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[deliverable/binutils-gdb.git] / gdb / ada-tasks.c
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1/* Copyright (C) 1992-1994, 1997-2000, 2003-2005, 2007-2012 Free
2 Software Foundation, Inc.
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3
4 This file is part of GDB.
5
6 This program is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 3 of the License, or
9 (at your option) any later version.
10
11 This program is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
15
16 You should have received a copy of the GNU General Public License
17 along with this program. If not, see <http://www.gnu.org/licenses/>. */
18
19#include "defs.h"
20#include "observer.h"
21#include "gdbcmd.h"
22#include "target.h"
23#include "ada-lang.h"
24#include "gdbcore.h"
25#include "inferior.h"
26#include "gdbthread.h"
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27#include "progspace.h"
28#include "objfiles.h"
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29
30/* The name of the array in the GNAT runtime where the Ada Task Control
31 Block of each task is stored. */
32#define KNOWN_TASKS_NAME "system__tasking__debug__known_tasks"
33
b1ce2347 34/* The maximum number of tasks known to the Ada runtime. */
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35static const int MAX_NUMBER_OF_KNOWN_TASKS = 1000;
36
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37/* The name of the variable in the GNAT runtime where the head of a task
38 chain is saved. This is an alternate mechanism to find the list of known
39 tasks. */
40#define KNOWN_TASKS_LIST "system__tasking__debug__first_task"
41
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42enum task_states
43{
44 Unactivated,
45 Runnable,
46 Terminated,
47 Activator_Sleep,
48 Acceptor_Sleep,
49 Entry_Caller_Sleep,
50 Async_Select_Sleep,
51 Delay_Sleep,
52 Master_Completion_Sleep,
53 Master_Phase_2_Sleep,
54 Interrupt_Server_Idle_Sleep,
55 Interrupt_Server_Blocked_Interrupt_Sleep,
56 Timer_Server_Sleep,
57 AST_Server_Sleep,
58 Asynchronous_Hold,
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59 Interrupt_Server_Blocked_On_Event_Flag,
60 Activating,
61 Acceptor_Delay_Sleep
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62};
63
64/* A short description corresponding to each possible task state. */
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65static const char *task_states[] = {
66 N_("Unactivated"),
67 N_("Runnable"),
68 N_("Terminated"),
69 N_("Child Activation Wait"),
680f3fad 70 N_("Accept or Select Term"),
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71 N_("Waiting on entry call"),
72 N_("Async Select Wait"),
73 N_("Delay Sleep"),
74 N_("Child Termination Wait"),
75 N_("Wait Child in Term Alt"),
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76 "",
77 "",
78 "",
79 "",
d6b67a5e 80 N_("Asynchronous Hold"),
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81 "",
82 N_("Activating"),
83 N_("Selective Wait")
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84};
85
86/* A longer description corresponding to each possible task state. */
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87static const char *long_task_states[] = {
88 N_("Unactivated"),
89 N_("Runnable"),
90 N_("Terminated"),
91 N_("Waiting for child activation"),
680f3fad 92 N_("Blocked in accept or select with terminate"),
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93 N_("Waiting on entry call"),
94 N_("Asynchronous Selective Wait"),
95 N_("Delay Sleep"),
96 N_("Waiting for children termination"),
97 N_("Waiting for children in terminate alternative"),
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98 "",
99 "",
100 "",
101 "",
d6b67a5e 102 N_("Asynchronous Hold"),
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103 "",
104 N_("Activating"),
105 N_("Blocked in selective wait statement")
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106};
107
108/* The index of certain important fields in the Ada Task Control Block
109 record and sub-records. */
110
dccd3cbd 111struct atcb_fieldnos
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112{
113 /* Fields in record Ada_Task_Control_Block. */
114 int common;
115 int entry_calls;
116 int atc_nesting_level;
117
118 /* Fields in record Common_ATCB. */
119 int state;
120 int parent;
121 int priority;
122 int image;
123 int image_len; /* This field may be missing. */
6040a59d 124 int activation_link;
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125 int call;
126 int ll;
127
128 /* Fields in Task_Primitives.Private_Data. */
129 int ll_thread;
130 int ll_lwp; /* This field may be missing. */
131
132 /* Fields in Common_ATCB.Call.all. */
133 int call_self;
134};
135
6da9ca05 136/* This module's per-program-space data. */
0ef643c8 137
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138struct ada_tasks_pspace_data
139{
140 /* Nonzero if the data has been initialized. If set to zero,
141 it means that the data has either not been initialized, or
142 has potentially become stale. */
143 int initialized_p;
144
145 /* The ATCB record type. */
146 struct type *atcb_type;
147
148 /* The ATCB "Common" component type. */
149 struct type *atcb_common_type;
150
151 /* The type of the "ll" field, from the atcb_common_type. */
152 struct type *atcb_ll_type;
153
154 /* The type of the "call" field, from the atcb_common_type. */
155 struct type *atcb_call_type;
156
157 /* The index of various fields in the ATCB record and sub-records. */
158 struct atcb_fieldnos atcb_fieldno;
159};
160
161/* Key to our per-program-space data. */
162static const struct program_space_data *ada_tasks_pspace_data_handle;
0ef643c8 163
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164typedef struct ada_task_info ada_task_info_s;
165DEF_VEC_O(ada_task_info_s);
0ef643c8 166
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167/* The kind of data structure used by the runtime to store the list
168 of Ada tasks. */
169
170enum ada_known_tasks_kind
171{
172 /* Use this value when we haven't determined which kind of structure
173 is being used, or when we need to recompute it.
174
175 We set the value of this enumerate to zero on purpose: This allows
176 us to use this enumerate in a structure where setting all fields
177 to zero will result in this kind being set to unknown. */
178 ADA_TASKS_UNKNOWN = 0,
179
180 /* This value means that we did not find any task list. Unless
181 there is a bug somewhere, this means that the inferior does not
182 use tasking. */
183 ADA_TASKS_NOT_FOUND,
184
185 /* This value means that the task list is stored as an array.
186 This is the usual method, as it causes very little overhead.
187 But this method is not always used, as it does use a certain
188 amount of memory, which might be scarse in certain environments. */
189 ADA_TASKS_ARRAY,
190
191 /* This value means that the task list is stored as a linked list.
192 This has more runtime overhead than the array approach, but
193 also require less memory when the number of tasks is small. */
194 ADA_TASKS_LIST,
195};
196
197/* This module's per-inferior data. */
198
199struct ada_tasks_inferior_data
200{
201 /* The type of data structure used by the runtime to store
202 the list of Ada tasks. The value of this field influences
203 the interpretation of the known_tasks_addr field below:
204 - ADA_TASKS_UNKNOWN: The value of known_tasks_addr hasn't
205 been determined yet;
206 - ADA_TASKS_NOT_FOUND: The program probably does not use tasking
207 and the known_tasks_addr is irrelevant;
208 - ADA_TASKS_ARRAY: The known_tasks is an array;
209 - ADA_TASKS_LIST: The known_tasks is a list. */
210 enum ada_known_tasks_kind known_tasks_kind;
211
212 /* The address of the known_tasks structure. This is where
213 the runtime stores the information for all Ada tasks.
214 The interpretation of this field depends on KNOWN_TASKS_KIND
215 above. */
216 CORE_ADDR known_tasks_addr;
217
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218 /* Type of elements of the known task. Usually a pointer. */
219 struct type *known_tasks_element;
220
221 /* Number of elements in the known tasks array. */
222 unsigned int known_tasks_length;
223
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224 /* When nonzero, this flag indicates that the task_list field
225 below is up to date. When set to zero, the list has either
226 not been initialized, or has potentially become stale. */
227 int task_list_valid_p;
228
229 /* The list of Ada tasks.
