annotate fft/fftw/fftw-3.3.4/mpi/dtensor.c @ 40:223f770b5341 kissfft-double tip

Try a double-precision kissfft
author Chris Cannam
date Wed, 07 Sep 2016 10:40:32 +0100
parents 26056e866c29
children
rev   line source
Chris@19 1 /*
Chris@19 2 * Copyright (c) 2003, 2007-14 Matteo Frigo
Chris@19 3 * Copyright (c) 2003, 2007-14 Massachusetts Institute of Technology
Chris@19 4 *
Chris@19 5 * This program is free software; you can redistribute it and/or modify
Chris@19 6 * it under the terms of the GNU General Public License as published by
Chris@19 7 * the Free Software Foundation; either version 2 of the License, or
Chris@19 8 * (at your option) any later version.
Chris@19 9 *
Chris@19 10 * This program is distributed in the hope that it will be useful,
Chris@19 11 * but WITHOUT ANY WARRANTY; without even the implied warranty of
Chris@19 12 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
Chris@19 13 * GNU General Public License for more details.
Chris@19 14 *
Chris@19 15 * You should have received a copy of the GNU General Public License
Chris@19 16 * along with this program; if not, write to the Free Software
Chris@19 17 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
Chris@19 18 *
Chris@19 19 */
Chris@19 20
Chris@19 21 #include "ifftw-mpi.h"
Chris@19 22
Chris@19 23 dtensor *XM(mkdtensor)(int rnk)
Chris@19 24 {
Chris@19 25 dtensor *x;
Chris@19 26
Chris@19 27 A(rnk >= 0);
Chris@19 28
Chris@19 29 #if defined(STRUCT_HACK_KR)
Chris@19 30 if (FINITE_RNK(rnk) && rnk > 1)
Chris@19 31 x = (dtensor *)MALLOC(sizeof(dtensor) + (rnk - 1) * sizeof(ddim),
Chris@19 32 TENSORS);
Chris@19 33 else
Chris@19 34 x = (dtensor *)MALLOC(sizeof(dtensor), TENSORS);
Chris@19 35 #elif defined(STRUCT_HACK_C99)
Chris@19 36 if (FINITE_RNK(rnk))
Chris@19 37 x = (dtensor *)MALLOC(sizeof(dtensor) + rnk * sizeof(ddim),
Chris@19 38 TENSORS);
Chris@19 39 else
Chris@19 40 x = (dtensor *)MALLOC(sizeof(dtensor), TENSORS);
Chris@19 41 #else
Chris@19 42 x = (dtensor *)MALLOC(sizeof(dtensor), TENSORS);
Chris@19 43 if (FINITE_RNK(rnk) && rnk > 0)
Chris@19 44 x->dims = (ddim *)MALLOC(sizeof(ddim) * rnk, TENSORS);
Chris@19 45 else
Chris@19 46 x->dims = 0;
Chris@19 47 #endif
Chris@19 48
Chris@19 49 x->rnk = rnk;
Chris@19 50 return x;
Chris@19 51 }
Chris@19 52
Chris@19 53 void XM(dtensor_destroy)(dtensor *sz)
Chris@19 54 {
Chris@19 55 #if !defined(STRUCT_HACK_C99) && !defined(STRUCT_HACK_KR)
Chris@19 56 X(ifree0)(sz->dims);
Chris@19 57 #endif
Chris@19 58 X(ifree)(sz);
Chris@19 59 }
Chris@19 60
Chris@19 61 void XM(dtensor_md5)(md5 *p, const dtensor *t)
Chris@19 62 {
Chris@19 63 int i;
