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root/OpenMD/branches/development/src/io/DumpWriter.cpp
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trunk/src/io/DumpWriter.cpp (file contents), Revision 2 by gezelter, Fri Sep 24 04:16:43 2004 UTC vs.
branches/development/src/io/DumpWriter.cpp (file contents), Revision 1712 by gezelter, Sat May 19 13:30:21 2012 UTC

# Line 1 | Line 1
1 < #define _LARGEFILE_SOURCE64
2 < #define _FILE_OFFSET_BITS 64
1 > /*
2 > * Copyright (c) 2009 The University of Notre Dame. All Rights Reserved.
3 > *
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
7 > * that the following conditions are met:
8 > *
9 > * 1. Redistributions of source code must retain the above copyright
10 > *    notice, this list of conditions and the following disclaimer.
11 > *
12 > * 2. Redistributions in binary form must reproduce the above copyright
13 > *    notice, this list of conditions and the following disclaimer in the
14 > *    documentation and/or other materials provided with the
15 > *    distribution.
16 > *
17 > * This software is provided "AS IS," without a warranty of any
18 > * kind. All express or implied conditions, representations and
19 > * warranties, including any implied warranty of merchantability,
20 > * fitness for a particular purpose or non-infringement, are hereby
21 > * excluded.  The University of Notre Dame and its licensors shall not
22 > * be liable for any damages suffered by licensee as a result of
23 > * using, modifying or distributing the software or its
24 > * derivatives. In no event will the University of Notre Dame or its
25 > * licensors be liable for any lost revenue, profit or data, or for
26 > * direct, indirect, special, consequential, incidental or punitive
27 > * damages, however caused and regardless of the theory of liability,
28 > * arising out of the use of or inability to use software, even if the
29 > * University of Notre Dame has been advised of the possibility of
30 > * such damages.
31 > *
32 > * SUPPORT OPEN SCIENCE!  If you use OpenMD or its source code in your
33 > * research, please cite the appropriate papers when you publish your
34 > * work.  Good starting points are:
35 > *                                                                      
36 > * [1]  Meineke, et al., J. Comp. Chem. 26, 252-271 (2005).            
37 > * [2]  Fennell & Gezelter, J. Chem. Phys. 124, 234104 (2006).          
38 > * [3]  Sun, Lin & Gezelter, J. Chem. Phys. 128, 24107 (2008).          
39 > * [4]  Kuang & Gezelter,  J. Chem. Phys. 133, 164101 (2010).
40 > * [5]  Vardeman, Stocker & Gezelter, J. Chem. Theory Comput. 7, 834 (2011).
41 > */
42 >
43 > #include "io/DumpWriter.hpp"
44 > #include "primitives/Molecule.hpp"
45 > #include "utils/simError.h"
46 > #include "io/basic_teebuf.hpp"
47 > #include "io/gzstream.hpp"
48 > #include "io/Globals.hpp"
49  
4 #include <string.h>
5 #include <iostream>
6 #include <fstream>
7 #include <algorithm>
8 #include <utility>
50  
51   #ifdef IS_MPI
52   #include <mpi.h>
12 #include "mpiSimulation.hpp"
13
14 namespace dWrite{
15  void DieDieDie( void );
16 }
17
18 using namespace dWrite;
53   #endif //is_mpi
54  
55 < #include "ReadWrite.hpp"
56 < #include "simError.h"
55 > using namespace std;
56 > namespace OpenMD {
57  
58 < DumpWriter::DumpWriter( SimInfo* the_entry_plug ){
58 >  DumpWriter::DumpWriter(SimInfo* info)
59 >    : info_(info), filename_(info->getDumpFileName()), eorFilename_(info->getFinalConfigFileName()){
60  
61 <  entry_plug = the_entry_plug;
62 <
61 >    Globals* simParams = info->getSimParams();
62 >    needCompression_ = simParams->getCompressDumpFile();
63 >    needForceVector_ = simParams->getOutputForceVector();
64 >    needParticlePot_ = simParams->getOutputParticlePotential();
65 >    cerr << "DW npp = " << needParticlePot_ << "\n";
66 >    createDumpFile_ = true;
67 > #ifdef HAVE_LIBZ
68 >    if (needCompression_) {
69 >      filename_ += ".gz";
70 >      eorFilename_ += ".gz";
71 >    }
72 > #endif
73 >    
74   #ifdef IS_MPI
75 <  if(worldRank == 0 ){
75 >
76 >    if (worldRank == 0) {
77   #endif // is_mpi
78 +        
79 +      dumpFile_ = createOStream(filename_);
80  
81 <    dumpFile.open(entry_plug->sampleName.c_str(), ios::out | ios::trunc );
81 >      if (!dumpFile_) {
82 >        sprintf(painCave.errMsg, "Could not open \"%s\" for dump output.\n",
83 >                filename_.c_str());
84 >        painCave.isFatal = 1;
85 >        simError();
86 >      }
87  
88 <    if( !dumpFile ){
88 > #ifdef IS_MPI
89  
36      sprintf( painCave.errMsg,
37               "Could not open \"%s\" for dump output.\n",
38               entry_plug->sampleName.c_str());
39      painCave.isFatal = 1;
40      simError();
90      }
91  
92 < #ifdef IS_MPI
92 > #endif // is_mpi
93 >
94    }
95  
46  //sort the local atoms by global index
47  sortByGlobalIndex();
48  
49  sprintf( checkPointMsg,
50           "Sucessfully opened output file for dumping.\n");
51  MPIcheckPoint();
52 #endif // is_mpi
53 }
96  
97 < DumpWriter::~DumpWriter( ){
97 >  DumpWriter::DumpWriter(SimInfo* info, const std::string& filename)
98 >    : info_(info), filename_(filename){
99  
100 +    Globals* simParams = info->getSimParams();
101 +    eorFilename_ = filename_.substr(0, filename_.rfind(".")) + ".eor";    
102 +
103 +    needCompression_ = simParams->getCompressDumpFile();
104 +    needForceVector_ = simParams->getOutputForceVector();
105 +    needParticlePot_ = simParams->getOutputParticlePotential();
