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trunk/src/io/DumpWriter.cpp (file contents), Revision 963 by tim, Wed May 17 21:51:42 2006 UTC vs.
branches/development/src/io/DumpWriter.cpp (file contents), Revision 1711 by gezelter, Sat May 19 02:58:35 2012 UTC

# Line 1 | Line 1
1   /*
2 < * Copyright (c) 2005 The University of Notre Dame. All Rights Reserved.
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. Acknowledgement of the program authors must be made in any
10 < *    publication of scientific results based in part on use of the
11 < *    program.  An acceptable form of acknowledgement is citation of
12 < *    the article in which the program was described (Matthew
13 < *    A. Meineke, Charles F. Vardeman II, Teng Lin, Christopher
14 < *    J. Fennell and J. Daniel Gezelter, "OOPSE: An Object-Oriented
15 < *    Parallel Simulation Engine for Molecular Dynamics,"
16 < *    J. Comput. Chem. 26, pp. 252-271 (2005))
17 < *
18 < * 2. Redistributions of source code must retain the above copyright
9 > * 1. Redistributions of source code must retain the above copyright
10   *    notice, this list of conditions and the following disclaimer.
11   *
12 < * 3. Redistributions in binary form must reproduce the above copyright
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.
# Line 37 | Line 28
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"
# Line 46 | Line 47
47   #include "io/gzstream.hpp"
48   #include "io/Globals.hpp"
49  
50 +
51   #ifdef IS_MPI
52   #include <mpi.h>
53   #endif //is_mpi
54  
55 < namespace oopse {
55 > using namespace std;
56 > namespace OpenMD {
57  
58    DumpWriter::DumpWriter(SimInfo* info)
59      : info_(info), filename_(info->getDumpFileName()), eorFilename_(info->getFinalConfigFileName()){
# Line 58 | Line 61 | namespace oopse {
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";
69 >      filename_ += ".gz";
70 >      eorFilename_ += ".gz";
71      }
72   #endif
73      
74   #ifdef IS_MPI
75  
76 <      if (worldRank == 0) {
76 >    if (worldRank == 0) {
77   #endif // is_mpi
73
78          
79 <        dumpFile_ = createOStream(filename_);
79 >      dumpFile_ = createOStream(filename_);
80  
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 <        }
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   #ifdef IS_MPI
89  
90 <      }
90 >    }
91  
88      sprintf(checkPointMsg, "Sucessfully opened output file for dumping.\n");
89      MPIcheckPoint();
90
92   #endif // is_mpi
93  
94 <    }
94 >  }
95  
96  
97    DumpWriter::DumpWriter(SimInfo* info, const std::string& filename)
# Line 104 | Line 105 | namespace oopse {
105      createDumpFile_ = true;
106   #ifdef HAVE_LIBZ
107      if (needCompression_) {
108 <        filename_ += ".gz";
109 <        eorFilename_ += ".gz";
108 >      filename_ += ".gz";
109 >      eorFilename_ += ".gz";
110      }
111   #endif
112      
113   #ifdef IS_MPI
114  
115 <      if (worldRank == 0) {
115 >    if (worldRank == 0) {
116   #endif // is_mpi
117  
118        
119 <        dumpFile_ = createOStream(filename_);
119 >      dumpFile_ = createOStream(filename_);
120  
121 <        if (!dumpFile_) {
122 <          sprintf(painCave.errMsg, "Could not open \"%s\" for dump output.\n",
123 <                  filename_.c_str());
124 <          painCave.isFatal = 1;
125 <          simError();
126 <        }
121 >      if (!dumpFile_) {
122 >        sprintf(painCave.errMsg, "Could not open \"%s\" for dump output.\n",
123 >                filename_.c_str());
124 >        painCave.isFatal = 1;
125 >        simError();
126 >      }
127  
128   #ifdef IS_MPI
129  
130 <      }
130 >    }
131  
131      sprintf(checkPointMsg, "Sucessfully opened output file for dumping.\n");
132      MPIcheckPoint();
133
132   #endif // is_mpi
133  
134 <    }
134 >  }
135    
136    DumpWriter::DumpWriter(SimInfo* info, const std::string& filename, bool writeDumpFile)
137 <  : info_(info), filename_(filename){
137 >    : info_(info), filename_(filename){
138      
139      Globals* simParams = info->getSimParams();
140      eorFilename_ = filename_.substr(0, filename_.rfind(".")) + ".eor";    
141      
142      needCompression_ = simParams->getCompressDumpFile();
143      needForceVector_ = simParams->getOutputForceVector();
144 +    needParticlePot_ = simParams->getOutputParticlePotential();
145      
146   #ifdef HAVE_LIBZ
147      if (needCompression_) {
# Line 170 | Line 169 | namespace oopse {
169   #ifdef IS_MPI
170        
171      }
172 +
173      
174    sprintf(checkPointMsg, "Sucessfully opened output file for dumping.\n");
175    MPIcheckPoint();
176    
174   #endif // is_mpi
175      
176    }
180  
