annotate src/fftw-3.3.5/mpi/rdft-rank1-bigvec.c @ 169:223a55898ab9 tip default

Add null config files
author Chris Cannam <cannam@all-day-breakfast.com>
date Mon, 02 Mar 2020 14:03:47 +0000
parents 7867fa7e1b6b
children
rev   line source
cannam@127 1 /*
cannam@127 2 * Copyright (c) 2003, 2007-14 Matteo Frigo
cannam@127 3 * Copyright (c) 2003, 2007-14 Massachusetts Institute of Technology
cannam@127 4 *
cannam@127 5 * This program is free software; you can redistribute it and/or modify
cannam@127 6 * it under the terms of the GNU General Public License as published by
cannam@127 7 * the Free Software Foundation; either version 2 of the License, or
cannam@127 8 * (at your option) any later version.
cannam@127 9 *
cannam@127 10 * This program is distributed in the hope that it will be useful,
cannam@127 11 * but WITHOUT ANY WARRANTY; without even the implied warranty of
cannam@127 12 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
cannam@127 13 * GNU General Public License for more details.
cannam@127 14 *
cannam@127 15 * You should have received a copy of the GNU General Public License
cannam@127 16 * along with this program; if not, write to the Free Software
cannam@127 17 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
cannam@127 18 *
cannam@127 19 */
cannam@127 20
cannam@127 21 /* Complex RDFTs of rank == 1 when the vector length vn is >= # processes.
cannam@127 22 In this case, we don't need to use a six-step type algorithm, and can
cannam@127 23 instead transpose the RDFT dimension with the vector dimension to
cannam@127 24 make the RDFT local. */
cannam@127 25
cannam@127 26 #include "mpi-rdft.h"
cannam@127 27 #include "mpi-transpose.h"
cannam@127 28
cannam@127 29 typedef struct {
cannam@127 30 solver super;
cannam@127 31 int preserve_input; /* preserve input even if DESTROY_INPUT was passed */
cannam@127 32 rearrangement rearrange;
cannam@127 33 } S;
cannam@127 34
cannam@127 35 typedef struct {
cannam@127 36 plan_mpi_rdft super;
cannam@127 37
cannam@127 38 plan *cldt_before, *cld, *cldt_after;
cannam@127 39 int preserve_input;
cannam@127 40 rearrangement rearrange;
cannam@127 41 } P;
cannam@127 42
cannam@127 43 static void apply(const plan *ego_, R *I, R *O)
cannam@127 44 {
cannam@127 45 const P *ego = (const P *) ego_;
cannam@127 46 plan_rdft *cld, *cldt_before, *cldt_after;
cannam@127 47
cannam@127 48 /* global transpose */
cannam@127 49 cldt_before = (plan_rdft *) ego->cldt_before;
cannam@127 50 cldt_before->apply(ego->cldt_before, I, O);
cannam@127 51
cannam@127 52 if (ego->preserve_input) I = O;
cannam@127 53
cannam@127 54 /* 1d RDFT(s) */
cannam@127 55 cld = (plan_rdft *) ego->cld;
cannam@127 56 cld->apply(ego->cld, O, I);
cannam@127 57
cannam@127 58 /* global transpose */
cannam@127 59 cldt_after = (plan_rdft *) ego->cldt_after;
cannam@127 60 cldt_after->apply(ego->cldt_after, I, O);
cannam@127 61 }
cannam@127 62