106 +    createDumpFile_ = true;
107 + #ifdef HAVE_LIBZ
108 +    if (needCompression_) {
109 +      filename_ += ".gz";
110 +      eorFilename_ += ".gz";
111 +    }
112 + #endif
113 +    
114   #ifdef IS_MPI
115 <  if(worldRank == 0 ){
115 >
116 >    if (worldRank == 0) {
117   #endif // is_mpi
118  
119 <    dumpFile.close();
119 >      
120 >      dumpFile_ = createOStream(filename_);
121  
122 < #ifdef IS_MPI
123 <  }
124 < #endif // is_mpi
125 < }
122 >      if (!dumpFile_) {
123 >        sprintf(painCave.errMsg, "Could not open \"%s\" for dump output.\n",
124 >                filename_.c_str());
125 >        painCave.isFatal = 1;
126 >        simError();
127 >      }
128  
129   #ifdef IS_MPI
130  
131 < /**
71 < * A hook function to load balancing
72 < */
131 >    }
132  
133 < void DumpWriter::update(){
75 <  sortByGlobalIndex();          
76 < }
77 <  
78 < /**
79 < * Auxiliary sorting function
80 < */
81 <
82 < bool indexSortingCriterion(const pair<int, int>& p1, const pair<int, int>& p2){
83 <  return p1.second < p2.second;
84 < }
133 > #endif // is_mpi
134  
135 < /**
87 < * Sorting the local index by global index
88 < */
89 <
90 < void DumpWriter::sortByGlobalIndex(){
91 <  Molecule* mols = entry_plug->molecules;  
92 <  indexArray.clear();
135 >  }
136    
137 <  for(int i = 0; i < entry_plug->n_mol;i++)
138 <    indexArray.push_back(make_pair(i, mols[i].getGlobalIndex()));
139 <  
140 <  sort(indexArray.begin(), indexArray.end(), indexSortingCriterion);    
141 < }
142 <
137 >  DumpWriter::DumpWriter(SimInfo* info, const std::string& filename, bool writeDumpFile)
138 >    : info_(info), filename_(filename){
139 >    
140 >    Globals* simParams = info->getSimParams();
141 >    eorFilename_ = filename_.substr(0, filename_.rfind(".")) + ".eor";    
142 >    
143 >    needCompression_ = simParams->getCompressDumpFile();
144 >    needForceVector_ = simParams->getOutputForceVector();
145 >    needParticlePot_ = simParams->getOutputParticlePotential();
146 >    
147 > #ifdef HAVE_LIBZ
148 >    if (needCompression_) {
149 >      filename_ += ".gz";
150 >      eorFilename_ += ".gz";
151 >    }
152   #endif
153 +    
154 + #ifdef IS_MPI
155 +    
156 +    if (worldRank == 0) {
157 + #endif // is_mpi
158 +      
159 +      createDumpFile_ = writeDumpFile;
160 +      if (createDumpFile_) {
161 +        dumpFile_ = createOStream(filename_);
162 +      
163 +        if (!dumpFile_) {
164 +          sprintf(painCave.errMsg, "Could not open \"%s\" for dump output.\n",
165 +                  filename_.c_str());
166 +          painCave.isFatal = 1;
167 +          simError();
168 +        }
169 +      }
170 + #ifdef IS_MPI
171 +      
172 +    }
173  
174 < void DumpWriter::writeDump(double currentTime){
174 >    
175 > #endif // is_mpi
176 >    
177 >  }
178  
179 <  ofstream finalOut;
105 <  vector<ofstream*> fileStreams;
179 >  DumpWriter::~DumpWriter() {
180  
181   #ifdef IS_MPI
182 <  if(worldRank == 0 ){
183 < #endif    
110 <    finalOut.open( entry_plug->finalName.c_str(), ios::out | ios::trunc );
111 <    if( !finalOut ){
112 <      sprintf( painCave.errMsg,
113 <               "Could not open \"%s\" for final dump output.\n",
114 <               entry_plug->finalName.c_str() );
115 <      painCave.isFatal = 1;
116 <      simError();
117 <    }
118 < #ifdef IS_MPI
119 <  }
182 >
183 >    if (worldRank == 0) {
184   #endif // is_mpi
185 +      if (createDumpFile_){
186 +        writeClosing(*dumpFile_);
187 +        delete dumpFile_;
188 +      }
189 + #ifdef IS_MPI
190  
191 <  fileStreams.push_back(&finalOut);
123 <  fileStreams.push_back(&dumpFile);
191 >    }
192  
193 <  writeFrame(fileStreams, currentTime);
193 > #endif // is_mpi
194  
195 < #ifdef IS_MPI
128 <  finalOut.close();
129 < #endif
130 <        
131 < }
195 >  }
196  
197 < void DumpWriter::writeFinal(double currentTime){
197 >  void DumpWriter::writeFrameProperties(std::ostream& os, Snapshot* s) {
198  
199 <  ofstream finalOut;
136 <  vector<ofstream*> fileStreams;
199 >    char buffer[1024];
200  
201 < #ifdef IS_MPI
139 <  if(worldRank == 0 ){
140 < #endif // is_mpi
201 >    os << "    <FrameData>\n";
202  
203 <    finalOut.open( entry_plug->finalName.c_str(), ios::out | ios::trunc );
203 >    RealType currentTime = s->getTime();
204  
205 <    if( !finalOut ){
205 >    if (isinf(currentTime) || isnan(currentTime)) {      
206        sprintf( painCave.errMsg,
207 <               "Could not open \"%s\" for final dump output.\n",
147 <               entry_plug->finalName.c_str() );
207 >               "DumpWriter detected a numerical error writing the time");      
208        painCave.isFatal = 1;
209        simError();
210      }
211 +    
212 +    sprintf(buffer, "        Time: %.10g\n", currentTime);
213 +    os << buffer;
214  
215 < #ifdef IS_MPI
216 <  }
154 < #endif // is_mpi
155 <  
156 <  fileStreams.push_back(&finalOut);  
157 <  writeFrame(fileStreams, currentTime);
215 >    Mat3x3d hmat;
216 >    hmat = s->getHmat();
217  
218 < #ifdef IS_MPI
219 <  finalOut.close();
220 < #endif
221 <  
222 < }
223 <
224 < void DumpWriter::writeFrame( vector<ofstream*>& outFile, double currentTime ){
225 <
226 <  const int BUFFERSIZE = 2000;
227 <  const int MINIBUFFERSIZE = 100;
169 <
170 <  char tempBuffer[BUFFERSIZE];  
171 <  char writeLine[BUFFERSIZE];
172 <
173 <  int i;
174 <  unsigned int k;
175 <
176 < #ifdef IS_MPI
177 <  
178 <  /*********************************************************************
179 <   * Documentation?  You want DOCUMENTATION?
