| 1 | ###################################################################### | 
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| 2 | #### Script de trace de P(k) en temperature , effet de bruit, etc #### | 
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| 3 | ###     Fev - Avril 2008 ,  BAORadio/Reza | 
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| 4 | ###  Tout est dans ce script piapp + fichier de donnees PPF cmvhpkz.ppf | 
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| 5 | ## > lancer spiapp | 
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| 6 | ## > exec anapkn.pic | 
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| 7 | ## > Faire copier/coller des commandes a la fin, ds script xxtoto | 
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| 8 | ###################################################################### | 
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| 9 |  | 
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| 10 | ##1 / On ouvre le fichier extrait d'un PPF fait par SimLSS (cmv) | 
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| 11 | delobjs * | 
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| 12 | openppf cmvhpkz.ppf | 
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| 13 | set gdz 1. | 
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| 14 | set k x | 
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| 15 | set kk pow(10.,x) | 
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| 16 |  | 
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| 17 | setaxesatt 'font=times,bold,16 fixedfontsize' | 
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| 18 |  | 
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| 19 |  | 
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| 20 |  | 
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| 21 | #  --- Cosmologie WMAP , O_L ~ 0.7 O_m ~ 0.25  H0 = 0.7 x100 km/s/Mpc | 
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| 22 | Om = 0.25 | 
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| 23 | OL = 0.7 | 
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| 24 | #  ====> On se met a z = 0.5 , lambda ~ 0.315 , nu ~ 946 MHz  (spectre P(k) du fichier cmvobserv3d.ppf) | 
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| 25 | z = 0.5 | 
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| 26 | # On considere une fraction de HI (HI/Baryon) = 0.02 | 
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| 27 | fHI = 0.020/0.1 | 
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| 28 |  | 
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| 29 | #################################################################### | 
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| 30 | ## Script pour calcul du coefficient de conversion P(k)-masse en P(k) temperature en mK^2 | 
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| 31 | defscript convpk2t21 '  --> calcul le coefficient de conversion P(k) en P(k)_temperature mK^2' | 
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| 32 | cgeom = (1+$z)*(1+$z)/sqrt($OL+pow((1+$z),3.)*$Om) | 
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| 33 | cct21 = 0.57*$cgeom*$fHI | 
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| 34 | cct21 = $cct21*$cct21 | 
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| 35 | echo "----  cct21 (NoFactCroiss)= $cct21" | 
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| 36 | #  On approxime le facteur de croissance lineaire au carre par | 
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| 37 | #  [(1+0.5)/(1+z)]^2  --> erreur ~ 10% | 
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| 38 | cct21 = $cct21*pow(1.5/(1+$z),2) | 
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| 39 | echo "---- Conv P(k)->Temperature mK^2 : cct21= $cct21" | 
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| 40 | endscript | 
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| 41 |  | 
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| 42 | # On execute ce script pour calculer cct21 a z=0.5 | 
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| 43 | convpk2t21 | 
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| 44 |  | 
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| 45 | # A z = 0.5 , DA = 1280 Mpc  (ComovDA = 1920 Mpc) , H ~ 88 km/s/Mpc | 
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| 46 | # A z = 1 , DA = 1700 Mpc  (ComovDA = 3400 Mpc) , H ~ 116 km/s/Mpc | 
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| 47 | #  10 arcmin -> l=5.58 Mpc , k=2 pi/l= 1.1 | 
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| 48 | #  1 deg = 60 arcmin -> l=55.8 Mpc , k=2 pi/l= 0.11 | 
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| 49 | #  5 deg = 300 arcmin -> l=279 Mpc , k ~ 0.02 | 
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| 50 | Hz05 = 88 | 
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| 51 | H = 88 | 
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| 52 | DAz05 = 1920 | 
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| 53 | DA = 1920 | 
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| 54 |  | 
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| 55 | ##  ---- VOL1,VOL2,VOL3 | 
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| 56 | ##  VOL0: 10deg x 10deg x Delta_z=0.2 : 335 x 335 x 680 Mpc^3 = 76 10^6 Mpc^3 | 
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| 57 | ##  VOL1: 20deg x 20deg x Delta_z=0.2 : VOL1 = 300 10^6 Mpc^3 | 
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| 58 | ##  VOL2: 360deg x 10deg x Delta_z=0.2 : VOL2 = 2700 10^6 Mpc^3 | 
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| 59 | ##  VOL3: 360deg x 30deg x Delta_z=0.2 : VOL3 = 10800 10^6 Mpc^3 | 
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| 60 | ##  VOL4: 40deg x 40deg x Delta_z=0.2 : VOL3 = 1200 10^6 Mpc^3 | 
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| 61 | set angcov ( '20x20 deg^2' '360x10 deg^2' '360x30 deg^2' '40x40 deg^2' ) | 
