1 | /* ======================================================================== *\
|
---|
2 | !
|
---|
3 | ! *
|
---|
4 | ! * This file is part of MARS, the MAGIC Analysis and Reconstruction
|
---|
5 | ! * Software. It is distributed to you in the hope that it can be a useful
|
---|
6 | ! * and timesaving tool in analysing Data of imaging Cerenkov telescopes.
|
---|
7 | ! * It is distributed WITHOUT ANY WARRANTY.
|
---|
8 | ! *
|
---|
9 | ! * Permission to use, copy, modify and distribute this software and its
|
---|
10 | ! * documentation for any purpose is hereby granted without fee,
|
---|
11 | ! * provided that the above copyright notice appear in all copies and
|
---|
12 | ! * that both that copyright notice and this permission notice appear
|
---|
13 | ! * in supporting documentation. It is provided "as is" without express
|
---|
14 | ! * or implied warranty.
|
---|
15 | ! *
|
---|
16 | !
|
---|
17 | !
|
---|
18 | ! Author(s): Thomas Bretz, 1/2004 <mailto:tbretz@astro.uni-wuerzburg.de>
|
---|
19 | ! Markus Gaug, 02/2004 <mailto:markus@ifae.es>
|
---|
20 | !
|
---|
21 | ! Copyright: MAGIC Software Development, 2000-2004
|
---|
22 | !
|
---|
23 | !
|
---|
24 | \* ======================================================================== */
|
---|
25 | /////////////////////////////////////////////////////////////////////////////
|
---|
26 | //
|
---|
27 | // MGCamDisplays
|
---|
28 | //
|
---|
29 | // Graphical interfaces to display the camera with fits and projections
|
---|
30 | //
|
---|
31 | /////////////////////////////////////////////////////////////////////////////
|
---|
32 | #include "MGCamDisplays.h"
|
---|
33 |
|
---|
34 | #include <TStyle.h>
|
---|
35 | #include <TCanvas.h>
|
---|
36 |
|
---|
37 | #include "MHCamera.h"
|
---|
38 | #include "MGeomCam.h"
|
---|
39 | #include "TPad.h"
|
---|
40 | #include "TProfile.h"
|
---|
41 | #include "TF1.h"
|
---|
42 |
|
---|
43 | #include "MStatusDisplay.h"
|
---|
44 |
|
---|
45 | ClassImp(MGCamDisplays);
|
---|
46 |
|
---|
47 | using namespace std;
|
---|
48 |
|
---|
49 | // --------------------------------------------------------------------------
|
---|
50 | //
|
---|
51 | // Default constructor.
|
---|
52 | //
|
---|
53 | MGCamDisplays::MGCamDisplays()
|
---|
54 | {
|
---|
55 | }
|
---|
56 |
|
---|
57 | // --------------------------------------------------------------------------
|
---|
58 | //
|
---|
59 | // Draw the MHCamera into the MStatusDisplay:
|
---|
60 | //
|
---|
61 | // 1) Draw it as histogram (MHCamera::DrawCopy("hist")
|
---|
62 | // 2) Draw it as a camera, with MHCamera::SetPrettyPalette() set.
|
---|
63 | // 3) If "rad" is not zero, draw its values vs. the radius from the camera center.
|
---|
64 | // (DrawRadialProfile())
|
---|
65 | // 4) Depending on the variable "fit", draw the values projection on the y-axis
|
---|
66 | // (DrawProjection()):
|
---|
67 | // 0: don't draw
|
---|
68 | // 1: Draw fit to Single Gauss (for distributions flat-fielded over the whole camera)
|
---|
69 | // 2: Draw and fit to Double Gauss (for distributions different for inner and outer pixels)
|
---|
70 | // 3: Draw and fit to Triple Gauss (for distributions with inner, outer pixels and outliers)
|
---|
71 | // 4: Draw and fit to Polynomial grade 0: (for the probability distributions)
|
---|
72 | // >4: Draw and don;t fit.