180 <   *
181 <   * Why all the potatoes below?  
182 <   *
183 <   * To make a long story short, the original version of DumpWriter
184 <   * worked in the most inefficient way possible.  Node 0 would
185 <   * poke each of the node for an individual atom's formatted data
186 <   * as node 0 worked its way down the global index. This was particularly
187 <   * inefficient since the method blocked all processors at every atom
188 <   * (and did it twice!).
189 <   *
190 <   * An intermediate version of DumpWriter could be described from Node
191 <   * zero's perspective as follows:
192 <   *
193 <   *  1) Have 100 of your friends stand in a circle.
194 <   *  2) When you say go, have all of them start tossing potatoes at
195 <   *     you (one at a time).
196 <   *  3) Catch the potatoes.
197 <   *
198 <   * It was an improvement, but MPI has buffers and caches that could
199 <   * best be described in this analogy as "potato nets", so there's no
200 <   * need to block the processors atom-by-atom.
201 <   *
202 <   * This new and improved DumpWriter works in an even more efficient
203 <   * way:
204 <   *
205 <   *  1) Have 100 of your friend stand in a circle.
206 <   *  2) When you say go, have them start tossing 5-pound bags of
207 <   *     potatoes at you.
208 <   *  3) Once you've caught a friend's bag of potatoes,
209 <   *     toss them a spud to let them know they can toss another bag.
210 <   *
211 <   * How's THAT for documentation?
212 <   *
213 <   *********************************************************************/
214 <
215 <  int *potatoes;
216 <  int myPotato;
217 <
218 <  int nProc;
219 <  int j, which_node, done, which_atom, local_index, currentIndex;
220 <  double atomData[13];
221 <  int isDirectional;
222 <  char* atomTypeString;
223 <  char MPIatomTypeString[MINIBUFFERSIZE];
224 <  int nObjects;
225 <  int msgLen; // the length of message actually recieved at master nodes
226 < #endif //is_mpi
227 <
228 <  double q[4], ji[3];
229 <  DirectionalAtom* dAtom;
230 <  double pos[3], vel[3];
231 <  int nTotObjects;
232 <  StuntDouble* sd;
233 <  char* molName;
234 <  vector<StuntDouble*> integrableObjects;
235 <  vector<StuntDouble*>::iterator iter;
236 <  nTotObjects = entry_plug->getTotIntegrableObjects();
237 < #ifndef IS_MPI
238 <  
239 <  for(k = 0; k < outFile.size(); k++){
240 <    *outFile[k] << nTotObjects << "\n";
241 <
242 <    *outFile[k] << currentTime << ";\t"
243 <               << entry_plug->Hmat[0][0] << "\t"
244 <                     << entry_plug->Hmat[1][0] << "\t"
245 <                     << entry_plug->Hmat[2][0] << ";\t"
246 <              
247 <               << entry_plug->Hmat[0][1] << "\t"
248 <                     << entry_plug->Hmat[1][1] << "\t"
249 <                     << entry_plug->Hmat[2][1] << ";\t"
250 <
251 <                     << entry_plug->Hmat[0][2] << "\t"
252 <                     << entry_plug->Hmat[1][2] << "\t"
253 <                     << entry_plug->Hmat[2][2] << ";";
254 <
255 <    //write out additional parameters, such as chi and eta
256 <    *outFile[k] << entry_plug->the_integrator->getAdditionalParameters() << endl;
257 <  }
258 <  
259 <  for( i=0; i< entry_plug->n_mol; i++ ){
260 <
261 <    integrableObjects = entry_plug->molecules[i].getIntegrableObjects();
262 <    molName = (entry_plug->compStamps[entry_plug->molecules[i].getStampID()])->getID();
218 >    for (unsigned int i = 0; i < 3; i++) {
219 >      for (unsigned int j = 0; j < 3; j++) {
220 >        if (isinf(hmat(i,j)) || isnan(hmat(i,j))) {      
221 >          sprintf( painCave.errMsg,
222 >                   "DumpWriter detected a numerical error writing the box");
223 >          painCave.isFatal = 1;
224 >          simError();
225 >        }        
226 >      }
227 >    }
228      
229 <    for( iter = integrableObjects.begin();iter !=  integrableObjects.end(); ++iter){
230 <      sd = *iter;
231 <      sd->getPos(pos);
232 <      sd->getVel(vel);
229 >    sprintf(buffer, "        Hmat: {{ %.10g, %.10g, %.10g }, { %.10g, %.10g, %.10g }, { %.10g, %.10g, %.10g }}\n",
230 >            hmat(0, 0), hmat(1, 0), hmat(2, 0),
231 >            hmat(0, 1), hmat(1, 1), hmat(2, 1),
232 >            hmat(0, 2), hmat(1, 2), hmat(2, 2));
233 >    os << buffer;
234  
235 <      sprintf( tempBuffer,
236 <             "%s\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t",
237 <             sd->getType(),
238 <             pos[0],
239 <             pos[1],
240 <             pos[2],
241 <             vel[0],
242 <             vel[1],
243 <             vel[2]);
244 <      strcpy( writeLine, tempBuffer );
235 >    RealType chi = s->getChi();
236 >    RealType integralOfChiDt = s->getIntegralOfChiDt();
237 >    if (isinf(chi) || isnan(chi) ||
238 >        isinf(integralOfChiDt) || isnan(integralOfChiDt)) {      
239 >      sprintf( painCave.errMsg,
240 >               "DumpWriter detected a numerical error writing the thermostat");
241 >      painCave.isFatal = 1;
242 >      simError();
243 >    }
244 >    sprintf(buffer, "  Thermostat: %.10g , %.10g\n", chi, integralOfChiDt);
245 >    os << buffer;
246  
247 <      if( sd->isDirectional() ){
247 >    Mat3x3d eta;
248 >    eta = s->getEta();
249  
250 <        sd->getQ( q );
