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/* |
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* Copyright (c) 2005 The University of Notre Dame. All Rights Reserved. |
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* |
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* The University of Notre Dame grants you ("Licensee") a |
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* non-exclusive, royalty free, license to use, modify and |
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* redistribute this software in source and binary code form, provided |
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* that the following conditions are met: |
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* |
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* 1. Redistributions of source code must retain the above copyright |
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* notice, this list of conditions and the following disclaimer. |
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* |
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* 2. Redistributions in binary form must reproduce the above copyright |
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* notice, this list of conditions and the following disclaimer in the |
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* documentation and/or other materials provided with the |
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* distribution. |
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* |
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* This software is provided "AS IS," without a warranty of any |
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* kind. All express or implied conditions, representations and |
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* warranties, including any implied warranty of merchantability, |
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* fitness for a particular purpose or non-infringement, are hereby |
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* excluded. The University of Notre Dame and its licensors shall not |
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* be liable for any damages suffered by licensee as a result of |
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* using, modifying or distributing the software or its |
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* derivatives. In no event will the University of Notre Dame or its |
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* licensors be liable for any lost revenue, profit or data, or for |
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* direct, indirect, special, consequential, incidental or punitive |
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* damages, however caused and regardless of the theory of liability, |
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* arising out of the use of or inability to use software, even if the |
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* University of Notre Dame has been advised of the possibility of |
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* such damages. |
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* |
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* SUPPORT OPEN SCIENCE! If you use OpenMD or its source code in your |
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* research, please cite the appropriate papers when you publish your |
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* work. Good starting points are: |
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* |
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* [1] Meineke, et al., J. Comp. Chem. 26, 252-271 (2005). |
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* [2] Fennell & Gezelter, J. Chem. Phys. 124, 234104 (2006). |
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* [3] Sun, Lin & Gezelter, J. Chem. Phys. 128, 24107 (2008). |
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* [4] Vardeman & Gezelter, in progress (2009). |
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*/ |
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|
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/** |
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* @file SimCreator.cpp |
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* @author tlin |
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* @date 11/03/2004 |
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* @time 13:51am |
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* @version 1.0 |
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*/ |
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#include <exception> |
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#include <iostream> |
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#include <sstream> |
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#include <string> |
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|
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#include "brains/MoleculeCreator.hpp" |
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#include "brains/SimCreator.hpp" |
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#include "brains/SimSnapshotManager.hpp" |
