| 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)  2010-2012 University of Bonn. All rights reserved. | 
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| 5 | * | 
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| 6 | * | 
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| 7 | *   This file is part of MoleCuilder. | 
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| 8 | * | 
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| 9 | *    MoleCuilder is free software: you can redistribute it and/or modify | 
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| 10 | *    it under the terms of the GNU General Public License as published by | 
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| 11 | *    the Free Software Foundation, either version 2 of the License, or | 
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| 12 | *    (at your option) any later version. | 
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| 13 | * | 
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| 14 | *    MoleCuilder is distributed in the hope that it will be useful, | 
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| 15 | *    but WITHOUT ANY WARRANTY; without even the implied warranty of | 
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| 16 | *    MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the | 
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| 17 | *    GNU General Public License for more details. | 
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| 18 | * | 
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| 19 | *    You should have received a copy of the GNU General Public License | 
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| 20 | *    along with MoleCuilder.  If not, see <http://www.gnu.org/licenses/>. | 
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| 21 | */ | 
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| 22 |  | 
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| 23 | /* | 
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| 24 | * MinimiseConstrainedPotential.cpp | 
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| 25 | * | 
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| 26 | *  Created on: Feb 23, 2011 | 
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| 27 | *      Author: heber | 
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| 28 | */ | 
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| 29 |  | 
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| 30 | // include config.h | 
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| 31 | #ifdef HAVE_CONFIG_H | 
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| 32 | #include <config.h> | 
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| 33 | #endif | 
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| 34 |  | 
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| 35 | #include "CodePatterns/MemDebug.hpp" | 
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| 36 |  | 
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| 37 | #include <gsl/gsl_matrix.h> | 
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| 38 | #include <gsl/gsl_vector.h> | 
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| 39 | #include <gsl/gsl_linalg.h> | 
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| 40 |  | 
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| 41 | #include "Atom/atom.hpp" | 
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| 42 | #include "Element/element.hpp" | 
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| 43 | #include "CodePatterns/enumeration.hpp" | 
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| 44 | #include "CodePatterns/Info.hpp" | 
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| 45 | #include "CodePatterns/Verbose.hpp" | 
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| 46 | #include "CodePatterns/Log.hpp" | 
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| 47 | #include "Fragmentation/ForceMatrix.hpp" | 
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| 48 | #include "Helpers/helpers.hpp" | 
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| 49 | #include "molecule.hpp" | 
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| 50 | #include "LinearAlgebra/Plane.hpp" | 
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| 51 | #include "World.hpp" | 
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| 52 |  | 
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| 53 | #include "Dynamics/MinimiseConstrainedPotential.hpp" | 
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| 54 |  | 
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| 55 |  | 
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| 56 | MinimiseConstrainedPotential::MinimiseConstrainedPotential( | 
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| 57 | World::AtomComposite &_atoms, | 
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| 58 | std::map<atom*, atom *> &_PermutationMap) : | 
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| 59 | atoms(_atoms), | 
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| 60 | PermutationMap(_PermutationMap) | 
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| 61 | {} | 
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| 62 |  | 
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| 63 | MinimiseConstrainedPotential::~MinimiseConstrainedPotential() | 
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| 64 | {} | 
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| 65 |  | 
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| 66 | double MinimiseConstrainedPotential::operator()(int _startstep, int _endstep, bool IsAngstroem) | 
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| 67 | { | 
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| 68 | double Potential, OldPotential, OlderPotential; | 
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| 69 | int round; | 
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| 70 | atom *Sprinter = NULL; | 
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| 71 | DistanceMap::iterator Rider, Strider; | 
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| 72 |  | 
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| 73 | // set to zero | 