251 <        sd->getJ( ji );
252 <
253 <        sprintf( tempBuffer,
254 <               "%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\n",
255 <               q[0],
256 <               q[1],
257 <               q[2],
290 <               q[3],
291 <                 ji[0],
292 <                 ji[1],
293 <                 ji[2]);
294 <        strcat( writeLine, tempBuffer );
250 >    for (unsigned int i = 0; i < 3; i++) {
251 >      for (unsigned int j = 0; j < 3; j++) {
252 >        if (isinf(eta(i,j)) || isnan(eta(i,j))) {      
253 >          sprintf( painCave.errMsg,
254 >                   "DumpWriter detected a numerical error writing the barostat");
255 >          painCave.isFatal = 1;
256 >          simError();
257 >        }        
258        }
296      else
297        strcat( writeLine, "0.0\t0.0\t0.0\t0.0\t0.0\t0.0\t0.0\n" );
298    
299      for(k = 0; k < outFile.size(); k++)
300        *outFile[k] << writeLine;      
259      }
260  
261 < }
261 >    sprintf(buffer, "    Barostat: {{ %.10g, %.10g, %.10g }, { %.10g, %.10g, %.10g }, { %.10g, %.10g, %.10g }}\n",
262 >            eta(0, 0), eta(1, 0), eta(2, 0),
263 >            eta(0, 1), eta(1, 1), eta(2, 1),
264 >            eta(0, 2), eta(1, 2), eta(2, 2));
265 >    os << buffer;
266  
267 < #else // is_mpi
267 >    os << "    </FrameData>\n";
268 >  }
269  
270 <  /* code to find maximum tag value */
308 <  
309 <  int *tagub, flag, MAXTAG;
310 <  MPI_Attr_get(MPI_COMM_WORLD, MPI_TAG_UB, &tagub, &flag);
311 <  if (flag) {
312 <    MAXTAG = *tagub;
313 <  } else {
314 <    MAXTAG = 32767;
315 <  }  
270 >  void DumpWriter::writeFrame(std::ostream& os) {
271  
272 <  int haveError;
272 > #ifdef IS_MPI
273 >    MPI_Status istatus;
274 > #endif
275  
276 <  MPI_Status istatus;
277 <  int nCurObj;
278 <  int *MolToProcMap = mpiSim->getMolToProcMap();
276 >    Molecule* mol;
277 >    StuntDouble* integrableObject;
278 >    SimInfo::MoleculeIterator mi;
279 >    Molecule::IntegrableObjectIterator ii;
280  
281 <  // write out header and node 0's coordinates
281 > #ifndef IS_MPI
282 >    os << "  <Snapshot>\n";
283 >
284 >    writeFrameProperties(os, info_->getSnapshotManager()->getCurrentSnapshot());
285  
286 <  if( worldRank == 0 ){
286 >    os << "    <StuntDoubles>\n";
287 >    for (mol = info_->beginMolecule(mi); mol != NULL; mol = info_->nextMolecule(mi)) {
288  
289 <    // Node 0 needs a list of the magic potatoes for each processor;
290 <
291 <    nProc = mpiSim->getNProcessors();
292 <    potatoes = new int[nProc];
293 <
294 <    //write out the comment lines
295 <    for (i = 0; i < nProc; i++)
296 <      potatoes[i] = 0;
289 >      
290 >      for (integrableObject = mol->beginIntegrableObject(ii); integrableObject != NULL;  
291 >           integrableObject = mol->nextIntegrableObject(ii)) {  
292 >          os << prepareDumpLine(integrableObject);
293 >          
294 >      }
295 >    }    
296 >    os << "    </StuntDoubles>\n";
297      
298 <      for(k = 0; k < outFile.size(); k++){
337 <        *outFile[k] << nTotObjects << "\n";
298 >    os << "  </Snapshot>\n";
299  
300 <        *outFile[k] << currentTime << ";\t"
301 <                         << entry_plug->Hmat[0][0] << "\t"
302 <                         << entry_plug->Hmat[1][0] << "\t"
303 <                         << entry_plug->Hmat[2][0] << ";\t"
300 >    os.flush();
301 > #else
302 >    //every node prepares the dump lines for integrable objects belong to itself
303 >    std::string buffer;
304 >    for (mol = info_->beginMolecule(mi); mol != NULL; mol = info_->nextMolecule(mi)) {
305  
344                         << entry_plug->Hmat[0][1] << "\t"
345                         << entry_plug->Hmat[1][1] << "\t"
346                         << entry_plug->Hmat[2][1] << ";\t"
306  
307 <                         << entry_plug->Hmat[0][2] << "\t"
308 <                         << entry_plug->Hmat[1][2] << "\t"
309 <                         << entry_plug->Hmat[2][2] << ";";
310 <  
352 <        *outFile[k] << entry_plug->the_integrator->getAdditionalParameters() << endl;
307 >      for (integrableObject = mol->beginIntegrableObject(ii); integrableObject != NULL;
308 >           integrableObject = mol->nextIntegrableObject(ii)) {  
309 >          buffer += prepareDumpLine(integrableObject);
310 >      }
311      }
312 +    
313 +    const int masterNode = 0;
314 +    int nProc;
315 +    MPI_Comm_size(MPI_COMM_WORLD, &nProc);
316 +    if (worldRank == masterNode) {      
317 +      os << "  <Snapshot>\n";  
318 +      writeFrameProperties(os, info_->getSnapshotManager()->getCurrentSnapshot());
319 +      os << "    <StuntDoubles>\n";
320 +        
321 +      os << buffer;
322  
323 <    currentIndex = 0;
323 >      for (int i = 1; i < nProc; ++i) {
324  
325 <    for (i = 0 ; i < mpiSim->getNMolGlobal(); i++ ) {
325 >        // receive the length of the string buffer that was
326 >        // prepared by processor i
327 >
328 >        MPI_Bcast(&i, 1, MPI_INT,masterNode,MPI_COMM_WORLD);
329 >        int recvLength;
330 >        MPI_Recv(&recvLength, 1, MPI_INT, i, 0, MPI_COMM_WORLD, &istatus);
331 >        char* recvBuffer = new char[recvLength];
332 >        if (recvBuffer == NULL) {
333 >        } else {
