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#include <cstdlib> |
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#include <cstring> |
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#include <stdlib.h> |
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#include <string.h> |
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#include <math.h> |
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#include <iostream> |
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using namespace std; |
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#include "SimInfo.hpp" |
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#define __C |
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#include "fortranWrappers.hpp" |
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#ifdef IS_MPI |
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#include "mpiSimulation.hpp" |
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#endif |
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|
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inline double roundMe( double x ){ |
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return ( x >= 0 ) ? floor( x + 0.5 ) : ceil( x - 0.5 ); |
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} |
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|
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|
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SimInfo* currentInfo; |
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|
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SimInfo::SimInfo(){ |
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excludes = NULL; |
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n_constraints = 0; |
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nZconstraints = 0; |
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n_oriented = 0; |
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n_dipoles = 0; |
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ndf = 0; |
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ndfRaw = 0; |
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nZconstraints = 0; |
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the_integrator = NULL; |
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setTemp = 0; |
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thermalTime = 0.0; |
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currentTime = 0.0; |
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rCut = 0.0; |
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origRcut = -1.0; |
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ecr = 0.0; |
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origEcr = -1.0; |
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est = 0.0; |
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oldEcr = 0.0; |
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oldRcut = 0.0; |
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|
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haveOrigRcut = 0; |
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haveOrigEcr = 0; |
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boxIsInit = 0; |
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|
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resetTime = 1e99; |
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|
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orthoTolerance = 1E-6; |
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useInitXSstate = true; |
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|
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usePBC = 0; |
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useLJ = 0; |
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useSticky = 0; |
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useGB = 0; |
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useEAM = 0; |
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|
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myConfiguration = new SimState(); |
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|
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wrapMeSimInfo( this ); |
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} |
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|
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SimInfo::~SimInfo(){ |
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|
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delete myConfiguration; |
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|
