1 /* Interface between GDB and target environments, including files and processes
3 Copyright (C) 1990, 1991, 1992, 1993, 1994, 1995, 1996, 1997, 1998, 1999,
4 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007, 2008, 2009, 2010, 2011
5 Free Software Foundation, Inc.
7 Contributed by Cygnus Support. Written by John Gilmore.
9 This file is part of GDB.
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.
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.
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/>. */
24 #if !defined (TARGET_H)
32 struct bp_target_info;
34 struct target_section_table;
35 struct trace_state_variable;
39 struct static_tracepoint_marker;
40 struct traceframe_info;
43 /* This include file defines the interface between the main part
44 of the debugger, and the part which is target-specific, or
45 specific to the communications interface between us and the
48 A TARGET is an interface between the debugger and a particular
49 kind of file or process. Targets can be STACKED in STRATA,
50 so that more than one target can potentially respond to a request.
51 In particular, memory accesses will walk down the stack of targets
52 until they find a target that is interested in handling that particular
53 address. STRATA are artificial boundaries on the stack, within
54 which particular kinds of targets live. Strata exist so that
55 people don't get confused by pushing e.g. a process target and then
56 a file target, and wondering why they can't see the current values
57 of variables any more (the file target is handling them and they
58 never get to the process target). So when you push a file target,
59 it goes into the file stratum, which is always below the process
66 #include "gdb_signals.h"
70 dummy_stratum, /* The lowest of the low */
71 file_stratum, /* Executable files, etc */
72 process_stratum, /* Executing processes or core dump files */
73 thread_stratum, /* Executing threads */
74 record_stratum, /* Support record debugging */
75 arch_stratum /* Architecture overrides */
78 enum thread_control_capabilities
80 tc_none = 0, /* Default: can't control thread execution. */
81 tc_schedlock = 1, /* Can lock the thread scheduler. */
84 /* Stuff for target_wait. */
86 /* Generally, what has the program done? */
89 /* The program has exited. The exit status is in value.integer. */
90 TARGET_WAITKIND_EXITED,
92 /* The program has stopped with a signal. Which signal is in
94 TARGET_WAITKIND_STOPPED,
96 /* The program has terminated with a signal. Which signal is in
98 TARGET_WAITKIND_SIGNALLED,
100 /* The program is letting us know that it dynamically loaded something
101 (e.g. it called load(2) on AIX). */
102 TARGET_WAITKIND_LOADED,
104 /* The program has forked. A "related" process' PTID is in
105 value.related_pid. I.e., if the child forks, value.related_pid
106 is the parent's ID. */
108 TARGET_WAITKIND_FORKED,
110 /* The program has vforked. A "related" process's PTID is in
111 value.related_pid. */
113 TARGET_WAITKIND_VFORKED,
115 /* The program has exec'ed a new executable file. The new file's
116 pathname is pointed to by value.execd_pathname. */
118 TARGET_WAITKIND_EXECD,
120 /* The program had previously vforked, and now the child is done
121 with the shared memory region, because it exec'ed or exited.
122 Note that the event is reported to the vfork parent. This is
123 only used if GDB did not stay attached to the vfork child,
124 otherwise, a TARGET_WAITKIND_EXECD or
125 TARGET_WAITKIND_EXIT|SIGNALLED event associated with the child
126 has the same effect. */
127 TARGET_WAITKIND_VFORK_DONE,
129 /* The program has entered or returned from a system call. On
130 HP-UX, this is used in the hardware watchpoint implementation.
131 The syscall's unique integer ID number is in value.syscall_id. */
133 TARGET_WAITKIND_SYSCALL_ENTRY,
134 TARGET_WAITKIND_SYSCALL_RETURN,
136 /* Nothing happened, but we stopped anyway. This perhaps should be handled
137 within target_wait, but I'm not sure target_wait should be resuming the
139 TARGET_WAITKIND_SPURIOUS,
141 /* An event has occured, but we should wait again.
142 Remote_async_wait() returns this when there is an event
143 on the inferior, but the rest of the world is not interested in
144 it. The inferior has not stopped, but has just sent some output
145 to the console, for instance. In this case, we want to go back
146 to the event loop and wait there for another event from the
147 inferior, rather than being stuck in the remote_async_wait()
148 function. sThis way the event loop is responsive to other events,
149 like for instance the user typing. */
150 TARGET_WAITKIND_IGNORE,
152 /* The target has run out of history information,
153 and cannot run backward any further. */
154 TARGET_WAITKIND_NO_HISTORY
157 struct target_waitstatus
159 enum target_waitkind kind;
161 /* Forked child pid, execd pathname, exit status, signal number or
166 enum target_signal sig;
168 char *execd_pathname;
174 /* Options that can be passed to target_wait. */
176 /* Return immediately if there's no event already queued. If this
177 options is not requested, target_wait blocks waiting for an
179 #define TARGET_WNOHANG 1
181 /* The structure below stores information about a system call.
182 It is basically used in the "catch syscall" command, and in
183 every function that gives information about a system call.
185 It's also good to mention that its fields represent everything
186 that we currently know about a syscall in GDB. */
189 /* The syscall number. */
192 /* The syscall name. */
196 /* Return a pretty printed form of target_waitstatus.
197 Space for the result is malloc'd, caller must free. */
198 extern char *target_waitstatus_to_string (const struct target_waitstatus *);
200 /* Possible types of events that the inferior handler will have to
202 enum inferior_event_type
204 /* Process a normal inferior event which will result in target_wait
207 /* We are called because a timer went off. */
209 /* We are called to do stuff after the inferior stops. */
211 /* We are called to do some stuff after the inferior stops, but we
212 are expected to reenter the proceed() and
213 handle_inferior_event() functions. This is used only in case of
214 'step n' like commands. */
218 /* Target objects which can be transfered using target_read,
219 target_write, et cetera. */
223 /* AVR target specific transfer. See "avr-tdep.c" and "remote.c". */
225 /* SPU target specific transfer. See "spu-tdep.c". */
227 /* Transfer up-to LEN bytes of memory starting at OFFSET. */
228 TARGET_OBJECT_MEMORY,
229 /* Memory, avoiding GDB's data cache and trusting the executable.
230 Target implementations of to_xfer_partial never need to handle
231 this object, and most callers should not use it. */
232 TARGET_OBJECT_RAW_MEMORY,
233 /* Memory known to be part of the target's stack. This is cached even
234 if it is not in a region marked as such, since it is known to be
236 TARGET_OBJECT_STACK_MEMORY,
237 /* Kernel Unwind Table. See "ia64-tdep.c". */
238 TARGET_OBJECT_UNWIND_TABLE,
239 /* Transfer auxilliary vector. */
241 /* StackGhost cookie. See "sparc-tdep.c". */
242 TARGET_OBJECT_WCOOKIE,
243 /* Target memory map in XML format. */
244 TARGET_OBJECT_MEMORY_MAP,
245 /* Flash memory. This object can be used to write contents to
246 a previously erased flash memory. Using it without erasing
247 flash can have unexpected results. Addresses are physical
248 address on target, and not relative to flash start. */
250 /* Available target-specific features, e.g. registers and coprocessors.
251 See "target-descriptions.c". ANNEX should never be empty. */
252 TARGET_OBJECT_AVAILABLE_FEATURES,
253 /* Currently loaded libraries, in XML format. */
254 TARGET_OBJECT_LIBRARIES,
255 /* Get OS specific data. The ANNEX specifies the type (running
256 processes, etc.). The data being transfered is expected to follow
257 the DTD specified in features/osdata.dtd. */
258 TARGET_OBJECT_OSDATA,
259 /* Extra signal info. Usually the contents of `siginfo_t' on unix
261 TARGET_OBJECT_SIGNAL_INFO,
262 /* The list of threads that are being debugged. */
263 TARGET_OBJECT_THREADS,
264 /* Collected static trace data. */
265 TARGET_OBJECT_STATIC_TRACE_DATA,
266 /* The HP-UX registers (those that can be obtained or modified by using
267 the TT_LWP_RUREGS/TT_LWP_WUREGS ttrace requests). */
268 TARGET_OBJECT_HPUX_UREGS,
269 /* The HP-UX shared library linkage pointer. ANNEX should be a string
270 image of the code address whose linkage pointer we are looking for.