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| 62 | VOL0 = 76e6 | 
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| 63 | VOL1 = 300e6 | 
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| 64 | VOL2 = 2700e6 | 
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| 65 | VOL3 = 10800e6 | 
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| 66 | VOL4 = 1200e6 | 
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| 67 |  | 
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| 68 |  | 
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| 69 | ## ----- Les antennes , environ 15x15 ~ 225-250 antennes elementaires | 
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| 70 | #  On considere des reflecteurs de ~ 7-8 metres de diametres, S~40 m^2 | 
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| 71 | #  Ou 400 antennes de D~5 metres | 
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| 72 | #  S_totale ~ 10 000 m^2  , reparties sur ~ 200mx200m , filling factor ~ 0.25 | 
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| 73 | #  FOV instantane ~ 2.5 degres de diametre  (pour D~6-7 m) | 
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| 74 | #  FOV instantane ~ 4.3 x 4.3 degres^2 (pour D~5 m) | 
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| 75 | #  Resolution ~ 0.31/200 -> ~ 5 arcmin | 
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| 76 | #  VolumePixel ~ 3 Mpc x 3 Mpc x 4 Mpc ~ 36 Mpc^3 | 
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| 77 | vpixz05 = 50 | 
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| 78 | vpix = 50 | 
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| 79 | #  kappa ~ (1/fill_factor)^2 | 
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| 80 | kappa = 25 | 
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| 81 |  | 
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| 82 | #  Setup sur 200mx200m , 10000 m^2 | 
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| 83 | defscript setup1 | 
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| 84 | vpixz05 = 36 | 
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| 85 | vpix = 36 | 
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| 86 | kappa = 200*200/10000 | 
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| 87 | kappa = $kappa*$kappa | 
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| 88 | echo "setup-1: VPix=$vpix  Kappa=$kappa" | 
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| 89 | endscript | 
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| 90 | #  Setup sur 300mx300m , 10000 m^2 | 
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| 91 | defscript setup2 | 
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| 92 | vpixz05 = 16 | 
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| 93 | vpix = 16 | 
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| 94 | kappa = 300*300/10000 | 
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| 95 | kappa = $kappa*$kappa | 
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| 96 | echo "setup-2: VPix=$vpix  Kappa=$kappa" | 
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| 97 | endscript | 
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| 98 |  | 
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| 99 | #  Setup sur 400mx400m , 20000 m^2 | 
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| 100 | defscript setup3 | 
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| 101 | vpixz05 = 16 | 
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| 102 | vpix = 16 | 
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| 103 | kappa = 400*400/20000 | 
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| 104 | kappa = $kappa*$kappa | 
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| 105 | echo "setup-3: VPix=$vpix  Kappa=$kappa" | 
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| 106 | endscript | 
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| 107 |  | 
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| 108 | #  Setup 64 x D=5m sur 100mx100m , 10000 m^2 | 
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| 109 | defscript setup5 | 
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| 110 | vpixz05 = 100 | 
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| 111 | vpix = 100 | 
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| 112 | kappa = 100*100/1200 | 
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| 113 | kappa = $kappa*$kappa | 
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| 114 | echo "setup-5: VPix=$vpix  Kappa=$kappa" | 
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| 115 | endscript | 
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| 116 |  | 
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| 117 |  | 
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| 118 | ## delta k pour le calcul du nombre de modes, correspond a ~ l=5m/lambda / DA | 
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| 119 | delkz05 = 0.01 | 
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| 120 | delk = 0.01 | 
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| 121 |  | 
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| 122 |  | 
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| 123 | #  --- Temps d'integration  a z=0.5 avec FOV=4x4 degres^2  (D=5m) | 
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| 124 | #  120 jours pour VOl0 en ~ 7 passes (7 couvertures elementaires) | 
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| 125 | #  360 jours pour VOl2 en ~ 16x7 passes (225 couvertures elementaires) | 
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| 126 | #  360 jours pour VOl1 en ~ 4x7 passes (28 couvertures elementaires) | 
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| 127 | #  360 jours pour VOl2 en ~ 90x3 passes (270 couvertures elementaires) | 
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| 128 | #  360 jours pour VOl3 en ~ 90x9 passes (810 couvertures elementaires) | 
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| 129 |  | 