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map<string, GenericData*>::iterator i; |
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|
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for(i = properties.begin(); i != properties.end(); i++) |
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delete (*i).second; |
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|
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} |
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|
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void SimInfo::setBox(double newBox[3]) { |
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double smallestBox, maxCutoff; |
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int status; |
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box_x = newBox[0]; |
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box_y = newBox[1]; |
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box_z = newBox[2]; |
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setFortranBoxSize(newBox); |
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|
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int i, j; |
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double tempMat[3][3]; |
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|
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smallestBox = box_x; |
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if (box_y < smallestBox) smallestBox = box_y; |
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if (box_z < smallestBox) smallestBox = box_z; |
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for(i=0; i<3; i++) |
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for (j=0; j<3; j++) tempMat[i][j] = 0.0;; |
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|
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maxCutoff = smallestBox / 2.0; |
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tempMat[0][0] = newBox[0]; |
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tempMat[1][1] = newBox[1]; |
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tempMat[2][2] = newBox[2]; |
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|
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if (rList > maxCutoff) { |
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sprintf( painCave.errMsg, |
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"New Box size is forcing neighborlist radius down to %lf\n", |
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maxCutoff ); |
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painCave.isFatal = 0; |
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simError(); |
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setBoxM( tempMat ); |
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|
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rList = maxCutoff; |
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} |
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|
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sprintf( painCave.errMsg, |
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"New Box size is forcing cutoff radius down to %lf\n", |
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maxCutoff - 1.0 ); |
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painCave.isFatal = 0; |
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simError(); |
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void SimInfo::setBoxM( double theBox[3][3] ){ |
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|
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int i, j; |
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double FortranHmat[9]; // to preserve compatibility with Fortran the |
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// ordering in the array is as follows: |
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// [ 0 3 6 ] |
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// [ 1 4 7 ] |
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// [ 2 5 8 ] |
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double FortranHmatInv[9]; // the inverted Hmat (for Fortran); |
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rCut = rList - 1.0; |
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|
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if( !boxIsInit ) boxIsInit = 1; |
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|
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// list radius changed so we have to refresh the simulation structure. |
