source: src/Analysis/analysis_correlation.cpp@ a860a1

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Last change on this file since a860a1 was cda81d, checked in by Frederik Heber <heber@…>, 14 years ago

DipoleAngularCorrelation is now calculated per time step not over all time steps combined.

  • Property mode set to 100644
File size: 31.8 KB
RevLine 
[bcf653]1/*
2 * Project: MoleCuilder
3 * Description: creates and alters molecular systems
4 * Copyright (C) 2010 University of Bonn. All rights reserved.
5 * Please see the LICENSE file or "Copyright notice" in builder.cpp for details.
6 */
7
[c4d4df]8/*
9 * analysis.cpp
10 *
11 * Created on: Oct 13, 2009
12 * Author: heber
13 */
14
[bf3817]15// include config.h
16#ifdef HAVE_CONFIG_H
17#include <config.h>
18#endif
19
[ad011c]20#include "CodePatterns/MemDebug.hpp"
[112b09]21
[c4d4df]22#include <iostream>
[36166d]23#include <iomanip>
[c4d4df]24
[be945c]25#include "atom.hpp"
[129204]26#include "Bond/bond.hpp"
[d127c8]27#include "Tesselation/BoundaryTriangleSet.hpp"
[be945c]28#include "Box.hpp"
[3bdb6d]29#include "Element/element.hpp"
[ad011c]30#include "CodePatterns/Info.hpp"
31#include "CodePatterns/Log.hpp"
[208237b]32#include "CodePatterns/Verbose.hpp"
[4b8630]33#include "Descriptors/MoleculeOfAtomSelectionDescriptor.hpp"
[ea430a]34#include "Formula.hpp"
[208237b]35#include "LinearAlgebra/Vector.hpp"
36#include "LinearAlgebra/RealSpaceMatrix.hpp"
[c4d4df]37#include "molecule.hpp"
[d127c8]38#include "Tesselation/tesselation.hpp"
39#include "Tesselation/tesselationhelpers.hpp"
40#include "Tesselation/triangleintersectionlist.hpp"
[be945c]41#include "World.hpp"
[208237b]42#include "WorldTime.hpp"
[c4d4df]43
[be945c]44#include "analysis_correlation.hpp"
45
46/** Calculates the dipole vector of a given atomSet.
47 *
48 * Note that we use the following procedure as rule of thumb:
49 * -# go through every bond of the atom
[d1912f]50 * -# calculate the difference of electronegativities \f$\Delta\mathrm{EN}\f$
51 * -# if \f$\Delta\mathrm{EN} > 0.5\f$, we align the bond vector in direction of the more negative element
[be945c]52 * -# sum up all vectors
53 * -# finally, divide by the number of summed vectors
54 *
55 * @param atomsbegin begin iterator of atomSet
56 * @param atomsend end iterator of atomset
57 * @return dipole vector
58 */
59Vector getDipole(molecule::const_iterator atomsbegin, molecule::const_iterator atomsend)
60{
61 Vector DipoleVector;
62 size_t SumOfVectors = 0;
63 // go through all atoms
64 for (molecule::const_iterator atomiter = atomsbegin;
65 atomiter != atomsend;
66 ++atomiter) {
67 // go through all bonds
[9d83b6]68 const BondList& ListOfBonds = (*atomiter)->getListOfBonds();
[4fc828]69 ASSERT(ListOfBonds.begin() != ListOfBonds.end(),
70 "getDipole() - no bonds in molecule!");
[9d83b6]71 for (BondList::const_iterator bonditer = ListOfBonds.begin();
72 bonditer != ListOfBonds.end();
[be945c]73 ++bonditer) {
74 const atom * Otheratom = (*bonditer)->GetOtherAtom(*atomiter);
75 if (Otheratom->getId() > (*atomiter)->getId()) {
76 const double DeltaEN = (*atomiter)->getType()->getElectronegativity()
77 -Otheratom->getType()->getElectronegativity();
78 Vector BondDipoleVector = (*atomiter)->getPosition() - Otheratom->getPosition();
79 // DeltaEN is always positive, gives correct orientation of vector
80 BondDipoleVector.Normalize();
81 BondDipoleVector *= DeltaEN;
[4fc828]82 LOG(3,"INFO: Dipole vector from bond " << **bonditer << " is " << BondDipoleVector);
[be945c]83 DipoleVector += BondDipoleVector;
84 SumOfVectors++;
85 }
86 }
87 }
[4fc828]88 LOG(3,"INFO: Sum over all bond dipole vectors is "
89 << DipoleVector << " with " << SumOfVectors << " in total.");
90 if (SumOfVectors != 0)
91 DipoleVector *= 1./(double)SumOfVectors;
[be945c]92 DoLog(1) && (Log() << Verbose(1) << "Resulting dipole vector is " << DipoleVector << std::endl);
93
94 return DipoleVector;
95};
96
[1cc661]97/** Calculate minimum and maximum amount of trajectory steps by going through given atomic trajectories.