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| 74 | PermutationMap.clear(); | 
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| 75 | DoubleList.clear(); | 
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| 76 | for (World::AtomComposite::const_iterator iter = atoms.begin(); iter != atoms.end(); ++iter) { | 
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| 77 | DistanceList[*iter].clear(); | 
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| 78 | } | 
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| 79 | DistanceList.clear(); | 
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| 80 | DistanceIterators.clear(); | 
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| 81 | DistanceIterators.clear(); | 
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| 82 |  | 
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| 83 | /// Minimise the potential | 
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| 84 | // set Lagrange multiplier constants | 
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| 85 | PenaltyConstants[0] = 10.; | 
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| 86 | PenaltyConstants[1] = 1.; | 
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| 87 | PenaltyConstants[2] = 1e+7;    // just a huge penalty | 
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| 88 | // generate the distance list | 
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| 89 | LOG(1, "Allocating, initializting and filling the distance list ... "); | 
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| 90 | FillDistanceList(); | 
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| 91 |  | 
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| 92 | // create the initial PermutationMap (source -> target) | 
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| 93 | CreateInitialLists(); | 
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| 94 |  | 
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| 95 | // make the PermutationMap injective by checking whether we have a non-zero constants[2] term in it | 
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| 96 | LOG(1, "Making the PermutationMap injective ... "); | 
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| 97 | MakeInjectivePermutation(); | 
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| 98 | DoubleList.clear(); | 
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| 99 |  | 
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| 100 | // argument minimise the constrained potential in this injective PermutationMap | 
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| 101 | LOG(1, "Argument minimising the PermutationMap."); | 
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| 102 | OldPotential = 1e+10; | 
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| 103 | round = 0; | 
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| 104 | do { | 
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| 105 | LOG(2, "Starting round " << ++round << ", at current potential " << OldPotential << " ... "); | 
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| 106 | OlderPotential = OldPotential; | 
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| 107 | World::AtomComposite::const_iterator iter; | 
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| 108 | do { | 
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| 109 | iter = atoms.begin(); | 
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| 110 | for (; iter != atoms.end(); ++iter) { | 
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| 111 | CalculateDoubleList(); | 
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| 112 | PrintPermutationMap(); | 
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| 113 | Sprinter = DistanceIterators[(*iter)]->second;   // store initial partner | 
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| 114 | Strider = DistanceIterators[(*iter)];  //remember old iterator | 
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| 115 | DistanceIterators[(*iter)] = StepList[(*iter)]; | 
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| 116 | if (DistanceIterators[(*iter)] == DistanceList[(*iter)].end()) {// stop, before we run through the list and still on | 
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| 117 | DistanceIterators[(*iter)] == DistanceList[(*iter)].begin(); | 
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| 118 | break; | 
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| 119 | } | 
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| 120 | //LOG(2, "Current Walker: " << *(*iter) << " with old/next candidate " << *Sprinter << "/" << *DistanceIterators[(*iter)]->second << "."); | 
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| 121 | // find source of the new target | 
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| 122 | World::AtomComposite::const_iterator runner = atoms.begin(); | 
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| 123 | for (; runner != atoms.end(); ++runner) { // find the source whose toes we might be stepping on (Walker's new target should be in use by another already) | 
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| 124 | if (PermutationMap[(*runner)] == DistanceIterators[(*iter)]->second) { | 
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| 125 | //LOG(2, "Found the corresponding owner " << *(*runner) << " to " << *PermutationMap[(*runner)] << "."); | 
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| 126 | break; | 
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| 127 | } | 
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| 128 | } | 
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| 129 | if (runner != atoms.end()) { // we found the other source | 
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| 130 | // then look in its distance list for Sprinter | 
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| 131 | Rider = DistanceList[(*runner)].begin(); | 
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| 132 | for (; Rider != DistanceList[(*runner)].end(); Rider++) | 
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| 133 | if (Rider->second == Sprinter) | 
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| 134 | break; | 
