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[/] [or1k/] [trunk/] [gdb-5.0/] [gdb/] [breakpoint.c] - Diff between revs 105 and 1765

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/* Everything about breakpoints, for GDB.
/* Everything about breakpoints, for GDB.
   Copyright 1986, 87, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 1999
   Copyright 1986, 87, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 1999
   Free Software Foundation, Inc.
   Free Software Foundation, Inc.
 
 
   This file is part of GDB.
   This file is part of GDB.
 
 
   This program is free software; you can redistribute it and/or modify
   This program is free software; you can redistribute it and/or modify
   it under the terms of the GNU General Public License as published by
   it under the terms of the GNU General Public License as published by
   the Free Software Foundation; either version 2 of the License, or
   the Free Software Foundation; either version 2 of the License, or
   (at your option) any later version.
   (at your option) any later version.
 
 
   This program is distributed in the hope that it will be useful,
   This program is distributed in the hope that it will be useful,
   but WITHOUT ANY WARRANTY; without even the implied warranty of
   but WITHOUT ANY WARRANTY; without even the implied warranty of
   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
   GNU General Public License for more details.
   GNU General Public License for more details.
 
 
   You should have received a copy of the GNU General Public License
   You should have received a copy of the GNU General Public License
   along with this program; if not, write to the Free Software
   along with this program; if not, write to the Free Software
   Foundation, Inc., 59 Temple Place - Suite 330,
   Foundation, Inc., 59 Temple Place - Suite 330,
   Boston, MA 02111-1307, USA.  */
   Boston, MA 02111-1307, USA.  */
 
 
#include "defs.h"
#include "defs.h"
#include <ctype.h>
#include <ctype.h>
#include "symtab.h"
#include "symtab.h"
#include "frame.h"
#include "frame.h"
#include "breakpoint.h"
#include "breakpoint.h"
#include "gdbtypes.h"
#include "gdbtypes.h"
#include "expression.h"
#include "expression.h"
#include "gdbcore.h"
#include "gdbcore.h"
#include "gdbcmd.h"
#include "gdbcmd.h"
#include "value.h"
#include "value.h"
#include "command.h"
#include "command.h"
#include "inferior.h"
#include "inferior.h"
#include "gdbthread.h"
#include "gdbthread.h"
#include "target.h"
#include "target.h"
#include "language.h"
#include "language.h"
#include "gdb_string.h"
#include "gdb_string.h"
#include "demangle.h"
#include "demangle.h"
#include "annotate.h"
#include "annotate.h"
#include "symfile.h"
#include "symfile.h"
#include "objfiles.h"
#include "objfiles.h"
#ifdef UI_OUT
#ifdef UI_OUT
#include "ui-out.h"
#include "ui-out.h"
#endif
#endif
 
 
#include "gdb-events.h"
#include "gdb-events.h"
 
 
/* Prototypes for local functions. */
/* Prototypes for local functions. */
 
 
static void until_break_command_continuation (struct continuation_arg *arg);
static void until_break_command_continuation (struct continuation_arg *arg);
 
 
static void
static void
catch_command_1 PARAMS ((char *, int, int));
catch_command_1 PARAMS ((char *, int, int));
 
 
static void
static void
enable_delete_command PARAMS ((char *, int));
enable_delete_command PARAMS ((char *, int));
 
 
static void
static void
enable_delete_breakpoint PARAMS ((struct breakpoint *));
enable_delete_breakpoint PARAMS ((struct breakpoint *));
 
 
static void
static void
enable_once_command PARAMS ((char *, int));
enable_once_command PARAMS ((char *, int));
 
 
static void
static void
enable_once_breakpoint PARAMS ((struct breakpoint *));
enable_once_breakpoint PARAMS ((struct breakpoint *));
 
 
static void
static void
disable_command PARAMS ((char *, int));
disable_command PARAMS ((char *, int));
 
 
static void
static void
enable_command PARAMS ((char *, int));
enable_command PARAMS ((char *, int));
 
 
static void
static void
map_breakpoint_numbers PARAMS ((char *, void (*)(struct breakpoint *)));
map_breakpoint_numbers PARAMS ((char *, void (*)(struct breakpoint *)));
 
 
static void
static void
ignore_command PARAMS ((char *, int));
ignore_command PARAMS ((char *, int));
 
 
static int breakpoint_re_set_one PARAMS ((PTR));
static int breakpoint_re_set_one PARAMS ((PTR));
 
 
static void
static void
clear_command PARAMS ((char *, int));
clear_command PARAMS ((char *, int));
 
 
static void
static void
catch_command PARAMS ((char *, int));
catch_command PARAMS ((char *, int));
 
 
static void
static void
handle_gnu_4_16_catch_command PARAMS ((char *, int, int));
handle_gnu_4_16_catch_command PARAMS ((char *, int, int));
 
 
static struct symtabs_and_lines
static struct symtabs_and_lines
get_catch_sals PARAMS ((int));
get_catch_sals PARAMS ((int));
 
 
static void
static void
watch_command PARAMS ((char *, int));
watch_command PARAMS ((char *, int));
 
 
static int
static int
can_use_hardware_watchpoint PARAMS ((struct value *));
can_use_hardware_watchpoint PARAMS ((struct value *));
 
 
static void break_at_finish_command PARAMS ((char *, int));
static void break_at_finish_command PARAMS ((char *, int));
static void break_at_finish_at_depth_command PARAMS ((char *, int));
static void break_at_finish_at_depth_command PARAMS ((char *, int));
 
 
void
void
tbreak_command PARAMS ((char *, int));
tbreak_command PARAMS ((char *, int));
 
 
static void tbreak_at_finish_command PARAMS ((char *, int));
static void tbreak_at_finish_command PARAMS ((char *, int));
 
 
static void
static void
break_command_1 PARAMS ((char *, int, int));
break_command_1 PARAMS ((char *, int, int));
 
 
static void
static void
mention PARAMS ((struct breakpoint *));
mention PARAMS ((struct breakpoint *));
 
 
struct breakpoint *
struct breakpoint *
  set_raw_breakpoint PARAMS ((struct symtab_and_line));
  set_raw_breakpoint PARAMS ((struct symtab_and_line));
 
 
static void
static void
check_duplicates PARAMS ((CORE_ADDR, asection *));
check_duplicates PARAMS ((CORE_ADDR, asection *));
 
 
static void
static void
describe_other_breakpoints PARAMS ((CORE_ADDR, asection *));
describe_other_breakpoints PARAMS ((CORE_ADDR, asection *));
 
 
static void
static void
breakpoints_info PARAMS ((char *, int));
breakpoints_info PARAMS ((char *, int));
 
 
static void
static void
breakpoint_1 PARAMS ((int, int));
breakpoint_1 PARAMS ((int, int));
 
 
static bpstat
static bpstat
  bpstat_alloc PARAMS ((struct breakpoint *, bpstat));
  bpstat_alloc PARAMS ((struct breakpoint *, bpstat));
 
 
static int breakpoint_cond_eval PARAMS ((PTR));
static int breakpoint_cond_eval PARAMS ((PTR));
 
 
static void
static void
cleanup_executing_breakpoints PARAMS ((PTR));
cleanup_executing_breakpoints PARAMS ((PTR));
 
 
static void
static void
commands_command PARAMS ((char *, int));
commands_command PARAMS ((char *, int));
 
 
static void
static void
condition_command PARAMS ((char *, int));
condition_command PARAMS ((char *, int));
 
 
static int
static int
get_number_trailer PARAMS ((char **, int));
get_number_trailer PARAMS ((char **, int));
 
 
void
void
set_breakpoint_count PARAMS ((int));
set_breakpoint_count PARAMS ((int));
 
 
#if 0
#if 0
static struct breakpoint *
static struct breakpoint *
  create_temp_exception_breakpoint PARAMS ((CORE_ADDR));
  create_temp_exception_breakpoint PARAMS ((CORE_ADDR));
#endif
#endif
 
 
typedef enum
typedef enum
  {
  {
    mark_inserted,
    mark_inserted,
    mark_uninserted
    mark_uninserted
  }
  }
insertion_state_t;
insertion_state_t;
 
 
static int
static int
remove_breakpoint PARAMS ((struct breakpoint *, insertion_state_t));
remove_breakpoint PARAMS ((struct breakpoint *, insertion_state_t));
 
 
static enum print_stop_action print_it_typical PARAMS ((bpstat));
static enum print_stop_action print_it_typical PARAMS ((bpstat));
 
 
static enum print_stop_action print_bp_stop_message (bpstat bs);
static enum print_stop_action print_bp_stop_message (bpstat bs);
 
 
typedef struct
typedef struct
  {
  {
    enum exception_event_kind kind;
    enum exception_event_kind kind;
    int enable;
    int enable;
  }
  }
args_for_catchpoint_enable;
args_for_catchpoint_enable;
 
 
static int watchpoint_check PARAMS ((PTR));
static int watchpoint_check PARAMS ((PTR));
 
 
static int cover_target_enable_exception_callback PARAMS ((PTR));
static int cover_target_enable_exception_callback PARAMS ((PTR));
 
 
static void maintenance_info_breakpoints PARAMS ((char *, int));
static void maintenance_info_breakpoints PARAMS ((char *, int));
 
 
#ifdef GET_LONGJMP_TARGET
#ifdef GET_LONGJMP_TARGET
static void create_longjmp_breakpoint PARAMS ((char *));
static void create_longjmp_breakpoint PARAMS ((char *));
#endif
#endif
 
 
static int hw_breakpoint_used_count PARAMS ((void));
static int hw_breakpoint_used_count PARAMS ((void));
 
 
static int hw_watchpoint_used_count PARAMS ((enum bptype, int *));
static int hw_watchpoint_used_count PARAMS ((enum bptype, int *));
 
 
static void hbreak_command PARAMS ((char *, int));
static void hbreak_command PARAMS ((char *, int));
 
 
static void thbreak_command PARAMS ((char *, int));
static void thbreak_command PARAMS ((char *, int));
 
 
static void watch_command_1 PARAMS ((char *, int, int));
static void watch_command_1 PARAMS ((char *, int, int));
 
 
static void rwatch_command PARAMS ((char *, int));
static void rwatch_command PARAMS ((char *, int));
 
 
static void awatch_command PARAMS ((char *, int));
static void awatch_command PARAMS ((char *, int));
 
 
static void do_enable_breakpoint PARAMS ((struct breakpoint *, enum bpdisp));
static void do_enable_breakpoint PARAMS ((struct breakpoint *, enum bpdisp));
 
 
static void solib_load_unload_1 PARAMS ((char *hookname,
static void solib_load_unload_1 PARAMS ((char *hookname,
                                         int tempflag,
                                         int tempflag,
                                         char *dll_pathname,
                                         char *dll_pathname,
                                         char *cond_string,
                                         char *cond_string,
                                         enum bptype bp_kind));
                                         enum bptype bp_kind));
 
 
static void create_fork_vfork_event_catchpoint PARAMS ((int tempflag,
static void create_fork_vfork_event_catchpoint PARAMS ((int tempflag,
                                                        char *cond_string,
                                                        char *cond_string,
                                                        enum bptype bp_kind));
                                                        enum bptype bp_kind));
 
 
static void break_at_finish_at_depth_command_1 PARAMS ((char *arg,
static void break_at_finish_at_depth_command_1 PARAMS ((char *arg,
                                                        int flag,
                                                        int flag,
                                                        int from_tty));
                                                        int from_tty));
 
 
static void break_at_finish_command_1 PARAMS ((char *arg,
static void break_at_finish_command_1 PARAMS ((char *arg,
                                               int flag,
                                               int flag,
                                               int from_tty));
                                               int from_tty));
 
 
static void stop_command PARAMS ((char *arg, int from_tty));
static void stop_command PARAMS ((char *arg, int from_tty));
 
 
static void stopin_command PARAMS ((char *arg, int from_tty));
static void stopin_command PARAMS ((char *arg, int from_tty));
 
 
static void stopat_command PARAMS ((char *arg, int from_tty));
static void stopat_command PARAMS ((char *arg, int from_tty));
 
 
static char *ep_find_event_name_end PARAMS ((char *arg));
static char *ep_find_event_name_end PARAMS ((char *arg));
 
 
static char *ep_parse_optional_if_clause PARAMS ((char **arg));
static char *ep_parse_optional_if_clause PARAMS ((char **arg));
 
 
static char *ep_parse_optional_filename PARAMS ((char **arg));
static char *ep_parse_optional_filename PARAMS ((char **arg));
 
 
#if defined(CHILD_INSERT_EXEC_CATCHPOINT)
#if defined(CHILD_INSERT_EXEC_CATCHPOINT)
static void catch_exec_command_1 PARAMS ((char *arg, int tempflag,
static void catch_exec_command_1 PARAMS ((char *arg, int tempflag,
                                          int from_tty));
                                          int from_tty));
#endif
#endif
 
 
static void create_exception_catchpoint
static void create_exception_catchpoint
  PARAMS ((int tempflag, char *cond_string,
  PARAMS ((int tempflag, char *cond_string,
           enum exception_event_kind ex_event,
           enum exception_event_kind ex_event,
           struct symtab_and_line * sal));
           struct symtab_and_line * sal));
 
 
static void catch_exception_command_1
static void catch_exception_command_1
  PARAMS ((enum exception_event_kind ex_event,
  PARAMS ((enum exception_event_kind ex_event,
           char *arg, int tempflag, int from_tty));
           char *arg, int tempflag, int from_tty));
 
 
static void tcatch_command PARAMS ((char *arg, int from_tty));
static void tcatch_command PARAMS ((char *arg, int from_tty));
 
 
static void ep_skip_leading_whitespace PARAMS ((char **s));
static void ep_skip_leading_whitespace PARAMS ((char **s));
 
 
/* Prototypes for exported functions. */
/* Prototypes for exported functions. */
 
 
static void
static void
awatch_command PARAMS ((char *, int));
awatch_command PARAMS ((char *, int));
 
 
static void
static void
do_enable_breakpoint PARAMS ((struct breakpoint *, enum bpdisp));
do_enable_breakpoint PARAMS ((struct breakpoint *, enum bpdisp));
 
 
/* If FALSE, gdb will not use hardware support for watchpoints, even
/* If FALSE, gdb will not use hardware support for watchpoints, even
   if such is available. */
   if such is available. */
static int can_use_hw_watchpoints;
static int can_use_hw_watchpoints;
 
 
void _initialize_breakpoint PARAMS ((void));
void _initialize_breakpoint PARAMS ((void));
 
 
void set_breakpoint_count PARAMS ((int));
void set_breakpoint_count PARAMS ((int));
 
 
extern int addressprint;        /* Print machine addresses? */
extern int addressprint;        /* Print machine addresses? */
 
 
static int internal_breakpoint_number = -1;
static int internal_breakpoint_number = -1;
 
 
/* Are we executing breakpoint commands?  */
/* Are we executing breakpoint commands?  */
static int executing_breakpoint_commands;
static int executing_breakpoint_commands;
 
 
/* Walk the following statement or block through all breakpoints.
/* Walk the following statement or block through all breakpoints.
   ALL_BREAKPOINTS_SAFE does so even if the statment deletes the current
   ALL_BREAKPOINTS_SAFE does so even if the statment deletes the current
   breakpoint.  */
   breakpoint.  */
 
 
#define ALL_BREAKPOINTS(B)  for (B = breakpoint_chain; B; B = B->next)
#define ALL_BREAKPOINTS(B)  for (B = breakpoint_chain; B; B = B->next)
 
 
#define ALL_BREAKPOINTS_SAFE(B,TMP)     \
#define ALL_BREAKPOINTS_SAFE(B,TMP)     \
        for (B = breakpoint_chain;      \
        for (B = breakpoint_chain;      \
             B ? (TMP=B->next, 1): 0;    \
             B ? (TMP=B->next, 1): 0;    \
             B = TMP)
             B = TMP)
 
 
/* True if SHIFT_INST_REGS defined, false otherwise.  */
/* True if SHIFT_INST_REGS defined, false otherwise.  */
 
 
int must_shift_inst_regs =
int must_shift_inst_regs =
#if defined(SHIFT_INST_REGS)
#if defined(SHIFT_INST_REGS)
1
1
#else
#else
0
0
#endif
#endif
 ;
 ;
 
 
/* True if breakpoint hit counts should be displayed in breakpoint info.  */
/* True if breakpoint hit counts should be displayed in breakpoint info.  */
 
 
int show_breakpoint_hit_counts = 1;
int show_breakpoint_hit_counts = 1;
 
 
/* Chain of all breakpoints defined.  */
/* Chain of all breakpoints defined.  */
 
 
struct breakpoint *breakpoint_chain;
struct breakpoint *breakpoint_chain;
 
 
/* Number of last breakpoint made.  */
/* Number of last breakpoint made.  */
 
 
int breakpoint_count;
int breakpoint_count;
 
 
/* Pointer to current exception event record */
/* Pointer to current exception event record */
static struct exception_event_record *current_exception_event;
static struct exception_event_record *current_exception_event;
 
 
/* Indicator of whether exception catchpoints should be nuked
/* Indicator of whether exception catchpoints should be nuked
   between runs of a program */
   between runs of a program */
int exception_catchpoints_are_fragile = 0;
int exception_catchpoints_are_fragile = 0;
 
 
/* Indicator of when exception catchpoints set-up should be
/* Indicator of when exception catchpoints set-up should be
   reinitialized -- e.g. when program is re-run */
   reinitialized -- e.g. when program is re-run */
int exception_support_initialized = 0;
int exception_support_initialized = 0;
 
 
/* This function returns a pointer to the string representation of the
/* This function returns a pointer to the string representation of the
   pathname of the dynamically-linked library that has just been
   pathname of the dynamically-linked library that has just been
   loaded.
   loaded.
 
 
   This function must be used only when SOLIB_HAVE_LOAD_EVENT is TRUE,
   This function must be used only when SOLIB_HAVE_LOAD_EVENT is TRUE,
   or undefined results are guaranteed.
   or undefined results are guaranteed.
 
 
   This string's contents are only valid immediately after the
   This string's contents are only valid immediately after the
   inferior has stopped in the dynamic linker hook, and becomes
   inferior has stopped in the dynamic linker hook, and becomes
   invalid as soon as the inferior is continued.  Clients should make
   invalid as soon as the inferior is continued.  Clients should make
   a copy of this string if they wish to continue the inferior and
   a copy of this string if they wish to continue the inferior and
   then access the string.  */
   then access the string.  */
 
 
#ifndef SOLIB_LOADED_LIBRARY_PATHNAME
#ifndef SOLIB_LOADED_LIBRARY_PATHNAME
#define SOLIB_LOADED_LIBRARY_PATHNAME(pid) ""
#define SOLIB_LOADED_LIBRARY_PATHNAME(pid) ""
#endif
#endif
 
 
/* This function returns a pointer to the string representation of the
/* This function returns a pointer to the string representation of the
   pathname of the dynamically-linked library that has just been
   pathname of the dynamically-linked library that has just been
   unloaded.
   unloaded.
 
 
   This function must be used only when SOLIB_HAVE_UNLOAD_EVENT is
   This function must be used only when SOLIB_HAVE_UNLOAD_EVENT is
   TRUE, or undefined results are guaranteed.
   TRUE, or undefined results are guaranteed.
 
 
   This string's contents are only valid immediately after the
   This string's contents are only valid immediately after the
   inferior has stopped in the dynamic linker hook, and becomes
   inferior has stopped in the dynamic linker hook, and becomes
   invalid as soon as the inferior is continued.  Clients should make
   invalid as soon as the inferior is continued.  Clients should make
   a copy of this string if they wish to continue the inferior and
   a copy of this string if they wish to continue the inferior and
   then access the string.  */
   then access the string.  */
 
 
#ifndef SOLIB_UNLOADED_LIBRARY_PATHNAME
#ifndef SOLIB_UNLOADED_LIBRARY_PATHNAME
#define SOLIB_UNLOADED_LIBRARY_PATHNAME(pid) ""
#define SOLIB_UNLOADED_LIBRARY_PATHNAME(pid) ""
#endif
#endif
 
 
/* This function is called by the "catch load" command.  It allows the
/* This function is called by the "catch load" command.  It allows the
   debugger to be notified by the dynamic linker when a specified
   debugger to be notified by the dynamic linker when a specified
   library file (or any library file, if filename is NULL) is loaded.  */
   library file (or any library file, if filename is NULL) is loaded.  */
 
 
#ifndef SOLIB_CREATE_CATCH_LOAD_HOOK
#ifndef SOLIB_CREATE_CATCH_LOAD_HOOK
#define SOLIB_CREATE_CATCH_LOAD_HOOK(pid,tempflag,filename,cond_string) \
#define SOLIB_CREATE_CATCH_LOAD_HOOK(pid,tempflag,filename,cond_string) \
   error ("catch of library loads not yet implemented on this platform")
   error ("catch of library loads not yet implemented on this platform")
#endif
#endif
 
 
/* This function is called by the "catch unload" command.  It allows
/* This function is called by the "catch unload" command.  It allows
   the debugger to be notified by the dynamic linker when a specified
   the debugger to be notified by the dynamic linker when a specified
   library file (or any library file, if filename is NULL) is
   library file (or any library file, if filename is NULL) is
   unloaded.  */
   unloaded.  */
 
 
#ifndef SOLIB_CREATE_CATCH_UNLOAD_HOOK
#ifndef SOLIB_CREATE_CATCH_UNLOAD_HOOK
#define SOLIB_CREATE_CATCH_UNLOAD_HOOK(pid,tempflag,filename,cond_string) \
#define SOLIB_CREATE_CATCH_UNLOAD_HOOK(pid,tempflag,filename,cond_string) \
   error ("catch of library unloads not yet implemented on this platform")
   error ("catch of library unloads not yet implemented on this platform")
#endif
#endif
 
 
/* Set breakpoint count to NUM.  */
/* Set breakpoint count to NUM.  */
 
 
void
void
set_breakpoint_count (num)
set_breakpoint_count (num)
     int num;
     int num;
{
{
  breakpoint_count = num;
  breakpoint_count = num;
  set_internalvar (lookup_internalvar ("bpnum"),
  set_internalvar (lookup_internalvar ("bpnum"),
                   value_from_longest (builtin_type_int, (LONGEST) num));
                   value_from_longest (builtin_type_int, (LONGEST) num));
}
}
 
 
/* Used in run_command to zero the hit count when a new run starts. */
/* Used in run_command to zero the hit count when a new run starts. */
 
 
void
void
clear_breakpoint_hit_counts ()
clear_breakpoint_hit_counts ()
{
{
  struct breakpoint *b;
  struct breakpoint *b;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    b->hit_count = 0;
    b->hit_count = 0;
}
}
 
 
/* Default address, symtab and line to put a breakpoint at
/* Default address, symtab and line to put a breakpoint at
   for "break" command with no arg.
   for "break" command with no arg.
   if default_breakpoint_valid is zero, the other three are
   if default_breakpoint_valid is zero, the other three are
   not valid, and "break" with no arg is an error.
   not valid, and "break" with no arg is an error.
 