|
---|
73 | //
|
---|
74 | void MGCamDisplays::CamDraw(TCanvas &c, const Int_t x, const Int_t y, const MHCamera &cam1,
|
---|
75 | const Int_t fit, const Int_t rad)
|
---|
76 | {
|
---|
77 |
|
---|
78 | c.cd(x);
|
---|
79 | gPad->SetBorderMode(0);
|
---|
80 | gPad->SetTicks();
|
---|
81 | MHCamera *obj1=(MHCamera*)cam1.DrawCopy("hist");
|
---|
82 | obj1->SetDirectory(NULL);
|
---|
83 |
|
---|
84 | c.cd(x+y);
|
---|
85 | gPad->SetBorderMode(0);
|
---|
86 | obj1->SetPrettyPalette();
|
---|
87 | obj1->Draw();
|
---|
88 |
|
---|
89 | if (rad)
|
---|
90 | {
|
---|
91 | c.cd(x+2*y);
|
---|
92 | gPad->SetBorderMode(0);
|
---|
93 | gPad->SetTicks();
|
---|
94 | DrawRadialProfile(obj1);
|
---|
95 | }
|
---|
96 |
|
---|
97 |
|
---|
98 | if (!fit)
|
---|
99 | return;
|
---|
100 |
|
---|
101 | c.cd(rad ? x+3*y : x+2*y);
|
---|
102 | gPad->SetBorderMode(0);
|
---|
103 | gPad->SetTicks();
|
---|
104 | DrawProjection(obj1, fit);
|
---|
105 | }
|
---|
106 |
|
---|
107 | // --------------------------------------------------------------------------
|
---|
108 | //
|
---|
109 | // Draw a projection of MHCamera onto the y-axis values. Depending on the
|
---|
110 | // variable fit, the following fits are performed:
|
---|
111 | //
|
---|
112 | // 1: Single Gauss (for distributions flat-fielded over the whole camera)
|
---|
113 | // 2: Double Gauss (for distributions different for inner and outer pixels)
|
---|
114 | // 3: Triple Gauss (for distributions with inner, outer pixels and outliers)
|
---|
115 | // 4: flat (for the probability distributions)
|
---|
116 | //
|
---|
117 | // Moreover, sectors 6,1 and 2 of the camera and sectors 3,4 and 5 are
|
---|
118 | // drawn separately, for inner and outer pixels.
|
---|
119 | //
|
---|
120 | void MGCamDisplays::DrawProjection(MHCamera *obj, Int_t fit) const
|
---|
121 | {
|
---|
122 |
|
---|
123 | TH1D *obj2 = (TH1D*)obj->Projection(obj->GetName());
|
---|
124 | obj2->SetDirectory(0);
|
---|
125 | obj2->Draw();
|
---|
126 | obj2->SetBit(kCanDelete);
|
---|
127 |
|
---|
128 | if (obj->GetGeomCam().InheritsFrom("MGeomCamMagic"))
|
---|
129 | {
|
---|
130 | TArrayI s0(3);
|
---|
131 | s0[0] = 6;
|
---|
132 | s0[1] = 1;
|
---|
133 | s0[2] = 2;
|
---|
134 |
|
---|
135 | TArrayI s1(3);
|
---|
136 | s1[0] = 3;
|
---|
137 | s1[1] = 4;
|
---|
138 | s1[2] = 5;
|
---|
139 |
|
---|
140 | TArrayI inner(1);
|
---|
141 | inner[0] = 0;
|
---|
142 |
|
---|
143 | TArrayI outer(1);
|
---|
144 | outer[0] = 1;
|
---|
145 |
|
---|
146 | // Just to get the right (maximum) binning
|
---|
147 | TH1D *half[4];
|
---|
148 | half[0] = obj->ProjectionS(s0, inner, "Sector 6-1-2 Inner");
|
---|
149 | half[1] = obj->ProjectionS(s1, inner, "Sector 3-4-5 Inner");
|
---|
150 | half[2] = obj->ProjectionS(s0, outer, "Sector 6-1-2 Outer");
|
---|
151 | half[3] = obj->ProjectionS(s1, outer, "Sector 3-4-5 Outer");
|
---|
152 |
|
---|
