source: Sophya/trunk/Cosmo/RadioBeam/mdish.h@ 3991

Last change on this file since 3991 was 3991, checked in by ansari, 14 years ago

encore debug/correction de Four2DRespRatio, Reza 08/05/2011

File size: 6.4 KB
Line 
1// Classes to compute Multi-Dish or CRT-like radio interferometer response
2// R. Ansari - Avril-Mai 2010
3
4#ifndef MDISH_SEEN
5#define MDISH_SEEN
6
7#include "machdefs.h" // SOPHYA .h
8#include "sopnamsp.h" // SOPHYA .h
9#include <math.h>
10#include <iostream>
11#include <vector>
12#include <string>
13
14#include "genericfunc.h" // SOPHYA .h
15#include "array.h" // SOPHYA .h
16#include "qhist.h"
17
18#ifndef DeuxPI
19#define DeuxPI 2.*M_PI
20#endif
21
22// -- Four2DResponse : Reponse instrumentale ds le plan k_x,k_y (frequences angulaires theta,phi)
23// typ=1 : Reponse gaussienne parabole diametre D exp[ - 2 (lambda k_g / D )^2 ]
24// typ=2 : Reponse parabole diametre D Triangle <= kmax= 2 pi D / lambda
25// typ=3 : Reponse rectangle Dx x Dy Triangle (|kx|,|k_y|) <= (2 pi Dx / lambda, 2 pi Dx / lambda)
26// typ=22 : Reponse parabole diametre D Triangle <= kmax= 2 pi D / lambda avec un trou au centre
27
28class Four2DResponse {
29public:
30 // On donne dx=D/lambda=Dx/lambda , dy=Dy/lambda
31 Four2DResponse(int typ, double dx, double dy, double lambda=1.);
32
33 Four2DResponse(Four2DResponse const& a)
34 { typ_ = a.typ_; dx_=a.dx_; dy_=a.dy_; lambdaref_=a.lambdaref_;
35 lambda_=a.lambda_; lambda_ratio_=a.lambda_ratio_; }
36 Four2DResponse& operator=(Four2DResponse const& a)
37 { typ_ = a.typ_; dx_=a.dx_; dy_=a.dy_; lambdaref_=a.lambdaref_;
38 lambda_=a.lambda_; lambda_ratio_=a.lambda_ratio_; return (*this); }
39
40 inline void setLambdaRef(double lambda=1.)
41 { lambdaref_ = lambda; }
42 inline void setLambda(double lambda=1.)
43 { lambda_ = lambda; lambda_ratio_ = lambda_/lambdaref_; }
44
45 inline double getLambdaRef() { return lambdaref_; }
46 inline double getLambda() { return lambda_; }
47
48 // Return the 2D response for wave vector (kx,ky)
49 virtual double Value(double kx, double ky);
50 inline double operator()(double kx, double ky)
51 { return Value(kx, ky); }
52 virtual Histo2D GetResponse(int nx=255, int ny=255);
53 // Retourne le niveau moyen du bruit projete 1D en fonction (sqrt(u^2+v^2)
54 HProf GetProjNoiseLevel(int nbin=128, bool fgnorm1=true);
55 // Retourne la reponse moyenne projetee 1D en fonction (sqrt(u^2+v^2)
56 HProf GetProjResponse(int nbin=128, bool fgnorm1=true);
57
58 inline double D() { return dx_; } ;
59 inline double Dx() { return dx_; } ;
60 inline double Dy() { return dy_; } ;
61
62 int typ_;
63 double dx_, dy_;
64 double lambdaref_, lambda_;
65 double lambda_ratio_; // lambdaref_/lambda_;
66
67};
68
69
70// -- Four2DRespTable : Reponse tabulee instrumentale ds le plan k_x,k_y (angles theta,phi)
71class Four2DRespTable : public Four2DResponse {
72public:
73 // Constructeur sans argument, utilise pour lire depuis un fichier
74 Four2DRespTable();
75 // On donne dx=D/lambda=Dx/lambda , dy=Dy/lambda
76 Four2DRespTable(Histo2D const & hrep, double d, double lambda=1.);
77 // Apres renormalisaton Value(kx,ky) <= max
78 double renormalize(double max=1.);
79 // Return the 2D response for wave vector (kx,ky)
80 virtual double Value(double kx, double ky);
81
82 void writeToPPF(string flnm);
83 void readFromPPF(string flnm);
84
85 Histo2D hrep_;
86};
87
88
89// -- Four2DRespRatio: Retourne le rapport de la reponse entre deux objets Four2DResponse
90class Four2DRespRatio : public Four2DResponse {