181  
182  
183  
184  
177  
178    DumpWriter::~DumpWriter() {
179  
# Line 190 | Line 182 | namespace oopse {
182      if (worldRank == 0) {
183   #endif // is_mpi
184        if (createDumpFile_){
185 +        writeClosing(*dumpFile_);
186          delete dumpFile_;
187        }
188   #ifdef IS_MPI
# Line 200 | Line 193 | namespace oopse {
193  
194    }
195  
196 <  void DumpWriter::writeCommentLine(std::ostream& os, Snapshot* s) {
196 >  void DumpWriter::writeFrameProperties(std::ostream& os, Snapshot* s) {
197  
198 <    RealType currentTime;
206 <    Mat3x3d hmat;
207 <    RealType chi;
208 <    RealType integralOfChiDt;
209 <    Mat3x3d eta;
210 <    
211 <    currentTime = s->getTime();
212 <    hmat = s->getHmat();
213 <    chi = s->getChi();
214 <    integralOfChiDt = s->getIntegralOfChiDt();
215 <    eta = s->getEta();
216 <    
217 <    os << currentTime << ";\t"
218 <       << hmat(0, 0) << "\t" << hmat(1, 0) << "\t" << hmat(2, 0) << ";\t"
219 <       << hmat(0, 1) << "\t" << hmat(1, 1) << "\t" << hmat(2, 1) << ";\t"
220 <       << hmat(0, 2) << "\t" << hmat(1, 2) << "\t" << hmat(2, 2) << ";\t";
198 >    char buffer[1024];
199  
200 <    //write out additional parameters, such as chi and eta
200 >    os << "    <FrameData>\n";
201  
202 <    os << chi << "\t" << integralOfChiDt << ";\t";
202 >    RealType currentTime = s->getTime();
203  
204 <    os << eta(0, 0) << "\t" << eta(1, 0) << "\t" << eta(2, 0) << ";\t"
205 <       << eta(0, 1) << "\t" << eta(1, 1) << "\t" << eta(2, 1) << ";\t"
206 <       << eta(0, 2) << "\t" << eta(1, 2) << "\t" << eta(2, 2) << ";";
207 <        
208 <    os << "\n";
204 >    if (isinf(currentTime) || isnan(currentTime)) {      
205 >      sprintf( painCave.errMsg,
206 >               "DumpWriter detected a numerical error writing the time");      
207 >      painCave.isFatal = 1;
208 >      simError();
209 >    }
210 >    
211 >    sprintf(buffer, "        Time: %.10g\n", currentTime);
212 >    os << buffer;
213 >
214 >    Mat3x3d hmat;
215 >    hmat = s->getHmat();
216 >
217 >    for (unsigned int i = 0; i < 3; i++) {
218 >      for (unsigned int j = 0; j < 3; j++) {
219 >        if (isinf(hmat(i,j)) || isnan(hmat(i,j))) {      
220 >          sprintf( painCave.errMsg,
221 >                   "DumpWriter detected a numerical error writing the box");
222 >          painCave.isFatal = 1;
223 >          simError();
224 >        }        
225 >      }
226 >    }
227 >    
228 >    sprintf(buffer, "        Hmat: {{ %.10g, %.10g, %.10g }, { %.10g, %.10g, %.10g }, { %.10g, %.10g, %.10g }}\n",
229 >            hmat(0, 0), hmat(1, 0), hmat(2, 0),
230 >            hmat(0, 1), hmat(1, 1), hmat(2, 1),
231 >            hmat(0, 2), hmat(1, 2), hmat(2, 2));
232 >    os << buffer;
233 >
234 >    RealType chi = s->getChi();
235 >    RealType integralOfChiDt = s->getIntegralOfChiDt();
236 >    if (isinf(chi) || isnan(chi) ||
237 >        isinf(integralOfChiDt) || isnan(integralOfChiDt)) {      
238 >      sprintf( painCave.errMsg,
239 >               "DumpWriter detected a numerical error writing the thermostat");
240 >      painCave.isFatal = 1;
241 >      simError();
242 >    }
243 >    sprintf(buffer, "  Thermostat: %.10g , %.10g\n", chi, integralOfChiDt);
244 >    os << buffer;
245 >
246 >    Mat3x3d eta;
247 >    eta = s->getEta();
248 >
249 >    for (unsigned int i = 0; i < 3; i++) {
250 >      for (unsigned int j = 0; j < 3; j++) {
251 >        if (isinf(eta(i,j)) || isnan(eta(i,j))) {      
252 >          sprintf( painCave.errMsg,
253 >                   "DumpWriter detected a numerical error writing the barostat");
254 >          painCave.isFatal = 1;
255 >          simError();
256 >        }        
257 >      }
258 >    }
259 >
260 >    sprintf(buffer, "    Barostat: {{ %.10g, %.10g, %.10g }, { %.10g, %.10g, %.10g }, { %.10g, %.10g, %.10g }}\n",
261 >            eta(0, 0), eta(1, 0), eta(2, 0),
262 >            eta(0, 1), eta(1, 1), eta(2, 1),
263 >            eta(0, 2), eta(1, 2), eta(2, 2));
264 >    os << buffer;
265 >
266 >    os << "    </FrameData>\n";
267    }
268  
269    void DumpWriter::writeFrame(std::ostream& os) {
234    const int BUFFERSIZE = 2000;
235    const int MINIBUFFERSIZE = 100;
270  
271 <    char tempBuffer[BUFFERSIZE];
272 <    char writeLine[BUFFERSIZE];
271 > #ifdef IS_MPI
272 >    MPI_Status istatus;
273 > #endif
274  
240    Quat4d q;
241    Vector3d ji;
242    Vector3d pos;
243    Vector3d vel;
244    Vector3d frc;
245    Vector3d trq;
246
275      Molecule* mol;
276      StuntDouble* integrableObject;
277      SimInfo::MoleculeIterator mi;
278      Molecule::IntegrableObjectIterator ii;
251  
252    int nTotObjects;    
