1 | //#---------------------------------------------------------------------------
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2 | //# SDMath.cc: A collection of single dish mathematical operations
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3 | //#---------------------------------------------------------------------------
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4 | //# Copyright (C) 2004
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5 | //# ATNF
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6 | //#
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7 | //# This program is free software; you can redistribute it and/or modify it
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8 | //# under the terms of the GNU General Public License as published by the Free
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9 | //# Software Foundation; either version 2 of the License, or (at your option)
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10 | //# any later version.
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11 | //#
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12 | //# This program is distributed in the hope that it will be useful, but
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13 | //# WITHOUT ANY WARRANTY; without even the implied warranty of
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14 | //# MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General
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15 | //# Public License for more details.
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16 | //#
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17 | //# You should have received a copy of the GNU General Public License along
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18 | //# with this program; if not, write to the Free Software Foundation, Inc.,
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19 | //# 675 Massachusetts Ave, Cambridge, MA 02139, USA.
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20 | //#
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21 | //# Correspondence concerning this software should be addressed as follows:
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22 | //# Internet email: Malte.Marquarding@csiro.au
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23 | //# Postal address: Malte Marquarding,
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24 | //# Australia Telescope National Facility,
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25 | //# P.O. Box 76,
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26 | //# Epping, NSW, 2121,
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27 | //# AUSTRALIA
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28 | //#
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29 | //# $Id:
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30 | //#---------------------------------------------------------------------------
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31 | #include <vector>
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32 |
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33 | #include <casa/aips.h>
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34 | #include <casa/BasicSL/String.h>
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35 | #include <casa/Arrays/IPosition.h>
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36 | #include <casa/Arrays/Array.h>
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37 | #include <casa/Arrays/ArrayIter.h>
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38 | #include <casa/Arrays/VectorIter.h>
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39 | #include <casa/Arrays/ArrayMath.h>
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40 | #include <casa/Arrays/ArrayLogical.h>
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41 | #include <casa/Arrays/MaskedArray.h>
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42 | #include <casa/Arrays/MaskArrMath.h>
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43 | #include <casa/Arrays/MaskArrLogi.h>
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44 | #include <casa/BasicMath/Math.h>
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45 | #include <casa/Containers/Block.h>
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46 | #include <casa/Exceptions.h>
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47 | #include <casa/Quanta/Quantum.h>
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48 | #include <casa/Quanta/Unit.h>
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49 | #include <casa/Quanta/MVEpoch.h>
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50 | #include <casa/Quanta/QC.h>
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51 | #include <casa/Utilities/Assert.h>
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52 |
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53 | #include <coordinates/Coordinates/SpectralCoordinate.h>
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54 | #include <coordinates/Coordinates/CoordinateSystem.h>
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55 | #include <coordinates/Coordinates/CoordinateUtil.h>
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56 | #include <coordinates/Coordinates/VelocityAligner.h>
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57 |
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58 | #include <lattices/Lattices/LatticeUtilities.h>
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59 | #include <lattices/Lattices/RebinLattice.h>
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60 |
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61 | #include <measures/Measures/MEpoch.h>
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62 | #include <measures/Measures/MDirection.h>
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63 | #include <measures/Measures/MPosition.h>
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64 |
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65 | #include <scimath/Mathematics/VectorKernel.h>
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66 | #include <scimath/Mathematics/Convolver.h>
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67 | #include <scimath/Mathematics/InterpolateArray1D.h>
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68 | #include <scimath/Functionals/Polynomial.h>
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69 |
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70 | #include <tables/Tables/Table.h>
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71 | #include <tables/Tables/ScalarColumn.h>
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72 | #include <tables/Tables/ArrayColumn.h>
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73 | #include <tables/Tables/ReadAsciiTable.h>
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74 |
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75 | #include "MathUtils.h"
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76 | #include "SDDefs.h"
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77 | #include "SDContainer.h"
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78 | #include "SDMemTable.h"
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79 |
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80 | #include "SDMath.h"
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81 |
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82 | using namespace casa;
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83 | using namespace asap;
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84 |
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85 |
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86 | SDMath::SDMath()
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87 | {;}
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88 |
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89 | SDMath::SDMath(const SDMath& other)
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90 | {
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91 |
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92 | // No state
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93 |
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94 | }
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95 |
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96 | SDMath& SDMath::operator=(const SDMath& other)
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97 | {
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98 | if (this != &other) {
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99 | // No state
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100 | }
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101 | return *this;
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102 | }
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103 |
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104 | SDMath::~SDMath()
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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 | SDMemTable* SDMath::velocityAlignment (const SDMemTable& in) const
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110 | {
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111 |
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112 | // Get velocity/frame info
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113 |
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114 | std::vector<std::string> info = in.getCoordInfo();
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115 | String velUnit(info[0]);
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116 | if (velUnit.length()==0) {
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117 | throw(AipsError("You have not set a velocity abcissa unit - use function set_unit"));
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118 | } else {
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119 | Unit velUnitU(velUnit);
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120 | if (velUnitU!=Unit(String("m/s"))) {
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121 | throw(AipsError("Specified abcissa unit is not consistent with km/s - use function set_unit"));
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122 | }
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123 | }
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124 | //
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125 | String dopplerStr(info[2]);
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126 | String velSystemStr(info[1]);
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127 | String velBaseSystemStr(info[3]);
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128 | if (velBaseSystemStr==velSystemStr) {
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129 | throw(AipsError("You have not set a velocity frame different from the initial - use function set_frame"));
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130 | }
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131 |
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132 | cerr << "unit, frame, doppler, baseframe = " << velUnit << ", " << velSystemStr << ", " <<
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133 | dopplerStr << ", " << velBaseSystemStr << endl;
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134 | //
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135 | MFrequency::Types velSystem;
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136 | MFrequency::getType(velSystem, velSystemStr);
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137 | MDoppler::Types doppler;
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138 | MDoppler::getType(doppler, dopplerStr);
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139 |
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140 | // Get Header
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141 |
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142 | SDHeader sh = in.getSDHeader();
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143 | const uInt nChan = sh.nchan;
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144 | const uInt nRows = in.nRow();
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145 |
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146 | // Get Table reference
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147 |
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148 | const Table& tabIn = in.table();
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149 |
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150 | // Get Columns from Table
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151 |
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152 | ROScalarColumn<Double> mjdCol(tabIn, "TIME");
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153 | ROScalarColumn<String> srcCol(tabIn, "SRCNAME");
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154 | ROArrayColumn<uInt> fqIDCol(tabIn, "FREQID");
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155 | //
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156 | Vector<Double> times = mjdCol.getColumn();
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157 | Vector<String> srcNames = srcCol.getColumn();
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158 | Vector<uInt> freqID;
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159 |
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160 | // Generate Source table
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161 |
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162 | Vector<String> srcTab;
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163 | Vector<uInt> srcIdx, firstRow;
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164 | generateSourceTable (srcTab, srcIdx, firstRow, srcNames);
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165 | const uInt nSrcTab = srcTab.nelements();
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166 | /*
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167 | cerr << "source table = " << srcTab << endl;
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168 | cerr << "source idx = " << srcIdx << endl;
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169 | cerr << "first row = " << firstRow << endl;
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170 | */
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171 |
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172 | // Set reference Epoch to time of first row
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173 |
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174 | MEpoch::Ref timeRef = MEpoch::Ref(in.getTimeReference());
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175 | Unit DAY(String("d"));
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176 | Quantum<Double> tQ(times[0], DAY);
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177 | MVEpoch mve(tQ);
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178 | MEpoch refTime(mve, timeRef);
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179 |
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180 | // Set Reference Position
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181 |
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182 | Vector<Double> antPos = sh.antennaposition;
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183 | MVPosition mvpos(antPos[0], antPos[1], antPos[2]);
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184 | MPosition refPos(mvpos);
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185 |
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186 | // Get Frequency Table
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187 |
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188 | SDFrequencyTable fTab = in.getSDFreqTable();
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189 | const uInt nFreqIDs = fTab.length();
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190 |
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191 | // Create VelocityAligner Block. One VA for each possible
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192 | // source/freqID combination
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193 |
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194 | PtrBlock<VelocityAligner<Float>* > vA(nFreqIDs*nSrcTab);
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195 | for (uInt fqID=0; fqID<nFreqIDs; fqID++) {
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196 | SpectralCoordinate sC = in.getCoordinate(fqID);
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197 | for (uInt iSrc=0; iSrc<nSrcTab; iSrc++) {
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198 | MDirection refDir = in.getDirection(firstRow[iSrc]);
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199 | uInt idx = (iSrc*nFreqIDs) + fqID;
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200 | vA[idx] = new VelocityAligner<Float>(sC, nChan, refTime, refDir, refPos,
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201 | velUnit, doppler, velSystem);
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202 | }
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203 | }
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204 |
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205 | // New output Table
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206 |
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207 | SDMemTable* pTabOut = new SDMemTable(in,True);
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208 |
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209 | // Loop over rows in Table
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210 |
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211 | const IPosition polChanAxes(2, asap::PolAxis, asap::ChanAxis);
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212 | VelocityAligner<Float>::Method method = VelocityAligner<Float>::LINEAR;
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213 | Bool extrapolate=False;
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214 | Bool useCachedAbcissa = False;
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215 | Bool first = True;
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216 | Vector<Float> yOut;
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217 | Vector<Bool> maskOut;
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218 | //
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219 | for (uInt iRow=0; iRow<nRows; ++iRow) {
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220 |
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221 | // Get EPoch
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222 |
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223 | Quantum<Double> tQ2(times[iRow],DAY);
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224 | MVEpoch mv2(tQ2);
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225 | MEpoch epoch(mv2, timeRef);
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226 |
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227 | // Get FreqID vector. One freqID per IF
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228 |
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229 | fqIDCol.get(iRow, freqID);
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230 |
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231 | // Get copy of data
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232 |
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233 | const MaskedArray<Float>& mArrIn(in.rowAsMaskedArray(iRow));
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234 | Array<Float> values = mArrIn.getArray();
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235 | Array<Bool> mask = mArrIn.getMask();
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236 |
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237 | // cerr << "values in = " << values(IPosition(4,0,0,0,0),IPosition(4,0,0,0,9)) << endl;
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238 |
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239 | // For each row, the Velocity abcissa will be the same regardless
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240 | // of polarization. For all other axes (IF and BEAM) the abcissa
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241 | // will change. So we iterate through the data by pol-chan planes
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242 | // to mimimize the work. At this point, I think the Direction
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243 | // is stored as the same for each beam. DOn't know where the
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244 | // offsets are or what to do about them right now. For now
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245 | // all beams get same position and velocoity abcissa.
