| 1 | /* | 
| 2 | * Copyright (c) 2005 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 | 
| 19 | *    notice, this list of conditions and the following disclaimer. | 
| 20 | * | 
| 21 | * 3. Redistributions in binary form must reproduce the above copyright | 
| 22 | *    notice, this list of conditions and the following disclaimer in the | 
| 23 | *    documentation and/or other materials provided with the | 
| 24 | *    distribution. | 
| 25 | * | 
| 26 | * This software is provided "AS IS," without a warranty of any | 
| 27 | * kind. All express or implied conditions, representations and | 
| 28 | * warranties, including any implied warranty of merchantability, | 
| 29 | * fitness for a particular purpose or non-infringement, are hereby | 
| 30 | * excluded.  The University of Notre Dame and its licensors shall not | 
| 31 | * be liable for any damages suffered by licensee as a result of | 
| 32 | * using, modifying or distributing the software or its | 
| 33 | * derivatives. In no event will the University of Notre Dame or its | 
| 34 | * licensors be liable for any lost revenue, profit or data, or for | 
| 35 | * direct, indirect, special, consequential, incidental or punitive | 
| 36 | * damages, however caused and regardless of the theory of liability, | 
| 37 | * arising out of the use of or inability to use software, even if the | 
| 38 | * University of Notre Dame has been advised of the possibility of | 
| 39 | * such damages. | 
| 40 | */ | 
| 41 |  | 
| 42 | #include "io/DumpWriter.hpp" | 
| 43 | #include "primitives/Molecule.hpp" | 
| 44 | #include "utils/simError.h" | 
| 45 |  | 
| 46 | #ifdef IS_MPI | 
| 47 | #include <mpi.h> | 
| 48 | #endif //is_mpi | 
| 49 |  | 
| 50 | namespace oopse { | 
| 51 |  | 
| 52 | DumpWriter::DumpWriter(SimInfo* info, const std::string& filename) | 
| 53 | : info_(info), filename_(filename){ | 
| 54 | #ifdef IS_MPI | 
| 55 |  | 
| 56 | if (worldRank == 0) { | 
| 57 | #endif // is_mpi | 
| 58 |  | 
| 59 | dumpFile_.open(filename_.c_str(), std::ios::out | std::ios::trunc); | 
| 60 |  | 
| 61 | if (!dumpFile_) { | 
| 62 | sprintf(painCave.errMsg, "Could not open \"%s\" for dump output.\n", | 
| 63 | filename_.c_str()); | 
| 64 | painCave.isFatal = 1; | 
| 65 | simError(); | 
| 66 | } | 
| 67 |  | 
| 68 | #ifdef IS_MPI | 
| 69 |  | 
| 70 | } | 
| 71 |  | 
| 72 | sprintf(checkPointMsg, "Sucessfully opened output file for dumping.\n"); | 
| 73 | MPIcheckPoint(); | 
| 74 |  | 
| 75 | #endif // is_mpi | 
| 76 |  | 
| 77 | } | 
| 78 |  | 
| 79 | DumpWriter::~DumpWriter() { | 
| 80 |  | 
| 81 | #ifdef IS_MPI | 
| 82 |  | 
| 83 | if (worldRank == 0) { | 
| 84 | #endif // is_mpi | 
| 85 |  | 
| 86 | dumpFile_.close(); | 
| 87 |  | 
| 88 | #ifdef IS_MPI | 
| 89 |  | 
| 90 | } | 
| 91 |  | 
| 92 | #endif // is_mpi | 
| 93 |  | 
| 94 | } | 
| 95 |  | 
| 96 | void DumpWriter::writeCommentLine(std::ostream& os, Snapshot* s) { | 
| 97 |  | 
| 98 | double currentTime; | 
| 99 | Mat3x3d hmat; | 
| 100 | double chi; | 
