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* redistribute this software in source and binary code form, provided |
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* that the following conditions are met: |
8 |
|
* |
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* 1. Acknowledgement of the program authors must be made in any |
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* publication of scientific results based in part on use of the |
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< |
* program. An acceptable form of acknowledgement is citation of |
12 |
< |
* the article in which the program was described (Matthew |
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< |
* A. Meineke, Charles F. Vardeman II, Teng Lin, Christopher |
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< |
* J. Fennell and J. Daniel Gezelter, "OOPSE: An Object-Oriented |
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< |
* Parallel Simulation Engine for Molecular Dynamics," |
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< |
* J. Comput. Chem. 26, pp. 252-271 (2005)) |
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* |
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* 2. Redistributions of source code must retain the above copyright |
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> |
* 1. Redistributions of source code must retain the above copyright |
10 |
|
* notice, this list of conditions and the following disclaimer. |
11 |
|
* |
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* 3. Redistributions in binary form must reproduce the above copyright |
12 |
> |
* 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 |
14 |
|
* documentation and/or other materials provided with the |
15 |
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* distribution. |
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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, 24107 (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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> |
|
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|
#include "restraints/ThermoIntegrationForceManager.hpp" |
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#include "integrators/Integrator.hpp" |
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#include "math/SquareMatrix3.hpp" |
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– |
#include "primitives/Molecule.hpp" |
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– |
#include "utils/simError.h" |
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#include "utils/OOPSEConstant.hpp" |
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#include "utils/StringUtils.hpp" |
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|
|
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#ifdef IS_MPI |
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|
#include <mpi.h> |
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< |
#define TAKE_THIS_TAG_REAL 2 |
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#endif //is_mpi |
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> |
#endif |
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|
|
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< |
namespace oopse { |
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> |
namespace OpenMD { |
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|
|
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ThermoIntegrationForceManager::ThermoIntegrationForceManager(SimInfo* info): |
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ForceManager(info){ |
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currSnapshot_ = info_->getSnapshotManager()->getCurrentSnapshot(); |
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simParam = info_->getSimParams(); |
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> |
RestraintForceManager(info){ |
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> |
currSnapshot_ = info_->getSnapshotManager()->getCurrentSnapshot(); |
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> |
simParam = info_->getSimParams(); |
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|
|
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if (simParam->haveThermodynamicIntegrationLambda()){ |
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tIntLambda_ = simParam->getThermodynamicIntegrationLambda(); |
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} |
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else{ |
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tIntLambda_ = 1.0; |
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sprintf(painCave.errMsg, |
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"ThermoIntegration error: the transformation parameter\n" |
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"\t(lambda) was not specified. OOPSE will use a default\n" |
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"\tvalue of %f. To set lambda, use the \n" |
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"\tthermodynamicIntegrationLambda variable.\n", |
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tIntLambda_); |
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painCave.isFatal = 0; |
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simError(); |
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} |
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if (simParam->haveThermodynamicIntegrationLambda()){ |
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tIntLambda_ = simParam->getThermodynamicIntegrationLambda(); |
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> |
} |
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else{ |
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tIntLambda_ = 1.0; |
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> |
sprintf(painCave.errMsg, |
62 |
> |
"ThermoIntegration error: the transformation parameter\n" |
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> |
"\t(lambda) was not specified. OpenMD will use a default\n" |
64 |
> |
"\tvalue of %f. To set lambda, use the \n" |
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> |
"\tthermodynamicIntegrationLambda variable.\n", |
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> |
tIntLambda_); |
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> |
painCave.isFatal = 0; |
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simError(); |
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> |
} |
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|
|
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< |
if (simParam->haveThermodynamicIntegrationK()){ |