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246 |
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247 | ArrayIterator<Float> itValuesPlane(values, polChanAxes);
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248 | ArrayIterator<Bool> itMaskPlane(mask, polChanAxes);
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249 | while (!itValuesPlane.pastEnd()) {
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250 |
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251 | // Find the IF index and then the VA PtrBlock index
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252 |
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253 | const IPosition& pos = itValuesPlane.pos();
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254 | uInt ifIdx = pos(asap::IFAxis);
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255 | uInt vaIdx = (srcIdx[iRow]*nFreqIDs) + freqID[ifIdx];
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256 | //cerr << "VA idx = " << vaIdx << endl;
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257 | //
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258 | VectorIterator<Float> itValuesVec(itValuesPlane.array(), 1);
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259 | VectorIterator<Bool> itMaskVec(itMaskPlane.array(), 1);
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260 | //
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261 | first = True;
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262 | useCachedAbcissa=False;
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263 | while (!itValuesVec.pastEnd()) {
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264 | Bool ok = vA[vaIdx]->align (yOut, maskOut, itValuesVec.vector(),
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265 | itMaskVec.vector(), epoch, useCachedAbcissa,
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266 | method, extrapolate);
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267 | itValuesVec.vector() = yOut;
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268 | itMaskVec.vector() = maskOut;
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269 | //
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270 | itValuesVec.next();
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271 | itMaskVec.next();
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272 | //
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273 | if (first) {
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274 | useCachedAbcissa = True;
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275 | first = False;
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276 | }
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277 | }
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278 | //
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279 | itValuesPlane.next();
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280 | itMaskPlane.next();
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281 | }
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282 |
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283 | // cerr << "values out = " << values(IPosition(4,0,0,0,0),IPosition(4,0,0,0,9)) << endl;
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284 |
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285 | // Create and put back
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286 |
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287 | SDContainer sc = in.getSDContainer(iRow);
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288 | putDataInSDC(sc, values, mask);
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289 | //
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290 | pTabOut->putSDContainer(sc);
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291 | }
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292 |
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293 | // Clean up PointerBlock
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294 |
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295 | for (uInt i=0; i<vA.nelements(); i++) delete vA[i];
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296 | //
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297 | return pTabOut;
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298 | }
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299 |
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300 |
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301 | CountedPtr<SDMemTable> SDMath::average(const Block<CountedPtr<SDMemTable> >& in,
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302 | const Vector<Bool>& mask, Bool scanAv,
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303 | const String& weightStr, Bool alignVelocity) const
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304 | //
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305 | // Weighted averaging of spectra from one or more Tables.
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306 | //
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307 | {
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308 |
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309 | // Convert weight type
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310 |
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311 | WeightType wtType = NONE;
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312 | convertWeightString(wtType, weightStr);
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313 |
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314 | // Create output Table by cloning from the first table
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315 |
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316 | SDMemTable* pTabOut = new SDMemTable(*in[0],True);
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317 |
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318 | // Setup
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319 |
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320 | IPosition shp = in[0]->rowAsMaskedArray(0).shape(); // Must not change
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321 | Array<Float> arr(shp);
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322 | Array<Bool> barr(shp);
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323 | const Bool useMask = (mask.nelements() == shp(asap::ChanAxis));
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324 |
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325 | // Columns from Tables
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326 |
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327 | ROArrayColumn<Float> tSysCol;
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328 | ROScalarColumn<Double> mjdCol;
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329 | ROScalarColumn<String> srcNameCol;
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330 | ROScalarColumn<Double> intCol;
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331 | ROArrayColumn<uInt> fqIDCol;
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332 |
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333 | // Create accumulation MaskedArray. We accumulate for each channel,if,pol,beam
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334 | // Note that the mask of the accumulation array will ALWAYS remain ALL True.
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335 | // The MA is only used so that when data which is masked Bad is added to it,
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336 | // that data does not contribute.
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337 |
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338 | Array<Float> zero(shp);
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339 | zero=0.0;
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340 | Array<Bool> good(shp);
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341 | good = True;
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342 | MaskedArray<Float> sum(zero,good);
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343 |
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344 | // Counter arrays
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345 |
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346 | Array<Float> nPts(shp); // Number of points
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347 | nPts = 0.0;
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348 | Array<Float> nInc(shp); // Increment
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349 | nInc = 1.0;
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350 |
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351 | // Create accumulation Array for variance. We accumulate for
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352 | // each if,pol,beam, but average over channel. So we need
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353 | // a shape with one less axis dropping channels.
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354 |
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355 | const uInt nAxesSub = shp.nelements() - 1;
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356 | IPosition shp2(nAxesSub);
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357 | for (uInt i=0,j=0; i<(nAxesSub+1); i++) {
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358 | if (i!=asap::ChanAxis) {
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359 | shp2(j) = shp(i);
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360 | j++;
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361 | }
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362 | }
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363 | Array<Float> sumSq(shp2);
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364 | sumSq = 0.0;
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365 | IPosition pos2(nAxesSub,0); // For indexing
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366 |
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367 | // Time-related accumulators
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368 |
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369 | Double time;
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370 | Double timeSum = 0.0;
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371 | Double intSum = 0.0;
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372 | Double interval = 0.0;
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373 |
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374 | // To get the right shape for the Tsys accumulator we need to
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375 | // access a column from the first table. The shape of this
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376 | // array must not change
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377 |
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378 | Array<Float> tSysSum;
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379 | {
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380 | const Table& tabIn = in[0]->table();
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381 | tSysCol.attach(tabIn,"TSYS");
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382 | tSysSum.resize(tSysCol.shape(0));
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383 | }
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384 | tSysSum =0.0;
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385 | Array<Float> tSys;
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386 |
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387 | // Scan and row tracking
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388 |
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389 | Int oldScanID = 0;
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390 | Int outScanID = 0;
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391 | Int scanID = 0;
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392 | Int rowStart = 0;
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393 | Int nAccum = 0;
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394 | Int tableStart = 0;
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395 |
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396 | // Source and FreqID
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397 |
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398 | String sourceName, oldSourceName, sourceNameStart;
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399 | Vector<uInt> freqID, freqIDStart, oldFreqID;
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400 |
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401 | // Loop over tables
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402 |
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403 | Float fac = 1.0;
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404 | const uInt nTables = in.nelements();
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405 | for (uInt iTab=0; iTab<nTables; iTab++) {
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406 |
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407 | // Should check that the frequency tables don't change if doing VelocityAlignment
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408 |
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409 | // Attach columns to Table
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410 |
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411 | const Table& tabIn = in[iTab]->table();
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412 | tSysCol.attach(tabIn, "TSYS");
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413 | mjdCol.attach(tabIn, "TIME");
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414 | srcNameCol.attach(tabIn, "SRCNAME");
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415 | intCol.attach(tabIn, "INTERVAL");
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416 | fqIDCol.attach(tabIn, "FREQID");
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417 |
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418 | // Loop over rows in Table
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419 |
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420 | const uInt nRows = in[iTab]->nRow();
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421 | for (uInt iRow=0; iRow<nRows; iRow++) {
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422 |
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423 | // Check conformance
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424 |
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425 | IPosition shp2 = in[iTab]->rowAsMaskedArray(iRow).shape();
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426 | if (!shp.isEqual(shp2)) {
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427 | throw (AipsError("Shapes for all rows must be the same"));
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428 | }
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429 |
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430 | // If we are not doing scan averages, make checks for source and
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431 | // frequency setup and warn if averaging across them
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432 |
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433 | // Get copy of Scan Container for this row
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434 |
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435 | SDContainer sc = in[iTab]->getSDContainer(iRow);
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436 | scanID = sc.scanid;
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437 |
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438 | // Get quantities from columns
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439 |
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440 | srcNameCol.getScalar(iRow, sourceName);
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441 | mjdCol.get(iRow, time);
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442 | tSysCol.get(iRow, tSys);
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443 | intCol.get(iRow, interval);
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444 | fqIDCol.get(iRow, freqID);
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445 |
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446 | // Initialize first source and freqID
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447 |
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448 | if (iRow==0 && iTab==0) {
|
---|
449 | sourceNameStart = sourceName;
|
---|
450 | freqIDStart = freqID;
|
---|
451 | }
|
---|
452 |
|
---|
453 | // If we are doing scan averages, see if we are at the end of an
|
---|
454 | // accumulation period (scan). We must check soutce names too,
|
---|
455 | // since we might have two tables with one scan each but different
|
---|
456 | // source names; we shouldn't average different sources together
|
---|
457 |
|
---|
458 | if (scanAv && ( (scanID != oldScanID) ||
|
---|
459 | (iRow==0 && iTab>0 && sourceName!=oldSourceName))) {
|
---|
460 |
|
---|
461 | // Normalize data in 'sum' accumulation array according to weighting scheme
|
---|
462 |
|
---|
463 | normalize(sum, sumSq, nPts, wtType, asap::ChanAxis, nAxesSub);
|
---|
464 |
|
---|
465 | // Fill scan container. The source and freqID come from the
|
---|
466 | // first row of the first table that went into this average (
|
---|
467 | // should be the same for all rows in the scan average)
|
---|
468 |
|
---|
469 | Float nR(nAccum);
|
---|
470 | fillSDC(sc, sum.getMask(), sum.getArray(), tSysSum/nR, outScanID,
|
---|
471 | timeSum/nR, intSum, sourceNameStart, freqIDStart);
|
---|
472 |
|
---|
473 | // Write container out to Table
|
---|
474 |
|
---|
475 | pTabOut->putSDContainer(sc);
|
---|
476 |
|
---|
477 | // Reset accumulators
|
---|
478 |
|
---|
479 | sum = 0.0;
|
---|
480 | sumSq = 0.0;
|
---|
481 | nAccum = 0;
|
---|
482 | //
|
---|
483 | tSysSum =0.0;
|
---|
484 | timeSum = 0.0;
|
---|
485 | intSum = 0.0;
|
---|
486 | nPts = 0.0;
|
---|
487 |
|
---|
488 | // Increment
|
---|
489 |
|
---|
490 | rowStart = iRow; // First row for next accumulation
|
---|
491 | tableStart = iTab; // First table for next accumulation
|
---|
492 | sourceNameStart = sourceName; // First source name for next accumulation
|
---|
493 | freqIDStart = freqID; // First FreqID for next accumulation
|
---|
494 | //
|
---|
495 | oldScanID = scanID;
|
---|
496 | outScanID += 1; // Scan ID for next accumulation period
|
---|
497 | }
|
---|
498 |
|
---|
499 | // Accumulate
|
---|
500 |
|
---|
501 | accumulate(timeSum, intSum, nAccum, sum, sumSq, nPts, tSysSum,
|
---|
502 | tSys, nInc, mask, time, interval, in, iTab, iRow, asap::ChanAxis,
|
---|
503 | nAxesSub, useMask, wtType);
|
---|
504 | //
|
---|
505 | oldSourceName = sourceName;
|
---|
506 | oldFreqID = freqID;
|
---|
507 | }
|
---|
508 | }
|
---|
509 |
|
---|
510 | // OK at this point we have accumulation data which is either
|
---|
511 | // - accumulated from all tables into one row
|
---|
512 | // or
|
---|
513 | // - accumulated from the last scan average
|
---|
514 | //
|
---|
515 | // Normalize data in 'sum' accumulation array according to weighting scheme
|
---|
516 | normalize(sum, sumSq, nPts, wtType, asap::ChanAxis, nAxesSub);
|
---|
517 |
|
---|
518 | // Create and fill container. The container we clone will be from
|
---|
519 | // the last Table and the first row that went into the current
|
---|
520 | // accumulation. It probably doesn't matter that much really...
