[e828c0] | 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 |
|
---|
| 8 | /*
|
---|
| 9 | * SubspaceFactorizer.cpp
|
---|
| 10 | *
|
---|
| 11 | * Created on: Nov 23, 2010
|
---|
| 12 | * Author: heber
|
---|
| 13 | */
|
---|
| 14 |
|
---|
[56f73b] | 15 | // include config.h
|
---|
| 16 | #ifdef HAVE_CONFIG_H
|
---|
| 17 | #include <config.h>
|
---|
| 18 | #endif
|
---|
| 19 |
|
---|
[e828c0] | 20 | #include <cmath>
|
---|
| 21 |
|
---|
| 22 | #include <gsl/gsl_eigen.h>
|
---|
| 23 | #include <gsl/gsl_matrix.h>
|
---|
| 24 | #include <gsl/gsl_vector.h>
|
---|
| 25 | #include <boost/foreach.hpp>
|
---|
| 26 | #include <boost/shared_ptr.hpp>
|
---|
| 27 | #include <boost/timer.hpp>
|
---|
| 28 |
|
---|
[ad011c] | 29 | #include "CodePatterns/Assert.hpp"
|
---|
[a0064e] | 30 | #include "Helpers/defs.hpp"
|
---|
[ad011c] | 31 | #include "CodePatterns/Log.hpp"
|
---|
| 32 | #include "CodePatterns/toString.hpp"
|
---|
| 33 | #include "CodePatterns/Verbose.hpp"
|
---|
[e828c0] | 34 | #include "LinearAlgebra/Eigenspace.hpp"
|
---|
| 35 | #include "LinearAlgebra/MatrixContent.hpp"
|
---|
| 36 | #include "LinearAlgebra/Subspace.hpp"
|
---|
| 37 | #include "LinearAlgebra/VectorContent.hpp"
|
---|
| 38 |
|
---|
| 39 | typedef std::set<std::set<size_t> > SetofIndexSets;
|
---|
| 40 | typedef std::set<size_t> IndexSet;
|
---|
| 41 | typedef std::multimap< size_t, boost::shared_ptr<Subspace> > SubspaceMap;
|
---|
| 42 | typedef std::multimap< size_t, boost::shared_ptr<IndexSet> > IndexMap;
|
---|
| 43 | typedef std::list< boost::shared_ptr<VectorContent> > VectorList;
|
---|
| 44 | typedef std::list< std::pair<boost::shared_ptr<VectorContent>, double> > VectorValueList;
|
---|
| 45 | typedef std::vector< boost::shared_ptr<VectorContent> > VectorArray;
|
---|
| 46 | typedef std::vector< double > ValueArray;
|
---|
| 47 |
|
---|
| 48 |
|
---|
| 49 | /** Iterative function to generate all power sets of indices of size \a maxelements.
|
---|
| 50 | *
|
---|
| 51 | * @param SetofSets Container for all sets
|
---|
| 52 | * @param CurrentSet pointer to current set in this container
|
---|
| 53 | * @param Indices Source set of indices
|
---|
| 54 | * @param maxelements number of elements of each set in final SetofSets
|
---|
| 55 | * @return true - generation continued, false - current set already had
|
---|
| 56 | * \a maxelements elements
|
---|
| 57 | */
|
---|
| 58 | bool generatePowerSet(
|
---|
| 59 | SetofIndexSets &SetofSets,
|
---|
| 60 | SetofIndexSets::iterator &CurrentSet,
|
---|
| 61 | IndexSet &Indices,
|
---|
| 62 | const size_t maxelements)
|
---|
| 63 | {
|
---|
| 64 | if (CurrentSet->size() < maxelements) {
|
---|
| 65 | // allocate the needed sets
|
---|
| 66 | const size_t size = Indices.size() - CurrentSet->size();
|
---|
| 67 | std::vector<std::set<size_t> > SetExpanded;
|
---|
| 68 | SetExpanded.reserve(size);
|
---|
| 69 |
|
---|
| 70 | // copy the current set into each
|
---|
| 71 | for (size_t i=0;i<size;++i)
|
---|
| 72 | SetExpanded.push_back(*CurrentSet);
|
---|
| 73 |
|
---|
| 74 | // expand each set by one index
|
---|
| 75 | size_t localindex=0;
|
---|
| 76 | BOOST_FOREACH(size_t iter, Indices) {
|
---|
| 77 | if (CurrentSet->count(iter) == 0) {
|
---|
