| 1 | /* | 
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| 2 | * analysis.cpp | 
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| 3 | * | 
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| 4 | *  Created on: Oct 13, 2009 | 
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| 5 | *      Author: heber | 
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| 6 | */ | 
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| 7 |  | 
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| 8 | // include config.h | 
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| 9 | #ifdef HAVE_CONFIG_H | 
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| 10 | #include <config.h> | 
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| 11 | #endif | 
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| 12 |  | 
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| 13 | #include "Helpers/MemDebug.hpp" | 
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| 14 |  | 
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| 15 | #include <iostream> | 
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| 16 | #include <iomanip> | 
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| 17 |  | 
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| 18 | #include "BoundaryTriangleSet.hpp" | 
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| 19 | #include "analysis_correlation.hpp" | 
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| 20 | #include "element.hpp" | 
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| 21 | #include "Helpers/Info.hpp" | 
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| 22 | #include "Helpers/Log.hpp" | 
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| 23 | #include "molecule.hpp" | 
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| 24 | #include "tesselation.hpp" | 
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| 25 | #include "tesselationhelpers.hpp" | 
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| 26 | #include "triangleintersectionlist.hpp" | 
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| 27 | #include "LinearAlgebra/Vector.hpp" | 
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| 28 | #include "LinearAlgebra/Matrix.hpp" | 
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| 29 | #include "Helpers/Verbose.hpp" | 
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| 30 | #include "World.hpp" | 
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| 31 | #include "Box.hpp" | 
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| 32 |  | 
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| 33 |  | 
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| 34 | /** Calculates the pair correlation between given elements. | 
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| 35 | * Note given element order is unimportant (i.e. g(Si, O) === g(O, Si)) | 
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| 36 | * \param *molecules vector of molecules | 
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| 37 | * \param &elements vector of elements to correlate | 
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| 38 | * \return Map of doubles with values the pair of the two atoms. | 
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| 39 | */ | 
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| 40 | PairCorrelationMap *PairCorrelation(std::vector<molecule *> &molecules, const std::vector<const element *> &elements) | 
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| 41 | { | 
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| 42 | Info FunctionInfo(__func__); | 
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| 43 | PairCorrelationMap *outmap = NULL; | 
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| 44 | double distance = 0.; | 
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| 45 | Box &domain = World::getInstance().getDomain(); | 
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| 46 |  | 
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| 47 | if (molecules.empty()) { | 
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| 48 | DoeLog(1) && (eLog()<< Verbose(1) <<"No molecule given." << endl); | 
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| 49 | return outmap; | 
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| 50 | } | 
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| 51 | for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++) | 
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| 52 | (*MolWalker)->doCountAtoms(); | 
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| 53 |  | 
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| 54 | // create all possible pairs of elements | 
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| 55 | set <pair<const element *,const element *> > PairsOfElements; | 
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| 56 | if (elements.size() >= 2) { | 
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| 57 | for (vector<const element *>::const_iterator type1 = elements.begin(); type1 != elements.end(); ++type1) | 
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| 58 | for (vector<const element *>::const_iterator type2 = elements.begin(); type2 != elements.end(); ++type2) | 
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| 59 | if (type1 != type2) { | 
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| 60 | PairsOfElements.insert( make_pair(*type1,*type2) ); | 
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| 61 | DoLog(1) && (Log() << Verbose(1) << "Creating element pair " << *(*type1) << " and " << *(*type2) << "." << endl); | 
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| 62 | } | 
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| 63 | } else if (elements.size() == 1) { // one to all are valid | 
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| 64 | const element *elemental = *elements.begin(); | 
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| 65 | PairsOfElements.insert( pair<const element *,const element*>(elemental,0) ); | 
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| 66 | PairsOfElements.insert( pair<const element *,const element*>(0,elemental) ); | 
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| 67 | } else { // all elements valid | 
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| 68 | PairsOfElements.insert( pair<element *, element*>((element *)NULL, (element *)NULL) ); | 
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| 69 | } | 
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| 70 |  | 
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| 71 | outmap = new PairCorrelationMap; | 