253    nTotObjects = info_->getNGlobalIntegrableObjects();
279  
280   #ifndef IS_MPI
281 +    os << "  <Snapshot>\n";
282 +
283 +    writeFrameProperties(os, info_->getSnapshotManager()->getCurrentSnapshot());
284  
285 +    os << "    <StuntDoubles>\n";
286 +    for (mol = info_->beginMolecule(mi); mol != NULL; mol = info_->nextMolecule(mi)) {
287  
288 <    os << nTotObjects << "\n";
289 <        
290 <    writeCommentLine(os, info_->getSnapshotManager()->getCurrentSnapshot());
288 >      
289 >      for (integrableObject = mol->beginIntegrableObject(ii); integrableObject != NULL;  
290 >           integrableObject = mol->nextIntegrableObject(ii)) {  
291 >          os << prepareDumpLine(integrableObject);
292 >          
293 >      }
294 >    }    
295 >    os << "    </StuntDoubles>\n";
296 >    
297 >    os << "  </Snapshot>\n";
298  
299 +    os.flush();
300 + #else
301 +    //every node prepares the dump lines for integrable objects belong to itself
302 +    std::string buffer;
303      for (mol = info_->beginMolecule(mi); mol != NULL; mol = info_->nextMolecule(mi)) {
304  
264      for (integrableObject = mol->beginIntegrableObject(ii); integrableObject != NULL;
265           integrableObject = mol->nextIntegrableObject(ii)) {
266                
305  
306 <        pos = integrableObject->getPos();
307 <        vel = integrableObject->getVel();
308 <
309 <        sprintf(tempBuffer, "%s\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t",
310 <                integrableObject->getType().c_str(),
311 <                pos[0], pos[1], pos[2],
312 <                vel[0], vel[1], vel[2]);
313 <
314 <        strcpy(writeLine, tempBuffer);
315 <
316 <        if (integrableObject->isDirectional()) {
317 <          q = integrableObject->getQ();
318 <          ji = integrableObject->getJ();
306 >      for (integrableObject = mol->beginIntegrableObject(ii); integrableObject != NULL;
307 >           integrableObject = mol->nextIntegrableObject(ii)) {  
308 >          buffer += prepareDumpLine(integrableObject);
309 >      }
310 >    }
311 >    
312 >    const int masterNode = 0;
313 >    int nProc;
314 >    MPI_Comm_size(MPI_COMM_WORLD, &nProc);
315 >    if (worldRank == masterNode) {      
316 >      os << "  <Snapshot>\n";  
317 >      writeFrameProperties(os, info_->getSnapshotManager()->getCurrentSnapshot());
318 >      os << "    <StuntDoubles>\n";
319 >        
320 >      os << buffer;
321  
322 <          sprintf(tempBuffer, "%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf",
283 <                  q[0], q[1], q[2], q[3],
284 <                  ji[0], ji[1], ji[2]);
285 <          strcat(writeLine, tempBuffer);
286 <        } else {
287 <          strcat(writeLine, "0.0\t0.0\t0.0\t0.0\t0.0\t0.0\t0.0");
288 <        }
322 >      for (int i = 1; i < nProc; ++i) {
323  
324 <        if (needForceVector_) {
325 <          frc = integrableObject->getFrc();
292 <          trq = integrableObject->getTrq();
293 <          
294 <          sprintf(tempBuffer, "\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf",
295 <                  frc[0], frc[1], frc[2],
296 <                  trq[0], trq[1], trq[2]);
297 <          strcat(writeLine, tempBuffer);
298 <        }
299 <        
300 <        strcat(writeLine, "\n");
301 <        os << writeLine;
324 >        // receive the length of the string buffer that was
325 >        // prepared by processor i
326  
327 +        MPI_Bcast(&i, 1, MPI_INT,masterNode,MPI_COMM_WORLD);
328 +        int recvLength;
329 +        MPI_Recv(&recvLength, 1, MPI_INT, i, 0, MPI_COMM_WORLD, &istatus);
330 +        char* recvBuffer = new char[recvLength];
331 +        if (recvBuffer == NULL) {
332 +        } else {
333 +          MPI_Recv(recvBuffer, recvLength, MPI_CHAR, i, 0, MPI_COMM_WORLD, &istatus);
334 +          os << recvBuffer;
335 +          delete [] recvBuffer;
336 +        }
337 +      }
338 +      os << "    </StuntDoubles>\n";
339 +      
340 +      os << "  </Snapshot>\n";
341 +      os.flush();
342 +    } else {
343 +      int sendBufferLength = buffer.size() + 1;
344 +      int myturn = 0;
345 +      for (int i = 1; i < nProc; ++i){
346 +        MPI_Bcast(&myturn,1, MPI_INT,masterNode,MPI_COMM_WORLD);
347 +        if (myturn == worldRank){
348 +          MPI_Send(&sendBufferLength, 1, MPI_INT, masterNode, 0, MPI_COMM_WORLD);
349 +          MPI_Send((void *)buffer.c_str(), sendBufferLength, MPI_CHAR, masterNode, 0, MPI_COMM_WORLD);
350 +        }
351        }
352      }
353  
354 <    os.flush();
307 < #else // is_mpi
308 <    /*********************************************************************
309 <     * Documentation?  You want DOCUMENTATION?