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| 135 | if (Rider != DistanceList[(*runner)].end()) { // if we have found one | 
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| 136 | //LOG(2, "Current Other: " << *(*runner) << " with old/next candidate " << *PermutationMap[(*runner)] << "/" << *Rider->second << "."); | 
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| 137 | // exchange both | 
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| 138 | PermutationMap[(*iter)] = DistanceIterators[(*iter)]->second; // put next farther distance into PermutationMap | 
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| 139 | PermutationMap[(*runner)] = Sprinter;  // and hand the old target to its respective owner | 
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| 140 | CalculateDoubleList(); | 
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| 141 | PrintPermutationMap(); | 
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| 142 | // calculate the new potential | 
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| 143 | //LOG(2, "Checking new potential ..."); | 
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| 144 | Potential = ConstrainedPotential(); | 
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| 145 | if (Potential > OldPotential) { // we made everything worse! Undo ... | 
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| 146 | //LOG(3, "Nay, made the potential worse: " << Potential << " vs. " << OldPotential << "!"); | 
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| 147 | //LOG(3, "Setting " << *(*runner) << "'s source to " << *DistanceIterators[(*runner)]->second << "."); | 
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| 148 | // Undo for Runner (note, we haven't moved the iteration yet, we may use this) | 
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| 149 | PermutationMap[(*runner)] = DistanceIterators[(*runner)]->second; | 
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| 150 | // Undo for Walker | 
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| 151 | DistanceIterators[(*iter)] = Strider;  // take next farther distance target | 
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| 152 | //LOG(3, "Setting " << *(*iter) << "'s source to " << *DistanceIterators[(*iter)]->second << "."); | 
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| 153 | PermutationMap[(*iter)] = DistanceIterators[(*iter)]->second; | 
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| 154 | } else { | 
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| 155 | DistanceIterators[(*runner)] = Rider;  // if successful also move the pointer in the iterator list | 
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| 156 | LOG(3, "Found a better permutation, new potential is " << Potential << " vs." << OldPotential << "."); | 
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| 157 | OldPotential = Potential; | 
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| 158 | } | 
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| 159 | if (Potential > PenaltyConstants[2]) { | 
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| 160 | ELOG(1, "The two-step permutation procedure did not maintain injectivity!"); | 
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| 161 | exit(255); | 
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| 162 | } | 
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| 163 | } else { | 
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| 164 | ELOG(1, **runner << " was not the owner of " << *Sprinter << "!"); | 
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| 165 | exit(255); | 
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| 166 | } | 
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| 167 | } else { | 
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| 168 | PermutationMap[(*iter)] = DistanceIterators[(*iter)]->second; // new target has no source! | 
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| 169 | } | 
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| 170 | StepList[(*iter)]++; // take next farther distance target | 
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| 171 | } | 
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| 172 | } while (++iter != atoms.end()); | 
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| 173 | } while ((OlderPotential - OldPotential) > 1e-3); | 
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| 174 | LOG(1, "done."); | 
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| 175 |  | 
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| 176 |  | 
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| 177 | return ConstrainedPotential(); | 
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| 178 | } | 
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| 179 |  | 
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| 180 | void MinimiseConstrainedPotential::FillDistanceList() | 
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| 181 | { | 
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| 182 | for (World::AtomComposite::const_iterator iter = atoms.begin(); iter != atoms.end(); ++iter) { | 
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| 183 | for (World::AtomComposite::const_iterator runner = atoms.begin(); runner != atoms.end(); ++runner) { | 
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| 184 | DistanceList[(*iter)].insert( DistancePair((*iter)->getPositionAtStep(startstep).distance((*runner)->getPositionAtStep(endstep)), (*runner)) ); | 
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| 185 | } | 
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| 186 | } | 
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| 187 | }; | 
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| 188 |  | 
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| 189 | void MinimiseConstrainedPotential::CreateInitialLists() | 
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| 190 | { | 
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| 191 | for (World::AtomComposite::const_iterator iter = atoms.begin(); iter != atoms.end(); ++iter) { | 
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| 192 | StepList[(*iter)] = DistanceList[(*iter)].begin();    // stores the step to the next iterator that could be a possible next target | 
