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793 trimarchi 1
/*
2
 * Project: S.Ha.R.K.
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 *
4
 * Coordinators:
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 *   Giorgio Buttazzo    <giorgio@sssup.it>
6
 *   Paolo Gai           <pj@gandalf.sssup.it>
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 *
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 * Authors     :
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 *   Paolo Gai           <pj@gandalf.sssup.it>
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 *   Massimiliano Giorgi <massy@gandalf.sssup.it>
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 *   Luca Abeni          <luca@gandalf.sssup.it>
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 *   (see the web pages for full authors list)
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 *
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 * ReTiS Lab (Scuola Superiore S.Anna - Pisa - Italy)
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 *
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 * http://www.sssup.it
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 * http://retis.sssup.it
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 * http://shark.sssup.it
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 */
20
 
21
/**
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 ------------
823 trimarchi 23
 CVS :        $Id: pistar.c,v 1.6 2004-09-07 09:06:53 trimarchi Exp $
793 trimarchi 24
 
25
 File:        $File$
823 trimarchi 26
 Revision:    $Revision: 1.6 $
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 Last update: $Date: 2004-09-07 09:06:53 $
793 trimarchi 28
 ------------
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30
 Priority Inhertitance protocol. see pi.h for more details...
31
 
32
**/
33
 
34
/*
35
 * Copyright (C) 2000 Paolo Gai
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 *
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 * This program is free software; you can redistribute it and/or modify
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 * it under the terms of the GNU General Public License as published by
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 * the Free Software Foundation; either version 2 of the License, or
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 * (at your option) any later version.
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 *
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 * This program is distributed in the hope that it will be useful,
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 * but WITHOUT ANY WARRANTY; without even the implied warranty of
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 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
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 * GNU General Public License for more details.
46
 *
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 * You should have received a copy of the GNU General Public License
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 * along with this program; if not, write to the Free Software
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 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA
50
 *
51
 */
52
 
53
 
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800 trimarchi 55
 
793 trimarchi 56
#include <ll/ll.h>
57
#include <ll/string.h>
58
#include <ll/stdio.h>
59
#include <kernel/const.h>
60
#include <sys/types.h>
61
#include <kernel/descr.h>
62
#include <kernel/var.h>
63
#include <kernel/func.h>
64
#include <fsf_contract.h>
65
#include <fsf_server.h>
800 trimarchi 66
#include <pistar.h>
793 trimarchi 67
 
68
#include <tracer.h>
69
 
70
/* The PISTAR resource level descriptor */
71
typedef struct {
72
  mutex_resource_des m;   /*+ the mutex interface +*/
73
 
74
  int nlocked[MAX_PROC];  /*+ how many mutex a task currently locks +*/
75
 
76
  PID blocked[MAX_PROC];  /*+ blocked queue ... +*/
77
} PISTAR_mutex_resource_des;
78
 
79
 
80
/* this is the structure normally pointed by the opt field in the
81
   mutex_t structure */
82
typedef struct {
83
  PID owner;
84
  int nblocked;
85
  PID firstblocked;
86
} PISTAR_mutex_t;
87
 
88
 
89
 
90
#if 0
91
/*+ print resource protocol statistics...+*/
92
static void PISTAR_resource_status(RLEVEL r)
93
{
94
  PISTAR_mutex_resource_des *m = (PISTAR_mutex_resource_des *)(resource_table[r]);
95
  PID i;
96
 
97
  kern_printf("Resources owned by the tasks:\n");
98
  for (i=0; i<MAX_PROC; i++) {
99
     kern_printf("%-4d", m->nlocked[i]);
100
  }
101
}
102
#endif
103
 
104
static int PISTAR_res_register(RLEVEL l, PID p, RES_MODEL *r)
105
{
106
  /* priority inheritance works with all tasks without Resource parameters */
107
  return -1;
108
}
109
 
110
static void PISTAR_res_detach(RLEVEL l, PID p)
111
{
112
  PISTAR_mutex_resource_des *m = (PISTAR_mutex_resource_des *)(resource_table[l]);
113
 
114
  if (m->nlocked[p])
115
    kern_raise(XMUTEX_OWNER_KILLED, p);
116
}
117
 
118
static int PISTAR_init(RLEVEL l, mutex_t *m, const mutexattr_t *a)
119
{
120
  PISTAR_mutex_t *p;
121
 
122
  if (a->mclass != PISTAR_MCLASS)
123
    return -1;
124
 
125
  p = (PISTAR_mutex_t *) kern_alloc(sizeof(PISTAR_mutex_t));
126
 
127
  /* control if there is enough memory; no control on init on a
128
     non- destroyed mutex */
129
 
