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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 07:40:30 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_hc2c.native -fma -reorder-insns -schedule-for-pipeline -compact -variables 4 -pipeline-latency 4 -n 10 -dit -name hc2cf_10 -include hc2cf.h */
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29
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30 /*
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31 * This function contains 102 FP additions, 72 FP multiplications,
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32 * (or, 48 additions, 18 multiplications, 54 fused multiply/add),
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33 * 70 stack variables, 4 constants, and 40 memory accesses
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34 */
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35 #include "hc2cf.h"
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36
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37 static void hc2cf_10(R *Rp, R *Ip, R *Rm, R *Im, const R *W, stride rs, INT mb, INT me, INT ms)
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38 {
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39 DK(KP951056516, +0.951056516295153572116439333379382143405698634);
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40 DK(KP559016994, +0.559016994374947424102293417182819058860154590);
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41 DK(KP250000000, +0.250000000000000000000000000000000000000000000);
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42 DK(KP618033988, +0.618033988749894848204586834365638117720309180);
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43 {
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44 INT m;
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45 for (m = mb, W = W + ((mb - 1) * 18); m < me; m = m + 1, Rp = Rp + ms, Ip = Ip + ms, Rm = Rm - ms, Im = Im - ms, W = W + 18, MAKE_VOLATILE_STRIDE(40, rs)) {
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46 E T1X, T21, T20, T22;
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47 {
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48 E T26, T1U, T8, T12, T1n, T1P, T24, T1K, T1Y, T18, T10, T2b, T1H, T23, T15;
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49 E T1Z, T2a, Tz, T1O, T1y;
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50 {
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51 E T1, T1T, T3, T6, T2, T5;
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52 T1 = Rp[0];
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53 T1T = Rm[0];
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54 T3 = Ip[WS(rs, 2)];
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55 T6 = Im[WS(rs, 2)];
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56 T2 = W[8];
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57 T5 = W[9];
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58 {
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59 E T1l, TY, T1h, T1J, TM, T16, T1j, TS;
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60 {
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61 E TF, T1e, TO, TR, T1g, TL, TN, TQ, T1i, TP;
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62 {
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63 E TU, TX, TT, TW;
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64 {
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65 E TB, TE, T1R, T4, TA, TD;
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66 TB = Rp[WS(rs, 2)];
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67 TE = Rm[WS(rs, 2)];
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68 T1R = T2 * T6;
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69 T4 = T2 * T3;
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70 TA = W[6];
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71 TD = W[7];
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72 {
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73 E T1S, T7, T1d, TC;
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74 T1S = FNMS(T5, T3, T1R);
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75 T7 = FMA(T5, T6, T4);
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76 T1d = TA * TE;
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77 TC = TA * TB;
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78 T26 = T1T - T1S;
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79 T1U = T1S + T1T;
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80 T8 = T1 - T7;
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81 T12 = T1 + T7;
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82 TF = FMA(TD, TE, TC);
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83 T1e = FNMS(TD, TB, T1d);
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84 }
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85 }