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| 193 | PermutationMap[(*iter)] = DistanceList[(*iter)].begin()->second;   // always pick target with the smallest distance | 
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| 194 | DoubleList[DistanceList[(*iter)].begin()->second]++;            // increase this target's source count (>1? not injective) | 
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| 195 | DistanceIterators[(*iter)] = DistanceList[(*iter)].begin();    // and remember which one we picked | 
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| 196 | LOG(2, **iter << " starts with distance " << DistanceList[(*iter)].begin()->first << "."); | 
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| 197 | } | 
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| 198 | }; | 
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| 199 |  | 
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| 200 | void MinimiseConstrainedPotential::MakeInjectivePermutation() | 
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| 201 | { | 
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| 202 | World::AtomComposite::const_iterator iter = atoms.begin(); | 
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| 203 | DistanceMap::iterator NewBase; | 
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| 204 | double Potential = fabs(ConstrainedPotential()); | 
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| 205 |  | 
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| 206 | if (atoms.empty()) { | 
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| 207 | ELOG(1, "Molecule is empty."); | 
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| 208 | return; | 
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| 209 | } | 
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| 210 | while ((Potential) > PenaltyConstants[2]) { | 
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| 211 | CalculateDoubleList(); | 
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| 212 | PrintPermutationMap(); | 
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| 213 | iter++; | 
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| 214 | if (iter == atoms.end()) // round-robin at the end | 
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| 215 | iter = atoms.begin(); | 
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| 216 | if (DoubleList[DistanceIterators[(*iter)]->second] <= 1)  // no need to make those injective that aren't | 
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| 217 | continue; | 
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| 218 | // now, try finding a new one | 
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| 219 | Potential = TryNextNearestNeighbourForInjectivePermutation((*iter), Potential); | 
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| 220 | } | 
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| 221 | for (World::AtomComposite::const_iterator iter = atoms.begin(); iter != atoms.end(); ++iter) { | 
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| 222 | // now each single entry in the DoubleList should be <=1 | 
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| 223 | if (DoubleList[*iter] > 1) { | 
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| 224 | ELOG(0, "Failed to create an injective PermutationMap!"); | 
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| 225 | performCriticalExit(); | 
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| 226 | } | 
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| 227 | } | 
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| 228 | LOG(1, "done."); | 
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| 229 | }; | 
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| 230 |  | 
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| 231 | unsigned int MinimiseConstrainedPotential::CalculateDoubleList() | 
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| 232 | { | 
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| 233 | for (World::AtomComposite::const_iterator iter = atoms.begin(); iter != atoms.end(); ++iter) | 
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| 234 | DoubleList[*iter] = 0; | 
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| 235 | unsigned int doubles = 0; | 
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| 236 | for (World::AtomComposite::const_iterator iter = atoms.begin(); iter != atoms.end(); ++iter) | 
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| 237 | DoubleList[ PermutationMap[*iter] ]++; | 
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| 238 | for (World::AtomComposite::const_iterator iter = atoms.begin(); iter != atoms.end(); ++iter) | 
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| 239 | if (DoubleList[*iter] > 1) | 
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| 240 | doubles++; | 
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| 241 | if (doubles >0) | 
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| 242 | LOG(2, "Found " << doubles << " Doubles."); | 
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| 243 | return doubles; | 
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| 244 | }; | 
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| 245 |  | 
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| 246 | void MinimiseConstrainedPotential::PrintPermutationMap() const | 
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| 247 | { | 
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| 248 | stringstream zeile1, zeile2; | 
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| 249 | int doubles = 0; | 
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| 250 | zeile1 << "PermutationMap: "; | 
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| 251 | zeile2 << "                "; | 
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| 252 | for (World::AtomComposite::const_iterator iter = atoms.begin(); iter != atoms.end(); ++iter) { | 
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| 253 | zeile1 << (*iter)->getName() << " "; | 
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| 254 | zeile2 << (PermutationMap[*iter])->getName() << " "; | 
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| 255 | } | 
