* syms.c (_bfd_stab_section_find_nearest_line): Look at the
[deliverable/binutils-gdb.git] / gdb / target.c
1 /* Select target systems and architectures at runtime for GDB.
2
3 Copyright (C) 1990, 1991, 1992, 1993, 1994, 1995, 1996, 1997, 1998, 1999,
4 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007
5 Free Software Foundation, Inc.
6
7 Contributed by Cygnus Support.
8
9 This file is part of GDB.
10
11 This program is free software; you can redistribute it and/or modify
12 it under the terms of the GNU General Public License as published by
13 the Free Software Foundation; either version 3 of the License, or
14 (at your option) any later version.
15
16 This program is distributed in the hope that it will be useful,
17 but WITHOUT ANY WARRANTY; without even the implied warranty of
18 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
19 GNU General Public License for more details.
20
21 You should have received a copy of the GNU General Public License
22 along with this program. If not, see <http://www.gnu.org/licenses/>. */
23
24 #include "defs.h"
25 #include <errno.h>
26 #include "gdb_string.h"
27 #include "target.h"
28 #include "gdbcmd.h"
29 #include "symtab.h"
30 #include "inferior.h"
31 #include "bfd.h"
32 #include "symfile.h"
33 #include "objfiles.h"
34 #include "gdb_wait.h"
35 #include "dcache.h"
36 #include <signal.h>
37 #include "regcache.h"
38 #include "gdb_assert.h"
39 #include "gdbcore.h"
40 #include "exceptions.h"
41 #include "target-descriptions.h"
42
43 static void target_info (char *, int);
44
45 static void maybe_kill_then_attach (char *, int);
46
47 static void kill_or_be_killed (int);
48
49 static void default_terminal_info (char *, int);
50
51 static int default_region_ok_for_hw_watchpoint (CORE_ADDR, int);
52
53 static int nosymbol (char *, CORE_ADDR *);
54
55 static void tcomplain (void) ATTR_NORETURN;
56
57 static int nomemory (CORE_ADDR, char *, int, int, struct target_ops *);
58
59 static int return_zero (void);
60
61 static int return_one (void);
62
63 static int return_minus_one (void);
64
65 void target_ignore (void);
66
67 static void target_command (char *, int);
68
69 static struct target_ops *find_default_run_target (char *);
70
71 static void nosupport_runtime (void);
72
73 static LONGEST default_xfer_partial (struct target_ops *ops,
74 enum target_object object,
75 const char *annex, gdb_byte *readbuf,
76 const gdb_byte *writebuf,
77 ULONGEST offset, LONGEST len);
78
79 static LONGEST current_xfer_partial (struct target_ops *ops,
80 enum target_object object,
81 const char *annex, gdb_byte *readbuf,
82 const gdb_byte *writebuf,
83 ULONGEST offset, LONGEST len);
84
85 static LONGEST target_xfer_partial (struct target_ops *ops,
86 enum target_object object,
87 const char *annex,
88 void *readbuf, const void *writebuf,
89 ULONGEST offset, LONGEST len);
90
91 static void init_dummy_target (void);
92
93 static struct target_ops debug_target;
94
95 static void debug_to_open (char *, int);
96
97 static void debug_to_close (int);
98
99 static void debug_to_attach (char *, int);
100
101 static void debug_to_detach (char *, int);
102
103 static void debug_to_resume (ptid_t, int, enum target_signal);
104
105 static ptid_t debug_to_wait (ptid_t, struct target_waitstatus *);
106
107 static void debug_to_fetch_registers (struct regcache *, int);
108
109 static void debug_to_store_registers (struct regcache *, int);
110
111 static void debug_to_prepare_to_store (struct regcache *);
112
113 static void debug_to_files_info (struct target_ops *);
114
115 static int debug_to_insert_breakpoint (struct bp_target_info *);
116
117 static int debug_to_remove_breakpoint (struct bp_target_info *);
118
119 static int debug_to_can_use_hw_breakpoint (int, int, int);
120
121 static int debug_to_insert_hw_breakpoint (struct bp_target_info *);
122
123 static int debug_to_remove_hw_breakpoint (struct bp_target_info *);
124
125 static int debug_to_insert_watchpoint (CORE_ADDR, int, int);
126
127 static int debug_to_remove_watchpoint (CORE_ADDR, int, int);
128
129 static int debug_to_stopped_by_watchpoint (void);
130
131 static int debug_to_stopped_data_address (struct target_ops *, CORE_ADDR *);
132
133 static int debug_to_region_ok_for_hw_watchpoint (CORE_ADDR, int);
134
135 static void debug_to_terminal_init (void);
136
137 static void debug_to_terminal_inferior (void);
138
139 static void debug_to_terminal_ours_for_output (void);
140
141 static void debug_to_terminal_save_ours (void);
142
143 static void debug_to_terminal_ours (void);
144
145 static void debug_to_terminal_info (char *, int);
146
147 static void debug_to_kill (void);
148
149 static void debug_to_load (char *, int);
150
151 static int debug_to_lookup_symbol (char *, CORE_ADDR *);
152
153 static void debug_to_mourn_inferior (void);
154
155 static int debug_to_can_run (void);
156
157 static void debug_to_notice_signals (ptid_t);
158
159 static int debug_to_thread_alive (ptid_t);
160
161 static void debug_to_stop (void);
162
163 /* NOTE: cagney/2004-09-29: Many targets reference this variable in
164 wierd and mysterious ways. Putting the variable here lets those
165 wierd and mysterious ways keep building while they are being
166 converted to the inferior inheritance structure. */
167 struct target_ops deprecated_child_ops;
168
169 /* Pointer to array of target architecture structures; the size of the
170 array; the current index into the array; the allocated size of the
171 array. */
172 struct target_ops **target_structs;
173 unsigned target_struct_size;
174 unsigned target_struct_index;
175 unsigned target_struct_allocsize;
176 #define DEFAULT_ALLOCSIZE 10
177
178 /* The initial current target, so that there is always a semi-valid
179 current target. */
180
181 static struct target_ops dummy_target;
182
183 /* Top of target stack. */
184
185 static struct target_ops *target_stack;
186
187 /* The target structure we are currently using to talk to a process
188 or file or whatever "inferior" we have. */
189
190 struct target_ops current_target;
191
192 /* Command list for target. */
193
194 static struct cmd_list_element *targetlist = NULL;
195
196 /* Nonzero if we are debugging an attached outside process
197 rather than an inferior. */
198
199 int attach_flag;
200
201 /* Nonzero if we should trust readonly sections from the
202 executable when reading memory. */
203
204 static int trust_readonly = 0;
205
206 /* Non-zero if we want to see trace of target level stuff. */
207
208 static int targetdebug = 0;
209 static void
210 show_targetdebug (struct ui_file *file, int from_tty,
211 struct cmd_list_element *c, const char *value)
212 {
213 fprintf_filtered (file, _("Target debugging is %s.\n"), value);
214 }
215
216 static void setup_target_debug (void);
217
218 DCACHE *target_dcache;
219
220 /* The user just typed 'target' without the name of a target. */
221
222 static void
223 target_command (char *arg, int from_tty)
224 {
225 fputs_filtered ("Argument required (target name). Try `help target'\n",
226 gdb_stdout);
227 }
228
229 /* Add a possible target architecture to the list. */
230
231 void
232 add_target (struct target_ops *t)
233 {
234 /* Provide default values for all "must have" methods. */
235 if (t->to_xfer_partial == NULL)
236 t->to_xfer_partial = default_xfer_partial;
237
238 if (!target_structs)
239 {
240 target_struct_allocsize = DEFAULT_ALLOCSIZE;
241 target_structs = (struct target_ops **) xmalloc
242 (target_struct_allocsize * sizeof (*target_structs));
243 }
244 if (target_struct_size >= target_struct_allocsize)
245 {
246 target_struct_allocsize *= 2;
247 target_structs = (struct target_ops **)
248 xrealloc ((char *) target_structs,
249 target_struct_allocsize * sizeof (*target_structs));
250 }
251 target_structs[target_struct_size++] = t;
252
253 if (targetlist == NULL)
254 add_prefix_cmd ("target", class_run, target_command, _("\
255 Connect to a target machine or process.\n\
256 The first argument is the type or protocol of the target machine.\n\
257 Remaining arguments are interpreted by the target protocol. For more\n\
258 information on the arguments for a particular protocol, type\n\
259 `help target ' followed by the protocol name."),
260 &targetlist, "target ", 0, &cmdlist);
261 add_cmd (t->to_shortname, no_class, t->to_open, t->to_doc, &targetlist);
262 }
263
264 /* Stub functions */
265
266 void
267 target_ignore (void)
268 {
269 }
270
271 void
272 target_load (char *arg, int from_tty)
273 {
274 dcache_invalidate (target_dcache);
275 (*current_target.to_load) (arg, from_tty);
276 }
277
278 static int
279 nomemory (CORE_ADDR memaddr, char *myaddr, int len, int write,
280 struct target_ops *t)
281 {
282 errno = EIO; /* Can't read/write this location */
283 return 0; /* No bytes handled */
284 }
285
286 static void
287 tcomplain (void)
288 {
289 error (_("You can't do that when your target is `%s'"),
290 current_target.to_shortname);
291 }
292
293 void
294 noprocess (void)
295 {
296 error (_("You can't do that without a process to debug."));
297 }
298
299 static int
300 nosymbol (char *name, CORE_ADDR *addrp)
301 {
302 return 1; /* Symbol does not exist in target env */
303 }
304
305 static void
306 nosupport_runtime (void)
307 {
308 if (ptid_equal (inferior_ptid, null_ptid))
309 noprocess ();
310 else
311 error (_("No run-time support for this"));
312 }
313
314
315 static void
316 default_terminal_info (char *args, int from_tty)
317 {
318 printf_unfiltered (_("No saved terminal information.\n"));
319 }
320
321 /* This is the default target_create_inferior and target_attach function.
322 If the current target is executing, it asks whether to kill it off.
323 If this function returns without calling error(), it has killed off
324 the target, and the operation should be attempted. */
325
326 static void
327 kill_or_be_killed (int from_tty)
328 {
329 if (target_has_execution)
330 {
331 printf_unfiltered (_("You are already running a program:\n"));
332 target_files_info ();
333 if (query ("Kill it? "))
334 {
335 target_kill ();
336 if (target_has_execution)
337 error (_("Killing the program did not help."));
338 return;
339 }
340 else
341 {
342 error (_("Program not killed."));
343 }
344 }
345 tcomplain ();
346 }
347
348 static void
349 maybe_kill_then_attach (char *args, int from_tty)
350 {
351 kill_or_be_killed (from_tty);
352 target_attach (args, from_tty);
353 }
354
355 static void
356 maybe_kill_then_create_inferior (char *exec, char *args, char **env,
357 int from_tty)
358 {
359 kill_or_be_killed (0);
360 target_create_inferior (exec, args, env, from_tty);
361 }
362
363 /* Go through the target stack from top to bottom, copying over zero
364 entries in current_target, then filling in still empty entries. In
365 effect, we are doing class inheritance through the pushed target
366 vectors.
367
368 NOTE: cagney/2003-10-17: The problem with this inheritance, as it
369 is currently implemented, is that it discards any knowledge of
370 which target an inherited method originally belonged to.