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| 130 | set ndays ( '360 days' '360 days'  '360 days' '360 days' ) | 
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| 131 | TINT1 = 1.1e6 | 
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| 132 | TINT2 = 1.1e5 | 
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| 133 | TINT3 = 3.8e4 | 
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| 134 | TINT4 = 1.e5 | 
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| 135 |  | 
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| 136 | #  Bruit Tsys = 100 K = 10^5 mK | 
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| 137 | TSYS = 1e5 | 
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| 138 | #  Bruit Tsys = 50 K = 5.10^4 mK | 
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| 139 | TSYS = 5e4 | 
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| 140 |  | 
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| 141 | DELNU = 1.e6 | 
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| 142 |  | 
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| 143 | ############################################################# | 
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| 144 | ### Setup Nancay multi-beam | 
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| 145 | defscript setupnancaymb ' --> Setup Nancay multi-beam ' | 
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| 146 | #  4x22 arcmin @ 1420 MHz (21 cm) | 
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| 147 | #  6x33 arcmin^2 -> 3.4 x 18.5 Mpc @ z=0.5 (1920 Mpc) | 
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| 148 | vpixz05 = 250 | 
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| 149 | vpix = 250 | 
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| 150 | #  kappa ~ (1/fill_factor)^2 | 
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| 151 | kappa = 1 | 
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| 152 | #  FOV ~ 5 deg^2  (10degx30') @ z=0.5 | 
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| 153 | FOV = 5 | 
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| 154 | echo "setup-Nancay-MB: VPix=$vpix  Kappa=$kappa" | 
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| 155 | TSYS = 200.e3 | 
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| 156 | TINT1 = 4.e5 | 
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| 157 | TINT2 = 1.e5 | 
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| 158 | TINT3 = 0.25e5 | 
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| 159 | TINT4 = 0.6e4 | 
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| 160 | set ndays ( '60 days' '60 days'  '60 days' '60 days' ) | 
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| 161 | set vols ( $VOL1 $VOL2 $VOL3 ) | 
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| 162 | set tints ( $TINT1 $TINT2 $TINT3 ) | 
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| 163 | endscript | 
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| 164 |  | 
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| 165 | # Definition tableau de volumes, couleurs ... | 
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| 166 | set vols ( $VOL1 $VOL2 $VOL3 ) | 
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| 167 | set tints ( $TINT1 $TINT2 $TINT3 ) | 
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| 168 | set cols ( red orange blue ) | 
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| 169 |  | 
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| 170 | ############################################################# | 
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| 171 | ### Script de scaling des quantites avec z | 
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| 172 | defscript scalewz ' Scale with z , Usage scalewz z DA H TimeFac' | 
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| 173 | if ( $# < 5 ) then | 
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| 174 | echo ' scalewz/error, Usage scalewz z DA H TimeFac' | 
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| 175 | endif | 
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| 176 | z = $1 | 
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| 177 | DA = $2 | 
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| 178 | H = $3 | 
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| 179 | timfac = $4 | 
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| 180 | vfac = ($DA/$DAz05)*($DA/$DAz05)*($H/$Hz05) | 
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| 181 | zfac = (1+$z)/1.5 | 
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| 182 | vpix = $vpixz05*$vfac*$zfac*$zfac | 
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| 183 | delk = $delkz05*$zfac | 
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| 184 | set vols ( $VOL1 $VOL2 $VOL3 ) | 
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| 185 | set tints ( $TINT1 $TINT2 $TINT3 ) | 
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| 186 | for i 0:3 | 
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| 187 | vols[i] = $vols[i]*$vfac | 
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| 188 | tints[i] = $tints[i]*$zfac*$zfac*$timfac | 
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| 189 | end | 
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| 190 | convpk2t21 | 
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| 191 | echo "ScaleZ/Info: z=$z DA=$DA VPix=$vpix DelK=$delk" | 
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| 192 | echo "ScaleZ/Info VOLS= " $vols | 
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| 193 | echo "ScaleZ/Info TINTS= " $tints | 
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| 194 | endscript | 
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| 195 |  | 
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| 196 |  | 
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| 197 | ############################################################# | 