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| 256 | for (World::AtomComposite::const_iterator iter = atoms.begin(); iter != atoms.end(); ++iter) { | 
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| 257 | std::map<atom *, unsigned int>::const_iterator value_iter = DoubleList.find(*iter); | 
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| 258 | if (value_iter->second > (unsigned int)1) | 
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| 259 | doubles++; | 
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| 260 | } | 
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| 261 | if (doubles >0) | 
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| 262 | LOG(2, "Found " << doubles << " Doubles."); | 
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| 263 | //  LOG(2, zeile1.str() << endl << zeile2.str()); | 
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| 264 | }; | 
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| 265 |  | 
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| 266 | double MinimiseConstrainedPotential::ConstrainedPotential() | 
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| 267 | { | 
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| 268 | double tmp = 0.; | 
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| 269 | double result = 0.; | 
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| 270 | // go through every atom | 
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| 271 | atom *Runner = NULL; | 
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| 272 | for (World::AtomComposite::const_iterator iter = atoms.begin(); iter != atoms.end(); ++iter) { | 
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| 273 | // first term: distance to target | 
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| 274 | Runner = PermutationMap[(*iter)];   // find target point | 
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| 275 | tmp = ((*iter)->getPositionAtStep(startstep).distance(Runner->getPositionAtStep(endstep))); | 
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| 276 | tmp *= IsAngstroem ? 1. : 1./AtomicLengthToAngstroem; | 
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| 277 | result += PenaltyConstants[0] * tmp; | 
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| 278 | //LOG(4, "Adding " << tmp*constants[0] << "."); | 
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| 279 |  | 
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| 280 | // second term: sum of distances to other trajectories | 
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| 281 | result += SumDistanceOfTrajectories((*iter)); | 
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| 282 |  | 
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| 283 | // third term: penalty for equal targets | 
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| 284 | result += PenalizeEqualTargets((*iter)); | 
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| 285 | } | 
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| 286 |  | 
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| 287 | return result; | 
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| 288 | }; | 
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| 289 |  | 
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| 290 | double MinimiseConstrainedPotential::TryNextNearestNeighbourForInjectivePermutation(atom *Walker, double &OldPotential) | 
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| 291 | { | 
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| 292 | double Potential = 0; | 
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| 293 | DistanceMap::iterator NewBase = DistanceIterators[Walker];  // store old base | 
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| 294 | do { | 
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| 295 | NewBase++;  // take next further distance in distance to targets list that's a target of no one | 
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| 296 | } while ((DoubleList[NewBase->second] != 0) && (NewBase != DistanceList[Walker].end())); | 
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| 297 | if (NewBase != DistanceList[Walker].end()) { | 
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| 298 | PermutationMap[Walker] = NewBase->second; | 
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| 299 | Potential = fabs(ConstrainedPotential()); | 
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| 300 | if (Potential > OldPotential) { // undo | 
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| 301 | PermutationMap[Walker] = DistanceIterators[Walker]->second; | 
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| 302 | } else {  // do | 
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| 303 | DoubleList[DistanceIterators[Walker]->second]--;  // decrease the old entry in the doubles list | 
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| 304 | DoubleList[NewBase->second]++;    // increase the old entry in the doubles list | 
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| 305 | DistanceIterators[Walker] = NewBase; | 
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| 306 | OldPotential = Potential; | 
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| 307 | LOG(3, "Found a new permutation, new potential is " << OldPotential << "."); | 
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| 308 | } | 
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| 309 | } | 
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| 310 | return Potential; | 
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| 311 | }; | 
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| 312 |  | 
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| 313 | double MinimiseConstrainedPotential::PenalizeEqualTargets(atom *Walker) | 
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| 314 | { | 
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| 315 | double result = 0.; | 
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| 316 | for (World::AtomComposite::const_iterator iter = atoms.begin(); iter != atoms.end(); ++iter) { | 
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| 317 | if ((PermutationMap[Walker] == PermutationMap[(*iter)]) && (Walker < (*iter))) { | 