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refreshSim(); |
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for(i=0; i < 3; i++) |
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for (j=0; j < 3; j++) Hmat[i][j] = theBox[i][j]; |
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|
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calcBoxL(); |
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calcHmatInv(); |
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|
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for(i=0; i < 3; i++) { |
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for (j=0; j < 3; j++) { |
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FortranHmat[3*j + i] = Hmat[i][j]; |
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FortranHmatInv[3*j + i] = HmatInv[i][j]; |
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} |
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} |
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|
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if (rCut > maxCutoff) { |
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sprintf( painCave.errMsg, |
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"New Box size is forcing cutoff radius down to %lf\n", |
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maxCutoff ); |
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painCave.isFatal = 0; |
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simError(); |
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setFortranBoxSize(FortranHmat, FortranHmatInv, &orthoRhombic); |
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|
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} |
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|
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|
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status = 0; |
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LJ_new_rcut(&rCut, &status); |
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if (status != 0) { |
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void SimInfo::getBoxM (double theBox[3][3]) { |
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|
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int i, j; |
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for(i=0; i<3; i++) |
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for (j=0; j<3; j++) theBox[i][j] = Hmat[i][j]; |
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} |
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|
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|
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void SimInfo::scaleBox(double scale) { |
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double theBox[3][3]; |
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int i, j; |
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|
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// cerr << "Scaling box by " << scale << "\n"; |
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|
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for(i=0; i<3; i++) |
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for (j=0; j<3; j++) theBox[i][j] = Hmat[i][j]*scale; |
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|
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setBoxM(theBox); |
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|
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} |
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|
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void SimInfo::calcHmatInv( void ) { |
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|
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int oldOrtho; |
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int i,j; |
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double smallDiag; |
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double tol; |
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double sanity[3][3]; |
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|
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invertMat3( Hmat, HmatInv ); |
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|
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// check to see if Hmat is orthorhombic |
160 |
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|
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oldOrtho = orthoRhombic; |
162 |
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|