| 101 | double integralOfChiDt; | 
| 102 | Mat3x3d eta; | 
| 103 |  | 
| 104 | currentTime = s->getTime(); | 
| 105 | hmat = s->getHmat(); | 
| 106 | chi = s->getChi(); | 
| 107 | integralOfChiDt = s->getIntegralOfChiDt(); | 
| 108 | eta = s->getEta(); | 
| 109 |  | 
| 110 | os << currentTime << ";\t" | 
| 111 | << hmat(0, 0) << "\t" << hmat(1, 0) << "\t" << hmat(2, 0) << ";\t" | 
| 112 | << hmat(0, 1) << "\t" << hmat(1, 1) << "\t" << hmat(2, 1) << ";\t" | 
| 113 | << hmat(0, 2) << "\t" << hmat(1, 2) << "\t" << hmat(2, 2) << ";\t"; | 
| 114 |  | 
| 115 | //write out additional parameters, such as chi and eta | 
| 116 |  | 
| 117 | os << chi << "\t" << integralOfChiDt << "\t;"; | 
| 118 |  | 
| 119 | os << eta(0, 0) << "\t" << eta(1, 0) << "\t" << eta(2, 0) << ";\t" | 
| 120 | << eta(0, 1) << "\t" << eta(1, 1) << "\t" << eta(2, 1) << ";\t" | 
| 121 | << eta(0, 2) << "\t" << eta(1, 2) << "\t" << eta(2, 2) << ";"; | 
| 122 |  | 
| 123 | os << std::endl; | 
| 124 | } | 
| 125 |  | 
| 126 | void DumpWriter::writeFrame(std::ostream& os) { | 
| 127 | const int BUFFERSIZE = 2000; | 
| 128 | const int MINIBUFFERSIZE = 100; | 
| 129 |  | 
| 130 | char tempBuffer[BUFFERSIZE]; | 
| 131 | char writeLine[BUFFERSIZE]; | 
| 132 |  | 
| 133 | Quat4d q; | 
| 134 | Vector3d ji; | 
| 135 | Vector3d pos; | 
| 136 | Vector3d vel; | 
| 137 |  | 
| 138 | Molecule* mol; | 
| 139 | StuntDouble* integrableObject; | 
| 140 | SimInfo::MoleculeIterator mi; | 
| 141 | Molecule::IntegrableObjectIterator ii; | 
| 142 |  | 
| 143 | int nTotObjects; | 
| 144 | nTotObjects = info_->getNGlobalIntegrableObjects(); | 
| 145 |  | 
| 146 | #ifndef IS_MPI | 
| 147 |  | 
| 148 |  | 
| 149 | os << nTotObjects << "\n"; | 
| 150 |  | 
| 151 | writeCommentLine(os, info_->getSnapshotManager()->getCurrentSnapshot()); | 
| 152 |  | 
| 153 | for (mol = info_->beginMolecule(mi); mol != NULL; mol = info_->nextMolecule(mi)) { | 
| 154 |  | 
| 155 | for (integrableObject = mol->beginIntegrableObject(ii); integrableObject != NULL; | 
| 156 | integrableObject = mol->nextIntegrableObject(ii)) { | 
| 157 |  | 
| 158 |  | 
| 159 | pos = integrableObject->getPos(); | 
| 160 | vel = integrableObject->getVel(); | 
| 161 |  | 
| 162 | sprintf(tempBuffer, "%s\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t", | 
| 163 | integrableObject->getType().c_str(), | 
| 164 | pos[0], pos[1], pos[2], | 
| 165 | vel[0], vel[1], vel[2]); | 
| 166 |  | 
| 167 | strcpy(writeLine, tempBuffer); | 
| 168 |  | 
| 169 | if (integrableObject->isDirectional()) { | 
| 170 | q = integrableObject->getQ(); | 
| 171 | ji = integrableObject->getJ(); | 
| 172 |  | 
| 173 | sprintf(tempBuffer, "%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\n", | 
| 174 | q[0], q[1], q[2], q[3], | 
| 175 | ji[0], ji[1], ji[2]); | 
| 176 | strcat(writeLine, tempBuffer); | 
| 177 | } else { | 
| 178 | strcat(writeLine, "0.0\t0.0\t0.0\t0.0\t0.0\t0.0\t0.0\n"); | 
| 179 | } | 
| 180 |  | 
| 181 | os << writeLine; | 
| 182 |  | 
| 183 | } | 
| 184 | } | 
