/*
* Project: MoleCuilder
* Description: creates and alters molecular systems
* Copyright (C) 2010-2012 University of Bonn. All rights reserved.
*
*
* This file is part of MoleCuilder.
*
* MoleCuilder is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 2 of the License, or
* (at your option) any later version.
*
* MoleCuilder is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with MoleCuilder. If not, see .
*/
/*
* FragmentationAutomationAction.cpp
*
* Created on: May 18, 2012
* Author: heber
*/
// include config.h
#ifdef HAVE_CONFIG_H
#include
#endif
#include
// boost asio needs specific operator new
#include
#include "CodePatterns/MemDebug.hpp"
#include
#include
#include "CodePatterns/Assert.hpp"
#include "CodePatterns/Info.hpp"
#include "CodePatterns/Log.hpp"
#include "JobMarket/Jobs/FragmentJob.hpp"
#include "Fragmentation/Automation/createMatrixNrLookup.hpp"
#include "Fragmentation/Automation/extractJobIds.hpp"
#include "Fragmentation/Automation/FragmentationChargeDensity.hpp"
#include "Fragmentation/Automation/FragmentationResults.hpp"
#include "Fragmentation/Automation/MPQCFragmentController.hpp"
#include "Fragmentation/Automation/VMGDebugGridFragmentController.hpp"
#include "Fragmentation/Automation/VMGFragmentController.hpp"
#include "Fragmentation/EnergyMatrix.hpp"
#include "Fragmentation/ForceMatrix.hpp"
#include "Fragmentation/Fragmentation.hpp"
#include "Fragmentation/SetValues/Fragment.hpp"
#include "Fragmentation/SetValues/Histogram.hpp"
#include "Fragmentation/SetValues/IndexedVectors.hpp"
#include "Fragmentation/HydrogenSaturation_enum.hpp"
#include "Fragmentation/KeySet.hpp"
#include "Fragmentation/KeySetsContainer.hpp"
#include "Fragmentation/Summation/writeTable.hpp"
#include "Graph/DepthFirstSearchAnalysis.hpp"
#include "Helpers/defs.hpp"
#include "Jobs/MPQCJob.hpp"
#include "Jobs/MPQCData.hpp"
#include "Jobs/MPQCData_printKeyNames.hpp"
#ifdef HAVE_VMG
#include "Jobs/VMGDebugGridJob.hpp"
#include "Jobs/VMGJob.hpp"
#include "Jobs/VMGData.hpp"
#include "Jobs/VMGDataFused.hpp"
#include "Jobs/VMGDataMap.hpp"
#include "Jobs/VMGData_printKeyNames.hpp"
#endif
#include "World.hpp"
#include
#include
#include
#include
#include
#include "Actions/FragmentationAction/FragmentationAutomationAction.hpp"
using namespace MoleCuilder;
// and construct the stuff
#include "FragmentationAutomationAction.def"
#include "Action_impl_pre.hpp"
/** =========== define the function ====================== */
class controller_AddOn;
// needs to be defined for using the FragmentController
controller_AddOn *getAddOn()
{
return NULL;
}
/** Helper function to get number of atoms somehow.
*
* Here, we just parse the number of lines in the adjacency file as
* it should correspond to the number of atoms, except when some atoms
* are not bonded, but then fragmentation makes no sense.
*
* @param path path to the adjacency file
*/
size_t getNoAtomsFromAdjacencyFile(const std::string &path)
{
size_t NoAtoms = 0;
// parse in special file to get atom count (from line count)
std::string filename(path);
filename += FRAGMENTPREFIX;
filename += ADJACENCYFILE;
std::ifstream adjacency(filename.c_str());
if (adjacency.fail()) {
LOG(0, endl << "getNoAtomsFromAdjacencyFile() - Unable to open " << filename << ", is the directory correct?");
return false;
}
std::string buffer;
while (getline(adjacency, buffer))
NoAtoms++;
LOG(1, "INFO: There are " << NoAtoms << " atoms.");
return NoAtoms;
}
/** Place results from FragmentResult into EnergyMatrix and ForceMatrix.