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smallDiag = fabs(Hmat[0][0]); |
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if(smallDiag > fabs(Hmat[1][1])) smallDiag = fabs(Hmat[1][1]); |
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if(smallDiag > fabs(Hmat[2][2])) smallDiag = fabs(Hmat[2][2]); |
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tol = smallDiag * orthoTolerance; |
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|
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orthoRhombic = 1; |
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|
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for (i = 0; i < 3; i++ ) { |
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for (j = 0 ; j < 3; j++) { |
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if (i != j) { |
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if (orthoRhombic) { |
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if ( fabs(Hmat[i][j]) >= tol) orthoRhombic = 0; |
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} |
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} |
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} |
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} |
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|
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if( oldOrtho != orthoRhombic ){ |
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|
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if( orthoRhombic ){ |
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sprintf( painCave.errMsg, |
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"Error in recomputing LJ shifts based on new rcut\n"); |
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painCave.isFatal = 1; |
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"Hmat is switching from Non-Orthorhombic to OrthoRhombic\n" |
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" If this is a bad thing, change the orthoBoxTolerance( currently %G ).\n", |
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orthoTolerance); |
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simError(); |
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} |
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else { |
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sprintf( painCave.errMsg, |
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"Hmat is switching from Orthorhombic to Non-OrthoRhombic\n" |
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" If this is a bad thing, change the orthoBoxTolerance( currently %G ).\n", |
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orthoTolerance); |
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simError(); |
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} |
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} |
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} |
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|
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void SimInfo::getBox(double theBox[3]) { |
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theBox[0] = box_x; |
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theBox[1] = box_y; |
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theBox[2] = box_z; |
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double SimInfo::matDet3(double a[3][3]) { |
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int i, j, k; |
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double determinant; |
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|
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determinant = 0.0; |
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|
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for(i = 0; i < 3; i++) { |
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j = (i+1)%3; |
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k = (i+2)%3; |
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|
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determinant += a[0][i] * (a[1][j]*a[2][k] - a[1][k]*a[2][j]); |
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} |
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|
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return determinant; |
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} |
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|
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|
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void SimInfo::invertMat3(double a[3][3], double b[3][3]) { |
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|