| 185 |  | 
| 186 | #else // is_mpi | 
| 187 | /********************************************************************* | 
| 188 | * Documentation?  You want DOCUMENTATION? | 
| 189 | * | 
| 190 | * Why all the potatoes below? | 
| 191 | * | 
| 192 | * To make a long story short, the original version of DumpWriter | 
| 193 | * worked in the most inefficient way possible.  Node 0 would | 
| 194 | * poke each of the node for an individual atom's formatted data | 
| 195 | * as node 0 worked its way down the global index. This was particularly | 
| 196 | * inefficient since the method blocked all processors at every atom | 
| 197 | * (and did it twice!). | 
| 198 | * | 
| 199 | * An intermediate version of DumpWriter could be described from Node | 
| 200 | * zero's perspective as follows: | 
| 201 | * | 
| 202 | *  1) Have 100 of your friends stand in a circle. | 
| 203 | *  2) When you say go, have all of them start tossing potatoes at | 
| 204 | *     you (one at a time). | 
| 205 | *  3) Catch the potatoes. | 
| 206 | * | 
| 207 | * It was an improvement, but MPI has buffers and caches that could | 
| 208 | * best be described in this analogy as "potato nets", so there's no | 
| 209 | * need to block the processors atom-by-atom. | 
| 210 | * | 
| 211 | * This new and improved DumpWriter works in an even more efficient | 
| 212 | * way: | 
| 213 | * | 
| 214 | *  1) Have 100 of your friend stand in a circle. | 
| 215 | *  2) When you say go, have them start tossing 5-pound bags of | 
| 216 | *     potatoes at you. | 
| 217 | *  3) Once you've caught a friend's bag of potatoes, | 
| 218 | *     toss them a spud to let them know they can toss another bag. | 
| 219 | * | 
| 220 | * How's THAT for documentation? | 
| 221 | * | 
| 222 | *********************************************************************/ | 
| 223 | const int masterNode = 0; | 
| 224 |  | 
| 225 | int * potatoes; | 
| 226 | int myPotato; | 
| 227 | int nProc; | 
| 228 | int which_node; | 
| 229 | double atomData[13]; | 
| 230 | int isDirectional; | 
| 231 | const char * atomTypeString; | 
| 232 | char MPIatomTypeString[MINIBUFFERSIZE]; | 
| 233 | int msgLen; // the length of message actually recieved at master nodes | 
| 234 | int haveError; | 
| 235 | MPI_Status istatus; | 
| 236 | int nCurObj; | 
| 237 |  | 
| 238 | // code to find maximum tag value | 
| 239 | int * tagub; | 
| 240 | int flag; | 
| 241 | int MAXTAG; | 
| 242 | MPI_Attr_get(MPI_COMM_WORLD, MPI_TAG_UB, &tagub, &flag); | 
| 243 |  | 
| 244 | if (flag) { | 
| 245 | MAXTAG = *tagub; | 
| 246 | } else { | 
| 247 | MAXTAG = 32767; | 
| 248 | } | 
| 249 |  | 
| 250 | if (worldRank == masterNode) { //master node (node 0) is responsible for writing the dump file | 
| 251 |  | 
| 252 | // Node 0 needs a list of the magic potatoes for each processor; | 
| 253 |  | 
| 254 | MPI_Comm_size(MPI_COMM_WORLD, &nProc); | 
| 255 | potatoes = new int[nProc]; | 
| 256 |  | 
| 257 | //write out the comment lines | 
| 258 | for(int i = 0; i < nProc; i++) { | 
