annotate src/fftw-3.3.5/rdft/scalar/r2cb/r2cb_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 7867fa7e1b6b
children
rev   line source
cannam@127 1 /*
cannam@127 2 * Copyright (c) 2003, 2007-14 Matteo Frigo
cannam@127 3 * Copyright (c) 2003, 2007-14 Massachusetts Institute of Technology
cannam@127 4 *
cannam@127 5 * This program is free software; you can redistribute it and/or modify
cannam@127 6 * it under the terms of the GNU General Public License as published by
cannam@127 7 * the Free Software Foundation; either version 2 of the License, or
cannam@127 8 * (at your option) any later version.
cannam@127 9 *
cannam@127 10 * This program is distributed in the hope that it will be useful,
cannam@127 11 * but WITHOUT ANY WARRANTY; without even the implied warranty of
cannam@127 12 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
cannam@127 13 * GNU General Public License for more details.
cannam@127 14 *
cannam@127 15 * You should have received a copy of the GNU General Public License
cannam@127 16 * along with this program; if not, write to the Free Software
cannam@127 17 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
cannam@127 18 *
cannam@127 19 */
cannam@127 20
cannam@127 21 /* This file was automatically generated --- DO NOT EDIT */
cannam@127 22 /* Generated on Sat Jul 30 16:49:28 EDT 2016 */
cannam@127 23
cannam@127 24 #include "codelet-rdft.h"
cannam@127 25
cannam@127 26 #ifdef HAVE_FMA
cannam@127 27
cannam@127 28 /* Generated by: ../../../genfft/gen_r2cb.native -fma -reorder-insns -schedule-for-pipeline -compact -variables 4 -pipeline-latency 4 -sign 1 -n 15 -name r2cb_15 -include r2cb.h */
cannam@127 29
cannam@127 30 /*
cannam@127 31 * This function contains 64 FP additions, 43 FP multiplications,
cannam@127 32 * (or, 21 additions, 0 multiplications, 43 fused multiply/add),
cannam@127 33 * 54 stack variables, 9 constants, and 30 memory accesses
cannam@127 34 */
cannam@127 35 #include "r2cb.h"
cannam@127 36
cannam@127 37 static void r2cb_15(R *R0, R *R1, R *Cr, R *Ci, stride rs, stride csr, stride csi, INT v, INT ivs, INT ovs)
cannam@127 38 {
cannam@127 39 DK(KP559016994, +0.559016994374947424102293417182819058860154590);
cannam@127 40 DK(KP1_902113032, +1.902113032590307144232878666758764286811397268);
cannam@127 41 DK(KP250000000, +0.250000000000000000000000000000000000000000000);
cannam@127 42 DK(KP866025403, +0.866025403784438646763723170752936183471402627);
cannam@127 43 DK(KP1_118033988, +1.118033988749894848204586834365638117720309180);
cannam@127 44 DK(KP618033988, +0.618033988749894848204586834365638117720309180);