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int i, j, k, l, m, n; |
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double determinant; |
219 |
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|
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determinant = matDet3( a ); |
221 |
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|
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if (determinant == 0.0) { |
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sprintf( painCave.errMsg, |
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"Can't invert a matrix with a zero determinant!\n"); |
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painCave.isFatal = 1; |
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simError(); |
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} |
228 |
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|
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for (i=0; i < 3; i++) { |
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j = (i+1)%3; |
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k = (i+2)%3; |
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for(l = 0; l < 3; l++) { |
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m = (l+1)%3; |
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n = (l+2)%3; |
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|
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b[l][i] = (a[j][m]*a[k][n] - a[j][n]*a[k][m]) / determinant; |
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} |
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} |
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} |
240 |
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|
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void SimInfo::matMul3(double a[3][3], double b[3][3], double c[3][3]) { |
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double r00, r01, r02, r10, r11, r12, r20, r21, r22; |
243 |
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|
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r00 = a[0][0]*b[0][0] + a[0][1]*b[1][0] + a[0][2]*b[2][0]; |
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r01 = a[0][0]*b[0][1] + a[0][1]*b[1][1] + a[0][2]*b[2][1]; |
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r02 = a[0][0]*b[0][2] + a[0][1]*b[1][2] + a[0][2]*b[2][2]; |
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|
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r10 = a[1][0]*b[0][0] + a[1][1]*b[1][0] + a[1][2]*b[2][0]; |
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r11 = a[1][0]*b[0][1] + a[1][1]*b[1][1] + a[1][2]*b[2][1]; |
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r12 = a[1][0]*b[0][2] + a[1][1]*b[1][2] + a[1][2]*b[2][2]; |
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|
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r20 = a[2][0]*b[0][0] + a[2][1]*b[1][0] + a[2][2]*b[2][0]; |
253 |
> |
r21 = a[2][0]*b[0][1] + a[2][1]*b[1][1] + a[2][2]*b[2][1]; |
254 |
> |
r22 = a[2][0]*b[0][2] + a[2][1]*b[1][2] + a[2][2]*b[2][2]; |
255 |
> |
|
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c[0][0] = r00; c[0][1] = r01; c[0][2] = r02; |
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c[1][0] = r10; c[1][1] = r11; c[1][2] = r12; |
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> |
c[2][0] = r20; c[2][1] = r21; c[2][2] = r22; |
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} |
260 |
> |
|
261 |
> |
void SimInfo::matVecMul3(double m[3][3], double inVec[3], double outVec[3]) { |
262 |
> |
double a0, a1, a2; |
263 |
> |
|
264 |
> |
a0 = inVec[0]; a1 = inVec[1]; a2 = inVec[2]; |
265 |
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|
266 |
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outVec[0] = m[0][0]*a0 + m[0][1]*a1 + m[0][2]*a2; |
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outVec[1] = m[1][0]*a0 + m[1][1]*a1 + m[1][2]*a2; |
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outVec[2] = m[2][0]*a0 + m[2][1]*a1 + m[2][2]*a2; |
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> |
} |
270 |
> |
|
271 |
> |
void SimInfo::transposeMat3(double in[3][3], double out[3][3]) { |
272 |
> |
double temp[3][3]; |
273 |
> |
int i, j; |
274 |
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|
275 |
> |
for (i = 0; i < 3; i++) { |
276 |
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for (j = 0; j < 3; j++) { |
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temp[j][i] = in[i][j]; |
278 |
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} |
279 |
