1 | #include "racqumem.h"
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2 |
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3 | //----------------------------------------------------------------
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4 | // ---- classes de gestion memoire pour acquisition BAORadio -----
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5 | // LAL - R. Ansari - Juin/Juillet 2008
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6 | //----------------------------------------------------------------
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7 |
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8 | /* --Methode-- */
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9 | RAcqMemZoneMgr::RAcqMemZoneMgr(uint_4 nz, uint_4 np, uint_4 psz)
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10 | : mex(true), nzones(nz), nfibres(1), npaq(np), paqsz(psz), procpaqsz(0), stop_(false), runstate_(MemZR_Running)
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11 | {
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12 | Init();
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13 | }
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14 |
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15 | /* --Methode-- */
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16 | RAcqMemZoneMgr::RAcqMemZoneMgr(uint_4 nzon, uint_4 nfib, uint_4 npaq, uint_4 paqsz, uint_4 procsz)
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17 | : mex(true), nzones(nzon), nfibres(nfib), npaq(npaq), paqsz(paqsz), procpaqsz(procsz),
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18 | stop_(false), runstate_(MemZR_Running)
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19 | {
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20 | Init();
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21 | }
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22 |
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23 | /* --Methode-- */
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24 | void RAcqMemZoneMgr::Init()
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25 | {
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26 | St_MemZ st;
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27 |
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28 | st.serial = 0;
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29 | st.act = (uint_4)MemZA_None;
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30 | st.stat = (uint_4)MemZS_Free;
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31 | for(int k=0; k<6; k++) st.nbact[k] = 0;
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32 | uint_8 mzsz = nfibres*npaq*paqsz;
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33 | uint_8 procmzsz = nfibres*npaq*procpaqsz;
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34 |
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35 | for(unsigned int k=0; k<NbZones(); k++) {
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36 | memzones.push_back(new Byte[mzsz] );
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37 | states.push_back(st);
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38 | if (procmzsz > 0) procmemzones.push_back(new Byte[procmzsz] );
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39 | }
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40 | serial_ = 0;
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41 | SetFinalizedMask();
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42 | }
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43 |
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44 | /* --Methode-- */
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45 | RAcqMemZoneMgr::~RAcqMemZoneMgr()
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46 | {
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47 | for(uint_4 k=0; k<NbZones(); k++) {
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48 | delete[] memzones[k];
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49 | if (procpaqsz > 0) delete[] procmemzones[k];
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50 | }
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51 | }
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52 |
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53 | /* --Methode-- */
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54 | int RAcqMemZoneMgr::FindMemZoneId(MemZaction act)
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55 | // Recherche et renvoie une zone memoire compatible pour effectuer l'operation act
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56 | // Pour act = MemZA_Fill : Zone vide ou satisfaisant la condition mask_finalized_
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57 | // On recherche a chaque fois la zone ayant le plus petit numero de serie
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58 | // cad le numero d'ordre de remplissage
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59 | // Pour ProcA/B/C on attend que la zone avec le plus petit numero soit disponible
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60 |
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61 | {
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62 | int rid = -1;
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63 | if (stop_) return rid;
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64 | if ((act != MemZA_Fill) && (act != MemZA_Save) && (act != MemZA_Proc) &&
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65 | (act != MemZA_ProcA) && (act != MemZA_ProcB) && (act != MemZA_ProcC)) return rid;
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66 | mex.lock();
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67 | uint_8 bestserial = serial_ + 5;
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68 | while ((rid < 0)&&(!stop_)) {
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69 | switch (act) {
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70 | case MemZA_Fill:
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71 | if (rid < 0) for(uint_4 k=0; k<NbZones(); k++) {
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72 | if ((states[k].act == MemZA_None) &&
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73 | ((states[k].stat == MemZS_Free)||((states[k].stat&mask_finalized_)==mask_finalized_) )) {
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74 | if (states[k].serial < bestserial) { rid=k; bestserial=states[k].serial; }
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75 | }
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76 | }
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77 | if (rid >= 0) { states[rid].act = MemZA_Fill; states[rid].stat = MemZS_Free; }
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78 | break;
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79 | case MemZA_Save:
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80 | for(uint_4 k=0; k<NbZones(); k++) {
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81 | if ((states[k].act == MemZA_None) &&
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82 | (states[k].stat & MemZS_Filled) && !(states[k].stat & MemZS_Saved) ) {
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83 | if (states[k].serial < bestserial) { rid=k; bestserial=states[k].serial; }
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84 | }
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85 | }
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86 | if (rid >= 0) states[rid].act = MemZA_Save;
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87 | break;
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88 | case MemZA_Proc:
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89 | for(uint_4 k=0; k<NbZones(); k++) {
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90 | if ((states[k].act == MemZA_None) &&
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91 | (states[k].stat & MemZS_Filled) && !(states[k].stat & MemZS_Proc) ) {
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92 | if (states[k].serial < bestserial) { rid=k; bestserial=states[k].serial; }
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93 | }
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94 | }
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95 | if (rid >= 0) states[rid].act = MemZA_Proc;
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96 | break;
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97 | case MemZA_ProcA:
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98 | for(uint_4 k=0; k<NbZones(); k++) {
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99 | if ((states[k].act == MemZA_None) && (states[k].stat & MemZS_Filled) &&
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100 | !(states[k].stat & MemZS_ProcA) ) {
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101 | if (states[k].serial < bestserial) { rid=k; bestserial=states[k].serial; }
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102 | }
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103 | }
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104 | if (rid >= 0) states[rid].act = MemZA_ProcA;
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105 | break;
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106 | case MemZA_ProcB:
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107 | for(uint_4 k=0; k<NbZones(); k++) {
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108 | if ((states[k].act == MemZA_None) && (states[k].stat & MemZS_Filled) &&
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109 | (states[k].stat & MemZS_ProcA) && !(states[k].stat & MemZS_ProcB) ) {
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110 | if (states[k].serial < bestserial) { rid=k; bestserial=states[k].serial; }
