annotate src/fftw-3.3.5/rdft/vrank-geq1-rdft2.c @ 148:b4bfdf10c4b3

Update Win64 capnp builds to v0.6
author Chris Cannam <cannam@all-day-breakfast.com>
date Mon, 22 May 2017 18:56:49 +0100
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
cannam@127 22
cannam@127 23 /* Plans for handling vector transform loops. These are *just* the
cannam@127 24 loops, and rely on child plans for the actual RDFT2s.
cannam@127 25
cannam@127 26 They form a wrapper around solvers that don't have apply functions
cannam@127 27 for non-null vectors.
cannam@127 28
cannam@127 29 vrank-geq1-rdft2 plans also recursively handle the case of
cannam@127 30 multi-dimensional vectors, obviating the need for most solvers to
cannam@127 31 deal with this. We can also play games here, such as reordering
cannam@127 32 the vector loops.
cannam@127 33
cannam@127 34 Each vrank-geq1-rdft2 plan reduces the vector rank by 1, picking out a
cannam@127 35 dimension determined by the vecloop_dim field of the solver. */
cannam@127 36
cannam@127 37 #include "rdft.h"
cannam@127 38
cannam@127 39 typedef struct {
cannam@127 40 solver super;
cannam@127 41 int vecloop_dim;
cannam@127 42 const int *buddies;
cannam@127 43 size_t nbuddies;
cannam@127 44 } S;
cannam@127 45
cannam@127 46 typedef struct {
cannam@127 47 plan_rdft2 super;
cannam@127 48
cannam@127 49 plan *cld;
cannam@127 50 INT vl;
cannam@127 51 INT rvs, cvs;
cannam@127 52 const S *solver;
cannam@127 53 } P;
cannam@127 54
cannam@127 55 static void apply(const plan *ego_, R *r0, R *r1, R *cr, R *ci)
cannam@127 56 {
cannam@127 57 const P *ego = (const P *) ego_;
cannam@127 58 INT i, vl = ego->vl;
cannam@127 59 INT rvs = ego->rvs, cvs = ego->cvs;
cannam@127 60 rdft2apply cldapply = ((plan_rdft2 *) ego->cld)->apply;
cannam@127 61
cannam@127 62 for (i = 0; i < vl; ++i) {
cannam@127 63 cldapply(ego->cld, r0 + i * rvs, r1 + i * rvs,
cannam@127 64 cr + i * cvs, ci + i * cvs);
cannam@127 65 }
cannam@127 66 }
cannam@127 67
cannam@127 68 static void awake(plan *ego_, enum wakefulness wakefulness)
cannam@127 69 {
cannam@127 70 P *ego = (P *) ego_;
cannam@127 71 X(plan_awake)(ego->cld, wakefulness);
cannam@127 72 }
cannam@127 73
cannam@127 74 static void destroy(plan *ego_)
cannam@127 75 {
cannam@127 76 P *ego = (P *) ego_;
cannam@127 77 X(plan_destroy_internal)(ego->cld);
cannam@127 78 }
cannam@127 79
cannam@127 80 static void print(const plan *ego_, printer *p)
cannam@127 81 {
cannam@127 82 const P *ego = (const P *) ego_;
cannam@127 83 const S *s = ego->solver;
cannam@127 84 p->print(p, "(rdft2-vrank>=1-x%D/%d%(%p%))",
cannam@127 85 ego->vl, s->vecloop_dim, ego->cld);
cannam@127 86 }
cannam@127 87
cannam@127 88 static int pickdim(const S *ego, const tensor *vecsz, int oop, int *dp)
cannam@127 89 {
cannam@127 90 return X(pickdim)(ego->vecloop_dim, ego->buddies, ego->nbuddies,
cannam@127 91 vecsz, oop, dp);
cannam@127 92 }
cannam@127 93
cannam@127 94 static int applicable0(const solver *ego_, const problem *p_, int *dp)
cannam@127 95 {
cannam@127 96 const S *ego = (const S *) ego_;
cannam@127 97 const problem_rdft2 *p = (const problem_rdft2 *) p_;
cannam@127 98 if (FINITE_RNK(p->vecsz->rnk)
cannam@127 99 && p->vecsz->rnk > 0
cannam@127 100 && pickdim(ego, p->vecsz, p->r0 != p->cr, dp)) {
cannam@127 101 if (p->r0 != p->cr)
cannam@127 102 return 1; /* can always operate out-of-place */
cannam@127 103
cannam@127 104 return(X(rdft2_inplace_strides)(p, *dp));
cannam@127 105 }
cannam@127 106
cannam@127 107 return 0;
cannam@127 108 }
cannam@127 109
cannam@127 110
cannam@127 111 static int applicable(const solver *ego_, const problem *p_,
cannam@127 112 const planner *plnr, int *dp)
cannam@127 113 {
cannam@127 114 const S *ego = (const S *)ego_;
cannam@127 115 if (!applicable0(ego_, p_, dp)) return 0;
cannam@127 116
cannam@127 117 /* fftw2 behavior */
cannam@127 118 if (NO_VRANK_SPLITSP(plnr) && (ego->vecloop_dim != ego->buddies[0]))