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#include "io/DumpReader.hpp" |
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#include "UseTheForce/ForceFieldFactory.hpp" |
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#include "utils/simError.h" |
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#include "utils/StringUtils.hpp" |
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#include "math/SeqRandNumGen.hpp" |
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#include "mdParser/MDLexer.hpp" |
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#include "mdParser/MDParser.hpp" |
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#include "mdParser/MDTreeParser.hpp" |
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#include "mdParser/SimplePreprocessor.hpp" |
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#include "antlr/ANTLRException.hpp" |
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#include "antlr/TokenStreamRecognitionException.hpp" |
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#include "antlr/TokenStreamIOException.hpp" |
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#include "antlr/TokenStreamException.hpp" |
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#include "antlr/RecognitionException.hpp" |
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#include "antlr/CharStreamException.hpp" |
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|
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#include "antlr/MismatchedCharException.hpp" |
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#include "antlr/MismatchedTokenException.hpp" |
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#include "antlr/NoViableAltForCharException.hpp" |
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#include "antlr/NoViableAltException.hpp" |
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|
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#ifdef IS_MPI |
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#include "math/ParallelRandNumGen.hpp" |
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#endif |
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|
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namespace OpenMD { |
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|
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Globals* SimCreator::parseFile(std::istream& rawMetaDataStream, const std::string& filename, int startOfMetaDataBlock ){ |
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Globals* simParams = NULL; |
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try { |
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|
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// Create a preprocessor that preprocesses md file into an ostringstream |
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std::stringstream ppStream; |
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#ifdef IS_MPI |
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int streamSize; |
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const int masterNode = 0; |
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int commStatus; |
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if (worldRank == masterNode) { |
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#endif |
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|
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SimplePreprocessor preprocessor; |
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preprocessor.preprocess(rawMetaDataStream, filename, startOfMetaDataBlock, ppStream); |
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|
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#ifdef IS_MPI |
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//brocasting the stream size |
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streamSize = ppStream.str().size() +1; |
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commStatus = MPI_Bcast(&streamSize, 1, MPI_LONG, masterNode, MPI_COMM_WORLD); |
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|
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commStatus = MPI_Bcast(static_cast<void*>(const_cast<char*>(ppStream.str().c_str())), streamSize, MPI_CHAR, masterNode, MPI_COMM_WORLD); |
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|
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|
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} else { |
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//get stream size |
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commStatus = MPI_Bcast(&streamSize, 1, MPI_LONG, masterNode, MPI_COMM_WORLD); |
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|
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char* buf = new char[streamSize]; |
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assert(buf); |
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|
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//receive file content |
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commStatus = MPI_Bcast(buf, streamSize, MPI_CHAR, masterNode, MPI_COMM_WORLD); |
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|
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ppStream.str(buf); |
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delete [] buf; |
