| 1 | // Prediction mouvement d'etoiles entre un tour et le suivant... | 
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| 2 | // si TS -> TS + dT, H -> H + dT,    dT=dH | 
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| 3 | // | 
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| 4 | // dz   =  - cos phi sin az dH    (check sign) | 
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| 5 | // daz  = (sin phi - cos az cotg z cos phi) dH    (check sign) | 
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| 6 | // | 
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| 7 | // free parameters = period + phase | 
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| 8 |  | 
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| 9 | #define DIODE_UNUSED_1 3 | 
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| 10 | #define DIODE_UNUSED_2 7 | 
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| 11 |  | 
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| 12 | #include <math.h> | 
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| 13 | #include "ssthandler.h" | 
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| 14 |  | 
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| 15 | SSTHandler::SSTHandler() | 
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| 16 | { | 
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| 17 | diodeHistLength = nb_per_block*2+10; | 
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| 18 | diodeT = new int[diodeHistLength*nb_photo_diodes]; | 
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| 19 | starHistLength = 300; | 
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| 20 | stars = new (vector<star>[starHistLength]); | 
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| 21 | lastBlkNum = -1; | 
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| 22 |  | 
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| 23 | Has2Bars(false); | 
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| 24 | prcTodo=0; | 
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| 25 | } | 
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| 26 |  | 
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| 27 | SSTHandler::SSTHandler(SSTHandler const& x) | 
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| 28 | { | 
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| 29 | diodeHistLength = x.diodeHistLength; | 
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| 30 | diodeT = new int[diodeHistLength*nb_photo_diodes]; | 
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| 31 | memcpy(diodeT, x.diodeT, diodeHistLength*nb_photo_diodes); | 
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| 32 | starHistLength = x.starHistLength; | 
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| 33 | stars = new (vector<star>[starHistLength]); | 
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| 34 | for (int i=0; i<starHistLength; i++) | 
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| 35 | stars[i] = x.stars[i]; | 
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| 36 |  | 
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| 37 | prcTodo    = x.prcTodo; | 
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| 38 | has2bars   = x.has2bars; | 
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| 39 | elecOffset = x.elecOffset; | 
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| 40 | lastBlkNum = x.lastBlkNum; | 
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| 41 | } | 
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| 42 |  | 
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| 43 | SSTHandler& SSTHandler::operator = (SSTHandler const& x) { | 
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| 44 | delete[] stars; | 
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| 45 | delete[] diodeT; | 
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| 46 | diodeHistLength = x.diodeHistLength; | 
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| 47 | diodeT = new int[diodeHistLength*nb_photo_diodes]; | 
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| 48 | memcpy(diodeT, x.diodeT, diodeHistLength*nb_photo_diodes); | 
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| 49 | starHistLength = x.starHistLength; | 
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| 50 | stars = new (vector<star>[starHistLength]); | 
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| 51 | for (int i=0; i<starHistLength; i++) | 
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| 52 | stars[i] = x.stars[i]; | 
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| 53 |  | 
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| 54 | prcTodo    = x.prcTodo; | 
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| 55 | has2bars   = x.has2bars; | 
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| 56 | elecOffset = x.elecOffset; | 
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| 57 | lastBlkNum = x.lastBlkNum; | 
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| 58 |  | 
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| 59 | return *this; | 
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| 60 | } | 
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| 61 |  | 
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| 62 | SSTHandler::~SSTHandler() | 
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| 63 | { | 
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| 64 | delete[] stars; | 
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| 65 | delete[] diodeT; | 
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| 66 | } | 
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| 67 |  | 
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| 68 | void SSTHandler::NeedProcess(int prcMask) | 
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| 69 | { | 
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| 70 | prcTodo |= prcMask; | 
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| 71 | if (prcTodo & findAxis)   prcTodo |= findPeriod; | 
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| 72 | if (prcTodo & findPeriod) prcTodo |= findStars; | 
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| 73 | if (prcTodo & findStars)  prcTodo |= rmveOffset; | 
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| 74 | } | 
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| 75 |  | 
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| 76 | void SSTHandler::Has2Bars(bool has, int eo) | 
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| 77 | { | 
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| 78 | has2bars = has; | 
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| 79 | elecOffset = eo; | 
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| 80 | } | 
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| 81 |  | 
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| 82 | void SSTHandler::ProcessBlock(block_type_sst* blk) | 
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| 83 | { | 
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| 84 | lastBlkNum = numero_block(blk); | 
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| 85 | for (int i = 0; i<nb_per_block*2; i++) { | 
