| 1 | gezelter | 507 | /* | 
| 2 | gezelter | 246 | * Copyright (c) 2005 The University of Notre Dame. All Rights Reserved. | 
| 3 |  |  | * | 
| 4 |  |  | * The University of Notre Dame grants you ("Licensee") a | 
| 5 |  |  | * non-exclusive, royalty free, license to use, modify and | 
| 6 |  |  | * redistribute this software in source and binary code form, provided | 
| 7 |  |  | * that the following conditions are met: | 
| 8 |  |  | * | 
| 9 | gezelter | 1390 | * 1. Redistributions of source code must retain the above copyright | 
| 10 | gezelter | 246 | *    notice, this list of conditions and the following disclaimer. | 
| 11 |  |  | * | 
| 12 | gezelter | 1390 | * 2. Redistributions in binary form must reproduce the above copyright | 
| 13 | gezelter | 246 | *    notice, this list of conditions and the following disclaimer in the | 
| 14 |  |  | *    documentation and/or other materials provided with the | 
| 15 |  |  | *    distribution. | 
| 16 |  |  | * | 
| 17 |  |  | * This software is provided "AS IS," without a warranty of any | 
| 18 |  |  | * kind. All express or implied conditions, representations and | 
| 19 |  |  | * warranties, including any implied warranty of merchantability, | 
| 20 |  |  | * fitness for a particular purpose or non-infringement, are hereby | 
| 21 |  |  | * excluded.  The University of Notre Dame and its licensors shall not | 
| 22 |  |  | * be liable for any damages suffered by licensee as a result of | 
| 23 |  |  | * using, modifying or distributing the software or its | 
| 24 |  |  | * derivatives. In no event will the University of Notre Dame or its | 
| 25 |  |  | * licensors be liable for any lost revenue, profit or data, or for | 
| 26 |  |  | * direct, indirect, special, consequential, incidental or punitive | 
| 27 |  |  | * damages, however caused and regardless of the theory of liability, | 
| 28 |  |  | * arising out of the use of or inability to use software, even if the | 
| 29 |  |  | * University of Notre Dame has been advised of the possibility of | 
| 30 |  |  | * such damages. | 
| 31 | gezelter | 1390 | * | 
| 32 |  |  | * SUPPORT OPEN SCIENCE!  If you use OpenMD or its source code in your | 
| 33 |  |  | * research, please cite the appropriate papers when you publish your | 
| 34 |  |  | * work.  Good starting points are: | 
| 35 |  |  | * | 
| 36 |  |  | * [1]  Meineke, et al., J. Comp. Chem. 26, 252-271 (2005). | 
| 37 |  |  | * [2]  Fennell & Gezelter, J. Chem. Phys. 124, 234104 (2006). | 
| 38 | gezelter | 1879 | * [3]  Sun, Lin & Gezelter, J. Chem. Phys. 128, 234107 (2008). | 
| 39 | gezelter | 1782 | * [4]  Kuang & Gezelter,  J. Chem. Phys. 133, 164101 (2010). | 
| 40 |  |  | * [5]  Vardeman, Stocker & Gezelter, J. Chem. Theory Comput. 7, 834 (2011). | 
| 41 | gezelter | 246 | */ | 
| 42 |  |  |  | 
| 43 |  |  | /** | 
| 44 |  |  | * @file SimInfo.cpp | 
| 45 |  |  | * @author    tlin | 
| 46 |  |  | * @date  11/02/2004 | 
| 47 |  |  | * @version 1.0 | 
| 48 |  |  | */ | 
| 49 | gezelter | 2 |  | 
| 50 | gezelter | 1938 | #ifdef IS_MPI | 
| 51 |  |  | #include <mpi.h> | 
| 52 |  |  | #endif | 
| 53 | gezelter | 246 | #include <algorithm> | 
| 54 |  |  | #include <set> | 
| 55 | tim | 749 | #include <map> | 
| 56 | gezelter | 2 |  | 
| 57 | tim | 3 | #include "brains/SimInfo.hpp" | 
| 58 | gezelter | 246 | #include "math/Vector3.hpp" | 
| 59 |  |  | #include "primitives/Molecule.hpp" | 
| 60 | tim | 1024 | #include "primitives/StuntDouble.hpp" | 
| 61 | gezelter | 246 | #include "utils/MemoryUtils.hpp" | 
| 62 | tim | 3 | #include "utils/simError.h" | 
| 63 | tim | 316 | #include "selection/SelectionManager.hpp" | 
| 64 | chuckv | 834 | #include "io/ForceFieldOptions.hpp" | 
| 65 | gezelter | 1782 | #include "brains/ForceField.hpp" | 
| 66 |  |  | #include "nonbonded/SwitchingFunction.hpp" | 
| 67 | gezelter | 2 |  | 
| 68 | gezelter | 1782 | using namespace std; | 
| 69 | gezelter | 1390 | namespace OpenMD { | 
| 70 | tim | 749 |  | 
| 71 | tim | 770 | SimInfo::SimInfo(ForceField* ff, Globals* simParams) : | 
| 72 |  |  | forceField_(ff), simParams_(simParams), | 
| 73 | gezelter | 945 | ndf_(0), fdf_local(0), ndfRaw_(0), ndfTrans_(0), nZconstraint_(0), | 
| 74 | gezelter | 507 | nGlobalMols_(0), nGlobalAtoms_(0), nGlobalCutoffGroups_(0), | 
| 75 | gezelter | 1953 | nGlobalIntegrableObjects_(0), nGlobalRigidBodies_(0), | 
| 76 |  |  | nGlobalFluctuatingCharges_(0), nGlobalBonds_(0), nGlobalBends_(0), | 
| 77 | gezelter | 1983 | nGlobalTorsions_(0), nGlobalInversions_(0), nGlobalConstraints_(0), | 
| 78 |  |  | nAtoms_(0), nBonds_(0), nBends_(0), nTorsions_(0), nInversions_(0), | 
| 79 |  |  | nRigidBodies_(0), nIntegrableObjects_(0), nCutoffGroups_(0), | 
| 80 |  |  | nConstraints_(0), nFluctuatingCharges_(0), sman_(NULL), | 
| 81 |  |  | topologyDone_(false), calcBoxDipole_(false), useAtomicVirial_(true), | 
| 82 |  |  | hasNGlobalConstraints_(false) { | 
| 83 | gezelter | 1782 |  | 
| 84 |  |  | MoleculeStamp* molStamp; | 
| 85 |  |  | int nMolWithSameStamp; | 
| 86 |  |  | int nCutoffAtoms = 0; // number of atoms belong to cutoff groups | 
| 87 |  |  | int nGroups = 0;       //total cutoff groups defined in meta-data file | 
| 88 |  |  | CutoffGroupStamp* cgStamp; | 
| 89 |  |  | RigidBodyStamp* rbStamp; | 
| 90 |  |  | int nRigidAtoms = 0; | 
| 91 |  |  |  | 
| 92 |  |  | vector<Component*> components = simParams->getComponents(); | 
| 93 |  |  |  | 
| 94 |  |  | for (vector<Component*>::iterator i = components.begin(); | 
| 95 |  |  | i !=components.end(); ++i) { | 
| 96 |  |  | molStamp = (*i)->getMoleculeStamp(); | 
| 97 | gezelter | 1908 | if ( (*i)->haveRegion() ) { | 
| 98 |  |  | molStamp->setRegion( (*i)->getRegion() ); | 
| 99 |  |  | } else { | 
| 100 |  |  | // set the region to a disallowed value: | 
| 101 |  |  | molStamp->setRegion( -1 ); | 
| 102 |  |  | } | 
| 103 |  |  |  | 
| 104 | gezelter | 1782 | nMolWithSameStamp = (*i)->getNMol(); | 
| 105 | tim | 770 |  | 
| 106 | gezelter | 1782 | addMoleculeStamp(molStamp, nMolWithSameStamp); | 
| 107 |  |  |  | 
| 108 |  |  | //calculate atoms in molecules | 
| 109 | gezelter | 1953 | nGlobalAtoms_ += molStamp->getNAtoms() * nMolWithSameStamp; | 
| 110 |  |  | nGlobalBonds_ += molStamp->getNBonds() * nMolWithSameStamp; | 
| 111 |  |  | nGlobalBends_ += molStamp->getNBends() * nMolWithSameStamp; | 
| 112 |  |  | nGlobalTorsions_ += molStamp->getNTorsions() * nMolWithSameStamp; | 
| 113 |  |  | nGlobalInversions_ += molStamp->getNInversions() * nMolWithSameStamp; | 
| 114 | gezelter | 1782 |  | 
| 115 |  |  | //calculate atoms in cutoff groups | 
| 116 |  |  | int nAtomsInGroups = 0; | 