272 The size of the data transfered is always 8 bytes (the size of an
274 TARGET_OBJECT_HPUX_SOLIB_GOT,
275 /* Traceframe info, in XML format. */
276 TARGET_OBJECT_TRACEFRAME_INFO,
277 /* Load maps for FDPIC systems. */
279 /* Darwin dynamic linker info data. */
280 TARGET_OBJECT_DARWIN_DYLD_INFO
281 /* Possible future objects: TARGET_OBJECT_FILE, ... */
284 /* Enumeration of the kinds of traceframe searches that a target may
285 be able to perform. */
296 typedef struct static_tracepoint_marker *static_tracepoint_marker_p;
297 DEF_VEC_P(static_tracepoint_marker_p);
299 /* Request that OPS transfer up to LEN 8-bit bytes of the target's
300 OBJECT. The OFFSET, for a seekable object, specifies the
301 starting point. The ANNEX can be used to provide additional
302 data-specific information to the target.
304 Return the number of bytes actually transfered, or -1 if the
305 transfer is not supported or otherwise fails. Return of a positive
306 value less than LEN indicates that no further transfer is possible.
307 Unlike the raw to_xfer_partial interface, callers of these
308 functions do not need to retry partial transfers. */
310 extern LONGEST target_read (struct target_ops *ops,
311 enum target_object object,
312 const char *annex, gdb_byte *buf,
313 ULONGEST offset, LONGEST len);
315 struct memory_read_result
317 /* First address that was read. */
319 /* Past-the-end address. */
324 typedef struct memory_read_result memory_read_result_s;
325 DEF_VEC_O(memory_read_result_s);
327 extern void free_memory_read_result_vector (void *);
329 extern VEC(memory_read_result_s)* read_memory_robust (struct target_ops *ops,
333 extern LONGEST target_write (struct target_ops *ops,
334 enum target_object object,
335 const char *annex, const gdb_byte *buf,
336 ULONGEST offset, LONGEST len);
338 /* Similar to target_write, except that it also calls PROGRESS with
339 the number of bytes written and the opaque BATON after every
340 successful partial write (and before the first write). This is
341 useful for progress reporting and user interaction while writing
342 data. To abort the transfer, the progress callback can throw an
345 LONGEST target_write_with_progress (struct target_ops *ops,
346 enum target_object object,
347 const char *annex, const gdb_byte *buf,
348 ULONGEST offset, LONGEST len,
349 void (*progress) (ULONGEST, void *),
352 /* Wrapper to perform a full read of unknown size. OBJECT/ANNEX will
353 be read using OPS. The return value will be -1 if the transfer
354 fails or is not supported; 0 if the object is empty; or the length
355 of the object otherwise. If a positive value is returned, a
356 sufficiently large buffer will be allocated using xmalloc and
357 returned in *BUF_P containing the contents of the object.
359 This method should be used for objects sufficiently small to store
360 in a single xmalloc'd buffer, when no fixed bound on the object's
361 size is known in advance. Don't try to read TARGET_OBJECT_MEMORY
362 through this function. */
364 extern LONGEST target_read_alloc (struct target_ops *ops,
365 enum target_object object,
366 const char *annex, gdb_byte **buf_p);
368 /* Read OBJECT/ANNEX using OPS. The result is NUL-terminated and
369 returned as a string, allocated using xmalloc. If an error occurs
370 or the transfer is unsupported, NULL is returned. Empty objects
371 are returned as allocated but empty strings. A warning is issued
372 if the result contains any embedded NUL bytes. */
374 extern char *target_read_stralloc (struct target_ops *ops,
375 enum target_object object,
378 /* Wrappers to target read/write that perform memory transfers. They
379 throw an error if the memory transfer fails.
381 NOTE: cagney/2003-10-23: The naming schema is lifted from
382 "frame.h". The parameter order is lifted from get_frame_memory,
383 which in turn lifted it from read_memory. */
385 extern void get_target_memory (struct target_ops *ops, CORE_ADDR addr,
386 gdb_byte *buf, LONGEST len);
387 extern ULONGEST get_target_memory_unsigned (struct target_ops *ops,
388 CORE_ADDR addr, int len,
389 enum bfd_endian byte_order);
391 struct thread_info; /* fwd decl for parameter list below: */
395 struct target_ops *beneath; /* To the target under this one. */
396 char *to_shortname; /* Name this target type */
397 char *to_longname; /* Name for printing */
398 char *to_doc; /* Documentation. Does not include trailing
399 newline, and starts with a one-line descrip-
400 tion (probably similar to to_longname). */
401 /* Per-target scratch pad. */
403 /* The open routine takes the rest of the parameters from the
404 command, and (if successful) pushes a new target onto the
405 stack. Targets should supply this routine, if only to provide
407 void (*to_open) (char *, int);
408 /* Old targets with a static target vector provide "to_close".
409 New re-entrant targets provide "to_xclose" and that is expected
410 to xfree everything (including the "struct target_ops"). */
411 void (*to_xclose) (struct target_ops *targ, int quitting);
412 void (*to_close) (int);
413 void (*to_attach) (struct target_ops *ops, char *, int);
414 void (*to_post_attach) (int);
415 void (*to_detach) (struct target_ops *ops, char *, int);
416 void (*to_disconnect) (struct target_ops *, char *, int);
417 void (*to_resume) (struct target_ops *, ptid_t, int, enum target_signal);
418 ptid_t (*to_wait) (struct target_ops *,
419 ptid_t, struct target_waitstatus *, int);
420 void (*to_fetch_registers) (struct target_ops *, struct regcache *, int);
421 void (*to_store_registers) (struct target_ops *, struct regcache *, int);
422 void (*to_prepare_to_store) (struct regcache *);
424 /* Transfer LEN bytes of memory between GDB address MYADDR and
425 target address MEMADDR. If WRITE, transfer them to the target, else
426 transfer them from the target. TARGET is the target from which we
429 Return value, N, is one of the following:
431 0 means that we can't handle this. If errno has been set, it is the
432 error which prevented us from doing it (FIXME: What about bfd_error?).
434 positive (call it N) means that we have transferred N bytes
435 starting at MEMADDR. We might be able to handle more bytes
436 beyond this length, but no promises.
438 negative (call its absolute value N) means that we cannot
439 transfer right at MEMADDR, but we could transfer at least
440 something at MEMADDR + N.