230
231 Note: To each task we associate a number that the user can use to
232 reference it - this number is printed beside each task in the tasks
233 info listing displayed by "info tasks". This number is equal to
234 its index in the vector + 1. Reciprocally, to compute the index
235 of a task in the vector, we need to substract 1 from its number. */
236 VEC(ada_task_info_s) *task_list;
237};
238
239/* Key to our per-inferior data. */
240static const struct inferior_data *ada_tasks_inferior_data_handle;
0ef643c8 241
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242/* Return the ada-tasks module's data for the given program space (PSPACE).
243 If none is found, add a zero'ed one now.
244
245 This function always returns a valid object. */
246
247static struct ada_tasks_pspace_data *
248get_ada_tasks_pspace_data (struct program_space *pspace)
249{
250 struct ada_tasks_pspace_data *data;
251
252 data = program_space_data (pspace, ada_tasks_pspace_data_handle);
253 if (data == NULL)
254 {
255 data = XZALLOC (struct ada_tasks_pspace_data);
256 set_program_space_data (pspace, ada_tasks_pspace_data_handle, data);
257 }
258
259 return data;
260}
261
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262/* Return the ada-tasks module's data for the given inferior (INF).
263 If none is found, add a zero'ed one now.
264
265 This function always returns a valid object.
266
267 Note that we could use an observer of the inferior-created event
268 to make sure that the ada-tasks per-inferior data always exists.
269 But we prefered this approach, as it avoids this entirely as long
270 as the user does not use any of the tasking features. This is
271 quite possible, particularly in the case where the inferior does
272 not use tasking. */
273
274static struct ada_tasks_inferior_data *
275get_ada_tasks_inferior_data (struct inferior *inf)
276{
277 struct ada_tasks_inferior_data *data;
278
279 data = inferior_data (inf, ada_tasks_inferior_data_handle);
280 if (data == NULL)
281 {
282 data = XZALLOC (struct ada_tasks_inferior_data);
283 set_inferior_data (inf, ada_tasks_inferior_data_handle, data);
284 }
285
286 return data;
287}
288
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289/* Return the task number of the task whose ptid is PTID, or zero
290 if the task could not be found. */
291
4a306c9a 292int
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293ada_get_task_number (ptid_t ptid)
294{
295 int i;
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296 struct inferior *inf = find_inferior_pid (ptid_get_pid (ptid));
297 struct ada_tasks_inferior_data *data;
298
299 gdb_assert (inf != NULL);
300 data = get_ada_tasks_inferior_data (inf);
0ef643c8 301
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302 for (i = 0; i < VEC_length (ada_task_info_s, data->task_list); i++)
303 if (ptid_equal (VEC_index (ada_task_info_s, data->task_list, i)->ptid,
304 ptid))
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305 return i + 1;
306
307 return 0; /* No matching task found. */
308}
309
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310/* Return the task number of the task running in inferior INF which
311 matches TASK_ID , or zero if the task could not be found. */
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312
313static int
e225eb91 314get_task_number_from_id (CORE_ADDR task_id, struct inferior *inf)
0ef643c8 315{
e225eb91 316 struct ada_tasks_inferior_data *data = get_ada_tasks_inferior_data (inf);
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317 int i;
318
e225eb91 319 for (i = 0; i < VEC_length (ada_task_info_s, data->task_list); i++)
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320 {
321 struct ada_task_info *task_info =
e225eb91 322 VEC_index (ada_task_info_s, data->task_list, i);
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323
324 if (task_info->task_id == task_id)
325 return i + 1;
326 }
327
328 /* Task not found. Return 0. */
329 return 0;
330}
331
332/* Return non-zero if TASK_NUM is a valid task number. */
333
334int
335valid_task_id (int task_num)
336{
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337 struct ada_tasks_inferior_data *data;
338
79779fa9 339 ada_build_task_list ();
e225eb91 340 data = get_ada_tasks_inferior_data (current_inferior ());
0ef643c8 341 return (task_num > 0
e225eb91 342 && task_num <= VEC_length (ada_task_info_s, data->task_list));
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343}
344
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345/* Return non-zero iff the task STATE corresponds to a non-terminated
346 task state. */
347
348static int
349ada_task_is_alive (struct ada_task_info *task_info)
350{
351 return (task_info->state != Terminated);
352}
353
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354/* Call the ITERATOR function once for each Ada task that hasn't been
355 terminated yet. */
356
357void
358iterate_over_live_ada_tasks (ada_task_list_iterator_ftype *iterator)
359{
360 int i, nb_tasks;
361 struct ada_task_info *task;
e225eb91 362 struct ada_tasks_inferior_data *data;
474011fb 363
79779fa9 364 ada_build_task_list ();
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365 data = get_ada_tasks_inferior_data (current_inferior ());
366 nb_tasks = VEC_length (ada_task_info_s, data->task_list);
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367
368 for (i = 0; i < nb_tasks; i++)
369 {
e225eb91 370 task = VEC_index (ada_task_info_s, data->task_list, i);
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371 if (!ada_task_is_alive (task))
372 continue;
373 iterator (task);
374 }
375}
376
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377/* Extract the contents of the value as a string whose length is LENGTH,
378 and store the result in DEST. */
379
380static void
381value_as_string (char *dest, struct value *val, int length)
382{
383 memcpy (dest, value_contents (val), length);
384 dest[length] = '\0';
385}
386
387/* Extract the string image from the fat string corresponding to VAL,
388 and store it in DEST. If the string length is greater than MAX_LEN,
389 then truncate the result to the first MAX_LEN characters of the fat
390 string. */
391
392static void
393read_fat_string_value (char *dest, struct value *val, int max_len)
394{
395 struct value *array_val;
396 struct value *bounds_val;
397 int len;
398
399 /* The following variables are made static to avoid recomputing them
400 each time this function is called. */
401 static int initialize_fieldnos = 1;
402 static int array_fieldno;
403 static int bounds_fieldno;
404 static int upper_bound_fieldno;
405
406 /* Get the index of the fields that we will need to read in order
407 to extract the string from the fat string. */
408 if (initialize_fieldnos)
409 {
410 struct type *type = value_type (val);
411 struct type *bounds_type;
412
413 array_fieldno = ada_get_field_index (type, "P_ARRAY", 0);
414 bounds_fieldno = ada_get_field_index (type, "P_BOUNDS", 0);
415
416 bounds_type = TYPE_FIELD_TYPE (type, bounds_fieldno);
417 if (TYPE_CODE (bounds_type) == TYPE_CODE_PTR)
418 bounds_type = TYPE_TARGET_TYPE (bounds_type);
419 if (TYPE_CODE (bounds_type) != TYPE_CODE_STRUCT)
420 error (_("Unknown task name format. Aborting"));
421 upper_bound_fieldno = ada_get_field_index (bounds_type, "UB0", 0);
422
423 initialize_fieldnos = 0;
424 }
425
426 /* Get the size of the task image by checking the value of the bounds.
427 The lower bound is always 1, so we only need to read the upper bound. */
428 bounds_val = value_ind (value_field (val, bounds_fieldno));
429 len = value_as_long (value_field (bounds_val, upper_bound_fieldno));
430
431 /* Make sure that we do not read more than max_len characters... */
432 if (len > max_len)
433 len = max_len;
434
435 /* Extract LEN characters from the fat string. */
436 array_val = value_ind (value_field (val, array_fieldno));
42ae5230 437 read_memory (value_address (array_val), dest, len);
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438
439 /* Add the NUL character to close the string. */
440 dest[len] = '\0';
441}
442
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443/* Get from the debugging information the type description of all types
444 related to the Ada Task Control Block that will be needed in order to
445 read the list of known tasks in the Ada runtime. Also return the
446 associated ATCB_FIELDNOS.