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| 86 | DecodeTMBlock(blk, i, diodeRaw[i]); | 
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| 87 | } | 
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| 88 | if (prcTodo & rmveOffset) { | 
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| 89 | RemoveOffset(); | 
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| 90 | } | 
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| 91 |  | 
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| 92 | } | 
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| 93 |  | 
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| 94 |  | 
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| 95 | void SSTHandler::DecodeTMBlock(block_type_sst* blk, int i, int* diod) | 
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| 96 | { | 
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| 97 | int j; // 0-5 : numero du bloc de 8 diodes | 
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| 98 | int k; // 0-2 : indice du bloc de 4 bits (une diode = 12 bits = 3 blocs de 4 bits) | 
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| 99 | int l; // 0-7 : indice de la diode dans son bloc (8 diodes * 4 bits = 1 mot de 32 bits) | 
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| 100 |  | 
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| 101 | // numero de la diode (0-47) = j*8+l; | 
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| 102 | // indice dans le bloc sst du mot de 32 bits (0-17) = j*3+k; | 
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| 103 | // indice dans mot de 32 bits du premier bit utile = 28-4*l; | 
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| 104 |  | 
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| 105 | for (j=0; j<48; j++) diod[j] = 0; | 
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| 106 |  | 
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| 107 | for (j=0; j<6; j++) | 
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| 108 | for (k=0; k<3; k++) | 
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| 109 | for (l=0; l<8; l++) { | 
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| 110 | long word = blk->sst[i][j*3+k]; | 
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| 111 | word = (word >> (28-4*l)) & 0xF; | 
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| 112 | //printf("diode %d mot %d valeur %d\n", j*8+l, k, word); | 
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| 113 | diod[j*8+l] = (diod[j*8+l] << 4) + word; | 
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| 114 | } | 
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| 115 | } | 
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| 116 |  | 
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| 117 |  | 
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| 118 | void SSTHandler::RemoveOffset() | 
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| 119 | { | 
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| 120 | int j0 = diodeHistLength-(nb_per_block*2); | 
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| 121 |  | 
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| 122 | // Decalage vers la gauche de la taille d'un bloc | 
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| 123 | memcpy(diodeT, diodeT + (nb_per_block*2)*nb_photo_diodes, j0*nb_photo_diodes); | 
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| 124 |  | 
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| 125 | for (int j=0; j<nb_per_block*2; j++) { | 
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| 126 | // suppression des positions non utilisees. 3 et 7 ? | 
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| 127 | for (int i=0; i<DIODE_UNUSED_1; i++) | 
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| 128 | diode(j+j0,i) = diodeRaw[j][i]; | 
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| 129 | for (int i=DIODE_UNUSED_1; i<46; i++) | 
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| 130 | diode(j+j0,i) = diodeRaw[j][ i<DIODE_UNUSED_2-1 ? i+1 : i+2 ]; | 
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| 131 |  | 
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| 132 | // calcul d'un fond sur la rangee. Moyenne clippee. | 
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| 133 | float m = 0; float sig = 1.e10; | 
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| 134 | for (int k=0; k<2; k++) { | 
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| 135 | float s=0; float s2=0; int n=0; | 
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| 136 | for (int i=0; i<46; i++) { | 
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| 137 | if (fabs(diode(j+j0,i)-m)<3*sig+1) { | 
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| 138 | s += diode(j+j0,i); s2 += diode(j+j0,i)*diode(j+j0,i); n++; | 
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| 139 | } | 
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| 140 | } | 
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| 141 | if (n>0) { | 
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| 142 | m = s/n; sig = sqrt(s2/n - m*m); | 
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| 143 | } else { | 
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| 144 | m = 0; break; | 
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| 145 | } | 
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| 146 | } | 
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| 147 | for (int i=0; i<46; i++) | 
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| 148 | diode(j+j0,i) -= m; | 
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| 149 | } | 
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| 150 | } | 
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| 151 |  | 
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| 152 | int SSTHandler::getRawSignal(int imesure, int idiode) // for last block | 
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| 153 | { | 
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| 154 | if (imesure<0 || imesure>=nb_per_block*2 || idiode<0 || idiode>=48) return -99999; | 
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| 155 | return diodeRaw[imesure][idiode]; | 
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| 156 | } | 
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| 157 |  | 
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| 158 | int SSTHandler::getSignal(int imesure, int idiode) // for last block | 
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| 159 | { | 
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| 160 | int j0 = diodeHistLength-(nb_per_block*2); | 
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| 161 | if (imesure+j0<0 || imesure>=nb_per_block*2 || | 
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| 162 | idiode<0 || idiode>=nb_photo_diodes) return -99999; | 
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| 163 | return diode(imesure+j0, idiode); | 
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| 164 | } | 
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| 165 |  | 
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| 166 |  | 
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