98 * \param vector of atoms whose trajectories to check for [min,max]
99 * \return range with [min, max]
100 */
101range<size_t> getMaximumTrajectoryBounds(std::vector<atom *> &atoms)
102{
103 // get highest trajectory size
104 LOG(0,"STATUS: Retrieving maximum amount of time steps ...");
105 size_t max_timesteps = 0;
106 size_t min_timesteps = -1;
107 BOOST_FOREACH(atom *_atom, atoms) {
108 if (_atom->getTrajectorySize() > max_timesteps)
109 max_timesteps = _atom->getTrajectorySize();
110 if ((_atom->getTrajectorySize() <= max_timesteps) && (min_timesteps == (size_t)-1))
111 min_timesteps = _atom->getTrajectorySize();
112 }
113 LOG(1,"INFO: Minimum number of time steps found is " << min_timesteps);
114 LOG(1,"INFO: Maximum number of time steps found is " << max_timesteps);
115
116 return range<size_t>(min_timesteps, max_timesteps);
117}
118
[0a7fad]119/** Calculates the angular dipole zero orientation from current time step.
120 * \param atoms vector of atoms to calculate it for
121 * \return map with orientation vector for each atomic id given in \a atoms.
122 */
123std::map<atomId_t, Vector> CalculateZeroAngularDipole(std::vector<atom *> &atoms)
124{
125 // calculate molecules for this time step
126 std::set<molecule *> molecules;
127 BOOST_FOREACH(atom *_atom, atoms)
128 molecules.insert(_atom->getMolecule());
129
130 // get zero orientation for each molecule.
131 LOG(0,"STATUS: Calculating dipoles for first time step ...");
132 std::map<atomId_t, Vector> ZeroVector;
133 BOOST_FOREACH(molecule *_mol, molecules) {
134 const Vector Dipole = getDipole(_mol->begin(), _mol->end());
135 for(molecule::const_iterator iter = _mol->begin(); iter != _mol->end(); ++iter)
136 ZeroVector[(*iter)->getId()] = Dipole;
137 LOG(2,"INFO: Zero alignment for molecule " << _mol->getId() << " is " << Dipole);
138 }
139 LOG(1,"INFO: We calculated zero orientation for a total of " << molecules.size() << " molecule(s).");
140
141 return ZeroVector;
142}
[1cc661]143
[ea430a]144/** Calculates the dipole angular correlation for given molecule type.
[208237b]145 * Calculate the change of the dipole orientation angle over time.
[ea430a]146 * Note given element order is unimportant (i.e. g(Si, O) === g(O, Si))
[be945c]147 * Angles are given in degrees.
[4b8630]148 * \param &atoms list of atoms of the molecules taking part (Note: molecules may
149 * change over time as bond structure is recalculated, hence we need the atoms)
[cda81d]150 * \param timestep time step to calculate angular correlation for (relative to
151 * \a ZeroVector)
[325687]152 * \param ZeroVector map with Zero orientation vector for each atom in \a atoms.
[cda81d]153 * Is filled from initial time step if size of map does not match size of \a atoms.
[ea430a]154 * \return Map of doubles with values the pair of the two atoms.
155 */
[325687]156DipoleAngularCorrelationMap *DipoleAngularCorrelation(
157 std::vector<atom *> &atoms,
[cda81d]158 const size_t timestep,
[325687]159 std::map<atomId_t, Vector> &ZeroVector
160 )
[ea430a]161{
162 Info FunctionInfo(__func__);
[caa30b]163 DipoleAngularCorrelationMap *outmap = new DipoleAngularCorrelationMap;
[be945c]164
[cda81d]165 // get zero orientation for each molecule if not given
166 if (ZeroVector.size() != atoms.size()) {
167 ZeroVector.clear();
168 ZeroVector = CalculateZeroAngularDipole(atoms);
169 }
170
[208237b]171 // store original time step
172 const unsigned int oldtime = WorldTime::getTime();
[0a7fad]173
[cda81d]174 // set time step
175 World::getInstance().setTime(timestep);
176
177 // get all molecules for this time step
178 LOG(0,"STATUS: Gathering molecules for time step " << timestep << " ...");
[0a7fad]179 std::set<molecule *> molecules;
[4b8630]180 BOOST_FOREACH(atom *_atom, atoms)
181 molecules.insert(_atom->getMolecule());
[208237b]182
[cda81d]183 // calculate dipoles for each
184 LOG(0,"STATUS: Calculating dipoles for time step " << timestep << " ...");
185 size_t i=0;
186 BOOST_FOREACH(molecule *_mol, molecules) {
187 const Vector Dipole = getDipole(_mol->begin(), _mol->end());
188 LOG(2,"INFO: Dipole vector at time step " << timestep << " for for molecule "
189 << _mol->getId() << " is " << Dipole);
190 molecule::const_iterator iter = _mol->begin();
191 ASSERT(ZeroVector.count((*iter)->getId()),
192 "DipoleAngularCorrelation() - ZeroVector for atom "+toString(**iter)+" not present.");
193 double angle = 0.;
194 LOG(2, "INFO: ZeroVector of first atom " << **iter << " is "
195 << ZeroVector[(*iter)->getId()] << ".");
196 LOG(4, "INFO: Squared norm of difference vector is "
197 << (ZeroVector[(*iter)->getId()] - Dipole).NormSquared() << ".");
198 if ((ZeroVector[(*iter)->getId()] - Dipole).NormSquared() > MYEPSILON)
199 angle = Dipole.Angle(ZeroVector[(*iter)->getId()]) * (180./M_PI);
200 else
201 LOG(2, "INFO: Both vectors (almost) coincide, numerically unstable, angle set to zero.");
202 LOG(1,"INFO: Resulting relative angle for molecule " << _mol->getName()
203 << " is " << angle << ".");
204 outmap->insert ( make_pair (angle, *iter ) );
205 ++i;
[208237b]206 }
207
[cda81d]208 // re-set to original time step again
[208237b]209 World::getInstance().setTime(oldtime);
[4fc828]210 LOG(0,"STATUS: Done.");
[208237b]211
212 // and return results
213 return outmap;
214};
215
216/** Calculates the dipole correlation for given molecule type.