334 >          MPI_Recv(recvBuffer, recvLength, MPI_CHAR, i, 0, MPI_COMM_WORLD, &istatus);
335 >          os << recvBuffer;
336 >          delete [] recvBuffer;
337 >        }
338 >      }
339 >      os << "    </StuntDoubles>\n";
340        
341 <      // Get the Node number which has this atom;
342 <      
343 <      which_node = MolToProcMap[i];
344 <      
345 <      if (which_node != 0) {
346 <        
347 <        if (potatoes[which_node] + 1 >= MAXTAG) {
348 <          // The potato was going to exceed the maximum value,
349 <          // so wrap this processor potato back to 0:        
350 <
369 <          potatoes[which_node] = 0;          
370 <          MPI_Send(&potatoes[which_node], 1, MPI_INT, which_node, 0, MPI_COMM_WORLD);
371 <          
341 >      os << "  </Snapshot>\n";
342 >      os.flush();
343 >    } else {
344 >      int sendBufferLength = buffer.size() + 1;
345 >      int myturn = 0;
346 >      for (int i = 1; i < nProc; ++i){
347 >        MPI_Bcast(&myturn,1, MPI_INT,masterNode,MPI_COMM_WORLD);
348 >        if (myturn == worldRank){
349 >          MPI_Send(&sendBufferLength, 1, MPI_INT, masterNode, 0, MPI_COMM_WORLD);
350 >          MPI_Send((void *)buffer.c_str(), sendBufferLength, MPI_CHAR, masterNode, 0, MPI_COMM_WORLD);
351          }
352 +      }
353 +    }
354  
355 <        myPotato = potatoes[which_node];        
355 > #endif // is_mpi
356  
357 <        //recieve the number of integrableObject in current molecule
377 <        MPI_Recv(&nCurObj, 1, MPI_INT, which_node,
378 <                 myPotato, MPI_COMM_WORLD, &istatus);
379 <        myPotato++;
380 <        
381 <        for(int l = 0; l < nCurObj; l++){
357 >  }
358  
359 <          if (potatoes[which_node] + 2 >= MAXTAG) {
360 <            // The potato was going to exceed the maximum value,
361 <            // so wrap this processor potato back to 0:        
359 >  std::string DumpWriter::prepareDumpLine(StuntDouble* integrableObject) {
360 >        
361 >    int index = integrableObject->getGlobalIntegrableObjectIndex();
362 >    std::string type("pv");
363 >    std::string line;
364 >    char tempBuffer[4096];
365  
366 <            potatoes[which_node] = 0;          
367 <            MPI_Send(&potatoes[which_node], 1, MPI_INT, which_node, 0, MPI_COMM_WORLD);
368 <            
390 <          }
366 >    Vector3d pos;
367 >    Vector3d vel;
368 >    pos = integrableObject->getPos();
369  
370 <          MPI_Recv(MPIatomTypeString, MINIBUFFERSIZE, MPI_CHAR, which_node,
371 <          myPotato, MPI_COMM_WORLD, &istatus);
370 >    if (isinf(pos[0]) || isnan(pos[0]) ||
371 >        isinf(pos[1]) || isnan(pos[1]) ||
372 >        isinf(pos[2]) || isnan(pos[2]) ) {      
373 >      sprintf( painCave.errMsg,
374 >               "DumpWriter detected a numerical error writing the position"
375 >               " for object %d", index);      
376 >      painCave.isFatal = 1;
377 >      simError();
378 >    }
379  
380 <          atomTypeString = MPIatomTypeString;
380 >    vel = integrableObject->getVel();          
381  
382 <          myPotato++;
382 >    if (isinf(vel[0]) || isnan(vel[0]) ||
383 >        isinf(vel[1]) || isnan(vel[1]) ||
384 >        isinf(vel[2]) || isnan(vel[2]) ) {      
385 >      sprintf( painCave.errMsg,
386 >               "DumpWriter detected a numerical error writing the velocity"
387 >               " for object %d", index);      
388 >      painCave.isFatal = 1;
389 >      simError();
390 >    }
391  
392 <          MPI_Recv(atomData, 13, MPI_DOUBLE, which_node, myPotato, MPI_COMM_WORLD, &istatus);
393 <          myPotato++;
392 >    sprintf(tempBuffer, "%18.10g %18.10g %18.10g %13e %13e %13e",
393 >            pos[0], pos[1], pos[2],
394 >            vel[0], vel[1], vel[2]);                    
395 >    line += tempBuffer;
396  
397 <          MPI_Get_count(&istatus, MPI_DOUBLE, &msgLen);
397 >    if (integrableObject->isDirectional()) {
398 >      type += "qj";
399 >      Quat4d q;
400 >      Vector3d ji;
401 >      q = integrableObject->getQ();
402  
403 <          if(msgLen  == 13)
404 <            isDirectional = 1;
405 <          else
406 <            isDirectional = 0;
407 <          
408 <          // If we've survived to here, format the line:
409 <            
410 <          if (!isDirectional) {
411 <        
413 <            sprintf( writeLine,
414 <                 "%s\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t",
415 <                 atomTypeString,
416 <                 atomData[0],
417 <                 atomData[1],
418 <                 atomData[2],
419 <                 atomData[3],
420 <                 atomData[4],
421 <                 atomData[5]);
422 <        
423 <           strcat( writeLine, "0.0\t0.0\t0.0\t0.0\t0.0\t0.0\t0.0\n" );
424 <        
425 <          }
426 <          else {
427 <        
428 <                sprintf( writeLine,
429 <                         "%s\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\n",
430 <                         atomTypeString,
431 <                         atomData[0],
432 <                         atomData[1],
433 <                         atomData[2],
434 <                         atomData[3],
435 <                         atomData[4],