| 78 | SetExpanded[localindex].insert(iter);
|
---|
| 79 | ++localindex;
|
---|
| 80 | }
|
---|
| 81 | }
|
---|
| 82 |
|
---|
| 83 | // insert set at position of CurrentSet
|
---|
| 84 | for (size_t i=0;i<size;++i) {
|
---|
| 85 | //DoLog(1) && (Log() << Verbose(1) << "Inserting set #" << i << ": " << SetExpanded[i] << std::endl);
|
---|
| 86 | SetofSets.insert(CurrentSet, SetExpanded[i]);
|
---|
| 87 | }
|
---|
| 88 | SetExpanded.clear();
|
---|
| 89 |
|
---|
| 90 | // and remove the current set
|
---|
| 91 | //SetofSets.erase(CurrentSet);
|
---|
| 92 | //CurrentSet = SetofSets.begin();
|
---|
| 93 |
|
---|
| 94 | // set iterator to a valid position again
|
---|
| 95 | ++CurrentSet;
|
---|
| 96 | return true;
|
---|
| 97 | } else {
|
---|
| 98 | return false;
|
---|
| 99 | }
|
---|
| 100 | }
|
---|
| 101 |
|
---|
| 102 |
|
---|
| 103 |
|
---|
| 104 | /** Prints the scalar product of each possible pair that is not orthonormal.
|
---|
| 105 | * We use class logger for printing.
|
---|
| 106 | * @param AllIndices set of all possible indices of the eigenvectors
|
---|
| 107 | * @param CurrentEigenvectors array of eigenvectors
|
---|
| 108 | * @return true - all are orthonormal to each other,
|
---|
| 109 | * false - some are not orthogonal or not normalized.
|
---|
| 110 | */
|
---|
| 111 | bool checkOrthogonality(const IndexSet &AllIndices, const VectorArray &CurrentEigenvectors)
|
---|
| 112 | {
|
---|
| 113 | size_t nonnormalized = 0;
|
---|
| 114 | size_t nonorthogonal = 0;
|
---|
| 115 | // check orthogonality
|
---|
| 116 | BOOST_FOREACH( size_t firstindex, AllIndices) {
|
---|
| 117 | BOOST_FOREACH( size_t secondindex, AllIndices) {
|
---|
| 118 | const double scp = (*CurrentEigenvectors[firstindex])*(*CurrentEigenvectors[secondindex]);
|
---|
| 119 | if (firstindex == secondindex) {
|
---|
| 120 | if (fabs(scp - 1.) > MYEPSILON) {
|
---|
| 121 | nonnormalized++;
|
---|
| 122 | Log() << Verbose(2) << "Vector " << firstindex << " is not normalized, off by "
|
---|
| 123 | << fabs(1.-(*CurrentEigenvectors[firstindex])*(*CurrentEigenvectors[secondindex])) << std::endl;
|
---|
| 124 | }
|
---|
| 125 | } else {
|
---|
| 126 | if (fabs(scp) > MYEPSILON) {
|
---|
| 127 | nonorthogonal++;
|
---|
| 128 | Log() << Verbose(2) << "Scalar product between " << firstindex << " and " << secondindex
|
---|
| 129 | << " is " << (*CurrentEigenvectors[firstindex])*(*CurrentEigenvectors[secondindex]) << std::endl;
|
---|
| 130 | }
|
---|
| 131 | }
|
---|
| 132 | }
|
---|
| 133 | }
|
---|
| 134 |
|
---|
| 135 | if ((nonnormalized == 0) && (nonorthogonal == 0)) {
|
---|
| 136 | DoLog(1) && (DoLog(1) && (Log() << Verbose(1) << "All vectors are orthonormal to each other." << std::endl));
|
---|
| 137 | return true;
|
---|
| 138 | }
|
---|
| 139 | if ((nonnormalized == 0) && (nonorthogonal != 0))
|
---|
| 140 | DoLog(1) && (DoLog(1) && (Log() << Verbose(1) << "All vectors are normalized." << std::endl));
|
---|
| 141 | if ((nonnormalized != 0) && (nonorthogonal == 0))
|
---|
| 142 | DoLog(1) && (DoLog(1) && (Log() << Verbose(1) << "All vectors are orthogonal to each other." << std::endl));
|
---|
| 143 | return false;
|
---|
| 144 | }
|
---|
| 145 |
|
---|
| 146 | /** Calculate the sum of the scalar product of each possible pair.