310 <     *
311 <     * Why all the potatoes below?  
312 <     *
313 <     * To make a long story short, the original version of DumpWriter
314 <     * worked in the most inefficient way possible.  Node 0 would
315 <     * poke each of the node for an individual atom's formatted data
316 <     * as node 0 worked its way down the global index. This was particularly
317 <     * inefficient since the method blocked all processors at every atom
318 <     * (and did it twice!).
319 <     *
320 <     * An intermediate version of DumpWriter could be described from Node
321 <     * zero's perspective as follows:
322 <     *
323 <     *  1) Have 100 of your friends stand in a circle.
324 <     *  2) When you say go, have all of them start tossing potatoes at
325 <     *     you (one at a time).
326 <     *  3) Catch the potatoes.
327 <     *
328 <     * It was an improvement, but MPI has buffers and caches that could
329 <     * best be described in this analogy as "potato nets", so there's no
330 <     * need to block the processors atom-by-atom.
331 <     *
332 <     * This new and improved DumpWriter works in an even more efficient
333 <     * way:
334 <     *
335 <     *  1) Have 100 of your friend stand in a circle.
336 <     *  2) When you say go, have them start tossing 5-pound bags of
337 <     *     potatoes at you.
338 <     *  3) Once you've caught a friend's bag of potatoes,
339 <     *     toss them a spud to let them know they can toss another bag.
340 <     *
341 <     * How's THAT for documentation?
342 <     *
343 <     *********************************************************************/
344 <    const int masterNode = 0;
354 > #endif // is_mpi
355  
356 <    int * potatoes;
347 <    int myPotato;
348 <    int nProc;
349 <    int which_node;
350 <    RealType atomData[19];
351 <    int isDirectional;
352 <    char MPIatomTypeString[MINIBUFFERSIZE];
353 <    int msgLen; // the length of message actually recieved at master nodes
354 <    int haveError;
355 <    MPI_Status istatus;
356 <    int nCurObj;
357 <    
358 <    // code to find maximum tag value
359 <    int * tagub;
360 <    int flag;
361 <    int MAXTAG;
362 <    MPI_Attr_get(MPI_COMM_WORLD, MPI_TAG_UB, &tagub, &flag);
356 >  }
357  
358 <    if (flag) {
359 <      MAXTAG = *tagub;
360 <    } else {
361 <      MAXTAG = 32767;
358 >  std::string DumpWriter::prepareDumpLine(StuntDouble* integrableObject) {
359 >        
360 >    int index = integrableObject->getGlobalIntegrableObjectIndex();
361 >    std::string type("pv");
362 >    std::string line;
363 >    char tempBuffer[4096];
364 >
365 >    Vector3d pos;
366 >    Vector3d vel;
367 >    pos = integrableObject->getPos();
368 >
369 >    if (isinf(pos[0]) || isnan(pos[0]) ||
370 >        isinf(pos[1]) || isnan(pos[1]) ||
371 >        isinf(pos[2]) || isnan(pos[2]) ) {      
372 >      sprintf( painCave.errMsg,
373 >               "DumpWriter detected a numerical error writing the position"
374 >               " for object %d", index);      
375 >      painCave.isFatal = 1;
376 >      simError();
377      }
378  
379 <    if (worldRank == masterNode) { //master node (node 0) is responsible for writing the dump file
379 >    vel = integrableObject->getVel();          
380  
381 <      // Node 0 needs a list of the magic potatoes for each processor;
381 >    if (isinf(vel[0]) || isnan(vel[0]) ||
382 >        isinf(vel[1]) || isnan(vel[1]) ||
383 >        isinf(vel[2]) || isnan(vel[2]) ) {      
384 >      sprintf( painCave.errMsg,
385 >               "DumpWriter detected a numerical error writing the velocity"
386 >               " for object %d", index);      
387 >      painCave.isFatal = 1;
388 >      simError();
389 >    }
390  
391 <      MPI_Comm_size(MPI_COMM_WORLD, &nProc);
392 <      potatoes = new int[nProc];
391 >    sprintf(tempBuffer, "%18.10g %18.10g %18.10g %13e %13e %13e",
392 >            pos[0], pos[1], pos[2],
393 >            vel[0], vel[1], vel[2]);                    
394 >    line += tempBuffer;
395  
396 <      //write out the comment lines
397 <      for(int i = 0; i < nProc; i++) {
398 <        potatoes[i] = 0;
396 >    if (integrableObject->isDirectional()) {
397 >      type += "qj";
398 >      Quat4d q;
399 >      Vector3d ji;
400 >      q = integrableObject->getQ();
401 >
402 >      if (isinf(q[0]) || isnan(q[0]) ||
403 >          isinf(q[1]) || isnan(q[1]) ||
404 >          isinf(q[2]) || isnan(q[2]) ||
405 >          isinf(q[3]) || isnan(q[3]) ) {      
406 >        sprintf( painCave.errMsg,
407 >                 "DumpWriter detected a numerical error writing the quaternion"
408 >                 " for object %d", index);      
409 >        painCave.isFatal = 1;
410 >        simError();