*
* @param fragmentData MPQCData resulting from the jobs
* @param MatrixNrLookup Lookup up-map from job id to fragment number
* @param FragmentCounter total number of fragments
* @param NoAtoms total number of atoms
* @param Energy energy matrix to be filled on return
* @param Force force matrix to be filled on return
* @return true - everything ok, false - else
*/
bool putResultsintoMatrices(
const std::map &fragmentData,
const std::map< JobId_t, size_t > &MatrixNrLookup,
const size_t FragmentCounter,
const size_t NoAtoms,
EnergyMatrix &Energy,
ForceMatrix &Force)
{
for (std::map::const_iterator dataiter = fragmentData.begin();
dataiter != fragmentData.end(); ++dataiter) {
const MPQCData &extractedData = dataiter->second;
const JobId_t &jobid = dataiter->first;
std::map< JobId_t, size_t >::const_iterator nriter = MatrixNrLookup.find(jobid);
ASSERT( nriter != MatrixNrLookup.end(),
"putResultsintoMatrices() - MatrixNrLookup does not contain id "
+toString(jobid)+".");
// place results into EnergyMatrix ...
{
MatrixContainer::MatrixArray matrix;
matrix.resize(1);
matrix[0].resize(1, extractedData.energies.total);
if (!Energy.AddMatrix(
std::string("MPQCJob ")+toString(jobid),
matrix,
nriter->second)) {
ELOG(1, "Adding energy matrix failed.");
return false;
}
}
// ... and ForceMatrix (with two empty columns in front)
{
MatrixContainer::MatrixArray matrix;
const size_t rows = extractedData.forces.size();
matrix.resize(rows);
for (size_t i=0;isecond)) {
ELOG(1, "Adding force matrix failed.");
return false;
}
}
}
// add one more matrix (not required for energy)
MatrixContainer::MatrixArray matrix;
matrix.resize(1);
matrix[0].resize(1, 0.);
if (!Energy.AddMatrix(std::string("MPQCJob total"), matrix, FragmentCounter))
return false;
// but for energy because we need to know total number of atoms
matrix.resize(NoAtoms);
for (size_t i = 0; i< NoAtoms; ++i)
matrix[i].resize(2+NDIM, 0.);
if (!Force.AddMatrix(std::string("MPQCJob total"), matrix, FragmentCounter))
return false;
return true;
}
/** Print MPQCData from received results.
*
* @param fragmentData MPQCData resulting from the jobs, associated to job id
* @param KeySetFilename filename with keysets to associate forces correctly
* @param NoAtoms total number of atoms
* @param full_sample summed up charge from fragments on return
*/
bool printReceivedMPQCResults(
const std::map &fragmentData,
const std::string &KeySetFilename,
size_t NoAtoms)
{
// create a vector of all job ids
std::vector jobids;
std::transform(fragmentData.begin(),fragmentData.end(),
std::back_inserter(jobids),
boost::bind( &std::map::value_type::first, boost::lambda::_1 )
);
// create lookup from job nr to fragment number
size_t FragmentCounter = 0;
const std::map< JobId_t, size_t > MatrixNrLookup=
createMatrixNrLookup(jobids, FragmentCounter);
// place results into maps
EnergyMatrix Energy;
ForceMatrix Force;
if (!putResultsintoMatrices(fragmentData, MatrixNrLookup, FragmentCounter, NoAtoms, Energy, Force))
return false;
// initialise keysets
KeySetsContainer KeySet;
KeySetsContainer ForceKeySet;
if (!Energy.InitialiseIndices()) return false;
if (!Force.ParseIndices(KeySetFilename.c_str())) return false;
{
// else needs keysets without hydrogens
std::stringstream filename;
filename << FRAGMENTPREFIX << KEYSETFILE;
if (!KeySet.ParseKeySets(KeySetFilename, filename.str(), FragmentCounter)) return false;
}
{
// forces need keysets including hydrogens
std::stringstream filename;