cannam@127 63 static int applicable(const S *ego, const problem *p_,
cannam@127 64 const planner *plnr)
cannam@127 65 {
cannam@127 66 const problem_mpi_rdft *p = (const problem_mpi_rdft *) p_;
cannam@127 67 int n_pes;
cannam@127 68 MPI_Comm_size(p->comm, &n_pes);
cannam@127 69 return (1
cannam@127 70 && p->sz->rnk == 1
cannam@127 71 && !(p->flags & ~RANK1_BIGVEC_ONLY)
cannam@127 72 && (!ego->preserve_input || (!NO_DESTROY_INPUTP(plnr)
cannam@127 73 && p->I != p->O))
cannam@127 74
cannam@127 75 #if 0 /* don't need this check since no other rank-1 rdft solver */
cannam@127 76 && (p->vn >= n_pes /* TODO: relax this, using more memory? */
cannam@127 77 || (p->flags & RANK1_BIGVEC_ONLY))
cannam@127 78 #endif
cannam@127 79
cannam@127 80 && XM(rearrange_applicable)(ego->rearrange,
cannam@127 81 p->sz->dims[0], p->vn, n_pes)
cannam@127 82
cannam@127 83 && (!NO_SLOWP(plnr) /* slow if rdft-serial is applicable */
cannam@127 84 || !XM(rdft_serial_applicable)(p))
cannam@127 85 );
cannam@127 86 }
cannam@127 87
cannam@127 88 static void awake(plan *ego_, enum wakefulness wakefulness)
cannam@127 89 {
cannam@127 90 P *ego = (P *) ego_;
cannam@127 91 X(plan_awake)(ego->cldt_before, wakefulness);
cannam@127 92 X(plan_awake)(ego->cld, wakefulness);
cannam@127 93 X(plan_awake)(ego->cldt_after, wakefulness);
cannam@127 94 }
cannam@127 95
cannam@127 96 static void destroy(plan *ego_)
cannam@127 97 {
cannam@127 98 P *ego = (P *) ego_;
cannam@127 99 X(plan_destroy_internal)(ego->cldt_after);
cannam@127 100 X(plan_destroy_internal)(ego->cld);
cannam@127 101 X(plan_destroy_internal)(ego->cldt_before);
cannam@127 102 }
cannam@127 103
cannam@127 104 static void print(const plan *ego_, printer *p)
cannam@127 105 {
cannam@127 106 const P *ego = (const P *) ego_;
cannam@127 107 const char descrip[][16] = { "contig", "discontig", "square-after",
cannam@127 108 "square-middle", "square-before" };
cannam@127 109 p->print(p, "(mpi-rdft-rank1-bigvec/%s%s %(%p%) %(%p%) %(%p%))",
cannam@127 110 descrip[ego->rearrange], ego->preserve_input==2 ?"/p":"",
cannam@127 111 ego->cldt_before, ego->cld, ego->cldt_after);
cannam@127 112 }
cannam@127 113
cannam@127 114 static plan *mkplan(const solver *ego_, const problem *p_, planner *plnr)
cannam@127 115 {
cannam@127 116 const S *ego = (const S *) ego_;
cannam@127 117 const problem_mpi_rdft *p;
cannam@127 118 P *pln;
cannam@127 119 plan *cld = 0, *cldt_before = 0, *cldt_after = 0;
cannam@127 120 R *I, *O;
cannam@127 121 INT yblock, yb, nx, ny, vn;
cannam@127 122 int my_pe, n_pes;
cannam@127 123 static const plan_adt padt = {
cannam@127 124 XM(rdft_solve), awake, print, destroy
cannam@127 125 };
cannam@127 126
cannam@127 127 UNUSED(ego);
cannam@127 128
cannam@127 129 if (!applicable(ego, p_, plnr))
cannam@127 130 return (plan *) 0;
cannam@127 131
cannam@127 132 p = (const problem_mpi_rdft *) p_;
cannam@127 133
cannam@127 134 MPI_Comm_rank(p->comm, &my_pe);