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|
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} |
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#endif |
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// Create a scanner that reads from the input stream |
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MDLexer lexer(ppStream); |
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lexer.setFilename(filename); |
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lexer.initDeferredLineCount(); |
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|
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// Create a parser that reads from the scanner |
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MDParser parser(lexer); |
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parser.setFilename(filename); |
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|
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// Create an observer that synchorizes file name change |
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FilenameObserver observer; |
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observer.setLexer(&lexer); |
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observer.setParser(&parser); |
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lexer.setObserver(&observer); |
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|
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antlr::ASTFactory factory; |
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parser.initializeASTFactory(factory); |
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parser.setASTFactory(&factory); |
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parser.mdfile(); |
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|
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// Create a tree parser that reads information into Globals |
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MDTreeParser treeParser; |
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treeParser.initializeASTFactory(factory); |
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treeParser.setASTFactory(&factory); |
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simParams = treeParser.walkTree(parser.getAST()); |
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} |
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|
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|
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catch(antlr::MismatchedCharException& e) { |
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sprintf(painCave.errMsg, |
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"parser exception: %s %s:%d:%d\n", |
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e.getMessage().c_str(),e.getFilename().c_str(), e.getLine(), e.getColumn()); |
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painCave.isFatal = 1; |
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simError(); |
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} |
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catch(antlr::MismatchedTokenException &e) { |
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sprintf(painCave.errMsg, |
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"parser exception: %s %s:%d:%d\n", |
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e.getMessage().c_str(),e.getFilename().c_str(), e.getLine(), e.getColumn()); |
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painCave.isFatal = 1; |
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simError(); |
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} |
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catch(antlr::NoViableAltForCharException &e) { |
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sprintf(painCave.errMsg, |
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"parser exception: %s %s:%d:%d\n", |
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e.getMessage().c_str(),e.getFilename().c_str(), e.getLine(), e.getColumn()); |
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painCave.isFatal = 1; |
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simError(); |
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} |
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catch(antlr::NoViableAltException &e) { |
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sprintf(painCave.errMsg, |
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"parser exception: %s %s:%d:%d\n", |
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e.getMessage().c_str(),e.getFilename().c_str(), e.getLine(), e.getColumn()); |
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painCave.isFatal = 1; |
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simError(); |
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} |
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|
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catch(antlr::TokenStreamRecognitionException& e) { |
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sprintf(painCave.errMsg, |
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"parser exception: %s %s:%d:%d\n", |
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e.getMessage().c_str(),e.getFilename().c_str(), e.getLine(), e.getColumn()); |