 
   This set by print_stack_frame, which calls set_default_breakpoint.  */
   This set by print_stack_frame, which calls set_default_breakpoint.  */
 
 
int default_breakpoint_valid;
int default_breakpoint_valid;
CORE_ADDR default_breakpoint_address;
CORE_ADDR default_breakpoint_address;
struct symtab *default_breakpoint_symtab;
struct symtab *default_breakpoint_symtab;
int default_breakpoint_line;
int default_breakpoint_line;


/* *PP is a string denoting a breakpoint.  Get the number of the breakpoint.
/* *PP is a string denoting a breakpoint.  Get the number of the breakpoint.
   Advance *PP after the string and any trailing whitespace.
   Advance *PP after the string and any trailing whitespace.
 
 
   Currently the string can either be a number or "$" followed by the name
   Currently the string can either be a number or "$" followed by the name
   of a convenience variable.  Making it an expression wouldn't work well
   of a convenience variable.  Making it an expression wouldn't work well
   for map_breakpoint_numbers (e.g. "4 + 5 + 6").
   for map_breakpoint_numbers (e.g. "4 + 5 + 6").
 
 
   TRAILER is a character which can be found after the number; most
   TRAILER is a character which can be found after the number; most
   commonly this is `-'.  If you don't want a trailer, use \0.  */
   commonly this is `-'.  If you don't want a trailer, use \0.  */
static int
static int
get_number_trailer (pp, trailer)
get_number_trailer (pp, trailer)
     char **pp;
     char **pp;
     int trailer;
     int trailer;
{
{
  int retval = 0;        /* default */
  int retval = 0;        /* default */
  char *p = *pp;
  char *p = *pp;
 
 
  if (p == NULL)
  if (p == NULL)
    /* Empty line means refer to the last breakpoint.  */
    /* Empty line means refer to the last breakpoint.  */
    return breakpoint_count;
    return breakpoint_count;
  else if (*p == '$')
  else if (*p == '$')
    {
    {
      /* Make a copy of the name, so we can null-terminate it
      /* Make a copy of the name, so we can null-terminate it
         to pass to lookup_internalvar().  */
         to pass to lookup_internalvar().  */
      char *varname;
      char *varname;
      char *start = ++p;
      char *start = ++p;
      value_ptr val;
      value_ptr val;
 
 
      while (isalnum (*p) || *p == '_')
      while (isalnum (*p) || *p == '_')
        p++;
        p++;
      varname = (char *) alloca (p - start + 1);
      varname = (char *) alloca (p - start + 1);
      strncpy (varname, start, p - start);
      strncpy (varname, start, p - start);
      varname[p - start] = '\0';
      varname[p - start] = '\0';
      val = value_of_internalvar (lookup_internalvar (varname));
      val = value_of_internalvar (lookup_internalvar (varname));
      if (TYPE_CODE (VALUE_TYPE (val)) == TYPE_CODE_INT)
      if (TYPE_CODE (VALUE_TYPE (val)) == TYPE_CODE_INT)
        retval = (int) value_as_long (val);
        retval = (int) value_as_long (val);
      else
      else
        {
        {
          printf_filtered ("Convenience variable must have integer value.\n");
          printf_filtered ("Convenience variable must have integer value.\n");
          retval = 0;
          retval = 0;
        }
        }
    }
    }
  else
  else
    {
    {
      if (*p == '-')
      if (*p == '-')
        ++p;
        ++p;
      while (*p >= '0' && *p <= '9')
      while (*p >= '0' && *p <= '9')
        ++p;
        ++p;
      if (p == *pp)
      if (p == *pp)
        /* There is no number here.  (e.g. "cond a == b").  */
        /* There is no number here.  (e.g. "cond a == b").  */
        {
        {
          /* Skip non-numeric token */
          /* Skip non-numeric token */
          while (*p && !isspace((int) *p))
          while (*p && !isspace((int) *p))
            ++p;
            ++p;
          /* Return zero, which caller must interpret as error. */
          /* Return zero, which caller must interpret as error. */
          retval = 0;
          retval = 0;
        }
        }
      else
      else
        retval = atoi (*pp);
        retval = atoi (*pp);
    }
    }
  if (!(isspace (*p) || *p == '\0' || *p == trailer))
  if (!(isspace (*p) || *p == '\0' || *p == trailer))
    {
    {
      /* Trailing junk: return 0 and let caller print error msg. */
      /* Trailing junk: return 0 and let caller print error msg. */
      while (!(isspace (*p) || *p == '\0' || *p == trailer))
      while (!(isspace (*p) || *p == '\0' || *p == trailer))
        ++p;
        ++p;
      retval = 0;
      retval = 0;
    }
    }
  while (isspace (*p))
  while (isspace (*p))
    p++;
    p++;
  *pp = p;
  *pp = p;
  return retval;
  return retval;
}
}
 
 
 
 
/* Like get_number_trailer, but don't allow a trailer.  */
/* Like get_number_trailer, but don't allow a trailer.  */
int
int
get_number (pp)
get_number (pp)
     char **pp;
     char **pp;
{
{
  return get_number_trailer (pp, '\0');
  return get_number_trailer (pp, '\0');
}
}
 
 
/* Parse a number or a range.
/* Parse a number or a range.
 * A number will be of the form handled by get_number.
 * A number will be of the form handled by get_number.
 * A range will be of the form <number1> - <number2>, and
 * A range will be of the form <number1> - <number2>, and
 * will represent all the integers between number1 and number2,
 * will represent all the integers between number1 and number2,
 * inclusive.
 * inclusive.
 *
 *
 * While processing a range, this fuction is called iteratively;
 * While processing a range, this fuction is called iteratively;
 * At each call it will return the next value in the range.
 * At each call it will return the next value in the range.
 *
 *
 * At the beginning of parsing a range, the char pointer PP will
 * At the beginning of parsing a range, the char pointer PP will
 * be advanced past <number1> and left pointing at the '-' token.
 * be advanced past <number1> and left pointing at the '-' token.
 * Subsequent calls will not advance the pointer until the range
 * Subsequent calls will not advance the pointer until the range
 * is completed.  The call that completes the range will advance
 * is completed.  The call that completes the range will advance
 * pointer PP past <number2>.
 * pointer PP past <number2>.
 */
 */
 
 
int
int
get_number_or_range (pp)
get_number_or_range (pp)
     char **pp;
     char **pp;
{
{
  static int last_retval, end_value;
  static int last_retval, end_value;
  static char *end_ptr;
  static char *end_ptr;
  static int in_range = 0;
  static int in_range = 0;
 
 
  if (**pp != '-')
  if (**pp != '-')
    {
    {
      /* Default case: pp is pointing either to a solo number,
      /* Default case: pp is pointing either to a solo number,
         or to the first number of a range.  */
         or to the first number of a range.  */
      last_retval = get_number_trailer (pp, '-');
      last_retval = get_number_trailer (pp, '-');
      if (**pp == '-')
      if (**pp == '-')
        {
        {
          char **temp;
          char **temp;
 
 
          /* This is the start of a range (<number1> - <number2>).
          /* This is the start of a range (<number1> - <number2>).
             Skip the '-', parse and remember the second number,
             Skip the '-', parse and remember the second number,
             and also remember the end of the final token.  */
             and also remember the end of the final token.  */
 
 
          temp = &end_ptr;
          temp = &end_ptr;
          end_ptr = *pp + 1;
          end_ptr = *pp + 1;
          while (isspace ((int) *end_ptr))
          while (isspace ((int) *end_ptr))
            end_ptr++;  /* skip white space */
            end_ptr++;  /* skip white space */
          end_value = get_number (temp);
          end_value = get_number (temp);
          if (end_value < last_retval)
          if (end_value < last_retval)
            {
            {
              error ("inverted range");
              error ("inverted range");
            }
            }
          else if (end_value == last_retval)
          else if (end_value == last_retval)
            {
            {
              /* degenerate range (number1 == number2).  Advance the
              /* degenerate range (number1 == number2).  Advance the
                 token pointer so that the range will be treated as a
                 token pointer so that the range will be treated as a
                 single number.  */
                 single number.  */
              *pp = end_ptr;
              *pp = end_ptr;
            }
            }
          else
          else
            in_range = 1;
            in_range = 1;
        }
        }
    }
    }
  else if (! in_range)
  else if (! in_range)
    error ("negative value");
    error ("negative value");
  else
  else
    {
    {
      /* pp points to the '-' that betokens a range.  All
      /* pp points to the '-' that betokens a range.  All
         number-parsing has already been done.  Return the next
         number-parsing has already been done.  Return the next
         integer value (one greater than the saved previous value).
         integer value (one greater than the saved previous value).
         Do not advance the token pointer 'pp' until the end of range
         Do not advance the token pointer 'pp' until the end of range
         is reached.  */
         is reached.  */
 
 
      if (++last_retval == end_value)
      if (++last_retval == end_value)
        {
        {
          /* End of range reached; advance token pointer.  */
          /* End of range reached; advance token pointer.  */
          *pp = end_ptr;
          *pp = end_ptr;
          in_range = 0;
          in_range = 0;
        }
        }
    }
    }
  return last_retval;
  return last_retval;
}
}
 
 
 
 


/* condition N EXP -- set break condition of breakpoint N to EXP.  */
/* condition N EXP -- set break condition of breakpoint N to EXP.  */
 
 
static void
static void
condition_command (arg, from_tty)
condition_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
  char *p;
  char *p;
  register int bnum;
  register int bnum;
 
 
  if (arg == 0)
  if (arg == 0)
    error_no_arg ("breakpoint number");
    error_no_arg ("breakpoint number");
 
 
  p = arg;
  p = arg;
  bnum = get_number (&p);
  bnum = get_number (&p);
  if (bnum == 0)
  if (bnum == 0)
    error ("Bad breakpoint argument: '%s'", arg);
    error ("Bad breakpoint argument: '%s'", arg);
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    if (b->number == bnum)
    if (b->number == bnum)
    {
    {
      if (b->cond)
      if (b->cond)
        {
        {
          free ((PTR) b->cond);
          free ((PTR) b->cond);
          b->cond = 0;
          b->cond = 0;
        }
        }
      if (b->cond_string != NULL)
      if (b->cond_string != NULL)
        free ((PTR) b->cond_string);
        free ((PTR) b->cond_string);
 
 
      if (*p == 0)
      if (*p == 0)
        {
        {
          b->cond = 0;
          b->cond = 0;
          b->cond_string = NULL;
          b->cond_string = NULL;
          if (from_tty)
          if (from_tty)
            printf_filtered ("Breakpoint %d now unconditional.\n", bnum);
            printf_filtered ("Breakpoint %d now unconditional.\n", bnum);
        }
        }
      else
      else
        {
        {
          arg = p;
          arg = p;
          /* I don't know if it matters whether this is the string the user
          /* I don't know if it matters whether this is the string the user
             typed in or the decompiled expression.  */
             typed in or the decompiled expression.  */
          b->cond_string = savestring (arg, strlen (arg));
          b->cond_string = savestring (arg, strlen (arg));
          b->cond = parse_exp_1 (&arg, block_for_pc (b->address), 0);
          b->cond = parse_exp_1 (&arg, block_for_pc (b->address), 0);
          if (*arg)
          if (*arg)
            error ("Junk at end of expression");
            error ("Junk at end of expression");
        }
        }
      breakpoints_changed ();
      breakpoints_changed ();
      return;
      return;
    }
    }
 
 
  error ("No breakpoint number %d.", bnum);
  error ("No breakpoint number %d.", bnum);
}
}
 
 
/* ARGSUSED */
/* ARGSUSED */
static void
static void
commands_command (arg, from_tty)
commands_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
  char *p;
  char *p;
  register int bnum;
  register int bnum;
  struct command_line *l;
  struct command_line *l;
 
 
  /* If we allowed this, we would have problems with when to
  /* If we allowed this, we would have problems with when to
     free the storage, if we change the commands currently
     free the storage, if we change the commands currently
     being read from.  */
     being read from.  */
 
 
  if (executing_breakpoint_commands)
  if (executing_breakpoint_commands)
    error ("Can't use the \"commands\" command among a breakpoint's commands.");
    error ("Can't use the \"commands\" command among a breakpoint's commands.");
 
 
  p = arg;
  p = arg;
  bnum = get_number (&p);
  bnum = get_number (&p);
 
 
  if (p && *p)
  if (p && *p)
    error ("Unexpected extra arguments following breakpoint number.");
    error ("Unexpected extra arguments following breakpoint number.");
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    if (b->number == bnum)
    if (b->number == bnum)
    {
    {
      char tmpbuf[128];
      char tmpbuf[128];
      sprintf (tmpbuf,
      sprintf (tmpbuf,
               "Type commands for when breakpoint %d is hit, one per line.",
               "Type commands for when breakpoint %d is hit, one per line.",
               bnum);
               bnum);
      l = read_command_lines (tmpbuf, from_tty);
      l = read_command_lines (tmpbuf, from_tty);
      free_command_lines (&b->commands);
      free_command_lines (&b->commands);
      b->commands = l;
      b->commands = l;
      breakpoints_changed ();
      breakpoints_changed ();
      return;
      return;
    }
    }
  error ("No breakpoint number %d.", bnum);
  error ("No breakpoint number %d.", bnum);
}
}


/* Like target_read_memory() but if breakpoints are inserted, return
/* Like target_read_memory() but if breakpoints are inserted, return
   the shadow contents instead of the breakpoints themselves.
   the shadow contents instead of the breakpoints themselves.
 
 
   Read "memory data" from whatever target or inferior we have.
   Read "memory data" from whatever target or inferior we have.
   Returns zero if successful, errno value if not.  EIO is used
   Returns zero if successful, errno value if not.  EIO is used
   for address out of bounds.  If breakpoints are inserted, returns
   for address out of bounds.  If breakpoints are inserted, returns
   shadow contents, not the breakpoints themselves.  From breakpoint.c.  */
   shadow contents, not the breakpoints themselves.  From breakpoint.c.  */
 
 
int
int
read_memory_nobpt (memaddr, myaddr, len)
read_memory_nobpt (memaddr, myaddr, len)
     CORE_ADDR memaddr;
     CORE_ADDR memaddr;
     char *myaddr;
     char *myaddr;
     unsigned len;
     unsigned len;
{
{
  int status;
  int status;
  struct breakpoint *b;
  struct breakpoint *b;
  CORE_ADDR bp_addr = 0;
  CORE_ADDR bp_addr = 0;
  int bp_size = 0;
  int bp_size = 0;
 
 
  if (BREAKPOINT_FROM_PC (&bp_addr, &bp_size) == NULL)
  if (BREAKPOINT_FROM_PC (&bp_addr, &bp_size) == NULL)
    /* No breakpoints on this machine. */
    /* No breakpoints on this machine. */
    return target_read_memory (memaddr, myaddr, len);
    return target_read_memory (memaddr, myaddr, len);
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
  {
  {
    if (b->type == bp_none)
    if (b->type == bp_none)
      warning ("reading through apparently deleted breakpoint #%d?",
      warning ("reading through apparently deleted breakpoint #%d?",
               b->number);
               b->number);
 
 
    /* memory breakpoint? */
    /* memory breakpoint? */
    if (b->type == bp_watchpoint
    if (b->type == bp_watchpoint
        || b->type == bp_hardware_watchpoint
        || b->type == bp_hardware_watchpoint
        || b->type == bp_read_watchpoint
        || b->type == bp_read_watchpoint
        || b->type == bp_access_watchpoint)
        || b->type == bp_access_watchpoint)
      continue;
      continue;
    /* bp in memory? */
    /* bp in memory? */
    if (!b->inserted)
    if (!b->inserted)
      continue;
      continue;
    /* Addresses and length of the part of the breakpoint that
    /* Addresses and length of the part of the breakpoint that
       we need to copy.  */
       we need to copy.  */
    /* XXXX The m68k, sh and h8300 have different local and remote
    /* XXXX The m68k, sh and h8300 have different local and remote
       breakpoint values.  BREAKPOINT_FROM_PC still manages to
       breakpoint values.  BREAKPOINT_FROM_PC still manages to
       correctly determine the breakpoints memory address and size
       correctly determine the breakpoints memory address and size
       for these targets. */
       for these targets. */
    bp_addr = b->address;
    bp_addr = b->address;
    bp_size = 0;
    bp_size = 0;
    if (BREAKPOINT_FROM_PC (&bp_addr, &bp_size) == NULL)
    if (BREAKPOINT_FROM_PC (&bp_addr, &bp_size) == NULL)
      continue;
      continue;
    if (bp_size == 0)
    if (bp_size == 0)
      /* bp isn't valid */
      /* bp isn't valid */
      continue;
      continue;
    if (bp_addr + bp_size <= memaddr)
    if (bp_addr + bp_size <= memaddr)
      /* The breakpoint is entirely before the chunk of memory we
      /* The breakpoint is entirely before the chunk of memory we
         are reading.  */
         are reading.  */
      continue;
      continue;
    if (bp_addr >= memaddr + len)
    if (bp_addr >= memaddr + len)
      /* The breakpoint is entirely after the chunk of memory we are
      /* The breakpoint is entirely after the chunk of memory we are
         reading. */
         reading. */
      continue;
      continue;
    /* Copy the breakpoint from the shadow contents, and recurse for
    /* Copy the breakpoint from the shadow contents, and recurse for
       the things before and after.  */
       the things before and after.  */
    {
    {
      /* Offset within shadow_contents.  */
      /* Offset within shadow_contents.  */
      int bptoffset = 0;
      int bptoffset = 0;
 
 
      if (bp_addr < memaddr)
      if (bp_addr < memaddr)
        {
        {
          /* Only copy the second part of the breakpoint.  */
          /* Only copy the second part of the breakpoint.  */
          bp_size -= memaddr - bp_addr;
          bp_size -= memaddr - bp_addr;
          bptoffset = memaddr - bp_addr;
          bptoffset = memaddr - bp_addr;
          bp_addr = memaddr;
          bp_addr = memaddr;
        }
        }
 
 
      if (bp_addr + bp_size > memaddr + len)
      if (bp_addr + bp_size > memaddr + len)
        {
        {
          /* Only copy the first part of the breakpoint.  */
          /* Only copy the first part of the breakpoint.  */
          bp_size -= (bp_addr + bp_size) - (memaddr + len);
          bp_size -= (bp_addr + bp_size) - (memaddr + len);
        }
        }
 
 
      memcpy (myaddr + bp_addr - memaddr,
      memcpy (myaddr + bp_addr - memaddr,
              b->shadow_contents + bptoffset, bp_size);
              b->shadow_contents + bptoffset, bp_size);
 
 
      if (bp_addr > memaddr)
      if (bp_addr > memaddr)
        {
        {
          /* Copy the section of memory before the breakpoint.  */
          /* Copy the section of memory before the breakpoint.  */
          status = read_memory_nobpt (memaddr, myaddr, bp_addr - memaddr);
          status = read_memory_nobpt (memaddr, myaddr, bp_addr - memaddr);
          if (status != 0)
          if (status != 0)
            return status;
            return status;
        }
        }
 
 
      if (bp_addr + bp_size < memaddr + len)
      if (bp_addr + bp_size < memaddr + len)
        {
        {
          /* Copy the section of memory after the breakpoint.  */
          /* Copy the section of memory after the breakpoint.  */
          status = read_memory_nobpt
          status = read_memory_nobpt
            (bp_addr + bp_size,
            (bp_addr + bp_size,
             myaddr + bp_addr + bp_size - memaddr,
             myaddr + bp_addr + bp_size - memaddr,
             memaddr + len - (bp_addr + bp_size));
             memaddr + len - (bp_addr + bp_size));
          if (status != 0)
          if (status != 0)
            return status;
            return status;
        }
        }
      return 0;
      return 0;
    }
    }
  }
  }
  /* Nothing overlaps.  Just call read_memory_noerr.  */
  /* Nothing overlaps.  Just call read_memory_noerr.  */
  return target_read_memory (memaddr, myaddr, len);
  return target_read_memory (memaddr, myaddr, len);
}
}


 
 
/* insert_breakpoints is used when starting or continuing the program.
/* insert_breakpoints is used when starting or continuing the program.
   remove_breakpoints is used when the program stops.
   remove_breakpoints is used when the program stops.
   Both return zero if successful,
   Both return zero if successful,
   or an `errno' value if could not write the inferior.  */
   or an `errno' value if could not write the inferior.  */
 
 
int
int
insert_breakpoints ()
insert_breakpoints ()
{
{
  register struct breakpoint *b, *temp;
  register struct breakpoint *b, *temp;
  int return_val = 0;    /* return success code. */
  int return_val = 0;    /* return success code. */
  int val = 0;
  int val = 0;
  int disabled_breaks = 0;
  int disabled_breaks = 0;
 
 
  static char message1[] = "Error inserting catchpoint %d:\n";
  static char message1[] = "Error inserting catchpoint %d:\n";
  static char message[sizeof (message1) + 30];
  static char message[sizeof (message1) + 30];
 
 
 