cannam@127 119 return 0;
cannam@127 120
cannam@127 121 if (NO_UGLYP(plnr)) {
cannam@127 122 const problem_rdft2 *p = (const problem_rdft2 *) p_;
cannam@127 123 iodim *d = p->vecsz->dims + *dp;
cannam@127 124
cannam@127 125 /* Heuristic: if the transform is multi-dimensional, and the
cannam@127 126 vector stride is less than the transform size, then we
cannam@127 127 probably want to use a rank>=2 plan first in order to combine
cannam@127 128 this vector with the transform-dimension vectors. */
cannam@127 129 if (p->sz->rnk > 1
cannam@127 130 && X(imin)(X(iabs)(d->is), X(iabs)(d->os))
cannam@127 131 < X(rdft2_tensor_max_index)(p->sz, p->kind)
cannam@127 132 )
cannam@127 133 return 0;
cannam@127 134
cannam@127 135 /* Heuristic: don't use a vrank-geq1 for rank-0 vrank-1
cannam@127 136 transforms, since this case is better handled by rank-0
cannam@127 137 solvers. */
cannam@127 138 if (p->sz->rnk == 0 && p->vecsz->rnk == 1) return 0;
cannam@127 139
cannam@127 140 if (NO_NONTHREADEDP(plnr))
cannam@127 141 return 0; /* prefer threaded version */
cannam@127 142 }
cannam@127 143
cannam@127 144 return 1;
cannam@127 145 }
cannam@127 146
cannam@127 147 static plan *mkplan(const solver *ego_, const problem *p_, planner *plnr)
cannam@127 148 {
cannam@127 149 const S *ego = (const S *) ego_;
cannam@127 150 const problem_rdft2 *p;
cannam@127 151 P *pln;
cannam@127 152 plan *cld;
cannam@127 153 int vdim;
cannam@127 154 iodim *d;
cannam@127 155 INT rvs, cvs;
cannam@127 156
cannam@127 157 static const plan_adt padt = {
cannam@127 158 X(rdft2_solve), awake, print, destroy
cannam@127 159 };
cannam@127 160
cannam@127 161 if (!applicable(ego_, p_, plnr, &vdim))
cannam@127 162 return (plan *) 0;
cannam@127 163 p = (const problem_rdft2 *) p_;
cannam@127 164
cannam@127 165 d = p->vecsz->dims + vdim;
cannam@127 166
cannam@127 167 A(d->n > 1); /* or else, p->ri + d->is etc. are invalid */
cannam@127 168
cannam@127 169 X(rdft2_strides)(p->kind, d, &rvs, &cvs);
cannam@127 170
cannam@127 171 cld = X(mkplan_d)(plnr,
cannam@127 172 X(mkproblem_rdft2_d)(
cannam@127 173 X(tensor_copy)(p->sz),
cannam@127 174 X(tensor_copy_except)(p->vecsz, vdim),
cannam@127 175 TAINT(p->r0, rvs), TAINT(p->r1, rvs),
cannam@127 176 TAINT(p->cr, cvs), TAINT(p->ci, cvs),
cannam@127 177 p->kind));
cannam@127 178 if (!cld) return (plan *) 0;
cannam@127 179
cannam@127 180 pln = MKPLAN_RDFT2(P, &padt, apply);
cannam@127 181
cannam@127 182 pln->cld = cld;
cannam@127 183 pln->vl = d->n;
cannam@127 184 pln->rvs = rvs;
cannam@127 185 pln->cvs = cvs;
cannam@127 186
cannam@127 187 pln->solver = ego;
cannam@127 188 X(ops_zero)(&pln->super.super.ops);
cannam@127 189 pln->super.super.ops.other = 3.14159; /* magic to prefer codelet loops */
cannam@127 190 X(ops_madd2)(pln->vl, &cld->ops, &pln->super.super.ops);
cannam@127 191
cannam@127 192 if (p->sz->rnk != 1 || (p->sz->dims[0].n > 128))
cannam@127 193 pln->super.super.pcost = pln->vl * cld->pcost;
cannam@127 194
cannam@127 195 return &(pln->super.super);
cannam@127 196 }
cannam@127 197
cannam@127 198 static solver *mksolver(int vecloop_dim, const int *buddies, size_t nbuddies)
cannam@127 199 {
cannam@127 200 static const solver_adt sadt = { PROBLEM_RDFT2, mkplan, 0 };
cannam@127 201 S *slv = MKSOLVER(S, &sadt);
cannam@127 202 slv->vecloop_dim = vecloop_dim;
cannam@127 203 slv->buddies = buddies;
cannam@127 204 slv->nbuddies = nbuddies;
cannam@127 205 return &(slv->super);
cannam@127 206 }
cannam@127 207
cannam@127 208 void X(rdft2_vrank_geq1_register)(planner *p)
cannam@127 209 {
cannam@127 210 /* FIXME: Should we try other vecloop_dim values? */
cannam@127 211 static const int buddies[] = { 1, -1 };
cannam@127 212 size_t i;
cannam@127 213
cannam@127 214 for (i = 0; i < NELEM(buddies); ++i)
cannam@127 215 REGISTER_SOLVER(p, mksolver(buddies[i], buddies, NELEM(buddies)));
cannam@127 216 }