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| 72 | for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++){ | 
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| 73 | DoLog(2) && (Log()<< Verbose(2) << "Current molecule is " << *MolWalker << "." << endl); | 
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| 74 | for (molecule::const_iterator iter = (*MolWalker)->begin(); iter != (*MolWalker)->end(); ++iter) { | 
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| 75 | DoLog(3) && (Log() << Verbose(3) << "Current atom is " << **iter << "." << endl); | 
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| 76 | for (std::vector<molecule *>::const_iterator MolOtherWalker = MolWalker; MolOtherWalker != molecules.end(); MolOtherWalker++){ | 
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| 77 | DoLog(2) && (Log() << Verbose(2) << "Current other molecule is " << *MolOtherWalker << "." << endl); | 
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| 78 | for (molecule::const_iterator runner = (*MolOtherWalker)->begin(); runner != (*MolOtherWalker)->end(); ++runner) { | 
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| 79 | DoLog(3) && (Log() << Verbose(3) << "Current otheratom is " << **runner << "." << endl); | 
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| 80 | if ((*iter)->getId() < (*runner)->getId()){ | 
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| 81 | for (set <pair<const element *, const element *> >::iterator PairRunner = PairsOfElements.begin(); PairRunner != PairsOfElements.end(); ++PairRunner) | 
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| 82 | if ((PairRunner->first == (**iter).getType()) && (PairRunner->second == (**runner).getType())) { | 
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| 83 | distance = domain.periodicDistance((*iter)->getPosition(),(*runner)->getPosition()); | 
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| 84 | //Log() << Verbose(1) <<"Inserting " << *(*iter) << " and " << *(*runner) << endl; | 
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| 85 | outmap->insert ( pair<double, pair <atom *, atom*> > (distance, pair<atom *, atom*> ((*iter), (*runner)) ) ); | 
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| 86 | } | 
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| 87 | } | 
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| 88 | } | 
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| 89 | } | 
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| 90 | } | 
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| 91 | } | 
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| 92 | return outmap; | 
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| 93 | }; | 
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| 94 |  | 
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| 95 | /** Calculates the pair correlation between given elements. | 
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| 96 | * Note given element order is unimportant (i.e. g(Si, O) === g(O, Si)) | 
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| 97 | * \param *molecules list of molecules structure | 
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| 98 | * \param &elements vector of elements to correlate | 
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| 99 | * \param ranges[NDIM] interval boundaries for the periodic images to scan also | 
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| 100 | * \return Map of doubles with values the pair of the two atoms. | 
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| 101 | */ | 
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| 102 | PairCorrelationMap *PeriodicPairCorrelation(std::vector<molecule *> &molecules, const std::vector<const element *> &elements, const int ranges[NDIM] ) | 
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| 103 | { | 
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| 104 | Info FunctionInfo(__func__); | 
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| 105 | PairCorrelationMap *outmap = NULL; | 
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| 106 | double distance = 0.; | 
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| 107 | int n[NDIM]; | 
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| 108 | Vector checkX; | 
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| 109 | Vector periodicX; | 
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| 110 | int Othern[NDIM]; | 
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| 111 | Vector checkOtherX; | 
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| 112 | Vector periodicOtherX; | 
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| 113 |  | 
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| 114 | if (molecules.empty()) { | 
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| 115 | DoeLog(1) && (eLog()<< Verbose(1) <<"No molecule given." << endl); | 
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| 116 | return outmap; | 
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| 117 | } | 
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| 118 | for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++) | 
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| 119 | (*MolWalker)->doCountAtoms(); | 
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| 120 |  | 
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| 121 | // create all possible pairs of elements | 
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| 122 | set <pair<const element *,const element *> > PairsOfElements; | 
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| 123 | if (elements.size() >= 2) { | 
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| 124 | for (vector<const element *>::const_iterator type1 = elements.begin(); type1 != elements.end(); ++type1) | 
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| 125 | for (vector<const element *>::const_iterator type2 = elements.begin(); type2 != elements.end(); ++type2) | 
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| 126 | if (type1 != type2) { | 
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| 127 | PairsOfElements.insert( make_pair(*type1,*type2) ); | 
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| 128 | DoLog(1) && (Log() << Verbose(1) << "Creating element pair " << *(*type1) << " and " << *(*type2) << "." << endl); | 
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| 129 | } | 
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| 130 | } else if (elements.size() == 1) { // one to all are valid | 
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| 131 | const element *elemental = *elements.begin(); | 