 
  ALL_BREAKPOINTS_SAFE (b, temp)
  ALL_BREAKPOINTS_SAFE (b, temp)
  {
  {
    if (b->enable == permanent)
    if (b->enable == permanent)
      /* Permanent breakpoints cannot be inserted or removed.  */
      /* Permanent breakpoints cannot be inserted or removed.  */
      continue;
      continue;
    else if (b->type != bp_watchpoint
    else if (b->type != bp_watchpoint
        && b->type != bp_hardware_watchpoint
        && b->type != bp_hardware_watchpoint
        && b->type != bp_read_watchpoint
        && b->type != bp_read_watchpoint
        && b->type != bp_access_watchpoint
        && b->type != bp_access_watchpoint
        && b->type != bp_catch_fork
        && b->type != bp_catch_fork
        && b->type != bp_catch_vfork
        && b->type != bp_catch_vfork
        && b->type != bp_catch_exec
        && b->type != bp_catch_exec
        && b->type != bp_catch_throw
        && b->type != bp_catch_throw
        && b->type != bp_catch_catch
        && b->type != bp_catch_catch
        && b->enable != disabled
        && b->enable != disabled
        && b->enable != shlib_disabled
        && b->enable != shlib_disabled
        && b->enable != call_disabled
        && b->enable != call_disabled
        && !b->inserted
        && !b->inserted
        && !b->duplicate)
        && !b->duplicate)
      {
      {
        if (b->type == bp_hardware_breakpoint)
        if (b->type == bp_hardware_breakpoint)
          val = target_insert_hw_breakpoint (b->address, b->shadow_contents);
          val = target_insert_hw_breakpoint (b->address, b->shadow_contents);
        else
        else
          {
          {
            /* Check to see if breakpoint is in an overlay section;
            /* Check to see if breakpoint is in an overlay section;
               if so, we should set the breakpoint at the LMA address.
               if so, we should set the breakpoint at the LMA address.
               Only if the section is currently mapped should we ALSO
               Only if the section is currently mapped should we ALSO
               set a break at the VMA address. */
               set a break at the VMA address. */
            if (overlay_debugging && b->section &&
            if (overlay_debugging && b->section &&
                section_is_overlay (b->section))
                section_is_overlay (b->section))
              {
              {
                CORE_ADDR addr;
                CORE_ADDR addr;
 
 
                addr = overlay_unmapped_address (b->address, b->section);
                addr = overlay_unmapped_address (b->address, b->section);
                val = target_insert_breakpoint (addr, b->shadow_contents);
                val = target_insert_breakpoint (addr, b->shadow_contents);
                /* This would be the time to check val, to see if the
                /* This would be the time to check val, to see if the
                   breakpoint write to the load address succeeded.
                   breakpoint write to the load address succeeded.
                   However, this might be an ordinary occurrance, eg. if
                   However, this might be an ordinary occurrance, eg. if
                   the unmapped overlay is in ROM.  */
                   the unmapped overlay is in ROM.  */
                val = 0; /* in case unmapped address failed */
                val = 0; /* in case unmapped address failed */
                if (section_is_mapped (b->section))
                if (section_is_mapped (b->section))
                  val = target_insert_breakpoint (b->address,
                  val = target_insert_breakpoint (b->address,
                                                  b->shadow_contents);
                                                  b->shadow_contents);
              }
              }
            else                /* ordinary (non-overlay) address */
            else                /* ordinary (non-overlay) address */
              val = target_insert_breakpoint (b->address, b->shadow_contents);
              val = target_insert_breakpoint (b->address, b->shadow_contents);
          }
          }
        if (val)
        if (val)
          {
          {
            /* Can't set the breakpoint.  */
            /* Can't set the breakpoint.  */
#if defined (DISABLE_UNSETTABLE_BREAK)
#if defined (DISABLE_UNSETTABLE_BREAK)
            if (DISABLE_UNSETTABLE_BREAK (b->address))
            if (DISABLE_UNSETTABLE_BREAK (b->address))
              {
              {
                /* See also: disable_breakpoints_in_shlibs. */
                /* See also: disable_breakpoints_in_shlibs. */
                val = 0;
                val = 0;
                b->enable = shlib_disabled;
                b->enable = shlib_disabled;
                if (!disabled_breaks)
                if (!disabled_breaks)
                  {
                  {
                    target_terminal_ours_for_output ();
                    target_terminal_ours_for_output ();
                    warning ("Cannot insert breakpoint %d:", b->number);
                    warning ("Cannot insert breakpoint %d:", b->number);
                    warning ("Temporarily disabling shared library breakpoints:");
                    warning ("Temporarily disabling shared library breakpoints:");
                  }
                  }
                disabled_breaks = 1;
                disabled_breaks = 1;
                warning ("breakpoint #%d ", b->number);
                warning ("breakpoint #%d ", b->number);
              }
              }
            else
            else
#endif
#endif
              {
              {
                target_terminal_ours_for_output ();
                target_terminal_ours_for_output ();
                warning ("Cannot insert breakpoint %d:", b->number);
                warning ("Cannot insert breakpoint %d:", b->number);
#ifdef ONE_PROCESS_WRITETEXT
#ifdef ONE_PROCESS_WRITETEXT
                warning ("The same program may be running in another process.");
                warning ("The same program may be running in another process.");
#endif
#endif
                memory_error (val, b->address);    /* which bombs us out */
                memory_error (val, b->address);    /* which bombs us out */
              }
              }
          }
          }
        else
        else
          b->inserted = 1;
          b->inserted = 1;
 
 
        if (val)
        if (val)
          return_val = val;     /* remember failure */
          return_val = val;     /* remember failure */
      }
      }
    else if (ep_is_exception_catchpoint (b)
    else if (ep_is_exception_catchpoint (b)
             && b->enable != disabled
             && b->enable != disabled
             && b->enable != shlib_disabled
             && b->enable != shlib_disabled
             && b->enable != call_disabled
             && b->enable != call_disabled
             && !b->inserted
             && !b->inserted
             && !b->duplicate)
             && !b->duplicate)
 
 
      {
      {
        /* If we get here, we must have a callback mechanism for exception
        /* If we get here, we must have a callback mechanism for exception
           events -- with g++ style embedded label support, we insert
           events -- with g++ style embedded label support, we insert
           ordinary breakpoints and not catchpoints. */
           ordinary breakpoints and not catchpoints. */
        /* Format possible error message */
        /* Format possible error message */
        sprintf (message, message1, b->number);
        sprintf (message, message1, b->number);
 
 
        val = target_insert_breakpoint (b->address, b->shadow_contents);
        val = target_insert_breakpoint (b->address, b->shadow_contents);
        if (val)
        if (val)
          {
          {
            /* Couldn't set breakpoint for some reason */
            /* Couldn't set breakpoint for some reason */
            target_terminal_ours_for_output ();
            target_terminal_ours_for_output ();
            warning ("Cannot insert catchpoint %d; disabling it.",
            warning ("Cannot insert catchpoint %d; disabling it.",
                     b->number);
                     b->number);
            b->enable = disabled;
            b->enable = disabled;
          }
          }
        else
        else
          {
          {
            /* Bp set, now make sure callbacks are enabled */
            /* Bp set, now make sure callbacks are enabled */
            int val;
            int val;
            args_for_catchpoint_enable args;
            args_for_catchpoint_enable args;
            args.kind = b->type == bp_catch_catch ?
            args.kind = b->type == bp_catch_catch ?
              EX_EVENT_CATCH : EX_EVENT_THROW;
              EX_EVENT_CATCH : EX_EVENT_THROW;
            args.enable = 1;
            args.enable = 1;
            val = catch_errors (cover_target_enable_exception_callback,
            val = catch_errors (cover_target_enable_exception_callback,
                                &args,
                                &args,
                                message, RETURN_MASK_ALL);
                                message, RETURN_MASK_ALL);
            if (val != 0 && val != -1)
            if (val != 0 && val != -1)
              {
              {
                b->inserted = 1;
                b->inserted = 1;
              }
              }
            /* Check if something went wrong; val == 0 can be ignored */
            /* Check if something went wrong; val == 0 can be ignored */
            if (val == -1)
            if (val == -1)
              {
              {
                /* something went wrong */
                /* something went wrong */
                target_terminal_ours_for_output ();
                target_terminal_ours_for_output ();
                warning ("Cannot insert catchpoint %d; disabling it.",
                warning ("Cannot insert catchpoint %d; disabling it.",
                         b->number);
                         b->number);
                b->enable = disabled;
                b->enable = disabled;
              }
              }
          }
          }
 
 
        if (val)
        if (val)
          return_val = val;     /* remember failure */
          return_val = val;     /* remember failure */
      }
      }
 
 
    else if ((b->type == bp_hardware_watchpoint ||
    else if ((b->type == bp_hardware_watchpoint ||
              b->type == bp_read_watchpoint ||
              b->type == bp_read_watchpoint ||
              b->type == bp_access_watchpoint)
              b->type == bp_access_watchpoint)
             && b->enable == enabled
             && b->enable == enabled
             && b->disposition != del_at_next_stop
             && b->disposition != del_at_next_stop
             && !b->inserted
             && !b->inserted
             && !b->duplicate)
             && !b->duplicate)
      {
      {
        struct frame_info *saved_frame;
        struct frame_info *saved_frame;
        int saved_level, within_current_scope;
        int saved_level, within_current_scope;
        value_ptr mark = value_mark ();
        value_ptr mark = value_mark ();
        value_ptr v;
        value_ptr v;
 
 
        /* Save the current frame and level so we can restore it after
        /* Save the current frame and level so we can restore it after
           evaluating the watchpoint expression on its own frame.  */
           evaluating the watchpoint expression on its own frame.  */
        saved_frame = selected_frame;
        saved_frame = selected_frame;
        saved_level = selected_frame_level;
        saved_level = selected_frame_level;
 
 
        /* Determine if the watchpoint is within scope.  */
        /* Determine if the watchpoint is within scope.  */
        if (b->exp_valid_block == NULL)
        if (b->exp_valid_block == NULL)
          within_current_scope = 1;
          within_current_scope = 1;
        else
        else
          {
          {
            struct frame_info *fi;
            struct frame_info *fi;
 
 
            /* There might be no current frame at this moment if we are
            /* There might be no current frame at this moment if we are
               resuming from a step over a breakpoint.
               resuming from a step over a breakpoint.
               Set up current frame before trying to find the watchpoint
               Set up current frame before trying to find the watchpoint
               frame.  */
               frame.  */
            get_current_frame ();
            get_current_frame ();
            fi = find_frame_addr_in_frame_chain (b->watchpoint_frame);
            fi = find_frame_addr_in_frame_chain (b->watchpoint_frame);
            within_current_scope = (fi != NULL);
            within_current_scope = (fi != NULL);
            if (within_current_scope)
            if (within_current_scope)
              select_frame (fi, -1);
              select_frame (fi, -1);
          }
          }
 
 
        if (within_current_scope)
        if (within_current_scope)
          {
          {
            /* Evaluate the expression and cut the chain of values
            /* Evaluate the expression and cut the chain of values
               produced off from the value chain.
               produced off from the value chain.
 
 
               Make sure the value returned isn't lazy; we use
               Make sure the value returned isn't lazy; we use
               laziness to determine what memory GDB actually needed
               laziness to determine what memory GDB actually needed
               in order to compute the value of the expression.  */
               in order to compute the value of the expression.  */
            v = evaluate_expression (b->exp);
            v = evaluate_expression (b->exp);
            VALUE_CONTENTS(v);
            VALUE_CONTENTS(v);
            value_release_to_mark (mark);
            value_release_to_mark (mark);
 
 
            b->val_chain = v;
            b->val_chain = v;
            b->inserted = 1;
            b->inserted = 1;
 
 
            /* Look at each value on the value chain.  */
            /* Look at each value on the value chain.  */
            for (; v; v = v->next)
            for (; v; v = v->next)
              {
              {
                /* If it's a memory location, and GDB actually needed
                /* If it's a memory location, and GDB actually needed
                   its contents to evaluate the expression, then we
                   its contents to evaluate the expression, then we
                   must watch it.  */
                   must watch it.  */
                if (VALUE_LVAL (v) == lval_memory
                if (VALUE_LVAL (v) == lval_memory
                    && ! VALUE_LAZY (v))
                    && ! VALUE_LAZY (v))
                  {
                  {
                    struct type *vtype = check_typedef (VALUE_TYPE (v));
                    struct type *vtype = check_typedef (VALUE_TYPE (v));
 
 
                    /* We only watch structs and arrays if user asked
                    /* We only watch structs and arrays if user asked
                       for it explicitly, never if they just happen to
                       for it explicitly, never if they just happen to
                       appear in the middle of some value chain.  */
                       appear in the middle of some value chain.  */
                    if (v == b->val_chain
                    if (v == b->val_chain
                        || (TYPE_CODE (vtype) != TYPE_CODE_STRUCT
                        || (TYPE_CODE (vtype) != TYPE_CODE_STRUCT
                            && TYPE_CODE (vtype) != TYPE_CODE_ARRAY))
                            && TYPE_CODE (vtype) != TYPE_CODE_ARRAY))
                      {
                      {
                        CORE_ADDR addr;
                        CORE_ADDR addr;
                        int len, type;
                        int len, type;
 
 
                        addr = VALUE_ADDRESS (v) + VALUE_OFFSET (v);
                        addr = VALUE_ADDRESS (v) + VALUE_OFFSET (v);
                        len = TYPE_LENGTH (VALUE_TYPE (v));
                        len = TYPE_LENGTH (VALUE_TYPE (v));
                        type   = hw_write;
                        type   = hw_write;
                        if (b->type == bp_read_watchpoint)
                        if (b->type == bp_read_watchpoint)
                          type = hw_read;
                          type = hw_read;
                        else if (b->type == bp_access_watchpoint)
                        else if (b->type == bp_access_watchpoint)
                          type = hw_access;
                          type = hw_access;
 
 
                        val = target_insert_watchpoint (addr, len, type);
                        val = target_insert_watchpoint (addr, len, type);
                        if (val == -1)
                        if (val == -1)
                          {
                          {
                            /* Don't exit the loop, try to insert
                            /* Don't exit the loop, try to insert
                               every value on the value chain.  That's
                               every value on the value chain.  That's
                               because we will be removing all the
                               because we will be removing all the
                               watches below, and removing a
                               watches below, and removing a
                               watchpoint we didn't insert could have
                               watchpoint we didn't insert could have
                               adverse effects.  */
                               adverse effects.  */
                            b->inserted = 0;
                            b->inserted = 0;
                          }
                          }
                        val = 0;
                        val = 0;
                      }
                      }
                  }
                  }
              }
              }
            /* Failure to insert a watchpoint on any memory value in the
            /* Failure to insert a watchpoint on any memory value in the
               value chain brings us here.  */
               value chain brings us here.  */
            if (!b->inserted)
            if (!b->inserted)
              {
              {
                remove_breakpoint (b, mark_uninserted);
                remove_breakpoint (b, mark_uninserted);
                warning ("Could not insert hardware watchpoint %d.",
                warning ("Could not insert hardware watchpoint %d.",
                         b->number);
                         b->number);
                val = -1;
                val = -1;
              }
              }
          }
          }
        else
        else
          {
          {
            printf_filtered ("Hardware watchpoint %d deleted ", b->number);
            printf_filtered ("Hardware watchpoint %d deleted ", b->number);
            printf_filtered ("because the program has left the block \n");
            printf_filtered ("because the program has left the block \n");
            printf_filtered ("in which its expression is valid.\n");
            printf_filtered ("in which its expression is valid.\n");
            if (b->related_breakpoint)
            if (b->related_breakpoint)
              b->related_breakpoint->disposition = del_at_next_stop;
              b->related_breakpoint->disposition = del_at_next_stop;
            b->disposition = del_at_next_stop;
            b->disposition = del_at_next_stop;
          }
          }
 
 
        /* Restore the frame and level.  */
        /* Restore the frame and level.  */
        if ((saved_frame != selected_frame) ||
        if ((saved_frame != selected_frame) ||
            (saved_level != selected_frame_level))
            (saved_level != selected_frame_level))
          select_frame (saved_frame, saved_level);
          select_frame (saved_frame, saved_level);
 
 
        if (val)
        if (val)
          return_val = val;     /* remember failure */
          return_val = val;     /* remember failure */
      }
      }
    else if ((b->type == bp_catch_fork
    else if ((b->type == bp_catch_fork
              || b->type == bp_catch_vfork
              || b->type == bp_catch_vfork
              || b->type == bp_catch_exec)
              || b->type == bp_catch_exec)
             && b->enable == enabled
             && b->enable == enabled
             && !b->inserted
             && !b->inserted
             && !b->duplicate)
             && !b->duplicate)
      {
      {
        val = -1;
        val = -1;
        switch (b->type)
        switch (b->type)
          {
          {
          case bp_catch_fork:
          case bp_catch_fork:
            val = target_insert_fork_catchpoint (inferior_pid);
            val = target_insert_fork_catchpoint (inferior_pid);
            break;
            break;
          case bp_catch_vfork:
          case bp_catch_vfork:
            val = target_insert_vfork_catchpoint (inferior_pid);
            val = target_insert_vfork_catchpoint (inferior_pid);
            break;
            break;
          case bp_catch_exec:
          case bp_catch_exec:
            val = target_insert_exec_catchpoint (inferior_pid);
            val = target_insert_exec_catchpoint (inferior_pid);
            break;
            break;
          default:
          default:
            warning ("Internal error, %s line %d.", __FILE__, __LINE__);
            warning ("Internal error, %s line %d.", __FILE__, __LINE__);
            break;
            break;
          }
          }
        if (val < 0)
        if (val < 0)
          {
          {
            target_terminal_ours_for_output ();
            target_terminal_ours_for_output ();
            warning ("Cannot insert catchpoint %d.", b->number);
            warning ("Cannot insert catchpoint %d.", b->number);
          }
          }
        else
        else
          b->inserted = 1;
          b->inserted = 1;
 
 
        if (val)
        if (val)
          return_val = val;     /* remember failure */
          return_val = val;     /* remember failure */
      }
      }
  }
  }
 
 
  return return_val;
  return return_val;
}
}
 
 
 
 
int
int
remove_breakpoints ()
remove_breakpoints ()
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
  int val;
  int val;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
  {
  {
    if (b->inserted)
    if (b->inserted)
      {
      {
        val = remove_breakpoint (b, mark_uninserted);
        val = remove_breakpoint (b, mark_uninserted);
        if (val != 0)
        if (val != 0)
          return val;
          return val;
      }
      }
  }
  }
  return 0;
  return 0;
}
}
 
 
int
int
remove_hw_watchpoints (void)
remove_hw_watchpoints (void)
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
  int val;
  int val;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
  {
  {
    if (b->inserted
    if (b->inserted
        && (b->type == bp_hardware_watchpoint
        && (b->type == bp_hardware_watchpoint
            || b->type == bp_read_watchpoint
            || b->type == bp_read_watchpoint
            || b->type == bp_access_watchpoint))
            || b->type == bp_access_watchpoint))
      {
      {
        val = remove_breakpoint (b, mark_uninserted);
        val = remove_breakpoint (b, mark_uninserted);
        if (val != 0)
        if (val != 0)
          return val;
          return val;
      }
      }
  }
  }
  return 0;
  return 0;
}
}
 
 
int
int
reattach_breakpoints (pid)
reattach_breakpoints (pid)
     int pid;
     int pid;
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
  int val;
  int val;
  int saved_inferior_pid = inferior_pid;
  int saved_inferior_pid = inferior_pid;
 
 
  /* FIXME: use a cleanup, to insure that inferior_pid gets replaced! */
  /* FIXME: use a cleanup, to insure that inferior_pid gets replaced! */
  inferior_pid = pid;   /* Because remove_breakpoint will use this global. */
  inferior_pid = pid;   /* Because remove_breakpoint will use this global. */
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
  {
  {
    if (b->inserted)
    if (b->inserted)
      {
      {
        remove_breakpoint (b, mark_inserted);
        remove_breakpoint (b, mark_inserted);
        if (b->type == bp_hardware_breakpoint)
        if (b->type == bp_hardware_breakpoint)
          val = target_insert_hw_breakpoint (b->address, b->shadow_contents);
          val = target_insert_hw_breakpoint (b->address, b->shadow_contents);
        else
        else
          val = target_insert_breakpoint (b->address, b->shadow_contents);
          val = target_insert_breakpoint (b->address, b->shadow_contents);
        if (val != 0)
        if (val != 0)
          {
          {
            inferior_pid = saved_inferior_pid;
            inferior_pid = saved_inferior_pid;
            return val;
            return val;
          }
          }
      }
      }
  }
  }
  inferior_pid = saved_inferior_pid;
  inferior_pid = saved_inferior_pid;
  return 0;
  return 0;
}
}
 
 
void
void
update_breakpoints_after_exec ()
update_breakpoints_after_exec ()
{
{
  struct breakpoint *b;
  struct breakpoint *b;
  struct breakpoint *temp;
  struct breakpoint *temp;
 
 
  /* Doing this first prevents the badness of having delete_breakpoint()
  /* Doing this first prevents the badness of having delete_breakpoint()
     write a breakpoint's current "shadow contents" to lift the bp.  That
     write a breakpoint's current "shadow contents" to lift the bp.  That
     shadow is NOT valid after an exec()! */
     shadow is NOT valid after an exec()! */
  mark_breakpoints_out ();
  mark_breakpoints_out ();
 
 
  ALL_BREAKPOINTS_SAFE (b, temp)
  ALL_BREAKPOINTS_SAFE (b, temp)
  {
  {
    /* Solib breakpoints must be explicitly reset after an exec(). */
    /* Solib breakpoints must be explicitly reset after an exec(). */
    if (b->type == bp_shlib_event)
    if (b->type == bp_shlib_event)
      {
      {
        delete_breakpoint (b);
        delete_breakpoint (b);
        continue;
        continue;
      }
      }
 
 
    /* Thread event breakpoints must be set anew after an exec().  */
    /* Thread event breakpoints must be set anew after an exec().  */
    if (b->type == bp_thread_event)
    if (b->type == bp_thread_event)
      {
      {
        delete_breakpoint (b);
        delete_breakpoint (b);
        continue;
        continue;
      }
      }
 
 
    /* Step-resume breakpoints are meaningless after an exec(). */
    /* Step-resume breakpoints are meaningless after an exec(). */
    if (b->type == bp_step_resume)
    if (b->type == bp_step_resume)
      {
      {
        delete_breakpoint (b);
        delete_breakpoint (b);
        continue;
        continue;
      }
      }
 
 
    /* Ditto the sigtramp handler breakpoints. */
    /* Ditto the sigtramp handler breakpoints. */
    if (b->type == bp_through_sigtramp)
    if (b->type == bp_through_sigtramp)
      {
      {
        delete_breakpoint (b);
        delete_breakpoint (b);
        continue;
        continue;
      }
      }
 
 
    /* Ditto the exception-handling catchpoints. */
    /* Ditto the exception-handling catchpoints. */
    if ((b->type == bp_catch_catch) || (b->type == bp_catch_throw))
    if ((b->type == bp_catch_catch) || (b->type == bp_catch_throw))
      {
      {
        delete_breakpoint (b);
        delete_breakpoint (b);
        continue;
        continue;
      }
      }
 
 
    /* Don't delete an exec catchpoint, because else the inferior
    /* Don't delete an exec catchpoint, because else the inferior
       won't stop when it ought!
       won't stop when it ought!
 
 
       Similarly, we probably ought to keep vfork catchpoints, 'cause
       Similarly, we probably ought to keep vfork catchpoints, 'cause
       on this target, we may not be able to stop when the vfork is
       on this target, we may not be able to stop when the vfork is
       seen, but only when the subsequent exec is seen.  (And because
       seen, but only when the subsequent exec is seen.  (And because
       deleting fork catchpoints here but not vfork catchpoints will
       deleting fork catchpoints here but not vfork catchpoints will
       seem mysterious to users, keep those too.)
       seem mysterious to users, keep those too.)
 
 
       ??rehrauer: Let's hope that merely clearing out this catchpoint's
       ??rehrauer: Let's hope that merely clearing out this catchpoint's
       target address field, if any, is sufficient to have it be reset
       target address field, if any, is sufficient to have it be reset
       automagically.  Certainly on HP-UX that's true. */
       automagically.  Certainly on HP-UX that's true. */
    if ((b->type == bp_catch_exec) ||
    if ((b->type == bp_catch_exec) ||
        (b->type == bp_catch_vfork) ||
        (b->type == bp_catch_vfork) ||
        (b->type == bp_catch_fork))
        (b->type == bp_catch_fork))
      {
      {
        b->address = (CORE_ADDR) NULL;
        b->address = (CORE_ADDR) NULL;
        continue;
        continue;
      }
      }
 
 
    /* bp_finish is a special case.  The only way we ought to be able
    /* bp_finish is a special case.  The only way we ought to be able
       to see one of these when an exec() has happened, is if the user
       to see one of these when an exec() has happened, is if the user
       caught a vfork, and then said "finish".  Ordinarily a finish just
       caught a vfork, and then said "finish".  Ordinarily a finish just
       carries them to the call-site of the current callee, by setting
       carries them to the call-site of the current callee, by setting
       a temporary bp there and resuming.  But in this case, the finish
       a temporary bp there and resuming.  But in this case, the finish
       will carry them entirely through the vfork & exec.
       will carry them entirely through the vfork & exec.
 
 
       We don't want to allow a bp_finish to remain inserted now.  But
       We don't want to allow a bp_finish to remain inserted now.  But
       we can't safely delete it, 'cause finish_command has a handle to
       we can't safely delete it, 'cause finish_command has a handle to
       the bp on a bpstat, and will later want to delete it.  There's a
       the bp on a bpstat, and will later want to delete it.  There's a
       chance (and I've seen it happen) that if we delete the bp_finish
       chance (and I've seen it happen) that if we delete the bp_finish
       here, that its storage will get reused by the time finish_command
       here, that its storage will get reused by the time finish_command
       gets 'round to deleting the "use to be a bp_finish" breakpoint.
       gets 'round to deleting the "use to be a bp_finish" breakpoint.
       We really must allow finish_command to delete a bp_finish.
       We really must allow finish_command to delete a bp_finish.
 
