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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 07:41:13 EST 2012 */
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23
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24 #include "codelet-rdft.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_hc2hc.native -fma -reorder-insns -schedule-for-pipeline -compact -variables 4 -pipeline-latency 4 -sign 1 -n 8 -dif -name hb_8 -include hb.h */
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29
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30 /*
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31 * This function contains 66 FP additions, 36 FP multiplications,
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32 * (or, 44 additions, 14 multiplications, 22 fused multiply/add),
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33 * 52 stack variables, 1 constants, and 32 memory accesses
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34 */
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35 #include "hb.h"
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36
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37 static void hb_8(R *cr, R *ci, const R *W, stride rs, INT mb, INT me, INT ms)
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38 {
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39 DK(KP707106781, +0.707106781186547524400844362104849039284835938);
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40 {
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41 INT m;
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42 for (m = mb, W = W + ((mb - 1) * 14); m < me; m = m + 1, cr = cr + ms, ci = ci - ms, W = W + 14, MAKE_VOLATILE_STRIDE(16, rs)) {
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43 E Tw, TH, Tf, Ty, Tx, TI;
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44 {
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45 E TV, TD, T1i, T7, T1b, T1n, TQ, Tk, Tb, Tl, Ta, T1d, Tt, Tc, Tm;
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46 E Tn;
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47 {
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48 E T4, Tg, T3, T19, TC, T5, Th, Ti;
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49 {
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50 E T1, T2, TA, TB;
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51 T1 = cr[0];
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52 T2 = ci[WS(rs, 3)];
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53 TA = ci[WS(rs, 7)];
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54 TB = cr[WS(rs, 4)];
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55 T4 = cr[WS(rs, 2)];
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56 Tg = T1 - T2;
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57 T3 = T1 + T2;
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58 T19 = TA - TB;
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59 TC = TA + TB;
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60 T5 = ci[WS(rs, 1)];
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61 Th = ci[WS(rs, 5)];
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62 Ti = cr[WS(rs, 6)];
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63 }
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64 {
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65 E T8, T9, Tr, Ts;
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66 T8 = cr[WS(rs, 1)];
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67 {
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68 E Tz, T6, T1a, Tj;
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69 Tz = T4 - T5;
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70 T6 = T4 + T5;
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71 T1a = Th - Ti;
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72 Tj = Th + Ti;
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73 TV = TC - Tz;
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74 TD = Tz + TC;
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75 T1i = T3 - T6;
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76 T7 = T3 + T6;
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77 T1b = T19 + T1a;
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78 T1n = T19 - T1a;
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79 TQ = Tg + Tj;
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80 Tk = Tg - Tj;
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81 T9 = ci[WS(rs, 2)];
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82 }
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83 Tr = ci[WS(rs, 4)];
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84 Ts = cr[WS(rs, 7)];
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85 Tb = ci[0];
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86 Tl = T8 - T9;
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87 Ta = T8 + T9;
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88 T1d = Tr - Ts;
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89 Tt = Tr + Ts;
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90 Tc = cr[WS(rs, 3)];
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91 Tm = ci[WS(rs, 6)];
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92 Tn = cr[WS(rs, 5)];
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93 }
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94 }
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95 {
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96 E Te, T1e, Tv, TG, T13, T1k, T1s, T10, T1p, T1v, T1u, T1w, T1t;
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97 {
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98 E TP, T1o, T1j, TR, TU, TX, TW;
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99 TP = W[4];
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100 {
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101 E Tq, Td, T1c, To;
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102 Tq = Tb - Tc;
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103 Td = Tb + Tc;
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104 T1c = Tm - Tn;
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105 To = Tm + Tn;
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106 {
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107 E Tu, TF, Tp, TE;
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108 Tu = Tq - Tt;
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109 TF = Tq + Tt;
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110 T1o = Ta - Td;
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111 Te = Ta + Td;
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112 T1j = T1d - T1c;
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113 T1e = T1c + T1d;
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114 Tp = Tl - To;
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115 TE = Tl + To;
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116 cr[0] = T7 + Te;
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117 ci[0] = T1b + T1e;
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118 TW = Tp - Tu;
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119 Tv = Tp + Tu;
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120 TR = TE + TF;
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121 TG = TE - TF;
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122 }
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123 }
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124 TU = W[5];
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125 TX = FMA(KP707106781, TW, TV);
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126 T13 = FNMS(KP707106781, TW, TV);
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127 {
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128 E TS, TY, T1r, TT;
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129 T1k = T1i - T1j;
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130 T1s = T1i + T1j;
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131 TS = FNMS(KP707106781, TR, TQ);
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132 T10 = FMA(KP707106781, TR, TQ);
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133 T1p = T1n - T1o;
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134 T1v = T1o + T1n;
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135 TY = TP * TX;
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136 T1r = W[2];
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137 TT = TP * TS;
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138 T1u = W[3];
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139 ci[WS(rs, 3)] = FMA(TU, TS, TY);
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140 T1w = T1r * T1v;
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141 T1t = T1r * T1s;
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142 cr[WS(rs, 3)] = FNMS(TU, TX, TT);
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143 }
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144 }
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145 {