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| 198 | ### Script de calcul de PNOISE | 
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| 199 | defscript pnoise ' --> Calcul de PNOISE , appel pnoise tint' | 
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| 200 | tint = $1 | 
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| 201 | PNOISE = $kappa*$TSYS*$TSYS*$vpix/($tint*$DELNU) | 
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| 202 | echo " --pnoise tint= $tint --> PNOISE= $PNOISE" | 
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| 203 | endscript | 
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| 204 |  | 
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| 205 |  | 
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| 206 |  | 
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| 207 | ############################################################# | 
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| 208 | ### Script de calcul de coefficient de conversion P/k en sigma[P(k)] | 
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| 209 | defscript csigpk ' --> Calcul de Sigma_P(k) = P/k * $CSPK  ( appel csigpk VolSurvey)' | 
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| 210 | vsurv = $1 | 
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| 211 | CSPK = sqrt(4*Pi*Pi/($delk*$vsurv)) | 
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| 212 | echo " --csigpk V_survey= $vsurv --> CSPK= $CSPK" | 
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| 213 | endscript | 
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| 214 |  | 
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| 215 | ############################################################# | 
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| 216 | ### Script de calcul de la valeur de k pour Deltax = 10,50,100 m @ z donne | 
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| 217 | defscript kvalfdx ' --> Calcul de k fonction de x' | 
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| 218 | set lesdx ( 5 10 20 50 100 ) | 
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| 219 | lambdaz = 0.21*(1+$z) | 
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| 220 | set lesk ( 1 1 1 1 1 ) | 
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| 221 | for i 0:$#lesdx | 
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| 222 | lesk[i] = 2*Pi*$lesdx[i]/$DA/$lambdaz | 
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| 223 | end | 
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| 224 | echo "---kvalfdx/ lesdx=" $lesdx | 
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| 225 | echo "---kvalfdx/ lesk=" $lesk | 
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| 226 | endscript | 
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| 227 | # On l'execute | 
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| 228 | kvalfdx | 
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| 229 |  | 
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| 230 | ############################################################# | 
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| 231 | ###   Trace de P(k) | 
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| 232 | defscript showpkt  '  Affichage P(k) et P(k) en Temp mK^2 ' | 
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| 233 | zone 1 2 | 
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| 234 | y1 = 500 | 
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| 235 | y2 = 9e4 | 
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| 236 | xyl = "xylimits=0.01,0.5,$y1,$y2 logx logy minorticks" | 
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| 237 | n/plot hpkz.val%$kk ! ! "notit nsta connectpoints black $xyl line=solid,2" | 
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| 238 | setaxelabels 'k (Mpc^-1)   h=0.7' 'P(k) ' 'font=times,bolditalic,16' | 
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| 239 | settitle 'Mass power spectrum h=0.7, z=0.5' ' '  'font=times,bolditalic,16' | 
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| 240 |  | 
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| 241 | y1 = $y1*$cct21 | 
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| 242 | y2 = $y2*$cct21 | 
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| 243 | xyl = "xylimits=0.01,0.5,$y1,$y2 logx logy minorticks" | 
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| 244 | n/plot hpkz.val*${cct21}%$kk ! ! "notit nsta connectpoints black $xyl line=solid,2" | 
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| 245 | setaxelabels 'k (Mpc^-1)   h=0.7' 'P(k)    (mK^2 Mpc^3)' 'font=times,bolditalic,16' | 
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| 246 | settitle 'H_I sky temperature power spectrum (mK^2) , h=0.7, z=0.5' ' '  'font=times,bolditalic,16' | 
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| 247 | endscript | 
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| 248 | #----------------------------- | 
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| 249 |  | 
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| 250 |  | 
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| 251 | ############################################################# | 
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| 252 | ###    Script de trace de Sigma_P(k)/P(k) | 
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| 253 | defscript showspk  ' Trace de Sigma_P(k)/P(k) ( appel showspk n=0..3) ' | 
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| 254 | xyl = "xylimits=0.01,0.5,1.e-3,0.4 logx logy minorticks" | 
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| 255 | set vols ( $VOL1 $VOL2 $VOL3 ) | 
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| 256 | set cols ( red orange blue ) | 
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| 257 | csigpk $vols[0] | 
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| 258 | n/plot hpkz.$CSPK/$kk%$kk ! ! "notit nsta connectpoints $cols[0] $xyl line=solid,2" | 