| 259 | potatoes[i] = 0; | 
| 260 | } | 
| 261 |  | 
| 262 |  | 
| 263 | os << nTotObjects << "\n"; | 
| 264 | writeCommentLine(os, info_->getSnapshotManager()->getCurrentSnapshot()); | 
| 265 |  | 
| 266 | for(int i = 0; i < info_->getNGlobalMolecules(); i++) { | 
| 267 |  | 
| 268 | // Get the Node number which has this atom; | 
| 269 |  | 
| 270 | which_node = info_->getMolToProc(i); | 
| 271 |  | 
| 272 | if (which_node != masterNode) { //current molecule is in slave node | 
| 273 | if (potatoes[which_node] + 1 >= MAXTAG) { | 
| 274 | // The potato was going to exceed the maximum value, | 
| 275 | // so wrap this processor potato back to 0: | 
| 276 |  | 
| 277 | potatoes[which_node] = 0; | 
| 278 | MPI_Send(&potatoes[which_node], 1, MPI_INT, which_node, 0, | 
| 279 | MPI_COMM_WORLD); | 
| 280 | } | 
| 281 |  | 
| 282 | myPotato = potatoes[which_node]; | 
| 283 |  | 
| 284 | //recieve the number of integrableObject in current molecule | 
| 285 | MPI_Recv(&nCurObj, 1, MPI_INT, which_node, myPotato, | 
| 286 | MPI_COMM_WORLD, &istatus); | 
| 287 | myPotato++; | 
| 288 |  | 
| 289 | for(int l = 0; l < nCurObj; l++) { | 
| 290 | if (potatoes[which_node] + 2 >= MAXTAG) { | 
| 291 | // The potato was going to exceed the maximum value, | 
| 292 | // so wrap this processor potato back to 0: | 
| 293 |  | 
| 294 | potatoes[which_node] = 0; | 
| 295 | MPI_Send(&potatoes[which_node], 1, MPI_INT, which_node, | 
| 296 | 0, MPI_COMM_WORLD); | 
| 297 | } | 
| 298 |  | 
| 299 | MPI_Recv(MPIatomTypeString, MINIBUFFERSIZE, MPI_CHAR, | 
| 300 | which_node, myPotato, MPI_COMM_WORLD, | 
| 301 | &istatus); | 
| 302 |  | 
| 303 | atomTypeString = MPIatomTypeString; | 
| 304 |  | 
| 305 | myPotato++; | 
| 306 |  | 
| 307 | MPI_Recv(atomData, 13, MPI_DOUBLE, which_node, myPotato, | 
| 308 | MPI_COMM_WORLD, &istatus); | 
| 309 | myPotato++; | 
| 310 |  | 
| 311 | MPI_Get_count(&istatus, MPI_DOUBLE, &msgLen); | 
| 312 |  | 
| 313 | if (msgLen == 13) | 
| 314 | isDirectional = 1; | 
| 315 | else | 
| 316 | isDirectional = 0; | 
| 317 |  | 
| 318 | // If we've survived to here, format the line: | 
| 319 |  | 
| 320 | if (!isDirectional) { | 
| 321 | sprintf(writeLine, "%s\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t", | 
| 322 | atomTypeString, atomData[0], | 
| 323 | atomData[1], atomData[2], | 
| 324 | atomData[3], atomData[4], | 
| 325 | atomData[5]); | 
| 326 |  | 
| 327 | strcat(writeLine, | 
| 328 | "0.0\t0.0\t0.0\t0.0\t0.0\t0.0\t0.0\n"); | 
| 329 | } else { | 
| 330 | sprintf(writeLine, | 
| 331 | "%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", | 
| 332 | atomTypeString, | 
| 333 | atomData[0], | 
| 334 | atomData[1], | 
| 335 | atomData[2], | 
| 336 | atomData[3], | 
| 337 | atomData[4], | 
| 338 | atomData[5], | 
| 339 | atomData[6], | 
| 340 | atomData[7], | 
| 341 | atomData[8], | 
| 342 | atomData[9], | 
| 343 | atomData[10], | 
| 344 | atomData[11], | 
| 345 | atomData[12]); | 
| 346 | } | 
| 347 |  | 
| 348 | os << writeLine; | 