| 117 |  |  | int nCutoffGroupsInStamp = molStamp->getNCutoffGroups(); | 
| 118 |  |  |  | 
| 119 |  |  | for (int j=0; j < nCutoffGroupsInStamp; j++) { | 
| 120 |  |  | cgStamp = molStamp->getCutoffGroupStamp(j); | 
| 121 |  |  | nAtomsInGroups += cgStamp->getNMembers(); | 
| 122 | gezelter | 507 | } | 
| 123 | gezelter | 1782 |  | 
| 124 |  |  | nGroups += nCutoffGroupsInStamp * nMolWithSameStamp; | 
| 125 |  |  |  | 
| 126 |  |  | nCutoffAtoms += nAtomsInGroups * nMolWithSameStamp; | 
| 127 |  |  |  | 
| 128 |  |  | //calculate atoms in rigid bodies | 
| 129 |  |  | int nAtomsInRigidBodies = 0; | 
| 130 |  |  | int nRigidBodiesInStamp = molStamp->getNRigidBodies(); | 
| 131 |  |  |  | 
| 132 |  |  | for (int j=0; j < nRigidBodiesInStamp; j++) { | 
| 133 |  |  | rbStamp = molStamp->getRigidBodyStamp(j); | 
| 134 |  |  | nAtomsInRigidBodies += rbStamp->getNMembers(); | 
| 135 |  |  | } | 
| 136 |  |  |  | 
| 137 |  |  | nGlobalRigidBodies_ += nRigidBodiesInStamp * nMolWithSameStamp; | 
| 138 |  |  | nRigidAtoms += nAtomsInRigidBodies * nMolWithSameStamp; | 
| 139 |  |  |  | 
| 140 |  |  | } | 
| 141 |  |  |  | 
| 142 |  |  | //every free atom (atom does not belong to cutoff groups) is a cutoff | 
| 143 |  |  | //group therefore the total number of cutoff groups in the system is | 
| 144 |  |  | //equal to the total number of atoms minus number of atoms belong to | 
| 145 |  |  | //cutoff group defined in meta-data file plus the number of cutoff | 
| 146 |  |  | //groups defined in meta-data file | 
| 147 | chrisfen | 143 |  | 
| 148 | gezelter | 1782 | nGlobalCutoffGroups_ = nGlobalAtoms_ - nCutoffAtoms + nGroups; | 
| 149 |  |  |  | 
| 150 |  |  | //every free atom (atom does not belong to rigid bodies) is an | 
| 151 |  |  | //integrable object therefore the total number of integrable objects | 
| 152 |  |  | //in the system is equal to the total number of atoms minus number of | 
| 153 |  |  | //atoms belong to rigid body defined in meta-data file plus the number | 
| 154 |  |  | //of rigid bodies defined in meta-data file | 
| 155 |  |  | nGlobalIntegrableObjects_ = nGlobalAtoms_ - nRigidAtoms | 
| 156 |  |  | + nGlobalRigidBodies_; | 
| 157 |  |  |  | 
| 158 |  |  | nGlobalMols_ = molStampIds_.size(); | 
| 159 |  |  | molToProcMap_.resize(nGlobalMols_); | 
| 160 |  |  | } | 
| 161 | chrisfen | 645 |  | 
| 162 | gezelter | 507 | SimInfo::~SimInfo() { | 
| 163 | gezelter | 1782 | map<int, Molecule*>::iterator i; | 
| 164 | tim | 398 | for (i = molecules_.begin(); i != molecules_.end(); ++i) { | 
| 165 | gezelter | 507 | delete i->second; | 
| 166 | tim | 398 | } | 
| 167 |  |  | molecules_.clear(); | 
| 168 | tim | 490 |  | 
| 169 | gezelter | 246 | delete sman_; | 
| 170 |  |  | delete simParams_; | 
| 171 |  |  | delete forceField_; | 
| 172 | gezelter | 507 | } | 
| 173 | gezelter | 2 |  | 
| 174 |  |  |  | 
| 175 | gezelter | 507 | bool SimInfo::addMolecule(Molecule* mol) { | 
| 176 | gezelter | 246 | MoleculeIterator i; | 
| 177 | gezelter | 1782 |  | 
| 178 | gezelter | 246 | i = molecules_.find(mol->getGlobalIndex()); | 
| 179 |  |  | if (i == molecules_.end() ) { | 
| 180 | gezelter | 1782 |  | 
| 181 |  |  | molecules_.insert(make_pair(mol->getGlobalIndex(), mol)); | 
| 182 |  |  |  | 
| 183 | gezelter | 507 | nAtoms_ += mol->getNAtoms(); | 
| 184 |  |  | nBonds_ += mol->getNBonds(); | 
| 185 |  |  | nBends_ += mol->getNBends(); | 
| 186 |  |  | nTorsions_ += mol->getNTorsions(); | 
| 187 | gezelter | 1277 | nInversions_ += mol->getNInversions(); | 
| 188 | gezelter | 507 | nRigidBodies_ += mol->getNRigidBodies(); | 
| 189 |  |  | nIntegrableObjects_ += mol->getNIntegrableObjects(); | 
| 190 |  |  | nCutoffGroups_ += mol->getNCutoffGroups(); | 
| 191 |  |  | nConstraints_ += mol->getNConstraintPairs(); | 
| 192 | gezelter | 1782 |  | 
| 193 | gezelter | 1287 | addInteractionPairs(mol); | 
| 194 | gezelter | 1782 |  | 
| 195 | gezelter | 507 | return true; | 
| 196 | gezelter | 246 | } else { | 
| 197 | gezelter | 507 | return false; | 
| 198 | gezelter | 246 | } | 
| 199 | gezelter | 507 | } | 
| 200 | gezelter | 1782 |  | 
| 201 | gezelter | 507 | bool SimInfo::removeMolecule(Molecule* mol) { | 
| 202 | gezelter | 246 | MoleculeIterator i; | 
| 203 |  |  | i = molecules_.find(mol->getGlobalIndex()); | 
| 204 | gezelter | 2 |  | 
| 205 | gezelter | 246 | if (i != molecules_.end() ) { | 
| 206 | gezelter | 2 |  | 
| 207 | gezelter | 507 | assert(mol == i->second); | 
| 208 | gezelter | 246 |  | 
| 209 | gezelter | 507 | nAtoms_ -= mol->getNAtoms(); | 
| 210 |  |  | nBonds_ -= mol->getNBonds(); | 
| 211 |  |  | nBends_ -= mol->getNBends(); | 
| 212 |  |  | nTorsions_ -= mol->getNTorsions(); | 
| 213 | gezelter | 1277 | nInversions_ -= mol->getNInversions(); | 
| 214 | gezelter | 507 | nRigidBodies_ -= mol->getNRigidBodies(); | 
| 215 |  |  | nIntegrableObjects_ -= mol->getNIntegrableObjects(); | 
| 216 |  |  | nCutoffGroups_ -= mol->getNCutoffGroups(); | 
| 217 |  |  | nConstraints_ -= mol->getNConstraintPairs(); | 
| 218 | gezelter | 2 |  | 
| 219 | gezelter | 1287 | removeInteractionPairs(mol); | 
| 220 | gezelter | 507 | molecules_.erase(mol->getGlobalIndex()); | 
| 221 | gezelter | 2 |  | 
| 222 | gezelter | 507 | delete mol; | 
| 223 | gezelter | 246 |  | 
| 224 | gezelter | 507 | return true; | 
| 225 | gezelter | 246 | } else { | 
| 226 | gezelter | 507 | return false; | 
| 227 | gezelter | 246 | } | 
| 228 | gezelter | 507 | } | 
| 229 | gezelter | 246 |  | 
| 230 |  |  |  | 
| 231 | gezelter | 507 | Molecule* SimInfo::beginMolecule(MoleculeIterator& i) { | 
| 232 | gezelter | 246 | i = molecules_.begin(); | 
| 233 |  |  | return i == molecules_.end() ? NULL : i->second; | 
| 234 | gezelter | 507 | } | 
| 235 | gezelter | 246 |  | 
| 236 | gezelter | 507 | Molecule* SimInfo::nextMolecule(MoleculeIterator& i) { | 
| 237 | gezelter | 246 | ++i; | 
| 238 |  |  | return i == molecules_.end() ? NULL : i->second; | 
| 239 | gezelter | 507 | } | 
| 240 | gezelter | 2 |  | 
| 241 |  |  |  | 
| 242 | gezelter | 507 | void SimInfo::calcNdf() { | 
| 243 | gezelter | 1782 | int ndf_local, nfq_local; | 
| 244 | gezelter | 246 | MoleculeIterator i; | 
| 245 | gezelter | 1782 | vector<StuntDouble*>::iterator j; | 
| 246 |  |  | vector<Atom*>::iterator k; | 
| 247 |  |  |  | 
| 248 | gezelter | 246 | Molecule* mol; | 
| 249 | gezelter | 1782 | StuntDouble* sd; | 
| 250 |  |  | Atom* atom; | 
| 251 | gezelter | 2 |  | 
| 252 | gezelter | 246 | ndf_local = 0; | 
| 253 | gezelter | 1782 | nfq_local = 0; | 
| 254 | gezelter | 246 |  | 
| 255 |  |  | for (mol = beginMolecule(i); mol != NULL; mol = nextMolecule(i)) { | 