442 NOTE: cagney/2004-10-01: This has been entirely superseeded by
443 to_xfer_partial and inferior inheritance. */
445 int (*deprecated_xfer_memory) (CORE_ADDR memaddr, gdb_byte *myaddr,
447 struct mem_attrib *attrib,
448 struct target_ops *target);
450 void (*to_files_info) (struct target_ops *);
451 int (*to_insert_breakpoint) (struct gdbarch *, struct bp_target_info *);
452 int (*to_remove_breakpoint) (struct gdbarch *, struct bp_target_info *);
453 int (*to_can_use_hw_breakpoint) (int, int, int);
454 int (*to_ranged_break_num_registers) (struct target_ops *);
455 int (*to_insert_hw_breakpoint) (struct gdbarch *, struct bp_target_info *);
456 int (*to_remove_hw_breakpoint) (struct gdbarch *, struct bp_target_info *);
458 /* Documentation of what the two routines below are expected to do is
459 provided with the corresponding target_* macros. */
460 int (*to_remove_watchpoint) (CORE_ADDR, int, int, struct expression *);
461 int (*to_insert_watchpoint) (CORE_ADDR, int, int, struct expression *);
463 int (*to_insert_mask_watchpoint) (struct target_ops *,
464 CORE_ADDR, CORE_ADDR, int);
465 int (*to_remove_mask_watchpoint) (struct target_ops *,
466 CORE_ADDR, CORE_ADDR, int);
467 int (*to_stopped_by_watchpoint) (void);
468 int to_have_steppable_watchpoint;
469 int to_have_continuable_watchpoint;
470 int (*to_stopped_data_address) (struct target_ops *, CORE_ADDR *);
471 int (*to_watchpoint_addr_within_range) (struct target_ops *,
472 CORE_ADDR, CORE_ADDR, int);
474 /* Documentation of this routine is provided with the corresponding
476 int (*to_region_ok_for_hw_watchpoint) (CORE_ADDR, int);
478 int (*to_can_accel_watchpoint_condition) (CORE_ADDR, int, int,
479 struct expression *);
480 int (*to_masked_watch_num_registers) (struct target_ops *,
481 CORE_ADDR, CORE_ADDR);
482 void (*to_terminal_init) (void);
483 void (*to_terminal_inferior) (void);
484 void (*to_terminal_ours_for_output) (void);
485 void (*to_terminal_ours) (void);
486 void (*to_terminal_save_ours) (void);
487 void (*to_terminal_info) (char *, int);
488 void (*to_kill) (struct target_ops *);
489 void (*to_load) (char *, int);
490 void (*to_create_inferior) (struct target_ops *,
491 char *, char *, char **, int);
492 void (*to_post_startup_inferior) (ptid_t);
493 int (*to_insert_fork_catchpoint) (int);
494 int (*to_remove_fork_catchpoint) (int);
495 int (*to_insert_vfork_catchpoint) (int);
496 int (*to_remove_vfork_catchpoint) (int);
497 int (*to_follow_fork) (struct target_ops *, int);
498 int (*to_insert_exec_catchpoint) (int);
499 int (*to_remove_exec_catchpoint) (int);
500 int (*to_set_syscall_catchpoint) (int, int, int, int, int *);
501 int (*to_has_exited) (int, int, int *);
502 void (*to_mourn_inferior) (struct target_ops *);
503 int (*to_can_run) (void);
505 /* Documentation of this routine is provided with the corresponding
507 void (*to_pass_signals) (int, unsigned char *);
509 int (*to_thread_alive) (struct target_ops *, ptid_t ptid);
510 void (*to_find_new_threads) (struct target_ops *);
511 char *(*to_pid_to_str) (struct target_ops *, ptid_t);
512 char *(*to_extra_thread_info) (struct thread_info *);
513 char *(*to_thread_name) (struct thread_info *);
514 void (*to_stop) (ptid_t);
515 void (*to_rcmd) (char *command, struct ui_file *output);
516 char *(*to_pid_to_exec_file) (int pid);
517 void (*to_log_command) (const char *);
518 struct target_section_table *(*to_get_section_table) (struct target_ops *);
519 enum strata to_stratum;
520 int (*to_has_all_memory) (struct target_ops *);
521 int (*to_has_memory) (struct target_ops *);
522 int (*to_has_stack) (struct target_ops *);
523 int (*to_has_registers) (struct target_ops *);
524 int (*to_has_execution) (struct target_ops *, ptid_t);
525 int to_has_thread_control; /* control thread execution */
526 int to_attach_no_wait;
527 /* ASYNC target controls */
528 int (*to_can_async_p) (void);
529 int (*to_is_async_p) (void);
530 void (*to_async) (void (*) (enum inferior_event_type, void *), void *);
531 int (*to_supports_non_stop) (void);
532 /* find_memory_regions support method for gcore */
533 int (*to_find_memory_regions) (find_memory_region_ftype func, void *data);
534 /* make_corefile_notes support method for gcore */
535 char * (*to_make_corefile_notes) (bfd *, int *);
536 /* get_bookmark support method for bookmarks */
537 gdb_byte * (*to_get_bookmark) (char *, int);
538 /* goto_bookmark support method for bookmarks */
539 void (*to_goto_bookmark) (gdb_byte *, int);
540 /* Return the thread-local address at OFFSET in the
541 thread-local storage for the thread PTID and the shared library
542 or executable file given by OBJFILE. If that block of
543 thread-local storage hasn't been allocated yet, this function
544 may return an error. */
545 CORE_ADDR (*to_get_thread_local_address) (struct target_ops *ops,
547 CORE_ADDR load_module_addr,
550 /* Request that OPS transfer up to LEN 8-bit bytes of the target's
551 OBJECT. The OFFSET, for a seekable object, specifies the
552 starting point. The ANNEX can be used to provide additional
553 data-specific information to the target.
555 Return the number of bytes actually transfered, zero when no
556 further transfer is possible, and -1 when the transfer is not
557 supported. Return of a positive value smaller than LEN does
558 not indicate the end of the object, only the end of the
559 transfer; higher level code should continue transferring if
560 desired. This is handled in target.c.
562 The interface does not support a "retry" mechanism. Instead it
563 assumes that at least one byte will be transfered on each
566 NOTE: cagney/2003-10-17: The current interface can lead to
567 fragmented transfers. Lower target levels should not implement
568 hacks, such as enlarging the transfer, in an attempt to
569 compensate for this. Instead, the target stack should be
570 extended so that it implements supply/collect methods and a
571 look-aside object cache. With that available, the lowest
572 target can safely and freely "push" data up the stack.
574 See target_read and target_write for more information. One,
575 and only one, of readbuf or writebuf must be non-NULL. */
577 LONGEST (*to_xfer_partial) (struct target_ops *ops,
578 enum target_object object, const char *annex,
579 gdb_byte *readbuf, const gdb_byte *writebuf,
580 ULONGEST offset, LONGEST len);
582 /* Returns the memory map for the target. A return value of NULL
583 means that no memory map is available. If a memory address
584 does not fall within any returned regions, it's assumed to be
585 RAM. The returned memory regions should not overlap.
587 The order of regions does not matter; target_memory_map will
588 sort regions by starting address. For that reason, this
589 function should not be called directly except via
592 This method should not cache data; if the memory map could
593 change unexpectedly, it should be invalidated, and higher
594 layers will re-fetch it. */
595 VEC(mem_region_s) *(*to_memory_map) (struct target_ops *);
597 /* Erases the region of flash memory starting at ADDRESS, of
600 Precondition: both ADDRESS and ADDRESS+LENGTH should be aligned
601 on flash block boundaries, as reported by 'to_memory_map'. */
602 void (*to_flash_erase) (struct target_ops *,
603 ULONGEST address, LONGEST length);
605 /* Finishes a flash memory write sequence. After this operation
606 all flash memory should be available for writing and the result
607 of reading from areas written by 'to_flash_write' should be
608 equal to what was written. */
609 void (*to_flash_done) (struct target_ops *);
611 /* Describe the architecture-specific features of this target.
612 Returns the description found, or NULL if no description
614 const struct target_desc *(*to_read_description) (struct target_ops *ops);
616 /* Build the PTID of the thread on which a given task is running,
617 based on LWP and THREAD. These values are extracted from the
618 task Private_Data section of the Ada Task Control Block, and
619 their interpretation depends on the target. */
620 ptid_t (*to_get_ada_task_ptid) (long lwp, long thread);
622 /* Read one auxv entry from *READPTR, not reading locations >= ENDPTR.
623 Return 0 if *READPTR is already at the end of the buffer.
624 Return -1 if there is insufficient buffer for a whole entry.
625 Return 1 if an entry was read into *TYPEP and *VALP. */
626 int (*to_auxv_parse) (struct target_ops *ops, gdb_byte **readptr,
627 gdb_byte *endptr, CORE_ADDR *typep, CORE_ADDR *valp);
629 /* Search SEARCH_SPACE_LEN bytes beginning at START_ADDR for the
630 sequence of bytes in PATTERN with length PATTERN_LEN.
632 The result is 1 if found, 0 if not found, and -1 if there was an error
633 requiring halting of the search (e.g. memory read error).