| 349 |  | 
| 350 | } // end for(int l =0) | 
| 351 |  | 
| 352 | potatoes[which_node] = myPotato; | 
| 353 | } else { //master node has current molecule | 
| 354 |  | 
| 355 | mol = info_->getMoleculeByGlobalIndex(i); | 
| 356 |  | 
| 357 | if (mol == NULL) { | 
| 358 | sprintf(painCave.errMsg, "Molecule not found on node %d!", worldRank); | 
| 359 | painCave.isFatal = 1; | 
| 360 | simError(); | 
| 361 | } | 
| 362 |  | 
| 363 | for (integrableObject = mol->beginIntegrableObject(ii); integrableObject != NULL; | 
| 364 | integrableObject = mol->nextIntegrableObject(ii)) { | 
| 365 |  | 
| 366 | atomTypeString = integrableObject->getType().c_str(); | 
| 367 |  | 
| 368 | pos = integrableObject->getPos(); | 
| 369 | vel = integrableObject->getVel(); | 
| 370 |  | 
| 371 | atomData[0] = pos[0]; | 
| 372 | atomData[1] = pos[1]; | 
| 373 | atomData[2] = pos[2]; | 
| 374 |  | 
| 375 | atomData[3] = vel[0]; | 
| 376 | atomData[4] = vel[1]; | 
| 377 | atomData[5] = vel[2]; | 
| 378 |  | 
| 379 | isDirectional = 0; | 
| 380 |  | 
| 381 | if (integrableObject->isDirectional()) { | 
| 382 | isDirectional = 1; | 
| 383 |  | 
| 384 | q = integrableObject->getQ(); | 
| 385 | ji = integrableObject->getJ(); | 
| 386 |  | 
| 387 | for(int j = 0; j < 6; j++) { | 
| 388 | atomData[j] = atomData[j]; | 
| 389 | } | 
| 390 |  | 
| 391 | atomData[6] = q[0]; | 
| 392 | atomData[7] = q[1]; | 
| 393 | atomData[8] = q[2]; | 
| 394 | atomData[9] = q[3]; | 
| 395 |  | 
| 396 | atomData[10] = ji[0]; | 
| 397 | atomData[11] = ji[1]; | 
| 398 | atomData[12] = ji[2]; | 
| 399 | } | 
| 400 |  | 
| 401 | // If we've survived to here, format the line: | 
| 402 |  | 
| 403 | if (!isDirectional) { | 
| 404 | sprintf(writeLine, "%s\t%lf\t%lf\t%lf\t%lf\t%lf\t%lf\t", | 
| 405 | atomTypeString, atomData[0], | 
| 406 | atomData[1], atomData[2], | 
| 407 | atomData[3], atomData[4], | 
| 408 | atomData[5]); | 
| 409 |  | 
| 410 | strcat(writeLine, | 
| 411 | "0.0\t0.0\t0.0\t0.0\t0.0\t0.0\t0.0\n"); | 
| 412 | } else { | 
| 413 | sprintf(writeLine, | 
| 414 | "%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", | 
| 415 | atomTypeString, | 
| 416 | atomData[0], | 
| 417 | atomData[1], | 
| 418 | atomData[2], | 
| 419 | atomData[3], | 
| 420 | atomData[4], | 
| 421 | atomData[5], | 
| 422 | atomData[6], | 
| 423 | atomData[7], | 
| 424 | atomData[8], | 
| 425 | atomData[9], | 
| 426 | atomData[10], | 
| 427 | atomData[11], | 
| 428 | atomData[12]); | 
| 429 | } | 
| 430 |  | 
| 431 |  | 
| 432 | os << writeLine; | 
| 433 |  | 
| 434 | } //end for(iter = integrableObject.begin()) | 
| 435 | } | 
| 436 | } //end for(i = 0; i < mpiSim->getNmol()) | 
| 437 |  | 
| 438 | os.flush(); | 
| 439 |  | 
| 440 | sprintf(checkPointMsg, "Sucessfully took a dump.\n"); | 
| 441 | MPIcheckPoint(); | 
| 442 |  | 
| 443 | delete [] potatoes; | 
| 444 | } else { | 
| 445 |  | 
| 446 | // worldRank != 0, so I'm a remote node. | 
| 447 |  | 
| 448 | // Set my magic potato to 0: | 
| 449 |  | 
| 450 | myPotato = 0; | 
