | 55 |   _numin = numin;
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 | 56 |   _numax = numax;
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 | 57 | }
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 | 58 | 
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 | 59 | 
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 | 60 | //--------------
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 | 61 | // Destructor --
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 | 62 | //--------------
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 | 63 | RadSpectra::~RadSpectra()
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 | 64 | {
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 | 65 | }
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 | 66 | 
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 | 67 | //              ---------------------------
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 | 68 | //              --  Function Definitions --
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 | 69 | //              ---------------------------
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 | 70 | 
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 | 71 | double 
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 | 72 | RadSpectra::minFreq()  const
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 | 73 | {
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 | 74 |   return _numin;
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 | 75 | }
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 | 76 | 
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 | 77 | double 
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 | 78 | RadSpectra::maxFreq()  const
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 | 79 | {
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 | 80 |   return _numax;
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 | 81 | }
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 | 82 | 
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 | 83 | double 
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 | 84 | RadSpectra::meanFreq()  const
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 | 85 | {
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 | 86 |   double result = (_numax+_numin)/2.;
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 | 87 |   return result;
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 | 88 | }
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 | 89 | 
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 | 90 | 
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| [909] | 91 | /* 
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 | 92 |    The peakFreq() function returns the value of the 
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 | 93 |    frequency for the maximum value of the flux
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 | 94 | */
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| [601] | 95 | double 
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 | 96 | RadSpectra::peakFreq()  const
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 | 97 | {
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 | 98 |   double maxAnswer = -1.e99;
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 | 99 |   double maxNu = -10;
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 | 100 |   double nu;
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 | 101 |   for (int i=1; i<1000;i++)
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 | 102 |     {
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 | 103 |       nu=(_numax-_numin)*i/1000.+_numin;
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 | 104 |       double lookForMax = flux(nu);
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 | 105 |       if(maxAnswer <= lookForMax) {
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 | 106 |         maxAnswer= lookForMax;
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 | 107 |         maxNu    = nu;
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 | 108 |       }
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 | 109 |     }
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 | 110 |   return maxNu;  
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 | 111 | }
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 | 112 | 
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 | 113 | void
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 | 114 | RadSpectra::setMinMaxFreq(double numin, double numax)
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 | 115 | {
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 | 116 |   _numin = numin;
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 | 117 |   _numax = numax;
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 | 118 | }
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 | 119 | 
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 | 120 | // the RadSpectra_fluxFunction function is used to call TrpzInteg double(double) 
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 | 121 | // (integration over a range of frequencies)
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 | 122 | static RadSpectra* _raypourfinteg = NULL;
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 | 123 | static double RadSpectra_fluxFunction(double nu)
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 | 124 | {
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 | 125 |    return(_raypourfinteg->flux(nu));   
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 | 126 | }
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| [909] | 127 | /*! 
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 | 128 |   The integratedFlux() function performs the integration
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 | 129 |   of the flux function in a frequency range <BR> defined by
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 | 130 |   f1 and f2.
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 | 131 | */
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| [601] | 132 | double 
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 | 133 | RadSpectra::integratedFlux(double f1, double f2)  const
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 | 134 | {
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| [668] | 135 |   if(f1 < this->minFreq()) f1 = this->minFreq();
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 | 136 |   if(f2 > this->maxFreq()) f2 = this->maxFreq();
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 | 137 |   _raypourfinteg = const_cast<RadSpectra *>(this);
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 | 138 |   TrpzInteg I(RadSpectra_fluxFunction , f1, f2);  
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 | 139 |   double val = (double)I;
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 | 140 |   _raypourfinteg = NULL;  // On ne peut pas faire ca avant la destruction de I
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 | 141 |   return(val);        
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| [601] | 142 | }
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| [909] | 143 | 
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 | 144 | /*!
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 | 145 |   Same than integratedFlux() over the frequency range 
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 | 146 |   of definition of the flux function
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 | 147 |  */
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| [601] | 148 | double 
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 | 149 | RadSpectra::integratedFlux()  const
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 | 150 | {
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| [668] | 151 |   return integratedFlux(this->minFreq(),this->maxFreq());
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| [601] | 152 | }
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 | 153 | 
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 | 154 | // integration using the logarithm !!
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 | 155 | // Carefull!! Base 10....
