57 |
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#include "primitives/Torsion.hpp" |
58 |
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#include "primitives/Inversion.hpp" |
59 |
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#include "nonbonded/NonBondedInteraction.hpp" |
60 |
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#include "perturbations/ElectricField.hpp" |
60 |
> |
#include "perturbations/UniformField.hpp" |
61 |
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#include "parallel/ForceMatrixDecomposition.hpp" |
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63 |
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#include <cstdio> |
405 |
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interactionMan_->setSimInfo(info_); |
406 |
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interactionMan_->initialize(); |
407 |
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408 |
< |
// We want to delay the cutoffs until after the interaction |
409 |
< |
// manager has set up the atom-atom interactions so that we can |
410 |
< |
// query them for suggested cutoff values |
408 |
> |
//! We want to delay the cutoffs until after the interaction |
409 |
> |
//! manager has set up the atom-atom interactions so that we can |
410 |
> |
//! query them for suggested cutoff values |
411 |
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setupCutoffs(); |
412 |
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413 |
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info_->prepareTopology(); |
417 |
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if (doHeatFlux_) doParticlePot_ = true; |
418 |
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419 |
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doElectricField_ = info_->getSimParams()->getOutputElectricField(); |
420 |
+ |
doSitePotential_ = info_->getSimParams()->getOutputSitePotential(); |
421 |
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422 |
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} |
423 |
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424 |
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ForceFieldOptions& fopts = forceField_->getForceFieldOptions(); |
425 |
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426 |
< |
// Force fields can set options on how to scale van der Waals and |
427 |
< |
// electrostatic interactions for atoms connected via bonds, bends |
428 |
< |
// and torsions in this case the topological distance between |
429 |
< |
// atoms is: |
430 |
< |
// 0 = topologically unconnected |
431 |
< |
// 1 = bonded together |
432 |
< |
// 2 = connected via a bend |
433 |
< |
// 3 = connected via a torsion |
426 |
> |
//! Force fields can set options on how to scale van der Waals and |
427 |
> |
//! electrostatic interactions for atoms connected via bonds, bends |
428 |
> |
//! and torsions in this case the topological distance between |
429 |
> |
//! atoms is: |
430 |
> |
//! 0 = topologically unconnected |
431 |
> |
//! 1 = bonded together |
432 |
> |
//! 2 = connected via a bend |
433 |
> |
//! 3 = connected via a torsion |
434 |
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|
435 |
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vdwScale_.reserve(4); |
436 |
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fill(vdwScale_.begin(), vdwScale_.end(), 0.0); |
448 |
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electrostaticScale_[2] = fopts.getelectrostatic13scale(); |
449 |
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electrostaticScale_[3] = fopts.getelectrostatic14scale(); |
450 |
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451 |
< |
if (info_->getSimParams()->haveElectricField()) { |
452 |
< |
ElectricField* eField = new ElectricField(info_); |
451 |
> |
if (info_->getSimParams()->haveUniformField()) { |
452 |
> |
UniformField* eField = new UniformField(info_); |
453 |
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perturbations_.push_back(eField); |
454 |
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} |
455 |
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717 |
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potVec exPot(0.0); |
718 |
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Vector3d eField1(0.0); |
719 |
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Vector3d eField2(0.0); |
720 |
+ |
RealType sPot1(0.0); |
721 |
+ |
RealType sPot2(0.0); |
722 |
+ |
|
723 |
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vector<int>::iterator ia, jb; |
724 |
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725 |
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int loopStart, loopEnd; |
735 |
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idat.dVdFQ1 = &dVdFQ1; |
736 |
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idat.dVdFQ2 = &dVdFQ2; |
737 |
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idat.eField1 = &eField1; |
738 |
< |
idat.eField2 = &eField2; |
738 |
> |
idat.eField2 = &eField2; |
739 |
> |
idat.sPot1 = &sPot1; |
740 |
> |
idat.sPot2 = &sPot2; |
741 |
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idat.f1 = &f1; |
742 |
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idat.sw = &sw; |
743 |
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idat.shiftedPot = (cutoffMethod_ == SHIFTED_POTENTIAL) ? true : false; |
744 |
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idat.shiftedForce = (cutoffMethod_ == SHIFTED_FORCE || cutoffMethod_ == TAYLOR_SHIFTED) ? true : false; |
745 |
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idat.doParticlePot = doParticlePot_; |
746 |
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idat.doElectricField = doElectricField_; |
747 |
+ |
idat.doSitePotential = doSitePotential_; |
748 |
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sdat.doParticlePot = doParticlePot_; |
749 |
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750 |
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loopEnd = PAIR_LOOP; |
784 |
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fij.zero(); |
785 |
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eField1.zero(); |
786 |
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eField2.zero(); |
787 |
+ |
sPot1 = 0.0; |
788 |
+ |
sPot2 = 0.0; |
789 |
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} |
790 |
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791 |
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in_switching_region = switcher_->getSwitch(rgrpsq, sw, dswdr, |