|
---|
521 |
|
---|
522 | Float nR(nAccum);
|
---|
523 | SDContainer sc = in[tableStart]->getSDContainer(rowStart);
|
---|
524 | fillSDC(sc, sum.getMask(), sum.getArray(), tSysSum/nR, outScanID,
|
---|
525 | timeSum/nR, intSum, sourceNameStart, freqIDStart);
|
---|
526 | pTabOut->putSDContainer(sc);
|
---|
527 | //
|
---|
528 | return CountedPtr<SDMemTable>(pTabOut);
|
---|
529 | }
|
---|
530 |
|
---|
531 |
|
---|
532 |
|
---|
533 | CountedPtr<SDMemTable> SDMath::binaryOperate (const CountedPtr<SDMemTable>& left,
|
---|
534 | const CountedPtr<SDMemTable>& right,
|
---|
535 | const String& op, Bool preserve) const
|
---|
536 | {
|
---|
537 |
|
---|
538 | // Check operator
|
---|
539 |
|
---|
540 | String op2(op);
|
---|
541 | op2.upcase();
|
---|
542 | uInt what = 0;
|
---|
543 | if (op2=="ADD") {
|
---|
544 | what = 0;
|
---|
545 | } else if (op2=="SUB") {
|
---|
546 | what = 1;
|
---|
547 | } else if (op2=="MUL") {
|
---|
548 | what = 2;
|
---|
549 | } else if (op2=="DIV") {
|
---|
550 | what = 3;
|
---|
551 | } else if (op2=="QUOTIENT") {
|
---|
552 | what = 4;
|
---|
553 | } else {
|
---|
554 | throw( AipsError("Unrecognized operation"));
|
---|
555 | }
|
---|
556 |
|
---|
557 | // Check rows
|
---|
558 |
|
---|
559 | const uInt nRowLeft = left->nRow();
|
---|
560 | const uInt nRowRight = right->nRow();
|
---|
561 | Bool ok = (nRowRight==1&&nRowLeft>0) ||
|
---|
562 | (nRowRight>=1&&nRowLeft==nRowRight);
|
---|
563 | if (!ok) {
|
---|
564 | throw (AipsError("The right Scan Table can have one row or the same number of rows as the left Scan Table"));
|
---|
565 | }
|
---|
566 |
|
---|
567 | // Input Tables
|
---|
568 |
|
---|
569 | const Table& tLeft = left->table();
|
---|
570 | const Table& tRight = right->table();
|
---|
571 |
|
---|
572 | // TSys columns
|
---|
573 |
|
---|
574 | ROArrayColumn<Float> tSysLeft(tLeft, "TSYS");
|
---|
575 | ROArrayColumn<Float> tSysRight(tRight, "TSYS");
|
---|
576 |
|
---|
577 | // First row for right
|
---|
578 |
|
---|
579 | Array<Float> tSysLeftArr, tSysRightArr;
|
---|
580 | tSysRight.get(0, tSysRightArr);
|
---|
581 | MaskedArray<Float>* pMRight = new MaskedArray<Float>(right->rowAsMaskedArray(0));
|
---|
582 | IPosition shpRight = pMRight->shape();
|
---|
583 |
|
---|
584 | // Output Table cloned from left
|
---|
585 |
|
---|
586 | SDMemTable* pTabOut = new SDMemTable(*left, True);
|
---|
587 |
|
---|
588 | // Loop over rows
|
---|
589 |
|
---|
590 | for (uInt i=0; i<nRowLeft; i++) {
|
---|
591 |
|
---|
592 | // Get data
|
---|
593 |
|
---|
594 | MaskedArray<Float> mLeft(left->rowAsMaskedArray(i));
|
---|
595 | IPosition shpLeft = mLeft.shape();
|
---|
596 | tSysLeft.get(i, tSysLeftArr);
|
---|
597 | //
|
---|
598 | if (nRowRight>1) {
|
---|
599 | delete pMRight;
|
---|
600 | pMRight = new MaskedArray<Float>(right->rowAsMaskedArray(i));
|
---|
601 | shpRight = pMRight->shape();
|
---|
602 | tSysRight.get(i, tSysRightArr);
|
---|
603 | }
|
---|
604 | //
|
---|
605 | if (!shpRight.isEqual(shpLeft)) {
|
---|
606 | throw(AipsError("left and right scan tables are not conformant"));
|
---|
607 | }
|
---|
608 | if (!tSysRightArr.shape().isEqual(tSysRightArr.shape())) {
|
---|
609 | throw(AipsError("left and right Tsys data are not conformant"));
|
---|
610 | }
|
---|
611 | if (!shpRight.isEqual(tSysRightArr.shape())) {
|
---|
612 | throw(AipsError("left and right scan tables are not conformant"));
|
---|
613 | }
|
---|
614 |
|
---|
615 | // Make container
|
---|
616 |
|
---|
617 | SDContainer sc = left->getSDContainer(i);
|
---|
618 |
|
---|
619 | // Operate on data and TSys
|
---|
620 |
|
---|
621 | if (what==0) {
|
---|
622 | MaskedArray<Float> tmp = mLeft + *pMRight;
|
---|
623 | putDataInSDC(sc, tmp.getArray(), tmp.getMask());
|
---|
624 | sc.putTsys(tSysLeftArr+tSysRightArr);
|
---|
625 | } else if (what==1) {
|
---|
626 | MaskedArray<Float> tmp = mLeft - *pMRight;
|
---|
627 | putDataInSDC(sc, tmp.getArray(), tmp.getMask());
|
---|
628 | sc.putTsys(tSysLeftArr-tSysRightArr);
|
---|
629 | } else if (what==2) {
|
---|
630 | MaskedArray<Float> tmp = mLeft * *pMRight;
|
---|
631 | putDataInSDC(sc, tmp.getArray(), tmp.getMask());
|
---|
632 | sc.putTsys(tSysLeftArr*tSysRightArr);
|
---|
633 | } else if (what==3) {
|
---|
634 | MaskedArray<Float> tmp = mLeft / *pMRight;
|
---|
635 | putDataInSDC(sc, tmp.getArray(), tmp.getMask());
|
---|
636 | sc.putTsys(tSysLeftArr/tSysRightArr);
|
---|
637 | } else if (what==4) {
|
---|
638 | if (preserve) {
|
---|
639 | MaskedArray<Float> tmp = (tSysRightArr * mLeft / *pMRight) - tSysRightArr;
|
---|
640 | putDataInSDC(sc, tmp.getArray(), tmp.getMask());
|
---|
641 | } else {
|
---|
642 | MaskedArray<Float> tmp = (tSysRightArr * mLeft / *pMRight) - tSysLeftArr;
|
---|
643 | putDataInSDC(sc, tmp.getArray(), tmp.getMask());
|
---|
644 | }
|
---|
645 | sc.putTsys(tSysRightArr);
|
---|
646 | }
|
---|
647 |
|
---|
648 | // Put new row in output Table
|
---|
649 |
|
---|
650 | pTabOut->putSDContainer(sc);
|
---|
651 | }
|
---|
652 | if (pMRight) delete pMRight;
|
---|
653 | //
|
---|
654 | return CountedPtr<SDMemTable>(pTabOut);
|
---|
655 | }
|
---|
656 |
|
---|
657 |
|
---|
658 |
|
---|
659 | std::vector<float> SDMath::statistic(const CountedPtr<SDMemTable>& in,
|
---|
660 | const Vector<Bool>& mask,
|
---|
661 | const String& which, Int row) const
|
---|
662 | //
|
---|
663 | // Perhaps iteration over pol/beam/if should be in here
|
---|
664 | // and inside the nrow iteration ?
