annotate src/fftw-3.3.8/rdft/scalar/r2cf/r2cfII_15.c @ 169:223a55898ab9 tip default

Add null config files
author Chris Cannam <cannam@all-day-breakfast.com>
date Mon, 02 Mar 2020 14:03:47 +0000
parents bd3cc4d1df30
children
rev   line source
cannam@167 1 /*
cannam@167 2 * Copyright (c) 2003, 2007-14 Matteo Frigo
cannam@167 3 * Copyright (c) 2003, 2007-14 Massachusetts Institute of Technology
cannam@167 4 *
cannam@167 5 * This program is free software; you can redistribute it and/or modify
cannam@167 6 * it under the terms of the GNU General Public License as published by
cannam@167 7 * the Free Software Foundation; either version 2 of the License, or
cannam@167 8 * (at your option) any later version.
cannam@167 9 *
cannam@167 10 * This program is distributed in the hope that it will be useful,
cannam@167 11 * but WITHOUT ANY WARRANTY; without even the implied warranty of
cannam@167 12 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
cannam@167 13 * GNU General Public License for more details.
cannam@167 14 *
cannam@167 15 * You should have received a copy of the GNU General Public License
cannam@167 16 * along with this program; if not, write to the Free Software
cannam@167 17 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
cannam@167 18 *
cannam@167 19 */
cannam@167 20
cannam@167 21 /* This file was automatically generated --- DO NOT EDIT */
cannam@167 22 /* Generated on Thu May 24 08:06:43 EDT 2018 */
cannam@167 23
cannam@167 24 #include "rdft/codelet-rdft.h"
cannam@167 25
cannam@167 26 #if defined(ARCH_PREFERS_FMA) || defined(ISA_EXTENSION_PREFERS_FMA)
cannam@167 27
cannam@167 28 /* Generated by: ../../../genfft/gen_r2cf.native -fma -compact -variables 4 -pipeline-latency 4 -n 15 -name r2cfII_15 -dft-II -include rdft/scalar/r2cfII.h */
cannam@167 29
cannam@167 30 /*
cannam@167 31 * This function contains 72 FP additions, 41 FP multiplications,
cannam@167 32 * (or, 38 additions, 7 multiplications, 34 fused multiply/add),
cannam@167 33 * 42 stack variables, 12 constants, and 30 memory accesses
cannam@167 34 */
cannam@167 35 #include "rdft/scalar/r2cfII.h"
cannam@167 36
cannam@167 37 static void r2cfII_15(R *R0, R *R1, R *Cr, R *Ci, stride rs, stride csr, stride csi, INT v, INT ivs, INT ovs)
cannam@167 38 {
cannam@167 39 DK(KP823639103, +0.823639103546331925877420039278190003029660514);
cannam@167 40 DK(KP910592997, +0.910592997310029334643087372129977886038870291);
cannam@167 41 DK(KP951056516, +0.951056516295153572116439333379382143405698634);
cannam@167 42 DK(KP559016994, +0.559016994374947424102293417182819058860154590);
cannam@167 43 DK(KP866025403, +0.866025403784438646763723170752936183471402627);