cannam@127 45 DK(KP500000000, +0.500000000000000000000000000000000000000000000);
cannam@127 46 DK(KP1_732050807, +1.732050807568877293527446341505872366942805254);
cannam@127 47 DK(KP2_000000000, +2.000000000000000000000000000000000000000000000);
cannam@127 48 {
cannam@127 49 INT i;
cannam@127 50 for (i = v; i > 0; i = i - 1, R0 = R0 + ovs, R1 = R1 + ovs, Cr = Cr + ivs, Ci = Ci + ivs, MAKE_VOLATILE_STRIDE(60, rs), MAKE_VOLATILE_STRIDE(60, csr), MAKE_VOLATILE_STRIDE(60, csi)) {
cannam@127 51 E TL, Tz, TM, TK;
cannam@127 52 {
cannam@127 53 E T3, Th, Tt, TD, TI, TH, TY, TC, TZ, Tu, Tm, Tv, Tr, Te, TW;
cannam@127 54 E Tg, T1, T2, T12, T10, TV;
cannam@127 55 Tg = Ci[WS(csi, 5)];
cannam@127 56 T1 = Cr[0];
cannam@127 57 T2 = Cr[WS(csr, 5)];
cannam@127 58 {
cannam@127 59 E T4, TA, T9, TF, T7, Tj, Tc, Tk, TG, Tq, Tf, Tl, TB;
cannam@127 60 T4 = Cr[WS(csr, 3)];
cannam@127 61 TA = Ci[WS(csi, 3)];
cannam@127 62 T9 = Cr[WS(csr, 6)];
cannam@127 63 Tf = T1 - T2;
cannam@127 64 T3 = FMA(KP2_000000000, T2, T1);
cannam@127 65 TF = Ci[WS(csi, 6)];
cannam@127 66 {
cannam@127 67 E Ta, Tb, T5, T6, To, Tp;
cannam@127 68 T5 = Cr[WS(csr, 7)];
cannam@127 69 T6 = Cr[WS(csr, 2)];
cannam@127 70 Th = FMA(KP1_732050807, Tg, Tf);
cannam@127 71 Tt = FNMS(KP1_732050807, Tg, Tf);
cannam@127 72 Ta = Cr[WS(csr, 4)];
cannam@127 73 TD = T5 - T6;
cannam@127 74 T7 = T5 + T6;
cannam@127 75 Tb = Cr[WS(csr, 1)];
cannam@127 76 To = Ci[WS(csi, 4)];
cannam@127 77 Tp = Ci[WS(csi, 1)];
cannam@127 78 Tj = Ci[WS(csi, 7)];
cannam@127 79 Tc = Ta + Tb;
cannam@127 80 TI = Ta - Tb;
cannam@127 81 Tk = Ci[WS(csi, 2)];
cannam@127 82 TG = Tp - To;
cannam@127 83 Tq = To + Tp;
cannam@127 84 }
cannam@127 85 Tl = Tj - Tk;
cannam@127 86 TB = Tj + Tk;
cannam@127 87 TH = FNMS(KP500000000, TG, TF);
cannam@127 88 TY = TG + TF;
cannam@127 89 TC = FMA(KP500000000, TB, TA);
cannam@127 90 TZ = TA - TB;
cannam@127 91 {
cannam@127 92 E Ti, T8, Td, Tn;
cannam@127 93 Ti = FNMS(KP2_000000000, T4, T7);
cannam@127 94 T8 = T4 + T7;
cannam@127 95 Td = T9 + Tc;
cannam@127 96 Tn = FNMS(KP2_000000000, T9, Tc);
cannam@127 97 Tu = FNMS(KP1_732050807, Tl, Ti);
cannam@127 98 Tm = FMA(KP1_732050807, Tl, Ti);
cannam@127 99 Tv = FNMS(KP1_732050807, Tq, Tn);
cannam@127 100 Tr = FMA(KP1_732050807, Tq, Tn);
cannam@127 101 Te = T8 + Td;
cannam@127 102 TW = T8 - Td;
cannam@127 103 }
cannam@127 104 }
cannam@127 105 T12 = FMA(KP618033988, TY, TZ);
cannam@127 106 T10 = FNMS(KP618033988, TZ, TY);
cannam@127 107 TV = FNMS(KP500000000, Te, T3);
cannam@127 108 R0[0] = FMA(KP2_000000000, Te, T3);
cannam@127 109 {