 
       In the absense of a general solution for the "how do we know
       In the absense of a general solution for the "how do we know
       it's safe to delete something others may have handles to?"
       it's safe to delete something others may have handles to?"
       problem, what we'll do here is just uninsert the bp_finish, and
       problem, what we'll do here is just uninsert the bp_finish, and
       let finish_command delete it.
       let finish_command delete it.
 
 
       (We know the bp_finish is "doomed" in the sense that it's
       (We know the bp_finish is "doomed" in the sense that it's
       momentary, and will be deleted as soon as finish_command sees
       momentary, and will be deleted as soon as finish_command sees
       the inferior stopped.  So it doesn't matter that the bp's
       the inferior stopped.  So it doesn't matter that the bp's
       address is probably bogus in the new a.out, unlike e.g., the
       address is probably bogus in the new a.out, unlike e.g., the
       solib breakpoints.)  */
       solib breakpoints.)  */
 
 
    if (b->type == bp_finish)
    if (b->type == bp_finish)
      {
      {
        continue;
        continue;
      }
      }
 
 
    /* Without a symbolic address, we have little hope of the
    /* Without a symbolic address, we have little hope of the
       pre-exec() address meaning the same thing in the post-exec()
       pre-exec() address meaning the same thing in the post-exec()
       a.out. */
       a.out. */
    if (b->addr_string == NULL)
    if (b->addr_string == NULL)
      {
      {
        delete_breakpoint (b);
        delete_breakpoint (b);
        continue;
        continue;
      }
      }
 
 
    /* If this breakpoint has survived the above battery of checks, then
    /* If this breakpoint has survived the above battery of checks, then
       it must have a symbolic address.  Be sure that it gets reevaluated
       it must have a symbolic address.  Be sure that it gets reevaluated
       to a target address, rather than reusing the old evaluation.  */
       to a target address, rather than reusing the old evaluation.  */
    b->address = (CORE_ADDR) NULL;
    b->address = (CORE_ADDR) NULL;
  }
  }
}
}
 
 
int
int
detach_breakpoints (pid)
detach_breakpoints (pid)
     int pid;
     int pid;
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
  int val;
  int val;
  int saved_inferior_pid = inferior_pid;
  int saved_inferior_pid = inferior_pid;
 
 
  if (pid == inferior_pid)
  if (pid == inferior_pid)
    error ("Cannot detach breakpoints of inferior_pid");
    error ("Cannot detach breakpoints of inferior_pid");
 
 
  /* FIXME: use a cleanup, to insure that inferior_pid gets replaced! */
  /* FIXME: use a cleanup, to insure that inferior_pid gets replaced! */
  inferior_pid = pid;   /* Because remove_breakpoint will use this global. */
  inferior_pid = pid;   /* Because remove_breakpoint will use this global. */
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
  {
  {
    if (b->inserted)
    if (b->inserted)
      {
      {
        val = remove_breakpoint (b, mark_inserted);
        val = remove_breakpoint (b, mark_inserted);
        if (val != 0)
        if (val != 0)
          {
          {
            inferior_pid = saved_inferior_pid;
            inferior_pid = saved_inferior_pid;
            return val;
            return val;
          }
          }
      }
      }
  }
  }
  inferior_pid = saved_inferior_pid;
  inferior_pid = saved_inferior_pid;
  return 0;
  return 0;
}
}
 
 
static int
static int
remove_breakpoint (b, is)
remove_breakpoint (b, is)
     struct breakpoint *b;
     struct breakpoint *b;
     insertion_state_t is;
     insertion_state_t is;
{
{
  int val;
  int val;
 
 
  if (b->enable == permanent)
  if (b->enable == permanent)
    /* Permanent breakpoints cannot be inserted or removed.  */
    /* Permanent breakpoints cannot be inserted or removed.  */
    return 0;
    return 0;
 
 
  if (b->type == bp_none)
  if (b->type == bp_none)
    warning ("attempted to remove apparently deleted breakpoint #%d?",
    warning ("attempted to remove apparently deleted breakpoint #%d?",
             b->number);
             b->number);
 
 
  if (b->type != bp_watchpoint
  if (b->type != bp_watchpoint
      && b->type != bp_hardware_watchpoint
      && b->type != bp_hardware_watchpoint
      && b->type != bp_read_watchpoint
      && b->type != bp_read_watchpoint
      && b->type != bp_access_watchpoint
      && b->type != bp_access_watchpoint
      && b->type != bp_catch_fork
      && b->type != bp_catch_fork
      && b->type != bp_catch_vfork
      && b->type != bp_catch_vfork
      && b->type != bp_catch_exec
      && b->type != bp_catch_exec
      && b->type != bp_catch_catch
      && b->type != bp_catch_catch
      && b->type != bp_catch_throw)
      && b->type != bp_catch_throw)
    {
    {
      if (b->type == bp_hardware_breakpoint)
      if (b->type == bp_hardware_breakpoint)
        val = target_remove_hw_breakpoint (b->address, b->shadow_contents);
        val = target_remove_hw_breakpoint (b->address, b->shadow_contents);
      else
      else
        {
        {
          /* Check to see if breakpoint is in an overlay section;
          /* Check to see if breakpoint is in an overlay section;
             if so, we should remove the breakpoint at the LMA address.
             if so, we should remove the breakpoint at the LMA address.
             If that is not equal to the raw address, then we should
             If that is not equal to the raw address, then we should
             presumable remove the breakpoint there as well.  */
             presumable remove the breakpoint there as well.  */
          if (overlay_debugging && b->section &&
          if (overlay_debugging && b->section &&
              section_is_overlay (b->section))
              section_is_overlay (b->section))
            {
            {
              CORE_ADDR addr;
              CORE_ADDR addr;
 
 
              addr = overlay_unmapped_address (b->address, b->section);
              addr = overlay_unmapped_address (b->address, b->section);
              val = target_remove_breakpoint (addr, b->shadow_contents);
              val = target_remove_breakpoint (addr, b->shadow_contents);
              /* This would be the time to check val, to see if the
              /* This would be the time to check val, to see if the
                 shadow breakpoint write to the load address succeeded.
                 shadow breakpoint write to the load address succeeded.
                 However, this might be an ordinary occurrance, eg. if
                 However, this might be an ordinary occurrance, eg. if
                 the unmapped overlay is in ROM.  */
                 the unmapped overlay is in ROM.  */
              val = 0;           /* in case unmapped address failed */
              val = 0;           /* in case unmapped address failed */
              if (section_is_mapped (b->section))
              if (section_is_mapped (b->section))
                val = target_remove_breakpoint (b->address,
                val = target_remove_breakpoint (b->address,
                                                b->shadow_contents);
                                                b->shadow_contents);
            }
            }
          else                  /* ordinary (non-overlay) address */
          else                  /* ordinary (non-overlay) address */
            val = target_remove_breakpoint (b->address, b->shadow_contents);
            val = target_remove_breakpoint (b->address, b->shadow_contents);
        }
        }
      if (val)
      if (val)
        return val;
        return val;
      b->inserted = (is == mark_inserted);
      b->inserted = (is == mark_inserted);
    }
    }
  else if ((b->type == bp_hardware_watchpoint ||
  else if ((b->type == bp_hardware_watchpoint ||
            b->type == bp_read_watchpoint ||
            b->type == bp_read_watchpoint ||
            b->type == bp_access_watchpoint)
            b->type == bp_access_watchpoint)
           && b->enable == enabled
           && b->enable == enabled
           && !b->duplicate)
           && !b->duplicate)
    {
    {
      value_ptr v, n;
      value_ptr v, n;
 
 
      b->inserted = (is == mark_inserted);
      b->inserted = (is == mark_inserted);
      /* Walk down the saved value chain.  */
      /* Walk down the saved value chain.  */
      for (v = b->val_chain; v; v = v->next)
      for (v = b->val_chain; v; v = v->next)
        {
        {
          /* For each memory reference remove the watchpoint
          /* For each memory reference remove the watchpoint
             at that address.  */
             at that address.  */
          if (VALUE_LVAL (v) == lval_memory
          if (VALUE_LVAL (v) == lval_memory
              && ! VALUE_LAZY (v))
              && ! VALUE_LAZY (v))
            {
            {
              struct type *vtype = check_typedef (VALUE_TYPE (v));
              struct type *vtype = check_typedef (VALUE_TYPE (v));
 
 
              if (v == b->val_chain
              if (v == b->val_chain
                  || (TYPE_CODE (vtype) != TYPE_CODE_STRUCT
                  || (TYPE_CODE (vtype) != TYPE_CODE_STRUCT
                      && TYPE_CODE (vtype) != TYPE_CODE_ARRAY))
                      && TYPE_CODE (vtype) != TYPE_CODE_ARRAY))
                {
                {
                  CORE_ADDR addr;
                  CORE_ADDR addr;
                  int len, type;
                  int len, type;
 
 
                  addr = VALUE_ADDRESS (v) + VALUE_OFFSET (v);
                  addr = VALUE_ADDRESS (v) + VALUE_OFFSET (v);
                  len = TYPE_LENGTH (VALUE_TYPE (v));
                  len = TYPE_LENGTH (VALUE_TYPE (v));
                  type   = hw_write;
                  type   = hw_write;
                  if (b->type == bp_read_watchpoint)
                  if (b->type == bp_read_watchpoint)
                    type = hw_read;
                    type = hw_read;
                  else if (b->type == bp_access_watchpoint)
                  else if (b->type == bp_access_watchpoint)
                    type = hw_access;
                    type = hw_access;
 
 
                  val = target_remove_watchpoint (addr, len, type);
                  val = target_remove_watchpoint (addr, len, type);
                  if (val == -1)
                  if (val == -1)
                    b->inserted = 1;
                    b->inserted = 1;
                  val = 0;
                  val = 0;
                }
                }
            }
            }
        }
        }
      /* Failure to remove any of the hardware watchpoints comes here.  */
      /* Failure to remove any of the hardware watchpoints comes here.  */
      if ((is == mark_uninserted) && (b->inserted))
      if ((is == mark_uninserted) && (b->inserted))
        warning ("Could not remove hardware watchpoint %d.",
        warning ("Could not remove hardware watchpoint %d.",
                 b->number);
                 b->number);
 
 
      /* Free the saved value chain.  We will construct a new one
      /* Free the saved value chain.  We will construct a new one
         the next time the watchpoint is inserted.  */
         the next time the watchpoint is inserted.  */
      for (v = b->val_chain; v; v = n)
      for (v = b->val_chain; v; v = n)
        {
        {
          n = v->next;
          n = v->next;
          value_free (v);
          value_free (v);
        }
        }
      b->val_chain = NULL;
      b->val_chain = NULL;
    }
    }
  else if ((b->type == bp_catch_fork ||
  else if ((b->type == bp_catch_fork ||
            b->type == bp_catch_vfork ||
            b->type == bp_catch_vfork ||
            b->type == bp_catch_exec)
            b->type == bp_catch_exec)
           && b->enable == enabled
           && b->enable == enabled
           && !b->duplicate)
           && !b->duplicate)
    {
    {
      val = -1;
      val = -1;
      switch (b->type)
      switch (b->type)
        {
        {
        case bp_catch_fork:
        case bp_catch_fork:
          val = target_remove_fork_catchpoint (inferior_pid);
          val = target_remove_fork_catchpoint (inferior_pid);
          break;
          break;
        case bp_catch_vfork:
        case bp_catch_vfork:
          val = target_remove_vfork_catchpoint (inferior_pid);
          val = target_remove_vfork_catchpoint (inferior_pid);
          break;
          break;
        case bp_catch_exec:
        case bp_catch_exec:
          val = target_remove_exec_catchpoint (inferior_pid);
          val = target_remove_exec_catchpoint (inferior_pid);
          break;
          break;
        default:
        default:
          warning ("Internal error, %s line %d.", __FILE__, __LINE__);
          warning ("Internal error, %s line %d.", __FILE__, __LINE__);
          break;
          break;
        }
        }
      if (val)
      if (val)
        return val;
        return val;
      b->inserted = (is == mark_inserted);
      b->inserted = (is == mark_inserted);
    }
    }
  else if ((b->type == bp_catch_catch ||
  else if ((b->type == bp_catch_catch ||
            b->type == bp_catch_throw)
            b->type == bp_catch_throw)
           && b->enable == enabled
           && b->enable == enabled
           && !b->duplicate)
           && !b->duplicate)
    {
    {
 
 
      val = target_remove_breakpoint (b->address, b->shadow_contents);
      val = target_remove_breakpoint (b->address, b->shadow_contents);
      if (val)
      if (val)
        return val;
        return val;
      b->inserted = (is == mark_inserted);
      b->inserted = (is == mark_inserted);
    }
    }
  else if (ep_is_exception_catchpoint (b)
  else if (ep_is_exception_catchpoint (b)
           && b->inserted       /* sometimes previous insert doesn't happen */
           && b->inserted       /* sometimes previous insert doesn't happen */
           && b->enable == enabled
           && b->enable == enabled
           && !b->duplicate)
           && !b->duplicate)
    {
    {
 
 
      val = target_remove_breakpoint (b->address, b->shadow_contents);
      val = target_remove_breakpoint (b->address, b->shadow_contents);
      if (val)
      if (val)
        return val;
        return val;
 
 
      b->inserted = (is == mark_inserted);
      b->inserted = (is == mark_inserted);
    }
    }
 
 
  return 0;
  return 0;
}
}
 
 
/* Clear the "inserted" flag in all breakpoints.  */
/* Clear the "inserted" flag in all breakpoints.  */
 
 
void
void
mark_breakpoints_out ()
mark_breakpoints_out ()
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    b->inserted = 0;
    b->inserted = 0;
}
}
 
 
/* Clear the "inserted" flag in all breakpoints and delete any
/* Clear the "inserted" flag in all breakpoints and delete any
   breakpoints which should go away between runs of the program.
   breakpoints which should go away between runs of the program.
 
 
   Plus other such housekeeping that has to be done for breakpoints
   Plus other such housekeeping that has to be done for breakpoints
   between runs.
   between runs.
 
 
   Note: this function gets called at the end of a run (by
   Note: this function gets called at the end of a run (by
   generic_mourn_inferior) and when a run begins (by
   generic_mourn_inferior) and when a run begins (by
   init_wait_for_inferior). */
   init_wait_for_inferior). */
 
 
 
 
 
 
void
void
breakpoint_init_inferior (context)
breakpoint_init_inferior (context)
     enum inf_context context;
     enum inf_context context;
{
{
  register struct breakpoint *b, *temp;
  register struct breakpoint *b, *temp;
  static int warning_needed = 0;
  static int warning_needed = 0;
 
 
  ALL_BREAKPOINTS_SAFE (b, temp)
  ALL_BREAKPOINTS_SAFE (b, temp)
  {
  {
    b->inserted = 0;
    b->inserted = 0;
 
 
    switch (b->type)
    switch (b->type)
      {
      {
      case bp_call_dummy:
      case bp_call_dummy:
      case bp_watchpoint_scope:
      case bp_watchpoint_scope:
 
 
        /* If the call dummy breakpoint is at the entry point it will
        /* If the call dummy breakpoint is at the entry point it will
           cause problems when the inferior is rerun, so we better
           cause problems when the inferior is rerun, so we better
           get rid of it.
           get rid of it.
 
 
           Also get rid of scope breakpoints.  */
           Also get rid of scope breakpoints.  */
        delete_breakpoint (b);
        delete_breakpoint (b);
        break;
        break;
 
 
      case bp_watchpoint:
      case bp_watchpoint:
      case bp_hardware_watchpoint:
      case bp_hardware_watchpoint:
      case bp_read_watchpoint:
      case bp_read_watchpoint:
      case bp_access_watchpoint:
      case bp_access_watchpoint:
 
 
        /* Likewise for watchpoints on local expressions.  */
        /* Likewise for watchpoints on local expressions.  */
        if (b->exp_valid_block != NULL)
        if (b->exp_valid_block != NULL)
          delete_breakpoint (b);
          delete_breakpoint (b);
        break;
        break;
      default:
      default:
        /* Likewise for exception catchpoints in dynamic-linked
        /* Likewise for exception catchpoints in dynamic-linked
           executables where required */
           executables where required */
        if (ep_is_exception_catchpoint (b) &&
        if (ep_is_exception_catchpoint (b) &&
            exception_catchpoints_are_fragile)
            exception_catchpoints_are_fragile)
          {
          {
            warning_needed = 1;
            warning_needed = 1;
            delete_breakpoint (b);
            delete_breakpoint (b);
          }
          }
        break;
        break;
      }
      }
  }
  }
 
 
  if (exception_catchpoints_are_fragile)
  if (exception_catchpoints_are_fragile)
    exception_support_initialized = 0;
    exception_support_initialized = 0;
 
 
  /* Don't issue the warning unless it's really needed... */
  /* Don't issue the warning unless it's really needed... */
  if (warning_needed && (context != inf_exited))
  if (warning_needed && (context != inf_exited))
    {
    {
      warning ("Exception catchpoints from last run were deleted.");
      warning ("Exception catchpoints from last run were deleted.");
      warning ("You must reinsert them explicitly.");
      warning ("You must reinsert them explicitly.");
      warning_needed = 0;
      warning_needed = 0;
    }
    }
}
}
 
 
/* breakpoint_here_p (PC) returns non-zero if an enabled breakpoint
/* breakpoint_here_p (PC) returns non-zero if an enabled breakpoint
   exists at PC.  It returns ordinary_breakpoint_here if it's an
   exists at PC.  It returns ordinary_breakpoint_here if it's an
   ordinary breakpoint, or permanent_breakpoint_here if it's a
   ordinary breakpoint, or permanent_breakpoint_here if it's a
   permanent breakpoint.
   permanent breakpoint.
   - When continuing from a location with an ordinary breakpoint, we
   - When continuing from a location with an ordinary breakpoint, we
     actually single step once before calling insert_breakpoints.
     actually single step once before calling insert_breakpoints.
   - When continuing from a localion with a permanent breakpoint, we
   - When continuing from a localion with a permanent breakpoint, we
     need to use the `SKIP_PERMANENT_BREAKPOINT' macro, provided by
     need to use the `SKIP_PERMANENT_BREAKPOINT' macro, provided by
     the target, to advance the PC past the breakpoint.  */
     the target, to advance the PC past the breakpoint.  */
 
 
enum breakpoint_here
enum breakpoint_here
breakpoint_here_p (pc)
breakpoint_here_p (pc)
     CORE_ADDR pc;
     CORE_ADDR pc;
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
  int any_breakpoint_here = 0;
  int any_breakpoint_here = 0;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    if ((b->enable == enabled
    if ((b->enable == enabled
         || b->enable == permanent)
         || b->enable == permanent)
        && b->address == pc)    /* bp is enabled and matches pc */
        && b->address == pc)    /* bp is enabled and matches pc */
      {
      {
        if (overlay_debugging &&
        if (overlay_debugging &&
            section_is_overlay (b->section) &&
            section_is_overlay (b->section) &&
            !section_is_mapped (b->section))
            !section_is_mapped (b->section))
          continue;             /* unmapped overlay -- can't be a match */
          continue;             /* unmapped overlay -- can't be a match */
        else if (b->enable == permanent)
        else if (b->enable == permanent)
          return permanent_breakpoint_here;
          return permanent_breakpoint_here;
        else
        else
          any_breakpoint_here = 1;
          any_breakpoint_here = 1;
      }
      }
 
 
  return any_breakpoint_here ? ordinary_breakpoint_here : 0;
  return any_breakpoint_here ? ordinary_breakpoint_here : 0;
}
}
 
 
 
 
/* breakpoint_inserted_here_p (PC) is just like breakpoint_here_p(),
/* breakpoint_inserted_here_p (PC) is just like breakpoint_here_p(),
   but it only returns true if there is actually a breakpoint inserted
   but it only returns true if there is actually a breakpoint inserted
   at PC.  */
   at PC.  */
 
 
int
int
breakpoint_inserted_here_p (pc)
breakpoint_inserted_here_p (pc)
     CORE_ADDR pc;
     CORE_ADDR pc;
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    if (b->inserted
    if (b->inserted
        && b->address == pc)    /* bp is inserted and matches pc */
        && b->address == pc)    /* bp is inserted and matches pc */
    {
    {
      if (overlay_debugging &&
      if (overlay_debugging &&
          section_is_overlay (b->section) &&
          section_is_overlay (b->section) &&
          !section_is_mapped (b->section))
          !section_is_mapped (b->section))
        continue;               /* unmapped overlay -- can't be a match */
        continue;               /* unmapped overlay -- can't be a match */
      else
      else
        return 1;
        return 1;
    }
    }
 
 
  return 0;
  return 0;
}
}
 
 
/* Return nonzero if FRAME is a dummy frame.  We can't use
/* Return nonzero if FRAME is a dummy frame.  We can't use
   PC_IN_CALL_DUMMY because figuring out the saved SP would take too
   PC_IN_CALL_DUMMY because figuring out the saved SP would take too
   much time, at least using get_saved_register on the 68k.  This
   much time, at least using get_saved_register on the 68k.  This
   means that for this function to work right a port must use the
   means that for this function to work right a port must use the
   bp_call_dummy breakpoint.  */
   bp_call_dummy breakpoint.  */
 
 
int
int
frame_in_dummy (frame)
frame_in_dummy (frame)
     struct frame_info *frame;
     struct frame_info *frame;
{
{
  struct breakpoint *b;
  struct breakpoint *b;
 
 
  if (!CALL_DUMMY_P)
  if (!CALL_DUMMY_P)
    return 0;
    return 0;
 
 
  if (USE_GENERIC_DUMMY_FRAMES)
  if (USE_GENERIC_DUMMY_FRAMES)
    return generic_pc_in_call_dummy (frame->pc, frame->frame, frame->frame);
    return generic_pc_in_call_dummy (frame->pc, frame->frame, frame->frame);
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
  {
  {
    if (b->type == bp_call_dummy
    if (b->type == bp_call_dummy
        && b->frame == frame->frame
        && b->frame == frame->frame
    /* We need to check the PC as well as the frame on the sparc,
    /* We need to check the PC as well as the frame on the sparc,
       for signals.exp in the testsuite.  */
       for signals.exp in the testsuite.  */
        && (frame->pc
        && (frame->pc
            >= (b->address
            >= (b->address
              - SIZEOF_CALL_DUMMY_WORDS / sizeof (LONGEST) * REGISTER_SIZE))
              - SIZEOF_CALL_DUMMY_WORDS / sizeof (LONGEST) * REGISTER_SIZE))
        && frame->pc <= b->address)
        && frame->pc <= b->address)
      return 1;
      return 1;
  }
  }
  return 0;
  return 0;
}
}
 
