1 | /*
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2 | * Project: MoleCuilder
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3 | * Description: creates and alters molecular systems
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4 | * Copyright (C) 2012 University of Bonn. All rights reserved.
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5 | * Copyright (C) 2013 Frederik Heber. All rights reserved.
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6 | *
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7 | *
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8 | * This file is part of MoleCuilder.
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9 | *
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10 | * MoleCuilder is free software: you can redistribute it and/or modify
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11 | * it under the terms of the GNU General Public License as published by
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12 | * the Free Software Foundation, either version 2 of the License, or
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13 | * (at your option) any later version.
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14 | *
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15 | * MoleCuilder is distributed in the hope that it will be useful,
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16 | * but WITHOUT ANY WARRANTY; without even the implied warranty of
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17 | * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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18 | * GNU General Public License for more details.
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19 | *
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20 | * You should have received a copy of the GNU General Public License
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21 | * along with MoleCuilder. If not, see <http://www.gnu.org/licenses/>.
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22 | */
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23 |
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24 | /*
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25 | * Histogram.cpp
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26 | *
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27 | * Created on: Jul 26, 2012
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28 | * Author: heber
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29 | */
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30 |
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31 |
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32 | // include config.h
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33 | #ifdef HAVE_CONFIG_H
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34 | #include <config.h>
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35 | #endif
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36 |
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37 | #include "CodePatterns/MemDebug.hpp"
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38 |
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39 | #include "Histogram.hpp"
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40 |
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41 | #include <algorithm>
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42 | #include <cmath>
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43 | #include <iostream>
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44 | #include <sstream>
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45 | #include <string>
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46 |
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47 | #include <boost/bind.hpp>
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48 | #include <boost/foreach.hpp>
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49 |
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50 | #include "CodePatterns/Assert.hpp"
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51 | #include "CodePatterns/Log.hpp"
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52 |
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53 | /** Tiny helper struct to create equally spaced bins with count of zero.
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54 | *
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55 | */
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56 | struct BinCreator_t {
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57 | BinCreator_t( const double lowerend, const double _width ) :
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58 | currentstart(lowerend),
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59 | width(_width)
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60 | {}
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61 | Histogram::Bin_t operator()() {
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62 | Histogram::Bin_t bin( make_pair( currentstart, 0.) );
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63 | currentstart+=width;
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64 | return bin;
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65 | }
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66 | private:
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67 | double currentstart;
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68 | const double width;
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69 | };
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70 |
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71 |
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72 | // see http://stackoverflow.com/questions/634087/stdcopy-to-stdcout-for-stdpair
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73 | // printing a pair is not easy, especially so with ostream_iterator as it cannot find
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74 | // overload operator<<() as it is not in namespace std.
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75 | template <class T>
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76 | struct PrintPair : public std::unary_function<T, void>
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77 | {
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78 | std::ostream& os;
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79 | PrintPair(std::ostream& strm) : os(strm) {}
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80 |
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81 | void operator()(const T& elem) const
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82 | {
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83 | os << "(" << elem.first << "," << elem.second << ") ";
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84 | }
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85 | };
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86 |
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87 | std::ostream & operator<<(std::ostream &ost, const Histogram::Bin_t &elem)
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88 | {
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89 | ost << "(" << elem.first << "," << elem.second << ") ";
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90 | return ost;
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91 | }
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92 |
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93 | std::ostream & operator<<(std::ostream &ost, const Histogram &histogram)
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94 | {
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95 | for (Histogram::Bins_t::const_iterator iter = histogram.bins.begin();
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96 | iter != histogram.bins.end(); ++iter)
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97 | ost << std::make_pair(iter->first, iter->second);
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98 | return ost;
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99 | }
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100 |
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101 | Histogram::Histogram(const samples_t &samples) :
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102 | binwidth(0.5),
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103 | offset(0.)
