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961 | pj | 1 | /* |
2 | * Project: S.Ha.R.K. |
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3 | * |
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4 | * Coordinators: |
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5 | * Giorgio Buttazzo <giorgio@sssup.it> |
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6 | * Paolo Gai <pj@gandalf.sssup.it> |
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7 | * |
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8 | * Authors : |
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9 | * Giacomo Guidi <giacomo@gandalf.sssup.it> |
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10 | * (see the web pages for full authors list) |
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11 | * |
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12 | * ReTiS Lab (Scuola Superiore S.Anna - Pisa - Italy) |
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13 | * |
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14 | * http://www.sssup.it |
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15 | * http://retis.sssup.it |
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16 | * http://shark.sssup.it |
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17 | */ |
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18 | |||
19 | /* |
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20 | * Copyright (C) 2000,2002 Paolo Gai |
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21 | * |
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22 | * This program is free software; you can redistribute it and/or modify |
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23 | * it under the terms of the GNU General Public License as published by |
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24 | * the Free Software Foundation; either version 2 of the License, or |
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25 | * (at your option) any later version. |
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26 | * |
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27 | * This program is distributed in the hope that it will be useful, |
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28 | * but WITHOUT ANY WARRANTY; without even the implied warranty of |
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29 | * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the |
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30 | * GNU General Public License for more details. |
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31 | * |
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32 | * You should have received a copy of the GNU General Public License |
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33 | * along with this program; if not, write to the Free Software |
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34 | * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA |
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35 | * |
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36 | */ |
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37 | |||
38 | /* Interrupt Driver Module */ |
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39 | |||
40 | #include <intdrive/intdrive/intdrive.h> |
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41 | #include <kernel/model.h> |
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42 | #include <kernel/descr.h> |
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43 | #include <kernel/var.h> |
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44 | #include <kernel/func.h> |
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45 | #include <tracer.h> |
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46 | |||
47 | #include <ll/i386/64bit.h> |
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48 | |||
49 | /*+ Status used in the level +*/ |
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50 | #define INTDRIVE_READY MODULE_STATUS_BASE /*+ - Ready status +*/ |
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51 | #define INTDRIVE_WCET_VIOLATED MODULE_STATUS_BASE+2 /*+ when wcet is finished +*/ |
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52 | #define INTDRIVE_IDLE MODULE_STATUS_BASE+3 /*+ to wait the replenish +*/ |
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53 | #define INTDRIVE_WAIT MODULE_STATUS_BASE+4 /*+ to wait the activation */ |
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54 | |||
55 | //#define INTDRIVE_DEBUG |
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56 | |||
57 | /*+ the level redefinition for the IntDrive +*/ |
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58 | typedef struct { |
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59 | level_des l; /*+ the standard level descriptor +*/ |
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60 | |||
61 | TIME replenish_period; |
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62 | TIME capacity; |
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63 | TIME q_theta; |
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64 | |||
65 | struct timespec act_time; |
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66 | |||
67 | int avail; |
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68 | int replenish_timer; |
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69 | |||
70 | //struct timespec replenish_expires; |
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71 | //int wcet_timer; |
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72 | |||
73 | int act_number; /*+ the activation number +*/ |
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74 | |||
75 | int flags; /*+ the init flags... +*/ |
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76 | |||
77 | bandwidth_t U; /*+ the used bandwidth +*/ |
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78 | |||
79 | } INTDRIVE_level_des; |
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80 | |||
81 | PID INTDRIVE_task = NIL; |
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82 | |||
83 | /* Replenish the capacity */ |
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84 | static void INTDRIVE_timer(void *arg) |
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85 | { |
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86 | INTDRIVE_level_des *lev = (INTDRIVE_level_des *)(arg); |
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87 | |||
88 | lev->replenish_timer = NIL; |
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89 | |||
90 | #ifdef INTDRIVE_DEBUG |
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91 | kern_printf("(INTD:TIMER)"); |
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92 | #endif |
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93 | |||