|
---|
| 147 | * @param AllIndices set of all possible indices of the eigenvectors
|
---|
| 148 | * @param CurrentEigenvectors array of eigenvectors
|
---|
| 149 | * @return sum of scalar products between all possible pairs
|
---|
| 150 | */
|
---|
| 151 | double calculateOrthogonalityThreshold(const IndexSet &AllIndices, const VectorArray &CurrentEigenvectors)
|
---|
| 152 | {
|
---|
| 153 | double threshold = 0.;
|
---|
| 154 | // check orthogonality
|
---|
| 155 | BOOST_FOREACH( size_t firstindex, AllIndices) {
|
---|
| 156 | BOOST_FOREACH( size_t secondindex, AllIndices) {
|
---|
| 157 | const double scp = (*CurrentEigenvectors[firstindex])*(*CurrentEigenvectors[secondindex]);
|
---|
| 158 | if (firstindex == secondindex) {
|
---|
| 159 | threshold += fabs(scp - 1.);
|
---|
| 160 | } else {
|
---|
| 161 | threshold += fabs(scp);
|
---|
| 162 | }
|
---|
| 163 | }
|
---|
| 164 | }
|
---|
| 165 | return threshold;
|
---|
| 166 | }
|
---|
| 167 |
|
---|
| 168 |
|
---|
| 169 | /** Operator for output to std::ostream operator of an IndexSet.
|
---|
| 170 | * @param ost output stream
|
---|
| 171 | * @param indexset index set to output
|
---|
| 172 | * @return ost output stream
|
---|
| 173 | */
|
---|
| 174 | std::ostream & operator<<(std::ostream &ost, const IndexSet &indexset)
|
---|
| 175 | {
|
---|
| 176 | ost << "{ ";
|
---|
| 177 | for (IndexSet::const_iterator iter = indexset.begin();
|
---|
| 178 | iter != indexset.end();
|
---|
| 179 | ++iter)
|
---|
| 180 | ost << *iter << " ";
|
---|
| 181 | ost << "}";
|
---|
| 182 | return ost;
|
---|
| 183 | }
|
---|
| 184 |
|
---|
| 185 |
|
---|
| 186 | int main(int argc, char **argv)
|
---|
| 187 | {
|
---|
| 188 | size_t matrixdimension = 8;
|
---|
| 189 | size_t subspacelimit = 4;
|
---|
| 190 |
|
---|
| 191 | if (argc < 2) {
|
---|
| 192 | std::cerr << "Usage: " << argv[0] << " <matrixdim> <subspacelimit>" << std::endl;
|
---|
| 193 | return 255;
|
---|
| 194 | } else {
|
---|
| 195 | {
|
---|
| 196 | std::stringstream s(toString(argv[1]));;
|
---|
| 197 | s >> matrixdimension;
|
---|
| 198 | }
|
---|
| 199 | {
|
---|
| 200 | std::stringstream s(toString(argv[2]));;
|
---|
| 201 | s >> subspacelimit;
|
---|
| 202 | }
|
---|
| 203 | }
|
---|
| 204 |
|
---|
| 205 | MatrixContent *matrix = new MatrixContent(matrixdimension,matrixdimension);
|
---|
| 206 | matrix->setZero();
|
---|
| 207 | for (size_t i=0; i<matrixdimension ; i++) {
|
---|
| 208 | for (size_t j=0; j<= i; ++j) {
|
---|
| 209 | //const double value = 10. * rand() / (double)RAND_MAX;
|
---|
| 210 | //const double value = i==j ? 2. : 1.;
|
---|
| 211 | if (i==j)
|
---|
| 212 | matrix->set(i,i, 2.);
|
---|
| 213 | else if (j+1 == i) {
|
---|
| 214 | matrix->set(i,j, 1.);
|
---|
| 215 | matrix->set(j,i, 1.);
|
---|
| 216 | } else {
|
---|
| 217 | matrix->set(i,j, 0.);
|
---|