371 Consequently, new new target methods should instead explicitly and
372 locally search the target stack for the target that can handle the
373 request. */
374
375 static void
376 update_current_target (void)
377 {
378 struct target_ops *t;
379
380 /* First, reset current's contents. */
381 memset (&current_target, 0, sizeof (current_target));
382
383 #define INHERIT(FIELD, TARGET) \
384 if (!current_target.FIELD) \
385 current_target.FIELD = (TARGET)->FIELD
386
387 for (t = target_stack; t; t = t->beneath)
388 {
389 INHERIT (to_shortname, t);
390 INHERIT (to_longname, t);
391 INHERIT (to_doc, t);
392 INHERIT (to_open, t);
393 INHERIT (to_close, t);
394 INHERIT (to_attach, t);
395 INHERIT (to_post_attach, t);
396 INHERIT (to_detach, t);
397 /* Do not inherit to_disconnect. */
398 INHERIT (to_resume, t);
399 INHERIT (to_wait, t);
400 INHERIT (to_fetch_registers, t);
401 INHERIT (to_store_registers, t);
402 INHERIT (to_prepare_to_store, t);
403 INHERIT (deprecated_xfer_memory, t);
404 INHERIT (to_files_info, t);
405 INHERIT (to_insert_breakpoint, t);
406 INHERIT (to_remove_breakpoint, t);
407 INHERIT (to_can_use_hw_breakpoint, t);
408 INHERIT (to_insert_hw_breakpoint, t);
409 INHERIT (to_remove_hw_breakpoint, t);
410 INHERIT (to_insert_watchpoint, t);
411 INHERIT (to_remove_watchpoint, t);
412 INHERIT (to_stopped_data_address, t);
413 INHERIT (to_stopped_by_watchpoint, t);
414 INHERIT (to_have_steppable_watchpoint, t);
415 INHERIT (to_have_continuable_watchpoint, t);
416 INHERIT (to_region_ok_for_hw_watchpoint, t);
417 INHERIT (to_terminal_init, t);
418 INHERIT (to_terminal_inferior, t);
419 INHERIT (to_terminal_ours_for_output, t);
420 INHERIT (to_terminal_ours, t);
421 INHERIT (to_terminal_save_ours, t);
422 INHERIT (to_terminal_info, t);
423 INHERIT (to_kill, t);
424 INHERIT (to_load, t);
425 INHERIT (to_lookup_symbol, t);
426 INHERIT (to_create_inferior, t);
427 INHERIT (to_post_startup_inferior, t);
428 INHERIT (to_acknowledge_created_inferior, t);
429 INHERIT (to_insert_fork_catchpoint, t);
430 INHERIT (to_remove_fork_catchpoint, t);
431 INHERIT (to_insert_vfork_catchpoint, t);
432 INHERIT (to_remove_vfork_catchpoint, t);
433 /* Do not inherit to_follow_fork. */
434 INHERIT (to_insert_exec_catchpoint, t);
435 INHERIT (to_remove_exec_catchpoint, t);
436 INHERIT (to_reported_exec_events_per_exec_call, t);
437 INHERIT (to_has_exited, t);
438 INHERIT (to_mourn_inferior, t);
439 INHERIT (to_can_run, t);
440 INHERIT (to_notice_signals, t);
441 INHERIT (to_thread_alive, t);
442 INHERIT (to_find_new_threads, t);
443 INHERIT (to_pid_to_str, t);
444 INHERIT (to_extra_thread_info, t);
445 INHERIT (to_stop, t);
446 /* Do not inherit to_xfer_partial. */
447 INHERIT (to_rcmd, t);
448 INHERIT (to_enable_exception_callback, t);
449 INHERIT (to_get_current_exception_event, t);
450 INHERIT (to_pid_to_exec_file, t);
451 INHERIT (to_stratum, t);
452 INHERIT (to_has_all_memory, t);
453 INHERIT (to_has_memory, t);
454 INHERIT (to_has_stack, t);
455 INHERIT (to_has_registers, t);
456 INHERIT (to_has_execution, t);
457 INHERIT (to_has_thread_control, t);
458 INHERIT (to_sections, t);
459 INHERIT (to_sections_end, t);
460 INHERIT (to_can_async_p, t);
461 INHERIT (to_is_async_p, t);
462 INHERIT (to_async, t);
463 INHERIT (to_async_mask_value, t);
464 INHERIT (to_find_memory_regions, t);
465 INHERIT (to_make_corefile_notes, t);
466 INHERIT (to_get_thread_local_address, t);
467 /* Do not inherit to_read_description. */
468 INHERIT (to_magic, t);
469 /* Do not inherit to_memory_map. */
470 /* Do not inherit to_flash_erase. */
471 /* Do not inherit to_flash_done. */
472 }
473 #undef INHERIT
474
475 /* Clean up a target struct so it no longer has any zero pointers in
476 it. Some entries are defaulted to a method that print an error,
477 others are hard-wired to a standard recursive default. */
478
479 #define de_fault(field, value) \
480 if (!current_target.field) \
481 current_target.field = value
482
483 de_fault (to_open,
484 (void (*) (char *, int))
485 tcomplain);
486 de_fault (to_close,
487 (void (*) (int))
488 target_ignore);
489 de_fault (to_attach,
490 maybe_kill_then_attach);
491 de_fault (to_post_attach,
492 (void (*) (int))
493 target_ignore);
494 de_fault (to_detach,
495 (void (*) (char *, int))
496 target_ignore);
497 de_fault (to_resume,
498 (void (*) (ptid_t, int, enum target_signal))
499 noprocess);
500 de_fault (to_wait,
501 (ptid_t (*) (ptid_t, struct target_waitstatus *))
502 noprocess);
503 de_fault (to_fetch_registers,
504 (void (*) (struct regcache *, int))
505 target_ignore);
506 de_fault (to_store_registers,
507 (void (*) (struct regcache *, int))
508 noprocess);
509 de_fault (to_prepare_to_store,
510 (void (*) (struct regcache *))
511 noprocess);
512 de_fault (deprecated_xfer_memory,
513 (int (*) (CORE_ADDR, gdb_byte *, int, int, struct mem_attrib *, struct target_ops *))
514 nomemory);
515 de_fault (to_files_info,
516 (void (*) (struct target_ops *))
517 target_ignore);
518 de_fault (to_insert_breakpoint,
519 memory_insert_breakpoint);
520 de_fault (to_remove_breakpoint,
521 memory_remove_breakpoint);
522 de_fault (to_can_use_hw_breakpoint,
523 (int (*) (int, int, int))
524 return_zero);
525 de_fault (to_insert_hw_breakpoint,
526 (int (*) (struct bp_target_info *))
527 return_minus_one);
528 de_fault (to_remove_hw_breakpoint,
529 (int (*) (struct bp_target_info *))
530 return_minus_one);
531 de_fault (to_insert_watchpoint,
532 (int (*) (CORE_ADDR, int, int))
533 return_minus_one);
534 de_fault (to_remove_watchpoint,
535 (int (*) (CORE_ADDR, int, int))
536 return_minus_one);
537 de_fault (to_stopped_by_watchpoint,
538 (int (*) (void))
539 return_zero);
540 de_fault (to_stopped_data_address,
541 (int (*) (struct target_ops *, CORE_ADDR *))
542 return_zero);
543 de_fault (to_region_ok_for_hw_watchpoint,
544 default_region_ok_for_hw_watchpoint);
545 de_fault (to_terminal_init,
546 (void (*) (void))
547 target_ignore);
548 de_fault (to_terminal_inferior,
549 (void (*) (void))
550 target_ignore);
551 de_fault (to_terminal_ours_for_output,
552 (void (*) (void))
553 target_ignore);
554 de_fault (to_terminal_ours,
555 (void (*) (void))
556 target_ignore);
557 de_fault (to_terminal_save_ours,
558 (void (*) (void))
559 target_ignore);
560 de_fault (to_terminal_info,
561 default_terminal_info);
562 de_fault (to_kill,
563 (void (*) (void))
564 noprocess);
565 de_fault (to_load,
566 (void (*) (char *, int))
567 tcomplain);
568 de_fault (to_lookup_symbol,
569 (int (*) (char *, CORE_ADDR *))
570 nosymbol);
571 de_fault (to_create_inferior,
572 maybe_kill_then_create_inferior);
573 de_fault (to_post_startup_inferior,
574 (void (*) (ptid_t))
575 target_ignore);
576 de_fault (to_acknowledge_created_inferior,
577 (void (*) (int))
578 target_ignore);
579 de_fault (to_insert_fork_catchpoint,
580 (void (*) (int))
581 tcomplain);
582 de_fault (to_remove_fork_catchpoint,
583 (int (*) (int))
584 tcomplain);
585 de_fault (to_insert_vfork_catchpoint,
586 (void (*) (int))
587 tcomplain);
588 de_fault (to_remove_vfork_catchpoint,
589 (int (*) (int))
590 tcomplain);
591 de_fault (to_insert_exec_catchpoint,
592 (void (*) (int))
593 tcomplain);
594 de_fault (to_remove_exec_catchpoint,
595 (int (*) (int))
596 tcomplain);
597 de_fault (to_reported_exec_events_per_exec_call,
598 (int (*) (void))
599 return_one);
600 de_fault (to_has_exited,
601 (int (*) (int, int, int *))
602 return_zero);
603 de_fault (to_mourn_inferior,
604 (void (*) (void))
605 noprocess);
606 de_fault (to_can_run,
607 return_zero);
608 de_fault (to_notice_signals,
609 (void (*) (ptid_t))
610 target_ignore);
611 de_fault (to_thread_alive,
612 (int (*) (ptid_t))
613 return_zero);
614 de_fault (to_find_new_threads,
615 (void (*) (void))
616 target_ignore);
617 de_fault (to_extra_thread_info,
618 (char *(*) (struct thread_info *))
619 return_zero);
620 de_fault (to_stop,
621 (void (*) (void))
622 target_ignore);
623 current_target.to_xfer_partial = current_xfer_partial;
624 de_fault (to_rcmd,
625 (void (*) (char *, struct ui_file *))
626 tcomplain);
627 de_fault (to_enable_exception_callback,
628 (struct symtab_and_line * (*) (enum exception_event_kind, int))
629 nosupport_runtime);
630 de_fault (to_get_current_exception_event,
631 (struct exception_event_record * (*) (void))
632 nosupport_runtime);
633 de_fault (to_pid_to_exec_file,
634 (char *(*) (int))
635 return_zero);
636 de_fault (to_can_async_p,
637 (int (*) (void))
638 return_zero);
639 de_fault (to_is_async_p,
640 (int (*) (void))
641 return_zero);
642 de_fault (to_async,
643 (void (*) (void (*) (enum inferior_event_type, void*), void*))
644 tcomplain);
645 current_target.to_read_description = NULL;
646 #undef de_fault
647
648 /* Finally, position the target-stack beneath the squashed
649 "current_target". That way code looking for a non-inherited
650 target method can quickly and simply find it. */
651 current_target.beneath = target_stack;
652 }
653
654 /* Mark OPS as a running target. This reverses the effect
655 of target_mark_exited. */
656
657 void
658 target_mark_running (struct target_ops *ops)
659 {
660 struct target_ops *t;
661
662 for (t = target_stack; t != NULL; t = t->beneath)
663 if (t == ops)
664 break;
665 if (t == NULL)
666 internal_error (__FILE__, __LINE__,
667 "Attempted to mark unpushed target \"%s\" as running",
668 ops->to_shortname);
669
670 ops->to_has_execution = 1;
671 ops->to_has_all_memory = 1;
672 ops->to_has_memory = 1;
673 ops->to_has_stack = 1;
674 ops->to_has_registers = 1;
675
676 update_current_target ();
677 }
678
679 /* Mark OPS as a non-running target. This reverses the effect
680 of target_mark_running. */
681
682 void
683 target_mark_exited (struct target_ops *ops)
684 {
685 struct target_ops *t;
686
687 for (t = target_stack; t != NULL; t = t->beneath)
688 if (t == ops)
689 break;
690 if (t == NULL)
691 internal_error (__FILE__, __LINE__,
692 "Attempted to mark unpushed target \"%s\" as running",
693 ops->to_shortname);
694
695 ops->to_has_execution = 0;
696 ops->to_has_all_memory = 0;
697 ops->to_has_memory = 0;
698 ops->to_has_stack = 0;
699 ops->to_has_registers = 0;
700
701 update_current_target ();
702 }
703
704 /* Push a new target type into the stack of the existing target accessors,
705 possibly superseding some of the existing accessors.
706
707 Result is zero if the pushed target ended up on top of the stack,
708 nonzero if at least one target is on top of it.
