486 lines
14 KiB
C
486 lines
14 KiB
C
/*
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* This file is part of libsharp.
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*
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* libsharp 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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*
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* libsharp 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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*
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* You should have received a copy of the GNU General Public License
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* along with libsharp; if not, write to the Free Software
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* Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
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*/
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/*
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* libsharp is being developed at the Max-Planck-Institut fuer Astrophysik
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* and financially supported by the Deutsches Zentrum fuer Luft- und Raumfahrt
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* (DLR).
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*/
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/*! \file sharp_core.c
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* Computational core
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*
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* Copyright (C) 2012-2013 Max-Planck-Society
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* \author Martin Reinecke
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*/
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#include <complex.h>
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#include <math.h>
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#include <string.h>
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#include "sharp_vecsupport.h"
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#include "sharp_complex_hacks.h"
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#include "sharp.h"
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#include "sharp_core.h"
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#include "c_utils.h"
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typedef complex double dcmplx;
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#define nvec (256/VLEN)
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typedef union
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{ Tv v; double s[VLEN]; } Tvu;
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typedef struct
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{ Tv v[nvec]; } Tb;
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typedef union
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{ Tb b; double s[VLEN*nvec]; } Tbu;
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typedef struct
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{ Tb r, i; } Tbri;
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typedef struct
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{ double r[VLEN*nvec], i[VLEN*nvec]; } Tsri;
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typedef union
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{ Tbri b; Tsri s; } Tburi;
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static void Tvnormalize (Tv * restrict val, Tv * restrict scale,
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double maxval)
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{
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const Tv vfmin=vload(sharp_fsmall*maxval), vfmax=vload(maxval);
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const Tv vfsmall=vload(sharp_fsmall), vfbig=vload(sharp_fbig);
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Tm mask = vgt(vabs(*val),vfmax);
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while (vanyTrue(mask))
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{
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vmuleq_mask(mask,*val,vfsmall);
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vaddeq_mask(mask,*scale,vone);
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mask = vgt(vabs(*val),vfmax);
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}
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mask = vand_mask(vlt(vabs(*val),vfmin),vne(*val,vzero));
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while (vanyTrue(mask))
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{
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vmuleq_mask(mask,*val,vfbig);
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vsubeq_mask(mask,*scale,vone);
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mask = vand_mask(vlt(vabs(*val),vfmin),vne(*val,vzero));
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}
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}
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static void mypow(Tv val, int npow, const double * restrict powlimit,
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Tv * restrict resd, Tv * restrict ress)
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{
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Tv vminv=vload(powlimit[npow]);
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Tv res=vone;
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Tm mask = vlt(vabs(val),vminv);
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if (!vanyTrue(mask)) // no underflows possible, use quick algoritm
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{
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Tv res=vone;
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do
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{
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if (npow&1)
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vmuleq(res,val);
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vmuleq(val,val);
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}
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while(npow>>=1);
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*resd=res;
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*ress=vzero;
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}
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else
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{
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Tv scale=vzero, scaleint=vzero, res=vone;
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Tvnormalize(&val,&scaleint,sharp_fbighalf);
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do
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{
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if (npow&1)
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{
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vmuleq(res,val);
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vaddeq(scale,scaleint);
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Tvnormalize(&res,&scale,sharp_fbighalf);
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}
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vmuleq(val,val);
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vaddeq(scaleint,scaleint);
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Tvnormalize(&val,&scaleint,sharp_fbighalf);
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}
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while(npow>>=1);
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*resd=res;
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*ress=scale;
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}
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}
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static void getCorfac(Tv scale, Tv * restrict corfac,
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const double * restrict cf)
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{
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Tvu sc, corf;
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sc.v=scale;
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for (int i=0; i<VLEN; ++i)
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corf.s[i] = (sc.s[i]<sharp_minscale) ?