 
/* breakpoint_match_thread (PC, PID) returns true if the breakpoint at PC
/* breakpoint_match_thread (PC, PID) returns true if the breakpoint at PC
   is valid for process/thread PID.  */
   is valid for process/thread PID.  */
 
 
int
int
breakpoint_thread_match (pc, pid)
breakpoint_thread_match (pc, pid)
     CORE_ADDR pc;
     CORE_ADDR pc;
     int pid;
     int pid;
{
{
  struct breakpoint *b;
  struct breakpoint *b;
  int thread;
  int thread;
 
 
  thread = pid_to_thread_id (pid);
  thread = pid_to_thread_id (pid);
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    if (b->enable != disabled
    if (b->enable != disabled
        && b->enable != shlib_disabled
        && b->enable != shlib_disabled
        && b->enable != call_disabled
        && b->enable != call_disabled
        && b->address == pc
        && b->address == pc
        && (b->thread == -1 || b->thread == thread))
        && (b->thread == -1 || b->thread == thread))
    {
    {
      if (overlay_debugging &&
      if (overlay_debugging &&
          section_is_overlay (b->section) &&
          section_is_overlay (b->section) &&
          !section_is_mapped (b->section))
          !section_is_mapped (b->section))
        continue;               /* unmapped overlay -- can't be a match */
        continue;               /* unmapped overlay -- can't be a match */
      else
      else
        return 1;
        return 1;
    }
    }
 
 
  return 0;
  return 0;
}
}


 
 
/* bpstat stuff.  External routines' interfaces are documented
/* bpstat stuff.  External routines' interfaces are documented
   in breakpoint.h.  */
   in breakpoint.h.  */
 
 
int
int
ep_is_catchpoint (ep)
ep_is_catchpoint (ep)
     struct breakpoint *ep;
     struct breakpoint *ep;
{
{
  return
  return
    (ep->type == bp_catch_load)
    (ep->type == bp_catch_load)
    || (ep->type == bp_catch_unload)
    || (ep->type == bp_catch_unload)
    || (ep->type == bp_catch_fork)
    || (ep->type == bp_catch_fork)
    || (ep->type == bp_catch_vfork)
    || (ep->type == bp_catch_vfork)
    || (ep->type == bp_catch_exec)
    || (ep->type == bp_catch_exec)
    || (ep->type == bp_catch_catch)
    || (ep->type == bp_catch_catch)
    || (ep->type == bp_catch_throw)
    || (ep->type == bp_catch_throw)
 
 
 
 
  /* ??rehrauer: Add more kinds here, as are implemented... */
  /* ??rehrauer: Add more kinds here, as are implemented... */
    ;
    ;
}
}
 
 
int
int
ep_is_shlib_catchpoint (ep)
ep_is_shlib_catchpoint (ep)
     struct breakpoint *ep;
     struct breakpoint *ep;
{
{
  return
  return
    (ep->type == bp_catch_load)
    (ep->type == bp_catch_load)
    || (ep->type == bp_catch_unload)
    || (ep->type == bp_catch_unload)
    ;
    ;
}
}
 
 
int
int
ep_is_exception_catchpoint (ep)
ep_is_exception_catchpoint (ep)
     struct breakpoint *ep;
     struct breakpoint *ep;
{
{
  return
  return
    (ep->type == bp_catch_catch)
    (ep->type == bp_catch_catch)
    || (ep->type == bp_catch_throw)
    || (ep->type == bp_catch_throw)
    ;
    ;
}
}
 
 
/* Clear a bpstat so that it says we are not at any breakpoint.
/* Clear a bpstat so that it says we are not at any breakpoint.
   Also free any storage that is part of a bpstat.  */
   Also free any storage that is part of a bpstat.  */
 
 
void
void
bpstat_clear (bsp)
bpstat_clear (bsp)
     bpstat *bsp;
     bpstat *bsp;
{
{
  bpstat p;
  bpstat p;
  bpstat q;
  bpstat q;
 
 
  if (bsp == 0)
  if (bsp == 0)
    return;
    return;
  p = *bsp;
  p = *bsp;
  while (p != NULL)
  while (p != NULL)
    {
    {
      q = p->next;
      q = p->next;
      if (p->old_val != NULL)
      if (p->old_val != NULL)
        value_free (p->old_val);
        value_free (p->old_val);
      free ((PTR) p);
      free ((PTR) p);
      p = q;
      p = q;
    }
    }
  *bsp = NULL;
  *bsp = NULL;
}
}
 
 
/* Return a copy of a bpstat.  Like "bs1 = bs2" but all storage that
/* Return a copy of a bpstat.  Like "bs1 = bs2" but all storage that
   is part of the bpstat is copied as well.  */
   is part of the bpstat is copied as well.  */
 
 
bpstat
bpstat
bpstat_copy (bs)
bpstat_copy (bs)
     bpstat bs;
     bpstat bs;
{
{
  bpstat p = NULL;
  bpstat p = NULL;
  bpstat tmp;
  bpstat tmp;
  bpstat retval = NULL;
  bpstat retval = NULL;
 
 
  if (bs == NULL)
  if (bs == NULL)
    return bs;
    return bs;
 
 
  for (; bs != NULL; bs = bs->next)
  for (; bs != NULL; bs = bs->next)
    {
    {
      tmp = (bpstat) xmalloc (sizeof (*tmp));
      tmp = (bpstat) xmalloc (sizeof (*tmp));
      memcpy (tmp, bs, sizeof (*tmp));
      memcpy (tmp, bs, sizeof (*tmp));
      if (p == NULL)
      if (p == NULL)
        /* This is the first thing in the chain.  */
        /* This is the first thing in the chain.  */
        retval = tmp;
        retval = tmp;
      else
      else
        p->next = tmp;
        p->next = tmp;
      p = tmp;
      p = tmp;
    }
    }
  p->next = NULL;
  p->next = NULL;
  return retval;
  return retval;
}
}
 
 
/* Find the bpstat associated with this breakpoint */
/* Find the bpstat associated with this breakpoint */
 
 
bpstat
bpstat
bpstat_find_breakpoint (bsp, breakpoint)
bpstat_find_breakpoint (bsp, breakpoint)
     bpstat bsp;
     bpstat bsp;
     struct breakpoint *breakpoint;
     struct breakpoint *breakpoint;
{
{
  if (bsp == NULL)
  if (bsp == NULL)
    return NULL;
    return NULL;
 
 
  for (; bsp != NULL; bsp = bsp->next)
  for (; bsp != NULL; bsp = bsp->next)
    {
    {
      if (bsp->breakpoint_at == breakpoint)
      if (bsp->breakpoint_at == breakpoint)
        return bsp;
        return bsp;
    }
    }
  return NULL;
  return NULL;
}
}
 
 
/* Find a step_resume breakpoint associated with this bpstat.
/* Find a step_resume breakpoint associated with this bpstat.
   (If there are multiple step_resume bp's on the list, this function
   (If there are multiple step_resume bp's on the list, this function
   will arbitrarily pick one.)
   will arbitrarily pick one.)
 
 
   It is an error to use this function if BPSTAT doesn't contain a
   It is an error to use this function if BPSTAT doesn't contain a
   step_resume breakpoint.
   step_resume breakpoint.
 
 
   See wait_for_inferior's use of this function.  */
   See wait_for_inferior's use of this function.  */
struct breakpoint *
struct breakpoint *
bpstat_find_step_resume_breakpoint (bsp)
bpstat_find_step_resume_breakpoint (bsp)
     bpstat bsp;
     bpstat bsp;
{
{
  if (bsp == NULL)
  if (bsp == NULL)
    error ("Internal error (bpstat_find_step_resume_breakpoint)");
    error ("Internal error (bpstat_find_step_resume_breakpoint)");
 
 
  for (; bsp != NULL; bsp = bsp->next)
  for (; bsp != NULL; bsp = bsp->next)
    {
    {
      if ((bsp->breakpoint_at != NULL) &&
      if ((bsp->breakpoint_at != NULL) &&
          (bsp->breakpoint_at->type == bp_step_resume))
          (bsp->breakpoint_at->type == bp_step_resume))
        return bsp->breakpoint_at;
        return bsp->breakpoint_at;
    }
    }
 
 
  error ("Internal error (no step_resume breakpoint found)");
  error ("Internal error (no step_resume breakpoint found)");
}
}
 
 
 
 
/* Return the breakpoint number of the first breakpoint we are stopped
/* Return the breakpoint number of the first breakpoint we are stopped
   at.  *BSP upon return is a bpstat which points to the remaining
   at.  *BSP upon return is a bpstat which points to the remaining
   breakpoints stopped at (but which is not guaranteed to be good for
   breakpoints stopped at (but which is not guaranteed to be good for
   anything but further calls to bpstat_num).
   anything but further calls to bpstat_num).
   Return 0 if passed a bpstat which does not indicate any breakpoints.  */
   Return 0 if passed a bpstat which does not indicate any breakpoints.  */
 
 
int
int
bpstat_num (bsp)
bpstat_num (bsp)
     bpstat *bsp;
     bpstat *bsp;
{
{
  struct breakpoint *b;
  struct breakpoint *b;
 
 
  if ((*bsp) == NULL)
  if ((*bsp) == NULL)
    return 0;                    /* No more breakpoint values */
    return 0;                    /* No more breakpoint values */
  else
  else
    {
    {
      b = (*bsp)->breakpoint_at;
      b = (*bsp)->breakpoint_at;
      *bsp = (*bsp)->next;
      *bsp = (*bsp)->next;
      if (b == NULL)
      if (b == NULL)
        return -1;              /* breakpoint that's been deleted since */
        return -1;              /* breakpoint that's been deleted since */
      else
      else
        return b->number;       /* We have its number */
        return b->number;       /* We have its number */
    }
    }
}
}
 
 
/* Modify BS so that the actions will not be performed.  */
/* Modify BS so that the actions will not be performed.  */
 
 
void
void
bpstat_clear_actions (bs)
bpstat_clear_actions (bs)
     bpstat bs;
     bpstat bs;
{
{
  for (; bs != NULL; bs = bs->next)
  for (; bs != NULL; bs = bs->next)
    {
    {
      bs->commands = NULL;
      bs->commands = NULL;
      if (bs->old_val != NULL)
      if (bs->old_val != NULL)
        {
        {
          value_free (bs->old_val);
          value_free (bs->old_val);
          bs->old_val = NULL;
          bs->old_val = NULL;
        }
        }
    }
    }
}
}
 
 
/* Stub for cleaning up our state if we error-out of a breakpoint command */
/* Stub for cleaning up our state if we error-out of a breakpoint command */
/* ARGSUSED */
/* ARGSUSED */
static void
static void
cleanup_executing_breakpoints (ignore)
cleanup_executing_breakpoints (ignore)
     PTR ignore;
     PTR ignore;
{
{
  executing_breakpoint_commands = 0;
  executing_breakpoint_commands = 0;
}
}
 
 
/* Execute all the commands associated with all the breakpoints at this
/* Execute all the commands associated with all the breakpoints at this
   location.  Any of these commands could cause the process to proceed
   location.  Any of these commands could cause the process to proceed
   beyond this point, etc.  We look out for such changes by checking
   beyond this point, etc.  We look out for such changes by checking
   the global "breakpoint_proceeded" after each command.  */
   the global "breakpoint_proceeded" after each command.  */
 
 
void
void
bpstat_do_actions (bsp)
bpstat_do_actions (bsp)
     bpstat *bsp;
     bpstat *bsp;
{
{
  bpstat bs;
  bpstat bs;
  struct cleanup *old_chain;
  struct cleanup *old_chain;
  struct command_line *cmd;
  struct command_line *cmd;
 
 
  /* Avoid endless recursion if a `source' command is contained
  /* Avoid endless recursion if a `source' command is contained
     in bs->commands.  */
     in bs->commands.  */
  if (executing_breakpoint_commands)
  if (executing_breakpoint_commands)
    return;
    return;
 
 
  executing_breakpoint_commands = 1;
  executing_breakpoint_commands = 1;
  old_chain = make_cleanup (cleanup_executing_breakpoints, 0);
  old_chain = make_cleanup (cleanup_executing_breakpoints, 0);
 
 
top:
top:
  /* Note that (as of this writing), our callers all appear to
  /* Note that (as of this writing), our callers all appear to
     be passing us the address of global stop_bpstat.  And, if
     be passing us the address of global stop_bpstat.  And, if
     our calls to execute_control_command cause the inferior to
     our calls to execute_control_command cause the inferior to
     proceed, that global (and hence, *bsp) will change.
     proceed, that global (and hence, *bsp) will change.
 
 
     We must be careful to not touch *bsp unless the inferior
     We must be careful to not touch *bsp unless the inferior
     has not proceeded. */
     has not proceeded. */
 
 
  /* This pointer will iterate over the list of bpstat's. */
  /* This pointer will iterate over the list of bpstat's. */
  bs = *bsp;
  bs = *bsp;
 
 
  breakpoint_proceeded = 0;
  breakpoint_proceeded = 0;
  for (; bs != NULL; bs = bs->next)
  for (; bs != NULL; bs = bs->next)
    {
    {
      cmd = bs->commands;
      cmd = bs->commands;
      while (cmd != NULL)
      while (cmd != NULL)
        {
        {
          execute_control_command (cmd);
          execute_control_command (cmd);
 
 
          if (breakpoint_proceeded)
          if (breakpoint_proceeded)
            break;
            break;
          else
          else
            cmd = cmd->next;
            cmd = cmd->next;
        }
        }
      if (breakpoint_proceeded)
      if (breakpoint_proceeded)
        /* The inferior is proceeded by the command; bomb out now.
        /* The inferior is proceeded by the command; bomb out now.
           The bpstat chain has been blown away by wait_for_inferior.
           The bpstat chain has been blown away by wait_for_inferior.
           But since execution has stopped again, there is a new bpstat
           But since execution has stopped again, there is a new bpstat
           to look at, so start over.  */
           to look at, so start over.  */
        goto top;
        goto top;
      else
      else
        bs->commands = NULL;
        bs->commands = NULL;
    }
    }
 
 
  executing_breakpoint_commands = 0;
  executing_breakpoint_commands = 0;
  discard_cleanups (old_chain);
  discard_cleanups (old_chain);
}
}
 
 
/* This is the normal print function for a bpstat.  In the future,
/* This is the normal print function for a bpstat.  In the future,
   much of this logic could (should?) be moved to bpstat_stop_status,
   much of this logic could (should?) be moved to bpstat_stop_status,
   by having it set different print_it values.
   by having it set different print_it values.
 
 
   Current scheme: When we stop, bpstat_print() is called.  It loops
   Current scheme: When we stop, bpstat_print() is called.  It loops
   through the bpstat list of things causing this stop, calling the
   through the bpstat list of things causing this stop, calling the
   print_bp_stop_message function on each one. The behavior of the
   print_bp_stop_message function on each one. The behavior of the
   print_bp_stop_message function depends on the print_it field of
   print_bp_stop_message function depends on the print_it field of
   bpstat. If such field so indicates, call this function here.
   bpstat. If such field so indicates, call this function here.
 
 
   Return values from this routine (ultimately used by bpstat_print()
   Return values from this routine (ultimately used by bpstat_print()
   and normal_stop() to decide what to do):
   and normal_stop() to decide what to do):
   PRINT_NOTHING: Means we already printed all we needed to print,
   PRINT_NOTHING: Means we already printed all we needed to print,
   don't print anything else.
   don't print anything else.
   PRINT_SRC_ONLY: Means we printed something, and we do *not* desire
   PRINT_SRC_ONLY: Means we printed something, and we do *not* desire
   that something to be followed by a location.
   that something to be followed by a location.
   PRINT_SCR_AND_LOC: Means we printed something, and we *do* desire
   PRINT_SCR_AND_LOC: Means we printed something, and we *do* desire
   that something to be followed by a location.
   that something to be followed by a location.
   PRINT_UNKNOWN: Means we printed nothing or we need to do some more
   PRINT_UNKNOWN: Means we printed nothing or we need to do some more
   analysis.  */
   analysis.  */
 
 
static enum print_stop_action
static enum print_stop_action
print_it_typical (bs)
print_it_typical (bs)
     bpstat bs;
     bpstat bs;
{
{
#ifdef UI_OUT
#ifdef UI_OUT
  struct cleanup *old_chain;
  struct cleanup *old_chain;
  struct ui_stream *stb;
  struct ui_stream *stb;
  stb = ui_out_stream_new (uiout);
  stb = ui_out_stream_new (uiout);
  old_chain = make_cleanup ((make_cleanup_func) ui_out_stream_delete, stb);
  old_chain = make_cleanup ((make_cleanup_func) ui_out_stream_delete, stb);
#endif /* UI_OUT */
#endif /* UI_OUT */
  /* bs->breakpoint_at can be NULL if it was a momentary breakpoint
  /* bs->breakpoint_at can be NULL if it was a momentary breakpoint
     which has since been deleted.  */
     which has since been deleted.  */
  if (bs->breakpoint_at == NULL)
  if (bs->breakpoint_at == NULL)
    return PRINT_UNKNOWN;
    return PRINT_UNKNOWN;
 
 
  switch (bs->breakpoint_at->type)
  switch (bs->breakpoint_at->type)
    {
    {
    case bp_breakpoint:
    case bp_breakpoint:
    case bp_hardware_breakpoint:
    case bp_hardware_breakpoint:
#ifdef UI_OUT
#ifdef UI_OUT
      annotate_breakpoint (bs->breakpoint_at->number);
      annotate_breakpoint (bs->breakpoint_at->number);
      ui_out_text (uiout, "\nBreakpoint ");
      ui_out_text (uiout, "\nBreakpoint ");
      if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
      if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
        ui_out_field_string (uiout, "reason", "breakpoint-hit");
        ui_out_field_string (uiout, "reason", "breakpoint-hit");
      ui_out_field_int (uiout, "bkptno", bs->breakpoint_at->number);
      ui_out_field_int (uiout, "bkptno", bs->breakpoint_at->number);
      ui_out_text (uiout, ", ");
      ui_out_text (uiout, ", ");
      return PRINT_SRC_AND_LOC;
      return PRINT_SRC_AND_LOC;
#else
#else
      /* I think the user probably only wants to see one breakpoint
      /* I think the user probably only wants to see one breakpoint
         number, not all of them.  */
         number, not all of them.  */
      annotate_breakpoint (bs->breakpoint_at->number);
      annotate_breakpoint (bs->breakpoint_at->number);
      printf_filtered ("\nBreakpoint %d, ", bs->breakpoint_at->number);
      printf_filtered ("\nBreakpoint %d, ", bs->breakpoint_at->number);
      return PRINT_SRC_AND_LOC;
      return PRINT_SRC_AND_LOC;
#endif
#endif
      break;
      break;
 
 
    case bp_shlib_event:
    case bp_shlib_event:
      /* Did we stop because the user set the stop_on_solib_events
      /* Did we stop because the user set the stop_on_solib_events
         variable?  (If so, we report this as a generic, "Stopped due
         variable?  (If so, we report this as a generic, "Stopped due
         to shlib event" message.) */
         to shlib event" message.) */
      printf_filtered ("Stopped due to shared library event\n");
      printf_filtered ("Stopped due to shared library event\n");
      return PRINT_NOTHING;
      return PRINT_NOTHING;
      break;
      break;
 
 
    case bp_thread_event:
    case bp_thread_event:
      /* Not sure how we will get here.
      /* Not sure how we will get here.
         GDB should not stop for these breakpoints.  */
         GDB should not stop for these breakpoints.  */
      printf_filtered ("Thread Event Breakpoint: gdb should not stop!\n");
      printf_filtered ("Thread Event Breakpoint: gdb should not stop!\n");
      return PRINT_NOTHING;
      return PRINT_NOTHING;
      break;
      break;
 
 
    case bp_catch_load:
    case bp_catch_load:
      annotate_catchpoint (bs->breakpoint_at->number);
      annotate_catchpoint (bs->breakpoint_at->number);
      printf_filtered ("\nCatchpoint %d (", bs->breakpoint_at->number);
      printf_filtered ("\nCatchpoint %d (", bs->breakpoint_at->number);
      printf_filtered ("loaded");
      printf_filtered ("loaded");
      printf_filtered (" %s), ", bs->breakpoint_at->triggered_dll_pathname);
      printf_filtered (" %s), ", bs->breakpoint_at->triggered_dll_pathname);
      return PRINT_SRC_AND_LOC;
      return PRINT_SRC_AND_LOC;
      break;
      break;
 
 
    case bp_catch_unload:
    case bp_catch_unload:
      annotate_catchpoint (bs->breakpoint_at->number);
      annotate_catchpoint (bs->breakpoint_at->number);
      printf_filtered ("\nCatchpoint %d (", bs->breakpoint_at->number);
      printf_filtered ("\nCatchpoint %d (", bs->breakpoint_at->number);
      printf_filtered ("unloaded");
      printf_filtered ("unloaded");
      printf_filtered (" %s), ", bs->breakpoint_at->triggered_dll_pathname);
      printf_filtered (" %s), ", bs->breakpoint_at->triggered_dll_pathname);
      return PRINT_SRC_AND_LOC;
      return PRINT_SRC_AND_LOC;
      break;
      break;
 
 
    case bp_catch_fork:
    case bp_catch_fork:
      annotate_catchpoint (bs->breakpoint_at->number);
      annotate_catchpoint (bs->breakpoint_at->number);
      printf_filtered ("\nCatchpoint %d (", bs->breakpoint_at->number);
      printf_filtered ("\nCatchpoint %d (", bs->breakpoint_at->number);
      printf_filtered ("forked");
      printf_filtered ("forked");
      printf_filtered (" process %d), ",
      printf_filtered (" process %d), ",
                       bs->breakpoint_at->forked_inferior_pid);
                       bs->breakpoint_at->forked_inferior_pid);
      return PRINT_SRC_AND_LOC;
      return PRINT_SRC_AND_LOC;
      break;
      break;
 
 
    case bp_catch_vfork:
    case bp_catch_vfork:
      annotate_catchpoint (bs->breakpoint_at->number);
      annotate_catchpoint (bs->breakpoint_at->number);
      printf_filtered ("\nCatchpoint %d (", bs->breakpoint_at->number);
      printf_filtered ("\nCatchpoint %d (", bs->breakpoint_at->number);
      printf_filtered ("vforked");
      printf_filtered ("vforked");
      printf_filtered (" process %d), ",
      printf_filtered (" process %d), ",
                       bs->breakpoint_at->forked_inferior_pid);
                       bs->breakpoint_at->forked_inferior_pid);
      return PRINT_SRC_AND_LOC;
      return PRINT_SRC_AND_LOC;
      break;
      break;
 
 
    case bp_catch_exec:
    case bp_catch_exec:
      annotate_catchpoint (bs->breakpoint_at->number);
      annotate_catchpoint (bs->breakpoint_at->number);
      printf_filtered ("\nCatchpoint %d (exec'd %s), ",
      printf_filtered ("\nCatchpoint %d (exec'd %s), ",
                       bs->breakpoint_at->number,
                       bs->breakpoint_at->number,
                       bs->breakpoint_at->exec_pathname);
                       bs->breakpoint_at->exec_pathname);
      return PRINT_SRC_AND_LOC;
      return PRINT_SRC_AND_LOC;
      break;
      break;
 
 
    case bp_catch_catch:
    case bp_catch_catch:
      if (current_exception_event &&
      if (current_exception_event &&
          (CURRENT_EXCEPTION_KIND == EX_EVENT_CATCH))
          (CURRENT_EXCEPTION_KIND == EX_EVENT_CATCH))
        {
        {
          annotate_catchpoint (bs->breakpoint_at->number);
          annotate_catchpoint (bs->breakpoint_at->number);
          printf_filtered ("\nCatchpoint %d (exception caught), ",
          printf_filtered ("\nCatchpoint %d (exception caught), ",
                           bs->breakpoint_at->number);
                           bs->breakpoint_at->number);
          printf_filtered ("throw location ");
          printf_filtered ("throw location ");
          if (CURRENT_EXCEPTION_THROW_PC && CURRENT_EXCEPTION_THROW_LINE)
          if (CURRENT_EXCEPTION_THROW_PC && CURRENT_EXCEPTION_THROW_LINE)
            printf_filtered ("%s:%d",
            printf_filtered ("%s:%d",
                             CURRENT_EXCEPTION_THROW_FILE,
                             CURRENT_EXCEPTION_THROW_FILE,
                             CURRENT_EXCEPTION_THROW_LINE);
                             CURRENT_EXCEPTION_THROW_LINE);
          else
          else
            printf_filtered ("unknown");
            printf_filtered ("unknown");
 