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146 E T1f, T15, T18, T17, T1g, T1h, T1m;
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147 {
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148 E TZ, T12, T16, T14, T11;
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149 ci[WS(rs, 2)] = FMA(T1u, T1s, T1w);
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150 cr[WS(rs, 2)] = FNMS(T1u, T1v, T1t);
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151 TZ = W[12];
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152 T12 = W[13];
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153 T1f = T1b - T1e;
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154 T16 = T7 - Te;
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155 T14 = TZ * T13;
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156 T11 = TZ * T10;
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157 T15 = W[6];
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158 T18 = W[7];
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159 ci[WS(rs, 7)] = FMA(T12, T10, T14);
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160 cr[WS(rs, 7)] = FNMS(T12, T13, T11);
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161 T17 = T15 * T16;
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162 T1g = T18 * T16;
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163 }
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164 cr[WS(rs, 4)] = FNMS(T18, T1f, T17);
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165 ci[WS(rs, 4)] = FMA(T15, T1f, T1g);
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166 T1h = W[10];
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167 T1m = W[11];
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168 {
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169 E TN, TJ, TM, TL, TO, TK, T1q, T1l;
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170 Tw = FNMS(KP707106781, Tv, Tk);
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171 TK = FMA(KP707106781, Tv, Tk);
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172 T1q = T1h * T1p;
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173 T1l = T1h * T1k;
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174 TN = FMA(KP707106781, TG, TD);
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175 TH = FNMS(KP707106781, TG, TD);
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176 ci[WS(rs, 6)] = FMA(T1m, T1k, T1q);
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177 cr[WS(rs, 6)] = FNMS(T1m, T1p, T1l);
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178 TJ = W[0];
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179 TM = W[1];
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180 Tf = W[8];
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181 TL = TJ * TK;
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182 TO = TM * TK;
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183 Ty = W[9];
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184 Tx = Tf * Tw;
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185 cr[WS(rs, 1)] = FNMS(TM, TN, TL);
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186 ci[WS(rs, 1)] = FMA(TJ, TN, TO);
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187 }
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188 }
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189 }
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190 }
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191 cr[WS(rs, 5)] = FNMS(Ty, TH, Tx);
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192 TI = Ty * Tw;
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193 ci[WS(rs, 5)] = FMA(Tf, TH, TI);
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194 }
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195 }
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196 }
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197
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198 static const tw_instr twinstr[] = {
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199 {TW_FULL, 1, 8},
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200 {TW_NEXT, 1, 0}
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201 };
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202
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203 static const hc2hc_desc desc = { 8, "hb_8", twinstr, &GENUS, {44, 14, 22, 0} };
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204
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205 void X(codelet_hb_8) (planner *p) {
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206 X(khc2hc_register) (p, hb_8, &desc);
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207 }
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208 #else /* HAVE_FMA */
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209
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210 /* Generated by: ../../../genfft/gen_hc2hc.native -compact -variables 4 -pipeline-latency 4 -sign 1 -n 8 -dif -name hb_8 -include hb.h */
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211
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212 /*
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213 * This function contains 66 FP additions, 32 FP multiplications,
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214 * (or, 52 additions, 18 multiplications, 14 fused multiply/add),
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215 * 30 stack variables, 1 constants, and 32 memory accesses
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216 */
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217 #include "hb.h"
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218
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219 static void hb_8(R *cr, R *ci, const R *W, stride rs, INT mb, INT me, INT ms)
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220 {
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221 DK(KP707106781, +0.707106781186547524400844362104849039284835938);
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222 {
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223 INT m;
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224 for (m = mb, W = W + ((mb - 1) * 14); m < me; m = m + 1, cr = cr + ms, ci = ci - ms, W = W + 14, MAKE_VOLATILE_STRIDE(16, rs)) {
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225 E T7, T18, T1c, To, Ty, TM, TY, TC, Te, TZ, T10, Tv, Tz, TP, TS;
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226 E TD;
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227 {
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228 E T3, TK, Tn, TL, T6, TW, Tk, TX;
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229 {
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230 E T1, T2, Tl, Tm;
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231 T1 = cr[0];
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232 T2 = ci[WS(rs, 3)];
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233 T3 = T1 + T2;
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234 TK = T1 - T2;
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235 Tl = ci[WS(rs, 5)];
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236 Tm = cr[WS(rs, 6)];
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237 Tn = Tl - Tm;
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238 TL = Tl + Tm;
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239 }
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240 {
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241 E T4, T5, Ti, Tj;
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242 T4 = cr[WS(rs, 2)];
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243 T5 = ci[WS(rs, 1)];
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244 T6 = T4 + T5;
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245 TW = T4 - T5;
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246 Ti = ci[WS(rs, 7)];
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247 Tj = cr[WS(rs, 4)];
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248 Tk = Ti - Tj;
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249 TX = Ti + Tj;
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250 }
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251 T7 = T3 + T6;
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252 T18 = TK + TL;
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253 T1c = TX - TW;
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254 To = Tk + Tn;
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255 Ty = T3 - T6;
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256 TM = TK - TL;
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257 TY = TW + TX;
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258 TC = Tk - Tn;
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259 }
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260 {
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261 E Ta, TN, Tu, TR, Td, TQ, Tr, TO;
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262 {
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263 E T8, T9, Ts, Tt;