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} |
280 |
> |
for (i = 0; i < 3; i++) { |
281 |
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for (j = 0; j < 3; j++) { |
282 |
> |
out[i][j] = temp[i][j]; |
283 |
> |
} |
284 |
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} |
285 |
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} |
286 |
> |
|
287 |
> |
void SimInfo::printMat3(double A[3][3] ){ |
288 |
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|
289 |
> |
std::cerr |
290 |
> |
<< "[ " << A[0][0] << ", " << A[0][1] << ", " << A[0][2] << " ]\n" |
291 |
> |
<< "[ " << A[1][0] << ", " << A[1][1] << ", " << A[1][2] << " ]\n" |
292 |
> |
<< "[ " << A[2][0] << ", " << A[2][1] << ", " << A[2][2] << " ]\n"; |
293 |
> |
} |
294 |
> |
|
295 |
> |
void SimInfo::printMat9(double A[9] ){ |
296 |
> |
|
297 |
> |
std::cerr |
298 |
> |
<< "[ " << A[0] << ", " << A[1] << ", " << A[2] << " ]\n" |
299 |
> |
<< "[ " << A[3] << ", " << A[4] << ", " << A[5] << " ]\n" |
300 |
> |
<< "[ " << A[6] << ", " << A[7] << ", " << A[8] << " ]\n"; |
301 |
> |
} |
302 |
> |
|
303 |
> |
|
304 |
> |
void SimInfo::crossProduct3(double a[3],double b[3], double out[3]){ |
305 |
> |
|
306 |
> |
out[0] = a[1] * b[2] - a[2] * b[1]; |
307 |
> |
out[1] = a[2] * b[0] - a[0] * b[2] ; |
308 |
> |
out[2] = a[0] * b[1] - a[1] * b[0]; |
309 |
> |
|
310 |
> |
} |
311 |
> |
|
312 |
> |
double SimInfo::dotProduct3(double a[3], double b[3]){ |
313 |
> |
return a[0]*b[0] + a[1]*b[1]+ a[2]*b[2]; |
314 |
> |
} |
315 |
> |
|
316 |
> |
double SimInfo::length3(double a[3]){ |
317 |
> |
return sqrt(a[0]*a[0] + a[1]*a[1] + a[2]*a[2]); |
318 |
> |
} |
319 |
> |
|
320 |
> |
void SimInfo::calcBoxL( void ){ |
321 |
> |
|
322 |
> |
double dx, dy, dz, dsq; |
323 |
> |
|
324 |
> |
// boxVol = Determinant of Hmat |
325 |
> |
|
326 |
> |
boxVol = matDet3( Hmat ); |
327 |
> |
|
328 |
> |
// boxLx |
329 |
> |
|
330 |
> |
dx = Hmat[0][0]; dy = Hmat[1][0]; dz = Hmat[2][0]; |
331 |
> |
dsq = dx*dx + dy*dy + dz*dz; |
332 |
> |
boxL[0] = sqrt( dsq ); |
333 |
> |
//maxCutoff = 0.5 * boxL[0]; |
334 |
> |
|
335 |
> |
// boxLy |
336 |
> |
|
337 |
> |
dx = Hmat[0][1]; dy = Hmat[1][1]; dz = Hmat[2][1]; |
338 |
> |
dsq = dx*dx + dy*dy + dz*dz; |
339 |
> |
boxL[1] = sqrt( dsq ); |
340 |
> |
//if( (0.5 * boxL[1]) < maxCutoff ) maxCutoff = 0.5 * boxL[1]; |
341 |
> |
|
342 |
> |
|
343 |
> |
// boxLz |
344 |
> |
|
345 |
> |
dx = Hmat[0][2]; dy = Hmat[1][2]; dz = Hmat[2][2]; |
346 |
> |
dsq = dx*dx + dy*dy + dz*dz; |
347 |
> |
boxL[2] = sqrt( dsq ); |
348 |
> |
//if( (0.5 * boxL[2]) < maxCutoff ) maxCutoff = 0.5 * boxL[2]; |
349 |
> |
|
350 |
> |
//calculate the max cutoff |
351 |
> |
maxCutoff = calcMaxCutOff(); |
352 |
> |
|
353 |
> |
checkCutOffs(); |
354 |
> |
|
355 |
> |
} |
356 |
> |
|
357 |
> |
|
358 |
> |
double SimInfo::calcMaxCutOff(){ |
359 |
> |
|
360 |
> |
double ri[3], rj[3], rk[3]; |
361 |
> |
double rij[3], rjk[3], rki[3]; |
362 |
> |
double minDist; |
363 |
> |
|
364 |
> |
ri[0] = Hmat[0][0]; |
365 |
> |
ri[1] = Hmat[1][0]; |
366 |
> |
ri[2] = Hmat[2][0]; |
367 |
> |
|
368 |
> |
rj[0] = Hmat[0][1]; |
369 |
> |
rj[1] = Hmat[1][1]; |
370 |
> |
rj[2] = Hmat[2][1]; |
371 |
> |
|
372 |
> |
rk[0] = Hmat[0][2]; |
373 |
> |
rk[1] = Hmat[1][2]; |
374 |
> |
rk[2] = Hmat[2][2]; |
375 |
> |
|
376 |
> |
crossProduct3(ri,rj, rij); |
377 |
> |
distXY = dotProduct3(rk,rij) / length3(rij); |
378 |
> |
|
379 |
> |
crossProduct3(rj,rk, rjk); |
380 |
> |
distYZ = dotProduct3(ri,rjk) / length3(rjk); |
381 |
> |
|
382 |
> |
crossProduct3(rk,ri, rki); |
383 |
> |
distZX = dotProduct3(rj,rki) / length3(rki); |
384 |
> |
|
385 |
> |
minDist = min(min(distXY, distYZ), distZX); |
386 |
> |
return minDist/2; |
387 |
> |
|
388 |
> |
} |
389 |
> |
|
390 |
> |
void SimInfo::wrapVector( double thePos[3] ){ |
391 |
> |
|
392 |
> |
int i; |
393 |
> |
double scaled[3]; |
394 |
> |
|
395 |
> |
if( !orthoRhombic ){ |
396 |
> |
// calc the scaled coordinates. |
397 |
> |
|
398 |
> |
|
399 |
> |
matVecMul3(HmatInv, thePos, scaled); |
400 |
> |
|
401 |
> |
for(i=0; i<3; i++) |
402 |
> |
scaled[i] -= roundMe(scaled[i]); |
403 |
> |
|
404 |
> |
// calc the wrapped real coordinates from the wrapped scaled coordinates |
405 |
> |
|
406 |
> |
matVecMul3(Hmat, scaled, thePos); |
407 |
> |
|
408 |
> |
} |
409 |
> |
else{ |
410 |
> |
// calc the scaled coordinates. |
411 |
> |
|
412 |
> |
for(i=0; i<3; i++) |
413 |
> |
scaled[i] = thePos[i]*HmatInv[i][i]; |
414 |
> |
|
415 |
> |
// wrap the scaled coordinates |
416 |
> |
|
417 |
> |
for(i=0; i<3; i++) |
418 |
> |