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| 132 | PairsOfElements.insert( pair<const element *,const element*>(elemental,0) ); | 
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| 133 | PairsOfElements.insert( pair<const element *,const element*>(0,elemental) ); | 
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| 134 | } else { // all elements valid | 
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| 135 | PairsOfElements.insert( pair<element *, element*>((element *)NULL, (element *)NULL) ); | 
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| 136 | } | 
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| 137 |  | 
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| 138 | outmap = new PairCorrelationMap; | 
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| 139 | for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++){ | 
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| 140 | Matrix FullMatrix = World::getInstance().getDomain().getM(); | 
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| 141 | Matrix FullInverseMatrix = World::getInstance().getDomain().getMinv(); | 
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| 142 | DoLog(2) && (Log()<< Verbose(2) << "Current molecule is " << *MolWalker << "." << endl); | 
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| 143 | for (molecule::const_iterator iter = (*MolWalker)->begin(); iter != (*MolWalker)->end(); ++iter) { | 
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| 144 | DoLog(3) && (Log() << Verbose(3) << "Current atom is " << **iter << "." << endl); | 
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| 145 | periodicX = FullInverseMatrix * ((*iter)->getPosition()); // x now in [0,1)^3 | 
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| 146 | // go through every range in xyz and get distance | 
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| 147 | for (n[0]=-ranges[0]; n[0] <= ranges[0]; n[0]++) | 
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| 148 | for (n[1]=-ranges[1]; n[1] <= ranges[1]; n[1]++) | 
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| 149 | for (n[2]=-ranges[2]; n[2] <= ranges[2]; n[2]++) { | 
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| 150 | checkX = FullMatrix * (Vector(n[0], n[1], n[2]) + periodicX); | 
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| 151 | for (std::vector<molecule *>::const_iterator MolOtherWalker = MolWalker; MolOtherWalker != molecules.end(); MolOtherWalker++){ | 
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| 152 | DoLog(2) && (Log() << Verbose(2) << "Current other molecule is " << *MolOtherWalker << "." << endl); | 
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| 153 | for (molecule::const_iterator runner = (*MolOtherWalker)->begin(); runner != (*MolOtherWalker)->end(); ++runner) { | 
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| 154 | DoLog(3) && (Log() << Verbose(3) << "Current otheratom is " << **runner << "." << endl); | 
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| 155 | if ((*iter)->getId() < (*runner)->getId()){ | 
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| 156 | for (set <pair<const element *,const element *> >::iterator PairRunner = PairsOfElements.begin(); PairRunner != PairsOfElements.end(); ++PairRunner) | 
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| 157 | if ((PairRunner->first == (**iter).getType()) && (PairRunner->second == (**runner).getType())) { | 
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| 158 | periodicOtherX = FullInverseMatrix * ((*runner)->getPosition()); // x now in [0,1)^3 | 
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| 159 | // go through every range in xyz and get distance | 
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| 160 | for (Othern[0]=-ranges[0]; Othern[0] <= ranges[0]; Othern[0]++) | 
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| 161 | for (Othern[1]=-ranges[1]; Othern[1] <= ranges[1]; Othern[1]++) | 
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| 162 | for (Othern[2]=-ranges[2]; Othern[2] <= ranges[2]; Othern[2]++) { | 
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| 163 | checkOtherX = FullMatrix * (Vector(Othern[0], Othern[1], Othern[2]) + periodicOtherX); | 
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| 164 | distance = checkX.distance(checkOtherX); | 
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| 165 | //Log() << Verbose(1) <<"Inserting " << *(*iter) << " and " << *(*runner) << endl; | 
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| 166 | outmap->insert ( pair<double, pair <atom *, atom*> > (distance, pair<atom *, atom*> ((*iter), (*runner)) ) ); | 
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| 167 | } | 
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| 168 | } | 
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| 169 | } | 
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| 170 | } | 
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| 171 | } | 
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| 172 | } | 
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| 173 | } | 
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| 174 | } | 
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| 175 |  | 
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| 176 | return outmap; | 
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| 177 | }; | 
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| 178 |  | 
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| 179 | /** Calculates the distance (pair) correlation between a given element and a point. | 
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| 180 | * \param *molecules list of molecules structure | 
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| 181 | * \param &elements vector of elements to correlate with point | 
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| 182 | * \param *point vector to the correlation point | 
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| 183 | * \return Map of dobules with values as pairs of atom and the vector | 
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| 184 | */ | 
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| 185 | CorrelationToPointMap *CorrelationToPoint(std::vector<molecule *> &molecules, const std::vector<const element *> &elements, const Vector *point ) | 
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| 186 | { | 
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| 187 | Info FunctionInfo(__func__); | 
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| 188 | CorrelationToPointMap *outmap = NULL; | 
