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/* |
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* Copyright (c) 2005 The University of Notre Dame. All Rights Reserved. |
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* |
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* The University of Notre Dame grants you ("Licensee") a |
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* non-exclusive, royalty free, license to use, modify and |
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* redistribute this software in source and binary code form, provided |
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* that the following conditions are met: |
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* |
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* 1. Redistributions of source code must retain the above copyright |
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* notice, this list of conditions and the following disclaimer. |
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* |
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* 2. Redistributions in binary form must reproduce the above copyright |
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* notice, this list of conditions and the following disclaimer in the |
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* documentation and/or other materials provided with the |
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* distribution. |
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* |
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* This software is provided "AS IS," without a warranty of any |
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* kind. All express or implied conditions, representations and |
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* warranties, including any implied warranty of merchantability, |
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* fitness for a particular purpose or non-infringement, are hereby |
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* excluded. The University of Notre Dame and its licensors shall not |
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* be liable for any damages suffered by licensee as a result of |
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* using, modifying or distributing the software or its |
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* derivatives. In no event will the University of Notre Dame or its |
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* licensors be liable for any lost revenue, profit or data, or for |
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* direct, indirect, special, consequential, incidental or punitive |
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* damages, however caused and regardless of the theory of liability, |
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* arising out of the use of or inability to use software, even if the |
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* University of Notre Dame has been advised of the possibility of |
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* such damages. |
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* |
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* SUPPORT OPEN SCIENCE! If you use OpenMD or its source code in your |
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* research, please cite the appropriate papers when you publish your |
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* work. Good starting points are: |
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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, 234107 (2008). |
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* [4] Vardeman & Gezelter, in progress (2009). |
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*/ |
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|
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#include <cmath> |
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#include <sstream> |
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#include <string> |
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|
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#include "rnemd/RNEMD.hpp" |
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#include "math/Vector3.hpp" |
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#include "math/Vector.hpp" |
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#include "math/SquareMatrix3.hpp" |
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#include "math/Polynomial.hpp" |
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#include "primitives/Molecule.hpp" |
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#include "primitives/StuntDouble.hpp" |
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#include "utils/PhysicalConstants.hpp" |
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#include "utils/Tuple.hpp" |
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#include "brains/Thermo.hpp" |
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#include "math/ConvexHull.hpp" |
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#ifdef IS_MPI |
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#include <mpi.h> |
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#endif |
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|
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#ifdef _MSC_VER |
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#define isnan(x) _isnan((x)) |
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#define isinf(x) (!_finite(x) && !_isnan(x)) |
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#endif |
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|
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#define HONKING_LARGE_VALUE 1.0e10 |
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|
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using namespace std; |
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namespace OpenMD { |
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|
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RNEMD::RNEMD(SimInfo* info) : info_(info), evaluator_(info), seleMan_(info), |
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evaluatorA_(info), seleManA_(info), |
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commonA_(info), evaluatorB_(info), |
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seleManB_(info), commonB_(info), |
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usePeriodicBoundaryConditions_(info->getSimParams()->getUsePeriodicBoundaryConditions()) { |
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|
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trialCount_ = 0; |
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failTrialCount_ = 0; |
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failRootCount_ = 0; |
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|
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Globals* simParams = info->getSimParams(); |
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RNEMDParameters* rnemdParams = simParams->getRNEMDParameters(); |
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|
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doRNEMD_ = rnemdParams->getUseRNEMD(); |
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if (!doRNEMD_) return; |
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|
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stringToMethod_["Swap"] = rnemdSwap; |
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stringToMethod_["NIVS"] = rnemdNIVS; |
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stringToMethod_["VSS"] = rnemdVSS; |
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|
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stringToFluxType_["KE"] = rnemdKE; |
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stringToFluxType_["Px"] = rnemdPx; |
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stringToFluxType_["Py"] = rnemdPy; |
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stringToFluxType_["Pz"] = rnemdPz; |
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stringToFluxType_["Pvector"] = rnemdPvector; |
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stringToFluxType_["Lx"] = rnemdLx; |
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stringToFluxType_["Ly"] = rnemdLy; |
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stringToFluxType_["Lz"] = rnemdLz; |
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stringToFluxType_["Lvector"] = rnemdLvector; |
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stringToFluxType_["KE+Px"] = rnemdKePx; |
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stringToFluxType_["KE+Py"] = rnemdKePy; |
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stringToFluxType_["KE+Pvector"] = rnemdKePvector; |
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stringToFluxType_["KE+Lx"] = rnemdKeLx; |
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stringToFluxType_["KE+Ly"] = rnemdKeLy; |
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stringToFluxType_["KE+Lz"] = rnemdKeLz; |
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stringToFluxType_["KE+Lvector"] = rnemdKeLvector; |
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|
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runTime_ = simParams->getRunTime(); |
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statusTime_ = simParams->getStatusTime(); |
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|
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const string methStr = rnemdParams->getMethod(); |
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bool hasFluxType = rnemdParams->haveFluxType(); |
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|
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rnemdObjectSelection_ = rnemdParams->getObjectSelection(); |
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|
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string fluxStr; |
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if (hasFluxType) { |
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fluxStr = rnemdParams->getFluxType(); |
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} else { |
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sprintf(painCave.errMsg, |
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"RNEMD: No fluxType was set in the md file. This parameter,\n" |
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"\twhich must be one of the following values:\n" |
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"\tKE, Px, Py, Pz, Pvector, Lx, Ly, Lz, Lvector,\n" |
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"\tKE+Px, KE+Py, KE+Pvector, KE+Lx, KE+Ly, KE+Lz, KE+Lvector\n" |
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"\tmust be set to use RNEMD\n"); |
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painCave.isFatal = 1; |
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painCave.severity = OPENMD_ERROR; |
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simError(); |
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} |
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|
