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Comparing branches/development/src/parallel/ForceDecomposition.cpp (file contents):
Revision 1538 by chuckv, Tue Jan 11 18:58:12 2011 UTC vs.
Revision 1547 by gezelter, Mon Apr 11 18:44:16 2011 UTC

# Line 1 | Line 1
1 < /**
2 < * @file ForceDecomposition.cpp
3 < * @author Charles Vardeman <cvardema.at.nd.edu>
4 < * @date 08/18/2010
5 < * @time 11:56am
6 < * @version 1.0
1 > /*
2 > * Copyright (c) 2005 The University of Notre Dame. All Rights Reserved.
3   *
8 * @section LICENSE
9 * Copyright (c) 2010 The University of Notre Dame. All Rights Reserved.
10 *
4   * The University of Notre Dame grants you ("Licensee") a
5   * non-exclusive, royalty free, license to use, modify and
6   * redistribute this software in source and binary code form, provided
# Line 45 | Line 38
38   * [3]  Sun, Lin & Gezelter, J. Chem. Phys. 128, 24107 (2008).          
39   * [4]  Vardeman & Gezelter, in progress (2009).                        
40   */
41 + #include "parallel/ForceDecomposition.hpp"
42 + #include "math/SquareMatrix3.hpp"
43 + #include "nonbonded/NonBondedInteraction.hpp"
44 + #include "brains/SnapshotManager.hpp"
45  
46 + using namespace std;
47 + namespace OpenMD {
48  
49 +  /**
50 +   * distributeInitialData is essentially a copy of the older fortran
51 +   * SimulationSetup
52 +   */
53 +  
54 +  void ForceDecomposition::distributeInitialData() {
55 + #ifdef IS_MPI    
56 +    Snapshot* snap = sman_->getCurrentSnapshot();
57 +    int nLocal = snap->getNumberOfAtoms();
58 +    int nGroups = snap->getNumberOfCutoffGroups();
59  
60 < /*  -*- c++ -*-  */
61 < #include "config.h"
62 < #include <stdlib.h>
63 < #ifdef IS_MPI
55 < #include <mpi.h>
56 < #endif
60 >    AtomCommIntI = new Communicator<Row,int>(nLocal);
61 >    AtomCommRealI = new Communicator<Row,RealType>(nLocal);
62 >    AtomCommVectorI = new Communicator<Row,Vector3d>(nLocal);
63 >    AtomCommMatrixI = new Communicator<Row,Mat3x3d>(nLocal);
64  
65 < #include <iostream>
66 < #include <vector>
67 < #include <algorithm>
68 < #include <cmath>
62 < #include "parallel/ForceDecomposition.hpp"
65 >    AtomCommIntJ = new Communicator<Column,int>(nLocal);
66 >    AtomCommRealJ = new Communicator<Column,RealType>(nLocal);
67 >    AtomCommVectorJ = new Communicator<Column,Vector3d>(nLocal);
68 >    AtomCommMatrixJ = new Communicator<Column,Mat3x3d>(nLocal);
69  
70 +    cgCommIntI = new Communicator<Row,int>(nGroups);
71 +    cgCommVectorI = new Communicator<Row,Vector3d>(nGroups);
72 +    cgCommIntJ = new Communicator<Column,int>(nGroups);
73 +    cgCommVectorJ = new Communicator<Column,Vector3d>(nGroups);
74  
75 < using namespace std;
76 < using namespace OpenMD;
75 >    int nAtomsInRow = AtomCommIntI->getSize();
76 >    int nAtomsInCol = AtomCommIntJ->getSize();
77 >    int nGroupsInRow = cgCommIntI->getSize();
78 >    int nGroupsInCol = cgCommIntJ->getSize();
79  
80 < //__static
81 < #ifdef IS_MPI
82 < static vector<MPI:Comm> communictors;
83 < #endif
80 >    vector<vector<RealType> > pot_row(N_INTERACTION_FAMILIES,
81 >                                      vector<RealType> (nAtomsInRow, 0.0));
82 >    vector<vector<RealType> > pot_col(N_INTERACTION_FAMILIES,
83 >                                      vector<RealType> (nAtomsInCol, 0.0));
84 >    
85 >    vector<RealType> pot_local(N_INTERACTION_FAMILIES, 0.0);
86  
87 < //____ MPITypeTraits
88 < template<typename T>
89 < struct MPITypeTraits;
87 >    // gather the information for atomtype IDs (atids):
88 >    vector<int> identsLocal = info_->getIdentArray();