filename << FRAGMENTPREFIX << FORCESFILE;
if (!ForceKeySet.ParseKeySets(KeySetFilename, filename.str(), FragmentCounter)) return false;
}
// combine all found data
if (!KeySet.ParseManyBodyTerms()) return false;
EnergyMatrix EnergyFragments;
ForceMatrix ForceFragments;
if (!EnergyFragments.AllocateMatrix(Energy.Header, Energy.MatrixCounter, Energy.RowCounter, Energy.ColumnCounter)) return false;
if (!ForceFragments.AllocateMatrix(Force.Header, Force.MatrixCounter, Force.RowCounter, Force.ColumnCounter)) return false;
if(!Energy.SetLastMatrix(0., 0)) return false;
if(!Force.SetLastMatrix(0., 2)) return false;
for (int BondOrder=0;BondOrder::type
MPQCDataEnergyVector_noeigenvalues_t;
const std::string energyresult =
writeTable()(
results.Result_Energy_fused, results.getMaxLevel());
LOG(0, "Energy table is \n" << energyresult);
std::string filename;
filename += FRAGMENTPREFIX + std::string("_Energy.dat");
writeToFile(filename, energyresult);
}
{
const std::string gridresult =
writeTable()(
results.Result_LongRange_fused, results.getMaxLevel(), 2);
LOG(0, "VMG table is \n" << gridresult);
std::string filename;
filename += FRAGMENTPREFIX + std::string("_VMGEnergy.dat");
writeToFile(filename, gridresult);
}
{
const std::string gridresult =
writeTable()(
results.Result_LongRangeIntegrated_fused, results.getMaxLevel(), 2);
LOG(0, "LongRange table is \n" << gridresult);
std::string filename;
filename += FRAGMENTPREFIX + std::string("_LongRangeEnergy.dat");
writeToFile(filename, gridresult);
}
{
const std::string eigenvalueresult;
LOG(0, "Eigenvalue table is \n" << eigenvalueresult);
std::string filename;
filename += FRAGMENTPREFIX + std::string("_Eigenvalues.dat");
writeToFile(filename, eigenvalueresult);
}
{
const std::string forceresult =
writeTable()(
results.Result_Force_fused, results.getMaxLevel());
LOG(0, "Force table is \n" << forceresult);
std::string filename;
filename += FRAGMENTPREFIX + std::string("_Forces.dat");
writeToFile(filename, forceresult);
}
// we don't want to print grid to a table
{
// print times (without flops for now)
typedef boost::mpl::remove<
boost::mpl::remove::type,
MPQCDataFused::times_gather_flops>::type
MPQCDataTimeVector_noflops_t;
const std::string timesresult =
writeTable()(
results.Result_Time_fused, results.getMaxLevel());
LOG(0, "Times table is \n" << timesresult);
std::string filename;
filename += FRAGMENTPREFIX + std::string("_Times.dat");
writeToFile(filename, timesresult);
}
}
Action::state_ptr FragmentationFragmentationAutomationAction::performCall() {
boost::asio::io_service io_service;
// TODO: Have io_service run in second thread and merge with current again eventually
size_t Exitflag = 0;
std::map fragmentData;
{
MPQCFragmentController mpqccontroller(io_service);
mpqccontroller.setHost(params.host.get());
mpqccontroller.setPort(params.port.get());
mpqccontroller.setLevel(params.level.get());
// Phase One: obtain ids
std::vector< boost::filesystem::path > jobfiles = params.jobfiles.get();
mpqccontroller.requestIds(jobfiles.size());
// Phase Two: create and add MPQCJobs
if (!mpqccontroller.addJobsFromFiles(params.executable.get().string(), jobfiles))
return Action::failure;
// Phase Three: calculate result
mpqccontroller.waitforResults(jobfiles.size());
mpqccontroller.getResults(fragmentData);
Exitflag += mpqccontroller.getExitflag();
}
#ifdef HAVE_VMG
if (params.DoLongrange.get()) {
if ( World::getInstance().getAllAtoms().size() == 0) {