130
  if (!p)
131
    return (ENOMEM);
132
 
133
  p->owner        = NIL;
134
  p->nblocked     = 0;
135
  p->firstblocked = NIL;
136
 
137
  m->mutexlevel   = l;
138
  m->opt          = (void *)p;
139
 
140
  return 0;
141
}
142
 
143
 
144
static int PISTAR_destroy(RLEVEL l, mutex_t *m)
145
{
146
//  PISTAR_mutex_resource_des *lev = (PISTAR_mutex_resource_des *)(resource_table[l]);
147
  SYS_FLAGS f;
148
 
149
  if ( ((PISTAR_mutex_t *)m->opt)->nblocked)
150
    return (EBUSY);
151
 
152
  f = kern_fsave();
153
  if (m->opt) {
154
    kern_free(m->opt,sizeof(PISTAR_mutex_t));
155
    m->opt = NULL;
156
  }
157
  kern_frestore(f);
158
 
159
  return 0;
160
}
161
 
162
/* Note that in this approach, when unlocking we can't wake up only
163
   one thread, but we have to wake up all the blocked threads, because there
164
   is not a concept of priority between the task... Each woken thread have
165
   to retest he condition.
166
   Normally, they retest it only one time, because if many threads are
167
   unblocked, they are scheduled basing on their priority (unkown in this
168
   module!)... and if the slice is greather than the critical sections,
169
   they never block!
170
   */
806 trimarchi 171
int PISTAR_lock(RLEVEL l, mutex_t *m, TIME wcet)
793 trimarchi 172
{
173
  PISTAR_mutex_resource_des *lev = (PISTAR_mutex_resource_des *)(resource_table[l]);
174
  PISTAR_mutex_t *p;
175
  SYS_FLAGS f;
176
//  return 0;
809 trimarchi 177
  int cond;
178
  cond = 1;
793 trimarchi 179
  fsf_server_id_t server;
180
 
181
  f =  kern_fsave();
811 trimarchi 182
  //kern_printf("(PISTAR lock)");
793 trimarchi 183
  p = (PISTAR_mutex_t *)m->opt;
184
  if (!p) {
185
    /* if the mutex is not initialized, return an error! */
186
    kern_frestore(f);
187
    return (EINVAL);
188
  }
189
 
190
 
191
  if (p->owner == exec_shadow) {
192
    /* the task already owns the mutex */
193
    kern_frestore(f);
194
    return (EDEADLK);
195
  }
196
  do {
197
  while (p->owner != NIL) {
198
    /* the mutex is locked by someone, "block" the task ...*/
199
    proc_table[exec_shadow].shadow = p->owner;
200
    lev->blocked[exec_shadow] = p->firstblocked;
201
    p->firstblocked = exec_shadow;
202
    p->nblocked++;
203
//    kern_printf("<<<<<<<<<<<<<<<<<<<<<<<<<<<<<<");
204
    /* ... call the scheduler... */
205
    scheduler();
206
    TRACER_LOGEVENT(FTrace_EVT_inheritance,(unsigned short int)proc_table[exec_shadow].context,(unsigned int)proc_table[exec].context);
207
    kern_context_load(proc_table[exec_shadow].context);
208
 
209
    /* ... and reaquire the cli() before the test... */
210
    kern_cli();
211
  }
212
  fsf_get_server(&server, exec_shadow);
809 trimarchi 213
  if (fsf_get_remain_budget(server)>wcet) cond=0;
793 trimarchi 214
  else {
215
    SERVER_disable_server(fsf_get_server_level(),server);
216
    scheduler();
823 trimarchi 217
 
793 trimarchi 218
    kern_context_load(proc_table[exec_shadow].context);
219
    /* ... and reaquire the cli() before the test... */
220
    kern_cli();
221
  }
222
 
223
  } while(cond);
224
 
225
  /* if we are here, we have budget for critical section */
226
  /* Set the task no preemptive for the localscheduler */
811 trimarchi 227
  //kern_printf("(PISTAR NP %d", exec_shadow);
793 trimarchi 228
  fsf_settask_nopreemptive(&server, exec_shadow);
229
 
230
  /* the mutex is free, We can lock it! */
231
  lev->nlocked[exec_shadow]++;
232
 
233
  p->owner = exec_shadow;
234
 
235
  kern_frestore(f);
236
 
237
  return 0;
238
}
239
 
240
static int PISTAR_trylock(RLEVEL l, mutex_t *m)
241
{
242
  PISTAR_mutex_t *p;
243
  SYS_FLAGS f;
244
 
