[2615] | 1 | #include "sopnamsp.h"
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[764] | 2 | #include "spherethetaphi.h"
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| 3 | #include "smathconst.h"
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| 4 | #include <complex>
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[809] | 5 | #include "fiondblock.h"
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[2322] | 6 | #include <iostream>
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[764] | 7 |
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| 8 |
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[2303] | 9 | /*!
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| 10 | \class SOPHYA::SphereThetaPhi
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| 11 | \ingroup SkyMap
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[2808] | 12 |
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| 13 | \brief Spherical map with equal latitude (iso-theta) rings
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| 14 |
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| 15 |
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[2303] | 16 | Class implementing spherical maps, with equal latitude (iso-theta) rings
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| 17 | pixelisation scheme - with template data types (double, float, complex, ...)
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| 18 |
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| 19 | sphere splitted with respect to theta, phi : each hemisphere is
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| 20 | splitted into (m-1) parallels (equator does not enter into account).
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| 21 | This operation defines m slices, each of which is splitted into
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| 22 | equidistant meridians. This splitting is realized in such a way that
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| 23 | all pixels have the same area and are as square as possible.
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| 24 |
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| 25 | One begins with the hemisphere with positive z, starting from the pole
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| 26 | toward the equator. The first pixel is the polar cap ; it is circular
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| 27 | and centered on theta=0.
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| 28 | */
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| 29 |
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[764] | 30 | //***************************************************************
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| 31 | //++
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| 32 | // Class SphereThetaPhi
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| 33 | //
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| 34 | //
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| 35 | // include spherethetaphi.h
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| 36 | //--
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| 37 | //++
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| 38 | //
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| 39 | // Links Parents
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| 40 | //
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| 41 | // SphericalMap
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| 42 | //--
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| 43 |
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| 44 | /* --Methode-- */
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| 45 | //++
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| 46 | // Titre Constructors
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| 47 | //--
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| 48 | //++
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| 49 |
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| 50 | template <class T>
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| 51 | SphereThetaPhi<T>::SphereThetaPhi()
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[980] | 52 | : NPhi_(), TNphi_(), Theta_(), pixels_()
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[764] | 53 |
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| 54 | //--
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| 55 | {
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| 56 | InitNul();
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| 57 | }
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| 58 |
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| 59 |
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| 60 | /* --Methode-- */
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| 61 |
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[2960] | 62 | /*!
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| 63 | \brief Constructor with specification of number of slices (in a hemisphere)
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| 64 | \param m is the number of slices in theta on an hemisphere (the polar cap
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| 65 | forms the first slice).
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| 66 | */
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[764] | 67 | template <class T>
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| 68 | SphereThetaPhi<T>::SphereThetaPhi(int_4 m)
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| 69 | {
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| 70 | InitNul();
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| 71 | Pixelize(m);
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| 72 | }
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| 73 |
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[2960] | 74 | //! Copy constructor (shares the pixel data if share==true)
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[764] | 75 | template <class T>
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| 76 | SphereThetaPhi<T>::SphereThetaPhi(const SphereThetaPhi<T>& s, bool share)
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[908] | 77 | : NPhi_(s.NPhi_, share), TNphi_(s.TNphi_, share), Theta_(s.Theta_, share),
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| 78 | pixels_(s.pixels_ , share)
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[764] | 79 | {
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[908] | 80 |
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[764] | 81 | NTheta_= s.NTheta_;
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| 82 | NPix_ = s.NPix_;
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[908] | 83 | Omega_ = s.Omega_;
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[2885] | 84 | if(s.mInfo_) this->mInfo_= new DVList(*s.mInfo_);
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[908] | 85 | }
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[764] | 86 |
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[2960] | 87 | //! Copy constructor (shares the pixel data)
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[908] | 88 | template <class T>
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| 89 | SphereThetaPhi<T>::SphereThetaPhi(const SphereThetaPhi<T>& s)
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| 90 | : NPhi_(s.NPhi_), TNphi_(s.TNphi_), Theta_(s.Theta_), pixels_(s.pixels_)
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| 91 | {
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| 92 |
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| 93 | NTheta_= s.NTheta_;
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| 94 | NPix_ = s.NPix_;
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[764] | 95 | Omega_ = s.Omega_;
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[2885] | 96 | if(s.mInfo_) this->mInfo_= new DVList(*s.mInfo_);
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[764] | 97 | }
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| 98 |
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| 99 | //++
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| 100 | // Titre Destructor
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| 101 | //--
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| 102 | //++
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| 103 | template <class T>
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| 104 | SphereThetaPhi<T>::~SphereThetaPhi()
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| 105 |
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| 106 | //--
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| 107 | {}
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| 108 |
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| 109 | template <class T>
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| 110 | void SphereThetaPhi<T>::InitNul()
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| 111 | //
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| 112 | {
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| 113 | NTheta_= 0;
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| 114 | NPix_ = 0;
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| 115 | // pixels_.Reset(); Pas de reset par InitNul (en cas de share) - Reza 20/11/99 $CHECK$
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| 116 | }
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| 117 |
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| 118 |
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[2960] | 119 | //! re-pixelize the sphere if (m > 0)
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[764] | 120 | template <class T>
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| 121 | void SphereThetaPhi<T>::Resize(int_4 m)
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| 122 | {
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[2960] | 123 | if ((m <= 0) && (NTheta_ > 0) ) {
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| 124 | cout << "SphereThetaPhi<T>::Resize(m) with m<=0 - NOT resized" << endl;
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| 125 | return;
