1 | /* ======================================================================== *\
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2 | !
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3 | ! *
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4 | ! * This file is part of MARS, the MAGIC Analysis and Reconstruction
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5 | ! * Software. It is distributed to you in the hope that it can be a useful
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6 | ! * and timesaving tool in analysing Data of imaging Cerenkov telescopes.
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7 | ! * It is distributed WITHOUT ANY WARRANTY.
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8 | ! *
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9 | ! * Permission to use, copy, modify and distribute this software and its
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10 | ! * documentation for any purpose is hereby granted without fee,
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11 | ! * provided that the above copyright notice appear in all copies and
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12 | ! * that both that copyright notice and this permission notice appear
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13 | ! * in supporting documentation. It is provided "as is" without express
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14 | ! * or implied warranty.
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15 | ! *
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16 | !
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17 | !
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18 | ! Author(s): Thomas Bretz, 4/2014 <mailto:tbretz@phys.ethz.ch>
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19 | !
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20 | ! Copyright: MAGIC Software Development, 2014
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21 | !
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22 | !
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23 | \* ======================================================================== */
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24 |
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25 | /////////////////////////////////////////////////////////////////////////////
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26 | //
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27 | // MImgCleanTime
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28 | //
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29 | // Input Containers:
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30 | // MGeomCam
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31 | // MSignalCam
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32 | //
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33 | // Output Containers:
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34 | // MSignalCam
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35 | //
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36 | /////////////////////////////////////////////////////////////////////////////
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37 | #include "MImgCleanTime.h"
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38 |
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39 | #include <TEnv.h>
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40 |
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41 | #include "MLog.h"
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42 | #include "MLogManip.h"
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43 |
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44 | #include "MParList.h"
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45 |
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46 | #include "MGeomPix.h"
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47 | #include "MGeomCam.h"
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48 |
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49 | #include "MSignalPix.h"
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50 | #include "MSignalCam.h"
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51 |
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52 | ClassImp(MImgCleanTime);
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53 |
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54 | using namespace std;
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55 |
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56 | // --------------------------------------------------------------------------
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57 | //
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58 | // Default constructor. Here you can specify the cleaning method and levels.
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59 | // If you don't specify them the 'common standard' values 3.0 and 2.5 (sigma
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60 | // above mean) are used.
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61 | // Here you can also specify how many rings around the core pixels you want
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62 | // to analyze (with the fixed lvl2). The default value for "rings" is 1.
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63 | //
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64 | MImgCleanTime::MImgCleanTime(const char *name, const char *title)
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65 | : fCam(0), fEvt(0), fMinCount(0), fMinSize(25), fDeltaT(2.5*17.5*0.1111),
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66 | fNameSignalCam("MSignalCam")
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67 | {
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68 | fName = name ? name : "MImgCleanTime";
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69 | fTitle = title ? title : "Task to perform image cleaning";
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70 | }
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71 |
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72 | // --------------------------------------------------------------------------
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73 | //
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74 | // Check if MEvtHeader exists in the Parameter list already.
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75 | // if not create one and add them to the list
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76 | //
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77 | Int_t MImgCleanTime::PreProcess (MParList *pList)
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78 | {
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79 | fCam = (MGeomCam*)pList->FindObject("MGeomCam");
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80 | if (!fCam)
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81 | {
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82 | *fLog << err << "MGeomCam not found (no geometry information available)... aborting." << endl;
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83 | return kFALSE;
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84 | }
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85 | fEvt = (MSignalCam*)pList->FindObject(fNameSignalCam, "MSignalCam");
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86 | if (!fEvt)
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87 | {
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88 | *fLog << err << fNameSignalCam << " [MSignalCam] not found... aborting." << endl;
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89 | return kFALSE;
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90 | }
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91 |
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92 | return kTRUE;
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93 | }
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94 |
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95 | Island MImgCleanTime::CalcIsland(MSignalPix &pix1, const MGeom &gpix1, const uint16_t &island1)
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96 | {
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97 | pix1.SetIdxIsland(island1);
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98 |
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99 | const Float_t time1 = pix1.GetArrivalTime();
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100 |
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101 | if (pix1.IsPixelUnmapped())
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102 | return Island(0,time1);
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103 |
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104 | Island island(pix1.GetNumPhotons(), time1);
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105 |
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106 | for (UInt_t i=0; i<gpix1.GetNumNeighbors(); i++)
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107 | {
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108 | const Int_t idx2 = gpix1.GetNeighbor(i);
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109 |
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110 | MSignalPix &pix2 = (*fEvt)[idx2];
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111 | if (pix2.IsPixelUnmapped())
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112 | continue;
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113 |
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114 | const Int_t island2 = pix2.GetIdxIsland();
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115 | if (island2>=0)
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116 | {
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117 | if (island1==island2)
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118 | continue;
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119 |
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120 | // The entries are sorted naturally, therefore
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121 | // there is no need to check the whole array
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122 | const auto it = fContacts.rbegin();
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123 | if (it==fContacts.rend() ||
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124 | (it->first!=island1 && it->second!=island2))
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125 | fContacts.emplace_back(island1, island2);
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126 |
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127 | continue;
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128 | }
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129 |
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130 | const Float_t time2 = pix2.GetArrivalTime();
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131 | if (fabs(time2-time1)<fDeltaT) // FIXME: Scale with distance?