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0. : cf[(int)(sc.s[i])-sharp_minscale];
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*corfac=corf.v;
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}
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NOINLINE static void iter_to_ieee (const Tb sth, Tb cth, int *l_,
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Tb * restrict lam_1, Tb * restrict lam_2, Tb * restrict scale,
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const sharp_Ylmgen_C * restrict gen, int nv2)
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{
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int l=gen->m;
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Tv mfac = vload((gen->m&1) ? -gen->mfac[gen->m]:gen->mfac[gen->m]);
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Tv fsmall=vload(sharp_fsmall), limscale=vload(sharp_limscale);
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int below_limit = 1;
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for (int i=0; i<nv2; ++i)
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{
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lam_1->v[i]=vzero;
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mypow(sth.v[i],l,gen->powlimit,&lam_2->v[i],&scale->v[i]);
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lam_2->v[i] *= mfac;
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Tvnormalize(&lam_2->v[i],&scale->v[i],sharp_ftol);
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below_limit &= vallTrue(vlt(scale->v[i],limscale));
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}
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while (below_limit)
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{
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if (l+2>gen->lmax) {*l_=gen->lmax+1;return;}
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below_limit=1;
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Tv r10=vload(gen->rf[l ].f[0]), r11=vload(gen->rf[l ].f[1]),
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r20=vload(gen->rf[l+1].f[0]), r21=vload(gen->rf[l+1].f[1]);
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for (int i=0; i<nv2; ++i)
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{
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lam_1->v[i] = r10*cth.v[i]*lam_2->v[i] - r11*lam_1->v[i];
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lam_2->v[i] = r20*cth.v[i]*lam_1->v[i] - r21*lam_2->v[i];
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Tm mask = vgt(vabs(lam_2->v[i]),vload(sharp_ftol));
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if (vanyTrue(mask))
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{
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vmuleq_mask(mask,lam_1->v[i],fsmall);
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vmuleq_mask(mask,lam_2->v[i],fsmall);
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vaddeq_mask(mask,scale->v[i],vone);
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below_limit &= vallTrue(vlt(scale->v[i],limscale));
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}
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}
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l+=2;
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}
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*l_=l;
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}
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NOINLINE static void alm2map_kernel(const Tb cth, Tbri * restrict p1,
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Tbri * restrict p2, Tb lam_1, Tb lam_2,
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const sharp_ylmgen_dbl2 * restrict rf, const dcmplx * restrict alm,
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int l, int lmax, int nv2)
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{
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while (l<=lmax)
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{
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Tv ar1=vload(creal(alm[l ])), ai1=vload(cimag(alm[l ]));
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Tv ar2=vload(creal(alm[l+1])), ai2=vload(cimag(alm[l+1]));
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Tv f10=vload(rf[l ].f[0]), f11=vload(rf[l ].f[1]),
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f20=vload(rf[l+1].f[0]), f21=vload(rf[l+1].f[1]);
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for (int i=0; i<nv2; ++i)
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{
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lam_1.v[i] = f10*cth.v[i]*lam_2.v[i] - f11*lam_1.v[i];
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vfmaeq(p1->r.v[i],lam_2.v[i],ar1);
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vfmaeq(p1->i.v[i],lam_2.v[i],ai1);
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lam_2.v[i] = f20*cth.v[i]*lam_1.v[i] - f21*lam_2.v[i];
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vfmaeq(p2->r.v[i],lam_1.v[i],ar2);
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vfmaeq(p2->i.v[i],lam_1.v[i],ai2);
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}
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l+=2;
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}
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}
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NOINLINE static void map2alm_kernel (const Tb cth,
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const Tbri * restrict p1, const Tbri * restrict p2, Tb lam_1, Tb lam_2,
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const sharp_ylmgen_dbl2 * restrict rf, dcmplx * restrict alm, int l,
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int lmax, int nv2)