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| 126 | }
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[764] | 127 | InitNul();
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| 128 | Pixelize(m);
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| 129 | }
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| 130 |
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[2960] | 131 | //! Clone or share the SphereThetaPhi object \b a
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[908] | 132 | template<class T>
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| 133 | void SphereThetaPhi<T>::CloneOrShare(const SphereThetaPhi<T>& a)
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| 134 | {
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| 135 |
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[980] | 136 | NTheta_= a.NTheta_;
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| 137 | NPix_ = a.NPix_;
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| 138 | Omega_ = a.Omega_;
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| 139 | NPhi_.CloneOrShare(a.NPhi_);
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| 140 | TNphi_.CloneOrShare(a.TNphi_);
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| 141 | Theta_.CloneOrShare(a.Theta_);
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| 142 | pixels_.CloneOrShare(a.pixels_);
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[2885] | 143 | if (this->mInfo_) {delete this->mInfo_; this->mInfo_ = NULL;}
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| 144 | if (a.mInfo_) this->mInfo_ = new DVList(*(a.mInfo_));
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[908] | 145 | }
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[2960] | 146 | //! Share the pixel data with object \b a
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[1419] | 147 | template<class T>
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| 148 | void SphereThetaPhi<T>::Share(const SphereThetaPhi<T>& a)
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| 149 | {
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[908] | 150 |
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[1419] | 151 | NTheta_= a.NTheta_;
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| 152 | NPix_ = a.NPix_;
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| 153 | Omega_ = a.Omega_;
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| 154 | NPhi_.Share(a.NPhi_);
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| 155 | TNphi_.Share(a.TNphi_);
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| 156 | Theta_.Share(a.Theta_);
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| 157 | pixels_.Share(a.pixels_);
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[2885] | 158 | if (this->mInfo_) {delete this->mInfo_; this->mInfo_ = NULL;}
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| 159 | if (a.mInfo_) this->mInfo_ = new DVList(*(a.mInfo_));
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[1419] | 160 | }
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| 161 |
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[980] | 162 | ////////////////////////// methodes de copie/share
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[2960] | 163 | //! Perform data copy or shares the data
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[908] | 164 | template<class T>
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| 165 | SphereThetaPhi<T>& SphereThetaPhi<T>::Set(const SphereThetaPhi<T>& a)
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[980] | 166 | {
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[908] | 167 | if (this != &a)
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| 168 | {
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[980] | 169 |
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| 170 |
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| 171 | if (a.NbPixels() < 1)
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| 172 | throw RangeCheckError("SphereThetaPhi<T>::Set(a ) - Array a not allocated ! ");
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| 173 | if (NbPixels() < 1) CloneOrShare(a);
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| 174 | else CopyElt(a);
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[2885] | 175 | if (this->mInfo_) delete this->mInfo_;
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| 176 | this->mInfo_ = NULL;
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| 177 | if (a.mInfo_) this->mInfo_ = new DVList(*(a.mInfo_));
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[908] | 178 | }
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| 179 | return(*this);
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[980] | 180 | }
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[908] | 181 |
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[2960] | 182 | //! Perform data copy or shares the data
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[980] | 183 | template<class T>
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| 184 | SphereThetaPhi<T>& SphereThetaPhi<T>::CopyElt(const SphereThetaPhi<T>& a)
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| 185 | {
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| 186 | if (NbPixels() < 1)
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| 187 | throw RangeCheckError("SphereThetaPhi<T>::CopyElt(const SphereThetaPhi<T>& ) - Not Allocated Array ! ");
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| 188 | if (NbPixels() != a.NbPixels())
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| 189 | throw(SzMismatchError("SphereThetaPhi<T>::CopyElt(const SphereThetaPhi<T>&) SizeMismatch")) ;
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[908] | 190 |
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[980] | 191 | NTheta_= a.NTheta_;
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| 192 | NPix_ = a.NPix_;
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| 193 | Omega_ = a.Omega_;
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| 194 | int k;
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| 195 | for (k=0; k< NPix_; k++) pixels_(k) = a.pixels_(k);
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| 196 | for (k=0; k< a.NPhi_.Size(); k++) NPhi_(k) = a.NPhi_(k);
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| 197 | for (k=0; k< a.TNphi_.Size(); k++) TNphi_(k) = a.TNphi_(k);
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| 198 | for (k=0; k< a.Theta_.Size(); k++) Theta_(k) = a.Theta_(k);
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| 199 | return(*this);
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[908] | 200 |
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[980] | 201 | }
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| 202 |
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[764] | 203 | /* --Methode-- */
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[2960] | 204 | //! Return total number of pixels
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[764] | 205 | template <class T>
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| 206 | int_4 SphereThetaPhi<T>::NbPixels() const
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| 207 | {
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| 208 | return(NPix_);
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| 209 | }
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| 210 |
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| 211 | /* --Methode-- */
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[2960] | 212 | //! Return value of pixel with index k
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[764] | 213 | template <class T>
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| 214 | T& SphereThetaPhi<T>::PixVal(int_4 k)
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| 215 | {
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| 216 | if((k < 0) || (k >= NPix_))
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| 217 | {
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| 218 | throw RangeCheckError("SphereThetaPhi::PIxVal Pixel index out of range");
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| 219 | }
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| 220 | return pixels_(k);
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| 221 | }
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| 222 |
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[2960] | 223 | //! Return value of pixel with index k
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[764] | 224 | template <class T>
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| 225 | T const& SphereThetaPhi<T>::PixVal(int_4 k) const
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| 226 | {
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| 227 | if((k < 0) || (k >= NPix_))
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| 228 | {
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| 229 | throw RangeCheckError("SphereThetaPhi::PIxVal Pixel index out of range");
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| 230 | }
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| 231 | return *(pixels_.Data()+k);
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| 232 | }
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| 233 |
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| 234 | /* --Methode-- */
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[2960] | 235 | //! Return true if teta,phi in map
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[764] | 236 | template <class T>
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| 237 | bool SphereThetaPhi<T>::ContainsSph(double /*theta*/, double /*phi*/) const
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| 238 | {
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| 239 | return(true);
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| 240 | }
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| 241 |
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| 242 | /* --Methode-- */
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[2960] | 243 | //! Return index of the pixel corresponding to direction (theta, phi).