89 >    identsRow.reserve(nAtomsInRow);
90 >    identsCol.reserve(nAtomsInCol);
91  
92 < #ifdef IS_MPI
93 < template<>
79 < struct MPITypeTraits<RealType> {
80 <  static const MPI::Datatype datatype;
81 < };
82 < const MPI_Datatype MPITypeTraits<RealType>::datatype = MY_MPI_REAL;
92 >    AtomCommIntI->gather(identsLocal, identsRow);
93 >    AtomCommIntJ->gather(identsLocal, identsCol);
94  
95 < template<>
96 < struct MPITypeTraits<int> {
97 <  static const MPI::Datatype datatype;
87 < };
88 < const MPI::Datatype MPITypeTraits<int>::datatype = MPI_INT;
89 < #endif
95 >    AtomLocalToGlobal = info_->getLocalToGlobalAtomIndex();
96 >    AtomCommIntI->gather(AtomLocalToGlobal, AtomRowToGlobal);
97 >    AtomCommIntJ->gather(AtomLocalToGlobal, AtomColToGlobal);
98  
99 < /**
100 < * Constructor for ForceDecomposition Parallel Decomposition Method
101 < * Will try to construct a symmetric grid of processors. Ideally, the
94 < * number of processors will be a square ex: 4, 9, 16, 25.
95 < *
96 < */
99 >    cgLocalToGlobal = info_->getLocalToGlobalCutoffGroupIndex();
100 >    cgCommIntI->gather(cgLocalToGlobal, cgRowToGlobal);
101 >    cgCommIntJ->gather(cgLocalToGlobal, cgColToGlobal);
102  
103 < ForceDecomposition::ForceDecomposition() {
103 >    
104  
105 < #ifdef IS_MPI
106 <  int nProcs = MPI::COMM_WORLD.Get_size();
107 <  int worldRank = MPI::COMM_WORLD.Get_rank();
105 >    // still need:
106 >    // topoDist
107 >    // exclude
108   #endif
109 +  }
110 +    
111  
112 <  // First time through, construct column stride.
113 <  if (communicators.size() == 0)
114 <  {
115 <    int nColumnsMax = (int) round(sqrt((float) nProcs));
116 <    for (int i = 0; i < nProcs; ++i)
117 <    {
118 <      if (nProcs%i==0) nColumns=i;
112 >
113 >  void ForceDecomposition::distributeData()  {
114 > #ifdef IS_MPI
115 >    Snapshot* snap = sman_->getCurrentSnapshot();
116 >    
117 >    // gather up the atomic positions
118 >    AtomCommVectorI->gather(snap->atomData.position,
119 >                            snap->atomIData.position);
120 >    AtomCommVectorJ->gather(snap->atomData.position,
121 >                            snap->atomJData.position);
122 >    
123 >    // gather up the cutoff group positions
124 >    cgCommVectorI->gather(snap->cgData.position,
125 >                          snap->cgIData.position);
126 >    cgCommVectorJ->gather(snap->cgData.position,
127 >                          snap->cgJData.position);
128 >    
129 >    // if needed, gather the atomic rotation matrices
130 >    if (snap->atomData.getStorageLayout() & DataStorage::dslAmat) {
131 >      AtomCommMatrixI->gather(snap->atomData.aMat,
132 >                              snap->atomIData.aMat);
133 >      AtomCommMatrixJ->gather(snap->atomData.aMat,
134 >                              snap->atomJData.aMat);
135      }
136 +    
137 +    // if needed, gather the atomic eletrostatic frames
138 +    if (snap->atomData.getStorageLayout() & DataStorage::dslElectroFrame) {
139 +      AtomCommMatrixI->gather(snap->atomData.electroFrame,
140 +                              snap->atomIData.electroFrame);
141 +      AtomCommMatrixJ->gather(snap->atomData.electroFrame,
142 +                              snap->atomJData.electroFrame);
143 +    }
144 + #endif      
145 +  }
146 +  
147 +  void ForceDecomposition::collectIntermediateData() {
148 + #ifdef IS_MPI
149 +    Snapshot* snap = sman_->getCurrentSnapshot();
150 +    
151 +    if (snap->atomData.getStorageLayout() & DataStorage::dslDensity) {
152  
153 <    int nRows = nProcs/nColumns;    