634 If the pattern is found the address is recorded in FOUND_ADDRP. */
635 int (*to_search_memory) (struct target_ops *ops,
636 CORE_ADDR start_addr, ULONGEST search_space_len,
637 const gdb_byte *pattern, ULONGEST pattern_len,
638 CORE_ADDR *found_addrp);
640 /* Can target execute in reverse? */
641 int (*to_can_execute_reverse) (void);
643 /* The direction the target is currently executing. Must be
644 implemented on targets that support reverse execution and async
645 mode. The default simply returns forward execution. */
646 enum exec_direction_kind (*to_execution_direction) (void);
648 /* Does this target support debugging multiple processes
650 int (*to_supports_multi_process) (void);
652 /* Does this target support enabling and disabling tracepoints while a trace
653 experiment is running? */
654 int (*to_supports_enable_disable_tracepoint) (void);
656 /* Does this target support disabling address space randomization? */
657 int (*to_supports_disable_randomization) (void);
659 /* Determine current architecture of thread PTID.
661 The target is supposed to determine the architecture of the code where
662 the target is currently stopped at (on Cell, if a target is in spu_run,
663 to_thread_architecture would return SPU, otherwise PPC32 or PPC64).
664 This is architecture used to perform decr_pc_after_break adjustment,
665 and also determines the frame architecture of the innermost frame.
666 ptrace operations need to operate according to target_gdbarch.
668 The default implementation always returns target_gdbarch. */
669 struct gdbarch *(*to_thread_architecture) (struct target_ops *, ptid_t);
671 /* Determine current address space of thread PTID.
673 The default implementation always returns the inferior's
675 struct address_space *(*to_thread_address_space) (struct target_ops *,
678 /* Tracepoint-related operations. */
680 /* Prepare the target for a tracing run. */
681 void (*to_trace_init) (void);
683 /* Send full details of a tracepoint to the target. */
684 void (*to_download_tracepoint) (struct breakpoint *t);
686 /* Send full details of a trace state variable to the target. */
687 void (*to_download_trace_state_variable) (struct trace_state_variable *tsv);
689 /* Enable a tracepoint on the target. */
690 void (*to_enable_tracepoint) (struct bp_location *location);
692 /* Disable a tracepoint on the target. */
693 void (*to_disable_tracepoint) (struct bp_location *location);
695 /* Inform the target info of memory regions that are readonly
696 (such as text sections), and so it should return data from
697 those rather than look in the trace buffer. */
698 void (*to_trace_set_readonly_regions) (void);
700 /* Start a trace run. */
701 void (*to_trace_start) (void);
703 /* Get the current status of a tracing run. */
704 int (*to_get_trace_status) (struct trace_status *ts);
706 /* Stop a trace run. */
707 void (*to_trace_stop) (void);
709 /* Ask the target to find a trace frame of the given type TYPE,
710 using NUM, ADDR1, and ADDR2 as search parameters. Returns the
711 number of the trace frame, and also the tracepoint number at
712 TPP. If no trace frame matches, return -1. May throw if the
714 int (*to_trace_find) (enum trace_find_type type, int num,
715 ULONGEST addr1, ULONGEST addr2, int *tpp);
717 /* Get the value of the trace state variable number TSV, returning
718 1 if the value is known and writing the value itself into the
719 location pointed to by VAL, else returning 0. */
720 int (*to_get_trace_state_variable_value) (int tsv, LONGEST *val);
722 int (*to_save_trace_data) (const char *filename);
724 int (*to_upload_tracepoints) (struct uploaded_tp **utpp);
726 int (*to_upload_trace_state_variables) (struct uploaded_tsv **utsvp);
728 LONGEST (*to_get_raw_trace_data) (gdb_byte *buf,
729 ULONGEST offset, LONGEST len);
731 /* Set the target's tracing behavior in response to unexpected
732 disconnection - set VAL to 1 to keep tracing, 0 to stop. */
733 void (*to_set_disconnected_tracing) (int val);
734 void (*to_set_circular_trace_buffer) (int val);
736 /* Return the processor core that thread PTID was last seen on.
737 This information is updated only when:
738 - update_thread_list is called
740 If the core cannot be determined -- either for the specified
741 thread, or right now, or in this debug session, or for this
742 target -- return -1. */
743 int (*to_core_of_thread) (struct target_ops *, ptid_t ptid);
745 /* Verify that the memory in the [MEMADDR, MEMADDR+SIZE) range
746 matches the contents of [DATA,DATA+SIZE). Returns 1 if there's
747 a match, 0 if there's a mismatch, and -1 if an error is
748 encountered while reading memory. */
749 int (*to_verify_memory) (struct target_ops *, const gdb_byte *data,
750 CORE_ADDR memaddr, ULONGEST size);
752 /* Return the address of the start of the Thread Information Block
753 a Windows OS specific feature. */
754 int (*to_get_tib_address) (ptid_t ptid, CORE_ADDR *addr);
756 /* Send the new settings of write permission variables. */
757 void (*to_set_permissions) (void);
759 /* Look for a static tracepoint marker at ADDR, and fill in MARKER
760 with its details. Return 1 on success, 0 on failure. */
761 int (*to_static_tracepoint_marker_at) (CORE_ADDR,
762 struct static_tracepoint_marker *marker);
764 /* Return a vector of all tracepoints markers string id ID, or all
765 markers if ID is NULL. */
766 VEC(static_tracepoint_marker_p) *(*to_static_tracepoint_markers_by_strid)
769 /* Return a traceframe info object describing the current
770 traceframe's contents. This method should not cache data;
771 higher layers take care of caching, invalidating, and
772 re-fetching when necessary. */
773 struct traceframe_info *(*to_traceframe_info) (void);
776 /* Need sub-structure for target machine related rather than comm related?
780 /* Magic number for checking ops size. If a struct doesn't end with this
781 number, somebody changed the declaration but didn't change all the
782 places that initialize one. */
784 #define OPS_MAGIC 3840
786 /* The ops structure for our "current" target process. This should
787 never be NULL. If there is no target, it points to the dummy_target. */
789 extern struct target_ops current_target;
791 /* Define easy words for doing these operations on our current target. */
793 #define target_shortname (current_target.to_shortname)
794 #define target_longname (current_target.to_longname)
796 /* Does whatever cleanup is required for a target that we are no
797 longer going to be calling. QUITTING indicates that GDB is exiting
798 and should not get hung on an error (otherwise it is important to
799 perform clean termination, even if it takes a while). This routine
800 is automatically always called when popping the target off the
801 target stack (to_beneath is undefined). Closing file descriptors
802 and freeing all memory allocated memory are typical things it
805 void target_close (struct target_ops *targ, int quitting);
807 /* Attaches to a process on the target side. Arguments are as passed
808 to the `attach' command by the user. This routine can be called
809 when the target is not on the target-stack, if the target_can_run
810 routine returns 1; in that case, it must push itself onto the stack.
811 Upon exit, the target should be ready for normal operations, and
812 should be ready to deliver the status of the process immediately
813 (without waiting) to an upcoming target_wait call. */
815 void target_attach (char *, int);
817 /* Some targets don't generate traps when attaching to the inferior,
818 or their target_attach implementation takes care of the waiting.
819 These targets must set to_attach_no_wait. */
821 #define target_attach_no_wait \
822 (current_target.to_attach_no_wait)
824 /* The target_attach operation places a process under debugger control,
825 and stops the process.
827 This operation provides a target-specific hook that allows the
828 necessary bookkeeping to be performed after an attach completes. */
829 #define target_post_attach(pid) \
830 (*current_target.to_post_attach) (pid)
832 /* Takes a program previously attached to and detaches it.