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[764] | 244 | template <class T>
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| 245 | int_4 SphereThetaPhi<T>::PixIndexSph(double theta, double phi) const
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| 246 | {
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| 247 | double dphi;
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| 248 | int i,k;
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| 249 | bool fgzn = false;
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| 250 |
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| 251 | if((theta > Pi) || (theta < 0.)) return(-1);
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| 252 | if((phi < 0.) || (phi > DeuxPi)) return(-1);
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| 253 | if(theta > Pi*0.5) {fgzn = true; theta = Pi-theta;}
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| 254 |
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| 255 | // La bande d'indice kt est limitée par les valeurs de theta contenues dans
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| 256 | // Theta_[kt] et Theta_[kt+1]
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| 257 | for( i=1; i< NTheta_; i++ )
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| 258 | if( theta < Theta_(i) ) break;
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| 259 |
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| 260 | dphi= DeuxPi/(double)NPhi_(i-1);
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| 261 |
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| 262 | if (fgzn) k= NPix_-TNphi_(i)+(int_4)(phi/dphi);
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| 263 | else k= TNphi_(i-1)+(int_4)(phi/dphi);
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| 264 | return(k);
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| 265 | }
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| 266 |
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| 267 | /* --Methode-- */
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[2960] | 268 | //! Return (theta,phi) coordinates of middle of pixel with index k
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[764] | 269 | template <class T>
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| 270 | void SphereThetaPhi<T>::PixThetaPhi(int_4 k,double& theta,double& phi) const
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| 271 | {
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| 272 | int i;
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| 273 | bool fgzn = false;
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| 274 |
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| 275 | if((k < 0) || (k >= NPix_)) {theta = -99999.; phi = -99999.; return; }
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| 276 | if( k >= NPix_/2) {fgzn = true; k = NPix_-1-k;}
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| 277 |
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| 278 | // recupère l'indice i de la tranche qui contient le pixel k
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| 279 | for( i=0; i< NTheta_; i++ )
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| 280 | if( k < TNphi_(i+1) ) break;
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| 281 |
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| 282 | // angle theta
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| 283 | theta= 0.5*(Theta_(i)+Theta_(i+1));
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| 284 | if (fgzn) theta= Pi-theta;
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| 285 |
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| 286 | // angle phi
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| 287 | k -= TNphi_(i);
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| 288 | phi= DeuxPi/(double)NPhi_(i)*(double)(k+.5);
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| 289 | if (fgzn) phi= DeuxPi-phi;
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| 290 | }
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| 291 |
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[2960] | 292 | //! Setting pixel values to a constant
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[764] | 293 | template <class T>
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| 294 | T SphereThetaPhi<T>::SetPixels(T v)
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| 295 | {
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| 296 | pixels_.Reset(v);
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| 297 | return(v);
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| 298 | }
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| 299 |
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[2960] | 300 | /*!
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| 301 | \brief Pixel Solid angle (steradians)
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| 302 | All the pixels have the same solid angle. The dummy argument is
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| 303 | for compatibility with eventual pixelizations which would not
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| 304 | fulfil this requirement.
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| 305 | */
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[764] | 306 | template <class T>
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| 307 | double SphereThetaPhi<T>::PixSolAngle(int_4 /*dummy*/) const
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| 308 |
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| 309 | {
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| 310 | return Omega_;
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| 311 | }
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| 312 |
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| 313 | /* --Methode-- */
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[2960] | 314 | //! Return values of theta,phi which limit the pixel with index k
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[764] | 315 | template <class T>
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| 316 | void SphereThetaPhi<T>::Limits(int_4 k,double& tetMin,double& tetMax,double& phiMin,double& phiMax)
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| 317 | {
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| 318 | int j;
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| 319 | double dphi;
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| 320 | bool fgzn= false;
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| 321 |
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| 322 | if((k < 0) || (k >= NPix_)) {
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| 323 | tetMin= -99999.;
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| 324 | phiMin= -99999.;
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| 325 | tetMax= -99999.;
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| 326 | phiMax= -99999.;
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| 327 | return;