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| 259 | for i 1:$1 | 
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| 260 | csigpk $vols[i] | 
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| 261 | n/plot hpkz.$CSPK/$kk%$kk ! ! "same nsta connectpoints $cols[i] line=solid,2" | 
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| 262 | end | 
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| 263 |  | 
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| 264 | setaxelabels 'k (Mpc^-1)   h=0.7' 'Sigma_P(k)/P(k)  ' 'font=times,bolditalic,16' | 
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| 265 | settitle 'Relative Sample variance (h=0.7)' ' '  'font=times,bolditalic,16' | 
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| 266 | addline 0.01 0.1 0.4 0.1 'black line=dotted,1 same' | 
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| 267 |  | 
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| 268 | kvalfdx | 
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| 269 | set kcols ( orange turquoise violet gold orange ) | 
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| 270 | for i 0:$#lesk | 
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| 271 | addline $lesk[i] 1.e-3 $lesk[i] 0.4 "$kcols[i] line=dashed,1 same" | 
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| 272 | tx = $lesk[i]*0.9 | 
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| 273 | ty = 0.02 | 
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| 274 | tatt = 'font=times,bolditalic,16 textdirvertup vertcenter horizcenter' | 
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| 275 | addtext $tx $ty " Dist= $lesdx[i] meters " "$kcols[i] $tatt" | 
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| 276 | end | 
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| 277 | endscript | 
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| 278 |  | 
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| 279 | ############################################################# | 
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| 280 | ### Script de trace de P(k) +/- Sigma[P(k) | 
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| 281 | defscript showpk  ' Trace de P(k) avec +/-sigma ( appel showpk n=0..3) ' | 
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| 282 | y1 = 500*$cct21 | 
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| 283 | y2 = 9e4*$cct21 | 
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| 284 | xyl = "xylimits=0.01,0.5,$y1,$y2 logx logy minorticks" | 
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| 285 | n/plot hpkz.val*${cct21}%$kk ! ! "notit nsta connectpoints black $xyl line=solid,2" | 
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| 286 | #  if ( $# > 1 )  then | 
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| 287 | for i 0:$1 | 
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| 288 | csigpk $vols[i] | 
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| 289 | n/plot hpkz.val*${cct21}*(1+$CSPK/$kk)%$kk ! ! "same nstat connectpoints $cols[i] line=solid,1" | 
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| 290 | n/plot hpkz.val*${cct21}*(1-$CSPK/$kk)%$kk ! ! "same nstat connectpoints $cols[i] line=solid,1" | 
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| 291 | end | 
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| 292 | #  endif | 
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| 293 | setaxelabels 'k (Mpc^-1)   h=0.7' 'P(k)    (mK^2 Mpc^3)' 'font=times,bolditalic,16' | 
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| 294 | settitle 'H_I sky temperature power spectrum T21-mk' ' '  'font=times,bolditalic,16' | 
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| 295 | endscript | 
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| 296 |  | 
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| 297 |  | 
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| 298 | ############################################################# | 
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| 299 | ### Script de trace de PNoise superpose a P(k) | 
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| 300 | defscript shownoise  ' Trace de PNOISE ( appel shownoise n=0..3) ' | 
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| 301 | x1 = 0.01 | 
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| 302 | x2 = 0.5 | 
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| 303 | for i 0:$1 | 
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| 304 | pnoise $tints[i] | 
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| 305 | func $PNOISE $x1 $x2 10 "same nstat connectpoints $cols[i] line=dashed,2" | 
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| 306 | tx = 0.1 | 
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| 307 | ty = $PNOISE*1.1 | 
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| 308 | addtext $tx $ty "PNoise $angcov[i] $ndays[i] " "font=times,bolditalic,16 $cols[i]" | 
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| 309 | end | 
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| 310 | #  addtext 0.1 1000 ' PNoise (dashed)' 'font=times,bolditalic,16 red' | 
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| 311 | endscript | 
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| 312 |  | 
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| 313 |  | 
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| 314 | defscript doall | 
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| 315 | showpkt | 
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| 316 | w2ps | 
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| 317 | w2eps pkt.eps | 
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| 318 | sleep 2 | 
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| 319 | showpk 3 | 
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| 320 | shownoise 3 | 
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| 321 | showspk 3 | 
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| 322 | w2ps | 
