annotate fft/fftw/fftw-3.3.4/mpi/rdft2-rank-geq2-transposed.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 /* Real-input (r2c) DFTs of rank >= 2, for the case where we are distributed
Chris@19 22 across the first dimension only, and the output is transposed both
Chris@19 23 in data distribution and in ordering (for the first 2 dimensions).
Chris@19 24
Chris@19 25 Conversely, real-output (c2r) DFTs where the input is transposed.
Chris@19 26
Chris@19 27 We don't currently support transposed-input r2c or transposed-output
Chris@19 28 c2r transforms. */
Chris@19 29
Chris@19 30 #include "mpi-rdft2.h"
Chris@19 31 #include "mpi-transpose.h"
Chris@19 32 #include "rdft.h"
Chris@19 33 #include "dft.h"
Chris@19 34
Chris@19 35 typedef struct {
Chris@19 36 solver super;
Chris@19 37 int preserve_input; /* preserve input even if DESTROY_INPUT was passed */
Chris@19 38 } S;
Chris@19 39
Chris@19 40 typedef struct {
Chris@19 41 plan_mpi_rdft2 super;
Chris@19 42
Chris@19 43 plan *cld1, *cldt, *cld2;
Chris@19 44 INT vn;
Chris@19 45 int preserve_input;
Chris@19 46 } P;
Chris@19 47
Chris@19 48 static void apply_r2c(const plan *ego_, R *I, R *O)
Chris@19 49 {
Chris@19 50 const P *ego = (const P *) ego_;
Chris@19 51 plan_rdft2 *cld1;
Chris@19 52 plan_dft *cld2;
Chris@19 53 plan_rdft *cldt;
Chris@19 54
Chris@19 55 /* RDFT2 local dimensions */
Chris@19 56 cld1 = (plan_rdft2 *) ego->cld1;
Chris@19 57 if (ego->preserve_input) {
Chris@19 58 cld1->apply(ego->cld1, I, I+ego->vn, O, O+1);
Chris@19 59 I = O;
Chris@19 60 }
Chris@19 61 else
Chris@19 62 cld1->apply(ego->cld1, I, I+ego->vn, I, I+1);
Chris@19 63
Chris@19 64 /* global transpose */
Chris@19 65 cldt = (plan_rdft *) ego->cldt;
Chris@19 66 cldt->apply(ego->cldt, I, O);
Chris@19 67
Chris@19 68 /* DFT final local dimension */
Chris@19 69 cld2 = (plan_dft *) ego->cld2;
Chris@19 70 cld2->apply(ego->cld2, O, O+1, O, O+1);
Chris@19 71 }
Chris@19 72
Chris@19 73 static void apply_c2r(const plan *ego_, R *I, R *O)
Chris@19 74 {
Chris@19 75 const P *ego = (const P *) ego_;
Chris@19 76 plan_rdft2 *cld1;
Chris@19 77 plan_dft *cld2;
Chris@19 78 plan_rdft *cldt;
Chris@19 79
Chris@19 80 /* IDFT local dimensions */
Chris@19 81 cld2 = (plan_dft *) ego->cld2;
Chris@19 82 if (ego->preserve_input) {
Chris@19 83 cld2->apply(ego->cld2, I+1, I, O+1, O);
Chris@19 84 I = O;
Chris@19 85 }
Chris@19 86 else
Chris@19 87 cld2->apply(ego->cld2, I+1, I, I+1, I);
Chris@19 88
Chris@19 89 /* global transpose */
Chris@19 90 cldt = (plan_rdft *) ego->cldt;
Chris@19 91 cldt->apply(ego->cldt, I, O);
Chris@19 92
Chris@19 93 /* RDFT2 final local dimension */
Chris@19 94 cld1 = (plan_rdft2 *) ego->cld1;
Chris@19 95 cld1->apply(ego->cld1, O, O+ego->vn, O, O+1);
Chris@19 96 }
Chris@19 97
Chris@19 98 static int applicable(const S *ego, const problem *p_,
Chris@19 99 const planner *plnr)
Chris@19 100 {
Chris@19 101 const problem_mpi_rdft2 *p = (const problem_mpi_rdft2 *) p_;
Chris@19 102 return (1
Chris@19 103 && p->sz->rnk > 1
Chris@19 104 && (!ego->preserve_input || (!NO_DESTROY_INPUTP(plnr)
Chris@19 105 && p->I != p->O))
Chris@19 106 && ((p->flags == TRANSPOSED_OUT && p->kind == R2HC
Chris@19 107 && XM(is_local_after)(1, p->sz, IB)
Chris@19 108 && XM(is_local_after)(2, p->sz, OB)
Chris@19 109 && XM(num_blocks)(p->sz->dims[0].n,
Chris@19 110 p->sz->dims[0].b[OB]) == 1)
