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📄 hb_5.c

📁 最新的FFT程序
💻 C
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/* * Copyright (c) 2003, 2006 Matteo Frigo * Copyright (c) 2003, 2006 Massachusetts Institute of Technology * * This program is free software; you can redistribute it and/or modify * it under the terms of the GNU General Public License as published by * the Free Software Foundation; either version 2 of the License, or * (at your option) any later version. * * This program is distributed in the hope that it will be useful, * but WITHOUT ANY WARRANTY; without even the implied warranty of * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the * GNU General Public License for more details. * * You should have received a copy of the GNU General Public License * along with this program; if not, write to the Free Software * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA * *//* This file was automatically generated --- DO NOT EDIT *//* Generated on Fri Jan 27 20:42:11 EST 2006 */#include "codelet-rdft.h"#ifdef HAVE_FMA/* Generated by: ../../../genfft/gen_hc2hc -fma -reorder-insns -schedule-for-pipeline -compact -variables 4 -pipeline-latency 4 -sign 1 -n 5 -dif -name hb_5 -include hb.h *//* * This function contains 40 FP additions, 34 FP multiplications, * (or, 14 additions, 8 multiplications, 26 fused multiply/add), * 46 stack variables, and 20 memory accesses *//* * Generator Id's :  * $Id: algsimp.ml,v 1.8 2006-01-05 03:04:27 stevenj Exp $ * $Id: fft.ml,v 1.4 2006-01-05 03:04:27 stevenj Exp $ * $Id: gen_hc2hc.ml,v 1.15 2006-01-05 03:04:27 stevenj Exp $ */#include "hb.h"static const R *hb_5(R *rio, R *iio, const R *W, stride ios, INT m, INT dist){     DK(KP951056516, +0.951056516295153572116439333379382143405698634);     DK(KP559016994, +0.559016994374947424102293417182819058860154590);     DK(KP250000000, +0.250000000000000000000000000000000000000000000);     DK(KP618033988, +0.618033988749894848204586834365638117720309180);     INT i;     for (i = m - 2; i > 0; i = i - 2, rio = rio + dist, iio = iio - dist, W = W + 8, MAKE_VOLATILE_STRIDE(ios)) {	  E TQ, TP, TT, TR, TS, TU;	  {	       E T1, Tn, TM, Tw, Tb, T8, Tp, Ti, Ta, Td, Te;	       {		    E T5, T6, T2, T3, T7, Tv;		    T1 = rio[0];		    T5 = rio[WS(ios, 2)];		    T6 = iio[-WS(ios, 3)];		    T2 = rio[WS(ios, 1)];		    T3 = iio[-WS(ios, 4)];		    Tn = iio[0];		    T7 = T5 + T6;		    Tv = T5 - T6;		    {			 E T4, Tu, Tg, Th;			 T4 = T2 + T3;			 Tu = T2 - T3;			 Tg = iio[-WS(ios, 2)];			 Th = rio[WS(ios, 3)];			 TM = FNMS(KP618033988, Tu, Tv);			 Tw = FMA(KP618033988, Tv, Tu);			 Tb = T4 - T7;			 T8 = T4 + T7;			 Tp = Tg - Th;			 Ti = Tg + Th;			 Ta = FNMS(KP250000000, T8, T1);			 Td = iio[-WS(ios, 1)];			 Te = rio[WS(ios, 4)];		    }	       }	       {		    E TG, Tc, T9, Tm, Tz, Ts, Tq, Tj, TH, Tr, TC, Tf, To;		    rio[0] = T1 + T8;		    TG = FNMS(KP559016994, Tb, Ta);		    Tc = FMA(KP559016994, Tb, Ta);		    T9 = W[6];		    Tf = Td + Te;		    To = Td - Te;		    Tm = W[7];		    Tz = W[0];		    Ts = To - Tp;		    Tq = To + Tp;		    Tj = FMA(KP618033988, Ti, Tf);		    TH = FNMS(KP618033988, Tf, Ti);		    Tr = FNMS(KP250000000, Tq, Tn);		    TC = W[1];		    iio[-WS(ios, 4)] = Tn + Tq;		    {			 E TA, Tk, Tt, TL, TI;			 TA = FNMS(KP951056516, Tj, Tc);			 Tk = FMA(KP951056516, Tj, Tc);			 Tt = FMA(KP559016994, Ts, Tr);			 TL = FNMS(KP559016994, Ts, Tr);			 {			      E TE, TB, Ty, Tl, TD, Tx;			      TE = TC * TA;			      TB = Tz * TA;			      Ty = Tm * Tk;			      Tl = T9 * Tk;			      TD = FMA(KP951056516, Tw, Tt);			      Tx = FNMS(KP951056516, Tw, Tt);			      TI = FNMS(KP951056516, TH, TG);			      TQ = FMA(KP951056516, TH, TG);			      iio[-WS(ios, 3)] = FMA(Tz, TD, TE);			      rio[WS(ios, 1)] = FNMS(TC, TD, TB);			      iio[0] = FMA(T9, Tx, Ty);			      rio[WS(ios, 4)] = FNMS(Tm, Tx, Tl);			 }			 {			      E TF, TK, TN, TJ, TO;			      TF = W[4];			      TK = W[5];			      TP = W[2];			      TT = FNMS(KP951056516, TM, TL);			      TN = FMA(KP951056516, TM, TL);			      TJ = TF * TI;			      TO = TK * TI;			      TR = TP * TQ;			      TS = W[3];			      rio[WS(ios, 3)] = FNMS(TK, TN, TJ);			      iio[-WS(ios, 1)] = FMA(TF, TN, TO);			 }		    }	       }	  }	  rio[WS(ios, 2)] = FNMS(TS, TT, TR);	  TU = TS * TQ;	  iio[-WS(ios, 2)] = FMA(TP, TT, TU);     }     return W;}static const tw_instr twinstr[] = {     {TW_FULL, 0, 5},     {TW_NEXT, 1, 0}};static const hc2hc_desc desc = { 5, "hb_5", twinstr, &GENUS, {14, 8, 26, 0}, 0, 0, 0 };void X(codelet_hb_5) (planner *p) {     X(khc2hc_register) (p, hb_5, &desc);}#else				/* HAVE_FMA *//* Generated by: ../../../genfft/gen_hc2hc -compact -variables 4 -pipeline-latency 4 -sign 1 -n 5 -dif -name hb_5 -include hb.h *//* * This function contains 40 FP additions, 28 FP multiplications, * (or, 26 additions, 14 multiplications, 14 fused multiply/add), * 27 stack variables, and 20 memory accesses *//* * Generator Id's :  * $Id: algsimp.ml,v 1.8 2006-01-05 03:04:27 stevenj Exp $ * $Id: fft.ml,v 1.4 2006-01-05 03:04:27 stevenj Exp $ * $Id: gen_hc2hc.ml,v 1.15 2006-01-05 03:04:27 stevenj Exp $ */#include "hb.h"static const R *hb_5(R *rio, R *iio, const R *W, stride ios, INT m, INT dist){     DK(KP250000000, +0.250000000000000000000000000000000000000000000);     DK(KP587785252, +0.587785252292473129168705954639072768597652438);     DK(KP951056516, +0.951056516295153572116439333379382143405698634);     DK(KP559016994, +0.559016994374947424102293417182819058860154590);     INT i;     for (i = m - 2; i > 0; i = i - 2, rio = rio + dist, iio = iio - dist, W = W + 8, MAKE_VOLATILE_STRIDE(ios)) {	  E T1, Tj, TG, Ts, T8, Ti, T9, Tn, TD, Tu, Tg, Tt;	  {	       E T7, Tr, T4, Tq;	       T1 = rio[0];	       {		    E T5, T6, T2, T3;		    T5 = rio[WS(ios, 2)];		    T6 = iio[-WS(ios, 3)];		    T7 = T5 + T6;		    Tr = T5 - T6;		    T2 = rio[WS(ios, 1)];		    T3 = iio[-WS(ios, 4)];		    T4 = T2 + T3;		    Tq = T2 - T3;	       }	       Tj = KP559016994 * (T4 - T7);	       TG = FMA(KP951056516, Tq, KP587785252 * Tr);	       Ts = FNMS(KP951056516, Tr, KP587785252 * Tq);	       T8 = T4 + T7;	       Ti = FNMS(KP250000000, T8, T1);	  }	  {	       E Tf, Tm, Tc, Tl;	       T9 = iio[0];	       {		    E Td, Te, Ta, Tb;		    Td = iio[-WS(ios, 2)];		    Te = rio[WS(ios, 3)];		    Tf = Td - Te;		    Tm = Td + Te;		    Ta = iio[-WS(ios, 1)];		    Tb = rio[WS(ios, 4)];		    Tc = Ta - Tb;		    Tl = Ta + Tb;	       }	       Tn = FNMS(KP951056516, Tm, KP587785252 * Tl);	       TD = FMA(KP951056516, Tl, KP587785252 * Tm);	       Tu = KP559016994 * (Tc - Tf);	       Tg = Tc + Tf;	       Tt = FNMS(KP250000000, Tg, T9);	  }	  rio[0] = T1 + T8;	  iio[-WS(ios, 4)] = T9 + Tg;	  {	       E TE, TM, TI, TK, TC, TH;	       TC = Tj + Ti;	       TE = TC - TD;	       TM = TC + TD;	       TH = Tu + Tt;	       TI = TG + TH;	       TK = TH - TG;	       {		    E TB, TF, TJ, TL;		    TB = W[0];		    TF = W[1];		    rio[WS(ios, 1)] = FNMS(TF, TI, TB * TE);		    iio[-WS(ios, 3)] = FMA(TB, TI, TF * TE);		    TJ = W[6];		    TL = W[7];		    iio[0] = FMA(TJ, TK, TL * TM);		    rio[WS(ios, 4)] = FNMS(TL, TK, TJ * TM);	       }	  }	  {	       E To, TA, Tw, Ty, Tk, Tv;	       Tk = Ti - Tj;	       To = Tk - Tn;	       TA = Tk + Tn;	       Tv = Tt - Tu;	       Tw = Ts + Tv;	       Ty = Tv - Ts;	       {		    E Th, Tp, Tx, Tz;		    Th = W[2];		    Tp = W[3];		    rio[WS(ios, 2)] = FNMS(Tp, Tw, Th * To);		    iio[-WS(ios, 2)] = FMA(Th, Tw, Tp * To);		    Tx = W[4];		    Tz = W[5];		    iio[-WS(ios, 1)] = FMA(Tx, Ty, Tz * TA);		    rio[WS(ios, 3)] = FNMS(Tz, Ty, Tx * TA);	       }	  }     }     return W;}static const tw_instr twinstr[] = {     {TW_FULL, 0, 5},     {TW_NEXT, 1, 0}};static const hc2hc_desc desc = { 5, "hb_5", twinstr, &GENUS, {26, 14, 14, 0}, 0, 0, 0 };void X(codelet_hb_5) (planner *p) {     X(khc2hc_register) (p, hb_5, &desc);}#endif				/* HAVE_FMA */

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