447
448 Error handling: Any data missing from the debugging info will cause
449 an error to be raised, and none of the return values to be set.
450 Users of this function can depend on the fact that all or none of the
451 return values will be set. */
452
453static void
cb741e45 454get_tcb_types_info (void)
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455{
456 struct type *type;
457 struct type *common_type;
458 struct type *ll_type;
459 struct type *call_type;
dccd3cbd 460 struct atcb_fieldnos fieldnos;
6da9ca05 461 struct ada_tasks_pspace_data *pspace_data;
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462
463 const char *atcb_name = "system__tasking__ada_task_control_block___XVE";
464 const char *atcb_name_fixed = "system__tasking__ada_task_control_block";
465 const char *common_atcb_name = "system__tasking__common_atcb";
466 const char *private_data_name = "system__task_primitives__private_data";
467 const char *entry_call_record_name = "system__tasking__entry_call_record";
468
0963b4bd 469 /* ATCB symbols may be found in several compilation units. As we
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470 are only interested in one instance, use standard (literal,
471 C-like) lookups to get the first match. */
472
0ef643c8 473 struct symbol *atcb_sym =
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474 lookup_symbol_in_language (atcb_name, NULL, VAR_DOMAIN,
475 language_c, NULL);
0ef643c8 476 const struct symbol *common_atcb_sym =
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477 lookup_symbol_in_language (common_atcb_name, NULL, VAR_DOMAIN,
478 language_c, NULL);
0ef643c8 479 const struct symbol *private_data_sym =
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480 lookup_symbol_in_language (private_data_name, NULL, VAR_DOMAIN,
481 language_c, NULL);
0ef643c8 482 const struct symbol *entry_call_record_sym =
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483 lookup_symbol_in_language (entry_call_record_name, NULL, VAR_DOMAIN,
484 language_c, NULL);
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485
486 if (atcb_sym == NULL || atcb_sym->type == NULL)
487 {
488 /* In Ravenscar run-time libs, the ATCB does not have a dynamic
489 size, so the symbol name differs. */
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490 atcb_sym = lookup_symbol_in_language (atcb_name_fixed, NULL, VAR_DOMAIN,
491 language_c, NULL);
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492
493 if (atcb_sym == NULL || atcb_sym->type == NULL)
494 error (_("Cannot find Ada_Task_Control_Block type. Aborting"));
495
496 type = atcb_sym->type;
497 }
498 else
499 {
500 /* Get a static representation of the type record
501 Ada_Task_Control_Block. */
502 type = atcb_sym->type;
503 type = ada_template_to_fixed_record_type_1 (type, NULL, 0, NULL, 0);
504 }
505
506 if (common_atcb_sym == NULL || common_atcb_sym->type == NULL)
507 error (_("Cannot find Common_ATCB type. Aborting"));
508 if (private_data_sym == NULL || private_data_sym->type == NULL)
509 error (_("Cannot find Private_Data type. Aborting"));
510 if (entry_call_record_sym == NULL || entry_call_record_sym->type == NULL)
511 error (_("Cannot find Entry_Call_Record type. Aborting"));
512
513 /* Get the type for Ada_Task_Control_Block.Common. */
514 common_type = common_atcb_sym->type;
515
516 /* Get the type for Ada_Task_Control_Bloc.Common.Call.LL. */
517 ll_type = private_data_sym->type;
518
519 /* Get the type for Common_ATCB.Call.all. */
520 call_type = entry_call_record_sym->type;
521
522 /* Get the field indices. */
523 fieldnos.common = ada_get_field_index (type, "common", 0);
524 fieldnos.entry_calls = ada_get_field_index (type, "entry_calls", 1);
525 fieldnos.atc_nesting_level =
526 ada_get_field_index (type, "atc_nesting_level", 1);
527 fieldnos.state = ada_get_field_index (common_type, "state", 0);
528 fieldnos.parent = ada_get_field_index (common_type, "parent", 1);
529 fieldnos.priority = ada_get_field_index (common_type, "base_priority", 0);
530 fieldnos.image = ada_get_field_index (common_type, "task_image", 1);
531 fieldnos.image_len = ada_get_field_index (common_type, "task_image_len", 1);
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532 fieldnos.activation_link = ada_get_field_index (common_type,
533 "activation_link", 1);
0ef643c8
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534 fieldnos.call = ada_get_field_index (common_type, "call", 1);
535 fieldnos.ll = ada_get_field_index (common_type, "ll", 0);
536 fieldnos.ll_thread = ada_get_field_index (ll_type, "thread", 0);
537 fieldnos.ll_lwp = ada_get_field_index (ll_type, "lwp", 1);
538 fieldnos.call_self = ada_get_field_index (call_type, "self", 0);
539
540 /* On certain platforms such as x86-windows, the "lwp" field has been
541 named "thread_id". This field will likely be renamed in the future,
542 but we need to support both possibilities to avoid an unnecessary
543 dependency on a recent compiler. We therefore try locating the
544 "thread_id" field in place of the "lwp" field if we did not find
545 the latter. */
546 if (fieldnos.ll_lwp < 0)
547 fieldnos.ll_lwp = ada_get_field_index (ll_type, "thread_id", 1);
548
549 /* Set all the out parameters all at once, now that we are certain
550 that there are no potential error() anymore. */
6da9ca05
JB
551 pspace_data = get_ada_tasks_pspace_data (current_program_space);
552 pspace_data->initialized_p = 1;
553 pspace_data->atcb_type = type;
554 pspace_data->atcb_common_type = common_type;
555 pspace_data->atcb_ll_type = ll_type;
556 pspace_data->atcb_call_type = call_type;
557 pspace_data->atcb_fieldno = fieldnos;
0ef643c8
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558}
559
560/* Build the PTID of the task from its COMMON_VALUE, which is the "Common"
561 component of its ATCB record. This PTID needs to match the PTID used
562 by the thread layer. */
563
564static ptid_t
565ptid_from_atcb_common (struct value *common_value)
566{
567 long thread = 0;
568 CORE_ADDR lwp = 0;
569 struct value *ll_value;
570 ptid_t ptid;
6da9ca05
JB
571 const struct ada_tasks_pspace_data *pspace_data
572 = get_ada_tasks_pspace_data (current_program_space);
0ef643c8 573
6da9ca05 574 ll_value = value_field (common_value, pspace_data->atcb_fieldno.ll);
0ef643c8 575
6da9ca05
JB
576 if (pspace_data->atcb_fieldno.ll_lwp >= 0)
577 lwp = value_as_address (value_field (ll_value,
578 pspace_data->atcb_fieldno.ll_lwp));
579 thread = value_as_long (value_field (ll_value,
580 pspace_data->atcb_fieldno.ll_thread));
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581
582 ptid = target_get_ada_task_ptid (lwp, thread);
583
584 return ptid;
585}
586
587/* Read the ATCB data of a given task given its TASK_ID (which is in practice
588 the address of its assocated ATCB record), and store the result inside
589 TASK_INFO. */
590
591static void
592read_atcb (CORE_ADDR task_id, struct ada_task_info *task_info)
593{
594 struct value *tcb_value;
595 struct value *common_value;
596 struct value *atc_nesting_level_value;
597 struct value *entry_calls_value;
598 struct value *entry_calls_value_element;
599 int called_task_fieldno = -1;
b1c8db38 600 static const char ravenscar_task_name[] = "Ravenscar task";
6da9ca05
JB
601 const struct ada_tasks_pspace_data *pspace_data
602 = get_ada_tasks_pspace_data (current_program_space);
0ef643c8 603
6da9ca05 604 if (!pspace_data->initialized_p)
cb741e45 605 get_tcb_types_info ();
0ef643c8 606
6da9ca05
JB
607 tcb_value = value_from_contents_and_address (pspace_data->atcb_type,
608 NULL, task_id);
609 common_value = value_field (tcb_value, pspace_data->atcb_fieldno.common);
0ef643c8
JB
610
611 /* Fill in the task_id. */
612
613 task_info->task_id = task_id;
614
615 /* Compute the name of the task.