cannam@127 135 MPI_Comm_size(p->comm, &n_pes);
cannam@127 136
cannam@127 137 nx = p->sz->dims[0].n;
cannam@127 138 if (!(ny = XM(rearrange_ny)(ego->rearrange, p->sz->dims[0],p->vn,n_pes)))
cannam@127 139 return (plan *) 0;
cannam@127 140 vn = p->vn / ny;
cannam@127 141 A(ny * vn == p->vn);
cannam@127 142
cannam@127 143 yblock = XM(default_block)(ny, n_pes);
cannam@127 144 cldt_before = X(mkplan_d)(plnr,
cannam@127 145 XM(mkproblem_transpose)(
cannam@127 146 nx, ny, vn,
cannam@127 147 I = p->I, O = p->O,
cannam@127 148 p->sz->dims[0].b[IB], yblock,
cannam@127 149 p->comm, 0));
cannam@127 150 if (XM(any_true)(!cldt_before, p->comm)) goto nada;
cannam@127 151 if (ego->preserve_input || NO_DESTROY_INPUTP(plnr)) { I = O; }
cannam@127 152
cannam@127 153 yb = XM(block)(ny, yblock, my_pe);
cannam@127 154 cld = X(mkplan_d)(plnr,
cannam@127 155 X(mkproblem_rdft_1_d)(X(mktensor_1d)(nx, vn, vn),
cannam@127 156 X(mktensor_2d)(yb, vn*nx, vn*nx,
cannam@127 157 vn, 1, 1),
cannam@127 158 O, I, p->kind[0]));
cannam@127 159 if (XM(any_true)(!cld, p->comm)) goto nada;
cannam@127 160
cannam@127 161 cldt_after = X(mkplan_d)(plnr,
cannam@127 162 XM(mkproblem_transpose)(
cannam@127 163 ny, nx, vn,
cannam@127 164 I, O,
cannam@127 165 yblock, p->sz->dims[0].b[OB],
cannam@127 166 p->comm, 0));
cannam@127 167 if (XM(any_true)(!cldt_after, p->comm)) goto nada;
cannam@127 168
cannam@127 169 pln = MKPLAN_MPI_RDFT(P, &padt, apply);
cannam@127 170
cannam@127 171 pln->cldt_before = cldt_before;
cannam@127 172 pln->cld = cld;
cannam@127 173 pln->cldt_after = cldt_after;
cannam@127 174 pln->preserve_input = ego->preserve_input ? 2 : NO_DESTROY_INPUTP(plnr);
cannam@127 175 pln->rearrange = ego->rearrange;
cannam@127 176
cannam@127 177 X(ops_add)(&cldt_before->ops, &cld->ops, &pln->super.super.ops);
cannam@127 178 X(ops_add2)(&cldt_after->ops, &pln->super.super.ops);
cannam@127 179
cannam@127 180 return &(pln->super.super);
cannam@127 181
cannam@127 182 nada:
cannam@127 183 X(plan_destroy_internal)(cldt_after);
cannam@127 184 X(plan_destroy_internal)(cld);
cannam@127 185 X(plan_destroy_internal)(cldt_before);
cannam@127 186 return (plan *) 0;
cannam@127 187 }
cannam@127 188
cannam@127 189 static solver *mksolver(rearrangement rearrange, int preserve_input)
cannam@127 190 {
cannam@127 191 static const solver_adt sadt = { PROBLEM_MPI_RDFT, mkplan, 0 };
cannam@127 192 S *slv = MKSOLVER(S, &sadt);
cannam@127 193 slv->rearrange = rearrange;
cannam@127 194 slv->preserve_input = preserve_input;
cannam@127 195 return &(slv->super);
cannam@127 196 }
cannam@127 197
cannam@127 198 void XM(rdft_rank1_bigvec_register)(planner *p)
cannam@127 199 {
cannam@127 200 rearrangement rearrange;
cannam@127 201 int preserve_input;
cannam@127 202 FORALL_REARRANGE(rearrange)
cannam@127 203 for (preserve_input = 0; preserve_input <= 1; ++preserve_input)
cannam@127 204 REGISTER_SOLVER(p, mksolver(rearrange, preserve_input));
cannam@127 205 }