411        }
412  
413 +      ji = integrableObject->getJ();
414  
415 <      os << nTotObjects << "\n";
416 <      writeCommentLine(os, info_->getSnapshotManager()->getCurrentSnapshot());
415 >      if (isinf(ji[0]) || isnan(ji[0]) ||
416 >          isinf(ji[1]) || isnan(ji[1]) ||
417 >          isinf(ji[2]) || isnan(ji[2]) ) {      
418 >        sprintf( painCave.errMsg,
419 >                 "DumpWriter detected a numerical error writing the angular"
420 >                 " momentum for object %d", index);      
421 >        painCave.isFatal = 1;
422 >        simError();
423 >      }
424  
425 <      for(int i = 0; i < info_->getNGlobalMolecules(); i++) {
425 >      sprintf(tempBuffer, " %13e %13e %13e %13e %13e %13e %13e",
426 >              q[0], q[1], q[2], q[3],
427 >              ji[0], ji[1], ji[2]);
428 >      line += tempBuffer;
429 >    }
430  
431 <        // Get the Node number which has this atom;
431 >    if (needForceVector_) {
432 >      type += "f";
433 >      Vector3d frc;
434  
435 <        which_node = info_->getMolToProc(i);
435 >      frc = integrableObject->getFrc();
436  
437 <        if (which_node != masterNode) { //current molecule is in slave node
438 <          if (potatoes[which_node] + 1 >= MAXTAG) {
439 <            // The potato was going to exceed the maximum value,
440 <            // so wrap this processor potato back to 0:        
437 >      if (isinf(frc[0]) || isnan(frc[0]) ||
438 >          isinf(frc[1]) || isnan(frc[1]) ||
439 >          isinf(frc[2]) || isnan(frc[2]) ) {      
440 >        sprintf( painCave.errMsg,
441 >                 "DumpWriter detected a numerical error writing the force"
442 >                 " for object %d", index);      
443 >        painCave.isFatal = 1;
444 >        simError();
445 >      }
446 >      sprintf(tempBuffer, " %13e %13e %13e",
447 >              frc[0], frc[1], frc[2]);
448 >      line += tempBuffer;
449 >      
450 >      if (integrableObject->isDirectional()) {
451 >        type += "t";
452 >        Vector3d trq;
453 >        
454 >        trq = integrableObject->getTrq();
455 >        
456 >        if (isinf(trq[0]) || isnan(trq[0]) ||
457 >            isinf(trq[1]) || isnan(trq[1]) ||
458 >            isinf(trq[2]) || isnan(trq[2]) ) {      
459 >          sprintf( painCave.errMsg,
460 >                   "DumpWriter detected a numerical error writing the torque"
461 >                   " for object %d", index);      
462 >          painCave.isFatal = 1;
463 >          simError();
464 >        }
465 >        
466 >        sprintf(tempBuffer, " %13e %13e %13e",
467 >                trq[0], trq[1], trq[2]);
468 >        line += tempBuffer;
469 >      }      
470 >    }
471 >    if (needParticlePot_) {
472 >      type += "u";
473 >      RealType particlePot;
474  
475 <            potatoes[which_node] = 0;
398 <            MPI_Send(&potatoes[which_node], 1, MPI_INT, which_node, 0,
399 <                     MPI_COMM_WORLD);
400 <          }
475 >      particlePot = integrableObject->getParticlePot();
476  
477 <          myPotato = potatoes[which_node];
478 <
479 <          //recieve the number of integrableObject in current molecule
480 <          MPI_Recv(&nCurObj, 1, MPI_INT, which_node, myPotato,
481 <                   MPI_COMM_WORLD, &istatus);
482 <          myPotato++;
408 <
409 <          for(int l = 0; l < nCurObj; l++) {
410 <            if (potatoes[which_node] + 2 >= MAXTAG) {
411 <              // The potato was going to exceed the maximum value,
412 <              // so wrap this processor potato back to 0:        
413 <
414 <              potatoes[which_node] = 0;
415 <              MPI_Send(&potatoes[which_node], 1, MPI_INT, which_node,
416 <                       0, MPI_COMM_WORLD);
417 <            }
418 <
419 <            MPI_Recv(MPIatomTypeString, MINIBUFFERSIZE, MPI_CHAR,
420 <                     which_node, myPotato, MPI_COMM_WORLD,
421 <                     &istatus);
422 <
423 <            myPotato++;
424 <
425 <            MPI_Recv(atomData, 19, MPI_REALTYPE, which_node, myPotato,
426 <                     MPI_COMM_WORLD, &istatus);
427 <            myPotato++;
428 <
429 <            MPI_Get_count(&istatus, MPI_REALTYPE, &msgLen);
430 <
431 <            if (msgLen == 13 || msgLen == 19)
432 <              isDirectional = 1;
433 <            else
434 <              isDirectional = 0;
435 <
436 <            // If we've survived to here, format the line:
437 <
438 <            if (!isDirectional) {
439 <              sprintf(writeLine, "%s\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t",
440 <                      MPIatomTypeString, atomData[0],
441 <                      atomData[1], atomData[2],