616
617 Depending on the GNAT version used, the task image is either a fat
618 string, or a thin array of characters. Older versions of GNAT used
619 to use fat strings, and therefore did not need an extra field in
0963b4bd 620 the ATCB to store the string length. For efficiency reasons, newer
0ef643c8
JB
621 versions of GNAT replaced the fat string by a static buffer, but this
622 also required the addition of a new field named "Image_Len" containing
0963b4bd 623 the length of the task name. The method used to extract the task name
0ef643c8
JB
624 is selected depending on the existence of this field.
625
626 In some run-time libs (e.g. Ravenscar), the name is not in the ATCB;
0963b4bd 627 we may want to get it from the first user frame of the stack. For now,
0ef643c8
JB
628 we just give a dummy name. */
629
6da9ca05 630 if (pspace_data->atcb_fieldno.image_len == -1)
0ef643c8 631 {
6da9ca05 632 if (pspace_data->atcb_fieldno.image >= 0)
0ef643c8 633 read_fat_string_value (task_info->name,
6da9ca05
JB
634 value_field (common_value,
635 pspace_data->atcb_fieldno.image),
0ef643c8
JB
636 sizeof (task_info->name) - 1);
637 else
b1c8db38
TG
638 {
639 struct minimal_symbol *msym;
640
641 msym = lookup_minimal_symbol_by_pc (task_id);
642 if (msym)
643 {
644 const char *full_name = SYMBOL_LINKAGE_NAME (msym);
645 const char *task_name = full_name;
646 const char *p;
647
648 /* Strip the prefix. */
649 for (p = full_name; *p; p++)
650 if (p[0] == '_' && p[1] == '_')
651 task_name = p + 2;
652
653 /* Copy the task name. */
654 strncpy (task_info->name, task_name, sizeof (task_info->name));
655 task_info->name[sizeof (task_info->name) - 1] = 0;
656 }
657 else
658 {
659 /* No symbol found. Use a default name. */
660 strcpy (task_info->name, ravenscar_task_name);
661 }
662 }
0ef643c8
JB
663 }
664 else
665 {
6da9ca05
JB
666 int len = value_as_long
667 (value_field (common_value,
668 pspace_data->atcb_fieldno.image_len));
0ef643c8
JB
669
670 value_as_string (task_info->name,
6da9ca05
JB
671 value_field (common_value,
672 pspace_data->atcb_fieldno.image),
673 len);
0ef643c8
JB
674 }
675
676 /* Compute the task state and priority. */
677
cb741e45 678 task_info->state =
6da9ca05
JB
679 value_as_long (value_field (common_value,
680 pspace_data->atcb_fieldno.state));
0ef643c8 681 task_info->priority =
6da9ca05
JB
682 value_as_long (value_field (common_value,
683 pspace_data->atcb_fieldno.priority));
0ef643c8
JB
684
685 /* If the ATCB contains some information about the parent task,
686 then compute it as well. Otherwise, zero. */
687
6da9ca05 688 if (pspace_data->atcb_fieldno.parent >= 0)
0ef643c8 689 task_info->parent =
6da9ca05
JB
690 value_as_address (value_field (common_value,
691 pspace_data->atcb_fieldno.parent));
0ef643c8
JB
692 else
693 task_info->parent = 0;
694
695
696 /* If the ATCB contains some information about entry calls, then
697 compute the "called_task" as well. Otherwise, zero. */
698
6da9ca05
JB
699 if (pspace_data->atcb_fieldno.atc_nesting_level > 0
700 && pspace_data->atcb_fieldno.entry_calls > 0)
0ef643c8
JB
701 {
702 /* Let My_ATCB be the Ada task control block of a task calling the
703 entry of another task; then the Task_Id of the called task is
704 in My_ATCB.Entry_Calls (My_ATCB.ATC_Nesting_Level).Called_Task. */
6da9ca05
JB
705 atc_nesting_level_value =
706 value_field (tcb_value, pspace_data->atcb_fieldno.atc_nesting_level);
0ef643c8 707 entry_calls_value =
6da9ca05
JB
708 ada_coerce_to_simple_array_ptr
709 (value_field (tcb_value, pspace_data->atcb_fieldno.entry_calls));
0ef643c8 710 entry_calls_value_element =
2497b498
UW
711 value_subscript (entry_calls_value,
712 value_as_long (atc_nesting_level_value));
0ef643c8
JB
713 called_task_fieldno =
714 ada_get_field_index (value_type (entry_calls_value_element),
715 "called_task", 0);
716 task_info->called_task =
717 value_as_address (value_field (entry_calls_value_element,
718 called_task_fieldno));
719 }
720 else
721 {
722 task_info->called_task = 0;
723 }
724
725 /* If the ATCB cotnains some information about RV callers,
726 then compute the "caller_task". Otherwise, zero. */
727
728 task_info->caller_task = 0;
6da9ca05 729 if (pspace_data->atcb_fieldno.call >= 0)
0ef643c8
JB
730 {
731 /* Get the ID of the caller task from Common_ATCB.Call.all.Self.
732 If Common_ATCB.Call is null, then there is no caller. */
733 const CORE_ADDR call =
6da9ca05
JB
734 value_as_address (value_field (common_value,
735 pspace_data->atcb_fieldno.call));
0ef643c8
JB
736 struct value *call_val;
737
738 if (call != 0)
739 {
740 call_val =
6da9ca05
JB
741 value_from_contents_and_address (pspace_data->atcb_call_type,
742 NULL, call);
0ef643c8 743 task_info->caller_task =
6da9ca05
JB
744 value_as_address
745 (value_field (call_val, pspace_data->atcb_fieldno.call_self));
0ef643c8
JB
746 }
747 }
748
39383a48
JB
749 /* And finally, compute the task ptid. Note that there are situations
750 where this cannot be determined:
751 - The task is no longer alive - the ptid is irrelevant;
752 - We are debugging a core file - the thread is not always
753 completely preserved for us to link back a task to its
754 underlying thread. Since we do not support task switching
755 when debugging core files anyway, we don't need to compute
756 that task ptid.