217 * I.e. we calculate how the angle between any two given dipoles in the
218 * systems behaves. Sort of pair correlation but distance is replaced by
219 * the orientation distance, i.e. an angle.
220 * Note given element order is unimportant (i.e. g(Si, O) === g(O, Si))
221 * Angles are given in degrees.
222 * \param *molecules vector of molecules
223 * \return Map of doubles with values the pair of the two atoms.
224 */
225DipoleCorrelationMap *DipoleCorrelation(std::vector<molecule *> &molecules)
226{
227 Info FunctionInfo(__func__);
228 DipoleCorrelationMap *outmap = new DipoleCorrelationMap;
229// double distance = 0.;
230// Box &domain = World::getInstance().getDomain();
231//
232 if (molecules.empty()) {
233 DoeLog(1) && (eLog()<< Verbose(1) <<"No molecule given." << endl);
234 return outmap;
235 }
236
[be945c]237 for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin();
[92e5cb]238 MolWalker != molecules.end(); ++MolWalker) {
[be945c]239 DoLog(2) && (Log()<< Verbose(2) << "Current molecule is "
240 << (*MolWalker)->getId() << "." << endl);
241 const Vector Dipole = getDipole((*MolWalker)->begin(), (*MolWalker)->end());
[92e5cb]242 std::vector<molecule *>::const_iterator MolOtherWalker = MolWalker;
243 for (++MolOtherWalker;
[be945c]244 MolOtherWalker != molecules.end();
[92e5cb]245 ++MolOtherWalker) {
[be945c]246 DoLog(2) && (Log() << Verbose(2) << "Current other molecule is "
247 << (*MolOtherWalker)->getId() << "." << endl);
248 const Vector OtherDipole = getDipole((*MolOtherWalker)->begin(), (*MolOtherWalker)->end());
249 const double angle = Dipole.Angle(OtherDipole) * (180./M_PI);
250 DoLog(1) && (Log() << Verbose(1) << "Angle is " << angle << "." << endl);
251 outmap->insert ( make_pair (angle, make_pair ((*MolWalker), (*MolOtherWalker)) ) );
252 }
253 }
[ea430a]254 return outmap;
255};
256
[c4d4df]257
258/** Calculates the pair correlation between given elements.
259 * Note given element order is unimportant (i.e. g(Si, O) === g(O, Si))
[e65de8]260 * \param *molecules vector of molecules
[c78d44]261 * \param &elements vector of elements to correlate
[c4d4df]262 * \return Map of doubles with values the pair of the two atoms.
263 */
[e5c0a1]264PairCorrelationMap *PairCorrelation(std::vector<molecule *> &molecules, const std::vector<const element *> &elements)
[c4d4df]265{
[3930eb]266 Info FunctionInfo(__func__);
[caa30b]267 PairCorrelationMap *outmap = new PairCorrelationMap;
[c4d4df]268 double distance = 0.;
[014475]269 Box &domain = World::getInstance().getDomain();
[c4d4df]270
[e65de8]271 if (molecules.empty()) {
[58ed4a]272 DoeLog(1) && (eLog()<< Verbose(1) <<"No molecule given." << endl);
[c4d4df]273 return outmap;
274 }
[e65de8]275 for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++)
[009607e]276 (*MolWalker)->doCountAtoms();
[c78d44]277
278 // create all possible pairs of elements
[e5c0a1]279 set <pair<const element *,const element *> > PairsOfElements;
[c78d44]280 if (elements.size() >= 2) {
[e5c0a1]281 for (vector<const element *>::const_iterator type1 = elements.begin(); type1 != elements.end(); ++type1)
282 for (vector<const element *>::const_iterator type2 = elements.begin(); type2 != elements.end(); ++type2)
[c78d44]283 if (type1 != type2) {
[e5c0a1]284 PairsOfElements.insert( make_pair(*type1,*type2) );
[2fe971]285 DoLog(1) && (Log() << Verbose(1) << "Creating element pair " << *(*type1) << " and " << *(*type2) << "." << endl);
[c78d44]286 }
287 } else if (elements.size() == 1) { // one to all are valid
[e5c0a1]288 const element *elemental = *elements.begin();
289 PairsOfElements.insert( pair<const element *,const element*>(elemental,0) );
290 PairsOfElements.insert( pair<const element *,const element*>(0,elemental) );
[c78d44]291 } else { // all elements valid
292 PairsOfElements.insert( pair<element *, element*>((element *)NULL, (element *)NULL) );
293 }
294
[c4d4df]295 outmap = new PairCorrelationMap;
[e65de8]296 for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++){
297 DoLog(2) && (Log()<< Verbose(2) << "Current molecule is " << *MolWalker << "." << endl);
