annotate src/fftw-3.3.5/dft/simd/common/t3fv_16.c @ 127:7867fa7e1b6b

Current fftw source
author Chris Cannam <cannam@all-day-breakfast.com>
date Tue, 18 Oct 2016 13:40:26 +0100
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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 16:43:52 EDT 2016 */
cannam@127 23
cannam@127 24 #include "codelet-dft.h"
cannam@127 25
cannam@127 26 #ifdef HAVE_FMA
cannam@127 27
cannam@127 28 /* Generated by: ../../../genfft/gen_twiddle_c.native -fma -reorder-insns -schedule-for-pipeline -simd -compact -variables 4 -pipeline-latency 8 -twiddle-log3 -precompute-twiddles -no-generate-bytw -n 16 -name t3fv_16 -include t3f.h */
cannam@127 29
cannam@127 30 /*
cannam@127 31 * This function contains 98 FP additions, 86 FP multiplications,
cannam@127 32 * (or, 64 additions, 52 multiplications, 34 fused multiply/add),
cannam@127 33 * 70 stack variables, 3 constants, and 32 memory accesses
cannam@127 34 */
cannam@127 35 #include "t3f.h"
cannam@127 36
cannam@127 37 static void t3fv_16(R *ri, R *ii, const R *W, stride rs, INT mb, INT me, INT ms)
cannam@127 38 {
cannam@127 39 DVK(KP923879532, +0.923879532511286756128183189396788286822416626);
cannam@127 40 DVK(KP414213562, +0.414213562373095048801688724209698078569671875);
cannam@127 41 DVK(KP707106781, +0.707106781186547524400844362104849039284835938);
cannam@127 42 {
cannam@127 43 INT m;
cannam@127 44 R *x;
cannam@127 45 x = ri;
cannam@127 46 for (m = mb, W = W + (mb * ((TWVL / VL) * 8)); m < me; m = m + VL, x = x + (VL * ms), W = W + (TWVL * 8), MAKE_VOLATILE_STRIDE(16, rs)) {
cannam@127 47 V T13, Tg, TY, T14, T1A, T1q, T1f, T1x, T1r, T1i, Tt, T16, TB, T1j, T1k;
cannam@127 48 V TH;
cannam@127 49 {
cannam@127 50 V T2, T8, Tu, T3;
cannam@127 51 T2 = LDW(&(W[0]));
cannam@127 52 T8 = LDW(&(W[TWVL * 2]));
cannam@127 53 Tu = LDW(&(W[TWVL * 6]));
cannam@127 54 T3 = LDW(&(W[TWVL * 4]));
cannam@127 55 {
cannam@127 56 V Ty, T1o, Tf, T1b, T7, Tr, TR, TX, T1g, Tl, To, Tw, TG, Tz, T1p;
cannam@127 57 V T1e, TC;
cannam@127 58 {
cannam@127 59 V T1, T5, Ta, Td;
cannam@127 60 T1 = LD(&(x[0]), ms, &(x[0]));
cannam@127 61 T5 = LD(&(x[WS(rs, 8)]), ms, &(x[0]));
cannam@127 62 Ta = LD(&(x[WS(rs, 4)]), ms, &(x[0]));
cannam@127 63 Td = LD(&(x[WS(rs, 12)]), ms, &(x[0]));
cannam@127 64 {
cannam@127 65 V Tx, TO, TE, Tb, Tm, Tp, TN, Te, T6, TW, TP, TS;
cannam@127 66 {
cannam@127 67 V TM, T9, TL, Tc, TU, T4, TV;
cannam@127 68 TM = LD(&(x[WS(rs, 14)]), ms, &(x[0]));
cannam@127 69 Tx = VZMULJ(T2, T8);