833 The program may resume execution (some targets do, some don't) and will
834 no longer stop on signals, etc. We better not have left any breakpoints
835 in the program or it'll die when it hits one. ARGS is arguments
836 typed by the user (e.g. a signal to send the process). FROM_TTY
837 says whether to be verbose or not. */
839 extern void target_detach (char *, int);
841 /* Disconnect from the current target without resuming it (leaving it
842 waiting for a debugger). */
844 extern void target_disconnect (char *, int);
846 /* Resume execution of the target process PTID. STEP says whether to
847 single-step or to run free; SIGGNAL is the signal to be given to
848 the target, or TARGET_SIGNAL_0 for no signal. The caller may not
849 pass TARGET_SIGNAL_DEFAULT. */
851 extern void target_resume (ptid_t ptid, int step, enum target_signal signal);
853 /* Wait for process pid to do something. PTID = -1 to wait for any
854 pid to do something. Return pid of child, or -1 in case of error;
855 store status through argument pointer STATUS. Note that it is
856 _NOT_ OK to throw_exception() out of target_wait() without popping
857 the debugging target from the stack; GDB isn't prepared to get back
858 to the prompt with a debugging target but without the frame cache,
859 stop_pc, etc., set up. OPTIONS is a bitwise OR of TARGET_W*
862 extern ptid_t target_wait (ptid_t ptid, struct target_waitstatus *status,
865 /* Fetch at least register REGNO, or all regs if regno == -1. No result. */
867 extern void target_fetch_registers (struct regcache *regcache, int regno);
869 /* Store at least register REGNO, or all regs if REGNO == -1.
870 It can store as many registers as it wants to, so target_prepare_to_store
871 must have been previously called. Calls error() if there are problems. */
873 extern void target_store_registers (struct regcache *regcache, int regs);
875 /* Get ready to modify the registers array. On machines which store
876 individual registers, this doesn't need to do anything. On machines
877 which store all the registers in one fell swoop, this makes sure
878 that REGISTERS contains all the registers from the program being
881 #define target_prepare_to_store(regcache) \
882 (*current_target.to_prepare_to_store) (regcache)
884 /* Determine current address space of thread PTID. */
886 struct address_space *target_thread_address_space (ptid_t);
888 /* Returns true if this target can debug multiple processes
891 #define target_supports_multi_process() \
892 (*current_target.to_supports_multi_process) ()
894 /* Returns true if this target can disable address space randomization. */
896 int target_supports_disable_randomization (void);
898 /* Returns true if this target can enable and disable tracepoints
899 while a trace experiment is running. */
901 #define target_supports_enable_disable_tracepoint() \
902 (*current_target.to_supports_enable_disable_tracepoint) ()
904 /* Invalidate all target dcaches. */
905 extern void target_dcache_invalidate (void);
907 extern int target_read_string (CORE_ADDR, char **, int, int *);
909 extern int target_read_memory (CORE_ADDR memaddr, gdb_byte *myaddr, int len);
911 extern int target_read_stack (CORE_ADDR memaddr, gdb_byte *myaddr, int len);
913 extern int target_write_memory (CORE_ADDR memaddr, const gdb_byte *myaddr,
916 /* Fetches the target's memory map. If one is found it is sorted
917 and returned, after some consistency checking. Otherwise, NULL
919 VEC(mem_region_s) *target_memory_map (void);
921 /* Erase the specified flash region. */
922 void target_flash_erase (ULONGEST address, LONGEST length);
924 /* Finish a sequence of flash operations. */
925 void target_flash_done (void);
927 /* Describes a request for a memory write operation. */
928 struct memory_write_request
930 /* Begining address that must be written. */
932 /* Past-the-end address. */
934 /* The data to write. */
936 /* A callback baton for progress reporting for this request. */
939 typedef struct memory_write_request memory_write_request_s;
940 DEF_VEC_O(memory_write_request_s);
942 /* Enumeration specifying different flash preservation behaviour. */
943 enum flash_preserve_mode
949 /* Write several memory blocks at once. This version can be more
950 efficient than making several calls to target_write_memory, in
951 particular because it can optimize accesses to flash memory.
953 Moreover, this is currently the only memory access function in gdb
954 that supports writing to flash memory, and it should be used for
955 all cases where access to flash memory is desirable.
957 REQUESTS is the vector (see vec.h) of memory_write_request.
958 PRESERVE_FLASH_P indicates what to do with blocks which must be
959 erased, but not completely rewritten.
960 PROGRESS_CB is a function that will be periodically called to provide
961 feedback to user. It will be called with the baton corresponding
962 to the request currently being written. It may also be called
963 with a NULL baton, when preserved flash sectors are being rewritten.
965 The function returns 0 on success, and error otherwise. */
966 int target_write_memory_blocks (VEC(memory_write_request_s) *requests,
967 enum flash_preserve_mode preserve_flash_p,
968 void (*progress_cb) (ULONGEST, void *));
972 extern int inferior_has_forked (ptid_t pid, ptid_t *child_pid);
974 extern int inferior_has_vforked (ptid_t pid, ptid_t *child_pid);
976 extern int inferior_has_execd (ptid_t pid, char **execd_pathname);
978 extern int inferior_has_called_syscall (ptid_t pid, int *syscall_number);
980 /* Print a line about the current target. */
982 #define target_files_info() \
983 (*current_target.to_files_info) (¤t_target)
985 /* Insert a breakpoint at address BP_TGT->placed_address in the target
986 machine. Result is 0 for success, or an errno value. */
988 extern int target_insert_breakpoint (struct gdbarch *gdbarch,
989 struct bp_target_info *bp_tgt);
991 /* Remove a breakpoint at address BP_TGT->placed_address in the target
992 machine. Result is 0 for success, or an errno value. */
994 extern int target_remove_breakpoint (struct gdbarch *gdbarch,
995 struct bp_target_info *bp_tgt);
997 /* Initialize the terminal settings we record for the inferior,
998 before we actually run the inferior. */
1000 #define target_terminal_init() \
1001 (*current_target.to_terminal_init) ()
1003 /* Put the inferior's terminal settings into effect.
1004 This is preparation for starting or resuming the inferior. */
1006 extern void target_terminal_inferior (void);
1008 /* Put some of our terminal settings into effect,
1009 enough to get proper results from our output,
1010 but do not change into or out of RAW mode
1011 so that no input is discarded.
1013 After doing this, either terminal_ours or terminal_inferior
1014 should be called to get back to a normal state of affairs. */
1016 #define target_terminal_ours_for_output() \
1017 (*current_target.to_terminal_ours_for_output) ()
1019 /* Put our terminal settings into effect.
1020 First record the inferior's terminal settings
1021 so they can be restored properly later. */
1023 #define target_terminal_ours() \
1024 (*current_target.to_terminal_ours) ()
1026 /* Save our terminal settings.
1027 This is called from TUI after entering or leaving the curses
1028 mode. Since curses modifies our terminal this call is here
1029 to take this change into account. */
1031 #define target_terminal_save_ours() \
1032 (*current_target.to_terminal_save_ours) ()
1034 /* Print useful information about our terminal status, if such a thing
1037 #define target_terminal_info(arg, from_tty) \
1038 (*current_target.to_terminal_info) (arg, from_tty)
1040 /* Kill the inferior process. Make it go away. */
1042 extern void target_kill (void);
1044 /* Load an executable file into the target process. This is expected
1045 to not only bring new code into the target process, but also to
1046 update GDB's symbol tables to match.
1048 ARG contains command-line arguments, to be broken down with
1049 buildargv (). The first non-switch argument is the filename to
1050 load, FILE; the second is a number (as parsed by strtoul (..., ...,
1051 0)), which is an offset to apply to the load addresses of FILE's
1052 sections. The target may define switches, or other non-switch
1053 arguments, as it pleases. */
1055 extern void target_load (char *arg, int from_tty);
1057 /* Start an inferior process and set inferior_ptid to its pid.
