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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, 2008
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#include "gdb_stdint.h"
43
44static void target_info (char *, int);
45
46static void maybe_kill_then_attach (char *, int);
47
48static void kill_or_be_killed (int);
49
50static void default_terminal_info (char *, int);
51
52static int default_region_ok_for_hw_watchpoint (CORE_ADDR, int);
53
54static int nosymbol (char *, CORE_ADDR *);
55
56static void tcomplain (void) ATTR_NORETURN;
57
58static int nomemory (CORE_ADDR, char *, int, int, struct target_ops *);
59
60static int return_zero (void);
61
62static int return_one (void);
63
64static int return_minus_one (void);
65
66void target_ignore (void);
67
68static void target_command (char *, int);
69
70static struct target_ops *find_default_run_target (char *);
71
72static void nosupport_runtime (void);
73
74static LONGEST default_xfer_partial (struct target_ops *ops,
75 enum target_object object,
76 const char *annex, gdb_byte *readbuf,
77 const gdb_byte *writebuf,
78 ULONGEST offset, LONGEST len);
79
80static LONGEST current_xfer_partial (struct target_ops *ops,
81 enum target_object object,
82 const char *annex, gdb_byte *readbuf,
83 const gdb_byte *writebuf,
84 ULONGEST offset, LONGEST len);
85
86static LONGEST target_xfer_partial (struct target_ops *ops,
87 enum target_object object,
88 const char *annex,
89 void *readbuf, const void *writebuf,
90 ULONGEST offset, LONGEST len);
91
92static void init_dummy_target (void);
93
94static struct target_ops debug_target;
95
96static void debug_to_open (char *, int);
97
98static void debug_to_close (int);
99
100static void debug_to_attach (char *, int);
101
102static void debug_to_detach (char *, int);
103
104static void debug_to_resume (ptid_t, int, enum target_signal);
105
106static ptid_t debug_to_wait (ptid_t, struct target_waitstatus *);
107
108static void debug_to_fetch_registers (struct regcache *, int);
109
110static void debug_to_store_registers (struct regcache *, int);
111
112static void debug_to_prepare_to_store (struct regcache *);
113
114static void debug_to_files_info (struct target_ops *);
115
116static int debug_to_insert_breakpoint (struct bp_target_info *);
117
118static int debug_to_remove_breakpoint (struct bp_target_info *);
119
120static int debug_to_can_use_hw_breakpoint (int, int, int);
121
122static int debug_to_insert_hw_breakpoint (struct bp_target_info *);
123
124static int debug_to_remove_hw_breakpoint (struct bp_target_info *);
125
126static int debug_to_insert_watchpoint (CORE_ADDR, int, int);
127
128static int debug_to_remove_watchpoint (CORE_ADDR, int, int);
129
130static int debug_to_stopped_by_watchpoint (void);
131
132static int debug_to_stopped_data_address (struct target_ops *, CORE_ADDR *);
133
134static int debug_to_region_ok_for_hw_watchpoint (CORE_ADDR, int);
135
136static void debug_to_terminal_init (void);
137
138static void debug_to_terminal_inferior (void);
139
140static void debug_to_terminal_ours_for_output (void);
141
142static void debug_to_terminal_save_ours (void);
143
144static void debug_to_terminal_ours (void);
145
146static void debug_to_terminal_info (char *, int);
147
148static void debug_to_kill (void);
149
150static void debug_to_load (char *, int);
151
152static int debug_to_lookup_symbol (char *, CORE_ADDR *);
153
154static void debug_to_mourn_inferior (void);
155
156static int debug_to_can_run (void);
157
158static void debug_to_notice_signals (ptid_t);
159
160static int debug_to_thread_alive (ptid_t);
161
162static void debug_to_stop (void);
163
164/* NOTE: cagney/2004-09-29: Many targets reference this variable in
165 wierd and mysterious ways. Putting the variable here lets those
166 wierd and mysterious ways keep building while they are being
167 converted to the inferior inheritance structure. */
168struct target_ops deprecated_child_ops;
169
170/* Pointer to array of target architecture structures; the size of the
171 array; the current index into the array; the allocated size of the
172 array. */
173struct target_ops **target_structs;
174unsigned target_struct_size;
175unsigned target_struct_index;
176unsigned target_struct_allocsize;
177#define DEFAULT_ALLOCSIZE 10
178
179/* The initial current target, so that there is always a semi-valid
180 current target. */
181
182static struct target_ops dummy_target;
183
184/* Top of target stack. */
185
186static struct target_ops *target_stack;
187
188/* The target structure we are currently using to talk to a process
189 or file or whatever "inferior" we have. */
190
191struct target_ops current_target;
192
193/* Command list for target. */
194
195static struct cmd_list_element *targetlist = NULL;
196
197/* Nonzero if we are debugging an attached outside process
198 rather than an inferior. */
199
200int attach_flag;
201
202/* Nonzero if we should trust readonly sections from the
203 executable when reading memory. */
204
205static int trust_readonly = 0;
206
207/* Nonzero if we should show true memory content including
208 memory breakpoint inserted by gdb. */
209
210static int show_memory_breakpoints = 0;
211
212/* Non-zero if we want to see trace of target level stuff. */
213
214static int targetdebug = 0;
215static void
216show_targetdebug (struct ui_file *file, int from_tty,
217 struct cmd_list_element *c, const char *value)
218{
219 fprintf_filtered (file, _("Target debugging is %s.\n"), value);
220}
221
222static void setup_target_debug (void);
223
224DCACHE *target_dcache;
225
226/* The user just typed 'target' without the name of a target. */
227
228static void
229target_command (char *arg, int from_tty)
230{
231 fputs_filtered ("Argument required (target name). Try `help target'\n",
232 gdb_stdout);
233}
234
235/* Add a possible target architecture to the list. */
236
237void
238add_target (struct target_ops *t)
239{
240 /* Provide default values for all "must have" methods. */
241 if (t->to_xfer_partial == NULL)
242 t->to_xfer_partial = default_xfer_partial;
243
244 if (!target_structs)
245 {
246 target_struct_allocsize = DEFAULT_ALLOCSIZE;
247 target_structs = (struct target_ops **) xmalloc
248 (target_struct_allocsize * sizeof (*target_structs));
249 }
250 if (target_struct_size >= target_struct_allocsize)
251 {
252 target_struct_allocsize *= 2;
253 target_structs = (struct target_ops **)
254 xrealloc ((char *) target_structs,
255 target_struct_allocsize * sizeof (*target_structs));
256 }
257 target_structs[target_struct_size++] = t;
258
259 if (targetlist == NULL)
260 add_prefix_cmd ("target", class_run, target_command, _("\
261Connect to a target machine or process.\n\
262The first argument is the type or protocol of the target machine.\n\
263Remaining arguments are interpreted by the target protocol. For more\n\
264information on the arguments for a particular protocol, type\n\
265`help target ' followed by the protocol name."),
266 &targetlist, "target ", 0, &cmdlist);
267 add_cmd (t->to_shortname, no_class, t->to_open, t->to_doc, &targetlist);
268}
269
270/* Stub functions */
271
272void
273target_ignore (void)
274{
275}
276
277void
278target_load (char *arg, int from_tty)
279{
280 dcache_invalidate (target_dcache);
281 (*current_target.to_load) (arg, from_tty);
282}
283
284static int
285nomemory (CORE_ADDR memaddr, char *myaddr, int len, int write,
286 struct target_ops *t)
287{
288 errno = EIO; /* Can't read/write this location */
289 return 0; /* No bytes handled */
290}
291
292static void
293tcomplain (void)
294{
295 error (_("You can't do that when your target is `%s'"),
296 current_target.to_shortname);
297}
298
299void
300noprocess (void)
301{
302 error (_("You can't do that without a process to debug."));
303}
304
305static int
306nosymbol (char *name, CORE_ADDR *addrp)
307{
308 return 1; /* Symbol does not exist in target env */
309}
310
311static void
312nosupport_runtime (void)
313{
314 if (ptid_equal (inferior_ptid, null_ptid))
315 noprocess ();
316 else
317 error (_("No run-time support for this"));
318}
319
320
321static void
322default_terminal_info (char *args, int from_tty)
323{
324 printf_unfiltered (_("No saved terminal information.\n"));
325}
326
327/* This is the default target_create_inferior and target_attach function.
328 If the current target is executing, it asks whether to kill it off.
329 If this function returns without calling error(), it has killed off
330 the target, and the operation should be attempted. */
331
332static void
333kill_or_be_killed (int from_tty)
334{
335 if (target_has_execution)
336 {
337 printf_unfiltered (_("You are already running a program:\n"));
338 target_files_info ();
339 if (query ("Kill it? "))
340 {
341 target_kill ();
342 if (target_has_execution)
343 error (_("Killing the program did not help."));
344 return;
345 }
346 else
347 {
348 error (_("Program not killed."));
349 }
350 }
351 tcomplain ();
352}
353
354static void
355maybe_kill_then_attach (char *args, int from_tty)
356{
357 kill_or_be_killed (from_tty);
358 target_attach (args, from_tty);
359}
360
361static void
362maybe_kill_then_create_inferior (char *exec, char *args, char **env,
363 int from_tty)
364{
365 kill_or_be_killed (0);
366 target_create_inferior (exec, args, env, from_tty);
367}
368
369/* Go through the target stack from top to bottom, copying over zero
370 entries in current_target, then filling in still empty entries. In
371 effect, we are doing class inheritance through the pushed target
372 vectors.
373
374 NOTE: cagney/2003-10-17: The problem with this inheritance, as it
375 is currently implemented, is that it discards any knowledge of
376 which target an inherited method originally belonged to.