cannam@127 70 T9 = VZMUL(T2, T8);
cannam@127 71 TL = VZMULJ(T2, Tu);
cannam@127 72 TO = VZMULJ(T8, T3);
cannam@127 73 Tc = VZMUL(T8, T3);
cannam@127 74 TU = VZMUL(T2, T3);
cannam@127 75 T4 = VZMULJ(T2, T3);
cannam@127 76 TV = LD(&(x[WS(rs, 10)]), ms, &(x[0]));
cannam@127 77 TE = VZMUL(Tx, T3);
cannam@127 78 Ty = VZMULJ(Tx, T3);
cannam@127 79 Tb = VZMULJ(T9, Ta);
cannam@127 80 Tm = VZMULJ(T9, T3);
cannam@127 81 Tp = VZMUL(T9, T3);
cannam@127 82 TN = VZMULJ(TL, TM);
cannam@127 83 Te = VZMULJ(Tc, Td);
cannam@127 84 T6 = VZMULJ(T4, T5);
cannam@127 85 TW = VZMULJ(TU, TV);
cannam@127 86 }
cannam@127 87 TP = LD(&(x[WS(rs, 6)]), ms, &(x[0]));
cannam@127 88 TS = LD(&(x[WS(rs, 2)]), ms, &(x[0]));
cannam@127 89 {
cannam@127 90 V TQ, TT, Ti, Tk, Tn, Th, Tq, Tj;
cannam@127 91 Th = LD(&(x[WS(rs, 1)]), ms, &(x[WS(rs, 1)]));
cannam@127 92 Tq = LD(&(x[WS(rs, 13)]), ms, &(x[WS(rs, 1)]));
cannam@127 93 Tj = LD(&(x[WS(rs, 9)]), ms, &(x[WS(rs, 1)]));
cannam@127 94 T1o = VSUB(Tb, Te);
cannam@127 95 Tf = VADD(Tb, Te);
cannam@127 96 T1b = VSUB(T1, T6);
cannam@127 97 T7 = VADD(T1, T6);
cannam@127 98 TQ = VZMULJ(TO, TP);
cannam@127 99 TT = VZMULJ(Tx, TS);
cannam@127 100 Ti = VZMULJ(T2, Th);
cannam@127 101 Tr = VZMULJ(Tp, Tq);
cannam@127 102 Tk = VZMULJ(T3, Tj);
cannam@127 103 Tn = LD(&(x[WS(rs, 5)]), ms, &(x[WS(rs, 1)]));
cannam@127 104 {
cannam@127 105 V T1d, T1c, Tv, TF;
cannam@127 106 Tv = LD(&(x[WS(rs, 15)]), ms, &(x[WS(rs, 1)]));
cannam@127 107 TF = LD(&(x[WS(rs, 11)]), ms, &(x[WS(rs, 1)]));
cannam@127 108 T1d = VSUB(TN, TQ);
cannam@127 109 TR = VADD(TN, TQ);
cannam@127 110 T1c = VSUB(TT, TW);
cannam@127 111 TX = VADD(TT, TW);
cannam@127 112 T1g = VSUB(Ti, Tk);
cannam@127 113 Tl = VADD(Ti, Tk);
cannam@127 114 To = VZMULJ(Tm, Tn);
cannam@127 115 Tw = VZMULJ(Tu, Tv);
cannam@127 116 TG = VZMULJ(TE, TF);
cannam@127 117 Tz = LD(&(x[WS(rs, 7)]), ms, &(x[WS(rs, 1)]));
cannam@127 118 T1p = VSUB(T1d, T1c);
cannam@127 119 T1e = VADD(T1c, T1d);
cannam@127 120 TC = LD(&(x[WS(rs, 3)]), ms, &(x[WS(rs, 1)]));
cannam@127 121 }
cannam@127 122 }
cannam@127 123 }
cannam@127 124 }
cannam@127 125 {
cannam@127 126 V T1h, Ts, TA, TD;
cannam@127 127 T13 = VADD(T7, Tf);
cannam@127 128 Tg = VSUB(T7, Tf);
cannam@127 129 T1h = VSUB(To, Tr);
cannam@127 130 Ts = VADD(To, Tr);
cannam@127 131 TY = VSUB(TR, TX);
cannam@127 132 T14 = VADD(TX, TR);
cannam@127 133 TA = VZMULJ(Ty, Tz);
cannam@127 134 T1A = VFMA(LDK(KP707106781), T1p, T1o);
cannam@127 135 T1q = VFNMS(LDK(KP707106781), T1p, T1o);
