Chris@19: /* Chris@19: * Copyright (c) 2003, 2007-14 Matteo Frigo Chris@19: * Copyright (c) 2003, 2007-14 Massachusetts Institute of Technology Chris@19: * Chris@19: * This program is free software; you can redistribute it and/or modify Chris@19: * it under the terms of the GNU General Public License as published by Chris@19: * the Free Software Foundation; either version 2 of the License, or Chris@19: * (at your option) any later version. Chris@19: * Chris@19: * This program is distributed in the hope that it will be useful, Chris@19: * but WITHOUT ANY WARRANTY; without even the implied warranty of Chris@19: * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the Chris@19: * GNU General Public License for more details. Chris@19: * Chris@19: * You should have received a copy of the GNU General Public License Chris@19: * along with this program; if not, write to the Free Software Chris@19: * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA Chris@19: * Chris@19: */ Chris@19: Chris@19: Chris@19: #include "threads.h" Chris@19: Chris@19: typedef struct { Chris@19: plan_dft super; Chris@19: plan *cld; Chris@19: plan **cldws; Chris@19: int nthr; Chris@19: INT r; Chris@19: } P; Chris@19: Chris@19: typedef struct { Chris@19: plan **cldws; Chris@19: R *r, *i; Chris@19: } PD; Chris@19: Chris@19: static void *spawn_apply(spawn_data *d) Chris@19: { Chris@19: PD *ego = (PD *) d->data; Chris@19: INT thr_num = d->thr_num; Chris@19: Chris@19: plan_dftw *cldw = (plan_dftw *) (ego->cldws[thr_num]); Chris@19: cldw->apply((plan *) cldw, ego->r, ego->i); Chris@19: return 0; Chris@19: } Chris@19: Chris@19: static void apply_dit(const plan *ego_, R *ri, R *ii, R *ro, R *io) Chris@19: { Chris@19: const P *ego = (const P *) ego_; Chris@19: plan_dft *cld; Chris@19: Chris@19: cld = (plan_dft *) ego->cld; Chris@19: cld->apply(ego->cld, ri, ii, ro, io); Chris@19: Chris@19: { Chris@19: PD d; Chris@19: Chris@19: d.r = ro; d.i = io; Chris@19: d.cldws = ego->cldws; Chris@19: Chris@19: X(spawn_loop)(ego->nthr, ego->nthr, spawn_apply, (void*)&d); Chris@19: } Chris@19: } Chris@19: Chris@19: static void apply_dif(const plan *ego_, R *ri, R *ii, R *ro, R *io) Chris@19: { Chris@19: const P *ego = (const P *) ego_; Chris@19: plan_dft *cld; Chris@19: Chris@19: { Chris@19: PD d; Chris@19: Chris@19: d.r = ri; d.i = ii; Chris@19: d.cldws = ego->cldws; Chris@19: Chris@19: X(spawn_loop)(ego->nthr, ego->nthr, spawn_apply, (void*)&d); Chris@19: } Chris@19: Chris@19: cld = (plan_dft *) ego->cld; Chris@19: cld->apply(ego->cld, ri, ii, ro, io); Chris@19: } Chris@19: Chris@19: static void awake(plan *ego_, enum wakefulness wakefulness) Chris@19: { Chris@19: P *ego = (P *) ego_; Chris@19: int i; Chris@19: X(plan_awake)(ego->cld, wakefulness); Chris@19: for (i = 0; i < ego->nthr; ++i) Chris@19: X(plan_awake)(ego->cldws[i], wakefulness); Chris@19: } Chris@19: Chris@19: static void destroy(plan *ego_) Chris@19: { Chris@19: P *ego = (P *) ego_; Chris@19: int i; Chris@19: X(plan_destroy_internal)(ego->cld); Chris@19: for (i = 0; i < ego->nthr; ++i) Chris@19: X(plan_destroy_internal)(ego->cldws[i]); Chris@19: X(ifree)(ego->cldws); Chris@19: } Chris@19: Chris@19: static void print(const plan *ego_, printer *p) Chris@19: { Chris@19: const P *ego = (const P *) ego_; Chris@19: int i; Chris@19: p->print(p, "(dft-thr-ct-%s-x%d/%D", Chris@19: ego->super.apply == apply_dit ? "dit" : "dif", Chris@19: ego->nthr, ego->r); Chris@19: for (i = 0; i < ego->nthr; ++i) Chris@19: if (i == 0 || (ego->cldws[i] != ego->cldws[i-1] && Chris@19: (i <= 1 || ego->cldws[i] != ego->cldws[i-2]))) Chris@19: p->print(p, "%(%p%)", ego->cldws[i]); Chris@19: p->print(p, "%(%p%))", ego->cld); Chris@19: } Chris@19: Chris@19: static plan *mkplan(const solver *ego_, const problem *p_, planner *plnr) Chris@19: { Chris@19: const ct_solver *ego = (const ct_solver *) ego_; Chris@19: const problem_dft *p; Chris@19: P *pln = 0; Chris@19: plan *cld = 0, **cldws = 0; Chris@19: INT n, r, m, v, ivs, ovs; Chris@19: INT block_size; Chris@19: int i, nthr, plnr_nthr_save; Chris@19: iodim *d; Chris@19: Chris@19: static const plan_adt padt = { Chris@19: X(dft_solve), awake, print, destroy Chris@19: }; Chris@19: Chris@19: if (plnr->nthr <= 1 || !X(ct_applicable)(ego, p_, plnr)) Chris@19: return (plan *) 0; Chris@19: Chris@19: p = (const problem_dft *) p_; Chris@19: d = p->sz->dims; Chris@19: n = d[0].n; Chris@19: r = X(choose_radix)(ego->r, n); Chris@19: m = n / r; Chris@19: Chris@19: X(tensor_tornk1)(p->vecsz, &v, &ivs, &ovs); Chris@19: Chris@19: block_size = (m + plnr->nthr - 1) / plnr->nthr; Chris@19: nthr = (int)((m + block_size - 1) / block_size); Chris@19: plnr_nthr_save = plnr->nthr; Chris@19: plnr->nthr = (plnr->nthr + nthr - 1) / nthr; Chris@19: Chris@19: cldws = (plan **) MALLOC(sizeof(plan *) * nthr, PLANS); Chris@19: for (i = 0; i < nthr; ++i) cldws[i] = (plan *) 0; Chris@19: Chris@19: switch (ego->dec) { Chris@19: case DECDIT: Chris@19: { Chris@19: for (i = 0; i < nthr; ++i) { Chris@19: cldws[i] = ego->mkcldw(ego, Chris@19: r, m * d[0].os, m * d[0].os, Chris@19: m, d[0].os, Chris@19: v, ovs, ovs, Chris@19: i*block_size, Chris@19: (i == nthr - 1) ? Chris@19: (m - i*block_size) : block_size, Chris@19: p->ro, p->io, plnr); Chris@19: if (!cldws[i]) goto nada; Chris@19: } Chris@19: Chris@19: plnr->nthr = plnr_nthr_save; Chris@19: Chris@19: cld = X(mkplan_d)(plnr, Chris@19: X(mkproblem_dft_d)( Chris@19: X(mktensor_1d)(m, r * d[0].is, d[0].os), Chris@19: X(mktensor_2d)(r, d[0].is, m * d[0].os, Chris@19: v, ivs, ovs), Chris@19: p->ri, p->ii, p->ro, p->io) Chris@19: ); Chris@19: if (!cld) goto nada; Chris@19: Chris@19: pln = MKPLAN_DFT(P, &padt, apply_dit); Chris@19: break; Chris@19: } Chris@19: case DECDIF: Chris@19: case DECDIF+TRANSPOSE: Chris@19: { Chris@19: INT cors, covs; /* cldw ors, ovs */ Chris@19: if (ego->dec == DECDIF+TRANSPOSE) { Chris@19: cors = ivs; Chris@19: covs = m * d[0].is; Chris@19: /* ensure that we generate well-formed dftw subproblems */ Chris@19: /* FIXME: too conservative */ Chris@19: if (!