Chris@19 111 ||
Chris@19 112 (p->flags == TRANSPOSED_IN && p->kind == HC2R
Chris@19 113 && XM(is_local_after)(1, p->sz, OB)
Chris@19 114 && XM(is_local_after)(2, p->sz, IB)
Chris@19 115 && XM(num_blocks)(p->sz->dims[0].n,
Chris@19 116 p->sz->dims[0].b[IB]) == 1))
Chris@19 117 && (!NO_SLOWP(plnr) /* slow if rdft2-serial is applicable */
Chris@19 118 || !XM(rdft2_serial_applicable)(p))
Chris@19 119 );
Chris@19 120 }
Chris@19 121
Chris@19 122 static void awake(plan *ego_, enum wakefulness wakefulness)
Chris@19 123 {
Chris@19 124 P *ego = (P *) ego_;
Chris@19 125 X(plan_awake)(ego->cld1, wakefulness);
Chris@19 126 X(plan_awake)(ego->cldt, wakefulness);
Chris@19 127 X(plan_awake)(ego->cld2, wakefulness);
Chris@19 128 }
Chris@19 129
Chris@19 130 static void destroy(plan *ego_)
Chris@19 131 {
Chris@19 132 P *ego = (P *) ego_;
Chris@19 133 X(plan_destroy_internal)(ego->cld2);
Chris@19 134 X(plan_destroy_internal)(ego->cldt);
Chris@19 135 X(plan_destroy_internal)(ego->cld1);
Chris@19 136 }
Chris@19 137
Chris@19 138 static void print(const plan *ego_, printer *p)
Chris@19 139 {
Chris@19 140 const P *ego = (const P *) ego_;
Chris@19 141 p->print(p, "(mpi-rdft2-rank-geq2-transposed%s%(%p%)%(%p%)%(%p%))",
Chris@19 142 ego->preserve_input==2 ?"/p":"",
Chris@19 143 ego->cld1, ego->cldt, ego->cld2);
Chris@19 144 }
Chris@19 145
Chris@19 146 static plan *mkplan(const solver *ego_, const problem *p_, planner *plnr)
Chris@19 147 {
Chris@19 148 const S *ego = (const S *) ego_;
Chris@19 149 const problem_mpi_rdft2 *p;
Chris@19 150 P *pln;
Chris@19 151 plan *cld1 = 0, *cldt = 0, *cld2 = 0;
Chris@19 152 R *r0, *r1, *cr, *ci, *ri, *ii, *ro, *io, *I, *O;
Chris@19 153 tensor *sz;
Chris@19 154 int i, my_pe, n_pes;
Chris@19 155 INT nrest, n1, b1;
Chris@19 156 static const plan_adt padt = {
Chris@19 157 XM(rdft2_solve), awake, print, destroy
Chris@19 158 };
Chris@19 159 block_kind k1, k2;
Chris@19 160
Chris@19 161 UNUSED(ego);
Chris@19 162
Chris@19 163 if (!applicable(ego, p_, plnr))
Chris@19 164 return (plan *) 0;
Chris@19 165
Chris@19 166 p = (const problem_mpi_rdft2 *) p_;
Chris@19 167
Chris@19 168 I = p->I; O = p->O;
Chris@19 169 if (p->kind == R2HC) {
Chris@19 170 k1 = IB; k2 = OB;
Chris@19 171 r1 = (r0 = I) + p->vn;
Chris@19 172 if (ego->preserve_input || NO_DESTROY_INPUTP(plnr)) {
Chris@19 173 ci = (cr = O) + 1;
Chris@19 174 I = O;
Chris@19 175 }
Chris@19 176 else
Chris@19 177 ci = (cr = I) + 1;
Chris@19 178 io = ii = (ro = ri = O) + 1;
Chris@19 179 }
Chris@19 180 else {
Chris@19 181 k1 = OB; k2 = IB;
Chris@19 182 r1 = (r0 = O) + p->vn;
Chris@19 183 ci = (cr = O) + 1;
Chris@19 184 if (ego->preserve_input || NO_DESTROY_INPUTP(plnr)) {
Chris@19 185 ri = (ii = I) + 1;
Chris@19 186 ro = (io = O) + 1;
Chris@19 187 I = O;
Chris@19 188 }
Chris@19 189 else
Chris@19 190 ro = ri = (io = ii = I) + 1;
Chris@19 191 }
Chris@19 192
Chris@19 193 MPI_Comm_rank(p->comm, &my_pe);
Chris@19 194 MPI_Comm_size(p->comm, &n_pes);
Chris@19 195
Chris@19 196 sz = X(mktensor)(p->sz->rnk - 1); /* tensor of last rnk-1 dimensions */
Chris@19 197 i = p->sz->rnk - 2; A(i >= 0);
Chris@19 198 sz->dims[i].n = p->sz->dims[i+1].n / 2 + 1;
Chris@19 199 sz->dims[i].is = sz->dims[i].os = 2 * p->vn;
Chris@19 200 for (--i; i >= 0; --i) {
Chris@19 201 sz->dims[i].n = p->sz->dims[i+1].n;