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{
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while (l<=lmax)
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{
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Tv f10=vload(rf[l ].f[0]), f11=vload(rf[l ].f[1]),
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f20=vload(rf[l+1].f[0]), f21=vload(rf[l+1].f[1]);
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Tv atmp[4] = {vzero, vzero, vzero, vzero};
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for (int i=0; i<nv2; ++i)
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{
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lam_1.v[i] = f10*cth.v[i]*lam_2.v[i] - f11*lam_1.v[i];
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vfmaeq(atmp[0],lam_2.v[i],p1->r.v[i]);
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vfmaeq(atmp[1],lam_2.v[i],p1->i.v[i]);
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lam_2.v[i] = f20*cth.v[i]*lam_1.v[i] - f21*lam_2.v[i];
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vfmaeq(atmp[2],lam_1.v[i],p2->r.v[i]);
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vfmaeq(atmp[3],lam_1.v[i],p2->i.v[i]);
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}
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vhsum_cmplx_special (atmp[0], atmp[1], atmp[2], atmp[3], &alm[l]);
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l+=2;
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}
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}
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NOINLINE static void calc_alm2map (const Tb cth, const Tb sth,
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const sharp_Ylmgen_C *gen, sharp_job *job, Tbri * restrict p1,
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Tbri * restrict p2, int nth)
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{
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int l,lmax=gen->lmax;
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Tb lam_1,lam_2,scale;
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int nv2 = (nth+VLEN-1)/VLEN;
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iter_to_ieee(sth,cth,&l,&lam_1,&lam_2,&scale,gen,nv2);
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job->opcnt += (l-gen->m) * 4*nth;
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if (l>lmax) return;
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job->opcnt += (lmax+1-l) * 8*nth;
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const sharp_ylmgen_dbl2 * restrict rf = gen->rf;
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const dcmplx * restrict alm=job->almtmp;
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int full_ieee=1;
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Tb corfac;
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for (int i=0; i<nv2; ++i)
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{
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getCorfac(scale.v[i], &corfac.v[i], gen->cf);
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full_ieee &= vallTrue(vge(scale.v[i],vload(sharp_minscale)));
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}
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while((!full_ieee) && (l<=lmax))
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{
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Tv ar1=vload(creal(alm[l ])), ai1=vload(cimag(alm[l ]));
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Tv ar2=vload(creal(alm[l+1])), ai2=vload(cimag(alm[l+1]));
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Tv f10=vload(rf[l ].f[0]), f11=vload(rf[l ].f[1]),
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f20=vload(rf[l+1].f[0]), f21=vload(rf[l+1].f[1]);
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full_ieee=1;
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for (int i=0; i<nv2; ++i)
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{
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lam_1.v[i] = f10*cth.v[i]*lam_2.v[i] - f11*lam_1.v[i];
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vfmaeq(p1->r.v[i],lam_2.v[i]*corfac.v[i],ar1);
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vfmaeq(p1->i.v[i],lam_2.v[i]*corfac.v[i],ai1);
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lam_2.v[i] = f20*cth.v[i]*lam_1.v[i] - f21*lam_2.v[i];
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Tm mask = vgt(vabs(lam_2.v[i]),vload(sharp_ftol));
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if (vanyTrue(mask))
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{
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vmuleq_mask(mask,lam_1.v[i],vload(sharp_fsmall));
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vmuleq_mask(mask,lam_2.v[i],vload(sharp_fsmall));
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vaddeq_mask(mask,scale.v[i],vone);
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getCorfac(scale.v[i], &corfac.v[i], gen->cf);
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full_ieee &= vallTrue(vge(scale.v[i],vload(sharp_minscale)));
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}
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vfmaeq(p2->r.v[i],lam_1.v[i]*corfac.v[i],ar2);
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vfmaeq(p2->i.v[i],lam_1.v[i]*corfac.v[i],ai2);
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}
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l+=2;
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}
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if (l>lmax) return;
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for (int i=0; i<nv2; ++i)
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{