709
710 Rather than allow an empty stack, we always have the dummy target at
711 the bottom stratum, so we can call the function vectors without
712 checking them. */
713
714 int
715 push_target (struct target_ops *t)
716 {
717 struct target_ops **cur;
718
719 /* Check magic number. If wrong, it probably means someone changed
720 the struct definition, but not all the places that initialize one. */
721 if (t->to_magic != OPS_MAGIC)
722 {
723 fprintf_unfiltered (gdb_stderr,
724 "Magic number of %s target struct wrong\n",
725 t->to_shortname);
726 internal_error (__FILE__, __LINE__, _("failed internal consistency check"));
727 }
728
729 /* Find the proper stratum to install this target in. */
730 for (cur = &target_stack; (*cur) != NULL; cur = &(*cur)->beneath)
731 {
732 if ((int) (t->to_stratum) >= (int) (*cur)->to_stratum)
733 break;
734 }
735
736 /* If there's already targets at this stratum, remove them. */
737 /* FIXME: cagney/2003-10-15: I think this should be popping all
738 targets to CUR, and not just those at this stratum level. */
739 while ((*cur) != NULL && t->to_stratum == (*cur)->to_stratum)
740 {
741 /* There's already something at this stratum level. Close it,
742 and un-hook it from the stack. */
743 struct target_ops *tmp = (*cur);
744 (*cur) = (*cur)->beneath;
745 tmp->beneath = NULL;
746 target_close (tmp, 0);
747 }
748
749 /* We have removed all targets in our stratum, now add the new one. */
750 t->beneath = (*cur);
751 (*cur) = t;
752
753 update_current_target ();
754
755 if (targetdebug)
756 setup_target_debug ();
757
758 /* Not on top? */
759 return (t != target_stack);
760 }
761
762 /* Remove a target_ops vector from the stack, wherever it may be.
763 Return how many times it was removed (0 or 1). */
764
765 int
766 unpush_target (struct target_ops *t)
767 {
768 struct target_ops **cur;
769 struct target_ops *tmp;
770
771 /* Look for the specified target. Note that we assume that a target
772 can only occur once in the target stack. */
773
774 for (cur = &target_stack; (*cur) != NULL; cur = &(*cur)->beneath)
775 {
776 if ((*cur) == t)
777 break;
778 }
779
780 if ((*cur) == NULL)
781 return 0; /* Didn't find target_ops, quit now */
782
783 /* NOTE: cagney/2003-12-06: In '94 the close call was made
784 unconditional by moving it to before the above check that the
785 target was in the target stack (something about "Change the way
786 pushing and popping of targets work to support target overlays
787 and inheritance"). This doesn't make much sense - only open
788 targets should be closed. */
789 target_close (t, 0);
790
791 /* Unchain the target */
792 tmp = (*cur);
793 (*cur) = (*cur)->beneath;
794 tmp->beneath = NULL;
795
796 update_current_target ();
797
798 return 1;
799 }
800
801 void
802 pop_target (void)
803 {
804 target_close (&current_target, 0); /* Let it clean up */
805 if (unpush_target (target_stack) == 1)
806 return;
807
808 fprintf_unfiltered (gdb_stderr,
809 "pop_target couldn't find target %s\n",
810 current_target.to_shortname);
811 internal_error (__FILE__, __LINE__, _("failed internal consistency check"));
812 }
813
814 /* Using the objfile specified in BATON, find the address for the
815 current thread's thread-local storage with offset OFFSET. */
816 CORE_ADDR
817 target_translate_tls_address (struct objfile *objfile, CORE_ADDR offset)
818 {
819 volatile CORE_ADDR addr = 0;
820
821 if (target_get_thread_local_address_p ()
822 && gdbarch_fetch_tls_load_module_address_p (current_gdbarch))
823 {
824 ptid_t ptid = inferior_ptid;
825 volatile struct gdb_exception ex;
826
827 TRY_CATCH (ex, RETURN_MASK_ALL)
828 {
829 CORE_ADDR lm_addr;
830
831 /* Fetch the load module address for this objfile. */
832 lm_addr = gdbarch_fetch_tls_load_module_address (current_gdbarch,
833 objfile);
834 /* If it's 0, throw the appropriate exception. */
835 if (lm_addr == 0)
836 throw_error (TLS_LOAD_MODULE_NOT_FOUND_ERROR,
837 _("TLS load module not found"));
838
839 addr = target_get_thread_local_address (ptid, lm_addr, offset);
840 }
841 /* If an error occurred, print TLS related messages here. Otherwise,
842 throw the error to some higher catcher. */
843 if (ex.reason < 0)
844 {
845 int objfile_is_library = (objfile->flags & OBJF_SHARED);
846
847 switch (ex.error)
848 {
849 case TLS_NO_LIBRARY_SUPPORT_ERROR:
850 error (_("Cannot find thread-local variables in this thread library."));
851 break;
852 case TLS_LOAD_MODULE_NOT_FOUND_ERROR:
853 if (objfile_is_library)
854 error (_("Cannot find shared library `%s' in dynamic"
855 " linker's load module list"), objfile->name);
856 else
857 error (_("Cannot find executable file `%s' in dynamic"
858 " linker's load module list"), objfile->name);
859 break;
860 case TLS_NOT_ALLOCATED_YET_ERROR:
861 if (objfile_is_library)
862 error (_("The inferior has not yet allocated storage for"
863 " thread-local variables in\n"
864 "the shared library `%s'\n"
865 "for %s"),
866 objfile->name, target_pid_to_str (ptid));
867 else
868 error (_("The inferior has not yet allocated storage for"
869 " thread-local variables in\n"
870 "the executable `%s'\n"
871 "for %s"),
872 objfile->name, target_pid_to_str (ptid));
873 break;
874 case TLS_GENERIC_ERROR:
875 if (objfile_is_library)
876 error (_("Cannot find thread-local storage for %s, "
877 "shared library %s:\n%s"),
878 target_pid_to_str (ptid),
879 objfile->name, ex.message);
880 else
881 error (_("Cannot find thread-local storage for %s, "
882 "executable file %s:\n%s"),
883 target_pid_to_str (ptid),
884 objfile->name, ex.message);
885 break;
886 default:
887 throw_exception (ex);
888 break;
889 }
890 }
891 }
892 /* It wouldn't be wrong here to try a gdbarch method, too; finding
893 TLS is an ABI-specific thing. But we don't do that yet. */
894 else
895 error (_("Cannot find thread-local variables on this target"));
896
897 return addr;
898 }
899
900 #undef MIN
901 #define MIN(A, B) (((A) <= (B)) ? (A) : (B))
902
903 /* target_read_string -- read a null terminated string, up to LEN bytes,
904 from MEMADDR in target. Set *ERRNOP to the errno code, or 0 if successful.
905 Set *STRING to a pointer to malloc'd memory containing the data; the caller
906 is responsible for freeing it. Return the number of bytes successfully
907 read. */
908
909 int
910 target_read_string (CORE_ADDR memaddr, char **string, int len, int *errnop)
911 {
912 int tlen, origlen, offset, i;
913 gdb_byte buf[4];
914 int errcode = 0;
915 char *buffer;
916 int buffer_allocated;
917 char *bufptr;
918 unsigned int nbytes_read = 0;
919
920 gdb_assert (string);
921
922 /* Small for testing. */
923 buffer_allocated = 4;
924 buffer = xmalloc (buffer_allocated);
925 bufptr = buffer;
926
927 origlen = len;
928
929 while (len > 0)
930 {
931 tlen = MIN (len, 4 - (memaddr & 3));
932 offset = memaddr & 3;
933
934 errcode = target_read_memory (memaddr & ~3, buf, sizeof buf);
935 if (errcode != 0)
936 {
937 /* The transfer request might have crossed the boundary to an
938 unallocated region of memory. Retry the transfer, requesting
939 a single byte. */
940 tlen = 1;
941 offset = 0;
942 errcode = target_read_memory (memaddr, buf, 1);
943 if (errcode != 0)
944 goto done;
945 }
946
947 if (bufptr - buffer + tlen > buffer_allocated)
948 {
949 unsigned int bytes;
950 bytes = bufptr - buffer;
951 buffer_allocated *= 2;
952 buffer = xrealloc (buffer, buffer_allocated);
953 bufptr = buffer + bytes;
954 }
955
956 for (i = 0; i < tlen; i++)
957 {
958 *bufptr++ = buf[i + offset];
959 if (buf[i + offset] == '\000')
960 {
961 nbytes_read += i + 1;
962 goto done;
963 }
964 }
965
966 memaddr += tlen;
967 len -= tlen;
968 nbytes_read += tlen;
969 }
970 done:
971 *string = buffer;
972 if (errnop != NULL)
973 *errnop = errcode;
974 return nbytes_read;
975 }
976
977 /* Find a section containing ADDR. */
978 struct section_table *
979 target_section_by_addr (struct target_ops *target, CORE_ADDR addr)
980 {
981 struct section_table *secp;
982 for (secp = target->to_sections;
983 secp < target->to_sections_end;
984 secp++)
985 {
986 if (addr >= secp->addr && addr < secp->endaddr)
987 return secp;
988 }
989 return NULL;
990 }
991
992 /* Perform a partial memory transfer. The arguments and return
993 value are just as for target_xfer_partial. */
994
995 static LONGEST
996 memory_xfer_partial (struct target_ops *ops, void *readbuf, const void *writebuf,
997 ULONGEST memaddr, LONGEST len)
998 {
999 LONGEST res;
1000 int reg_len;
1001 struct mem_region *region;
1002
1003 /* Zero length requests are ok and require no work. */
1004 if (len == 0)
1005 return 0;
1006
1007 /* Try the executable file, if "trust-readonly-sections" is set. */
1008 if (readbuf != NULL && trust_readonly)
1009 {
1010 struct section_table *secp;
1011
1012 secp = target_section_by_addr (ops, memaddr);
1013 if (secp != NULL
1014 && (bfd_get_section_flags (secp->bfd, secp->the_bfd_section)
1015 & SEC_READONLY))
1016 return xfer_memory (memaddr, readbuf, len, 0, NULL, ops);
1017 }
1018
1019 /* Likewise for accesses to unmapped overlay sections. */
1020 if (readbuf != NULL && overlay_debugging)
1021 {
1022 asection *section = find_pc_overlay (memaddr);
1023 if (pc_in_unmapped_range (memaddr, section))
1024 return xfer_memory (memaddr, readbuf, len, 0, NULL, ops);
1025 }
1026
1027 /* Try GDB's internal data cache. */
1028 region = lookup_mem_region (memaddr);
1029 /* region->hi == 0 means there's no upper bound. */
1030 if (memaddr + len < region->hi || region->hi == 0)
1031 reg_len = len;
1032 else
1033 reg_len = region->hi - memaddr;
1034
1035 switch (region->attrib.mode)
1036 {
1037 case MEM_RO:
1038 if (writebuf != NULL)
1039 return -1;
1040 break;
1041
1042 case MEM_WO:
1043 if (readbuf != NULL)
1044 return -1;
1045 break;
1046
1047 case MEM_FLASH:
1048 /* We only support writing to flash during "load" for now. */
1049 if (writebuf != NULL)
1050 error (_("Writing to flash memory forbidden in this context"));
1051 break;
1052
1053 case MEM_NONE:
1054 return -1;
1055 }
1056
1057 if (region->attrib.cache)
1058 {
1059 /* FIXME drow/2006-08-09: This call discards OPS, so the raw
1060 memory request will start back at current_target. */
1061 if (readbuf != NULL)
1062 res = dcache_xfer_memory (target_dcache, memaddr, readbuf,
1063 reg_len, 0);
1064 else
1065 /* FIXME drow/2006-08-09: If we're going to preserve const
1066 correctness dcache_xfer_memory should take readbuf and
1067 writebuf. */
1068 res = dcache_xfer_memory (target_dcache, memaddr,
1069 (void *) writebuf,
1070 reg_len, 1);
1071 if (res <= 0)
1072 return -1;
1073 else
1074 return res;
1075 }
1076
1077 /* If none of those methods found the memory we wanted, fall back
1078 to a target partial transfer. Normally a single call to
1079 to_xfer_partial is enough; if it doesn't recognize an object
1080 it will call the to_xfer_partial of the next target down.
1081 But for memory this won't do. Memory is the only target
1082 object which can be read from more than one valid target.
