1 | module tpindex_mod |
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2 | |
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3 | implicit none |
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4 | |
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5 | contains |
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6 | |
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7 | subroutine tpindex(pw,tw,qvar,pref,tref,wrefvar,LCOEF,MT,MP, |
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8 | & NVAR,wratio) |
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9 | |
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10 | !================================================================== |
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11 | ! |
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12 | ! Purpose |
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13 | ! ------- |
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14 | ! Interpolate K-coefficients to the given P,T and Qvar values. |
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15 | ! |
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16 | ! Notes |
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17 | ! ----- |
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18 | ! The interpolation is the usual one in two dimensions given |
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19 | ! in "Numerical Recipes", where the "X" are P, the "Y" are |
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20 | ! T, and the F(X,Y) are the N2 K-coefficients. |
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21 | ! |
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22 | ! The interpolating box is: |
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23 | ! |
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24 | ! (PL,TU) (PR,TU) |
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25 | ! |
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26 | ! (TW,PW) |
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27 | ! |
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28 | ! |
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29 | ! (PL,TL) (PR,TL) |
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30 | ! |
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31 | ! PL - Pressure left |
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32 | ! PR - Pressure right |
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33 | ! TL - Temperature lower |
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34 | ! TU - Temperature upper |
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35 | ! PW - Pressure wanted |
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36 | ! TW - Temperature wanted |
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37 | ! |
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38 | ! Inputs |
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39 | ! ------ |
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40 | ! PW - The pressure to interpolate to |
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41 | ! TW - The temperature to interpolate to |
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42 | ! Qvar - The abundance to interpolate to |
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43 | ! Pref - The tabulated (log) pressure grid |
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44 | ! Tref - The tabulated temperature grid |
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45 | ! WREFVAR - The tabulated abundance grid |
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46 | ! |
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47 | ! Outputs |
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48 | ! ------- |
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49 | ! MT - Temperature index (bottom left temperature) |
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50 | ! of bounding box |
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51 | ! MP - Pressure index (bottom left pressure) |
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52 | ! of bounding box |
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53 | ! NVAR - index (bottom left ) |
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54 | ! of bounding box |
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55 | ! LCOEF(4) - Interpolation coefficients |
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56 | ! WRATIO - weight for the interpolation of abundance |
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57 | ! |
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58 | ! Authors |
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59 | ! ------- |
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60 | ! Adapted from the NASA Ames code by R. Wordsworth (2009) |
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61 | ! |
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62 | !================================================================== |
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63 | |
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64 | use radinc_h, only: L_PINT, L_NTREF, L_REFVAR |
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65 | |
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66 | implicit none |
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67 | |
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68 | REAL,INTENT(IN) :: Tref(L_NTREF) |
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69 | REAL,INTENT(IN) :: pref(L_PINT) |
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70 | REAL,INTENT(IN) :: wrefvar(L_REFVAR) |
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71 | REAL,INTENT(IN) :: PW, TW, Qvar |
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72 | |
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73 | INTEGER,INTENT(OUT) :: MT, MP, NVAR |
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74 | REAL,INTENT(OUT) :: LCOEF(4), wratio |
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75 | |
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76 | INTEGER :: N |
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77 | REAL :: PWL ! local value for log10(PW) |
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78 | REAL :: TWL ! local value for TW |
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79 | REAL :: T ! linear interpolation weight along log(pressure) |
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80 | REAL :: U ! linear interpolation weight along temperature |
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81 | |
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82 | ! 1. For the interpolation along temperature |
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83 | ! Get the upper and lower temperature grid indicies that bound the |
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84 | ! requested temperature. If the sought temperature is below |
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85 | ! the T-grid minimum, assume that lower value. If the sought temperature |
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86 | ! is above the T-grid maximum, assume that maximum value. |
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87 | ! TW : temperature to interpolate to |
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88 | ! TREF : reference temperature array |
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89 | ! MT : index of TREF for (lower) bounding temperature |
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90 | ! U : weight for interpolation in temperature |