757 In either case, we don't need that ptid, and it is just good enough
758 to set it to null_ptid. */
759
760 if (target_has_execution && ada_task_is_alive (task_info))
0ef643c8
JB
761 task_info->ptid = ptid_from_atcb_common (common_value);
762 else
763 task_info->ptid = null_ptid;
764}
765
766/* Read the ATCB info of the given task (identified by TASK_ID), and
e225eb91 767 add the result to the given inferior's TASK_LIST. */
0ef643c8
JB
768
769static void
e225eb91 770add_ada_task (CORE_ADDR task_id, struct inferior *inf)
0ef643c8
JB
771{
772 struct ada_task_info task_info;
e225eb91 773 struct ada_tasks_inferior_data *data = get_ada_tasks_inferior_data (inf);
0ef643c8
JB
774
775 read_atcb (task_id, &task_info);
e225eb91 776 VEC_safe_push (ada_task_info_s, data->task_list, &task_info);
0ef643c8
JB
777}
778
779/* Read the Known_Tasks array from the inferior memory, and store
e225eb91 780 it in the current inferior's TASK_LIST. Return non-zero upon success. */
0ef643c8
JB
781
782static int
ef59abfb 783read_known_tasks_array (struct ada_tasks_inferior_data *data)
0ef643c8 784{
ef59abfb
TG
785 const int target_ptr_byte = TYPE_LENGTH (data->known_tasks_element);
786 const int known_tasks_size = target_ptr_byte * data->known_tasks_length;
0ef643c8
JB
787 gdb_byte *known_tasks = alloca (known_tasks_size);
788 int i;
789
6040a59d
JB
790 /* Build a new list by reading the ATCBs from the Known_Tasks array
791 in the Ada runtime. */
ef59abfb
TG
792 read_memory (data->known_tasks_addr, known_tasks, known_tasks_size);
793 for (i = 0; i < data->known_tasks_length; i++)
0ef643c8 794 {
0ef643c8
JB
795 CORE_ADDR task_id =
796 extract_typed_address (known_tasks + i * target_ptr_byte,
ef59abfb 797 data->known_tasks_element);
0ef643c8
JB
798
799 if (task_id != 0)
e225eb91 800 add_ada_task (task_id, current_inferior ());
0ef643c8
JB
801 }
802
6040a59d
JB
803 return 1;
804}
805
806/* Read the known tasks from the inferior memory, and store it in
e225eb91 807 the current inferior's TASK_LIST. Return non-zero upon success. */
6040a59d
JB
808
809static int
ef59abfb 810read_known_tasks_list (struct ada_tasks_inferior_data *data)
6040a59d 811{
ef59abfb 812 const int target_ptr_byte = TYPE_LENGTH (data->known_tasks_element);
6040a59d 813 gdb_byte *known_tasks = alloca (target_ptr_byte);
6040a59d 814 CORE_ADDR task_id;
6da9ca05
JB
815 const struct ada_tasks_pspace_data *pspace_data
816 = get_ada_tasks_pspace_data (current_program_space);
6040a59d
JB
817
818 /* Sanity check. */
6da9ca05 819 if (pspace_data->atcb_fieldno.activation_link < 0)
6040a59d
JB
820 return 0;
821
822 /* Build a new list by reading the ATCBs. Read head of the list. */
ef59abfb
TG
823 read_memory (data->known_tasks_addr, known_tasks, target_ptr_byte);
824 task_id = extract_typed_address (known_tasks, data->known_tasks_element);
6040a59d
JB
825 while (task_id != 0)
826 {
827 struct value *tcb_value;
828 struct value *common_value;
829
e225eb91 830 add_ada_task (task_id, current_inferior ());
6040a59d
JB
831
832 /* Read the chain. */
6da9ca05
JB
833 tcb_value = value_from_contents_and_address (pspace_data->atcb_type,
834 NULL, task_id);
835 common_value = value_field (tcb_value, pspace_data->atcb_fieldno.common);
836 task_id = value_as_address
837 (value_field (common_value,
838 pspace_data->atcb_fieldno.activation_link));
6040a59d
JB
839 }
840
841 return 1;
842}
843
ef59abfb
TG
844/* Set all fields of the current inferior ada-tasks data pointed by DATA.
845 Do nothing if those fields are already set and still up to date. */
e225eb91
JB
846
847static void
ef59abfb 848ada_tasks_inferior_data_sniffer (struct ada_tasks_inferior_data *data)
e225eb91 849{
ef59abfb
TG
850 const char *name;
851 struct minimal_symbol *msym;
852 struct symbol *sym;
e225eb91 853
ef59abfb 854 /* Return now if already set. */
e225eb91
JB
855 if (data->known_tasks_kind != ADA_TASKS_UNKNOWN)
856 return;
857
ef59abfb
TG
858 /* Try array. */
859
860 msym = lookup_minimal_symbol (KNOWN_TASKS_NAME, NULL, NULL);
861 if (msym != NULL)
e225eb91
JB
862 {
863 data->known_tasks_kind = ADA_TASKS_ARRAY;
ef59abfb
TG
864 data->known_tasks_addr = SYMBOL_VALUE_ADDRESS (msym);
865
866 /* Try to get pointer type and array length from the symtab. */
867 sym = lookup_symbol_in_language (KNOWN_TASKS_NAME, NULL, VAR_DOMAIN,
868 language_c, NULL);
869 if (sym != NULL)
870 {
871 /* Validate. */
872 struct type *type = check_typedef (SYMBOL_TYPE (sym));
d4cd3da9
JB
873 struct type *eltype = NULL;
874 struct type *idxtype = NULL;
875
876 if (TYPE_CODE (type) == TYPE_CODE_ARRAY)
877 eltype = check_typedef (TYPE_TARGET_TYPE (type));
878 if (eltype != NULL
879 && TYPE_CODE (eltype) == TYPE_CODE_PTR)
880 idxtype = check_typedef (TYPE_INDEX_TYPE (type));
881 if (idxtype != NULL
ef59abfb
TG
882 && !TYPE_LOW_BOUND_UNDEFINED (idxtype)
883 && !TYPE_HIGH_BOUND_UNDEFINED (idxtype))
884 {
885 data->known_tasks_element = eltype;
886 data->known_tasks_length =
887 TYPE_HIGH_BOUND (idxtype) - TYPE_LOW_BOUND (idxtype) + 1;
888 return;
889 }
890 }
891
892 /* Fallback to default values. The runtime may have been stripped (as
893 in some distributions), but it is likely that the executable still
894 contains debug information on the task type (due to implicit with of
895 Ada.Tasking). */
896 data->known_tasks_element =
897 builtin_type (target_gdbarch)->builtin_data_ptr;
898 data->known_tasks_length = MAX_NUMBER_OF_KNOWN_TASKS;
e225eb91
JB
899 return;
900 }
901
ef59abfb
TG
902
903 /* Try list. */
904
905 msym = lookup_minimal_symbol (KNOWN_TASKS_LIST, NULL, NULL);
906 if (msym != NULL)
e225eb91
JB
907 {
908 data->known_tasks_kind = ADA_TASKS_LIST;
ef59abfb
TG
909 data->known_tasks_addr = SYMBOL_VALUE_ADDRESS (msym);
910 data->known_tasks_length = 1;
911
912 sym = lookup_symbol_in_language (KNOWN_TASKS_LIST, NULL, VAR_DOMAIN,
913 language_c, NULL);
914 if (sym != NULL && SYMBOL_VALUE_ADDRESS (sym) != 0)
915 {
916 /* Validate. */
917 struct type *type = check_typedef (SYMBOL_TYPE (sym));
918
919 if (TYPE_CODE (type) == TYPE_CODE_PTR)
920 {
921 data->known_tasks_element = type;
922 return;
923 }
924 }
925
926 /* Fallback to default values. */
927 data->known_tasks_element =
928 builtin_type (target_gdbarch)->builtin_data_ptr;
929 data->known_tasks_length = 1;
e225eb91
JB
930 return;
931 }
932
ef59abfb
TG
933 /* Can't find tasks. */
934
e225eb91
JB
935 data->known_tasks_kind = ADA_TASKS_NOT_FOUND;
936 data->known_tasks_addr = 0;
937}
938
939/* Read the known tasks from the current inferior's memory, and store it
940 in the current inferior's data TASK_LIST.
