gdb: Convert language la_watch_location_expression field to a method
[deliverable/binutils-gdb.git] / gdb / progspace.c
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1/* Program and address space management, for GDB, the GNU debugger.
2
3 Copyright (C) 2009-2020 Free Software Foundation, Inc.
4
5 This file is part of GDB.
6
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3 of the License, or
10 (at your option) any later version.
11
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
19
20#include "defs.h"
21#include "gdbcmd.h"
22#include "objfiles.h"
23#include "arch-utils.h"
24#include "gdbcore.h"
25#include "solib.h"
26#include "solist.h"
27#include "gdbthread.h"
28#include "inferior.h"
29#include <algorithm>
30
31/* The last program space number assigned. */
32int last_program_space_num = 0;
33
34/* The head of the program spaces list. */
35std::vector<struct program_space *> program_spaces;
36
37/* Pointer to the current program space. */
38struct program_space *current_program_space;
39
40/* The last address space number assigned. */
41static int highest_address_space_num;
42
43\f
44
45/* Keep a registry of per-program_space data-pointers required by other GDB
46 modules. */
47
48DEFINE_REGISTRY (program_space, REGISTRY_ACCESS_FIELD)
49
50/* Keep a registry of per-address_space data-pointers required by other GDB
51 modules. */
52
53DEFINE_REGISTRY (address_space, REGISTRY_ACCESS_FIELD)
54
55\f
56
57/* Create a new address space object, and add it to the list. */
58
59struct address_space *
60new_address_space (void)
61{
62 struct address_space *aspace;
63
64 aspace = XCNEW (struct address_space);
65 aspace->num = ++highest_address_space_num;
66 address_space_alloc_data (aspace);
67
68 return aspace;
69}
70
71/* Maybe create a new address space object, and add it to the list, or
72 return a pointer to an existing address space, in case inferiors
73 share an address space on this target system. */
74
75struct address_space *
76maybe_new_address_space (void)
77{
78 int shared_aspace = gdbarch_has_shared_address_space (target_gdbarch ());
79
80 if (shared_aspace)
81 {
82 /* Just return the first in the list. */
83 return program_spaces[0]->aspace;
84 }
85
86 return new_address_space ();
87}
88
89static void
90free_address_space (struct address_space *aspace)
91{
92 address_space_free_data (aspace);
93 xfree (aspace);
94}
95
96int
97address_space_num (struct address_space *aspace)
98{
99 return aspace->num;
100}
101
102/* Start counting over from scratch. */
103
104static void
105init_address_spaces (void)
106{
107 highest_address_space_num = 0;
108}
109
110\f
111
112/* Remove a program space from the program spaces list. */
113
114static void
115remove_program_space (program_space *pspace)
116{
117 gdb_assert (pspace != NULL);
118
119 auto iter = std::find (program_spaces.begin (), program_spaces.end (),
120 pspace);
121 gdb_assert (iter != program_spaces.end ());
122 program_spaces.erase (iter);
123}
124
125/* See progspace.h. */
126
127program_space::program_space (address_space *aspace_)
128 : num (++last_program_space_num),
129 aspace (aspace_)
130{
131 program_space_alloc_data (this);
132
133 program_spaces.push_back (this);
134}
135
136/* See progspace.h. */
137
138program_space::~program_space ()
139{
140 gdb_assert (this != current_program_space);
141
142 remove_program_space (this);
143
144 scoped_restore_current_program_space restore_pspace;
145
146 set_current_program_space (this);
147
148 breakpoint_program_space_exit (this);
149 no_shared_libraries (NULL, 0);
150 exec_close ();
151 free_all_objfiles ();
152 /* Defer breakpoint re-set because we don't want to create new
153 locations for this pspace which we're tearing down. */
154 clear_symtab_users (SYMFILE_DEFER_BP_RESET);
155 if (!gdbarch_has_shared_address_space (target_gdbarch ()))
156 free_address_space (this->aspace);
157 clear_section_table (&this->target_sections);
158 clear_program_space_solib_cache (this);
159 /* Discard any data modules have associated with the PSPACE. */
160 program_space_free_data (this);
161}
162
163/* See progspace.h. */
164
165void
166program_space::free_all_objfiles ()
167{