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bool hasKineticFlux = rnemdParams->haveKineticFlux(); |
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bool hasMomentumFlux = rnemdParams->haveMomentumFlux(); |
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bool hasMomentumFluxVector = rnemdParams->haveMomentumFluxVector(); |
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bool hasAngularMomentumFlux = rnemdParams->haveAngularMomentumFlux(); |
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bool hasAngularMomentumFluxVector = rnemdParams->haveAngularMomentumFluxVector(); |
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hasSelectionA_ = rnemdParams->haveSelectionA(); |
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hasSelectionB_ = rnemdParams->haveSelectionB(); |
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bool hasSlabWidth = rnemdParams->haveSlabWidth(); |
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bool hasSlabACenter = rnemdParams->haveSlabACenter(); |
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bool hasSlabBCenter = rnemdParams->haveSlabBCenter(); |
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bool hasSphereARadius = rnemdParams->haveSphereARadius(); |
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hasSphereBRadius_ = rnemdParams->haveSphereBRadius(); |
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bool hasCoordinateOrigin = rnemdParams->haveCoordinateOrigin(); |
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bool hasOutputFileName = rnemdParams->haveOutputFileName(); |
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bool hasOutputFields = rnemdParams->haveOutputFields(); |
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|
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map<string, RNEMDMethod>::iterator i; |
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i = stringToMethod_.find(methStr); |
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if (i != stringToMethod_.end()) |
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rnemdMethod_ = i->second; |
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else { |
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sprintf(painCave.errMsg, |
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"RNEMD: The current method,\n" |
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"\t\t%s is not one of the recognized\n" |
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"\texchange methods: Swap, NIVS, or VSS\n", |
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methStr.c_str()); |
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painCave.isFatal = 1; |
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painCave.severity = OPENMD_ERROR; |
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simError(); |
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} |
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|
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map<string, RNEMDFluxType>::iterator j; |
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j = stringToFluxType_.find(fluxStr); |
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if (j != stringToFluxType_.end()) |
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rnemdFluxType_ = j->second; |
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else { |
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sprintf(painCave.errMsg, |
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"RNEMD: The current fluxType,\n" |
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"\t\t%s\n" |
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"\tis not one of the recognized flux types.\n", |
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fluxStr.c_str()); |
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painCave.isFatal = 1; |
173 |
painCave.severity = OPENMD_ERROR; |
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simError(); |
175 |
} |
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|
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bool methodFluxMismatch = false; |
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bool hasCorrectFlux = false; |
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switch(rnemdMethod_) { |
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case rnemdSwap: |
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switch (rnemdFluxType_) { |
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case rnemdKE: |
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hasCorrectFlux = hasKineticFlux; |
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break; |
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case rnemdPx: |
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case rnemdPy: |
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case rnemdPz: |
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hasCorrectFlux = hasMomentumFlux; |
189 |
break; |
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default : |
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methodFluxMismatch = true; |
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break; |
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} |
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break; |
195 |
case rnemdNIVS: |
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switch (rnemdFluxType_) { |
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case rnemdKE: |
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case rnemdRotKE: |
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case rnemdFullKE: |
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hasCorrectFlux = hasKineticFlux; |
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break; |
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case rnemdPx: |
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case rnemdPy: |
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case rnemdPz: |
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hasCorrectFlux = hasMomentumFlux; |
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break; |
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case rnemdKePx: |
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case rnemdKePy: |
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hasCorrectFlux = hasMomentumFlux && hasKineticFlux; |
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break; |
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default: |
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methodFluxMismatch = true; |
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break; |
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} |
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break; |
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case rnemdVSS: |
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switch (rnemdFluxType_) { |
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case rnemdKE: |
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case rnemdRotKE: |
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case rnemdFullKE: |
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hasCorrectFlux = hasKineticFlux; |
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break; |
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case rnemdPx: |
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case rnemdPy: |
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case rnemdPz: |
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hasCorrectFlux = hasMomentumFlux; |
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break; |
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case rnemdLx: |
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case rnemdLy: |
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case rnemdLz: |
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hasCorrectFlux = hasAngularMomentumFlux; |
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break; |
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case rnemdPvector: |
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hasCorrectFlux = hasMomentumFluxVector; |
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break; |
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case rnemdLvector: |
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hasCorrectFlux = hasAngularMomentumFluxVector; |
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break; |
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case rnemdKePx: |
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case rnemdKePy: |
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hasCorrectFlux = hasMomentumFlux && hasKineticFlux; |
242 |
break; |
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case rnemdKeLx: |
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case rnemdKeLy: |
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case rnemdKeLz: |
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hasCorrectFlux = hasAngularMomentumFlux && hasKineticFlux; |
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break; |
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case rnemdKePvector: |
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hasCorrectFlux = hasMomentumFluxVector && hasKineticFlux; |
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break; |
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case rnemdKeLvector: |
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hasCorrectFlux = hasAngularMomentumFluxVector && hasKineticFlux; |
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break; |
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default: |
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methodFluxMismatch = true; |
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break; |
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} |
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default: |
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break; |
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} |
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|
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if (methodFluxMismatch) { |
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sprintf(painCave.errMsg, |
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"RNEMD: The current method,\n" |
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"\t\t%s\n" |
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"\tcannot be used with the current flux type, %s\n", |
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methStr.c_str(), fluxStr.c_str()); |
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painCave.isFatal = 1; |
269 |
painCave.severity = OPENMD_ERROR; |
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simError(); |
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} |
272 |
if (!hasCorrectFlux) { |
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sprintf(painCave.errMsg, |
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"RNEMD: The current method, %s, and flux type, %s,\n" |
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"\tdid not have the correct flux value specified. Options\n" |
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"\tinclude: kineticFlux, momentumFlux, angularMomentumFlux,\n" |
277 |
"\tmomentumFluxVector, and angularMomentumFluxVector.\n", |