941 Return non-zero upon success. */
6040a59d
JB
942
943static int
944read_known_tasks (void)
945{
e225eb91
JB
946 struct ada_tasks_inferior_data *data =
947 get_ada_tasks_inferior_data (current_inferior ());
6040a59d
JB
948
949 /* Step 1: Clear the current list, if necessary. */
e225eb91 950 VEC_truncate (ada_task_info_s, data->task_list, 0);
6040a59d
JB
951
952 /* Step 2: do the real work.
953 If the application does not use task, then no more needs to be done.
954 It is important to have the task list cleared (see above) before we
955 return, as we don't want a stale task list to be used... This can
956 happen for instance when debugging a non-multitasking program after
957 having debugged a multitasking one. */
ef59abfb 958 ada_tasks_inferior_data_sniffer (data);
e225eb91
JB
959 gdb_assert (data->known_tasks_kind != ADA_TASKS_UNKNOWN);
960
961 switch (data->known_tasks_kind)
6040a59d 962 {
e225eb91
JB
963 case ADA_TASKS_NOT_FOUND: /* Tasking not in use in inferior. */
964 return 0;
965 case ADA_TASKS_ARRAY:
ef59abfb 966 return read_known_tasks_array (data);
e225eb91 967 case ADA_TASKS_LIST:
ef59abfb 968 return read_known_tasks_list (data);
6040a59d
JB
969 }
970
e225eb91 971 /* Step 3: Set task_list_valid_p, to avoid re-reading the Known_Tasks
0ef643c8 972 array unless needed. Then report a success. */
e225eb91 973 data->task_list_valid_p = 1;
0ef643c8
JB
974
975 return 1;
976}
977
79779fa9
JB
978/* Build the task_list by reading the Known_Tasks array from
979 the inferior, and return the number of tasks in that list
980 (zero means that the program is not using tasking at all). */
0ef643c8
JB
981
982int
79779fa9 983ada_build_task_list (void)
0ef643c8 984{
e225eb91
JB
985 struct ada_tasks_inferior_data *data;
986
0ef643c8
JB
987 if (!target_has_stack)
988 error (_("Cannot inspect Ada tasks when program is not running"));
989
e225eb91
JB
990 data = get_ada_tasks_inferior_data (current_inferior ());
991 if (!data->task_list_valid_p)
6040a59d 992 read_known_tasks ();
0ef643c8 993
79779fa9 994 return VEC_length (ada_task_info_s, data->task_list);
0ef643c8
JB
995}
996
a8123151
JB
997/* Print a table providing a short description of all Ada tasks
998 running inside inferior INF. If ARG_STR is set, it will be
999 interpreted as a task number, and the table will be limited to
1000 that task only. */
0ef643c8 1001
75082e8c 1002void
a8123151
JB
1003print_ada_task_info (struct ui_out *uiout,
1004 char *arg_str,
1005 struct inferior *inf)
0ef643c8 1006{
a8123151
JB
1007 struct ada_tasks_inferior_data *data;
1008 int taskno, nb_tasks;
1009 int taskno_arg = 0;
1010 struct cleanup *old_chain;
6005b210 1011 int nb_columns;
0ef643c8 1012
a8123151
JB
1013 if (ada_build_task_list () == 0)
1014 {
1015 ui_out_message (uiout, 0,
1016 _("Your application does not use any Ada tasks.\n"));
1017 return;
1018 }
0ef643c8 1019
a8123151
JB
1020 if (arg_str != NULL && arg_str[0] != '\0')
1021 taskno_arg = value_as_long (parse_and_eval (arg_str));
0ef643c8 1022
6005b210
JB
1023 if (ui_out_is_mi_like_p (uiout))
1024 /* In GDB/MI mode, we want to provide the thread ID corresponding
1025 to each task. This allows clients to quickly find the thread
1026 associated to any task, which is helpful for commands that
1027 take a --thread argument. However, in order to be able to
1028 provide that thread ID, the thread list must be up to date
1029 first. */
1030 target_find_new_threads ();
1031
a8123151 1032 data = get_ada_tasks_inferior_data (inf);
6cda5a20
JB
1033
1034 /* Compute the number of tasks that are going to be displayed
1035 in the output. If an argument was given, there will be
1036 at most 1 entry. Otherwise, there will be as many entries
1037 as we have tasks. */
1038 if (taskno_arg)
1039 {
1040 if (taskno_arg > 0
1041 && taskno_arg <= VEC_length (ada_task_info_s, data->task_list))
1042 nb_tasks = 1;
1043 else
1044 nb_tasks = 0;
1045 }
1046 else
1047 nb_tasks = VEC_length (ada_task_info_s, data->task_list);
0ef643c8 1048
6005b210
JB
1049 nb_columns = ui_out_is_mi_like_p (uiout) ? 8 : 7;
1050 old_chain = make_cleanup_ui_out_table_begin_end (uiout, nb_columns,
1051 nb_tasks, "tasks");
a8123151
JB
1052 ui_out_table_header (uiout, 1, ui_left, "current", "");
1053 ui_out_table_header (uiout, 3, ui_right, "id", "ID");
1054 ui_out_table_header (uiout, 9, ui_right, "task-id", "TID");
6005b210
JB
1055 /* The following column is provided in GDB/MI mode only because
1056 it is only really useful in that mode, and also because it
1057 allows us to keep the CLI output shorter and more compact. */
1058 if (ui_out_is_mi_like_p (uiout))
1059 ui_out_table_header (uiout, 4, ui_right, "thread-id", "");
a8123151
JB
1060 ui_out_table_header (uiout, 4, ui_right, "parent-id", "P-ID");
1061 ui_out_table_header (uiout, 3, ui_right, "priority", "Pri");
1062 ui_out_table_header (uiout, 22, ui_left, "state", "State");
1063 /* Use ui_noalign for the last column, to prevent the CLI uiout
1064 from printing an extra space at the end of each row. This
1065 is a bit of a hack, but does get the job done. */
1066 ui_out_table_header (uiout, 1, ui_noalign, "name", "Name");
1067 ui_out_table_body (uiout);
0ef643c8 1068
6cda5a20
JB
1069 for (taskno = 1;
1070 taskno <= VEC_length (ada_task_info_s, data->task_list);
1071 taskno++)
a8123151
JB
1072 {
1073 const struct ada_task_info *const task_info =
1074 VEC_index (ada_task_info_s, data->task_list, taskno - 1);
1075 int parent_id;
1076 struct cleanup *chain2;
0ef643c8 1077
a8123151 1078 gdb_assert (task_info != NULL);
0ef643c8 1079
a8123151
JB
1080 /* If the user asked for the output to be restricted
1081 to one task only, and this is not the task, skip
1082 to the next one. */
1083 if (taskno_arg && taskno != taskno_arg)
1084 continue;
0ef643c8 1085
a8123151 1086 chain2 = make_cleanup_ui_out_tuple_begin_end (uiout, NULL);
0ef643c8 1087
a8123151
JB
1088 /* Print a star if this task is the current task (or the task