cannam@127 136 T1f = VFMA(LDK(KP707106781), T1e, T1b);
cannam@127 137 T1x = VFNMS(LDK(KP707106781), T1e, T1b);
cannam@127 138 TD = VZMULJ(T8, TC);
cannam@127 139 T1r = VFMA(LDK(KP414213562), T1g, T1h);
cannam@127 140 T1i = VFNMS(LDK(KP414213562), T1h, T1g);
cannam@127 141 Tt = VSUB(Tl, Ts);
cannam@127 142 T16 = VADD(Tl, Ts);
cannam@127 143 TB = VADD(Tw, TA);
cannam@127 144 T1j = VSUB(Tw, TA);
cannam@127 145 T1k = VSUB(TG, TD);
cannam@127 146 TH = VADD(TD, TG);
cannam@127 147 }
cannam@127 148 }
cannam@127 149 }
cannam@127 150 {
cannam@127 151 V T15, T19, T1l, T1s, TI, T17;
cannam@127 152 T15 = VADD(T13, T14);
cannam@127 153 T19 = VSUB(T13, T14);
cannam@127 154 T1l = VFNMS(LDK(KP414213562), T1k, T1j);
cannam@127 155 T1s = VFMA(LDK(KP414213562), T1j, T1k);
cannam@127 156 TI = VSUB(TB, TH);
cannam@127 157 T17 = VADD(TB, TH);
cannam@127 158 {
cannam@127 159 V T1y, T1t, T1B, T1m;
cannam@127 160 T1y = VADD(T1r, T1s);
cannam@127 161 T1t = VSUB(T1r, T1s);
cannam@127 162 T1B = VSUB(T1l, T1i);
cannam@127 163 T1m = VADD(T1i, T1l);
cannam@127 164 {
cannam@127 165 V T18, T1a, TJ, TZ;
cannam@127 166 T18 = VADD(T16, T17);
cannam@127 167 T1a = VSUB(T17, T16);
cannam@127 168 TJ = VADD(Tt, TI);
cannam@127 169 TZ = VSUB(TI, Tt);
cannam@127 170 {
cannam@127 171 V T1u, T1w, T1z, T1D;
cannam@127 172 T1u = VFNMS(LDK(KP923879532), T1t, T1q);
cannam@127 173 T1w = VFMA(LDK(KP923879532), T1t, T1q);
cannam@127 174 T1z = VFNMS(LDK(KP923879532), T1y, T1x);
cannam@127 175 T1D = VFMA(LDK(KP923879532), T1y, T1x);
cannam@127 176 {
cannam@127 177 V T1n, T1v, T1C, T1E;
cannam@127 178 T1n = VFNMS(LDK(KP923879532), T1m, T1f);
cannam@127 179 T1v = VFMA(LDK(KP923879532), T1m, T1f);
cannam@127 180 T1C = VFNMS(LDK(KP923879532), T1B, T1A);
cannam@127 181 T1E = VFMA(LDK(KP923879532), T1B, T1A);
cannam@127 182 ST(&(x[WS(rs, 12)]), VFNMSI(T1a, T19), ms, &(x[0]));
cannam@127 183 ST(&(x[WS(rs, 4)]), VFMAI(T1a, T19), ms, &(x[0]));
cannam@127 184 ST(&(x[0]), VADD(T15, T18), ms, &(x[0]));
cannam@127 185 ST(&(x[WS(rs, 8)]), VSUB(T15, T18), ms, &(x[0]));
cannam@127 186 {
cannam@127 187 V T10, T12, TK, T11;
cannam@127 188 T10 = VFNMS(LDK(KP707106781), TZ, TY);
cannam@127 189 T12 = VFMA(LDK(KP707106781), TZ, TY);
cannam@127 190 TK = VFNMS(LDK(KP707106781), TJ, Tg);
cannam@127 191 T11 = VFMA(LDK(KP707106781), TJ, Tg);
cannam@127 192 ST(&(x[WS(rs, 1)]), VFNMSI(T1w, T1v), ms, &(x[WS(rs, 1)]));
cannam@127 193 ST(&(x[WS(rs, 15)]), VFMAI(T1w, T1v), ms, &(x[WS(rs, 1)]));