298 for (molecule::const_iterator iter = (*MolWalker)->begin(); iter != (*MolWalker)->end(); ++iter) {
299 DoLog(3) && (Log() << Verbose(3) << "Current atom is " << **iter << "." << endl);
300 for (std::vector<molecule *>::const_iterator MolOtherWalker = MolWalker; MolOtherWalker != molecules.end(); MolOtherWalker++){
301 DoLog(2) && (Log() << Verbose(2) << "Current other molecule is " << *MolOtherWalker << "." << endl);
302 for (molecule::const_iterator runner = (*MolOtherWalker)->begin(); runner != (*MolOtherWalker)->end(); ++runner) {
303 DoLog(3) && (Log() << Verbose(3) << "Current otheratom is " << **runner << "." << endl);
304 if ((*iter)->getId() < (*runner)->getId()){
[b5c53d]305 for (set <pair<const element *, const element *> >::iterator PairRunner = PairsOfElements.begin(); PairRunner != PairsOfElements.end(); ++PairRunner)
[d74077]306 if ((PairRunner->first == (**iter).getType()) && (PairRunner->second == (**runner).getType())) {
307 distance = domain.periodicDistance((*iter)->getPosition(),(*runner)->getPosition());
[e65de8]308 //Log() << Verbose(1) <<"Inserting " << *(*iter) << " and " << *(*runner) << endl;
309 outmap->insert ( pair<double, pair <atom *, atom*> > (distance, pair<atom *, atom*> ((*iter), (*runner)) ) );
[a5551b]310 }
[c4d4df]311 }
[a5551b]312 }
[c4d4df]313 }
314 }
[24725c]315 }
[c4d4df]316 return outmap;
317};
318
[7ea9e6]319/** Calculates the pair correlation between given elements.
320 * Note given element order is unimportant (i.e. g(Si, O) === g(O, Si))
321 * \param *molecules list of molecules structure
[c78d44]322 * \param &elements vector of elements to correlate
[7ea9e6]323 * \param ranges[NDIM] interval boundaries for the periodic images to scan also
324 * \return Map of doubles with values the pair of the two atoms.
325 */
[e5c0a1]326PairCorrelationMap *PeriodicPairCorrelation(std::vector<molecule *> &molecules, const std::vector<const element *> &elements, const int ranges[NDIM] )
[7ea9e6]327{
[3930eb]328 Info FunctionInfo(__func__);
[caa30b]329 PairCorrelationMap *outmap = new PairCorrelationMap;
[7ea9e6]330 double distance = 0.;
331 int n[NDIM];
332 Vector checkX;
333 Vector periodicX;
334 int Othern[NDIM];
335 Vector checkOtherX;
336 Vector periodicOtherX;
337
[e65de8]338 if (molecules.empty()) {
[58ed4a]339 DoeLog(1) && (eLog()<< Verbose(1) <<"No molecule given." << endl);
[7ea9e6]340 return outmap;
341 }
[e65de8]342 for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++)
[009607e]343 (*MolWalker)->doCountAtoms();
[c78d44]344
345 // create all possible pairs of elements
[e5c0a1]346 set <pair<const element *,const element *> > PairsOfElements;
[c78d44]347 if (elements.size() >= 2) {
[e5c0a1]348 for (vector<const element *>::const_iterator type1 = elements.begin(); type1 != elements.end(); ++type1)
349 for (vector<const element *>::const_iterator type2 = elements.begin(); type2 != elements.end(); ++type2)
[c78d44]350 if (type1 != type2) {
[e5c0a1]351 PairsOfElements.insert( make_pair(*type1,*type2) );
[2fe971]352 DoLog(1) && (Log() << Verbose(1) << "Creating element pair " << *(*type1) << " and " << *(*type2) << "." << endl);
[c78d44]353 }
354 } else if (elements.size() == 1) { // one to all are valid
[e5c0a1]355 const element *elemental = *elements.begin();
356 PairsOfElements.insert( pair<const element *,const element*>(elemental,0) );
357 PairsOfElements.insert( pair<const element *,const element*>(0,elemental) );
[c78d44]358 } else { // all elements valid
359 PairsOfElements.insert( pair<element *, element*>((element *)NULL, (element *)NULL) );
360 }
361
[7ea9e6]362 outmap = new PairCorrelationMap;
[e65de8]363 for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++){
[cca9ef]364 RealSpaceMatrix FullMatrix = World::getInstance().getDomain().getM();
365 RealSpaceMatrix FullInverseMatrix = World::getInstance().getDomain().getMinv();
[e65de8]366 DoLog(2) && (Log()<< Verbose(2) << "Current molecule is " << *MolWalker << "." << endl);
367 for (molecule::const_iterator iter = (*MolWalker)->begin(); iter != (*MolWalker)->end(); ++iter) {
368 DoLog(3) && (Log() << Verbose(3) << "Current atom is " << **iter << "." << endl);