442 <                      atomData[3], atomData[4],
443 <                      atomData[5]);
444 <
445 <              strcat(writeLine,
446 <                     "0.0\t0.0\t0.0\t0.0\t0.0\t0.0\t0.0");
447 <            } else {
448 <              sprintf(writeLine,
449 <                      "%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",
450 <                      MPIatomTypeString,
451 <                      atomData[0],
452 <                      atomData[1],
453 <                      atomData[2],
454 <                      atomData[3],
455 <                      atomData[4],
456 <                      atomData[5],
457 <                      atomData[6],
458 <                      atomData[7],
459 <                      atomData[8],
460 <                      atomData[9],
461 <                      atomData[10],
462 <                      atomData[11],
463 <                      atomData[12]);
464 <            }
465 <            
466 <            if (needForceVector_) {
467 <              if (!isDirectional) {
468 <                sprintf(writeLine, "\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf",
469 <                        atomData[6],
470 <                        atomData[7],
471 <                        atomData[8],
472 <                        atomData[9],
473 <                        atomData[10],
474 <                        atomData[11]);
475 <              } else {
476 <                sprintf(writeLine, "\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf",
477 <                        atomData[13],
478 <                        atomData[14],
479 <                        atomData[15],
480 <                        atomData[16],
481 <                        atomData[17],
482 <                        atomData[18]);
483 <              }
484 <            }
485 <
486 <            sprintf(writeLine, "\n");
487 <            os << writeLine;
488 <
489 <          } // end for(int l =0)
490 <
491 <          potatoes[which_node] = myPotato;
492 <        } else { //master node has current molecule
493 <
494 <          mol = info_->getMoleculeByGlobalIndex(i);
495 <
496 <          if (mol == NULL) {
497 <            sprintf(painCave.errMsg, "Molecule not found on node %d!", worldRank);
498 <            painCave.isFatal = 1;
499 <            simError();
500 <          }
501 <                
502 <          for (integrableObject = mol->beginIntegrableObject(ii); integrableObject != NULL;
503 <               integrableObject = mol->nextIntegrableObject(ii)) {      
504 <
505 <            pos = integrableObject->getPos();
506 <            vel = integrableObject->getVel();
507 <
508 <            atomData[0] = pos[0];
509 <            atomData[1] = pos[1];
510 <            atomData[2] = pos[2];
511 <
512 <            atomData[3] = vel[0];
513 <            atomData[4] = vel[1];
514 <            atomData[5] = vel[2];
515 <
516 <            isDirectional = 0;
517 <
518 <            if (integrableObject->isDirectional()) {
519 <              isDirectional = 1;
520 <
521 <              q = integrableObject->getQ();
522 <              ji = integrableObject->getJ();
523 <
524 <              for(int j = 0; j < 6; j++) {
525 <                atomData[j] = atomData[j];
526 <              }
527 <
528 <              atomData[6] = q[0];
529 <              atomData[7] = q[1];
530 <              atomData[8] = q[2];
531 <              atomData[9] = q[3];
532 <
533 <              atomData[10] = ji[0];
534 <              atomData[11] = ji[1];
535 <              atomData[12] = ji[2];
536 <            }
537 <
538 <            if (needForceVector_) {
539 <              frc = integrableObject->getFrc();
540 <              trq = integrableObject->getTrq();
541 <
542 <              if (!isDirectional) {
543 <                atomData[6] = frc[0];
544 <                atomData[7] = frc[1];
545 <                atomData[8] = frc[2];
546 <                atomData[9] = trq[0];
547 <                atomData[10] = trq[1];
548 <                atomData[11] = trq[2];
549 <              } else {
550 <                atomData[13] = frc[0];
551 <                atomData[14] = frc[1];
552 <                atomData[15] = frc[2];
553 <                atomData[16] = trq[0];
554 <                atomData[17] = trq[1];
555 <                atomData[18] = trq[2];
556 <              }
557 <            }
558 <
559 <            // If we've survived to here, format the line:
560 <
561 <            if (!isDirectional) {
562 <              sprintf(writeLine, "%s\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t",
563 <                      integrableObject->getType().c_str(), atomData[0],
564 <                      atomData[1], atomData[2],
