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📄 t1fv_12.c

📁 fftw-3.0.1
💻 C
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/* * Copyright (c) 2003 Matteo Frigo * Copyright (c) 2003 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 Sat Jul  5 21:43:28 EDT 2003 */#include "codelet-dft.h"/* Generated by: /homee/stevenj/cvs/fftw3.0.1/genfft/gen_twiddle_c -simd -compact -variables 4 -n 12 -name t1fv_12 -include t1f.h *//* * This function contains 59 FP additions, 30 FP multiplications, * (or, 55 additions, 26 multiplications, 4 fused multiply/add), * 28 stack variables, and 24 memory accesses *//* * Generator Id's :  * $Id: algsimp.ml,v 1.7 2003/03/15 20:29:42 stevenj Exp $ * $Id: fft.ml,v 1.2 2003/03/15 20:29:42 stevenj Exp $ * $Id: gen_twiddle_c.ml,v 1.7 2003/04/16 19:51:27 athena Exp $ */#include "t1f.h"static const R *t1fv_12(R *ri, R *ii, const R *W, stride ios, int m, int dist){     DVK(KP866025403, +0.866025403784438646763723170752936183471402627);     DVK(KP500000000, +0.500000000000000000000000000000000000000000000);     int i;     R *x;     x = ri;     BEGIN_SIMD();     for (i = m; i > 0; i = i - VL, x = x + (VL * dist), W = W + (TWVL * 22)) {	  V T1, TH, T6, TA, Tq, TE, Tv, TL, T9, TI, Te, TB, Ti, TD, Tn;	  V TK;	  {	       V T5, T3, T4, T2;	       T1 = LD(&(x[0]), dist, &(x[0]));	       T4 = LD(&(x[WS(ios, 8)]), dist, &(x[0]));	       T5 = BYTWJ(&(W[TWVL * 14]), T4);	       T2 = LD(&(x[WS(ios, 4)]), dist, &(x[0]));	       T3 = BYTWJ(&(W[TWVL * 6]), T2);	       TH = VSUB(T5, T3);	       T6 = VADD(T3, T5);	       TA = VFNMS(LDK(KP500000000), T6, T1);	  }	  {	       V Tu, Ts, Tp, Tt, Tr;	       Tp = LD(&(x[WS(ios, 9)]), dist, &(x[WS(ios, 1)]));	       Tq = BYTWJ(&(W[TWVL * 16]), Tp);	       Tt = LD(&(x[WS(ios, 5)]), dist, &(x[WS(ios, 1)]));	       Tu = BYTWJ(&(W[TWVL * 8]), Tt);	       Tr = LD(&(x[WS(ios, 1)]), dist, &(x[WS(ios, 1)]));	       Ts = BYTWJ(&(W[0]), Tr);	       TE = VSUB(Tu, Ts);	       Tv = VADD(Ts, Tu);	       TL = VFNMS(LDK(KP500000000), Tv, Tq);	  }	  {	       V Td, Tb, T8, Tc, Ta;	       T8 = LD(&(x[WS(ios, 6)]), dist, &(x[0]));	       T9 = BYTWJ(&(W[TWVL * 10]), T8);	       Tc = LD(&(x[WS(ios, 2)]), dist, &(x[0]));	       Td = BYTWJ(&(W[TWVL * 2]), Tc);	       Ta = LD(&(x[WS(ios, 10)]), dist, &(x[0]));	       Tb = BYTWJ(&(W[TWVL * 18]), Ta);	       TI = VSUB(Td, Tb);	       Te = VADD(Tb, Td);	       TB = VFNMS(LDK(KP500000000), Te, T9);	  }	  {	       V Tm, Tk, Th, Tl, Tj;	       Th = LD(&(x[WS(ios, 