[d74077]369 periodicX = FullInverseMatrix * ((*iter)->getPosition()); // x now in [0,1)^3
[e65de8]370 // go through every range in xyz and get distance
371 for (n[0]=-ranges[0]; n[0] <= ranges[0]; n[0]++)
372 for (n[1]=-ranges[1]; n[1] <= ranges[1]; n[1]++)
373 for (n[2]=-ranges[2]; n[2] <= ranges[2]; n[2]++) {
374 checkX = FullMatrix * (Vector(n[0], n[1], n[2]) + periodicX);
375 for (std::vector<molecule *>::const_iterator MolOtherWalker = MolWalker; MolOtherWalker != molecules.end(); MolOtherWalker++){
376 DoLog(2) && (Log() << Verbose(2) << "Current other molecule is " << *MolOtherWalker << "." << endl);
377 for (molecule::const_iterator runner = (*MolOtherWalker)->begin(); runner != (*MolOtherWalker)->end(); ++runner) {
378 DoLog(3) && (Log() << Verbose(3) << "Current otheratom is " << **runner << "." << endl);
379 if ((*iter)->getId() < (*runner)->getId()){
[e5c0a1]380 for (set <pair<const element *,const element *> >::iterator PairRunner = PairsOfElements.begin(); PairRunner != PairsOfElements.end(); ++PairRunner)
[d74077]381 if ((PairRunner->first == (**iter).getType()) && (PairRunner->second == (**runner).getType())) {
382 periodicOtherX = FullInverseMatrix * ((*runner)->getPosition()); // x now in [0,1)^3
[e65de8]383 // go through every range in xyz and get distance
384 for (Othern[0]=-ranges[0]; Othern[0] <= ranges[0]; Othern[0]++)
385 for (Othern[1]=-ranges[1]; Othern[1] <= ranges[1]; Othern[1]++)
386 for (Othern[2]=-ranges[2]; Othern[2] <= ranges[2]; Othern[2]++) {
387 checkOtherX = FullMatrix * (Vector(Othern[0], Othern[1], Othern[2]) + periodicOtherX);
388 distance = checkX.distance(checkOtherX);
389 //Log() << Verbose(1) <<"Inserting " << *(*iter) << " and " << *(*runner) << endl;
390 outmap->insert ( pair<double, pair <atom *, atom*> > (distance, pair<atom *, atom*> ((*iter), (*runner)) ) );
391 }
392 }
[c78d44]393 }
[7ea9e6]394 }
[c78d44]395 }
[7ea9e6]396 }
397 }
[c78d44]398 }
[7ea9e6]399
400 return outmap;
401};
402
[c4d4df]403/** Calculates the distance (pair) correlation between a given element and a point.
[a5551b]404 * \param *molecules list of molecules structure
[c78d44]405 * \param &elements vector of elements to correlate with point
[c4d4df]406 * \param *point vector to the correlation point
407 * \return Map of dobules with values as pairs of atom and the vector
408 */
[e5c0a1]409CorrelationToPointMap *CorrelationToPoint(std::vector<molecule *> &molecules, const std::vector<const element *> &elements, const Vector *point )
[c4d4df]410{
[3930eb]411 Info FunctionInfo(__func__);
[caa30b]412 CorrelationToPointMap *outmap = new CorrelationToPointMap;
[c4d4df]413 double distance = 0.;
[014475]414 Box &domain = World::getInstance().getDomain();
[c4d4df]415
[e65de8]416 if (molecules.empty()) {
[a67d19]417 DoLog(1) && (Log() << Verbose(1) <<"No molecule given." << endl);
[c4d4df]418 return outmap;
419 }
[e65de8]420 for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++)
[009607e]421 (*MolWalker)->doCountAtoms();
[c4d4df]422 outmap = new CorrelationToPointMap;
[e65de8]423 for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++) {
424 DoLog(2) && (Log() << Verbose(2) << "Current molecule is " << *MolWalker << "." << endl);
425 for (molecule::const_iterator iter = (*MolWalker)->begin(); iter != (*MolWalker)->end(); ++iter) {
426 DoLog(3) && (Log() << Verbose(3) << "Current atom is " << **iter << "." << endl);
[e5c0a1]427 for (vector<const element *>::const_iterator type = elements.begin(); type != elements.end(); ++type)
[d74077]428 if ((*type == NULL) || ((*iter)->getType() == *type)) {
429 distance = domain.periodicDistance((*iter)->getPosition(),*point);
[e65de8]430 DoLog(4) && (Log() << Verbose(4) << "Current distance is " << distance << "." << endl);
431 outmap->insert ( pair<double, pair<atom *, const Vector*> >(distance, pair<atom *, const Vector*> ((*iter), point) ) );
432 }
[c4d4df]433 }
[e65de8]434 }
[c4d4df]435
436 return outmap;
437};
438
[7ea9e6]439/** Calculates the distance (pair) correlation between a given element, all its periodic images and a point.