Chris@19 202 sz->dims[i].is = sz->dims[i].os = sz->dims[i+1].n * sz->dims[i+1].is;
Chris@19 203 }
Chris@19 204 nrest = 1; for (i = 1; i < sz->rnk; ++i) nrest *= sz->dims[i].n;
Chris@19 205 {
Chris@19 206 INT ivs = 1 + (p->kind == HC2R), ovs = 1 + (p->kind == R2HC);
Chris@19 207 INT is = sz->dims[0].n * sz->dims[0].is;
Chris@19 208 INT b = XM(block)(p->sz->dims[0].n, p->sz->dims[0].b[k1], my_pe);
Chris@19 209 sz->dims[p->sz->rnk - 2].n = p->sz->dims[p->sz->rnk - 1].n;
Chris@19 210 cld1 = X(mkplan_d)(plnr,
Chris@19 211 X(mkproblem_rdft2_d)(sz,
Chris@19 212 X(mktensor_2d)(b, is, is,
Chris@19 213 p->vn,ivs,ovs),
Chris@19 214 r0, r1, cr, ci, p->kind));
Chris@19 215 if (XM(any_true)(!cld1, p->comm)) goto nada;
Chris@19 216 }
Chris@19 217
Chris@19 218 nrest *= p->vn;
Chris@19 219 n1 = p->sz->dims[1].n;
Chris@19 220 b1 = p->sz->dims[1].b[k2];
Chris@19 221 if (p->sz->rnk == 2) { /* n1 dimension is cut in ~half */
Chris@19 222 n1 = n1 / 2 + 1;
Chris@19 223 b1 = b1 == p->sz->dims[1].n ? n1 : b1;
Chris@19 224 }
Chris@19 225
Chris@19 226 if (p->kind == R2HC)
Chris@19 227 cldt = X(mkplan_d)(plnr,
Chris@19 228 XM(mkproblem_transpose)(
Chris@19 229 p->sz->dims[0].n, n1, nrest * 2,
Chris@19 230 I, O,
Chris@19 231 p->sz->dims[0].b[IB], b1,
Chris@19 232 p->comm, 0));
Chris@19 233 else
Chris@19 234 cldt = X(mkplan_d)(plnr,
Chris@19 235 XM(mkproblem_transpose)(
Chris@19 236 n1, p->sz->dims[0].n, nrest * 2,
Chris@19 237 I, O,
Chris@19 238 b1, p->sz->dims[0].b[OB],
Chris@19 239 p->comm, 0));
Chris@19 240 if (XM(any_true)(!cldt, p->comm)) goto nada;
Chris@19 241
Chris@19 242 {
Chris@19 243 INT is = p->sz->dims[0].n * nrest * 2;
Chris@19 244 INT b = XM(block)(n1, b1, my_pe);
Chris@19 245 cld2 = X(mkplan_d)(plnr,
Chris@19 246 X(mkproblem_dft_d)(X(mktensor_1d)(
Chris@19 247 p->sz->dims[0].n,
Chris@19 248 nrest * 2, nrest * 2),
Chris@19 249 X(mktensor_2d)(b, is, is,
Chris@19 250 nrest, 2, 2),
Chris@19 251 ri, ii, ro, io));
Chris@19 252 if (XM(any_true)(!cld2, p->comm)) goto nada;
Chris@19 253 }
Chris@19 254
Chris@19 255 pln = MKPLAN_MPI_RDFT2(P, &padt, p->kind == R2HC ? apply_r2c : apply_c2r);
Chris@19 256 pln->cld1 = cld1;
Chris@19 257 pln->cldt = cldt;
Chris@19 258 pln->cld2 = cld2;
Chris@19 259 pln->preserve_input = ego->preserve_input ? 2 : NO_DESTROY_INPUTP(plnr);
Chris@19 260 pln->vn = p->vn;
Chris@19 261
Chris@19 262 X(ops_add)(&cld1->ops, &cld2->ops, &pln->super.super.ops);
Chris@19 263 X(ops_add2)(&cldt->ops, &pln->super.super.ops);
Chris@19 264
Chris@19 265 return &(pln->super.super);
Chris@19 266
Chris@19 267 nada:
Chris@19 268 X(plan_destroy_internal)(cld2);
Chris@19 269 X(plan_destroy_internal)(cldt);
Chris@19 270 X(plan_destroy_internal)(cld1);
Chris@19 271 return (plan *) 0;
Chris@19 272 }
Chris@19 273
Chris@19 274 static solver *mksolver(int preserve_input)
Chris@19 275 {
Chris@19 276 static const solver_adt sadt = { PROBLEM_MPI_RDFT2, mkplan, 0 };
Chris@19 277 S *slv = MKSOLVER(S, &sadt);
Chris@19 278 slv->preserve_input = preserve_input;
Chris@19 279 return &(slv->super);
Chris@19 280 }
Chris@19 281
Chris@19 282 void XM(rdft2_rank_geq2_transposed_register)(planner *p)
Chris@19 283 {
Chris@19 284 int preserve_input;
Chris@19 285 for (preserve_input = 0; preserve_input <= 1; ++preserve_input)
Chris@19 286 REGISTER_SOLVER(p, mksolver(preserve_input));
Chris@19 287 }