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lam_1.v[i] *= corfac.v[i];
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lam_2.v[i] *= corfac.v[i];
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}
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alm2map_kernel(cth, p1, p2, lam_1, lam_2, rf, alm, l, lmax, nv2);
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}
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NOINLINE static void calc_map2alm(const Tb cth, const Tb sth,
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const sharp_Ylmgen_C *gen, sharp_job *job, const Tbri * restrict p1,
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const Tbri * restrict p2, int nth)
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{
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int lmax=gen->lmax;
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Tb lam_1,lam_2,scale;
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int l=gen->m;
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int nv2 = (nth+VLEN-1)/VLEN;
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iter_to_ieee(sth,cth,&l,&lam_1,&lam_2,&scale,gen,nv2);
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job->opcnt += (l-gen->m) * 4*nth;
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if (l>lmax) return;
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job->opcnt += (lmax+1-l) * 8*nth;
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const sharp_ylmgen_dbl2 * restrict rf = gen->rf;
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dcmplx * restrict alm=job->almtmp;
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int full_ieee=1;
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Tb corfac;
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for (int i=0; i<nv2; ++i)
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{
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getCorfac(scale.v[i], &corfac.v[i], gen->cf);
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full_ieee &= vallTrue(vge(scale.v[i],vload(sharp_minscale)));
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}
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while ((!full_ieee) && (l<=lmax))
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{
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full_ieee=1;
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Tv f10=vload(rf[l ].f[0]), f11=vload(rf[l ].f[1]),
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f20=vload(rf[l+1].f[0]), f21=vload(rf[l+1].f[1]);
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Tv atmp[4] = {vzero, vzero, vzero, vzero};
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for (int i=0; i<nv2; ++i)
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{
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lam_1.v[i] = f10*cth.v[i]*lam_2.v[i] - f11*lam_1.v[i];
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vfmaeq(atmp[0],lam_2.v[i]*corfac.v[i],p1->r.v[i]);
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vfmaeq(atmp[1],lam_2.v[i]*corfac.v[i],p1->i.v[i]);
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lam_2.v[i] = f20*cth.v[i]*lam_1.v[i] - f21*lam_2.v[i];
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Tm mask = vgt(vabs(lam_2.v[i]),vload(sharp_ftol));
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if (vanyTrue(mask))
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{
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vmuleq_mask(mask,lam_1.v[i],vload(sharp_fsmall));
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vmuleq_mask(mask,lam_2.v[i],vload(sharp_fsmall));
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vaddeq_mask(mask,scale.v[i],vone);
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getCorfac(scale.v[i], &corfac.v[i], gen->cf);
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full_ieee &= vallTrue(vge(scale.v[i],vload(sharp_minscale)));
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}
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vfmaeq(atmp[2],lam_1.v[i]*corfac.v[i],p2->r.v[i]);
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vfmaeq(atmp[3],lam_1.v[i]*corfac.v[i],p2->i.v[i]);
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}
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vhsum_cmplx_special (atmp[0], atmp[1], atmp[2], atmp[3], &alm[l]);
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l+=2;
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}
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for (int i=0; i<nv2; ++i)
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{
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lam_1.v[i] *= corfac.v[i];
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lam_2.v[i] *= corfac.v[i];
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}
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map2alm_kernel(cth, p1, p2, lam_1, lam_2, rf, alm, l, lmax, nv2);
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}
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#define VZERO(var) do { memset(&(var),0,sizeof(var)); } while(0)
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NOINLINE static void inner_loop_a2m(sharp_job *job, const int *ispair,
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const double *cth_, const double *sth_, int llim, int ulim,
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sharp_Ylmgen_C *gen, int mi, const int *mlim)
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{
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const int nval=nvec*VLEN;
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const int m = job->ainfo->mval[mi];
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sharp_Ylmgen_prepare (gen, m);