|
---|
665 | //
|
---|
666 | {
|
---|
667 | const uInt nRow = in->nRow();
|
---|
668 |
|
---|
669 | // Specify cursor location
|
---|
670 |
|
---|
671 | IPosition start, end;
|
---|
672 | getCursorLocation(start, end, *in);
|
---|
673 |
|
---|
674 | // Loop over rows
|
---|
675 |
|
---|
676 | const uInt nEl = mask.nelements();
|
---|
677 | uInt iStart = 0;
|
---|
678 | uInt iEnd = in->nRow()-1;
|
---|
679 | //
|
---|
680 | if (row>=0) {
|
---|
681 | iStart = row;
|
---|
682 | iEnd = row;
|
---|
683 | }
|
---|
684 | //
|
---|
685 | std::vector<float> result(iEnd-iStart+1);
|
---|
686 | for (uInt ii=iStart; ii <= iEnd; ++ii) {
|
---|
687 |
|
---|
688 | // Get row and deconstruct
|
---|
689 |
|
---|
690 | MaskedArray<Float> marr(in->rowAsMaskedArray(ii));
|
---|
691 | Array<Float> arr = marr.getArray();
|
---|
692 | Array<Bool> barr = marr.getMask();
|
---|
693 |
|
---|
694 | // Access desired piece of data
|
---|
695 |
|
---|
696 | Array<Float> v((arr(start,end)).nonDegenerate());
|
---|
697 | Array<Bool> m((barr(start,end)).nonDegenerate());
|
---|
698 |
|
---|
699 | // Apply OTF mask
|
---|
700 |
|
---|
701 | MaskedArray<Float> tmp;
|
---|
702 | if (m.nelements()==nEl) {
|
---|
703 | tmp.setData(v,m&&mask);
|
---|
704 | } else {
|
---|
705 | tmp.setData(v,m);
|
---|
706 | }
|
---|
707 |
|
---|
708 | // Get statistic
|
---|
709 |
|
---|
710 | result[ii-iStart] = mathutil::statistics(which, tmp);
|
---|
711 | }
|
---|
712 | //
|
---|
713 | return result;
|
---|
714 | }
|
---|
715 |
|
---|
716 |
|
---|
717 | SDMemTable* SDMath::bin(const SDMemTable& in, Int width) const
|
---|
718 | {
|
---|
719 | SDHeader sh = in.getSDHeader();
|
---|
720 | SDMemTable* pTabOut = new SDMemTable(in, True);
|
---|
721 |
|
---|
722 | // Bin up SpectralCoordinates
|
---|
723 |
|
---|
724 | IPosition factors(1);
|
---|
725 | factors(0) = width;
|
---|
726 | for (uInt j=0; j<in.nCoordinates(); ++j) {
|
---|
727 | CoordinateSystem cSys;
|
---|
728 | cSys.addCoordinate(in.getCoordinate(j));
|
---|
729 | CoordinateSystem cSysBin =
|
---|
730 | CoordinateUtil::makeBinnedCoordinateSystem(factors, cSys, False);
|
---|
731 | //
|
---|
732 | SpectralCoordinate sCBin = cSysBin.spectralCoordinate(0);
|
---|
733 | pTabOut->setCoordinate(sCBin, j);
|
---|
734 | }
|
---|
735 |
|
---|
736 | // Use RebinLattice to find shape
|
---|
737 |
|
---|
738 | IPosition shapeIn(1,sh.nchan);
|
---|
739 | IPosition shapeOut = RebinLattice<Float>::rebinShape(shapeIn, factors);
|
---|
740 | sh.nchan = shapeOut(0);
|
---|
741 | pTabOut->putSDHeader(sh);
|
---|
742 |
|
---|
743 |
|
---|
744 | // Loop over rows and bin along channel axis
|
---|
745 |
|
---|
746 | for (uInt i=0; i < in.nRow(); ++i) {
|
---|
747 | SDContainer sc = in.getSDContainer(i);
|
---|
748 | //
|
---|
749 | Array<Float> tSys(sc.getTsys()); // Get it out before sc changes shape
|
---|
750 |
|
---|
751 | // Bin up spectrum
|
---|
752 |
|
---|
753 | MaskedArray<Float> marr(in.rowAsMaskedArray(i));
|
---|
754 | MaskedArray<Float> marrout;
|
---|
755 | LatticeUtilities::bin(marrout, marr, asap::ChanAxis, width);
|
---|
756 |
|
---|
757 | // Put back the binned data and flags
|
---|
758 |
|
---|
759 | IPosition ip2 = marrout.shape();
|
---|
760 | sc.resize(ip2);
|
---|
761 | //
|
---|
762 | putDataInSDC(sc, marrout.getArray(), marrout.getMask());
|
---|
763 |
|
---|
764 | // Bin up Tsys.
|
---|
765 |
|
---|
766 | Array<Bool> allGood(tSys.shape(),True);
|
---|
767 | MaskedArray<Float> tSysIn(tSys, allGood, True);
|
---|
768 | //
|
---|
769 | MaskedArray<Float> tSysOut;
|
---|
770 | LatticeUtilities::bin(tSysOut, tSysIn, asap::ChanAxis, width);
|
---|
771 | sc.putTsys(tSysOut.getArray());
|
---|
772 | //
|
---|
773 | pTabOut->putSDContainer(sc);
|
---|
774 | }
|
---|
775 | return pTabOut;
|
---|
776 | }
|
---|
777 |
|
---|
778 | SDMemTable* SDMath::unaryOperate(const SDMemTable& in, Float val, Bool doAll,
|
---|
779 | uInt what) const
|
---|
780 | //
|
---|
781 | // what = 0 Multiply
|
---|
782 | // 1 Add
|
---|
783 | {
|
---|
784 | SDMemTable* pOut = new SDMemTable(in,False);
|
---|
785 | const Table& tOut = pOut->table();
|
---|
786 | ArrayColumn<Float> spec(tOut,"SPECTRA");
|
---|
787 | //
|
---|
788 | if (doAll) {
|
---|
789 | for (uInt i=0; i < tOut.nrow(); i++) {
|
---|
790 |
|
---|
791 | // Get
|
---|
792 |
|
---|
793 | MaskedArray<Float> marr(pOut->rowAsMaskedArray(i));
|
---|
794 |
|
---|
795 | // Operate
|
---|
796 |
|
---|
797 | if (what==0) {
|
---|
798 | marr *= val;
|
---|
799 | } else if (what==1) {
|
---|
800 | marr += val;
|
---|
801 | }
|
---|
802 |
|
---|
803 | // Put
|
---|
804 |
|
---|
805 | spec.put(i, marr.getArray());
|
---|
806 | }
|
---|
807 | } else {
|
---|
808 |
|
---|
809 | // Get cursor location
|
---|
810 |
|
---|
811 | IPosition start, end;
|
---|
812 | getCursorLocation(start, end, in);
|
---|
813 | //
|
---|
814 | for (uInt i=0; i < tOut.nrow(); i++) {
|
---|
815 |
|
---|
816 | // Get
|
---|
817 |
|
---|
818 | MaskedArray<Float> dataIn(pOut->rowAsMaskedArray(i));
|
---|
819 |
|
---|
820 | // Modify. More work than we would like to deal with the mask
|
---|
821 |
|
---|
822 | Array<Float>& values = dataIn.getRWArray();
|
---|
823 | Array<Bool> mask(dataIn.getMask());
|
---|
824 | //
|
---|
825 | Array<Float> values2 = values(start,end);
|
---|
826 | Array<Bool> mask2 = mask(start,end);
|
---|
827 | MaskedArray<Float> t(values2,mask2);
|
---|
828 | if (what==0) {
|
---|
829 | t *= val;
|
---|
830 | } else if (what==1) {
|
---|
831 | t += val;
|
---|
832 | }
|
---|
833 | values(start, end) = t.getArray(); // Write back into 'dataIn'
|
---|
834 |
|
---|
835 | // Put
|
---|
836 | spec.put(i, dataIn.getArray());
|
---|
837 | }
|
---|
838 | }
|
---|
839 | //
|
---|
840 | return pOut;
|
---|
841 | }
|
---|
842 |
|
---|
843 |
|
---|
844 |
|
---|
845 | SDMemTable* SDMath::averagePol(const SDMemTable& in, const Vector<Bool>& mask) const
|
---|
846 | //
|
---|
847 | // Average all polarizations together, weighted by variance
|
---|
848 | //
|
---|
849 | {
|
---|
850 | // WeightType wtType = NONE;
|
---|
851 | // convertWeightString(wtType, weight);
|
---|
852 |
|
---|
853 | const uInt nRows = in.nRow();
|
---|
854 |
|
---|
855 | // Create output Table and reshape number of polarizations
|
---|
856 |
|
---|
857 | Bool clear=True;
|
---|
858 | SDMemTable* pTabOut = new SDMemTable(in, clear);
|
---|
859 | SDHeader header = pTabOut->getSDHeader();
|
---|
860 | header.npol = 1;
|
---|
861 | pTabOut->putSDHeader(header);
|
---|
862 |
|
---|
863 | // Shape of input and output data
|
---|
864 |
|
---|
865 | const IPosition& shapeIn = in.rowAsMaskedArray(0u, False).shape();
|
---|
866 | IPosition shapeOut(shapeIn);
|
---|
867 | shapeOut(asap::PolAxis) = 1; // Average all polarizations
|
---|
868 | //
|
---|
869 | const uInt nChan = shapeIn(asap::ChanAxis);
|
---|
870 | const IPosition vecShapeOut(4,1,1,1,nChan); // A multi-dim form of a Vector shape
|
---|
871 | IPosition start(4), end(4);
|
---|
872 |
|
---|
873 | // Output arrays
|
---|
874 |
|
---|
875 | Array<Float> outData(shapeOut, 0.0);
|
---|
876 | Array<Bool> outMask(shapeOut, True);
|
---|