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264 T8 = cr[WS(rs, 1)];
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265 T9 = ci[WS(rs, 2)];
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266 Ta = T8 + T9;
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267 TN = T8 - T9;
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268 Ts = ci[WS(rs, 4)];
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269 Tt = cr[WS(rs, 7)];
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270 Tu = Ts - Tt;
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271 TR = Ts + Tt;
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272 }
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273 {
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274 E Tb, Tc, Tp, Tq;
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275 Tb = ci[0];
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276 Tc = cr[WS(rs, 3)];
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277 Td = Tb + Tc;
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278 TQ = Tb - Tc;
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279 Tp = ci[WS(rs, 6)];
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280 Tq = cr[WS(rs, 5)];
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281 Tr = Tp - Tq;
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282 TO = Tp + Tq;
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283 }
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284 Te = Ta + Td;
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285 TZ = TN + TO;
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286 T10 = TQ + TR;
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287 Tv = Tr + Tu;
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288 Tz = Tu - Tr;
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289 TP = TN - TO;
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290 TS = TQ - TR;
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291 TD = Ta - Td;
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292 }
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293 cr[0] = T7 + Te;
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294 ci[0] = To + Tv;
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295 {
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296 E Tg, Tw, Tf, Th;
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297 Tg = T7 - Te;
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298 Tw = To - Tv;
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299 Tf = W[6];
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300 Th = W[7];
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301 cr[WS(rs, 4)] = FNMS(Th, Tw, Tf * Tg);
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302 ci[WS(rs, 4)] = FMA(Th, Tg, Tf * Tw);
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303 }
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304 {
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305 E TG, TI, TF, TH;
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306 TG = Ty + Tz;
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307 TI = TD + TC;
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308 TF = W[2];
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309 TH = W[3];
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310 cr[WS(rs, 2)] = FNMS(TH, TI, TF * TG);
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311 ci[WS(rs, 2)] = FMA(TF, TI, TH * TG);
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312 }
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313 {
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314 E TA, TE, Tx, TB;
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315 TA = Ty - Tz;
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316 TE = TC - TD;
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317 Tx = W[10];
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318 TB = W[11];
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319 cr[WS(rs, 6)] = FNMS(TB, TE, Tx * TA);
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320 ci[WS(rs, 6)] = FMA(Tx, TE, TB * TA);
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321 }
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322 {
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323 E T1a, T1g, T1e, T1i, T19, T1d;
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324 T19 = KP707106781 * (TZ + T10);
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325 T1a = T18 - T19;
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326 T1g = T18 + T19;
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327 T1d = KP707106781 * (TP - TS);
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328 T1e = T1c + T1d;
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329 T1i = T1c - T1d;
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330 {
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331 E T17, T1b, T1f, T1h;
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332 T17 = W[4];
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333 T1b = W[5];
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334 cr[WS(rs, 3)] = FNMS(T1b, T1e, T17 * T1a);
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335 ci[WS(rs, 3)] = FMA(T17, T1e, T1b * T1a);
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336 T1f = W[12];
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337 T1h = W[13];
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338 cr[WS(rs, 7)] = FNMS(T1h, T1i, T1f * T1g);
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339 ci[WS(rs, 7)] = FMA(T1f, T1i, T1h * T1g);
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340 }
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341 }
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342 {
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343 E TU, T14, T12, T16, TT, T11;
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344 TT = KP707106781 * (TP + TS);
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345 TU = TM - TT;
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Chris@10
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346 T14 = TM + TT;
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347 T11 = KP707106781 * (TZ - T10);
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348 T12 = TY - T11;
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349 T16 = TY + T11;
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Chris@10
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350 {
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351 E TJ, TV, T13, T15;
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352 TJ = W[8];
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353 TV = W[9];
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354 cr[WS(rs, 5)] = FNMS(TV, T12, TJ * TU);
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Chris@10
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355 ci[WS(rs, 5)] = FMA(TV, TU, TJ * T12);
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356 T13 = W[0];
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357 T15 = W[1];
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358 cr[WS(rs, 1)] = FNMS(T15, T16, T13 * T14);
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Chris@10
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359 ci[WS(rs, 1)] = FMA(T15, T14, T13 * T16);
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Chris@10
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360 }
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Chris@10
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361 }
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Chris@10
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362 }
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363 }
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Chris@10
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364 }
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Chris@10
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365
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366 static const tw_instr twinstr[] = {
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Chris@10
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367 {TW_FULL, 1, 8},
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368 {TW_NEXT, 1, 0}
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369 };
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370
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371 static const hc2hc_desc desc = { 8, "hb_8", twinstr, &GENUS, {52, 18, 14, 0} };
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Chris@10
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372
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373 void X(codelet_hb_8) (planner *p) {
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374 X(khc2hc_register) (p, hb_8, &desc);
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Chris@10
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375 }
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376 #endif /* HAVE_FMA */
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