scaled[i] -= roundMe(scaled[i]); |
419 |
> |
|
420 |
> |
// calc the wrapped real coordinates from the wrapped scaled coordinates |
421 |
> |
|
422 |
> |
for(i=0; i<3; i++) |
423 |
> |
thePos[i] = scaled[i]*Hmat[i][i]; |
424 |
> |
} |
425 |
> |
|
426 |
> |
} |
427 |
> |
|
428 |
> |
|
429 |
|
int SimInfo::getNDF(){ |
430 |
< |
int ndf_local, ndf; |
430 |
> |
int ndf_local; |
431 |
|
|
432 |
|
ndf_local = 3 * n_atoms + 3 * n_oriented - n_constraints; |
433 |
|
|
437 |
|
ndf = ndf_local; |
438 |
|
#endif |
439 |
|
|
440 |
< |
ndf = ndf - 3; |
440 |
> |
ndf = ndf - 3 - nZconstraints; |
441 |
|
|
442 |
|
return ndf; |
443 |
|
} |
444 |
|
|
445 |
|
int SimInfo::getNDFraw() { |
446 |
< |
int ndfRaw_local, ndfRaw; |
446 |
> |
int ndfRaw_local; |
447 |
|
|
448 |
|
// Raw degrees of freedom that we have to set |
449 |
|
ndfRaw_local = 3 * n_atoms + 3 * n_oriented; |
456 |
|
|
457 |
|
return ndfRaw; |
458 |
|
} |
459 |
< |
|
459 |
> |
|
460 |
> |
int SimInfo::getNDFtranslational() { |
461 |
> |
int ndfTrans_local; |
462 |
> |
|
463 |
> |
ndfTrans_local = 3 * n_atoms - n_constraints; |
464 |
> |
|
465 |
> |
#ifdef IS_MPI |
466 |
> |
MPI_Allreduce(&ndfTrans_local,&ndfTrans,1,MPI_INT,MPI_SUM, MPI_COMM_WORLD); |
467 |
> |
#else |
468 |
> |
ndfTrans = ndfTrans_local; |
469 |
> |
#endif |
470 |
> |
|
471 |
> |
ndfTrans = ndfTrans - 3 - nZconstraints; |
472 |
> |
|
473 |
> |
return ndfTrans; |
474 |
> |
} |
475 |
> |
|
476 |
|
void SimInfo::refreshSim(){ |
477 |
|
|
478 |
|
simtype fInfo; |
479 |
|
int isError; |
480 |
+ |
int n_global; |
481 |
|
int* excl; |
482 |
< |
|
133 |
< |
fInfo.rrf = 0.0; |
134 |
< |
fInfo.rt = 0.0; |
482 |
> |
|
483 |
|
fInfo.dielect = 0.0; |
484 |
|
|
137 |
– |
fInfo.box[0] = box_x; |
138 |
– |
fInfo.box[1] = box_y; |
139 |
– |
fInfo.box[2] = box_z; |
140 |
– |
|
141 |
– |
fInfo.rlist = rList; |
142 |
– |
fInfo.rcut = rCut; |
143 |
– |
|
485 |
|
if( useDipole ){ |
145 |
– |
fInfo.rrf = ecr; |
146 |
– |
fInfo.rt = ecr - est; |
486 |
|
if( useReactionField )fInfo.dielect = dielectric; |
487 |
|
} |
488 |
|
|
491 |
|
fInfo.SIM_uses_LJ = useLJ; |
492 |
|
fInfo.SIM_uses_sticky = useSticky; |
493 |
|
//fInfo.SIM_uses_sticky = 0; |
494 |
< |
//fInfo.SIM_uses_dipoles = useDipole; |
495 |
< |
fInfo.SIM_uses_dipoles = 0; |
494 |
> |
fInfo.SIM_uses_dipoles = useDipole; |
495 |
> |
//fInfo.SIM_uses_dipoles = 0; |
496 |
|
//fInfo.SIM_uses_RF = useReactionField; |
497 |
|
fInfo.SIM_uses_RF = 0; |
498 |
|
fInfo.SIM_uses_GB = useGB; |
500 |
|
|
501 |
|
excl = Exclude::getArray(); |
502 |
|
|
503 |
+ |
#ifdef IS_MPI |
504 |
+ |
n_global = mpiSim->getTotAtoms(); |
505 |
+ |
#else |
506 |
+ |
n_global = n_atoms; |
507 |
+ |
#endif |
508 |
+ |
|
509 |
|
isError = 0; |
510 |
|
|
511 |
< |
// fInfo; |
512 |
< |
// n_atoms; |
513 |
< |
// identArray; |
169 |
< |
// n_exclude; |
170 |
< |
// excludes; |
171 |
< |
// nGlobalExcludes; |
172 |
< |
// globalExcludes; |
173 |
< |
// isError; |
511 |
> |
setFsimulation( &fInfo, &n_global, &n_atoms, identArray, &n_exclude, excl, |
512 |
> |
&nGlobalExcludes, globalExcludes, molMembershipArray, |
513 |
> |
&isError ); |
514 |
|
|
175 |
– |
setFsimulation( &fInfo, &n_atoms, identArray, &n_exclude, excl, |
176 |
– |
&nGlobalExcludes, globalExcludes, &isError ); |
177 |
– |
|
515 |
|
if( isError ){ |
516 |
|
|
517 |
|
sprintf( painCave.errMsg, |
526 |
|
MPIcheckPoint(); |
527 |
|
#endif // is_mpi |
528 |
|
|
529 |
< |
ndf = this->getNDF(); |
530 |
< |
ndfRaw = this->getNDFraw(); |
529 |
> |
this->ndf = this->getNDF(); |
530 |
> |
this->ndfRaw = this->getNDFraw(); |
531 |
> |
this->ndfTrans = this->getNDFtranslational(); |
532 |
> |
} |
533 |
|
|
534 |
+ |
|
535 |
+ |
void SimInfo::setRcut( double theRcut ){ |
536 |
+ |
|
537 |
+ |
rCut = theRcut; |
538 |
+ |
checkCutOffs(); |
539 |
|
} |
540 |
|
|
541 |
+ |
void SimInfo::setDefaultRcut( double theRcut ){ |
542 |
+ |
|
543 |
+ |
haveOrigRcut = 1; |
544 |
+ |
origRcut = theRcut; |
545 |
+ |
rCut = theRcut; |
546 |
+ |
|
547 |
+ |
( rCut > ecr )? rList = rCut + 1.0: rList = ecr + 1.0; |
548 |
+ |
|
549 |
+ |
notifyFortranCutOffs( &rCut, &rList, &ecr, &est ); |
550 |
+ |
} |
551 |
+ |
|
552 |
+ |
void SimInfo::setEcr( double theEcr ){ |
553 |
+ |
|
554 |
+ |
ecr = theEcr; |
555 |
+ |
checkCutOffs(); |
556 |
+ |
} |
557 |
+ |
|
558 |
+ |
void SimInfo::setDefaultEcr( double theEcr ){ |
559 |
+ |
|
560 |
+ |
haveOrigEcr = 1; |
561 |
+ |
origEcr = theEcr; |
562 |
+ |
|
563 |
+ |
( rCut > ecr )? rList = rCut + 1.0: rList = ecr + 1.0; |
564 |
+ |
|
565 |
+ |
ecr = theEcr; |
566 |
+ |
|
567 |
+ |
notifyFortranCutOffs( &rCut, &rList, &ecr, &est ); |