565 <                      atomData[3], atomData[4],
566 <                      atomData[5]);
567 <
568 <              strcat(writeLine,
569 <                     "0.0\t0.0\t0.0\t0.0\t0.0\t0.0\t0.0");
570 <            } else {
571 <              sprintf(writeLine,
572 <                      "%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",
573 <                      integrableObject->getType().c_str(),
574 <                      atomData[0],
575 <                      atomData[1],
576 <                      atomData[2],
577 <                      atomData[3],
578 <                      atomData[4],
579 <                      atomData[5],
580 <                      atomData[6],
581 <                      atomData[7],
582 <                      atomData[8],
583 <                      atomData[9],
584 <                      atomData[10],
585 <                      atomData[11],
586 <                      atomData[12]);
587 <            }
588 <
589 <            if (needForceVector_) {
590 <              if (!isDirectional) {
591 <              sprintf(writeLine, "\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf",
592 <                      atomData[6],
593 <                      atomData[7],
594 <                      atomData[8],
595 <                      atomData[9],
596 <                      atomData[10],
597 <                      atomData[11]);
598 <              } else {
599 <                sprintf(writeLine, "\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf",
600 <                        atomData[13],
601 <                        atomData[14],
602 <                        atomData[15],
603 <                        atomData[16],
604 <                        atomData[17],
605 <                        atomData[18]);
606 <              }
607 <            }
608 <
609 <            sprintf(writeLine, "\n");
610 <            os << writeLine;
611 <
612 <          } //end for(iter = integrableObject.begin())
613 <        }
614 <      } //end for(i = 0; i < mpiSim->getNmol())
615 <
616 <      os.flush();
617 <        
618 <      sprintf(checkPointMsg, "Sucessfully took a dump.\n");
619 <      MPIcheckPoint();
620 <
621 <      delete [] potatoes;
622 <    } else {
623 <
624 <      // worldRank != 0, so I'm a remote node.  
625 <
626 <      // Set my magic potato to 0:
627 <
628 <      myPotato = 0;
629 <
630 <      for(int i = 0; i < info_->getNGlobalMolecules(); i++) {
631 <
632 <        // Am I the node which has this integrableObject?
633 <        int whichNode = info_->getMolToProc(i);
634 <        if (whichNode == worldRank) {
635 <          if (myPotato + 1 >= MAXTAG) {
636 <
637 <            // The potato was going to exceed the maximum value,
638 <            // so wrap this processor potato back to 0 (and block until
639 <            // node 0 says we can go:
640 <
641 <            MPI_Recv(&myPotato, 1, MPI_INT, 0, 0, MPI_COMM_WORLD,
642 <                     &istatus);
643 <          }
644 <
645 <          mol = info_->getMoleculeByGlobalIndex(i);
646 <
647 <                
648 <          nCurObj = mol->getNIntegrableObjects();
649 <
650 <          MPI_Send(&nCurObj, 1, MPI_INT, 0, myPotato, MPI_COMM_WORLD);
651 <          myPotato++;
652 <
653 <          for (integrableObject = mol->beginIntegrableObject(ii); integrableObject != NULL;
654 <               integrableObject = mol->nextIntegrableObject(ii)) {
655 <
656 <            if (myPotato + 2 >= MAXTAG) {
657 <
658 <              // The potato was going to exceed the maximum value,
659 <              // so wrap this processor potato back to 0 (and block until
660 <              // node 0 says we can go:
661 <
662 <              MPI_Recv(&myPotato, 1, MPI_INT, 0, 0, MPI_COMM_WORLD,
663 <                       &istatus);
664 <            }
665 <
666 <            pos = integrableObject->getPos();
667 <            vel = integrableObject->getVel();
668 <
669 <            atomData[0] = pos[0];
670 <            atomData[1] = pos[1];
671 <            atomData[2] = pos[2];
672 <
673 <            atomData[3] = vel[0];
674 <            atomData[4] = vel[1];
675 <            atomData[5] = vel[2];
676 <
677 <            isDirectional = 0;
678 <
679 <            if (integrableObject->isDirectional()) {
680 <              isDirectional = 1;
681 <
682 <              q = integrableObject->getQ();
683 <              ji = integrableObject->getJ();
684 <
685 <              atomData[6] = q[0];
686 <              atomData[7] = q[1];
687 <              atomData[8] = q[2];
688 <              atomData[9] = q[3];
689 <
690 <              atomData[10] = ji[0];
691 <              atomData[11] = ji[1];
692 <              atomData[12] = ji[2];
693 <            }
694 <
695 <            if (needForceVector_) {
