1 | SUBROUTINE SRTM_TAUMOL29 & |
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2 | & ( KIDIA , KFDIA , KLEV,& |
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3 | & P_FAC00 , P_FAC01 , P_FAC10 , P_FAC11,& |
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4 | & K_JP , K_JT , K_JT1,& |
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5 | & P_COLH2O , P_COLCO2 , P_COLMOL,& |
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6 | & K_LAYTROP , P_SELFFAC, P_SELFFRAC, K_INDSELF , P_FORFAC, P_FORFRAC, K_INDFOR,& |
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7 | & P_SFLUXZEN, P_TAUG , P_TAUR , PRMU0 & |
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8 | & ) |
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9 | |
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10 | ! Written by Eli J. Mlawer, Atmospheric & Environmental Research. |
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11 | |
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12 | ! BAND 29: 820-2600 cm-1 (low - H2O; high - CO2) |
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13 | |
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14 | ! Modifications |
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15 | ! M.Hamrud 01-Oct-2003 CY28 Cleaning |
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16 | |
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17 | ! JJMorcrette 2002-10-03 adapted to ECMWF environment |
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18 | ! D.Salmond 31-Oct-2007 Vector version in the style of RRTM from Meteo France & NEC |
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19 | ! JJMorcrette 20110610 Flexible configuration for number of g-points |
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20 | |
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21 | USE PARKIND1 , ONLY : JPIM, JPRB |
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22 | USE YOMHOOK , ONLY : LHOOK, DR_HOOK |
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23 | USE PARSRTM , ONLY : JPG |
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24 | USE YOESRTM , ONLY : NG29 |
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25 | USE YOESRTA29, ONLY : ABSA, ABSB, FORREFC, SELFREFC, SFLUXREFC, & |
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26 | & ABSH2OC, ABSCO2C, RAYL, LAYREFFR |
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27 | USE YOESRTWN , ONLY : NSPA, NSPB |
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28 | |
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29 | IMPLICIT NONE |
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30 | |
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31 | !-- Output |
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32 | INTEGER(KIND=JPIM),INTENT(IN) :: KIDIA, KFDIA |
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33 | INTEGER(KIND=JPIM),INTENT(IN) :: KLEV |
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34 | REAL(KIND=JPRB) ,INTENT(IN) :: P_FAC00(KIDIA:KFDIA,KLEV) |
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35 | REAL(KIND=JPRB) ,INTENT(IN) :: P_FAC01(KIDIA:KFDIA,KLEV) |
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36 | REAL(KIND=JPRB) ,INTENT(IN) :: P_FAC10(KIDIA:KFDIA,KLEV) |
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37 | REAL(KIND=JPRB) ,INTENT(IN) :: P_FAC11(KIDIA:KFDIA,KLEV) |
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38 | INTEGER(KIND=JPIM),INTENT(IN) :: K_JP(KIDIA:KFDIA,KLEV) |
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39 | INTEGER(KIND=JPIM),INTENT(IN) :: K_JT(KIDIA:KFDIA,KLEV) |
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40 | INTEGER(KIND=JPIM),INTENT(IN) :: K_JT1(KIDIA:KFDIA,KLEV) |
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41 | REAL(KIND=JPRB) ,INTENT(IN) :: P_COLH2O(KIDIA:KFDIA,KLEV) |
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42 | REAL(KIND=JPRB) ,INTENT(IN) :: P_COLCO2(KIDIA:KFDIA,KLEV) |
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43 | REAL(KIND=JPRB) ,INTENT(IN) :: P_COLMOL(KIDIA:KFDIA,KLEV) |
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44 | INTEGER(KIND=JPIM),INTENT(IN) :: K_LAYTROP(KIDIA:KFDIA) |
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45 | REAL(KIND=JPRB) ,INTENT(IN) :: P_SELFFAC(KIDIA:KFDIA,KLEV) |
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46 | REAL(KIND=JPRB) ,INTENT(IN) :: P_SELFFRAC(KIDIA:KFDIA,KLEV) |
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47 | INTEGER(KIND=JPIM),INTENT(IN) :: K_INDSELF(KIDIA:KFDIA,KLEV) |
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48 | REAL(KIND=JPRB) ,INTENT(IN) :: P_FORFAC(KIDIA:KFDIA,KLEV) |
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49 | REAL(KIND=JPRB) ,INTENT(IN) :: P_FORFRAC(KIDIA:KFDIA,KLEV) |
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50 | INTEGER(KIND=JPIM),INTENT(IN) :: K_INDFOR(KIDIA:KFDIA,KLEV) |
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51 | |
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52 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_SFLUXZEN(KIDIA:KFDIA,JPG) |
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53 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_TAUG(KIDIA:KFDIA,KLEV,JPG) |
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54 | REAL(KIND=JPRB) ,INTENT(OUT) :: P_TAUR(KIDIA:KFDIA,KLEV,JPG) |
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55 | REAL(KIND=JPRB) ,INTENT(IN) :: PRMU0(KIDIA:KFDIA) |
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56 | !- from INTFAC |
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57 | !- from INTIND |
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58 | !- from PRECISE |
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59 | !- from PROFDATA |
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60 | !- from SELF |
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61 | !-- from FOREIGN |
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62 | INTEGER(KIND=JPIM) :: IG, IND0, IND1, INDS, INDF, I_LAY, I_LAYSOLFR(KIDIA:KFDIA), I_NLAYERS, IPLON |
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63 | |
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64 | REAL(KIND=JPRB) :: & |
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65 | & Z_TAURAY |
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66 | REAL(KIND=JPRB) :: ZHOOK_HANDLE |
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67 | |
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68 | ASSOCIATE(NFLEVG=>KLEV) |
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69 | IF (LHOOK) CALL DR_HOOK('SRTM_TAUMOL29',0,ZHOOK_HANDLE) |
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70 | |
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71 | I_NLAYERS = KLEV |