278 |
methStr.c_str(), fluxStr.c_str()); |
279 |
painCave.isFatal = 1; |
280 |
painCave.severity = OPENMD_ERROR; |
281 |
simError(); |
282 |
} |
283 |
|
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if (hasKineticFlux) { |
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// convert the kcal / mol / Angstroms^2 / fs values in the md file |
286 |
// into amu / fs^3: |
287 |
kineticFlux_ = rnemdParams->getKineticFlux() |
288 |
* PhysicalConstants::energyConvert; |
289 |
} else { |
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kineticFlux_ = 0.0; |
291 |
} |
292 |
if (hasMomentumFluxVector) { |
293 |
momentumFluxVector_ = rnemdParams->getMomentumFluxVector(); |
294 |
} else { |
295 |
momentumFluxVector_ = V3Zero; |
296 |
if (hasMomentumFlux) { |
297 |
RealType momentumFlux = rnemdParams->getMomentumFlux(); |
298 |
switch (rnemdFluxType_) { |
299 |
case rnemdPx: |
300 |
momentumFluxVector_.x() = momentumFlux; |
301 |
break; |
302 |
case rnemdPy: |
303 |
momentumFluxVector_.y() = momentumFlux; |
304 |
break; |
305 |
case rnemdPz: |
306 |
momentumFluxVector_.z() = momentumFlux; |
307 |
break; |
308 |
case rnemdKePx: |
309 |
momentumFluxVector_.x() = momentumFlux; |
310 |
break; |
311 |
case rnemdKePy: |
312 |
momentumFluxVector_.y() = momentumFlux; |
313 |
break; |
314 |
default: |
315 |
break; |
316 |
} |
317 |
} |
318 |
if (hasAngularMomentumFluxVector) { |
319 |
angularMomentumFluxVector_ = rnemdParams->getAngularMomentumFluxVector(); |
320 |
} else { |
321 |
angularMomentumFluxVector_ = V3Zero; |
322 |
if (hasAngularMomentumFlux) { |
323 |
RealType angularMomentumFlux = rnemdParams->getAngularMomentumFlux(); |
324 |
switch (rnemdFluxType_) { |
325 |
case rnemdLx: |
326 |
angularMomentumFluxVector_.x() = angularMomentumFlux; |
327 |
break; |
328 |
case rnemdLy: |
329 |
angularMomentumFluxVector_.y() = angularMomentumFlux; |
330 |
break; |
331 |
case rnemdLz: |
332 |
angularMomentumFluxVector_.z() = angularMomentumFlux; |
333 |
break; |
334 |
case rnemdKeLx: |
335 |
angularMomentumFluxVector_.x() = angularMomentumFlux; |
336 |
break; |
337 |
case rnemdKeLy: |
338 |
angularMomentumFluxVector_.y() = angularMomentumFlux; |
339 |
break; |
340 |
case rnemdKeLz: |
341 |
angularMomentumFluxVector_.z() = angularMomentumFlux; |
342 |
break; |
343 |
default: |
344 |
break; |
345 |
} |
346 |
} |
347 |
} |
348 |
|
349 |
if (hasCoordinateOrigin) { |
350 |
coordinateOrigin_ = rnemdParams->getCoordinateOrigin(); |
351 |
} else { |
352 |
coordinateOrigin_ = V3Zero; |
353 |
} |
354 |
|
355 |
// do some sanity checking |
356 |
|
357 |
int selectionCount = seleMan_.getSelectionCount(); |
358 |
|
359 |
int nIntegrable = info->getNGlobalIntegrableObjects(); |
360 |
|
361 |
if (selectionCount > nIntegrable) { |
362 |
sprintf(painCave.errMsg, |
363 |
"RNEMD: The current objectSelection,\n" |
364 |
"\t\t%s\n" |
365 |
"\thas resulted in %d selected objects. However,\n" |
366 |
"\tthe total number of integrable objects in the system\n" |
367 |
"\tis only %d. This is almost certainly not what you want\n" |
368 |
"\tto do. A likely cause of this is forgetting the _RB_0\n" |
369 |
"\tselector in the selection script!\n", |
370 |
rnemdObjectSelection_.c_str(), |
371 |
selectionCount, nIntegrable); |
372 |
painCave.isFatal = 0; |
373 |
painCave.severity = OPENMD_WARNING; |
374 |
simError(); |
375 |
} |
376 |
|
377 |
areaAccumulator_ = new Accumulator(); |
378 |
|
379 |
nBins_ = rnemdParams->getOutputBins(); |
380 |
binWidth_ = rnemdParams->getOutputBinWidth(); |
381 |
|
382 |
data_.resize(RNEMD::ENDINDEX); |
383 |
OutputData z; |
384 |
z.units = "Angstroms"; |
385 |
z.title = "Z"; |
386 |
z.dataType = "RealType"; |
387 |
z.accumulator.reserve(nBins_); |
388 |
for (int i = 0; i < nBins_; i++) |
389 |
z.accumulator.push_back( new Accumulator() ); |
390 |
data_[Z] = z; |
391 |
outputMap_["Z"] = Z; |
392 |
|
393 |
OutputData r; |
394 |
r.units = "Angstroms"; |
395 |
r.title = "R"; |
396 |
r.dataType = "RealType"; |
397 |
r.accumulator.reserve(nBins_); |
398 |
for (int i = 0; i < nBins_; i++) |
399 |
r.accumulator.push_back( new Accumulator() ); |
400 |
data_[R] = r; |
401 |
outputMap_["R"] = R; |
402 |
|
403 |
OutputData temperature; |
404 |
temperature.units = "K"; |
405 |
temperature.title = "Temperature"; |
406 |
temperature.dataType = "RealType"; |
407 |
temperature.accumulator.reserve(nBins_); |
408 |
for (int i = 0; i < nBins_; i++) |
409 |
temperature.accumulator.push_back( new Accumulator() ); |
410 |
data_[TEMPERATURE] = temperature; |
411 |
outputMap_["TEMPERATURE"] = TEMPERATURE; |
412 |
|
413 |
OutputData velocity; |
414 |
velocity.units = "angstroms/fs"; |
415 |
velocity.title = "Velocity"; |
416 |
velocity.dataType = "Vector3d"; |
417 |
velocity.accumulator.reserve(nBins_); |
418 |
for (int i = 0; i < nBins_; i++) |
419 |
velocity.accumulator.push_back( new VectorAccumulator() ); |
420 |
data_[VELOCITY] = velocity; |
421 |
outputMap_["VELOCITY"] = VELOCITY; |
422 |
|
423 |
OutputData angularVelocity; |
424 |
angularVelocity.units = "angstroms^2/fs"; |
425 |
angularVelocity.title = "AngularVelocity"; |
426 |
angularVelocity.dataType = "Vector3d"; |
427 |
angularVelocity.accumulator.reserve(nBins_); |
428 |
for (int i = 0; i < nBins_; i++) |
429 |
angularVelocity.accumulator.push_back( new VectorAccumulator() ); |
430 |
data_[ANGULARVELOCITY] = angularVelocity; |
431 |
outputMap_["ANGULARVELOCITY"] = ANGULARVELOCITY; |
432 |
|
433 |
OutputData density; |
434 |
density.units = "g cm^-3"; |
435 |
density.title = "Density"; |
436 |
density.dataType = "RealType"; |
437 |
density.accumulator.reserve(nBins_); |
438 |
for (int i = 0; i < nBins_; i++) |
439 |
density.accumulator.push_back( new Accumulator() ); |
440 |
data_[DENSITY] = density; |
441 |
outputMap_["DENSITY"] = DENSITY; |
442 |
|
443 |
if (hasOutputFields) { |
444 |
parseOutputFileFormat(rnemdParams->getOutputFields()); |
445 |
} else { |
446 |
if (usePeriodicBoundaryConditions_) |
447 |
outputMask_.set(Z); |
448 |
else |
449 |
outputMask_.set(R); |
450 |
switch (rnemdFluxType_) { |
451 |
case rnemdKE: |
452 |
case rnemdRotKE: |
453 |
case rnemdFullKE: |
454 |
outputMask_.set(TEMPERATURE); |
455 |
break; |
456 |
case rnemdPx: |
457 |
case rnemdPy: |
458 |
outputMask_.set(VELOCITY); |
459 |
break; |
460 |
case rnemdPz: |
461 |
case rnemdPvector: |
462 |
outputMask_.set(VELOCITY); |
463 |
outputMask_.set(DENSITY); |
464 |
break; |
465 |
case rnemdLx: |
466 |
case rnemdLy: |
467 |
case rnemdLz: |
468 |
case rnemdLvector: |
469 |
outputMask_.set(ANGULARVELOCITY); |
470 |
break; |
471 |
case rnemdKeLx: |
472 |
case rnemdKeLy: |
473 |
case rnemdKeLz: |
474 |
case rnemdKeLvector: |
475 |
outputMask_.set(TEMPERATURE); |
476 |
outputMask_.set(ANGULARVELOCITY); |
477 |
break; |
478 |
case rnemdKePx: |
479 |
case rnemdKePy: |
480 |
outputMask_.set(TEMPERATURE); |
481 |
outputMask_.set(VELOCITY); |
482 |
break; |
483 |
case rnemdKePvector: |
484 |
outputMask_.set(TEMPERATURE); |
485 |
outputMask_.set(VELOCITY); |
486 |
outputMask_.set(DENSITY); |
487 |
break; |
488 |
default: |
489 |
break; |
490 |
} |
491 |
} |
492 |
|
493 |
if (hasOutputFileName) { |
494 |
rnemdFileName_ = rnemdParams->getOutputFileName(); |
495 |
} else { |
496 |
rnemdFileName_ = getPrefix(info->getFinalConfigFileName()) + ".rnemd"; |
497 |
} |
498 |
|
499 |
exchangeTime_ = rnemdParams->getExchangeTime(); |
500 |
|
501 |
Snapshot* currentSnap_ = info->getSnapshotManager()->getCurrentSnapshot(); |
502 |
// total exchange sums are zeroed out at the beginning: |
503 |
|
504 |
kineticExchange_ = 0.0; |
505 |
momentumExchange_ = V3Zero; |
506 |
angularMomentumExchange_ = V3Zero; |
507 |
|
508 |
std::ostringstream selectionAstream; |
509 |
std::ostringstream selectionBstream; |
510 |
|
511 |
if (hasSelectionA_) { |
512 |
selectionA_ = rnemdParams->getSelectionA(); |
513 |
} else { |
514 |
if (usePeriodicBoundaryConditions_) { |
515 |
Mat3x3d hmat = currentSnap_->getHmat(); |
516 |
|
517 |
if (hasSlabWidth) |
518 |
slabWidth_ = rnemdParams->getSlabWidth(); |
519 |
else |
520 |
slabWidth_ = hmat(2,2) / 10.0; |
521 |
|
522 |
if (hasSlabACenter) |
523 |
slabACenter_ = rnemdParams->getSlabACenter(); |
524 |
else |
525 |
slabACenter_ = 0.0; |
526 |
|
527 |
selectionAstream << "select wrappedz > " |
528 |
<< slabACenter_ - 0.5*slabWidth_ |
529 |
<< " && wrappedz < " |
530 |
<< slabACenter_ + 0.5*slabWidth_; |
531 |
selectionA_ = selectionAstream.str(); |
532 |
} else { |
533 |
if (hasSphereARadius) |
534 |
sphereARadius_ = rnemdParams->getSphereARadius(); |
535 |
else { |
536 |
// use an initial guess to the size of the inner slab to be 1/10 the |
537 |
// radius of an approximately spherical hull: |
538 |
Thermo thermo(info); |
539 |
RealType hVol = thermo.getHullVolume(); |
540 |
sphereARadius_ = 0.1 * pow((3.0 * hVol / (4.0 * M_PI)), 1.0/3.0); |
541 |
} |
542 |
selectionAstream << "select r < " << sphereARadius_; |
543 |
selectionA_ = selectionAstream.str(); |
544 |
} |
545 |
} |
546 |
|
547 |
if (hasSelectionB_) { |
548 |
selectionB_ = rnemdParams->getSelectionB(); |
549 |
} else { |
550 |
if (usePeriodicBoundaryConditions_) { |
551 |
Mat3x3d hmat = currentSnap_->getHmat(); |
552 |
|
553 |
if (hasSlabWidth) |
554 |
slabWidth_ = rnemdParams->getSlabWidth(); |
555 |
else |
556 |
slabWidth_ = hmat(2,2) / 10.0; |
557 |
|
558 |
if (hasSlabBCenter) |
559 |
slabBCenter_ = rnemdParams->getSlabACenter(); |
560 |
else |
561 |
slabBCenter_ = hmat(2,2) / 2.0; |
562 |
|
563 |
selectionBstream << "select wrappedz > " |
564 |
<< slabBCenter_ - 0.5*slabWidth_ |
565 |
<< " && wrappedz < " |
566 |
<< slabBCenter_ + 0.5*slabWidth_; |
567 |
selectionB_ = selectionBstream.str(); |
568 |
} else { |
569 |
if (hasSphereBRadius_) { |
570 |
sphereBRadius_ = rnemdParams->getSphereBRadius(); |
571 |
selectionBstream << "select r > " << sphereBRadius_; |
572 |
selectionB_ = selectionBstream.str(); |
573 |
} else { |
574 |
selectionB_ = "select hull"; |
575 |
hasSelectionB_ = true; |
576 |
} |
577 |
} |
578 |
} |
579 |
} |
580 |
// object evaluator: |
581 |
evaluator_.loadScriptString(rnemdObjectSelection_); |
582 |
seleMan_.setSelectionSet(evaluator_.evaluate()); |
583 |
|
584 |
evaluatorA_.loadScriptString(selectionA_); |
585 |
evaluatorB_.loadScriptString(selectionB_); |
586 |
|
587 |
seleManA_.setSelectionSet(evaluatorA_.evaluate()); |
588 |
seleManB_.setSelectionSet(evaluatorB_.evaluate()); |
589 |
|
590 |
commonA_ = seleManA_ & seleMan_; |
591 |
commonB_ = seleManB_ & seleMan_; |
592 |
} |
593 |
|
594 |
|
595 |
RNEMD::~RNEMD() { |
596 |
if (!doRNEMD_) return; |
597 |
#ifdef IS_MPI |
598 |
if (worldRank == 0) { |
599 |
#endif |
600 |
|
601 |
writeOutputFile(); |
602 |
|
603 |
rnemdFile_.close(); |
604 |
|
605 |
#ifdef IS_MPI |
606 |
} |
607 |
#endif |
608 |
} |
609 |
|
610 |
void RNEMD::doSwap(SelectionManager& smanA, SelectionManager& smanB) { |
611 |
if (!doRNEMD_) return; |
612 |
int selei; |
613 |
int selej; |
614 |
|
615 |
Snapshot* currentSnap_ = info_->getSnapshotManager()->getCurrentSnapshot(); |
616 |
Mat3x3d hmat = currentSnap_->getHmat(); |
617 |
|
618 |
StuntDouble* sd; |
619 |
|
620 |
RealType min_val; |
621 |
bool min_found = false; |
622 |
StuntDouble* min_sd; |
623 |
|
624 |
RealType max_val; |
625 |
bool max_found = false; |
626 |
StuntDouble* max_sd; |
627 |
|
628 |
for (sd = seleManA_.beginSelected(selei); sd != NULL; |
629 |
sd = seleManA_.nextSelected(selei)) { |