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86 TU = Ip[0];
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87 TX = Im[0];
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88 TT = W[0];
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89 TW = W[1];
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90 {
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91 E TH, TK, TJ, T1f, TI, T1k, TV, TG;
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92 TH = Ip[WS(rs, 4)];
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93 TK = Im[WS(rs, 4)];
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94 T1k = TT * TX;
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95 TV = TT * TU;
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96 TG = W[16];
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97 TJ = W[17];
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98 T1l = FNMS(TW, TU, T1k);
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99 TY = FMA(TW, TX, TV);
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100 T1f = TG * TK;
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101 TI = TG * TH;
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102 TO = Rp[WS(rs, 3)];
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103 TR = Rm[WS(rs, 3)];
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104 T1g = FNMS(TJ, TH, T1f);
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105 TL = FMA(TJ, TK, TI);
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106 TN = W[10];
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107 TQ = W[11];
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108 }
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109 }
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110 T1h = T1e + T1g;
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111 T1J = T1g - T1e;
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112 TM = TF - TL;
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113 T16 = TF + TL;
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114 T1i = TN * TR;
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115 TP = TN * TO;
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116 T1j = FNMS(TQ, TO, T1i);
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117 TS = FMA(TQ, TR, TP);
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118 }
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119 {
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120 E T1p, Te, T1w, Tx, Tn, Tq, Tp, T1r, Tk, T1t, To;
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121 {
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122 E Tt, Tw, Tv, T1v, Tu;
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123 {
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124 E Ta, Td, T9, Tc, T1o, Tb, Ts;
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125 Ta = Rp[WS(rs, 1)];
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126 Td = Rm[WS(rs, 1)];
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127 {
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128 E T1I, T1m, TZ, T17;
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129 T1I = T1l - T1j;
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130 T1m = T1j + T1l;
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131 TZ = TS - TY;
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132 T17 = TS + TY;
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133 T1n = T1h - T1m;
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134 T1P = T1h + T1m;
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135 T24 = T1J + T1I;
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136 T1K = T1I - T1J;
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137 T1Y = T16 - T17;
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138 T18 = T16 + T17;
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139 T10 = TM + TZ;
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140 T2b = TZ - TM;
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141 T9 = W[2];
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142 }
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143 Tc = W[3];
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144 Tt = Ip[WS(rs, 1)];
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145 Tw = Im[WS(rs, 1)];
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146 T1o = T9 * Td;
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147 Tb = T9 * Ta;
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148 Ts = W[4];
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149 Tv = W[5];
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150 T1p = FNMS(Tc, Ta, T1o);
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151 Te = FMA(Tc, Td, Tb);
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152 T1v = Ts * Tw;
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153 Tu = Ts * Tt;
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154 }