cannam@127 110 E TJ, TE, TT, TP, TU, TS, Ty, Tw, Tx;
cannam@127 111 {
cannam@127 112 E TO, Ts, TQ, TN, TR, T11, TX;
cannam@127 113 TO = Tr - Tm;
cannam@127 114 Ts = Tm + Tr;
cannam@127 115 T11 = FMA(KP1_118033988, TW, TV);
cannam@127 116 TX = FNMS(KP1_118033988, TW, TV);
cannam@127 117 TQ = FNMS(KP866025403, TI, TH);
cannam@127 118 TJ = FMA(KP866025403, TI, TH);
cannam@127 119 TN = FMA(KP250000000, Ts, Th);
cannam@127 120 R0[WS(rs, 3)] = FNMS(KP1_902113032, T12, T11);
cannam@127 121 R1[WS(rs, 4)] = FMA(KP1_902113032, T12, T11);
cannam@127 122 R0[WS(rs, 6)] = FMA(KP1_902113032, T10, TX);
cannam@127 123 R1[WS(rs, 1)] = FNMS(KP1_902113032, T10, TX);
cannam@127 124 TR = FNMS(KP866025403, TD, TC);
cannam@127 125 TE = FMA(KP866025403, TD, TC);
cannam@127 126 R1[WS(rs, 2)] = Th - Ts;
cannam@127 127 TT = FMA(KP559016994, TO, TN);
cannam@127 128 TP = FNMS(KP559016994, TO, TN);
cannam@127 129 TU = FMA(KP618033988, TQ, TR);
cannam@127 130 TS = FNMS(KP618033988, TR, TQ);
cannam@127 131 }
cannam@127 132 Ty = Tv - Tu;
cannam@127 133 Tw = Tu + Tv;
cannam@127 134 R0[WS(rs, 7)] = FMA(KP1_902113032, TU, TT);
cannam@127 135 R1[WS(rs, 5)] = FNMS(KP1_902113032, TU, TT);
cannam@127 136 R0[WS(rs, 1)] = FMA(KP1_902113032, TS, TP);
cannam@127 137 R0[WS(rs, 4)] = FNMS(KP1_902113032, TS, TP);
cannam@127 138 Tx = FMA(KP250000000, Tw, Tt);
cannam@127 139 R0[WS(rs, 5)] = Tt - Tw;
cannam@127 140 TL = FNMS(KP559016994, Ty, Tx);
cannam@127 141 Tz = FMA(KP559016994, Ty, Tx);
cannam@127 142 TM = FNMS(KP618033988, TE, TJ);
cannam@127 143 TK = FMA(KP618033988, TJ, TE);
cannam@127 144 }
cannam@127 145 }
cannam@127 146 R1[WS(rs, 3)] = FMA(KP1_902113032, TM, TL);
cannam@127 147 R1[WS(rs, 6)] = FNMS(KP1_902113032, TM, TL);
cannam@127 148 R0[WS(rs, 2)] = FMA(KP1_902113032, TK, Tz);
cannam@127 149 R1[0] = FNMS(KP1_902113032, TK, Tz);
cannam@127 150 }
cannam@127 151 }
cannam@127 152 }
cannam@127 153
cannam@127 154 static const kr2c_desc desc = { 15, "r2cb_15", {21, 0, 43, 0}, &GENUS };
cannam@127 155
cannam@127 156 void X(codelet_r2cb_15) (planner *p) {
cannam@127 157 X(kr2c_register) (p, r2cb_15, &desc);
cannam@127 158 }
cannam@127 159
cannam@127 160 #else /* HAVE_FMA */
cannam@127 161
cannam@127 162 /* Generated by: ../../../genfft/gen_r2cb.native -compact -variables 4 -pipeline-latency 4 -sign 1 -n 15 -name r2cb_15 -include r2cb.h */
cannam@127 163
cannam@127 164 /*
cannam@127 165 * This function contains 64 FP additions, 31 FP multiplications,
cannam@127 166 * (or, 47 additions, 14 multiplications, 17 fused multiply/add),
cannam@127 167 * 44 stack variables, 7 constants, and 30 memory accesses