91public:
92 Four2DRespRatio(Four2DResponse& a, Four2DResponse& b, double maxratio=10.);
93 // Return the ratio a.Value(kx,ky) / b.Value(kx, ky) - with protection against divide by zero
94 virtual double Value(double kx, double ky);
95 Four2DResponse& a_;
96 Four2DResponse& b_;
97 double maxratio_, zerothr_;
98};
99
100// Classe toute simple pour representer un element de reception de type dish
101class Dish {
102public:
103 // Circular dish
104 Dish(int id, double x, double y, double diam)
105 : id_(id), X(x), Y(y), D(diam), Dx(D), Dy(D), fgcirc_(true), gain_(1.) { }
106 // Receiver with rectangular type answer in kx,ky plane
107 Dish(int id, double x, double y, double dx, double dy)
108 : id_(id), X(x), Y(y), D(sqrt(dx*dy)), Dx(dx), Dy(dy), fgcirc_(false), gain_(1.) { }
109 Dish(Dish const& a)
110 : id_(a.id_), X(a.X), Y(a.Y), D(a.D), Dx(a.Dx), Dy(a.Dy), fgcirc_(a.fgcirc_), gain_(a.gain_) { }
111 inline void setGain(double gain) { gain_=gain; return; }
112 inline bool isCircular() { return fgcirc_; }
113 inline int ReflectorId() { return id_; }
114 inline double Diameter() { return D; }
115 inline double DiameterX() { return Dx; }
116 inline double DiameterY() { return Dy; }
117 inline double Gain() { return gain_; }
118
119 int id_; // numero de reflecteur
120 double X,Y,D;
121 double Dx, Dy;
122 bool fgcirc_; // false -> rectangular dish
123 double gain_;
124};
125
126
127// -------------------------------------------------------------------
128// -- Pour calculer la reponse ds le plan kx,ky d'un system MultiDish
129class MultiDish {
130public:
131 MultiDish(double lambda, double dmax, vector<Dish>& dishes, bool fgnoauto=false);
132
133 // Pour phi, les angles phi, -phi, phi+pi, -(phi+pi) sont prises en compte
134 inline void SetThetaPhiRange(double thetamax=0., int ntet=1, double phimax=0., int nphi=1)
135 { thetamax_=thetamax; ntet_=ntet; phimax_=phimax; nphi_=nphi; }
136
137 inline int SetPrtLevel(int lev=0, int prtmod=10)
138 { int olev=prtlev_; prtlev_=lev; prtmodulo_=prtmod; return olev; }
139
140 inline void SetRespHisNBins(int nx=128, int ny=128)
141 { nx_=nx; ny_=ny; }
142 inline void SetBeamNSamples(int nx=128, int ny=128)
143 { beamnx_=nx; beamny_=ny; }
144
145 // Calcul la reponse ds le plan 2D (u,v) = (kx,ky)
146 void ComputeResponse();
147 // Retourne la reponse 2D ds le plan (u,v) = (kx,ky) sous forme d'histo 2D
148 Histo2D GetResponse();
149
150 // Retourne le niveau moyen du bruit projete 1D en fonction (sqrt(u^2+v^2)
151 HProf GetProjNoiseLevel(int nbin=128, bool fgnorm1=true);
152 // Retourne la reponse moyenne projetee 1D en fonction (sqrt(u^2+v^2)
153 HProf GetProjResponse(int nbin=128, bool fgnorm1=true);
154
155 double CumulResp(Four2DResponse& rd, double theta=0., double phi=0.);
156 inline size_t NbDishes() { return dishes_.size(); }
157 inline Dish& operator[](size_t k) { return dishes_[k]; }
158
159 virtual Histo2D PosDist(int nx=30, int ny=30, double dmax=0.);
160
161protected:
162 double AddToHisto(double kx0, double ky0, double x, double y, double w, bool fgfh);
163
164 double lambda_, dmax_, kmax_;
165 vector<Dish> dishes_;
166 bool fgnoauto_;
167 double thetamax_, phimax_;
168 int ntet_,nphi_;
169 int nx_, ny_; // nb de bins de l'histo de reponse
170 int beamnx_, beamny_; // nb de points d'echantillonnage du beam
171
172 // Histo2D h2w_, h2cnt_;
173 QHis2D h2w_;
174 bool fgcomputedone_;
175 int mcnt_;
176 int prtlev_,prtmodulo_;
177};
178
179
180#endif
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