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| 189 | double distance = 0.; | 
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| 190 | Box &domain = World::getInstance().getDomain(); | 
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| 191 |  | 
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| 192 | if (molecules.empty()) { | 
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| 193 | DoLog(1) && (Log() << Verbose(1) <<"No molecule given." << endl); | 
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| 194 | return outmap; | 
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| 195 | } | 
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| 196 | for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++) | 
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| 197 | (*MolWalker)->doCountAtoms(); | 
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| 198 | outmap = new CorrelationToPointMap; | 
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| 199 | for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++) { | 
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| 200 | DoLog(2) && (Log() << Verbose(2) << "Current molecule is " << *MolWalker << "." << endl); | 
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| 201 | for (molecule::const_iterator iter = (*MolWalker)->begin(); iter != (*MolWalker)->end(); ++iter) { | 
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| 202 | DoLog(3) && (Log() << Verbose(3) << "Current atom is " << **iter << "." << endl); | 
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| 203 | for (vector<const element *>::const_iterator type = elements.begin(); type != elements.end(); ++type) | 
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| 204 | if ((*type == NULL) || ((*iter)->getType() == *type)) { | 
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| 205 | distance = domain.periodicDistance((*iter)->getPosition(),*point); | 
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| 206 | DoLog(4) && (Log() << Verbose(4) << "Current distance is " << distance << "." << endl); | 
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| 207 | outmap->insert ( pair<double, pair<atom *, const Vector*> >(distance, pair<atom *, const Vector*> ((*iter), point) ) ); | 
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| 208 | } | 
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| 209 | } | 
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| 210 | } | 
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| 211 |  | 
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| 212 | return outmap; | 
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| 213 | }; | 
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| 214 |  | 
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| 215 | /** Calculates the distance (pair) correlation between a given element, all its periodic images and a point. | 
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| 216 | * \param *molecules list of molecules structure | 
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| 217 | * \param &elements vector of elements to correlate to point | 
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| 218 | * \param *point vector to the correlation point | 
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| 219 | * \param ranges[NDIM] interval boundaries for the periodic images to scan also | 
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| 220 | * \return Map of dobules with values as pairs of atom and the vector | 
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| 221 | */ | 
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| 222 | CorrelationToPointMap *PeriodicCorrelationToPoint(std::vector<molecule *> &molecules, const std::vector<const element *> &elements, const Vector *point, const int ranges[NDIM] ) | 
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| 223 | { | 
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| 224 | Info FunctionInfo(__func__); | 
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| 225 | CorrelationToPointMap *outmap = NULL; | 
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| 226 | double distance = 0.; | 
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| 227 | int n[NDIM]; | 
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| 228 | Vector periodicX; | 
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| 229 | Vector checkX; | 
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| 230 |  | 
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| 231 | if (molecules.empty()) { | 
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| 232 | DoLog(1) && (Log() << Verbose(1) <<"No molecule given." << endl); | 
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| 233 | return outmap; | 
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| 234 | } | 
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| 235 | for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++) | 
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| 236 | (*MolWalker)->doCountAtoms(); | 
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| 237 | outmap = new CorrelationToPointMap; | 
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| 238 | for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++) { | 
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| 239 | Matrix FullMatrix = World::getInstance().getDomain().getM(); | 
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| 240 | Matrix FullInverseMatrix = World::getInstance().getDomain().getMinv(); | 
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| 241 | DoLog(2) && (Log() << Verbose(2) << "Current molecule is " << *MolWalker << "." << endl); | 
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| 242 | for (molecule::const_iterator iter = (*MolWalker)->begin(); iter != (*MolWalker)->end(); ++iter) { | 
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| 243 | DoLog(3) && (Log() << Verbose(3) << "Current atom is " << **iter << "." << endl); | 
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| 244 | for (vector<const element *>::const_iterator type = elements.begin(); type != elements.end(); ++type) | 
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| 245 | if ((*type == NULL) || ((*iter)->getType() == *type)) { | 
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| 246 | periodicX = FullInverseMatrix * ((*iter)->getPosition()); // x now in [0,1)^3 | 
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| 247 | // go through every range in xyz and get distance | 
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| 248 | for (n[0]=-ranges[0]; n[0] <= ranges[0]; n[0]++) | 
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| 249 | for (n[1]=-ranges[1]; n[1] <= ranges[1]; n[1]++) | 
