288 lines
		
	
	
		
			8.2 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
		
		
			
		
	
	
			288 lines
		
	
	
		
			8.2 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
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								/*
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								 * Copyright (c) 2003, 2007-14 Matteo Frigo
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								 * Copyright (c) 2003, 2007-14 Massachusetts Institute of Technology
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								 *
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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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								 *
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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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								 *
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								 * You should have received a copy of the GNU General Public License
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								 * along with this program; if not, write to the Free Software
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								 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA  02110-1301  USA
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								 *
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								 */
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								/* Real-input (r2c) DFTs of rank >= 2, for the case where we are distributed
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								   across the first dimension only, and the output is transposed both
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								   in data distribution and in ordering (for the first 2 dimensions).
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								   Conversely, real-output (c2r) DFTs where the input is transposed.
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								   We don't currently support transposed-input r2c or transposed-output
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								   c2r transforms. */
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								#include "mpi-rdft2.h"
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								#include "mpi-transpose.h"
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								#include "rdft/rdft.h"
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								#include "dft/dft.h"
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								typedef struct {
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								     solver super;
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								     int preserve_input; /* preserve input even if DESTROY_INPUT was passed */
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								} S;
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								typedef struct {
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								     plan_mpi_rdft2 super;
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								     plan *cld1, *cldt, *cld2;
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								     INT vn;
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								     int preserve_input;
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								} P;
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								static void apply_r2c(const plan *ego_, R *I, R *O)
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								{
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								     const P *ego = (const P *) ego_;
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								     plan_rdft2 *cld1;
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								     plan_dft *cld2;
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								     plan_rdft *cldt;
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								     /* RDFT2 local dimensions */
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								     cld1 = (plan_rdft2 *) ego->cld1;
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								     if (ego->preserve_input) {
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									  cld1->apply(ego->cld1, I, I+ego->vn, O, O+1);
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									  I = O;
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								     }
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								     else
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									  cld1->apply(ego->cld1, I, I+ego->vn, I, I+1);
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								     /* global transpose */
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								     cldt = (plan_rdft *) ego->cldt;
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								     cldt->apply(ego->cldt, I, O);
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								     /* DFT final local dimension */
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								     cld2 = (plan_dft *) ego->cld2;
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								     cld2->apply(ego->cld2, O, O+1, O, O+1);
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								}
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								static void apply_c2r(const plan *ego_, R *I, R *O)
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								{
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								     const P *ego = (const P *) ego_;
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								     plan_rdft2 *cld1;
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								     plan_dft *cld2;
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								     plan_rdft *cldt;
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								     /* IDFT local dimensions */
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								     cld2 = (plan_dft *) ego->cld2;
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								     if (ego->preserve_input) {
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									  cld2->apply(ego->cld2, I+1, I, O+1, O);
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									  I = O;
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								     }
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								     else
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									  cld2->apply(ego->cld2, I+1, I, I+1, I);
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								     /* global transpose */
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								     cldt = (plan_rdft *) ego->cldt;
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								     cldt->apply(ego->cldt, I, O);
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								     /* RDFT2 final local dimension */
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								     cld1 = (plan_rdft2 *) ego->cld1;
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								     cld1->apply(ego->cld1, O, O+ego->vn, O, O+1);
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								}
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								static int applicable(const S *ego, const problem *p_,
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										      const planner *plnr)
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								{
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								     const problem_mpi_rdft2 *p = (const problem_mpi_rdft2 *) p_;
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								     return (1
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									     && p->sz->rnk > 1
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									     && (!ego->preserve_input || (!NO_DESTROY_INPUTP(plnr)
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													  && p->I != p->O))
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									     && ((p->flags == TRANSPOSED_OUT && p->kind == R2HC
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										  && XM(is_local_after)(1, p->sz, IB)
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										  && XM(is_local_after)(2, p->sz, OB)
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										  && XM(num_blocks)(p->sz->dims[0].n, 
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												    p->sz->dims[0].b[OB]) == 1)
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										 || 
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										 (p->flags == TRANSPOSED_IN && p->kind == HC2R
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										  && XM(is_local_after)(1, p->sz, OB)
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										  && XM(is_local_after)(2, p->sz, IB)
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										  && XM(num_blocks)(p->sz->dims[0].n, 
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												    p->sz->dims[0].b[IB]) == 1))
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									     && (!NO_SLOWP(plnr) /* slow if rdft2-serial is applicable */
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										 || !XM(rdft2_serial_applicable)(p))
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									  );
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								}
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								static void awake(plan *ego_, enum wakefulness wakefulness)
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								{
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								     P *ego = (P *) ego_;
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								     X(plan_awake)(ego->cld1, wakefulness);
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								     X(plan_awake)(ego->cldt, wakefulness);