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| 323 | w2eps pknoise.eps | 
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| 324 | endscript | 
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| 325 |  | 
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| 326 |  | 
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| 327 | defscript dopk | 
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| 328 | showpk 3 | 
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| 329 | shownoise 3 | 
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| 330 | if ( $# > 0 )  then | 
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| 331 | settitle "$1" ' ' 'font=times,bold,16' | 
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| 332 | endif | 
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| 333 | showspk 3 | 
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| 334 | if ( $# > 1 )  then | 
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| 335 | settitle "$2" ' ' 'font=times,bold,16' | 
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| 336 | endif | 
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| 337 | endscript | 
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| 338 |  | 
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| 339 |  | 
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| 340 | defscript xxtoto | 
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| 341 | ## Exemple de commandes | 
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| 342 | newwin 1 2 | 
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| 343 | setup1 | 
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| 344 | scalewz 0.5 1920 88 1 | 
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| 345 | dopk 'P(k), PNoise - mK^2 , Setup-1 z=0.5'  'Relative Sample Variance, z=0.5' | 
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| 346 | ## | 
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| 347 | newwin 1 2 | 
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| 348 | setup1 | 
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| 349 | scalewz 1 3400 115 1 | 
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| 350 | dopk 'P(k), PNoise - mK^2 Mpc^3, Setup-1 z=1.0'   'Relative Sample Variance, z=1.0' | 
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| 351 | ## | 
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| 352 | newwin 1 2 | 
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| 353 | setup1 | 
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| 354 | scalewz 1.5 4540 150 1 | 
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| 355 | dopk 'P(k), PNoise - mK^2 Mpc^3, Setup-1 z=1.5'   'Relative Sample Variance, z=1.5' | 
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| 356 | ## | 
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| 357 | newwin 1 2 | 
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| 358 | setup1 | 
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| 359 | scalewz 2.0 5420 192 1 | 
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| 360 | dopk 'P(k), PNoise - mK^2 Mpc^3, Setup-1 z=2.0'   'Relative Sample Variance, z=2.0' | 
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| 361 | ## | 
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| 362 | newwin 1 2 | 
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| 363 | setup1 | 
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| 364 | scalewz 2.5 6120 237 1 | 
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| 365 | dopk 'P(k), PNoise - mK^2 Mpc^3, Setup-1 z=2.5'   'Relative Sample Variance, z=2.5' | 
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| 366 | ## | 
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| 367 | newwin 1 2 | 
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| 368 | setup2 | 
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| 369 | scalewz 0.5 1920 88 1 | 
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| 370 | dopk 'P(k), PNoise - mK^2 Mpc^3, Setup-2 z=0.5'  'Relative Sample Variance, z=0.5' | 
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| 371 | ## | 
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| 372 | ## | 
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| 373 | newwin 1 2 | 
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| 374 | setup2 | 
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| 375 | scalewz 1 3400 115 1 | 
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| 376 | dopk 'P(k), PNoise - mK^2 Mpc^3, Setup-2 z=1.0' 'Relative Sample Variance, z=1.0' | 
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| 377 | ## | 
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| 378 | newwin 1 2 | 
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| 379 | setup3 | 
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| 380 | scalewz 1 3400 115 1 | 
|---|
| 381 | dopk 'P(k), PNoise - mK^2 Mpc^3, Setup-3 z=1.0'   'Relative Sample Variance, z=1.0' | 
|---|
| 382 | ## | 
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| 383 | newwin 1 2 | 
|---|
| 384 | setup3 | 
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| 385 | scalewz 1.5 4500 150 1 | 
|---|
| 386 | dopk 'P(k), PNoise - mK^2 Mpc^3, Setup-3 z=1.5'  'Relative Sample Variance, z=1.5' | 
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| 387 |  | 
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| 388 | ### Setup Nancay multi-beam | 
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| 389 | newwin 1 2 | 
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| 390 | setupnancaymb | 
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| 391 | scalewz 0.5 1920 88 1 | 
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| 392 | dopk 'P(k), PNoise - mK^2 Mpc^3, Nancay-MultiBeam  z=0.5'  'Relative Sample Variance, z=0.5' | 
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| 393 |  | 
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| 394 | endscript | 
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