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FFTW test ran over 4 mpi processes.
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198
lib/FFT.h
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198
lib/FFT.h
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@ -0,0 +1,198 @@
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/*************************************************************************************
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Grid physics library, www.github.com/paboyle/Grid
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Source file: ./lib/Cshift.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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#ifndef _GRID_FFT_H_
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#define _GRID_FFT_H_
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#include <Grid/fftw/fftw3.h>
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namespace Grid {
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class FFT {
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private:
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GridCartesian *vgrid;
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GridCartesian *sgrid;
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int Nd;
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std::vector<int> dimensions;
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std::vector<int> processors;
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std::vector<int> processor_coor;
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public:
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static const int forward=FFTW_FORWARD;
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static const int backward=FFTW_BACKWARD;
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FFT ( GridCartesian * grid ) :
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vgrid(grid),
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Nd(grid->_ndimension),
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dimensions(grid->_fdimensions),
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processors(grid->_processors),
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processor_coor(grid->_processor_coor)
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{
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std::vector<int> layout(Nd,1);
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sgrid = new GridCartesian(dimensions,layout,processors);
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};
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~FFT ( void) {
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delete sgrid;
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}
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template<class vobj>
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void FFT_dim(Lattice<vobj> &result,const Lattice<vobj> &source,int dim, int inverse){
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conformable(result._grid,vgrid);
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conformable(source._grid,vgrid);
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int L = vgrid->_ldimensions[dim];
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int G = vgrid->_fdimensions[dim];
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std::vector<int> layout(Nd,1);
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std::vector<int> pencil_gd(vgrid->_fdimensions);
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std::vector<int> pencil_ld(processors);
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pencil_gd[dim] = G*processors[dim];
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pencil_ld[dim] = G*processors[dim];
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// Pencil global vol LxLxGxLxL per node
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GridCartesian pencil_g(pencil_gd,layout,processors);
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GridCartesian pencil_l(pencil_ld,layout,processors);
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// Construct pencils
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typedef typename vobj::scalar_object sobj;
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Lattice<vobj> ssource(vgrid); ssource =source;
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Lattice<sobj> pgsource(&pencil_g);
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Lattice<sobj> pgresult(&pencil_g);
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Lattice<sobj> plsource(&pencil_l);
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Lattice<sobj> plresult(&pencil_l);
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{
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assert(sizeof(typename sobj::scalar_type)==sizeof(ComplexD));
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assert(sizeof(fftw_complex)==sizeof(ComplexD));
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assert(sizeof(fftw_complex)==sizeof(ComplexD));
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int Ncomp = sizeof(sobj)/sizeof(fftw_complex);
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std::cout << "Ncomp = "<<Ncomp<<std::endl;
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int rank = 1; /* not 2: we are computing 1d transforms */
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int n[] = {G}; /* 1d transforms of length G */
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int howmany = Ncomp;
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int odist,idist,istride,ostride;
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idist = odist = 1;
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istride = ostride = Ncomp; /* distance between two elements in the same column */
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int *inembed = n, *onembed = n;
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fftw_complex *in = (fftw_complex *)&plsource._odata[0];
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fftw_complex *out= (fftw_complex *)&plresult._odata[0];
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int sign = FFTW_FORWARD;
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if (inverse) sign = FFTW_BACKWARD;
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fftw_plan p = fftw_plan_many_dft(rank,n,howmany,
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in,inembed,
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istride,idist,
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out,onembed,
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ostride, odist,
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sign,FFTW_ESTIMATE);
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// Barrel shift and collect global pencil
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for(int p=0;p<processors[dim];p++) {
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for(int idx=0;idx<sgrid->lSites();idx++) {
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std::vector<int> lcoor(Nd);
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sgrid->LocalIndexToLocalCoor(idx,lcoor);
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sobj s;
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peekLocalSite(s,ssource,lcoor);
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lcoor[dim]+=p*L;
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pokeLocalSite(s,pgsource,lcoor);
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}
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ssource = Cshift(ssource,dim,L);
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}
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std::cout << " pgsource pencil " << pgsource<<std::endl ;
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// Loop over orthog coords
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for(int idx=0;idx<sgrid->lSites();idx++) {
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std::vector<int> pcoor(Nd,0);
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std::vector<int> lcoor(Nd);
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sgrid->LocalIndexToLocalCoor(idx,lcoor);
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if ( lcoor[dim] == 0 ) { // restricts loop to plane at lcoor[dim]==0
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// Project to local pencil array
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for(int l=0;l<G;l++){
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sobj s;
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pcoor[dim]=l;
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lcoor[dim]=l;
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peekLocalSite(s,pgsource,lcoor);
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pokeLocalSite(s,plsource,pcoor);
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}
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if ( idx==0) {