630 |
|
631 |
Vector3d pos = sd->getPos(); |
632 |
|
633 |
// wrap the stuntdouble's position back into the box: |
634 |
|
635 |
if (usePeriodicBoundaryConditions_) |
636 |
currentSnap_->wrapVector(pos); |
637 |
|
638 |
RealType mass = sd->getMass(); |
639 |
Vector3d vel = sd->getVel(); |
640 |
RealType value; |
641 |
|
642 |
switch(rnemdFluxType_) { |
643 |
case rnemdKE : |
644 |
|
645 |
value = mass * vel.lengthSquare(); |
646 |
|
647 |
if (sd->isDirectional()) { |
648 |
Vector3d angMom = sd->getJ(); |
649 |
Mat3x3d I = sd->getI(); |
650 |
|
651 |
if (sd->isLinear()) { |
652 |
int i = sd->linearAxis(); |
653 |
int j = (i + 1) % 3; |
654 |
int k = (i + 2) % 3; |
655 |
value += angMom[j] * angMom[j] / I(j, j) + |
656 |
angMom[k] * angMom[k] / I(k, k); |
657 |
} else { |
658 |
value += angMom[0]*angMom[0]/I(0, 0) |
659 |
+ angMom[1]*angMom[1]/I(1, 1) |
660 |
+ angMom[2]*angMom[2]/I(2, 2); |
661 |
} |
662 |
} //angular momenta exchange enabled |
663 |
value *= 0.5; |
664 |
break; |
665 |
case rnemdPx : |
666 |
value = mass * vel[0]; |
667 |
break; |
668 |
case rnemdPy : |
669 |
value = mass * vel[1]; |
670 |
break; |
671 |
case rnemdPz : |
672 |
value = mass * vel[2]; |
673 |
break; |
674 |
default : |
675 |
break; |
676 |
} |
677 |
if (!max_found) { |
678 |
max_val = value; |
679 |
max_sd = sd; |
680 |
max_found = true; |
681 |
} else { |
682 |
if (max_val < value) { |
683 |
max_val = value; |
684 |
max_sd = sd; |
685 |
} |
686 |
} |
687 |
} |
688 |
|
689 |
for (sd = seleManB_.beginSelected(selej); sd != NULL; |
690 |
sd = seleManB_.nextSelected(selej)) { |
691 |
|
692 |
Vector3d pos = sd->getPos(); |
693 |
|
694 |
// wrap the stuntdouble's position back into the box: |
695 |
|
696 |
if (usePeriodicBoundaryConditions_) |
697 |
currentSnap_->wrapVector(pos); |
698 |
|
699 |
RealType mass = sd->getMass(); |
700 |
Vector3d vel = sd->getVel(); |
701 |
RealType value; |
702 |
|
703 |
switch(rnemdFluxType_) { |
704 |
case rnemdKE : |
705 |
|
706 |
value = mass * vel.lengthSquare(); |
707 |
|
708 |
if (sd->isDirectional()) { |
709 |
Vector3d angMom = sd->getJ(); |
710 |
Mat3x3d I = sd->getI(); |
711 |
|
712 |
if (sd->isLinear()) { |
713 |
int i = sd->linearAxis(); |
714 |
int j = (i + 1) % 3; |
715 |
int k = (i + 2) % 3; |
716 |
value += angMom[j] * angMom[j] / I(j, j) + |
717 |
angMom[k] * angMom[k] / I(k, k); |
718 |
} else { |
719 |
value += angMom[0]*angMom[0]/I(0, 0) |
720 |
+ angMom[1]*angMom[1]/I(1, 1) |
721 |
+ angMom[2]*angMom[2]/I(2, 2); |
722 |
} |
723 |
} //angular momenta exchange enabled |
724 |
value *= 0.5; |
725 |
break; |
726 |
case rnemdPx : |
727 |
value = mass * vel[0]; |
728 |
break; |
729 |
case rnemdPy : |
730 |
value = mass * vel[1]; |
731 |
break; |
732 |
case rnemdPz : |
733 |
value = mass * vel[2]; |
734 |
break; |
735 |
default : |
736 |
break; |
737 |
} |
738 |
|
739 |
if (!min_found) { |
740 |
min_val = value; |
741 |
min_sd = sd; |
742 |
min_found = true; |
743 |
} else { |
744 |
if (min_val > value) { |
745 |
min_val = value; |
746 |
min_sd = sd; |
747 |
} |
748 |
} |
749 |
} |
750 |
|
751 |
#ifdef IS_MPI |
752 |
int worldRank = MPI::COMM_WORLD.Get_rank(); |
753 |
|
754 |
bool my_min_found = min_found; |
755 |
bool my_max_found = max_found; |
756 |
|
757 |
// Even if we didn't find a minimum, did someone else? |
758 |
MPI::COMM_WORLD.Allreduce(&my_min_found, &min_found, 1, MPI::BOOL, MPI::LOR); |
759 |
// Even if we didn't find a maximum, did someone else? |
760 |
MPI::COMM_WORLD.Allreduce(&my_max_found, &max_found, 1, MPI::BOOL, MPI::LOR); |
761 |
#endif |
762 |
|
763 |
if (max_found && min_found) { |
764 |
|
765 |
#ifdef IS_MPI |
766 |
struct { |
767 |
RealType val; |
768 |
int rank; |
769 |
} max_vals, min_vals; |
770 |
|
771 |
if (my_min_found) { |
772 |
min_vals.val = min_val; |
773 |
} else { |
774 |
min_vals.val = HONKING_LARGE_VALUE; |
775 |
} |
776 |
min_vals.rank = worldRank; |
777 |
|
778 |
// Who had the minimum? |
779 |
MPI::COMM_WORLD.Allreduce(&min_vals, &min_vals, |
780 |
1, MPI::REALTYPE_INT, MPI::MINLOC); |
781 |
min_val = min_vals.val; |
782 |
|
783 |
if (my_max_found) { |
784 |
max_vals.val = max_val; |
785 |
} else { |
786 |
max_vals.val = -HONKING_LARGE_VALUE; |
787 |
} |
788 |
max_vals.rank = worldRank; |
789 |
|
790 |
// Who had the maximum? |
791 |
MPI::COMM_WORLD.Allreduce(&max_vals, &max_vals, |
792 |
1, MPI::REALTYPE_INT, MPI::MAXLOC); |
793 |
max_val = max_vals.val; |
794 |
#endif |
795 |
|
796 |
if (min_val < max_val) { |
797 |
|
798 |
#ifdef IS_MPI |
799 |
if (max_vals.rank == worldRank && min_vals.rank == worldRank) { |
800 |
// I have both maximum and minimum, so proceed like a single |
801 |
// processor version: |
802 |
#endif |
803 |
|
804 |
Vector3d min_vel = min_sd->getVel(); |
805 |
Vector3d max_vel = max_sd->getVel(); |
806 |
RealType temp_vel; |
807 |
|
808 |
switch(rnemdFluxType_) { |
809 |
case rnemdKE : |
810 |
min_sd->setVel(max_vel); |
811 |
max_sd->setVel(min_vel); |
812 |
if (min_sd->isDirectional() && max_sd->isDirectional()) { |
813 |
Vector3d min_angMom = min_sd->getJ(); |
814 |
Vector3d max_angMom = max_sd->getJ(); |
815 |
min_sd->setJ(max_angMom); |
816 |
max_sd->setJ(min_angMom); |
817 |
}//angular momenta exchange enabled |
818 |
//assumes same rigid body identity |
819 |
break; |
820 |
case rnemdPx : |
821 |
temp_vel = min_vel.x(); |
822 |
min_vel.x() = max_vel.x(); |
823 |
max_vel.x() = temp_vel; |
824 |
min_sd->setVel(min_vel); |
825 |
max_sd->setVel(max_vel); |
826 |
break; |
827 |
case rnemdPy : |
828 |
temp_vel = min_vel.y(); |
829 |
min_vel.y() = max_vel.y(); |
830 |
max_vel.y() = temp_vel; |
831 |
min_sd->setVel(min_vel); |
832 |
max_sd->setVel(max_vel); |
833 |
break; |
834 |
case rnemdPz : |
835 |
temp_vel = min_vel.z(); |
836 |
min_vel.z() = max_vel.z(); |
837 |
max_vel.z() = temp_vel; |
838 |
min_sd->setVel(min_vel); |
839 |
max_sd->setVel(max_vel); |
840 |
break; |
841 |
default : |
842 |
break; |
843 |
} |
844 |
|
845 |
#ifdef IS_MPI |
846 |
// the rest of the cases only apply in parallel simulations: |
847 |
} else if (max_vals.rank == worldRank) { |
848 |
// I had the max, but not the minimum |
849 |
|
850 |
Vector3d min_vel; |
851 |
Vector3d max_vel = max_sd->getVel(); |
852 |
MPI::Status status; |
853 |
|
854 |
// point-to-point swap of the velocity vector |
855 |
MPI::COMM_WORLD.Sendrecv(max_vel.getArrayPointer(), 3, MPI::REALTYPE, |
856 |
min_vals.rank, 0, |
857 |
min_vel.getArrayPointer(), 3, MPI::REALTYPE, |
858 |
min_vals.rank, 0, status); |
859 |
|
860 |
switch(rnemdFluxType_) { |
861 |
case rnemdKE : |
862 |
max_sd->setVel(min_vel); |
863 |
//angular momenta exchange enabled |
864 |
if (max_sd->isDirectional()) { |
865 |
Vector3d min_angMom; |
866 |
Vector3d max_angMom = max_sd->getJ(); |
867 |
|
868 |
// point-to-point swap of the angular momentum vector |
869 |
MPI::COMM_WORLD.Sendrecv(max_angMom.getArrayPointer(), 3, |
870 |
MPI::REALTYPE, min_vals.rank, 1, |
871 |
min_angMom.getArrayPointer(), 3, |
872 |
MPI::REALTYPE, min_vals.rank, 1, |
873 |
status); |
874 |
|
875 |
max_sd->setJ(min_angMom); |
876 |
} |
877 |
break; |
878 |
case rnemdPx : |
879 |
max_vel.x() = min_vel.x(); |
880 |
max_sd->setVel(max_vel); |
881 |
break; |
882 |
case rnemdPy : |
883 |
max_vel.y() = min_vel.y(); |
884 |
max_sd->setVel(max_vel); |
885 |
break; |
886 |
case rnemdPz : |
887 |
max_vel.z() = min_vel.z(); |
888 |
max_sd->setVel(max_vel); |
889 |
break; |
890 |
default : |
891 |
break; |
892 |
} |
893 |
} else if (min_vals.rank == worldRank) { |
894 |
// I had the minimum but not the maximum: |
895 |
|
896 |
Vector3d max_vel; |
897 |
Vector3d min_vel = min_sd->getVel(); |
898 |
MPI::Status status; |
899 |
|
900 |
// point-to-point swap of the velocity vector |
901 |
MPI::COMM_WORLD.Sendrecv(min_vel.getArrayPointer(), 3, MPI::REALTYPE, |
902 |
max_vals.rank, 0, |
903 |
max_vel.getArrayPointer(), 3, MPI::REALTYPE, |
904 |
max_vals.rank, 0, status); |
905 |
|
906 |
switch(rnemdFluxType_) { |
907 |
case rnemdKE : |
908 |
min_sd->setVel(max_vel); |
909 |
//angular momenta exchange enabled |
910 |
if (min_sd->isDirectional()) { |
911 |
Vector3d min_angMom = min_sd->getJ(); |
912 |
Vector3d max_angMom; |
913 |
|
914 |
// point-to-point swap of the angular momentum vector |
915 |
MPI::COMM_WORLD.Sendrecv(min_angMom.getArrayPointer(), 3, |
916 |
MPI::REALTYPE, max_vals.rank, 1, |
917 |
max_angMom.getArrayPointer(), 3, |
918 |
MPI::REALTYPE, max_vals.rank, 1, |
919 |
status); |
920 |
|
921 |
min_sd->setJ(max_angMom); |
922 |
} |
923 |
break; |
924 |
case rnemdPx : |
925 |
min_vel.x() = max_vel.x(); |
926 |
min_sd->setVel(min_vel); |
927 |
break; |
928 |
case rnemdPy : |
929 |
min_vel.y() = max_vel.y(); |
930 |
min_sd->setVel(min_vel); |
931 |
break; |
932 |
case rnemdPz : |
933 |
min_vel.z() = max_vel.z(); |
934 |
min_sd->setVel(min_vel); |
935 |
break; |
936 |
default : |
937 |
break; |
938 |
} |
939 |
} |
940 |
#endif |
941 |
|
942 |
switch(rnemdFluxType_) { |
943 |
case rnemdKE: |
944 |
kineticExchange_ += max_val - min_val; |
945 |
break; |
946 |
case rnemdPx: |
947 |
momentumExchange_.x() += max_val - min_val; |
948 |
break; |
949 |
case rnemdPy: |
950 |
momentumExchange_.y() += max_val - min_val; |
951 |
break; |
952 |
case rnemdPz: |
953 |
momentumExchange_.z() += max_val - min_val; |
954 |
break; |
955 |
default: |
956 |
break; |
957 |
} |
958 |
} else { |
959 |
sprintf(painCave.errMsg, |
960 |
"RNEMD::doSwap exchange NOT performed because min_val > max_val\n"); |
961 |
painCave.isFatal = 0; |
962 |
painCave.severity = OPENMD_INFO; |
963 |
simError(); |
964 |
failTrialCount_++; |
965 |
} |
966 |
} else { |
967 |
sprintf(painCave.errMsg, |
968 |
"RNEMD::doSwap exchange NOT performed because selected object\n" |
969 |
"\twas not present in at least one of the two slabs.\n"); |
970 |
painCave.isFatal = 0; |
971 |
painCave.severity = OPENMD_INFO; |
972 |
simError(); |
973 |
failTrialCount_++; |
974 |
} |
975 |
} |
976 |
|
977 |
void RNEMD::doNIVS(SelectionManager& smanA, SelectionManager& smanB) { |
978 |
if (!doRNEMD_) return; |
979 |
int selei; |
980 |
int selej; |
981 |
|
982 |
Snapshot* currentSnap_ = info_->getSnapshotManager()->getCurrentSnapshot(); |
983 |
RealType time = currentSnap_->getTime(); |
984 |
Mat3x3d hmat = currentSnap_->getHmat(); |
985 |
|
986 |
StuntDouble* sd; |
987 |
|
988 |
vector<StuntDouble*> hotBin, coldBin; |
989 |
|
990 |
RealType Phx = 0.0; |
991 |
RealType Phy = 0.0; |
992 |
RealType Phz = 0.0; |
993 |
RealType Khx = 0.0; |
994 |
RealType Khy = 0.0; |
995 |
RealType Khz = 0.0; |
996 |
RealType Khw = 0.0; |
997 |
RealType Pcx = 0.0; |
998 |
RealType Pcy = 0.0; |
999 |
RealType Pcz = 0.0; |
1000 |
RealType Kcx = 0.0; |
1001 |
RealType Kcy = 0.0; |
1002 |
RealType Kcz = 0.0; |
1003 |
RealType Kcw = 0.0; |
1004 |
|
1005 |
for (sd = smanA.beginSelected(selei); sd != NULL; |
1006 |
sd = smanA.nextSelected(selei)) { |
1007 |
|
1008 |
Vector3d pos = sd->getPos(); |
1009 |
|
1010 |
// wrap the stuntdouble's position back into the box: |
1011 |
|
1012 |
if (usePeriodicBoundaryConditions_) |
1013 |
currentSnap_->wrapVector(pos); |
1014 |
|
1015 |
|
1016 |
RealType mass = sd->getMass(); |
1017 |
Vector3d vel = sd->getVel(); |
1018 |
|
1019 |
hotBin.push_back(sd); |
1020 |
Phx += mass * vel.x(); |
1021 |
Phy += mass * vel.y(); |
1022 |
Phz += mass * vel.z(); |
1023 |
Khx += mass * vel.x() * vel.x(); |
1024 |
Khy += mass * vel.y() * vel.y(); |