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132 | island += CalcIsland(pix2, (*fCam)[idx2], island1);
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133 | }
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134 |
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135 | return island;
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136 | }
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137 |
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138 | // --------------------------------------------------------------------------
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139 | //
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140 | // Cleans the image.
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141 | //
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142 | Int_t MImgCleanTime::Process()
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143 | {
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144 | // The assumption is that all mapped pixels contain valid data
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145 | const UInt_t npix = fEvt->GetNumPixels();
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146 | for (UInt_t i=0; i<npix; i++)
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147 | {
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148 | MSignalPix &pix = (*fEvt)[i];
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149 | if (!pix.IsPixelUnmapped())
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150 | pix.SetPixelUnused();
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151 | pix.SetPixelCore(kFALSE);
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152 | pix.SetIdxIsland(-1);
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153 | }
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154 |
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155 | // Contains the id of the island for each pixel
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156 | fIslands.clear();
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157 | fContacts.clear();
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158 |
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159 | // Start with island idx==0
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160 | UShort_t idx = 0;
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161 | for (UInt_t i=0; i<npix; i++)
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162 | {
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163 | MSignalPix &spix = (*fEvt)[i];
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164 |
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165 | // The following might be much more efficient and faster
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166 | // if we omit small counted and sized islands already,
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167 | // but what is the disadvantage?
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168 | if (spix.GetIdxIsland()<0)
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169 | fIslands.emplace_back(CalcIsland(spix, (*fCam)[i], idx++));
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170 | }
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171 |
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172 | fLut.resize(fIslands.size());
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173 | for (UInt_t i=0; i<fLut.size(); i++)
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174 | fLut[i] = i;
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175 |
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176 | // Unify touching islands if their arrival time ranges overlap
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177 | for (auto it=fContacts.begin(); it!=fContacts.end(); it++)
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178 | {
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179 | const uint16_t &idx1 = fLut[it->first];
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180 | const uint16_t &idx2 = fLut[it->second];
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181 | if (idx1==idx2)
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182 | continue;
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183 |
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184 | Island &I1 = fIslands[idx1];
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185 | const Island &I2 = fIslands[idx2];
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186 |
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187 | // FIXME: Put a limit on count? Put a limit on size?
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188 | // The ideal cut would be to allow that a single
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189 | // pixel still can connect two clusters
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190 | if (I1.count==1 || I2.count==1)
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191 | continue;
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192 |
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193 | if (I1.max<I2.min || I2.max<I1.min)
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194 | continue;
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195 |
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196 | // Combine both islands
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197 | I1 += I2;
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198 |
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199 | // Remove idx2 from the list
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200 | for (auto is=fLut.begin(); is!=fLut.end(); is++)
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201 | if (*is==idx2)
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202 | *is=idx1;
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203 |
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204 | // Erase entry form contact list
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205 | fContacts.erase(it);
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206 |
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207 | // Start over again
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208 | it = fContacts.begin();
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209 | }
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210 |
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211 | uint16_t num_islands = 0;
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212 | double size_main = 0;
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213 | double size_tot = 0;
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214 |
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215 | vector<bool> used(fIslands.size());
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216 | for (UInt_t i=0; i<npix; i++)
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217 | {
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218 | MSignalPix &pix = (*fEvt)[i];
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219 |
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220 | // At the end every pixel has an island assigned
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221 | const Short_t ii = fLut[pix.GetIdxIsland()];
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222 |
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223 | const Island &island = fIslands[ii];
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224 |
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225 | if (island.count<=fMinCount || island.size<=fMinSize)
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226 | continue;
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227 |
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228 | if (!used[ii])
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229 | {
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230 | used[ii] = true;
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231 | num_islands++;
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232 |
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233 | size_tot += island.size;
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234 | if (island.size>size_main)
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235 | size_main = island.size;
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236 | }
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237 |
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238 | pix.SetPixelUsed();
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239 | pix.SetPixelCore();
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240 | }
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241 |
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242 | fEvt->SetIslandInfo(num_islands, size_main, size_tot-size_main);
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243 |
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244 | return kTRUE;
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245 | }
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246 |
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247 | // --------------------------------------------------------------------------
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248 | //
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249 | Int_t MImgCleanTime::ReadEnv(const TEnv &env, TString prefix, Bool_t print)
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250 | {
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251 | Bool_t rc = kFALSE;
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252 | if (IsEnvDefined(env, prefix, "MinSize", print))
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253 | {
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254 | rc = kTRUE;
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255 | SetMinSize(GetEnvValue(env, prefix, "MinSize", fMinSize));
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256 | }
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257 | if (IsEnvDefined(env, prefix, "MinCount", print))
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258 | {
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259 | rc = kTRUE;
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260 | SetMinSize(GetEnvValue(env, prefix, "MinCount", (Int_t)fMinCount));
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261 | }
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262 | if (IsEnvDefined(env, prefix, "DeltaT", print))
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263 | {
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264 | rc = kTRUE;
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265 | SetMinSize(GetEnvValue(env, prefix, "DeltaT", fDeltaT));
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266 | }
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267 |
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268 | return rc;
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269 | }
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