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painCave.isFatal = 1; |
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simError(); |
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} |
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|
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catch(antlr::TokenStreamIOException& e) { |
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sprintf(painCave.errMsg, |
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"parser exception: %s\n", |
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e.getMessage().c_str()); |
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painCave.isFatal = 1; |
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simError(); |
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} |
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|
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catch(antlr::TokenStreamException& e) { |
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sprintf(painCave.errMsg, |
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"parser exception: %s\n", |
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e.getMessage().c_str()); |
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painCave.isFatal = 1; |
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simError(); |
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} |
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catch (antlr::RecognitionException& e) { |
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sprintf(painCave.errMsg, |
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"parser exception: %s %s:%d:%d\n", |
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e.getMessage().c_str(),e.getFilename().c_str(), e.getLine(), e.getColumn()); |
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painCave.isFatal = 1; |
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simError(); |
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} |
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catch (antlr::CharStreamException& e) { |
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sprintf(painCave.errMsg, |
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"parser exception: %s\n", |
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e.getMessage().c_str()); |
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painCave.isFatal = 1; |
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simError(); |
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} |
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catch (OpenMDException& e) { |
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sprintf(painCave.errMsg, |
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"%s\n", |
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e.getMessage().c_str()); |
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painCave.isFatal = 1; |
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simError(); |
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} |
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catch (std::exception& e) { |
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sprintf(painCave.errMsg, |
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"parser exception: %s\n", |
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e.what()); |
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painCave.isFatal = 1; |
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simError(); |
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} |
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|
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return simParams; |
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} |
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|
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SimInfo* SimCreator::createSim(const std::string & mdFileName, |
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bool loadInitCoords) { |
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|
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const int bufferSize = 65535; |
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char buffer[bufferSize]; |
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int lineNo = 0; |
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std::string mdRawData; |
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int metaDataBlockStart = -1; |
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int metaDataBlockEnd = -1; |
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int i; |
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int mdOffset; |
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|
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#ifdef IS_MPI |
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const int masterNode = 0; |
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if (worldRank == masterNode) { |
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#endif |
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|
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std::ifstream mdFile_(mdFileName.c_str()); |
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|
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if (mdFile_.fail()) { |
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sprintf(painCave.errMsg, |