1058 EXEC_FILE is the file to run.
1059 ALLARGS is a string containing the arguments to the program.
1060 ENV is the environment vector to pass. Errors reported with error().
1061 On VxWorks and various standalone systems, we ignore exec_file. */
1063 void target_create_inferior (char *exec_file, char *args,
1064 char **env, int from_tty);
1066 /* Some targets (such as ttrace-based HPUX) don't allow us to request
1067 notification of inferior events such as fork and vork immediately
1068 after the inferior is created. (This because of how gdb gets an
1069 inferior created via invoking a shell to do it. In such a scenario,
1070 if the shell init file has commands in it, the shell will fork and
1071 exec for each of those commands, and we will see each such fork
1074 Such targets will supply an appropriate definition for this function. */
1076 #define target_post_startup_inferior(ptid) \
1077 (*current_target.to_post_startup_inferior) (ptid)
1079 /* On some targets, we can catch an inferior fork or vfork event when
1080 it occurs. These functions insert/remove an already-created
1081 catchpoint for such events. They return 0 for success, 1 if the
1082 catchpoint type is not supported and -1 for failure. */
1084 #define target_insert_fork_catchpoint(pid) \
1085 (*current_target.to_insert_fork_catchpoint) (pid)
1087 #define target_remove_fork_catchpoint(pid) \
1088 (*current_target.to_remove_fork_catchpoint) (pid)
1090 #define target_insert_vfork_catchpoint(pid) \
1091 (*current_target.to_insert_vfork_catchpoint) (pid)
1093 #define target_remove_vfork_catchpoint(pid) \
1094 (*current_target.to_remove_vfork_catchpoint) (pid)
1096 /* If the inferior forks or vforks, this function will be called at
1097 the next resume in order to perform any bookkeeping and fiddling
1098 necessary to continue debugging either the parent or child, as
1099 requested, and releasing the other. Information about the fork
1100 or vfork event is available via get_last_target_status ().
1101 This function returns 1 if the inferior should not be resumed
1102 (i.e. there is another event pending). */
1104 int target_follow_fork (int follow_child);
1106 /* On some targets, we can catch an inferior exec event when it
1107 occurs. These functions insert/remove an already-created
1108 catchpoint for such events. They return 0 for success, 1 if the
1109 catchpoint type is not supported and -1 for failure. */
1111 #define target_insert_exec_catchpoint(pid) \
1112 (*current_target.to_insert_exec_catchpoint) (pid)
1114 #define target_remove_exec_catchpoint(pid) \
1115 (*current_target.to_remove_exec_catchpoint) (pid)
1119 NEEDED is nonzero if any syscall catch (of any kind) is requested.
1120 If NEEDED is zero, it means the target can disable the mechanism to
1121 catch system calls because there are no more catchpoints of this type.
1123 ANY_COUNT is nonzero if a generic (filter-less) syscall catch is
1124 being requested. In this case, both TABLE_SIZE and TABLE should
1127 TABLE_SIZE is the number of elements in TABLE. It only matters if
1130 TABLE is an array of ints, indexed by syscall number. An element in
1131 this array is nonzero if that syscall should be caught. This argument
1132 only matters if ANY_COUNT is zero.
1134 Return 0 for success, 1 if syscall catchpoints are not supported or -1
1137 #define target_set_syscall_catchpoint(pid, needed, any_count, table_size, table) \
1138 (*current_target.to_set_syscall_catchpoint) (pid, needed, any_count, \
1141 /* Returns TRUE if PID has exited. And, also sets EXIT_STATUS to the
1142 exit code of PID, if any. */
1144 #define target_has_exited(pid,wait_status,exit_status) \
1145 (*current_target.to_has_exited) (pid,wait_status,exit_status)
1147 /* The debugger has completed a blocking wait() call. There is now
1148 some process event that must be processed. This function should
1149 be defined by those targets that require the debugger to perform
1150 cleanup or internal state changes in response to the process event. */
1152 /* The inferior process has died. Do what is right. */
1154 void target_mourn_inferior (void);
1156 /* Does target have enough data to do a run or attach command? */
1158 #define target_can_run(t) \
1159 ((t)->to_can_run) ()
1161 /* Set list of signals to be handled in the target.
1163 PASS_SIGNALS is an array of size NSIG, indexed by target signal number
1164 (enum target_signal). For every signal whose entry in this array is
1165 non-zero, the target is allowed -but not required- to skip reporting
1166 arrival of the signal to the GDB core by returning from target_wait,
1167 and to pass the signal directly to the inferior instead.
1169 However, if the target is hardware single-stepping a thread that is
1170 about to receive a signal, it needs to be reported in any case, even
1171 if mentioned in a previous target_pass_signals call. */
1173 extern void target_pass_signals (int nsig, unsigned char *pass_signals);
1175 /* Check to see if a thread is still alive. */
1177 extern int target_thread_alive (ptid_t ptid);
1179 /* Query for new threads and add them to the thread list. */
1181 extern void target_find_new_threads (void);
1183 /* Make target stop in a continuable fashion. (For instance, under
1184 Unix, this should act like SIGSTOP). This function is normally
1185 used by GUIs to implement a stop button. */
1187 extern void target_stop (ptid_t ptid);
1189 /* Send the specified COMMAND to the target's monitor
1190 (shell,interpreter) for execution. The result of the query is
1191 placed in OUTBUF. */
1193 #define target_rcmd(command, outbuf) \
1194 (*current_target.to_rcmd) (command, outbuf)
1197 /* Does the target include all of memory, or only part of it? This
1198 determines whether we look up the target chain for other parts of
1199 memory if this target can't satisfy a request. */
1201 extern int target_has_all_memory_1 (void);
1202 #define target_has_all_memory target_has_all_memory_1 ()
1204 /* Does the target include memory? (Dummy targets don't.) */
1206 extern int target_has_memory_1 (void);
1207 #define target_has_memory target_has_memory_1 ()
1209 /* Does the target have a stack? (Exec files don't, VxWorks doesn't, until
1210 we start a process.) */
1212 extern int target_has_stack_1 (void);
1213 #define target_has_stack target_has_stack_1 ()
1215 /* Does the target have registers? (Exec files don't.) */
1217 extern int target_has_registers_1 (void);
1218 #define target_has_registers target_has_registers_1 ()
1220 /* Does the target have execution? Can we make it jump (through
1221 hoops), or pop its stack a few times? This means that the current
1222 target is currently executing; for some targets, that's the same as
1223 whether or not the target is capable of execution, but there are
1224 also targets which can be current while not executing. In that
1225 case this will become true after target_create_inferior or
1228 extern int target_has_execution_1 (ptid_t);
1230 /* Like target_has_execution_1, but always passes inferior_ptid. */
1232 extern int target_has_execution_current (void);
1234 #define target_has_execution target_has_execution_current ()
1236 /* Default implementations for process_stratum targets. Return true
1237 if there's a selected inferior, false otherwise. */
1239 extern int default_child_has_all_memory (struct target_ops *ops);
1240 extern int default_child_has_memory (struct target_ops *ops);
1241 extern int default_child_has_stack (struct target_ops *ops);
1242 extern int default_child_has_registers (struct target_ops *ops);
1243 extern int default_child_has_execution (struct target_ops *ops,
1246 /* Can the target support the debugger control of thread execution?
1247 Can it lock the thread scheduler? */
1249 #define target_can_lock_scheduler \
1250 (current_target.to_has_thread_control & tc_schedlock)
1252 /* Should the target enable async mode if it is supported? Temporary
1253 cludge until async mode is a strict superset of sync mode. */
1254 extern int target_async_permitted;
1256 /* Can the target support asynchronous execution? */
1257 #define target_can_async_p() (current_target.to_can_async_p ())
1259 /* Is the target in asynchronous execution mode? */
1260 #define target_is_async_p() (current_target.to_is_async_p ())
1262 int target_supports_non_stop (void);
1264 /* Put the target in async mode with the specified callback function. */
1265 #define target_async(CALLBACK,CONTEXT) \
1266 (current_target.to_async ((CALLBACK), (CONTEXT)))
1268 #define target_execution_direction() \
1269 (current_target.to_execution_direction ())
1271 /* Converts a process id to a string. Usually, the string just contains
1272 `process xyz', but on some systems it may contain
1273 `process xyz thread abc'. */
1275 extern char *target_pid_to_str (ptid_t ptid);
1277 extern char *normal_pid_to_str (ptid_t ptid);
1279 /* Return a short string describing extra information about PID,
1280 e.g. "sleeping", "runnable", "running on LWP 3". Null return value
1283 #define target_extra_thread_info(TP) \
1284 (current_target.to_extra_thread_info (TP))
1286 /* Return the thread's name. A NULL result means that the target
1287 could not determine this thread's name. */
1289 extern char *target_thread_name (struct thread_info *);
1291 /* Attempts to find the pathname of the executable file
1292 that was run to create a specified process.
