annotate src/fftw-3.3.3/mpi/rdft-problem.c @ 95:89f5e221ed7b

Add FFTW3
author Chris Cannam <cannam@all-day-breakfast.com>
date Wed, 20 Mar 2013 15:35:50 +0000
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cannam@95 1 /*
cannam@95 2 * Copyright (c) 2003, 2007-11 Matteo Frigo
cannam@95 3 * Copyright (c) 2003, 2007-11 Massachusetts Institute of Technology
cannam@95 4 *
cannam@95 5 * This program is free software; you can redistribute it and/or modify
cannam@95 6 * it under the terms of the GNU General Public License as published by
cannam@95 7 * the Free Software Foundation; either version 2 of the License, or
cannam@95 8 * (at your option) any later version.
cannam@95 9 *
cannam@95 10 * This program is distributed in the hope that it will be useful,
cannam@95 11 * but WITHOUT ANY WARRANTY; without even the implied warranty of
cannam@95 12 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
cannam@95 13 * GNU General Public License for more details.
cannam@95 14 *
cannam@95 15 * You should have received a copy of the GNU General Public License
cannam@95 16 * along with this program; if not, write to the Free Software
cannam@95 17 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
cannam@95 18 *
cannam@95 19 */
cannam@95 20
cannam@95 21 #include "mpi-rdft.h"
cannam@95 22
cannam@95 23 static void destroy(problem *ego_)
cannam@95 24 {
cannam@95 25 problem_mpi_rdft *ego = (problem_mpi_rdft *) ego_;
cannam@95 26 XM(dtensor_destroy)(ego->sz);
cannam@95 27 MPI_Comm_free(&ego->comm);
cannam@95 28 #if !defined(STRUCT_HACK_C99) && !defined(STRUCT_HACK_KR)
cannam@95 29 X(ifree0)(ego->kind);
cannam@95 30 #endif
cannam@95 31 X(ifree)(ego_);
cannam@95 32 }
cannam@95 33
cannam@95 34 static void hash(const problem *p_, md5 *m)
cannam@95 35 {
cannam@95 36 const problem_mpi_rdft *p = (const problem_mpi_rdft *) p_;
cannam@95 37 int i;
cannam@95 38 X(md5puts)(m, "mpi-dft");
cannam@95 39 X(md5int)(m, p->I == p->O);
cannam@95 40 /* don't include alignment -- may differ between processes
cannam@95 41 X(md5int)(m, X(alignment_of)(p->I));
cannam@95 42 X(md5int)(m, X(alignment_of)(p->O));
cannam@95 43 ... note that applicability of MPI plans does not depend
cannam@95 44 on alignment (although optimality may, in principle). */
cannam@95 45 XM(dtensor_md5)(m, p->sz);
cannam@95 46 X(md5INT)(m, p->vn);
cannam@95 47 for (i = 0; i < p->sz->rnk; ++i)
cannam@95 48 X(md5int)(m, p->kind[i]);
cannam@95 49 X(md5int)(m, p->flags);
cannam@95 50 MPI_Comm_size(p->comm, &i); X(md5int)(m, i);
cannam@95 51 A(XM(md5_equal)(*m, p->comm));
cannam@95 52 }
cannam@95 53
cannam@95 54 static void print(const problem *ego_, printer *p)
cannam@95 55 {
cannam@95 56 const problem_mpi_rdft *ego = (const problem_mpi_rdft *) ego_;
cannam@95 57 int i;
cannam@95 58 p->print(p, "(mpi-rdft %d %d %d ",
cannam@95 59 ego->I == ego->O,
cannam@95 60 X(alignment_of)(ego->I),
cannam@95 61 X(alignment_of)(ego->O));
cannam@95 62 XM(dtensor_print)(ego->sz, p);
cannam@95 63 for (i = 0; i < ego->sz->rnk; ++i)
cannam@95 64 p->print(p, " %d", (int)ego->kind[i]);
cannam@95 65 p->print(p, " %D %d", ego->vn, ego->flags);
cannam@95 66 MPI_Comm_size(ego->comm, &i); p->print(p, " %d)", i);
cannam@95 67 }
cannam@95 68
cannam@95 69 static void zero(const problem *ego_)