1083 A core file, for instance, could have some of memory but
1084 delegate other bits to the target below it. So, we must
1085 manually try all targets. */
1086
1087 do
1088 {
1089 res = ops->to_xfer_partial (ops, TARGET_OBJECT_MEMORY, NULL,
1090 readbuf, writebuf, memaddr, reg_len);
1091 if (res > 0)
1092 return res;
1093
1094 /* We want to continue past core files to executables, but not
1095 past a running target's memory. */
1096 if (ops->to_has_all_memory)
1097 return res;
1098
1099 ops = ops->beneath;
1100 }
1101 while (ops != NULL);
1102
1103 /* If we still haven't got anything, return the last error. We
1104 give up. */
1105 return res;
1106 }
1107
1108 static LONGEST
1109 target_xfer_partial (struct target_ops *ops,
1110 enum target_object object, const char *annex,
1111 void *readbuf, const void *writebuf,
1112 ULONGEST offset, LONGEST len)
1113 {
1114 LONGEST retval;
1115
1116 gdb_assert (ops->to_xfer_partial != NULL);
1117
1118 /* If this is a memory transfer, let the memory-specific code
1119 have a look at it instead. Memory transfers are more
1120 complicated. */
1121 if (object == TARGET_OBJECT_MEMORY)
1122 retval = memory_xfer_partial (ops, readbuf, writebuf, offset, len);
1123 else
1124 {
1125 enum target_object raw_object = object;
1126
1127 /* If this is a raw memory transfer, request the normal
1128 memory object from other layers. */
1129 if (raw_object == TARGET_OBJECT_RAW_MEMORY)
1130 raw_object = TARGET_OBJECT_MEMORY;
1131
1132 retval = ops->to_xfer_partial (ops, raw_object, annex, readbuf,
1133 writebuf, offset, len);
1134 }
1135
1136 if (targetdebug)
1137 {
1138 const unsigned char *myaddr = NULL;
1139
1140 fprintf_unfiltered (gdb_stdlog,
1141 "%s:target_xfer_partial (%d, %s, 0x%lx, 0x%lx, 0x%s, %s) = %s",
1142 ops->to_shortname,
1143 (int) object,
1144 (annex ? annex : "(null)"),
1145 (long) readbuf, (long) writebuf,
1146 paddr_nz (offset), paddr_d (len), paddr_d (retval));
1147
1148 if (readbuf)
1149 myaddr = readbuf;
1150 if (writebuf)
1151 myaddr = writebuf;
1152 if (retval > 0 && myaddr != NULL)
1153 {
1154 int i;
1155
1156 fputs_unfiltered (", bytes =", gdb_stdlog);
1157 for (i = 0; i < retval; i++)
1158 {
1159 if ((((long) &(myaddr[i])) & 0xf) == 0)
1160 {
1161 if (targetdebug < 2 && i > 0)
1162 {
1163 fprintf_unfiltered (gdb_stdlog, " ...");
1164 break;
1165 }
1166 fprintf_unfiltered (gdb_stdlog, "\n");
1167 }
1168
1169 fprintf_unfiltered (gdb_stdlog, " %02x", myaddr[i] & 0xff);
1170 }
1171 }
1172
1173 fputc_unfiltered ('\n', gdb_stdlog);
1174 }
1175 return retval;
1176 }
1177
1178 /* Read LEN bytes of target memory at address MEMADDR, placing the results in
1179 GDB's memory at MYADDR. Returns either 0 for success or an errno value
1180 if any error occurs.
1181
1182 If an error occurs, no guarantee is made about the contents of the data at
1183 MYADDR. In particular, the caller should not depend upon partial reads
1184 filling the buffer with good data. There is no way for the caller to know
1185 how much good data might have been transfered anyway. Callers that can
1186 deal with partial reads should call target_read (which will retry until
1187 it makes no progress, and then return how much was transferred). */
1188
1189 int
1190 target_read_memory (CORE_ADDR memaddr, gdb_byte *myaddr, int len)
1191 {
1192 if (target_read (&current_target, TARGET_OBJECT_MEMORY, NULL,
1193 myaddr, memaddr, len) == len)
1194 return 0;
1195 else
1196 return EIO;
1197 }
1198
1199 int
1200 target_write_memory (CORE_ADDR memaddr, const gdb_byte *myaddr, int len)
1201 {
1202 if (target_write (&current_target, TARGET_OBJECT_MEMORY, NULL,
1203 myaddr, memaddr, len) == len)
1204 return 0;
1205 else
1206 return EIO;
1207 }
1208
1209 /* Fetch the target's memory map. */
1210
1211 VEC(mem_region_s) *
1212 target_memory_map (void)
1213 {
1214 VEC(mem_region_s) *result;
1215 struct mem_region *last_one, *this_one;
1216 int ix;
1217 struct target_ops *t;
1218
1219 if (targetdebug)
1220 fprintf_unfiltered (gdb_stdlog, "target_memory_map ()\n");
1221
1222 for (t = current_target.beneath; t != NULL; t = t->beneath)
1223 if (t->to_memory_map != NULL)
1224 break;
1225
1226 if (t == NULL)
1227 return NULL;
1228
1229 result = t->to_memory_map (t);
1230 if (result == NULL)
1231 return NULL;
1232
1233 qsort (VEC_address (mem_region_s, result),
1234 VEC_length (mem_region_s, result),
1235 sizeof (struct mem_region), mem_region_cmp);
1236
1237 /* Check that regions do not overlap. Simultaneously assign
1238 a numbering for the "mem" commands to use to refer to
1239 each region. */
1240 last_one = NULL;
1241 for (ix = 0; VEC_iterate (mem_region_s, result, ix, this_one); ix++)
1242 {
1243 this_one->number = ix;
1244
1245 if (last_one && last_one->hi > this_one->lo)
1246 {
1247 warning (_("Overlapping regions in memory map: ignoring"));
1248 VEC_free (mem_region_s, result);
1249 return NULL;
1250 }
1251 last_one = this_one;
1252 }
1253
1254 return result;
1255 }
1256
1257 void
1258 target_flash_erase (ULONGEST address, LONGEST length)
1259 {
1260 struct target_ops *t;
1261
1262 for (t = current_target.beneath; t != NULL; t = t->beneath)
1263 if (t->to_flash_erase != NULL)
1264 {
1265 if (targetdebug)
1266 fprintf_unfiltered (gdb_stdlog, "target_flash_erase (%s, %s)\n",
1267 paddr (address), phex (length, 0));
1268 t->to_flash_erase (t, address, length);
1269 return;
1270 }
1271
1272 tcomplain ();
1273 }
1274
1275 void
1276 target_flash_done (void)
1277 {
1278 struct target_ops *t;
1279
1280 for (t = current_target.beneath; t != NULL; t = t->beneath)
1281 if (t->to_flash_done != NULL)
1282 {
1283 if (targetdebug)
1284 fprintf_unfiltered (gdb_stdlog, "target_flash_done\n");
1285 t->to_flash_done (t);
1286 return;
1287 }
1288
1289 tcomplain ();
1290 }
1291
1292 #ifndef target_stopped_data_address_p
1293 int
1294 target_stopped_data_address_p (struct target_ops *target)
1295 {
1296 if (target->to_stopped_data_address
1297 == (int (*) (struct target_ops *, CORE_ADDR *)) return_zero)
1298 return 0;
1299 if (target->to_stopped_data_address == debug_to_stopped_data_address
1300 && (debug_target.to_stopped_data_address
1301 == (int (*) (struct target_ops *, CORE_ADDR *)) return_zero))
1302 return 0;
1303 return 1;
1304 }
1305 #endif
1306
1307 static void
1308 show_trust_readonly (struct ui_file *file, int from_tty,
1309 struct cmd_list_element *c, const char *value)
1310 {
1311 fprintf_filtered (file, _("\
1312 Mode for reading from readonly sections is %s.\n"),
1313 value);
1314 }
1315
1316 /* More generic transfers. */
1317
1318 static LONGEST
1319 default_xfer_partial (struct target_ops *ops, enum target_object object,
1320 const char *annex, gdb_byte *readbuf,
1321 const gdb_byte *writebuf, ULONGEST offset, LONGEST len)
1322 {
1323 if (object == TARGET_OBJECT_MEMORY
1324 && ops->deprecated_xfer_memory != NULL)
1325 /* If available, fall back to the target's
1326 "deprecated_xfer_memory" method. */
1327 {
1328 int xfered = -1;
1329 errno = 0;
1330 if (writebuf != NULL)
1331 {
1332 void *buffer = xmalloc (len);
1333 struct cleanup *cleanup = make_cleanup (xfree, buffer);
1334 memcpy (buffer, writebuf, len);
1335 xfered = ops->deprecated_xfer_memory (offset, buffer, len,
1336 1/*write*/, NULL, ops);
1337 do_cleanups (cleanup);
1338 }
1339 if (readbuf != NULL)
1340 xfered = ops->deprecated_xfer_memory (offset, readbuf, len, 0/*read*/,
1341 NULL, ops);
1342 if (xfered > 0)
1343 return xfered;
1344 else if (xfered == 0 && errno == 0)
1345 /* "deprecated_xfer_memory" uses 0, cross checked against
1346 ERRNO as one indication of an error. */
1347 return 0;
1348 else
1349 return -1;
1350 }
1351 else if (ops->beneath != NULL)
1352 return ops->beneath->to_xfer_partial (ops->beneath, object, annex,
1353 readbuf, writebuf, offset, len);
1354 else
1355 return -1;
1356 }
1357
1358 /* The xfer_partial handler for the topmost target. Unlike the default,
1359 it does not need to handle memory specially; it just passes all
1360 requests down the stack. */
1361
1362 static LONGEST
1363 current_xfer_partial (struct target_ops *ops, enum target_object object,
1364 const char *annex, gdb_byte *readbuf,
1365 const gdb_byte *writebuf, ULONGEST offset, LONGEST len)
1366 {
1367 if (ops->beneath != NULL)
1368 return ops->beneath->to_xfer_partial (ops->beneath, object, annex,
1369 readbuf, writebuf, offset, len);
1370 else
1371 return -1;
1372 }
1373
1374 /* Target vector read/write partial wrapper functions.