377 Consequently, new new target methods should instead explicitly and
378 locally search the target stack for the target that can handle the
379 request. */
380
381static void
382update_current_target (void)
383{
384 struct target_ops *t;
385
386 /* First, reset current's contents. */
387 memset (&current_target, 0, sizeof (current_target));
388
389#define INHERIT(FIELD, TARGET) \
390 if (!current_target.FIELD) \
391 current_target.FIELD = (TARGET)->FIELD
392
393 for (t = target_stack; t; t = t->beneath)
394 {
395 INHERIT (to_shortname, t);
396 INHERIT (to_longname, t);
397 INHERIT (to_doc, t);
398 INHERIT (to_open, t);
399 INHERIT (to_close, t);
400 INHERIT (to_attach, t);
401 INHERIT (to_post_attach, t);
402 INHERIT (to_detach, t);
403 /* Do not inherit to_disconnect. */
404 INHERIT (to_resume, t);
405 INHERIT (to_wait, t);
406 INHERIT (to_fetch_registers, t);
407 INHERIT (to_store_registers, t);
408 INHERIT (to_prepare_to_store, t);
409 INHERIT (deprecated_xfer_memory, t);
410 INHERIT (to_files_info, t);
411 INHERIT (to_insert_breakpoint, t);
412 INHERIT (to_remove_breakpoint, t);
413 INHERIT (to_can_use_hw_breakpoint, t);
414 INHERIT (to_insert_hw_breakpoint, t);
415 INHERIT (to_remove_hw_breakpoint, t);
416 INHERIT (to_insert_watchpoint, t);
417 INHERIT (to_remove_watchpoint, t);
418 INHERIT (to_stopped_data_address, t);
419 INHERIT (to_stopped_by_watchpoint, t);
420 INHERIT (to_have_steppable_watchpoint, t);
421 INHERIT (to_have_continuable_watchpoint, t);
422 INHERIT (to_region_ok_for_hw_watchpoint, t);
423 INHERIT (to_terminal_init, t);
424 INHERIT (to_terminal_inferior, t);
425 INHERIT (to_terminal_ours_for_output, t);
426 INHERIT (to_terminal_ours, t);
427 INHERIT (to_terminal_save_ours, t);
428 INHERIT (to_terminal_info, t);
429 INHERIT (to_kill, t);
430 INHERIT (to_load, t);
431 INHERIT (to_lookup_symbol, t);
432 INHERIT (to_create_inferior, t);
433 INHERIT (to_post_startup_inferior, t);
434 INHERIT (to_acknowledge_created_inferior, t);
435 INHERIT (to_insert_fork_catchpoint, t);
436 INHERIT (to_remove_fork_catchpoint, t);
437 INHERIT (to_insert_vfork_catchpoint, t);
438 INHERIT (to_remove_vfork_catchpoint, t);
439 /* Do not inherit to_follow_fork. */
440 INHERIT (to_insert_exec_catchpoint, t);
441 INHERIT (to_remove_exec_catchpoint, t);
442 INHERIT (to_has_exited, t);
443 INHERIT (to_mourn_inferior, t);
444 INHERIT (to_can_run, t);
445 INHERIT (to_notice_signals, t);
446 INHERIT (to_thread_alive, t);
447 INHERIT (to_find_new_threads, t);
448 INHERIT (to_pid_to_str, t);
449 INHERIT (to_extra_thread_info, t);
450 INHERIT (to_stop, t);
451 /* Do not inherit to_xfer_partial. */
452 INHERIT (to_rcmd, t);
453 INHERIT (to_pid_to_exec_file, t);
454 INHERIT (to_log_command, t);
455 INHERIT (to_stratum, t);
456 INHERIT (to_has_all_memory, t);
457 INHERIT (to_has_memory, t);
458 INHERIT (to_has_stack, t);
459 INHERIT (to_has_registers, t);
460 INHERIT (to_has_execution, t);
461 INHERIT (to_has_thread_control, t);
462 INHERIT (to_sections, t);
463 INHERIT (to_sections_end, t);
464 INHERIT (to_can_async_p, t);
465 INHERIT (to_is_async_p, t);
466 INHERIT (to_async, t);
467 INHERIT (to_async_mask, t);
468 INHERIT (to_find_memory_regions, t);
469 INHERIT (to_make_corefile_notes, t);
470 INHERIT (to_get_thread_local_address, t);
471 /* Do not inherit to_read_description. */
472 INHERIT (to_magic, t);
473 /* Do not inherit to_memory_map. */
474 /* Do not inherit to_flash_erase. */
475 /* Do not inherit to_flash_done. */
476 }
477#undef INHERIT
478
479 /* Clean up a target struct so it no longer has any zero pointers in
480 it. Some entries are defaulted to a method that print an error,
481 others are hard-wired to a standard recursive default. */
482
483#define de_fault(field, value) \
484 if (!current_target.field) \
485 current_target.field = value
486
487 de_fault (to_open,
488 (void (*) (char *, int))
489 tcomplain);
490 de_fault (to_close,
491 (void (*) (int))
492 target_ignore);
493 de_fault (to_attach,
494 maybe_kill_then_attach);
495 de_fault (to_post_attach,
496 (void (*) (int))
497 target_ignore);
498 de_fault (to_detach,
499 (void (*) (char *, int))
500 target_ignore);
501 de_fault (to_resume,
502 (void (*) (ptid_t, int, enum target_signal))
503 noprocess);
504 de_fault (to_wait,
505 (ptid_t (*) (ptid_t, struct target_waitstatus *))
506 noprocess);
507 de_fault (to_fetch_registers,
508 (void (*) (struct regcache *, int))
509 target_ignore);
510 de_fault (to_store_registers,
511 (void (*) (struct regcache *, int))
512 noprocess);
513 de_fault (to_prepare_to_store,
514 (void (*) (struct regcache *))
515 noprocess);
516 de_fault (deprecated_xfer_memory,
517 (int (*) (CORE_ADDR, gdb_byte *, int, int, struct mem_attrib *, struct target_ops *))
518 nomemory);
519 de_fault (to_files_info,
520 (void (*) (struct target_ops *))
521 target_ignore);
522 de_fault (to_insert_breakpoint,
523 memory_insert_breakpoint);
524 de_fault (to_remove_breakpoint,
525 memory_remove_breakpoint);
526 de_fault (to_can_use_hw_breakpoint,
527 (int (*) (int, int, int))
528 return_zero);
529 de_fault (to_insert_hw_breakpoint,
530 (int (*) (struct bp_target_info *))
531 return_minus_one);
532 de_fault (to_remove_hw_breakpoint,
533 (int (*) (struct bp_target_info *))
534 return_minus_one);
535 de_fault (to_insert_watchpoint,
536 (int (*) (CORE_ADDR, int, int))
537 return_minus_one);
538 de_fault (to_remove_watchpoint,
539 (int (*) (CORE_ADDR, int, int))
540 return_minus_one);
541 de_fault (to_stopped_by_watchpoint,
542 (int (*) (void))
543 return_zero);
544 de_fault (to_stopped_data_address,
545 (int (*) (struct target_ops *, CORE_ADDR *))
546 return_zero);
547 de_fault (to_region_ok_for_hw_watchpoint,
548 default_region_ok_for_hw_watchpoint);
549 de_fault (to_terminal_init,
550 (void (*) (void))
551 target_ignore);
552 de_fault (to_terminal_inferior,
553 (void (*) (void))
554 target_ignore);
555 de_fault (to_terminal_ours_for_output,
556 (void (*) (void))
557 target_ignore);
558 de_fault (to_terminal_ours,
559 (void (*) (void))
560 target_ignore);
561 de_fault (to_terminal_save_ours,
562 (void (*) (void))
563 target_ignore);
564 de_fault (to_terminal_info,
565 default_terminal_info);
566 de_fault (to_kill,
567 (void (*) (void))
568 noprocess);
569 de_fault (to_load,
570 (void (*) (char *, int))
571 tcomplain);
572 de_fault (to_lookup_symbol,
573 (int (*) (char *, CORE_ADDR *))
574 nosymbol);
575 de_fault (to_create_inferior,
576 maybe_kill_then_create_inferior);
577 de_fault (to_post_startup_inferior,
578 (void (*) (ptid_t))
579 target_ignore);
580 de_fault (to_acknowledge_created_inferior,
581 (void (*) (int))
582 target_ignore);
583 de_fault (to_insert_fork_catchpoint,
584 (void (*) (int))
585 tcomplain);
586 de_fault (to_remove_fork_catchpoint,
587 (int (*) (int))
588 tcomplain);
589 de_fault (to_insert_vfork_catchpoint,
590 (void (*) (int))
591 tcomplain);
592 de_fault (to_remove_vfork_catchpoint,
593 (int (*) (int))
594 tcomplain);
595 de_fault (to_insert_exec_catchpoint,
596 (void (*) (int))
597 tcomplain);
598 de_fault (to_remove_exec_catchpoint,
599 (int (*) (int))
600 tcomplain);
601 de_fault (to_has_exited,
602 (int (*) (int, int, int *))
603 return_zero);
604 de_fault (to_mourn_inferior,
605 (void (*) (void))
606 noprocess);
607 de_fault (to_can_run,
608 return_zero);
609 de_fault (to_notice_signals,
610 (void (*) (ptid_t))
611 target_ignore);
612 de_fault (to_thread_alive,
613 (int (*) (ptid_t))
614 return_zero);
615 de_fault (to_find_new_threads,
616 (void (*) (void))
617 target_ignore);
618 de_fault (to_extra_thread_info,
619 (char *(*) (struct thread_info *))
620 return_zero);
621 de_fault (to_stop,
622 (void (*) (void))
623 target_ignore);
624 current_target.to_xfer_partial = current_xfer_partial;
625 de_fault (to_rcmd,
626 (void (*) (char *, struct ui_file *))
627 tcomplain);
628 de_fault (to_pid_to_exec_file,
629 (char *(*) (int))
630 return_zero);
631 de_fault (to_can_async_p,
632 (int (*) (void))
633 return_zero);
634 de_fault (to_is_async_p,
635 (int (*) (void))
636 return_zero);
637 de_fault (to_async,
638 (void (*) (void (*) (enum inferior_event_type, void*), void*))
639 tcomplain);
640 de_fault (to_async_mask,
641 (int (*) (int))
642 return_one);
643 current_target.to_read_description = NULL;
644#undef de_fault
645
646 /* Finally, position the target-stack beneath the squashed
647 "current_target". That way code looking for a non-inherited
648 target method can quickly and simply find it. */
649 current_target.beneath = target_stack;
650
651 if (targetdebug)
652 setup_target_debug ();
653}
654
655/* Mark OPS as a running target. This reverses the effect
656 of target_mark_exited. */
657
658void
659target_mark_running (struct target_ops *ops)
660{
661 struct target_ops *t;
662
663 for (t = target_stack; t != NULL; t = t->beneath)
664 if (t == ops)
665 break;
666 if (t == NULL)
667 internal_error (__FILE__, __LINE__,
668 "Attempted to mark unpushed target \"%s\" as running",
669 ops->to_shortname);
670
671 ops->to_has_execution = 1;
672 ops->to_has_all_memory = 1;
673 ops->to_has_memory = 1;
674 ops->to_has_stack = 1;
675 ops->to_has_registers = 1;
676
677 update_current_target ();
678}
679
680/* Mark OPS as a non-running target. This reverses the effect
681 of target_mark_running. */
682
683void
684target_mark_exited (struct target_ops *ops)
685{
686 struct target_ops *t;
687
688 for (t = target_stack; t != NULL; t = t->beneath)
689 if (t == ops)
690 break;
691 if (t == NULL)
692 internal_error (__FILE__, __LINE__,
693 "Attempted to mark unpushed target \"%s\" as running",
694 ops->to_shortname);
695
696 ops->to_has_execution = 0;
697 ops->to_has_all_memory = 0;
698 ops->to_has_memory = 0;
699 ops->to_has_stack = 0;
700 ops->to_has_registers = 0;
701
702 update_current_target ();
703}
704
705/* Push a new target type into the stack of the existing target accessors,
706 possibly superseding some of the existing accessors.
707
708 Result is zero if the pushed target ended up on top of the stack,
709 nonzero if at least one target is on top of it.
710
711 Rather than allow an empty stack, we always have the dummy target at
712 the bottom stratum, so we can call the function vectors without
713 checking them. */
714
715int
716push_target (struct target_ops *t)
717{
718 struct target_ops **cur;
719
720 /* Check magic number. If wrong, it probably means someone changed
721 the struct definition, but not all the places that initialize one. */
722 if (t->to_magic != OPS_MAGIC)
723 {
724 fprintf_unfiltered (gdb_stderr,
725 "Magic number of %s target struct wrong\n",
726 t->to_shortname);
727 internal_error (__FILE__, __LINE__, _("failed internal consistency check"));
728 }
729
730 /* Find the proper stratum to install this target in. */
731 for (cur = &target_stack; (*cur) != NULL; cur = &(*cur)->beneath)
732 {
733 if ((int) (t->to_stratum) >= (int) (*cur)->to_stratum)
734 break;
735 }
736
737 /* If there's already targets at this stratum, remove them. */
738 /* FIXME: cagney/2003-10-15: I think this should be popping all
739 targets to CUR, and not just those at this stratum level. */
740 while ((*cur) != NULL && t->to_stratum == (*cur)->to_stratum)
741 {
742 /* There's already something at this stratum level. Close it,
743 and un-hook it from the stack. */
744 struct target_ops *tmp = (*cur);
745 (*cur) = (*cur)->beneath;
746 tmp->beneath = NULL;
747 target_close (tmp, 0);
748 }
749
750 /* We have removed all targets in our stratum, now add the new one. */
751 t->beneath = (*cur);
752 (*cur) = t;
753
754 update_current_target ();
755
756 /* Not on top? */
757 return (t != target_stack);
758}
759
760/* Remove a target_ops vector from the stack, wherever it may be.