| 218 | matrix->set(j,i, 0.);
|
---|
| 219 | }
|
---|
| 220 | }
|
---|
| 221 | }
|
---|
| 222 |
|
---|
| 223 | Eigenspace::eigenvectorset CurrentEigenvectors;
|
---|
| 224 | Eigenspace::eigenvalueset CurrentEigenvalues;
|
---|
| 225 |
|
---|
| 226 | setVerbosity(3);
|
---|
| 227 |
|
---|
| 228 | boost::timer Time_generatingfullspace;
|
---|
| 229 | DoLog(0) && (Log() << Verbose(0) << std::endl << std::endl);
|
---|
| 230 | // create the total index set
|
---|
| 231 | IndexSet AllIndices;
|
---|
| 232 | for (size_t i=0;i<matrixdimension;++i)
|
---|
| 233 | AllIndices.insert(i);
|
---|
| 234 | Eigenspace FullSpace(AllIndices, *matrix);
|
---|
| 235 | DoLog(1) && (Log() << Verbose(1) << "Generated full space: " << FullSpace << std::endl);
|
---|
| 236 | DoLog(0) && (Log() << Verbose(0) << "Full space generation took " << Time_generatingfullspace.elapsed() << " seconds." << std::endl);
|
---|
| 237 |
|
---|
| 238 | // generate first set of eigenvectors
|
---|
| 239 | // set to first guess, i.e. the unit vectors of R^matrixdimension
|
---|
| 240 | BOOST_FOREACH( size_t index, AllIndices) {
|
---|
| 241 | boost::shared_ptr<VectorContent> EV(new VectorContent(matrixdimension));
|
---|
| 242 | EV->setZero();
|
---|
| 243 | EV->at(index) = 1.;
|
---|
| 244 | CurrentEigenvectors.push_back(EV);
|
---|
| 245 | CurrentEigenvalues.push_back(0.);
|
---|
| 246 | }
|
---|
| 247 |
|
---|
| 248 | boost::timer Time_generatingsubsets;
|
---|
| 249 | DoLog(0) && (Log() << Verbose(0) << "Generating sub sets ..." << std::endl);
|
---|
| 250 | SetofIndexSets SetofSets;
|
---|
| 251 | // note that starting off empty set is unstable
|
---|
| 252 | IndexSet singleset;
|
---|
| 253 | BOOST_FOREACH(size_t iter, AllIndices) {
|
---|
| 254 | singleset.insert(iter);
|
---|
| 255 | SetofSets.insert(singleset);
|
---|
| 256 | singleset.clear();
|
---|
| 257 | }
|
---|
| 258 | SetofIndexSets::iterator CurrentSet = SetofSets.begin();
|
---|
| 259 | while (CurrentSet != SetofSets.end()) {
|
---|
| 260 | //DoLog(2) && (Log() << Verbose(2) << "Current set is " << *CurrentSet << std::endl);
|
---|
| 261 | if (!generatePowerSet(SetofSets, CurrentSet, AllIndices, subspacelimit)) {
|
---|
| 262 | // go to next set
|
---|
| 263 | ++CurrentSet;
|
---|
| 264 | }
|
---|
| 265 | }
|
---|
| 266 | DoLog(0) && (Log() << Verbose(0) << "Sub set generation took " << Time_generatingsubsets.elapsed() << " seconds." << std::endl);
|
---|
| 267 |
|
---|
| 268 | // create a subspace to each set and and to respective level
|
---|
| 269 | boost::timer Time_generatingsubspaces;
|
---|
| 270 | DoLog(0) && (Log() << Verbose(0) << "Generating sub spaces ..." << std::endl);
|
---|
| 271 | SubspaceMap Dimension_to_Indexset;
|
---|
| 272 | BOOST_FOREACH(std::set<size_t> iter, SetofSets) {
|
---|
| 273 | boost::shared_ptr<Subspace> subspace(new Subspace(iter, FullSpace));