1375
1376 NOTE: cagney/2003-10-21: I wonder if having "to_xfer_partial
1377 (inbuf, outbuf)", instead of separate read/write methods, make life
1378 easier. */
1379
1380 static LONGEST
1381 target_read_partial (struct target_ops *ops,
1382 enum target_object object,
1383 const char *annex, gdb_byte *buf,
1384 ULONGEST offset, LONGEST len)
1385 {
1386 return target_xfer_partial (ops, object, annex, buf, NULL, offset, len);
1387 }
1388
1389 static LONGEST
1390 target_write_partial (struct target_ops *ops,
1391 enum target_object object,
1392 const char *annex, const gdb_byte *buf,
1393 ULONGEST offset, LONGEST len)
1394 {
1395 return target_xfer_partial (ops, object, annex, NULL, buf, offset, len);
1396 }
1397
1398 /* Wrappers to perform the full transfer. */
1399 LONGEST
1400 target_read (struct target_ops *ops,
1401 enum target_object object,
1402 const char *annex, gdb_byte *buf,
1403 ULONGEST offset, LONGEST len)
1404 {
1405 LONGEST xfered = 0;
1406 while (xfered < len)
1407 {
1408 LONGEST xfer = target_read_partial (ops, object, annex,
1409 (gdb_byte *) buf + xfered,
1410 offset + xfered, len - xfered);
1411 /* Call an observer, notifying them of the xfer progress? */
1412 if (xfer == 0)
1413 return xfered;
1414 if (xfer < 0)
1415 return -1;
1416 xfered += xfer;
1417 QUIT;
1418 }
1419 return len;
1420 }
1421
1422 /* An alternative to target_write with progress callbacks. */
1423
1424 LONGEST
1425 target_write_with_progress (struct target_ops *ops,
1426 enum target_object object,
1427 const char *annex, const gdb_byte *buf,
1428 ULONGEST offset, LONGEST len,
1429 void (*progress) (ULONGEST, void *), void *baton)
1430 {
1431 LONGEST xfered = 0;
1432
1433 /* Give the progress callback a chance to set up. */
1434 if (progress)
1435 (*progress) (0, baton);
1436
1437 while (xfered < len)
1438 {
1439 LONGEST xfer = target_write_partial (ops, object, annex,
1440 (gdb_byte *) buf + xfered,
1441 offset + xfered, len - xfered);
1442
1443 if (xfer == 0)
1444 return xfered;
1445 if (xfer < 0)
1446 return -1;
1447
1448 if (progress)
1449 (*progress) (xfer, baton);
1450
1451 xfered += xfer;
1452 QUIT;
1453 }
1454 return len;
1455 }
1456
1457 LONGEST
1458 target_write (struct target_ops *ops,
1459 enum target_object object,
1460 const char *annex, const gdb_byte *buf,
1461 ULONGEST offset, LONGEST len)
1462 {
1463 return target_write_with_progress (ops, object, annex, buf, offset, len,
1464 NULL, NULL);
1465 }
1466
1467 /* Read OBJECT/ANNEX using OPS. Store the result in *BUF_P and return
1468 the size of the transferred data. PADDING additional bytes are
1469 available in *BUF_P. This is a helper function for
1470 target_read_alloc; see the declaration of that function for more
1471 information. */
1472
1473 static LONGEST
1474 target_read_alloc_1 (struct target_ops *ops, enum target_object object,
1475 const char *annex, gdb_byte **buf_p, int padding)
1476 {
1477 size_t buf_alloc, buf_pos;
1478 gdb_byte *buf;
1479 LONGEST n;
1480
1481 /* This function does not have a length parameter; it reads the
1482 entire OBJECT). Also, it doesn't support objects fetched partly
1483 from one target and partly from another (in a different stratum,
1484 e.g. a core file and an executable). Both reasons make it
1485 unsuitable for reading memory. */
1486 gdb_assert (object != TARGET_OBJECT_MEMORY);
1487
1488 /* Start by reading up to 4K at a time. The target will throttle
1489 this number down if necessary. */
1490 buf_alloc = 4096;
1491 buf = xmalloc (buf_alloc);
1492 buf_pos = 0;
1493 while (1)
1494 {
1495 n = target_read_partial (ops, object, annex, &buf[buf_pos],
1496 buf_pos, buf_alloc - buf_pos - padding);
1497 if (n < 0)
1498 {
1499 /* An error occurred. */
1500 xfree (buf);
1501 return -1;
1502 }
1503 else if (n == 0)
1504 {
1505 /* Read all there was. */
1506 if (buf_pos == 0)
1507 xfree (buf);
1508 else
1509 *buf_p = buf;
1510 return buf_pos;
1511 }
1512
1513 buf_pos += n;
1514
1515 /* If the buffer is filling up, expand it. */
1516 if (buf_alloc < buf_pos * 2)
1517 {
1518 buf_alloc *= 2;
1519 buf = xrealloc (buf, buf_alloc);
1520 }
1521
1522 QUIT;
1523 }
1524 }
1525
1526 /* Read OBJECT/ANNEX using OPS. Store the result in *BUF_P and return
1527 the size of the transferred data. See the declaration in "target.h"
1528 function for more information about the return value. */
1529
1530 LONGEST
1531 target_read_alloc (struct target_ops *ops, enum target_object object,
1532 const char *annex, gdb_byte **buf_p)
1533 {
1534 return target_read_alloc_1 (ops, object, annex, buf_p, 0);
1535 }
1536
1537 /* Read OBJECT/ANNEX using OPS. The result is NUL-terminated and
1538 returned as a string, allocated using xmalloc. If an error occurs
1539 or the transfer is unsupported, NULL is returned. Empty objects
1540 are returned as allocated but empty strings. A warning is issued
1541 if the result contains any embedded NUL bytes. */
1542
1543 char *
1544 target_read_stralloc (struct target_ops *ops, enum target_object object,
1545 const char *annex)
1546 {
1547 gdb_byte *buffer;
1548 LONGEST transferred;
1549
1550 transferred = target_read_alloc_1 (ops, object, annex, &buffer, 1);
1551
1552 if (transferred < 0)
1553 return NULL;
1554
1555 if (transferred == 0)
1556 return xstrdup ("");
1557
1558 buffer[transferred] = 0;
1559 if (strlen (buffer) < transferred)
1560 warning (_("target object %d, annex %s, "
1561 "contained unexpected null characters"),
1562 (int) object, annex ? annex : "(none)");
1563
1564 return (char *) buffer;
1565 }
1566
1567 /* Memory transfer methods. */
1568
1569 void
1570 get_target_memory (struct target_ops *ops, CORE_ADDR addr, gdb_byte *buf,
1571 LONGEST len)
1572 {
1573 if (target_read (ops, TARGET_OBJECT_MEMORY, NULL, buf, addr, len)
1574 != len)
1575 memory_error (EIO, addr);
1576 }
1577
1578 ULONGEST
1579 get_target_memory_unsigned (struct target_ops *ops,
1580 CORE_ADDR addr, int len)
1581 {
1582 gdb_byte buf[sizeof (ULONGEST)];
1583
1584 gdb_assert (len <= sizeof (buf));
1585 get_target_memory (ops, addr, buf, len);
1586 return extract_unsigned_integer (buf, len);
1587 }
1588
1589 static void
1590 target_info (char *args, int from_tty)
1591 {
1592 struct target_ops *t;
1593 int has_all_mem = 0;
1594
1595 if (symfile_objfile != NULL)
1596 printf_unfiltered (_("Symbols from \"%s\".\n"), symfile_objfile->name);
1597
1598 for (t = target_stack; t != NULL; t = t->beneath)
1599 {
1600 if (!t->to_has_memory)
1601 continue;
1602
1603 if ((int) (t->to_stratum) <= (int) dummy_stratum)
1604 continue;
1605 if (has_all_mem)
1606 printf_unfiltered (_("\tWhile running this, GDB does not access memory from...\n"));
1607 printf_unfiltered ("%s:\n", t->to_longname);
1608 (t->to_files_info) (t);
1609 has_all_mem = t->to_has_all_memory;
1610 }
1611 }
1612
1613 /* This function is called before any new inferior is created, e.g.
1614 by running a program, attaching, or connecting to a target.
1615 It cleans up any state from previous invocations which might
1616 change between runs. This is a subset of what target_preopen
1617 resets (things which might change between targets). */
1618
1619 void
1620 target_pre_inferior (int from_tty)
1621 {
1622 invalidate_target_mem_regions ();
1623
1624 target_clear_description ();
1625 }
1626
1627 /* This is to be called by the open routine before it does
1628 anything. */
1629
1630 void
1631 target_preopen (int from_tty)
1632 {
1633 dont_repeat ();
1634
1635 if (target_has_execution)
1636 {
1637 if (!from_tty
1638 || query (_("A program is being debugged already. Kill it? ")))
1639 target_kill ();
1640 else
1641 error (_("Program not killed."));
1642 }
1643
1644 /* Calling target_kill may remove the target from the stack. But if
1645 it doesn't (which seems like a win for UDI), remove it now. */
1646
1647 if (target_has_execution)
1648 pop_target ();
1649
1650 target_pre_inferior (from_tty);
1651 }
1652
1653 /* Detach a target after doing deferred register stores. */
1654
1655 void
1656 target_detach (char *args, int from_tty)
1657 {
1658 (current_target.to_detach) (args, from_tty);
1659 }
1660
1661 void
1662 target_disconnect (char *args, int from_tty)
1663 {
1664 struct target_ops *t;
1665
1666 for (t = current_target.beneath; t != NULL; t = t->beneath)
1667 if (t->to_disconnect != NULL)
1668 {
1669 if (targetdebug)
1670 fprintf_unfiltered (gdb_stdlog, "target_disconnect (%s, %d)\n",
1671 args, from_tty);
1672 t->to_disconnect (t, args, from_tty);
1673 return;
1674 }
1675
1676 tcomplain ();
1677 }
1678
1679 int
1680 target_async_mask (int mask)
1681 {
1682 int saved_async_masked_status = target_async_mask_value;
1683 target_async_mask_value = mask;
1684 return saved_async_masked_status;
1685 }
1686
1687 /* Look through the list of possible targets for a target that can
1688 follow forks. */
1689
1690 int
1691 target_follow_fork (int follow_child)
1692 {
1693 struct target_ops *t;
1694
1695 for (t = current_target.beneath; t != NULL; t = t->beneath)
1696 {
1697 if (t->to_follow_fork != NULL)
1698 {
1699 int retval = t->to_follow_fork (t, follow_child);
1700 if (targetdebug)
1701 fprintf_unfiltered (gdb_stdlog, "target_follow_fork (%d) = %d\n",
1702 follow_child, retval);
1703 return retval;
1704 }
1705 }
1706
1707 /* Some target returned a fork event, but did not know how to follow it. */
1708 internal_error (__FILE__, __LINE__,
1709 "could not find a target to follow fork");
1710 }
1711
1712 /* Look for a target which can describe architectural features, starting
1713 from TARGET. If we find one, return its description. */
1714
1715 const struct target_desc *
1716 target_read_description (struct target_ops *target)
1717 {
1718 struct target_ops *t;
1719
1720 for (t = target; t != NULL; t = t->beneath)
1721 if (t->to_read_description != NULL)
1722 {
1723 const struct target_desc *tdesc;
1724
1725 tdesc = t->to_read_description (t);
1726 if (tdesc)
1727 return tdesc;
1728 }
1729
1730 return NULL;
1731 }
1732
1733 /* Look through the list of possible targets for a target that can
1734 execute a run or attach command without any other data. This is
1735 used to locate the default process stratum.
1736
1737 Result is always valid (error() is called for errors). */
1738
1739 static struct target_ops *
1740 find_default_run_target (char *do_mesg)
1741 {
1742 struct target_ops **t;
1743 struct target_ops *runable = NULL;
1744 int count;
1745
1746 count = 0;
1747
1748 for (t = target_structs; t < target_structs + target_struct_size;
1749 ++t)
1750 {
1751 if ((*t)->to_can_run && target_can_run (*t))
1752 {
1753 runable = *t;
1754 ++count;
1755 }
1756 }
1757
1758 if (count != 1)
1759 error (_("Don't know how to %s. Try \"help target\"."), do_mesg);
1760
1761 return runable;
1762 }
1763
1764 void
1765 find_default_attach (char *args, int from_tty)
1766 {
1767 struct target_ops *t;
1768
1769 t = find_default_run_target ("attach");
1770 (t->to_attach) (args, from_tty);
1771 return;
1772 }
1773
1774 void
1775 find_default_create_inferior (char *exec_file, char *allargs, char **env,
1776 int from_tty)
1777 {
1778 struct target_ops *t;
1779
1780 t = find_default_run_target ("run");
1781 (t->to_create_inferior) (exec_file, allargs, env, from_tty);
1782 return;
1783 }
1784
1785 static int
1786 default_region_ok_for_hw_watchpoint (CORE_ADDR addr, int len)
1787 {
1788 return (len <= TYPE_LENGTH (builtin_type_void_data_ptr));
1789 }
1790
1791 static int
1792 return_zero (void)
1793 {
1794 return 0;
1795 }
1796
1797 static int
1798 return_one (void)
1799 {
1800 return 1;
1801 }
1802
1803 static int
1804 return_minus_one (void)
1805 {
1806 return -1;
1807 }
1808
1809 /*
1810 * Resize the to_sections pointer. Also make sure that anyone that
1811 * was holding on to an old value of it gets updated.
1812 * Returns the old size.
1813 */
1814
1815 int
1816 target_resize_to_sections (struct target_ops *target, int num_added)
1817 {
1818 struct target_ops **t;
1819 struct section_table *old_value;
1820 int old_count;
1821
1822 old_value = target->to_sections;
1823
1824 if (target->to_sections)
1825 {
1826 old_count = target->to_sections_end - target->to_sections;
1827 target->to_sections = (struct section_table *)
1828 xrealloc ((char *) target->to_sections,
1829 (sizeof (struct section_table)) * (num_added + old_count));
1830 }
1831 else
1832 {
1833 old_count = 0;
1834 target->to_sections = (struct section_table *)
1835 xmalloc ((sizeof (struct section_table)) * num_added);
1836 }
1837 target->to_sections_end = target->to_sections + (num_added + old_count);
1838
1839 /* Check to see if anyone else was pointing to this structure.