1089 currently selected). */
1090 if (ptid_equal (task_info->ptid, inferior_ptid))
1091 ui_out_field_string (uiout, "current", "*");
1092 else
1093 ui_out_field_skip (uiout, "current");
0ef643c8 1094
a8123151
JB
1095 /* Print the task number. */
1096 ui_out_field_int (uiout, "id", taskno);
0ef643c8 1097
a8123151
JB
1098 /* Print the Task ID. */
1099 ui_out_field_fmt (uiout, "task-id", "%9lx", (long) task_info->task_id);
0ef643c8 1100
6005b210
JB
1101 /* Print the associated Thread ID. */
1102 if (ui_out_is_mi_like_p (uiout))
1103 {
1104 const int thread_id = pid_to_thread_id (task_info->ptid);
1105
1106 if (thread_id != 0)
1107 ui_out_field_int (uiout, "thread-id", thread_id);
1108 else
1109 /* This should never happen unless there is a bug somewhere,
1110 but be resilient when that happens. */
1111 ui_out_field_skip (uiout, "thread-id");
1112 }
1113
a8123151
JB
1114 /* Print the ID of the parent task. */
1115 parent_id = get_task_number_from_id (task_info->parent, inf);
1116 if (parent_id)
1117 ui_out_field_int (uiout, "parent-id", parent_id);
1118 else
1119 ui_out_field_skip (uiout, "parent-id");
1120
1121 /* Print the base priority of the task. */
1122 ui_out_field_int (uiout, "priority", task_info->priority);
1123
1124 /* Print the task current state. */
1125 if (task_info->caller_task)
1126 ui_out_field_fmt (uiout, "state",
1127 _("Accepting RV with %-4d"),
1128 get_task_number_from_id (task_info->caller_task,
1129 inf));
1130 else if (task_info->state == Entry_Caller_Sleep
1131 && task_info->called_task)
1132 ui_out_field_fmt (uiout, "state",
1133 _("Waiting on RV with %-3d"),
1134 get_task_number_from_id (task_info->called_task,
1135 inf));
1136 else
1137 ui_out_field_string (uiout, "state", task_states[task_info->state]);
1138
1139 /* Finally, print the task name. */
1140 ui_out_field_fmt (uiout, "name",
1141 "%s",
1142 task_info->name[0] != '\0' ? task_info->name
1143 : _("<no name>"));
1144
1145 ui_out_text (uiout, "\n");
1146 do_cleanups (chain2);
1147 }
1148
1149 do_cleanups (old_chain);
0ef643c8
JB
1150}
1151
e225eb91
JB
1152/* Print a detailed description of the Ada task whose ID is TASKNO_STR
1153 for the given inferior (INF). */
0ef643c8
JB
1154
1155static void
a8123151 1156info_task (struct ui_out *uiout, char *taskno_str, struct inferior *inf)
0ef643c8
JB
1157{
1158 const int taskno = value_as_long (parse_and_eval (taskno_str));
1159 struct ada_task_info *task_info;
1160 int parent_taskno = 0;
e225eb91 1161 struct ada_tasks_inferior_data *data = get_ada_tasks_inferior_data (inf);
0ef643c8 1162
a8123151
JB
1163 if (ada_build_task_list () == 0)
1164 {
1165 ui_out_message (uiout, 0,
1166 _("Your application does not use any Ada tasks.\n"));
1167 return;
1168 }
1169
e225eb91 1170 if (taskno <= 0 || taskno > VEC_length (ada_task_info_s, data->task_list))
0ef643c8
JB
1171 error (_("Task ID %d not known. Use the \"info tasks\" command to\n"
1172 "see the IDs of currently known tasks"), taskno);
e225eb91 1173 task_info = VEC_index (ada_task_info_s, data->task_list, taskno - 1);
0ef643c8
JB
1174
1175 /* Print the Ada task ID. */
5af949e3
UW
1176 printf_filtered (_("Ada Task: %s\n"),
1177 paddress (target_gdbarch, task_info->task_id));
0ef643c8
JB
1178
1179 /* Print the name of the task. */
1180 if (task_info->name[0] != '\0')
1181 printf_filtered (_("Name: %s\n"), task_info->name);
1182 else
1183 printf_filtered (_("<no name>\n"));
1184
1185 /* Print the TID and LWP. */
1186 printf_filtered (_("Thread: %#lx\n"), ptid_get_tid (task_info->ptid));
1187 printf_filtered (_("LWP: %#lx\n"), ptid_get_lwp (task_info->ptid));
1188
1189 /* Print who is the parent (if any). */
1190 if (task_info->parent != 0)
e225eb91 1191 parent_taskno = get_task_number_from_id (task_info->parent, inf);
0ef643c8
JB
1192 if (parent_taskno)
1193 {
1194 struct ada_task_info *parent =
e225eb91 1195 VEC_index (ada_task_info_s, data->task_list, parent_taskno - 1);
0ef643c8
JB
1196
1197 printf_filtered (_("Parent: %d"), parent_taskno);
1198 if (parent->name[0] != '\0')
1199 printf_filtered (" (%s)", parent->name);
1200 printf_filtered ("\n");
1201 }
1202 else
1203 printf_filtered (_("No parent\n"));
1204
1205 /* Print the base priority. */
1206 printf_filtered (_("Base Priority: %d\n"), task_info->priority);
1207
1208 /* print the task current state. */
1209 {
1210 int target_taskno = 0;
1211
1212 if (task_info->caller_task)
1213 {
e225eb91 1214 target_taskno = get_task_number_from_id (task_info->caller_task, inf);
0ef643c8
JB
1215 printf_filtered (_("State: Accepting rendezvous with %d"),
1216 target_taskno);
1217 }
1218 else if (task_info->state == Entry_Caller_Sleep && task_info->called_task)
1219 {
e225eb91 1220 target_taskno = get_task_number_from_id (task_info->called_task, inf);
0ef643c8
JB
1221 printf_filtered (_("State: Waiting on task %d's entry"),
1222 target_taskno);
1223 }
1224 else
d6b67a5e 1225 printf_filtered (_("State: %s"), _(long_task_states[task_info->state]));
0ef643c8
JB
1226
1227 if (target_taskno)
1228 {
1229 struct ada_task_info *target_task_info =
e225eb91 1230 VEC_index (ada_task_info_s, data->task_list, target_taskno - 1);
0ef643c8
JB
1231
1232 if (target_task_info->name[0] != '\0')
1233 printf_filtered (" (%s)", target_task_info->name);
1234 }
1235
1236 printf_filtered ("\n");
1237 }
1238}
1239
1240/* If ARG is empty or null, then print a list of all Ada tasks.
1241 Otherwise, print detailed information about the task whose ID
1242 is ARG.
1243
1244 Does nothing if the program doesn't use Ada tasking. */
1245
1246static void
1247info_tasks_command (char *arg, int from_tty)
1248{
79779fa9 1249 struct ui_out *uiout = current_uiout;
0ef643c8 1250
0ef643c8 1251 if (arg == NULL || *arg == '\0')
a8123151 1252 print_ada_task_info (uiout, NULL, current_inferior ());
0ef643c8 1253 else
a8123151 1254 info_task (uiout, arg, current_inferior ());
0ef643c8
JB
1255}
1256
1257/* Print a message telling the user id of the current task.