1294 The process PID must be stopped when this operation is used.
1296 If the executable file cannot be determined, NULL is returned.
1298 Else, a pointer to a character string containing the pathname
1299 is returned. This string should be copied into a buffer by
1300 the client if the string will not be immediately used, or if
1303 #define target_pid_to_exec_file(pid) \
1304 (current_target.to_pid_to_exec_file) (pid)
1306 /* See the to_thread_architecture description in struct target_ops. */
1308 #define target_thread_architecture(ptid) \
1309 (current_target.to_thread_architecture (¤t_target, ptid))
1312 * Iterator function for target memory regions.
1313 * Calls a callback function once for each memory region 'mapped'
1314 * in the child process. Defined as a simple macro rather than
1315 * as a function macro so that it can be tested for nullity.
1318 #define target_find_memory_regions(FUNC, DATA) \
1319 (current_target.to_find_memory_regions) (FUNC, DATA)
1322 * Compose corefile .note section.
1325 #define target_make_corefile_notes(BFD, SIZE_P) \
1326 (current_target.to_make_corefile_notes) (BFD, SIZE_P)
1328 /* Bookmark interfaces. */
1329 #define target_get_bookmark(ARGS, FROM_TTY) \
1330 (current_target.to_get_bookmark) (ARGS, FROM_TTY)
1332 #define target_goto_bookmark(ARG, FROM_TTY) \
1333 (current_target.to_goto_bookmark) (ARG, FROM_TTY)
1335 /* Hardware watchpoint interfaces. */
1337 /* Returns non-zero if we were stopped by a hardware watchpoint (memory read or
1338 write). Only the INFERIOR_PTID task is being queried. */
1340 #define target_stopped_by_watchpoint \
1341 (*current_target.to_stopped_by_watchpoint)
1343 /* Non-zero if we have steppable watchpoints */
1345 #define target_have_steppable_watchpoint \
1346 (current_target.to_have_steppable_watchpoint)
1348 /* Non-zero if we have continuable watchpoints */
1350 #define target_have_continuable_watchpoint \
1351 (current_target.to_have_continuable_watchpoint)
1353 /* Provide defaults for hardware watchpoint functions. */
1355 /* If the *_hw_beakpoint functions have not been defined
1356 elsewhere use the definitions in the target vector. */
1358 /* Returns non-zero if we can set a hardware watchpoint of type TYPE. TYPE is
1359 one of bp_hardware_watchpoint, bp_read_watchpoint, bp_write_watchpoint, or
1360 bp_hardware_breakpoint. CNT is the number of such watchpoints used so far
1361 (including this one?). OTHERTYPE is who knows what... */
1363 #define target_can_use_hardware_watchpoint(TYPE,CNT,OTHERTYPE) \
1364 (*current_target.to_can_use_hw_breakpoint) (TYPE, CNT, OTHERTYPE);
1366 /* Returns the number of debug registers needed to watch the given
1367 memory region, or zero if not supported. */
1369 #define target_region_ok_for_hw_watchpoint(addr, len) \
1370 (*current_target.to_region_ok_for_hw_watchpoint) (addr, len)
1373 /* Set/clear a hardware watchpoint starting at ADDR, for LEN bytes.
1374 TYPE is 0 for write, 1 for read, and 2 for read/write accesses.
1375 COND is the expression for its condition, or NULL if there's none.
1376 Returns 0 for success, 1 if the watchpoint type is not supported,
1379 #define target_insert_watchpoint(addr, len, type, cond) \
1380 (*current_target.to_insert_watchpoint) (addr, len, type, cond)
1382 #define target_remove_watchpoint(addr, len, type, cond) \
1383 (*current_target.to_remove_watchpoint) (addr, len, type, cond)
1385 /* Insert a new masked watchpoint at ADDR using the mask MASK.
1386 RW may be hw_read for a read watchpoint, hw_write for a write watchpoint
1387 or hw_access for an access watchpoint. Returns 0 for success, 1 if
1388 masked watchpoints are not supported, -1 for failure. */
1390 extern int target_insert_mask_watchpoint (CORE_ADDR, CORE_ADDR, int);
1392 /* Remove a masked watchpoint at ADDR with the mask MASK.
1393 RW may be hw_read for a read watchpoint, hw_write for a write watchpoint
1394 or hw_access for an access watchpoint. Returns 0 for success, non-zero
1397 extern int target_remove_mask_watchpoint (CORE_ADDR, CORE_ADDR, int);
1399 #define target_insert_hw_breakpoint(gdbarch, bp_tgt) \
1400 (*current_target.to_insert_hw_breakpoint) (gdbarch, bp_tgt)
1402 #define target_remove_hw_breakpoint(gdbarch, bp_tgt) \
1403 (*current_target.to_remove_hw_breakpoint) (gdbarch, bp_tgt)
1405 /* Return number of debug registers needed for a ranged breakpoint,
1406 or -1 if ranged breakpoints are not supported. */
1408 extern int target_ranged_break_num_registers (void);
1410 /* Return non-zero if target knows the data address which triggered this
1411 target_stopped_by_watchpoint, in such case place it to *ADDR_P. Only the
1412 INFERIOR_PTID task is being queried. */
1413 #define target_stopped_data_address(target, addr_p) \
1414 (*target.to_stopped_data_address) (target, addr_p)
1416 #define target_watchpoint_addr_within_range(target, addr, start, length) \
1417 (*target.to_watchpoint_addr_within_range) (target, addr, start, length)
1419 /* Return non-zero if the target is capable of using hardware to evaluate
1420 the condition expression. In this case, if the condition is false when
1421 the watched memory location changes, execution may continue without the
1422 debugger being notified.
1424 Due to limitations in the hardware implementation, it may be capable of
1425 avoiding triggering the watchpoint in some cases where the condition
1426 expression is false, but may report some false positives as well.