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104 | {
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105 | if (!samples.empty()) {
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106 | // set offset to first value
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107 | const_cast<BinLowerEnd &>(offset) = *samples.begin();
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108 | // set binwidth to statistical sensible value
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109 | MinMax_t MinMax = getMinMaxFromSamples(samples);
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110 | // const_cast<double &>(binwidth) = (*(MinMax.second) - *(MinMax.first))/pow(samples.size(), 1./3.);
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111 | // and add all samples to these histogram bins
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112 | addSamples(samples);
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113 | }
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114 | }
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115 |
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116 | Histogram::Histogram(const samples_t &samples, const BinLowerEnd _offset, const double _binwidth) :
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117 | binwidth(_binwidth),
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118 | offset(_offset)
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119 | {
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120 | addSamples(samples);
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121 | }
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122 |
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123 | Histogram::MinMax_t Histogram::getMinMaxFromSamples(const samples_t &samples) const
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124 | {
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125 | std::pair<samples_t::const_iterator, samples_t::const_iterator> returnpair;
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126 | returnpair.first = min_element(samples.begin(), samples.end());
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127 | returnpair.second = max_element(samples.begin(), samples.end());
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128 | ASSERT((returnpair.second != samples.end()) || (returnpair.first != samples.end()),
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129 | "Histogram::Histogram() - cannot find min/max despite non-empty range.");
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130 | return returnpair;
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131 | }
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132 |
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133 | void Histogram::addSamples(const samples_t &samples)
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134 | {
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135 | // build histogram from samples
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136 | if (!samples.empty()) {
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137 | // 1. get min and max and determine width
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138 | MinMax_t MinMax = getMinMaxFromSamples(samples);
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139 | // LOG(1, "DEBUG: min is " << *(MinMax.first) << " and max is " << *(MinMax.second) << ".");
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140 |
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141 | // 2. create each bin
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142 | {
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143 | std::vector<Bin_t> vectorbins;
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144 | const BinLowerEnd HistogramStart = getLowerEnd(*(MinMax.first));
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145 | BinCreator_t BinCreator( HistogramStart, binwidth );
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146 | // we need one extra bin for get...Bin()'s find to work properly
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147 | const int CountBins = ceil((*(MinMax.second) - HistogramStart)/binwidth)+1;
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148 | vectorbins.resize(CountBins+1, Bin_t( make_pair(0., 0.) ) );
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149 | std::generate( vectorbins.begin(), vectorbins.end(), BinCreator );
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150 | bins.insert(vectorbins.begin(), vectorbins.end());
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151 | }
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152 |
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153 | // 3. place each sample into bin
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154 | BOOST_FOREACH( double value, samples) {
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155 | const Bins_t::iterator biniter = getLowerEndBin(value);
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156 | ASSERT( biniter != bins.end(),
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157 | "Histogram::Histogram() - cannot find bin for value from given samples.");
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158 | // (make bin count normalized, i.e. always equal to surface area of 1)
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159 | biniter->second += 1./binwidth;
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160 | }
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161 | LOG(2, "DEBUG: Bins are " << printBins() << ".");
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162 | } else {
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163 | // LOG(1, "INFO: Given vector of samples is empty.");
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164 | }
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165 | }
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166 |
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167 | std::string Histogram::printBins() const
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168 | {
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169 | std::stringstream output;
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170 | std::for_each( bins.begin(), bins.end(), PrintPair<Bin_t>(output));
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171 | return output.str();
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172 | }
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173 |
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174 | void Histogram::extendMissingBins(const BinLowerEnd LowerEnd, const BinLowerEnd NextLowerEnd)
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175 | {
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176 | Bins_t::const_iterator loweriter = getLowerEndBin(LowerEnd);
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177 | Bins_t::const_iterator upperiter = getHigherEndBin(NextLowerEnd);
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178 | if (loweriter == bins.end()) {
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179 | // we need bins beneath our first, add them
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180 | for(BinLowerEnd offset = getLowerEnd(LowerEnd);
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181 | offset < getLowerEnd(NextLowerEnd);
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182 | offset += binwidth) {
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183 | LOG(4, "DEBUG: Extending below at offset " << offset << ".");
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184 | bins.insert( std::make_pair (offset, 0. ) );