cannam@167 44 DK(KP500000000, +0.500000000000000000000000000000000000000000000);
cannam@167 45 DK(KP690983005, +0.690983005625052575897706582817180941139845410);
cannam@167 46 DK(KP447213595, +0.447213595499957939281834733746255247088123672);
cannam@167 47 DK(KP552786404, +0.552786404500042060718165266253744752911876328);
cannam@167 48 DK(KP809016994, +0.809016994374947424102293417182819058860154590);
cannam@167 49 DK(KP618033988, +0.618033988749894848204586834365638117720309180);
cannam@167 50 DK(KP250000000, +0.250000000000000000000000000000000000000000000);
cannam@167 51 {
cannam@167 52 INT i;
cannam@167 53 for (i = v; i > 0; i = i - 1, R0 = R0 + ivs, R1 = R1 + ivs, Cr = Cr + ovs, Ci = Ci + ovs, MAKE_VOLATILE_STRIDE(60, rs), MAKE_VOLATILE_STRIDE(60, csr), MAKE_VOLATILE_STRIDE(60, csi)) {
cannam@167 54 E Ta, Tl, T1, T6, T7, TX, TT, T8, Tg, Th, TM, TZ, Tj, Tz, Tr;
cannam@167 55 E Ts, TP, TY, Tu, TC;
cannam@167 56 Ta = R0[WS(rs, 5)];
cannam@167 57 Tl = R1[WS(rs, 2)];
cannam@167 58 {
cannam@167 59 E T2, T5, T3, T4, TR, TS;
cannam@167 60 T1 = R0[0];
cannam@167 61 T2 = R0[WS(rs, 3)];
cannam@167 62 T5 = R1[WS(rs, 4)];
cannam@167 63 T3 = R0[WS(rs, 6)];
cannam@167 64 T4 = R1[WS(rs, 1)];
cannam@167 65 TR = T2 + T5;
cannam@167 66 TS = T3 + T4;
cannam@167 67 T6 = T2 + T3 - T4 - T5;
cannam@167 68 T7 = FNMS(KP250000000, T6, T1);
cannam@167 69 TX = FNMS(KP618033988, TR, TS);
cannam@167 70 TT = FMA(KP618033988, TS, TR);
cannam@167 71 T8 = (T3 + T5 - T2) - T4;
cannam@167 72 }
cannam@167 73 {
cannam@167 74 E Tf, TL, TK, Ti, Ty;
cannam@167 75 {
cannam@167 76 E Tb, Tc, Td, Te;
cannam@167 77 Tb = R1[0];
cannam@167 78 Tg = R0[WS(rs, 2)];
cannam@167 79 Tc = R1[WS(rs, 3)];
cannam@167 80 Td = R1[WS(rs, 6)];
cannam@167 81 Te = Tc + Td;
cannam@167 82 Tf = Tb - Te;
cannam@167 83 TL = Tc - Td;
cannam@167 84 Th = Tb + Te;
cannam@167 85 TK = Tg + Tb;
cannam@167 86 }
cannam@167 87 TM = FMA(KP618033988, TL, TK);
cannam@167 88 TZ = FNMS(KP618033988, TK, TL);
cannam@167 89 Ti = FMA(KP809016994, Th, Tg);
cannam@167 90 Tj = FNMS(KP552786404, Ti, Tf);
cannam@167 91 Ty = FMA(KP447213595, Th, Tf);
cannam@167 92 Tz = FNMS(KP690983005, Ty, Tg);
cannam@167 93 }
cannam@167 94 {
cannam@167 95 E Tq, TO, TN, Tt, TB;
cannam@167 96 {
cannam@167 97 E Tm, Tn, To, Tp;
cannam@167 98 Tm = R0[WS(rs, 7)];
cannam@167 99 Tr = R1[WS(rs, 5)];
cannam@167 100 Tn = R0[WS(rs, 1)];
cannam@167 101 To = R0[WS(rs, 4)];
cannam@167 102 Tp = Tn + To;
cannam@167 103 Tq = Tm - Tp;
cannam@167 104 TO = To - Tn;
cannam@167 105 Ts = Tm + Tp;
cannam@167 106 TN = Tr + Tm;
cannam@167 107 }
cannam@167 108 TP = FMA(KP618033988, TO, TN);
cannam@167 109 TY = FNMS(KP618033988, TN, TO);