568 |
+ |
} |
569 |
+ |
|
570 |
+ |
void SimInfo::setEcr( double theEcr, double theEst ){ |
571 |
+ |
|
572 |
+ |
est = theEst; |
573 |
+ |
setEcr( theEcr ); |
574 |
+ |
} |
575 |
+ |
|
576 |
+ |
void SimInfo::setDefaultEcr( double theEcr, double theEst ){ |
577 |
+ |
|
578 |
+ |
est = theEst; |
579 |
+ |
setDefaultEcr( theEcr ); |
580 |
+ |
} |
581 |
+ |
|
582 |
+ |
|
583 |
+ |
void SimInfo::checkCutOffs( void ){ |
584 |
+ |
|
585 |
+ |
int cutChanged = 0; |
586 |
+ |
|
587 |
+ |
if( boxIsInit ){ |
588 |
+ |
|
589 |
+ |
//we need to check cutOffs against the box |
590 |
+ |
|
591 |
+ |
//detect the change of rCut |
592 |
+ |
if(( maxCutoff > rCut )&&(usePBC)){ |
593 |
+ |
if( rCut < origRcut ){ |
594 |
+ |
rCut = origRcut; |
595 |
+ |
|
596 |
+ |
if (rCut > maxCutoff) |
597 |
+ |
rCut = maxCutoff; |
598 |
+ |
|
599 |
+ |
sprintf( painCave.errMsg, |
600 |
+ |
"New Box size is setting the long range cutoff radius " |
601 |
+ |
"to %lf at time %lf\n", |
602 |
+ |
rCut, currentTime ); |
603 |
+ |
painCave.isFatal = 0; |
604 |
+ |
simError(); |
605 |
+ |
} |
606 |
+ |
} |
607 |
+ |
else if ((rCut > maxCutoff)&&(usePBC)) { |
608 |
+ |
sprintf( painCave.errMsg, |
609 |
+ |
"New Box size is setting the long range cutoff radius " |
610 |
+ |
"to %lf at time %lf\n", |
611 |
+ |
maxCutoff, currentTime ); |
612 |
+ |
painCave.isFatal = 0; |
613 |
+ |
simError(); |
614 |
+ |
rCut = maxCutoff; |
615 |
+ |
} |
616 |
+ |
|
617 |
+ |
|
618 |
+ |
//detect the change of ecr |
619 |
+ |
if( maxCutoff > ecr ){ |
620 |
+ |
if( ecr < origEcr ){ |
621 |
+ |
ecr = origEcr; |
622 |
+ |
if (ecr > maxCutoff) ecr = maxCutoff; |
623 |
+ |
|
624 |
+ |
sprintf( painCave.errMsg, |
625 |
+ |
"New Box size is setting the electrostaticCutoffRadius " |
626 |
+ |
"to %lf at time %lf\n", |
627 |
+ |
ecr, currentTime ); |
628 |
+ |
painCave.isFatal = 0; |
629 |
+ |
simError(); |
630 |
+ |
} |
631 |
+ |
} |
632 |
+ |
else if( ecr > maxCutoff){ |
633 |
+ |
sprintf( painCave.errMsg, |
634 |
+ |
"New Box size is setting the electrostaticCutoffRadius " |
635 |
+ |
"to %lf at time %lf\n", |
636 |
+ |
maxCutoff, currentTime ); |
637 |
+ |
painCave.isFatal = 0; |
638 |
+ |
simError(); |
639 |
+ |
ecr = maxCutoff; |
640 |
+ |
} |
641 |
+ |
|
642 |
+ |
if( (oldEcr != ecr) || ( oldRcut != rCut ) ) cutChanged = 1; |
643 |
+ |
|
644 |
+ |
// rlist is the 1.0 plus max( rcut, ecr ) |
645 |
+ |
|
646 |
+ |
( rCut > ecr )? rList = rCut + 1.0: rList = ecr + 1.0; |
647 |
+ |
|
648 |
+ |
if( cutChanged ){ |
649 |
+ |
notifyFortranCutOffs( &rCut, &rList, &ecr, &est ); |
650 |
+ |
} |
651 |
+ |
|
652 |
+ |
oldEcr = ecr; |
653 |
+ |
oldRcut = rCut; |
654 |
+ |
|
655 |
+ |
} else { |
656 |
+ |
// initialize this stuff before using it, OK? |
657 |
+ |
sprintf( painCave.errMsg, |
658 |
+ |
"Trying to check cutoffs without a box. Be smarter.\n" ); |
659 |
+ |
painCave.isFatal = 1; |
660 |
+ |
simError(); |
661 |
+ |
} |
662 |
+ |
|
663 |
+ |
} |
664 |
+ |
|
665 |
+ |
void SimInfo::addProperty(GenericData* prop){ |
666 |
+ |
|
667 |
+ |
map<string, GenericData*>::iterator result; |
668 |
+ |
result = properties.find(prop->getID()); |
669 |
+ |
|
670 |
+ |
//we can't simply use properties[prop->getID()] = prop, |
671 |
+ |
//it will cause memory leak if we already contain a propery which has the same name of prop |
672 |
+ |
|
673 |
+ |
if(result != properties.end()){ |
674 |
+ |
|
675 |
+ |
delete (*result).second; |
676 |
+ |
(*result).second = prop; |
677 |
+ |
|
678 |
+ |
} |
679 |
+ |
else{ |
680 |
+ |
|
681 |
+ |
properties[prop->getID()] = prop; |
682 |
+ |
|
683 |
+ |
} |
684 |
+ |
|
685 |
+ |
} |
686 |
+ |
|
687 |
+ |
GenericData* SimInfo::getProperty(const string& propName){ |
688 |
+ |
|
689 |
+ |
map<string, GenericData*>::iterator result; |
690 |
+ |
|
691 |
+ |
//string lowerCaseName = (); |
692 |
+ |
|
693 |
+ |
result = properties.find(propName); |
694 |
+ |
|
695 |
+ |
if(result != properties.end()) |
696 |
+ |
return (*result).second; |
697 |
+ |
else |
698 |
+ |
return NULL; |
699 |
+ |
} |
700 |
+ |
|
701 |
+ |
vector<GenericData*> SimInfo::getProperties(){ |
702 |
+ |
|
703 |
+ |
vector<GenericData*> result; |
704 |
+ |
map<string, GenericData*>::iterator i; |
705 |
+ |
|
706 |
+ |
for(i = properties.begin(); i != properties.end(); i++) |
707 |
+ |
result.push_back((*i).second); |
708 |
+ |
|
709 |
+ |
return result; |
710 |
+ |
} |
711 |
+ |
|
712 |
+ |
double SimInfo::matTrace3(double m[3][3]){ |
713 |
+ |
double trace; |
714 |
+ |
trace = m[0][0] + m[1][1] + m[2][2]; |
715 |
+ |
|
716 |
+ |
return trace; |
717 |
+ |
} |