761 Return how many times it was removed (0 or 1). */
762
763int
764unpush_target (struct target_ops *t)
765{
766 struct target_ops **cur;
767 struct target_ops *tmp;
768
769 /* Look for the specified target. Note that we assume that a target
770 can only occur once in the target stack. */
771
772 for (cur = &target_stack; (*cur) != NULL; cur = &(*cur)->beneath)
773 {
774 if ((*cur) == t)
775 break;
776 }
777
778 if ((*cur) == NULL)
779 return 0; /* Didn't find target_ops, quit now */
780
781 /* NOTE: cagney/2003-12-06: In '94 the close call was made
782 unconditional by moving it to before the above check that the
783 target was in the target stack (something about "Change the way
784 pushing and popping of targets work to support target overlays
785 and inheritance"). This doesn't make much sense - only open
786 targets should be closed. */
787 target_close (t, 0);
788
789 /* Unchain the target */
790 tmp = (*cur);
791 (*cur) = (*cur)->beneath;
792 tmp->beneath = NULL;
793
794 update_current_target ();
795
796 return 1;
797}
798
799void
800pop_target (void)
801{
802 target_close (&current_target, 0); /* Let it clean up */
803 if (unpush_target (target_stack) == 1)
804 return;
805
806 fprintf_unfiltered (gdb_stderr,
807 "pop_target couldn't find target %s\n",
808 current_target.to_shortname);
809 internal_error (__FILE__, __LINE__, _("failed internal consistency check"));
810}
811
812/* Using the objfile specified in OBJFILE, find the address for the
813 current thread's thread-local storage with offset OFFSET. */
814CORE_ADDR
815target_translate_tls_address (struct objfile *objfile, CORE_ADDR offset)
816{
817 volatile CORE_ADDR addr = 0;
818
819 if (target_get_thread_local_address_p ()
820 && gdbarch_fetch_tls_load_module_address_p (current_gdbarch))
821 {
822 ptid_t ptid = inferior_ptid;
823 volatile struct gdb_exception ex;
824
825 TRY_CATCH (ex, RETURN_MASK_ALL)
826 {
827 CORE_ADDR lm_addr;
828
829 /* Fetch the load module address for this objfile. */
830 lm_addr = gdbarch_fetch_tls_load_module_address (current_gdbarch,
831 objfile);
832 /* If it's 0, throw the appropriate exception. */
833 if (lm_addr == 0)
834 throw_error (TLS_LOAD_MODULE_NOT_FOUND_ERROR,
835 _("TLS load module not found"));
836
837 addr = target_get_thread_local_address (ptid, lm_addr, offset);
838 }
839 /* If an error occurred, print TLS related messages here. Otherwise,
840 throw the error to some higher catcher. */
841 if (ex.reason < 0)
842 {
843 int objfile_is_library = (objfile->flags & OBJF_SHARED);
844
845 switch (ex.error)
846 {
847 case TLS_NO_LIBRARY_SUPPORT_ERROR:
848 error (_("Cannot find thread-local variables in this thread library."));
849 break;
850 case TLS_LOAD_MODULE_NOT_FOUND_ERROR:
851 if (objfile_is_library)
852 error (_("Cannot find shared library `%s' in dynamic"
853 " linker's load module list"), objfile->name);
854 else
855 error (_("Cannot find executable file `%s' in dynamic"
856 " linker's load module list"), objfile->name);
857 break;
858 case TLS_NOT_ALLOCATED_YET_ERROR:
859 if (objfile_is_library)
860 error (_("The inferior has not yet allocated storage for"
861 " thread-local variables in\n"
862 "the shared library `%s'\n"
863 "for %s"),
864 objfile->name, target_pid_to_str (ptid));
865 else
866 error (_("The inferior has not yet allocated storage for"
867 " thread-local variables in\n"
868 "the executable `%s'\n"
869 "for %s"),
870 objfile->name, target_pid_to_str (ptid));
871 break;
872 case TLS_GENERIC_ERROR:
873 if (objfile_is_library)
874 error (_("Cannot find thread-local storage for %s, "
875 "shared library %s:\n%s"),
876 target_pid_to_str (ptid),
877 objfile->name, ex.message);
878 else
879 error (_("Cannot find thread-local storage for %s, "
880 "executable file %s:\n%s"),
881 target_pid_to_str (ptid),
882 objfile->name, ex.message);
883 break;
884 default:
885 throw_exception (ex);
886 break;
887 }
888 }
889 }
890 /* It wouldn't be wrong here to try a gdbarch method, too; finding
891 TLS is an ABI-specific thing. But we don't do that yet. */
892 else
893 error (_("Cannot find thread-local variables on this target"));
894
895 return addr;
896}
897
898#undef MIN
899#define MIN(A, B) (((A) <= (B)) ? (A) : (B))
900
901/* target_read_string -- read a null terminated string, up to LEN bytes,
902 from MEMADDR in target. Set *ERRNOP to the errno code, or 0 if successful.
903 Set *STRING to a pointer to malloc'd memory containing the data; the caller
904 is responsible for freeing it. Return the number of bytes successfully
905 read. */
906
907int
908target_read_string (CORE_ADDR memaddr, char **string, int len, int *errnop)
909{
910 int tlen, origlen, offset, i;
911 gdb_byte buf[4];
912 int errcode = 0;
913 char *buffer;
914 int buffer_allocated;
915 char *bufptr;
916 unsigned int nbytes_read = 0;
917
918 gdb_assert (string);
919
920 /* Small for testing. */
921 buffer_allocated = 4;
922 buffer = xmalloc (buffer_allocated);
923 bufptr = buffer;
924
925 origlen = len;
926
927 while (len > 0)
928 {
929 tlen = MIN (len, 4 - (memaddr & 3));
930 offset = memaddr & 3;
931
932 errcode = target_read_memory (memaddr & ~3, buf, sizeof buf);
933 if (errcode != 0)
934 {
935 /* The transfer request might have crossed the boundary to an
936 unallocated region of memory. Retry the transfer, requesting
937 a single byte. */
938 tlen = 1;
939 offset = 0;
940 errcode = target_read_memory (memaddr, buf, 1);
941 if (errcode != 0)
942 goto done;
943 }
944
945 if (bufptr - buffer + tlen > buffer_allocated)
946 {
947 unsigned int bytes;
948 bytes = bufptr - buffer;
949 buffer_allocated *= 2;
950 buffer = xrealloc (buffer, buffer_allocated);
951 bufptr = buffer + bytes;
952 }
953
954 for (i = 0; i < tlen; i++)
955 {
956 *bufptr++ = buf[i + offset];
957 if (buf[i + offset] == '\000')
958 {
959 nbytes_read += i + 1;
960 goto done;
961 }
962 }
963
964 memaddr += tlen;
965 len -= tlen;
966 nbytes_read += tlen;
967 }
968done:
969 *string = buffer;
970 if (errnop != NULL)
971 *errnop = errcode;
972 return nbytes_read;
973}
974
975/* Find a section containing ADDR. */
976struct section_table *
977target_section_by_addr (struct target_ops *target, CORE_ADDR addr)
978{
979 struct section_table *secp;
980 for (secp = target->to_sections;
981 secp < target->to_sections_end;
982 secp++)
983 {
984 if (addr >= secp->addr && addr < secp->endaddr)
985 return secp;
986 }
987 return NULL;
988}
989
990/* Perform a partial memory transfer. The arguments and return
991 value are just as for target_xfer_partial. */
992
993static LONGEST
994memory_xfer_partial (struct target_ops *ops, void *readbuf, const void *writebuf,
995 ULONGEST memaddr, LONGEST len)
996{
997 LONGEST res;
998 int reg_len;
999 struct mem_region *region;
1000
1001 /* Zero length requests are ok and require no work. */
1002 if (len == 0)
1003 return 0;
1004
1005 /* Try the executable file, if "trust-readonly-sections" is set. */
1006 if (readbuf != NULL && trust_readonly)
1007 {
1008 struct section_table *secp;
1009
1010 secp = target_section_by_addr (ops, memaddr);
1011 if (secp != NULL
1012 && (bfd_get_section_flags (secp->bfd, secp->the_bfd_section)
1013 & SEC_READONLY))
1014 return xfer_memory (memaddr, readbuf, len, 0, NULL, ops);
1015 }
1016
1017 /* Likewise for accesses to unmapped overlay sections. */
1018 if (readbuf != NULL && overlay_debugging)
1019 {
1020 asection *section = find_pc_overlay (memaddr);
1021 if (pc_in_unmapped_range (memaddr, section))
1022 return xfer_memory (memaddr, readbuf, len, 0, NULL, ops);
1023 }
1024
1025 /* Try GDB's internal data cache. */
1026 region = lookup_mem_region (memaddr);
1027 /* region->hi == 0 means there's no upper bound. */
1028 if (memaddr + len < region->hi || region->hi == 0)
1029 reg_len = len;
1030 else
1031 reg_len = region->hi - memaddr;
1032
1033 switch (region->attrib.mode)
1034 {
1035 case MEM_RO:
1036 if (writebuf != NULL)
1037 return -1;
1038 break;
1039
1040 case MEM_WO:
1041 if (readbuf != NULL)
1042 return -1;
1043 break;
1044
1045 case MEM_FLASH:
1046 /* We only support writing to flash during "load" for now. */
1047 if (writebuf != NULL)
1048 error (_("Writing to flash memory forbidden in this context"));
1049 break;
1050
1051 case MEM_NONE:
1052 return -1;
1053 }
1054
1055 if (region->attrib.cache)
1056 {
1057 /* FIXME drow/2006-08-09: This call discards OPS, so the raw
1058 memory request will start back at current_target. */
1059 if (readbuf != NULL)
1060 res = dcache_xfer_memory (target_dcache, memaddr, readbuf,
1061 reg_len, 0);
1062 else
1063 /* FIXME drow/2006-08-09: If we're going to preserve const
1064 correctness dcache_xfer_memory should take readbuf and
1065 writebuf. */
1066 res = dcache_xfer_memory (target_dcache, memaddr,
1067 (void *) writebuf,
1068 reg_len, 1);
1069 if (res <= 0)
1070 return -1;
1071 else
1072 {
1073 if (readbuf && !show_memory_breakpoints)
1074 breakpoint_restore_shadows (readbuf, memaddr, reg_len);
1075 return res;
1076 }
1077 }
1078
1079 /* If none of those methods found the memory we wanted, fall back
1080 to a target partial transfer. Normally a single call to
1081 to_xfer_partial is enough; if it doesn't recognize an object
1082 it will call the to_xfer_partial of the next target down.
1083 But for memory this won't do. Memory is the only target
1084 object which can be read from more than one valid target.