1840 If old_value was null, then no one was. */
1841
1842 if (old_value)
1843 {
1844 for (t = target_structs; t < target_structs + target_struct_size;
1845 ++t)
1846 {
1847 if ((*t)->to_sections == old_value)
1848 {
1849 (*t)->to_sections = target->to_sections;
1850 (*t)->to_sections_end = target->to_sections_end;
1851 }
1852 }
1853 /* There is a flattened view of the target stack in current_target,
1854 so its to_sections pointer might also need updating. */
1855 if (current_target.to_sections == old_value)
1856 {
1857 current_target.to_sections = target->to_sections;
1858 current_target.to_sections_end = target->to_sections_end;
1859 }
1860 }
1861
1862 return old_count;
1863
1864 }
1865
1866 /* Remove all target sections taken from ABFD.
1867
1868 Scan the current target stack for targets whose section tables
1869 refer to sections from BFD, and remove those sections. We use this
1870 when we notice that the inferior has unloaded a shared object, for
1871 example. */
1872 void
1873 remove_target_sections (bfd *abfd)
1874 {
1875 struct target_ops **t;
1876
1877 for (t = target_structs; t < target_structs + target_struct_size; t++)
1878 {
1879 struct section_table *src, *dest;
1880
1881 dest = (*t)->to_sections;
1882 for (src = (*t)->to_sections; src < (*t)->to_sections_end; src++)
1883 if (src->bfd != abfd)
1884 {
1885 /* Keep this section. */
1886 if (dest < src) *dest = *src;
1887 dest++;
1888 }
1889
1890 /* If we've dropped any sections, resize the section table. */
1891 if (dest < src)
1892 target_resize_to_sections (*t, dest - src);
1893 }
1894 }
1895
1896
1897
1898
1899 /* Find a single runnable target in the stack and return it. If for
1900 some reason there is more than one, return NULL. */
1901
1902 struct target_ops *
1903 find_run_target (void)
1904 {
1905 struct target_ops **t;
1906 struct target_ops *runable = NULL;
1907 int count;
1908
1909 count = 0;
1910
1911 for (t = target_structs; t < target_structs + target_struct_size; ++t)
1912 {
1913 if ((*t)->to_can_run && target_can_run (*t))
1914 {
1915 runable = *t;
1916 ++count;
1917 }
1918 }
1919
1920 return (count == 1 ? runable : NULL);
1921 }
1922
1923 /* Find a single core_stratum target in the list of targets and return it.
1924 If for some reason there is more than one, return NULL. */
1925
1926 struct target_ops *
1927 find_core_target (void)
1928 {
1929 struct target_ops **t;
1930 struct target_ops *runable = NULL;
1931 int count;
1932
1933 count = 0;
1934
1935 for (t = target_structs; t < target_structs + target_struct_size;
1936 ++t)
1937 {
1938 if ((*t)->to_stratum == core_stratum)
1939 {
1940 runable = *t;
1941 ++count;
1942 }
1943 }
1944
1945 return (count == 1 ? runable : NULL);
1946 }
1947
1948 /*
1949 * Find the next target down the stack from the specified target.
1950 */
1951
1952 struct target_ops *
1953 find_target_beneath (struct target_ops *t)
1954 {
1955 return t->beneath;
1956 }
1957
1958 \f
1959 /* The inferior process has died. Long live the inferior! */
1960
1961 void
1962 generic_mourn_inferior (void)
1963 {
1964 extern int show_breakpoint_hit_counts;
1965
1966 inferior_ptid = null_ptid;
1967 attach_flag = 0;
1968 breakpoint_init_inferior (inf_exited);
1969 registers_changed ();
1970
1971 reopen_exec_file ();
1972 reinit_frame_cache ();
1973
1974 /* It is confusing to the user for ignore counts to stick around
1975 from previous runs of the inferior. So clear them. */
1976 /* However, it is more confusing for the ignore counts to disappear when
1977 using hit counts. So don't clear them if we're counting hits. */
1978 if (!show_breakpoint_hit_counts)
1979 breakpoint_clear_ignore_counts ();
1980
1981 if (deprecated_detach_hook)
1982 deprecated_detach_hook ();
1983 }
1984 \f
1985 /* Helper function for child_wait and the derivatives of child_wait.
1986 HOSTSTATUS is the waitstatus from wait() or the equivalent; store our
1987 translation of that in OURSTATUS. */
1988 void
1989 store_waitstatus (struct target_waitstatus *ourstatus, int hoststatus)
1990 {
1991 if (WIFEXITED (hoststatus))
1992 {
1993 ourstatus->kind = TARGET_WAITKIND_EXITED;
1994 ourstatus->value.integer = WEXITSTATUS (hoststatus);
1995 }
1996 else if (!WIFSTOPPED (hoststatus))
1997 {
1998 ourstatus->kind = TARGET_WAITKIND_SIGNALLED;
1999 ourstatus->value.sig = target_signal_from_host (WTERMSIG (hoststatus));
2000 }
2001 else
2002 {
2003 ourstatus->kind = TARGET_WAITKIND_STOPPED;
2004 ourstatus->value.sig = target_signal_from_host (WSTOPSIG (hoststatus));
2005 }
2006 }
2007 \f
2008 /* Returns zero to leave the inferior alone, one to interrupt it. */
2009 int (*target_activity_function) (void);
2010 int target_activity_fd;
2011 \f
2012 /* Convert a normal process ID to a string. Returns the string in a
2013 static buffer. */
2014
2015 char *
2016 normal_pid_to_str (ptid_t ptid)
2017 {
2018 static char buf[32];
2019
2020 xsnprintf (buf, sizeof buf, "process %d", ptid_get_pid (ptid));
2021 return buf;
2022 }
2023
2024 /* Error-catcher for target_find_memory_regions */
2025 static int dummy_find_memory_regions (int (*ignore1) (), void *ignore2)
2026 {
2027 error (_("No target."));
2028 return 0;
2029 }
2030
2031 /* Error-catcher for target_make_corefile_notes */
2032 static char * dummy_make_corefile_notes (bfd *ignore1, int *ignore2)
2033 {
2034 error (_("No target."));
2035 return NULL;
2036 }
2037
2038 /* Set up the handful of non-empty slots needed by the dummy target
2039 vector. */
2040
2041 static void
2042 init_dummy_target (void)
2043 {
2044 dummy_target.to_shortname = "None";
2045 dummy_target.to_longname = "None";
2046 dummy_target.to_doc = "";
2047 dummy_target.to_attach = find_default_attach;
2048 dummy_target.to_create_inferior = find_default_create_inferior;
2049 dummy_target.to_pid_to_str = normal_pid_to_str;
2050 dummy_target.to_stratum = dummy_stratum;
2051 dummy_target.to_find_memory_regions = dummy_find_memory_regions;
2052 dummy_target.to_make_corefile_notes = dummy_make_corefile_notes;
2053 dummy_target.to_xfer_partial = default_xfer_partial;
2054 dummy_target.to_magic = OPS_MAGIC;
2055 }
2056 \f
2057 static void
2058 debug_to_open (char *args, int from_tty)
2059 {
2060 debug_target.to_open (args, from_tty);
2061
2062 fprintf_unfiltered (gdb_stdlog, "target_open (%s, %d)\n", args, from_tty);
2063 }
2064
2065 static void
2066 debug_to_close (int quitting)
2067 {
2068 target_close (&debug_target, quitting);
2069 fprintf_unfiltered (gdb_stdlog, "target_close (%d)\n", quitting);
2070 }
2071
2072 void
2073 target_close (struct target_ops *targ, int quitting)
2074 {
2075 if (targ->to_xclose != NULL)
2076 targ->to_xclose (targ, quitting);
2077 else if (targ->to_close != NULL)
2078 targ->to_close (quitting);
2079 }
2080
2081 static void
2082 debug_to_attach (char *args, int from_tty)
2083 {
2084 debug_target.to_attach (args, from_tty);
2085
2086 fprintf_unfiltered (gdb_stdlog, "target_attach (%s, %d)\n", args, from_tty);
2087 }
2088
2089
2090 static void
2091 debug_to_post_attach (int pid)
2092 {
2093 debug_target.to_post_attach (pid);
2094
2095 fprintf_unfiltered (gdb_stdlog, "target_post_attach (%d)\n", pid);
2096 }
2097
2098 static void
2099 debug_to_detach (char *args, int from_tty)
2100 {
2101 debug_target.to_detach (args, from_tty);
2102
2103 fprintf_unfiltered (gdb_stdlog, "target_detach (%s, %d)\n", args, from_tty);
2104 }
2105
2106 static void
2107 debug_to_resume (ptid_t ptid, int step, enum target_signal siggnal)
2108 {
2109 debug_target.to_resume (ptid, step, siggnal);
2110
2111 fprintf_unfiltered (gdb_stdlog, "target_resume (%d, %s, %s)\n", PIDGET (ptid),
2112 step ? "step" : "continue",
2113 target_signal_to_name (siggnal));
2114 }
2115
2116 static ptid_t
2117 debug_to_wait (ptid_t ptid, struct target_waitstatus *status)
2118 {
2119 ptid_t retval;
2120
2121 retval = debug_target.to_wait (ptid, status);
2122
2123 fprintf_unfiltered (gdb_stdlog,
2124 "target_wait (%d, status) = %d, ", PIDGET (ptid),
2125 PIDGET (retval));
2126 fprintf_unfiltered (gdb_stdlog, "status->kind = ");
2127 switch (status->kind)
2128 {
2129 case TARGET_WAITKIND_EXITED:
2130 fprintf_unfiltered (gdb_stdlog, "exited, status = %d\n",
2131 status->value.integer);
2132 break;
2133 case TARGET_WAITKIND_STOPPED:
2134 fprintf_unfiltered (gdb_stdlog, "stopped, signal = %s\n",
2135 target_signal_to_name (status->value.sig));
2136 break;
2137 case TARGET_WAITKIND_SIGNALLED:
2138 fprintf_unfiltered (gdb_stdlog, "signalled, signal = %s\n",
2139 target_signal_to_name (status->value.sig));
2140 break;
2141 case TARGET_WAITKIND_LOADED:
2142 fprintf_unfiltered (gdb_stdlog, "loaded\n");
2143 break;
2144 case TARGET_WAITKIND_FORKED:
2145 fprintf_unfiltered (gdb_stdlog, "forked\n");
2146 break;
2147 case TARGET_WAITKIND_VFORKED:
2148 fprintf_unfiltered (gdb_stdlog, "vforked\n");
2149 break;
2150 case TARGET_WAITKIND_EXECD:
2151 fprintf_unfiltered (gdb_stdlog, "execd\n");
2152 break;
2153 case TARGET_WAITKIND_SPURIOUS:
2154 fprintf_unfiltered (gdb_stdlog, "spurious\n");
2155 break;
2156 default:
2157 fprintf_unfiltered (gdb_stdlog, "unknown???\n");
2158 break;
2159 }
2160
2161 return retval;
2162 }
2163
2164 static void
2165 debug_print_register (const char * func,
2166 struct regcache *regcache, int regno)
2167 {
2168 fprintf_unfiltered (gdb_stdlog, "%s ", func);
2169 if (regno >= 0 && regno < gdbarch_num_regs (current_gdbarch)
2170 + gdbarch_num_pseudo_regs (current_gdbarch)
2171 && gdbarch_register_name (current_gdbarch, regno) != NULL
2172 && gdbarch_register_name (current_gdbarch, regno)[0] != '\0')
2173 fprintf_unfiltered (gdb_stdlog, "(%s)", gdbarch_register_name
2174 (current_gdbarch, regno));
2175 else
2176 fprintf_unfiltered (gdb_stdlog, "(%d)", regno);
2177 if (regno >= 0)
2178 {
2179 int i, size = register_size (current_gdbarch, regno);
2180 unsigned char buf[MAX_REGISTER_SIZE];
2181 regcache_cooked_read (regcache, regno, buf);
2182 fprintf_unfiltered (gdb_stdlog, " = ");
2183 for (i = 0; i < size; i++)