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"SimCreator: Cannot open file: %s\n", |
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mdFileName.c_str()); |
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painCave.isFatal = 1; |
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simError(); |
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} |
261 |
|
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mdFile_.getline(buffer, bufferSize); |
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++lineNo; |
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std::string line = trimLeftCopy(buffer); |
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i = CaseInsensitiveFind(line, "<OpenMD"); |
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if (static_cast<size_t>(i) == string::npos) { |
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// try the older file strings to see if that works: |
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i = CaseInsensitiveFind(line, "<OOPSE"); |
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} |
270 |
|
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if (static_cast<size_t>(i) == string::npos) { |
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// still no luck! |
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sprintf(painCave.errMsg, |
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"SimCreator: File: %s is not a valid OpenMD file!\n", |
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mdFileName.c_str()); |
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painCave.isFatal = 1; |
277 |
simError(); |
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} |
279 |
|
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//scan through the input stream and find MetaData tag |
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while(mdFile_.getline(buffer, bufferSize)) { |
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++lineNo; |
283 |
|
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std::string line = trimLeftCopy(buffer); |
285 |
if (metaDataBlockStart == -1) { |
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i = CaseInsensitiveFind(line, "<MetaData>"); |
287 |
if (i != string::npos) { |
288 |
metaDataBlockStart = lineNo; |
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mdOffset = mdFile_.tellg(); |
290 |
} |
291 |
} else { |
292 |
i = CaseInsensitiveFind(line, "</MetaData>"); |
293 |
if (i != string::npos) { |
294 |
metaDataBlockEnd = lineNo; |
295 |
} |
296 |
} |
297 |
} |
298 |
|
299 |
if (metaDataBlockStart == -1) { |
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sprintf(painCave.errMsg, |
301 |
"SimCreator: File: %s did not contain a <MetaData> tag!\n", |
302 |
mdFileName.c_str()); |
303 |
painCave.isFatal = 1; |
304 |
simError(); |
305 |
} |
306 |
if (metaDataBlockEnd == -1) { |
307 |
sprintf(painCave.errMsg, |
308 |
"SimCreator: File: %s did not contain a closed MetaData block!\n", |
309 |
mdFileName.c_str()); |
310 |
painCave.isFatal = 1; |
311 |
simError(); |
312 |
} |
313 |
|
314 |
mdFile_.clear(); |
315 |
mdFile_.seekg(0); |
316 |
mdFile_.seekg(mdOffset); |
317 |
|
318 |
mdRawData.clear(); |
319 |
|
320 |
for (int i = 0; i < metaDataBlockEnd - metaDataBlockStart - 1; ++i) { |
321 |
mdFile_.getline(buffer, bufferSize); |
322 |
mdRawData += buffer; |
323 |
mdRawData += "\n"; |
324 |
} |
325 |
|
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mdFile_.close(); |
327 |
|
328 |
#ifdef IS_MPI |
329 |
} |
330 |
#endif |
331 |
|
332 |
std::stringstream rawMetaDataStream(mdRawData); |
333 |
|
334 |
//parse meta-data file |
335 |
Globals* simParams = parseFile(rawMetaDataStream, mdFileName, metaDataBlockStart+1); |
336 |
|
337 |
//create the force field |
338 |
ForceField * ff = ForceFieldFactory::getInstance()->createForceField(simParams->getForceField()); |
339 |
|
340 |
if (ff == NULL) { |
341 |
sprintf(painCave.errMsg, |
342 |
"ForceField Factory can not create %s force field\n", |
343 |
simParams->getForceField().c_str()); |
344 |
painCave.isFatal = 1; |
345 |
simError(); |
346 |
} |
347 |
|
348 |
if (simParams->haveForceFieldFileName()) { |
349 |
ff->setForceFieldFileName(simParams->getForceFieldFileName()); |
350 |
} |
351 |
|
352 |
std::string forcefieldFileName; |
353 |
forcefieldFileName = ff->getForceFieldFileName(); |
354 |
|
355 |
if (simParams->haveForceFieldVariant()) { |
356 |
//If the force field has variant, the variant force field name will be |
357 |
//Base.variant.frc. For exampel EAM.u6.frc |
358 |
|
359 |
std::string variant = simParams->getForceFieldVariant(); |
360 |
|
361 |
std::string::size_type pos = forcefieldFileName.rfind(".frc"); |
362 |
variant = "." + variant; |
363 |
if (pos != std::string::npos) { |
364 |
forcefieldFileName.insert(pos, variant); |
365 |
} else { |
366 |
//If the default force field file name does not containt .frc suffix, just append the .variant |
367 |
forcefieldFileName.append(variant); |
368 |
} |
369 |
} |
370 |
|
371 |
ff->parse(forcefieldFileName); |
372 |
//create SimInfo |
373 |
SimInfo * info = new SimInfo(ff, simParams); |
374 |
|
375 |
info->setRawMetaData(mdRawData); |
376 |
|
377 |
//gather parameters (SimCreator only retrieves part of the |
378 |
//parameters) |
379 |
gatherParameters(info, mdFileName); |