 
          printf_filtered (", catch location ");
          printf_filtered (", catch location ");
          if (CURRENT_EXCEPTION_CATCH_PC && CURRENT_EXCEPTION_CATCH_LINE)
          if (CURRENT_EXCEPTION_CATCH_PC && CURRENT_EXCEPTION_CATCH_LINE)
            printf_filtered ("%s:%d",
            printf_filtered ("%s:%d",
                             CURRENT_EXCEPTION_CATCH_FILE,
                             CURRENT_EXCEPTION_CATCH_FILE,
                             CURRENT_EXCEPTION_CATCH_LINE);
                             CURRENT_EXCEPTION_CATCH_LINE);
          else
          else
            printf_filtered ("unknown");
            printf_filtered ("unknown");
 
 
          printf_filtered ("\n");
          printf_filtered ("\n");
          /* don't bother to print location frame info */
          /* don't bother to print location frame info */
          return PRINT_SRC_ONLY;
          return PRINT_SRC_ONLY;
        }
        }
      else
      else
        {
        {
          /* really throw, some other bpstat will handle it */
          /* really throw, some other bpstat will handle it */
          return PRINT_UNKNOWN;
          return PRINT_UNKNOWN;
        }
        }
      break;
      break;
 
 
    case bp_catch_throw:
    case bp_catch_throw:
      if (current_exception_event &&
      if (current_exception_event &&
          (CURRENT_EXCEPTION_KIND == EX_EVENT_THROW))
          (CURRENT_EXCEPTION_KIND == EX_EVENT_THROW))
        {
        {
          annotate_catchpoint (bs->breakpoint_at->number);
          annotate_catchpoint (bs->breakpoint_at->number);
          printf_filtered ("\nCatchpoint %d (exception thrown), ",
          printf_filtered ("\nCatchpoint %d (exception thrown), ",
                           bs->breakpoint_at->number);
                           bs->breakpoint_at->number);
          printf_filtered ("throw location ");
          printf_filtered ("throw location ");
          if (CURRENT_EXCEPTION_THROW_PC && CURRENT_EXCEPTION_THROW_LINE)
          if (CURRENT_EXCEPTION_THROW_PC && CURRENT_EXCEPTION_THROW_LINE)
            printf_filtered ("%s:%d",
            printf_filtered ("%s:%d",
                             CURRENT_EXCEPTION_THROW_FILE,
                             CURRENT_EXCEPTION_THROW_FILE,
                             CURRENT_EXCEPTION_THROW_LINE);
                             CURRENT_EXCEPTION_THROW_LINE);
          else
          else
            printf_filtered ("unknown");
            printf_filtered ("unknown");
 
 
          printf_filtered (", catch location ");
          printf_filtered (", catch location ");
          if (CURRENT_EXCEPTION_CATCH_PC && CURRENT_EXCEPTION_CATCH_LINE)
          if (CURRENT_EXCEPTION_CATCH_PC && CURRENT_EXCEPTION_CATCH_LINE)
            printf_filtered ("%s:%d",
            printf_filtered ("%s:%d",
                             CURRENT_EXCEPTION_CATCH_FILE,
                             CURRENT_EXCEPTION_CATCH_FILE,
                             CURRENT_EXCEPTION_CATCH_LINE);
                             CURRENT_EXCEPTION_CATCH_LINE);
          else
          else
            printf_filtered ("unknown");
            printf_filtered ("unknown");
 
 
          printf_filtered ("\n");
          printf_filtered ("\n");
          /* don't bother to print location frame info */
          /* don't bother to print location frame info */
          return PRINT_SRC_ONLY;
          return PRINT_SRC_ONLY;
        }
        }
      else
      else
        {
        {
          /* really catch, some other bpstat will handle it */
          /* really catch, some other bpstat will handle it */
          return PRINT_UNKNOWN;
          return PRINT_UNKNOWN;
        }
        }
      break;
      break;
 
 
    case bp_watchpoint:
    case bp_watchpoint:
    case bp_hardware_watchpoint:
    case bp_hardware_watchpoint:
      if (bs->old_val != NULL)
      if (bs->old_val != NULL)
        {
        {
          annotate_watchpoint (bs->breakpoint_at->number);
          annotate_watchpoint (bs->breakpoint_at->number);
#ifdef UI_OUT
#ifdef UI_OUT
          if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
          if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
            ui_out_field_string (uiout, "reason", "watchpoint-trigger");
            ui_out_field_string (uiout, "reason", "watchpoint-trigger");
          mention (bs->breakpoint_at);
          mention (bs->breakpoint_at);
          ui_out_list_begin (uiout, "value");
          ui_out_list_begin (uiout, "value");
          ui_out_text (uiout, "\nOld value = ");
          ui_out_text (uiout, "\nOld value = ");
          value_print (bs->old_val, stb->stream, 0, Val_pretty_default);
          value_print (bs->old_val, stb->stream, 0, Val_pretty_default);
          ui_out_field_stream (uiout, "old", stb);
          ui_out_field_stream (uiout, "old", stb);
          ui_out_text (uiout, "\nNew value = ");
          ui_out_text (uiout, "\nNew value = ");
          value_print (bs->breakpoint_at->val, stb->stream, 0, Val_pretty_default);
          value_print (bs->breakpoint_at->val, stb->stream, 0, Val_pretty_default);
          ui_out_field_stream (uiout, "new", stb);
          ui_out_field_stream (uiout, "new", stb);
          ui_out_list_end (uiout);
          ui_out_list_end (uiout);
          ui_out_text (uiout, "\n");
          ui_out_text (uiout, "\n");
#else
#else
          mention (bs->breakpoint_at);
          mention (bs->breakpoint_at);
          printf_filtered ("\nOld value = ");
          printf_filtered ("\nOld value = ");
          value_print (bs->old_val, gdb_stdout, 0, Val_pretty_default);
          value_print (bs->old_val, gdb_stdout, 0, Val_pretty_default);
          printf_filtered ("\nNew value = ");
          printf_filtered ("\nNew value = ");
          value_print (bs->breakpoint_at->val, gdb_stdout, 0,
          value_print (bs->breakpoint_at->val, gdb_stdout, 0,
                       Val_pretty_default);
                       Val_pretty_default);
          printf_filtered ("\n");
          printf_filtered ("\n");
#endif
#endif
          value_free (bs->old_val);
          value_free (bs->old_val);
          bs->old_val = NULL;
          bs->old_val = NULL;
        }
        }
      /* More than one watchpoint may have been triggered.  */
      /* More than one watchpoint may have been triggered.  */
      return PRINT_UNKNOWN;
      return PRINT_UNKNOWN;
      break;
      break;
 
 
    case bp_read_watchpoint:
    case bp_read_watchpoint:
#ifdef UI_OUT
#ifdef UI_OUT
      if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
      if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
        ui_out_field_string (uiout, "reason", "read-watchpoint-trigger");
        ui_out_field_string (uiout, "reason", "read-watchpoint-trigger");
      mention (bs->breakpoint_at);
      mention (bs->breakpoint_at);
      ui_out_list_begin (uiout, "value");
      ui_out_list_begin (uiout, "value");
      ui_out_text (uiout, "\nValue = ");
      ui_out_text (uiout, "\nValue = ");
      value_print (bs->breakpoint_at->val, stb->stream, 0, Val_pretty_default);
      value_print (bs->breakpoint_at->val, stb->stream, 0, Val_pretty_default);
      ui_out_field_stream (uiout, "value", stb);
      ui_out_field_stream (uiout, "value", stb);
      ui_out_list_end (uiout);
      ui_out_list_end (uiout);
      ui_out_text (uiout, "\n");
      ui_out_text (uiout, "\n");
#else
#else
      mention (bs->breakpoint_at);
      mention (bs->breakpoint_at);
      printf_filtered ("\nValue = ");
      printf_filtered ("\nValue = ");
      value_print (bs->breakpoint_at->val, gdb_stdout, 0,
      value_print (bs->breakpoint_at->val, gdb_stdout, 0,
                   Val_pretty_default);
                   Val_pretty_default);
      printf_filtered ("\n");
      printf_filtered ("\n");
#endif
#endif
      return PRINT_UNKNOWN;
      return PRINT_UNKNOWN;
      break;
      break;
 
 
    case bp_access_watchpoint:
    case bp_access_watchpoint:
#ifdef UI_OUT
#ifdef UI_OUT
      if (bs->old_val != NULL)
      if (bs->old_val != NULL)
        {
        {
          annotate_watchpoint (bs->breakpoint_at->number);
          annotate_watchpoint (bs->breakpoint_at->number);
          if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
          if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
            ui_out_field_string (uiout, "reason", "access-watchpoint-trigger");
            ui_out_field_string (uiout, "reason", "access-watchpoint-trigger");
          mention (bs->breakpoint_at);
          mention (bs->breakpoint_at);
          ui_out_list_begin (uiout, "value");
          ui_out_list_begin (uiout, "value");
          ui_out_text (uiout, "\nOld value = ");
          ui_out_text (uiout, "\nOld value = ");
          value_print (bs->old_val, stb->stream, 0, Val_pretty_default);
          value_print (bs->old_val, stb->stream, 0, Val_pretty_default);
          ui_out_field_stream (uiout, "old", stb);
          ui_out_field_stream (uiout, "old", stb);
          value_free (bs->old_val);
          value_free (bs->old_val);
          bs->old_val = NULL;
          bs->old_val = NULL;
          ui_out_text (uiout, "\nNew value = ");
          ui_out_text (uiout, "\nNew value = ");
        }
        }
      else
      else
        {
        {
          mention (bs->breakpoint_at);
          mention (bs->breakpoint_at);
          if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
          if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
            ui_out_list_begin (uiout, "value");
            ui_out_list_begin (uiout, "value");
          ui_out_field_string (uiout, "reason", "access-watchpoint-trigger");
          ui_out_field_string (uiout, "reason", "access-watchpoint-trigger");
          ui_out_text (uiout, "\nValue = ");
          ui_out_text (uiout, "\nValue = ");
        }
        }
      value_print (bs->breakpoint_at->val, stb->stream, 0,Val_pretty_default);
      value_print (bs->breakpoint_at->val, stb->stream, 0,Val_pretty_default);
      ui_out_field_stream (uiout, "new", stb);
      ui_out_field_stream (uiout, "new", stb);
      ui_out_list_end (uiout);
      ui_out_list_end (uiout);
      ui_out_text (uiout, "\n");
      ui_out_text (uiout, "\n");
#else
#else
      if (bs->old_val != NULL)
      if (bs->old_val != NULL)
        {
        {
          annotate_watchpoint (bs->breakpoint_at->number);
          annotate_watchpoint (bs->breakpoint_at->number);
          mention (bs->breakpoint_at);
          mention (bs->breakpoint_at);
          printf_filtered ("\nOld value = ");
          printf_filtered ("\nOld value = ");
          value_print (bs->old_val, gdb_stdout, 0, Val_pretty_default);
          value_print (bs->old_val, gdb_stdout, 0, Val_pretty_default);
          value_free (bs->old_val);
          value_free (bs->old_val);
          bs->old_val = NULL;
          bs->old_val = NULL;
          printf_filtered ("\nNew value = ");
          printf_filtered ("\nNew value = ");
        }
        }
      else
      else
        {
        {
          mention (bs->breakpoint_at);
          mention (bs->breakpoint_at);
          printf_filtered ("\nValue = ");
          printf_filtered ("\nValue = ");
        }
        }
      value_print (bs->breakpoint_at->val, gdb_stdout, 0,
      value_print (bs->breakpoint_at->val, gdb_stdout, 0,
                   Val_pretty_default);
                   Val_pretty_default);
      printf_filtered ("\n");
      printf_filtered ("\n");
#endif
#endif
      return PRINT_UNKNOWN;
      return PRINT_UNKNOWN;
      break;
      break;
 
 
    /* Fall through, we don't deal with these types of breakpoints
    /* Fall through, we don't deal with these types of breakpoints
       here. */
       here. */
 
 
    case bp_finish:
    case bp_finish:
#ifdef UI_OUT
#ifdef UI_OUT
      if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
      if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
        ui_out_field_string (uiout, "reason", "function-finished");
        ui_out_field_string (uiout, "reason", "function-finished");
#endif
#endif
      return PRINT_UNKNOWN;
      return PRINT_UNKNOWN;
      break;
      break;
 
 
    case bp_until:
    case bp_until:
#ifdef UI_OUT
#ifdef UI_OUT
      if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
      if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
        ui_out_field_string (uiout, "reason", "location-reached");
        ui_out_field_string (uiout, "reason", "location-reached");
#endif
#endif
      return PRINT_UNKNOWN;
      return PRINT_UNKNOWN;
      break;
      break;
 
 
    case bp_none:
    case bp_none:
    case bp_longjmp:
    case bp_longjmp:
    case bp_longjmp_resume:
    case bp_longjmp_resume:
    case bp_step_resume:
    case bp_step_resume:
    case bp_through_sigtramp:
    case bp_through_sigtramp:
    case bp_watchpoint_scope:
    case bp_watchpoint_scope:
    case bp_call_dummy:
    case bp_call_dummy:
    default:
    default:
      return PRINT_UNKNOWN;
      return PRINT_UNKNOWN;
    }
    }
}
}
 
 
/* Generic routine for printing messages indicating why we
/* Generic routine for printing messages indicating why we
   stopped. The behavior of this function depends on the value
   stopped. The behavior of this function depends on the value
   'print_it' in the bpstat structure.  Under some circumstances we
   'print_it' in the bpstat structure.  Under some circumstances we
   may decide not to print anything here and delegate the task to
   may decide not to print anything here and delegate the task to
   normal_stop(). */
   normal_stop(). */
 
 
static enum print_stop_action
static enum print_stop_action
print_bp_stop_message (bpstat bs)
print_bp_stop_message (bpstat bs)
{
{
  switch (bs->print_it)
  switch (bs->print_it)
    {
    {
    case print_it_noop:
    case print_it_noop:
      /* Nothing should be printed for this bpstat entry. */
      /* Nothing should be printed for this bpstat entry. */
      return PRINT_UNKNOWN;
      return PRINT_UNKNOWN;
      break;
      break;
 
 
    case print_it_done:
    case print_it_done:
      /* We still want to print the frame, but we already printed the
      /* We still want to print the frame, but we already printed the
         relevant messages. */
         relevant messages. */
      return PRINT_SRC_AND_LOC;
      return PRINT_SRC_AND_LOC;
      break;
      break;
 
 
    case print_it_normal:
    case print_it_normal:
      /* Normal case, we handle everything in print_it_typical. */
      /* Normal case, we handle everything in print_it_typical. */
      return print_it_typical (bs);
      return print_it_typical (bs);
      break;
      break;
    default:
    default:
      internal_error ("print_bp_stop_message: unrecognized enum value");
      internal_error ("print_bp_stop_message: unrecognized enum value");
      break;
      break;
    }
    }
}
}
 
 
/* Print a message indicating what happened.  This is called from
/* Print a message indicating what happened.  This is called from
   normal_stop().  The input to this routine is the head of the bpstat
   normal_stop().  The input to this routine is the head of the bpstat
   list - a list of the eventpoints that caused this stop.  This
   list - a list of the eventpoints that caused this stop.  This
   routine calls the generic print routine for printing a message
   routine calls the generic print routine for printing a message
   about reasons for stopping.  This will print (for example) the
   about reasons for stopping.  This will print (for example) the
   "Breakpoint n," part of the output.  The return value of this
   "Breakpoint n," part of the output.  The return value of this
   routine is one of:
   routine is one of:
 
 
   PRINT_UNKNOWN: Means we printed nothing
   PRINT_UNKNOWN: Means we printed nothing
   PRINT_SRC_AND_LOC: Means we printed something, and expect subsequent
   PRINT_SRC_AND_LOC: Means we printed something, and expect subsequent
   code to print the location. An example is
   code to print the location. An example is
   "Breakpoint 1, " which should be followed by
   "Breakpoint 1, " which should be followed by
   the location.
   the location.
   PRINT_SRC_ONLY: Means we printed something, but there is no need
   PRINT_SRC_ONLY: Means we printed something, but there is no need
   to also print the location part of the message.
   to also print the location part of the message.
   An example is the catch/throw messages, which
   An example is the catch/throw messages, which
   don't require a location appended to the end.
   don't require a location appended to the end.
   PRINT_NOTHING: We have done some printing and we don't need any
   PRINT_NOTHING: We have done some printing and we don't need any
   further info to be printed.*/
   further info to be printed.*/
 
 
enum print_stop_action
enum print_stop_action
bpstat_print (bs)
bpstat_print (bs)
     bpstat bs;
     bpstat bs;
{
{
  int val;
  int val;
 
 
  /* Maybe another breakpoint in the chain caused us to stop.
  /* Maybe another breakpoint in the chain caused us to stop.
     (Currently all watchpoints go on the bpstat whether hit or not.
     (Currently all watchpoints go on the bpstat whether hit or not.
     That probably could (should) be changed, provided care is taken
     That probably could (should) be changed, provided care is taken
     with respect to bpstat_explains_signal).  */
     with respect to bpstat_explains_signal).  */
  for (; bs; bs = bs->next)
  for (; bs; bs = bs->next)
    {
    {
      val = print_bp_stop_message (bs);
      val = print_bp_stop_message (bs);
      if (val == PRINT_SRC_ONLY
      if (val == PRINT_SRC_ONLY
          || val == PRINT_SRC_AND_LOC
          || val == PRINT_SRC_AND_LOC
          || val == PRINT_NOTHING)
          || val == PRINT_NOTHING)
        return val;
        return val;
    }
    }
 
 
  /* We reached the end of the chain, or we got a null BS to start
  /* We reached the end of the chain, or we got a null BS to start
     with and nothing was printed. */
     with and nothing was printed. */
  return PRINT_UNKNOWN;
  return PRINT_UNKNOWN;
}
}
 
 
/* Evaluate the expression EXP and return 1 if value is zero.
/* Evaluate the expression EXP and return 1 if value is zero.
   This is used inside a catch_errors to evaluate the breakpoint condition.
   This is used inside a catch_errors to evaluate the breakpoint condition.
   The argument is a "struct expression *" that has been cast to char * to
   The argument is a "struct expression *" that has been cast to char * to
   make it pass through catch_errors.  */
   make it pass through catch_errors.  */
 
 
static int
static int
breakpoint_cond_eval (exp)
breakpoint_cond_eval (exp)
     PTR exp;
     PTR exp;
{
{
  value_ptr mark = value_mark ();
  value_ptr mark = value_mark ();
  int i = !value_true (evaluate_expression ((struct expression *) exp));
  int i = !value_true (evaluate_expression ((struct expression *) exp));
  value_free_to_mark (mark);
  value_free_to_mark (mark);
  return i;
  return i;
}
}
 
 
/* Allocate a new bpstat and chain it to the current one.  */
/* Allocate a new bpstat and chain it to the current one.  */
 
 
static bpstat
static bpstat
bpstat_alloc (b, cbs)
bpstat_alloc (b, cbs)
     register struct breakpoint *b;
     register struct breakpoint *b;
     bpstat cbs;                /* Current "bs" value */
     bpstat cbs;                /* Current "bs" value */
{
{
  bpstat bs;
  bpstat bs;
 
 
  bs = (bpstat) xmalloc (sizeof (*bs));
  bs = (bpstat) xmalloc (sizeof (*bs));
  cbs->next = bs;
  cbs->next = bs;
  bs->breakpoint_at = b;
  bs->breakpoint_at = b;
  /* If the condition is false, etc., don't do the commands.  */
  /* If the condition is false, etc., don't do the commands.  */
  bs->commands = NULL;
  bs->commands = NULL;
  bs->old_val = NULL;
  bs->old_val = NULL;
  bs->print_it = print_it_normal;
  bs->print_it = print_it_normal;
  return bs;
  return bs;
}
}


/* Possible return values for watchpoint_check (this can't be an enum
/* Possible return values for watchpoint_check (this can't be an enum
   because of check_errors).  */
   because of check_errors).  */
/* The watchpoint has been deleted.  */
/* The watchpoint has been deleted.  */
#define WP_DELETED 1
#define WP_DELETED 1
/* The value has changed.  */
/* The value has changed.  */
#define WP_VALUE_CHANGED 2
#define WP_VALUE_CHANGED 2
/* The value has not changed.  */
/* The value has not changed.  */
#define WP_VALUE_NOT_CHANGED 3
#define WP_VALUE_NOT_CHANGED 3
 
 
#define BP_TEMPFLAG 1
#define BP_TEMPFLAG 1
#define BP_HARDWAREFLAG 2
#define BP_HARDWAREFLAG 2
 