| 256 | gezelter | 2 |  | 
| 257 | gezelter | 1782 | for (sd = mol->beginIntegrableObject(j); sd != NULL; | 
| 258 |  |  | sd = mol->nextIntegrableObject(j)) { | 
| 259 |  |  |  | 
| 260 | gezelter | 507 | ndf_local += 3; | 
| 261 | gezelter | 2 |  | 
| 262 | gezelter | 1782 | if (sd->isDirectional()) { | 
| 263 |  |  | if (sd->isLinear()) { | 
| 264 | gezelter | 507 | ndf_local += 2; | 
| 265 |  |  | } else { | 
| 266 |  |  | ndf_local += 3; | 
| 267 |  |  | } | 
| 268 |  |  | } | 
| 269 | tim | 770 | } | 
| 270 | gezelter | 1782 |  | 
| 271 |  |  | for (atom = mol->beginFluctuatingCharge(k); atom != NULL; | 
| 272 |  |  | atom = mol->nextFluctuatingCharge(k)) { | 
| 273 |  |  | if (atom->isFluctuatingCharge()) { | 
| 274 |  |  | nfq_local++; | 
| 275 |  |  | } | 
| 276 |  |  | } | 
| 277 | tim | 770 | } | 
| 278 | gezelter | 246 |  | 
| 279 | gezelter | 1782 | ndfLocal_ = ndf_local; | 
| 280 |  |  |  | 
| 281 | gezelter | 246 | // n_constraints is local, so subtract them on each processor | 
| 282 |  |  | ndf_local -= nConstraints_; | 
| 283 |  |  |  | 
| 284 |  |  | #ifdef IS_MPI | 
| 285 | gezelter | 1969 | MPI_Allreduce(&ndf_local, &ndf_, 1, MPI_INT, MPI_SUM, MPI_COMM_WORLD); | 
| 286 |  |  | MPI_Allreduce(&nfq_local, &nGlobalFluctuatingCharges_, 1, | 
| 287 |  |  | MPI_INT, MPI_SUM, MPI_COMM_WORLD); | 
| 288 | gezelter | 246 | #else | 
| 289 |  |  | ndf_ = ndf_local; | 
| 290 | gezelter | 1782 | nGlobalFluctuatingCharges_ = nfq_local; | 
| 291 | gezelter | 246 | #endif | 
| 292 |  |  |  | 
| 293 |  |  | // nZconstraints_ is global, as are the 3 COM translations for the | 
| 294 |  |  | // entire system: | 
| 295 |  |  | ndf_ = ndf_ - 3 - nZconstraint_; | 
| 296 |  |  |  | 
| 297 | gezelter | 507 | } | 
| 298 | gezelter | 2 |  | 
| 299 | gezelter | 945 | int SimInfo::getFdf() { | 
| 300 |  |  | #ifdef IS_MPI | 
| 301 | gezelter | 1969 | MPI_Allreduce(&fdf_local, &fdf_, 1, MPI_INT, MPI_SUM, MPI_COMM_WORLD); | 
| 302 | gezelter | 945 | #else | 
| 303 |  |  | fdf_ = fdf_local; | 
| 304 |  |  | #endif | 
| 305 |  |  | return fdf_; | 
| 306 |  |  | } | 
| 307 | gezelter | 1782 |  | 
| 308 |  |  | unsigned int SimInfo::getNLocalCutoffGroups(){ | 
| 309 |  |  | int nLocalCutoffAtoms = 0; | 
| 310 |  |  | Molecule* mol; | 
| 311 |  |  | MoleculeIterator mi; | 
| 312 |  |  | CutoffGroup* cg; | 
| 313 |  |  | Molecule::CutoffGroupIterator ci; | 
| 314 | gezelter | 945 |  | 
| 315 | gezelter | 1782 | for (mol = beginMolecule(mi); mol != NULL; mol  = nextMolecule(mi)) { | 
| 316 |  |  |  | 
| 317 |  |  | for (cg = mol->beginCutoffGroup(ci); cg != NULL; | 
| 318 |  |  | cg = mol->nextCutoffGroup(ci)) { | 
| 319 |  |  | nLocalCutoffAtoms += cg->getNumAtom(); | 
| 320 |  |  |  | 
| 321 |  |  | } | 
| 322 |  |  | } | 
| 323 |  |  |  | 
| 324 |  |  | return nAtoms_ - nLocalCutoffAtoms + nCutoffGroups_; | 
| 325 |  |  | } | 
| 326 |  |  |  | 
| 327 | gezelter | 507 | void SimInfo::calcNdfRaw() { | 
| 328 | gezelter | 246 | int ndfRaw_local; | 
| 329 | gezelter | 2 |  | 
| 330 | gezelter | 246 | MoleculeIterator i; | 
| 331 | gezelter | 1782 | vector<StuntDouble*>::iterator j; | 
| 332 | gezelter | 246 | Molecule* mol; | 
| 333 | gezelter | 1782 | StuntDouble* sd; | 
| 334 | gezelter | 246 |  | 
| 335 |  |  | // Raw degrees of freedom that we have to set | 
| 336 |  |  | ndfRaw_local = 0; | 
| 337 |  |  |  | 
| 338 |  |  | for (mol = beginMolecule(i); mol != NULL; mol = nextMolecule(i)) { | 
| 339 |  |  |  | 
| 340 | gezelter | 1782 | for (sd = mol->beginIntegrableObject(j); sd != NULL; | 
| 341 |  |  | sd = mol->nextIntegrableObject(j)) { | 
| 342 |  |  |  | 
| 343 | gezelter | 507 | ndfRaw_local += 3; | 
| 344 | gezelter | 246 |  | 
| 345 | gezelter | 1782 | if (sd->isDirectional()) { | 
| 346 |  |  | if (sd->isLinear()) { | 
| 347 | gezelter | 507 | ndfRaw_local += 2; | 
| 348 |  |  | } else { | 
| 349 |  |  | ndfRaw_local += 3; | 
| 350 |  |  | } | 
| 351 |  |  | } | 
| 352 | gezelter | 246 |  | 
| 353 | gezelter | 507 | } | 
| 354 | gezelter | 246 | } | 
| 355 |  |  |  | 
| 356 |  |  | #ifdef IS_MPI | 
| 357 | gezelter | 1969 | MPI_Allreduce(&ndfRaw_local, &ndfRaw_, 1, MPI_INT, MPI_SUM, MPI_COMM_WORLD); | 
| 358 | gezelter | 246 | #else | 
| 359 |  |  | ndfRaw_ = ndfRaw_local; | 
| 360 |  |  | #endif | 
| 361 | gezelter | 507 | } | 
| 362 | gezelter | 2 |  | 
| 363 | gezelter | 507 | void SimInfo::calcNdfTrans() { | 
| 364 | gezelter | 246 | int ndfTrans_local; | 
| 365 | gezelter | 2 |  | 
| 366 | gezelter | 246 | ndfTrans_local = 3 * nIntegrableObjects_ - nConstraints_; | 
| 367 | gezelter | 2 |  | 
| 368 | gezelter | 246 | #ifdef IS_MPI | 
| 369 | gezelter | 1983 | MPI_Allreduce(&ndfTrans_local, &ndfTrans_, 1, MPI_INT, MPI_SUM, | 
| 370 |  |  | MPI_COMM_WORLD); | 
| 371 | gezelter | 246 | #else | 
| 372 |  |  | ndfTrans_ = ndfTrans_local; | 
| 373 |  |  | #endif | 
| 374 | gezelter | 2 |  | 
| 375 | gezelter | 246 | ndfTrans_ = ndfTrans_ - 3 - nZconstraint_; | 
| 376 | gezelter | 507 | } | 
| 377 | gezelter | 2 |  | 
| 378 | gezelter | 1287 | void SimInfo::addInteractionPairs(Molecule* mol) { | 
| 379 |  |  | ForceFieldOptions& options_ = forceField_->getForceFieldOptions(); | 
| 380 | gezelter | 1782 | vector<Bond*>::iterator bondIter; | 
| 381 |  |  | vector<Bend*>::iterator bendIter; | 
| 382 |  |  | vector<Torsion*>::iterator torsionIter; | 
| 383 |  |  | vector<Inversion*>::iterator inversionIter; | 
| 384 | gezelter | 246 | Bond* bond; | 
| 385 |  |  | Bend* bend; | 
| 386 |  |  | Torsion* torsion; | 
| 387 | gezelter | 1277 | Inversion* inversion; | 
| 388 | gezelter | 246 | int a; | 
| 389 |  |  | int b; | 
| 390 |  |  | int c; | 
| 391 |  |  | int d; | 
| 392 | tim | 749 |  | 
| 393 | gezelter | 1287 | // atomGroups can be used to add special interaction maps between | 
| 394 |  |  | // groups of atoms that are in two separate rigid bodies. | 
| 395 |  |  | // However, most site-site interactions between two rigid bodies | 
| 396 |  |  | // are probably not special, just the ones between the physically | 
| 397 |  |  | // bonded atoms.  Interactions *within* a single rigid body should | 
| 398 |  |  | // always be excluded.  These are done at the bottom of this | 
| 399 |  |  | // function. | 
| 400 |  |  |  | 
| 401 | gezelter | 1782 | map<int, set<int> > atomGroups; | 
| 402 | tim | 749 | Molecule::RigidBodyIterator rbIter; | 
| 403 |  |  | RigidBody* rb; | 
| 404 |  |  | Molecule::IntegrableObjectIterator ii; | 
| 405 | gezelter | 1782 | StuntDouble* sd; | 
| 406 | gezelter | 246 |  | 
| 407 | gezelter | 1782 | for (sd = mol->beginIntegrableObject(ii); sd != NULL; | 