436 <                         atomData[5],
437 <                         atomData[6],
438 <                         atomData[7],
439 <                         atomData[8],
440 <                         atomData[9],
441 <                         atomData[10],
442 <                         atomData[11],
443 <                         atomData[12]);
444 <            
445 <          }
446 <          
447 <          for(k = 0; k < outFile.size(); k++)
448 <            *outFile[k] << writeLine;            
449 <
450 <        }// end for(int l =0)
451 <        potatoes[which_node] = myPotato;
452 <
403 >      if (isinf(q[0]) || isnan(q[0]) ||
404 >          isinf(q[1]) || isnan(q[1]) ||
405 >          isinf(q[2]) || isnan(q[2]) ||
406 >          isinf(q[3]) || isnan(q[3]) ) {      
407 >        sprintf( painCave.errMsg,
408 >                 "DumpWriter detected a numerical error writing the quaternion"
409 >                 " for object %d", index);      
410 >        painCave.isFatal = 1;
411 >        simError();
412        }
454      else {
455        
456        haveError = 0;
457        
458            local_index = indexArray[currentIndex].first;        
413  
414 <        integrableObjects = (entry_plug->molecules[local_index]).getIntegrableObjects();
414 >      ji = integrableObject->getJ();
415  
416 <        for(iter= integrableObjects.begin(); iter != integrableObjects.end(); ++iter){    
417 <                sd = *iter;
418 <            atomTypeString = sd->getType();
419 <            
420 <            sd->getPos(pos);
421 <            sd->getVel(vel);          
422 <          
423 <            atomData[0] = pos[0];
470 <            atomData[1] = pos[1];
471 <            atomData[2] = pos[2];
472 <
473 <            atomData[3] = vel[0];
474 <            atomData[4] = vel[1];
475 <            atomData[5] = vel[2];
476 <              
477 <            isDirectional = 0;
478 <
479 <            if( sd->isDirectional() ){
480 <
481 <              isDirectional = 1;
482 <                
483 <              sd->getQ( q );
484 <              sd->getJ( ji );
485 <
486 <              for (int j = 0; j < 6 ; j++)
487 <                atomData[j] = atomData[j];            
488 <              
489 <              atomData[6] = q[0];
490 <              atomData[7] = q[1];
491 <              atomData[8] = q[2];
492 <              atomData[9] = q[3];
493 <              
494 <              atomData[10] = ji[0];
495 <              atomData[11] = ji[1];
496 <              atomData[12] = ji[2];
497 <            }
498 <            
499 <            // If we've survived to here, format the line:
500 <            
501 <            if (!isDirectional) {
502 <        
503 <              sprintf( writeLine,
504 <                 "%s\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t",
505 <                 atomTypeString,
506 <                 atomData[0],
507 <                 atomData[1],
508 <                 atomData[2],
509 <                 atomData[3],
510 <                 atomData[4],
511 <                 atomData[5]);
512 <        
513 <             strcat( writeLine, "0.0\t0.0\t0.0\t0.0\t0.0\t0.0\t0.0\n" );
514 <        
515 <            }
516 <            else {
517 <        
518 <                sprintf( writeLine,
519 <                         "%s\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\n",
520 <                         atomTypeString,
521 <                         atomData[0],
522 <                         atomData[1],
523 <                         atomData[2],
524 <                         atomData[3],
525 <                         atomData[4],
526 <                         atomData[5],
527 <                         atomData[6],
528 <                         atomData[7],
529 <                         atomData[8],
530 <                         atomData[9],
531 <                         atomData[10],
532 <                         atomData[11],
533 <                         atomData[12]);
534 <              
535 <            }
536 <            
537 <            for(k = 0; k < outFile.size(); k++)
538 <              *outFile[k] << writeLine;
539 <            
540 <            
541 <        }//end for(iter = integrableObject.begin())
542 <        
543 <      currentIndex++;
416 >      if (isinf(ji[0]) || isnan(ji[0]) ||
417 >          isinf(ji[1]) || isnan(ji[1]) ||
418 >          isinf(ji[2]) || isnan(ji[2]) ) {      
419 >        sprintf( painCave.errMsg,
420 >                 "DumpWriter detected a numerical error writing the angular"
421 >                 " momentum for object %d", index);      
422 >        painCave.isFatal = 1;
423 >        simError();
424        }
425  
426 <    }//end for(i = 0; i < mpiSim->getNmol())
427 <    
428 <    for(k = 0; k < outFile.size(); k++)
429 <      outFile[k]->flush();
430 <    
551 <    sprintf( checkPointMsg,
552 <             "Sucessfully took a dump.\n");
553 <    
554 <    MPIcheckPoint();        
555 <    
556 <    delete[] potatoes;
557 <    
558 <  } else {
426 >      sprintf(tempBuffer, " %13e %13e %13e %13e %13e %13e %13e",
427 >              q[0], q[1], q[2], q[3],
428 >              ji[0], ji[1], ji[2]);
429 >      line += tempBuffer;
430 >    }
431  
432 <    // worldRank != 0, so I'm a remote node.  