1025 |
Khz += mass * vel.z() * vel.z(); |
1026 |
if (sd->isDirectional()) { |
1027 |
Vector3d angMom = sd->getJ(); |
1028 |
Mat3x3d I = sd->getI(); |
1029 |
if (sd->isLinear()) { |
1030 |
int i = sd->linearAxis(); |
1031 |
int j = (i + 1) % 3; |
1032 |
int k = (i + 2) % 3; |
1033 |
Khw += angMom[j] * angMom[j] / I(j, j) + |
1034 |
angMom[k] * angMom[k] / I(k, k); |
1035 |
} else { |
1036 |
Khw += angMom[0]*angMom[0]/I(0, 0) |
1037 |
+ angMom[1]*angMom[1]/I(1, 1) |
1038 |
+ angMom[2]*angMom[2]/I(2, 2); |
1039 |
} |
1040 |
} |
1041 |
} |
1042 |
for (sd = smanB.beginSelected(selej); sd != NULL; |
1043 |
sd = smanB.nextSelected(selej)) { |
1044 |
Vector3d pos = sd->getPos(); |
1045 |
|
1046 |
// wrap the stuntdouble's position back into the box: |
1047 |
|
1048 |
if (usePeriodicBoundaryConditions_) |
1049 |
currentSnap_->wrapVector(pos); |
1050 |
|
1051 |
RealType mass = sd->getMass(); |
1052 |
Vector3d vel = sd->getVel(); |
1053 |
|
1054 |
coldBin.push_back(sd); |
1055 |
Pcx += mass * vel.x(); |
1056 |
Pcy += mass * vel.y(); |
1057 |
Pcz += mass * vel.z(); |
1058 |
Kcx += mass * vel.x() * vel.x(); |
1059 |
Kcy += mass * vel.y() * vel.y(); |
1060 |
Kcz += mass * vel.z() * vel.z(); |
1061 |
if (sd->isDirectional()) { |
1062 |
Vector3d angMom = sd->getJ(); |
1063 |
Mat3x3d I = sd->getI(); |
1064 |
if (sd->isLinear()) { |
1065 |
int i = sd->linearAxis(); |
1066 |
int j = (i + 1) % 3; |
1067 |
int k = (i + 2) % 3; |
1068 |
Kcw += angMom[j] * angMom[j] / I(j, j) + |
1069 |
angMom[k] * angMom[k] / I(k, k); |
1070 |
} else { |
1071 |
Kcw += angMom[0]*angMom[0]/I(0, 0) |
1072 |
+ angMom[1]*angMom[1]/I(1, 1) |
1073 |
+ angMom[2]*angMom[2]/I(2, 2); |
1074 |
} |
1075 |
} |
1076 |
} |
1077 |
|
1078 |
Khx *= 0.5; |
1079 |
Khy *= 0.5; |
1080 |
Khz *= 0.5; |
1081 |
Khw *= 0.5; |
1082 |
Kcx *= 0.5; |
1083 |
Kcy *= 0.5; |
1084 |
Kcz *= 0.5; |
1085 |
Kcw *= 0.5; |
1086 |
|
1087 |
#ifdef IS_MPI |
1088 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Phx, 1, MPI::REALTYPE, MPI::SUM); |
1089 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Phy, 1, MPI::REALTYPE, MPI::SUM); |
1090 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Phz, 1, MPI::REALTYPE, MPI::SUM); |
1091 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Pcx, 1, MPI::REALTYPE, MPI::SUM); |
1092 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Pcy, 1, MPI::REALTYPE, MPI::SUM); |
1093 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Pcz, 1, MPI::REALTYPE, MPI::SUM); |
1094 |
|
1095 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Khx, 1, MPI::REALTYPE, MPI::SUM); |
1096 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Khy, 1, MPI::REALTYPE, MPI::SUM); |
1097 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Khz, 1, MPI::REALTYPE, MPI::SUM); |
1098 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Khw, 1, MPI::REALTYPE, MPI::SUM); |
1099 |
|
1100 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Kcx, 1, MPI::REALTYPE, MPI::SUM); |
1101 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Kcy, 1, MPI::REALTYPE, MPI::SUM); |
1102 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Kcz, 1, MPI::REALTYPE, MPI::SUM); |
1103 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Kcw, 1, MPI::REALTYPE, MPI::SUM); |
1104 |
#endif |
1105 |
|
1106 |
//solve coldBin coeff's first |
1107 |
RealType px = Pcx / Phx; |
1108 |
RealType py = Pcy / Phy; |
1109 |
RealType pz = Pcz / Phz; |
1110 |
RealType c, x, y, z; |
1111 |
bool successfulScale = false; |
1112 |
if ((rnemdFluxType_ == rnemdFullKE) || |
1113 |
(rnemdFluxType_ == rnemdRotKE)) { |
1114 |
//may need sanity check Khw & Kcw > 0 |
1115 |
|
1116 |
if (rnemdFluxType_ == rnemdFullKE) { |
1117 |
c = 1.0 - kineticTarget_ / (Kcx + Kcy + Kcz + Kcw); |
1118 |
} else { |
1119 |
c = 1.0 - kineticTarget_ / Kcw; |
1120 |
} |
1121 |
|
1122 |
if ((c > 0.81) && (c < 1.21)) {//restrict scaling coefficients |
1123 |
c = sqrt(c); |
1124 |
|
1125 |
RealType w = 0.0; |
1126 |
if (rnemdFluxType_ == rnemdFullKE) { |
1127 |
x = 1.0 + px * (1.0 - c); |
1128 |
y = 1.0 + py * (1.0 - c); |
1129 |
z = 1.0 + pz * (1.0 - c); |
1130 |
/* more complicated way |
1131 |
w = 1.0 + (Kcw - Kcw * c * c - (c * c * (Kcx + Kcy + Kcz |
1132 |
+ Khx * px * px + Khy * py * py + Khz * pz * pz) |
1133 |
- 2.0 * c * (Khx * px * (1.0 + px) + Khy * py * (1.0 + py) |
1134 |
+ Khz * pz * (1.0 + pz)) + Khx * px * (2.0 + px) |
1135 |
+ Khy * py * (2.0 + py) + Khz * pz * (2.0 + pz) |
1136 |
- Kcx - Kcy - Kcz)) / Khw; the following is simpler |
1137 |
*/ |
1138 |
if ((fabs(x - 1.0) < 0.1) && (fabs(y - 1.0) < 0.1) && |
1139 |
(fabs(z - 1.0) < 0.1)) { |
1140 |
w = 1.0 + (kineticTarget_ |
1141 |
+ Khx * (1.0 - x * x) + Khy * (1.0 - y * y) |
1142 |
+ Khz * (1.0 - z * z)) / Khw; |
1143 |
}//no need to calculate w if x, y or z is out of range |
1144 |
} else { |
1145 |
w = 1.0 + kineticTarget_ / Khw; |
1146 |
} |
1147 |
if ((w > 0.81) && (w < 1.21)) {//restrict scaling coefficients |
1148 |
//if w is in the right range, so should be x, y, z. |
1149 |
vector<StuntDouble*>::iterator sdi; |
1150 |
Vector3d vel; |
1151 |
for (sdi = coldBin.begin(); sdi != coldBin.end(); sdi++) { |
1152 |
if (rnemdFluxType_ == rnemdFullKE) { |
1153 |
vel = (*sdi)->getVel() * c; |
1154 |
(*sdi)->setVel(vel); |
1155 |
} |
1156 |
if ((*sdi)->isDirectional()) { |
1157 |
Vector3d angMom = (*sdi)->getJ() * c; |
1158 |
(*sdi)->setJ(angMom); |
1159 |
} |
1160 |
} |
1161 |
w = sqrt(w); |
1162 |
for (sdi = hotBin.begin(); sdi != hotBin.end(); sdi++) { |
1163 |
if (rnemdFluxType_ == rnemdFullKE) { |
1164 |
vel = (*sdi)->getVel(); |
1165 |
vel.x() *= x; |
1166 |
vel.y() *= y; |
1167 |
vel.z() *= z; |
1168 |
(*sdi)->setVel(vel); |
1169 |
} |
1170 |
if ((*sdi)->isDirectional()) { |
1171 |
Vector3d angMom = (*sdi)->getJ() * w; |
1172 |
(*sdi)->setJ(angMom); |
1173 |
} |
1174 |
} |
1175 |
successfulScale = true; |
1176 |
kineticExchange_ += kineticTarget_; |
1177 |
} |
1178 |
} |
1179 |
} else { |
1180 |
RealType a000, a110, c0, a001, a111, b01, b11, c1; |
1181 |
switch(rnemdFluxType_) { |
1182 |
case rnemdKE : |
1183 |
/* used hotBin coeff's & only scale x & y dimensions |
1184 |
RealType px = Phx / Pcx; |
1185 |
RealType py = Phy / Pcy; |
1186 |
a110 = Khy; |
1187 |
c0 = - Khx - Khy - kineticTarget_; |
1188 |
a000 = Khx; |
1189 |
a111 = Kcy * py * py; |
1190 |
b11 = -2.0 * Kcy * py * (1.0 + py); |
1191 |
c1 = Kcy * py * (2.0 + py) + Kcx * px * ( 2.0 + px) + kineticTarget_; |
1192 |
b01 = -2.0 * Kcx * px * (1.0 + px); |
1193 |
a001 = Kcx * px * px; |
1194 |
*/ |
1195 |
//scale all three dimensions, let c_x = c_y |
1196 |
a000 = Kcx + Kcy; |
1197 |
a110 = Kcz; |
1198 |
c0 = kineticTarget_ - Kcx - Kcy - Kcz; |
1199 |
a001 = Khx * px * px + Khy * py * py; |
1200 |
a111 = Khz * pz * pz; |
1201 |
b01 = -2.0 * (Khx * px * (1.0 + px) + Khy * py * (1.0 + py)); |
1202 |
b11 = -2.0 * Khz * pz * (1.0 + pz); |
1203 |
c1 = Khx * px * (2.0 + px) + Khy * py * (2.0 + py) |
1204 |
+ Khz * pz * (2.0 + pz) - kineticTarget_; |
1205 |
break; |
1206 |
case rnemdPx : |
1207 |
c = 1 - momentumTarget_.x() / Pcx; |
1208 |
a000 = Kcy; |
1209 |
a110 = Kcz; |
1210 |
c0 = Kcx * c * c - Kcx - Kcy - Kcz; |
1211 |
a001 = py * py * Khy; |
1212 |
a111 = pz * pz * Khz; |
1213 |
b01 = -2.0 * Khy * py * (1.0 + py); |
1214 |
b11 = -2.0 * Khz * pz * (1.0 + pz); |
1215 |
c1 = Khy * py * (2.0 + py) + Khz * pz * (2.0 + pz) |
1216 |
+ Khx * (fastpow(c * px - px - 1.0, 2) - 1.0); |
1217 |
break; |
1218 |
case rnemdPy : |
1219 |
c = 1 - momentumTarget_.y() / Pcy; |
1220 |
a000 = Kcx; |
1221 |
a110 = Kcz; |
1222 |
c0 = Kcy * c * c - Kcx - Kcy - Kcz; |
1223 |
a001 = px * px * Khx; |
1224 |
a111 = pz * pz * Khz; |
1225 |
b01 = -2.0 * Khx * px * (1.0 + px); |
1226 |
b11 = -2.0 * Khz * pz * (1.0 + pz); |
1227 |
c1 = Khx * px * (2.0 + px) + Khz * pz * (2.0 + pz) |
1228 |
+ Khy * (fastpow(c * py - py - 1.0, 2) - 1.0); |
1229 |
break; |
1230 |
case rnemdPz ://we don't really do this, do we? |
1231 |
c = 1 - momentumTarget_.z() / Pcz; |
1232 |
a000 = Kcx; |
1233 |
a110 = Kcy; |
1234 |
c0 = Kcz * c * c - Kcx - Kcy - Kcz; |
1235 |
a001 = px * px * Khx; |
1236 |
a111 = py * py * Khy; |
1237 |
b01 = -2.0 * Khx * px * (1.0 + px); |
1238 |
b11 = -2.0 * Khy * py * (1.0 + py); |
1239 |
c1 = Khx * px * (2.0 + px) + Khy * py * (2.0 + py) |
1240 |
+ Khz * (fastpow(c * pz - pz - 1.0, 2) - 1.0); |
1241 |
break; |
1242 |
default : |
1243 |
break; |
1244 |
} |
1245 |
|
1246 |
RealType v1 = a000 * a111 - a001 * a110; |
1247 |
RealType v2 = a000 * b01; |
1248 |
RealType v3 = a000 * b11; |
1249 |
RealType v4 = a000 * c1 - a001 * c0; |
1250 |
RealType v8 = a110 * b01; |
1251 |
RealType v10 = - b01 * c0; |
1252 |
|
1253 |
RealType u0 = v2 * v10 - v4 * v4; |
1254 |
RealType u1 = -2.0 * v3 * v4; |
1255 |
RealType u2 = -v2 * v8 - v3 * v3 - 2.0 * v1 * v4; |
1256 |
RealType u3 = -2.0 * v1 * v3; |
1257 |
RealType u4 = - v1 * v1; |
1258 |
//rescale coefficients |
1259 |
RealType maxAbs = fabs(u0); |
1260 |
if (maxAbs < fabs(u1)) maxAbs = fabs(u1); |
1261 |
if (maxAbs < fabs(u2)) maxAbs = fabs(u2); |
1262 |
if (maxAbs < fabs(u3)) maxAbs = fabs(u3); |
1263 |
if (maxAbs < fabs(u4)) maxAbs = fabs(u4); |
1264 |
u0 /= maxAbs; |
1265 |
u1 /= maxAbs; |
1266 |
u2 /= maxAbs; |
1267 |
u3 /= maxAbs; |
1268 |
u4 /= maxAbs; |
1269 |
//max_element(start, end) is also available. |
1270 |
Polynomial<RealType> poly; //same as DoublePolynomial poly; |
1271 |
poly.setCoefficient(4, u4); |
1272 |
poly.setCoefficient(3, u3); |
1273 |
poly.setCoefficient(2, u2); |
1274 |
poly.setCoefficient(1, u1); |
1275 |
poly.setCoefficient(0, u0); |
1276 |
vector<RealType> realRoots = poly.FindRealRoots(); |
1277 |
|
1278 |
vector<RealType>::iterator ri; |
1279 |
RealType r1, r2, alpha0; |
1280 |
vector<pair<RealType,RealType> > rps; |
1281 |
for (ri = realRoots.begin(); ri !=realRoots.end(); ri++) { |
1282 |
r2 = *ri; |
1283 |
//check if FindRealRoots() give the right answer |
1284 |
if ( fabs(u0 + r2 * (u1 + r2 * (u2 + r2 * (u3 + r2 * u4)))) > 1e-6 ) { |
1285 |
sprintf(painCave.errMsg, |
1286 |
"RNEMD Warning: polynomial solve seems to have an error!"); |
1287 |
painCave.isFatal = 0; |
1288 |
simError(); |
1289 |
failRootCount_++; |
1290 |
} |
1291 |
//might not be useful w/o rescaling coefficients |
1292 |
alpha0 = -c0 - a110 * r2 * r2; |
1293 |
if (alpha0 >= 0.0) { |
1294 |
r1 = sqrt(alpha0 / a000); |
1295 |
if (fabs(c1 + r1 * (b01 + r1 * a001) + r2 * (b11 + r2 * a111)) |
1296 |
< 1e-6) |
1297 |
{ rps.push_back(make_pair(r1, r2)); } |
1298 |
if (r1 > 1e-6) { //r1 non-negative |
1299 |
r1 = -r1; |
1300 |
if (fabs(c1 + r1 * (b01 + r1 * a001) + r2 * (b11 + r2 * a111)) |
1301 |
< 1e-6) |
1302 |
{ rps.push_back(make_pair(r1, r2)); } |
1303 |
} |
1304 |
} |
1305 |
} |
1306 |
// Consider combining together the solving pair part w/ the searching |
1307 |
// best solution part so that we don't need the pairs vector |
1308 |
if (!rps.empty()) { |
1309 |
RealType smallestDiff = HONKING_LARGE_VALUE; |
1310 |
RealType diff; |
1311 |
pair<RealType,RealType> bestPair = make_pair(1.0, 1.0); |
1312 |
vector<pair<RealType,RealType> >::iterator rpi; |
1313 |
for (rpi = rps.begin(); rpi != rps.end(); rpi++) { |
1314 |
r1 = (*rpi).first; |
1315 |
r2 = (*rpi).second; |
1316 |
switch(rnemdFluxType_) { |
1317 |
case rnemdKE : |
1318 |
diff = fastpow(1.0 - r1, 2) + fastpow(1.0 - r2, 2) |
1319 |
+ fastpow(r1 * r1 / r2 / r2 - Kcz/Kcx, 2) |
1320 |