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tIntK_ = simParam->getThermodynamicIntegrationK(); |
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} |
81 |
< |
else{ |
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tIntK_ = 1.0; |
83 |
< |
sprintf(painCave.errMsg, |
84 |
< |
"ThermoIntegration Warning: the tranformation parameter\n" |
85 |
< |
"\texponent (k) was not specified. OOPSE will use a default\n" |
86 |
< |
"\tvalue of %f. To set k, use the thermodynamicIntegrationK\n" |
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"\tvariable.\n", |
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tIntK_); |
89 |
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painCave.isFatal = 0; |
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simError(); |
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< |
} |
92 |
< |
|
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< |
if (simParam->getUseSolidThermInt()) { |
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< |
// build a restraint object |
95 |
< |
restraint_ = new Restraints(info_, tIntLambda_, tIntK_); |
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< |
|
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} |
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< |
|
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// build the scaling factor used to modulate the forces and torques |
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factor_ = pow(tIntLambda_, tIntK_); |
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|
71 |
> |
if (simParam->haveThermodynamicIntegrationK()){ |
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> |
tIntK_ = simParam->getThermodynamicIntegrationK(); |
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|
} |
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+ |
else{ |
75 |
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tIntK_ = 1.0; |
76 |
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sprintf(painCave.errMsg, |
77 |
+ |
"ThermoIntegration Warning: the tranformation parameter\n" |
78 |
+ |
"\texponent (k) was not specified. OpenMD will use a default\n" |
79 |
+ |
"\tvalue of %f. To set k, use the thermodynamicIntegrationK\n" |
80 |
+ |
"\tvariable.\n", |
81 |
+ |
tIntK_); |
82 |
+ |
painCave.isFatal = 0; |
83 |
+ |
simError(); |
84 |
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} |
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|
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// build the scaling factor used to modulate the forces and torques |
87 |
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factor_ = pow(tIntLambda_, tIntK_); |
88 |
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} |
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|
|
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|
ThermoIntegrationForceManager::~ThermoIntegrationForceManager(){ |
91 |
|
} |
124 |
|
} |
125 |
|
} |
126 |
|
} |
127 |
< |
|
127 |
> |
|
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|
// set vraw to be the unmodulated potential |
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|
lrPot_ = curSnapshot->statData[Stats::LONG_RANGE_POTENTIAL]; |
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|
curSnapshot->statData[Stats::VRAW] = lrPot_; |
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|
tempTau = curSnapshot->statData.getTau(); |
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|
tempTau *= factor_; |
139 |
|
curSnapshot->statData.setTau(tempTau); |
140 |
< |
#ifndef IS_MPI |
141 |
< |
// do the single processor crystal restraint forces for |
142 |
< |
// thermodynamic integration |
143 |
< |
if (simParam->getUseSolidThermInt()) { |
144 |
< |
|
145 |
< |
lrPot_ += restraint_->Calc_Restraint_Forces(); |
146 |
< |
curSnapshot->statData[Stats::LONG_RANGE_POTENTIAL] = lrPot_; |
147 |
< |
|
148 |
< |
vHarm_ = restraint_->getVharm(); |
149 |
< |
curSnapshot->statData[Stats::VHARM] = vHarm_; |
140 |
> |
|
141 |
> |
// now, on to the applied restraining potentials (if needed): |
142 |
> |
RealType restPot_local = 0.0; |
143 |
> |
RealType vHarm_local = 0.0; |
144 |
> |
|
145 |
> |
if (simParam->getUseRestraints()) { |
146 |
> |
// do restraints from RestraintForceManager: |
147 |
> |
//restPot_local = doRestraints(1.0 - factor_); |
148 |
> |
restPot_local = doRestraints(1.0 - factor_); |
149 |
> |
vHarm_local = getUnscaledPotential(); |
150 |
|
} |
151 |
+ |
|
152 |
+ |
#ifdef IS_MPI |
153 |
+ |
RealType restPot; |
154 |
+ |
MPI::COMM_WORLD.Allreduce(&restPot_local, &restPot, 1, |
155 |
+ |
MPI::REALTYPE, MPI::SUM); |
156 |
+ |
MPI::COMM_WORLD.Allreduce(&vHarm_local, &vHarm_, 1, |
157 |
+ |
MPI::REALTYPE, MPI::SUM); |
158 |
+ |
lrPot_ += restPot; |
159 |
|
#else |
160 |
< |
double tempLRPot = 0.0; |
161 |
< |
double tempVHarm = 0.0; |
162 |
< |
MPI_Status ierr; |
169 |
< |
int nproc; |
170 |
< |
MPI_Comm_size(MPI_COMM_WORLD, &nproc); |
171 |
< |
vHarm_ = 0.0; |
160 |
> |
lrPot_ += restPot_local; |
161 |
> |
vHarm_ = vHarm_local; |
162 |
> |
#endif |
163 |
|
|
164 |
< |
// do the MPI crystal restraint forces for each processor |
165 |
< |
if (simParam->getUseSolidThermInt()) { |
166 |
< |
tempLRPot = restraint_->Calc_Restraint_Forces(); |
167 |
< |
tempVHarm = restraint_->getVharm(); |
177 |
< |
} |
178 |
< |
|
179 |
< |
// master receives and accumulates the restraint info |
180 |
< |
if (worldRank == 0) { |
181 |
< |
for(int i = 0 ; i < nproc; ++i) { |
182 |
< |
if (i == worldRank) { |
183 |
< |
lrPot_ += tempLRPot; |
184 |
< |
vHarm_ += tempVHarm; |
185 |
< |
} else { |
186 |
< |
MPI_Recv(&tempLRPot, 1, MPI_REALTYPE, i, |
187 |
< |
TAKE_THIS_TAG_REAL, MPI_COMM_WORLD, &ierr); |
188 |
< |
MPI_Recv(&tempVHarm, 1, MPI_REALTYPE, i, |
189 |
< |
TAKE_THIS_TAG_REAL, MPI_COMM_WORLD, &ierr); |
190 |
< |
lrPot_ += tempLRPot; |
191 |
< |
vHarm_ += tempVHarm; |
192 |
< |
} |
193 |
< |
} |
194 |
< |
|
195 |
< |
// give the final values to stats |
196 |
< |
curSnapshot->statData[Stats::LONG_RANGE_POTENTIAL] = lrPot_; |
197 |
< |
curSnapshot->statData[Stats::VHARM] = vHarm_; |
198 |
< |
|
199 |
< |
} else { |
200 |
< |
// pack up and send the appropriate info to the master node |
201 |
< |
for(int j = 1; j < nproc; ++j) { |
202 |
< |
if (worldRank == j) { |
203 |
< |
|
204 |
< |
MPI_Send(&tempLRPot, 1, MPI_REALTYPE, 0, |
205 |
< |
TAKE_THIS_TAG_REAL, MPI_COMM_WORLD); |
206 |
< |
MPI_Send(&tempVHarm, 1, MPI_REALTYPE, 0, |
207 |
< |
TAKE_THIS_TAG_REAL, MPI_COMM_WORLD); |
208 |
< |
} |
209 |
< |
} |
210 |
< |
} |
211 |
< |
#endif //is_mpi |
212 |
< |
} |
213 |
< |
|
164 |
> |
// give the final values to stats |
165 |
> |
curSnapshot->statData[Stats::LONG_RANGE_POTENTIAL] = lrPot_; |
166 |
> |
curSnapshot->statData[Stats::VHARM] = vHarm_; |
167 |
> |
} |
168 |
|
} |