 
/* Check watchpoint condition.  */
/* Check watchpoint condition.  */
 
 
static int
static int
watchpoint_check (p)
watchpoint_check (p)
     PTR p;
     PTR p;
{
{
  bpstat bs = (bpstat) p;
  bpstat bs = (bpstat) p;
  struct breakpoint *b;
  struct breakpoint *b;
  struct frame_info *fr;
  struct frame_info *fr;
  int within_current_scope;
  int within_current_scope;
 
 
  b = bs->breakpoint_at;
  b = bs->breakpoint_at;
 
 
  if (b->exp_valid_block == NULL)
  if (b->exp_valid_block == NULL)
    within_current_scope = 1;
    within_current_scope = 1;
  else
  else
    {
    {
      /* There is no current frame at this moment.  If we're going to have
      /* There is no current frame at this moment.  If we're going to have
         any chance of handling watchpoints on local variables, we'll need
         any chance of handling watchpoints on local variables, we'll need
         the frame chain (so we can determine if we're in scope).  */
         the frame chain (so we can determine if we're in scope).  */
      reinit_frame_cache ();
      reinit_frame_cache ();
      fr = find_frame_addr_in_frame_chain (b->watchpoint_frame);
      fr = find_frame_addr_in_frame_chain (b->watchpoint_frame);
      within_current_scope = (fr != NULL);
      within_current_scope = (fr != NULL);
      if (within_current_scope)
      if (within_current_scope)
        /* If we end up stopping, the current frame will get selected
        /* If we end up stopping, the current frame will get selected
           in normal_stop.  So this call to select_frame won't affect
           in normal_stop.  So this call to select_frame won't affect
           the user.  */
           the user.  */
        select_frame (fr, -1);
        select_frame (fr, -1);
    }
    }
 
 
  if (within_current_scope)
  if (within_current_scope)
    {
    {
      /* We use value_{,free_to_}mark because it could be a
      /* We use value_{,free_to_}mark because it could be a
         *long* time before we return to the command level and
         *long* time before we return to the command level and
         call free_all_values.  We can't call free_all_values because
         call free_all_values.  We can't call free_all_values because
         we might be in the middle of evaluating a function call.  */
         we might be in the middle of evaluating a function call.  */
 
 
      value_ptr mark = value_mark ();
      value_ptr mark = value_mark ();
      value_ptr new_val = evaluate_expression (bs->breakpoint_at->exp);
      value_ptr new_val = evaluate_expression (bs->breakpoint_at->exp);
      if (!value_equal (b->val, new_val))
      if (!value_equal (b->val, new_val))
        {
        {
          release_value (new_val);
          release_value (new_val);
          value_free_to_mark (mark);
          value_free_to_mark (mark);
          bs->old_val = b->val;
          bs->old_val = b->val;
          b->val = new_val;
          b->val = new_val;
          /* We will stop here */
          /* We will stop here */
          return WP_VALUE_CHANGED;
          return WP_VALUE_CHANGED;
        }
        }
      else
      else
        {
        {
          /* Nothing changed, don't do anything.  */
          /* Nothing changed, don't do anything.  */
          value_free_to_mark (mark);
          value_free_to_mark (mark);
          /* We won't stop here */
          /* We won't stop here */
          return WP_VALUE_NOT_CHANGED;
          return WP_VALUE_NOT_CHANGED;
        }
        }
    }
    }
  else
  else
    {
    {
      /* This seems like the only logical thing to do because
      /* This seems like the only logical thing to do because
         if we temporarily ignored the watchpoint, then when
         if we temporarily ignored the watchpoint, then when
         we reenter the block in which it is valid it contains
         we reenter the block in which it is valid it contains
         garbage (in the case of a function, it may have two
         garbage (in the case of a function, it may have two
         garbage values, one before and one after the prologue).
         garbage values, one before and one after the prologue).
         So we can't even detect the first assignment to it and
         So we can't even detect the first assignment to it and
         watch after that (since the garbage may or may not equal
         watch after that (since the garbage may or may not equal
         the first value assigned).  */
         the first value assigned).  */
      /* We print all the stop information in print_it_typical(), but
      /* We print all the stop information in print_it_typical(), but
         in this case, by the time we call print_it_typical() this bp
         in this case, by the time we call print_it_typical() this bp
         will be deleted already. So we have no choice but print the
         will be deleted already. So we have no choice but print the
         information here. */
         information here. */
#ifdef UI_OUT
#ifdef UI_OUT
      if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
      if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
        ui_out_field_string (uiout, "reason", "watchpoint-scope");
        ui_out_field_string (uiout, "reason", "watchpoint-scope");
      ui_out_text (uiout, "\nWatchpoint ");
      ui_out_text (uiout, "\nWatchpoint ");
      ui_out_field_int (uiout, "wpnum", bs->breakpoint_at->number);
      ui_out_field_int (uiout, "wpnum", bs->breakpoint_at->number);
      ui_out_text (uiout, " deleted because the program has left the block in\n\
      ui_out_text (uiout, " deleted because the program has left the block in\n\
which its expression is valid.\n");
which its expression is valid.\n");
#else
#else
      printf_filtered ("\
      printf_filtered ("\
Watchpoint %d deleted because the program has left the block in\n\
Watchpoint %d deleted because the program has left the block in\n\
which its expression is valid.\n", bs->breakpoint_at->number);
which its expression is valid.\n", bs->breakpoint_at->number);
#endif 
#endif 
 
 
      if (b->related_breakpoint)
      if (b->related_breakpoint)
        b->related_breakpoint->disposition = del_at_next_stop;
        b->related_breakpoint->disposition = del_at_next_stop;
      b->disposition = del_at_next_stop;
      b->disposition = del_at_next_stop;
 
 
      return WP_DELETED;
      return WP_DELETED;
    }
    }
}
}
 
 
/* Get a bpstat associated with having just stopped at address *PC
/* Get a bpstat associated with having just stopped at address *PC
   and frame address CORE_ADDRESS.  Update *PC to point at the
   and frame address CORE_ADDRESS.  Update *PC to point at the
   breakpoint (if we hit a breakpoint).  NOT_A_BREAKPOINT is nonzero
   breakpoint (if we hit a breakpoint).  NOT_A_BREAKPOINT is nonzero
   if this is known to not be a real breakpoint (it could still be a
   if this is known to not be a real breakpoint (it could still be a
   watchpoint, though).  */
   watchpoint, though).  */
 
 
/* Determine whether we stopped at a breakpoint, etc, or whether we
/* Determine whether we stopped at a breakpoint, etc, or whether we
   don't understand this stop.  Result is a chain of bpstat's such that:
   don't understand this stop.  Result is a chain of bpstat's such that:
 
 
   if we don't understand the stop, the result is a null pointer.
   if we don't understand the stop, the result is a null pointer.
 
 
   if we understand why we stopped, the result is not null.
   if we understand why we stopped, the result is not null.
 
 
   Each element of the chain refers to a particular breakpoint or
   Each element of the chain refers to a particular breakpoint or
   watchpoint at which we have stopped.  (We may have stopped for
   watchpoint at which we have stopped.  (We may have stopped for
   several reasons concurrently.)
   several reasons concurrently.)
 
 
   Each element of the chain has valid next, breakpoint_at,
   Each element of the chain has valid next, breakpoint_at,
   commands, FIXME??? fields.  */
   commands, FIXME??? fields.  */
 
 
bpstat
bpstat
bpstat_stop_status (pc, not_a_breakpoint)
bpstat_stop_status (pc, not_a_breakpoint)
     CORE_ADDR *pc;
     CORE_ADDR *pc;
     int not_a_breakpoint;
     int not_a_breakpoint;
{
{
  register struct breakpoint *b, *temp;
  register struct breakpoint *b, *temp;
  CORE_ADDR bp_addr;
  CORE_ADDR bp_addr;
  /* True if we've hit a breakpoint (as opposed to a watchpoint).  */
  /* True if we've hit a breakpoint (as opposed to a watchpoint).  */
  int real_breakpoint = 0;
  int real_breakpoint = 0;
  /* Root of the chain of bpstat's */
  /* Root of the chain of bpstat's */
  struct bpstats root_bs[1];
  struct bpstats root_bs[1];
  /* Pointer to the last thing in the chain currently.  */
  /* Pointer to the last thing in the chain currently.  */
  bpstat bs = root_bs;
  bpstat bs = root_bs;
  static char message1[] =
  static char message1[] =
  "Error evaluating expression for watchpoint %d\n";
  "Error evaluating expression for watchpoint %d\n";
  char message[sizeof (message1) + 30 /* slop */ ];
  char message[sizeof (message1) + 30 /* slop */ ];
 
 
  /* Get the address where the breakpoint would have been.  */
  /* Get the address where the breakpoint would have been.  */
  bp_addr = *pc - (not_a_breakpoint && !SOFTWARE_SINGLE_STEP_P ?
  bp_addr = *pc - (not_a_breakpoint && !SOFTWARE_SINGLE_STEP_P ?
                   0 : DECR_PC_AFTER_BREAK);
                   0 : DECR_PC_AFTER_BREAK);
 
 
  ALL_BREAKPOINTS_SAFE (b, temp)
  ALL_BREAKPOINTS_SAFE (b, temp)
  {
  {
    if (b->enable == disabled
    if (b->enable == disabled
        || b->enable == shlib_disabled
        || b->enable == shlib_disabled
        || b->enable == call_disabled)
        || b->enable == call_disabled)
      continue;
      continue;
 
 
    if (b->type != bp_watchpoint
    if (b->type != bp_watchpoint
        && b->type != bp_hardware_watchpoint
        && b->type != bp_hardware_watchpoint
        && b->type != bp_read_watchpoint
        && b->type != bp_read_watchpoint
        && b->type != bp_access_watchpoint
        && b->type != bp_access_watchpoint
        && b->type != bp_hardware_breakpoint
        && b->type != bp_hardware_breakpoint
        && b->type != bp_catch_fork
        && b->type != bp_catch_fork
        && b->type != bp_catch_vfork
        && b->type != bp_catch_vfork
        && b->type != bp_catch_exec
        && b->type != bp_catch_exec
        && b->type != bp_catch_catch
        && b->type != bp_catch_catch
        && b->type != bp_catch_throw)   /* a non-watchpoint bp */
        && b->type != bp_catch_throw)   /* a non-watchpoint bp */
      if (b->address != bp_addr ||      /* address doesn't match or */
      if (b->address != bp_addr ||      /* address doesn't match or */
          (overlay_debugging && /* overlay doesn't match */
          (overlay_debugging && /* overlay doesn't match */
           section_is_overlay (b->section) &&
           section_is_overlay (b->section) &&
           !section_is_mapped (b->section)))
           !section_is_mapped (b->section)))
        continue;
        continue;
 
 
    if (b->type == bp_hardware_breakpoint
    if (b->type == bp_hardware_breakpoint
        && b->address != (*pc - DECR_PC_AFTER_HW_BREAK))
        && b->address != (*pc - DECR_PC_AFTER_HW_BREAK))
      continue;
      continue;
 
 
    /* Is this a catchpoint of a load or unload?  If so, did we
    /* Is this a catchpoint of a load or unload?  If so, did we
       get a load or unload of the specified library?  If not,
       get a load or unload of the specified library?  If not,
       ignore it. */
       ignore it. */
    if ((b->type == bp_catch_load)
    if ((b->type == bp_catch_load)
#if defined(SOLIB_HAVE_LOAD_EVENT)
#if defined(SOLIB_HAVE_LOAD_EVENT)
        && (!SOLIB_HAVE_LOAD_EVENT (inferior_pid)
        && (!SOLIB_HAVE_LOAD_EVENT (inferior_pid)
            || ((b->dll_pathname != NULL)
            || ((b->dll_pathname != NULL)
                && (strcmp (b->dll_pathname,
                && (strcmp (b->dll_pathname,
                            SOLIB_LOADED_LIBRARY_PATHNAME (inferior_pid))
                            SOLIB_LOADED_LIBRARY_PATHNAME (inferior_pid))
                    != 0)))
                    != 0)))
#endif
#endif
      )
      )
      continue;
      continue;
 
 
    if ((b->type == bp_catch_unload)
    if ((b->type == bp_catch_unload)
#if defined(SOLIB_HAVE_UNLOAD_EVENT)
#if defined(SOLIB_HAVE_UNLOAD_EVENT)
        && (!SOLIB_HAVE_UNLOAD_EVENT (inferior_pid)
        && (!SOLIB_HAVE_UNLOAD_EVENT (inferior_pid)
            || ((b->dll_pathname != NULL)
            || ((b->dll_pathname != NULL)
                && (strcmp (b->dll_pathname,
                && (strcmp (b->dll_pathname,
                            SOLIB_UNLOADED_LIBRARY_PATHNAME (inferior_pid))
                            SOLIB_UNLOADED_LIBRARY_PATHNAME (inferior_pid))
                    != 0)))
                    != 0)))
#endif
#endif
      )
      )
      continue;
      continue;
 
 
    if ((b->type == bp_catch_fork)
    if ((b->type == bp_catch_fork)
        && !target_has_forked (inferior_pid, &b->forked_inferior_pid))
        && !target_has_forked (inferior_pid, &b->forked_inferior_pid))
      continue;
      continue;
 
 
    if ((b->type == bp_catch_vfork)
    if ((b->type == bp_catch_vfork)
        && !target_has_vforked (inferior_pid, &b->forked_inferior_pid))
        && !target_has_vforked (inferior_pid, &b->forked_inferior_pid))
      continue;
      continue;
 
 
    if ((b->type == bp_catch_exec)
    if ((b->type == bp_catch_exec)
        && !target_has_execd (inferior_pid, &b->exec_pathname))
        && !target_has_execd (inferior_pid, &b->exec_pathname))
      continue;
      continue;
 
 
    if (ep_is_exception_catchpoint (b) &&
    if (ep_is_exception_catchpoint (b) &&
        !(current_exception_event = target_get_current_exception_event ()))
        !(current_exception_event = target_get_current_exception_event ()))
      continue;
      continue;
 
 
    /* Come here if it's a watchpoint, or if the break address matches */
    /* Come here if it's a watchpoint, or if the break address matches */
 
 
    bs = bpstat_alloc (b, bs);  /* Alloc a bpstat to explain stop */
    bs = bpstat_alloc (b, bs);  /* Alloc a bpstat to explain stop */
 
 
    /* Watchpoints may change this, if not found to have triggered. */
    /* Watchpoints may change this, if not found to have triggered. */
    bs->stop = 1;
    bs->stop = 1;
    bs->print = 1;
    bs->print = 1;
 
 
    sprintf (message, message1, b->number);
    sprintf (message, message1, b->number);
    if (b->type == bp_watchpoint ||
    if (b->type == bp_watchpoint ||
        b->type == bp_hardware_watchpoint)
        b->type == bp_hardware_watchpoint)
      {
      {
        switch (catch_errors (watchpoint_check, bs, message,
        switch (catch_errors (watchpoint_check, bs, message,
                              RETURN_MASK_ALL))
                              RETURN_MASK_ALL))
          {
          {
          case WP_DELETED:
          case WP_DELETED:
            /* We've already printed what needs to be printed.  */
            /* We've already printed what needs to be printed.  */
            /* Actually this is superfluous, because by the time we
            /* Actually this is superfluous, because by the time we
               call print_it_typical() the wp will be already deleted,
               call print_it_typical() the wp will be already deleted,
               and the function will return immediately. */
               and the function will return immediately. */
            bs->print_it = print_it_done;
            bs->print_it = print_it_done;
            /* Stop.  */
            /* Stop.  */
            break;
            break;
          case WP_VALUE_CHANGED:
          case WP_VALUE_CHANGED:
            /* Stop.  */
            /* Stop.  */
            ++(b->hit_count);
            ++(b->hit_count);
            break;
            break;
          case WP_VALUE_NOT_CHANGED:
          case WP_VALUE_NOT_CHANGED:
            /* Don't stop.  */
            /* Don't stop.  */
            bs->print_it = print_it_noop;
            bs->print_it = print_it_noop;
            bs->stop = 0;
            bs->stop = 0;
            continue;
            continue;
          default:
          default:
            /* Can't happen.  */
            /* Can't happen.  */
            /* FALLTHROUGH */
            /* FALLTHROUGH */
          case 0:
          case 0:
            /* Error from catch_errors.  */
            /* Error from catch_errors.  */
            printf_filtered ("Watchpoint %d deleted.\n", b->number);
            printf_filtered ("Watchpoint %d deleted.\n", b->number);
            if (b->related_breakpoint)
            if (b->related_breakpoint)
              b->related_breakpoint->disposition = del_at_next_stop;
              b->related_breakpoint->disposition = del_at_next_stop;
            b->disposition = del_at_next_stop;
            b->disposition = del_at_next_stop;
            /* We've already printed what needs to be printed.  */
            /* We've already printed what needs to be printed.  */
            bs->print_it = print_it_done;
            bs->print_it = print_it_done;
 
 
            /* Stop.  */
            /* Stop.  */
            break;
            break;
          }
          }
      }
      }
    else if (b->type == bp_read_watchpoint ||
    else if (b->type == bp_read_watchpoint ||
             b->type == bp_access_watchpoint)
             b->type == bp_access_watchpoint)
      {
      {
        CORE_ADDR addr;
        CORE_ADDR addr;
        value_ptr v;
        value_ptr v;
        int found = 0;
        int found = 0;
 
 
        addr = target_stopped_data_address ();
        addr = target_stopped_data_address ();
        if (addr == 0)
        if (addr == 0)
          continue;
          continue;
        for (v = b->val_chain; v; v = v->next)
        for (v = b->val_chain; v; v = v->next)
          {
          {
            if (VALUE_LVAL (v) == lval_memory
            if (VALUE_LVAL (v) == lval_memory
                && ! VALUE_LAZY (v))
                && ! VALUE_LAZY (v))
              {
              {
                struct type *vtype = check_typedef (VALUE_TYPE (v));
                struct type *vtype = check_typedef (VALUE_TYPE (v));
 
 
                if (v == b->val_chain
                if (v == b->val_chain
                    || (TYPE_CODE (vtype) != TYPE_CODE_STRUCT
                    || (TYPE_CODE (vtype) != TYPE_CODE_STRUCT
                        && TYPE_CODE (vtype) != TYPE_CODE_ARRAY))
                        && TYPE_CODE (vtype) != TYPE_CODE_ARRAY))
                  {
                  {
                    CORE_ADDR vaddr;
                    CORE_ADDR vaddr;
 
 
                    vaddr = VALUE_ADDRESS (v) + VALUE_OFFSET (v);
                    vaddr = VALUE_ADDRESS (v) + VALUE_OFFSET (v);
                    /* Exact match not required.  Within range is
                    /* Exact match not required.  Within range is
                       sufficient.  */
                       sufficient.  */
                    if (addr >= vaddr &&
                    if (addr >= vaddr &&
                        addr < vaddr + TYPE_LENGTH (VALUE_TYPE (v)))
                        addr < vaddr + TYPE_LENGTH (VALUE_TYPE (v)))
                      found = 1;
                      found = 1;
                  }
                  }
              }
              }
          }
          }
        if (found)
        if (found)
          switch (catch_errors (watchpoint_check, bs, message,
          switch (catch_errors (watchpoint_check, bs, message,
                                RETURN_MASK_ALL))
                                RETURN_MASK_ALL))
            {
            {
            case WP_DELETED:
            case WP_DELETED:
              /* We've already printed what needs to be printed.  */
              /* We've already printed what needs to be printed.  */
              bs->print_it = print_it_done;
              bs->print_it = print_it_done;
              /* Stop.  */
              /* Stop.  */
              break;
              break;
            case WP_VALUE_CHANGED:
            case WP_VALUE_CHANGED:
              if (b->type == bp_read_watchpoint)
              if (b->type == bp_read_watchpoint)
                {
                {
                  /* Don't stop: read watchpoints shouldn't fire if
                  /* Don't stop: read watchpoints shouldn't fire if
                     the value has changed.  This is for targets which
                     the value has changed.  This is for targets which
                     cannot set read-only watchpoints.  */
                     cannot set read-only watchpoints.  */
                  bs->print_it = print_it_noop;
                  bs->print_it = print_it_noop;
                  bs->stop = 0;
                  bs->stop = 0;
                  continue;
                  continue;
                }
                }
              ++(b->hit_count);
              ++(b->hit_count);
              break;
              break;
            case WP_VALUE_NOT_CHANGED:
            case WP_VALUE_NOT_CHANGED:
              /* Stop.  */
              /* Stop.  */
              ++(b->hit_count);
              ++(b->hit_count);
              break;
              break;
            default:
            default:
              /* Can't happen.  */
              /* Can't happen.  */
            case 0:
            case 0:
              /* Error from catch_errors.  */
              /* Error from catch_errors.  */
              printf_filtered ("Watchpoint %d deleted.\n", b->number);
              printf_filtered ("Watchpoint %d deleted.\n", b->number);
              if (b->related_breakpoint)
              if (b->related_breakpoint)
                b->related_breakpoint->disposition = del_at_next_stop;
                b->related_breakpoint->disposition = del_at_next_stop;
              b->disposition = del_at_next_stop;
              b->disposition = del_at_next_stop;
              /* We've already printed what needs to be printed.  */
              /* We've already printed what needs to be printed.  */
              bs->print_it = print_it_done;
              bs->print_it = print_it_done;
              break;
              break;
            }
            }
        else    /* found == 0 */
        else    /* found == 0 */
          {
          {
            /* This is a case where some watchpoint(s) triggered,
            /* This is a case where some watchpoint(s) triggered,
               but not at the address of this watchpoint (FOUND
               but not at the address of this watchpoint (FOUND
               was left zero).  So don't print anything for this
               was left zero).  So don't print anything for this
               watchpoint.  */
               watchpoint.  */
            bs->print_it = print_it_noop;
            bs->print_it = print_it_noop;
            bs->stop = 0;
            bs->stop = 0;
            continue;
            continue;
          }
          }
      }
      }
    else
    else
      {
      {
        /* By definition, an encountered breakpoint is a triggered
        /* By definition, an encountered breakpoint is a triggered
           breakpoint. */
           breakpoint. */
        ++(b->hit_count);
        ++(b->hit_count);
 
 
        real_breakpoint = 1;
        real_breakpoint = 1;
      }
      }
 
 
    if (b->frame &&
    if (b->frame &&
       b->frame != (get_current_frame ())->frame)
       b->frame != (get_current_frame ())->frame)
      bs->stop = 0;
      bs->stop = 0;
    else
    else
      {
      {
        int value_is_zero = 0;
        int value_is_zero = 0;
 
 
        if (b->cond)
        if (b->cond)
          {
          {
            /* Need to select the frame, with all that implies
            /* Need to select the frame, with all that implies
               so that the conditions will have the right context.  */
               so that the conditions will have the right context.  */
            select_frame (get_current_frame (), 0);
            select_frame (get_current_frame (), 0);
            value_is_zero
            value_is_zero
              = catch_errors (breakpoint_cond_eval, (b->cond),
              = catch_errors (breakpoint_cond_eval, (b->cond),
                              "Error in testing breakpoint condition:\n",
                              "Error in testing breakpoint condition:\n",
                              RETURN_MASK_ALL);
                              RETURN_MASK_ALL);
            /* FIXME-someday, should give breakpoint # */
            /* FIXME-someday, should give breakpoint # */
            free_all_values ();
            free_all_values ();
          }
          }
        if (b->cond && value_is_zero)
        if (b->cond && value_is_zero)
          {
          {
            bs->stop = 0;
            bs->stop = 0;
            /* Don't consider this a hit.  */
            /* Don't consider this a hit.  */
            --(b->hit_count);
            --(b->hit_count);
          }
          }
        else if (b->ignore_count > 0)
        else if (b->ignore_count > 0)
          {
          {
            b->ignore_count--;
            b->ignore_count--;
            annotate_ignore_count_change ();
            annotate_ignore_count_change ();
            bs->stop = 0;
            bs->stop = 0;
          }
          }
        else
        else
          {
          {
            /* We will stop here */
            /* We will stop here */
            if (b->disposition == disable)
            if (b->disposition == disable)
              b->enable = disabled;
              b->enable = disabled;
            bs->commands = b->commands;
            bs->commands = b->commands;
            if (b->silent)
            if (b->silent)
              bs->print = 0;
              bs->print = 0;
            if (bs->commands &&
            if (bs->commands &&
                (STREQ ("silent", bs->commands->line) ||
                (STREQ ("silent", bs->commands->line) ||
                 (xdb_commands && STREQ ("Q", bs->commands->line))))
                 (xdb_commands && STREQ ("Q", bs->commands->line))))
              {
              {
                bs->commands = bs->commands->next;
                bs->commands = bs->commands->next;
                bs->print = 0;
                bs->print = 0;
              }
              }
          }
          }
      }
      }
    /* Print nothing for this entry if we dont stop or if we dont print.  */
    /* Print nothing for this entry if we dont stop or if we dont print.  */
    if (bs->stop == 0 || bs->print == 0)
    if (bs->stop == 0 || bs->print == 0)
      bs->print_it = print_it_noop;
      bs->print_it = print_it_noop;
  }
  }
 
 
  bs->next = NULL;              /* Terminate the chain */
  bs->next = NULL;              /* Terminate the chain */
  bs = root_bs->next;           /* Re-grab the head of the chain */
  bs = root_bs->next;           /* Re-grab the head of the chain */
 
 
  if (real_breakpoint && bs)
  if (real_breakpoint && bs)
    {
    {
      if (bs->breakpoint_at->type == bp_hardware_breakpoint)
      if (bs->breakpoint_at->type == bp_hardware_breakpoint)
        {
        {
          if (DECR_PC_AFTER_HW_BREAK != 0)
          if (DECR_PC_AFTER_HW_BREAK != 0)
            {
            {
              *pc = *pc - DECR_PC_AFTER_HW_BREAK;
              *pc = *pc - DECR_PC_AFTER_HW_BREAK;
              write_pc (*pc);
              write_pc (*pc);
            }
            }
        }
        }
      else
      else
        {
        {
          if (DECR_PC_AFTER_BREAK != 0 || must_shift_inst_regs)
          if (DECR_PC_AFTER_BREAK != 0 || must_shift_inst_regs)
            {
            {
              *pc = bp_addr;
              *pc = bp_addr;
#if defined (SHIFT_INST_REGS)
#if defined (SHIFT_INST_REGS)
              SHIFT_INST_REGS ();
              SHIFT_INST_REGS ();
#else /* No SHIFT_INST_REGS.  */
#else /* No SHIFT_INST_REGS.  */
              write_pc (bp_addr);
              write_pc (bp_addr);
#endif /* No SHIFT_INST_REGS.  */
#endif /* No SHIFT_INST_REGS.  */
            }
            }
        }
        }
    }
    }
 