cannam@167 110 Tt = FMA(KP809016994, Ts, Tr);
cannam@167 111 Tu = FNMS(KP552786404, Tt, Tq);
cannam@167 112 TB = FMA(KP447213595, Ts, Tq);
cannam@167 113 TC = FNMS(KP690983005, TB, Tr);
cannam@167 114 }
cannam@167 115 {
cannam@167 116 E TF, TG, TH, TI;
cannam@167 117 TF = T1 + T6;
cannam@167 118 TG = Ts - Tr - Tl;
cannam@167 119 TH = Ta + Tg - Th;
cannam@167 120 TI = TG + TH;
cannam@167 121 Cr[WS(csr, 2)] = FNMS(KP500000000, TI, TF);
cannam@167 122 Ci[WS(csi, 2)] = KP866025403 * (TH - TG);
cannam@167 123 Cr[WS(csr, 7)] = TF + TI;
cannam@167 124 }
cannam@167 125 {
cannam@167 126 E Tx, T14, T10, T11, TE, T12, TA, TD, T13;
cannam@167 127 Tx = FMA(KP559016994, T8, T7);
cannam@167 128 T14 = TZ - TY;
cannam@167 129 T10 = TY + TZ;
cannam@167 130 T11 = FMA(KP500000000, T10, TX);
cannam@167 131 TA = FNMS(KP809016994, Tz, Ta);
cannam@167 132 TD = FNMS(KP809016994, TC, Tl);
cannam@167 133 TE = TA - TD;
cannam@167 134 T12 = TD + TA;
cannam@167 135 Cr[WS(csr, 1)] = Tx + TE;
cannam@167 136 Ci[WS(csi, 1)] = KP951056516 * (T10 - TX);
cannam@167 137 Ci[WS(csi, 3)] = KP951056516 * (FNMS(KP910592997, T12, T11));
cannam@167 138 Ci[WS(csi, 6)] = -(KP951056516 * (FMA(KP910592997, T12, T11)));
cannam@167 139 T13 = FNMS(KP500000000, TE, Tx);
cannam@167 140 Cr[WS(csr, 3)] = FNMS(KP823639103, T14, T13);
cannam@167 141 Cr[WS(csr, 6)] = FMA(KP823639103, T14, T13);
cannam@167 142 }
cannam@167 143 {
cannam@167 144 E T9, TQ, TU, TV, Tw, TW, Tk, Tv, TJ;
cannam@167 145 T9 = FNMS(KP559016994, T8, T7);
cannam@167 146 TQ = TM - TP;
cannam@167 147 TU = TP + TM;
cannam@167 148 TV = FMA(KP500000000, TU, TT);
cannam@167 149 Tk = FNMS(KP559016994, Tj, Ta);
cannam@167 150 Tv = FNMS(KP559016994, Tu, Tl);
cannam@167 151 Tw = Tk - Tv;
cannam@167 152 TW = Tv + Tk;
cannam@167 153 Cr[WS(csr, 4)] = T9 + Tw;
cannam@167 154 Ci[WS(csi, 4)] = KP951056516 * (TT - TU);
cannam@167 155 Ci[0] = -(KP951056516 * (FMA(KP910592997, TW, TV)));
cannam@167 156 Ci[WS(csi, 5)] = -(KP951056516 * (FNMS(KP910592997, TW, TV)));
cannam@167 157 TJ = FNMS(KP500000000, Tw, T9);
cannam@167 158 Cr[WS(csr, 5)] = FNMS(KP823639103, TQ, TJ);
cannam@167 159 Cr[0] = FMA(KP823639103, TQ, TJ);
cannam@167 160 }
cannam@167 161 }
cannam@167 162 }
cannam@167 163 }
cannam@167 164
cannam@167 165 static const kr2c_desc desc = { 15, "r2cfII_15", {38, 7, 34, 0}, &GENUS };
cannam@167 166
cannam@167 167 void X(codelet_r2cfII_15) (planner *p) {
cannam@167 168 X(kr2c_register) (p, r2cfII_15, &desc);
cannam@167 169 }
cannam@167 170
cannam@167 171 #else
cannam@167 172
cannam@167 173 /* Generated by: ../../../genfft/gen_r2cf.native -compact -variables 4 -pipeline-latency 4 -n 15 -name r2cfII_15 -dft-II -include rdft/scalar/r2cfII.h */
