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Hadrons: everything is broken, repairing while implementing the new memory model
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@ -102,37 +102,30 @@ std::vector<std::string> TDWF<FImpl>::getOutput(void)
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// setup ///////////////////////////////////////////////////////////////////////
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template <typename FImpl>
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void TDWF<FImpl>::setup(void)
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{
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unsigned int size;
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size = 2*env().template lattice4dSize<typename FImpl::DoubledGaugeField>();
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env().registerObject(getName(), size, par().Ls);
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}
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// execution ///////////////////////////////////////////////////////////////////
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template <typename FImpl>
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void TDWF<FImpl>::execute(void)
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{
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LOG(Message) << "Setting up domain wall fermion matrix with m= "
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<< par().mass << ", M5= " << par().M5 << " and Ls= "
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<< par().Ls << " using gauge field '" << par().gauge << "'"
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<< std::endl;
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LOG(Message) << "Fermion boundary conditions: " << par().boundary
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LOG(Message) << "Fermion boundary conditions: " << par().boundary
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<< std::endl;
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env().createGrid(par().Ls);
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auto &U = *env().template getObject<LatticeGaugeField>(par().gauge);
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auto &U = mGetObj(LatticeGaugeField, par().gauge);
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auto &g4 = *env().getGrid();
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auto &grb4 = *env().getRbGrid();
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auto &g5 = *env().getGrid(par().Ls);
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auto &grb5 = *env().getRbGrid(par().Ls);
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std::vector<Complex> boundary = strToVec<Complex>(par().boundary);
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typename DomainWallFermion<FImpl>::ImplParams implParams(boundary);
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FMat *fMatPt = new DomainWallFermion<FImpl>(U, g5, grb5, g4, grb4,
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par().mass, par().M5,
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implParams);
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env().setObject(getName(), fMatPt);
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mCreateObj(DomainWallFermion<FImpl>, getName(), par().Ls,
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U, g5, grb5, g4, grb4, par().mass, par().M5, implParams);
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}
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// execution ///////////////////////////////////////////////////////////////////
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template <typename FImpl>
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void TDWF<FImpl>::execute(void)
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{}
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END_MODULE_NAMESPACE
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END_HADRONS_NAMESPACE
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@ -101,29 +101,23 @@ std::vector<std::string> TWilson<FImpl>::getOutput(void)
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template <typename FImpl>
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void TWilson<FImpl>::setup(void)
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{
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unsigned int size;
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size = 2*env().template lattice4dSize<typename FImpl::DoubledGaugeField>();
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env().registerObject(getName(), size);
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LOG(Message) << "Setting up TWilson fermion matrix with m= " << par().mass
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<< " using gauge field '" << par().gauge << "'" << std::endl;
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LOG(Message) << "Fermion boundary conditions: " << par().boundary
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<< std::endl;
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auto &U = mGetObj(LatticeGaugeField, par().gauge);
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auto &grid = *env().getGrid();
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auto &gridRb = *env().getRbGrid();
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std::vector<Complex> boundary = strToVec<Complex>(par().boundary);
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typename WilsonFermion<FImpl>::ImplParams implParams(boundary);
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mCreateObj(WilsonFermion<FImpl>, getName(), 1, U, grid, gridRb, par().mass,
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implParams);
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}
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// execution ///////////////////////////////////////////////////////////////////
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template <typename FImpl>
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void TWilson<FImpl>::execute()
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{
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LOG(Message) << "Setting up TWilson fermion matrix with m= " << par().mass
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<< " using gauge field '" << par().gauge << "'" << std::endl;
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LOG(Message) << "Fermion boundary conditions: " << par().boundary
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<< std::endl;
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auto &U = *env().template getObject<LatticeGaugeField>(par().gauge);
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auto &grid = *env().getGrid();
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auto &gridRb = *env().getRbGrid();
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std::vector<Complex> boundary = strToVec<Complex>(par().boundary);
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typename WilsonFermion<FImpl>::ImplParams implParams(boundary);
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FMat *fMatPt = new WilsonFermion<FImpl>(U, grid, gridRb, par().mass,
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implParams);
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env().setObject(getName(), fMatPt);
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}
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{}
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END_MODULE_NAMESPACE
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@ -57,13 +57,13 @@ std::vector<std::string> TUnit::getOutput(void)
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// setup ///////////////////////////////////////////////////////////////////////
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void TUnit::setup(void)
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{
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env().registerLattice<LatticeGaugeField>(getName());
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mCreateObj(LatticeGaugeField, getName(), 1, env().getGrid());
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}
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// execution ///////////////////////////////////////////////////////////////////
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void TUnit::execute(void)
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{
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LOG(Message) << "Creating unit gauge configuration" << std::endl;
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LatticeGaugeField &U = *env().createLattice<LatticeGaugeField>(getName());
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auto &U = mGetObj(LatticeGaugeField, getName());
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SU3::ColdConfiguration(*env().get4dRng(), U);
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}
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@ -100,17 +100,12 @@ std::vector<std::string> TRBPrecCG<FImpl>::getOutput(void)
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template <typename FImpl>
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void TRBPrecCG<FImpl>::setup(void)
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{
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auto Ls = env().getObjectLs(par().action);
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env().registerObject(getName(), 0, Ls);
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env().addOwnership(getName(), par().action);
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}
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LOG(Message) << "setting up Schur red-black preconditioned CG for"
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<< " action '" << par().action << "' with residual "
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<< par().residual << std::endl;
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// execution ///////////////////////////////////////////////////////////////////
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template <typename FImpl>
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void TRBPrecCG<FImpl>::execute(void)
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{
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auto &mat = *(env().template getObject<FMat>(par().action));
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auto Ls = env().getObjectLs(par().action);
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auto &mat = mGetObj(FMat, par().action);
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auto solver = [&mat, this](FermionField &sol, const FermionField &source)
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{
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ConjugateGradient<FermionField> cg(par().residual, 10000);
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@ -118,13 +113,15 @@ void TRBPrecCG<FImpl>::execute(void)
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schurSolver(mat, source, sol);
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};
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LOG(Message) << "setting up Schur red-black preconditioned CG for"
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<< " action '" << par().action << "' with residual "
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<< par().residual << std::endl;
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env().setObject(getName(), new SolverFn(solver));
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mCreateObj(SolverFn, getName(), Ls, solver);
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env().addOwnership(getName(), par().action);
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}
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// execution ///////////////////////////////////////////////////////////////////
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template <typename FImpl>
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void TRBPrecCG<FImpl>::execute(void)
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{}
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END_MODULE_NAMESPACE
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END_HADRONS_NAMESPACE
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