94 | if (INTDRIVE_task == NIL) return; |
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95 | |||
96 | lev->avail = lev->q_theta; |
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97 | |||
98 | TRACER_LOGEVENT(FTrace_EVT_user_event_0, 0, lev->avail + INT_MAX); |
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99 | |||
100 | switch (proc_table[INTDRIVE_task].status) { |
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101 | |||
102 | case INTDRIVE_IDLE: |
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103 | if (lev->act_number) { |
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104 | proc_table[INTDRIVE_task].status = INTDRIVE_READY; |
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105 | event_need_reschedule(); |
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106 | } else { |
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107 | proc_table[INTDRIVE_task].status = INTDRIVE_WAIT; |
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108 | } |
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109 | break; |
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110 | } |
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111 | } |
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112 | |||
113 | /*static void INTDRIVE_wcet_timer(void *arg) |
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114 | { |
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115 | |||
116 | INTDRIVE_level_des *lev = (INTDRIVE_level_des *)(arg); |
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117 | |||
118 | lev->wcet_timer = NIL; |
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119 | |||
120 | kern_raise(XWCET_VIOLATION,INTDRIVE_task); |
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121 | |||
122 | }*/ |
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123 | |||
124 | static PID INTDRIVE_public_scheduler(LEVEL l) |
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125 | { |
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126 | |||
127 | if (INTDRIVE_task == NIL) return NIL; |
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128 | |||
129 | if (proc_table[INTDRIVE_task].status == INTDRIVE_READY || |
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130 | proc_table[INTDRIVE_task].status == EXE) |
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131 | return INTDRIVE_task; |
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132 | else |
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133 | return NIL; |
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134 | |||
135 | } |
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136 | |||
137 | static int INTDRIVE_public_create(LEVEL l, PID p, TASK_MODEL *m) |
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138 | { |
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139 | |||
140 | HARD_TASK_MODEL *h; |
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141 | |||
142 | if (m->pclass != HARD_PCLASS) return -1; |
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143 | if (m->level != 0 && m->level != l) return -1; |
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144 | h = (HARD_TASK_MODEL *)m; |
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145 | if (!h->wcet && h->periodicity != INTDRIVE) return -1; |
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146 | |||
147 | if (INTDRIVE_task != NIL) return -1; |
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148 | |||
149 | INTDRIVE_task = p; |
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150 | |||
151 | proc_table[INTDRIVE_task].wcet = h->wcet; |
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152 | proc_table[INTDRIVE_task].avail_time = h->wcet; |
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153 | proc_table[INTDRIVE_task].status = INTDRIVE_WAIT; |
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154 | proc_table[INTDRIVE_task].control &= ~CONTROL_CAP; |
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155 | |||
156 | return 0; |
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157 | |||
158 | } |
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159 | |||
160 | static void INTDRIVE_public_dispatch(LEVEL l, PID p, int nostop) |
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161 | { |
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162 | |||
163 | INTDRIVE_level_des *lev = (INTDRIVE_level_des *)(level_table[l]); |
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164 | //struct timespec time; |
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165 | |||
166 | kern_gettime(&(lev->act_time)); |
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167 | |||
168 | /*TIMESPEC_ASSIGN(&time,&(lev->act_time)); |
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169 | ADDUSEC2TIMESPEC(proc_table[INTDRIVE_task].wcet,&time); |
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170 | |||
171 | if (lev->flags == INTDRIVE_CHECK_WCET) |
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172 | lev->wcet_timer = kern_event_post(&time,INTDRIVE_wcet_timer,(void *)lev);*/ |
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173 | } |
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174 | |||
175 | static void INTDRIVE_public_epilogue(LEVEL l, PID p) |
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176 | { |
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177 | |||
178 | struct timespec time; |
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179 | |||
180 | INTDRIVE_level_des *lev = (INTDRIVE_level_des *)(level_table[l]); |
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181 | |||
182 | /*if (lev->wcet_timer != NIL) |
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183 | kern_event_delete(lev->wcet_timer);*/ |
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184 | |||
185 | SUBTIMESPEC(&schedule_time, &(lev->act_time), &time); |
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186 | lev->avail -= TIMESPEC2USEC(&time); |
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187 | TRACER_LOGEVENT(FTrace_EVT_user_event_0, 0, lev->avail + INT_MAX); |
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188 | |||
189 | if (proc_table[INTDRIVE_task].wcet < TIMESPEC2USEC(&time)) { |
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190 | kern_raise(XWCET_VIOLATION,INTDRIVE_task); |
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191 | } |
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192 | } |
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193 | |||
194 | static void INTDRIVE_public_activate(LEVEL l, PID p, struct timespec *t) |
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195 | { |
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196 | struct timespec acttime; |