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155 {
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156 E Tg, Tj, Tf, Ti, T1q, Th, Tm;
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157 Tg = Ip[WS(rs, 3)];
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158 Tj = Im[WS(rs, 3)];
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159 T1w = FNMS(Tv, Tt, T1v);
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160 Tx = FMA(Tv, Tw, Tu);
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161 Tf = W[12];
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162 Ti = W[13];
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163 Tn = Rp[WS(rs, 4)];
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164 Tq = Rm[WS(rs, 4)];
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165 T1q = Tf * Tj;
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166 Th = Tf * Tg;
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167 Tm = W[14];
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168 Tp = W[15];
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169 T1r = FNMS(Ti, Tg, T1q);
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170 Tk = FMA(Ti, Tj, Th);
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171 T1t = Tm * Tq;
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172 To = Tm * Tn;
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173 }
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174 }
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175 {
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176 E T1s, T1G, Tl, T13, T1u, Tr;
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177 T1s = T1p + T1r;
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178 T1G = T1r - T1p;
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179 Tl = Te - Tk;
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180 T13 = Te + Tk;
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181 T1u = FNMS(Tp, Tn, T1t);
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182 Tr = FMA(Tp, Tq, To);
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183 {
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184 E T1x, T1F, T14, Ty;
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185 T1x = T1u + T1w;
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186 T1F = T1w - T1u;
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187 T14 = Tr + Tx;
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188 Ty = Tr - Tx;
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189 T1H = T1F - T1G;
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190 T23 = T1G + T1F;
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191 T15 = T13 + T14;
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192 T1Z = T13 - T14;
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193 T2a = Ty - Tl;
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194 Tz = Tl + Ty;
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195 T1O = T1s + T1x;
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196 T1y = T1s - T1x;
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197 }
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198 }
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199 }
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200 }
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201 }
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202 {
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203 E T2c, T2e, T29, T2d;
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204 {
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205 E T1D, T11, T25, T28, T27;
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206 T1D = Tz - T10;
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207 T11 = Tz + T10;
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208 T25 = T23 + T24;
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209 T28 = T24 - T23;
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210 {
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211 E T1N, T1L, T1C, T1M, T1E;
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212 T1N = FNMS(KP618033988, T1H, T1K);
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213 T1L = FMA(KP618033988, T1K, T1H);
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214 Rm[WS(rs, 4)] = T8 + T11;
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215 T1C = FNMS(KP250000000, T11, T8);
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216 T1M = FNMS(KP559016994, T1D, T1C);
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217 T1E = FMA(KP559016994, T1D, T1C);
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218 T27 = FMA(KP250000000, T25, T26);
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219 T2c = FMA(KP618033988, T2b, T2a);
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220 T2e = FNMS(KP618033988, T2a, T2b);