| 408 |  |  | sd = mol->nextIntegrableObject(ii)) { | 
| 409 | gezelter | 1287 |  | 
| 410 | gezelter | 1782 | if (sd->isRigidBody()) { | 
| 411 |  |  | rb = static_cast<RigidBody*>(sd); | 
| 412 |  |  | vector<Atom*> atoms = rb->getAtoms(); | 
| 413 |  |  | set<int> rigidAtoms; | 
| 414 | gezelter | 1287 | for (int i = 0; i < static_cast<int>(atoms.size()); ++i) { | 
| 415 |  |  | rigidAtoms.insert(atoms[i]->getGlobalIndex()); | 
| 416 |  |  | } | 
| 417 |  |  | for (int i = 0; i < static_cast<int>(atoms.size()); ++i) { | 
| 418 | gezelter | 1782 | atomGroups.insert(map<int, set<int> >::value_type(atoms[i]->getGlobalIndex(), rigidAtoms)); | 
| 419 | gezelter | 1287 | } | 
| 420 | tim | 749 | } else { | 
| 421 | gezelter | 1782 | set<int> oneAtomSet; | 
| 422 |  |  | oneAtomSet.insert(sd->getGlobalIndex()); | 
| 423 |  |  | atomGroups.insert(map<int, set<int> >::value_type(sd->getGlobalIndex(), oneAtomSet)); | 
| 424 | tim | 749 | } | 
| 425 |  |  | } | 
| 426 | gezelter | 1930 |  | 
| 427 | gezelter | 1287 |  | 
| 428 |  |  | for (bond= mol->beginBond(bondIter); bond != NULL; | 
| 429 |  |  | bond = mol->nextBond(bondIter)) { | 
| 430 | tim | 749 |  | 
| 431 | gezelter | 1287 | a = bond->getAtomA()->getGlobalIndex(); | 
| 432 |  |  | b = bond->getAtomB()->getGlobalIndex(); | 
| 433 | gezelter | 1558 |  | 
| 434 | gezelter | 1287 | if (options_.havevdw12scale() || options_.haveelectrostatic12scale()) { | 
| 435 |  |  | oneTwoInteractions_.addPair(a, b); | 
| 436 |  |  | } else { | 
| 437 |  |  | excludedInteractions_.addPair(a, b); | 
| 438 |  |  | } | 
| 439 | gezelter | 246 | } | 
| 440 | gezelter | 2 |  | 
| 441 | gezelter | 1287 | for (bend= mol->beginBend(bendIter); bend != NULL; | 
| 442 |  |  | bend = mol->nextBend(bendIter)) { | 
| 443 |  |  |  | 
| 444 | gezelter | 507 | a = bend->getAtomA()->getGlobalIndex(); | 
| 445 |  |  | b = bend->getAtomB()->getGlobalIndex(); | 
| 446 |  |  | c = bend->getAtomC()->getGlobalIndex(); | 
| 447 | gezelter | 1287 |  | 
| 448 |  |  | if (options_.havevdw12scale() || options_.haveelectrostatic12scale()) { | 
| 449 |  |  | oneTwoInteractions_.addPair(a, b); | 
| 450 |  |  | oneTwoInteractions_.addPair(b, c); | 
| 451 |  |  | } else { | 
| 452 |  |  | excludedInteractions_.addPair(a, b); | 
| 453 |  |  | excludedInteractions_.addPair(b, c); | 
| 454 |  |  | } | 
| 455 | gezelter | 2 |  | 
| 456 | gezelter | 1287 | if (options_.havevdw13scale() || options_.haveelectrostatic13scale()) { | 
| 457 |  |  | oneThreeInteractions_.addPair(a, c); | 
| 458 |  |  | } else { | 
| 459 |  |  | excludedInteractions_.addPair(a, c); | 
| 460 |  |  | } | 
| 461 | gezelter | 246 | } | 
| 462 | gezelter | 2 |  | 
| 463 | gezelter | 1287 | for (torsion= mol->beginTorsion(torsionIter); torsion != NULL; | 
| 464 |  |  | torsion = mol->nextTorsion(torsionIter)) { | 
| 465 |  |  |  | 
| 466 | gezelter | 507 | a = torsion->getAtomA()->getGlobalIndex(); | 
| 467 |  |  | b = torsion->getAtomB()->getGlobalIndex(); | 
| 468 |  |  | c = torsion->getAtomC()->getGlobalIndex(); | 
| 469 | gezelter | 1287 | d = torsion->getAtomD()->getGlobalIndex(); | 
| 470 | cli2 | 1290 |  | 
| 471 | gezelter | 1287 | if (options_.havevdw12scale() || options_.haveelectrostatic12scale()) { | 
| 472 |  |  | oneTwoInteractions_.addPair(a, b); | 
| 473 |  |  | oneTwoInteractions_.addPair(b, c); | 
| 474 |  |  | oneTwoInteractions_.addPair(c, d); | 
| 475 |  |  | } else { | 
| 476 |  |  | excludedInteractions_.addPair(a, b); | 
| 477 |  |  | excludedInteractions_.addPair(b, c); | 
| 478 |  |  | excludedInteractions_.addPair(c, d); | 
| 479 |  |  | } | 
| 480 | gezelter | 2 |  | 
| 481 | gezelter | 1287 | if (options_.havevdw13scale() || options_.haveelectrostatic13scale()) { | 
| 482 |  |  | oneThreeInteractions_.addPair(a, c); | 
| 483 |  |  | oneThreeInteractions_.addPair(b, d); | 
| 484 |  |  | } else { | 
| 485 |  |  | excludedInteractions_.addPair(a, c); | 
| 486 |  |  | excludedInteractions_.addPair(b, d); | 
| 487 |  |  | } | 
| 488 | tim | 749 |  | 
| 489 | gezelter | 1287 | if (options_.havevdw14scale() || options_.haveelectrostatic14scale()) { | 
| 490 |  |  | oneFourInteractions_.addPair(a, d); | 
| 491 |  |  | } else { | 
| 492 |  |  | excludedInteractions_.addPair(a, d); | 
| 493 |  |  | } | 
| 494 | gezelter | 2 | } | 
| 495 |  |  |  | 
| 496 | gezelter | 1277 | for (inversion= mol->beginInversion(inversionIter); inversion != NULL; | 
| 497 |  |  | inversion = mol->nextInversion(inversionIter)) { | 
| 498 | gezelter | 1287 |  | 
| 499 | gezelter | 1277 | a = inversion->getAtomA()->getGlobalIndex(); | 
| 500 |  |  | b = inversion->getAtomB()->getGlobalIndex(); | 
| 501 |  |  | c = inversion->getAtomC()->getGlobalIndex(); | 
| 502 |  |  | d = inversion->getAtomD()->getGlobalIndex(); | 
| 503 |  |  |  | 
| 504 | gezelter | 1287 | if (options_.havevdw12scale() || options_.haveelectrostatic12scale()) { | 
| 505 |  |  | oneTwoInteractions_.addPair(a, b); | 
| 506 |  |  | oneTwoInteractions_.addPair(a, c); | 
| 507 |  |  | oneTwoInteractions_.addPair(a, d); | 
| 508 |  |  | } else { | 
| 509 |  |  | excludedInteractions_.addPair(a, b); | 
| 510 |  |  | excludedInteractions_.addPair(a, c); | 
| 511 |  |  | excludedInteractions_.addPair(a, d); | 
| 512 |  |  | } | 
| 513 | gezelter | 1277 |  | 
| 514 | gezelter | 1287 | if (options_.havevdw13scale() || options_.haveelectrostatic13scale()) { | 
| 515 |  |  | oneThreeInteractions_.addPair(b, c); | 
| 516 |  |  | oneThreeInteractions_.addPair(b, d); | 
| 517 |  |  | oneThreeInteractions_.addPair(c, d); | 
| 518 |  |  | } else { | 
| 519 |  |  | excludedInteractions_.addPair(b, c); | 
| 520 |  |  | excludedInteractions_.addPair(b, d); | 
| 521 |  |  | excludedInteractions_.addPair(c, d); | 
| 522 |  |  | } | 
| 523 | gezelter | 1277 | } | 
| 524 |  |  |  | 
| 525 | gezelter | 1287 | for (rb = mol->beginRigidBody(rbIter); rb != NULL; | 
| 526 |  |  | rb = mol->nextRigidBody(rbIter)) { | 
| 527 | gezelter | 1782 | vector<Atom*> atoms = rb->getAtoms(); | 
| 528 | gezelter | 1287 | for (int i = 0; i < static_cast<int>(atoms.size()) -1 ; ++i) { | 
| 529 |  |  | for (int j = i + 1; j < static_cast<int>(atoms.size()); ++j) { | 
| 530 | gezelter | 507 | a = atoms[i]->getGlobalIndex(); | 
| 531 |  |  | b = atoms[j]->getGlobalIndex(); | 
| 532 | gezelter | 1287 | excludedInteractions_.addPair(a, b); | 
| 533 | gezelter | 507 | } | 
| 534 |  |  | } | 
| 535 | tim | 430 | } | 
| 536 |  |  |  | 
| 537 | gezelter | 507 | } | 
| 538 | gezelter | 246 |  | 
| 539 | gezelter | 1287 | void SimInfo::removeInteractionPairs(Molecule* mol) { | 
| 540 |  |  | ForceFieldOptions& options_ = forceField_->getForceFieldOptions(); | 