168 /* Any objfile reference would become stale. */
169 for (struct so_list *so : current_program_space->solibs ())
170 gdb_assert (so->objfile == NULL);
171
172 while (!objfiles_list.empty ())
173 objfiles_list.front ()->unlink ();
174}
175
176/* See progspace.h. */
177
178void
179program_space::add_objfile (std::shared_ptr<objfile> &&objfile,
180 struct objfile *before)
181{
182 if (before == nullptr)
183 objfiles_list.push_back (std::move (objfile));
184 else
185 {
186 auto iter = std::find_if (objfiles_list.begin (), objfiles_list.end (),
187 [=] (const std::shared_ptr<::objfile> &objf)
188 {
189 return objf.get () == before;
190 });
191 gdb_assert (iter != objfiles_list.end ());
192 objfiles_list.insert (iter, std::move (objfile));
193 }
194}
195
196/* See progspace.h. */
197
198void
199program_space::remove_objfile (struct objfile *objfile)
200{
201 auto iter = std::find_if (objfiles_list.begin (), objfiles_list.end (),
202 [=] (const std::shared_ptr<::objfile> &objf)
203 {
204 return objf.get () == objfile;
205 });
206 gdb_assert (iter != objfiles_list.end ());
207 objfiles_list.erase (iter);
208
209 if (objfile == symfile_object_file)
210 symfile_object_file = NULL;
211}
212
213/* See progspace.h. */
214
215next_adapter<struct so_list>
216program_space::solibs () const
217{
218 return next_adapter<struct so_list> (this->so_list);
219}
220
221/* Copies program space SRC to DEST. Copies the main executable file,
222 and the main symbol file. Returns DEST. */
223
224struct program_space *
225clone_program_space (struct program_space *dest, struct program_space *src)
226{
227 scoped_restore_current_program_space restore_pspace;
228
229 set_current_program_space (dest);
230
231 if (src->pspace_exec_filename != NULL)
232 exec_file_attach (src->pspace_exec_filename, 0);
233
234 if (src->symfile_object_file != NULL)
235 symbol_file_add_main (objfile_name (src->symfile_object_file),
236 SYMFILE_DEFER_BP_RESET);
237
238 return dest;
239}
240
241/* Sets PSPACE as the current program space. It is the caller's
242 responsibility to make sure that the currently selected
243 inferior/thread matches the selected program space. */
244
245void
246set_current_program_space (struct program_space *pspace)
247{
248 if (current_program_space == pspace)
249 return;
250
251 gdb_assert (pspace != NULL);
252
253 current_program_space = pspace;
254
255 /* Different symbols change our view of the frame chain. */
256 reinit_frame_cache ();
257}
258
259/* Returns true iff there's no inferior bound to PSPACE. */
260
261int
262program_space_empty_p (struct program_space *pspace)
263{
264 if (find_inferior_for_program_space (pspace) != NULL)
265 return 0;
266
267 return 1;
268}
269
270/* Prints the list of program spaces and their details on UIOUT. If
271 REQUESTED is not -1, it's the ID of the pspace that should be
272 printed. Otherwise, all spaces are printed. */
273
274static void
275print_program_space (struct ui_out *uiout, int requested)
276{
277 int count = 0;
278
279 /* Compute number of pspaces we will print. */
280 for (struct program_space *pspace : program_spaces)
281 {
282 if (requested != -1 && pspace->num != requested)
283 continue;
284
285 ++count;
286 }
287
288 /* There should always be at least one. */
289 gdb_assert (count > 0);
290
291 ui_out_emit_table table_emitter (uiout, 3, count, "pspaces");
292 uiout->table_header (1, ui_left, "current", "");
293 uiout->table_header (4, ui_left, "id", "Id");
294 uiout->table_header (17, ui_left, "exec", "Executable");
295 uiout->table_body ();
296
297 for (struct program_space *pspace : program_spaces)
298 {
299 struct inferior *inf;
300 int printed_header;
301
302 if (requested != -1 && requested != pspace->num)
303 continue;
304
305 ui_out_emit_tuple tuple_emitter (uiout, NULL);
306
307 if (pspace == current_program_space)
308 uiout->field_string ("current", "*");
309 else
310 uiout->field_skip ("current");
311
312 uiout->field_signed ("id", pspace->num);
313
314 if (pspace->pspace_exec_filename)
315 uiout->field_string ("exec", pspace->pspace_exec_filename);
316 else
317 uiout->field_skip ("exec");
318
319 /* Print extra info that doesn't really fit in tabular form.
