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 *                                                                       | 
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 * [1]  Meineke, et al., J. Comp. Chem. 26, 252-271 (2005).              | 
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 * [2]  Fennell & Gezelter, J. Chem. Phys. 124, 234104 (2006).           | 
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 * [3]  Sun, Lin & Gezelter, J. Chem. Phys. 128, 24107 (2008).           | 
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 * [4]  Vardeman & Gezelter, in progress (2009).                         | 
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> | 
 * [3]  Sun, Lin & Gezelter, J. Chem. Phys. 128, 234107 (2008).           | 
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> | 
 * [4]  Kuang & Gezelter,  J. Chem. Phys. 133, 164101 (2010). | 
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> | 
 * [5]  Vardeman, Stocker & Gezelter, J. Chem. Theory Comput. 7, 834 (2011). | 
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 */ | 
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#include "parallel/ForceDecomposition.hpp" | 
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#include "math/Vector3.hpp" | 
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#ifdef IS_MPI | 
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#include <mpi.h> | 
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#endif | 
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#include "parallel/ForceDecomposition.hpp" | 
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#include "math/Vector3.hpp" | 
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using namespace std; | 
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namespace OpenMD { | 
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 | 
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  ForceDecomposition::ForceDecomposition(SimInfo* info, InteractionManager* iMan) : info_(info), interactionMan_(iMan) { | 
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  ForceDecomposition::ForceDecomposition(SimInfo* info, InteractionManager* iMan) : info_(info), interactionMan_(iMan), needVelocities_(false) { | 
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 | 
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    sman_ = info_->getSnapshotManager(); | 
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    storageLayout_ = sman_->getStorageLayout(); | 
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    ff_ = info_->getForceField(); | 
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    userChoseCutoff_ = false; | 
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 | 
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    usePeriodicBoundaryConditions_ = info->getSimParams()->getUsePeriodicBoundaryConditions(); | 
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    Globals* simParams_ = info_->getSimParams();     | 
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   | 
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    if (simParams_->havePrintHeatFlux()) { | 
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      if (simParams_->getPrintHeatFlux()) { | 
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        needVelocities_ = true; | 
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      } | 
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    } | 
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 | 
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    if (simParams_->haveSkinThickness()) { | 
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      skinThickness_ = simParams_->getSkinThickness(); | 
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    } else {       | 
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    cellOffsets_.push_back( Vector3i(1, -1,1) ); | 
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  } | 
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 | 
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  void ForceDecomposition::fillSelfData(SelfData sdat, int atom1) { | 
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     | 
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    // Still Missing atype, skippedCharge, potVec pot, | 
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    if (storageLayout_ & DataStorage::dslElectroFrame) { | 
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      sdat.eFrame = &(snap_->atomData.electroFrame[atom1]); | 
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  void ForceDecomposition::setCutoffRadius(RealType rcut) { | 
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    rCut_ = rcut; | 
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    rList_ = rCut_ + skinThickness_; | 
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    rListSq_ = rList_ * rList_; | 
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  } | 
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 | 
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  void ForceDecomposition::fillSelfData(SelfData &sdat, int atom1) { | 
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    sdat.atid = idents[atom1]; | 
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    sdat.pot = &embeddingPot; | 
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    sdat.excludedPot = &excludedSelfPot; | 
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 | 
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    if (storageLayout_ & DataStorage::dslDipole) { | 
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      sdat.dipole = &(snap_->atomData.dipole[atom1]); | 
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    } | 
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     | 
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 | 
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    if (storageLayout_ & DataStorage::dslQuadrupole) { | 
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      sdat.quadrupole = &(snap_->atomData.quadrupole[atom1]); | 
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    } | 
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 | 
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    if (storageLayout_ & DataStorage::dslTorque) { | 
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      sdat.t = &(snap_->atomData.torque[atom1]); | 
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    } | 
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      sdat.dfrhodrho = &(snap_->atomData.functionalDerivative[atom1]); | 
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    } | 
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    if (storageLayout_ & DataStorage::dslSkippedCharge) { | 
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      sdat.skippedCharge = &(snap_->atomData.skippedCharge[atom1]); | 
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    } | 
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 | 
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    if (storageLayout_ & DataStorage::dslParticlePot) { | 
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      sdat.particlePot = &(snap_->atomData.particlePot[atom1]); | 
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    } | 
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     | 
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    if (storageLayout_ & DataStorage::dslFlucQPosition) { | 
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      sdat.flucQ = &(snap_->atomData.flucQPos[atom1]); | 
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    } | 
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     | 
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    if (storageLayout_ & DataStorage::dslFlucQForce) { | 
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      sdat.flucQfrc = &(snap_->atomData.flucQFrc[atom1]); | 
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    } | 
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  } | 
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 | 
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  bool ForceDecomposition::checkNeighborList() { | 
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 | 
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    int nGroups = snap_->cgData.position.size(); | 
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    RealType st2 = pow( skinThickness_ / 2.0, 2); | 
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    std::size_t nGroups = snap_->cgData.position.size(); | 
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    if (needVelocities_)  | 
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      snap_->cgData.setStorageLayout(DataStorage::dslPosition | | 
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                                     DataStorage::dslVelocity); | 
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     | 
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    // if we have changed the group identities or haven't set up the | 
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    // saved positions we automatically will need a neighbor list update: | 
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     | 
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    if ( saved_CG_positions_.size() != nGroups ) return true; | 
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 | 
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    RealType dispmax = 0.0; | 
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    Vector3d disp;     | 
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 | 
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    for (int i = 0; i < nGroups; i++) { | 
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    for (std::size_t i = 0; i < nGroups; i++) { | 
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      disp = snap_->cgData.position[i]  - saved_CG_positions_[i]; | 
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      for (int j = 0; j < 3; j++) | 
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        dispmax = max( abs(disp[j]), dispmax); | 
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      dispmax = max(dispmax, disp.lengthSquare()); | 
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    } | 
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 | 
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#ifdef IS_MPI | 
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    MPI::COMM_WORLD.Allreduce(&dispmax, &dispmax, 1, MPI::REALTYPE, MPI::MAX); | 
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    MPI_Allreduce(MPI_IN_PLACE, &dispmax, 1, MPI_REALTYPE, MPI_MAX,  | 
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                  MPI_COMM_WORLD); | 
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#endif | 
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 | 
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    // a conservative test of list skin crossings | 
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    dispmax = 2.0 * sqrt (3.0 * dispmax * dispmax); | 
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    return (dispmax > st2) ? true : false; | 
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  } | 
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 | 
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    return (dispmax > skinThickness_);     | 
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  void ForceDecomposition::addToHeatFlux(Vector3d hf) { | 
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    Vector3d chf = snap_->getConductiveHeatFlux(); | 
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    chf += hf; | 
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    snap_->setConductiveHeatFlux(chf); | 
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  } | 
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  void ForceDecomposition::setHeatFlux(Vector3d hf) { | 
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    snap_->setConductiveHeatFlux(hf); | 
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  } | 
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 | 
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} |