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221 Rp[WS(rs, 1)] = FMA(KP951056516, T1L, T1E);
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222 Rm[0] = FNMS(KP951056516, T1L, T1E);
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223 Rp[WS(rs, 3)] = FMA(KP951056516, T1N, T1M);
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224 Rm[WS(rs, 2)] = FNMS(KP951056516, T1N, T1M);
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225 }
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226 Im[WS(rs, 4)] = T25 - T26;
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227 T29 = FMA(KP559016994, T28, T27);
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228 T2d = FNMS(KP559016994, T28, T27);
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229 }
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230 {
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231 E T1c, T1A, T1z, T1B, T19, T1b, T1a, T1Q, T1W, T1V;
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232 T19 = T15 + T18;
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233 T1b = T15 - T18;
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234 Ip[WS(rs, 3)] = FMA(KP951056516, T2e, T2d);
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235 Im[WS(rs, 2)] = FMS(KP951056516, T2e, T2d);
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236 Ip[WS(rs, 1)] = FMA(KP951056516, T2c, T29);
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237 Im[0] = FMS(KP951056516, T2c, T29);
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238 T1a = FNMS(KP250000000, T19, T12);
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239 Rp[0] = T12 + T19;
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240 T1c = FNMS(KP559016994, T1b, T1a);
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241 T1A = FMA(KP559016994, T1b, T1a);
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242 T1z = FNMS(KP618033988, T1y, T1n);
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243 T1B = FMA(KP618033988, T1n, T1y);
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244 T1Q = T1O + T1P;
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245 T1W = T1O - T1P;
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246 Rm[WS(rs, 3)] = FMA(KP951056516, T1B, T1A);
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247 Rp[WS(rs, 4)] = FNMS(KP951056516, T1B, T1A);
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248 Rm[WS(rs, 1)] = FMA(KP951056516, T1z, T1c);
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249 Rp[WS(rs, 2)] = FNMS(KP951056516, T1z, T1c);
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250 T1V = FNMS(KP250000000, T1Q, T1U);
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251 Ip[0] = T1Q + T1U;
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252 T1X = FNMS(KP559016994, T1W, T1V);
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253 T21 = FMA(KP559016994, T1W, T1V);
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254 T20 = FNMS(KP618033988, T1Z, T1Y);
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255 T22 = FMA(KP618033988, T1Y, T1Z);
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256 }
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257 }
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258 }
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259 Ip[WS(rs, 4)] = FMA(KP951056516, T22, T21);
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260 Im[WS(rs, 3)] = FMS(KP951056516, T22, T21);
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261 Ip[WS(rs, 2)] = FMA(KP951056516, T20, T1X);
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262 Im[WS(rs, 1)] = FMS(KP951056516, T20, T1X);
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263 }
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264 }
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265 }
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266
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267 static const tw_instr twinstr[] = {
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268 {TW_FULL, 1, 10},
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269 {TW_NEXT, 1, 0}
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270 };
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271
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272 static const hc2c_desc desc = { 10, "hc2cf_10", twinstr, &GENUS, {48, 18, 54, 0} };
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273
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274 void X(codelet_hc2cf_10) (planner *p) {
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275 X(khc2c_register) (p, hc2cf_10, &desc, HC2C_VIA_RDFT);
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276 }
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277 #else /* HAVE_FMA */
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278