+ fastpow(r1 * r1 / r2 / r2 - Kcz/Kcy, 2); |
1321 |
break; |
1322 |
case rnemdPx : |
1323 |
diff = fastpow(1.0 - r1, 2) + fastpow(1.0 - r2, 2) |
1324 |
+ fastpow(r1 * r1 / r2 / r2 - Kcz/Kcy, 2); |
1325 |
break; |
1326 |
case rnemdPy : |
1327 |
diff = fastpow(1.0 - r1, 2) + fastpow(1.0 - r2, 2) |
1328 |
+ fastpow(r1 * r1 / r2 / r2 - Kcz/Kcx, 2); |
1329 |
break; |
1330 |
case rnemdPz : |
1331 |
diff = fastpow(1.0 - r1, 2) + fastpow(1.0 - r2, 2) |
1332 |
+ fastpow(r1 * r1 / r2 / r2 - Kcy/Kcx, 2); |
1333 |
default : |
1334 |
break; |
1335 |
} |
1336 |
if (diff < smallestDiff) { |
1337 |
smallestDiff = diff; |
1338 |
bestPair = *rpi; |
1339 |
} |
1340 |
} |
1341 |
#ifdef IS_MPI |
1342 |
if (worldRank == 0) { |
1343 |
#endif |
1344 |
// sprintf(painCave.errMsg, |
1345 |
// "RNEMD: roots r1= %lf\tr2 = %lf\n", |
1346 |
// bestPair.first, bestPair.second); |
1347 |
// painCave.isFatal = 0; |
1348 |
// painCave.severity = OPENMD_INFO; |
1349 |
// simError(); |
1350 |
#ifdef IS_MPI |
1351 |
} |
1352 |
#endif |
1353 |
|
1354 |
switch(rnemdFluxType_) { |
1355 |
case rnemdKE : |
1356 |
x = bestPair.first; |
1357 |
y = bestPair.first; |
1358 |
z = bestPair.second; |
1359 |
break; |
1360 |
case rnemdPx : |
1361 |
x = c; |
1362 |
y = bestPair.first; |
1363 |
z = bestPair.second; |
1364 |
break; |
1365 |
case rnemdPy : |
1366 |
x = bestPair.first; |
1367 |
y = c; |
1368 |
z = bestPair.second; |
1369 |
break; |
1370 |
case rnemdPz : |
1371 |
x = bestPair.first; |
1372 |
y = bestPair.second; |
1373 |
z = c; |
1374 |
break; |
1375 |
default : |
1376 |
break; |
1377 |
} |
1378 |
vector<StuntDouble*>::iterator sdi; |
1379 |
Vector3d vel; |
1380 |
for (sdi = coldBin.begin(); sdi != coldBin.end(); sdi++) { |
1381 |
vel = (*sdi)->getVel(); |
1382 |
vel.x() *= x; |
1383 |
vel.y() *= y; |
1384 |
vel.z() *= z; |
1385 |
(*sdi)->setVel(vel); |
1386 |
} |
1387 |
//convert to hotBin coefficient |
1388 |
x = 1.0 + px * (1.0 - x); |
1389 |
y = 1.0 + py * (1.0 - y); |
1390 |
z = 1.0 + pz * (1.0 - z); |
1391 |
for (sdi = hotBin.begin(); sdi != hotBin.end(); sdi++) { |
1392 |
vel = (*sdi)->getVel(); |
1393 |
vel.x() *= x; |
1394 |
vel.y() *= y; |
1395 |
vel.z() *= z; |
1396 |
(*sdi)->setVel(vel); |
1397 |
} |
1398 |
successfulScale = true; |
1399 |
switch(rnemdFluxType_) { |
1400 |
case rnemdKE : |
1401 |
kineticExchange_ += kineticTarget_; |
1402 |
break; |
1403 |
case rnemdPx : |
1404 |
case rnemdPy : |
1405 |
case rnemdPz : |
1406 |
momentumExchange_ += momentumTarget_; |
1407 |
break; |
1408 |
default : |
1409 |
break; |
1410 |
} |
1411 |
} |
1412 |
} |
1413 |
if (successfulScale != true) { |
1414 |
sprintf(painCave.errMsg, |
1415 |
"RNEMD::doNIVS exchange NOT performed - roots that solve\n" |
1416 |
"\tthe constraint equations may not exist or there may be\n" |
1417 |
"\tno selected objects in one or both slabs.\n"); |
1418 |
painCave.isFatal = 0; |
1419 |
painCave.severity = OPENMD_INFO; |
1420 |
simError(); |
1421 |
failTrialCount_++; |
1422 |
} |
1423 |
} |
1424 |
|
1425 |
void RNEMD::doVSS(SelectionManager& smanA, SelectionManager& smanB) { |
1426 |
if (!doRNEMD_) return; |
1427 |
int selei; |
1428 |
int selej; |
1429 |
|
1430 |
Snapshot* currentSnap_ = info_->getSnapshotManager()->getCurrentSnapshot(); |
1431 |
RealType time = currentSnap_->getTime(); |
1432 |
Mat3x3d hmat = currentSnap_->getHmat(); |
1433 |
|
1434 |
StuntDouble* sd; |
1435 |
|
1436 |
vector<StuntDouble*> hotBin, coldBin; |
1437 |
|
1438 |
Vector3d Ph(V3Zero); |
1439 |
Vector3d Lh(V3Zero); |
1440 |
RealType Mh = 0.0; |
1441 |
Mat3x3d Ih(0.0); |
1442 |
RealType Kh = 0.0; |
1443 |
Vector3d Pc(V3Zero); |
1444 |
Vector3d Lc(V3Zero); |
1445 |
RealType Mc = 0.0; |
1446 |
Mat3x3d Ic(0.0); |
1447 |
RealType Kc = 0.0; |
1448 |
|
1449 |
// Constraints can be on only the linear or angular momentum, but |
1450 |
// not both. Usually, the user will specify which they want, but |
1451 |
// in case they don't, the use of periodic boundaries should make |
1452 |
// the choice for us. |
1453 |
bool doLinearPart = false; |
1454 |
bool doAngularPart = false; |
1455 |
|
1456 |
switch (rnemdFluxType_) { |
1457 |
case rnemdPx: |
1458 |
case rnemdPy: |
1459 |
case rnemdPz: |
1460 |
case rnemdPvector: |
1461 |
case rnemdKePx: |
1462 |
case rnemdKePy: |
1463 |
case rnemdKePvector: |
1464 |
doLinearPart = true; |
1465 |
break; |
1466 |
case rnemdLx: |
1467 |
case rnemdLy: |
1468 |
case rnemdLz: |
1469 |
case rnemdLvector: |
1470 |
case rnemdKeLx: |
1471 |
case rnemdKeLy: |
1472 |
case rnemdKeLz: |
1473 |
case rnemdKeLvector: |
1474 |
doAngularPart = true; |
1475 |
break; |
1476 |
case rnemdKE: |
1477 |
case rnemdRotKE: |
1478 |
case rnemdFullKE: |
1479 |
default: |
1480 |
if (usePeriodicBoundaryConditions_) |
1481 |
doLinearPart = true; |
1482 |
else |
1483 |
doAngularPart = true; |
1484 |
break; |
1485 |
} |
1486 |
|
1487 |
for (sd = smanA.beginSelected(selei); sd != NULL; |
1488 |
sd = smanA.nextSelected(selei)) { |
1489 |
|
1490 |
Vector3d pos = sd->getPos(); |
1491 |
|
1492 |
// wrap the stuntdouble's position back into the box: |
1493 |
|
1494 |
if (usePeriodicBoundaryConditions_) |
1495 |
currentSnap_->wrapVector(pos); |
1496 |
|
1497 |
RealType mass = sd->getMass(); |
1498 |
Vector3d vel = sd->getVel(); |
1499 |
Vector3d rPos = sd->getPos() - coordinateOrigin_; |
1500 |
RealType r2; |
1501 |
|
1502 |
hotBin.push_back(sd); |
1503 |
Ph += mass * vel; |
1504 |
Mh += mass; |
1505 |
Kh += mass * vel.lengthSquare(); |
1506 |
Lh += mass * cross(rPos, vel); |
1507 |
Ih -= outProduct(rPos, rPos) * mass; |
1508 |
r2 = rPos.lengthSquare(); |
1509 |
Ih(0, 0) += mass * r2; |
1510 |
Ih(1, 1) += mass * r2; |
1511 |
Ih(2, 2) += mass * r2; |
1512 |
|
1513 |
if (rnemdFluxType_ == rnemdFullKE) { |
1514 |
if (sd->isDirectional()) { |
1515 |
Vector3d angMom = sd->getJ(); |
1516 |
Mat3x3d I = sd->getI(); |
1517 |
if (sd->isLinear()) { |
1518 |
int i = sd->linearAxis(); |
1519 |
int j = (i + 1) % 3; |
1520 |
int k = (i + 2) % 3; |
1521 |
Kh += angMom[j] * angMom[j] / I(j, j) + |
1522 |
angMom[k] * angMom[k] / I(k, k); |
1523 |
} else { |
1524 |
Kh += angMom[0] * angMom[0] / I(0, 0) + |
1525 |
angMom[1] * angMom[1] / I(1, 1) + |
1526 |
angMom[2] * angMom[2] / I(2, 2); |
1527 |
} |
1528 |
} |
1529 |
} |
1530 |
} |
1531 |
for (sd = smanB.beginSelected(selej); sd != NULL; |
1532 |
sd = smanB.nextSelected(selej)) { |
1533 |
|
1534 |
Vector3d pos = sd->getPos(); |
1535 |
|
1536 |
// wrap the stuntdouble's position back into the box: |
1537 |
|
1538 |
if (usePeriodicBoundaryConditions_) |
1539 |
currentSnap_->wrapVector(pos); |
1540 |
|
1541 |
RealType mass = sd->getMass(); |
1542 |
Vector3d vel = sd->getVel(); |
1543 |
Vector3d rPos = sd->getPos() - coordinateOrigin_; |
1544 |
RealType r2; |
1545 |
|
1546 |
coldBin.push_back(sd); |
1547 |
Pc += mass * vel; |
1548 |
Mc += mass; |
1549 |
Kc += mass * vel.lengthSquare(); |
1550 |
Lc += mass * cross(rPos, vel); |
1551 |
Ic -= outProduct(rPos, rPos) * mass; |
1552 |
r2 = rPos.lengthSquare(); |
1553 |
Ic(0, 0) += mass * r2; |
1554 |
Ic(1, 1) += mass * r2; |
1555 |
Ic(2, 2) += mass * r2; |
1556 |
|
1557 |
if (rnemdFluxType_ == rnemdFullKE) { |
1558 |
if (sd->isDirectional()) { |
1559 |
Vector3d angMom = sd->getJ(); |
1560 |
Mat3x3d I = sd->getI(); |
1561 |
if (sd->isLinear()) { |
1562 |
int i = sd->linearAxis(); |
1563 |
int j = (i + 1) % 3; |
1564 |
int k = (i + 2) % 3; |
1565 |
Kc += angMom[j] * angMom[j] / I(j, j) + |
1566 |
angMom[k] * angMom[k] / I(k, k); |
1567 |
} else { |
1568 |
Kc += angMom[0] * angMom[0] / I(0, 0) + |
1569 |
angMom[1] * angMom[1] / I(1, 1) + |
1570 |
angMom[2] * angMom[2] / I(2, 2); |
1571 |
} |
1572 |
} |
1573 |
} |
1574 |
} |
1575 |
|
1576 |
Kh *= 0.5; |
1577 |
Kc *= 0.5; |
1578 |
|
1579 |
#ifdef IS_MPI |
1580 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Ph[0], 3, MPI::REALTYPE, MPI::SUM); |
1581 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Pc[0], 3, MPI::REALTYPE, MPI::SUM); |
1582 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Lh[0], 3, MPI::REALTYPE, MPI::SUM); |
1583 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Lc[0], 3, MPI::REALTYPE, MPI::SUM); |
1584 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Mh, 1, MPI::REALTYPE, MPI::SUM); |
1585 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Kh, 1, MPI::REALTYPE, MPI::SUM); |
1586 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Mc, 1, MPI::REALTYPE, MPI::SUM); |
1587 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &Kc, 1, MPI::REALTYPE, MPI::SUM); |
1588 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, Ih.getArrayPointer(), 9, |
1589 |
MPI::REALTYPE, MPI::SUM); |
1590 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, Ic.getArrayPointer(), 9, |
1591 |
MPI::REALTYPE, MPI::SUM); |
1592 |
#endif |
1593 |
|
1594 |
|
1595 |
Vector3d ac, acrec, bc, bcrec; |
1596 |
Vector3d ah, ahrec, bh, bhrec; |
1597 |
RealType cNumerator, cDenominator; |
1598 |
RealType hNumerator, hDenominator; |
1599 |
|
1600 |
|
1601 |
bool successfulExchange = false; |
1602 |
if ((Mh > 0.0) && (Mc > 0.0)) {//both slabs are not empty |
1603 |
Vector3d vc = Pc / Mc; |
1604 |
ac = -momentumTarget_ / Mc + vc; |
1605 |
acrec = -momentumTarget_ / Mc; |
1606 |
|
1607 |
// We now need the inverse of the inertia tensor to calculate the |
1608 |
// angular velocity of the cold slab; |
1609 |
Mat3x3d Ici = Ic.inverse(); |
1610 |
Vector3d omegac = Ici * Lc; |
1611 |
bc = -(Ici * angularMomentumTarget_) + omegac; |
1612 |
bcrec = bc - omegac; |
1613 |
|
1614 |
cNumerator = Kc - kineticTarget_; |
1615 |
if (doLinearPart) |
1616 |
cNumerator -= 0.5 * Mc * ac.lengthSquare(); |
1617 |
|
1618 |
if (doAngularPart) |
1619 |
cNumerator -= 0.5 * ( dot(bc, Ic * bc)); |
1620 |
|
1621 |
if (cNumerator > 0.0) { |
1622 |
|
1623 |
cDenominator = Kc; |
1624 |
|
1625 |
if (doLinearPart) |
1626 |
cDenominator -= 0.5 * Mc * vc.lengthSquare(); |
1627 |
|
1628 |
if (doAngularPart) |
1629 |
cDenominator -= 0.5*(dot(omegac, Ic * omegac)); |
1630 |
|
1631 |
if (cDenominator > 0.0) { |
1632 |
RealType c = sqrt(cNumerator / cDenominator); |
1633 |
if ((c > 0.9) && (c < 1.1)) {//restrict scaling coefficients |
1634 |
|
1635 |
Vector3d vh = Ph / Mh; |
1636 |
ah = momentumTarget_ / Mh + vh; |
1637 |
ahrec = momentumTarget_ / Mh; |
1638 |
|
1639 |
// We now need the inverse of the inertia tensor to |
1640 |
// calculate the angular velocity of the hot slab; |
1641 |
Mat3x3d Ihi = Ih.inverse(); |
1642 |
Vector3d omegah = Ihi * Lh; |
1643 |
bh = (Ihi * angularMomentumTarget_) + omegah; |
1644 |
bhrec = bh - omegah; |
1645 |
|
1646 |
hNumerator = Kh + kineticTarget_; |
1647 |
if (doLinearPart) |
1648 |
hNumerator -= 0.5 * Mh * ah.lengthSquare(); |
1649 |
|
1650 |
if (doAngularPart) |
1651 |
hNumerator -= 0.5 * ( dot(bh, Ih * bh)); |
1652 |
|
1653 |
if (hNumerator > 0.0) { |
1654 |
|
1655 |
hDenominator = Kh; |
1656 |
if (doLinearPart) |
1657 |
hDenominator -= 0.5 * Mh * vh.lengthSquare(); |
1658 |
if (doAngularPart) |
1659 |
hDenominator -= 0.5*(dot(omegah, Ih * omegah)); |
1660 |
|
1661 |
if (hDenominator > 0.0) { |
1662 |
RealType h = sqrt(hNumerator / hDenominator); |
1663 |
if ((h > 0.9) && (h < 1.1)) { |
1664 |
|
1665 |
vector<StuntDouble*>::iterator sdi; |
1666 |
Vector3d vel; |
1667 |
Vector3d rPos; |
1668 |
|
1669 |
for (sdi = coldBin.begin(); sdi != coldBin.end(); sdi++) { |
1670 |
//vel = (*sdi)->getVel(); |
1671 |
rPos = (*sdi)->getPos() - coordinateOrigin_; |