696 <              frc = integrableObject->getFrc();
697 <              trq = integrableObject->getTrq();
698 <              
699 <              if (!isDirectional) {
700 <                atomData[6] = frc[0];
701 <                atomData[7] = frc[1];
702 <                atomData[8] = frc[2];
703 <                
704 <                atomData[9] = trq[0];
705 <                atomData[10] = trq[1];
706 <                atomData[11] = trq[2];
707 <              } else {
708 <                atomData[13] = frc[0];
709 <                atomData[14] = frc[1];
710 <                atomData[15] = frc[2];
711 <                
712 <                atomData[16] = trq[0];
713 <                atomData[17] = trq[1];
714 <                atomData[18] = trq[2];
715 <              }
716 <            }
717 <
718 <            strncpy(MPIatomTypeString, integrableObject->getType().c_str(), MINIBUFFERSIZE);
719 <
720 <            // null terminate the  std::string before sending (just in case):
721 <            MPIatomTypeString[MINIBUFFERSIZE - 1] = '\0';
722 <
723 <            MPI_Send(MPIatomTypeString, MINIBUFFERSIZE, MPI_CHAR, 0,
724 <                     myPotato, MPI_COMM_WORLD);
725 <
726 <            myPotato++;
727 <
728 <            if (isDirectional && needForceVector_) {
729 <              MPI_Send(atomData, 19, MPI_REALTYPE, 0, myPotato,
730 <                       MPI_COMM_WORLD);
731 <            } else if (isDirectional) {
732 <              MPI_Send(atomData, 13, MPI_REALTYPE, 0, myPotato,
733 <                       MPI_COMM_WORLD);
734 <            } else if (needForceVector_) {
735 <              MPI_Send(atomData, 12, MPI_REALTYPE, 0, myPotato,
736 <                       MPI_COMM_WORLD);
737 <            } else {
738 <              MPI_Send(atomData, 6, MPI_REALTYPE, 0, myPotato,
739 <                       MPI_COMM_WORLD);
740 <            }
741 <
742 <            myPotato++;
743 <          }
744 <                    
745 <        }
746 <            
477 >      if (isinf(particlePot) || isnan(particlePot)) {      
478 >        sprintf( painCave.errMsg,
479 >                 "DumpWriter detected a numerical error writing the particle "
480 >                 " potential for object %d", index);      
481 >        painCave.isFatal = 1;
482 >        simError();
483        }
484 <      sprintf(checkPointMsg, "Sucessfully took a dump.\n");
485 <      MPIcheckPoint();
484 >      sprintf(tempBuffer, " %13e", particlePot);
485 >      line += tempBuffer;
486      }
487 <
488 < #endif // is_mpi
489 <
487 >    
488 >    sprintf(tempBuffer, "%10d %7s %s\n", index, type.c_str(), line.c_str());
489 >    return std::string(tempBuffer);
490    }
491  
492    void DumpWriter::writeDump() {
# Line 775 | Line 511 | namespace oopse {
511   #ifdef IS_MPI
512      if (worldRank == 0) {
513   #endif // is_mpi
514 <    delete eorStream;
515 <
514 >      writeClosing(*eorStream);
515 >      delete eorStream;
516   #ifdef IS_MPI
517      }
518   #endif // is_mpi  
# Line 809 | Line 545 | namespace oopse {
545   #ifdef IS_MPI
546      if (worldRank == 0) {
547   #endif // is_mpi
548 <    delete eorStream;
549 <
548 >      writeClosing(*eorStream);
549 >      delete eorStream;
550   #ifdef IS_MPI
551      }
552   #endif // is_mpi  
553      
554    }
555  
556 < std::ostream* DumpWriter::createOStream(const std::string& filename) {
556 >  std::ostream* DumpWriter::createOStream(const std::string& filename) {
557  
558      std::ostream* newOStream;
559   #ifdef HAVE_LIBZ
560      if (needCompression_) {
561 <        newOStream = new ogzstream(filename.c_str());
561 >      newOStream = new ogzstream(filename.c_str());
562      } else {
563 <        newOStream = new std::ofstream(filename.c_str());
563 >      newOStream = new std::ofstream(filename.c_str());
564      }
565   #else
566      newOStream = new std::ofstream(filename.c_str());
567   #endif
568 +    //write out MetaData first
569 +    (*newOStream) << "<OpenMD version=1>" << std::endl;
570 +    (*newOStream) << "  <MetaData>" << std::endl;
571 +    (*newOStream) << info_->getRawMetaData();
572 +    (*newOStream) << "  </MetaData>" << std::endl;
573      return newOStream;
574 < }
574 >  }
575  
576 < }//end namespace oopse
576 >  void DumpWriter::writeClosing(std::ostream& os) {
577 >
578 >    os << "</OpenMD>\n";
579 >    os.flush();
580 >  }
581 >
582 > }//end namespace OpenMD

Comparing:
trunk/src/io/DumpWriter.cpp (property svn:keywords), Revision 963 by tim, Wed May 17 21:51:42 2006 UTC vs.
branches/development/src/io/DumpWriter.cpp (property svn:keywords), Revision 1711 by gezelter, Sat May 19 02:58:35 2012 UTC

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