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								     X(plan_awake)(ego->cld2, wakefulness);
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								}
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								static void destroy(plan *ego_)
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								{
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								     P *ego = (P *) ego_;
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								     X(plan_destroy_internal)(ego->cld2);
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								     X(plan_destroy_internal)(ego->cldt);
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								     X(plan_destroy_internal)(ego->cld1);
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								}
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								static void print(const plan *ego_, printer *p)
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								{
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								     const P *ego = (const P *) ego_;
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								     p->print(p, "(mpi-rdft2-rank-geq2-transposed%s%(%p%)%(%p%)%(%p%))", 
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									      ego->preserve_input==2 ?"/p":"",
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									      ego->cld1, ego->cldt, ego->cld2);
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								}
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								static plan *mkplan(const solver *ego_, const problem *p_, planner *plnr)
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								{
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								     const S *ego = (const S *) ego_;
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								     const problem_mpi_rdft2 *p;
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								     P *pln;
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								     plan *cld1 = 0, *cldt = 0, *cld2 = 0;
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								     R *r0, *r1, *cr, *ci, *ri, *ii, *ro, *io, *I, *O;
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								     tensor *sz;
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								     int i, my_pe, n_pes;
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								     INT nrest, n1, b1;
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								     static const plan_adt padt = {
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								          XM(rdft2_solve), awake, print, destroy
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								     };
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								     block_kind k1, k2;
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								     UNUSED(ego);
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								     if (!applicable(ego, p_, plnr))
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								          return (plan *) 0;
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								     p = (const problem_mpi_rdft2 *) p_;
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								     I = p->I; O = p->O;
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								     if (p->kind == R2HC) {
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									  k1 = IB; k2 = OB;
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								          r1 = (r0 = I) + p->vn;
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									  if (ego->preserve_input || NO_DESTROY_INPUTP(plnr)) {
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									       ci = (cr = O) + 1;
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									       I = O; 
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									  }
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									  else 
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									       ci = (cr = I) + 1;
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									  io = ii = (ro = ri = O) + 1;
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								     }
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								     else {
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									  k1 = OB; k2 = IB;
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									  r1 = (r0 = O) + p->vn;
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									  ci = (cr = O) + 1;
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									  if (ego->preserve_input || NO_DESTROY_INPUTP(plnr)) {
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									       ri = (ii = I) + 1;
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									       ro = (io = O) + 1;
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									       I = O;
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									  }
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									  else
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									       ro = ri = (io = ii = I) + 1;
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								     }
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								     MPI_Comm_rank(p->comm, &my_pe);
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								     MPI_Comm_size(p->comm, &n_pes);
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								     sz = X(mktensor)(p->sz->rnk - 1); /* tensor of last rnk-1 dimensions */
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								     i = p->sz->rnk - 2; A(i >= 0);
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								     sz->dims[i].n = p->sz->dims[i+1].n / 2 + 1;
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								     sz->dims[i].is = sz->dims[i].os = 2 * p->vn;
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								     for (--i; i >= 0; --i) {
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									  sz->dims[i].n = p->sz->dims[i+1].n;
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									  sz->dims[i].is = sz->dims[i].os = sz->dims[i+1].n * sz->dims[i+1].is;
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								     }
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								     nrest = 1; for (i = 1; i < sz->rnk; ++i) nrest *= sz->dims[i].n;
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								     {
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									  INT ivs = 1 + (p->kind == HC2R), ovs = 1 + (p->kind == R2HC);
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								          INT is = sz->dims[0].n * sz->dims[0].is;
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								          INT b = XM(block)(p->sz->dims[0].n, p->sz->dims[0].b[k1], my_pe);
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									  sz->dims[p->sz->rnk - 2].n = p->sz->dims[p->sz->rnk - 1].n;
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									  cld1 = X(mkplan_d)(plnr,
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								                             X(mkproblem_rdft2_d)(sz,
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														  X(mktensor_2d)(b, is, is,
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																p->vn,ivs,ovs),
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														  r0, r1, cr, ci, p->kind));
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									  if (XM(any_true)(!cld1, p->comm)) goto nada;
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								     }
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								     nrest *= p->vn;
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								     n1 = p->sz->dims[1].n;
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								     b1 = p->sz->dims[1].b[k2];
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								     if (p->sz->rnk == 2) { /* n1 dimension is cut in ~half */
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									  n1 = n1 / 2 + 1;
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									  b1 = b1 == p->sz->dims[1].n ? n1 : b1;
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								     }
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								     if (p->kind == R2HC)
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									  cldt = X(mkplan_d)(plnr,
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											     XM(mkproblem_transpose)(
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												  p->sz->dims[0].n, n1, nrest * 2,
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												  I, O,
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												  p->sz->dims[0].b[IB], b1,
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												  p->comm, 0));
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								     else
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									  cldt = X(mkplan_d)(plnr,
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											     XM(mkproblem_transpose)(
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												  n1, p->sz->dims[0].n, nrest * 2,
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												  I, O,
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												  b1, p->sz->dims[0].b[OB], 
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												  p->comm, 0));
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								     if (XM(any_true)(!cldt, p->comm)) goto nada;
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								     {
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									  INT is = p->sz->dims[0].n * nrest * 2;
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| 
								 | 
							