153 | for (int i=0; i<4; i++)
|
---|
154 | {
|
---|
155 | half[i]->SetLineColor(kRed+i);
|
---|
156 | half[i]->SetDirectory(0);
|
---|
157 | half[i]->SetBit(kCanDelete);
|
---|
158 | half[i]->Draw("same");
|
---|
159 | }
|
---|
160 | }
|
---|
161 |
|
---|
162 | const Double_t min = obj2->GetBinCenter(obj2->GetXaxis()->GetFirst());
|
---|
163 | const Double_t max = obj2->GetBinCenter(obj2->GetXaxis()->GetLast());
|
---|
164 | const Double_t integ = obj2->Integral("width")/2.5;
|
---|
165 | const Double_t mean = obj2->GetMean();
|
---|
166 | const Double_t rms = obj2->GetRMS();
|
---|
167 | const Double_t width = max-min;
|
---|
168 |
|
---|
169 | const TString dgausformula = "([0]-[3])/[2]*exp(-0.5*(x-[1])*(x-[1])/[2]/[2])"
|
---|
170 | "+[3]/[5]*exp(-0.5*(x-[4])*(x-[4])/[5]/[5])";
|
---|
171 |
|
---|
172 | const TString tgausformula = "([0]-[3]-[6])/[2]*exp(-0.5*(x-[1])*(x-[1])/[2]/[2])"
|
---|
173 | "+[3]/[5]*exp(-0.5*(x-[4])*(x-[4])/[5]/[5])"
|
---|
174 | "+[6]/[8]*exp(-0.5*(x-[7])*(x-[7])/[8]/[8])";
|
---|
175 | TF1 *f=0;
|
---|
176 | switch (fit)
|
---|
177 | {
|
---|
178 | case 1:
|
---|
179 | f = new TF1("sgaus", "gaus(0)", min, max);
|
---|
180 | f->SetLineColor(kYellow);
|
---|
181 | f->SetBit(kCanDelete);
|
---|
182 | f->SetParNames("Area", "#mu", "#sigma");
|
---|
183 | f->SetParameters(integ/rms, mean, rms);
|
---|
184 | f->SetParLimits(0, 0, integ);
|
---|
185 | f->SetParLimits(1, min, max);
|
---|
186 | f->SetParLimits(2, 0, width/1.5);
|
---|
187 |
|
---|
188 | obj2->Fit(f, "QLR");
|
---|
189 | break;
|
---|
190 |
|
---|
191 | case 2:
|
---|
192 | f = new TF1("dgaus",dgausformula.Data(),min,max);
|
---|
193 | f->SetLineColor(kYellow);
|
---|
194 | f->SetBit(kCanDelete);
|
---|
195 | f->SetParNames("A_{tot}", "#mu1", "#sigma1", "A2", "#mu2", "#sigma2");
|
---|
196 | f->SetParameters(integ,(min+mean)/2.,width/4.,
|
---|
197 | integ/width/2.,(max+mean)/2.,width/4.);
|
---|
198 | // The left-sided Gauss
|
---|
199 | f->SetParLimits(0,integ-1.5 , integ+1.5);
|
---|
200 | f->SetParLimits(1,min+(width/10.), mean);
|
---|
201 | f->SetParLimits(2,0 , width/2.);
|
---|
202 | // The right-sided Gauss
|
---|
203 | f->SetParLimits(3,0 , integ);
|
---|
204 | f->SetParLimits(4,mean, max-(width/10.));
|
---|
205 | f->SetParLimits(5,0 , width/2.);
|
---|
206 | obj2->Fit(f,"QLRM");
|
---|
207 | break;
|
---|
208 |
|
---|
209 | case 3:
|
---|
210 | f = new TF1("tgaus",tgausformula.Data(),min,max);
|
---|
211 | f->SetLineColor(kYellow);
|
---|
212 | f->SetBit(kCanDelete);
|
---|
213 | f->SetParNames("A_{tot}","#mu_{1}","#sigma_{1}",
|
---|
214 | "A_{2}","#mu_{2}","#sigma_{2}",
|
---|
215 | "A_{3}","#mu_{3}","#sigma_{3}");
|
---|
216 | f->SetParameters(integ,(min+mean)/2,width/4.,
|
---|
217 | integ/width/3.,(max+mean)/2.,width/4.,
|
---|
218 | integ/width/3.,mean,width/2.);
|
---|
219 | // The left-sided Gauss
|
---|
220 | f->SetParLimits(0,integ-1.5,integ+1.5);