| 451 |  | 
| 452 | for(int i = 0; i < info_->getNGlobalMolecules(); i++) { | 
| 453 |  | 
| 454 | // Am I the node which has this integrableObject? | 
| 455 | int whichNode = info_->getMolToProc(i); | 
| 456 | if (whichNode == worldRank) { | 
| 457 | if (myPotato + 1 >= MAXTAG) { | 
| 458 |  | 
| 459 | // The potato was going to exceed the maximum value, | 
| 460 | // so wrap this processor potato back to 0 (and block until | 
| 461 | // node 0 says we can go: | 
| 462 |  | 
| 463 | MPI_Recv(&myPotato, 1, MPI_INT, 0, 0, MPI_COMM_WORLD, | 
| 464 | &istatus); | 
| 465 | } | 
| 466 |  | 
| 467 | mol = info_->getMoleculeByGlobalIndex(i); | 
| 468 |  | 
| 469 |  | 
| 470 | nCurObj = mol->getNIntegrableObjects(); | 
| 471 |  | 
| 472 | MPI_Send(&nCurObj, 1, MPI_INT, 0, myPotato, MPI_COMM_WORLD); | 
| 473 | myPotato++; | 
| 474 |  | 
| 475 | for (integrableObject = mol->beginIntegrableObject(ii); integrableObject != NULL; | 
| 476 | integrableObject = mol->nextIntegrableObject(ii)) { | 
| 477 |  | 
| 478 | if (myPotato + 2 >= MAXTAG) { | 
| 479 |  | 
| 480 | // The potato was going to exceed the maximum value, | 
| 481 | // so wrap this processor potato back to 0 (and block until | 
| 482 | // node 0 says we can go: | 
| 483 |  | 
| 484 | MPI_Recv(&myPotato, 1, MPI_INT, 0, 0, MPI_COMM_WORLD, | 
| 485 | &istatus); | 
| 486 | } | 
| 487 |  | 
| 488 | atomTypeString = integrableObject->getType().c_str(); | 
| 489 |  | 
| 490 | pos = integrableObject->getPos(); | 
| 491 | vel = integrableObject->getVel(); | 
| 492 |  | 
| 493 | atomData[0] = pos[0]; | 
| 494 | atomData[1] = pos[1]; | 
| 495 | atomData[2] = pos[2]; | 
| 496 |  | 
| 497 | atomData[3] = vel[0]; | 
| 498 | atomData[4] = vel[1]; | 
| 499 | atomData[5] = vel[2]; | 
| 500 |  | 
| 501 | isDirectional = 0; | 
| 502 |  | 
| 503 | if (integrableObject->isDirectional()) { | 
| 504 | isDirectional = 1; | 
| 505 |  | 
| 506 | q = integrableObject->getQ(); | 
| 507 | ji = integrableObject->getJ(); | 
| 508 |  | 
| 509 | atomData[6] = q[0]; | 
| 510 | atomData[7] = q[1]; | 
| 511 | atomData[8] = q[2]; | 
| 512 | atomData[9] = q[3]; | 
| 513 |  | 
| 514 | atomData[10] = ji[0]; | 
| 515 | atomData[11] = ji[1]; | 
| 516 | atomData[12] = ji[2]; | 
| 517 | } | 
| 518 |  | 
| 519 | strncpy(MPIatomTypeString, atomTypeString, MINIBUFFERSIZE); | 
| 520 |  | 
| 521 | // null terminate the  std::string before sending (just in case): | 
| 522 | 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) { | 
| 530 | MPI_Send(atomData, 13, MPI_DOUBLE, 0, myPotato, | 
| 531 | MPI_COMM_WORLD); | 
| 532 | } else { | 
| 533 | MPI_Send(atomData, 6, MPI_DOUBLE, 0, myPotato, | 
| 534 | MPI_COMM_WORLD); | 
| 535 | } | 
| 536 |  | 
| 537 | myPotato++; | 
| 538 | } | 
| 539 |  | 
| 540 | } | 
| 541 |  | 
| 542 | } | 
| 543 | sprintf(checkPointMsg, "Sucessfully took a dump.\n"); | 
| 544 | MPIcheckPoint(); | 
| 545 | } | 
| 546 |  | 
| 547 | #endif // is_mpi | 
| 548 |  | 
| 549 | } | 
| 550 |  | 
| 551 | }//end namespace oopse |