									  INT b = XM(block)(n1, b1, my_pe);
							 | 
						||
| 
								 | 
							
									  cld2 = X(mkplan_d)(plnr,
							 | 
						||
| 
								 | 
							
											     X(mkproblem_dft_d)(X(mktensor_1d)(
							 | 
						||
| 
								 | 
							
														     p->sz->dims[0].n,
							 | 
						||
| 
								 | 
							
														     nrest * 2, nrest * 2),
							 | 
						||
| 
								 | 
							
														X(mktensor_2d)(b, is, is,
							 | 
						||
| 
								 | 
							
															       nrest, 2, 2),
							 | 
						||
| 
								 | 
							
														ri, ii, ro, io));
							 | 
						||
| 
								 | 
							
									  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->cldt = cldt;
							 | 
						||
| 
								 | 
							
								     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);
							 | 
						||
| 
								 | 
							
								     X(ops_add2)(&cldt->ops, &pln->super.super.ops);
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								     return &(pln->super.super);
							 | 
						||
| 
								 | 
							
								
							 | 
						||
| 
								 | 
							
								 nada:
							 | 
						||
| 
								 | 
							
								     X(plan_destroy_internal)(cld2);
							 | 
						||
| 
								 | 
							
								     X(plan_destroy_internal)(cldt);
							 | 
						||
| 
								 | 
							
								     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_transposed_register)(planner *p)
							 | 
						||
| 
								 | 
							
								{
							 | 
						||
| 
								 | 
							
								     int preserve_input;
							 | 
						||
| 
								 | 
							
								     for (preserve_input = 0; preserve_input <= 1; ++preserve_input)
							 | 
						||
| 
								 | 
							
									  REGISTER_SOLVER(p, mksolver(preserve_input));
							 | 
						||
| 
								 | 
							
								}
							 |