1085 A core file, for instance, could have some of memory but
1086 delegate other bits to the target below it. So, we must
1087 manually try all targets. */
1088
1089 do
1090 {
1091 res = ops->to_xfer_partial (ops, TARGET_OBJECT_MEMORY, NULL,
1092 readbuf, writebuf, memaddr, reg_len);
1093 if (res > 0)
1094 break;
1095
1096 /* We want to continue past core files to executables, but not
1097 past a running target's memory. */
1098 if (ops->to_has_all_memory)
1099 break;
1100
1101 ops = ops->beneath;
1102 }
1103 while (ops != NULL);
1104
1105 if (readbuf && !show_memory_breakpoints)
1106 breakpoint_restore_shadows (readbuf, memaddr, reg_len);
1107
1108 /* If we still haven't got anything, return the last error. We
1109 give up. */
1110 return res;
1111}
1112
1113static void
1114restore_show_memory_breakpoints (void *arg)
1115{
1116 show_memory_breakpoints = (uintptr_t) arg;
1117}
1118
1119struct cleanup *
1120make_show_memory_breakpoints_cleanup (int show)
1121{
1122 int current = show_memory_breakpoints;
1123 show_memory_breakpoints = show;
1124
1125 return make_cleanup (restore_show_memory_breakpoints,
1126 (void *) (uintptr_t) current);
1127}
1128
1129static LONGEST
1130target_xfer_partial (struct target_ops *ops,
1131 enum target_object object, const char *annex,
1132 void *readbuf, const void *writebuf,
1133 ULONGEST offset, LONGEST len)
1134{
1135 LONGEST retval;
1136
1137 gdb_assert (ops->to_xfer_partial != NULL);
1138
1139 /* If this is a memory transfer, let the memory-specific code
1140 have a look at it instead. Memory transfers are more
1141 complicated. */
1142 if (object == TARGET_OBJECT_MEMORY)
1143 retval = memory_xfer_partial (ops, readbuf, writebuf, offset, len);
1144 else
1145 {
1146 enum target_object raw_object = object;
1147
1148 /* If this is a raw memory transfer, request the normal
1149 memory object from other layers. */
1150 if (raw_object == TARGET_OBJECT_RAW_MEMORY)
1151 raw_object = TARGET_OBJECT_MEMORY;
1152
1153 retval = ops->to_xfer_partial (ops, raw_object, annex, readbuf,
1154 writebuf, offset, len);
1155 }
1156
1157 if (targetdebug)
1158 {
1159 const unsigned char *myaddr = NULL;
1160
1161 fprintf_unfiltered (gdb_stdlog,
1162 "%s:target_xfer_partial (%d, %s, 0x%lx, 0x%lx, 0x%s, %s) = %s",
1163 ops->to_shortname,
1164 (int) object,
1165 (annex ? annex : "(null)"),
1166 (long) readbuf, (long) writebuf,
1167 paddr_nz (offset), paddr_d (len), paddr_d (retval));
1168
1169 if (readbuf)
1170 myaddr = readbuf;
1171 if (writebuf)
1172 myaddr = writebuf;
1173 if (retval > 0 && myaddr != NULL)
1174 {
1175 int i;
1176
1177 fputs_unfiltered (", bytes =", gdb_stdlog);
1178 for (i = 0; i < retval; i++)
1179 {
1180 if ((((long) &(myaddr[i])) & 0xf) == 0)
1181 {
1182 if (targetdebug < 2 && i > 0)
1183 {
1184 fprintf_unfiltered (gdb_stdlog, " ...");
1185 break;
1186 }
1187 fprintf_unfiltered (gdb_stdlog, "\n");
1188 }
1189
1190 fprintf_unfiltered (gdb_stdlog, " %02x", myaddr[i] & 0xff);
1191 }
1192 }
1193
1194 fputc_unfiltered ('\n', gdb_stdlog);
1195 }
1196 return retval;
1197}
1198
1199/* Read LEN bytes of target memory at address MEMADDR, placing the results in
1200 GDB's memory at MYADDR. Returns either 0 for success or an errno value
1201 if any error occurs.
1202
1203 If an error occurs, no guarantee is made about the contents of the data at
1204 MYADDR. In particular, the caller should not depend upon partial reads
1205 filling the buffer with good data. There is no way for the caller to know
1206 how much good data might have been transfered anyway. Callers that can
1207 deal with partial reads should call target_read (which will retry until
1208 it makes no progress, and then return how much was transferred). */
1209
1210int
1211target_read_memory (CORE_ADDR memaddr, gdb_byte *myaddr, int len)
1212{
1213 if (target_read (&current_target, TARGET_OBJECT_MEMORY, NULL,
1214 myaddr, memaddr, len) == len)
1215 return 0;
1216 else
1217 return EIO;
1218}
1219
1220int
1221target_write_memory (CORE_ADDR memaddr, const gdb_byte *myaddr, int len)
1222{
1223 if (target_write (&current_target, TARGET_OBJECT_MEMORY, NULL,
1224 myaddr, memaddr, len) == len)
1225 return 0;
1226 else
1227 return EIO;
1228}
1229
1230/* Fetch the target's memory map. */
1231
1232VEC(mem_region_s) *
1233target_memory_map (void)
1234{
1235 VEC(mem_region_s) *result;
1236 struct mem_region *last_one, *this_one;
1237 int ix;
1238 struct target_ops *t;
1239
1240 if (targetdebug)
1241 fprintf_unfiltered (gdb_stdlog, "target_memory_map ()\n");
1242
1243 for (t = current_target.beneath; t != NULL; t = t->beneath)
1244 if (t->to_memory_map != NULL)
1245 break;
1246
1247 if (t == NULL)
1248 return NULL;
1249
1250 result = t->to_memory_map (t);
1251 if (result == NULL)
1252 return NULL;
1253
1254 qsort (VEC_address (mem_region_s, result),
1255 VEC_length (mem_region_s, result),
1256 sizeof (struct mem_region), mem_region_cmp);
1257
1258 /* Check that regions do not overlap. Simultaneously assign
1259 a numbering for the "mem" commands to use to refer to
1260 each region. */
1261 last_one = NULL;
1262 for (ix = 0; VEC_iterate (mem_region_s, result, ix, this_one); ix++)
1263 {
1264 this_one->number = ix;
1265
1266 if (last_one && last_one->hi > this_one->lo)
1267 {
1268 warning (_("Overlapping regions in memory map: ignoring"));
1269 VEC_free (mem_region_s, result);
1270 return NULL;
1271 }
1272 last_one = this_one;
1273 }
1274
1275 return result;
1276}
1277
1278void
1279target_flash_erase (ULONGEST address, LONGEST length)
1280{
1281 struct target_ops *t;
1282
1283 for (t = current_target.beneath; t != NULL; t = t->beneath)
1284 if (t->to_flash_erase != NULL)
1285 {
1286 if (targetdebug)
1287 fprintf_unfiltered (gdb_stdlog, "target_flash_erase (%s, %s)\n",
1288 paddr (address), phex (length, 0));
1289 t->to_flash_erase (t, address, length);
1290 return;
1291 }
1292
1293 tcomplain ();
1294}
1295
1296void
1297target_flash_done (void)
1298{
1299 struct target_ops *t;
1300
1301 for (t = current_target.beneath; t != NULL; t = t->beneath)
1302 if (t->to_flash_done != NULL)
1303 {
1304 if (targetdebug)
1305 fprintf_unfiltered (gdb_stdlog, "target_flash_done\n");
1306 t->to_flash_done (t);
1307 return;
1308 }
1309
1310 tcomplain ();
1311}
1312
1313#ifndef target_stopped_data_address_p
1314int
1315target_stopped_data_address_p (struct target_ops *target)
1316{
1317 if (target->to_stopped_data_address
1318 == (int (*) (struct target_ops *, CORE_ADDR *)) return_zero)
1319 return 0;
1320 if (target->to_stopped_data_address == debug_to_stopped_data_address
1321 && (debug_target.to_stopped_data_address
1322 == (int (*) (struct target_ops *, CORE_ADDR *)) return_zero))
1323 return 0;
1324 return 1;
1325}
1326#endif
1327
1328static void
1329show_trust_readonly (struct ui_file *file, int from_tty,
1330 struct cmd_list_element *c, const char *value)
1331{
1332 fprintf_filtered (file, _("\
1333Mode for reading from readonly sections is %s.\n"),
1334 value);
1335}
1336
1337/* More generic transfers. */
1338
1339static LONGEST
1340default_xfer_partial (struct target_ops *ops, enum target_object object,
1341 const char *annex, gdb_byte *readbuf,
1342 const gdb_byte *writebuf, ULONGEST offset, LONGEST len)
1343{
1344 if (object == TARGET_OBJECT_MEMORY
1345 && ops->deprecated_xfer_memory != NULL)
1346 /* If available, fall back to the target's
1347 "deprecated_xfer_memory" method. */
1348 {
1349 int xfered = -1;
1350 errno = 0;
1351 if (writebuf != NULL)
1352 {
1353 void *buffer = xmalloc (len);
1354 struct cleanup *cleanup = make_cleanup (xfree, buffer);
1355 memcpy (buffer, writebuf, len);
1356 xfered = ops->deprecated_xfer_memory (offset, buffer, len,
1357 1/*write*/, NULL, ops);
1358 do_cleanups (cleanup);
1359 }
1360 if (readbuf != NULL)
1361 xfered = ops->deprecated_xfer_memory (offset, readbuf, len,
1362 0/*read*/, NULL, ops);
1363 if (xfered > 0)
1364 return xfered;
1365 else if (xfered == 0 && errno == 0)
1366 /* "deprecated_xfer_memory" uses 0, cross checked against
1367 ERRNO as one indication of an error. */
1368 return 0;
1369 else
1370 return -1;
1371 }
1372 else if (ops->beneath != NULL)
1373 return ops->beneath->to_xfer_partial (ops->beneath, object, annex,
1374 readbuf, writebuf, offset, len);
1375 else
1376 return -1;
1377}
1378
1379/* The xfer_partial handler for the topmost target. Unlike the default,
1380 it does not need to handle memory specially; it just passes all
1381 requests down the stack. */
1382
1383static LONGEST
1384current_xfer_partial (struct target_ops *ops, enum target_object object,
1385 const char *annex, gdb_byte *readbuf,
1386 const gdb_byte *writebuf, ULONGEST offset, LONGEST len)
1387{
1388 if (ops->beneath != NULL)
1389 return ops->beneath->to_xfer_partial (ops->beneath, object, annex,
1390 readbuf, writebuf, offset, len);
1391 else
1392 return -1;
1393}
1394
1395/* Target vector read/write partial wrapper functions.