433 <
434 <    // Set my magic potato to 0:
563 <
564 <    myPotato = 0;
565 <    currentIndex = 0;
566 <    
567 <    for (i = 0 ; i < mpiSim->getNMolGlobal(); i++ ) {
568 <      
569 <      // Am I the node which has this integrableObject?
570 <      
571 <      if (MolToProcMap[i] == worldRank) {
432 >    if (needForceVector_) {
433 >      type += "f";
434 >      Vector3d frc;
435  
436 +      frc = integrableObject->getFrc();
437  
438 <        if (myPotato + 1 >= MAXTAG) {
439 <          
440 <          // The potato was going to exceed the maximum value,
441 <          // so wrap this processor potato back to 0 (and block until
442 <          // node 0 says we can go:
443 <          
444 <          MPI_Recv(&myPotato, 1, MPI_INT, 0, 0, MPI_COMM_WORLD, &istatus);
445 <          
438 >      if (isinf(frc[0]) || isnan(frc[0]) ||
439 >          isinf(frc[1]) || isnan(frc[1]) ||
440 >          isinf(frc[2]) || isnan(frc[2]) ) {      
441 >        sprintf( painCave.errMsg,
442 >                 "DumpWriter detected a numerical error writing the force"
443 >                 " for object %d", index);      
444 >        painCave.isFatal = 1;
445 >        simError();
446 >      }
447 >      sprintf(tempBuffer, " %13e %13e %13e",
448 >              frc[0], frc[1], frc[2]);
449 >      line += tempBuffer;
450 >      
451 >      if (integrableObject->isDirectional()) {
452 >        type += "t";
453 >        Vector3d trq;
454 >        
455 >        trq = integrableObject->getTrq();
456 >        
457 >        if (isinf(trq[0]) || isnan(trq[0]) ||
458 >            isinf(trq[1]) || isnan(trq[1]) ||
459 >            isinf(trq[2]) || isnan(trq[2]) ) {      
460 >          sprintf( painCave.errMsg,
461 >                   "DumpWriter detected a numerical error writing the torque"
462 >                   " for object %d", index);      
463 >          painCave.isFatal = 1;
464 >          simError();
465          }
466 +        
467 +        sprintf(tempBuffer, " %13e %13e %13e",
468 +                trq[0], trq[1], trq[2]);
469 +        line += tempBuffer;
470 +      }      
471 +    }
472 +    if (needParticlePot_) {
473 +      type += "u";
474 +      RealType particlePot;
475  
476 <          local_index = indexArray[currentIndex].first;        
585 <          integrableObjects = entry_plug->molecules[local_index].getIntegrableObjects();
586 <          
587 <          nCurObj = integrableObjects.size();
588 <                      
589 <          MPI_Send(&nCurObj, 1, MPI_INT, 0,
590 <                             myPotato, MPI_COMM_WORLD);
591 <          myPotato++;
476 >      particlePot = integrableObject->getParticlePot();
477  
478 <          for( iter = integrableObjects.begin(); iter  != integrableObjects.end(); iter++){
478 >      if (isinf(particlePot) || isnan(particlePot)) {      
479 >        sprintf( painCave.errMsg,
480 >                 "DumpWriter detected a numerical error writing the particle "
481 >                 " potential for object %d", index);      
482 >        painCave.isFatal = 1;
483 >        simError();
484 >      }
485 >      sprintf(tempBuffer, " %13e", particlePot);
486 >      line += tempBuffer;
487 >    }
488 >    
489 >    sprintf(tempBuffer, "%10d %7s %s\n", index, type.c_str(), line.c_str());
490 >    return std::string(tempBuffer);
491 >  }
492  
493 <            if (myPotato + 2 >= MAXTAG) {
494 <          
495 <              // The potato was going to exceed the maximum value,
598 <              // so wrap this processor potato back to 0 (and block until
599 <              // node 0 says we can go:
600 <          
601 <              MPI_Recv(&myPotato, 1, MPI_INT, 0, 0, MPI_COMM_WORLD, &istatus);
602 <              
603 <            }
604 <            
605 <            sd = *iter;
606 <            
607 <            atomTypeString = sd->getType();
493 >  void DumpWriter::writeDump() {
494 >    writeFrame(*dumpFile_);
495 >  }
496  
497 <            sd->getPos(pos);
498 <            sd->getVel(vel);
497 >  void DumpWriter::writeEor() {
498 >    std::ostream* eorStream;
499 >    
500 > #ifdef IS_MPI
501 >    if (worldRank == 0) {
502 > #endif // is_mpi
503  
504 <            atomData[0] = pos[0];
613 <            atomData[1] = pos[1];
614 <            atomData[2] = pos[2];