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| 250 | for (n[2]=-ranges[2]; n[2] <= ranges[2]; n[2]++) { | 
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| 251 | checkX = FullMatrix * (Vector(n[0], n[1], n[2]) + periodicX); | 
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| 252 | distance = checkX.distance(*point); | 
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| 253 | DoLog(4) && (Log() << Verbose(4) << "Current distance is " << distance << "." << endl); | 
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| 254 | outmap->insert ( pair<double, pair<atom *, const Vector*> >(distance, pair<atom *, const Vector*> (*iter, point) ) ); | 
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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 |  | 
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| 260 | return outmap; | 
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| 261 | }; | 
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| 262 |  | 
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| 263 | /** Calculates the distance (pair) correlation between a given element and a surface. | 
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| 264 | * \param *molecules list of molecules structure | 
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| 265 | * \param &elements vector of elements to correlate to surface | 
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| 266 | * \param *Surface pointer to Tesselation class surface | 
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| 267 | * \param *LC LinkedCell structure to quickly find neighbouring atoms | 
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| 268 | * \return Map of doubles with values as pairs of atom and the BoundaryTriangleSet that's closest | 
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| 269 | */ | 
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| 270 | CorrelationToSurfaceMap *CorrelationToSurface(std::vector<molecule *> &molecules, const std::vector<const element *> &elements, const Tesselation * const Surface, const LinkedCell *LC ) | 
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| 271 | { | 
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| 272 | Info FunctionInfo(__func__); | 
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| 273 | CorrelationToSurfaceMap *outmap = NULL; | 
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| 274 | double distance = 0; | 
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| 275 | class BoundaryTriangleSet *triangle = NULL; | 
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| 276 | Vector centroid; | 
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| 277 |  | 
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| 278 | if ((Surface == NULL) || (LC == NULL) || (molecules.empty())) { | 
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| 279 | DoeLog(1) && (eLog()<< Verbose(1) <<"No Tesselation, no LinkedCell or no molecule given." << endl); | 
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| 280 | return outmap; | 
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| 281 | } | 
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| 282 | for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++) | 
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| 283 | (*MolWalker)->doCountAtoms(); | 
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| 284 | outmap = new CorrelationToSurfaceMap; | 
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| 285 | for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++) { | 
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| 286 | DoLog(2) && (Log() << Verbose(2) << "Current molecule is " << (*MolWalker)->name << "." << endl); | 
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| 287 | if ((*MolWalker)->empty()) | 
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| 288 | DoLog(2) && (2) && (Log() << Verbose(2) << "\t is empty." << endl); | 
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| 289 | for (molecule::const_iterator iter = (*MolWalker)->begin(); iter != (*MolWalker)->end(); ++iter) { | 
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| 290 | DoLog(3) && (Log() << Verbose(3) << "\tCurrent atom is " << *(*iter) << "." << endl); | 
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| 291 | for (vector<const element *>::const_iterator type = elements.begin(); type != elements.end(); ++type) | 
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| 292 | if ((*type == NULL) || ((*iter)->getType() == *type)) { | 
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| 293 | TriangleIntersectionList Intersections((*iter)->getPosition(),Surface,LC); | 
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| 294 | distance = Intersections.GetSmallestDistance(); | 
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| 295 | triangle = Intersections.GetClosestTriangle(); | 
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| 296 | outmap->insert ( pair<double, pair<atom *, BoundaryTriangleSet*> >(distance, pair<atom *, BoundaryTriangleSet*> ((*iter), triangle) ) ); | 
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| 297 | } | 
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| 298 | } | 
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| 299 | } | 
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| 300 |  | 
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| 301 | return outmap; | 
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| 302 | }; | 
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| 303 |  | 
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| 304 | /** Calculates the distance (pair) correlation between a given element, all its periodic images and and a surface. | 
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| 305 | * Note that we also put all periodic images found in the cells given by [ -ranges[i], ranges[i] ] and i=0,...,NDIM-1. | 
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| 306 | * I.e. We multiply the atom::node with the inverse of the domain matrix, i.e. transform it to \f$[0,0^3\f$, then add per | 
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| 307 | * axis an integer from [ -ranges[i], ranges[i] ] onto it and multiply with the domain matrix to bring it back into | 
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| 308 | * the real space. Then, we Tesselation::FindClosestTriangleToPoint() and DistanceToTrianglePlane(). | 
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| 309 | * \param *molecules list of molecules structure | 
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| 310 | * \param &elements vector of elements to correlate to surface | 