| 541 | gezelter | 1782 | vector<Bond*>::iterator bondIter; | 
| 542 |  |  | vector<Bend*>::iterator bendIter; | 
| 543 |  |  | vector<Torsion*>::iterator torsionIter; | 
| 544 |  |  | vector<Inversion*>::iterator inversionIter; | 
| 545 | gezelter | 246 | Bond* bond; | 
| 546 |  |  | Bend* bend; | 
| 547 |  |  | Torsion* torsion; | 
| 548 | gezelter | 1277 | Inversion* inversion; | 
| 549 | gezelter | 246 | int a; | 
| 550 |  |  | int b; | 
| 551 |  |  | int c; | 
| 552 |  |  | int d; | 
| 553 | tim | 749 |  | 
| 554 | gezelter | 1782 | map<int, set<int> > atomGroups; | 
| 555 | tim | 749 | Molecule::RigidBodyIterator rbIter; | 
| 556 |  |  | RigidBody* rb; | 
| 557 |  |  | Molecule::IntegrableObjectIterator ii; | 
| 558 | gezelter | 1782 | StuntDouble* sd; | 
| 559 | gezelter | 246 |  | 
| 560 | gezelter | 1782 | for (sd = mol->beginIntegrableObject(ii); sd != NULL; | 
| 561 |  |  | sd = mol->nextIntegrableObject(ii)) { | 
| 562 | gezelter | 1287 |  | 
| 563 | gezelter | 1782 | if (sd->isRigidBody()) { | 
| 564 |  |  | rb = static_cast<RigidBody*>(sd); | 
| 565 |  |  | vector<Atom*> atoms = rb->getAtoms(); | 
| 566 |  |  | set<int> rigidAtoms; | 
| 567 | gezelter | 1287 | for (int i = 0; i < static_cast<int>(atoms.size()); ++i) { | 
| 568 |  |  | rigidAtoms.insert(atoms[i]->getGlobalIndex()); | 
| 569 |  |  | } | 
| 570 |  |  | for (int i = 0; i < static_cast<int>(atoms.size()); ++i) { | 
| 571 | gezelter | 1782 | atomGroups.insert(map<int, set<int> >::value_type(atoms[i]->getGlobalIndex(), rigidAtoms)); | 
| 572 | gezelter | 1287 | } | 
| 573 | tim | 749 | } else { | 
| 574 | gezelter | 1782 | set<int> oneAtomSet; | 
| 575 |  |  | oneAtomSet.insert(sd->getGlobalIndex()); | 
| 576 |  |  | atomGroups.insert(map<int, set<int> >::value_type(sd->getGlobalIndex(), oneAtomSet)); | 
| 577 | tim | 749 | } | 
| 578 |  |  | } | 
| 579 |  |  |  | 
| 580 | gezelter | 1287 | for (bond= mol->beginBond(bondIter); bond != NULL; | 
| 581 |  |  | bond = mol->nextBond(bondIter)) { | 
| 582 |  |  |  | 
| 583 |  |  | a = bond->getAtomA()->getGlobalIndex(); | 
| 584 |  |  | b = bond->getAtomB()->getGlobalIndex(); | 
| 585 | tim | 749 |  | 
| 586 | gezelter | 1287 | if (options_.havevdw12scale() || options_.haveelectrostatic12scale()) { | 
| 587 |  |  | oneTwoInteractions_.removePair(a, b); | 
| 588 |  |  | } else { | 
| 589 |  |  | excludedInteractions_.removePair(a, b); | 
| 590 |  |  | } | 
| 591 | gezelter | 2 | } | 
| 592 | gezelter | 246 |  | 
| 593 | gezelter | 1287 | for (bend= mol->beginBend(bendIter); bend != NULL; | 
| 594 |  |  | bend = mol->nextBend(bendIter)) { | 
| 595 |  |  |  | 
| 596 | gezelter | 507 | a = bend->getAtomA()->getGlobalIndex(); | 
| 597 |  |  | b = bend->getAtomB()->getGlobalIndex(); | 
| 598 |  |  | c = bend->getAtomC()->getGlobalIndex(); | 
| 599 | gezelter | 1287 |  | 
| 600 |  |  | if (options_.havevdw12scale() || options_.haveelectrostatic12scale()) { | 
| 601 |  |  | oneTwoInteractions_.removePair(a, b); | 
| 602 |  |  | oneTwoInteractions_.removePair(b, c); | 
| 603 |  |  | } else { | 
| 604 |  |  | excludedInteractions_.removePair(a, b); | 
| 605 |  |  | excludedInteractions_.removePair(b, c); | 
| 606 |  |  | } | 
| 607 | gezelter | 246 |  | 
| 608 | gezelter | 1287 | if (options_.havevdw13scale() || options_.haveelectrostatic13scale()) { | 
| 609 |  |  | oneThreeInteractions_.removePair(a, c); | 
| 610 |  |  | } else { | 
| 611 |  |  | excludedInteractions_.removePair(a, c); | 
| 612 |  |  | } | 
| 613 | gezelter | 2 | } | 
| 614 | gezelter | 246 |  | 
| 615 | gezelter | 1287 | for (torsion= mol->beginTorsion(torsionIter); torsion != NULL; | 
| 616 |  |  | torsion = mol->nextTorsion(torsionIter)) { | 
| 617 |  |  |  | 
| 618 | gezelter | 507 | a = torsion->getAtomA()->getGlobalIndex(); | 
| 619 |  |  | b = torsion->getAtomB()->getGlobalIndex(); | 
| 620 |  |  | c = torsion->getAtomC()->getGlobalIndex(); | 
| 621 | gezelter | 1287 | d = torsion->getAtomD()->getGlobalIndex(); | 
| 622 |  |  |  | 
| 623 |  |  | if (options_.havevdw12scale() || options_.haveelectrostatic12scale()) { | 
| 624 |  |  | oneTwoInteractions_.removePair(a, b); | 
| 625 |  |  | oneTwoInteractions_.removePair(b, c); | 
| 626 |  |  | oneTwoInteractions_.removePair(c, d); | 
| 627 |  |  | } else { | 
| 628 |  |  | excludedInteractions_.removePair(a, b); | 
| 629 |  |  | excludedInteractions_.removePair(b, c); | 
| 630 |  |  | excludedInteractions_.removePair(c, d); | 
| 631 |  |  | } | 
| 632 | gezelter | 246 |  | 
| 633 | gezelter | 1287 | if (options_.havevdw13scale() || options_.haveelectrostatic13scale()) { | 
| 634 |  |  | oneThreeInteractions_.removePair(a, c); | 
| 635 |  |  | oneThreeInteractions_.removePair(b, d); | 
| 636 |  |  | } else { | 
| 637 |  |  | excludedInteractions_.removePair(a, c); | 
| 638 |  |  | excludedInteractions_.removePair(b, d); | 
| 639 |  |  | } | 
| 640 | tim | 749 |  | 
| 641 | gezelter | 1287 | if (options_.havevdw14scale() || options_.haveelectrostatic14scale()) { | 
| 642 |  |  | oneFourInteractions_.removePair(a, d); | 
| 643 |  |  | } else { | 
| 644 |  |  | excludedInteractions_.removePair(a, d); | 
| 645 |  |  | } | 
| 646 |  |  | } | 
| 647 | tim | 749 |  | 
| 648 | gezelter | 1287 | for (inversion= mol->beginInversion(inversionIter); inversion != NULL; | 
| 649 |  |  | inversion = mol->nextInversion(inversionIter)) { | 
| 650 | tim | 749 |  | 
| 651 | gezelter | 1277 | a = inversion->getAtomA()->getGlobalIndex(); | 
| 652 |  |  | b = inversion->getAtomB()->getGlobalIndex(); | 
| 653 |  |  | c = inversion->getAtomC()->getGlobalIndex(); | 
| 654 |  |  | d = inversion->getAtomD()->getGlobalIndex(); | 
| 655 |  |  |  | 
| 656 | gezelter | 1287 | if (options_.havevdw12scale() || options_.haveelectrostatic12scale()) { | 
| 657 |  |  | oneTwoInteractions_.removePair(a, b); | 
| 658 |  |  | oneTwoInteractions_.removePair(a, c); | 
| 659 |  |  | oneTwoInteractions_.removePair(a, d); | 
| 660 |  |  | } else { | 
| 661 |  |  | excludedInteractions_.removePair(a, b); | 
| 662 |  |  | excludedInteractions_.removePair(a, c); | 
| 663 |  |  | excludedInteractions_.removePair(a, d); | 
| 664 |  |  | } | 
| 665 | gezelter | 1277 |  | 
| 666 | gezelter | 1287 | if (options_.havevdw13scale() || options_.haveelectrostatic13scale()) { | 
| 667 |  |  | oneThreeInteractions_.removePair(b, c); | 
| 668 |  |  | oneThreeInteractions_.removePair(b, d); | 
| 669 |  |  | oneThreeInteractions_.removePair(c, d); | 
| 670 |  |  | } else { | 
| 671 |  |  | excludedInteractions_.removePair(b, c); | 
| 672 |  |  | excludedInteractions_.removePair(b, d); | 
| 673 |  |  | excludedInteractions_.removePair(c, d); | 