|
---|
| 274 | DoLog(1) && (Log() << Verbose(1) << "Current subspace is " << *subspace << std::endl);
|
---|
| 275 | Dimension_to_Indexset.insert( make_pair(iter.size(), boost::shared_ptr<Subspace>(subspace)) );
|
---|
| 276 | }
|
---|
| 277 |
|
---|
| 278 | for (size_t dim = 1; dim<=subspacelimit;++dim) {
|
---|
| 279 | BOOST_FOREACH( SubspaceMap::value_type subspace, Dimension_to_Indexset.equal_range(dim)) {
|
---|
| 280 | if (dim != 0) { // from level 1 and onward
|
---|
| 281 | BOOST_FOREACH( SubspaceMap::value_type entry, Dimension_to_Indexset.equal_range(dim-1)) {
|
---|
| 282 | if (subspace.second->contains(*entry.second)) {
|
---|
| 283 | // if contained then add ...
|
---|
| 284 | subspace.second->addSubset(entry.second);
|
---|
| 285 | // ... and also its containees as they are all automatically contained as well
|
---|
| 286 | BOOST_FOREACH(boost::shared_ptr<Subspace> iter, entry.second->getSubIndices()) {
|
---|
| 287 | subspace.second->addSubset(iter);
|
---|
| 288 | }
|
---|
| 289 | }
|
---|
| 290 | }
|
---|
| 291 | }
|
---|
| 292 | }
|
---|
| 293 | }
|
---|
| 294 | DoLog(0) && (Log() << Verbose(0) << "Sub space generation took " << Time_generatingsubspaces.elapsed() << " seconds." << std::endl);
|
---|
| 295 |
|
---|
| 296 | // create a file handle for the eigenvalues
|
---|
| 297 | std::ofstream outputvalues("eigenvalues.dat", std::ios_base::trunc);
|
---|
| 298 | ASSERT(outputvalues.good(),
|
---|
| 299 | "SubspaceFactorizerUnittest::EigenvectorTest() - failed to open eigenvalue file!");
|
---|
| 300 | outputvalues << "# iteration ";
|
---|
| 301 | BOOST_FOREACH(size_t iter, AllIndices) {
|
---|
| 302 | outputvalues << "\teigenvalue" << iter;
|
---|
| 303 | }
|
---|
| 304 | outputvalues << std::endl;
|
---|
| 305 |
|
---|
| 306 | DoLog(0) && (Log() << Verbose(0) << "Solving ..." << std::endl);
|
---|
| 307 | boost::timer Time_solving;
|
---|
| 308 | size_t run=1; // counting iterations
|
---|
| 309 | double threshold = 1.; // containing threshold value
|
---|
| 310 | while ((threshold > MYEPSILON) && (run < 20)) {
|
---|
| 311 | // for every dimension
|
---|
| 312 | for (size_t dim = 1; dim <= subspacelimit;++dim) {
|
---|
| 313 | // for every index set of this dimension
|
---|
| 314 | DoLog(1) && (Log() << Verbose(1) << std::endl << std::endl);
|
---|
| 315 | DoLog(1) && (Log() << Verbose(1) << "Current dimension is " << dim << std::endl);
|
---|
| 316 | std::pair<SubspaceMap::const_iterator,SubspaceMap::const_iterator> Bounds = Dimension_to_Indexset.equal_range(dim);
|
---|
| 317 | for (SubspaceMap::const_iterator IndexsetIter = Bounds.first;
|
---|
| 318 | IndexsetIter != Bounds.second;
|
---|
| 319 | ++IndexsetIter) {
|
---|
| 320 | Subspace& subspace = *(IndexsetIter->second);
|
---|
| 321 | // show the index set
|
---|
| 322 | DoLog(2) && (Log() << Verbose(2) << std::endl);
