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SetMass should be implemented universially
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Grid/algorithms/iterative/Reconstruct5Dprop.h
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139
Grid/algorithms/iterative/Reconstruct5Dprop.h
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/*************************************************************************************
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Grid physics library, www.github.com/paboyle/Grid
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Source file: ./lib/algorithms/iterative/SchurRedBlack.h
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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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#pragma once
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namespace Grid {
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namespace QCD {
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template<class Field> class Reconstruct5DfromPhysical {
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private:
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OperatorFunction<Field> & _PauliVillarsSolver;
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public:
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/////////////////////////////////////////////////////
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// Wrap the usual normal equations Schur trick
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/////////////////////////////////////////////////////
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Reconstruct5DfromPhysical(OperatorFunction<Field> &PauliVillarsSolver) :
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_PauliVillarsSolver(PauliVillarsSolver)
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{ };
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/*
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void SliceDump(const Field &f)
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{
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std::vector<TComplex> C1;
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Field ff(f._grid);
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Gamma G5 ( Gamma::Algebra::Gamma5);
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ff= f+ G5*f;
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ff=ff*0.5;
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{
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auto ip = localInnerProduct(ff,ff);
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sliceSum(ip,C1,0);
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for(int s=0;s<C1.size();s++){
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std::cout << " P+ C[" <<s<<"] = "<<C1[s]<<std::endl;
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}
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}
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ff= f- G5*f;
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ff=ff*0.5;
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{
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auto ip = localInnerProduct(ff,ff);
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sliceSum(ip,C1,0);
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for(int s=0;s<C1.size();s++){
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std::cout << " P- C[" <<s<<"] = "<<C1[s]<<std::endl;
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}
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}
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}
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*/
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template<class Matrix>
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void operator() (Matrix & _Matrix,const Field &sol4,const Field &src4, Field &sol5){
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int Ls = _Matrix.Ls;
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RealD m = _Matrix.Mass();
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Field psi4(_Matrix.GaugeGrid());
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Field psi(_Matrix.FermionGrid());
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Field A (_Matrix.FermionGrid());
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Field B (_Matrix.FermionGrid());
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Field c (_Matrix.FermionGrid());
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Field b (_Matrix.FermionGrid());
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typedef typename Matrix::Coeff_t Coeff_t;
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MdagMLinearOperator<Matrix,Field> HermOp(_Matrix);
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///////////////////////////////////////
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//Import source, include Dminus factors
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///////////////////////////////////////
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_Matrix.ImportPhysicalFermionSource(src4,b); // Includes D_- factor
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///////////////////////////////////////
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// Set up c from src4
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///////////////////////////////////////
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std::cout << GridLogMessage<< " ************************************************" << std::endl;
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std::cout << GridLogMessage<< " Reconstrucing 5D propagator using Pauli Villars" << std::endl;
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std::cout << GridLogMessage<< " ************************************************" << std::endl;
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_Matrix.SetMass(1.0); // PauliVillars mass
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_Matrix.Mdag(b,B); _PauliVillarsSolver(HermOp,B,A);
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_Matrix.Pdag(A,c);
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_Matrix.SetMass(m); // Back to physical mass
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//////////////////////////////////////
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// Build Pdag PV^-1 Dm P [-sol4,c2,c3... cL]
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//////////////////////////////////////
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psi4 = - sol4;
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InsertSlice(psi4, psi, 0 , 0);
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for (int s=1;s<Ls;s++) {
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ExtractSlice(psi4,c,s,0);
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InsertSlice(psi4,psi,s,0);
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}
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// Pdag PV^-1 Dm P
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_Matrix.P(psi,B);
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_Matrix.M(B,A);
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// PauliVillars invert
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_Matrix.SetMass(1.0);
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_Matrix.Mdag(A,B); _PauliVillarsSolver(HermOp,B,A);
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_Matrix.SetMass(m);
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_Matrix.Pdag(A,B);
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InsertSlice(sol4,B,0,0);
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// Convert from y back to x with P+ circular shift
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_Matrix.P(B,sol5);
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}
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};
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}
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}
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@ -68,6 +68,7 @@ namespace Grid {
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virtual int ConstEE(void) { return 1; }; // clover returns zero as EE depends on gauge field
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virtual int ConstEE(void) { return 1; }; // clover returns zero as EE depends on gauge field
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virtual int isTrivialEE(void) { return 0; };
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virtual int isTrivialEE(void) { return 0; };
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virtual RealD Mass(void) {return 0.0;};
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virtual RealD Mass(void) {return 0.0;};
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virtual void SetMass(RealD _mass) { return; };
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// half checkerboard operaions
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// half checkerboard operaions
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virtual void Meooe (const FermionField &in, FermionField &out)=0;
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virtual void Meooe (const FermionField &in, FermionField &out)=0;
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