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| 311 | * \param *Surface pointer to Tesselation class surface | 
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| 312 | * \param *LC LinkedCell structure to quickly find neighbouring atoms | 
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| 313 | * \param ranges[NDIM] interval boundaries for the periodic images to scan also | 
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| 314 | * \return Map of doubles with values as pairs of atom and the BoundaryTriangleSet that's closest | 
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| 315 | */ | 
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| 316 | CorrelationToSurfaceMap *PeriodicCorrelationToSurface(std::vector<molecule *> &molecules, const std::vector<const element *> &elements, const Tesselation * const Surface, const LinkedCell *LC, const int ranges[NDIM] ) | 
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| 317 | { | 
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| 318 | Info FunctionInfo(__func__); | 
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| 319 | CorrelationToSurfaceMap *outmap = NULL; | 
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| 320 | double distance = 0; | 
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| 321 | class BoundaryTriangleSet *triangle = NULL; | 
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| 322 | Vector centroid; | 
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| 323 | int n[NDIM]; | 
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| 324 | Vector periodicX; | 
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| 325 | Vector checkX; | 
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| 326 |  | 
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| 327 | if ((Surface == NULL) || (LC == NULL) || (molecules.empty())) { | 
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| 328 | DoLog(1) && (Log() << Verbose(1) <<"No Tesselation, no LinkedCell or no molecule given." << endl); | 
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| 329 | return outmap; | 
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| 330 | } | 
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| 331 | for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++) | 
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| 332 | (*MolWalker)->doCountAtoms(); | 
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| 333 | outmap = new CorrelationToSurfaceMap; | 
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| 334 | double ShortestDistance = 0.; | 
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| 335 | BoundaryTriangleSet *ShortestTriangle = NULL; | 
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| 336 | for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++) { | 
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| 337 | Matrix FullMatrix = World::getInstance().getDomain().getM(); | 
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| 338 | Matrix FullInverseMatrix = World::getInstance().getDomain().getMinv(); | 
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| 339 | DoLog(2) && (Log() << Verbose(2) << "Current molecule is " << *MolWalker << "." << endl); | 
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| 340 | for (molecule::const_iterator iter = (*MolWalker)->begin(); iter != (*MolWalker)->end(); ++iter) { | 
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| 341 | DoLog(3) && (Log() << Verbose(3) << "Current atom is " << **iter << "." << endl); | 
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| 342 | for (vector<const element *>::const_iterator type = elements.begin(); type != elements.end(); ++type) | 
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| 343 | if ((*type == NULL) || ((*iter)->getType() == *type)) { | 
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| 344 | periodicX = FullInverseMatrix * ((*iter)->getPosition()); // x now in [0,1)^3 | 
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| 345 | // go through every range in xyz and get distance | 
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| 346 | ShortestDistance = -1.; | 
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| 347 | for (n[0]=-ranges[0]; n[0] <= ranges[0]; n[0]++) | 
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| 348 | for (n[1]=-ranges[1]; n[1] <= ranges[1]; n[1]++) | 
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| 349 | for (n[2]=-ranges[2]; n[2] <= ranges[2]; n[2]++) { | 
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| 350 | checkX = FullMatrix * (Vector(n[0], n[1], n[2]) + periodicX); | 
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| 351 | TriangleIntersectionList Intersections(checkX,Surface,LC); | 
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| 352 | distance = Intersections.GetSmallestDistance(); | 
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| 353 | triangle = Intersections.GetClosestTriangle(); | 
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| 354 | if ((ShortestDistance == -1.) || (distance < ShortestDistance)) { | 
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| 355 | ShortestDistance = distance; | 
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| 356 | ShortestTriangle = triangle; | 
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| 357 | } | 
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| 358 | } | 
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| 359 | // insert | 
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| 360 | outmap->insert ( pair<double, pair<atom *, BoundaryTriangleSet*> >(ShortestDistance, pair<atom *, BoundaryTriangleSet*> (*iter, ShortestTriangle) ) ); | 
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| 361 | //Log() << Verbose(1) << "INFO: Inserting " << Walker << " with distance " << ShortestDistance << " to " << *ShortestTriangle << "." << endl; | 
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| 362 | } | 
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| 363 | } | 
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| 364 | } | 
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| 365 |  | 
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| 366 | return outmap; | 
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| 367 | }; | 
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| 368 |  | 
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| 369 | /** Returns the index of the bin for a given value. | 
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| 370 | * \param value value whose bin to look for | 