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| 328 | }
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| 329 |
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| 330 | // si on se trouve dans l'hémisphère Sud
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| 331 | if(k >= NPix_/2) {
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| 332 | fgzn= true;
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| 333 | k= NPix_-1-k;
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| 334 | }
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| 335 |
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| 336 | // on recupere l'indice i de la tranche qui contient le pixel k
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| 337 | int i;
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| 338 | for( i=0; i< NTheta_; i++ )
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| 339 | if(k < TNphi_(i+1)) break;
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| 340 |
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| 341 | // valeurs limites de theta dans l'hemisphere Nord
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| 342 | tetMin= Theta_(i);
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| 343 | tetMax= Theta_(i+1);
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| 344 | // valeurs limites de theta dans l'hemisphere Sud
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| 345 | if (fgzn) {
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| 346 | tetMin= Pi - Theta_(i+1);
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| 347 | tetMax= Pi - Theta_(i);
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| 348 | }
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| 349 |
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| 350 | // pixel correspondant dans l'hemisphere Nord
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| 351 | if (fgzn) k= TNphi_(i+1)-k+TNphi_(i)-1;
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| 352 |
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| 353 | // indice j de discretisation ( phi= j*dphi )
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| 354 | j= k-TNphi_(i);
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| 355 | dphi= DeuxPi/(double)NPhi_(i);
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| 356 |
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| 357 | // valeurs limites de phi
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| 358 | phiMin= dphi*(double)(j);
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| 359 | phiMax= dphi*(double)(j+1);
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| 360 | return;
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| 361 | }
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| 362 |
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| 363 | /* --Methode-- */
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[2960] | 364 | //! Return number of theta-slices on the sphere
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[764] | 365 | template <class T>
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| 366 | uint_4 SphereThetaPhi<T>::NbThetaSlices() const
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| 367 | {
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| 368 | if (NTheta_<=0)
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| 369 | {
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| 370 | throw PException(" sphere not pixelized, NbSlice=0 ");
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| 371 | }
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| 372 | return( 2*NTheta_);
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| 373 | }
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| 374 |
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| 375 | /* --Methode-- */
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[2960] | 376 | //! Return number of pixels along the phi-direction of the kt-th slice
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[764] | 377 | template <class T>
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| 378 | int_4 SphereThetaPhi<T>::NPhi(int_4 kt) const
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| 379 | {
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| 380 | int nbpix;
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| 381 | // verification
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| 382 | if((kt < 0) || (kt >= 2*NTheta_)) return(-1);
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| 383 |
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| 384 | // si on se trouve dans l'hemisphere Sud
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| 385 | if(kt >= NTheta_) {
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| 386 | kt= 2*NTheta_-1-kt;
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| 387 | }
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| 388 |
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| 389 | // nombre de pixels
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| 390 | nbpix= NPhi_(kt);
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| 391 | return(nbpix);
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| 392 | }
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| 393 |
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| 394 |
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| 395 | /* --Methode-- */
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[2960] | 396 | //! Return theta values which limit the slice kt
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[764] | 397 | template <class T>
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[2969] | 398 | void SphereThetaPhi<T>::Theta(int_4 kt,double& tetMin,double& tetMax) const
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[764] | 399 | {
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| 400 | bool fgzn= false;
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| 401 | // verification
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| 402 | if( (kt< 0) || (kt>= 2*NTheta_) ) {
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| 403 | tetMin= -99999.;
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| 404 | tetMax= -99999.;
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| 405 | return;
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| 406 | }
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| 407 |
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| 408 | // si on se trouve dans l'hemisphere Sud
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| 409 | if( kt >= NTheta_ ) {
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| 410 | fgzn= true;
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| 411 | kt= 2*NTheta_-1-kt;
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| 412 | }
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| 413 |
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| 414 | // valeurs limites de theta dans l'hemisphere Nord
