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199 lines
7.9 KiB
C++
199 lines
7.9 KiB
C++
/*************************************************************************************
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Grid physics library, www.github.com/paboyle/Grid
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Source file: ./tests/Test_dwf_mrhs_cg.cc
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Copyright (C) 2015
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Author: Peter Boyle <paboyle@ph.ed.ac.uk>
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This program is free software; you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation; either version 2 of the License, or
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(at your option) any later version.
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This program is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License along
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with this program; if not, write to the Free Software Foundation, Inc.,
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51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA.
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See the full license in the file "LICENSE" in the top level distribution directory
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*************************************************************************************/
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/* END LEGAL */
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#include <Grid/Grid.h>
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#include <Grid/algorithms/iterative/BlockConjugateGradient.h>
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using namespace std;
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using namespace Grid;
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using namespace Grid::QCD;
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int main (int argc, char ** argv)
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{
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typedef typename DomainWallFermionR::FermionField FermionField;
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typedef typename DomainWallFermionR::ComplexField ComplexField;
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typename DomainWallFermionR::ImplParams params;
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const int Ls=8;
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Grid_init(&argc,&argv);
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std::vector<int> latt_size = GridDefaultLatt();
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std::vector<int> simd_layout = GridDefaultSimd(Nd,vComplex::Nsimd());
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std::vector<int> mpi_layout = GridDefaultMpi();
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std::vector<int> mpi_split (mpi_layout.size(),1);
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std::cout << "UGrid (world root)"<<std::endl;
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GridCartesian * UGrid = SpaceTimeGrid::makeFourDimGrid(GridDefaultLatt(), GridDefaultSimd(Nd,vComplex::Nsimd()),GridDefaultMpi());
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std::cout << "FGrid (child of UGrid)"<<std::endl;
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GridCartesian * FGrid = SpaceTimeGrid::makeFiveDimGrid(Ls,UGrid);
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int nrhs = UGrid->RankCount() ;
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/////////////////////////////////////////////
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// Split into 1^4 mpi communicators
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/////////////////////////////////////////////
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std::cout << "SGrid (world root)"<<std::endl;
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GridCartesian * SGrid = new GridCartesian(GridDefaultLatt(),
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GridDefaultSimd(Nd,vComplex::Nsimd()),
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mpi_split,
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*UGrid);
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GridCartesian * SFGrid = SpaceTimeGrid::makeFiveDimGrid(Ls,SGrid);
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std::cout << "SFGrid"<<std::endl;
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GridRedBlackCartesian * SrbGrid = SpaceTimeGrid::makeFourDimRedBlackGrid(SGrid);
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std::cout << "SrbGrid"<<std::endl;
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GridRedBlackCartesian * SFrbGrid = SpaceTimeGrid::makeFiveDimRedBlackGrid(Ls,SGrid);
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std::cout << "SFrbGrid"<<std::endl;
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///////////////////////////////////////////////
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// Set up the problem as a 4d spreadout job
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///////////////////////////////////////////////
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std::vector<int> seeds({1,2,3,4});
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GridParallelRNG pRNG(UGrid ); pRNG.SeedFixedIntegers(seeds);
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GridParallelRNG pRNG5(FGrid); pRNG5.SeedFixedIntegers(seeds);
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std::vector<FermionField> src(nrhs,FGrid);
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std::vector<FermionField> result(nrhs,FGrid);
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for(int s=0;s<nrhs;s++) random(pRNG5,src[s]);
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for(int s=0;s<nrhs;s++) result[s] = zero;
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LatticeGaugeField Umu(UGrid); SU3::HotConfiguration(pRNG,Umu);
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///////////////////////////////////////////////////////////////
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// Bounce these fields to disk
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///////////////////////////////////////////////////////////////
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std::cout << GridLogMessage << "****************************************************************** "<<std::endl;
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std::cout << GridLogMessage << " Writing out in parallel view "<<std::endl;
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std::cout << GridLogMessage << "****************************************************************** "<<std::endl;
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emptyUserRecord record;
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std::string file("./scratch.scidac");
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std::string filef("./scratch.scidac.ferm");
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int me = UGrid->ThisRank();
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LatticeGaugeField s_Umu(SGrid);
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FermionField s_src(SFGrid);
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FermionField s_res(SFGrid);
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{
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FGrid->Barrier();
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ScidacWriter _ScidacWriter;