1672 |
if (doLinearPart) |
1673 |
vel = ((*sdi)->getVel() - vc) * c + ac; |
1674 |
if (doAngularPart) |
1675 |
vel = ((*sdi)->getVel() - cross(omegac, rPos)) * c + cross(bc, rPos); |
1676 |
|
1677 |
(*sdi)->setVel(vel); |
1678 |
if (rnemdFluxType_ == rnemdFullKE) { |
1679 |
if ((*sdi)->isDirectional()) { |
1680 |
Vector3d angMom = (*sdi)->getJ() * c; |
1681 |
(*sdi)->setJ(angMom); |
1682 |
} |
1683 |
} |
1684 |
} |
1685 |
for (sdi = hotBin.begin(); sdi != hotBin.end(); sdi++) { |
1686 |
//vel = (*sdi)->getVel(); |
1687 |
rPos = (*sdi)->getPos() - coordinateOrigin_; |
1688 |
if (doLinearPart) |
1689 |
vel = ((*sdi)->getVel() - vh) * h + ah; |
1690 |
if (doAngularPart) |
1691 |
vel = ((*sdi)->getVel() - cross(omegah, rPos)) * h + cross(bh, rPos); |
1692 |
|
1693 |
(*sdi)->setVel(vel); |
1694 |
if (rnemdFluxType_ == rnemdFullKE) { |
1695 |
if ((*sdi)->isDirectional()) { |
1696 |
Vector3d angMom = (*sdi)->getJ() * h; |
1697 |
(*sdi)->setJ(angMom); |
1698 |
} |
1699 |
} |
1700 |
} |
1701 |
successfulExchange = true; |
1702 |
kineticExchange_ += kineticTarget_; |
1703 |
momentumExchange_ += momentumTarget_; |
1704 |
angularMomentumExchange_ += angularMomentumTarget_; |
1705 |
} |
1706 |
} |
1707 |
} |
1708 |
} |
1709 |
} |
1710 |
} |
1711 |
} |
1712 |
if (successfulExchange != true) { |
1713 |
sprintf(painCave.errMsg, |
1714 |
"RNEMD::doVSS exchange NOT performed - roots that solve\n" |
1715 |
"\tthe constraint equations may not exist or there may be\n" |
1716 |
"\tno selected objects in one or both slabs.\n"); |
1717 |
painCave.isFatal = 0; |
1718 |
painCave.severity = OPENMD_INFO; |
1719 |
simError(); |
1720 |
failTrialCount_++; |
1721 |
} |
1722 |
} |
1723 |
|
1724 |
RealType RNEMD::getDividingArea() { |
1725 |
|
1726 |
if (hasDividingArea_) return dividingArea_; |
1727 |
|
1728 |
RealType areaA, areaB; |
1729 |
Snapshot* snap = info_->getSnapshotManager()->getCurrentSnapshot(); |
1730 |
|
1731 |
if (hasSelectionA_) { |
1732 |
int isd; |
1733 |
StuntDouble* sd; |
1734 |
vector<StuntDouble*> aSites; |
1735 |
ConvexHull* surfaceMeshA = new ConvexHull(); |
1736 |
seleManA_.setSelectionSet(evaluatorA_.evaluate()); |
1737 |
for (sd = seleManA_.beginSelected(isd); sd != NULL; |
1738 |
sd = seleManA_.nextSelected(isd)) { |
1739 |
aSites.push_back(sd); |
1740 |
} |
1741 |
surfaceMeshA->computeHull(aSites); |
1742 |
areaA = surfaceMeshA->getArea(); |
1743 |
} else { |
1744 |
if (usePeriodicBoundaryConditions_) { |
1745 |
// in periodic boundaries, the surface area is twice the x-y |
1746 |
// area of the current box: |
1747 |
areaA = 2.0 * snap->getXYarea(); |
1748 |
} else { |
1749 |
// in non-periodic simulations, without explicitly setting |
1750 |
// selections, the sphere radius sets the surface area of the |
1751 |
// dividing surface: |
1752 |
areaA = 4.0 * M_PI * pow(sphereARadius_, 2); |
1753 |
} |
1754 |
} |
1755 |
|
1756 |
if (hasSelectionB_) { |
1757 |
int isd; |
1758 |
StuntDouble* sd; |
1759 |
vector<StuntDouble*> bSites; |
1760 |
ConvexHull* surfaceMeshB = new ConvexHull(); |
1761 |
seleManB_.setSelectionSet(evaluatorB_.evaluate()); |
1762 |
for (sd = seleManB_.beginSelected(isd); sd != NULL; |
1763 |
sd = seleManB_.nextSelected(isd)) { |
1764 |
bSites.push_back(sd); |
1765 |
} |
1766 |
surfaceMeshB->computeHull(bSites); |
1767 |
areaB = surfaceMeshB->getArea(); |
1768 |
} else { |
1769 |
if (usePeriodicBoundaryConditions_) { |
1770 |
// in periodic boundaries, the surface area is twice the x-y |
1771 |
// area of the current box: |
1772 |
areaB = 2.0 * snap->getXYarea(); |
1773 |
} else { |
1774 |
// in non-periodic simulations, without explicitly setting |
1775 |
// selections, but if a sphereBradius has been set, just use that: |
1776 |
areaB = 4.0 * M_PI * pow(sphereBRadius_, 2); |
1777 |
} |
1778 |
} |
1779 |
|
1780 |
dividingArea_ = min(areaA, areaB); |
1781 |
hasDividingArea_ = true; |
1782 |
return dividingArea_; |
1783 |
} |
1784 |
|
1785 |
void RNEMD::doRNEMD() { |
1786 |
if (!doRNEMD_) return; |
1787 |
trialCount_++; |
1788 |
|
1789 |
// object evaluator: |
1790 |
evaluator_.loadScriptString(rnemdObjectSelection_); |
1791 |
seleMan_.setSelectionSet(evaluator_.evaluate()); |
1792 |
|
1793 |
evaluatorA_.loadScriptString(selectionA_); |
1794 |
evaluatorB_.loadScriptString(selectionB_); |
1795 |
|
1796 |
seleManA_.setSelectionSet(evaluatorA_.evaluate()); |
1797 |
seleManB_.setSelectionSet(evaluatorB_.evaluate()); |
1798 |
|
1799 |
commonA_ = seleManA_ & seleMan_; |
1800 |
commonB_ = seleManB_ & seleMan_; |
1801 |
|
1802 |
// Target exchange quantities (in each exchange) = dividingArea * dt * flux |
1803 |
// dt = exchange time interval |
1804 |
// flux = target flux |
1805 |
// dividingArea = smallest dividing surface between the two regions |
1806 |
|
1807 |
hasDividingArea_ = false; |
1808 |
RealType area = getDividingArea(); |
1809 |
|
1810 |
kineticTarget_ = kineticFlux_ * exchangeTime_ * area; |
1811 |
momentumTarget_ = momentumFluxVector_ * exchangeTime_ * area; |
1812 |
angularMomentumTarget_ = angularMomentumFluxVector_ * exchangeTime_ * area; |
1813 |
|
1814 |
switch(rnemdMethod_) { |
1815 |
case rnemdSwap: |
1816 |
doSwap(commonA_, commonB_); |
1817 |
break; |
1818 |
case rnemdNIVS: |
1819 |
doNIVS(commonA_, commonB_); |
1820 |
break; |
1821 |
case rnemdVSS: |
1822 |
doVSS(commonA_, commonB_); |
1823 |
break; |
1824 |
case rnemdUnkownMethod: |
1825 |
default : |
1826 |
break; |
1827 |
} |
1828 |
} |
1829 |
|
1830 |
void RNEMD::collectData() { |
1831 |
if (!doRNEMD_) return; |
1832 |
Snapshot* currentSnap_ = info_->getSnapshotManager()->getCurrentSnapshot(); |
1833 |
|
1834 |
// collectData can be called more frequently than the doRNEMD, so use the |
1835 |
// computed area from the last exchange time: |
1836 |
RealType area = getDividingArea(); |
1837 |
areaAccumulator_->add(area); |
1838 |
Mat3x3d hmat = currentSnap_->getHmat(); |
1839 |
seleMan_.setSelectionSet(evaluator_.evaluate()); |
1840 |
|
1841 |
int selei(0); |
1842 |
StuntDouble* sd; |
1843 |
int binNo; |
1844 |
|
1845 |
vector<RealType> binMass(nBins_, 0.0); |
1846 |
vector<RealType> binPx(nBins_, 0.0); |
1847 |
vector<RealType> binPy(nBins_, 0.0); |
1848 |
vector<RealType> binPz(nBins_, 0.0); |
1849 |
vector<RealType> binOmegax(nBins_, 0.0); |
1850 |
vector<RealType> binOmegay(nBins_, 0.0); |
1851 |
vector<RealType> binOmegaz(nBins_, 0.0); |
1852 |
vector<RealType> binKE(nBins_, 0.0); |
1853 |
vector<int> binDOF(nBins_, 0); |
1854 |
vector<int> binCount(nBins_, 0); |
1855 |
|
1856 |
// alternative approach, track all molecules instead of only those |
1857 |
// selected for scaling/swapping: |
1858 |
/* |
1859 |
SimInfo::MoleculeIterator miter; |
1860 |
vector<StuntDouble*>::iterator iiter; |
1861 |
Molecule* mol; |
1862 |
StuntDouble* sd; |
1863 |
for (mol = info_->beginMolecule(miter); mol != NULL; |
1864 |
mol = info_->nextMolecule(miter)) |
1865 |
sd is essentially sd |
1866 |
for (sd = mol->beginIntegrableObject(iiter); |
1867 |
sd != NULL; |
1868 |
sd = mol->nextIntegrableObject(iiter)) |
1869 |
*/ |
1870 |
|
1871 |
for (sd = seleMan_.beginSelected(selei); sd != NULL; |
1872 |
sd = seleMan_.nextSelected(selei)) { |
1873 |
|
1874 |
Vector3d pos = sd->getPos(); |
1875 |
|
1876 |
// wrap the stuntdouble's position back into the box: |
1877 |
|
1878 |
if (usePeriodicBoundaryConditions_) { |
1879 |
currentSnap_->wrapVector(pos); |
1880 |
// which bin is this stuntdouble in? |
1881 |
// wrapped positions are in the range [-0.5*hmat(2,2), +0.5*hmat(2,2)] |
1882 |
// Shift molecules by half a box to have bins start at 0 |
1883 |
// The modulo operator is used to wrap the case when we are |
1884 |
// beyond the end of the bins back to the beginning. |
1885 |
binNo = int(nBins_ * (pos.z() / hmat(2,2) + 0.5)) % nBins_; |
1886 |
} else { |
1887 |
Vector3d rPos = pos - coordinateOrigin_; |
1888 |
binNo = int(rPos.length() / binWidth_); |
1889 |
} |
1890 |
|
1891 |
RealType mass = sd->getMass(); |
1892 |
Vector3d vel = sd->getVel(); |
1893 |
Vector3d rPos = sd->getPos() - coordinateOrigin_; |
1894 |
Vector3d aVel = cross(rPos, vel); |
1895 |
|
1896 |
if (binNo >= 0 && binNo < nBins_) { |
1897 |
binCount[binNo]++; |
1898 |
binMass[binNo] += mass; |
1899 |
binPx[binNo] += mass*vel.x(); |
1900 |
binPy[binNo] += mass*vel.y(); |
1901 |
binPz[binNo] += mass*vel.z(); |
1902 |
binOmegax[binNo] += aVel.x(); |
1903 |
binOmegay[binNo] += aVel.y(); |
1904 |
binOmegaz[binNo] += aVel.z(); |
1905 |
binKE[binNo] += 0.5 * (mass * vel.lengthSquare()); |
1906 |
binDOF[binNo] += 3; |
1907 |
|
1908 |
if (sd->isDirectional()) { |
1909 |
Vector3d angMom = sd->getJ(); |
1910 |
Mat3x3d I = sd->getI(); |
1911 |
if (sd->isLinear()) { |
1912 |
int i = sd->linearAxis(); |
1913 |
int j = (i + 1) % 3; |
1914 |
int k = (i + 2) % 3; |
1915 |
binKE[binNo] += 0.5 * (angMom[j] * angMom[j] / I(j, j) + |
1916 |
angMom[k] * angMom[k] / I(k, k)); |
1917 |
binDOF[binNo] += 2; |
1918 |
} else { |
1919 |
binKE[binNo] += 0.5 * (angMom[0] * angMom[0] / I(0, 0) + |
1920 |
angMom[1] * angMom[1] / I(1, 1) + |
1921 |
angMom[2] * angMom[2] / I(2, 2)); |
1922 |
binDOF[binNo] += 3; |
1923 |
} |
1924 |
} |
1925 |
} |
1926 |
} |
1927 |
|
1928 |
#ifdef IS_MPI |
1929 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &binCount[0], |
1930 |
nBins_, MPI::INT, MPI::SUM); |
1931 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &binMass[0], |
1932 |
nBins_, MPI::REALTYPE, MPI::SUM); |
1933 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &binPx[0], |
1934 |
nBins_, MPI::REALTYPE, MPI::SUM); |
1935 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &binPy[0], |
1936 |
nBins_, MPI::REALTYPE, MPI::SUM); |
1937 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &binPz[0], |
1938 |
nBins_, MPI::REALTYPE, MPI::SUM); |
1939 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &binOmegax[0], |
1940 |
nBins_, MPI::REALTYPE, MPI::SUM); |
1941 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &binOmegay[0], |
1942 |
nBins_, MPI::REALTYPE, MPI::SUM); |
1943 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &binOmegaz[0], |
1944 |
nBins_, MPI::REALTYPE, MPI::SUM); |
1945 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &binKE[0], |
1946 |
nBins_, MPI::REALTYPE, MPI::SUM); |
1947 |
MPI::COMM_WORLD.Allreduce(MPI::IN_PLACE, &binDOF[0], |
1948 |
nBins_, MPI::INT, MPI::SUM); |
1949 |
#endif |
1950 |
|
1951 |
Vector3d vel; |
1952 |
Vector3d aVel; |
1953 |
RealType den; |
1954 |
RealType temp; |
1955 |
RealType z; |
1956 |
RealType r; |
1957 |
for (int i = 0; i < nBins_; i++) { |
1958 |
if (usePeriodicBoundaryConditions_) { |
1959 |
z = (((RealType)i + 0.5) / (RealType)nBins_) * hmat(2,2); |
1960 |
den = binMass[i] * nBins_ * PhysicalConstants::densityConvert |
1961 |
/ currentSnap_->getVolume() ; |
1962 |
} else { |
1963 |
r = (((RealType)i + 0.5) * binWidth_); |
1964 |
RealType rinner = (RealType)i * binWidth_; |
1965 |
RealType router = (RealType)(i+1) * binWidth_; |
1966 |
den = binMass[i] * 3.0 * PhysicalConstants::densityConvert |
1967 |
/ (4.0 * M_PI * (pow(router,3) - pow(rinner,3))); |
1968 |
} |
1969 |
vel.x() = binPx[i] / binMass[i]; |
1970 |
vel.y() = binPy[i] / binMass[i]; |
1971 |
vel.z() = binPz[i] / binMass[i]; |
1972 |
aVel.x() = binOmegax[i] / binCount[i]; |
1973 |
aVel.y() = binOmegay[i] / binCount[i]; |
1974 |
aVel.z() = binOmegaz[i] / binCount[i]; |
1975 |
|
1976 |
if (binCount[i] > 0) { |
1977 |