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 | 156 | static RadSpectra* _rayIntLog = NULL;
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 | 157 | 
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 | 158 | static double RadSpectra_logFluxFunction(double tau)
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 | 159 | {
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| [2144] | 160 |   double value = _rayIntLog->flux(pow(10.,tau))*pow(10.,tau);
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| [601] | 161 |   return(value);   
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 | 162 | }
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 | 163 | 
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| [909] | 164 | /*! 
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 | 165 |   The logIntegratedFlux() function performs the integration
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 | 166 |   of the flux function in a frequency range <BR> defined by
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 | 167 |   f1 and f2. The integration is here performed
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 | 168 |   on the logarithm of the flux function. 
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 | 169 | */
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| [601] | 170 | double 
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 | 171 | RadSpectra::logIntegratedFlux(double f1, double f2)  const
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 | 172 | {
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| [668] | 173 |   if(f1 < this->minFreq()) f1 = this->minFreq();
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 | 174 |   if(f2 > this->maxFreq()) f2 = this->maxFreq();
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 | 175 | 
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| [601] | 176 |   double f1Log = log10(f1);
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 | 177 |   double f2Log = log10(f2);
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 | 178 |   if(f1Log < -1.e99) f1Log = -1.e99;
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 | 179 |   if(f2Log > 1.e99)  f2Log = 1.e99;
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 | 180 |   _rayIntLog = const_cast<RadSpectra *>(this);
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 | 181 |   TrpzInteg I(RadSpectra_logFluxFunction,f1Log,f2Log);
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 | 182 |   double value = (double)I * log(10.);
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 | 183 |   _rayIntLog = NULL;
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 | 184 |   return(value);        
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 | 185 | }
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 | 186 | 
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| [909] | 187 | /*!
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 | 188 |   same than logIntegratedFlux over the frequency range
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 | 189 |   of definition of the flux function
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 | 190 |  */
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| [601] | 191 | double 
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 | 192 | RadSpectra::logIntegratedFlux()  const
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 | 193 | {
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 | 194 |   return logIntegratedFlux(_numin,_numax);
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 | 195 | }
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 | 196 | 
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 | 197 | // the RadSpectra_filteredFlux function is used to call TrpzInteg double(double) 
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 | 198 | // (integration over a range of frequencies with a filter)
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 | 199 | static SpectralResponse* _filter = NULL ;
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 | 200 | static double RadSpectra_filteredFlux(double nu) 
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 | 201 | {
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 | 202 |   double flux = _raypourfinteg->flux(nu);
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 | 203 |   return(flux * _filter->transmission(nu));
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 | 204 | }
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 | 205 | 
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| [909] | 206 | /*! 
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 | 207 |   The filteredIntegratedFlux() function performs the integration
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 | 208 |   of the flux function in a frequency range <BR> defined by
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 | 209 |   f1 and f2 convolved by a SpectralResponse filter.
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 | 210 | */
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| [601] | 211 | double 
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 | 212 | RadSpectra::filteredIntegratedFlux(SpectralResponse const& filter, double f1, double f2) const
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 | 213 | {
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 | 214 |   _raypourfinteg = const_cast<RadSpectra *>(this);
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 | 215 |   _filter = const_cast<SpectralResponse *>(&filter);
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| [668] | 216 |    if(f1 < this->minFreq()) f1 = this->minFreq();
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 | 217 |    if(f2 > this->maxFreq()) f2 = this->maxFreq();
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 | 218 | 
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| [607] | 219 |   TrpzInteg I(RadSpectra_filteredFlux,f1,f2);
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 | 220 |   double val = (double)I;
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| [601] | 221 |   _raypourfinteg = NULL;
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 | 222 |   _filter = NULL;
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| [607] | 223 |   return(val);        
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| [601] | 224 | }
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 | 225 | 
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| [909] | 226 | /*!