877 | const IPosition axes(2, asap::PolAxis, asap::ChanAxis); // pol-channel plane
|
---|
878 | //
|
---|
879 | const Bool useMask = (mask.nelements() == shapeIn(asap::ChanAxis));
|
---|
880 |
|
---|
881 | // Loop over rows
|
---|
882 |
|
---|
883 | for (uInt iRow=0; iRow<nRows; iRow++) {
|
---|
884 |
|
---|
885 | // Get data for this row
|
---|
886 |
|
---|
887 | MaskedArray<Float> marr(in.rowAsMaskedArray(iRow));
|
---|
888 | Array<Float>& arr = marr.getRWArray();
|
---|
889 | const Array<Bool>& barr = marr.getMask();
|
---|
890 |
|
---|
891 | // Make iterators to iterate by pol-channel planes
|
---|
892 |
|
---|
893 | ReadOnlyArrayIterator<Float> itDataPlane(arr, axes);
|
---|
894 | ReadOnlyArrayIterator<Bool> itMaskPlane(barr, axes);
|
---|
895 |
|
---|
896 | // Accumulations
|
---|
897 |
|
---|
898 | Float fac = 1.0;
|
---|
899 | Vector<Float> vecSum(nChan,0.0);
|
---|
900 |
|
---|
901 | // Iterate through data by pol-channel planes
|
---|
902 |
|
---|
903 | while (!itDataPlane.pastEnd()) {
|
---|
904 |
|
---|
905 | // Iterate through plane by polarization and accumulate Vectors
|
---|
906 |
|
---|
907 | Vector<Float> t1(nChan); t1 = 0.0;
|
---|
908 | Vector<Bool> t2(nChan); t2 = True;
|
---|
909 | MaskedArray<Float> vecSum(t1,t2);
|
---|
910 | Float varSum = 0.0;
|
---|
911 | {
|
---|
912 | ReadOnlyVectorIterator<Float> itDataVec(itDataPlane.array(), 1);
|
---|
913 | ReadOnlyVectorIterator<Bool> itMaskVec(itMaskPlane.array(), 1);
|
---|
914 | while (!itDataVec.pastEnd()) {
|
---|
915 |
|
---|
916 | // Create MA of data & mask (optionally including OTF mask) and get variance
|
---|
917 |
|
---|
918 | if (useMask) {
|
---|
919 | const MaskedArray<Float> spec(itDataVec.vector(),mask&&itMaskVec.vector());
|
---|
920 | fac = 1.0 / variance(spec);
|
---|
921 | } else {
|
---|
922 | const MaskedArray<Float> spec(itDataVec.vector(),itMaskVec.vector());
|
---|
923 | fac = 1.0 / variance(spec);
|
---|
924 | }
|
---|
925 |
|
---|
926 | // Normalize spectrum (without OTF mask) and accumulate
|
---|
927 |
|
---|
928 | const MaskedArray<Float> spec(fac*itDataVec.vector(), itMaskVec.vector());
|
---|
929 | vecSum += spec;
|
---|
930 | varSum += fac;
|
---|
931 |
|
---|
932 | // Next
|
---|
933 |
|
---|
934 | itDataVec.next();
|
---|
935 | itMaskVec.next();
|
---|
936 | }
|
---|
937 | }
|
---|
938 |
|
---|
939 | // Normalize summed spectrum
|
---|
940 |
|
---|
941 | vecSum /= varSum;
|
---|
942 |
|
---|
943 | // FInd position in input data array. We are iterating by pol-channel
|
---|
944 | // plane so all that will change is beam and IF and that's what we want.
|
---|
945 |
|
---|
946 | IPosition pos = itDataPlane.pos();
|
---|
947 |
|
---|
948 | // Write out data. This is a bit messy. We have to reform the Vector
|
---|
949 | // accumulator into an Array of shape (1,1,1,nChan)
|
---|
950 |
|
---|
951 | start = pos;
|
---|
952 | end = pos;
|
---|
953 | end(asap::ChanAxis) = nChan-1;
|
---|
954 | outData(start,end) = vecSum.getArray().reform(vecShapeOut);
|
---|
955 | outMask(start,end) = vecSum.getMask().reform(vecShapeOut);
|
---|
956 |
|
---|
957 | // Step to next beam/IF combination
|
---|
958 |
|
---|
959 | itDataPlane.next();
|
---|
960 | itMaskPlane.next();
|
---|
961 | }
|
---|
962 |
|
---|
963 | // Generate output container and write it to output table
|
---|
964 |
|
---|
965 | SDContainer sc = in.getSDContainer();
|
---|
966 | sc.resize(shapeOut);
|
---|
967 | //
|
---|
968 | putDataInSDC(sc, outData, outMask);
|
---|
969 | pTabOut->putSDContainer(sc);
|
---|
970 | }
|
---|
971 | //
|
---|
972 | return pTabOut;
|
---|
973 | }
|
---|
974 |
|
---|
975 |
|
---|
976 | SDMemTable* SDMath::smooth(const SDMemTable& in,
|
---|
977 | const casa::String& kernelType,
|
---|
978 | casa::Float width, Bool doAll) const
|
---|
979 | {
|
---|
980 |
|
---|
981 | // Number of channels
|
---|
982 |
|
---|
983 | const uInt chanAxis = asap::ChanAxis; // Spectral axis
|
---|
984 | SDHeader sh = in.getSDHeader();
|
---|
985 | const uInt nChan = sh.nchan;
|
---|
986 |
|
---|
987 | // Generate Kernel
|
---|
988 |
|
---|
989 | VectorKernel::KernelTypes type = VectorKernel::toKernelType(kernelType);
|
---|
990 | Vector<Float> kernel = VectorKernel::make(type, width, nChan, True, False);
|
---|
991 |
|
---|
992 | // Generate Convolver
|
---|
993 |
|
---|
994 | IPosition shape(1,nChan);
|
---|
995 | Convolver<Float> conv(kernel, shape);
|
---|
996 |
|
---|
997 | // New Table
|
---|
998 |
|
---|
999 | SDMemTable* pTabOut = new SDMemTable(in,True);
|
---|
1000 |
|
---|
1001 | // Get cursor location
|
---|
1002 |
|
---|
1003 | IPosition start, end;
|
---|
1004 | getCursorLocation(start, end, in);
|
---|
1005 | //
|
---|
1006 | IPosition shapeOut(4,1);
|
---|
1007 |
|
---|
1008 | // Output Vectors
|
---|
1009 |
|
---|
1010 | Vector<Float> valuesOut(nChan);
|
---|
1011 | Vector<Bool> maskOut(nChan);
|
---|
1012 |
|
---|
1013 | // Loop over rows in Table
|
---|
1014 |
|
---|
1015 | for (uInt ri=0; ri < in.nRow(); ++ri) {
|
---|
1016 |
|
---|
1017 | // Get copy of data
|
---|
1018 |
|
---|
1019 | const MaskedArray<Float>& dataIn(in.rowAsMaskedArray(ri));
|
---|
1020 | AlwaysAssert(dataIn.shape()(asap::ChanAxis)==nChan, AipsError);
|
---|
1021 | //
|
---|
1022 | Array<Float> valuesIn = dataIn.getArray();
|
---|
1023 | Array<Bool> maskIn = dataIn.getMask();
|
---|
1024 |
|
---|
1025 | // Branch depending on whether we smooth all locations or just
|
---|
1026 | // those pointed at by the current selection cursor
|
---|
1027 |
|
---|
1028 | if (doAll) {
|
---|
1029 | uInt axis = asap::ChanAxis;
|
---|
1030 | VectorIterator<Float> itValues(valuesIn, axis);
|
---|
1031 | VectorIterator<Bool> itMask(maskIn, axis);
|
---|
1032 | while (!itValues.pastEnd()) {
|
---|
1033 |
|
---|
1034 | // Smooth
|
---|
1035 | if (kernelType==VectorKernel::HANNING) {
|
---|
1036 | mathutil::hanning(valuesOut, maskOut, itValues.vector(), itMask.vector());
|
---|
1037 | itMask.vector() = maskOut;
|
---|
1038 | } else {
|
---|
1039 | mathutil::replaceMaskByZero(itValues.vector(), itMask.vector());
|
---|
1040 | conv.linearConv(valuesOut, itValues.vector());
|
---|
1041 | }
|
---|
1042 | //
|
---|
1043 | itValues.vector() = valuesOut;
|
---|
1044 | //
|
---|
1045 | itValues.next();
|
---|
1046 | itMask.next();
|
---|
1047 | }
|
---|
1048 | } else {
|
---|
1049 |
|
---|
1050 | // Set multi-dim Vector shape
|
---|
1051 |
|
---|
1052 | shapeOut(asap::ChanAxis) = valuesIn.shape()(chanAxis);
|
---|
1053 |
|
---|
1054 | // Stuff about with shapes so that we don't have conformance run-time errors
|
---|
1055 |
|
---|
1056 | Vector<Float> valuesIn2 = valuesIn(start,end).nonDegenerate();
|
---|
1057 | Vector<Bool> maskIn2 = maskIn(start,end).nonDegenerate();
|
---|
1058 |
|
---|
1059 | // Smooth
|
---|
1060 |
|
---|
1061 | if (kernelType==VectorKernel::HANNING) {
|
---|
1062 | mathutil::hanning(valuesOut, maskOut, valuesIn2, maskIn2);
|
---|
1063 | maskIn(start,end) = maskOut.reform(shapeOut);
|
---|
1064 | } else {
|
---|
1065 | mathutil::replaceMaskByZero(valuesIn2, maskIn2);
|
---|
1066 | conv.linearConv(valuesOut, valuesIn2);
|
---|
1067 | }
|
---|
1068 | //
|
---|