3)]), dist, &(x[WS(ios, 1)]));	       Ti = BYTWJ(&(W[TWVL * 4]), Th);	       Tl = LD(&(x[WS(ios, 11)]), dist, &(x[WS(ios, 1)]));	       Tm = BYTWJ(&(W[TWVL * 20]), Tl);	       Tj = LD(&(x[WS(ios, 7)]), dist, &(x[WS(ios, 1)]));	       Tk = BYTWJ(&(W[TWVL * 12]), Tj);	       TD = VSUB(Tm, Tk);	       Tn = VADD(Tk, Tm);	       TK = VFNMS(LDK(KP500000000), Tn, Ti);	  }	  {	       V Tg, Ty, Tx, Tz;	       {		    V T7, Tf, To, Tw;		    T7 = VADD(T1, T6);		    Tf = VADD(T9, Te);		    Tg = VSUB(T7, Tf);		    Ty = VADD(T7, Tf);		    To = VADD(Ti, Tn);		    Tw = VADD(Tq, Tv);		    Tx = VBYI(VSUB(To, Tw));		    Tz = VADD(To, Tw);	       }	       ST(&(x[WS(ios, 9)]), VSUB(Tg, Tx), dist, &(x[WS(ios, 1)]));	       ST(&(x[0]), VADD(Ty, Tz), dist, &(x[0]));	       ST(&(x[WS(ios, 3)]), VADD(Tg, Tx), dist, &(x[WS(ios, 1)]));	       ST(&(x[WS(ios, 6)]), VSUB(Ty, Tz), dist, &(x[0]));	  }	  {	       V TS, TW, TV, TX;	       {		    V TQ, TR, TT, TU;		    TQ = VADD(TA, TB);		    TR = VADD(TK, TL);		    TS = VSUB(TQ, TR);		    TW = VADD(TQ, TR);		    TT = VADD(TD, TE);		    TU = VADD(TH, TI);		    TV = VBYI(VMUL(LDK(KP866025403), VSUB(TT, TU)));		    TX = VBYI(VMUL(LDK(KP866025403), VADD(TU, TT)));	       }	       ST(&(x[WS(ios, 10)]), VSUB(TS, TV), dist, &(x[0]));	       ST(&(x[WS(ios, 4)]), VADD(TW, TX), dist, &(x[0]));	       ST(&(x[WS(ios, 2)]), VADD(TS, TV), dist, &(x[0]));	       ST(&(x[WS(ios, 8)]), VSUB(TW, TX), dist, &(x[0]));	  }	  {	       V TG, TP, TN, TO;	       {		    V TC, TF, TJ, TM;		    TC = VSUB(TA, TB);		    TF = VMUL(LDK(KP866025403), VSUB(TD, TE));		    TG = VSUB(TC, TF);		    TP = VADD(TC, TF);		    TJ = VMUL(LDK(KP866025403), VSUB(TH, TI));		    TM = VSUB(TK, TL);		    TN = VBYI(VADD(TJ, TM));		    TO = VBYI(VSUB(TJ, TM));	       }	       ST(&(x[WS(ios, 5)]), VSUB(TG, TN), dist, &(x[WS(ios, 1)]));	       ST(&(x[WS(ios, 11)]), VSUB(TP, TO), dist, &(x[WS(ios, 1)]));	       ST(&(x[WS(ios, 7)]), VADD(TN, TG), dist, &(x[WS(ios, 1)]));	       ST(&(x[WS(ios, 1)]), VADD(TO, TP), dist, &(x[WS(ios, 1)]));	  }     }     END_SIMD();     return W;}static const tw_instr twinstr[] = {     VTW(1),     VTW(2),     VTW(3),     VTW(4),     VTW(5),     VTW(6),     VTW(7),     VTW(8),     VTW(9),     VTW(10),     VTW(11),     {TW_NEXT, VL, 0}};static const ct_desc desc = { 12, "t1fv_12", twinstr, {55, 26, 4, 0}, &GENUS, 0, 0, 0 };void X(codelet_t1fv_12) (planner *p) {     X(kdft_dit_register) (p, t1fv_12, &desc);}

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