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| 371 | * \param BinWidth width of bin | 
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| 372 | * \param BinStart first bin | 
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| 373 | */ | 
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| 374 | int GetBin ( const double value, const double BinWidth, const double BinStart ) | 
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| 375 | { | 
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| 376 | Info FunctionInfo(__func__); | 
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| 377 | int bin =(int) (floor((value - BinStart)/BinWidth)); | 
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| 378 | return (bin); | 
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| 379 | }; | 
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| 380 |  | 
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| 381 |  | 
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| 382 | /** Prints correlation (double, int) pairs to file. | 
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| 383 | * \param *file file to write to | 
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| 384 | * \param *map map to write | 
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| 385 | */ | 
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| 386 | void OutputCorrelation( ofstream * const file, const BinPairMap * const map ) | 
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| 387 | { | 
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| 388 | Info FunctionInfo(__func__); | 
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| 389 | *file << "BinStart\tCount" << endl; | 
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| 390 | for (BinPairMap::const_iterator runner = map->begin(); runner != map->end(); ++runner) { | 
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| 391 | *file << setprecision(8) << runner->first << "\t" << runner->second << endl; | 
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| 392 | } | 
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| 393 | }; | 
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| 394 |  | 
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| 395 | /** Prints correlation (double, (atom*,atom*) ) pairs to file. | 
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| 396 | * \param *file file to write to | 
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| 397 | * \param *map map to write | 
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| 398 | */ | 
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| 399 | void OutputPairCorrelation( ofstream * const file, const PairCorrelationMap * const map ) | 
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| 400 | { | 
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| 401 | Info FunctionInfo(__func__); | 
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| 402 | *file << "BinStart\tAtom1\tAtom2" << endl; | 
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| 403 | for (PairCorrelationMap::const_iterator runner = map->begin(); runner != map->end(); ++runner) { | 
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| 404 | *file << setprecision(8) << runner->first << "\t" << *(runner->second.first) << "\t" << *(runner->second.second) << endl; | 
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| 405 | } | 
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| 406 | }; | 
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| 407 |  | 
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| 408 | /** Prints correlation (double, int) pairs to file. | 
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| 409 | * \param *file file to write to | 
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| 410 | * \param *map map to write | 
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| 411 | */ | 
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| 412 | void OutputCorrelationToPoint( ofstream * const file, const CorrelationToPointMap * const map ) | 
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| 413 | { | 
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| 414 | Info FunctionInfo(__func__); | 
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| 415 | *file << "BinStart\tAtom::x[i]-point.x[i]" << endl; | 
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| 416 | for (CorrelationToPointMap::const_iterator runner = map->begin(); runner != map->end(); ++runner) { | 
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| 417 | *file << runner->first; | 
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| 418 | for (int i=0;i<NDIM;i++) | 
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| 419 | *file << "\t" << setprecision(8) << (runner->second.first->at(i) - runner->second.second->at(i)); | 
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| 420 | *file << endl; | 
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| 421 | } | 
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| 422 | }; | 
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| 423 |  | 
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| 424 | /** Prints correlation (double, int) pairs to file. | 
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| 425 | * \param *file file to write to | 
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| 426 | * \param *map map to write | 
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| 427 | */ | 
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| 428 | void OutputCorrelationToSurface( ofstream * const file, const CorrelationToSurfaceMap * const map ) | 
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| 429 | { | 
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| 430 | Info FunctionInfo(__func__); | 
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| 431 | *file << "BinStart\tTriangle" << endl; | 
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| 432 | if (!map->empty()) | 
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| 433 | for (CorrelationToSurfaceMap::const_iterator runner = map->begin(); runner != map->end(); ++runner) { | 
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| 434 | *file << setprecision(8) << runner->first << "\t"; | 
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| 435 | *file << *(runner->second.first) << "\t"; | 
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| 436 | *file << *(runner->second.second) << endl; | 
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| 437 | } | 
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| 438 | }; | 
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| 439 |  | 
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