154 <    myRank_ = (int) worldRank%nColumns;
153 >      AtomCommRealI->scatter(snap->atomIData.density,
154 >                             snap->atomData.density);
155 >
156 >      int n = snap->atomData.density.size();
157 >      std::vector<RealType> rho_tmp(n, 0.0);
158 >      AtomCommRealJ->scatter(snap->atomJData.density, rho_tmp);
159 >      for (int i = 0; i < n; i++)
160 >        snap->atomData.density[i] += rho_tmp[i];
161 >    }
162 > #endif
163    }
164 <  else
165 <  {
166 <    myRank_ = myRank/nColumns;
164 >  
165 >  void ForceDecomposition::distributeIntermediateData() {
166 > #ifdef IS_MPI
167 >    Snapshot* snap = sman_->getCurrentSnapshot();
168 >    if (snap->atomData.getStorageLayout() & DataStorage::dslFunctional) {
169 >      AtomCommRealI->gather(snap->atomData.functional,
170 >                            snap->atomIData.functional);
171 >      AtomCommRealJ->gather(snap->atomData.functional,
172 >                            snap->atomJData.functional);
173 >    }
174 >    
175 >    if (snap->atomData.getStorageLayout() & DataStorage::dslFunctionalDerivative) {
176 >      AtomCommRealI->gather(snap->atomData.functionalDerivative,
177 >                            snap->atomIData.functionalDerivative);
178 >      AtomCommRealJ->gather(snap->atomData.functionalDerivative,
179 >                            snap->atomJData.functionalDerivative);
180 >    }
181 > #endif
182    }
121  MPI::Comm newComm = MPI:COMM_WORLD.Split(myRank_,0);
183    
123  isColumn_ = false;
184    
185 < }
185 >  void ForceDecomposition::collectData() {
186 > #ifdef IS_MPI
187 >    Snapshot* snap = sman_->getCurrentSnapshot();
188 >    
189 >    int n = snap->atomData.force.size();
190 >    vector<Vector3d> frc_tmp(n, V3Zero);
191 >    
192 >    AtomCommVectorI->scatter(snap->atomIData.force, frc_tmp);
193 >    for (int i = 0; i < n; i++) {
194 >      snap->atomData.force[i] += frc_tmp[i];
195 >      frc_tmp[i] = 0.0;
196 >    }
197 >    
198 >    AtomCommVectorJ->scatter(snap->atomJData.force, frc_tmp);
199 >    for (int i = 0; i < n; i++)
200 >      snap->atomData.force[i] += frc_tmp[i];
201 >    
202 >    
203 >    if (snap->atomData.getStorageLayout() & DataStorage::dslTorque) {
204  
205 < ForceDecomposition::gather(sendbuf, receivebuf){
206 <  communicators(myIndex_).Allgatherv();
129 < }
205 >      int nt = snap->atomData.force.size();
206 >      vector<Vector3d> trq_tmp(nt, V3Zero);
207  
208 +      AtomCommVectorI->scatter(snap->atomIData.torque, trq_tmp);
209 +      for (int i = 0; i < n; i++) {
210 +        snap->atomData.torque[i] += trq_tmp[i];
211 +        trq_tmp[i] = 0.0;
212 +      }
213 +      
214 +      AtomCommVectorJ->scatter(snap->atomJData.torque, trq_tmp);
215 +      for (int i = 0; i < n; i++)
216 +        snap->atomData.torque[i] += trq_tmp[i];
217 +    }
218 +    
219 +    int nLocal = snap->getNumberOfAtoms();
220  
221 <
222 < ForceDecomposition::scatter(sbuffer, rbuffer){
223 <  communicators(myIndex_).Reduce_scatter(sbuffer, recevbuf. recvcounts, MPI::DOUBLE, MPI::SUM);
224 < }
225 <
226 <
221 >    vector<vector<RealType> > pot_temp(N_INTERACTION_FAMILIES,
222 >                                       vector<RealType> (nLocal, 0.0));
223 >    
224 >    for (int i = 0; i < N_INTERACTION_FAMILIES; i++) {
225 >      AtomCommRealI->scatter(pot_row[i], pot_temp[i]);
226 >      for (int ii = 0;  ii < pot_temp[i].size(); ii++ ) {
227 >        pot_local[i] += pot_temp[i][ii];
228 >      }
229 >    }
230 > #endif
231 >  }
232 >  
233 > } //end namespace OpenMD

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