1069 | valuesIn(start,end) = valuesOut.reform(shapeOut);
|
---|
1070 | }
|
---|
1071 |
|
---|
1072 | // Create and put back
|
---|
1073 |
|
---|
1074 | SDContainer sc = in.getSDContainer(ri);
|
---|
1075 | putDataInSDC(sc, valuesIn, maskIn);
|
---|
1076 | //
|
---|
1077 | pTabOut->putSDContainer(sc);
|
---|
1078 | }
|
---|
1079 | //
|
---|
1080 | return pTabOut;
|
---|
1081 | }
|
---|
1082 |
|
---|
1083 |
|
---|
1084 |
|
---|
1085 | SDMemTable* SDMath::convertFlux (const SDMemTable& in, Float a, Float eta, Bool doAll) const
|
---|
1086 | //
|
---|
1087 | // As it is, this function could be implemented with 'simpleOperate'
|
---|
1088 | // However, I anticipate that eventually we will look the conversion
|
---|
1089 | // values up in a Table and apply them in a frequency dependent way,
|
---|
1090 | // so I have implemented it fully here
|
---|
1091 | //
|
---|
1092 | {
|
---|
1093 | SDHeader sh = in.getSDHeader();
|
---|
1094 | SDMemTable* pTabOut = new SDMemTable(in, True);
|
---|
1095 |
|
---|
1096 | // FInd out how to convert values into Jy and K (e.g. units might be mJy or mK)
|
---|
1097 | // Also automatically find out what we are converting to according to the
|
---|
1098 | // flux unit
|
---|
1099 |
|
---|
1100 | Unit fluxUnit(sh.fluxunit);
|
---|
1101 | Unit K(String("K"));
|
---|
1102 | Unit JY(String("Jy"));
|
---|
1103 | //
|
---|
1104 | Bool toKelvin = True;
|
---|
1105 | Double inFac = 1.0;
|
---|
1106 | if (fluxUnit==JY) {
|
---|
1107 | cerr << "Converting to K" << endl;
|
---|
1108 | //
|
---|
1109 | Quantum<Double> t(1.0,fluxUnit);
|
---|
1110 | Quantum<Double> t2 = t.get(JY);
|
---|
1111 | inFac = (t2 / t).getValue();
|
---|
1112 | //
|
---|
1113 | toKelvin = True;
|
---|
1114 | sh.fluxunit = "K";
|
---|
1115 | } else if (fluxUnit==K) {
|
---|
1116 | cerr << "Converting to Jy" << endl;
|
---|
1117 | //
|
---|
1118 | Quantum<Double> t(1.0,fluxUnit);
|
---|
1119 | Quantum<Double> t2 = t.get(K);
|
---|
1120 | inFac = (t2 / t).getValue();
|
---|
1121 | //
|
---|
1122 | toKelvin = False;
|
---|
1123 | sh.fluxunit = "Jy";
|
---|
1124 | } else {
|
---|
1125 | throw(AipsError("Unrecognized brightness units in Table - must be consistent with Jy or K"));
|
---|
1126 | }
|
---|
1127 | pTabOut->putSDHeader(sh);
|
---|
1128 |
|
---|
1129 | // Compute conversion factor. 'a' and 'eta' are really frequency, time and
|
---|
1130 | // telescope dependent and should be looked// up in a table
|
---|
1131 |
|
---|
1132 | Float factor = 2.0 * inFac * 1.0e-7 * 1.0e26 *
|
---|
1133 | QC::k.getValue(Unit(String("erg/K"))) / a / eta;
|
---|
1134 | if (toKelvin) {
|
---|
1135 | factor = 1.0 / factor;
|
---|
1136 | }
|
---|
1137 | cerr << "Applying conversion factor = " << factor << endl;
|
---|
1138 |
|
---|
1139 | // For operations only on specified cursor location
|
---|
1140 |
|
---|
1141 | IPosition start, end;
|
---|
1142 | getCursorLocation(start, end, in);
|
---|
1143 |
|
---|
1144 | // Loop over rows and apply factor to spectra
|
---|
1145 |
|
---|
1146 | const uInt axis = asap::ChanAxis;
|
---|
1147 | for (uInt i=0; i < in.nRow(); ++i) {
|
---|
1148 |
|
---|
1149 | // Get data
|
---|
1150 |
|
---|
1151 | MaskedArray<Float> dataIn(in.rowAsMaskedArray(i));
|
---|
1152 | Array<Float>& valuesIn = dataIn.getRWArray(); // writable reference
|
---|
1153 | const Array<Bool>& maskIn = dataIn.getMask();
|
---|
1154 |
|
---|
1155 | // Need to apply correct conversion factor (frequency and time dependent)
|
---|
1156 | // which should be sourced from a Table. For now we just apply the given
|
---|
1157 | // factor to everything
|
---|
1158 |
|
---|
1159 | if (doAll) {
|
---|
1160 | VectorIterator<Float> itValues(valuesIn, asap::ChanAxis);
|
---|
1161 | while (!itValues.pastEnd()) {
|
---|
1162 | itValues.vector() *= factor; // Writes back into dataIn
|
---|
1163 | //
|
---|
1164 | itValues.next();
|
---|
1165 | }
|
---|
1166 | } else {
|
---|
1167 | Array<Float> valuesIn2 = valuesIn(start,end);
|
---|
1168 | valuesIn2 *= factor;
|
---|
1169 | valuesIn(start,end) = valuesIn2;
|
---|
1170 | }
|
---|
1171 |
|
---|
1172 | // Write out
|
---|
1173 |
|
---|
1174 | SDContainer sc = in.getSDContainer(i);
|
---|
1175 | putDataInSDC(sc, valuesIn, maskIn);
|
---|
1176 | //
|
---|
1177 | pTabOut->putSDContainer(sc);
|
---|
1178 | }
|
---|
1179 | return pTabOut;
|
---|
1180 | }
|
---|
1181 |
|
---|
1182 |
|
---|
1183 |
|
---|
1184 | SDMemTable* SDMath::gainElevation (const SDMemTable& in, const Vector<Float>& coeffs,
|
---|
1185 | const String& fileName,
|
---|
1186 | const String& methodStr, Bool doAll) const
|
---|
1187 | {
|
---|
1188 |
|
---|
1189 | // Get header and clone output table
|
---|
1190 |
|
---|
1191 | SDHeader sh = in.getSDHeader();
|
---|
1192 | SDMemTable* pTabOut = new SDMemTable(in, True);
|
---|
1193 |
|
---|
1194 | // Get elevation data from SDMemTable and convert to degrees
|
---|
1195 |
|
---|
1196 | const Table& tab = in.table();
|
---|
1197 | ROScalarColumn<Float> elev(tab, "ELEVATION");
|
---|
1198 | Vector<Float> x = elev.getColumn();
|
---|
1199 | x *= Float(180 / C::pi);
|
---|
1200 | //
|
---|
1201 | const uInt nC = coeffs.nelements();
|
---|
1202 | if (fileName.length()>0 && nC>0) {
|
---|
1203 | throw(AipsError("You must choose either polynomial coefficients or an ascii file, not both"));
|
---|
1204 | }
|
---|
1205 |
|
---|
1206 | // Correct
|
---|
1207 |
|
---|
1208 | if (nC>0 || fileName.length()==0) {
|
---|
1209 |
|
---|
1210 | // Find instrument
|
---|
1211 |
|
---|
1212 | Bool throwIt = True;
|
---|
1213 | Instrument inst = SDMemTable::convertInstrument (sh.antennaname, throwIt);
|
---|
1214 |
|
---|
1215 | // Set polynomial
|
---|
1216 |
|
---|
1217 | Polynomial<Float>* pPoly = 0;
|
---|
1218 | Vector<Float> coeff;
|
---|
1219 | String msg;
|
---|
1220 | if (nC>0) {
|
---|
1221 | pPoly = new Polynomial<Float>(nC);
|
---|
1222 | coeff = coeffs;
|
---|
1223 | msg = String("user");
|
---|
1224 | } else {
|
---|
1225 | if (inst==PKSMULTIBEAM) {
|
---|
1226 | } else if (inst==PKSSINGLEBEAM) {
|
---|
1227 | } else if (inst==TIDBINBILLA) {
|
---|
1228 | pPoly = new Polynomial<Float>(3);
|
---|
1229 | coeff.resize(3);
|
---|
1230 | coeff(0) = 3.58788e-1;
|
---|
1231 | coeff(1) = 2.87243e-2;
|
---|
1232 | coeff(2) = -3.219093e-4;
|
---|
1233 | } else if (inst==MOPRA) {
|
---|
1234 | }
|
---|
1235 | msg = String("built in");
|
---|
1236 | }
|
---|
1237 | //
|
---|
1238 | if (coeff.nelements()>0) {
|
---|
1239 | pPoly->setCoefficients(coeff);
|
---|
1240 | } else {
|
---|
1241 | throw(AipsError("There is no known gain-el polynomial known for this instrument"));
|
---|
1242 | }
|
---|
1243 | //
|
---|
1244 | cerr << "Making polynomial correction with " << msg << " coefficients" << endl;
|
---|
1245 | const uInt nRow = in.nRow();
|
---|
1246 | Vector<Float> factor(nRow);
|
---|
1247 | for (uInt i=0; i<nRow; i++) {
|
---|
1248 | factor[i] = (*pPoly)(x[i]);
|
---|
1249 | }
|
---|
1250 | delete pPoly;
|
---|
1251 | //
|
---|
1252 | correctFromVector (pTabOut, in, doAll, factor);
|
---|
1253 | } else {
|
---|
1254 |
|
---|
1255 | // Indicate which columns to read from ascii file
|
---|
1256 |
|
---|