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185 | }
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186 | LOG(3, "DEBUG: Bins after adding empties before start are " << printBins() << ".");
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187 | loweriter = getLowerEndBin(LowerEnd);
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188 | ASSERT( loweriter != bins.end(),
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189 | "Histogram::extendMissingBins() - still no lower bound after adding empties.");
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190 | }
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191 | if (upperiter == bins.end()) {
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192 | // we need bins after our last, add them
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193 | for(BinLowerEnd offset = getLowerEnd(LowerEnd);
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194 | offset <= getLowerEnd(NextLowerEnd)+(1.5*binwidth); /* for safety we go a little further */
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195 | offset += binwidth) {
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196 | LOG(4, "DEBUG: Extending above at offset " << offset << ".");
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197 | bins.insert( std::make_pair (offset, 0. ) );
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198 | }
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199 | LOG(3, "DEBUG: Bins after adding empties after end are " << printBins() << ".");
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200 | upperiter = getHigherEndBin(NextLowerEnd);
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201 | ASSERT( upperiter != bins.end(),
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202 | "Histogram::extendMissingBins() - still no upper bound after adding empties.");
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203 | }
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204 | }
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205 |
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206 | void Histogram::superposeOtherHistogram(const Histogram &other, const double prefactor)
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207 | {
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208 | // go through each of the other histogram's bins
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209 | Bins_t::const_iterator enditer = --other.bins.end(); // (except internal last one)
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210 | for (Bins_t::const_iterator biniter = other.bins.begin();
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211 | biniter != enditer; /* we advance ourselves in loop */) {
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212 | const Bin_t &bin = *biniter;
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213 | ++biniter;
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214 | const Bin_t &nextbin = *biniter;
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215 |
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216 | LOG(4, "DEBUG: Current bin is " << bin << ", next bin is " << nextbin << ".");
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217 |
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218 | // Check first whether start or end actually fit into our histogram, if not extend.
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219 | extendMissingBins(bin.first, nextbin.first);
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220 |
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221 | // The bin will in general not fit into one bin in this histogram, but overlap.
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222 | // Hence, we determine the contribution of the bin to each bin in this histogram
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223 | // its overlaps into and add this weight to the bin.
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224 | Bins_t::const_iterator loweriter = getLowerEndBin(bin.first);
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225 | Bins_t::const_iterator upperiter = getHigherEndBin(nextbin.first);
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226 |
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227 | ASSERT( loweriter->first < upperiter->first,
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228 | "Histogram::superposeOtherHistogram() - the bin range is invalid.");
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229 | LOG(5, "DEBUG: bin range here is ["
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230 | << loweriter->first << "," << upperiter->first << ").");
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231 |
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232 | // Next, we create a vector of offsets
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233 | typedef std::vector< BinLowerEnd > offsets_t;
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234 | offsets_t offsets;
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235 | {
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236 | offsets.push_back(bin.first);
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237 | Bins_t::const_iterator iter = loweriter;
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238 | for (++iter; iter != upperiter; ++iter)
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239 | if (offsets.back() != iter->first)
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240 | offsets.push_back(iter->first);
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241 | if (offsets.back() != nextbin.first)
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242 | offsets.push_back(nextbin.first);
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243 | LOG(4, "DEBUG: Offsets are " << offsets << ".");
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244 | }
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245 |
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246 | // then, we go through the offsets but the last one and add the respective area
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247 | {
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248 | offsets_t::const_iterator iter = offsets.begin();
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249 | offsets_t::const_iterator nextiter = ++offsets.begin();
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250 | for (; iter != --offsets.end(); ++iter, ++nextiter) {
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251 | const double length = *nextiter - *iter;
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252 | const double weight = bin.second * (length/binwidth);
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253 | Bins_t::iterator filliter = getLowerEndBin(*iter);
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254 | filliter->second += prefactor * weight;
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255 | }
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256 | }
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257 |
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258 | {
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259 | std::stringstream output;
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260 | std::for_each( bins.begin(), bins.end(), PrintPair<Bin_t>(output));
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261 | LOG(3, "DEBUG: Bins are after summation " << output.str() << ".");
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262 | }
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263 | }