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 | 227 |   Same than filteredIntegratedFlux() over the frequency range
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 | 228 |   defined as: <BR>
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 | 229 |    min_freq = MAX(minfreq_flux, minfreq_filter), <BR>
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 | 230 |    max_freq = MIN(maxfreq_flux, maxfreq_filter), <BR>
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 | 231 |   where:
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 | 232 | <UL>  
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 | 233 | <LI>   minfreq_flux   is the minimum frequency of the flux definition
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 | 234 | <LI>   maxfreq_flux   is the maximum frequency of the flux definition
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 | 235 | <LI>   minfreq_filter is the minimum frequency of the filter definition
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 | 236 | <LI>   maxfreq_filter is the maximum frequency of the filter definition
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 | 237 |   </UL>
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 | 238 |  */
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| [601] | 239 | double 
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 | 240 | RadSpectra::filteredIntegratedFlux(SpectralResponse const& filter)
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 | 241 | {
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 | 242 |   double minOfMin = filter.minFreq();
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 | 243 |   double maxOfMax = filter.maxFreq();
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 | 244 |   if(minOfMin < this->minFreq()) minOfMin = this->minFreq();
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 | 245 |   if(maxOfMax > this->maxFreq()) maxOfMax = this->maxFreq();  
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 | 246 |   return(filteredIntegratedFlux(filter, minOfMin, maxOfMax ) );
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 | 247 | }
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 | 248 | 
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 | 249 | 
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 | 250 | // the RadSpectraVec_filteredFlux function is used to call TrpzInteg double(double) 
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 | 251 | // (integration over a range of frequencies with a filter)
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 | 252 | static double RadSpectra_logFilteredFlux(double tau) 
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 | 253 | {
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| [2144] | 254 |   double nu = pow(10.,tau);
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| [601] | 255 |   double flux = _raypourfinteg->flux(nu)*nu;
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| [668] | 256 |   double result = flux * _filter->transmission(nu);
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 | 257 |   return(result);
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| [601] | 258 | }
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 | 259 | 
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 | 260 | 
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| [909] | 261 | /*! 
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 | 262 |  *  The filteredIntegratedFlux() function performs the integration
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 | 263 |  * of the flux function in a frequency range <BR> defined by
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 | 264 |  * f1 and f2 convolved by a SpectralResponse filter (using the
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 | 265 |  * logarithm of the function).
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 | 266 |  */
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| [601] | 267 | double 
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 | 268 | RadSpectra::filteredLogIntFlux(SpectralResponse const& filter, double f1, double f2) const
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 | 269 | {
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 | 270 |   
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 | 271 |    _raypourfinteg = NULL;
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 | 272 |    _filter = NULL;
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| [668] | 273 |    if(f1 < this->minFreq()) f1 = this->minFreq();
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 | 274 |    if(f2 > this->maxFreq()) f2 = this->maxFreq();
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 | 275 |    
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| [601] | 276 |    double f1Log = log10(f1);
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 | 277 |    double f2Log = log10(f2);
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 | 278 |    if(f1Log < -1.e99) f1Log = -1.e99;
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 | 279 |    if(f2Log > 1.e99)  f2Log = 1.e99;
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 | 280 |    _raypourfinteg = const_cast<RadSpectra *>(this);
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 | 281 |    _filter = const_cast<SpectralResponse *>(&filter);
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 | 282 |    TrpzInteg I(RadSpectra_logFilteredFlux,f1Log,f2Log);  
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| [607] | 283 |    double val = (double)I;
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| [601] | 284 |    _raypourfinteg = NULL;
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 | 285 |    _filter = NULL;
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| [607] | 286 |    return(val* log(10.));        
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| [601] | 287 | }
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 | 288 | 
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 | 289 | double 
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 | 290 | RadSpectra::filteredLogIntFlux(SpectralResponse const& filter)
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 | 291 | {
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 | 292 |   return(filteredLogIntFlux(filter, filter.minFreq(), filter.maxFreq() ) );
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 | 293 | }
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 | 294 | 
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 | 295 | 
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 | 296 | 
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| [668] | 297 | 
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| [601] | 298 | void
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 | 299 | RadSpectra::Print(ostream& os) const
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 | 300 | {
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 | 301 |   //  os << "RadSpectra::Print (" << typeid(*this).name() 
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 | 302 |   //     << ") - Fmin,Fmax= " << minFreq() << "," << maxFreq() << endl;
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 | 303 |   os << "RadSpectra::Print  - Fmin,Fmax= " << minFreq() << "," << maxFreq() << endl;
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 | 304 |   os << "MeanFreq= " << meanFreq() << "  Emission= " << flux(meanFreq()) << endl;
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 | 305 |   os << "PeakFreq= " << peakFreq() << "  Emission= " << flux(peakFreq()) << endl;
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 | 306 | 
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 | 307 | }
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 | 308 | 
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 | 309 | 
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