view src/fftw-3.3.3/mpi/rdft2-rank-geq2.c @ 83:ae30d91d2ffe

Replace these with versions built using an older toolset (so as to avoid ABI compatibilities when linking on Ubuntu 14.04 for packaging purposes)
author Chris Cannam
date Fri, 07 Feb 2020 11:51:13 +0000
parents 37bf6b4a2645
children
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/*
 * Copyright (c) 2003, 2007-11 Matteo Frigo
 * Copyright (c) 2003, 2007-11 Massachusetts Institute of Technology
 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License as published by
 * the Free Software Foundation; either version 2 of the License, or
 * (at your option) any later version.
 *
 * This program is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
 * GNU General Public License for more details.
 *
 * You should have received a copy of the GNU General Public License
 * along with this program; if not, write to the Free Software
 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA  02110-1301  USA
 *
 */

/* Complex RDFT2s of rank >= 2, for the case where we are distributed
   across the first dimension only, and the output is not transposed. */

#include "mpi-dft.h"
#include "mpi-rdft2.h"
#include "rdft.h"

typedef struct {
     solver super;
     int preserve_input; /* preserve input even if DESTROY_INPUT was passed */
} S;

typedef struct {
     plan_mpi_rdft2 super;

     plan *cld1, *cld2;
     INT vn;
     int preserve_input;
} P;

static void apply_r2c(const plan *ego_, R *I, R *O)
{
     const P *ego = (const P *) ego_;
     plan_rdft2 *cld1;
     plan_rdft *cld2;
     
     /* RDFT2 local dimensions */
     cld1 = (plan_rdft2 *) ego->cld1;
     if (ego->preserve_input) {
	  cld1->apply(ego->cld1, I, I+ego->vn, O, O+1);
	  I = O;
     }
     else
	  cld1->apply(ego->cld1, I, I+ego->vn, I, I+1);

     /* DFT non-local dimension (via dft-rank1-bigvec, usually): */
     cld2 = (plan_rdft *) ego->cld2;
     cld2->apply(ego->cld2, I, O);
}

static void apply_c2r(const plan *ego_, R *I, R *O)
{
     const P *ego = (const P *) ego_;
     plan_rdft2 *cld1;
     plan_rdft *cld2;
     
     /* DFT non-local dimension (via dft-rank1-bigvec, usually): */
     cld2 = (plan_rdft *) ego->cld2;
     cld2->apply(ego->cld2, I, O);

     /* RDFT2 local dimensions */
     cld1 = (plan_rdft2 *) ego->cld1;
     cld1->apply(ego->cld1, O, O+ego->vn, O, O+1);

}

static int applicable(const S *ego, const problem *p_,
		      const planner *plnr)
{
     const problem_mpi_rdft2 *p = (const problem_mpi_rdft2 *) p_;
     return (1
	     && p->sz->rnk > 1
	     && p->flags == 0 /* TRANSPOSED/SCRAMBLED_IN/OUT not supported */
	     && (!ego->preserve_input || (!NO_DESTROY_INPUTP(plnr)
					  && p->I != p->O
					  && p->kind == R2HC))
	     && XM(is_local_after)(1, p->sz, IB)
	     && XM(is_local_after)(1, p->sz, OB)
	     && (!NO_SLOWP(plnr) /* slow if rdft2-serial is applicable */
		 || !XM(rdft2_serial_applicable)(p))
	  );
}

static void awake(plan *ego_, enum wakefulness wakefulness)
{
     P *ego = (P *) ego_;
     X(plan_awake)(ego->cld1, wakefulness);
     X(plan_awake)(ego->cld2, wakefulness);
}

static void destroy(plan *ego_)
{
     P *ego = (P *) ego_;
     X(plan_destroy_internal)(ego->cld2);
     X(plan_destroy_internal)(ego->cld1);
}

static void print(const plan *ego_, printer *p)
{
     const P *ego = (const P *) ego_;
     p->print(p, "(mpi-rdft2-rank-geq2%s%(%p%)%(%p%))", 
	      ego->preserve_input==2 ?"/p":"", ego->cld1, ego->cld2);
}

static plan *mkplan(const solver *ego_, const problem *p_, planner *plnr)
{
     const S *ego = (const S *) ego_;
     const problem_mpi_rdft2 *p;
     P *pln;
     plan *cld1 = 0, *cld2 = 0;
     R *r0, *r1, *cr, *ci, *I, *O;
     tensor *sz;
     dtensor *sz2;
     int i, my_pe, n_pes;
     INT nrest;
     static const plan_adt padt = {
          XM(rdft2_solve), awake, print, destroy
     };