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279 /* Generated by: ../../../genfft/gen_hc2c.native -compact -variables 4 -pipeline-latency 4 -n 10 -dit -name hc2cf_10 -include hc2cf.h */
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280
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281 /*
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282 * This function contains 102 FP additions, 60 FP multiplications,
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283 * (or, 72 additions, 30 multiplications, 30 fused multiply/add),
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284 * 45 stack variables, 4 constants, and 40 memory accesses
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285 */
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286 #include "hc2cf.h"
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287
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288 static void hc2cf_10(R *Rp, R *Ip, R *Rm, R *Im, const R *W, stride rs, INT mb, INT me, INT ms)
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289 {
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290 DK(KP587785252, +0.587785252292473129168705954639072768597652438);
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291 DK(KP951056516, +0.951056516295153572116439333379382143405698634);
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292 DK(KP250000000, +0.250000000000000000000000000000000000000000000);
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293 DK(KP559016994, +0.559016994374947424102293417182819058860154590);
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294 {
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295 INT m;
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296 for (m = mb, W = W + ((mb - 1) * 18); m < me; m = m + 1, Rp = Rp + ms, Ip = Ip + ms, Rm = Rm - ms, Im = Im - ms, W = W + 18, MAKE_VOLATILE_STRIDE(40, rs)) {
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297 E T7, T1O, TT, T1C, TF, TQ, TR, T1r, T1s, T1L, TX, TY, TZ, T16, T19;
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298 E T1y, Ti, Tt, Tu, T1o, T1p, T1M, TU, TV, TW, T1d, T1g, T1x;
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299 {
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300 E T1, T1B, T6, T1A;
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301 T1 = Rp[0];
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302 T1B = Rm[0];
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303 {
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304 E T3, T5, T2, T4;
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305 T3 = Ip[WS(rs, 2)];
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306 T5 = Im[WS(rs, 2)];
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307 T2 = W[8];
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308 T4 = W[9];
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309 T6 = FMA(T2, T3, T4 * T5);
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310 T1A = FNMS(T4, T3, T2 * T5);
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311 }
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312 T7 = T1 - T6;
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313 T1O = T1B - T1A;
|
Chris@10
|
314 TT = T1 + T6;
|
Chris@10
|
315 T1C = T1A + T1B;
|
Chris@10
|
316 }
|
Chris@10
|
317 {
|
Chris@10
|
318 E Tz, T14, TP, T18, TE, T15, TK, T17;
|
Chris@10
|
319 {
|
Chris@10
|
320 E Tw, Ty, Tv, Tx;
|
Chris@10
|
321 Tw = Rp[WS(rs, 2)];
|
Chris@10
|
322 Ty = Rm[WS(rs, 2)];
|
Chris@10
|
323 Tv = W[6];
|
Chris@10
|
324 Tx = W[7];
|
Chris@10
|
325 Tz = FMA(Tv, Tw, Tx * Ty);
|
Chris@10
|
326 T14 = FNMS(Tx, Tw, Tv * Ty);
|
Chris@10
|
327 }
|
Chris@10
|
328 {
|
Chris@10
|
329 E TM, TO, TL, TN;
|
Chris@10
|
330 TM = Ip[0];
|
Chris@10
|
331 TO = Im[0];
|
Chris@10
|
332 TL = W[0];
|
Chris@10
|
333 TN = W[1];
|
Chris@10
|
334 TP = FMA(TL, TM, TN * TO);
|
Chris@10
|
335 T18 = FNMS(TN, TM, TL * TO);
|
Chris@10
|
336 }
|
Chris@10
|
337 {
|
Chris@10
|
338 E TB, TD, TA, TC;
|
Chris@10
|
339 TB = Ip[WS(rs, 4)];
|
Chris@10
|
340 TD = Im[WS(rs, 4)];
|
Chris@10
|
341 TA = W[16];
|
Chris@10
|
342 TC = W[17];
|
Chris@10
|
343 TE = FMA(TA, TB, TC * TD);
|
Chris@10
|
344 T15 = FNMS(TC, TB, TA * TD);
|
Chris@10
|
345 }
|
Chris@10
|
346 {
|
Chris@10
|
347 E TH, TJ, TG, TI;
|
Chris@10
|
348 TH = Rp[WS(rs, 3)];
|
Chris@10
|
349 TJ = Rm[WS(rs, 3)];
|
Chris@10
|
350 TG = W[10];
|
Chris@10
|
351 TI = W[11];
|
Chris@10
|
352 TK = FMA(TG, TH, TI * TJ);
|
Chris@10
|
353 T17 = FNMS(TI, TH, TG * TJ);
|
Chris@10
|
354 }
|
Chris@10
|
355 TF = Tz - TE;
|
Chris@10
|
356 TQ = TK - TP;
|
Chris@10
|
357 TR = TF + TQ;
|
Chris@10
|
358 T1r = T14 - T15;
|
Chris@10
|
359 T1s = T18 - T17;
|
Chris@10
|
360 T1L = T1s - T1r;
|
Chris@10
|
361 TX = Tz + TE;
|
Chris@10
|
362 TY = TK + TP;
|
Chris@10
|
363 TZ = TX + TY;
|
Chris@10
|
364 T16 = T14 + T15;
|
Chris@10
|
365 T19 = T17 + T18;
|
Chris@10
|
366 T1y = T16 + T19;
|
Chris@10
|
367 }
|
Chris@10
|
368 {
|
Chris@10
|
369 E Tc, T1b, Ts, T1f, Th, T1c, Tn, T1e;
|
Chris@10
|