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| 318 | //    atom *Sprinter = PermutationMap[Walker->nr]; | 
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| 319 | //    if (DoLog(0)) { | 
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| 320 | //        std::stringstream output; | 
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| 321 | //        output << *Walker << " and " << *(*iter) << " are heading to the same target at "; | 
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| 322 | //        output << Sprinter->getPosition(endstep); | 
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| 323 | //        output << ", penalting."; | 
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| 324 | //        LOG(0, output.str()); | 
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| 325 | //    } | 
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| 326 | result += PenaltyConstants[2]; | 
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| 327 | //LOG(4, "INFO: Adding " << constants[2] << "."); | 
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| 328 | } | 
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| 329 | } | 
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| 330 | return result; | 
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| 331 | }; | 
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| 332 |  | 
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| 333 | double MinimiseConstrainedPotential::SumDistanceOfTrajectories(atom *Walker) | 
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| 334 | { | 
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| 335 | gsl_matrix *A = gsl_matrix_alloc(NDIM,NDIM); | 
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| 336 | gsl_vector *x = gsl_vector_alloc(NDIM); | 
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| 337 | atom *Sprinter = NULL; | 
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| 338 | Vector trajectory1, trajectory2, normal, TestVector; | 
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| 339 | double Norm1, Norm2, tmp, result = 0.; | 
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| 340 |  | 
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| 341 | for (World::AtomComposite::const_iterator iter = atoms.begin(); iter != atoms.end(); ++iter) { | 
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| 342 | if ((*iter) == Walker) // hence, we only go up to the Walker, not beyond (similar to i=0; i<j; i++) | 
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| 343 | break; | 
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| 344 | // determine normalized trajectories direction vector (n1, n2) | 
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| 345 | Sprinter = PermutationMap[Walker];   // find first target point | 
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| 346 | trajectory1 = Sprinter->getPositionAtStep(endstep) - Walker->getPositionAtStep(startstep); | 
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| 347 | trajectory1.Normalize(); | 
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| 348 | Norm1 = trajectory1.Norm(); | 
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| 349 | Sprinter = PermutationMap[(*iter)];   // find second target point | 
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| 350 | trajectory2 = Sprinter->getPositionAtStep(endstep) - (*iter)->getPositionAtStep(startstep); | 
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| 351 | trajectory2.Normalize(); | 
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| 352 | Norm2 = trajectory1.Norm(); | 
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| 353 | // check whether either is zero() | 
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| 354 | if ((Norm1 < MYEPSILON) && (Norm2 < MYEPSILON)) { | 
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| 355 | tmp = Walker->getPositionAtStep(startstep).distance((*iter)->getPositionAtStep(startstep)); | 
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| 356 | } else if (Norm1 < MYEPSILON) { | 
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| 357 | Sprinter = PermutationMap[Walker];   // find first target point | 
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| 358 | trajectory1 = Sprinter->getPositionAtStep(endstep) - (*iter)->getPositionAtStep(startstep); | 
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| 359 | trajectory2 *= trajectory1.ScalarProduct(trajectory2); // trajectory2 is scaled to unity, hence we don't need to divide by anything | 
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| 360 | trajectory1 -= trajectory2;   // project the part in norm direction away | 
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| 361 | tmp = trajectory1.Norm();  // remaining norm is distance | 
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| 362 | } else if (Norm2 < MYEPSILON) { | 
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| 363 | Sprinter = PermutationMap[(*iter)];   // find second target point | 
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| 364 | trajectory2 = Sprinter->getPositionAtStep(endstep) - Walker->getPositionAtStep(startstep);  // copy second offset | 
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| 365 | trajectory1 *= trajectory2.ScalarProduct(trajectory1); // trajectory1 is scaled to unity, hence we don't need to divide by anything | 
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| 366 | trajectory2 -= trajectory1;   // project the part in norm direction away | 
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| 367 | tmp = trajectory2.Norm();  // remaining norm is distance | 
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| 368 | } else if ((fabs(trajectory1.ScalarProduct(trajectory2)/Norm1/Norm2) - 1.) < MYEPSILON) { // check whether they're linear dependent | 
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| 369 | //      std::stringstream output; | 
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| 370 | //      output << "Both trajectories of " << *Walker << " and " << *Runner << " are linear dependent: "; | 
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| 371 | //      output << trajectory1 << " and " << trajectory2; | 
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| 372 | //      LOG(3, output.str()); | 