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197 | TIME time, delta_capacity; |
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198 | |||
199 | INTDRIVE_level_des *lev = (INTDRIVE_level_des *)(level_table[l]); |
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200 | |||
201 | if (proc_table[INTDRIVE_task].status == INTDRIVE_WAIT) { |
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202 | |||
203 | proc_table[INTDRIVE_task].status = INTDRIVE_READY; |
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204 | |||
205 | lev->act_number++; |
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206 | |||
207 | } else { |
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208 | |||
209 | if (proc_table[INTDRIVE_task].status == INTDRIVE_IDLE || |
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210 | proc_table[INTDRIVE_task].status == INTDRIVE_READY || |
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211 | proc_table[INTDRIVE_task].status == EXE) { |
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212 | |||
213 | #ifdef INTDRIVE_DEBUG |
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214 | kern_printf("(INTD:WAIT_REC)"); |
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215 | #endif |
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216 | |||
217 | lev->act_number++; |
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218 | |||
219 | } |
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220 | |||
221 | } |
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222 | |||
223 | if (lev->replenish_timer == NIL) { |
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224 | |||
225 | delta_capacity = lev->q_theta - lev->avail; |
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226 | mul32div32to32(delta_capacity, MAX_BANDWIDTH, lev->U, time); |
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227 | kern_gettime(&acttime); |
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228 | ADDUSEC2TIMESPEC(time,&acttime); |
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229 | lev->replenish_timer = kern_event_post(&acttime,INTDRIVE_timer,(void *)lev); |
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230 | |||
231 | /*kern_gettime(&(lev->replenish_expires)); |
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232 | ADDUSEC2TIMESPEC(lev->replenish_period,&(lev->replenish_expires)); |
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233 | lev->replenish_timer = kern_event_post(&(lev->replenish_expires),INTDRIVE_timer,(void *)lev);*/ |
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234 | } |
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235 | |||
236 | } |
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237 | |||
238 | static void INTDRIVE_public_unblock(LEVEL l, PID p) |
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239 | { |
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240 | /* Insert task in the correct position */ |
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241 | proc_table[INTDRIVE_task].status = INTDRIVE_READY; |
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242 | |||
243 | } |
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244 | |||
245 | static void INTDRIVE_public_block(LEVEL l, PID p) |
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246 | { |
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247 | |||
248 | } |
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249 | |||
250 | static int INTDRIVE_public_message(LEVEL l, PID p, void *m) |
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251 | { |
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252 | INTDRIVE_level_des *lev = (INTDRIVE_level_des *)(level_table[l]); |
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253 | struct timespec time, acttime; |
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254 | //int delta_time; |
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255 | TIME delta_capacity, delta_time; |
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256 | |||
257 | lev->act_number--; |
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258 | |||
259 | /*if (lev->wcet_timer != NIL) |
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260 | kern_event_delete(lev->wcet_timer);*/ |
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261 | |||
262 | kern_gettime(&acttime); |
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263 | SUBTIMESPEC(&acttime, &(lev->act_time), &time); |
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264 | delta_time = TIMESPEC2USEC(&time); |
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1004 | mauro | 265 | mul32div32to32(delta_time, (MAX_BANDWIDTH-lev->U), MAX_BANDWIDTH, delta_capacity); |
961 | pj | 266 | lev->avail -= delta_capacity; |
267 | |||
268 | //lev->avail -= TIMESPEC2USEC(&time); |
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269 | |||
270 | TRACER_LOGEVENT(FTrace_EVT_user_event_0, 0, lev->avail + INT_MAX); |
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271 | |||
272 | #ifdef INTDRIVE_DEBUG |
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273 | kern_printf("(INTD:AV:%d)",(int)(lev->avail)); |
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274 | #endif |
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275 | |||
276 | if (lev->avail < 0) { |
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277 | proc_table[INTDRIVE_task].status = INTDRIVE_IDLE; |
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278 | |||
279 | if (lev->replenish_timer != NIL) |
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280 | kern_event_delete(lev->replenish_timer); |
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281 | |||
282 | delta_capacity = lev->q_theta - lev->avail; |
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283 | mul32div32to32(delta_capacity, MAX_BANDWIDTH, lev->U, delta_time); |
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284 | kern_gettime(&acttime); |
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285 | ADDUSEC2TIMESPEC(delta_time,&acttime); |
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286 | lev->replenish_timer = kern_event_post(&acttime,INTDRIVE_timer,(void *)lev); |
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287 | |||
288 | /*temp = -lev->avail; |
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289 | mul32div32to32(temp,lev->replenish_period,lev->capacity,delta_time) |
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290 | ADDUSEC2TIMESPEC(delta_time,&(lev->replenish_expires)); |
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291 | lev->replenish_timer = kern_event_post(&(lev->replenish_expires),INTDRIVE_timer,(void *)lev);*/ |
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292 | |||
293 | #ifdef INTDRIVE_DEBUG |
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294 | kern_printf("(INTD:IDLE:%d)",delta_time); |