ELOG(1, "Please load the full molecule into the world before starting this action.");
return Action::failure;
}
// obtain combined charge density
FragmentationChargeDensity summedChargeDensity(
fragmentData,
params.path.get());
const std::vector full_sample = summedChargeDensity.getFullSampledGrid();
LOG(1, "INFO: There are " << fragmentData.size() << " short-range and "
<< full_sample.size() << " level-wise long-range jobs.");
// Phase Four: obtain more ids
std::map longrangeData;
{
VMGFragmentController vmgcontroller(io_service);
vmgcontroller.setHost(params.host.get());
vmgcontroller.setPort(params.port.get());
const size_t NoJobs = fragmentData.size()+full_sample.size();
vmgcontroller.requestIds(NoJobs);
// Phase Five: create VMGJobs
const size_t near_field_cells = params.near_field_cells.get();
const size_t interpolation_degree = params.interpolation_degree.get();
if (!vmgcontroller.createLongRangeJobs(
fragmentData,
full_sample,
summedChargeDensity.getFragment(),
near_field_cells,
interpolation_degree))
return Action::failure;
// Phase Six: calculate result
vmgcontroller.waitforResults(NoJobs);
vmgcontroller.getResults(longrangeData);
ASSERT( NoJobs == longrangeData.size(),
"FragmentationFragmentationAutomationAction::performCall() - number of MPQCresults+"
+toString(full_sample.size())+"="+toString(NoJobs)
+" and VMGresults "+toString(longrangeData.size())+" don't match.");
Exitflag += vmgcontroller.getExitflag();
}
// remove full solution corresponding to full_sample from map (must be highest ids), has to be treated extra
std::map::iterator iter = longrangeData.end();
for (size_t i=0;i::iterator remove_iter = iter;
std::vector fullsolutionData;
for (; iter != longrangeData.end(); ++iter)
fullsolutionData.push_back(iter->second);
longrangeData.erase(remove_iter, longrangeData.end());
// Final phase: sum up and print result
{
FragmentationResults results(
fragmentData,
longrangeData,
fullsolutionData,
params.path.get(),
getNoAtomsFromAdjacencyFile(params.path.get()),
full_sample);
LOG(1, "INFO: Parsing fragment files from " << params.path.get() << ".");
printReceivedFullResults(results);
}
std::map debugData;
{
if (!full_sample.empty()) {
// create debug jobs for each level to print the summed-up potential to vtk files
VMGDebugGridFragmentController debugcontroller(io_service);
debugcontroller.setHost(params.host.get());
debugcontroller.setPort(params.port.get());
debugcontroller.requestIds(full_sample.size());
if (!debugcontroller.createDebugJobs(full_sample))
return Action::failure;
debugcontroller.waitforResults(full_sample.size());
debugcontroller.getResults(debugData);
Exitflag += debugcontroller.getExitflag();
}
}
}
#else
// Final phase: print result
{
LOG(1, "INFO: Parsing fragment files from " << params.path.get() << ".");
printReceivedMPQCResults(
fragmentData,
params.path.get(),
getNoAtomsFromAdjacencyFile(params.path.get()));
}
#endif
return (Exitflag == 0) ? Action::success : Action::failure;
}
Action::state_ptr FragmentationFragmentationAutomationAction::performUndo(Action::state_ptr _state) {
return Action::success;
}
Action::state_ptr FragmentationFragmentationAutomationAction::performRedo(Action::state_ptr _state){
return Action::success;
}
bool FragmentationFragmentationAutomationAction::canUndo() {
return false;
}
bool FragmentationFragmentationAutomationAction::shouldUndo() {
return false;
}
/** =========== end of function ====================== */