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| 373 | tmp = Walker->getPositionAtStep(startstep).distance((*iter)->getPositionAtStep(startstep)); | 
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| 374 | //        LOG(0, " with distance " << tmp << "."); | 
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| 375 | } else { // determine distance by finding minimum distance | 
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| 376 | //      std::stringstream output; | 
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| 377 | //      output "Both trajectories of " << *Walker << " and " << *(*iter) << " are linear independent -- "; | 
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| 378 | //      output "First Trajectory: " << trajectory1 << ". Second Trajectory: " << trajectory2); | 
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| 379 | //      LOG(3, output.str()); | 
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| 380 | // determine normal vector for both | 
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| 381 | normal = Plane(trajectory1, trajectory2,0).getNormal(); | 
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| 382 | // print all vectors for debugging | 
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| 383 | //        LOG(3, "INFO: Normal vector in between: " << normal); | 
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| 384 | // setup matrix | 
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| 385 | for (int i=NDIM;i--;) { | 
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| 386 | gsl_matrix_set(A, 0, i, trajectory1[i]); | 
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| 387 | gsl_matrix_set(A, 1, i, trajectory2[i]); | 
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| 388 | gsl_matrix_set(A, 2, i, normal[i]); | 
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| 389 | gsl_vector_set(x,i, (Walker->getPositionAtStep(startstep)[i] - (*iter)->getPositionAtStep(startstep)[i])); | 
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| 390 | } | 
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| 391 | // solve the linear system by Householder transformations | 
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| 392 | gsl_linalg_HH_svx(A, x); | 
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| 393 | // distance from last component | 
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| 394 | tmp = gsl_vector_get(x,2); | 
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| 395 | //      LOG(0, " with distance " << tmp << "."); | 
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| 396 | // test whether we really have the intersection (by checking on c_1 and c_2) | 
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| 397 | trajectory1.Scale(gsl_vector_get(x,0)); | 
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| 398 | trajectory2.Scale(gsl_vector_get(x,1)); | 
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| 399 | normal.Scale(gsl_vector_get(x,2)); | 
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| 400 | TestVector = (*iter)->getPositionAtStep(startstep) + trajectory2 + normal | 
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| 401 | - (Walker->getPositionAtStep(startstep) + trajectory1); | 
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| 402 | if (TestVector.Norm() < MYEPSILON) { | 
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| 403 | //        LOG(2, "Test: ok.\tDistance of " << tmp << " is correct."); | 
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| 404 | } else { | 
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| 405 | //        LOG(2, "Test: failed.\tIntersection is off by " << TestVector << "."); | 
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| 406 | } | 
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| 407 | } | 
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| 408 | // add up | 
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| 409 | tmp *= IsAngstroem ? 1. : 1./AtomicLengthToAngstroem; | 
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| 410 | if (fabs(tmp) > MYEPSILON) { | 
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| 411 | result += PenaltyConstants[1] * 1./tmp; | 
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| 412 | //LOG(4, "Adding " << 1./tmp*constants[1] << "."); | 
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| 413 | } | 
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| 414 | } | 
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| 415 | return result; | 
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| 416 | }; | 
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| 417 |  | 
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| 418 | void MinimiseConstrainedPotential::EvaluateConstrainedForces(ForceMatrix *Force) | 
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| 419 | { | 
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| 420 | double constant = 10.; | 
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| 421 |  | 
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| 422 | /// evaluate forces (only the distance to target dependent part) with the final PermutationMap | 
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| 423 | LOG(1, "Calculating forces and adding onto ForceMatrix ... "); | 
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| 424 | for(World::AtomComposite::const_iterator iter = atoms.begin(); iter != atoms.end(); ++iter) { | 
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| 425 | atom *Sprinter = PermutationMap[(*iter)]; | 
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| 426 | // set forces | 
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| 427 | for (int i=NDIM;i++;) | 
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| 428 | Force->Matrix[0][(*iter)->getNr()][5+i] += 2.*constant*sqrt((*iter)->getPositionAtStep(startstep).distance(Sprinter->getPositionAtStep(endstep))); | 
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| 429 | } | 
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| 430 | LOG(1, "done."); | 
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| 431 | }; | 
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| 432 |  | 
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