Chris@19 64 X(md5int)(p, t->rnk);
Chris@19 65 if (FINITE_RNK(t->rnk)) {
Chris@19 66 for (i = 0; i < t->rnk; ++i) {
Chris@19 67 const ddim *q = t->dims + i;
Chris@19 68 X(md5INT)(p, q->n);
Chris@19 69 X(md5INT)(p, q->b[IB]);
Chris@19 70 X(md5INT)(p, q->b[OB]);
Chris@19 71 }
Chris@19 72 }
Chris@19 73 }
Chris@19 74
Chris@19 75 dtensor *XM(dtensor_copy)(const dtensor *sz)
Chris@19 76 {
Chris@19 77 dtensor *x = XM(mkdtensor)(sz->rnk);
Chris@19 78 int i;
Chris@19 79 if (FINITE_RNK(sz->rnk))
Chris@19 80 for (i = 0; i < sz->rnk; ++i)
Chris@19 81 x->dims[i] = sz->dims[i];
Chris@19 82 return x;
Chris@19 83 }
Chris@19 84
Chris@19 85 dtensor *XM(dtensor_canonical)(const dtensor *sz, int compress)
Chris@19 86 {
Chris@19 87 int i, rnk;
Chris@19 88 dtensor *x;
Chris@19 89 block_kind k;
Chris@19 90
Chris@19 91 if (!FINITE_RNK(sz->rnk))
Chris@19 92 return XM(mkdtensor)(sz->rnk);
Chris@19 93 for (i = rnk = 0; i < sz->rnk; ++i) {
Chris@19 94 if (sz->dims[i].n <= 0)
Chris@19 95 return XM(mkdtensor)(RNK_MINFTY);
Chris@19 96 else if (!compress || sz->dims[i].n > 1)
Chris@19 97 ++rnk;
Chris@19 98 }
Chris@19 99 x = XM(mkdtensor)(rnk);
Chris@19 100 for (i = rnk = 0; i < sz->rnk; ++i) {
Chris@19 101 if (!compress || sz->dims[i].n > 1) {
Chris@19 102 x->dims[rnk].n = sz->dims[i].n;
Chris@19 103 FORALL_BLOCK_KIND(k) {
Chris@19 104 if (XM(num_blocks)(sz->dims[i].n, sz->dims[i].b[k]) == 1)
Chris@19 105 x->dims[rnk].b[k] = sz->dims[i].n;
Chris@19 106 else
Chris@19 107 x->dims[rnk].b[k] = sz->dims[i].b[k];
Chris@19 108 }
Chris@19 109 ++rnk;
Chris@19 110 }
Chris@19 111 }
Chris@19 112 return x;
Chris@19 113 }
Chris@19 114
Chris@19 115 int XM(dtensor_validp)(const dtensor *sz)
Chris@19 116 {
Chris@19 117 int i;
Chris@19 118 if (sz->rnk < 0) return 0;
Chris@19 119 if (FINITE_RNK(sz->rnk))
Chris@19 120 for (i = 0; i < sz->rnk; ++i)
Chris@19 121 if (sz->dims[i].n < 0
Chris@19 122 || sz->dims[i].b[IB] <= 0
Chris@19 123 || sz->dims[i].b[OB] <= 0)
Chris@19 124 return 0;
Chris@19 125 return 1;
Chris@19 126 }
Chris@19 127
Chris@19 128 void XM(dtensor_print)(const dtensor *t, printer *p)
Chris@19 129 {
Chris@19 130 if (FINITE_RNK(t->rnk)) {
Chris@19 131 int i;
Chris@19 132 int first = 1;
Chris@19 133 p->print(p, "(");
Chris@19 134 for (i = 0; i < t->rnk; ++i) {
Chris@19 135 const ddim *d = t->dims + i;
Chris@19 136 p->print(p, "%s(%D %D %D)",
Chris@19 137 first ? "" : " ",
Chris@19 138 d->n, d->b[IB], d->b[OB]);
Chris@19 139 first = 0;
Chris@19 140 }
Chris@19 141 p->print(p, ")");
Chris@19 142 } else {
Chris@19 143 p->print(p, "rank-minfty");
Chris@19 144 }
Chris@19 145
Chris@19 146 }