cannam@167 174
cannam@167 175 /*
cannam@167 176 * This function contains 72 FP additions, 33 FP multiplications,
cannam@167 177 * (or, 54 additions, 15 multiplications, 18 fused multiply/add),
cannam@167 178 * 37 stack variables, 8 constants, and 30 memory accesses
cannam@167 179 */
cannam@167 180 #include "rdft/scalar/r2cfII.h"
cannam@167 181
cannam@167 182 static void r2cfII_15(R *R0, R *R1, R *Cr, R *Ci, stride rs, stride csr, stride csi, INT v, INT ivs, INT ovs)
cannam@167 183 {
cannam@167 184 DK(KP500000000, +0.500000000000000000000000000000000000000000000);
cannam@167 185 DK(KP866025403, +0.866025403784438646763723170752936183471402627);
cannam@167 186 DK(KP809016994, +0.809016994374947424102293417182819058860154590);
cannam@167 187 DK(KP309016994, +0.309016994374947424102293417182819058860154590);
cannam@167 188 DK(KP250000000, +0.250000000000000000000000000000000000000000000);
cannam@167 189 DK(KP559016994, +0.559016994374947424102293417182819058860154590);
cannam@167 190 DK(KP587785252, +0.587785252292473129168705954639072768597652438);
cannam@167 191 DK(KP951056516, +0.951056516295153572116439333379382143405698634);
cannam@167 192 {
cannam@167 193 INT i;
cannam@167 194 for (i = v; i > 0; i = i - 1, R0 = R0 + ivs, R1 = R1 + ivs, Cr = Cr + ovs, Ci = Ci + ovs, MAKE_VOLATILE_STRIDE(60, rs), MAKE_VOLATILE_STRIDE(60, csr), MAKE_VOLATILE_STRIDE(60, csi)) {
cannam@167 195 E T1, T2, Tx, TR, TE, T7, TD, Th, Tm, Tr, TQ, TA, TB, Tf, Te;
cannam@167 196 E Tu, TS, Td, TH, TO;
cannam@167 197 T1 = R0[WS(rs, 5)];
cannam@167 198 {
cannam@167 199 E T3, Tv, T6, Tw, T4, T5;
cannam@167 200 T2 = R0[WS(rs, 2)];
cannam@167 201 T3 = R1[0];
cannam@167 202 Tv = T2 + T3;
cannam@167 203 T4 = R1[WS(rs, 3)];
cannam@167 204 T5 = R1[WS(rs, 6)];
cannam@167 205 T6 = T4 + T5;
cannam@167 206 Tw = T4 - T5;
cannam@167 207 Tx = FMA(KP951056516, Tv, KP587785252 * Tw);
cannam@167 208 TR = FNMS(KP587785252, Tv, KP951056516 * Tw);
cannam@167 209 TE = KP559016994 * (T3 - T6);
cannam@167 210 T7 = T3 + T6;
cannam@167 211 TD = KP250000000 * T7;
cannam@167 212 }
cannam@167 213 {
cannam@167 214 E Ti, Tl, Tj, Tk, Tp, Tq;
cannam@167 215 Th = R0[0];
cannam@167 216 Ti = R1[WS(rs, 4)];
cannam@167 217 Tl = R0[WS(rs, 6)];
cannam@167 218 Tj = R1[WS(rs, 1)];
cannam@167 219 Tk = R0[WS(rs, 3)];
cannam@167 220 Tp = Tk + Ti;
cannam@167 221 Tq = Tl + Tj;
cannam@167 222 Tm = Ti + Tj - (Tk + Tl);
cannam@167 223 Tr = FMA(KP951056516, Tp, KP587785252 * Tq);
cannam@167 224 TQ = FNMS(KP951056516, Tq, KP587785252 * Tp);
cannam@167 225 TA = FMA(KP250000000, Tm, Th);
cannam@167 226 TB = KP559016994 * (Tl + Ti - (Tk + Tj));
cannam@167 227 }