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72 | |
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73 | ! Compute the optical depth by interpolating in ln(pressure), |
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74 | ! temperature, and appropriate species. Below LAYTROP, the water |
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75 | ! vapor self-continuum is interpolated (in temperature) separately. |
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76 | |
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77 | DO I_LAY = 1, I_NLAYERS |
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78 | DO IPLON = KIDIA, KFDIA |
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79 | IF (PRMU0(IPLON) > 0.0_JPRB) THEN |
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80 | IF (I_LAY <= K_LAYTROP(IPLON)) THEN |
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81 | IND0 = ((K_JP(IPLON,I_LAY)-1)*5+(K_JT(IPLON,I_LAY)-1))*NSPA(29) + 1 |
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82 | IND1 = (K_JP(IPLON,I_LAY)*5+(K_JT1(IPLON,I_LAY)-1))*NSPA(29) + 1 |
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83 | INDS = K_INDSELF(IPLON,I_LAY) |
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84 | INDF = K_INDFOR(IPLON,I_LAY) |
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85 | Z_TAURAY = P_COLMOL(IPLON,I_LAY) * RAYL |
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86 | |
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87 | ! DO IG = 1, NG(29) |
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88 | !CDIR UNROLL=NG29 |
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89 | DO IG = 1, NG29 |
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90 | P_TAUG(IPLON,I_LAY,IG) = P_COLH2O(IPLON,I_LAY) * & |
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91 | & ((P_FAC00(IPLON,I_LAY) * ABSA(IND0,IG) + & |
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92 | & P_FAC10(IPLON,I_LAY) * ABSA(IND0+1,IG) + & |
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93 | & P_FAC01(IPLON,I_LAY) * ABSA(IND1,IG) + & |
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94 | & P_FAC11(IPLON,I_LAY) * ABSA(IND1+1,IG)) + & |
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95 | & P_SELFFAC(IPLON,I_LAY) * (SELFREFC(INDS,IG) + & |
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96 | & P_SELFFRAC(IPLON,I_LAY) * & |
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97 | & (SELFREFC(INDS+1,IG) - SELFREFC(INDS,IG))) + & |
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98 | & P_FORFAC(IPLON,I_LAY) * (FORREFC(INDF,IG) + & |
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99 | & P_FORFRAC(IPLON,I_LAY) * & |
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100 | & (FORREFC(INDF+1,IG) - FORREFC(INDF,IG)))) & |
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101 | & + P_COLCO2(IPLON,I_LAY) * ABSCO2C(IG) |
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102 | ! & + TAURAY & |
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103 | ! SSA(LAY,IG) = TAURAY/TAUG(LAY,IG) |
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104 | P_TAUR(IPLON,I_LAY,IG) = Z_TAURAY |
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105 | ENDDO |
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106 | ENDIF |
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107 | ENDIF |
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108 | ENDDO |
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109 | ENDDO |
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110 | |
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111 | I_LAYSOLFR(:) = I_NLAYERS |
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112 | |
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113 | DO I_LAY = 1, I_NLAYERS |
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114 | DO IPLON = KIDIA, KFDIA |
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115 | IF (PRMU0(IPLON) > 0.0_JPRB) THEN |
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116 | IF (I_LAY >= K_LAYTROP(IPLON)+1) THEN |
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117 | IF (K_JP(IPLON,I_LAY-1) < LAYREFFR .AND. K_JP(IPLON,I_LAY) >= LAYREFFR) & |
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118 | & I_LAYSOLFR(IPLON) = I_LAY |
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119 | IND0 = ((K_JP(IPLON,I_LAY)-13)*5+(K_JT(IPLON,I_LAY)-1))*NSPB(29) + 1 |
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120 | IND1 = ((K_JP(IPLON,I_LAY)-12)*5+(K_JT1(IPLON,I_LAY)-1))*NSPB(29) + 1 |
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121 | Z_TAURAY = P_COLMOL(IPLON,I_LAY) * RAYL |
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122 | |
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123 | ! DO IG = 1, NG(29) |
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124 | !CDIR UNROLL=NG29 |
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125 | DO IG = 1 , NG29 |
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126 | P_TAUG(IPLON,I_LAY,IG) = P_COLCO2(IPLON,I_LAY) * & |
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127 | & (P_FAC00(IPLON,I_LAY) * ABSB(IND0,IG) + & |
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128 | & P_FAC10(IPLON,I_LAY) * ABSB(IND0+1,IG) + & |
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129 | & P_FAC01(IPLON,I_LAY) * ABSB(IND1,IG) + & |
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130 | & P_FAC11(IPLON,I_LAY) * ABSB(IND1+1,IG)) & |
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131 | & + P_COLH2O(IPLON,I_LAY) * ABSH2OC(IG) |
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132 | ! & + TAURAY |
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133 | ! SSA(LAY,IG) = TAURAY/TAUG(LAY,IG) |
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134 | IF (I_LAY == I_LAYSOLFR(IPLON)) P_SFLUXZEN(IPLON,IG) = SFLUXREFC(IG) |
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135 | P_TAUR(IPLON,I_LAY,IG) = Z_TAURAY |
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136 | ENDDO |
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137 | ENDIF |
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138 | ENDIF |
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139 | ENDDO |
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140 | ENDDO |
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141 | |
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142 | !----------------------------------------------------------------------- |
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143 | IF (LHOOK) CALL DR_HOOK('SRTM_TAUMOL29',1,ZHOOK_HANDLE) |
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144 | END ASSOCIATE |
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145 | END SUBROUTINE SRTM_TAUMOL29 |
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