|
---|
| 323 | DoLog(2) && (Log() << Verbose(2) << "Current subspace is " << subspace << std::endl);
|
---|
| 324 |
|
---|
| 325 | // solve
|
---|
| 326 | subspace.calculateEigenSubspace();
|
---|
| 327 |
|
---|
| 328 | // note that assignment to global eigenvectors all remains within subspace
|
---|
| 329 | }
|
---|
| 330 | }
|
---|
| 331 |
|
---|
| 332 | // print list of similar eigenvectors
|
---|
| 333 | DoLog(2) && (Log() << Verbose(2) << std::endl);
|
---|
| 334 | BOOST_FOREACH( size_t index, AllIndices) {
|
---|
| 335 | DoLog(2) && (Log() << Verbose(2) << "Similar to " << index << "th current eigenvector " << *(CurrentEigenvectors[index]) << " are:" << std::endl);
|
---|
| 336 | BOOST_FOREACH( SubspaceMap::value_type iter, Dimension_to_Indexset) {
|
---|
| 337 | const VectorContent & CurrentEV = (iter.second)->getEigenvectorParallelToFullOne(index);
|
---|
| 338 | if (!CurrentEV.IsZero())
|
---|
| 339 | Log() << Verbose(2)
|
---|
| 340 | << "dim" << iter.first
|
---|
| 341 | << ", subspace{" << (iter.second)->getIndices()
|
---|
| 342 | << "}: "<< CurrentEV << std::endl;
|
---|
| 343 | }
|
---|
| 344 | DoLog(2) && (Log() << Verbose(2) << std::endl);
|
---|
| 345 | }
|
---|
| 346 |
|
---|
| 347 | // create new CurrentEigenvectors from averaging parallel ones.
|
---|
| 348 | BOOST_FOREACH(size_t index, AllIndices) {
|
---|
| 349 | CurrentEigenvectors[index]->setZero();
|
---|
| 350 | CurrentEigenvalues[index] = 0.;
|
---|
| 351 | size_t count = 0;
|
---|
| 352 | BOOST_FOREACH( SubspaceMap::value_type iter, Dimension_to_Indexset) {
|
---|
| 353 | const VectorContent CurrentEV = (iter.second)->getEigenvectorParallelToFullOne(index);
|
---|
| 354 | *CurrentEigenvectors[index] += CurrentEV; // * (iter.second)->getEigenvalueOfEigenvectorParallelToFullOne(index);
|
---|
| 355 | CurrentEigenvalues[index] += (iter.second)->getEigenvalueOfEigenvectorParallelToFullOne(index);
|
---|
| 356 | if (!CurrentEV.IsZero())
|
---|
| 357 | count++;
|
---|
| 358 | }
|
---|
| 359 | *CurrentEigenvectors[index] *= 1./CurrentEigenvalues[index];
|
---|
| 360 | //CurrentEigenvalues[index] /= (double)count;
|
---|
| 361 | }
|
---|
| 362 |
|
---|
| 363 | // check orthonormality
|
---|
| 364 | threshold = calculateOrthogonalityThreshold(AllIndices, CurrentEigenvectors);
|
---|
| 365 | bool dontOrthonormalization = checkOrthogonality(AllIndices, CurrentEigenvectors);
|
---|
| 366 |
|
---|
| 367 | // orthonormalize
|
---|
| 368 | if (!dontOrthonormalization) {
|
---|
| 369 | DoLog(1) && (Log() << Verbose(1) << "Orthonormalizing ... " << std::endl);
|
---|
| 370 | for (IndexSet::const_iterator firstindex = AllIndices.begin();
|
---|
| 371 | firstindex != AllIndices.end();
|
---|
| 372 | ++firstindex) {
|
---|
| 373 | for (IndexSet::const_iterator secondindex = firstindex;
|
---|
| 374 | secondindex != AllIndices.end();