// only add values if there are things to add |
1978 |
temp = 2.0 * binKE[i] / (binDOF[i] * PhysicalConstants::kb * |
1979 |
PhysicalConstants::energyConvert); |
1980 |
|
1981 |
for (unsigned int j = 0; j < outputMask_.size(); ++j) { |
1982 |
if(outputMask_[j]) { |
1983 |
switch(j) { |
1984 |
case Z: |
1985 |
dynamic_cast<Accumulator *>(data_[j].accumulator[i])->add(z); |
1986 |
break; |
1987 |
case R: |
1988 |
dynamic_cast<Accumulator *>(data_[j].accumulator[i])->add(r); |
1989 |
break; |
1990 |
case TEMPERATURE: |
1991 |
dynamic_cast<Accumulator *>(data_[j].accumulator[i])->add(temp); |
1992 |
break; |
1993 |
case VELOCITY: |
1994 |
dynamic_cast<VectorAccumulator *>(data_[j].accumulator[i])->add(vel); |
1995 |
break; |
1996 |
case ANGULARVELOCITY: |
1997 |
dynamic_cast<VectorAccumulator *>(data_[j].accumulator[i])->add(aVel); |
1998 |
break; |
1999 |
case DENSITY: |
2000 |
dynamic_cast<Accumulator *>(data_[j].accumulator[i])->add(den); |
2001 |
break; |
2002 |
} |
2003 |
} |
2004 |
} |
2005 |
} |
2006 |
} |
2007 |
} |
2008 |
|
2009 |
void RNEMD::getStarted() { |
2010 |
if (!doRNEMD_) return; |
2011 |
hasDividingArea_ = false; |
2012 |
collectData(); |
2013 |
writeOutputFile(); |
2014 |
} |
2015 |
|
2016 |
void RNEMD::parseOutputFileFormat(const std::string& format) { |
2017 |
if (!doRNEMD_) return; |
2018 |
StringTokenizer tokenizer(format, " ,;|\t\n\r"); |
2019 |
|
2020 |
while(tokenizer.hasMoreTokens()) { |
2021 |
std::string token(tokenizer.nextToken()); |
2022 |
toUpper(token); |
2023 |
OutputMapType::iterator i = outputMap_.find(token); |
2024 |
if (i != outputMap_.end()) { |
2025 |
outputMask_.set(i->second); |
2026 |
} else { |
2027 |
sprintf( painCave.errMsg, |
2028 |
"RNEMD::parseOutputFileFormat: %s is not a recognized\n" |
2029 |
"\toutputFileFormat keyword.\n", token.c_str() ); |
2030 |
painCave.isFatal = 0; |
2031 |
painCave.severity = OPENMD_ERROR; |
2032 |
simError(); |
2033 |
} |
2034 |
} |
2035 |
} |
2036 |
|
2037 |
void RNEMD::writeOutputFile() { |
2038 |
if (!doRNEMD_) return; |
2039 |
|
2040 |
#ifdef IS_MPI |
2041 |
// If we're the root node, should we print out the results |
2042 |
int worldRank = MPI::COMM_WORLD.Get_rank(); |
2043 |
if (worldRank == 0) { |
2044 |
#endif |
2045 |
rnemdFile_.open(rnemdFileName_.c_str(), std::ios::out | std::ios::trunc ); |
2046 |
|
2047 |
if( !rnemdFile_ ){ |
2048 |
sprintf( painCave.errMsg, |
2049 |
"Could not open \"%s\" for RNEMD output.\n", |
2050 |
rnemdFileName_.c_str()); |
2051 |
painCave.isFatal = 1; |
2052 |
simError(); |
2053 |
} |
2054 |
|
2055 |
Snapshot* currentSnap_ = info_->getSnapshotManager()->getCurrentSnapshot(); |
2056 |
|
2057 |
RealType time = currentSnap_->getTime(); |
2058 |
RealType avgArea; |
2059 |
areaAccumulator_->getAverage(avgArea); |
2060 |
RealType Jz = kineticExchange_ / (time * avgArea) |
2061 |
/ PhysicalConstants::energyConvert; |
2062 |
Vector3d JzP = momentumExchange_ / (time * avgArea); |
2063 |
Vector3d JzL = angularMomentumExchange_ / (time * avgArea); |
2064 |
|
2065 |
rnemdFile_ << "#######################################################\n"; |
2066 |
rnemdFile_ << "# RNEMD {\n"; |
2067 |
|
2068 |
map<string, RNEMDMethod>::iterator mi; |
2069 |
for(mi = stringToMethod_.begin(); mi != stringToMethod_.end(); ++mi) { |
2070 |
if ( (*mi).second == rnemdMethod_) |
2071 |
rnemdFile_ << "# exchangeMethod = \"" << (*mi).first << "\";\n"; |
2072 |
} |
2073 |
map<string, RNEMDFluxType>::iterator fi; |
2074 |
for(fi = stringToFluxType_.begin(); fi != stringToFluxType_.end(); ++fi) { |
2075 |
if ( (*fi).second == rnemdFluxType_) |
2076 |
rnemdFile_ << "# fluxType = \"" << (*fi).first << "\";\n"; |
2077 |
} |
2078 |
|
2079 |
rnemdFile_ << "# exchangeTime = " << exchangeTime_ << ";\n"; |
2080 |
|
2081 |
rnemdFile_ << "# objectSelection = \"" |
2082 |
<< rnemdObjectSelection_ << "\";\n"; |
2083 |
rnemdFile_ << "# selectionA = \"" << selectionA_ << "\";\n"; |
2084 |
rnemdFile_ << "# selectionB = \"" << selectionB_ << "\";\n"; |
2085 |
rnemdFile_ << "# }\n"; |
2086 |
rnemdFile_ << "#######################################################\n"; |
2087 |
rnemdFile_ << "# RNEMD report:\n"; |
2088 |
rnemdFile_ << "# running time = " << time << " fs\n"; |
2089 |
rnemdFile_ << "# Target flux:\n"; |
2090 |
rnemdFile_ << "# kinetic = " |
2091 |
<< kineticFlux_ / PhysicalConstants::energyConvert |
2092 |
<< " (kcal/mol/A^2/fs)\n"; |
2093 |
rnemdFile_ << "# momentum = " << momentumFluxVector_ |
2094 |
<< " (amu/A/fs^2)\n"; |
2095 |
rnemdFile_ << "# angular momentum = " << angularMomentumFluxVector_ |
2096 |
<< " (amu/A^2/fs^2)\n"; |
2097 |
rnemdFile_ << "# Target one-time exchanges:\n"; |
2098 |
rnemdFile_ << "# kinetic = " |
2099 |
<< kineticTarget_ / PhysicalConstants::energyConvert |
2100 |
<< " (kcal/mol)\n"; |
2101 |
rnemdFile_ << "# momentum = " << momentumTarget_ |
2102 |
<< " (amu*A/fs)\n"; |
2103 |
rnemdFile_ << "# angular momentum = " << angularMomentumTarget_ |
2104 |
<< " (amu*A^2/fs)\n"; |
2105 |
rnemdFile_ << "# Actual exchange totals:\n"; |
2106 |
rnemdFile_ << "# kinetic = " |
2107 |
<< kineticExchange_ / PhysicalConstants::energyConvert |
2108 |
<< " (kcal/mol)\n"; |
2109 |
rnemdFile_ << "# momentum = " << momentumExchange_ |
2110 |
<< " (amu*A/fs)\n"; |
2111 |
rnemdFile_ << "# angular momentum = " << angularMomentumExchange_ |
2112 |
<< " (amu*A^2/fs)\n"; |
2113 |
rnemdFile_ << "# Actual flux:\n"; |
2114 |
rnemdFile_ << "# kinetic = " << Jz |
2115 |
<< " (kcal/mol/A^2/fs)\n"; |
2116 |
rnemdFile_ << "# momentum = " << JzP |
2117 |
<< " (amu/A/fs^2)\n"; |
2118 |
rnemdFile_ << "# angular momentum = " << JzL |
2119 |
<< " (amu/A^2/fs^2)\n"; |
2120 |
rnemdFile_ << "# Exchange statistics:\n"; |
2121 |
rnemdFile_ << "# attempted = " << trialCount_ << "\n"; |
2122 |
rnemdFile_ << "# failed = " << failTrialCount_ << "\n"; |
2123 |
if (rnemdMethod_ == rnemdNIVS) { |
2124 |
rnemdFile_ << "# NIVS root-check errors = " |
2125 |
<< failRootCount_ << "\n"; |
2126 |
} |
2127 |
rnemdFile_ << "#######################################################\n"; |
2128 |
|
2129 |
|
2130 |
|
2131 |
//write title |
2132 |
rnemdFile_ << "#"; |
2133 |
for (unsigned int i = 0; i < outputMask_.size(); ++i) { |
2134 |
if (outputMask_[i]) { |
2135 |
rnemdFile_ << "\t" << data_[i].title << |
2136 |
"(" << data_[i].units << ")"; |
2137 |
// add some extra tabs for column alignment |
2138 |
if (data_[i].dataType == "Vector3d") rnemdFile_ << "\t\t"; |
2139 |
} |
2140 |
} |
2141 |
rnemdFile_ << std::endl; |
2142 |
|
2143 |
rnemdFile_.precision(8); |
2144 |
|
2145 |
for (int j = 0; j < nBins_; j++) { |
2146 |
|
2147 |
for (unsigned int i = 0; i < outputMask_.size(); ++i) { |
2148 |
if (outputMask_[i]) { |
2149 |
if (data_[i].dataType == "RealType") |
2150 |
writeReal(i,j); |
2151 |
else if (data_[i].dataType == "Vector3d") |
2152 |
writeVector(i,j); |
2153 |
else { |
2154 |
sprintf( painCave.errMsg, |
2155 |
"RNEMD found an unknown data type for: %s ", |
2156 |
data_[i].title.c_str()); |
2157 |
painCave.isFatal = 1; |
2158 |
simError(); |
2159 |
} |
2160 |
} |
2161 |
} |
2162 |
rnemdFile_ << std::endl; |
2163 |
|
2164 |
} |
2165 |
|
2166 |
rnemdFile_ << "#######################################################\n"; |
2167 |
rnemdFile_ << "# Standard Deviations in those quantities follow:\n"; |
2168 |
rnemdFile_ << "#######################################################\n"; |
2169 |
|
2170 |
|
2171 |
for (int j = 0; j < nBins_; j++) { |
2172 |
rnemdFile_ << "#"; |
2173 |
for (unsigned int i = 0; i < outputMask_.size(); ++i) { |
2174 |
if (outputMask_[i]) { |
2175 |
if (data_[i].dataType == "RealType") |
2176 |
writeRealStdDev(i,j); |
2177 |
else if (data_[i].dataType == "Vector3d") |
2178 |
writeVectorStdDev(i,j); |
2179 |
else { |
2180 |
sprintf( painCave.errMsg, |
2181 |
"RNEMD found an unknown data type for: %s ", |
2182 |
data_[i].title.c_str()); |
2183 |
painCave.isFatal = 1; |
2184 |
simError(); |
2185 |
} |
2186 |
} |
2187 |
} |
2188 |
rnemdFile_ << std::endl; |
2189 |
|
2190 |
} |
2191 |
|
2192 |
rnemdFile_.flush(); |
2193 |
rnemdFile_.close(); |
2194 |
|
2195 |
#ifdef IS_MPI |
2196 |
} |
2197 |
#endif |
2198 |
|
2199 |
} |
2200 |
|
2201 |
void RNEMD::writeReal(int index, unsigned int bin) { |
2202 |
if (!doRNEMD_) return; |
2203 |
assert(index >=0 && index < ENDINDEX); |
2204 |
assert(int(bin) < nBins_); |
2205 |
RealType s; |
2206 |
int count; |
2207 |
|
2208 |
count = data_[index].accumulator[bin]->count(); |
2209 |
if (count == 0) return; |
2210 |
|
2211 |
dynamic_cast<Accumulator *>(data_[index].accumulator[bin])->getAverage(s); |
2212 |
|
2213 |
if (! isinf(s) && ! isnan(s)) { |
2214 |
rnemdFile_ << "\t" << s; |
2215 |
} else{ |
2216 |
sprintf( painCave.errMsg, |
2217 |
"RNEMD detected a numerical error writing: %s for bin %d", |
2218 |
data_[index].title.c_str(), bin); |
2219 |
painCave.isFatal = 1; |
2220 |
simError(); |
2221 |
} |
2222 |
} |
2223 |
|
2224 |
void RNEMD::writeVector(int index, unsigned int bin) { |
2225 |
if (!doRNEMD_) return; |
2226 |
assert(index >=0 && index < ENDINDEX); |
2227 |
assert(int(bin) < nBins_); |
2228 |
Vector3d s; |
2229 |
int count; |
2230 |
|
2231 |
count = data_[index].accumulator[bin]->count(); |
2232 |
|
2233 |
if (count == 0) return; |
2234 |
|
2235 |
dynamic_cast<VectorAccumulator*>(data_[index].accumulator[bin])->getAverage(s); |
2236 |
if (isinf(s[0]) || isnan(s[0]) || |
2237 |
isinf(s[1]) || isnan(s[1]) || |
2238 |
isinf(s[2]) || isnan(s[2]) ) { |
2239 |
sprintf( painCave.errMsg, |
2240 |
"RNEMD detected a numerical error writing: %s for bin %d", |
2241 |
data_[index].title.c_str(), bin); |
2242 |
painCave.isFatal = 1; |
2243 |
simError(); |
2244 |
} else { |
2245 |
rnemdFile_ << "\t" << s[0] << "\t" << s[1] << "\t" << s[2]; |
2246 |
} |
2247 |
} |
2248 |
|
2249 |
void RNEMD::writeRealStdDev(int index, unsigned int bin) { |
2250 |
if (!doRNEMD_) return; |
2251 |
assert(index >=0 && index < ENDINDEX); |
2252 |
assert(int(bin) < nBins_); |
2253 |
RealType s; |
2254 |
int count; |
2255 |
|
2256 |
count = data_[index].accumulator[bin]->count(); |
2257 |
if (count == 0) return; |
2258 |
|
2259 |
dynamic_cast<Accumulator *>(data_[index].accumulator[bin])->getStdDev(s); |
2260 |
|
2261 |
if (! isinf(s) && ! isnan(s)) { |
2262 |
rnemdFile_ << "\t" << s; |
2263 |
} else{ |
2264 |
sprintf( painCave.errMsg, |
2265 |
"RNEMD detected a numerical error writing: %s std. dev. for bin %d", |
2266 |
data_[index].title.c_str(), bin); |
2267 |
painCave.isFatal = 1; |
2268 |
simError(); |
2269 |
} |
2270 |
} |
2271 |
|
2272 |
void RNEMD::writeVectorStdDev(int index, unsigned int bin) { |
2273 |
if (!doRNEMD_) return; |
2274 |
assert(index >=0 && index < ENDINDEX); |
2275 |
assert(int(bin) < nBins_); |
2276 |
Vector3d s; |
2277 |
int count; |
2278 |
|
2279 |
count = data_[index].accumulator[bin]->count(); |
2280 |
if (count == 0) return; |
2281 |
|
2282 |
dynamic_cast<VectorAccumulator*>(data_[index].accumulator[bin])->getStdDev(s); |
2283 |
if (isinf(s[0]) || isnan(s[0]) || |
2284 |
isinf(s[1]) || isnan(s[1]) || |
2285 |
isinf(s[2]) || isnan(s[2]) ) { |
2286 |
sprintf( painCave.errMsg, |
2287 |
"RNEMD detected a numerical error writing: %s std. dev. for bin %d", |
2288 |
data_[index].title.c_str(), bin); |
2289 |
painCave.isFatal = 1; |
2290 |
simError(); |
2291 |
} else { |
2292 |
rnemdFile_ << "\t" << s[0] << "\t" << s[1] << "\t" << s[2]; |
2293 |
} |
2294 |
} |
2295 |
} |
2296 |
|