2184 {
2185 fprintf_unfiltered (gdb_stdlog, "%02x", buf[i]);
2186 }
2187 if (size <= sizeof (LONGEST))
2188 {
2189 ULONGEST val = extract_unsigned_integer (buf, size);
2190 fprintf_unfiltered (gdb_stdlog, " 0x%s %s",
2191 paddr_nz (val), paddr_d (val));
2192 }
2193 }
2194 fprintf_unfiltered (gdb_stdlog, "\n");
2195 }
2196
2197 static void
2198 debug_to_fetch_registers (struct regcache *regcache, int regno)
2199 {
2200 debug_target.to_fetch_registers (regcache, regno);
2201 debug_print_register ("target_fetch_registers", regcache, regno);
2202 }
2203
2204 static void
2205 debug_to_store_registers (struct regcache *regcache, int regno)
2206 {
2207 debug_target.to_store_registers (regcache, regno);
2208 debug_print_register ("target_store_registers", regcache, regno);
2209 fprintf_unfiltered (gdb_stdlog, "\n");
2210 }
2211
2212 static void
2213 debug_to_prepare_to_store (struct regcache *regcache)
2214 {
2215 debug_target.to_prepare_to_store (regcache);
2216
2217 fprintf_unfiltered (gdb_stdlog, "target_prepare_to_store ()\n");
2218 }
2219
2220 static int
2221 deprecated_debug_xfer_memory (CORE_ADDR memaddr, bfd_byte *myaddr, int len,
2222 int write, struct mem_attrib *attrib,
2223 struct target_ops *target)
2224 {
2225 int retval;
2226
2227 retval = debug_target.deprecated_xfer_memory (memaddr, myaddr, len, write,
2228 attrib, target);
2229
2230 fprintf_unfiltered (gdb_stdlog,
2231 "target_xfer_memory (0x%x, xxx, %d, %s, xxx) = %d",
2232 (unsigned int) memaddr, /* possable truncate long long */
2233 len, write ? "write" : "read", retval);
2234
2235 if (retval > 0)
2236 {
2237 int i;
2238
2239 fputs_unfiltered (", bytes =", gdb_stdlog);
2240 for (i = 0; i < retval; i++)
2241 {
2242 if ((((long) &(myaddr[i])) & 0xf) == 0)
2243 {
2244 if (targetdebug < 2 && i > 0)
2245 {
2246 fprintf_unfiltered (gdb_stdlog, " ...");
2247 break;
2248 }
2249 fprintf_unfiltered (gdb_stdlog, "\n");
2250 }
2251
2252 fprintf_unfiltered (gdb_stdlog, " %02x", myaddr[i] & 0xff);
2253 }
2254 }
2255
2256 fputc_unfiltered ('\n', gdb_stdlog);
2257
2258 return retval;
2259 }
2260
2261 static void
2262 debug_to_files_info (struct target_ops *target)
2263 {
2264 debug_target.to_files_info (target);
2265
2266 fprintf_unfiltered (gdb_stdlog, "target_files_info (xxx)\n");
2267 }
2268
2269 static int
2270 debug_to_insert_breakpoint (struct bp_target_info *bp_tgt)
2271 {
2272 int retval;
2273
2274 retval = debug_target.to_insert_breakpoint (bp_tgt);
2275
2276 fprintf_unfiltered (gdb_stdlog,
2277 "target_insert_breakpoint (0x%lx, xxx) = %ld\n",
2278 (unsigned long) bp_tgt->placed_address,
2279 (unsigned long) retval);
2280 return retval;
2281 }
2282
2283 static int
2284 debug_to_remove_breakpoint (struct bp_target_info *bp_tgt)
2285 {
2286 int retval;
2287
2288 retval = debug_target.to_remove_breakpoint (bp_tgt);
2289
2290 fprintf_unfiltered (gdb_stdlog,
2291 "target_remove_breakpoint (0x%lx, xxx) = %ld\n",
2292 (unsigned long) bp_tgt->placed_address,
2293 (unsigned long) retval);
2294 return retval;
2295 }
2296
2297 static int
2298 debug_to_can_use_hw_breakpoint (int type, int cnt, int from_tty)
2299 {
2300 int retval;
2301
2302 retval = debug_target.to_can_use_hw_breakpoint (type, cnt, from_tty);
2303
2304 fprintf_unfiltered (gdb_stdlog,
2305 "target_can_use_hw_breakpoint (%ld, %ld, %ld) = %ld\n",
2306 (unsigned long) type,
2307 (unsigned long) cnt,
2308 (unsigned long) from_tty,
2309 (unsigned long) retval);
2310 return retval;
2311 }
2312
2313 static int
2314 debug_to_region_ok_for_hw_watchpoint (CORE_ADDR addr, int len)
2315 {
2316 CORE_ADDR retval;
2317
2318 retval = debug_target.to_region_ok_for_hw_watchpoint (addr, len);
2319
2320 fprintf_unfiltered (gdb_stdlog,
2321 "TARGET_REGION_OK_FOR_HW_WATCHPOINT (%ld, %ld) = 0x%lx\n",
2322 (unsigned long) addr,
2323 (unsigned long) len,
2324 (unsigned long) retval);
2325 return retval;
2326 }
2327
2328 static int
2329 debug_to_stopped_by_watchpoint (void)
2330 {
2331 int retval;
2332
2333 retval = debug_target.to_stopped_by_watchpoint ();
2334
2335 fprintf_unfiltered (gdb_stdlog,
2336 "STOPPED_BY_WATCHPOINT () = %ld\n",
2337 (unsigned long) retval);
2338 return retval;
2339 }
2340
2341 static int
2342 debug_to_stopped_data_address (struct target_ops *target, CORE_ADDR *addr)
2343 {
2344 int retval;
2345
2346 retval = debug_target.to_stopped_data_address (target, addr);
2347
2348 fprintf_unfiltered (gdb_stdlog,
2349 "target_stopped_data_address ([0x%lx]) = %ld\n",
2350 (unsigned long)*addr,
2351 (unsigned long)retval);
2352 return retval;
2353 }
2354
2355 static int
2356 debug_to_insert_hw_breakpoint (struct bp_target_info *bp_tgt)
2357 {
2358 int retval;
2359
2360 retval = debug_target.to_insert_hw_breakpoint (bp_tgt);
2361
2362 fprintf_unfiltered (gdb_stdlog,
2363 "target_insert_hw_breakpoint (0x%lx, xxx) = %ld\n",
2364 (unsigned long) bp_tgt->placed_address,
2365 (unsigned long) retval);
2366 return retval;
2367 }
2368
2369 static int
2370 debug_to_remove_hw_breakpoint (struct bp_target_info *bp_tgt)
2371 {
2372 int retval;
2373
2374 retval = debug_target.to_remove_hw_breakpoint (bp_tgt);
2375
2376 fprintf_unfiltered (gdb_stdlog,
2377 "target_remove_hw_breakpoint (0x%lx, xxx) = %ld\n",
2378 (unsigned long) bp_tgt->placed_address,
2379 (unsigned long) retval);
2380 return retval;
2381 }
2382
2383 static int
2384 debug_to_insert_watchpoint (CORE_ADDR addr, int len, int type)
2385 {
2386 int retval;
2387
2388 retval = debug_target.to_insert_watchpoint (addr, len, type);
2389
2390 fprintf_unfiltered (gdb_stdlog,
2391 "target_insert_watchpoint (0x%lx, %d, %d) = %ld\n",
2392 (unsigned long) addr, len, type, (unsigned long) retval);
2393 return retval;
2394 }
2395
2396 static int
2397 debug_to_remove_watchpoint (CORE_ADDR addr, int len, int type)
2398 {
2399 int retval;
2400
2401 retval = debug_target.to_remove_watchpoint (addr, len, type);
2402
2403 fprintf_unfiltered (gdb_stdlog,
2404 "target_remove_watchpoint (0x%lx, %d, %d) = %ld\n",
2405 (unsigned long) addr, len, type, (unsigned long) retval);
2406 return retval;
2407 }
2408
2409 static void
2410 debug_to_terminal_init (void)
2411 {
2412 debug_target.to_terminal_init ();
2413
2414 fprintf_unfiltered (gdb_stdlog, "target_terminal_init ()\n");
2415 }
2416
2417 static void
2418 debug_to_terminal_inferior (void)
2419 {
2420 debug_target.to_terminal_inferior ();
2421
2422 fprintf_unfiltered (gdb_stdlog, "target_terminal_inferior ()\n");
2423 }
2424
2425 static void
2426 debug_to_terminal_ours_for_output (void)
2427 {
2428 debug_target.to_terminal_ours_for_output ();
2429
2430 fprintf_unfiltered (gdb_stdlog, "target_terminal_ours_for_output ()\n");
2431 }
2432
2433 static void
2434 debug_to_terminal_ours (void)
2435 {
2436 debug_target.to_terminal_ours ();
2437
2438 fprintf_unfiltered (gdb_stdlog, "target_terminal_ours ()\n");
2439 }
2440
2441 static void
2442 debug_to_terminal_save_ours (void)
2443 {
2444 debug_target.to_terminal_save_ours ();
2445
2446 fprintf_unfiltered (gdb_stdlog, "target_terminal_save_ours ()\n");
2447 }
2448
2449 static void
2450 debug_to_terminal_info (char *arg, int from_tty)
2451 {
2452 debug_target.to_terminal_info (arg, from_tty);
2453
2454 fprintf_unfiltered (gdb_stdlog, "target_terminal_info (%s, %d)\n", arg,
2455 from_tty);
2456 }
2457
2458 static void
2459 debug_to_kill (void)
2460 {
2461 debug_target.to_kill ();
2462
2463 fprintf_unfiltered (gdb_stdlog, "target_kill ()\n");
2464 }
2465
2466 static void
2467 debug_to_load (char *args, int from_tty)
2468 {
2469 debug_target.to_load (args, from_tty);
2470
2471 fprintf_unfiltered (gdb_stdlog, "target_load (%s, %d)\n", args, from_tty);
2472 }
2473
2474 static int
2475 debug_to_lookup_symbol (char *name, CORE_ADDR *addrp)
2476 {
2477 int retval;
2478
2479 retval = debug_target.to_lookup_symbol (name, addrp);
2480
2481 fprintf_unfiltered (gdb_stdlog, "target_lookup_symbol (%s, xxx)\n", name);
2482
2483 return retval;
2484 }
2485
2486 static void
2487 debug_to_create_inferior (char *exec_file, char *args, char **env,
2488 int from_tty)
2489 {
2490 debug_target.to_create_inferior (exec_file, args, env, from_tty);
2491
2492 fprintf_unfiltered (gdb_stdlog, "target_create_inferior (%s, %s, xxx, %d)\n",
2493 exec_file, args, from_tty);
2494 }
2495
2496 static void
2497 debug_to_post_startup_inferior (ptid_t ptid)
2498 {
2499 debug_target.to_post_startup_inferior (ptid);
2500
2501 fprintf_unfiltered (gdb_stdlog, "target_post_startup_inferior (%d)\n",
2502 PIDGET (ptid));
2503 }
2504
2505 static void
2506 debug_to_acknowledge_created_inferior (int pid)
2507 {
2508 debug_target.to_acknowledge_created_inferior (pid);
2509
2510 fprintf_unfiltered (gdb_stdlog, "target_acknowledge_created_inferior (%d)\n",
2511 pid);
2512 }
2513
2514 static void
2515 debug_to_insert_fork_catchpoint (int pid)
2516 {
2517 debug_target.to_insert_fork_catchpoint (pid);
2518
2519 fprintf_unfiltered (gdb_stdlog, "target_insert_fork_catchpoint (%d)\n",
2520 pid);
2521 }
2522
2523 static int
2524 debug_to_remove_fork_catchpoint (int pid)
2525 {
2526 int retval;
2527
2528 retval = debug_target.to_remove_fork_catchpoint (pid);
2529
2530 fprintf_unfiltered (gdb_stdlog, "target_remove_fork_catchpoint (%d) = %d\n",
2531 pid, retval);
2532
2533 return retval;
2534 }
2535
2536 static void
2537 debug_to_insert_vfork_catchpoint (int pid)
2538 {
2539 debug_target.to_insert_vfork_catchpoint (pid);
2540
2541 fprintf_unfiltered (gdb_stdlog, "target_insert_vfork_catchpoint (%d)\n",
2542 pid);
2543 }
2544
2545 static int
2546 debug_to_remove_vfork_catchpoint (int pid)
2547 {
2548 int retval;
2549
2550 retval = debug_target.to_remove_vfork_catchpoint (pid);
2551
2552 fprintf_unfiltered (gdb_stdlog, "target_remove_vfork_catchpoint (%d) = %d\n",
2553 pid, retval);
2554
2555 return retval;
2556 }
2557
2558 static void
2559 debug_to_insert_exec_catchpoint (int pid)
2560 {
2561 debug_target.to_insert_exec_catchpoint (pid);
2562