440 * \param *molecules list of molecules structure
[c78d44]441 * \param &elements vector of elements to correlate to point
[7ea9e6]442 * \param *point vector to the correlation point
443 * \param ranges[NDIM] interval boundaries for the periodic images to scan also
444 * \return Map of dobules with values as pairs of atom and the vector
445 */
[e5c0a1]446CorrelationToPointMap *PeriodicCorrelationToPoint(std::vector<molecule *> &molecules, const std::vector<const element *> &elements, const Vector *point, const int ranges[NDIM] )
[7ea9e6]447{
[3930eb]448 Info FunctionInfo(__func__);
[caa30b]449 CorrelationToPointMap *outmap = new CorrelationToPointMap;
[7ea9e6]450 double distance = 0.;
451 int n[NDIM];
452 Vector periodicX;
453 Vector checkX;
454
[e65de8]455 if (molecules.empty()) {
[a67d19]456 DoLog(1) && (Log() << Verbose(1) <<"No molecule given." << endl);
[7ea9e6]457 return outmap;
458 }
[e65de8]459 for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++)
[009607e]460 (*MolWalker)->doCountAtoms();
[7ea9e6]461 outmap = new CorrelationToPointMap;
[e65de8]462 for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++) {
[cca9ef]463 RealSpaceMatrix FullMatrix = World::getInstance().getDomain().getM();
464 RealSpaceMatrix FullInverseMatrix = World::getInstance().getDomain().getMinv();
[e65de8]465 DoLog(2) && (Log() << Verbose(2) << "Current molecule is " << *MolWalker << "." << endl);
466 for (molecule::const_iterator iter = (*MolWalker)->begin(); iter != (*MolWalker)->end(); ++iter) {
467 DoLog(3) && (Log() << Verbose(3) << "Current atom is " << **iter << "." << endl);
[e5c0a1]468 for (vector<const element *>::const_iterator type = elements.begin(); type != elements.end(); ++type)
[d74077]469 if ((*type == NULL) || ((*iter)->getType() == *type)) {
470 periodicX = FullInverseMatrix * ((*iter)->getPosition()); // x now in [0,1)^3
[e65de8]471 // go through every range in xyz and get distance
472 for (n[0]=-ranges[0]; n[0] <= ranges[0]; n[0]++)
473 for (n[1]=-ranges[1]; n[1] <= ranges[1]; n[1]++)
474 for (n[2]=-ranges[2]; n[2] <= ranges[2]; n[2]++) {
475 checkX = FullMatrix * (Vector(n[0], n[1], n[2]) + periodicX);
476 distance = checkX.distance(*point);
477 DoLog(4) && (Log() << Verbose(4) << "Current distance is " << distance << "." << endl);
478 outmap->insert ( pair<double, pair<atom *, const Vector*> >(distance, pair<atom *, const Vector*> (*iter, point) ) );
479 }
480 }
[7ea9e6]481 }
[e65de8]482 }
[7ea9e6]483
484 return outmap;
485};
486
[c4d4df]487/** Calculates the distance (pair) correlation between a given element and a surface.
[a5551b]488 * \param *molecules list of molecules structure
[c78d44]489 * \param &elements vector of elements to correlate to surface
[c4d4df]490 * \param *Surface pointer to Tesselation class surface
491 * \param *LC LinkedCell structure to quickly find neighbouring atoms
492 * \return Map of doubles with values as pairs of atom and the BoundaryTriangleSet that's closest
493 */
[e5c0a1]494CorrelationToSurfaceMap *CorrelationToSurface(std::vector<molecule *> &molecules, const std::vector<const element *> &elements, const Tesselation * const Surface, const LinkedCell *LC )
[c4d4df]495{
[3930eb]496 Info FunctionInfo(__func__);
[caa30b]497 CorrelationToSurfaceMap *outmap = new CorrelationToSurfaceMap;
[99593f]498 double distance = 0;
[c4d4df]499 class BoundaryTriangleSet *triangle = NULL;
500 Vector centroid;
[7ea9e6]501
[e65de8]502 if ((Surface == NULL) || (LC == NULL) || (molecules.empty())) {
[58ed4a]503 DoeLog(1) && (eLog()<< Verbose(1) <<"No Tesselation, no LinkedCell or no molecule given." << endl);
[7ea9e6]504 return outmap;
505 }
[e65de8]506 for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++)
[009607e]507 (*MolWalker)->doCountAtoms();
[7ea9e6]508 outmap = new CorrelationToSurfaceMap;
[e65de8]509 for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++) {
510 DoLog(2) && (Log() << Verbose(2) << "Current molecule is " << (*MolWalker)->name << "." << endl);
511 if ((*MolWalker)->empty())
512 DoLog(2) && (2) && (Log() << Verbose(2) << "\t is empty." << endl);
513 for (molecule::const_iterator iter = (*MolWalker)->begin(); iter != (*MolWalker)->end(); ++iter) {
514 DoLog(3) && (Log() << Verbose(3) << "\tCurrent atom is " << *(*iter) << "." << endl);
[e5c0a1]515 for (vector<const element *>::const_iterator type = elements.begin(); type != elements.end(); ++type)
[d74077]516 if ((*type == NULL) || ((*iter)->getType() == *type)) {
517 TriangleIntersectionList Intersections((*iter)->getPosition(),Surface,LC);
[e65de8]518 distance = Intersections.GetSmallestDistance();
519 triangle = Intersections.GetClosestTriangle();
520 outmap->insert ( pair<double, pair<atom *, BoundaryTriangleSet*> >(distance, pair<atom *, BoundaryTriangleSet*> ((*iter), triangle) ) );
521 }
[7fd416]522 }
[e65de8]523 }
[7ea9e6]524
525 return outmap;
526};
527
528/** Calculates the distance (pair) correlation between a given element, all its periodic images and and a surface.