cannam@127 194 ST(&(x[WS(rs, 7)]), VFMAI(T1u, T1n), ms, &(x[WS(rs, 1)]));
cannam@127 195 ST(&(x[WS(rs, 9)]), VFNMSI(T1u, T1n), ms, &(x[WS(rs, 1)]));
cannam@127 196 ST(&(x[WS(rs, 3)]), VFMAI(T1E, T1D), ms, &(x[WS(rs, 1)]));
cannam@127 197 ST(&(x[WS(rs, 13)]), VFNMSI(T1E, T1D), ms, &(x[WS(rs, 1)]));
cannam@127 198 ST(&(x[WS(rs, 11)]), VFMAI(T1C, T1z), ms, &(x[WS(rs, 1)]));
cannam@127 199 ST(&(x[WS(rs, 5)]), VFNMSI(T1C, T1z), ms, &(x[WS(rs, 1)]));
cannam@127 200 ST(&(x[WS(rs, 14)]), VFNMSI(T12, T11), ms, &(x[0]));
cannam@127 201 ST(&(x[WS(rs, 2)]), VFMAI(T12, T11), ms, &(x[0]));
cannam@127 202 ST(&(x[WS(rs, 10)]), VFMAI(T10, TK), ms, &(x[0]));
cannam@127 203 ST(&(x[WS(rs, 6)]), VFNMSI(T10, TK), ms, &(x[0]));
cannam@127 204 }
cannam@127 205 }
cannam@127 206 }
cannam@127 207 }
cannam@127 208 }
cannam@127 209 }
cannam@127 210 }
cannam@127 211 }
cannam@127 212 VLEAVE();
cannam@127 213 }
cannam@127 214
cannam@127 215 static const tw_instr twinstr[] = {
cannam@127 216 VTW(0, 1),
cannam@127 217 VTW(0, 3),
cannam@127 218 VTW(0, 9),
cannam@127 219 VTW(0, 15),
cannam@127 220 {TW_NEXT, VL, 0}
cannam@127 221 };
cannam@127 222
cannam@127 223 static const ct_desc desc = { 16, XSIMD_STRING("t3fv_16"), twinstr, &GENUS, {64, 52, 34, 0}, 0, 0, 0 };
cannam@127 224
cannam@127 225 void XSIMD(codelet_t3fv_16) (planner *p) {
cannam@127 226 X(kdft_dit_register) (p, t3fv_16, &desc);
cannam@127 227 }
cannam@127 228 #else /* HAVE_FMA */
cannam@127 229
cannam@127 230 /* Generated by: ../../../genfft/gen_twiddle_c.native -simd -compact -variables 4 -pipeline-latency 8 -twiddle-log3 -precompute-twiddles -no-generate-bytw -n 16 -name t3fv_16 -include t3f.h */
cannam@127 231
cannam@127 232 /*
cannam@127 233 * This function contains 98 FP additions, 64 FP multiplications,
cannam@127 234 * (or, 94 additions, 60 multiplications, 4 fused multiply/add),
cannam@127 235 * 51 stack variables, 3 constants, and 32 memory accesses
cannam@127 236 */
cannam@127 237 #include "t3f.h"
cannam@127 238
cannam@127 239 static void t3fv_16(R *ri, R *ii, const R *W, stride rs, INT mb, INT me, INT ms)
cannam@127 240 {
cannam@127 241 DVK(KP923879532, +0.923879532511286756128183189396788286822416626);
cannam@127 242 DVK(KP382683432, +0.382683432365089771728459984030398866761344562);
cannam@127 243 DVK(KP707106781, +0.707106781186547524400844362104849039284835938);
cannam@127 244 {
cannam@127 245 INT m;
cannam@127 246 R *x;
cannam@127 247 x = ri;
