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1 /*
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2 * Copyright (c) 2003, 2007-11 Matteo Frigo
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3 * Copyright (c) 2003, 2007-11 Massachusetts Institute of Technology
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4 *
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5 * This program is free software; you can redistribute it and/or modify
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6 * it under the terms of the GNU General Public License as published by
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7 * the Free Software Foundation; either version 2 of the License, or
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8 * (at your option) any later version.
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9 *
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10 * This program is distributed in the hope that it will be useful,
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11 * but WITHOUT ANY WARRANTY; without even the implied warranty of
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12 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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13 * GNU General Public License for more details.
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14 *
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15 * You should have received a copy of the GNU General Public License
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16 * along with this program; if not, write to the Free Software
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17 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
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18 *
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19 */
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20
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21 /* This file was automatically generated --- DO NOT EDIT */
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22 /* Generated on Sun Nov 25 07:37:59 EST 2012 */
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23
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24 #include "codelet-dft.h"
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25
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26 #ifdef HAVE_FMA
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27
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28 /* Generated by: ../../../genfft/gen_twiddle_c.native -fma -reorder-insns -schedule-for-pipeline -simd -compact -variables 4 -pipeline-latency 8 -n 5 -name t1fuv_5 -include t1fu.h */
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29
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30 /*
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31 * This function contains 20 FP additions, 19 FP multiplications,
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32 * (or, 11 additions, 10 multiplications, 9 fused multiply/add),
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33 * 26 stack variables, 4 constants, and 10 memory accesses
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34 */
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35 #include "t1fu.h"
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36
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37 static void t1fuv_5(R *ri, R *ii, const R *W, stride rs, INT mb, INT me, INT ms)
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38 {
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39 DVK(KP559016994, +0.559016994374947424102293417182819058860154590);
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40 DVK(KP250000000, +0.250000000000000000000000000000000000000000000);
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41 DVK(KP618033988, +0.618033988749894848204586834365638117720309180);
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42 DVK(KP951056516, +0.951056516295153572116439333379382143405698634);
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43 {
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44 INT m;
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45 R *x;
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46 x = ri;
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47 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(5, rs)) {
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48 V T1, T2, T9, T4, T7;
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49 T1 = LD(&(x[0]), ms, &(x[0]));
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50 T2 = LD(&(x[WS(rs, 1)]), ms, &(x[WS(rs, 1)]));
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51 T9 = LD(&(x[WS(rs, 3)]), ms, &(x[WS(rs, 1)]));
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52 T4 = LD(&(x[WS(rs, 4)]), ms, &(x[0]));
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53 T7 = LD(&(x[WS(rs, 2)]), ms, &(x[0]));
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54 {
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55 V T3, Ta, T5, T8;
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56 T3 = BYTWJ(&(W[0]), T2);
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57 Ta = BYTWJ(&(W[TWVL * 4]), T9);
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58 T5 = BYTWJ(&(W[TWVL * 6]), T4);
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59 T8 = BYTWJ(&(W[TWVL * 2]), T7);
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60 {
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61 V T6, Tg, Tb, Th;
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62 T6 = VADD(T3, T5);
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63 Tg = VSUB(T3, T5);
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64 Tb = VADD(T8, Ta);
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65 Th = VSUB(T8, Ta);
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66 {
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67 V Te, Tc, Tk, Ti, Td, Tj, Tf;
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68 Te = VSUB(T6, Tb);
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69 Tc = VADD(T6, Tb);
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70 Tk = VMUL(LDK(KP951056516), VFNMS(LDK(KP618033988), Tg, Th));
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71 Ti = VMUL(LDK(KP951056516), VFMA(LDK(KP618033988), Th, Tg));
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72 Td = VFNMS(LDK(KP250000000), Tc, T1);
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73 ST(&(x[0]), VADD(T1, Tc), ms, &(x[0]));
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74 Tj = VFNMS(LDK(KP559016994), Te, Td);
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75 Tf = VFMA(LDK(KP559016994), Te, Td);
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76 ST(&(x[WS(rs, 2)]), VFMAI(Tk, Tj), ms, &(x[0]));
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77 ST(&(x[WS(rs, 3)]), VFNMSI(Tk, Tj), ms, &(x[WS(rs, 1)]));
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78 ST(&(x[WS(rs, 4)]), VFMAI(Ti, Tf), ms, &(x[0]));
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79 ST(&(x[WS(rs, 1)]), VFNMSI(Ti, Tf), ms, &(x[WS(rs, 1)]));
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80 }
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81 }
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82 }
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83 }
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84 }
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85 VLEAVE();
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86 }