529 * Note that we also put all periodic images found in the cells given by [ -ranges[i], ranges[i] ] and i=0,...,NDIM-1.
530 * 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
531 * axis an integer from [ -ranges[i], ranges[i] ] onto it and multiply with the domain matrix to bring it back into
532 * the real space. Then, we Tesselation::FindClosestTriangleToPoint() and DistanceToTrianglePlane().
533 * \param *molecules list of molecules structure
[c78d44]534 * \param &elements vector of elements to correlate to surface
[7ea9e6]535 * \param *Surface pointer to Tesselation class surface
536 * \param *LC LinkedCell structure to quickly find neighbouring atoms
537 * \param ranges[NDIM] interval boundaries for the periodic images to scan also
538 * \return Map of doubles with values as pairs of atom and the BoundaryTriangleSet that's closest
539 */
[e5c0a1]540CorrelationToSurfaceMap *PeriodicCorrelationToSurface(std::vector<molecule *> &molecules, const std::vector<const element *> &elements, const Tesselation * const Surface, const LinkedCell *LC, const int ranges[NDIM] )
[7ea9e6]541{
[3930eb]542 Info FunctionInfo(__func__);
[caa30b]543 CorrelationToSurfaceMap *outmap = new CorrelationToSurfaceMap;
[7ea9e6]544 double distance = 0;
545 class BoundaryTriangleSet *triangle = NULL;
546 Vector centroid;
[99593f]547 int n[NDIM];
548 Vector periodicX;
549 Vector checkX;
[c4d4df]550
[e65de8]551 if ((Surface == NULL) || (LC == NULL) || (molecules.empty())) {
[a67d19]552 DoLog(1) && (Log() << Verbose(1) <<"No Tesselation, no LinkedCell or no molecule given." << endl);
[c4d4df]553 return outmap;
554 }
[e65de8]555 for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++)
[009607e]556 (*MolWalker)->doCountAtoms();
[c4d4df]557 outmap = new CorrelationToSurfaceMap;
[244a84]558 double ShortestDistance = 0.;
559 BoundaryTriangleSet *ShortestTriangle = NULL;
[e65de8]560 for (std::vector<molecule *>::const_iterator MolWalker = molecules.begin(); MolWalker != molecules.end(); MolWalker++) {
[cca9ef]561 RealSpaceMatrix FullMatrix = World::getInstance().getDomain().getM();
562 RealSpaceMatrix FullInverseMatrix = World::getInstance().getDomain().getMinv();
[e65de8]563 DoLog(2) && (Log() << Verbose(2) << "Current molecule is " << *MolWalker << "." << endl);
564 for (molecule::const_iterator iter = (*MolWalker)->begin(); iter != (*MolWalker)->end(); ++iter) {
565 DoLog(3) && (Log() << Verbose(3) << "Current atom is " << **iter << "." << endl);
[e5c0a1]566 for (vector<const element *>::const_iterator type = elements.begin(); type != elements.end(); ++type)
[d74077]567 if ((*type == NULL) || ((*iter)->getType() == *type)) {
568 periodicX = FullInverseMatrix * ((*iter)->getPosition()); // x now in [0,1)^3
[e65de8]569 // go through every range in xyz and get distance
570 ShortestDistance = -1.;
571 for (n[0]=-ranges[0]; n[0] <= ranges[0]; n[0]++)
572 for (n[1]=-ranges[1]; n[1] <= ranges[1]; n[1]++)
573 for (n[2]=-ranges[2]; n[2] <= ranges[2]; n[2]++) {
574 checkX = FullMatrix * (Vector(n[0], n[1], n[2]) + periodicX);
[d74077]575 TriangleIntersectionList Intersections(checkX,Surface,LC);
[e65de8]576 distance = Intersections.GetSmallestDistance();
577 triangle = Intersections.GetClosestTriangle();
578 if ((ShortestDistance == -1.) || (distance < ShortestDistance)) {
579 ShortestDistance = distance;
580 ShortestTriangle = triangle;
[99593f]581 }
[e65de8]582 }
583 // insert
584 outmap->insert ( pair<double, pair<atom *, BoundaryTriangleSet*> >(ShortestDistance, pair<atom *, BoundaryTriangleSet*> (*iter, ShortestTriangle) ) );
585 //Log() << Verbose(1) << "INFO: Inserting " << Walker << " with distance " << ShortestDistance << " to " << *ShortestTriangle << "." << endl;
586 }
[c4d4df]587 }
[e65de8]588 }
[c4d4df]589
590 return outmap;
591};
592
[bd61b41]593/** Returns the index of the bin for a given value.