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_ScidacWriter.open(file);
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std::cout << GridLogMessage << "****************************************************************** "<<std::endl;
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std::cout << GridLogMessage << " Writing out gauge field "<<std::endl;
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std::cout << GridLogMessage << "****************************************************************** "<<std::endl;
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_ScidacWriter.writeScidacFieldRecord(Umu,record);
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_ScidacWriter.close();
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FGrid->Barrier();
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std::cout << GridLogMessage << "****************************************************************** "<<std::endl;
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std::cout << GridLogMessage << " Reading in gauge field "<<std::endl;
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std::cout << GridLogMessage << "****************************************************************** "<<std::endl;
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ScidacReader _ScidacReader;
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_ScidacReader.open(file);
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_ScidacReader.readScidacFieldRecord(s_Umu,record);
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_ScidacReader.close();
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FGrid->Barrier();
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std::cout << GridLogMessage << "****************************************************************** "<<std::endl;
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std::cout << GridLogMessage << " Read in gauge field "<<std::endl;
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std::cout << GridLogMessage << "****************************************************************** "<<std::endl;
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}
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{
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for(int n=0;n<nrhs;n++){
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std::stringstream filefn;
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filefn << filef << "."<< n;
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std::cout << GridLogMessage << "****************************************************************** "<<std::endl;
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std::cout << GridLogMessage << " Writing out record "<<n<<std::endl;
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std::cout << GridLogMessage << "****************************************************************** "<<std::endl;
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ScidacWriter _ScidacWriter;
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_ScidacWriter.open(filefn.str());
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_ScidacWriter.writeScidacFieldRecord(src[n],record);
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_ScidacWriter.close();
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}
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FGrid->Barrier();
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std::cout << GridLogMessage << "****************************************************************** "<<std::endl;
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std::cout << GridLogMessage << " Reading back in the single process view "<<std::endl;
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std::cout << GridLogMessage << "****************************************************************** "<<std::endl;
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for(int n=0;n<nrhs;n++){
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std::stringstream filefn;
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filefn << filef << "."<< n;
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if ( n==me ) {
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ScidacReader _ScidacReader;
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_ScidacReader.open(filefn.str());
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_ScidacReader.readScidacFieldRecord(s_src,record);
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_ScidacReader.close();
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}
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}
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FGrid->Barrier();
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}
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///////////////////////////////////////////////////////////////
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// Set up N-solvers as trivially parallel
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///////////////////////////////////////////////////////////////
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RealD mass=0.01;
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RealD M5=1.8;
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DomainWallFermionR Ddwf(s_Umu,*SFGrid,*SFrbGrid,*SGrid,*SrbGrid,mass,M5);
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std::cout << GridLogMessage << "****************************************************************** "<<std::endl;
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std::cout << GridLogMessage << " Calling DWF CG "<<std::endl;
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std::cout << GridLogMessage << "****************************************************************** "<<std::endl;
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MdagMLinearOperator<DomainWallFermionR,FermionField> HermOp(Ddwf);
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ConjugateGradient<FermionField> CG((1.0e-8/(me+1)),10000);
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s_res = zero;
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CG(HermOp,s_src,s_res);
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///////////////////////////////////////
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// Share the information
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///////////////////////////////////////
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std::vector<uint32_t> iterations(nrhs,0);
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iterations[me] = CG.IterationsToComplete;
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for(int n=0;n<nrhs;n++){
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UGrid->GlobalSum(iterations[n]);
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}
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/////////////////////////////////////////////////////////////
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// Report how long they all took
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/////////////////////////////////////////////////////////////
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for(int r=0;r<nrhs;r++){
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std::cout << GridLogMessage<<" Rank "<<r<<" "<< iterations[r]<<" CG iterations"<<std::endl;
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}
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Grid_finalize();
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}
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