380 |
|
381 |
//divide the molecules and determine the global index of molecules |
382 |
#ifdef IS_MPI |
383 |
divideMolecules(info); |
384 |
#endif |
385 |
|
386 |
//create the molecules |
387 |
createMolecules(info); |
388 |
|
389 |
//allocate memory for DataStorage(circular reference, need to |
390 |
//break it) |
391 |
info->setSnapshotManager(new SimSnapshotManager(info)); |
392 |
|
393 |
//set the global index of atoms, rigidbodies and cutoffgroups |
394 |
//(only need to be set once, the global index will never change |
395 |
//again). Local indices of atoms and rigidbodies are already set |
396 |
//by MoleculeCreator class which actually delegates the |
397 |
//responsibility to LocalIndexManager. |
398 |
setGlobalIndex(info); |
399 |
|
400 |
//Although addInteractionPairs is called inside SimInfo's addMolecule |
401 |
//method, at that point atoms don't have the global index yet |
402 |
//(their global index are all initialized to -1). Therefore we |
403 |
//have to call addInteractionPairs explicitly here. A way to work |
404 |
//around is that we can determine the beginning global indices of |
405 |
//atoms before they get created. |
406 |
SimInfo::MoleculeIterator mi; |
407 |
Molecule* mol; |
408 |
for (mol= info->beginMolecule(mi); mol != NULL; mol = info->nextMolecule(mi)) { |
409 |
info->addInteractionPairs(mol); |
410 |
} |
411 |
|
412 |
if (loadInitCoords) |
413 |
loadCoordinates(info, mdFileName); |
414 |
return info; |
415 |
} |
416 |
|
417 |
void SimCreator::gatherParameters(SimInfo *info, const std::string& mdfile) { |
418 |
|
419 |
//figure out the output file names |
420 |
std::string prefix; |
421 |
|
422 |
#ifdef IS_MPI |
423 |
|
424 |
if (worldRank == 0) { |
425 |
#endif // is_mpi |
426 |
Globals * simParams = info->getSimParams(); |
427 |
if (simParams->haveFinalConfig()) { |
428 |
prefix = getPrefix(simParams->getFinalConfig()); |
429 |
} else { |
430 |
prefix = getPrefix(mdfile); |
431 |
} |
432 |
|
433 |
info->setFinalConfigFileName(prefix + ".eor"); |
434 |
info->setDumpFileName(prefix + ".dump"); |
435 |
info->setStatFileName(prefix + ".stat"); |
436 |
info->setRestFileName(prefix + ".zang"); |
437 |
|
438 |
#ifdef IS_MPI |
439 |
|
440 |
} |
441 |
|
442 |
#endif |
443 |
|
444 |
} |
445 |
|
446 |
#ifdef IS_MPI |
447 |
void SimCreator::divideMolecules(SimInfo *info) { |
448 |
RealType numerator; |
449 |
RealType denominator; |
450 |
RealType precast; |
451 |
RealType x; |
452 |
RealType y; |
453 |
RealType a; |
454 |
int old_atoms; |
455 |
int add_atoms; |
456 |
int new_atoms; |
457 |
int nTarget; |
458 |
int done; |
459 |
int i; |
460 |
int j; |
461 |
int loops; |
462 |
int which_proc; |
463 |
int nProcessors; |
464 |
std::vector<int> atomsPerProc; |
465 |
int nGlobalMols = info->getNGlobalMolecules(); |
466 |
std::vector<int> molToProcMap(nGlobalMols, -1); // default to an error condition: |
467 |
|
468 |
MPI_Comm_size(MPI_COMM_WORLD, &nProcessors); |
469 |
|
470 |
if (nProcessors > nGlobalMols) { |
471 |
sprintf(painCave.errMsg, |
472 |
"nProcessors (%d) > nMol (%d)\n" |
473 |
"\tThe number of processors is larger than\n" |
474 |
"\tthe number of molecules. This will not result in a \n" |
475 |
"\tusable division of atoms for force decomposition.\n" |
476 |
"\tEither try a smaller number of processors, or run the\n" |
477 |
"\tsingle-processor version of OpenMD.\n", nProcessors, nGlobalMols); |
478 |
|
479 |
painCave.isFatal = 1; |
480 |
simError(); |
481 |
} |
482 |
|
483 |
int seedValue; |
484 |
Globals * simParams = info->getSimParams(); |
485 |
SeqRandNumGen* myRandom; //divide labor does not need Parallel random number generator |
486 |
if (simParams->haveSeed()) { |
487 |
seedValue = simParams->getSeed(); |
488 |
myRandom = new SeqRandNumGen(seedValue); |
489 |
}else { |
490 |
myRandom = new SeqRandNumGen(); |
491 |
} |
492 |
|
493 |
|
494 |
a = 3.0 * nGlobalMols / info->getNGlobalAtoms(); |
495 |
|
496 |
//initialize atomsPerProc |
497 |
atomsPerProc.insert(atomsPerProc.end(), nProcessors, 0); |
498 |
|
499 |
if (worldRank == 0) { |
500 |
numerator = info->getNGlobalAtoms(); |
501 |
denominator = nProcessors; |
502 |
precast = numerator / denominator; |
503 |
nTarget = (int)(precast + 0.5); |
504 |
|
505 |
for(i = 0; i < nGlobalMols; i++) { |
506 |
done = 0; |
507 |
loops = 0; |
508 |
|
509 |
while (!done) { |
510 |
loops++; |
511 |
|
512 |
// Pick a processor at random |
513 |
|
514 |
which_proc = (int) (myRandom->rand() * nProcessors); |
515 |
|
516 |
//get the molecule stamp first |
517 |
int stampId = info->getMoleculeStampId(i); |
518 |
MoleculeStamp * moleculeStamp = info->getMoleculeStamp(stampId); |
519 |
|
520 |
// How many atoms does this processor have so far? |
521 |
old_atoms = atomsPerProc[which_proc]; |
522 |
add_atoms = moleculeStamp->getNAtoms(); |
523 |
new_atoms = old_atoms + add_atoms; |
524 |
|
525 |
// If we've been through this loop too many times, we need |
526 |
// to just give up and assign the molecule to this processor |
527 |
// and be done with it. |
528 |
|
529 |
if (loops > 100) { |
530 |
sprintf(painCave.errMsg, |
531 |
"I've tried 100 times to assign molecule %d to a " |
532 |
" processor, but can't find a good spot.\n" |
533 |
"I'm assigning it at random to processor %d.\n", |
534 |
i, which_proc); |
535 |
|
536 |
painCave.isFatal = 0; |
537 |