1396
1397 NOTE: cagney/2003-10-21: I wonder if having "to_xfer_partial
1398 (inbuf, outbuf)", instead of separate read/write methods, make life
1399 easier. */
1400
1401static LONGEST
1402target_read_partial (struct target_ops *ops,
1403 enum target_object object,
1404 const char *annex, gdb_byte *buf,
1405 ULONGEST offset, LONGEST len)
1406{
1407 return target_xfer_partial (ops, object, annex, buf, NULL, offset, len);
1408}
1409
1410static LONGEST
1411target_write_partial (struct target_ops *ops,
1412 enum target_object object,
1413 const char *annex, const gdb_byte *buf,
1414 ULONGEST offset, LONGEST len)
1415{
1416 return target_xfer_partial (ops, object, annex, NULL, buf, offset, len);
1417}
1418
1419/* Wrappers to perform the full transfer. */
1420LONGEST
1421target_read (struct target_ops *ops,
1422 enum target_object object,
1423 const char *annex, gdb_byte *buf,
1424 ULONGEST offset, LONGEST len)
1425{
1426 LONGEST xfered = 0;
1427 while (xfered < len)
1428 {
1429 LONGEST xfer = target_read_partial (ops, object, annex,
1430 (gdb_byte *) buf + xfered,
1431 offset + xfered, len - xfered);
1432 /* Call an observer, notifying them of the xfer progress? */
1433 if (xfer == 0)
1434 return xfered;
1435 if (xfer < 0)
1436 return -1;
1437 xfered += xfer;
1438 QUIT;
1439 }
1440 return len;
1441}
1442
1443/* An alternative to target_write with progress callbacks. */
1444
1445LONGEST
1446target_write_with_progress (struct target_ops *ops,
1447 enum target_object object,
1448 const char *annex, const gdb_byte *buf,
1449 ULONGEST offset, LONGEST len,
1450 void (*progress) (ULONGEST, void *), void *baton)
1451{
1452 LONGEST xfered = 0;
1453
1454 /* Give the progress callback a chance to set up. */
1455 if (progress)
1456 (*progress) (0, baton);
1457
1458 while (xfered < len)
1459 {
1460 LONGEST xfer = target_write_partial (ops, object, annex,
1461 (gdb_byte *) buf + xfered,
1462 offset + xfered, len - xfered);
1463
1464 if (xfer == 0)
1465 return xfered;
1466 if (xfer < 0)
1467 return -1;
1468
1469 if (progress)
1470 (*progress) (xfer, baton);
1471
1472 xfered += xfer;
1473 QUIT;
1474 }
1475 return len;
1476}
1477
1478LONGEST
1479target_write (struct target_ops *ops,
1480 enum target_object object,
1481 const char *annex, const gdb_byte *buf,
1482 ULONGEST offset, LONGEST len)
1483{
1484 return target_write_with_progress (ops, object, annex, buf, offset, len,
1485 NULL, NULL);
1486}
1487
1488/* Read OBJECT/ANNEX using OPS. Store the result in *BUF_P and return
1489 the size of the transferred data. PADDING additional bytes are
1490 available in *BUF_P. This is a helper function for
1491 target_read_alloc; see the declaration of that function for more
1492 information. */
1493
1494static LONGEST
1495target_read_alloc_1 (struct target_ops *ops, enum target_object object,
1496 const char *annex, gdb_byte **buf_p, int padding)
1497{
1498 size_t buf_alloc, buf_pos;
1499 gdb_byte *buf;
1500 LONGEST n;
1501
1502 /* This function does not have a length parameter; it reads the
1503 entire OBJECT). Also, it doesn't support objects fetched partly
1504 from one target and partly from another (in a different stratum,
1505 e.g. a core file and an executable). Both reasons make it
1506 unsuitable for reading memory. */
1507 gdb_assert (object != TARGET_OBJECT_MEMORY);
1508
1509 /* Start by reading up to 4K at a time. The target will throttle
1510 this number down if necessary. */
1511 buf_alloc = 4096;
1512 buf = xmalloc (buf_alloc);
1513 buf_pos = 0;
1514 while (1)
1515 {
1516 n = target_read_partial (ops, object, annex, &buf[buf_pos],
1517 buf_pos, buf_alloc - buf_pos - padding);
1518 if (n < 0)
1519 {
1520 /* An error occurred. */
1521 xfree (buf);
1522 return -1;
1523 }
1524 else if (n == 0)
1525 {
1526 /* Read all there was. */
1527 if (buf_pos == 0)
1528 xfree (buf);
1529 else
1530 *buf_p = buf;
1531 return buf_pos;
1532 }
1533
1534 buf_pos += n;
1535
1536 /* If the buffer is filling up, expand it. */
1537 if (buf_alloc < buf_pos * 2)
1538 {
1539 buf_alloc *= 2;
1540 buf = xrealloc (buf, buf_alloc);
1541 }
1542
1543 QUIT;
1544 }
1545}
1546
1547/* Read OBJECT/ANNEX using OPS. Store the result in *BUF_P and return
1548 the size of the transferred data. See the declaration in "target.h"
1549 function for more information about the return value. */
1550
1551LONGEST
1552target_read_alloc (struct target_ops *ops, enum target_object object,
1553 const char *annex, gdb_byte **buf_p)
1554{
1555 return target_read_alloc_1 (ops, object, annex, buf_p, 0);
1556}
1557
1558/* Read OBJECT/ANNEX using OPS. The result is NUL-terminated and
1559 returned as a string, allocated using xmalloc. If an error occurs
1560 or the transfer is unsupported, NULL is returned. Empty objects
1561 are returned as allocated but empty strings. A warning is issued
1562 if the result contains any embedded NUL bytes. */
1563
1564char *
1565target_read_stralloc (struct target_ops *ops, enum target_object object,
1566 const char *annex)
1567{
1568 gdb_byte *buffer;
1569 LONGEST transferred;
1570
1571 transferred = target_read_alloc_1 (ops, object, annex, &buffer, 1);
1572
1573 if (transferred < 0)
1574 return NULL;
1575
1576 if (transferred == 0)
1577 return xstrdup ("");
1578
1579 buffer[transferred] = 0;
1580 if (strlen (buffer) < transferred)
1581 warning (_("target object %d, annex %s, "
1582 "contained unexpected null characters"),
1583 (int) object, annex ? annex : "(none)");
1584
1585 return (char *) buffer;
1586}
1587
1588/* Memory transfer methods. */
1589
1590void
1591get_target_memory (struct target_ops *ops, CORE_ADDR addr, gdb_byte *buf,
1592 LONGEST len)
1593{
1594 if (target_read (ops, TARGET_OBJECT_MEMORY, NULL, buf, addr, len)
1595 != len)
1596 memory_error (EIO, addr);
1597}
1598
1599ULONGEST
1600get_target_memory_unsigned (struct target_ops *ops,
1601 CORE_ADDR addr, int len)
1602{
1603 gdb_byte buf[sizeof (ULONGEST)];
1604
1605 gdb_assert (len <= sizeof (buf));
1606 get_target_memory (ops, addr, buf, len);
1607 return extract_unsigned_integer (buf, len);
1608}
1609
1610static void
1611target_info (char *args, int from_tty)
1612{
1613 struct target_ops *t;
1614 int has_all_mem = 0;
1615
1616 if (symfile_objfile != NULL)
1617 printf_unfiltered (_("Symbols from \"%s\".\n"), symfile_objfile->name);
1618
1619 for (t = target_stack; t != NULL; t = t->beneath)
1620 {
1621 if (!t->to_has_memory)
1622 continue;
1623
1624 if ((int) (t->to_stratum) <= (int) dummy_stratum)
1625 continue;
1626 if (has_all_mem)
1627 printf_unfiltered (_("\tWhile running this, GDB does not access memory from...\n"));
1628 printf_unfiltered ("%s:\n", t->to_longname);
1629 (t->to_files_info) (t);
1630 has_all_mem = t->to_has_all_memory;
1631 }
1632}
1633
1634/* This function is called before any new inferior is created, e.g.
1635 by running a program, attaching, or connecting to a target.
1636 It cleans up any state from previous invocations which might
1637 change between runs. This is a subset of what target_preopen
1638 resets (things which might change between targets). */
1639
1640void
1641target_pre_inferior (int from_tty)
1642{
1643 invalidate_target_mem_regions ();
1644
1645 target_clear_description ();
1646}
1647
1648/* This is to be called by the open routine before it does
1649 anything. */
1650
1651void
1652target_preopen (int from_tty)
1653{
1654 dont_repeat ();
1655
1656 if (target_has_execution)
1657 {
1658 if (!from_tty
1659 || query (_("A program is being debugged already. Kill it? ")))
1660 target_kill ();
1661 else
1662 error (_("Program not killed."));
1663 }
1664
1665 /* Calling target_kill may remove the target from the stack. But if
1666 it doesn't (which seems like a win for UDI), remove it now. */
1667
1668 if (target_has_execution)
1669 pop_target ();
1670
1671 target_pre_inferior (from_tty);
1672}
1673
1674/* Detach a target after doing deferred register stores. */
1675
1676void
1677target_detach (char *args, int from_tty)
1678{
1679 /* If we're in breakpoints-always-inserted mode, have to
1680 remove them before detaching. */
1681 remove_breakpoints ();
1682
1683 (current_target.to_detach) (args, from_tty);
1684}
1685
1686void
1687target_disconnect (char *args, int from_tty)
1688{
1689 struct target_ops *t;
1690
1691 /* If we're in breakpoints-always-inserted mode, have to
1692 remove them before disconnecting. */
1693 remove_breakpoints ();
1694
1695 for (t = current_target.beneath; t != NULL; t = t->beneath)
1696 if (t->to_disconnect != NULL)
1697 {
1698 if (targetdebug)
1699 fprintf_unfiltered (gdb_stdlog, "target_disconnect (%s, %d)\n",
1700 args, from_tty);
1701 t->to_disconnect (t, args, from_tty);
1702 return;
1703 }
1704
1705 tcomplain ();
1706}
1707
1708/* Look through the list of possible targets for a target that can
1709 follow forks. */
1710
1711int
1712target_follow_fork (int follow_child)
1713{
1714 struct target_ops *t;
1715
1716 for (t = current_target.beneath; t != NULL; t = t->beneath)
1717 {
1718 if (t->to_follow_fork != NULL)
1719 {
1720 int retval = t->to_follow_fork (t, follow_child);
1721 if (targetdebug)
1722 fprintf_unfiltered (gdb_stdlog, "target_follow_fork (%d) = %d\n",
1723 follow_child, retval);
1724 return retval;
1725 }
1726 }
1727
1728 /* Some target returned a fork event, but did not know how to follow it. */
1729 internal_error (__FILE__, __LINE__,
1730 "could not find a target to follow fork");
1731}
1732
1733/* Look for a target which can describe architectural features, starting
1734 from TARGET. If we find one, return its description. */
1735
1736const struct target_desc *
1737target_read_description (struct target_ops *target)
1738{
1739 struct target_ops *t;
1740
1741 for (t = target; t != NULL; t = t->beneath)
1742 if (t->to_read_description != NULL)
1743 {
1744 const struct target_desc *tdesc;
1745
1746 tdesc = t->to_read_description (t);
1747 if (tdesc)
1748 return tdesc;
1749 }
1750
1751 return NULL;
1752}
1753
1754/* Look through the currently pushed targets. If none of them will
1755 be able to restart the currently running process, issue an error
1756 message. */
1757
1758void
1759target_require_runnable (void)
1760{
1761 struct target_ops *t;
1762
1763 for (t = target_stack; t != NULL; t = t->beneath)
1764 {
1765 /* If this target knows how to create a new program, then
1766 assume we will still be able to after killing the current
1767 one. Either killing and mourning will not pop T, or else
1768 find_default_run_target will find it again. */
1769 if (t->to_create_inferior != NULL)
1770 return;
1771
1772 /* Do not worry about thread_stratum targets that can not
1773 create inferiors. Assume they will be pushed again if
1774 necessary, and continue to the process_stratum. */
1775 if (t->to_stratum == thread_stratum)
1776 continue;
1777
1778 error (_("\
1779The \"%s\" target does not support \"run\". Try \"help target\" or \"continue\"."),
1780 t->to_shortname);
1781 }
1782
1783 /* This function is only called if the target is running. In that
1784 case there should have been a process_stratum target and it
1785 should either know how to create inferiors, or not... */
1786 internal_error (__FILE__, __LINE__, "No targets found");
1787}
1788
1789/* Look through the list of possible targets for a target that can
1790 execute a run or attach command without any other data. This is
1791 used to locate the default process stratum.
1792
1793 If DO_MESG is not NULL, the result is always valid (error() is
1794 called for errors); else, return NULL on error. */
1795
1796static struct target_ops *
1797find_default_run_target (char *do_mesg)
1798{
1799 struct target_ops **t;
1800 struct target_ops *runable = NULL;
1801 int count;
1802
1803 count = 0;
1804
1805 for (t = target_structs; t < target_structs + target_struct_size;
1806 ++t)
1807 {
1808 if ((*t)->to_can_run && target_can_run (*t))
1809 {
1810 runable = *t;
1811 ++count;
1812 }
1813 }
1814
1815 if (count != 1)
1816 {
1817 if (do_mesg)
1818 error (_("Don't know how to %s. Try \"help target\"."), do_mesg);
1819 else
1820 return NULL;
1821 }
1822
1823 return runable;
1824}
1825
1826void
1827find_default_attach (char *args, int from_tty)
1828{
1829 struct target_ops *t;
1830
1831 t = find_default_run_target ("attach");
1832 (t->to_attach) (args, from_tty);
1833 return;
1834}
1835
1836void
1837find_default_create_inferior (char *exec_file, char *allargs, char **env,
1838 int from_tty)
1839{
1840 struct target_ops *t;
1841
1842 t = find_default_run_target ("run");
1843 (t->to_create_inferior) (exec_file, allargs, env, from_tty);
1844 return;
1845}
1846
1847int
1848find_default_can_async_p (void)
1849{
1850 struct target_ops *t;
1851
1852 /* This may be called before the target is pushed on the stack;
1853 look for the default process stratum. If there's none, gdb isn't
1854 configured with a native debugger, and target remote isn't
1855 connected yet. */
1856 t = find_default_run_target (NULL);
1857 if (t && t->to_can_async_p)
1858 return (t->to_can_async_p) ();
1859 return 0;
1860}
1861
1862int
1863find_default_is_async_p (void)
1864{
1865 struct target_ops *t;
1866
1867 /* This may be called before the target is pushed on the stack;
1868 look for the default process stratum. If there's none, gdb isn't
1869 configured with a native debugger, and target remote isn't
1870 connected yet. */
1871 t = find_default_run_target (NULL);
1872 if (t && t->to_is_async_p)
1873 return (t->to_is_async_p) ();
1874 return 0;
1875}
1876
1877static int
1878default_region_ok_for_hw_watchpoint (CORE_ADDR addr, int len)
1879{
1880 return (len <= TYPE_LENGTH (builtin_type_void_data_ptr));
1881}
1882
1883static int
1884return_zero (void)
1885{
1886 return 0;
1887}
1888
1889static int
1890return_one (void)
1891{
1892 return 1;
1893}
1894
1895static int
1896return_minus_one (void)
1897{
1898 return -1;
1899}
1900
1901/*
1902 * Resize the to_sections pointer. Also make sure that anyone that
1903 * was holding on to an old value of it gets updated.