1257 | String col0("ELEVATION");
|
---|
1258 | String col1("FACTOR");
|
---|
1259 |
|
---|
1260 | // Read and correct
|
---|
1261 |
|
---|
1262 | cerr << "Making correction from ascii Table" << endl;
|
---|
1263 | correctFromAsciiTable (pTabOut, in, fileName, col0, col1,
|
---|
1264 | methodStr, doAll, x);
|
---|
1265 | }
|
---|
1266 | //
|
---|
1267 | return pTabOut;
|
---|
1268 | }
|
---|
1269 |
|
---|
1270 |
|
---|
1271 |
|
---|
1272 | SDMemTable* SDMath::opacity (const SDMemTable& in, Float tau, Bool doAll) const
|
---|
1273 | {
|
---|
1274 |
|
---|
1275 | // Get header and clone output table
|
---|
1276 |
|
---|
1277 | SDHeader sh = in.getSDHeader();
|
---|
1278 | SDMemTable* pTabOut = new SDMemTable(in, True);
|
---|
1279 |
|
---|
1280 | // Get elevation data from SDMemTable and convert to degrees
|
---|
1281 |
|
---|
1282 | const Table& tab = in.table();
|
---|
1283 | ROScalarColumn<Float> elev(tab, "ELEVATION");
|
---|
1284 | Vector<Float> zDist = elev.getColumn();
|
---|
1285 | zDist = Float(C::pi_2) - zDist;
|
---|
1286 |
|
---|
1287 | // Generate correction factor
|
---|
1288 |
|
---|
1289 | const uInt nRow = in.nRow();
|
---|
1290 | Vector<Float> factor(nRow);
|
---|
1291 | Vector<Float> factor2(nRow);
|
---|
1292 | for (uInt i=0; i<nRow; i++) {
|
---|
1293 | factor[i] = exp(tau)/cos(zDist[i]);
|
---|
1294 | }
|
---|
1295 |
|
---|
1296 | // Correct
|
---|
1297 |
|
---|
1298 | correctFromVector (pTabOut, in, doAll, factor);
|
---|
1299 | //
|
---|
1300 | return pTabOut;
|
---|
1301 | }
|
---|
1302 |
|
---|
1303 |
|
---|
1304 |
|
---|
1305 |
|
---|
1306 | // 'private' functions
|
---|
1307 |
|
---|
1308 | void SDMath::fillSDC(SDContainer& sc,
|
---|
1309 | const Array<Bool>& mask,
|
---|
1310 | const Array<Float>& data,
|
---|
1311 | const Array<Float>& tSys,
|
---|
1312 | Int scanID, Double timeStamp,
|
---|
1313 | Double interval, const String& sourceName,
|
---|
1314 | const Vector<uInt>& freqID) const
|
---|
1315 | {
|
---|
1316 | // Data and mask
|
---|
1317 |
|
---|
1318 | putDataInSDC(sc, data, mask);
|
---|
1319 |
|
---|
1320 | // TSys
|
---|
1321 |
|
---|
1322 | sc.putTsys(tSys);
|
---|
1323 |
|
---|
1324 | // Time things
|
---|
1325 |
|
---|
1326 | sc.timestamp = timeStamp;
|
---|
1327 | sc.interval = interval;
|
---|
1328 | sc.scanid = scanID;
|
---|
1329 | //
|
---|
1330 | sc.sourcename = sourceName;
|
---|
1331 | sc.putFreqMap(freqID);
|
---|
1332 | }
|
---|
1333 |
|
---|
1334 | void SDMath::normalize(MaskedArray<Float>& sum,
|
---|
1335 | const Array<Float>& sumSq,
|
---|
1336 | const Array<Float>& nPts,
|
---|
1337 | WeightType wtType, Int axis,
|
---|
1338 | Int nAxesSub) const
|
---|
1339 | {
|
---|
1340 | IPosition pos2(nAxesSub,0);
|
---|
1341 | //
|
---|
1342 | if (wtType==NONE) {
|
---|
1343 |
|
---|
1344 | // We just average by the number of points accumulated.
|
---|
1345 | // We need to make a MA out of nPts so that no divide by
|
---|
1346 | // zeros occur
|
---|
1347 |
|
---|
1348 | MaskedArray<Float> t(nPts, (nPts>Float(0.0)));
|
---|
1349 | sum /= t;
|
---|
1350 | } else if (wtType==VAR) {
|
---|
1351 |
|
---|
1352 | // Normalize each spectrum by sum(1/var) where the variance
|
---|
1353 | // is worked out for each spectrum
|
---|
1354 |
|
---|
1355 | Array<Float>& data = sum.getRWArray();
|
---|
1356 | VectorIterator<Float> itData(data, axis);
|
---|
1357 | while (!itData.pastEnd()) {
|
---|
1358 | pos2 = itData.pos().getFirst(nAxesSub);
|
---|
1359 | itData.vector() /= sumSq(pos2);
|
---|
1360 | itData.next();
|
---|
1361 | }
|
---|
1362 | } else if (wtType==TSYS) {
|
---|
1363 | }
|
---|
1364 | }
|
---|
1365 |
|
---|
1366 |
|
---|
1367 | void SDMath::accumulate(Double& timeSum, Double& intSum, Int& nAccum,
|
---|
1368 | MaskedArray<Float>& sum, Array<Float>& sumSq,
|
---|
1369 | Array<Float>& nPts, Array<Float>& tSysSum,
|
---|
1370 | const Array<Float>& tSys, const Array<Float>& nInc,
|
---|
1371 | const Vector<Bool>& mask, Double time, Double interval,
|
---|
1372 | const Block<CountedPtr<SDMemTable> >& in,
|
---|
1373 | uInt iTab, uInt iRow, uInt axis,
|
---|
1374 | uInt nAxesSub, Bool useMask,
|
---|
1375 | WeightType wtType) const
|
---|
1376 | {
|
---|
1377 |
|
---|
1378 | // Get data
|
---|
1379 |
|
---|
1380 | MaskedArray<Float> dataIn(in[iTab]->rowAsMaskedArray(iRow));
|
---|
1381 | Array<Float>& valuesIn = dataIn.getRWArray(); // writable reference
|
---|
1382 | const Array<Bool>& maskIn = dataIn.getMask(); // RO reference
|
---|
1383 | //
|
---|
1384 | if (wtType==NONE) {
|
---|
1385 | const MaskedArray<Float> n(nInc,dataIn.getMask());
|
---|
1386 | nPts += n; // Only accumulates where mask==T
|
---|
1387 | } else if (wtType==VAR) {
|
---|
1388 |
|
---|
1389 | // We are going to average the data, weighted by the noise for each pol, beam and IF.
|
---|
1390 | // So therefore we need to iterate through by spectrum (axis 3)
|
---|
1391 |
|
---|
1392 | VectorIterator<Float> itData(valuesIn, axis);
|
---|
1393 | ReadOnlyVectorIterator<Bool> itMask(maskIn, axis);
|
---|
1394 | Float fac = 1.0;
|
---|
1395 | IPosition pos(nAxesSub,0);
|
---|
1396 | //
|
---|
1397 | while (!itData.pastEnd()) {
|
---|
1398 |
|
---|
1399 | // Make MaskedArray of Vector, optionally apply OTF mask, and find scaling factor
|
---|
1400 |
|
---|
1401 | if (useMask) {
|
---|
1402 | MaskedArray<Float> tmp(itData.vector(),mask&&itMask.vector());
|
---|
1403 | fac = 1.0/variance(tmp);
|
---|
1404 | } else {
|
---|
1405 | MaskedArray<Float> tmp(itData.vector(),itMask.vector());
|
---|
1406 | fac = 1.0/variance(tmp);
|
---|
1407 | }
|
---|
1408 |
|
---|
1409 | // Scale data
|
---|
1410 |
|
---|
1411 | itData.vector() *= fac; // Writes back into 'dataIn'
|
---|
1412 | //
|
---|
1413 | // Accumulate variance per if/pol/beam averaged over spectrum
|
---|
1414 | // This method to get pos2 from itData.pos() is only valid
|
---|
1415 | // because the spectral axis is the last one (so we can just
|
---|
1416 | // copy the first nAXesSub positions out)
|
---|
1417 |
|
---|
1418 | pos = itData.pos().getFirst(nAxesSub);
|
---|
1419 | sumSq(pos) += fac;
|
---|
1420 | //
|
---|
1421 | itData.next();
|
---|
1422 | itMask.next();
|
---|
1423 | }
|
---|
1424 | } else if (wtType==TSYS) {
|
---|
1425 | }
|
---|
1426 |
|
---|
1427 | // Accumulate sum of (possibly scaled) data
|
---|
1428 |
|
---|
1429 | sum += dataIn;
|
---|
1430 |
|
---|
1431 | // Accumulate Tsys, time, and interval
|
---|
1432 |
|
---|
1433 | tSysSum += tSys;
|
---|
1434 | timeSum += time;
|
---|
1435 | intSum += interval;
|
---|
1436 | nAccum += 1;
|
---|
1437 | }
|
---|
1438 |
|
---|
1439 |
|
---|
1440 |
|
---|
1441 |
|
---|
1442 | void SDMath::getCursorLocation(IPosition& start, IPosition& end,
|
---|
1443 | const SDMemTable& in) const
|
---|
1444 | {
|
---|
1445 | const uInt nDim = 4;
|
---|
1446 | const uInt i = in.getBeam();
|
---|
1447 | const uInt j = in.getIF();
|
---|
1448 | const uInt k = in.getPol();
|
---|
1449 | const uInt n = in.nChan();
|
---|
1450 | //
|
---|
1451 | start.resize(nDim);
|
---|
1452 | start(0) = i;
|
---|
1453 | start(1) = j;
|
---|
1454 | start(2) = k;
|
---|
1455 | start(3) = 0;
|
---|
1456 | //
|
---|