cannam@127 248 for (m = mb, W = W + (mb * ((TWVL / VL) * 8)); m < me; m = m + VL, x = x + (VL * ms), W = W + (TWVL * 8), MAKE_VOLATILE_STRIDE(16, rs)) {
cannam@127 249 V T4, T5, T6, To, T1, Ty, T7, T8, TO, TV, Te, Tp, TB, TH, Ts;
cannam@127 250 T4 = LDW(&(W[0]));
cannam@127 251 T5 = LDW(&(W[TWVL * 2]));
cannam@127 252 T6 = VZMULJ(T4, T5);
cannam@127 253 To = VZMUL(T4, T5);
cannam@127 254 T1 = LDW(&(W[TWVL * 6]));
cannam@127 255 Ty = VZMULJ(T4, T1);
cannam@127 256 T7 = LDW(&(W[TWVL * 4]));
cannam@127 257 T8 = VZMULJ(T6, T7);
cannam@127 258 TO = VZMUL(T5, T7);
cannam@127 259 TV = VZMULJ(T4, T7);
cannam@127 260 Te = VZMUL(T6, T7);
cannam@127 261 Tp = VZMULJ(To, T7);
cannam@127 262 TB = VZMULJ(T5, T7);
cannam@127 263 TH = VZMUL(T4, T7);
cannam@127 264 Ts = VZMUL(To, T7);
cannam@127 265 {
cannam@127 266 V TY, T1f, TR, T1g, T1q, T1r, TL, TZ, T1l, T1m, T1n, Ti, T12, T1i, T1j;
cannam@127 267 V T1k, Tw, T11, TU, TX, TW;
cannam@127 268 TU = LD(&(x[0]), ms, &(x[0]));
cannam@127 269 TW = LD(&(x[WS(rs, 8)]), ms, &(x[0]));
cannam@127 270 TX = VZMULJ(TV, TW);
cannam@127 271 TY = VSUB(TU, TX);
cannam@127 272 T1f = VADD(TU, TX);
cannam@127 273 {
cannam@127 274 V TN, TQ, TM, TP;
cannam@127 275 TM = LD(&(x[WS(rs, 4)]), ms, &(x[0]));
cannam@127 276 TN = VZMULJ(To, TM);
cannam@127 277 TP = LD(&(x[WS(rs, 12)]), ms, &(x[0]));
cannam@127 278 TQ = VZMULJ(TO, TP);
cannam@127 279 TR = VSUB(TN, TQ);
cannam@127 280 T1g = VADD(TN, TQ);
cannam@127 281 }
cannam@127 282 {
cannam@127 283 V TA, TJ, TD, TG, TE, TK;
cannam@127 284 {
cannam@127 285 V Tz, TI, TC, TF;
cannam@127 286 Tz = LD(&(x[WS(rs, 14)]), ms, &(x[0]));
cannam@127 287 TA = VZMULJ(Ty, Tz);
cannam@127 288 TI = LD(&(x[WS(rs, 10)]), ms, &(x[0]));
cannam@127 289 TJ = VZMULJ(TH, TI);
cannam@127 290 TC = LD(&(x[WS(rs, 6)]), ms, &(x[0]));
cannam@127 291 TD = VZMULJ(TB, TC);
cannam@127 292 TF = LD(&(x[WS(rs, 2)]), ms, &(x[0]));
cannam@127 293 TG = VZMULJ(T6, TF);
cannam@127 294 }
cannam@127 295 T1q = VADD(TA, TD);
cannam@127 296 T1r = VADD(TG, TJ);
cannam@127 297 TE = VSUB(TA, TD);
cannam@127 298 TK = VSUB(TG, TJ);
cannam@127 299 TL = VMUL(LDK(KP707106781), VSUB(TE, TK));
cannam@127 300 TZ = VMUL(LDK(KP707106781), VADD(TK, TE));
cannam@127 301 }
cannam@127 302 {
cannam@127 303 V T3, Tg, Ta, Td, Tb, Th;
cannam@127 304 {
cannam@127 305 V T2, Tf, T9, Tc;
cannam@127 306 T2 = LD(&(x[WS(rs, 15)]), ms, &(x[WS(rs, 1)]));
cannam@127 307 T3 = VZMULJ(T1, T2);
cannam@127 308 Tf = LD(&(x[WS(rs, 11)]), ms, &(x[WS(rs, 1)]));
cannam@127 309 Tg = VZMULJ(Te, Tf);