320 Currently, we print the list of inferiors bound to a pspace.
321 There can be more than one inferior bound to the same pspace,
322 e.g., both parent/child inferiors in a vfork, or, on targets
323 that share pspaces between inferiors. */
324 printed_header = 0;
325 for (inf = inferior_list; inf; inf = inf->next)
326 if (inf->pspace == pspace)
327 {
328 if (!printed_header)
329 {
330 printed_header = 1;
331 printf_filtered ("\n\tBound inferiors: ID %d (%s)",
332 inf->num,
333 target_pid_to_str (ptid_t (inf->pid)).c_str ());
334 }
335 else
336 printf_filtered (", ID %d (%s)",
337 inf->num,
338 target_pid_to_str (ptid_t (inf->pid)).c_str ());
339 }
340
341 uiout->text ("\n");
342 }
343}
344
345/* Boolean test for an already-known program space id. */
346
347static int
348valid_program_space_id (int num)
349{
350 for (struct program_space *pspace : program_spaces)
351 if (pspace->num == num)
352 return 1;
353
354 return 0;
355}
356
357/* If ARGS is NULL or empty, print information about all program
358 spaces. Otherwise, ARGS is a text representation of a LONG
359 indicating which the program space to print information about. */
360
361static void
362maintenance_info_program_spaces_command (const char *args, int from_tty)
363{
364 int requested = -1;
365
366 if (args && *args)
367 {
368 requested = parse_and_eval_long (args);
369 if (!valid_program_space_id (requested))
370 error (_("program space ID %d not known."), requested);
371 }
372
373 print_program_space (current_uiout, requested);
374}
375
376/* Update all program spaces matching to address spaces. The user may
377 have created several program spaces, and loaded executables into
378 them before connecting to the target interface that will create the
379 inferiors. All that happens before GDB has a chance to know if the
380 inferiors will share an address space or not. Call this after
381 having connected to the target interface and having fetched the
382 target description, to fixup the program/address spaces mappings.
383
384 It is assumed that there are no bound inferiors yet, otherwise,
385 they'd be left with stale referenced to released aspaces. */
386
387void
388update_address_spaces (void)
389{
390 int shared_aspace = gdbarch_has_shared_address_space (target_gdbarch ());
391 struct inferior *inf;
392
393 init_address_spaces ();
394
395 if (shared_aspace)
396 {
397 struct address_space *aspace = new_address_space ();
398
399 free_address_space (current_program_space->aspace);
400 for (struct program_space *pspace : program_spaces)
401 pspace->aspace = aspace;
402 }
403 else
404 for (struct program_space *pspace : program_spaces)
405 {
406 free_address_space (pspace->aspace);
407 pspace->aspace = new_address_space ();
408 }
409
410 for (inf = inferior_list; inf; inf = inf->next)
411 if (gdbarch_has_global_solist (target_gdbarch ()))
412 inf->aspace = maybe_new_address_space ();
413 else
414 inf->aspace = inf->pspace->aspace;
415}
416
417\f
418
419/* See progspace.h. */
420
421void
422clear_program_space_solib_cache (struct program_space *pspace)
423{
424 pspace->added_solibs.clear ();
425 pspace->deleted_solibs.clear ();
426}
427
428\f
429
430void
431initialize_progspace (void)
432{
433 add_cmd ("program-spaces", class_maintenance,
434 maintenance_info_program_spaces_command,
435 _("Info about currently known program spaces."),
436 &maintenanceinfolist);
437
438 /* There's always one program space. Note that this function isn't
439 an automatic _initialize_foo function, since other
440 _initialize_foo routines may need to install their per-pspace
441 data keys. We can only allocate a progspace when all those
442 modules have done that. Do this before
443 initialize_current_architecture, because that accesses exec_bfd,
444 which in turn dereferences current_program_space. */
445 current_program_space = new program_space (new_address_space ());
446}
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