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std::cout << " plsource pencil " << pgsource<<std::endl ;
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}
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// FFT the pencil
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fftw_execute(p);
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// Extract the result
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for(int l=0;l<L;l++){
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sobj s;
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int p = processor_coor[dim];
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lcoor[dim] = l;
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pcoor[dim] = l+L*p;
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peekLocalSite(s,plresult,pcoor);
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pokeLocalSite(s,result,lcoor);
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}
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}
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}
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fftw_destroy_plan(p);
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}
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}
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};
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}
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#endif
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@ -68,6 +68,7 @@ Author: paboyle <paboyle@ph.ed.ac.uk>
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#include <Grid/Simd.h>
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#include <Grid/Threads.h>
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#include <Grid/Lexicographic.h>
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#include <Grid/Init.h>
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#include <Grid/Communicator.h>
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#include <Grid/Cartesian.h>
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#include <Grid/Tensors.h>
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@ -78,7 +79,8 @@ Author: paboyle <paboyle@ph.ed.ac.uk>
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#include <Grid/parallelIO/BinaryIO.h>
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#include <Grid/qcd/QCD.h>
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#include <Grid/parallelIO/NerscIO.h>
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#include <Grid/Init.h>
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#include <Grid/FFT.h>
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#include <Grid/qcd/hmc/NerscCheckpointer.h>
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#include <Grid/qcd/hmc/HmcRunner.h>
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@ -349,7 +349,7 @@ void localConvert(const Lattice<vobj> &in,Lattice<vvobj> &out)
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assert(ig->_ldimensions[d] == og->_ldimensions[d]);
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}
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PARALLEL_FOR_LOOP
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//PARALLEL_FOR_LOOP
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for(int idx=0;idx<ig->lSites();idx++){
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std::vector<int> lcoor(ni);
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ig->LocalIndexToLocalCoor(idx,lcoor);
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@ -446,6 +446,79 @@ void ExtractSlice(Lattice<vobj> &lowDim, Lattice<vobj> & higherDim,int slice, in
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}
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template<class vobj>
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void InsertSliceLocal(Lattice<vobj> &lowDim, Lattice<vobj> & higherDim,int slice_lo,int slice_hi, int orthog)
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{
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typedef typename vobj::scalar_object sobj;
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sobj s;
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GridBase *lg = lowDim._grid;
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GridBase *hg = higherDim._grid;
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int nl = lg->_ndimension;
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int nh = hg->_ndimension;
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assert(nl == nh);
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assert(orthog<nh);
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assert(orthog>=0);
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for(int d=0;d<nh;d++){
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assert(lg->_processors[d] == hg->_processors[d]);
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assert(lg->_ldimensions[d] == hg->_ldimensions[d]);
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}
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// the above should guarantee that the operations are local
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//PARALLEL_FOR_LOOP
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for(int idx=0;idx<lg->lSites();idx++){
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std::vector<int> lcoor(nl);
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std::vector<int> hcoor(nh);
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lg->LocalIndexToLocalCoor(idx,lcoor);
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if( lcoor[orthog] == slice_lo ) {
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hcoor=lcoor;
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hcoor[orthog] = slice_hi;
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peekLocalSite(s,lowDim,lcoor);
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pokeLocalSite(s,higherDim,hcoor);
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}
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}
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}
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template<class vobj>
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void ExtractSliceLocal(Lattice<vobj> &lowDim, Lattice<vobj> & higherDim,int slice_lo,int slice_hi, int orthog)
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{
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typedef typename vobj::scalar_object sobj;
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sobj s;
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GridBase *lg = lowDim._grid;
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GridBase *hg = higherDim._grid;
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int nl = lg->_ndimension;
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int nh = hg->_ndimension;
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assert(nl == nh);
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assert(orthog<nh);
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assert(orthog>=0);
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for(int d=0;d<nh;d++){
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assert(lg->_processors[d] == hg->_processors[d]);
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assert(lg->_ldimensions[d] == hg->_ldimensions[d]);
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}
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// the above should guarantee that the operations are local
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//PARALLEL_FOR_LOOP
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for(int idx=0;idx<lg->lSites();idx++){
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std::vector<int> lcoor(nl);
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std::vector<int> hcoor(nh);
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lg->LocalIndexToLocalCoor(idx,lcoor);
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if( lcoor[orthog] == slice_lo ) {
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hcoor=lcoor;
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hcoor[orthog] = slice_hi;
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peekLocalSite(s,higherDim,hcoor);
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pokeLocalSite(s,lowDim,lcoor);
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}
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}
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}
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template<class vobj>
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void Replicate(Lattice<vobj> &coarse,Lattice<vobj> & fine)
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{
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@ -388,6 +388,12 @@ class Grid_simd {
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}; // end of Grid_simd class definition
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inline void permute(ComplexD &y,ComplexD b, int perm) { y=b; }