245
  f = kern_fsave();
246
 
247
  p = (PISTAR_mutex_t *)m->opt;
248
  if (!p) {
249
    /* if the mutex is not initialized, return an error! */
250
    kern_frestore(f);
251
    return (EINVAL);
252
  }
253
 
254
  if (p->owner != NIL) {
255
    /* a task already owns the mutex */
256
    kern_frestore(f);
257
    return (EBUSY);
258
  }
259
  else {
260
    /* the mutex is free */
261
    PISTAR_mutex_resource_des *lev = (PISTAR_mutex_resource_des *)(resource_table[l]);
262
    lev->nlocked[exec_shadow]++;
263
 
264
    p->owner = exec_shadow;
265
 
266
    kern_frestore(f);
267
    return 0;
268
  }
269
}
270
 
271
static int PISTAR_unlock(RLEVEL l, mutex_t *m)
272
{
273
  PISTAR_mutex_resource_des *lev;
274
  PISTAR_mutex_t *p;
275
  int i, j;
276
  fsf_server_id_t server;
823 trimarchi 277
  //kern_printf("PISTAR unlock");
793 trimarchi 278
//  return 0;
279
  p = (PISTAR_mutex_t *)m->opt;
280
  if (!p)
281
    return (EINVAL);
282
 
283
  if (p->owner != exec_shadow) {
284
    /* the mutex is owned by another task!!! */
285
    kern_sti();
286
    return (EPERM);
287
  }
288
 
289
  proc_table[exec_shadow].context = kern_context_save();
290
 
291
  /* the mutex is mine */
292
  lev = (PISTAR_mutex_resource_des *)(resource_table[l]);
293
  lev->nlocked[exec_shadow]--;
294
 
295
  p->owner = NIL;
296
 
297
  /* we unblock all the waiting tasks... */
298
  i = p->firstblocked;
299
  p->firstblocked = NIL;
300
 
301
  while (i != NIL) {
302
//    kern_printf("<<%d>>", i);
303
    proc_table[i].shadow = j = i;
304
    i = lev->blocked[i];
305
    lev->blocked[j] = NIL;
306
  }
307
  p->nblocked = 0;
308
 
309
/*  {
310
   int xxx;
811 trimarchi 311
   //kern_printf("(PISTAR_unlock owner=%d ",p->owner);
793 trimarchi 312
   for (xxx = 0; xxx<5; xxx++) kern_printf("p%d s%d|",xxx, proc_table[xxx].shadow);
313
   kern_printf(")\n");
314
  }*/
315
 
316
  /* Set the task preemptive for the localscheduler */
317
  fsf_get_server(&server, exec_shadow);
318
  fsf_settask_preemptive(&server, exec_shadow);
319
 
320
  scheduler();
321
  TRACER_LOGEVENT(FTrace_EVT_inheritance,(unsigned short int)proc_table[exec_shadow].context,(unsigned int)proc_table[exec].context);
322
  kern_context_load(proc_table[exec_shadow].context);
323
 
324
  return 0;
325
}
326
 
327
RLEVEL PISTAR_register_module(void)
328
{
329
  RLEVEL l;                  /* the level that we register */
330
  PISTAR_mutex_resource_des *m;  /* for readableness only */
331
  PID i;                     /* a counter */
332
 
333
  printk("PISTAR_register_module\n");
334
 
335
  /* request an entry in the level_table */
336
  l = resource_alloc_descriptor();
337
 
338
  /* alloc the space needed for the EDF_level_des */
339
  m = (PISTAR_mutex_resource_des *)kern_alloc(sizeof(PISTAR_mutex_resource_des));
340
 
341
  /* update the level_table with the new entry */
342
  resource_table[l] = (resource_des *)m;
343
 
344
  /* fill the resource_des descriptor */
345
  m->m.r.rtype                       = MUTEX_RTYPE;
346
  m->m.r.res_register                = PISTAR_res_register;
347
  m->m.r.res_detach                  = PISTAR_res_detach;
348
 
349
  /* fill the mutex_resource_des descriptor */
350
  m->m.init                          = PISTAR_init;
351
  m->m.destroy                       = PISTAR_destroy;
806 trimarchi 352
  m->m.lock                          = NULL;
793 trimarchi 353
  m->m.trylock                       = PISTAR_trylock;
354
  m->m.unlock                        = PISTAR_unlock;
355
 
356
  /* fille the PISTAR_mutex_resource_des descriptor */
357
  for (i=0; i<MAX_PROC; i++) {
358
    m->nlocked[i] = 0;
359
    m->blocked[i] = NIL;
360
  }
361
 
362
  return l;
363
}
364