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| 415 | tetMin= Theta_(kt);
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| 416 | tetMax= Theta_(kt+1);
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| 417 | // valeurs limites de theta dans l'hemisphere Sud
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| 418 | if (fgzn) {
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| 419 | tetMin= Pi - Theta_(kt+1);
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| 420 | tetMax= Pi - Theta_(kt);
|
---|
| 421 | }
|
---|
| 422 | }
|
---|
| 423 |
|
---|
| 424 | /* --Methode-- */
|
---|
[2960] | 425 | //! Return values of phi which limit the jp-th pixel of the kt-th slice
|
---|
[764] | 426 | template <class T>
|
---|
[2969] | 427 | void SphereThetaPhi<T>::Phi(int_4 kt,int_4 jp,double& phiMin,double& phiMax) const
|
---|
[764] | 428 | {
|
---|
| 429 | // verification
|
---|
| 430 | if((kt < 0) || (kt >= 2*NTheta_)) {
|
---|
| 431 | phiMin= -99999.;
|
---|
| 432 | phiMax= -99999.;
|
---|
| 433 | return;
|
---|
| 434 | }
|
---|
| 435 |
|
---|
| 436 | // si on se trouve dans l'hemisphere Sud
|
---|
| 437 | if(kt >= NTheta_) kt= 2*NTheta_-1-kt;
|
---|
| 438 |
|
---|
| 439 | // verifie si la tranche kt contient au moins jp pixels
|
---|
| 440 | if( (jp< 0) || (jp >= NPhi_(kt)) ) {
|
---|
| 441 | phiMin= -88888.;
|
---|
| 442 | phiMax= -88888.;
|
---|
| 443 | return;
|
---|
| 444 | }
|
---|
| 445 |
|
---|
| 446 | double dphi= DeuxPi/(double)NPhi_(kt);
|
---|
| 447 | phiMin= dphi*(double)(jp);
|
---|
| 448 | phiMax= dphi*(double)(jp+1);
|
---|
| 449 | return;
|
---|
| 450 | }
|
---|
| 451 |
|
---|
| 452 | /* --Methode-- */
|
---|
[2960] | 453 | //! Return pixel index with sequence index jp in the slice kt
|
---|
[764] | 454 | template <class T>
|
---|
| 455 | int_4 SphereThetaPhi<T>::Index(int_4 kt,int_4 jp) const
|
---|
| 456 | {
|
---|
| 457 | int k;
|
---|
| 458 | bool fgzn= false;
|
---|
| 459 |
|
---|
| 460 | // si on se trouve dans l'hemisphere Sud
|
---|
| 461 | if(kt >= NTheta_) {
|
---|
| 462 | fgzn= true;
|
---|
| 463 | kt= 2*NTheta_-1-kt;
|
---|
| 464 | }
|
---|
| 465 |
|
---|
| 466 | // si la tranche kt contient au moins i pixels
|
---|
| 467 | if( (jp>=0) && (jp<NPhi_(kt)) )
|
---|
| 468 | {
|
---|
| 469 | // dans l'hemisphere Sud
|
---|
| 470 | if (fgzn) k= NPix_-TNphi_(kt+1)+jp;
|
---|
| 471 | // dans l'hemisphere Nord
|
---|
| 472 | else k= TNphi_(kt)+jp;
|
---|
| 473 | }
|
---|
| 474 | else
|
---|
| 475 | {
|
---|
| 476 | k= 9999;
|
---|
| 477 | printf("\n la tranche %d ne contient pas un pixel de rang %d",kt,jp);
|
---|
| 478 | }
|
---|
| 479 | return(k);
|
---|
| 480 | }
|
---|
| 481 |
|
---|
| 482 | /* --Methode-- */
|
---|
[2960] | 483 | //! Return indices kt (theta) and jp (phi) of pixel with index k
|
---|
[764] | 484 | template <class T>
|
---|
| 485 | void SphereThetaPhi<T>::ThetaPhiIndex(int_4 k,int_4& kt,int_4& jp)
|
---|
| 486 | {
|
---|
| 487 | bool fgzn= false;
|
---|
| 488 | // si on se trouve dans l'hemisphere Sud
|
---|
| 489 | if(k >= NPix_/2)
|
---|
| 490 | {
|
---|
| 491 | fgzn= true;
|
---|
| 492 | k= NPix_-1-k;
|
---|
| 493 | }
|
---|
| 494 |
|
---|
| 495 | // on recupere l'indice kt de la tranche qui contient le pixel k
|
---|
| 496 | int i;
|
---|
| 497 | for(i = 0; i < NTheta_; i++)
|
---|
| 498 | if(k < TNphi_(i+1)) break;
|
---|
| 499 |
|
---|
| 500 | // indice kt de tranche
|
---|
| 501 | if (fgzn) kt= 2*NTheta_-1-i;
|
---|
| 502 | else kt= i;
|
---|
| 503 |
|
---|
| 504 | // indice jp de pixel
|
---|
| 505 | if (fgzn) jp= TNphi_(i+1)-k-1;
|
---|
| 506 | else jp= k-TNphi_(i);
|
---|
| 507 | }
|
---|
[2960] | 508 | /*!
|
---|
| 509 | \brief achieve the splitting into pixels
|
---|
| 510 | m has the same signification as for the constructor
|
---|
| 511 |
|
---|
| 512 | Each theta-slice of the north hemisphere will be spitted starting f
|
---|
| 513 | from phi=0 ...
|
---|
| 514 |
|
---|
| 515 | South hemisphere is scanned in the same direction according to phi
|
---|
| 516 | and from equator to the pole (the pixel following the last one of
|
---|
| 517 | the slice closest to the equator with z>0, is the pixel with lowest
|
---|
| 518 | phi of the slice closest of the equator with z<0).
|
---|
| 519 | */
|
---|
[764] | 520 | template <class T>
|
---|
| 521 | void SphereThetaPhi<T>::Pixelize(int_4 m)
|
---|
| 522 |
|
---|
| 523 | //--
|
---|
| 524 | {
|
---|
| 525 | int ntotpix,j;
|
---|
| 526 |
|
---|
| 527 | // Decodage et controle des arguments d'appel :
|
---|
[2960] | 528 | // au moins 2 et au plus 524288 bandes d'un hemisphere en theta
|
---|
[764] | 529 | if (m < 2) m = 2;
|
---|
[2960] | 530 | if (m > 524288) m = 524288;
|
---|
[764] | 531 |
|
---|
| 532 | // On memorise les arguments d'appel
|
---|
| 533 | NTheta_ = m;
|
---|
| 534 |
|
---|
| 535 | // On commence par decouper l'hemisphere z>0.
|
---|
| 536 | // Creation des vecteurs contenant :
|
---|
| 537 | // Les valeurs limites de theta (une valeur de plus que le nombre de bandes...)
|
---|
| 538 | // Theta_= new double[m+1];
|
---|
| 539 | Theta_.ReSize(m+1);
|
---|
| 540 |
|
---|
| 541 | // Le nombre de pixels en phi de chacune des bandes en theta
|
---|
| 542 | // NPhi_ = new int_4[m];
|
---|
[980] | 543 | // une taille de m suffit, mais je mets m+1 pour que les 3 tableaux aient
|
---|
| 544 | // la meme taille pour une manipulation plus faciles par la librairie
|
---|
| 545 | // cfitsio -- GLM (13-04-00)
|
---|
| 546 | NPhi_.ReSize(m+1);
|
---|
[764] | 547 |
|
---|
| 548 | // Le nombre/Deuxpi total des pixels contenus dans les bandes de z superieur a une
|
---|
| 549 | // bande donnee (mTPphi[m] contient le nombre de pixels total de l'hemisphere)
|
---|
| 550 | // TNphi_= new int_4[m+1];
|
---|
| 551 | TNphi_.ReSize(m+1);
|
---|
| 552 |
|
---|
| 553 | // Calcul du nombre total de pixels dans chaque bande pour optimiser
|
---|
| 554 | // le rapport largeur/hauteur des pixels
|
---|
| 555 |
|
---|
| 556 | //calotte polaire
|
---|
| 557 | TNphi_(0)= 0;
|
---|
| 558 | NPhi_(0) = 1;
|
---|
| 559 |
|
---|
| 560 | //bandes jusqu'a l'equateur
|
---|
| 561 | for(j = 1; j < m; j++)
|
---|
| 562 | {
|
---|
| 563 | TNphi_(j)= TNphi_(j-1)+NPhi_(j-1);
|
---|
| 564 | NPhi_(j) = (int_4)(.5+4.*(double)(m-.5)*sin(Pi*(double)j/(double)(2.*m-1.))) ;
|
---|
| 565 | }
|
---|
| 566 |
|
---|
| 567 | // Nombre total de pixels sur l'hemisphere
|
---|
| 568 | ntotpix = TNphi_(m-1)+NPhi_(m-1);
|
---|
| 569 | TNphi_(m)= ntotpix;
|
---|
| 570 | // et sur la sphere entiere
|
---|
| 571 | NPix_= 2*ntotpix;
|
---|
| 572 |
|
---|
| 573 | // Creation et initialisation du vecteur des contenus des pixels
|
---|
| 574 | pixels_.ReSize(NPix_);
|
---|
| 575 | pixels_.Reset();
|
---|
| 576 |
|
---|
| 577 | // Determination des limites des bandes en theta :
|
---|
| 578 | // omeg est l'angle solide couvert par chaque pixel,
|
---|
| 579 | // une bande donnee kt couvre un angle solide NPhi_[kt]*omeg
|
---|
| 580 | // egal a 2* Pi*(cos Theta_[kt]-cos Theta_[kt+1]). De meme, l'angle solide
|
---|
| 581 | //de la
|
---|
| 582 | // calotte allant du pole a la limite haute de la bande kt vaut
|
---|
| 583 | // 2* Pi*(1.-cos Theta_[kt+1])= TNphi_[kt]*omeg...