(1 Chris@19: && r == v Chris@19: && d[0].is == r * cors)) Chris@19: goto nada; Chris@19: Chris@19: /* FIXME: allow in-place only for now, like in Chris@19: fftw-3.[01] */ Chris@19: if (!(1 Chris@19: && p->ri == p->ro Chris@19: && d[0].is == r * d[0].os Chris@19: && cors == d[0].os Chris@19: && covs == ovs Chris@19: )) Chris@19: goto nada; Chris@19: } else { Chris@19: cors = m * d[0].is; Chris@19: covs = ivs; Chris@19: } Chris@19: Chris@19: for (i = 0; i < nthr; ++i) { Chris@19: cldws[i] = ego->mkcldw(ego, Chris@19: r, m * d[0].is, cors, Chris@19: m, d[0].is, Chris@19: v, ivs, covs, Chris@19: i*block_size, Chris@19: (i == nthr - 1) ? Chris@19: (m - i*block_size) : block_size, Chris@19: p->ri, p->ii, plnr); Chris@19: if (!cldws[i]) goto nada; Chris@19: } Chris@19: Chris@19: plnr->nthr = plnr_nthr_save; Chris@19: Chris@19: cld = X(mkplan_d)(plnr, Chris@19: X(mkproblem_dft_d)( Chris@19: X(mktensor_1d)(m, d[0].is, r * d[0].os), Chris@19: X(mktensor_2d)(r, cors, d[0].os, Chris@19: v, covs, ovs), Chris@19: p->ri, p->ii, p->ro, p->io) Chris@19: ); Chris@19: if (!cld) goto nada; Chris@19: Chris@19: pln = MKPLAN_DFT(P, &padt, apply_dif); Chris@19: break; Chris@19: } Chris@19: Chris@19: default: A(0); Chris@19: Chris@19: } Chris@19: Chris@19: pln->cld = cld; Chris@19: pln->cldws = cldws; Chris@19: pln->nthr = nthr; Chris@19: pln->r = r; Chris@19: X(ops_zero)(&pln->super.super.ops); Chris@19: for (i = 0; i < nthr; ++i) { Chris@19: X(ops_add2)(&cldws[i]->ops, &pln->super.super.ops); Chris@19: pln->super.super.could_prune_now_p |= cldws[i]->could_prune_now_p; Chris@19: } Chris@19: X(ops_add2)(&cld->ops, &pln->super.super.ops); Chris@19: return &(pln->super.super); Chris@19: Chris@19: nada: Chris@19: if (cldws) { Chris@19: for (i = 0; i < nthr; ++i) Chris@19: X(plan_destroy_internal)(cldws[i]); Chris@19: X(ifree)(cldws); Chris@19: } Chris@19: X(plan_destroy_internal)(cld); Chris@19: return (plan *) 0; Chris@19: } Chris@19: Chris@19: ct_solver *X(mksolver_ct_threads)(size_t size, INT r, int dec, Chris@19: ct_mkinferior mkcldw, Chris@19: ct_force_vrecursion force_vrecursionp) Chris@19: { Chris@19: static const solver_adt sadt = { PROBLEM_DFT, mkplan, 0 }; Chris@19: ct_solver *slv = (ct_solver *) X(mksolver)(size, &sadt); Chris@19: slv->r = r; Chris@19: slv->dec = dec; Chris@19: slv->mkcldw = mkcldw; Chris@19: slv->force_vrecursionp = force_vrecursionp; Chris@19: return slv; Chris@19: }