1904 * Returns the old size.
1905 */
1906
1907int
1908target_resize_to_sections (struct target_ops *target, int num_added)
1909{
1910 struct target_ops **t;
1911 struct section_table *old_value;
1912 int old_count;
1913
1914 old_value = target->to_sections;
1915
1916 if (target->to_sections)
1917 {
1918 old_count = target->to_sections_end - target->to_sections;
1919 target->to_sections = (struct section_table *)
1920 xrealloc ((char *) target->to_sections,
1921 (sizeof (struct section_table)) * (num_added + old_count));
1922 }
1923 else
1924 {
1925 old_count = 0;
1926 target->to_sections = (struct section_table *)
1927 xmalloc ((sizeof (struct section_table)) * num_added);
1928 }
1929 target->to_sections_end = target->to_sections + (num_added + old_count);
1930
1931 /* Check to see if anyone else was pointing to this structure.
1932 If old_value was null, then no one was. */
1933
1934 if (old_value)
1935 {
1936 for (t = target_structs; t < target_structs + target_struct_size;
1937 ++t)
1938 {
1939 if ((*t)->to_sections == old_value)
1940 {
1941 (*t)->to_sections = target->to_sections;
1942 (*t)->to_sections_end = target->to_sections_end;
1943 }
1944 }
1945 /* There is a flattened view of the target stack in current_target,
1946 so its to_sections pointer might also need updating. */
1947 if (current_target.to_sections == old_value)
1948 {
1949 current_target.to_sections = target->to_sections;
1950 current_target.to_sections_end = target->to_sections_end;
1951 }
1952 }
1953
1954 return old_count;
1955
1956}
1957
1958/* Remove all target sections taken from ABFD.
1959
1960 Scan the current target stack for targets whose section tables
1961 refer to sections from BFD, and remove those sections. We use this
1962 when we notice that the inferior has unloaded a shared object, for
1963 example. */
1964void
1965remove_target_sections (bfd *abfd)
1966{
1967 struct target_ops **t;
1968
1969 for (t = target_structs; t < target_structs + target_struct_size; t++)
1970 {
1971 struct section_table *src, *dest;
1972
1973 dest = (*t)->to_sections;
1974 for (src = (*t)->to_sections; src < (*t)->to_sections_end; src++)
1975 if (src->bfd != abfd)
1976 {
1977 /* Keep this section. */
1978 if (dest < src) *dest = *src;
1979 dest++;
1980 }
1981
1982 /* If we've dropped any sections, resize the section table. */
1983 if (dest < src)
1984 target_resize_to_sections (*t, dest - src);
1985 }
1986}
1987
1988
1989
1990
1991/* Find a single runnable target in the stack and return it. If for
1992 some reason there is more than one, return NULL. */
1993
1994struct target_ops *
1995find_run_target (void)
1996{
1997 struct target_ops **t;
1998 struct target_ops *runable = NULL;
1999 int count;
2000
2001 count = 0;
2002
2003 for (t = target_structs; t < target_structs + target_struct_size; ++t)
2004 {
2005 if ((*t)->to_can_run && target_can_run (*t))
2006 {
2007 runable = *t;
2008 ++count;
2009 }
2010 }
2011
2012 return (count == 1 ? runable : NULL);
2013}
2014
2015/* Find a single core_stratum target in the list of targets and return it.
2016 If for some reason there is more than one, return NULL. */
2017
2018struct target_ops *
2019find_core_target (void)
2020{
2021 struct target_ops **t;
2022 struct target_ops *runable = NULL;
2023 int count;
2024
2025 count = 0;
2026
2027 for (t = target_structs; t < target_structs + target_struct_size;
2028 ++t)
2029 {
2030 if ((*t)->to_stratum == core_stratum)
2031 {
2032 runable = *t;
2033 ++count;
2034 }
2035 }
2036
2037 return (count == 1 ? runable : NULL);
2038}
2039
2040/*
2041 * Find the next target down the stack from the specified target.
2042 */
2043
2044struct target_ops *
2045find_target_beneath (struct target_ops *t)
2046{
2047 return t->beneath;
2048}
2049
2050\f
2051/* The inferior process has died. Long live the inferior! */
2052
2053void
2054generic_mourn_inferior (void)
2055{
2056 extern int show_breakpoint_hit_counts;
2057
2058 inferior_ptid = null_ptid;
2059 attach_flag = 0;
2060 breakpoint_init_inferior (inf_exited);
2061 registers_changed ();
2062
2063 reopen_exec_file ();
2064 reinit_frame_cache ();
2065
2066 /* It is confusing to the user for ignore counts to stick around
2067 from previous runs of the inferior. So clear them. */
2068 /* However, it is more confusing for the ignore counts to disappear when
2069 using hit counts. So don't clear them if we're counting hits. */
2070 if (!show_breakpoint_hit_counts)
2071 breakpoint_clear_ignore_counts ();
2072
2073 if (deprecated_detach_hook)
2074 deprecated_detach_hook ();
2075}
2076\f
2077/* Helper function for child_wait and the derivatives of child_wait.
2078 HOSTSTATUS is the waitstatus from wait() or the equivalent; store our
2079 translation of that in OURSTATUS. */
2080void
2081store_waitstatus (struct target_waitstatus *ourstatus, int hoststatus)
2082{
2083 if (WIFEXITED (hoststatus))
2084 {
2085 ourstatus->kind = TARGET_WAITKIND_EXITED;
2086 ourstatus->value.integer = WEXITSTATUS (hoststatus);
2087 }
2088 else if (!WIFSTOPPED (hoststatus))
2089 {
2090 ourstatus->kind = TARGET_WAITKIND_SIGNALLED;
2091 ourstatus->value.sig = target_signal_from_host (WTERMSIG (hoststatus));
2092 }
2093 else
2094 {
2095 ourstatus->kind = TARGET_WAITKIND_STOPPED;
2096 ourstatus->value.sig = target_signal_from_host (WSTOPSIG (hoststatus));
2097 }
2098}
2099\f
2100/* Returns zero to leave the inferior alone, one to interrupt it. */
2101int (*target_activity_function) (void);
2102int target_activity_fd;
2103\f
2104/* Convert a normal process ID to a string. Returns the string in a
2105 static buffer. */
2106
2107char *
2108normal_pid_to_str (ptid_t ptid)
2109{
2110 static char buf[32];
2111
2112 xsnprintf (buf, sizeof buf, "process %d", ptid_get_pid (ptid));
2113 return buf;
2114}
2115
2116/* Error-catcher for target_find_memory_regions */
2117static int dummy_find_memory_regions (int (*ignore1) (), void *ignore2)
2118{
2119 error (_("No target."));
2120 return 0;
2121}
2122
2123/* Error-catcher for target_make_corefile_notes */
2124static char * dummy_make_corefile_notes (bfd *ignore1, int *ignore2)
2125{
2126 error (_("No target."));
2127 return NULL;
2128}
2129
2130/* Set up the handful of non-empty slots needed by the dummy target
2131 vector. */
2132
2133static void
2134init_dummy_target (void)
2135{
2136 dummy_target.to_shortname = "None";
2137 dummy_target.to_longname = "None";
2138 dummy_target.to_doc = "";
2139 dummy_target.to_attach = find_default_attach;
2140 dummy_target.to_create_inferior = find_default_create_inferior;
2141 dummy_target.to_can_async_p = find_default_can_async_p;
2142 dummy_target.to_is_async_p = find_default_is_async_p;
2143 dummy_target.to_pid_to_str = normal_pid_to_str;
2144 dummy_target.to_stratum = dummy_stratum;
2145 dummy_target.to_find_memory_regions = dummy_find_memory_regions;
2146 dummy_target.to_make_corefile_notes = dummy_make_corefile_notes;
2147 dummy_target.to_xfer_partial = default_xfer_partial;
2148 dummy_target.to_magic = OPS_MAGIC;
2149}
2150\f
2151static void
2152debug_to_open (char *args, int from_tty)
2153{
2154 debug_target.to_open (args, from_tty);
2155
2156 fprintf_unfiltered (gdb_stdlog, "target_open (%s, %d)\n", args, from_tty);
2157}
2158
2159static void
2160debug_to_close (int quitting)
2161{
2162 target_close (&debug_target, quitting);
2163 fprintf_unfiltered (gdb_stdlog, "target_close (%d)\n", quitting);
2164}
2165
2166void
2167target_close (struct target_ops *targ, int quitting)
2168{
2169 if (targ->to_xclose != NULL)
2170 targ->to_xclose (targ, quitting);
2171 else if (targ->to_close != NULL)
2172 targ->to_close (quitting);
2173}
2174
2175static void
2176debug_to_attach (char *args, int from_tty)
2177{
2178 debug_target.to_attach (args, from_tty);
2179
2180 fprintf_unfiltered (gdb_stdlog, "target_attach (%s, %d)\n", args, from_tty);
2181}
2182
2183
2184static void
2185debug_to_post_attach (int pid)
2186{
2187 debug_target.to_post_attach (pid);
2188
2189 fprintf_unfiltered (gdb_stdlog, "target_post_attach (%d)\n", pid);
2190}
2191
2192static void
2193debug_to_detach (char *args, int from_tty)
2194{
2195 debug_target.to_detach (args, from_tty);
2196
2197 fprintf_unfiltered (gdb_stdlog, "target_detach (%s, %d)\n", args, from_tty);
2198}
2199
2200static void
2201debug_to_resume (ptid_t ptid, int step, enum target_signal siggnal)
2202{
2203 debug_target.to_resume (ptid, step, siggnal);
2204
2205 fprintf_unfiltered (gdb_stdlog, "target_resume (%d, %s, %s)\n", PIDGET (ptid),
2206 step ? "step" : "continue",
2207 target_signal_to_name (siggnal));
2208}
2209
2210static ptid_t
2211debug_to_wait (ptid_t ptid, struct target_waitstatus *status)
2212{
2213 ptid_t retval;
2214
2215 retval = debug_target.to_wait (ptid, status);
2216
2217 fprintf_unfiltered (gdb_stdlog,
2218 "target_wait (%d, status) = %d, ", PIDGET (ptid),
2219 PIDGET (retval));
2220 fprintf_unfiltered (gdb_stdlog, "status->kind = ");
2221 switch (status->kind)
2222 {
2223 case TARGET_WAITKIND_EXITED:
2224 fprintf_unfiltered (gdb_stdlog, "exited, status = %d\n",
2225 status->value.integer);
2226 break;
2227 case TARGET_WAITKIND_STOPPED:
2228 fprintf_unfiltered (gdb_stdlog, "stopped, signal = %s\n",
2229 target_signal_to_name (status->value.sig));
2230 break;
2231 case TARGET_WAITKIND_SIGNALLED:
2232 fprintf_unfiltered (gdb_stdlog, "signalled, signal = %s\n",
2233 target_signal_to_name (status->value.sig));
2234 break;
2235 case TARGET_WAITKIND_LOADED:
2236 fprintf_unfiltered (gdb_stdlog, "loaded\n");
2237 break;
2238 case TARGET_WAITKIND_FORKED:
2239 fprintf_unfiltered (gdb_stdlog, "forked\n");
2240 break;
2241 case TARGET_WAITKIND_VFORKED:
2242 fprintf_unfiltered (gdb_stdlog, "vforked\n");
2243 break;
2244 case TARGET_WAITKIND_EXECD:
2245 fprintf_unfiltered (gdb_stdlog, "execd\n");
2246 break;
2247 case TARGET_WAITKIND_SPURIOUS:
2248 fprintf_unfiltered (gdb_stdlog, "spurious\n");
2249 break;
2250 default:
2251 fprintf_unfiltered (gdb_stdlog, "unknown???\n");
2252 break;
2253 }
2254
2255 return retval;
2256}
2257
2258static void
2259debug_print_register (const char * func,
2260 struct regcache *regcache, int regno)
2261{
2262 struct gdbarch *gdbarch = get_regcache_arch (regcache);
2263 fprintf_unfiltered (gdb_stdlog, "%s ", func);
2264 if (regno >= 0 && regno < gdbarch_num_regs (gdbarch)
2265 + gdbarch_num_pseudo_regs (gdbarch)
2266 && gdbarch_register_name (gdbarch, regno) != NULL
2267 && gdbarch_register_name (gdbarch, regno)[0] != '\0')
2268 fprintf_unfiltered (gdb_stdlog, "(%s)",
2269 gdbarch_register_name (gdbarch, regno));
2270 else
2271 fprintf_unfiltered (gdb_stdlog, "(%d)", regno);
2272 if (regno >= 0)
2273 {
2274 int i, size = register_size (gdbarch, regno);
2275 unsigned char buf[MAX_REGISTER_SIZE];
2276 regcache_cooked_read (regcache, regno, buf);
2277 fprintf_unfiltered (gdb_stdlog, " = ");
2278 for (i = 0; i < size; i++)
2279 {
2280 fprintf_unfiltered (gdb_stdlog, "%02x", buf[i]);
2281 }
2282 if (size <= sizeof (LONGEST))
2283 {
2284 ULONGEST val = extract_unsigned_integer (buf, size);
2285 fprintf_unfiltered (gdb_stdlog, " 0x%s %s",
2286 paddr_nz (val), paddr_d (val));
2287 }
2288 }
2289 fprintf_unfiltered (gdb_stdlog, "\n");
2290}
2291
2292static void
2293debug_to_fetch_registers (struct regcache *regcache, int regno)
2294{
2295 debug_target.to_fetch_registers (regcache, regno);
2296 debug_print_register ("target_fetch_registers", regcache, regno);
2297}
2298
2299static void
2300debug_to_store_registers (struct regcache *regcache, int regno)
2301{
2302 debug_target.to_store_registers (regcache, regno);
2303 debug_print_register ("target_store_registers", regcache, regno);
2304 fprintf_unfiltered (gdb_stdlog, "\n");
2305}
2306
2307static void
2308debug_to_prepare_to_store (struct regcache *regcache)
2309{
2310 debug_target.to_prepare_to_store (regcache);
2311
2312 fprintf_unfiltered (gdb_stdlog, "target_prepare_to_store ()\n");
2313}
2314
2315static int
2316deprecated_debug_xfer_memory (CORE_ADDR memaddr, bfd_byte *myaddr, int len,
2317 int write, struct mem_attrib *attrib,
2318 struct target_ops *target)
2319{
2320 int retval;
2321
2322 retval = debug_target.deprecated_xfer_memory (memaddr, myaddr, len, write,
2323 attrib, target);
2324
2325 fprintf_unfiltered (gdb_stdlog,
2326 "target_xfer_memory (0x%x, xxx, %d, %s, xxx) = %d",
2327 (unsigned int) memaddr, /* possable truncate long long */
2328 len, write ? "write" : "read", retval);
2329
2330 if (retval > 0)
2331 {
2332 int i;
2333
2334 fputs_unfiltered (", bytes =", gdb_stdlog);
2335 for (i = 0; i < retval; i++)
2336 {
2337 if ((((long) &(myaddr[i])) & 0xf) == 0)
2338 {
2339 if (targetdebug < 2 && i > 0)
2340 {
2341 fprintf_unfiltered (gdb_stdlog, " ...");
2342 break;
2343 }
2344 fprintf_unfiltered (gdb_stdlog, "\n");
2345 }
2346
2347 fprintf_unfiltered (gdb_stdlog, " %02x", myaddr[i] & 0xff);
2348 }
2349 }
2350
2351 fputc_unfiltered ('\n', gdb_stdlog);
2352
2353 return retval;
2354}
2355
2356static void
2357debug_to_files_info (struct target_ops *target)
2358{
2359 debug_target.to_files_info (target);
2360
2361 fprintf_unfiltered (gdb_stdlog, "target_files_info (xxx)\n");
2362}
2363
2364static int
2365debug_to_insert_breakpoint (struct bp_target_info *bp_tgt)
2366{
2367 int retval;
2368
2369 retval = debug_target.to_insert_breakpoint (bp_tgt);
2370
2371 fprintf_unfiltered (gdb_stdlog,
2372 "target_insert_breakpoint (0x%lx, xxx) = %ld\n",
2373 (unsigned long) bp_tgt->placed_address,
2374 (unsigned long) retval);
2375 return retval;
2376}
2377
2378static int
2379debug_to_remove_breakpoint (struct bp_target_info *bp_tgt)
2380{
2381 int retval;
2382
2383 retval = debug_target.to_remove_breakpoint (bp_tgt);
2384
2385 fprintf_unfiltered (gdb_stdlog,
2386 "target_remove_breakpoint (0x%lx, xxx) = %ld\n",
2387 (unsigned long) bp_tgt->placed_address,
2388 (unsigned long) retval);
2389 return retval;
2390}
2391
2392static int
2393debug_to_can_use_hw_breakpoint (int type, int cnt, int from_tty)
2394{
2395 int retval;
2396
2397 retval = debug_target.to_can_use_hw_breakpoint (type, cnt, from_tty);
2398
2399 fprintf_unfiltered (gdb_stdlog,
2400 "target_can_use_hw_breakpoint (%ld, %ld, %ld) = %ld\n",
2401 (unsigned long) type,
2402 (unsigned long) cnt,
2403 (unsigned long) from_tty,
2404 (unsigned long) retval);
2405 return retval;
2406}
2407
2408static int
2409debug_to_region_ok_for_hw_watchpoint (CORE_ADDR addr, int len)
2410{
2411 CORE_ADDR retval;
2412
2413 retval = debug_target.to_region_ok_for_hw_watchpoint (addr, len);
2414
2415 fprintf_unfiltered (gdb_stdlog,
2416 "TARGET_REGION_OK_FOR_HW_WATCHPOINT (%ld, %ld) = 0x%lx\n",
2417 (unsigned long) addr,
2418 (unsigned long) len,
2419 (unsigned long) retval);
2420 return retval;
2421}
2422
2423static int
2424debug_to_stopped_by_watchpoint (void)
2425{
2426 int retval;
2427
2428 retval = debug_target.to_stopped_by_watchpoint ();
2429
2430 fprintf_unfiltered (gdb_stdlog,
2431 "STOPPED_BY_WATCHPOINT () = %ld\n",
2432 (unsigned long) retval);
2433 return retval;
2434}
2435
2436static int
2437debug_to_stopped_data_address (struct target_ops *target, CORE_ADDR *addr)
2438{
2439 int retval;
2440
2441 retval = debug_target.to_stopped_data_address (target, addr);
2442
2443 fprintf_unfiltered (gdb_stdlog,
2444 "target_stopped_data_address ([0x%lx]) = %ld\n",
2445 (unsigned long)*addr,
2446 (unsigned long)retval);
2447 return retval;
2448}
2449
2450static int
2451debug_to_insert_hw_breakpoint (struct bp_target_info *bp_tgt)
2452{
2453 int retval;
2454
2455 retval = debug_target.to_insert_hw_breakpoint (bp_tgt);
2456
2457 fprintf_unfiltered (gdb_stdlog,
2458 "target_insert_hw_breakpoint (0x%lx, xxx) = %ld\n",
2459 (unsigned long) bp_tgt->placed_address,
2460 (unsigned long) retval);
2461 return retval;
2462}
2463
2464static int
2465debug_to_remove_hw_breakpoint (struct bp_target_info *bp_tgt)
2466{
2467 int retval;
2468
2469 retval = debug_target.to_remove_hw_breakpoint (bp_tgt);
2470
2471 fprintf_unfiltered (gdb_stdlog,
2472 "target_remove_hw_breakpoint (0x%lx, xxx) = %ld\n",
2473 (unsigned long) bp_tgt->placed_address,
2474 (unsigned long) retval);
2475 return retval;
2476}
2477
2478static int
2479debug_to_insert_watchpoint (CORE_ADDR addr, int len, int type)
2480{
2481 int retval;
2482
2483 retval = debug_target.to_insert_watchpoint (addr, len, type);
2484
2485 fprintf_unfiltered (gdb_stdlog,
2486 "target_insert_watchpoint (0x%lx, %d, %d) = %ld\n",
2487 (unsigned long) addr, len, type, (unsigned long) retval);
2488 return retval;
2489}
2490
2491static int
2492debug_to_remove_watchpoint (CORE_ADDR addr, int len, int type)
2493{
2494 int retval;
2495
2496 retval = debug_target.to_remove_watchpoint (addr, len, type);
2497
2498 fprintf_unfiltered (gdb_stdlog,
2499 "target_remove_watchpoint (0x%lx, %d, %d) = %ld\n",
2500 (unsigned long) addr, len, type, (unsigned long) retval);
2501 return retval;
2502}
2503
2504static void
2505debug_to_terminal_init (void)
2506{
2507 debug_target.to_terminal_init ();
2508
2509 fprintf_unfiltered (gdb_stdlog, "target_terminal_init ()\n");
2510}
2511
2512static void
2513debug_to_terminal_inferior (void)
2514{
2515 debug_target.to_terminal_inferior ();
2516
2517 fprintf_unfiltered (gdb_stdlog, "target_terminal_inferior ()\n");
2518}
2519
2520static void
2521debug_to_terminal_ours_for_output (void)
2522{
2523 debug_target.to_terminal_ours_for_output ();
2524
2525 fprintf_unfiltered (gdb_stdlog, "target_terminal_ours_for_output ()\n");
2526}
2527
2528static void
2529debug_to_terminal_ours (void)
2530{
2531 debug_target.to_terminal_ours ();
2532
2533 fprintf_unfiltered (gdb_stdlog, "target_terminal_ours ()\n");
2534}
2535
2536static void
2537debug_to_terminal_save_ours (void)
2538{
2539 debug_target.to_terminal_save_ours ();
2540
2541 fprintf_unfiltered (gdb_stdlog, "target_terminal_save_ours ()\n");
2542}
2543
2544static void
2545debug_to_terminal_info (char *arg, int from_tty)
2546{
2547 debug_target.to_terminal_info (arg, from_tty);
2548
2549 fprintf_unfiltered (gdb_stdlog, "target_terminal_info (%s, %d)\n", arg,
2550 from_tty);
2551}
2552
2553static void
2554debug_to_kill (void)
2555{
2556 debug_target.to_kill ();
2557
2558 fprintf_unfiltered (gdb_stdlog, "target_kill ()\n");
2559}
2560
2561static void
2562debug_to_load (char *args, int from_tty)
2563{
2564 debug_target.to_load (args, from_tty);
2565
2566 fprintf_unfiltered (gdb_stdlog, "target_load (%s, %d)\n", args, from_tty);
2567}
2568
2569static int
2570debug_to_lookup_symbol (char *name, CORE_ADDR *addrp)
2571{
2572 int retval;
2573
2574 retval = debug_target.to_lookup_symbol (name, addrp);
2575
2576 fprintf_unfiltered (gdb_stdlog, "target_lookup_symbol (%s, xxx)\n", name);
2577
2578 return retval;
2579}
2580
2581static void
2582debug_to_create_inferior (char *exec_file, char *args, char **env,
2583 int from_tty)
2584{
2585 debug_target.to_create_inferior (exec_file, args, env, from_tty);
2586
2587 fprintf_unfiltered (gdb_stdlog, "target_create_inferior (%s, %s, xxx, %d)\n",
2588 exec_file, args, from_tty);
2589}
2590
2591static void
2592debug_to_post_startup_inferior (ptid_t ptid)
2593{
2594 debug_target.to_post_startup_inferior (ptid);
2595
2596 fprintf_unfiltered (gdb_stdlog, "target_post_startup_inferior (%d)\n",
2597 PIDGET (ptid));
2598}
2599
2600static void
2601debug_to_acknowledge_created_inferior (int pid)
2602{
2603 debug_target.to_acknowledge_created_inferior (pid);
2604
2605 fprintf_unfiltered (gdb_stdlog, "target_acknowledge_created_inferior (%d)\n",