|
---|
| 584 |
|
---|
| 585 | double omeg2pi= 1./(double)ntotpix;
|
---|
| 586 | Omega_ = omeg2pi*DeuxPi;
|
---|
| 587 |
|
---|
| 588 | for(j=0; j <= m; j++)
|
---|
| 589 | {
|
---|
| 590 | Theta_(j)= acos(1.-(double)TNphi_(j)*omeg2pi);
|
---|
| 591 | }
|
---|
| 592 | }
|
---|
| 593 |
|
---|
[2968] | 594 | //! Return the theta angle for slice defined by \b index
|
---|
| 595 | template <class T>
|
---|
| 596 | r_8 SphereThetaPhi<T>::ThetaOfSlice(int_4 index) const
|
---|
| 597 | {
|
---|
| 598 | if(index < 0 || index >= 2*NTheta_)
|
---|
| 599 | throw RangeCheckError("SphereThetaPhi::ThetaOfSlice() index out of range");
|
---|
| 600 | double tet1, tet2;
|
---|
| 601 | Theta(index, tet1, tet2);
|
---|
| 602 | return 0.5*(tet1+tet2);
|
---|
| 603 | }
|
---|
[2960] | 604 |
|
---|
[2973] | 605 | //! Return true : All theta slices have a symmetric slice at Pi-Theta in SphereThetaPhi
|
---|
| 606 | template <class T>
|
---|
| 607 | bool SphereThetaPhi<T>::HasSymThetaSlice() const
|
---|
| 608 | {
|
---|
| 609 | return true;
|
---|
| 610 | }
|
---|
| 611 | //! Return the slice index for the symmetric slice at theta=Pi-ThetaOfSlice(idx)
|
---|
| 612 | template <class T>
|
---|
| 613 | int_4 SphereThetaPhi<T>::GetSymThetaSliceIndex(int_4 idx) const
|
---|
| 614 | {
|
---|
| 615 | if(idx < 0 || idx >= NbThetaSlices())
|
---|
| 616 | throw RangeCheckError("SphereThetaPhi::GetSymThetaSliceIndex index out of range");
|
---|
| 617 | return (NbThetaSlices()-1-idx);
|
---|
| 618 | }
|
---|
| 619 |
|
---|
[2960] | 620 | /*!
|
---|
| 621 | \brief return a Theta slice information
|
---|
| 622 | For a theta-slice with index 'index', return :
|
---|
| 623 | the corresponding "theta"
|
---|
| 624 | a vector containing the phi's of the pixels of the slice
|
---|
| 625 | a vector containing the corresponding values of pixels
|
---|
| 626 | */
|
---|
[764] | 627 | template <class T>
|
---|
| 628 | void SphereThetaPhi<T>::GetThetaSlice(int_4 index,r_8& theta, TVector<r_8>& phi, TVector<T>& value) const
|
---|
| 629 |
|
---|
| 630 | {
|
---|
| 631 |
|
---|
| 632 | if(index < 0 || index >= NbThetaSlices())
|
---|
[2985] | 633 | throw RangeCheckError("SphereThetaPhi::GetThetaSlice(idx...) index out of range");
|
---|
[2968] | 634 |
|
---|
[764] | 635 |
|
---|
| 636 | int iring= Index(index,0);
|
---|
| 637 | int lring = NPhi(index);
|
---|
| 638 |
|
---|
| 639 | phi.ReSize(lring);
|
---|
| 640 | value.ReSize(lring);
|
---|
| 641 | double Te= 0.;
|
---|
| 642 | double Fi= 0.;
|
---|
[2985] | 643 | PixThetaPhi(iring,Te,Fi);
|
---|
| 644 | double DFi = DeuxPi/(double)NPhi(index);
|
---|
| 645 | for(int kk = 0; kk < lring; kk++) {
|
---|
| 646 | value(kk)= pixels_(kk+iring);
|
---|
| 647 | phi(kk)= Fi;
|
---|
| 648 | Fi += DFi;
|
---|
| 649 | }
|
---|
[764] | 650 | theta= Te;
|
---|
| 651 | }
|
---|
| 652 |
|
---|
[2960] | 653 | /*
|
---|
| 654 | \brief return information on a theta slice
|
---|
| 655 | For a theta-slice with index 'index', return :
|
---|
| 656 | the corresponding "theta"
|
---|
| 657 | the corresponding "phi" for first pixel of the slice
|
---|
| 658 | a vector containing the indices of the pixels of the slice
|
---|
| 659 | (equally distributed in phi)
|
---|
| 660 | a vector containing the corresponding values of pixels
|
---|
| 661 | */
|
---|
[764] | 662 | template <class T>
|
---|
| 663 | void SphereThetaPhi<T>::GetThetaSlice(int_4 index,r_8& theta, r_8& phi0,TVector<int_4>& pixelIndices, TVector<T>& value) const
|
---|
| 664 |
|
---|
| 665 | {
|
---|
| 666 |
|
---|
| 667 | if(index < 0 || index >= NbThetaSlices())
|
---|
[2985] | 668 | throw RangeCheckError("SphereThetaPhi::GetThetaSlice(idx...) idx out of range");
|
---|
[764] | 669 |
|
---|
| 670 | int iring= Index(index,0);
|
---|
| 671 | int lring = NPhi(index);
|
---|
| 672 |
|
---|
| 673 | pixelIndices.ReSize(lring);
|
---|
| 674 | value.ReSize(lring);
|
---|
| 675 | double Te= 0.;
|
---|
| 676 | double Fi= 0.;
|
---|
[2985] | 677 | for(int kk = 0; kk < lring; kk++) {
|
---|
| 678 | pixelIndices(kk)=kk+iring ;
|
---|
| 679 | value(kk)= pixels_(kk+iring);