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87
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88 static const tw_instr twinstr[] = {
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89 VTW(0, 1),
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90 VTW(0, 2),
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91 VTW(0, 3),
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92 VTW(0, 4),
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93 {TW_NEXT, VL, 0}
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94 };
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95
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96 static const ct_desc desc = { 5, XSIMD_STRING("t1fuv_5"), twinstr, &GENUS, {11, 10, 9, 0}, 0, 0, 0 };
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97
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98 void XSIMD(codelet_t1fuv_5) (planner *p) {
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99 X(kdft_dit_register) (p, t1fuv_5, &desc);
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100 }
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101 #else /* HAVE_FMA */
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102
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103 /* Generated by: ../../../genfft/gen_twiddle_c.native -simd -compact -variables 4 -pipeline-latency 8 -n 5 -name t1fuv_5 -include t1fu.h */
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104
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105 /*
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106 * This function contains 20 FP additions, 14 FP multiplications,
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107 * (or, 17 additions, 11 multiplications, 3 fused multiply/add),
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108 * 20 stack variables, 4 constants, and 10 memory accesses
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109 */
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110 #include "t1fu.h"
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111
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112 static void t1fuv_5(R *ri, R *ii, const R *W, stride rs, INT mb, INT me, INT ms)
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113 {
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114 DVK(KP250000000, +0.250000000000000000000000000000000000000000000);
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115 DVK(KP559016994, +0.559016994374947424102293417182819058860154590);
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116 DVK(KP587785252, +0.587785252292473129168705954639072768597652438);
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117 DVK(KP951056516, +0.951056516295153572116439333379382143405698634);
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118 {
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119 INT m;
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120 R *x;
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121 x = ri;
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122 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(5, rs)) {
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123 V Tc, Tg, Th, T5, Ta, Td;
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124 Tc = LD(&(x[0]), ms, &(x[0]));
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125 {
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126 V T2, T9, T4, T7;
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127 {
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128 V T1, T8, T3, T6;
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129 T1 = LD(&(x[WS(rs, 1)]), ms, &(x[WS(rs, 1)]));
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130 T2 = BYTWJ(&(W[0]), T1);
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131 T8 = LD(&(x[WS(rs, 3)]), ms, &(x[WS(rs, 1)]));
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132 T9 = BYTWJ(&(W[TWVL * 4]), T8);
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133 T3 = LD(&(x[WS(rs, 4)]), ms, &(x[0]));
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134 T4 = BYTWJ(&(W[TWVL * 6]), T3);
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135 T6 = LD(&(x[WS(rs, 2)]), ms, &(x[0]));
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136 T7 = BYTWJ(&(W[TWVL * 2]), T6);
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137 }
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138 Tg = VSUB(T2, T4);
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139 Th = VSUB(T7, T9);
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140 T5 = VADD(T2, T4);
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141 Ta = VADD(T7, T9);
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142 Td = VADD(T5, Ta);
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143 }
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144 ST(&(x[0]), VADD(Tc, Td), ms, &(x[0]));
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145 {
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146 V Ti, Tj, Tf, Tk, Tb, Te;
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147 Ti = VBYI(VFMA(LDK(KP951056516), Tg, VMUL(LDK(KP587785252), Th)));
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148 Tj = VBYI(VFNMS(LDK(KP587785252), Tg, VMUL(LDK(KP951056516), Th)));
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149 Tb = VMUL(LDK(KP559016994), VSUB(T5, Ta));
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150 Te = VFNMS(LDK(KP250000000), Td, Tc);
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151 Tf = VADD(Tb, Te);
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152 Tk = VSUB(Te, Tb);
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153 ST(&(x[WS(rs, 1)]), VSUB(Tf, Ti), ms, &(x[WS(rs, 1)]));
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154 ST(&(x[WS(rs, 3)]), VSUB(Tk, Tj), ms, &(x[WS(rs, 1)]));
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155 ST(&(x[WS(rs, 4)]), VADD(Ti, Tf), ms, &(x[0]));
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156 ST(&(x[WS(rs, 2)]), VADD(Tj, Tk), ms, &(x[0]));
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157 }
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158 }
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159 }
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160 VLEAVE();
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161 }
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162
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163 static const tw_instr twinstr[] = {
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164 VTW(0, 1),
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165 VTW(0, 2),
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166 VTW(0, 3),
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167 VTW(0, 4),
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168 {TW_NEXT, VL, 0}
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169 };
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170
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171 static const ct_desc desc = { 5, XSIMD_STRING("t1fuv_5"), twinstr, &GENUS, {17, 11, 3, 0}, 0, 0, 0 };
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172
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173 void XSIMD(codelet_t1fuv_5) (planner *p) {
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174 X(kdft_dit_register) (p, t1fuv_5, &desc);
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175 }
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176 #endif /* HAVE_FMA */
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