2563 fprintf_unfiltered (gdb_stdlog, "target_insert_exec_catchpoint (%d)\n",
2564 pid);
2565 }
2566
2567 static int
2568 debug_to_remove_exec_catchpoint (int pid)
2569 {
2570 int retval;
2571
2572 retval = debug_target.to_remove_exec_catchpoint (pid);
2573
2574 fprintf_unfiltered (gdb_stdlog, "target_remove_exec_catchpoint (%d) = %d\n",
2575 pid, retval);
2576
2577 return retval;
2578 }
2579
2580 static int
2581 debug_to_reported_exec_events_per_exec_call (void)
2582 {
2583 int reported_exec_events;
2584
2585 reported_exec_events = debug_target.to_reported_exec_events_per_exec_call ();
2586
2587 fprintf_unfiltered (gdb_stdlog,
2588 "target_reported_exec_events_per_exec_call () = %d\n",
2589 reported_exec_events);
2590
2591 return reported_exec_events;
2592 }
2593
2594 static int
2595 debug_to_has_exited (int pid, int wait_status, int *exit_status)
2596 {
2597 int has_exited;
2598
2599 has_exited = debug_target.to_has_exited (pid, wait_status, exit_status);
2600
2601 fprintf_unfiltered (gdb_stdlog, "target_has_exited (%d, %d, %d) = %d\n",
2602 pid, wait_status, *exit_status, has_exited);
2603
2604 return has_exited;
2605 }
2606
2607 static void
2608 debug_to_mourn_inferior (void)
2609 {
2610 debug_target.to_mourn_inferior ();
2611
2612 fprintf_unfiltered (gdb_stdlog, "target_mourn_inferior ()\n");
2613 }
2614
2615 static int
2616 debug_to_can_run (void)
2617 {
2618 int retval;
2619
2620 retval = debug_target.to_can_run ();
2621
2622 fprintf_unfiltered (gdb_stdlog, "target_can_run () = %d\n", retval);
2623
2624 return retval;
2625 }
2626
2627 static void
2628 debug_to_notice_signals (ptid_t ptid)
2629 {
2630 debug_target.to_notice_signals (ptid);
2631
2632 fprintf_unfiltered (gdb_stdlog, "target_notice_signals (%d)\n",
2633 PIDGET (ptid));
2634 }
2635
2636 static int
2637 debug_to_thread_alive (ptid_t ptid)
2638 {
2639 int retval;
2640
2641 retval = debug_target.to_thread_alive (ptid);
2642
2643 fprintf_unfiltered (gdb_stdlog, "target_thread_alive (%d) = %d\n",
2644 PIDGET (ptid), retval);
2645
2646 return retval;
2647 }
2648
2649 static void
2650 debug_to_find_new_threads (void)
2651 {
2652 debug_target.to_find_new_threads ();
2653
2654 fputs_unfiltered ("target_find_new_threads ()\n", gdb_stdlog);
2655 }
2656
2657 static void
2658 debug_to_stop (void)
2659 {
2660 debug_target.to_stop ();
2661
2662 fprintf_unfiltered (gdb_stdlog, "target_stop ()\n");
2663 }
2664
2665 static void
2666 debug_to_rcmd (char *command,
2667 struct ui_file *outbuf)
2668 {
2669 debug_target.to_rcmd (command, outbuf);
2670 fprintf_unfiltered (gdb_stdlog, "target_rcmd (%s, ...)\n", command);
2671 }
2672
2673 static struct symtab_and_line *
2674 debug_to_enable_exception_callback (enum exception_event_kind kind, int enable)
2675 {
2676 struct symtab_and_line *result;
2677 result = debug_target.to_enable_exception_callback (kind, enable);
2678 fprintf_unfiltered (gdb_stdlog,
2679 "target get_exception_callback_sal (%d, %d)\n",
2680 kind, enable);
2681 return result;
2682 }
2683
2684 static struct exception_event_record *
2685 debug_to_get_current_exception_event (void)
2686 {
2687 struct exception_event_record *result;
2688 result = debug_target.to_get_current_exception_event ();
2689 fprintf_unfiltered (gdb_stdlog, "target get_current_exception_event ()\n");
2690 return result;
2691 }
2692
2693 static char *
2694 debug_to_pid_to_exec_file (int pid)
2695 {
2696 char *exec_file;
2697
2698 exec_file = debug_target.to_pid_to_exec_file (pid);
2699
2700 fprintf_unfiltered (gdb_stdlog, "target_pid_to_exec_file (%d) = %s\n",
2701 pid, exec_file);
2702
2703 return exec_file;
2704 }
2705
2706 static void
2707 setup_target_debug (void)
2708 {
2709 memcpy (&debug_target, &current_target, sizeof debug_target);
2710
2711 current_target.to_open = debug_to_open;
2712 current_target.to_close = debug_to_close;
2713 current_target.to_attach = debug_to_attach;
2714 current_target.to_post_attach = debug_to_post_attach;
2715 current_target.to_detach = debug_to_detach;
2716 current_target.to_resume = debug_to_resume;
2717 current_target.to_wait = debug_to_wait;
2718 current_target.to_fetch_registers = debug_to_fetch_registers;
2719 current_target.to_store_registers = debug_to_store_registers;
2720 current_target.to_prepare_to_store = debug_to_prepare_to_store;
2721 current_target.deprecated_xfer_memory = deprecated_debug_xfer_memory;
2722 current_target.to_files_info = debug_to_files_info;
2723 current_target.to_insert_breakpoint = debug_to_insert_breakpoint;
2724 current_target.to_remove_breakpoint = debug_to_remove_breakpoint;
2725 current_target.to_can_use_hw_breakpoint = debug_to_can_use_hw_breakpoint;
2726 current_target.to_insert_hw_breakpoint = debug_to_insert_hw_breakpoint;
2727 current_target.to_remove_hw_breakpoint = debug_to_remove_hw_breakpoint;
2728 current_target.to_insert_watchpoint = debug_to_insert_watchpoint;
2729 current_target.to_remove_watchpoint = debug_to_remove_watchpoint;
2730 current_target.to_stopped_by_watchpoint = debug_to_stopped_by_watchpoint;
2731 current_target.to_stopped_data_address = debug_to_stopped_data_address;
2732 current_target.to_region_ok_for_hw_watchpoint = debug_to_region_ok_for_hw_watchpoint;
2733 current_target.to_terminal_init = debug_to_terminal_init;
2734 current_target.to_terminal_inferior = debug_to_terminal_inferior;
2735 current_target.to_terminal_ours_for_output = debug_to_terminal_ours_for_output;
2736 current_target.to_terminal_ours = debug_to_terminal_ours;
2737 current_target.to_terminal_save_ours = debug_to_terminal_save_ours;
2738 current_target.to_terminal_info = debug_to_terminal_info;
2739 current_target.to_kill = debug_to_kill;
2740 current_target.to_load = debug_to_load;
2741 current_target.to_lookup_symbol = debug_to_lookup_symbol;
2742 current_target.to_create_inferior = debug_to_create_inferior;
2743 current_target.to_post_startup_inferior = debug_to_post_startup_inferior;
2744 current_target.to_acknowledge_created_inferior = debug_to_acknowledge_created_inferior;
2745 current_target.to_insert_fork_catchpoint = debug_to_insert_fork_catchpoint;
2746 current_target.to_remove_fork_catchpoint = debug_to_remove_fork_catchpoint;
2747 current_target.to_insert_vfork_catchpoint = debug_to_insert_vfork_catchpoint;
2748 current_target.to_remove_vfork_catchpoint = debug_to_remove_vfork_catchpoint;
2749 current_target.to_insert_exec_catchpoint = debug_to_insert_exec_catchpoint;
2750 current_target.to_remove_exec_catchpoint = debug_to_remove_exec_catchpoint;
2751 current_target.to_reported_exec_events_per_exec_call = debug_to_reported_exec_events_per_exec_call;
2752 current_target.to_has_exited = debug_to_has_exited;
2753 current_target.to_mourn_inferior = debug_to_mourn_inferior;
2754 current_target.to_can_run = debug_to_can_run;
2755 current_target.to_notice_signals = debug_to_notice_signals;
2756 current_target.to_thread_alive = debug_to_thread_alive;
2757 current_target.to_find_new_threads = debug_to_find_new_threads;
2758 current_target.to_stop = debug_to_stop;
2759 current_target.to_rcmd = debug_to_rcmd;
2760 current_target.to_enable_exception_callback = debug_to_enable_exception_callback;
2761 current_target.to_get_current_exception_event = debug_to_get_current_exception_event;
2762 current_target.to_pid_to_exec_file = debug_to_pid_to_exec_file;
2763 }
2764 \f
2765
2766 static char targ_desc[] =
2767 "Names of targets and files being debugged.\n\
2768 Shows the entire stack of targets currently in use (including the exec-file,\n\
2769 core-file, and process, if any), as well as the symbol file name.";
2770
2771 static void
2772 do_monitor_command (char *cmd,
2773 int from_tty)
2774 {
2775 if ((current_target.to_rcmd
2776 == (void (*) (char *, struct ui_file *)) tcomplain)
2777 || (current_target.to_rcmd == debug_to_rcmd
2778 && (debug_target.to_rcmd
2779 == (void (*) (char *, struct ui_file *)) tcomplain)))
2780 error (_("\"monitor\" command not supported by this target."));
2781 target_rcmd (cmd, gdb_stdtarg);
2782 }
2783
2784 /* Print the name of each layers of our target stack. */
2785
2786 static void
2787 maintenance_print_target_stack (char *cmd, int from_tty)
2788 {
2789 struct target_ops *t;
2790
2791 printf_filtered (_("The current target stack is:\n"));
2792
2793 for (t = target_stack; t != NULL; t = t->beneath)
2794 {
2795 printf_filtered (" - %s (%s)\n", t->to_shortname, t->to_longname);
2796 }
2797 }
2798
2799 void
2800 initialize_targets (void)
2801 {
2802 init_dummy_target ();
2803 push_target (&dummy_target);
2804
2805 add_info ("target", target_info, targ_desc);
2806 add_info ("files", target_info, targ_desc);
2807
2808 add_setshow_zinteger_cmd ("target", class_maintenance, &targetdebug, _("\
2809 Set target debugging."), _("\
2810 Show target debugging."), _("\
2811 When non-zero, target debugging is enabled. Higher numbers are more\n\
2812 verbose. Changes do not take effect until the next \"run\" or \"target\"\n\
2813 command."),
2814 NULL,
2815 show_targetdebug,
2816 &setdebuglist, &showdebuglist);
2817
2818 add_setshow_boolean_cmd ("trust-readonly-sections", class_support,
2819 &trust_readonly, _("\
2820 Set mode for reading from readonly sections."), _("\
2821 Show mode for reading from readonly sections."), _("\
2822 When this mode is on, memory reads from readonly sections (such as .text)\n\
2823 will be read from the object file instead of from the target. This will\n\
2824 result in significant performance improvement for remote targets."),
2825 NULL,
2826 show_trust_readonly,
2827 &setlist, &showlist);
2828
2829 add_com ("monitor", class_obscure, do_monitor_command,
2830 _("Send a command to the remote monitor (remote targets only)."));
2831
2832 add_cmd ("target-stack", class_maintenance, maintenance_print_target_stack,
2833 _("Print the name of each layer of the internal target stack."),
2834 &maintenanceprintlist);
2835
2836 target_dcache = dcache_init ();
2837 }
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