1258 This function assumes that tasking is in use in the inferior. */
1259
1260static void
1261display_current_task_id (void)
1262{
1263 const int current_task = ada_get_task_number (inferior_ptid);
1264
1265 if (current_task == 0)
1266 printf_filtered (_("[Current task is unknown]\n"));
1267 else
1268 printf_filtered (_("[Current task is %d]\n"), current_task);
1269}
1270
1271/* Parse and evaluate TIDSTR into a task id, and try to switch to
1272 that task. Print an error message if the task switch failed. */
1273
1274static void
e225eb91 1275task_command_1 (char *taskno_str, int from_tty, struct inferior *inf)
0ef643c8
JB
1276{
1277 const int taskno = value_as_long (parse_and_eval (taskno_str));
1278 struct ada_task_info *task_info;
e225eb91 1279 struct ada_tasks_inferior_data *data = get_ada_tasks_inferior_data (inf);
0ef643c8 1280
e225eb91 1281 if (taskno <= 0 || taskno > VEC_length (ada_task_info_s, data->task_list))
0ef643c8
JB
1282 error (_("Task ID %d not known. Use the \"info tasks\" command to\n"
1283 "see the IDs of currently known tasks"), taskno);
e225eb91 1284 task_info = VEC_index (ada_task_info_s, data->task_list, taskno - 1);
0ef643c8
JB
1285
1286 if (!ada_task_is_alive (task_info))
1287 error (_("Cannot switch to task %d: Task is no longer running"), taskno);
1288
5e7b5f74
JB
1289 /* On some platforms, the thread list is not updated until the user
1290 performs a thread-related operation (by using the "info threads"
1291 command, for instance). So this thread list may not be up to date
1292 when the user attempts this task switch. Since we cannot switch
1293 to the thread associated to our task if GDB does not know about
1294 that thread, we need to make sure that any new threads gets added
1295 to the thread list. */
1296 target_find_new_threads ();
1297
b8d088ac
JB
1298 /* Verify that the ptid of the task we want to switch to is valid
1299 (in other words, a ptid that GDB knows about). Otherwise, we will
1300 cause an assertion failure later on, when we try to determine
1301 the ptid associated thread_info data. We should normally never
1302 encounter such an error, but the wrong ptid can actually easily be
1303 computed if target_get_ada_task_ptid has not been implemented for
1304 our target (yet). Rather than cause an assertion error in that case,
1305 it's nicer for the user to just refuse to perform the task switch. */
1306 if (!find_thread_ptid (task_info->ptid))
1307 error (_("Unable to compute thread ID for task %d.\n"
1308 "Cannot switch to this task."),
1309 taskno);
1310
0ef643c8
JB
1311 switch_to_thread (task_info->ptid);
1312 ada_find_printable_frame (get_selected_frame (NULL));
1313 printf_filtered (_("[Switching to task %d]\n"), taskno);
1314 print_stack_frame (get_selected_frame (NULL),
1315 frame_relative_level (get_selected_frame (NULL)), 1);
1316}
1317
1318
1319/* Print the ID of the current task if TASKNO_STR is empty or NULL.
1320 Otherwise, switch to the task indicated by TASKNO_STR. */
1321
1322static void
1323task_command (char *taskno_str, int from_tty)
1324{
79779fa9 1325 struct ui_out *uiout = current_uiout;
0ef643c8 1326
79779fa9
JB
1327 if (ada_build_task_list () == 0)
1328 {
1329 ui_out_message (uiout, 0,
1330 _("Your application does not use any Ada tasks.\n"));
1331 return;
1332 }
0ef643c8
JB
1333
1334 if (taskno_str == NULL || taskno_str[0] == '\0')
1335 display_current_task_id ();
1336 else
1337 {
1338 /* Task switching in core files doesn't work, either because:
1339 1. Thread support is not implemented with core files
1340 2. Thread support is implemented, but the thread IDs created
1341 after having read the core file are not the same as the ones
1342 that were used during the program life, before the crash.
1343 As a consequence, there is no longer a way for the debugger
1344 to find the associated thead ID of any given Ada task.
1345 So, instead of attempting a task switch without giving the user
1346 any clue as to what might have happened, just error-out with
1347 a message explaining that this feature is not supported. */
1348 if (!target_has_execution)
1349 error (_("\
1350Task switching not supported when debugging from core files\n\
1351(use thread support instead)"));
e225eb91 1352 task_command_1 (taskno_str, from_tty, current_inferior ());
0ef643c8
JB
1353 }
1354}
1355
e225eb91
JB
1356/* Indicate that the given inferior's task list may have changed,
1357 so invalidate the cache. */
0ef643c8 1358
2c0b251b 1359static void
e225eb91 1360ada_task_list_changed (struct inferior *inf)
0ef643c8 1361{
e225eb91
JB
1362 struct ada_tasks_inferior_data *data = get_ada_tasks_inferior_data (inf);
1363
1364 data->task_list_valid_p = 0;
0ef643c8
JB
1365}
1366
6da9ca05
JB
1367/* Invalidate the per-program-space data. */
1368
1369static void
1370ada_tasks_invalidate_pspace_data (struct program_space *pspace)
1371{
1372 get_ada_tasks_pspace_data (pspace)->initialized_p = 0;
1373}
1374
e225eb91
JB
1375/* Invalidate the per-inferior data. */
1376
1377static void
1378ada_tasks_invalidate_inferior_data (struct inferior *inf)
1379{
1380 struct ada_tasks_inferior_data *data = get_ada_tasks_inferior_data (inf);
1381
1382 data->known_tasks_kind = ADA_TASKS_UNKNOWN;
1383 data->task_list_valid_p = 0;
1384}
1385
0ef643c8
JB
1386/* The 'normal_stop' observer notification callback. */
1387
1388static void
1d33d6ba 1389ada_normal_stop_observer (struct bpstats *unused_args, int unused_args2)
0ef643c8
JB
1390{
1391 /* The inferior has been resumed, and just stopped. This means that
1392 our task_list needs to be recomputed before it can be used again. */
e225eb91 1393 ada_task_list_changed (current_inferior ());
0ef643c8
JB
1394}
1395
1396/* A routine to be called when the objfiles have changed. */
1397
2c0b251b 1398static void
0ef643c8
JB
1399ada_new_objfile_observer (struct objfile *objfile)
1400{
e225eb91 1401 struct inferior *inf;
0ef643c8 1402
6da9ca05 1403 /* Invalidate the relevant data in our program-space data. */
0ef643c8 1404
6da9ca05
JB
1405 if (objfile == NULL)
1406 {
1407 /* All objfiles are being cleared, so we should clear all
1408 our caches for all program spaces. */
1409 struct program_space *pspace;
1410
1411 for (pspace = program_spaces; pspace != NULL; pspace = pspace->next)
1412 ada_tasks_invalidate_pspace_data (pspace);
1413 }
1414 else
1415 {
1416 /* The associated program-space data might have changed after
1417 this objfile was added. Invalidate all cached data. */
1418 ada_tasks_invalidate_pspace_data (objfile->pspace);
1419 }
e225eb91
JB
1420
1421 /* Invalidate the per-inferior cache for all inferiors using
1422 this objfile (or, in other words, for all inferiors who have
1423 the same program-space as the objfile's program space).
1424 If all objfiles are being cleared (OBJFILE is NULL), then
1425 clear the caches for all inferiors. */
1426
1427 for (inf = inferior_list; inf != NULL; inf = inf->next)
1428 if (objfile == NULL || inf->pspace == objfile->pspace)
1429 ada_tasks_invalidate_inferior_data (inf);
0ef643c8
JB
1430}
1431
2c0b251b
PA
1432/* Provide a prototype to silence -Wmissing-prototypes. */
1433extern initialize_file_ftype _initialize_tasks;
1434
0ef643c8
JB
1435void
1436_initialize_tasks (void)
1437{
6da9ca05 1438 ada_tasks_pspace_data_handle = register_program_space_data ();
e225eb91 1439 ada_tasks_inferior_data_handle = register_inferior_data ();
6da9ca05 1440
0ef643c8
JB
1441 /* Attach various observers. */
1442 observer_attach_normal_stop (ada_normal_stop_observer);
1443 observer_attach_new_objfile (ada_new_objfile_observer);
1444
1445 /* Some new commands provided by this module. */
1446 add_info ("tasks", info_tasks_command,
1447 _("Provide information about all known Ada tasks"));
1448 add_cmd ("task", class_run, task_command,
1449 _("Use this command to switch between Ada tasks.\n\
1450Without argument, this command simply prints the current task ID"),
1451 &cmdlist);
1452}
1453
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