504 >      eorStream = createOStream(eorFilename_);
505  
506 <            atomData[3] = vel[0];
507 <            atomData[4] = vel[1];
508 <            atomData[5] = vel[2];
619 <              
620 <            isDirectional = 0;
506 > #ifdef IS_MPI
507 >    }
508 > #endif // is_mpi    
509  
510 <            if( sd->isDirectional() ){
510 >    writeFrame(*eorStream);
511  
512 <                isDirectional = 1;
513 <                
514 <                sd->getQ( q );
515 <                sd->getJ( ji );
516 <                
517 <                
518 <                atomData[6] = q[0];
519 <                atomData[7] = q[1];
632 <                atomData[8] = q[2];
633 <                atomData[9] = q[3];
634 <      
635 <                atomData[10] = ji[0];
636 <                atomData[11] = ji[1];
637 <                atomData[12] = ji[2];
638 <              }
512 > #ifdef IS_MPI
513 >    if (worldRank == 0) {
514 > #endif // is_mpi
515 >      writeClosing(*eorStream);
516 >      delete eorStream;
517 > #ifdef IS_MPI
518 >    }
519 > #endif // is_mpi  
520  
521 <            
641 <            strncpy(MPIatomTypeString, atomTypeString, MINIBUFFERSIZE);
521 >  }
522  
643            // null terminate the string before sending (just in case):
644            MPIatomTypeString[MINIBUFFERSIZE-1] = '\0';
523  
524 <            MPI_Send(MPIatomTypeString, MINIBUFFERSIZE, MPI_CHAR, 0,
525 <                             myPotato, MPI_COMM_WORLD);
526 <            
527 <            myPotato++;
528 <            
529 <            if (isDirectional) {
524 >  void DumpWriter::writeDumpAndEor() {
525 >    std::vector<std::streambuf*> buffers;
526 >    std::ostream* eorStream;
527 > #ifdef IS_MPI
528 >    if (worldRank == 0) {
529 > #endif // is_mpi
530  
531 <              MPI_Send(atomData, 13, MPI_DOUBLE, 0,
654 <                       myPotato, MPI_COMM_WORLD);
655 <              
656 <            } else {
531 >      buffers.push_back(dumpFile_->rdbuf());
532  
533 <              MPI_Send(atomData, 6, MPI_DOUBLE, 0,
659 <                       myPotato, MPI_COMM_WORLD);
660 <            }
533 >      eorStream = createOStream(eorFilename_);
534  
535 <            myPotato++;  
536 <
537 <          }
665 <
666 <          currentIndex++;    
667 <          
668 <        }
669 <      
670 <      }
671 <
672 <    sprintf( checkPointMsg,
673 <             "Sucessfully took a dump.\n");
674 <    MPIcheckPoint();                
675 <    
535 >      buffers.push_back(eorStream->rdbuf());
536 >        
537 > #ifdef IS_MPI
538      }
539 + #endif // is_mpi    
540  
541 +    TeeBuf tbuf(buffers.begin(), buffers.end());
542 +    std::ostream os(&tbuf);
543  
544 <  
680 < #endif // is_mpi
681 < }
544 >    writeFrame(os);
545  
546   #ifdef IS_MPI
547 +    if (worldRank == 0) {
548 + #endif // is_mpi
549 +      writeClosing(*eorStream);
550 +      delete eorStream;
551 + #ifdef IS_MPI
552 +    }
553 + #endif // is_mpi  
554 +    
555 +  }
556  
557 < // a couple of functions to let us escape the write loop
557 >  std::ostream* DumpWriter::createOStream(const std::string& filename) {
558  
559 < void dWrite::DieDieDie( void ){
559 >    std::ostream* newOStream;
560 > #ifdef HAVE_LIBZ
561 >    if (needCompression_) {
562 >      newOStream = new ogzstream(filename.c_str());
563 >    } else {
564 >      newOStream = new std::ofstream(filename.c_str());
565 >    }
566 > #else
567 >    newOStream = new std::ofstream(filename.c_str());
568 > #endif
569 >    //write out MetaData first
570 >    (*newOStream) << "<OpenMD version=1>" << std::endl;
571 >    (*newOStream) << "  <MetaData>" << std::endl;
572 >    (*newOStream) << info_->getRawMetaData();
573 >    (*newOStream) << "  </MetaData>" << std::endl;
574 >    return newOStream;
575 >  }
576  
577 <  MPI_Finalize();
690 <  exit (0);
691 < }
577 >  void DumpWriter::writeClosing(std::ostream& os) {
578  
579 < #endif //is_mpi
579 >    os << "</OpenMD>\n";
580 >    os.flush();
581 >  }
582 >
583 > }//end namespace OpenMD

Comparing:
trunk/src/io/DumpWriter.cpp (property svn:keywords), Revision 2 by gezelter, Fri Sep 24 04:16:43 2004 UTC vs.
branches/development/src/io/DumpWriter.cpp (property svn:keywords), Revision 1712 by gezelter, Sat May 19 13:30:21 2012 UTC

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