| 674 |  |  | } | 
| 675 | gezelter | 1277 | } | 
| 676 |  |  |  | 
| 677 | gezelter | 1287 | for (rb = mol->beginRigidBody(rbIter); rb != NULL; | 
| 678 |  |  | rb = mol->nextRigidBody(rbIter)) { | 
| 679 | gezelter | 1782 | vector<Atom*> atoms = rb->getAtoms(); | 
| 680 | gezelter | 1287 | for (int i = 0; i < static_cast<int>(atoms.size()) -1 ; ++i) { | 
| 681 |  |  | for (int j = i + 1; j < static_cast<int>(atoms.size()); ++j) { | 
| 682 | gezelter | 507 | a = atoms[i]->getGlobalIndex(); | 
| 683 |  |  | b = atoms[j]->getGlobalIndex(); | 
| 684 | gezelter | 1287 | excludedInteractions_.removePair(a, b); | 
| 685 | gezelter | 507 | } | 
| 686 |  |  | } | 
| 687 | tim | 430 | } | 
| 688 | gezelter | 1287 |  | 
| 689 | gezelter | 507 | } | 
| 690 | gezelter | 1287 |  | 
| 691 |  |  |  | 
| 692 | gezelter | 507 | void SimInfo::addMoleculeStamp(MoleculeStamp* molStamp, int nmol) { | 
| 693 | gezelter | 246 | int curStampId; | 
| 694 | gezelter | 1287 |  | 
| 695 | gezelter | 246 | //index from 0 | 
| 696 |  |  | curStampId = moleculeStamps_.size(); | 
| 697 | gezelter | 2 |  | 
| 698 | gezelter | 246 | moleculeStamps_.push_back(molStamp); | 
| 699 |  |  | molStampIds_.insert(molStampIds_.end(), nmol, curStampId); | 
| 700 | gezelter | 507 | } | 
| 701 | gezelter | 2 |  | 
| 702 |  |  |  | 
| 703 | gezelter | 1782 | /** | 
| 704 |  |  | * update | 
| 705 |  |  | * | 
| 706 |  |  | *  Performs the global checks and variable settings after the | 
| 707 |  |  | *  objects have been created. | 
| 708 |  |  | * | 
| 709 |  |  | */ | 
| 710 |  |  | void SimInfo::update() { | 
| 711 |  |  | setupSimVariables(); | 
| 712 | gezelter | 1983 | calcNConstraints(); | 
| 713 | gezelter | 246 | calcNdf(); | 
| 714 |  |  | calcNdfRaw(); | 
| 715 |  |  | calcNdfTrans(); | 
| 716 | gezelter | 507 | } | 
| 717 | gezelter | 1782 |  | 
| 718 |  |  | /** | 
| 719 |  |  | * getSimulatedAtomTypes | 
| 720 |  |  | * | 
| 721 |  |  | * Returns an STL set of AtomType* that are actually present in this | 
| 722 |  |  | * simulation.  Must query all processors to assemble this information. | 
| 723 |  |  | * | 
| 724 |  |  | */ | 
| 725 |  |  | set<AtomType*> SimInfo::getSimulatedAtomTypes() { | 
| 726 | gezelter | 246 | SimInfo::MoleculeIterator mi; | 
| 727 |  |  | Molecule* mol; | 
| 728 |  |  | Molecule::AtomIterator ai; | 
| 729 |  |  | Atom* atom; | 
| 730 | gezelter | 1782 | set<AtomType*> atomTypes; | 
| 731 |  |  |  | 
| 732 | gezelter | 246 | for(mol = beginMolecule(mi); mol != NULL; mol = nextMolecule(mi)) { | 
| 733 | gezelter | 1782 | for(atom = mol->beginAtom(ai); atom != NULL; | 
| 734 |  |  | atom = mol->nextAtom(ai)) { | 
| 735 | gezelter | 507 | atomTypes.insert(atom->getAtomType()); | 
| 736 | gezelter | 1782 | } | 
| 737 |  |  | } | 
| 738 | gezelter | 2 |  | 
| 739 | gezelter | 1782 | #ifdef IS_MPI | 
| 740 | gezelter | 1126 |  | 
| 741 | gezelter | 1782 | // loop over the found atom types on this processor, and add their | 
| 742 |  |  | // numerical idents to a vector: | 
| 743 | chrisfen | 998 |  | 
| 744 | gezelter | 1782 | vector<int> foundTypes; | 
| 745 |  |  | set<AtomType*>::iterator i; | 
| 746 |  |  | for (i = atomTypes.begin(); i != atomTypes.end(); ++i) | 
| 747 |  |  | foundTypes.push_back( (*i)->getIdent() ); | 
| 748 | chrisfen | 611 |  | 
| 749 | gezelter | 1782 | // count_local holds the number of found types on this processor | 
| 750 |  |  | int count_local = foundTypes.size(); | 
| 751 | gezelter | 1126 |  | 
| 752 | gezelter | 1969 | int nproc; | 
| 753 |  |  | MPI_Comm_size( MPI_COMM_WORLD, &nproc); | 
| 754 |  |  | // int nproc = MPI::COMM_WORLD.Get_size(); | 
| 755 | gezelter | 2 |  | 
| 756 | gezelter | 1782 | // we need arrays to hold the counts and displacement vectors for | 
| 757 |  |  | // all processors | 
| 758 |  |  | vector<int> counts(nproc, 0); | 
| 759 |  |  | vector<int> disps(nproc, 0); | 
| 760 | gezelter | 2 |  | 
| 761 | gezelter | 1782 | // fill the counts array | 
| 762 | gezelter | 1969 | MPI_Allgather(&count_local, 1, MPI_INT, &counts[0], | 
| 763 |  |  | 1, MPI_INT, MPI_COMM_WORLD); | 
| 764 |  |  | // MPI::COMM_WORLD.Allgather(&count_local, 1, MPI::INT, &counts[0], | 
| 765 |  |  | //                           1, MPI::INT); | 
| 766 | gezelter | 1782 |  | 
| 767 |  |  | // use the processor counts to compute the displacement array | 
| 768 |  |  | disps[0] = 0; | 
| 769 |  |  | int totalCount = counts[0]; | 
| 770 |  |  | for (int iproc = 1; iproc < nproc; iproc++) { | 
| 771 |  |  | disps[iproc] = disps[iproc-1] + counts[iproc-1]; | 
| 772 |  |  | totalCount += counts[iproc]; | 
| 773 | gezelter | 246 | } | 
| 774 | gezelter | 2 |  | 
| 775 | gezelter | 1782 | // we need a (possibly redundant) set of all found types: | 
| 776 |  |  | vector<int> ftGlobal(totalCount); | 
| 777 |  |  |  | 
| 778 |  |  | // now spray out the foundTypes to all the other processors: | 
| 779 | gezelter | 1969 | MPI_Allgatherv(&foundTypes[0], count_local, MPI_INT, | 
| 780 |  |  | &ftGlobal[0], &counts[0], &disps[0], | 
| 781 |  |  | MPI_INT, MPI_COMM_WORLD); | 
| 782 |  |  | // MPI::COMM_WORLD.Allgatherv(&foundTypes[0], count_local, MPI::INT, | 
| 783 |  |  | //                            &ftGlobal[0], &counts[0], &disps[0], | 
| 784 |  |  | //                            MPI::INT); | 
| 785 | gezelter | 2 |  | 
| 786 | gezelter | 1782 | vector<int>::iterator j; | 
| 787 | gezelter | 2 |  | 
| 788 | gezelter | 1782 | // foundIdents is a stl set, so inserting an already found ident | 
| 789 |  |  | // will have no effect. | 
| 790 |  |  | set<int> foundIdents; | 
| 791 | gezelter | 2 |  | 
| 792 | gezelter | 1782 | for (j = ftGlobal.begin(); j != ftGlobal.end(); ++j) | 
| 793 |  |  | foundIdents.insert((*j)); | 
| 794 |  |  |  | 
| 795 |  |  | // now iterate over the foundIdents and get the actual atom types | 
| 796 |  |  | // that correspond to these: | 
| 797 |  |  | set<int>::iterator it; | 
| 798 |  |  | for (it = foundIdents.begin(); it != foundIdents.end(); ++it) | 
| 799 |  |  | atomTypes.insert( forceField_->getAtomType((*it)) ); | 
| 800 |  |  |  | 
| 801 |  |  | #endif | 
| 802 | gezelter | 2 |  | 
| 803 | gezelter | 1782 | return atomTypes; | 
| 804 |  |  | } | 
| 805 | gezelter | 2 |  | 
| 806 | gezelter | 1879 |  | 
| 807 |  |  | int getGlobalCountOfType(AtomType* atype) { | 
| 808 |  |  | /* | 
| 809 |  |  | set<AtomType*> atypes = getSimulatedAtomTypes(); | 
| 810 |  |  | map<AtomType*, int> counts_; | 
| 811 |  |  |  | 
| 812 |  |  | for(mol = beginMolecule(mi); mol != NULL; mol = nextMolecule(mi)) { | 
| 813 |  |  | for(atom = mol->beginAtom(ai); atom != NULL; | 