     UNUSED(ego);

     if (!applicable(ego, p_, plnr))
          return (plan *) 0;

     p = (const problem_mpi_rdft2 *) p_;

     I = p->I; O = p->O;
     if (p->kind == R2HC) {
          r1 = (r0 = p->I) + p->vn;
	  if (ego->preserve_input || NO_DESTROY_INPUTP(plnr)) {
	       ci = (cr = p->O) + 1;
	       I = O; 
	  }
	  else 
	       ci = (cr = p->I) + 1;
     }
     else {
          r1 = (r0 = p->O) + p->vn;
          ci = (cr = p->O) + 1;
     }

     MPI_Comm_rank(p->comm, &my_pe);
     MPI_Comm_size(p->comm, &n_pes);

     sz = X(mktensor)(p->sz->rnk - 1); /* tensor of last rnk-1 dimensions */
     i = p->sz->rnk - 2; A(i >= 0);
     sz->dims[i].is = sz->dims[i].os = 2 * p->vn;
     sz->dims[i].n = p->sz->dims[i+1].n / 2 + 1;
     for (--i; i >= 0; --i) {
	  sz->dims[i].n = p->sz->dims[i+1].n;
	  sz->dims[i].is = sz->dims[i].os = sz->dims[i+1].n * sz->dims[i+1].is;
     }
     nrest = X(tensor_sz)(sz);
     {
	  INT ivs = 1 + (p->kind == HC2R), ovs = 1 + (p->kind == R2HC);
          INT is = sz->dims[0].n * sz->dims[0].is;
          INT b = XM(block)(p->sz->dims[0].n, p->sz->dims[0].b[IB], my_pe);
	  sz->dims[p->sz->rnk - 2].n = p->sz->dims[p->sz->rnk - 1].n;
	  cld1 = X(mkplan_d)(plnr,
                             X(mkproblem_rdft2_d)(sz,
						  X(mktensor_2d)(b, is, is,
							        p->vn,ivs,ovs),
						  r0, r1, cr, ci, p->kind));
	  if (XM(any_true)(!cld1, p->comm)) goto nada;
     }

     sz2 = XM(mkdtensor)(1); /* tensor for first (distributed) dimension */
     sz2->dims[0] = p->sz->dims[0];
     cld2 = X(mkplan_d)(plnr, XM(mkproblem_dft_d)(sz2, nrest * p->vn,
						  I, O, p->comm, 
						  p->kind == R2HC ?
						  FFT_SIGN : -FFT_SIGN,
						  RANK1_BIGVEC_ONLY));
     if (XM(any_true)(!cld2, p->comm)) goto nada;

     pln = MKPLAN_MPI_RDFT2(P, &padt, p->kind == R2HC ? apply_r2c : apply_c2r);
     pln->cld1 = cld1;
     pln->cld2 = cld2;
     pln->preserve_input = ego->preserve_input ? 2 : NO_DESTROY_INPUTP(plnr);
     pln->vn = p->vn;

     X(ops_add)(&cld1->ops, &cld2->ops, &pln->super.super.ops);

     return &(pln->super.super);

 nada:
     X(plan_destroy_internal)(cld2);
     X(plan_destroy_internal)(cld1);
     return (plan *) 0;
}

static solver *mksolver(int preserve_input)
{
     static const solver_adt sadt = { PROBLEM_MPI_RDFT2, mkplan, 0 };
     S *slv = MKSOLVER(S, &sadt);
     slv->preserve_input = preserve_input;
     return &(slv->super);
}

void XM(rdft2_rank_geq2_register)(planner *p)
{
     int preserve_input;
     for (preserve_input = 0; preserve_input <= 1; ++preserve_input)
	  REGISTER_SOLVER(p, mksolver(preserve_input));
}