cannam@127 310 T9 = LD(&(x[WS(rs, 7)]), ms, &(x[WS(rs, 1)]));
cannam@127 311 Ta = VZMULJ(T8, T9);
cannam@127 312 Tc = LD(&(x[WS(rs, 3)]), ms, &(x[WS(rs, 1)]));
cannam@127 313 Td = VZMULJ(T5, Tc);
cannam@127 314 }
cannam@127 315 T1l = VADD(T3, Ta);
cannam@127 316 T1m = VADD(Td, Tg);
cannam@127 317 T1n = VSUB(T1l, T1m);
cannam@127 318 Tb = VSUB(T3, Ta);
cannam@127 319 Th = VSUB(Td, Tg);
cannam@127 320 Ti = VFNMS(LDK(KP923879532), Th, VMUL(LDK(KP382683432), Tb));
cannam@127 321 T12 = VFMA(LDK(KP923879532), Tb, VMUL(LDK(KP382683432), Th));
cannam@127 322 }
cannam@127 323 {
cannam@127 324 V Tk, Tu, Tm, Tr, Tn, Tv;
cannam@127 325 {
cannam@127 326 V Tj, Tt, Tl, Tq;
cannam@127 327 Tj = LD(&(x[WS(rs, 1)]), ms, &(x[WS(rs, 1)]));
cannam@127 328 Tk = VZMULJ(T4, Tj);
cannam@127 329 Tt = LD(&(x[WS(rs, 13)]), ms, &(x[WS(rs, 1)]));
cannam@127 330 Tu = VZMULJ(Ts, Tt);
cannam@127 331 Tl = LD(&(x[WS(rs, 9)]), ms, &(x[WS(rs, 1)]));
cannam@127 332 Tm = VZMULJ(T7, Tl);
cannam@127 333 Tq = LD(&(x[WS(rs, 5)]), ms, &(x[WS(rs, 1)]));
cannam@127 334 Tr = VZMULJ(Tp, Tq);
cannam@127 335 }
cannam@127 336 T1i = VADD(Tk, Tm);
cannam@127 337 T1j = VADD(Tr, Tu);
cannam@127 338 T1k = VSUB(T1i, T1j);
cannam@127 339 Tn = VSUB(Tk, Tm);
cannam@127 340 Tv = VSUB(Tr, Tu);
cannam@127 341 Tw = VFMA(LDK(KP382683432), Tn, VMUL(LDK(KP923879532), Tv));
cannam@127 342 T11 = VFNMS(LDK(KP382683432), Tv, VMUL(LDK(KP923879532), Tn));
cannam@127 343 }
cannam@127 344 {
cannam@127 345 V T1p, T1v, T1u, T1w;
cannam@127 346 {
cannam@127 347 V T1h, T1o, T1s, T1t;
cannam@127 348 T1h = VSUB(T1f, T1g);
cannam@127 349 T1o = VMUL(LDK(KP707106781), VADD(T1k, T1n));
cannam@127 350 T1p = VADD(T1h, T1o);
cannam@127 351 T1v = VSUB(T1h, T1o);
cannam@127 352 T1s = VSUB(T1q, T1r);
cannam@127 353 T1t = VMUL(LDK(KP707106781), VSUB(T1n, T1k));
cannam@127 354 T1u = VBYI(VADD(T1s, T1t));
cannam@127 355 T1w = VBYI(VSUB(T1t, T1s));
cannam@127 356 }
cannam@127 357 ST(&(x[WS(rs, 14)]), VSUB(T1p, T1u), ms, &(x[0]));
cannam@127 358 ST(&(x[WS(rs, 6)]), VADD(T1v, T1w), ms, &(x[0]));
cannam@127 359 ST(&(x[WS(rs, 2)]), VADD(T1p, T1u), ms, &(x[0]));
cannam@127 360 ST(&(x[WS(rs, 10)]), VSUB(T1v, T1w), ms, &(x[0]));
cannam@127 361 }
cannam@127 362 {
cannam@127 363 V T1z, T1D, T1C, T1E;
cannam@127 364 {
cannam@127 365 V T1x, T1y, T1A, T1B;
cannam@127 366 T1x = VADD(T1f, T1g);
cannam@127 367 T1y = VADD(T1r, T1q);
cannam@127 368 T1z = VADD(T1x, T1y);
cannam@127 369 T1D = VSUB(T1x, T1y);
cannam@127 370 T1A = VADD(T1i, T1j);
cannam@127 371 T1B = VADD(T1l, T1m);