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264 | }
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265 |
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266 | Histogram& Histogram::operator=(const Histogram &other)
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267 | {
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268 | // check for self-assigment
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269 | if (&other != this) {
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270 | bins.clear();
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271 | const_cast<BinLowerEnd &>(offset) = other.offset;
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272 | const_cast<double &>(binwidth) = other.binwidth;
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273 | bins.insert(other.bins.begin(), other.bins.end());
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274 | }
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275 | return *this;
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276 | }
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277 |
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278 | Histogram& Histogram::operator+=(const Histogram &other)
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279 | {
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280 | superposeOtherHistogram(other, +1.);
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281 | LOG(3, "DEBUG: Bins after addition are " << printBins() << ".");
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282 | return *this;
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283 | }
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284 |
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285 | Histogram& Histogram::operator-=(const Histogram &other)
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286 | {
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287 | superposeOtherHistogram(other, -1.);
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288 | LOG(3, "DEBUG: Bins after subtraction are " << printBins() << ".");
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289 | return *this;
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290 | }
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291 |
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292 | bool Histogram::isEmpty() const
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293 | {
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294 | bool status = true;
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295 | for (Bins_t::const_iterator iter = bins.begin(); iter != bins.end(); ++iter)
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296 | status &= iter->second == 0;
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297 | return status;
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298 | }
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299 |
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300 | Histogram::Bins_t::iterator Histogram::getLowerEndBin(const double _value)
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301 | {
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302 | // lower bound returns key that is equal or greater
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303 | Bins_t::iterator iter = bins.lower_bound(_value);
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304 | if (iter != bins.end()) {
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305 | // if we are not on the boundary we always have to step back by one
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306 | if (_value != iter->first) {
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307 | if (iter != bins.begin()) {
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308 | --iter;
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309 | } else {
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310 | iter = bins.end();
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311 | }
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312 | } else if (iter == --bins.end()) {
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313 | // if we actually are on boundary of "last bin", set to end
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314 | iter = bins.end();
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315 | }
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316 | }
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317 | return iter;
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318 | }
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319 |
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320 | Histogram::Bins_t::iterator Histogram::getHigherEndBin(const double _value)
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321 | {
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322 | // upper bound return key that is strictly greater
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323 | Bins_t::iterator iter = bins.upper_bound(_value);
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324 | // if we are on the boundary we have to step back by one
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325 | if (iter != bins.end())
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326 | if (_value == iter->first)
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327 | if (iter != bins.begin())
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328 | --iter;
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329 |
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330 | return iter;
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331 | }
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332 |
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333 | Histogram::BinLowerEnd Histogram::getLowerEnd(const double _value) const
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334 | {
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335 | BinLowerEnd start = _value - offset;
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336 | // then divide by binwidth
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337 | const int integral = floor(start/binwidth);
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338 | //const double fraction = fmod(start,binwidth);
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339 | start = offset + binwidth*integral;
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340 | return start;
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341 | }
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342 |
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343 | double Histogram::area() const
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344 | {
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345 | double area = 0.;
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346 | for(Bins_t::const_iterator iter = bins.begin(); iter != bins.end(); ++iter)
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347 | area += iter->second*binwidth;
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348 | return area;
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349 | }
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350 |
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351 | template<> Histogram ZeroInstance<Histogram>()
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352 | {
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353 | Histogram returnvalue;
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354 | return returnvalue;
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355 | }
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