|
---|
| 680 | }
|
---|
| 681 | PixThetaPhi(iring,theta,phi0);
|
---|
[764] | 682 | }
|
---|
| 683 |
|
---|
| 684 |
|
---|
| 685 |
|
---|
| 686 |
|
---|
| 687 | template <class T>
|
---|
| 688 | void SphereThetaPhi<T>::print(ostream& os) const
|
---|
| 689 | {
|
---|
[2973] | 690 | Show(os);
|
---|
[2985] | 691 | os << "SphereThetaPhi<T> NTheta_= " << NTheta_ << " NPix_ = " << NPix_
|
---|
| 692 | << " Omega_ = " << Omega_ << endl;
|
---|
[2885] | 693 | if(this->mInfo_) os << " DVList Info= " << *(this->mInfo_) << endl;
|
---|
[764] | 694 |
|
---|
[2985] | 695 | os << "... NPhi_ Values : ";
|
---|
[764] | 696 | int i;
|
---|
| 697 | for(i=0; i < NTheta_; i++)
|
---|
| 698 | {
|
---|
| 699 | if(i%5 == 0) os << endl;
|
---|
| 700 | os << NPhi_(i) <<", ";
|
---|
| 701 | }
|
---|
| 702 | os << endl;
|
---|
| 703 |
|
---|
[2985] | 704 | os << "... Theta_ Values : ";
|
---|
[764] | 705 | for(i=0; i < NTheta_+1; i++)
|
---|
| 706 | {
|
---|
| 707 | if(i%5 == 0) os << endl;
|
---|
| 708 | os << Theta_(i) <<", ";
|
---|
| 709 | }
|
---|
| 710 | os << endl;
|
---|
| 711 |
|
---|
[2985] | 712 | os << "... TNphi_ Values : ";
|
---|
[764] | 713 | for(i=0; i < NTheta_+1; i++)
|
---|
| 714 | {
|
---|
| 715 | if(i%5 == 0) os << endl;
|
---|
| 716 | os << TNphi_(i) <<", ";
|
---|
| 717 | }
|
---|
| 718 | os << endl;
|
---|
| 719 |
|
---|
[2985] | 720 | os << "... Pixel Values : ";
|
---|
[764] | 721 | for(i=0; i < NPix_; i++)
|
---|
| 722 | {
|
---|
| 723 | if(i%5 == 0) os << endl;
|
---|
| 724 | os << pixels_(i) <<", ";
|
---|
| 725 | }
|
---|
| 726 | os << endl;
|
---|
| 727 | }
|
---|
| 728 |
|
---|
[1419] | 729 | // ...... Operations de calcul ......
|
---|
[764] | 730 |
|
---|
[1419] | 731 |
|
---|
| 732 | //! Fill a SphereThetaPhi with a constant value \b a
|
---|
| 733 | template <class T>
|
---|
| 734 | SphereThetaPhi<T>& SphereThetaPhi<T>::SetT(T a)
|
---|
| 735 | {
|
---|
| 736 | if (NbPixels() < 1)
|
---|
| 737 | throw RangeCheckError("SphereThetaPhi<T>::SetT(T ) - SphereThetaPhi not dimensionned ! ");
|
---|
| 738 | pixels_ = a;
|
---|
| 739 | return (*this);
|
---|
| 740 | }
|
---|
| 741 |
|
---|
| 742 | /*! Add a constant value \b x to a SphereThetaPhi */
|
---|
| 743 | template <class T>
|
---|
| 744 | SphereThetaPhi<T>& SphereThetaPhi<T>::Add(T a)
|
---|
| 745 | {
|
---|
| 746 | if (NbPixels()< 1)
|
---|
| 747 | throw RangeCheckError("SphereThetaPhi<T>::Add(T ) - SphereThetaPhi not dimensionned ! ");
|
---|
| 748 | pixels_ += a;
|
---|
| 749 | return (*this);
|
---|
| 750 | }
|
---|
| 751 |
|
---|
| 752 | /*! Substract a constant value \b a to a SphereThetaPhi */
|
---|
| 753 | template <class T>
|
---|
[1624] | 754 | SphereThetaPhi<T>& SphereThetaPhi<T>::Sub(T a,bool fginv)
|
---|
[1419] | 755 | {
|
---|
| 756 | if (NbPixels()< 1)
|
---|
| 757 | throw RangeCheckError("SphereThetaPhi<T>::Sub(T ) - SphereThetaPhi not dimensionned ! ");
|
---|
[1624] | 758 | pixels_.Sub(a,fginv);
|
---|
[1419] | 759 | return (*this);
|
---|
| 760 | }
|
---|
| 761 |
|
---|
| 762 | /*! multiply a SphereThetaPhi by a constant value \b a */
|
---|
| 763 | template <class T>
|
---|
| 764 | SphereThetaPhi<T>& SphereThetaPhi<T>::Mul(T a)
|
---|
| 765 | {
|
---|
| 766 | if (NbPixels()< 1)
|
---|
| 767 | throw RangeCheckError("SphereThetaPhi<T>::Mul(T ) - SphereThetaPhi not dimensionned ! ");
|
---|
| 768 | pixels_ *= a;
|
---|
| 769 | return (*this);
|
---|
| 770 | }
|
---|
| 771 |
|
---|
| 772 | /*! divide a SphereThetaPhi by a constant value \b a */
|
---|
| 773 | template <class T>
|
---|
| 774 | SphereThetaPhi<T>& SphereThetaPhi<T>::Div(T a)
|
---|
| 775 | {
|
---|
| 776 | if (NbPixels()< 1)
|
---|
| 777 | throw RangeCheckError("SphereThetaPhi<T>::Div(T ) - SphereThetaPhi not dimensionned ! ");
|
---|
| 778 | pixels_ /= a;
|
---|
| 779 | return (*this);
|
---|
| 780 | }
|
---|
| 781 |
|
---|
| 782 | // >>>> Operations avec 2nd membre de type SphereThetaPhi
|
---|
| 783 | //! Add two SphereThetaPhi
|
---|
| 784 |
|
---|
| 785 | template <class T>
|
---|
| 786 | SphereThetaPhi<T>& SphereThetaPhi<T>::AddElt(const SphereThetaPhi<T>& a)