simError(); |
538 |
|
539 |
molToProcMap[i] = which_proc; |
540 |
atomsPerProc[which_proc] += add_atoms; |
541 |
|
542 |
done = 1; |
543 |
continue; |
544 |
} |
545 |
|
546 |
// If we can add this molecule to this processor without sending |
547 |
// it above nTarget, then go ahead and do it: |
548 |
|
549 |
if (new_atoms <= nTarget) { |
550 |
molToProcMap[i] = which_proc; |
551 |
atomsPerProc[which_proc] += add_atoms; |
552 |
|
553 |
done = 1; |
554 |
continue; |
555 |
} |
556 |
|
557 |
// The only situation left is when new_atoms > nTarget. We |
558 |
// want to accept this with some probability that dies off the |
559 |
// farther we are from nTarget |
560 |
|
561 |
// roughly: x = new_atoms - nTarget |
562 |
// Pacc(x) = exp(- a * x) |
563 |
// where a = penalty / (average atoms per molecule) |
564 |
|
565 |
x = (RealType)(new_atoms - nTarget); |
566 |
y = myRandom->rand(); |
567 |
|
568 |
if (y < exp(- a * x)) { |
569 |
molToProcMap[i] = which_proc; |
570 |
atomsPerProc[which_proc] += add_atoms; |
571 |
|
572 |
done = 1; |
573 |
continue; |
574 |
} else { |
575 |
continue; |
576 |
} |
577 |
} |
578 |
} |
579 |
|
580 |
delete myRandom; |
581 |
|
582 |
// Spray out this nonsense to all other processors: |
583 |
|
584 |
MPI_Bcast(&molToProcMap[0], nGlobalMols, MPI_INT, 0, MPI_COMM_WORLD); |
585 |
} else { |
586 |
|
587 |
// Listen to your marching orders from processor 0: |
588 |
|
589 |
MPI_Bcast(&molToProcMap[0], nGlobalMols, MPI_INT, 0, MPI_COMM_WORLD); |
590 |
} |
591 |
|
592 |
cerr << "molToProcMap:\n"; |
593 |
for (int i = 0; i < molToProcMap.size(); i++) { |
594 |
cerr << "m = " << i << " mtpr[m] = " << molToProcMap[i] <<"\n"; |
595 |
} |
596 |
|
597 |
info->setMolToProcMap(molToProcMap); |
598 |
sprintf(checkPointMsg, |
599 |
"Successfully divided the molecules among the processors.\n"); |
600 |
errorCheckPoint(); |
601 |
} |
602 |
|
603 |
#endif |
604 |
|
605 |
void SimCreator::createMolecules(SimInfo *info) { |
606 |
MoleculeCreator molCreator; |
607 |
int stampId; |
608 |
|
609 |
for(int i = 0; i < info->getNGlobalMolecules(); i++) { |
610 |
|
611 |
#ifdef IS_MPI |
612 |
|
613 |
if (info->getMolToProc(i) == worldRank) { |
614 |
#endif |
615 |
|
616 |
stampId = info->getMoleculeStampId(i); |
617 |
Molecule * mol = molCreator.createMolecule(info->getForceField(), info->getMoleculeStamp(stampId), |
618 |
stampId, i, info->getLocalIndexManager()); |
619 |
|
620 |
info->addMolecule(mol); |
621 |
|
622 |
#ifdef IS_MPI |
623 |
|
624 |
} |
625 |
|
626 |
#endif |
627 |
|
628 |
} //end for(int i=0) |
629 |
} |
630 |
|
631 |
void SimCreator::setGlobalIndex(SimInfo *info) { |
632 |
SimInfo::MoleculeIterator mi; |
633 |
Molecule::AtomIterator ai; |
634 |
Molecule::RigidBodyIterator ri; |
635 |
Molecule::CutoffGroupIterator ci; |
636 |
Molecule::IntegrableObjectIterator ioi; |
637 |
Molecule * mol; |
638 |
Atom * atom; |
639 |
RigidBody * rb; |
640 |
CutoffGroup * cg; |
641 |
int beginAtomIndex; |
642 |
int beginRigidBodyIndex; |
643 |
int beginCutoffGroupIndex; |
644 |
int nGlobalAtoms = info->getNGlobalAtoms(); |
645 |
|
646 |
/**@todo fixme */ |
647 |
#ifndef IS_MPI |
648 |
|
649 |
beginAtomIndex = 0; |
650 |
beginRigidBodyIndex = 0; |
651 |
beginCutoffGroupIndex = 0; |
652 |
|
653 |
#else |
654 |
|
655 |
int nproc; |
656 |
int myNode; |
657 |
|
658 |
myNode = worldRank; |
659 |
MPI_Comm_size(MPI_COMM_WORLD, &nproc); |
660 |
|
661 |
std::vector < int > tmpAtomsInProc(nproc, 0); |
662 |
std::vector < int > tmpRigidBodiesInProc(nproc, 0); |
663 |
std::vector < int > tmpCutoffGroupsInProc(nproc, 0); |
664 |
std::vector < int > NumAtomsInProc(nproc, 0); |
665 |
std::vector < int > NumRigidBodiesInProc(nproc, 0); |
666 |
std::vector < int > NumCutoffGroupsInProc(nproc, 0); |
667 |
|
668 |
tmpAtomsInProc[myNode] = info->getNAtoms(); |
669 |
tmpRigidBodiesInProc[myNode] = info->getNRigidBodies(); |
670 |
tmpCutoffGroupsInProc[myNode] = info->getNCutoffGroups(); |
671 |
|
672 |
//do MPI_ALLREDUCE to exchange the total number of atoms, rigidbodies and cutoff groups |
673 |
MPI_Allreduce(&tmpAtomsInProc[0], &NumAtomsInProc[0], nproc, MPI_INT, |
674 |
MPI_SUM, MPI_COMM_WORLD); |
675 |
MPI_Allreduce(&tmpRigidBodiesInProc[0], &NumRigidBodiesInProc[0], nproc, |
676 |
MPI_INT, MPI_SUM, MPI_COMM_WORLD); |
677 |
MPI_Allreduce(&tmpCutoffGroupsInProc[0], &NumCutoffGroupsInProc[0], nproc, |
678 |
MPI_INT, MPI_SUM, MPI_COMM_WORLD); |
679 |
|
680 |
beginAtomIndex = 0; |
681 |
beginRigidBodyIndex = 0; |
682 |
beginCutoffGroupIndex = 0; |
683 |
|
684 |
for(int i = 0; i < myNode; i++) { |
685 |
beginAtomIndex += NumAtomsInProc[i]; |
686 |
beginRigidBodyIndex += NumRigidBodiesInProc[i]; |
687 |
beginCutoffGroupIndex += NumCutoffGroupsInProc[i]; |
688 |
} |
689 |
|
690 |
#endif |
691 |
|
692 |
//rigidbody's index begins right after atom's |
693 |
beginRigidBodyIndex += info->getNGlobalAtoms(); |
694 |
|
695 |
for(mol = info->beginMolecule(mi); mol != NULL; |
696 |
mol = info->nextMolecule(mi)) { |
697 |
|
698 |
//local index(index in DataStorge) of atom is important |
699 |
for(atom = mol->beginAtom(ai); atom != NULL; atom = mol->nextAtom(ai)) { |
700 |
atom->setGlobalIndex(beginAtomIndex++); |
701 |
} |
702 |
|
703 |
for(rb = mol->beginRigidBody(ri); rb != NULL; |
704 |
rb = mol->nextRigidBody(ri)) { |
705 |
rb->setGlobalIndex(beginRigidBodyIndex++); |