370 {
|
Chris@10
|
371 E T9, Tb, T8, Ta;
|
Chris@10
|
372 T9 = Rp[WS(rs, 1)];
|
Chris@10
|
373 Tb = Rm[WS(rs, 1)];
|
Chris@10
|
374 T8 = W[2];
|
Chris@10
|
375 Ta = W[3];
|
Chris@10
|
376 Tc = FMA(T8, T9, Ta * Tb);
|
Chris@10
|
377 T1b = FNMS(Ta, T9, T8 * Tb);
|
Chris@10
|
378 }
|
Chris@10
|
379 {
|
Chris@10
|
380 E Tp, Tr, To, Tq;
|
Chris@10
|
381 Tp = Ip[WS(rs, 1)];
|
Chris@10
|
382 Tr = Im[WS(rs, 1)];
|
Chris@10
|
383 To = W[4];
|
Chris@10
|
384 Tq = W[5];
|
Chris@10
|
385 Ts = FMA(To, Tp, Tq * Tr);
|
Chris@10
|
386 T1f = FNMS(Tq, Tp, To * Tr);
|
Chris@10
|
387 }
|
Chris@10
|
388 {
|
Chris@10
|
389 E Te, Tg, Td, Tf;
|
Chris@10
|
390 Te = Ip[WS(rs, 3)];
|
Chris@10
|
391 Tg = Im[WS(rs, 3)];
|
Chris@10
|
392 Td = W[12];
|
Chris@10
|
393 Tf = W[13];
|
Chris@10
|
394 Th = FMA(Td, Te, Tf * Tg);
|
Chris@10
|
395 T1c = FNMS(Tf, Te, Td * Tg);
|
Chris@10
|
396 }
|
Chris@10
|
397 {
|
Chris@10
|
398 E Tk, Tm, Tj, Tl;
|
Chris@10
|
399 Tk = Rp[WS(rs, 4)];
|
Chris@10
|
400 Tm = Rm[WS(rs, 4)];
|
Chris@10
|
401 Tj = W[14];
|
Chris@10
|
402 Tl = W[15];
|
Chris@10
|
403 Tn = FMA(Tj, Tk, Tl * Tm);
|
Chris@10
|
404 T1e = FNMS(Tl, Tk, Tj * Tm);
|
Chris@10
|
405 }
|
Chris@10
|
406 Ti = Tc - Th;
|
Chris@10
|
407 Tt = Tn - Ts;
|
Chris@10
|
408 Tu = Ti + Tt;
|
Chris@10
|
409 T1o = T1b - T1c;
|
Chris@10
|
410 T1p = T1e - T1f;
|
Chris@10
|
411 T1M = T1o + T1p;
|
Chris@10
|
412 TU = Tc + Th;
|
Chris@10
|
413 TV = Tn + Ts;
|
Chris@10
|
414 TW = TU + TV;
|
Chris@10
|
415 T1d = T1b + T1c;
|
Chris@10
|
416 T1g = T1e + T1f;
|
Chris@10
|
417 T1x = T1d + T1g;
|
Chris@10
|
418 }
|
Chris@10
|
419 {
|
Chris@10
|
420 E T1l, TS, T1m, T1u, T1w, T1q, T1t, T1v, T1n;
|
Chris@10
|
421 T1l = KP559016994 * (Tu - TR);
|
Chris@10
|
422 TS = Tu + TR;
|
Chris@10
|
423 T1m = FNMS(KP250000000, TS, T7);
|
Chris@10
|
424 T1q = T1o - T1p;
|
Chris@10
|
425 T1t = T1r + T1s;
|
Chris@10
|
426 T1u = FMA(KP951056516, T1q, KP587785252 * T1t);
|
Chris@10
|
427 T1w = FNMS(KP587785252, T1q, KP951056516 * T1t);
|
Chris@10
|
428 Rm[WS(rs, 4)] = T7 + TS;
|
Chris@10
|
429 T1v = T1m - T1l;
|
Chris@10
|
430 Rm[WS(rs, 2)] = T1v - T1w;
|
Chris@10
|
431 Rp[WS(rs, 3)] = T1v + T1w;
|
Chris@10
|
432 T1n = T1l + T1m;
|
Chris@10
|
433 Rm[0] = T1n - T1u;
|
Chris@10
|
434 Rp[WS(rs, 1)] = T1n + T1u;
|
Chris@10
|
435 }
|
Chris@10
|
436 {
|
Chris@10
|
437 E T1S, T1N, T1T, T1R, T1V, T1P, T1Q, T1W, T1U;
|
Chris@10
|
438 T1S = KP559016994 * (T1M + T1L);
|
Chris@10
|
439 T1N = T1L - T1M;
|
Chris@10
|
440 T1T = FMA(KP250000000, T1N, T1O);
|
Chris@10
|
441 T1P = TQ - TF;
|
Chris@10
|
442 T1Q = Ti - Tt;
|
Chris@10
|
443 T1R = FNMS(KP951056516, T1Q, KP587785252 * T1P);
|
Chris@10
|
444 T1V = FMA(KP587785252, T1Q, KP951056516 * T1P);
|
Chris@10
|
445 Im[WS(rs, 4)] = T1N - T1O;
|
Chris@10
|
446 T1W = T1T - T1S;
|
Chris@10
|
447 Im[WS(rs, 2)] = T1V - T1W;
|
Chris@10
|
448 Ip[WS(rs, 3)] = T1V + T1W;
|
Chris@10
|
449 T1U = T1S + T1T;
|
Chris@10
|
450 Im[0] = T1R - T1U;
|
Chris@10
|
451 Ip[WS(rs, 1)] = T1R + T1U;
|
Chris@10
|
452 }
|
Chris@10
|
453 {
|
Chris@10
|
454 E T12, T10, T11, T1i, T1k, T1a, T1h, T1j, T13;
|
Chris@10
|
455 T12 = KP559016994 * (TW - TZ);
|
Chris@10
|
456 T10 = TW + TZ;
|
Chris@10
|
457 T11 = FNMS(KP250000000, T10, TT);
|
Chris@10
|
458 T1a = T16 - T19;
|
Chris@10
|
459 T1h = T1d - T1g;
|
Chris@10
|
460 T1i = FNMS(KP587785252, T1h, KP951056516 * T1a);
|
Chris@10
|
461 T1k = FMA(KP951056516, T1h, KP587785252 * T1a);
|
Chris@10
|
462 Rp[0] = TT + T10;
|
Chris@10
|
463 T1j = T12 + T11;
|
Chris@10
|
464 Rp[WS(rs, 4)] = T1j - T1k;
|
Chris@10
|
465 Rm[WS(rs, 3)] = T1j + T1k;
|
Chris@10
|
466 T13 = T11 - T12;
|
Chris@10
|
467 Rp[WS(rs, 2)] = T13 - T1i;
|
Chris@10
|
468 Rm[WS(rs, 1)] = T13 + T1i;
|
Chris@10
|
469 }
|
Chris@10
|
470 {
|
Chris@10
|
471 E T1H, T1z, T1G, T1F, T1J, T1D, T1E, T1K, T1I;
|
Chris@10
|
472 T1H = KP559016994 * (T1x - T1y);
|
Chris@10
|
473 T1z = T1x + T1y;
|
Chris@10
|
474 T1G = FNMS(KP250000000, T1z, T1C);
|
Chris@10
|
475 T1D = TX - TY;
|
Chris@10
|
476 T1E = TU - TV;
|
Chris@10
|
477 T1F = FNMS(KP587785252, T1E, KP951056516 * T1D);
|
Chris@10
|
478 T1J = FMA(KP951056516, T1E, KP587785252 * T1D);
|
Chris@10
|
479 Ip[0] = T1z + T1C;
|
Chris@10
|
480 T1K = T1H + T1G;
|
Chris@10
|
481 Im[WS(rs, 3)] = T1J - T1K;
|
Chris@10
|
482 Ip[WS(rs, 4)] = T1J + T1K;
|
Chris@10
|
483 T1I = T1G - T1H;
|
Chris@10
|
484 Im[WS(rs, 1)] = T1F - T1I;
|
Chris@10
|
485 Ip[WS(rs, 2)] = T1F + T1I;
|
Chris@10
|
486 }
|
Chris@10
|
487 }
|
Chris@10
|
488 }
|
Chris@10
|
489 }
|
Chris@10
|
490
|
Chris@10
|
491 static const tw_instr twinstr[] = {
|
Chris@10
|
492 {TW_FULL, 1, 10},
|
Chris@10
|
493 {TW_NEXT, 1, 0}
|
Chris@10
|
494 };
|
Chris@10
|
495
|
Chris@10
|
496 static const hc2c_desc desc = { 10, "hc2cf_10", twinstr, &GENUS, {72, 30, 30, 0} };
|
Chris@10
|
497
|
Chris@10
|
498 void X(codelet_hc2cf_10) (planner *p) {
|
Chris@10
|
499 X(khc2c_register) (p, hc2cf_10, &desc, HC2C_VIA_RDFT);
|
Chris@10
|
500 }
|
Chris@10
|
501 #endif /* HAVE_FMA */
|