|
---|
| 787 | {
|
---|
| 788 | if (NbPixels()!= a.NbPixels())
|
---|
| 789 | {
|
---|
| 790 | throw(SzMismatchError("SphereThetaPhi<T>::AddElt(const SphereThetaPhi<T>&) SizeMismatch")) ;
|
---|
| 791 | }
|
---|
| 792 | pixels_ += a.pixels_;
|
---|
| 793 | return (*this);
|
---|
| 794 | }
|
---|
| 795 |
|
---|
| 796 | //! Substract two SphereThetaPhi
|
---|
| 797 | template <class T>
|
---|
| 798 | SphereThetaPhi<T>& SphereThetaPhi<T>::SubElt(const SphereThetaPhi<T>& a)
|
---|
| 799 | {
|
---|
| 800 | if (NbPixels()!= a.NbPixels())
|
---|
| 801 | {
|
---|
| 802 | throw(SzMismatchError("SphereThetaPhi<T>::SubElt(const SphereThetaPhi<T>&) SizeMismatch")) ;
|
---|
| 803 | }
|
---|
| 804 | pixels_ -= a.pixels_;
|
---|
| 805 | return (*this);
|
---|
| 806 | }
|
---|
| 807 |
|
---|
| 808 | //! Multiply two SphereThetaPhi (elements by elements)
|
---|
| 809 | template <class T>
|
---|
| 810 | SphereThetaPhi<T>& SphereThetaPhi<T>::MulElt(const SphereThetaPhi<T>& a)
|
---|
| 811 | {
|
---|
| 812 | if (NbPixels()!= a.NbPixels())
|
---|
| 813 | {
|
---|
[1551] | 814 | throw(SzMismatchError("SphereThetaPhi<T>::MulElt(const SphereThetaPhi<T>&) SizeMismatch")) ;
|
---|
[1419] | 815 | }
|
---|
| 816 | pixels_ *= a.pixels_;
|
---|
| 817 | return (*this);
|
---|
| 818 | }
|
---|
| 819 |
|
---|
[1551] | 820 | //! Divide two SphereThetaPhi (elements by elements) - No protection for divide by 0
|
---|
| 821 | template <class T>
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| 822 | SphereThetaPhi<T>& SphereThetaPhi<T>::DivElt(const SphereThetaPhi<T>& a)
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| 823 | {
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| 824 | if (NbPixels()!= a.NbPixels())
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| 825 | {
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| 826 | throw(SzMismatchError("SphereThetaPhi<T>::DivElt(const SphereThetaPhi<T>&) SizeMismatch")) ;
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| 827 | }
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| 828 | pixels_ /= a.pixels_;
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| 829 | return (*this);
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| 830 | }
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[1419] | 831 |
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| 832 |
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[1551] | 833 |
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[764] | 834 | #ifdef __CXX_PRAGMA_TEMPLATES__
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[2082] | 835 | #pragma define_template SphereThetaPhi<int_4>
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[764] | 836 | #pragma define_template SphereThetaPhi<r_8>
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| 837 | #pragma define_template SphereThetaPhi<r_4>
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| 838 | #pragma define_template SphereThetaPhi< complex<r_4> >
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| 839 | #pragma define_template SphereThetaPhi< complex<r_8> >
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| 840 | #endif
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| 841 | #if defined(ANSI_TEMPLATES) || defined(GNU_TEMPLATES)
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[2869] | 842 | namespace SOPHYA {
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[2082] | 843 | template class SphereThetaPhi<int_4>;
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[764] | 844 | template class SphereThetaPhi<r_8>;
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| 845 | template class SphereThetaPhi<r_4>;
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| 846 | template class SphereThetaPhi< complex<r_4> >;
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| 847 | template class SphereThetaPhi< complex<r_8> >;
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[2869] | 848 | }
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[764] | 849 | #endif
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