|
---|
221 | f->SetParLimits(1,min+(width/10.),mean);
|
---|
222 | f->SetParLimits(2,width/15.,width/2.);
|
---|
223 | // The right-sided Gauss
|
---|
224 | f->SetParLimits(3,0.,integ);
|
---|
225 | f->SetParLimits(4,mean,max-(width/10.));
|
---|
226 | f->SetParLimits(5,width/15.,width/2.);
|
---|
227 | // The Gauss describing the outliers
|
---|
228 | f->SetParLimits(6,0.,integ);
|
---|
229 | f->SetParLimits(7,min,max);
|
---|
230 | f->SetParLimits(8,width/4.,width/1.5);
|
---|
231 | obj2->Fit(f,"QLRM");
|
---|
232 | break;
|
---|
233 |
|
---|
234 | case 4:
|
---|
235 | obj2->Fit("pol0", "Q");
|
---|
236 | obj2->GetFunction("pol0")->SetLineColor(kYellow);
|
---|
237 | break;
|
---|
238 |
|
---|
239 | case 9:
|
---|
240 | break;
|
---|
241 |
|
---|
242 | default:
|
---|
243 | obj2->Fit("gaus", "Q");
|
---|
244 | obj2->GetFunction("gaus")->SetLineColor(kYellow);
|
---|
245 | break;
|
---|
246 | }
|
---|
247 | }
|
---|
248 |
|
---|
249 | // --------------------------------------------------------------------------
|
---|
250 | //
|
---|
251 | // Draw a projection of MHCamera vs. the radius from the central pixel.
|
---|
252 | //
|
---|
253 | // The inner and outer pixels are drawn separately, both fitted by a polynomial
|
---|
254 | // of grade 1.
|
---|
255 | //
|
---|
256 | void MGCamDisplays::DrawRadialProfile(MHCamera *obj) const
|
---|
257 | {
|
---|
258 |
|
---|
259 | TProfile *obj2 = (TProfile*)obj->RadialProfile(obj->GetName());
|
---|
260 | obj2->SetDirectory(0);
|
---|
261 | obj2->Draw();
|
---|
262 | obj2->SetBit(kCanDelete);
|
---|
263 |
|
---|
264 | if (obj->GetGeomCam().InheritsFrom("MGeomCamMagic"))
|
---|
265 | {
|
---|
266 |
|
---|
267 | TArrayI s0(6);
|
---|
268 | s0[0] = 1;
|
---|
269 | s0[1] = 2;
|
---|
270 | s0[2] = 3;
|
---|
271 | s0[3] = 4;
|
---|
272 | s0[4] = 5;
|
---|
273 | s0[5] = 6;
|
---|
274 |
|
---|
275 | TArrayI inner(1);
|
---|
276 | inner[0] = 0;
|
---|
277 |
|
---|
278 | TArrayI outer(1);
|
---|
279 | outer[0] = 1;
|
---|
280 |
|
---|
281 | // Just to get the right (maximum) binning
|
---|
282 | TProfile *half[2];
|
---|
283 | half[0] = obj->RadialProfileS(s0, inner,Form("%s%s",obj->GetName(),"Inner"));
|
---|
284 | half[1] = obj->RadialProfileS(s0, outer,Form("%s%s",obj->GetName(),"Outer"));
|
---|
285 |
|
---|
286 | for (Int_t i=0; i<2; i++)
|
---|
287 | {
|
---|
288 | Double_t min = obj->GetGeomCam().GetMinRadius(i);
|
---|
289 | Double_t max = obj->GetGeomCam().GetMaxRadius(i);
|
---|
290 |
|
---|
291 | half[i]->SetLineColor(kRed+i);
|
---|
292 | half[i]->SetDirectory(0);
|
---|
293 | half[i]->SetBit(kCanDelete);
|
---|
294 | half[i]->Draw("same");
|
---|
295 | half[i]->Fit("pol1","Q","",min,max);
|
---|
296 | half[i]->GetFunction("pol1")->SetLineColor(kRed+i);
|
---|
297 | half[i]->GetFunction("pol1")->SetLineWidth(1);
|
---|
298 | }
|
---|
299 | }
|
---|
300 | }
|
---|
301 |
|
---|