1427 For this reason, GDB will still evaluate the condition expression when
1428 the watchpoint triggers. */
1429 #define target_can_accel_watchpoint_condition(addr, len, type, cond) \
1430 (*current_target.to_can_accel_watchpoint_condition) (addr, len, type, cond)
1432 /* Return number of debug registers needed for a masked watchpoint,
1433 -1 if masked watchpoints are not supported or -2 if the given address
1434 and mask combination cannot be used. */
1436 extern int target_masked_watch_num_registers (CORE_ADDR addr, CORE_ADDR mask);
1438 /* Target can execute in reverse? */
1439 #define target_can_execute_reverse \
1440 (current_target.to_can_execute_reverse ? \
1441 current_target.to_can_execute_reverse () : 0)
1443 extern const struct target_desc *target_read_description (struct target_ops *);
1445 #define target_get_ada_task_ptid(lwp, tid) \
1446 (*current_target.to_get_ada_task_ptid) (lwp,tid)
1448 /* Utility implementation of searching memory. */
1449 extern int simple_search_memory (struct target_ops* ops,
1450 CORE_ADDR start_addr,
1451 ULONGEST search_space_len,
1452 const gdb_byte *pattern,
1453 ULONGEST pattern_len,
1454 CORE_ADDR *found_addrp);
1456 /* Main entry point for searching memory. */
1457 extern int target_search_memory (CORE_ADDR start_addr,
1458 ULONGEST search_space_len,
1459 const gdb_byte *pattern,
1460 ULONGEST pattern_len,
1461 CORE_ADDR *found_addrp);
1463 /* Tracepoint-related operations. */
1465 #define target_trace_init() \
1466 (*current_target.to_trace_init) ()
1468 #define target_download_tracepoint(t) \
1469 (*current_target.to_download_tracepoint) (t)
1471 #define target_download_trace_state_variable(tsv) \
1472 (*current_target.to_download_trace_state_variable) (tsv)
1474 #define target_enable_tracepoint(loc) \
1475 (*current_target.to_enable_tracepoint) (loc)
1477 #define target_disable_tracepoint(loc) \
1478 (*current_target.to_disable_tracepoint) (loc)
1480 #define target_trace_start() \
1481 (*current_target.to_trace_start) ()
1483 #define target_trace_set_readonly_regions() \
1484 (*current_target.to_trace_set_readonly_regions) ()
1486 #define target_get_trace_status(ts) \
1487 (*current_target.to_get_trace_status) (ts)
1489 #define target_trace_stop() \
1490 (*current_target.to_trace_stop) ()
1492 #define target_trace_find(type,num,addr1,addr2,tpp) \
1493 (*current_target.to_trace_find) ((type), (num), (addr1), (addr2), (tpp))
1495 #define target_get_trace_state_variable_value(tsv,val) \
1496 (*current_target.to_get_trace_state_variable_value) ((tsv), (val))
1498 #define target_save_trace_data(filename) \
1499 (*current_target.to_save_trace_data) (filename)
1501 #define target_upload_tracepoints(utpp) \
1502 (*current_target.to_upload_tracepoints) (utpp)
1504 #define target_upload_trace_state_variables(utsvp) \
1505 (*current_target.to_upload_trace_state_variables) (utsvp)
1507 #define target_get_raw_trace_data(buf,offset,len) \
1508 (*current_target.to_get_raw_trace_data) ((buf), (offset), (len))
1510 #define target_set_disconnected_tracing(val) \
1511 (*current_target.to_set_disconnected_tracing) (val)
1513 #define target_set_circular_trace_buffer(val) \
1514 (*current_target.to_set_circular_trace_buffer) (val)
1516 #define target_get_tib_address(ptid, addr) \
1517 (*current_target.to_get_tib_address) ((ptid), (addr))
1519 #define target_set_permissions() \
1520 (*current_target.to_set_permissions) ()
1522 #define target_static_tracepoint_marker_at(addr, marker) \
1523 (*current_target.to_static_tracepoint_marker_at) (addr, marker)
1525 #define target_static_tracepoint_markers_by_strid(marker_id) \
1526 (*current_target.to_static_tracepoint_markers_by_strid) (marker_id)
1528 #define target_traceframe_info() \
1529 (*current_target.to_traceframe_info) ()
1531 /* Command logging facility. */
1533 #define target_log_command(p) \
1535 if (current_target.to_log_command) \
1536 (*current_target.to_log_command) (p); \
1540 extern int target_core_of_thread (ptid_t ptid);
1542 /* Verify that the memory in the [MEMADDR, MEMADDR+SIZE) range matches
1543 the contents of [DATA,DATA+SIZE). Returns 1 if there's a match, 0
1544 if there's a mismatch, and -1 if an error is encountered while
1545 reading memory. Throws an error if the functionality is found not
1546 to be supported by the current target. */
1547 int target_verify_memory (const gdb_byte *data,
1548 CORE_ADDR memaddr, ULONGEST size);
1550 /* Routines for maintenance of the target structures...
1552 add_target: Add a target to the list of all possible targets.
1554 push_target: Make this target the top of the stack of currently used
1555 targets, within its particular stratum of the stack. Result
1556 is 0 if now atop the stack, nonzero if not on top (maybe
1559 unpush_target: Remove this from the stack of currently used targets,
1560 no matter where it is on the list. Returns 0 if no
1561 change, 1 if removed from stack.
1563 pop_target: Remove the top thing on the stack of current targets. */
1565 extern void add_target (struct target_ops *);
1567 extern void push_target (struct target_ops *);
1569 extern int unpush_target (struct target_ops *);
1571 extern void target_pre_inferior (int);
1573 extern void target_preopen (int);
1575 extern void pop_target (void);
1577 /* Does whatever cleanup is required to get rid of all pushed targets.
1578 QUITTING is propagated to target_close; it indicates that GDB is
1579 exiting and should not get hung on an error (otherwise it is
1580 important to perform clean termination, even if it takes a
1582 extern void pop_all_targets (int quitting);
1584 /* Like pop_all_targets, but pops only targets whose stratum is
1585 strictly above ABOVE_STRATUM. */
1586 extern void pop_all_targets_above (enum strata above_stratum, int quitting);
1588 extern int target_is_pushed (struct target_ops *t);
1590 extern CORE_ADDR target_translate_tls_address (struct objfile *objfile,
1593 /* Struct target_section maps address ranges to file sections. It is
1594 mostly used with BFD files, but can be used without (e.g. for handling
1595 raw disks, or files not in formats handled by BFD). */
1597 struct target_section
1599 CORE_ADDR addr; /* Lowest address in section */
1600 CORE_ADDR endaddr; /* 1+highest address in section */
1602 struct bfd_section *the_bfd_section;
1604 bfd *bfd; /* BFD file pointer */
1607 /* Holds an array of target sections. Defined by [SECTIONS..SECTIONS_END[. */
1609 struct target_section_table
1611 struct target_section *sections;
1612 struct target_section *sections_end;
1615 /* Return the "section" containing the specified address. */
1616 struct target_section *target_section_by_addr (struct target_ops *target,
1619 /* Return the target section table this target (or the targets
1620 beneath) currently manipulate. */
1622 extern struct target_section_table *target_get_section_table
1623 (struct target_ops *target);
1625 /* From mem-break.c */
1627 extern int memory_remove_breakpoint (struct gdbarch *,
1628 struct bp_target_info *);
1630 extern int memory_insert_breakpoint (struct gdbarch *,
1631 struct bp_target_info *);
1633 extern int default_memory_remove_breakpoint (struct gdbarch *,
1634 struct bp_target_info *);
1636 extern int default_memory_insert_breakpoint (struct gdbarch *,
1637 struct bp_target_info *);
1642 extern void initialize_targets (void);
1644 extern void noprocess (void) ATTRIBUTE_NORETURN;
1646 extern void target_require_runnable (void);
1648 extern void find_default_attach (struct target_ops *, char *, int);
1650 extern void find_default_create_inferior (struct target_ops *,
1651 char *, char *, char **, int);
1653 extern struct target_ops *find_run_target (void);
1655 extern struct target_ops *find_target_beneath (struct target_ops *);
1657 /* Read OS data object of type TYPE from the target, and return it in
1658 XML format. The result is NUL-terminated and returned as a string,
1659 allocated using xmalloc. If an error occurs or the transfer is
1660 unsupported, NULL is returned. Empty objects are returned as
1661 allocated but empty strings. */
1663 extern char *target_get_osdata (const char *type);
1666 /* Stuff that should be shared among the various remote targets. */
1668 /* Debugging level. 0 is off, and non-zero values mean to print some debug
1669 information (higher values, more information). */
1670 extern int remote_debug;
1672 /* Speed in bits per second, or -1 which means don't mess with the speed. */
1673 extern int baud_rate;
1674 /* Timeout limit for response from target. */
1675 extern int remote_timeout;
1678 /* Functions for helping to write a native target. */
1680 /* This is for native targets which use a unix/POSIX-style waitstatus. */
1681 extern void store_waitstatus (struct target_waitstatus *, int);
1683 /* These are in common/signals.c, but they're only used by gdb. */
1684 extern enum target_signal default_target_signal_from_host (struct gdbarch *,
1686 extern int default_target_signal_to_host (struct gdbarch *,
1687 enum target_signal);
1689 /* Convert from a number used in a GDB command to an enum target_signal. */
1690 extern enum target_signal target_signal_from_command (int);
1691 /* End of files in common/signals.c. */
1693 /* Set the show memory breakpoints mode to show, and installs a cleanup
1694 to restore it back to the current value. */
1695 extern struct cleanup *make_show_memory_breakpoints_cleanup (int show);
1697 extern int may_write_registers;
1698 extern int may_write_memory;
1699 extern int may_insert_breakpoints;
1700 extern int may_insert_tracepoints;
1701 extern int may_insert_fast_tracepoints;
1702 extern int may_stop;
1704 extern void update_target_permissions (void);
1707 /* Imported from machine dependent code. */
1709 /* Blank target vector entries are initialized to target_ignore. */
1710 void target_ignore (void);
1712 #endif /* !defined (TARGET_H) */