| 814 |  |  | atom = mol->nextAtom(ai)) { | 
| 815 |  |  | atom->getAtomType(); | 
| 816 |  |  | } | 
| 817 |  |  | } | 
| 818 |  |  | */ | 
| 819 |  |  | return 0; | 
| 820 |  |  | } | 
| 821 |  |  |  | 
| 822 | gezelter | 1782 | void SimInfo::setupSimVariables() { | 
| 823 |  |  | useAtomicVirial_ = simParams_->getUseAtomicVirial(); | 
| 824 |  |  | // we only call setAccumulateBoxDipole if the accumulateBoxDipole | 
| 825 |  |  | // parameter is true | 
| 826 |  |  | calcBoxDipole_ = false; | 
| 827 |  |  | if ( simParams_->haveAccumulateBoxDipole() ) | 
| 828 |  |  | if ( simParams_->getAccumulateBoxDipole() ) { | 
| 829 |  |  | calcBoxDipole_ = true; | 
| 830 |  |  | } | 
| 831 |  |  |  | 
| 832 |  |  | set<AtomType*>::iterator i; | 
| 833 |  |  | set<AtomType*> atomTypes; | 
| 834 |  |  | atomTypes = getSimulatedAtomTypes(); | 
| 835 |  |  | bool usesElectrostatic = false; | 
| 836 |  |  | bool usesMetallic = false; | 
| 837 |  |  | bool usesDirectional = false; | 
| 838 |  |  | bool usesFluctuatingCharges =  false; | 
| 839 |  |  | //loop over all of the atom types | 
| 840 |  |  | for (i = atomTypes.begin(); i != atomTypes.end(); ++i) { | 
| 841 |  |  | usesElectrostatic |= (*i)->isElectrostatic(); | 
| 842 |  |  | usesMetallic |= (*i)->isMetal(); | 
| 843 |  |  | usesDirectional |= (*i)->isDirectional(); | 
| 844 |  |  | usesFluctuatingCharges |= (*i)->isFluctuatingCharge(); | 
| 845 |  |  | } | 
| 846 | gezelter | 2 |  | 
| 847 | gezelter | 1782 | #ifdef IS_MPI | 
| 848 | gezelter | 1969 | int temp; | 
| 849 |  |  |  | 
| 850 | gezelter | 1782 | temp = usesDirectional; | 
| 851 | gezelter | 1969 | MPI_Allreduce(MPI_IN_PLACE, &temp, 1, MPI_INT,  MPI_LOR, MPI_COMM_WORLD); | 
| 852 |  |  | usesDirectionalAtoms_ = (temp == 0) ? false : true; | 
| 853 |  |  |  | 
| 854 | gezelter | 1782 | temp = usesMetallic; | 
| 855 | gezelter | 1969 | MPI_Allreduce(MPI_IN_PLACE, &temp, 1, MPI_INT,  MPI_LOR, MPI_COMM_WORLD); | 
| 856 |  |  | usesMetallicAtoms_ = (temp == 0) ? false : true; | 
| 857 |  |  |  | 
| 858 | gezelter | 1782 | temp = usesElectrostatic; | 
| 859 | gezelter | 1969 | MPI_Allreduce(MPI_IN_PLACE, &temp, 1, MPI_INT,  MPI_LOR, MPI_COMM_WORLD); | 
| 860 |  |  | usesElectrostaticAtoms_ = (temp == 0) ? false : true; | 
| 861 | gezelter | 2 |  | 
| 862 | gezelter | 1782 | temp = usesFluctuatingCharges; | 
| 863 | gezelter | 1969 | MPI_Allreduce(MPI_IN_PLACE, &temp, 1, MPI_INT,  MPI_LOR, MPI_COMM_WORLD); | 
| 864 |  |  | usesFluctuatingCharges_ = (temp == 0) ? false : true; | 
| 865 | gezelter | 1782 | #else | 
| 866 | gezelter | 2 |  | 
| 867 | gezelter | 1782 | usesDirectionalAtoms_ = usesDirectional; | 
| 868 |  |  | usesMetallicAtoms_ = usesMetallic; | 
| 869 |  |  | usesElectrostaticAtoms_ = usesElectrostatic; | 
| 870 |  |  | usesFluctuatingCharges_ = usesFluctuatingCharges; | 
| 871 | gezelter | 2 |  | 
| 872 | gezelter | 1782 | #endif | 
| 873 | chuckv | 734 |  | 
| 874 | gezelter | 1782 | requiresPrepair_ = usesMetallicAtoms_ ? true : false; | 
| 875 |  |  | requiresSkipCorrection_ = usesElectrostaticAtoms_ ? true : false; | 
| 876 |  |  | requiresSelfCorrection_ = usesElectrostaticAtoms_ ? true : false; | 
| 877 |  |  | } | 
| 878 | gezelter | 246 |  | 
| 879 |  |  |  | 
| 880 | gezelter | 1782 | vector<int> SimInfo::getGlobalAtomIndices() { | 
| 881 |  |  | SimInfo::MoleculeIterator mi; | 
| 882 |  |  | Molecule* mol; | 
| 883 |  |  | Molecule::AtomIterator ai; | 
| 884 |  |  | Atom* atom; | 
| 885 | chrisfen | 611 |  | 
| 886 | gezelter | 1782 | vector<int> GlobalAtomIndices(getNAtoms(), 0); | 
| 887 |  |  |  | 
| 888 |  |  | for (mol = beginMolecule(mi); mol != NULL; mol  = nextMolecule(mi)) { | 
| 889 |  |  |  | 
| 890 |  |  | for (atom = mol->beginAtom(ai); atom != NULL; atom = mol->nextAtom(ai)) { | 
| 891 |  |  | GlobalAtomIndices[atom->getLocalIndex()] = atom->getGlobalIndex(); | 
| 892 |  |  | } | 
| 893 |  |  | } | 
| 894 |  |  | return GlobalAtomIndices; | 
| 895 |  |  | } | 
| 896 | chrisfen | 705 |  | 
| 897 | chrisfen | 998 |  | 
| 898 | gezelter | 1782 | vector<int> SimInfo::getGlobalGroupIndices() { | 
| 899 |  |  | SimInfo::MoleculeIterator mi; | 
| 900 |  |  | Molecule* mol; | 
| 901 |  |  | Molecule::CutoffGroupIterator ci; | 
| 902 |  |  | CutoffGroup* cg; | 
| 903 | chrisfen | 998 |  | 
| 904 | gezelter | 1782 | vector<int> GlobalGroupIndices; | 
| 905 |  |  |  | 
| 906 |  |  | for (mol = beginMolecule(mi); mol != NULL; mol  = nextMolecule(mi)) { | 
| 907 |  |  |  | 
| 908 |  |  | //local index of cutoff group is trivial, it only depends on the | 
| 909 |  |  | //order of travesing | 
| 910 |  |  | for (cg = mol->beginCutoffGroup(ci); cg != NULL; | 
| 911 |  |  | cg = mol->nextCutoffGroup(ci)) { | 
| 912 |  |  | GlobalGroupIndices.push_back(cg->getGlobalIndex()); | 
| 913 |  |  | } | 
| 914 |  |  | } | 
| 915 |  |  | return GlobalGroupIndices; | 
| 916 |  |  | } | 
| 917 | gezelter | 1126 |  | 
| 918 | gezelter | 2 |  | 
| 919 | gezelter | 1782 | void SimInfo::prepareTopology() { | 
| 920 | gezelter | 2 |  | 
| 921 | gezelter | 246 | //calculate mass ratio of cutoff group | 
| 922 |  |  | SimInfo::MoleculeIterator mi; | 
| 923 |  |  | Molecule* mol; | 
| 924 |  |  | Molecule::CutoffGroupIterator ci; | 
| 925 |  |  | CutoffGroup* cg; | 
| 926 |  |  | Molecule::AtomIterator ai; | 
| 927 |  |  | Atom* atom; | 
| 928 | tim | 963 | RealType totalMass; | 
| 929 | gezelter | 246 |  | 
| 930 | gezelter | 1782 | /** | 
| 931 |  |  | * The mass factor is the relative mass of an atom to the total | 
| 932 |  |  | * mass of the cutoff group it belongs to.  By default, all atoms | 
| 933 |  |  | * are their own cutoff groups, and therefore have mass factors of | 
| 934 |  |  | * 1.  We need some special handling for massless atoms, which | 
| 935 |  |  | * will be treated as carrying the entire mass of the cutoff | 
| 936 |  |  | * group. | 
| 937 |  |  | */ | 
| 938 |  |  | massFactors_.clear(); | 
| 939 |  |  | massFactors_.resize(getNAtoms(), 1.0); | 
| 940 | gezelter | 2 |  | 
| 941 | gezelter | 246 | for(mol = beginMolecule(mi); mol != NULL; mol = nextMolecule(mi)) { | 
| 942 | gezelter | 1782 | for (cg = mol->beginCutoffGroup(ci); cg != NULL; | 
| 943 |  |  | cg = mol->nextCutoffGroup(ci)) { | 
| 944 | gezelter | 2 |  | 
| 945 | gezelter | 507 | totalMass = cg->getMass(); | 
| 946 |  |  | for(atom = cg->beginAtom(ai); atom != NULL; atom = cg->nextAtom(ai)) { | 
| 947 | chrisfen | 645 | // Check for massless groups - set mfact to 1 if true | 
| 948 | gezelter | 1782 | if (totalMass != 0) | 
| 949 |  |  | massFactors_[atom->getLocalIndex()] = atom->getMass()/totalMass; | 
| 950 | chrisfen | 645 | else | 