2606 pid);
2607}
2608
2609static void
2610debug_to_insert_fork_catchpoint (int pid)
2611{
2612 debug_target.to_insert_fork_catchpoint (pid);
2613
2614 fprintf_unfiltered (gdb_stdlog, "target_insert_fork_catchpoint (%d)\n",
2615 pid);
2616}
2617
2618static int
2619debug_to_remove_fork_catchpoint (int pid)
2620{
2621 int retval;
2622
2623 retval = debug_target.to_remove_fork_catchpoint (pid);
2624
2625 fprintf_unfiltered (gdb_stdlog, "target_remove_fork_catchpoint (%d) = %d\n",
2626 pid, retval);
2627
2628 return retval;
2629}
2630
2631static void
2632debug_to_insert_vfork_catchpoint (int pid)
2633{
2634 debug_target.to_insert_vfork_catchpoint (pid);
2635
2636 fprintf_unfiltered (gdb_stdlog, "target_insert_vfork_catchpoint (%d)\n",
2637 pid);
2638}
2639
2640static int
2641debug_to_remove_vfork_catchpoint (int pid)
2642{
2643 int retval;
2644
2645 retval = debug_target.to_remove_vfork_catchpoint (pid);
2646
2647 fprintf_unfiltered (gdb_stdlog, "target_remove_vfork_catchpoint (%d) = %d\n",
2648 pid, retval);
2649
2650 return retval;
2651}
2652
2653static void
2654debug_to_insert_exec_catchpoint (int pid)
2655{
2656 debug_target.to_insert_exec_catchpoint (pid);
2657
2658 fprintf_unfiltered (gdb_stdlog, "target_insert_exec_catchpoint (%d)\n",
2659 pid);
2660}
2661
2662static int
2663debug_to_remove_exec_catchpoint (int pid)
2664{
2665 int retval;
2666
2667 retval = debug_target.to_remove_exec_catchpoint (pid);
2668
2669 fprintf_unfiltered (gdb_stdlog, "target_remove_exec_catchpoint (%d) = %d\n",
2670 pid, retval);
2671
2672 return retval;
2673}
2674
2675static int
2676debug_to_has_exited (int pid, int wait_status, int *exit_status)
2677{
2678 int has_exited;
2679
2680 has_exited = debug_target.to_has_exited (pid, wait_status, exit_status);
2681
2682 fprintf_unfiltered (gdb_stdlog, "target_has_exited (%d, %d, %d) = %d\n",
2683 pid, wait_status, *exit_status, has_exited);
2684
2685 return has_exited;
2686}
2687
2688static void
2689debug_to_mourn_inferior (void)
2690{
2691 debug_target.to_mourn_inferior ();
2692
2693 fprintf_unfiltered (gdb_stdlog, "target_mourn_inferior ()\n");
2694}
2695
2696static int
2697debug_to_can_run (void)
2698{
2699 int retval;
2700
2701 retval = debug_target.to_can_run ();
2702
2703 fprintf_unfiltered (gdb_stdlog, "target_can_run () = %d\n", retval);
2704
2705 return retval;
2706}
2707
2708static void
2709debug_to_notice_signals (ptid_t ptid)
2710{
2711 debug_target.to_notice_signals (ptid);
2712
2713 fprintf_unfiltered (gdb_stdlog, "target_notice_signals (%d)\n",
2714 PIDGET (ptid));
2715}
2716
2717static int
2718debug_to_thread_alive (ptid_t ptid)
2719{
2720 int retval;
2721
2722 retval = debug_target.to_thread_alive (ptid);
2723
2724 fprintf_unfiltered (gdb_stdlog, "target_thread_alive (%d) = %d\n",
2725 PIDGET (ptid), retval);
2726
2727 return retval;
2728}
2729
2730static void
2731debug_to_find_new_threads (void)
2732{
2733 debug_target.to_find_new_threads ();
2734
2735 fputs_unfiltered ("target_find_new_threads ()\n", gdb_stdlog);
2736}
2737
2738static void
2739debug_to_stop (void)
2740{
2741 debug_target.to_stop ();
2742
2743 fprintf_unfiltered (gdb_stdlog, "target_stop ()\n");
2744}
2745
2746static void
2747debug_to_rcmd (char *command,
2748 struct ui_file *outbuf)
2749{
2750 debug_target.to_rcmd (command, outbuf);
2751 fprintf_unfiltered (gdb_stdlog, "target_rcmd (%s, ...)\n", command);
2752}
2753
2754static char *
2755debug_to_pid_to_exec_file (int pid)
2756{
2757 char *exec_file;
2758
2759 exec_file = debug_target.to_pid_to_exec_file (pid);
2760
2761 fprintf_unfiltered (gdb_stdlog, "target_pid_to_exec_file (%d) = %s\n",
2762 pid, exec_file);
2763
2764 return exec_file;
2765}
2766
2767static void
2768setup_target_debug (void)
2769{
2770 memcpy (&debug_target, &current_target, sizeof debug_target);
2771
2772 current_target.to_open = debug_to_open;
2773 current_target.to_close = debug_to_close;
2774 current_target.to_attach = debug_to_attach;
2775 current_target.to_post_attach = debug_to_post_attach;
2776 current_target.to_detach = debug_to_detach;
2777 current_target.to_resume = debug_to_resume;
2778 current_target.to_wait = debug_to_wait;
2779 current_target.to_fetch_registers = debug_to_fetch_registers;
2780 current_target.to_store_registers = debug_to_store_registers;
2781 current_target.to_prepare_to_store = debug_to_prepare_to_store;
2782 current_target.deprecated_xfer_memory = deprecated_debug_xfer_memory;
2783 current_target.to_files_info = debug_to_files_info;
2784 current_target.to_insert_breakpoint = debug_to_insert_breakpoint;
2785 current_target.to_remove_breakpoint = debug_to_remove_breakpoint;
2786 current_target.to_can_use_hw_breakpoint = debug_to_can_use_hw_breakpoint;
2787 current_target.to_insert_hw_breakpoint = debug_to_insert_hw_breakpoint;
2788 current_target.to_remove_hw_breakpoint = debug_to_remove_hw_breakpoint;
2789 current_target.to_insert_watchpoint = debug_to_insert_watchpoint;
2790 current_target.to_remove_watchpoint = debug_to_remove_watchpoint;
2791 current_target.to_stopped_by_watchpoint = debug_to_stopped_by_watchpoint;
2792 current_target.to_stopped_data_address = debug_to_stopped_data_address;
2793 current_target.to_region_ok_for_hw_watchpoint = debug_to_region_ok_for_hw_watchpoint;
2794 current_target.to_terminal_init = debug_to_terminal_init;
2795 current_target.to_terminal_inferior = debug_to_terminal_inferior;
2796 current_target.to_terminal_ours_for_output = debug_to_terminal_ours_for_output;
2797 current_target.to_terminal_ours = debug_to_terminal_ours;
2798 current_target.to_terminal_save_ours = debug_to_terminal_save_ours;
2799 current_target.to_terminal_info = debug_to_terminal_info;
2800 current_target.to_kill = debug_to_kill;
2801 current_target.to_load = debug_to_load;
2802 current_target.to_lookup_symbol = debug_to_lookup_symbol;
2803 current_target.to_create_inferior = debug_to_create_inferior;
2804 current_target.to_post_startup_inferior = debug_to_post_startup_inferior;
2805 current_target.to_acknowledge_created_inferior = debug_to_acknowledge_created_inferior;
2806 current_target.to_insert_fork_catchpoint = debug_to_insert_fork_catchpoint;
2807 current_target.to_remove_fork_catchpoint = debug_to_remove_fork_catchpoint;
2808 current_target.to_insert_vfork_catchpoint = debug_to_insert_vfork_catchpoint;
2809 current_target.to_remove_vfork_catchpoint = debug_to_remove_vfork_catchpoint;
2810 current_target.to_insert_exec_catchpoint = debug_to_insert_exec_catchpoint;
2811 current_target.to_remove_exec_catchpoint = debug_to_remove_exec_catchpoint;
2812 current_target.to_has_exited = debug_to_has_exited;
2813 current_target.to_mourn_inferior = debug_to_mourn_inferior;
2814 current_target.to_can_run = debug_to_can_run;
2815 current_target.to_notice_signals = debug_to_notice_signals;
2816 current_target.to_thread_alive = debug_to_thread_alive;
2817 current_target.to_find_new_threads = debug_to_find_new_threads;
2818 current_target.to_stop = debug_to_stop;
2819 current_target.to_rcmd = debug_to_rcmd;
2820 current_target.to_pid_to_exec_file = debug_to_pid_to_exec_file;
2821}
2822\f
2823
2824static char targ_desc[] =
2825"Names of targets and files being debugged.\n\
2826Shows the entire stack of targets currently in use (including the exec-file,\n\
2827core-file, and process, if any), as well as the symbol file name.";
2828
2829static void
2830do_monitor_command (char *cmd,
2831 int from_tty)
2832{
2833 if ((current_target.to_rcmd
2834 == (void (*) (char *, struct ui_file *)) tcomplain)
2835 || (current_target.to_rcmd == debug_to_rcmd
2836 && (debug_target.to_rcmd
2837 == (void (*) (char *, struct ui_file *)) tcomplain)))
2838 error (_("\"monitor\" command not supported by this target."));
2839 target_rcmd (cmd, gdb_stdtarg);
2840}
2841
2842/* Print the name of each layers of our target stack. */
2843
2844static void
2845maintenance_print_target_stack (char *cmd, int from_tty)
2846{
2847 struct target_ops *t;
2848
2849 printf_filtered (_("The current target stack is:\n"));
2850
2851 for (t = target_stack; t != NULL; t = t->beneath)
2852 {
2853 printf_filtered (" - %s (%s)\n", t->to_shortname, t->to_longname);
2854 }
2855}
2856
2857void
2858initialize_targets (void)
2859{
2860 init_dummy_target ();
2861 push_target (&dummy_target);
2862
2863 add_info ("target", target_info, targ_desc);
2864 add_info ("files", target_info, targ_desc);
2865
2866 add_setshow_zinteger_cmd ("target", class_maintenance, &targetdebug, _("\
2867Set target debugging."), _("\
2868Show target debugging."), _("\
2869When non-zero, target debugging is enabled. Higher numbers are more\n\
2870verbose. Changes do not take effect until the next \"run\" or \"target\"\n\
2871command."),
2872 NULL,
2873 show_targetdebug,
2874 &setdebuglist, &showdebuglist);
2875
2876 add_setshow_boolean_cmd ("trust-readonly-sections", class_support,
2877 &trust_readonly, _("\
2878Set mode for reading from readonly sections."), _("\
2879Show mode for reading from readonly sections."), _("\
2880When this mode is on, memory reads from readonly sections (such as .text)\n\
2881will be read from the object file instead of from the target. This will\n\
2882result in significant performance improvement for remote targets."),
2883 NULL,
2884 show_trust_readonly,
2885 &setlist, &showlist);
2886
2887 add_com ("monitor", class_obscure, do_monitor_command,
2888 _("Send a command to the remote monitor (remote targets only)."));
2889
2890 add_cmd ("target-stack", class_maintenance, maintenance_print_target_stack,
2891 _("Print the name of each layer of the internal target stack."),
2892 &maintenanceprintlist);
2893
2894 target_dcache = dcache_init ();
2895}
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