cannam@127 168 */
cannam@127 169 #include "r2cb.h"
cannam@127 170
cannam@127 171 static void r2cb_15(R *R0, R *R1, R *Cr, R *Ci, stride rs, stride csr, stride csi, INT v, INT ivs, INT ovs)
cannam@127 172 {
cannam@127 173 DK(KP1_118033988, +1.118033988749894848204586834365638117720309180);
cannam@127 174 DK(KP1_902113032, +1.902113032590307144232878666758764286811397268);
cannam@127 175 DK(KP1_175570504, +1.175570504584946258337411909278145537195304875);
cannam@127 176 DK(KP500000000, +0.500000000000000000000000000000000000000000000);
cannam@127 177 DK(KP866025403, +0.866025403784438646763723170752936183471402627);
cannam@127 178 DK(KP2_000000000, +2.000000000000000000000000000000000000000000000);
cannam@127 179 DK(KP1_732050807, +1.732050807568877293527446341505872366942805254);
cannam@127 180 {
cannam@127 181 INT i;
cannam@127 182 for (i = v; i > 0; i = i - 1, R0 = R0 + ovs, R1 = R1 + ovs, Cr = Cr + ivs, Ci = Ci + ivs, MAKE_VOLATILE_STRIDE(60, rs), MAKE_VOLATILE_STRIDE(60, csr), MAKE_VOLATILE_STRIDE(60, csi)) {
cannam@127 183 E T3, Tu, Ti, TB, TZ, T10, TE, TG, TJ, Tn, Tv, Ts, Tw, T8, Td;
cannam@127 184 E Te;
cannam@127 185 {
cannam@127 186 E Th, T1, T2, Tf, Tg;
cannam@127 187 Tg = Ci[WS(csi, 5)];
cannam@127 188 Th = KP1_732050807 * Tg;
cannam@127 189 T1 = Cr[0];
cannam@127 190 T2 = Cr[WS(csr, 5)];
cannam@127 191 Tf = T1 - T2;
cannam@127 192 T3 = FMA(KP2_000000000, T2, T1);
cannam@127 193 Tu = Tf - Th;
cannam@127 194 Ti = Tf + Th;
cannam@127 195 }
cannam@127 196 {
cannam@127 197 E T4, TD, T9, TI, T5, T6, T7, Ta, Tb, Tc, Tr, TH, Tm, TC, Tj;
cannam@127 198 E To;
cannam@127 199 T4 = Cr[WS(csr, 3)];
cannam@127 200 TD = Ci[WS(csi, 3)];
cannam@127 201 T9 = Cr[WS(csr, 6)];
cannam@127 202 TI = Ci[WS(csi, 6)];
cannam@127 203 T5 = Cr[WS(csr, 7)];
cannam@127 204 T6 = Cr[WS(csr, 2)];
cannam@127 205 T7 = T5 + T6;
cannam@127 206 Ta = Cr[WS(csr, 4)];
cannam@127 207 Tb = Cr[WS(csr, 1)];
cannam@127 208 Tc = Ta + Tb;
cannam@127 209 {
cannam@127 210 E Tp, Tq, Tk, Tl;
cannam@127 211 Tp = Ci[WS(csi, 4)];
cannam@127 212 Tq = Ci[WS(csi, 1)];
cannam@127 213 Tr = KP866025403 * (Tp + Tq);
cannam@127 214 TH = Tp - Tq;
cannam@127 215 Tk = Ci[WS(csi, 7)];
cannam@127 216 Tl = Ci[WS(csi, 2)];
cannam@127 217 Tm = KP866025403 * (Tk - Tl);
cannam@127 218 TC = Tk + Tl;
cannam@127 219 }
cannam@127 220 TB = KP866025403 * (T5 - T6);
cannam@127 221 TZ = TD - TC;
cannam@127 222 T10 = TI - TH;
cannam@127 223 TE = FMA(KP500000000, TC, TD);
cannam@127 224 TG = KP866025403 * (Ta - Tb);
cannam@127 225 TJ = FMA(KP500000000, TH, TI);