cannam@167 228 {
cannam@167 229 E T9, Tt, Tc, Ts, Ta, Tb, TG;
cannam@167 230 Tf = R1[WS(rs, 2)];
cannam@167 231 T9 = R0[WS(rs, 7)];
cannam@167 232 Te = R1[WS(rs, 5)];
cannam@167 233 Tt = T9 + Te;
cannam@167 234 Ta = R0[WS(rs, 1)];
cannam@167 235 Tb = R0[WS(rs, 4)];
cannam@167 236 Tc = Ta + Tb;
cannam@167 237 Ts = Ta - Tb;
cannam@167 238 Tu = FNMS(KP951056516, Tt, KP587785252 * Ts);
cannam@167 239 TS = FMA(KP951056516, Ts, KP587785252 * Tt);
cannam@167 240 Td = T9 + Tc;
cannam@167 241 TG = KP559016994 * (T9 - Tc);
cannam@167 242 TH = FNMS(KP309016994, Te, TG) + FNMA(KP250000000, Td, Tf);
cannam@167 243 TO = FMS(KP809016994, Te, Tf) + FNMA(KP250000000, Td, TG);
cannam@167 244 }
cannam@167 245 {
cannam@167 246 E Tn, T8, Tg, To;
cannam@167 247 Tn = Th - Tm;
cannam@167 248 T8 = T1 + T2 - T7;
cannam@167 249 Tg = Td - Te - Tf;
cannam@167 250 To = T8 + Tg;
cannam@167 251 Ci[WS(csi, 2)] = KP866025403 * (T8 - Tg);
cannam@167 252 Cr[WS(csr, 2)] = FNMS(KP500000000, To, Tn);
cannam@167 253 Cr[WS(csr, 7)] = Tn + To;
cannam@167 254 }
cannam@167 255 {
cannam@167 256 E TM, TX, TT, TV, TP, TU, TN, TW;
cannam@167 257 TM = TB + TA;
cannam@167 258 TX = KP866025403 * (TR + TS);
cannam@167 259 TT = TR - TS;
cannam@167 260 TV = FMS(KP500000000, TT, TQ);
cannam@167 261 TN = T1 + TE + FNMS(KP809016994, T2, TD);
cannam@167 262 TP = TN + TO;
cannam@167 263 TU = KP866025403 * (TO - TN);
cannam@167 264 Cr[WS(csr, 1)] = TM + TP;
cannam@167 265 Ci[WS(csi, 1)] = TQ + TT;
cannam@167 266 Ci[WS(csi, 6)] = TU - TV;
cannam@167 267 Ci[WS(csi, 3)] = TU + TV;
cannam@167 268 TW = FNMS(KP500000000, TP, TM);
cannam@167 269 Cr[WS(csr, 3)] = TW - TX;
cannam@167 270 Cr[WS(csr, 6)] = TW + TX;
cannam@167 271 }
cannam@167 272 {
cannam@167 273 E Tz, TC, Ty, TK, TI, TL, TF, TJ;
cannam@167 274 Tz = KP866025403 * (Tx + Tu);
cannam@167 275 TC = TA - TB;
cannam@167 276 Ty = Tu - Tx;
cannam@167 277 TK = FMS(KP500000000, Ty, Tr);
cannam@167 278 TF = FMA(KP309016994, T2, T1) + TD - TE;
cannam@167 279 TI = TF + TH;
cannam@167 280 TL = KP866025403 * (TH - TF);
cannam@167 281 Ci[WS(csi, 4)] = Tr + Ty;
cannam@167 282 Cr[WS(csr, 4)] = TC + TI;
cannam@167 283 Ci[WS(csi, 5)] = TK - TL;
cannam@167 284 Ci[0] = TK + TL;
cannam@167 285 TJ = FNMS(KP500000000, TI, TC);
cannam@167 286 Cr[0] = Tz + TJ;
cannam@167 287 Cr[WS(csr, 5)] = TJ - Tz;
cannam@167 288 }
cannam@167 289 }
cannam@167 290 }
cannam@167 291 }
cannam@167 292
cannam@167 293 static const kr2c_desc desc = { 15, "r2cfII_15", {54, 15, 18, 0}, &GENUS };
cannam@167 294
cannam@167 295 void X(codelet_r2cfII_15) (planner *p) {
cannam@167 296 X(kr2c_register) (p, r2cfII_15, &desc);
cannam@167 297 }
cannam@167 298
cannam@167 299 #endif