cannam@95: /* cannam@95: * Copyright (c) 2003, 2007-11 Matteo Frigo cannam@95: * Copyright (c) 2003, 2007-11 Massachusetts Institute of Technology cannam@95: * cannam@95: * This program is free software; you can redistribute it and/or modify cannam@95: * it under the terms of the GNU General Public License as published by cannam@95: * the Free Software Foundation; either version 2 of the License, or cannam@95: * (at your option) any later version. cannam@95: * cannam@95: * This program is distributed in the hope that it will be useful, cannam@95: * but WITHOUT ANY WARRANTY; without even the implied warranty of cannam@95: * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the cannam@95: * GNU General Public License for more details. cannam@95: * cannam@95: * You should have received a copy of the GNU General Public License cannam@95: * along with this program; if not, write to the Free Software cannam@95: * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA cannam@95: * cannam@95: */ cannam@95: cannam@95: cannam@95: /* plans for RDFT2 of rank >= 2 (multidimensional) */ cannam@95: cannam@95: #include "rdft.h" cannam@95: #include "dft.h" cannam@95: cannam@95: typedef struct { cannam@95: solver super; cannam@95: int spltrnk; cannam@95: const int *buddies; cannam@95: int nbuddies; cannam@95: } S; cannam@95: cannam@95: typedef struct { cannam@95: plan_dft super; cannam@95: plan *cldr, *cldc; cannam@95: const S *solver; cannam@95: } P; cannam@95: cannam@95: static void apply_r2hc(const plan *ego_, R *r0, R *r1, R *cr, R *ci) cannam@95: { cannam@95: const P *ego = (const P *) ego_; cannam@95: cannam@95: { cannam@95: plan_rdft2 *cldr = (plan_rdft2 *) ego->cldr; cannam@95: cldr->apply((plan *) cldr, r0, r1, cr, ci); cannam@95: } cannam@95: cannam@95: { cannam@95: plan_dft *cldc = (plan_dft *) ego->cldc; cannam@95: cldc->apply((plan *) cldc, cr, ci, cr, ci); cannam@95: } cannam@95: } cannam@95: cannam@95: static void apply_hc2r(const plan *ego_, R *r0, R *r1, R *cr, R *ci) cannam@95: { cannam@95: const P *ego = (const P *) ego_; cannam@95: cannam@95: { cannam@95: plan_dft *cldc = (plan_dft *) ego->cldc; cannam@95: cldc->apply((plan *) cldc, ci, cr, ci, cr); cannam@95: } cannam@95: cannam@95: { cannam@95: plan_rdft2 *cldr = (plan_rdft2 *) ego->cldr; cannam@95: cldr->apply((plan *) cldr, r0, r1, cr, ci); cannam@95: } cannam@95: cannam@95: } cannam@95: cannam@95: static void awake(plan *ego_, enum wakefulness wakefulness) cannam@95: { cannam@95: P *ego = (P *) ego_; cannam@95: X(plan_awake)(ego->cldr, wakefulness); cannam@95: X(plan_awake)(ego->cldc, wakefulness); cannam@95: } cannam@95: cannam@95: static void destroy(plan *ego_) cannam@95: { cannam@95: P *ego = (P *) ego_; cannam@95: X(plan_destroy_internal)(ego->cldr); cannam@95: X(plan_destroy_internal)(ego->cldc); cannam@95: } cannam@95: cannam@95: static void print(const plan *ego_, printer *p) cannam@95: { cannam@95: const P *ego = (const P *) ego_; cannam@95: const S *s = ego->solver; cannam@95: p->print(p, "(rdft2-rank>=2/%d%(%p%)%(%p%))", cannam@95: s->spltrnk, ego->cldr, ego->cldc); cannam@95: } cannam@95: cannam@95: static int picksplit(const S *ego, const tensor *sz, int *rp) cannam@95: { cannam@95: A(sz->rnk > 1); /* cannot split rnk <= 1 */ cannam@95: if (!X(pickdim)(ego->spltrnk, ego->buddies, ego->nbuddies, sz, 1, rp)) cannam@95: return 0; cannam@95: *rp += 1; /* convert from dim. index to rank */ cannam@95: if (*rp >= sz->rnk) /* split must reduce rank */ cannam@95: return 0; cannam@95: return 1; cannam@95: } cannam@95: cannam@95: static int applicable0(const solver *ego_, const problem *p_, int *rp, cannam@95: const planner *plnr) cannam@95: { cannam@95: const problem_rdft2 *p = (const problem_rdft2 *) p_; cannam@95: const S *ego = (const S *)ego_; cannam@95: return (1 cannam@95: && FINITE_RNK(p->sz->rnk) && FINITE_RNK(p->vecsz->rnk) cannam@95: cannam@95: /* FIXME: multidimensional R2HCII ? */ cannam@95: && (p->kind == R2HC || p->kind == HC2R) cannam@95: cannam@95: && p->sz->rnk >= 2 cannam@95: && picksplit(ego, p->sz, rp) cannam@95: && (0 cannam@95: cannam@95: /* can work out-of-place, but HC2R destroys input */ cannam@95: || (p->r0 != p->cr && cannam@95: (p->kind == R2HC || !NO_DESTROY_INPUTP(plnr))) cannam@95: cannam@95: /* FIXME: what are sufficient conditions for inplace? */ cannam@95: || (p->r0 == p->cr)) cannam@95: ); cannam@95: } cannam@95: cannam@95: /* TODO: revise this. */ cannam@95: static int applicable(const solver *ego_, const problem *p_, cannam@95: const planner *plnr, int *rp) cannam@95: { cannam@95: const S *ego = (const S *)ego_; cannam@95: cannam@95: if (!applicable0(ego_, p_, rp, plnr)) return 0; cannam@95: cannam@95: if (NO_RANK_SPLITSP(plnr) && (ego->spltrnk != ego->buddies[0])) cannam@95: return 0; cannam@95: cannam@95: if (NO_UGLYP(plnr)) { cannam@95: const problem_rdft2 *p = (const problem_rdft2 *) p_; cannam@95: cannam@95: /* Heuristic: if the vector stride is greater than the transform cannam@95: size, don't use (prefer to do the vector loop first with a cannam@95: vrank-geq1 plan). */ cannam@95: if (p->vecsz->rnk > 0 && cannam@95: X(tensor_min_stride)(p->vecsz) cannam@95: > X(rdft2_tensor_max_index)(p->sz, p->kind)) cannam@95: return 0; cannam@95: } cannam@95: cannam@95: return 1; cannam@95: } cannam@95: cannam@95: static plan *mkplan(const solver *ego_, const problem *p_, planner *plnr) cannam@95: { cannam@95: const S *ego = (const S *) ego_; cannam@95: const problem_rdft2 *p; cannam@95: P *pln; cannam@95: plan *cldr = 0, *cldc = 0; cannam@95: tensor *sz1, *sz2, *vecszi, *sz2i; cannam@95: int spltrnk; cannam@95: inplace_kind k; cannam@95: problem *cldp; cannam@95: cannam@95: static const plan_adt padt = { cannam@95: X(rdft2_solve), awake, print, destroy cannam@95: }; cannam@95: cannam@95: if (!applicable(ego_, p_, plnr, &spltrnk)) cannam@95: return (plan *) 0; cannam@95: cannam@95: p = (const problem_rdft2 *) p_; cannam@95: X(tensor_split)(p->sz, &sz1, spltrnk, &sz2); cannam@95: cannam@95: k = p->kind == R2HC ? INPLACE_OS : INPLACE_IS; cannam@95: vecszi = X(tensor_copy_inplace)(p->vecsz, k); cannam@95: sz2i = X(tensor_copy_inplace)(sz2, k); cannam@95: cannam@95: /* complex data is ~half of real */ cannam@95: sz2i->dims[sz2i->rnk - 1].n = sz2i->dims[sz2i->rnk - 1].n/2 + 1; cannam@95: cannam@95: cldr = X(mkplan_d)(plnr, cannam@95: X(mkproblem_rdft2_d)(X(tensor_copy)(sz2), cannam@95: X(tensor_append)(p->vecsz, sz1), cannam@95: p->r0, p->r1, cannam@95: p->cr, p->ci, p->kind)); cannam@95: if (!cldr) goto nada; cannam@95: cannam@95: if (p->kind == R2HC) cannam@95: cldp = X(mkproblem_dft_d)(X(tensor_copy_inplace)(sz1, k), cannam@95: X(tensor_append)(vecszi, sz2i), cannam@95: p->cr, p->ci, p->cr, p->ci); cannam@95: else /* HC2R must swap re/im parts to get IDFT */ cannam@95: cldp = X(mkproblem_dft_d)(X(tensor_copy_inplace)(sz1, k), cannam@95: X(tensor_append)(vecszi, sz2i), cannam@95: p->ci, p->cr, p->ci, p->cr); cannam@95: cldc = X(mkplan_d)(plnr, cldp); cannam@95: if (!cldc) goto nada; cannam@95: cannam@95: pln = MKPLAN_RDFT2(P, &padt, p->kind == R2HC ? apply_r2hc : apply_hc2r); cannam@95: cannam@95: pln->cldr = cldr; cannam@95: pln->cldc = cldc; cannam@95: cannam@95: pln->solver = ego; cannam@95: X(ops_add)(&cldr->ops, &cldc->ops, &pln->super.super.ops); cannam@95: cannam@95: X(tensor_destroy4)(sz2i, vecszi, sz2, sz1); cannam@95: cannam@95: return &(pln->super.super); cannam@95: cannam@95: nada: cannam@95: X(plan_destroy_internal)(cldr); cannam@95: X(plan_destroy_internal)(cldc); cannam@95: X(tensor_destroy4)(sz2i, vecszi, sz2, sz1); cannam@95: return (plan *) 0; cannam@95: } cannam@95: cannam@95: static solver *mksolver(int spltrnk, const int *buddies, int nbuddies) cannam@95: { cannam@95: static const solver_adt sadt = { PROBLEM_RDFT2, mkplan, 0 }; cannam@95: S *slv = MKSOLVER(S, &sadt); cannam@95: slv->spltrnk = spltrnk; cannam@95: slv->buddies = buddies; cannam@95: slv->nbuddies = nbuddies; cannam@95: return &(slv->super); cannam@95: } cannam@95: cannam@95: void X(rdft2_rank_geq2_register)(planner *p) cannam@95: { cannam@95: int i; cannam@95: static const int buddies[] = { 1, 0, -2 }; cannam@95: cannam@95: const int nbuddies = (int)(sizeof(buddies) / sizeof(buddies[0])); cannam@95: cannam@95: for (i = 0; i < nbuddies; ++i) cannam@95: REGISTER_SOLVER(p, mksolver(buddies[i], buddies, nbuddies)); cannam@95: cannam@95: /* FIXME: Should we try more buddies? See also dft/rank-geq2. */ cannam@95: }