cannam@127 226 Tj = FNMS(KP500000000, T7, T4);
cannam@127 227 Tn = Tj - Tm;
cannam@127 228 Tv = Tj + Tm;
cannam@127 229 To = FNMS(KP500000000, Tc, T9);
cannam@127 230 Ts = To - Tr;
cannam@127 231 Tw = To + Tr;
cannam@127 232 T8 = T4 + T7;
cannam@127 233 Td = T9 + Tc;
cannam@127 234 Te = T8 + Td;
cannam@127 235 }
cannam@127 236 R0[0] = FMA(KP2_000000000, Te, T3);
cannam@127 237 {
cannam@127 238 E T11, T13, TY, T12, TW, TX;
cannam@127 239 T11 = FNMS(KP1_902113032, T10, KP1_175570504 * TZ);
cannam@127 240 T13 = FMA(KP1_902113032, TZ, KP1_175570504 * T10);
cannam@127 241 TW = FNMS(KP500000000, Te, T3);
cannam@127 242 TX = KP1_118033988 * (T8 - Td);
cannam@127 243 TY = TW - TX;
cannam@127 244 T12 = TX + TW;
cannam@127 245 R0[WS(rs, 6)] = TY - T11;
cannam@127 246 R1[WS(rs, 4)] = T12 + T13;
cannam@127 247 R1[WS(rs, 1)] = TY + T11;
cannam@127 248 R0[WS(rs, 3)] = T12 - T13;
cannam@127 249 }
cannam@127 250 {
cannam@127 251 E TP, Tt, TO, TT, TV, TR, TS, TU, TQ;
cannam@127 252 TP = KP1_118033988 * (Tn - Ts);
cannam@127 253 Tt = Tn + Ts;
cannam@127 254 TO = FNMS(KP500000000, Tt, Ti);
cannam@127 255 TR = TE - TB;
cannam@127 256 TS = TJ - TG;
cannam@127 257 TT = FNMS(KP1_902113032, TS, KP1_175570504 * TR);
cannam@127 258 TV = FMA(KP1_902113032, TR, KP1_175570504 * TS);
cannam@127 259 R1[WS(rs, 2)] = FMA(KP2_000000000, Tt, Ti);
cannam@127 260 TU = TP + TO;
cannam@127 261 R1[WS(rs, 5)] = TU - TV;
cannam@127 262 R0[WS(rs, 7)] = TU + TV;
cannam@127 263 TQ = TO - TP;
cannam@127 264 R0[WS(rs, 1)] = TQ - TT;
cannam@127 265 R0[WS(rs, 4)] = TQ + TT;
cannam@127 266 }
cannam@127 267 {
cannam@127 268 E Tz, Tx, Ty, TL, TN, TF, TK, TM, TA;
cannam@127 269 Tz = KP1_118033988 * (Tv - Tw);
cannam@127 270 Tx = Tv + Tw;
cannam@127 271 Ty = FNMS(KP500000000, Tx, Tu);
cannam@127 272 TF = TB + TE;
cannam@127 273 TK = TG + TJ;
cannam@127 274 TL = FNMS(KP1_902113032, TK, KP1_175570504 * TF);
cannam@127 275 TN = FMA(KP1_902113032, TF, KP1_175570504 * TK);
cannam@127 276 R0[WS(rs, 5)] = FMA(KP2_000000000, Tx, Tu);
cannam@127 277 TM = Tz + Ty;
cannam@127 278 R1[0] = TM - TN;
cannam@127 279 R0[WS(rs, 2)] = TM + TN;
cannam@127 280 TA = Ty - Tz;
cannam@127 281 R1[WS(rs, 3)] = TA - TL;
cannam@127 282 R1[WS(rs, 6)] = TA + TL;
cannam@127 283 }
cannam@127 284 }
cannam@127 285 }
cannam@127 286 }
cannam@127 287
cannam@127 288 static const kr2c_desc desc = { 15, "r2cb_15", {47, 14, 17, 0}, &GENUS };
cannam@127 289
cannam@127 290 void X(codelet_r2cb_15) (planner *p) {
cannam@127 291 X(kr2c_register) (p, r2cb_15, &desc);
cannam@127 292 }
cannam@127 293
cannam@127 294 #endif /* HAVE_FMA */