| 951 | gezelter | 1782 | massFactors_[atom->getLocalIndex()] = 1.0; | 
| 952 | gezelter | 507 | } | 
| 953 |  |  | } | 
| 954 | gezelter | 246 | } | 
| 955 | gezelter | 2 |  | 
| 956 | gezelter | 1929 | // Build the identArray_ and regions_ | 
| 957 | gezelter | 2 |  | 
| 958 | gezelter | 1782 | identArray_.clear(); | 
| 959 | gezelter | 1929 | identArray_.reserve(getNAtoms()); | 
| 960 |  |  | regions_.clear(); | 
| 961 |  |  | regions_.reserve(getNAtoms()); | 
| 962 |  |  |  | 
| 963 |  |  | for(mol = beginMolecule(mi); mol != NULL; mol = nextMolecule(mi)) { | 
| 964 |  |  | int reg = mol->getRegion(); | 
| 965 | gezelter | 507 | for(atom = mol->beginAtom(ai); atom != NULL; atom = mol->nextAtom(ai)) { | 
| 966 | gezelter | 1782 | identArray_.push_back(atom->getIdent()); | 
| 967 | gezelter | 1929 | regions_.push_back(reg); | 
| 968 | gezelter | 507 | } | 
| 969 | gezelter | 246 | } | 
| 970 | gezelter | 1929 |  | 
| 971 | gezelter | 1782 | topologyDone_ = true; | 
| 972 | gezelter | 507 | } | 
| 973 | gezelter | 2 |  | 
| 974 | gezelter | 507 | void SimInfo::addProperty(GenericData* genData) { | 
| 975 | gezelter | 246 | properties_.addProperty(genData); | 
| 976 | gezelter | 507 | } | 
| 977 | gezelter | 2 |  | 
| 978 | gezelter | 1782 | void SimInfo::removeProperty(const string& propName) { | 
| 979 | gezelter | 246 | properties_.removeProperty(propName); | 
| 980 | gezelter | 507 | } | 
| 981 | gezelter | 2 |  | 
| 982 | gezelter | 507 | void SimInfo::clearProperties() { | 
| 983 | gezelter | 246 | properties_.clearProperties(); | 
| 984 | gezelter | 507 | } | 
| 985 | gezelter | 2 |  | 
| 986 | gezelter | 1782 | vector<string> SimInfo::getPropertyNames() { | 
| 987 | gezelter | 246 | return properties_.getPropertyNames(); | 
| 988 | gezelter | 507 | } | 
| 989 | gezelter | 246 |  | 
| 990 | gezelter | 1782 | vector<GenericData*> SimInfo::getProperties() { | 
| 991 | gezelter | 246 | return properties_.getProperties(); | 
| 992 | gezelter | 507 | } | 
| 993 | gezelter | 2 |  | 
| 994 | gezelter | 1782 | GenericData* SimInfo::getPropertyByName(const string& propName) { | 
| 995 | gezelter | 246 | return properties_.getPropertyByName(propName); | 
| 996 | gezelter | 507 | } | 
| 997 | gezelter | 2 |  | 
| 998 | gezelter | 507 | void SimInfo::setSnapshotManager(SnapshotManager* sman) { | 
| 999 | tim | 432 | if (sman_ == sman) { | 
| 1000 | gezelter | 507 | return; | 
| 1001 | tim | 432 | } | 
| 1002 |  |  | delete sman_; | 
| 1003 | gezelter | 246 | sman_ = sman; | 
| 1004 | gezelter | 2 |  | 
| 1005 | gezelter | 246 | SimInfo::MoleculeIterator mi; | 
| 1006 | gezelter | 1953 | Molecule::AtomIterator ai; | 
| 1007 | gezelter | 246 | Molecule::RigidBodyIterator rbIter; | 
| 1008 | gezelter | 1782 | Molecule::CutoffGroupIterator cgIter; | 
| 1009 | gezelter | 1953 | Molecule::BondIterator bondIter; | 
| 1010 |  |  | Molecule::BendIterator bendIter; | 
| 1011 |  |  | Molecule::TorsionIterator torsionIter; | 
| 1012 |  |  | Molecule::InversionIterator inversionIter; | 
| 1013 | gezelter | 246 |  | 
| 1014 | gezelter | 1953 | Molecule* mol; | 
| 1015 |  |  | Atom* atom; | 
| 1016 |  |  | RigidBody* rb; | 
| 1017 |  |  | CutoffGroup* cg; | 
| 1018 |  |  | Bond* bond; | 
| 1019 |  |  | Bend* bend; | 
| 1020 |  |  | Torsion* torsion; | 
| 1021 |  |  | Inversion* inversion; | 
| 1022 |  |  |  | 
| 1023 | gezelter | 246 | for (mol = beginMolecule(mi); mol != NULL; mol = nextMolecule(mi)) { | 
| 1024 |  |  |  | 
| 1025 | gezelter | 1953 | for (atom = mol->beginAtom(ai); atom != NULL; | 
| 1026 |  |  | atom = mol->nextAtom(ai)) { | 
| 1027 | gezelter | 507 | atom->setSnapshotManager(sman_); | 
| 1028 | gezelter | 1953 | } | 
| 1029 | gezelter | 1782 | for (rb = mol->beginRigidBody(rbIter); rb != NULL; | 
| 1030 |  |  | rb = mol->nextRigidBody(rbIter)) { | 
| 1031 | gezelter | 507 | rb->setSnapshotManager(sman_); | 
| 1032 |  |  | } | 
| 1033 | gezelter | 1782 | for (cg = mol->beginCutoffGroup(cgIter); cg != NULL; | 
| 1034 |  |  | cg = mol->nextCutoffGroup(cgIter)) { | 
| 1035 |  |  | cg->setSnapshotManager(sman_); | 
| 1036 |  |  | } | 
| 1037 | gezelter | 1953 | for (bond = mol->beginBond(bondIter); bond != NULL; | 
| 1038 |  |  | bond = mol->nextBond(bondIter)) { | 
| 1039 |  |  | bond->setSnapshotManager(sman_); | 
| 1040 |  |  | } | 
| 1041 |  |  | for (bend = mol->beginBend(bendIter); bend != NULL; | 
| 1042 |  |  | bend = mol->nextBend(bendIter)) { | 
| 1043 |  |  | bend->setSnapshotManager(sman_); | 
| 1044 |  |  | } | 
| 1045 |  |  | for (torsion = mol->beginTorsion(torsionIter); torsion != NULL; | 
| 1046 |  |  | torsion = mol->nextTorsion(torsionIter)) { | 
| 1047 |  |  | torsion->setSnapshotManager(sman_); | 
| 1048 |  |  | } | 
| 1049 |  |  | for (inversion = mol->beginInversion(inversionIter); inversion != NULL; | 
| 1050 |  |  | inversion = mol->nextInversion(inversionIter)) { | 
| 1051 |  |  | inversion->setSnapshotManager(sman_); | 
| 1052 |  |  | } | 
| 1053 |  |  | } | 
| 1054 | gezelter | 507 | } | 
| 1055 | gezelter | 2 |  | 
| 1056 |  |  |  | 
| 1057 | gezelter | 1782 | ostream& operator <<(ostream& o, SimInfo& info) { | 
| 1058 | gezelter | 2 |  | 
| 1059 | gezelter | 246 | return o; | 
| 1060 | gezelter | 507 | } | 
| 1061 | chuckv | 555 |  | 
| 1062 | gezelter | 1782 |  | 
| 1063 | tim | 1024 | StuntDouble* SimInfo::getIOIndexToIntegrableObject(int index) { | 
| 1064 | gezelter | 1879 | if (index >= int(IOIndexToIntegrableObject.size())) { | 
| 1065 | gezelter | 1782 | sprintf(painCave.errMsg, | 
| 1066 |  |  | "SimInfo::getIOIndexToIntegrableObject Error: Integrable Object\n" | 
| 1067 |  |  | "\tindex exceeds number of known objects!\n"); | 
| 1068 |  |  | painCave.isFatal = 1; | 
| 1069 |  |  | simError(); | 
| 1070 |  |  | return NULL; | 
| 1071 |  |  | } else | 
| 1072 |  |  | return IOIndexToIntegrableObject.at(index); | 
| 1073 | tim | 1024 | } | 
| 1074 |  |  |  | 
| 1075 | gezelter | 1782 | void SimInfo::setIOIndexToIntegrableObject(const vector<StuntDouble*>& v) { | 
| 1076 | tim | 1024 | IOIndexToIntegrableObject= v; | 
| 1077 |  |  | } | 
| 1078 |  |  |  | 
| 1079 | gezelter | 1983 | void SimInfo::calcNConstraints() { | 
| 1080 | gezelter | 1782 | #ifdef IS_MPI | 
| 1081 | gezelter | 1983 | MPI_Allreduce(&nConstraints_, &nGlobalConstraints_, 1, | 
| 1082 |  |  | MPI_INT, MPI_SUM, MPI_COMM_WORLD); | 
| 1083 | gezelter | 1782 | #else | 
| 1084 | gezelter | 1983 | nGlobalConstraints_ =  nConstraints_; | 
| 1085 | gezelter | 1782 | #endif | 
| 1086 | chuckv | 1103 | } | 
| 1087 |  |  |  | 
| 1088 | gezelter | 1390 | }//end namespace OpenMD | 
| 1089 | gezelter | 246 |  |