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111 | }
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112 | }
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113 | if (rid >= 0) states[rid].act = MemZA_ProcB;
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114 | break;
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115 | case MemZA_ProcC:
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116 | for(uint_4 k=0; k<NbZones(); k++) {
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117 | if ((states[k].act == MemZA_None) && (states[k].stat & MemZS_Filled) &&
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118 | (states[k].stat & MemZS_ProcB) && !(states[k].stat & MemZS_ProcC) ) {
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119 | if (states[k].serial < bestserial) { rid=k; bestserial=states[k].serial; }
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120 | }
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121 | }
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122 | if (rid >= 0) states[rid].act = MemZA_ProcC;
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123 | break;
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124 | case MemZA_None: // MTQ pour supprimer un warning
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125 | break;
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126 | } // Fin de switch
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127 | if (rid < 0) mex.wait();
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128 | } // Fin de while
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129 | mex.unlock();
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130 | return rid;
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131 | }
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132 |
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133 | /* --Methode-- */
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134 | int RAcqMemZoneMgr::FreeMemZone(int id, MemZStatus st)
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135 | {
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136 | if ((id < 0) || (id >= (int)states.size())) return 1;
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137 | int rc = 0;
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138 | mex.lock();
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139 | switch (st) {
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140 | case MemZS_Free :
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141 | states[id].serial = 0;
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142 | states[id].stat = MemZS_Free;
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143 | states[id].act = MemZA_None;
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144 | break;
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145 | case MemZS_Filled :
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146 | if (states[id].act != MemZA_Fill) rc = 2;
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147 | else states[id].nbact[0]++;
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148 | serial_ ++;
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149 | states[id].serial = serial_;
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150 | states[id].stat |= MemZS_Filled;
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151 | states[id].act = MemZA_None;
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152 | break;
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153 | case MemZS_Saved :
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154 | if (states[id].act != MemZA_Save) rc = 4;
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155 | else states[id].nbact[1]++;
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156 | states[id].stat |= MemZS_Saved;
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157 | states[id].act = MemZA_None;
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158 | break;
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159 | case MemZS_Proc :
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160 | if (states[id].act != MemZA_Proc) rc = 8;
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161 | else states[id].nbact[2]++;
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162 | states[id].stat |= MemZS_Proc;
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163 | states[id].act = MemZA_None;
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164 | break;
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165 | case MemZS_ProcA :
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166 | if (states[id].act != MemZA_ProcA) rc = 16;
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167 | else states[id].nbact[3]++;
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168 | states[id].stat |= MemZS_ProcA;
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169 | states[id].act = MemZA_None;
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170 | break;
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171 | case MemZS_ProcB :
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172 | if (states[id].act != MemZA_ProcB) rc = 32;
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173 | else states[id].nbact[4]++;
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174 | states[id].stat |= MemZS_ProcB;
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175 | states[id].act = MemZA_None;
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176 | break;
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177 | case MemZS_ProcC :
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178 | if (states[id].act != MemZA_ProcC) rc = 64;
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179 | else states[id].nbact[4]++;
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180 | states[id].stat |= MemZS_ProcC;
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181 | states[id].act = MemZA_None;
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182 | break;
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183 | default :
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184 | rc = 128;
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185 | states[id].serial = 0;
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186 | states[id].stat = MemZS_Free;
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187 | states[id].act = MemZA_None;
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188 | break;
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189 | } // Fin de switch
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190 | mex.unlock();
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191 | mex.broadcast();
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192 | return rc;
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193 | }
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194 |
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195 | /* MIS en inline
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196 | Byte* RAcqMemZoneMgr::GetMemZone(int id)
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197 | {
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198 | if ((id < 0) || (id >= memzones.size())) return NULL;
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199 | return memzones[id];
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200 | }
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201 | */
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202 | ostream& RAcqMemZoneMgr::Print(ostream& os)
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203 | {
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204 | os << "RAcqMemZoneMgr::Print() NbZones=" << NbZones() << " PaqSize()=" << PaqSize()
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205 | << " NbPaquets()=" << NbPaquets() << " ZoneSize()=" << ZoneSize() << endl;
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206 | if (ProcPaqSize() > 0)
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207 | cout << " ... With Processed Data Zones ProcPaqSize()=" << ProcPaqSize()
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208 | << " ProcZoneSize()=" << ProcZoneSize() << endl;
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209 | else cout << " ... NO Processed Data Zones" << endl;
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210 | for(uint_4 k=0; k<states.size(); k++)
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211 | os << " [" << k << "] Act=" << states[k].act << " Stat=" << states[k].stat
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212 | << " NbAct[0..5]=" << states[k].nbact[0] << "," << states[k].nbact[1]
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213 | << "," << states[k].nbact[2] << "," << states[k].nbact[3]
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214 | << "," << states[k].nbact[4] << "," << states[k].nbact[5] << endl;
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215 | return os;
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216 | }
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217 |
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218 | void RAcqMemZoneMgr::Stop()
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219 | {
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220 | // cout << "RAcqMemZoneMgr::Stop() ........ STOP BROADCAST" <<endl;
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221 | stop_ = true;
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222 | runstate_ = MemZR_Stopped;
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223 | mex.broadcast();
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224 | }
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