cannam@127 372 T1C = VADD(T1A, T1B);
cannam@127 373 T1E = VBYI(VSUB(T1B, T1A));
cannam@127 374 }
cannam@127 375 ST(&(x[WS(rs, 8)]), VSUB(T1z, T1C), ms, &(x[0]));
cannam@127 376 ST(&(x[WS(rs, 4)]), VADD(T1D, T1E), ms, &(x[0]));
cannam@127 377 ST(&(x[0]), VADD(T1z, T1C), ms, &(x[0]));
cannam@127 378 ST(&(x[WS(rs, 12)]), VSUB(T1D, T1E), ms, &(x[0]));
cannam@127 379 }
cannam@127 380 {
cannam@127 381 V TT, T15, T14, T16;
cannam@127 382 {
cannam@127 383 V Tx, TS, T10, T13;
cannam@127 384 Tx = VSUB(Ti, Tw);
cannam@127 385 TS = VSUB(TL, TR);
cannam@127 386 TT = VBYI(VSUB(Tx, TS));
cannam@127 387 T15 = VBYI(VADD(TS, Tx));
cannam@127 388 T10 = VADD(TY, TZ);
cannam@127 389 T13 = VADD(T11, T12);
cannam@127 390 T14 = VSUB(T10, T13);
cannam@127 391 T16 = VADD(T10, T13);
cannam@127 392 }
cannam@127 393 ST(&(x[WS(rs, 7)]), VADD(TT, T14), ms, &(x[WS(rs, 1)]));
cannam@127 394 ST(&(x[WS(rs, 15)]), VSUB(T16, T15), ms, &(x[WS(rs, 1)]));
cannam@127 395 ST(&(x[WS(rs, 9)]), VSUB(T14, TT), ms, &(x[WS(rs, 1)]));
cannam@127 396 ST(&(x[WS(rs, 1)]), VADD(T15, T16), ms, &(x[WS(rs, 1)]));
cannam@127 397 }
cannam@127 398 {
cannam@127 399 V T19, T1d, T1c, T1e;
cannam@127 400 {
cannam@127 401 V T17, T18, T1a, T1b;
cannam@127 402 T17 = VSUB(TY, TZ);
cannam@127 403 T18 = VADD(Tw, Ti);
cannam@127 404 T19 = VADD(T17, T18);
cannam@127 405 T1d = VSUB(T17, T18);
cannam@127 406 T1a = VADD(TR, TL);
cannam@127 407 T1b = VSUB(T12, T11);
cannam@127 408 T1c = VBYI(VADD(T1a, T1b));
cannam@127 409 T1e = VBYI(VSUB(T1b, T1a));
cannam@127 410 }
cannam@127 411 ST(&(x[WS(rs, 13)]), VSUB(T19, T1c), ms, &(x[WS(rs, 1)]));
cannam@127 412 ST(&(x[WS(rs, 5)]), VADD(T1d, T1e), ms, &(x[WS(rs, 1)]));
cannam@127 413 ST(&(x[WS(rs, 3)]), VADD(T19, T1c), ms, &(x[WS(rs, 1)]));
cannam@127 414 ST(&(x[WS(rs, 11)]), VSUB(T1d, T1e), ms, &(x[WS(rs, 1)]));
cannam@127 415 }
cannam@127 416 }
cannam@127 417 }
cannam@127 418 }
cannam@127 419 VLEAVE();
cannam@127 420 }
cannam@127 421
cannam@127 422 static const tw_instr twinstr[] = {
cannam@127 423 VTW(0, 1),
cannam@127 424 VTW(0, 3),
cannam@127 425 VTW(0, 9),
cannam@127 426 VTW(0, 15),
cannam@127 427 {TW_NEXT, VL, 0}
cannam@127 428 };
cannam@127 429
cannam@127 430 static const ct_desc desc = { 16, XSIMD_STRING("t3fv_16"), twinstr, &GENUS, {94, 60, 4, 0}, 0, 0, 0 };
cannam@127 431
cannam@127 432 void XSIMD(codelet_t3fv_16) (planner *p) {
cannam@127 433 X(kdft_dit_register) (p, t3fv_16, &desc);
cannam@127 434 }
cannam@127 435 #endif /* HAVE_FMA */