1457 | end.resize(nDim);
|
---|
1458 | end(0) = i;
|
---|
1459 | end(1) = j;
|
---|
1460 | end(2) = k;
|
---|
1461 | end(3) = n-1;
|
---|
1462 | }
|
---|
1463 |
|
---|
1464 |
|
---|
1465 | void SDMath::convertWeightString(WeightType& wtType, const String& weightStr) const
|
---|
1466 | {
|
---|
1467 | String tStr(weightStr);
|
---|
1468 | tStr.upcase();
|
---|
1469 | if (tStr.contains(String("NONE"))) {
|
---|
1470 | wtType = NONE;
|
---|
1471 | } else if (tStr.contains(String("VAR"))) {
|
---|
1472 | wtType = VAR;
|
---|
1473 | } else if (tStr.contains(String("TSYS"))) {
|
---|
1474 | wtType = TSYS;
|
---|
1475 | throw(AipsError("T_sys weighting not yet implemented"));
|
---|
1476 | } else {
|
---|
1477 | throw(AipsError("Unrecognized weighting type"));
|
---|
1478 | }
|
---|
1479 | }
|
---|
1480 |
|
---|
1481 | void SDMath::convertInterpString(Int& type, const String& interp) const
|
---|
1482 | {
|
---|
1483 | String tStr(interp);
|
---|
1484 | tStr.upcase();
|
---|
1485 | if (tStr.contains(String("NEAR"))) {
|
---|
1486 | type = InterpolateArray1D<Float,Float>::nearestNeighbour;
|
---|
1487 | } else if (tStr.contains(String("LIN"))) {
|
---|
1488 | type = InterpolateArray1D<Float,Float>::linear;
|
---|
1489 | } else if (tStr.contains(String("CUB"))) {
|
---|
1490 | type = InterpolateArray1D<Float,Float>::cubic;
|
---|
1491 | } else if (tStr.contains(String("SPL"))) {
|
---|
1492 | type = InterpolateArray1D<Float,Float>::spline;
|
---|
1493 | } else {
|
---|
1494 | throw(AipsError("Unrecognized interpolation type"));
|
---|
1495 | }
|
---|
1496 | }
|
---|
1497 |
|
---|
1498 | void SDMath::putDataInSDC(SDContainer& sc, const Array<Float>& data,
|
---|
1499 | const Array<Bool>& mask) const
|
---|
1500 | {
|
---|
1501 | sc.putSpectrum(data);
|
---|
1502 | //
|
---|
1503 | Array<uChar> outflags(data.shape());
|
---|
1504 | convertArray(outflags,!mask);
|
---|
1505 | sc.putFlags(outflags);
|
---|
1506 | }
|
---|
1507 |
|
---|
1508 | Table SDMath::readAsciiFile (const String& fileName) const
|
---|
1509 | {
|
---|
1510 | String formatString;
|
---|
1511 | Table tbl = readAsciiTable (formatString, Table::Memory, fileName, "", "", False);
|
---|
1512 | return tbl;
|
---|
1513 | }
|
---|
1514 |
|
---|
1515 |
|
---|
1516 |
|
---|
1517 | void SDMath::correctFromAsciiTable(SDMemTable* pTabOut,
|
---|
1518 | const SDMemTable& in, const String& fileName,
|
---|
1519 | const String& col0, const String& col1,
|
---|
1520 | const String& methodStr, Bool doAll,
|
---|
1521 | const Vector<Float>& xOut) const
|
---|
1522 | {
|
---|
1523 |
|
---|
1524 | // Read gain-elevation ascii file data into a Table.
|
---|
1525 |
|
---|
1526 | Table geTable = readAsciiFile (fileName);
|
---|
1527 | //
|
---|
1528 | correctFromTable (pTabOut, in, geTable, col0, col1, methodStr, doAll, xOut);
|
---|
1529 | }
|
---|
1530 |
|
---|
1531 | void SDMath::correctFromTable(SDMemTable* pTabOut, const SDMemTable& in,
|
---|
1532 | const Table& tTable, const String& col0,
|
---|
1533 | const String& col1,
|
---|
1534 | const String& methodStr, Bool doAll,
|
---|
1535 | const Vector<Float>& xOut) const
|
---|
1536 | {
|
---|
1537 |
|
---|
1538 | // Get data from Table
|
---|
1539 |
|
---|
1540 | ROScalarColumn<Float> geElCol(tTable, col0);
|
---|
1541 | ROScalarColumn<Float> geFacCol(tTable, col1);
|
---|
1542 | Vector<Float> xIn = geElCol.getColumn();
|
---|
1543 | Vector<Float> yIn = geFacCol.getColumn();
|
---|
1544 | Vector<Bool> maskIn(xIn.nelements(),True);
|
---|
1545 |
|
---|
1546 | // Interpolate (and extrapolate) with desired method
|
---|
1547 |
|
---|
1548 | Int method = 0;
|
---|
1549 | convertInterpString(method, methodStr);
|
---|
1550 | //
|
---|
1551 | Vector<Float> yOut;
|
---|
1552 | Vector<Bool> maskOut;
|
---|
1553 | InterpolateArray1D<Float,Float>::interpolate(yOut, maskOut, xOut,
|
---|
1554 | xIn, yIn, maskIn, method,
|
---|
1555 | True, True);
|
---|
1556 | // Apply
|
---|
1557 |
|
---|
1558 | correctFromVector (pTabOut, in, doAll, yOut);
|
---|
1559 | }
|
---|
1560 |
|
---|
1561 |
|
---|
1562 | void SDMath::correctFromVector (SDMemTable* pTabOut, const SDMemTable& in,
|
---|
1563 | Bool doAll, const Vector<Float>& factor) const
|
---|
1564 | {
|
---|
1565 | // For operations only on specified cursor location
|
---|
1566 |
|
---|
1567 | IPosition start, end;
|
---|
1568 | getCursorLocation(start, end, in);
|
---|
1569 |
|
---|
1570 | // Loop over rows and interpolate correction factor
|
---|
1571 |
|
---|
1572 | const uInt axis = asap::ChanAxis;
|
---|
1573 | for (uInt i=0; i < in.nRow(); ++i) {
|
---|
1574 |
|
---|
1575 | // Get data
|
---|
1576 |
|
---|
1577 | MaskedArray<Float> dataIn(in.rowAsMaskedArray(i));
|
---|
1578 | Array<Float>& valuesIn = dataIn.getRWArray();
|
---|
1579 | const Array<Bool>& maskIn = dataIn.getMask();
|
---|
1580 |
|
---|
1581 | // Apply factor
|
---|
1582 |
|
---|
1583 | if (doAll) {
|
---|
1584 | VectorIterator<Float> itValues(valuesIn, asap::ChanAxis);
|
---|
1585 | while (!itValues.pastEnd()) {
|
---|
1586 | itValues.vector() *= factor(i);
|
---|
1587 | itValues.next();
|
---|
1588 | }
|
---|
1589 | } else {
|
---|
1590 | Array<Float> valuesIn2 = valuesIn(start,end);
|
---|
1591 | valuesIn2 *= factor(i);
|
---|
1592 | valuesIn(start,end) = valuesIn2;
|
---|
1593 | }
|
---|
1594 |
|
---|
1595 | // Write out
|
---|
1596 |
|
---|
1597 | SDContainer sc = in.getSDContainer(i);
|
---|
1598 | putDataInSDC(sc, valuesIn, maskIn);
|
---|
1599 | //
|
---|
1600 | pTabOut->putSDContainer(sc);
|
---|
1601 | }
|
---|
1602 | }
|
---|
1603 |
|
---|
1604 |
|
---|
1605 | void SDMath::generateSourceTable (Vector<String>& srcTab,
|
---|
1606 | Vector<uInt>& srcIdx,
|
---|
1607 | Vector<uInt>& firstRow,
|
---|
1608 | const Vector<String>& srcNames) const
|
---|
1609 | //
|
---|
1610 | // This algorithm assumes that if there are multiple beams
|
---|
1611 | // that the source names are diffent. Oterwise we would need
|
---|
1612 | // to look atthe direction for each beam...
|
---|
1613 | //
|
---|
1614 | {
|
---|
1615 | const uInt nRow = srcNames.nelements();
|
---|
1616 | srcTab.resize(0);
|
---|
1617 | srcIdx.resize(nRow);
|
---|
1618 | firstRow.resize(0);
|
---|
1619 | //
|
---|
1620 | uInt nSrc = 0;
|
---|
1621 | for (uInt i=0; i<nRow; i++) {
|
---|
1622 | String srcName = srcNames[i];
|
---|
1623 |
|
---|
1624 | // Do we have this source already ?
|
---|
1625 |
|
---|
1626 | Int idx = -1;
|
---|
1627 | if (nSrc>0) {
|
---|
1628 | for (uInt j=0; j<nSrc; j++) {
|
---|
1629 | if (srcName==srcTab[j]) {
|
---|
1630 | idx = j;
|
---|
1631 | break;
|
---|
1632 | }
|
---|
1633 | }
|
---|
1634 | }
|
---|
1635 |
|
---|
1636 | // Add new entry if not found
|
---|
1637 |
|
---|
1638 | if (idx==-1) {
|
---|
1639 | nSrc++;
|
---|
1640 | srcTab.resize(nSrc,True);
|
---|
1641 | srcTab(nSrc-1) = srcName;
|
---|
1642 | idx = nSrc-1;
|
---|
1643 | //
|
---|
1644 | firstRow.resize(nSrc,True);
|
---|
1645 | firstRow(nSrc-1) = i; // First row for which this source occurs
|
---|
1646 | }
|
---|
1647 |
|
---|
1648 | // Set index for this row
|
---|
1649 |
|
---|
1650 | srcIdx[i] = idx;
|
---|
1651 | }
|
---|
1652 | }
|
---|