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inline void permute(ComplexF &y,ComplexF b, int perm) { y=b; }
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inline void permute(RealD &y,RealD b, int perm) { y=b; }
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inline void permute(RealF &y,RealF b, int perm) { y=b; }
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////////////////////////////////////////////////////////////////////
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// General rotate
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////////////////////////////////////////////////////////////////////
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@ -67,15 +67,13 @@ template <class scalar>
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struct AsinRealFunctor {
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scalar operator()(const scalar &a) const { return asin(real(a)); }
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};
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template <class scalar>
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struct LogRealFunctor {
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scalar operator()(const scalar &a) const { return log(real(a)); }
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};
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template <class scalar>
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struct ExpRealFunctor {
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scalar operator()(const scalar &a) const { return exp(real(a)); }
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struct ExpFunctor {
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scalar operator()(const scalar &a) const { return exp(a); }
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};
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template <class scalar>
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struct NotFunctor {
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@ -85,7 +83,6 @@ template <class scalar>
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struct AbsRealFunctor {
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scalar operator()(const scalar &a) const { return std::abs(real(a)); }
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};
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template <class scalar>
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struct PowRealFunctor {
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double y;
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@ -135,7 +132,6 @@ template <class Scalar>
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inline Scalar rsqrt(const Scalar &r) {
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return (RSqrtRealFunctor<Scalar>(), r);
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}
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template <class S, class V>
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inline Grid_simd<S, V> cos(const Grid_simd<S, V> &r) {
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return SimdApply(CosRealFunctor<S>(), r);
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@ -162,7 +158,7 @@ inline Grid_simd<S, V> abs(const Grid_simd<S, V> &r) {
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}
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template <class S, class V>
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inline Grid_simd<S, V> exp(const Grid_simd<S, V> &r) {
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return SimdApply(ExpRealFunctor<S>(), r);
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return SimdApply(ExpFunctor<S>(), r);
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}
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template <class S, class V>
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inline Grid_simd<S, V> Not(const Grid_simd<S, V> &r) {
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@ -36,6 +36,7 @@ template<class obj> inline auto func(const iScalar<obj> &z) -> iScalar<obj>\
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{\
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iScalar<obj> ret;\
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ret._internal = func( (z._internal));\
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std::cout << "Unary "<<#func<<" " << z._internal <<" -> "<< ret._internal <<" "<< typeid(obj).name() <<std::endl; \
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return ret;\
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}\
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template<class obj,int N> inline auto func(const iVector<obj,N> &z) -> iVector<obj,N>\
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87
tests/core/Test_fft.cc
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87
tests/core/Test_fft.cc
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/*************************************************************************************
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Grid physics library, www.github.com/paboyle/Grid
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Source file: ./tests/Test_cshift.cc
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Copyright (C) 2015
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Author: Azusa Yamaguchi <ayamaguc@staffmail.ed.ac.uk>
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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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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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Grid_init(&argc,&argv);
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std::vector<int> latt_size = GridDefaultLatt();
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std::vector<int> simd_layout( { vComplexD::Nsimd(),1,1,1});
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std::vector<int> mpi_layout = GridDefaultMpi();
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GridCartesian Fine(latt_size,simd_layout,mpi_layout);
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LatticeComplexD one(&Fine);
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LatticeComplexD zz(&Fine);
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LatticeComplexD C(&Fine);
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LatticeComplexD Ctilde(&Fine);
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LatticeComplexD coor(&Fine);
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std::vector<RealD> p({1.0,2.0,3.0,2.0});
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one = ComplexD(1.0,0.0);
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zz = ComplexD(0.0,0.0);
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ComplexD ci(0.0,1.0);
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C=zero;
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for(int mu=0;mu<4;mu++){
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RealD TwoPiL = M_PI * 2.0/ latt_size[mu];
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LatticeCoordinate(coor,mu);
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C = C - TwoPiL * p[mu] * coor;
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}
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std::cout << GridLogMessage<< " C " << C<<std::endl;
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C = C*ci;
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std::cout << GridLogMessage<< " C " << C<<std::endl;
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C = exp(C);
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std::cout << GridLogMessage<< " C " << C<<std::endl;
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FFT theFFT(&Fine);
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theFFT.FFT_dim(Ctilde,C,0,FFT::forward);
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std::cout << GridLogMessage<< "FT[C] " << Ctilde<<std::endl;
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C=Ctilde;
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theFFT.FFT_dim(Ctilde,C,1,FFT::forward);
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std::cout << GridLogMessage<< "FT[C] " << Ctilde<<std::endl;
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C=Ctilde;
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theFFT.FFT_dim(Ctilde,C,2,FFT::forward);
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std::cout << GridLogMessage<< "FT[C] " << Ctilde<<std::endl;
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C=Ctilde;
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theFFT.FFT_dim(Ctilde,C,3,FFT::forward);
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std::cout << GridLogMessage<< "FT[C] " << Ctilde<<std::endl;
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Grid_finalize();
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}
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