|
---|
| 375 | ++secondindex) {
|
---|
| 376 | if (*firstindex == *secondindex) {
|
---|
| 377 | (*CurrentEigenvectors[*secondindex]) *= 1./(*CurrentEigenvectors[*secondindex]).Norm();
|
---|
| 378 | } else {
|
---|
| 379 | (*CurrentEigenvectors[*secondindex]) -=
|
---|
| 380 | ((*CurrentEigenvectors[*firstindex])*(*CurrentEigenvectors[*secondindex]))
|
---|
| 381 | *(*CurrentEigenvectors[*firstindex]);
|
---|
| 382 | }
|
---|
| 383 | }
|
---|
| 384 | }
|
---|
| 385 | }
|
---|
| 386 |
|
---|
| 387 | // // check orthonormality again
|
---|
| 388 | // checkOrthogonality(AllIndices, CurrentEigenvectors);
|
---|
| 389 |
|
---|
| 390 | // put obtained eigenvectors into full space
|
---|
| 391 | FullSpace.setEigenpairs(CurrentEigenvectors, CurrentEigenvalues);
|
---|
| 392 |
|
---|
| 393 | // show new ones
|
---|
| 394 | DoLog(1) && (Log() << Verbose(1) << "Resulting new eigenvectors and -values, run " << run << " are:" << std::endl);
|
---|
| 395 | outputvalues << run;
|
---|
| 396 | BOOST_FOREACH( size_t index, AllIndices) {
|
---|
| 397 | DoLog(1) && (Log() << Verbose(1) << *CurrentEigenvectors[index] << " with " << CurrentEigenvalues[index] << std::endl);
|
---|
| 398 | outputvalues << "\t" << CurrentEigenvalues[index];
|
---|
| 399 | }
|
---|
| 400 | outputvalues << std::endl;
|
---|
| 401 |
|
---|
| 402 | // and next iteration
|
---|
| 403 | DoLog(0) && (Log() << Verbose(0) << "\titeration #" << run << std::endl);
|
---|
| 404 | run++;
|
---|
| 405 | }
|
---|
| 406 | DoLog(0) && (Log() << Verbose(0) << "Solving took " << Time_solving.elapsed() << " seconds." << std::endl);
|
---|
| 407 | // show final ones
|
---|
| 408 | DoLog(0) && (Log() << Verbose(0) << "Resulting new eigenvectors and -values, run " << run << " are:" << std::endl);
|
---|
| 409 | outputvalues << run;
|
---|
| 410 | BOOST_FOREACH( size_t index, AllIndices) {
|
---|
| 411 | DoLog(0) && (Log() << Verbose(0) << *CurrentEigenvectors[index] << " with " << CurrentEigenvalues[index] << std::endl);
|
---|
| 412 | outputvalues << "\t" << CurrentEigenvalues[index];
|
---|
| 413 | }
|
---|
| 414 | outputvalues << std::endl;
|
---|
| 415 | outputvalues.close();
|
---|
| 416 |
|
---|
| 417 | setVerbosity(2);
|
---|
| 418 |
|
---|
| 419 | DoLog(0) && (Log() << Verbose(0) << "Solving full space ..." << std::endl);
|
---|
| 420 | boost::timer Time_comparison;
|
---|
| 421 | MatrixContent tempFullspaceMatrix = FullSpace.getEigenspaceMatrix();
|
---|
| 422 | gsl_vector *eigenvalues = tempFullspaceMatrix.transformToEigenbasis();
|
---|
| 423 | tempFullspaceMatrix.sortEigenbasis(eigenvalues);
|
---|
| 424 | DoLog(0) && (Log() << Verbose(0) << "full space solution took " << Time_comparison.elapsed() << " seconds." << std::endl);
|
---|
| 425 |
|
---|
| 426 | delete matrix;
|
---|
| 427 |
|
---|
| 428 | return 0;
|
---|
| 429 | }
|
---|