cannam@95 70 {
cannam@95 71 const problem_mpi_rdft *ego = (const problem_mpi_rdft *) ego_;
cannam@95 72 R *I = ego->I;
cannam@95 73 INT i, N;
cannam@95 74 int my_pe;
cannam@95 75
cannam@95 76 MPI_Comm_rank(ego->comm, &my_pe);
cannam@95 77 N = ego->vn * XM(total_block)(ego->sz, IB, my_pe);
cannam@95 78 for (i = 0; i < N; ++i) I[i] = K(0.0);
cannam@95 79 }
cannam@95 80
cannam@95 81 static const problem_adt padt =
cannam@95 82 {
cannam@95 83 PROBLEM_MPI_RDFT,
cannam@95 84 hash,
cannam@95 85 zero,
cannam@95 86 print,
cannam@95 87 destroy
cannam@95 88 };
cannam@95 89
cannam@95 90 problem *XM(mkproblem_rdft)(const dtensor *sz, INT vn,
cannam@95 91 R *I, R *O,
cannam@95 92 MPI_Comm comm,
cannam@95 93 const rdft_kind *kind, unsigned flags)
cannam@95 94 {
cannam@95 95 problem_mpi_rdft *ego;
cannam@95 96 int i, rnk = sz->rnk;
cannam@95 97 int n_pes;
cannam@95 98
cannam@95 99 A(XM(dtensor_validp)(sz) && FINITE_RNK(sz->rnk));
cannam@95 100 MPI_Comm_size(comm, &n_pes);
cannam@95 101 A(n_pes >= XM(num_blocks_total)(sz, IB)
cannam@95 102 && n_pes >= XM(num_blocks_total)(sz, OB));
cannam@95 103 A(vn >= 0);
cannam@95 104
cannam@95 105 #if defined(STRUCT_HACK_KR)
cannam@95 106 ego = (problem_mpi_rdft *) X(mkproblem)(sizeof(problem_mpi_rdft)
cannam@95 107 + sizeof(rdft_kind)
cannam@95 108 * (rnk > 0 ? rnk - 1 : 0), &padt);
cannam@95 109 #elif defined(STRUCT_HACK_C99)
cannam@95 110 ego = (problem_mpi_rdft *) X(mkproblem)(sizeof(problem_mpi_rdft)
cannam@95 111 + sizeof(rdft_kind) * rnk, &padt);
cannam@95 112 #else
cannam@95 113 ego = (problem_mpi_rdft *) X(mkproblem)(sizeof(problem_mpi_rdft), &padt);
cannam@95 114 ego->kind = (rdft_kind *) MALLOC(sizeof(rdft_kind) * rnk, PROBLEMS);
cannam@95 115 #endif
cannam@95 116
cannam@95 117 /* enforce pointer equality if untainted pointers are equal */
cannam@95 118 if (UNTAINT(I) == UNTAINT(O))
cannam@95 119 I = O = JOIN_TAINT(I, O);
cannam@95 120
cannam@95 121 ego->sz = XM(dtensor_canonical)(sz, 0);
cannam@95 122 ego->vn = vn;
cannam@95 123 ego->I = I;
cannam@95 124 ego->O = O;
cannam@95 125 for (i = 0; i< ego->sz->rnk; ++i)
cannam@95 126 ego->kind[i] = kind[i];
cannam@95 127
cannam@95 128 /* canonicalize: replace TRANSPOSED_IN with TRANSPOSED_OUT by
cannam@95 129 swapping the first two dimensions (for rnk > 1) */
cannam@95 130 if ((flags & TRANSPOSED_IN) && ego->sz->rnk > 1) {
cannam@95 131 rdft_kind k = ego->kind[0];
cannam@95 132 ddim dim0 = ego->sz->dims[0];
cannam@95 133 ego->sz->dims[0] = ego->sz->dims[1];
cannam@95 134 ego->sz->dims[1] = dim0;
cannam@95 135 ego->kind[0] = ego->kind[1];
cannam@95 136 ego->kind[1] = k;
cannam@95 137 flags &= ~TRANSPOSED_IN;
cannam@95 138 flags ^= TRANSPOSED_OUT;
cannam@95 139 }
cannam@95 140 ego->flags = flags;
cannam@95 141
cannam@95 142 MPI_Comm_dup(comm, &ego->comm);
cannam@95 143
cannam@95 144 return &(ego->super);
cannam@95 145 }
cannam@95 146
cannam@95 147 problem *XM(mkproblem_rdft_d)(dtensor *sz, INT vn,
cannam@95 148 R *I, R *O,
cannam@95 149 MPI_Comm comm,
cannam@95 150 const rdft_kind *kind, unsigned flags)
cannam@95 151 {
cannam@95 152 problem *p = XM(mkproblem_rdft)(sz, vn, I, O, comm, kind, flags);
cannam@95 153 XM(dtensor_destroy)(sz);
cannam@95 154 return p;
cannam@95 155 }