[c4d4df]594 * \param value value whose bin to look for
595 * \param BinWidth width of bin
596 * \param BinStart first bin
597 */
[bd61b41]598int GetBin ( const double value, const double BinWidth, const double BinStart )
[c4d4df]599{
[92e5cb]600 //Info FunctionInfo(__func__);
[bd61b41]601 int bin =(int) (floor((value - BinStart)/BinWidth));
602 return (bin);
[c4d4df]603};
604
605
[92e5cb]606/** Adds header part that is unique to BinPairMap.
607 *
608 * @param file stream to print to
[c4d4df]609 */
[92e5cb]610void OutputCorrelation_Header( ofstream * const file )
[c4d4df]611{
[92e5cb]612 *file << "\tCount";
[c4d4df]613};
[b1f254]614
[92e5cb]615/** Prints values stored in BinPairMap iterator.
616 *
617 * @param file stream to print to
618 * @param runner iterator pointing at values to print
[be945c]619 */
[92e5cb]620void OutputCorrelation_Value( ofstream * const file, BinPairMap::const_iterator &runner )
[be945c]621{
[92e5cb]622 *file << runner->second;
[be945c]623};
624
[92e5cb]625
626/** Adds header part that is unique to DipoleAngularCorrelationMap.
627 *
628 * @param file stream to print to
[b1f254]629 */
[92e5cb]630void OutputDipoleAngularCorrelation_Header( ofstream * const file )
[b1f254]631{
[4b8630]632 *file << "\tFirstAtomOfMolecule";
[b1f254]633};
634
[208237b]635/** Prints values stored in DipoleCorrelationMap iterator.
[92e5cb]636 *
637 * @param file stream to print to
638 * @param runner iterator pointing at values to print
[b1f254]639 */
[92e5cb]640void OutputDipoleAngularCorrelation_Value( ofstream * const file, DipoleAngularCorrelationMap::const_iterator &runner )
[208237b]641{
[4b8630]642 *file << runner->second->getName();
[208237b]643};
644
645
646/** Adds header part that is unique to DipoleAngularCorrelationMap.
647 *
648 * @param file stream to print to
649 */
650void OutputDipoleCorrelation_Header( ofstream * const file )
651{
652 *file << "\tMolecule";
653};
654
655/** Prints values stored in DipoleCorrelationMap iterator.
656 *
657 * @param file stream to print to
658 * @param runner iterator pointing at values to print
659 */
660void OutputDipoleCorrelation_Value( ofstream * const file, DipoleCorrelationMap::const_iterator &runner )
[b1f254]661{
[92e5cb]662 *file << runner->second.first->getId() << "\t" << runner->second.second->getId();
[b1f254]663};
664
[92e5cb]665
666/** Adds header part that is unique to PairCorrelationMap.
667 *
668 * @param file stream to print to
[b1f254]669 */
[92e5cb]670void OutputPairCorrelation_Header( ofstream * const file )
[b1f254]671{
[92e5cb]672 *file << "\tAtom1\tAtom2";
673};
674
675/** Prints values stored in PairCorrelationMap iterator.
676 *
677 * @param file stream to print to
678 * @param runner iterator pointing at values to print
679 */
680void OutputPairCorrelation_Value( ofstream * const file, PairCorrelationMap::const_iterator &runner )
681{
682 *file << *(runner->second.first) << "\t" << *(runner->second.second);
683};
684
685
686/** Adds header part that is unique to CorrelationToPointMap.
687 *
688 * @param file stream to print to
689 */
690void OutputCorrelationToPoint_Header( ofstream * const file )
691{
692 *file << "\tAtom::x[i]-point.x[i]";
693};
694
695/** Prints values stored in CorrelationToPointMap iterator.
696 *
697 * @param file stream to print to
698 * @param runner iterator pointing at values to print
699 */
700void OutputCorrelationToPoint_Value( ofstream * const file, CorrelationToPointMap::const_iterator &runner )
701{
702 for (int i=0;i<NDIM;i++)
703 *file << "\t" << setprecision(8) << (runner->second.first->at(i) - runner->second.second->at(i));
[b1f254]704};
705
[92e5cb]706
707/** Adds header part that is unique to CorrelationToSurfaceMap.
708 *
709 * @param file stream to print to
710 */
711void OutputCorrelationToSurface_Header( ofstream * const file )
712{
713 *file << "\tTriangle";
714};
715
716/** Prints values stored in CorrelationToSurfaceMap iterator.
717 *
718 * @param file stream to print to
719 * @param runner iterator pointing at values to print
720 */
721void OutputCorrelationToSurface_Value( ofstream * const file, CorrelationToSurfaceMap::const_iterator &runner )
722{
723 *file << *(runner->second.first) << "\t" << *(runner->second.second);
724};
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