706 |
} |
707 |
|
708 |
//local index of cutoff group is trivial, it only depends on the order of travesing |
709 |
for(cg = mol->beginCutoffGroup(ci); cg != NULL; |
710 |
cg = mol->nextCutoffGroup(ci)) { |
711 |
cg->setGlobalIndex(beginCutoffGroupIndex++); |
712 |
} |
713 |
} |
714 |
|
715 |
//fill globalGroupMembership |
716 |
std::vector<int> globalGroupMembership(info->getNGlobalAtoms(), -1); |
717 |
for(mol = info->beginMolecule(mi); mol != NULL; mol = info->nextMolecule(mi)) { |
718 |
for (cg = mol->beginCutoffGroup(ci); cg != NULL; cg = mol->nextCutoffGroup(ci)) { |
719 |
|
720 |
for(atom = cg->beginAtom(ai); atom != NULL; atom = cg->nextAtom(ai)) { |
721 |
globalGroupMembership[atom->getGlobalIndex()] = cg->getGlobalIndex(); |
722 |
} |
723 |
|
724 |
} |
725 |
} |
726 |
|
727 |
#ifdef IS_MPI |
728 |
// Since the globalGroupMembership has been zero filled and we've only |
729 |
// poked values into the atoms we know, we can do an Allreduce |
730 |
// to get the full globalGroupMembership array (We think). |
731 |
// This would be prettier if we could use MPI_IN_PLACE like the MPI-2 |
732 |
// docs said we could. |
733 |
std::vector<int> tmpGroupMembership(info->getNGlobalAtoms(), 0); |
734 |
MPI_Allreduce(&globalGroupMembership[0], &tmpGroupMembership[0], nGlobalAtoms, |
735 |
MPI_INT, MPI_MAX, MPI_COMM_WORLD); |
736 |
info->setGlobalGroupMembership(tmpGroupMembership); |
737 |
|
738 |
cerr << "ggm:\n"; |
739 |
for (int i = 0; i < tmpGroupMembership.size(); i++) |
740 |
cerr << "i = " << i << "\t ggm(i) = " << tmpGroupMembership[i] << "\n"; |
741 |
|
742 |
#else |
743 |
info->setGlobalGroupMembership(globalGroupMembership); |
744 |
#endif |
745 |
|
746 |
//fill molMembership |
747 |
std::vector<int> globalMolMembership(info->getNGlobalAtoms(), 0); |
748 |
|
749 |
for(mol = info->beginMolecule(mi); mol != NULL; mol = info->nextMolecule(mi)) { |
750 |
for(atom = mol->beginAtom(ai); atom != NULL; atom = mol->nextAtom(ai)) { |
751 |
globalMolMembership[atom->getGlobalIndex()] = mol->getGlobalIndex(); |
752 |
} |
753 |
} |
754 |
|
755 |
#ifdef IS_MPI |
756 |
std::vector<int> tmpMolMembership(info->getNGlobalAtoms(), 0); |
757 |
|
758 |
MPI_Allreduce(&globalMolMembership[0], &tmpMolMembership[0], nGlobalAtoms, |
759 |
MPI_INT, MPI_SUM, MPI_COMM_WORLD); |
760 |
|
761 |
info->setGlobalMolMembership(tmpMolMembership); |
762 |
#else |
763 |
info->setGlobalMolMembership(globalMolMembership); |
764 |
#endif |
765 |
|
766 |
// nIOPerMol holds the number of integrable objects per molecule |
767 |
// here the molecules are listed by their global indices. |
768 |
|
769 |
std::vector<int> nIOPerMol(info->getNGlobalMolecules(), 0); |
770 |
for (mol = info->beginMolecule(mi); mol != NULL; mol = info->nextMolecule(mi)) { |
771 |
nIOPerMol[mol->getGlobalIndex()] = mol->getNIntegrableObjects(); |
772 |
} |
773 |
|
774 |
#ifdef IS_MPI |
775 |
std::vector<int> numIntegrableObjectsPerMol(info->getNGlobalMolecules(), 0); |
776 |
MPI_Allreduce(&nIOPerMol[0], &numIntegrableObjectsPerMol[0], |
777 |
info->getNGlobalMolecules(), MPI_INT, MPI_SUM, MPI_COMM_WORLD); |
778 |
#else |
779 |
std::vector<int> numIntegrableObjectsPerMol = nIOPerMol; |
780 |
#endif |
781 |
|
782 |
std::vector<int> startingIOIndexForMol(info->getNGlobalMolecules()); |
783 |
|
784 |
int startingIndex = 0; |
785 |
for (int i = 0; i < info->getNGlobalMolecules(); i++) { |
786 |
startingIOIndexForMol[i] = startingIndex; |
787 |
startingIndex += numIntegrableObjectsPerMol[i]; |
788 |
} |
789 |
|
790 |
std::vector<StuntDouble*> IOIndexToIntegrableObject(info->getNGlobalIntegrableObjects(), (StuntDouble*)NULL); |
791 |
for (mol = info->beginMolecule(mi); mol != NULL; mol = info->nextMolecule(mi)) { |
792 |
int myGlobalIndex = mol->getGlobalIndex(); |
793 |
int globalIO = startingIOIndexForMol[myGlobalIndex]; |
794 |
for (StuntDouble* integrableObject = mol->beginIntegrableObject(ioi); integrableObject != NULL; |
795 |
integrableObject = mol->nextIntegrableObject(ioi)) { |
796 |
integrableObject->setGlobalIntegrableObjectIndex(globalIO); |
797 |
IOIndexToIntegrableObject[globalIO] = integrableObject; |
798 |
globalIO++; |
799 |
} |
800 |
} |
801 |
cerr << "ioi2io:\n"; |
802 |
for (int i = 0; i < IOIndexToIntegrableObject.size(); i++) { |
803 |
if (IOIndexToIntegrableObject[i] != NULL) { |
804 |
cerr << "i = " << i << "globalIOindex = " << IOIndexToIntegrableObject[i]->getGlobalIntegrableObjectIndex() << "\n"; |
805 |
} |
806 |
} |
807 |
|
808 |
info->setIOIndexToIntegrableObject(IOIndexToIntegrableObject); |
809 |
|
810 |
} |
811 |
|
812 |
void SimCreator::loadCoordinates(SimInfo* info, const std::string& mdFileName) { |
813 |
Globals* simParams; |
814 |
|
815 |
simParams = info->getSimParams(); |
816 |
|
817 |
DumpReader reader(info, mdFileName); |
818 |
int nframes = reader.getNFrames(); |
819 |
|
820 |
if (nframes > 0) { |
821 |
reader.readFrame(nframes - 1); |
822 |
} else { |
823 |
//invalid initial coordinate file |
824 |
sprintf(painCave.errMsg, |
825 |
"Initial configuration file %s should at least contain one frame\n", |
826 |
mdFileName.c_str()); |
827 |
painCave.isFatal = 1; |
828 |
simError(); |
829 |
} |
830 |
//copy the current snapshot to previous snapshot |
831 |
info->getSnapshotManager()->advance(); |
832 |
} |
833 |
|
834 |
} //end namespace OpenMD |
835 |
|
836 |
|