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91 | |
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92 | TWL = TW |
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93 | |
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94 | IF(TWL.LT.TREF(1)) THEN |
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95 | ! Below lowest tabulated temperature |
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96 | MT = 1 |
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97 | TWL=TREF(1)*1.00 |
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98 | ELSEIF(TWL.GE.TREF(L_NTREF)) THEN |
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99 | ! Above highest tabulated temperature |
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100 | MT=L_NTREF-1 |
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101 | TWL = TREF(L_NTREF)*1.00 |
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102 | ELSE |
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103 | ! Regular case, find encompassing tabulated temperatures |
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104 | do n=1,L_NTREF-1 |
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105 | IF (TWL.GE.TREF(N) .and. TWL.LT.TREF(N+1)) THEN |
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106 | MT = n |
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107 | EXIT |
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108 | END IF |
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109 | END DO |
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110 | |
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111 | END IF |
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112 | |
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113 | ! weight for the temperature interpolation |
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114 | U = (TWL-TREF(MT))/(TREF(MT+1)-TREF(MT)) |
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115 | |
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116 | ! 2. For interpolation along pressure |
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117 | ! Get the upper and lower pressure grid indicies that bound the |
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118 | ! requested pressure. If the sought pressure is below |
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119 | ! the P-grid minimum, assume that lower value. If the sought pressure |
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120 | ! is above the P-grid maximum, assume that maximum value. |
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121 | |
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122 | PWL = log10(PW) |
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123 | |
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124 | IF(PWL.LT.PREF(1)) THEN |
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125 | ! Below lowest tabulated pressure |
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126 | MP = 1 |
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127 | PWL=Pref(1)*1.00 |
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128 | ELSEIF(PWL.GE.PREF(L_PINT)) THEN |
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129 | ! Above highest tabulated pressure |
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130 | MP = L_PINT-1 |
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131 | PWL = PREF(L_PINT)*1.00 |
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132 | ELSE |
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133 | ! Regular case, find encompassing tabulated pressures |
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134 | do n=1,L_PINT-1 |
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135 | IF (PWL.GE.PREF(N) .and. PWL.LT.PREF(N+1)) THEN |
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136 | MP = n |
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137 | EXIT |
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138 | END IF |
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139 | END DO |
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140 | |
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141 | END IF |
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142 | |
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143 | ! weight for the pressure interpolation |
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144 | T = (PWL-PREF(MP))/(PREF(MP+1)-PREF(MP)) |
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145 | |
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146 | ! Build the interpolation coefficients (bilinear in temperature-log(pressure)) |
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147 | LCOEF(1) = (1.0-T)*(1.0-U) |
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148 | LCOEF(2) = T*(1.0-U) |
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149 | LCOEF(3) = T*U |
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150 | LCOEF(4) = (1.0-T)*U |
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151 | |
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152 | ! 3. For interpolation along abundances |
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153 | ! Get the indicies for abundance of the varying species. There are 10 sets of |
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154 | ! k-coefficients with differing amounts of variable vs. constant gas. |
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155 | |
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156 | IF(QVAR.LE.WREFVAR(1)) THEN |
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157 | ! Below lowest tabulated abundance |
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158 | NVAR = 1 |
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159 | WRATIO = 0.0D0 ! put all the weight on the first point |
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160 | ELSEIF(QVAR.GE.WREFVAR(L_REFVAR)) THEN |
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161 | ! Above highest tabulated abundance |
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162 | NVAR = L_REFVAR-1 ! TB16 in order to not oversize NVAr when doing |
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163 | !NVAR+1 |
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164 | WRATIO = 1.00D0 ! put all the weight on the last point |
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165 | ELSE |
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166 | ! Regular case, find encompassing tabulated abundances |
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167 | ! and compute corresponding weight |
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168 | DO N=2,L_REFVAR |
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169 | IF(QVAR.GE.WREFVAR(N-1) .and. QVAR.LT.WREFVAR(N)) THEN |
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170 | NVAR = N-1 |
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171 | WRATIO = (QVAR - WREFVAR(N-1))/(WREFVAR(N) - WREFVAR(N-1)) |
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172 | EXIT |
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173 | END IF |
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174 | END DO |
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175 | END IF |
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176 | |
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177 | end subroutine tpindex |
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178 | |
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179 | end module tpindex_mod |
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180 | |
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