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switch (job->type)
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{
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case SHARP_ALM2MAP:
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case SHARP_ALM2MAP_DERIV1:
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{
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if (job->spin==0)
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{
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int ith=0;
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int itgt[nvec*VLEN];
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while (ith<ulim-llim)
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{
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Tburi p1,p2; VZERO(p1); VZERO(p2);
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Tbu cth, sth;
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int nth=0;
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while ((nth<nval)&&(ith<ulim-llim))
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{
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if (mlim[ith]>=m)
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{
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itgt[nth] = ith;
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cth.s[nth]=cth_[ith]; sth.s[nth]=sth_[ith];
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++nth;
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}
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++ith;
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}
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if (nth>0)
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{
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int i2=((nth+VLEN-1)/VLEN)*VLEN;
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for (int i=nth; i<i2; ++i)
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{
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cth.s[i]=cth.s[nth-1];
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sth.s[i]=sth.s[nth-1];
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}
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calc_alm2map (cth.b,sth.b,gen,job,&p1.b,&p2.b,nth);
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for (int i=0; i<nth; ++i)
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{
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int tgt=itgt[i];
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int phas_idx = tgt*job->s_th + mi*job->s_m;
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complex double r1 = p1.s.r[i] + p1.s.i[i]*_Complex_I,
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r2 = p2.s.r[i] + p2.s.i[i]*_Complex_I;
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job->phase[phas_idx] = r1+r2;
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if (ispair[tgt])
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job->phase[phas_idx+1] = r1-r2;
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}
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}
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}
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}
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else
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{
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UTIL_FAIL("only spin==0 allowed at the moment");
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}
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break;
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}
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default:
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{
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UTIL_FAIL("must not happen");
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break;
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}
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}
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}
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NOINLINE static void inner_loop_m2a(sharp_job *job, const int *ispair,
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const double *cth_, const double *sth_, int llim, int ulim,
|
|
sharp_Ylmgen_C *gen, int mi, const int *mlim)
|
|
{
|
|
const int nval=nvec*VLEN;
|
|
const int m = job->ainfo->mval[mi];
|
|
sharp_Ylmgen_prepare (gen, m);
|
|
|
|
switch (job->type)
|
|
{
|
|
case SHARP_MAP2ALM:
|
|
{
|
|
if (job->spin==0)
|
|
{
|
|
int ith=0;
|
|
while (ith<ulim-llim)
|
|
{
|
|
Tburi p1,p2; VZERO(p1); VZERO(p2);
|
|
Tbu cth, sth;
|
|
int nth=0;
|
|
while ((nth<nval)&&(ith<ulim-llim))
|
|
{
|
|
if (mlim[ith]>=m)
|
|
{
|
|
cth.s[nth]=cth_[ith]; sth.s[nth]=sth_[ith];
|
|
int phas_idx = ith*job->s_th + mi*job->s_m;
|
|
dcmplx ph1=job->phase[phas_idx];
|
|
dcmplx ph2=ispair[ith] ? job->phase[phas_idx+1] : 0.;
|
|
p1.s.r[nth]=creal(ph1+ph2); p1.s.i[nth]=cimag(ph1+ph2);
|
|
p2.s.r[nth]=creal(ph1-ph2); p2.s.i[nth]=cimag(ph1-ph2);
|
|
++nth;
|
|
}
|
|
++ith;
|
|
}
|
|
if (nth>0)
|
|
calc_map2alm(cth.b,sth.b,gen,job,&p1.b,&p2.b, nth);
|
|
}
|
|
}
|
|
else
|
|
{
|
|
UTIL_FAIL("only spin==0 allowed at the moment");
|
|
}
|
|
break;
|
|
}
|
|
default:
|
|
{
|
|
UTIL_FAIL("must not happen");
|
|
break;
|
|
}
|
|
}
|
|
}
|
|
|
|
void inner_loop (sharp_job *job, const int *ispair,
|
|
const double *cth_, const double *sth_, int llim, int ulim,
|
|
sharp_Ylmgen_C *gen, int mi, const int *mlim)
|
|
{
|
|
(job->type==SHARP_MAP2ALM) ?
|
|
inner_loop_m2a(job,ispair,cth_,sth_,llim,ulim,gen,mi,mlim) :
|
|
inner_loop_a2m(job,ispair,cth_,sth_,llim,ulim,gen,mi,mlim);
|
|
}
|
|
|
|
#undef VZERO
|
|
|
|
int sharp_veclen(void)
|
|
{
|
|
return VLEN;
|
|
}
|
|
|
|
int sharp_max_nvec(void)
|
|
{
|
|
return nvec;
|
|
}
|