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295 | #endif |
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296 | |||
297 | } else { |
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298 | if (lev->act_number) { |
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299 | proc_table[INTDRIVE_task].status = INTDRIVE_READY; |
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300 | |||
301 | #ifdef INTDRIVE_DEBUG |
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302 | kern_printf("(INTD:NEXT_ACT)"); |
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303 | #endif |
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304 | |||
305 | } else { |
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306 | |||
307 | #ifdef INTDRIVE_DEBUG |
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308 | kern_printf("(INTD:WAIT_ACT)"); |
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309 | #endif |
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310 | |||
311 | proc_table[INTDRIVE_task].status = INTDRIVE_WAIT; |
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312 | |||
313 | } |
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314 | } |
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315 | |||
316 | TRACER_LOGEVENT(FTrace_EVT_task_end_cycle, |
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317 | (unsigned short int)proc_table[INTDRIVE_task].context,(unsigned int)l); |
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318 | |||
319 | return 0; |
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320 | } |
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321 | |||
322 | static void INTDRIVE_public_end(LEVEL l, PID p) |
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323 | { |
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324 | |||
325 | INTDRIVE_level_des *lev = (INTDRIVE_level_des *)(level_table[l]); |
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326 | |||
327 | if (lev->replenish_timer != NIL) |
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328 | kern_event_delete(lev->replenish_timer); |
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329 | |||
330 | /*if (lev->wcet_timer != NIL) |
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331 | kern_event_delete(lev->wcet_timer);*/ |
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332 | |||
333 | proc_table[INTDRIVE_task].status = INTDRIVE_IDLE; |
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334 | |||
335 | } |
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336 | |||
337 | /* Registration functions */ |
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338 | |||
339 | /*+ Registration function: +*/ |
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1004 | mauro | 340 | LEVEL INTDRIVE_register_level(TIME capacity, TIME q_theta, int U, int flags) |
961 | pj | 341 | { |
342 | LEVEL l; /* the level that we register */ |
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343 | INTDRIVE_level_des *lev; |
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344 | |||
345 | printk("INTDRIVE_register_level\n"); |
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346 | |||
347 | /* request an entry in the level_table */ |
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348 | l = level_alloc_descriptor(sizeof(INTDRIVE_level_des)); |
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349 | |||
350 | lev = (INTDRIVE_level_des *)level_table[l]; |
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351 | |||
352 | lev->l.public_scheduler = INTDRIVE_public_scheduler; |
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353 | lev->l.public_guarantee = NULL; |
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354 | lev->l.public_create = INTDRIVE_public_create; |
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355 | lev->l.public_end = INTDRIVE_public_end; |
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356 | lev->l.public_dispatch = INTDRIVE_public_dispatch; |
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357 | lev->l.public_epilogue = INTDRIVE_public_epilogue; |
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358 | lev->l.public_activate = INTDRIVE_public_activate; |
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359 | lev->l.public_unblock = INTDRIVE_public_unblock; |
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360 | lev->l.public_block = INTDRIVE_public_block; |
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361 | lev->l.public_message = INTDRIVE_public_message; |
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362 | |||
363 | NULL_TIMESPEC(&(lev->act_time)); |
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364 | |||
365 | lev->capacity = capacity; |
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366 | lev->replenish_timer = NIL; |
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367 | lev->flags = flags; |
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368 | lev->act_number = 0; |
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369 | lev->avail = 0; |
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1004 | mauro | 370 | lev->q_theta = q_theta; |
371 | mul32div32to32(MAX_BANDWIDTH,U,10000,lev->U); |
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372 | |||
373 | //!!!calcolare parametro |
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374 | intdrive_taskinit(10000); |
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961 | pj | 375 | |
376 | return l; |
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377 | } |
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378 | |||
379 | bandwidth_t INTDRIVE_usedbandwidth(LEVEL l) |
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380 | { |
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381 | INTDRIVE_level_des *lev = (INTDRIVE_level_des *)(level_table[l]); |
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382 | |||
383 | return lev->U; |
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384 | } |
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385 | |||
386 | TIME INTDRIVE_set_q_theta(LEVEL l, TIME new_q_theta) |
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387 | { |
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388 | INTDRIVE_level_des *lev = (INTDRIVE_level_des *)(level_table[l]); |
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389 | |||
390 | lev->q_theta = new_q_theta; |
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391 | if (lev->q_theta < 0) lev->q_theta = 0; |
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392 | if (lev->q_theta > lev->capacity) lev->q_theta = lev->capacity; |
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393 | |||
394 | return lev->q_theta; |
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395 | } |