 
  /* The value of a hardware watchpoint hasn't changed, but the
  /* The value of a hardware watchpoint hasn't changed, but the
     intermediate memory locations we are watching may have.  */
     intermediate memory locations we are watching may have.  */
  if (bs && !bs->stop &&
  if (bs && !bs->stop &&
      (bs->breakpoint_at->type == bp_hardware_watchpoint ||
      (bs->breakpoint_at->type == bp_hardware_watchpoint ||
       bs->breakpoint_at->type == bp_read_watchpoint ||
       bs->breakpoint_at->type == bp_read_watchpoint ||
       bs->breakpoint_at->type == bp_access_watchpoint))
       bs->breakpoint_at->type == bp_access_watchpoint))
    {
    {
      remove_breakpoints ();
      remove_breakpoints ();
      insert_breakpoints ();
      insert_breakpoints ();
    }
    }
  return bs;
  return bs;
}
}


/* Tell what to do about this bpstat.  */
/* Tell what to do about this bpstat.  */
struct bpstat_what
struct bpstat_what
bpstat_what (bs)
bpstat_what (bs)
     bpstat bs;
     bpstat bs;
{
{
  /* Classify each bpstat as one of the following.  */
  /* Classify each bpstat as one of the following.  */
  enum class
  enum class
    {
    {
      /* This bpstat element has no effect on the main_action.  */
      /* This bpstat element has no effect on the main_action.  */
      no_effect = 0,
      no_effect = 0,
 
 
      /* There was a watchpoint, stop but don't print.  */
      /* There was a watchpoint, stop but don't print.  */
      wp_silent,
      wp_silent,
 
 
      /* There was a watchpoint, stop and print.  */
      /* There was a watchpoint, stop and print.  */
      wp_noisy,
      wp_noisy,
 
 
      /* There was a breakpoint but we're not stopping.  */
      /* There was a breakpoint but we're not stopping.  */
      bp_nostop,
      bp_nostop,
 
 
      /* There was a breakpoint, stop but don't print.  */
      /* There was a breakpoint, stop but don't print.  */
      bp_silent,
      bp_silent,
 
 
      /* There was a breakpoint, stop and print.  */
      /* There was a breakpoint, stop and print.  */
      bp_noisy,
      bp_noisy,
 
 
      /* We hit the longjmp breakpoint.  */
      /* We hit the longjmp breakpoint.  */
      long_jump,
      long_jump,
 
 
      /* We hit the longjmp_resume breakpoint.  */
      /* We hit the longjmp_resume breakpoint.  */
      long_resume,
      long_resume,
 
 
      /* We hit the step_resume breakpoint.  */
      /* We hit the step_resume breakpoint.  */
      step_resume,
      step_resume,
 
 
      /* We hit the through_sigtramp breakpoint.  */
      /* We hit the through_sigtramp breakpoint.  */
      through_sig,
      through_sig,
 
 
      /* We hit the shared library event breakpoint.  */
      /* We hit the shared library event breakpoint.  */
      shlib_event,
      shlib_event,
 
 
      /* We caught a shared library event.  */
      /* We caught a shared library event.  */
      catch_shlib_event,
      catch_shlib_event,
 
 
      /* This is just used to count how many enums there are.  */
      /* This is just used to count how many enums there are.  */
      class_last
      class_last
    };
    };
 
 
  /* Here is the table which drives this routine.  So that we can
  /* Here is the table which drives this routine.  So that we can
     format it pretty, we define some abbreviations for the
     format it pretty, we define some abbreviations for the
     enum bpstat_what codes.  */
     enum bpstat_what codes.  */
#define kc BPSTAT_WHAT_KEEP_CHECKING
#define kc BPSTAT_WHAT_KEEP_CHECKING
#define ss BPSTAT_WHAT_STOP_SILENT
#define ss BPSTAT_WHAT_STOP_SILENT
#define sn BPSTAT_WHAT_STOP_NOISY
#define sn BPSTAT_WHAT_STOP_NOISY
#define sgl BPSTAT_WHAT_SINGLE
#define sgl BPSTAT_WHAT_SINGLE
#define slr BPSTAT_WHAT_SET_LONGJMP_RESUME
#define slr BPSTAT_WHAT_SET_LONGJMP_RESUME
#define clr BPSTAT_WHAT_CLEAR_LONGJMP_RESUME
#define clr BPSTAT_WHAT_CLEAR_LONGJMP_RESUME
#define clrs BPSTAT_WHAT_CLEAR_LONGJMP_RESUME_SINGLE
#define clrs BPSTAT_WHAT_CLEAR_LONGJMP_RESUME_SINGLE
#define sr BPSTAT_WHAT_STEP_RESUME
#define sr BPSTAT_WHAT_STEP_RESUME
#define ts BPSTAT_WHAT_THROUGH_SIGTRAMP
#define ts BPSTAT_WHAT_THROUGH_SIGTRAMP
#define shl BPSTAT_WHAT_CHECK_SHLIBS
#define shl BPSTAT_WHAT_CHECK_SHLIBS
#define shlr BPSTAT_WHAT_CHECK_SHLIBS_RESUME_FROM_HOOK
#define shlr BPSTAT_WHAT_CHECK_SHLIBS_RESUME_FROM_HOOK
 
 
/* "Can't happen."  Might want to print an error message.
/* "Can't happen."  Might want to print an error message.
   abort() is not out of the question, but chances are GDB is just
   abort() is not out of the question, but chances are GDB is just
   a bit confused, not unusable.  */
   a bit confused, not unusable.  */
#define err BPSTAT_WHAT_STOP_NOISY
#define err BPSTAT_WHAT_STOP_NOISY
 
 
  /* Given an old action and a class, come up with a new action.  */
  /* Given an old action and a class, come up with a new action.  */
  /* One interesting property of this table is that wp_silent is the same
  /* One interesting property of this table is that wp_silent is the same
     as bp_silent and wp_noisy is the same as bp_noisy.  That is because
     as bp_silent and wp_noisy is the same as bp_noisy.  That is because
     after stopping, the check for whether to step over a breakpoint
     after stopping, the check for whether to step over a breakpoint
     (BPSTAT_WHAT_SINGLE type stuff) is handled in proceed() without
     (BPSTAT_WHAT_SINGLE type stuff) is handled in proceed() without
     reference to how we stopped.  We retain separate wp_silent and
     reference to how we stopped.  We retain separate wp_silent and
     bp_silent codes in case we want to change that someday.
     bp_silent codes in case we want to change that someday.
 
 
     Another possibly interesting property of this table is that
     Another possibly interesting property of this table is that
     there's a partial ordering, priority-like, of the actions.  Once
     there's a partial ordering, priority-like, of the actions.  Once
     you've decided that some action is appropriate, you'll never go
     you've decided that some action is appropriate, you'll never go
     back and decide something of a lower priority is better.  The
     back and decide something of a lower priority is better.  The
     ordering is:
     ordering is:
 
 
     kc   < clr sgl shl slr sn sr ss ts
     kc   < clr sgl shl slr sn sr ss ts
     sgl  < clrs shl shlr slr sn sr ss ts
     sgl  < clrs shl shlr slr sn sr ss ts
     slr  < err shl shlr sn sr ss ts
     slr  < err shl shlr sn sr ss ts
     clr  < clrs err shl shlr sn sr ss ts
     clr  < clrs err shl shlr sn sr ss ts
     clrs < err shl shlr sn sr ss ts
     clrs < err shl shlr sn sr ss ts
     ss   < shl shlr sn sr ts
     ss   < shl shlr sn sr ts
     sn   < shl shlr sr ts
     sn   < shl shlr sr ts
     sr   < shl shlr ts
     sr   < shl shlr ts
     shl  < shlr
     shl  < shlr
     ts   <
     ts   <
     shlr <
     shlr <
 
 
     What I think this means is that we don't need a damned table
     What I think this means is that we don't need a damned table
     here.  If you just put the rows and columns in the right order,
     here.  If you just put the rows and columns in the right order,
     it'd look awfully regular.  We could simply walk the bpstat list
     it'd look awfully regular.  We could simply walk the bpstat list
     and choose the highest priority action we find, with a little
     and choose the highest priority action we find, with a little
     logic to handle the 'err' cases, and the CLEAR_LONGJMP_RESUME/
     logic to handle the 'err' cases, and the CLEAR_LONGJMP_RESUME/
     CLEAR_LONGJMP_RESUME_SINGLE distinction (which breakpoint.h says
     CLEAR_LONGJMP_RESUME_SINGLE distinction (which breakpoint.h says
     is messy anyway).  */
     is messy anyway).  */
 
 
  /* step_resume entries: a step resume breakpoint overrides another
  /* step_resume entries: a step resume breakpoint overrides another
     breakpoint of signal handling (see comment in wait_for_inferior
     breakpoint of signal handling (see comment in wait_for_inferior
     at first IN_SIGTRAMP where we set the step_resume breakpoint).  */
     at first IN_SIGTRAMP where we set the step_resume breakpoint).  */
  /* We handle the through_sigtramp_breakpoint the same way; having both
  /* We handle the through_sigtramp_breakpoint the same way; having both
     one of those and a step_resume_breakpoint is probably very rare (?).  */
     one of those and a step_resume_breakpoint is probably very rare (?).  */
 
 
  static const enum bpstat_what_main_action
  static const enum bpstat_what_main_action
    table[(int) class_last][(int) BPSTAT_WHAT_LAST] =
    table[(int) class_last][(int) BPSTAT_WHAT_LAST] =
  {
  {
  /*                              old action */
  /*                              old action */
  /*       kc    ss    sn    sgl    slr   clr    clrs   sr    ts   shl   shlr
  /*       kc    ss    sn    sgl    slr   clr    clrs   sr    ts   shl   shlr
   */
   */
/*no_effect */
/*no_effect */
    {kc, ss, sn, sgl, slr, clr, clrs, sr, ts, shl, shlr},
    {kc, ss, sn, sgl, slr, clr, clrs, sr, ts, shl, shlr},
/*wp_silent */
/*wp_silent */
    {ss, ss, sn, ss, ss, ss, ss, sr, ts, shl, shlr},
    {ss, ss, sn, ss, ss, ss, ss, sr, ts, shl, shlr},
/*wp_noisy */
/*wp_noisy */
    {sn, sn, sn, sn, sn, sn, sn, sr, ts, shl, shlr},
    {sn, sn, sn, sn, sn, sn, sn, sr, ts, shl, shlr},
/*bp_nostop */
/*bp_nostop */
    {sgl, ss, sn, sgl, slr, clrs, clrs, sr, ts, shl, shlr},
    {sgl, ss, sn, sgl, slr, clrs, clrs, sr, ts, shl, shlr},
/*bp_silent */
/*bp_silent */
    {ss, ss, sn, ss, ss, ss, ss, sr, ts, shl, shlr},
    {ss, ss, sn, ss, ss, ss, ss, sr, ts, shl, shlr},
/*bp_noisy */
/*bp_noisy */
    {sn, sn, sn, sn, sn, sn, sn, sr, ts, shl, shlr},
    {sn, sn, sn, sn, sn, sn, sn, sr, ts, shl, shlr},
/*long_jump */
/*long_jump */
    {slr, ss, sn, slr, err, err, err, sr, ts, shl, shlr},
    {slr, ss, sn, slr, err, err, err, sr, ts, shl, shlr},
/*long_resume */
/*long_resume */
    {clr, ss, sn, clrs, err, err, err, sr, ts, shl, shlr},
    {clr, ss, sn, clrs, err, err, err, sr, ts, shl, shlr},
/*step_resume */
/*step_resume */
    {sr, sr, sr, sr, sr, sr, sr, sr, ts, shl, shlr},
    {sr, sr, sr, sr, sr, sr, sr, sr, ts, shl, shlr},
/*through_sig */
/*through_sig */
    {ts, ts, ts, ts, ts, ts, ts, ts, ts, shl, shlr},
    {ts, ts, ts, ts, ts, ts, ts, ts, ts, shl, shlr},
/*shlib */
/*shlib */
    {shl, shl, shl, shl, shl, shl, shl, shl, ts, shl, shlr},
    {shl, shl, shl, shl, shl, shl, shl, shl, ts, shl, shlr},
/*catch_shlib */
/*catch_shlib */
    {shlr, shlr, shlr, shlr, shlr, shlr, shlr, shlr, ts, shlr, shlr}
    {shlr, shlr, shlr, shlr, shlr, shlr, shlr, shlr, ts, shlr, shlr}
  };
  };
 
 
#undef kc
#undef kc
#undef ss
#undef ss
#undef sn
#undef sn
#undef sgl
#undef sgl
#undef slr
#undef slr
#undef clr
#undef clr
#undef clrs
#undef clrs
#undef err
#undef err
#undef sr
#undef sr
#undef ts
#undef ts
#undef shl
#undef shl
#undef shlr
#undef shlr
  enum bpstat_what_main_action current_action = BPSTAT_WHAT_KEEP_CHECKING;
  enum bpstat_what_main_action current_action = BPSTAT_WHAT_KEEP_CHECKING;
  struct bpstat_what retval;
  struct bpstat_what retval;
 
 
  retval.call_dummy = 0;
  retval.call_dummy = 0;
  for (; bs != NULL; bs = bs->next)
  for (; bs != NULL; bs = bs->next)
    {
    {
      enum class bs_class = no_effect;
      enum class bs_class = no_effect;
      if (bs->breakpoint_at == NULL)
      if (bs->breakpoint_at == NULL)
        /* I suspect this can happen if it was a momentary breakpoint
        /* I suspect this can happen if it was a momentary breakpoint
           which has since been deleted.  */
           which has since been deleted.  */
        continue;
        continue;
      switch (bs->breakpoint_at->type)
      switch (bs->breakpoint_at->type)
        {
        {
        case bp_none:
        case bp_none:
          continue;
          continue;
 
 
        case bp_breakpoint:
        case bp_breakpoint:
        case bp_hardware_breakpoint:
        case bp_hardware_breakpoint:
        case bp_until:
        case bp_until:
        case bp_finish:
        case bp_finish:
          if (bs->stop)
          if (bs->stop)
            {
            {
              if (bs->print)
              if (bs->print)
                bs_class = bp_noisy;
                bs_class = bp_noisy;
              else
              else
                bs_class = bp_silent;
                bs_class = bp_silent;
            }
            }
          else
          else
            bs_class = bp_nostop;
            bs_class = bp_nostop;
          break;
          break;
        case bp_watchpoint:
        case bp_watchpoint:
        case bp_hardware_watchpoint:
        case bp_hardware_watchpoint:
        case bp_read_watchpoint:
        case bp_read_watchpoint:
        case bp_access_watchpoint:
        case bp_access_watchpoint:
          if (bs->stop)
          if (bs->stop)
            {
            {
              if (bs->print)
              if (bs->print)
                bs_class = wp_noisy;
                bs_class = wp_noisy;
              else
              else
                bs_class = wp_silent;
                bs_class = wp_silent;
            }
            }
          else
          else
            /* There was a watchpoint, but we're not stopping.
            /* There was a watchpoint, but we're not stopping.
               This requires no further action.  */
               This requires no further action.  */
            bs_class = no_effect;
            bs_class = no_effect;
          break;
          break;
        case bp_longjmp:
        case bp_longjmp:
          bs_class = long_jump;
          bs_class = long_jump;
          break;
          break;
        case bp_longjmp_resume:
        case bp_longjmp_resume:
          bs_class = long_resume;
          bs_class = long_resume;
          break;
          break;
        case bp_step_resume:
        case bp_step_resume:
          if (bs->stop)
          if (bs->stop)
            {
            {
              bs_class = step_resume;
              bs_class = step_resume;
            }
            }
          else
          else
            /* It is for the wrong frame.  */
            /* It is for the wrong frame.  */
            bs_class = bp_nostop;
            bs_class = bp_nostop;
          break;
          break;
        case bp_through_sigtramp:
        case bp_through_sigtramp:
          bs_class = through_sig;
          bs_class = through_sig;
          break;
          break;
        case bp_watchpoint_scope:
        case bp_watchpoint_scope:
          bs_class = bp_nostop;
          bs_class = bp_nostop;
          break;
          break;
        case bp_shlib_event:
        case bp_shlib_event:
          bs_class = shlib_event;
          bs_class = shlib_event;
          break;
          break;
        case bp_thread_event:
        case bp_thread_event:
          bs_class = bp_nostop;
          bs_class = bp_nostop;
          break;
          break;
        case bp_catch_load:
        case bp_catch_load:
        case bp_catch_unload:
        case bp_catch_unload:
          /* Only if this catchpoint triggered should we cause the
          /* Only if this catchpoint triggered should we cause the
             step-out-of-dld behaviour.  Otherwise, we ignore this
             step-out-of-dld behaviour.  Otherwise, we ignore this
             catchpoint.  */
             catchpoint.  */
          if (bs->stop)
          if (bs->stop)
            bs_class = catch_shlib_event;
            bs_class = catch_shlib_event;
          else
          else
            bs_class = no_effect;
            bs_class = no_effect;
          break;
          break;
        case bp_catch_fork:
        case bp_catch_fork:
        case bp_catch_vfork:
        case bp_catch_vfork:
        case bp_catch_exec:
        case bp_catch_exec:
          if (bs->stop)
          if (bs->stop)
            {
            {
              if (bs->print)
              if (bs->print)
                bs_class = bp_noisy;
                bs_class = bp_noisy;
              else
              else
                bs_class = bp_silent;
                bs_class = bp_silent;
            }
            }
          else
          else
            /* There was a catchpoint, but we're not stopping.
            /* There was a catchpoint, but we're not stopping.
               This requires no further action.  */
               This requires no further action.  */
            bs_class = no_effect;
            bs_class = no_effect;
          break;
          break;
        case bp_catch_catch:
        case bp_catch_catch:
          if (!bs->stop || CURRENT_EXCEPTION_KIND != EX_EVENT_CATCH)
          if (!bs->stop || CURRENT_EXCEPTION_KIND != EX_EVENT_CATCH)
            bs_class = bp_nostop;
            bs_class = bp_nostop;
          else if (bs->stop)
          else if (bs->stop)
            bs_class = bs->print ? bp_noisy : bp_silent;
            bs_class = bs->print ? bp_noisy : bp_silent;
          break;
          break;
        case bp_catch_throw:
        case bp_catch_throw:
          if (!bs->stop || CURRENT_EXCEPTION_KIND != EX_EVENT_THROW)
          if (!bs->stop || CURRENT_EXCEPTION_KIND != EX_EVENT_THROW)
            bs_class = bp_nostop;
            bs_class = bp_nostop;
          else if (bs->stop)
          else if (bs->stop)
            bs_class = bs->print ? bp_noisy : bp_silent;
            bs_class = bs->print ? bp_noisy : bp_silent;
          break;
          break;
        case bp_call_dummy:
        case bp_call_dummy:
          /* Make sure the action is stop (silent or noisy),
          /* Make sure the action is stop (silent or noisy),
             so infrun.c pops the dummy frame.  */
             so infrun.c pops the dummy frame.  */
          bs_class = bp_silent;
          bs_class = bp_silent;
          retval.call_dummy = 1;
          retval.call_dummy = 1;
          break;
          break;
        }
        }
      current_action = table[(int) bs_class][(int) current_action];
      current_action = table[(int) bs_class][(int) current_action];
    }
    }
  retval.main_action = current_action;
  retval.main_action = current_action;
  return retval;
  return retval;
}
}
 
 
/* Nonzero if we should step constantly (e.g. watchpoints on machines
/* Nonzero if we should step constantly (e.g. watchpoints on machines
   without hardware support).  This isn't related to a specific bpstat,
   without hardware support).  This isn't related to a specific bpstat,
   just to things like whether watchpoints are set.  */
   just to things like whether watchpoints are set.  */
 
 
int
int
bpstat_should_step ()
bpstat_should_step ()
{
{
  struct breakpoint *b;
  struct breakpoint *b;
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    if (b->enable == enabled && b->type == bp_watchpoint)
    if (b->enable == enabled && b->type == bp_watchpoint)
    return 1;
    return 1;
  return 0;
  return 0;
}
}
 
 
/* Nonzero if there are enabled hardware watchpoints. */
/* Nonzero if there are enabled hardware watchpoints. */
int
int
bpstat_have_active_hw_watchpoints ()
bpstat_have_active_hw_watchpoints ()
{
{
  struct breakpoint *b;
  struct breakpoint *b;
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    if ((b->enable == enabled) &&
    if ((b->enable == enabled) &&
        (b->inserted) &&
        (b->inserted) &&
        ((b->type == bp_hardware_watchpoint) ||
        ((b->type == bp_hardware_watchpoint) ||
         (b->type == bp_read_watchpoint) ||
         (b->type == bp_read_watchpoint) ||
         (b->type == bp_access_watchpoint)))
         (b->type == bp_access_watchpoint)))
    return 1;
    return 1;
  return 0;
  return 0;
}
}


 
 
/* Given a bpstat that records zero or more triggered eventpoints, this
/* Given a bpstat that records zero or more triggered eventpoints, this
   function returns another bpstat which contains only the catchpoints
   function returns another bpstat which contains only the catchpoints
   on that first list, if any. */
   on that first list, if any. */
void
void
bpstat_get_triggered_catchpoints (ep_list, cp_list)
bpstat_get_triggered_catchpoints (ep_list, cp_list)
     bpstat ep_list;
     bpstat ep_list;
     bpstat *cp_list;
     bpstat *cp_list;
{
{
  struct bpstats root_bs[1];
  struct bpstats root_bs[1];
  bpstat bs = root_bs;
  bpstat bs = root_bs;
  struct breakpoint *ep;
  struct breakpoint *ep;
  char *dll_pathname;
  char *dll_pathname;
 
 
  bpstat_clear (cp_list);
  bpstat_clear (cp_list);
  root_bs->next = NULL;
  root_bs->next = NULL;
 
 
  for (; ep_list != NULL; ep_list = ep_list->next)
  for (; ep_list != NULL; ep_list = ep_list->next)
    {
    {
      /* Is this eventpoint a catchpoint?  If not, ignore it. */
      /* Is this eventpoint a catchpoint?  If not, ignore it. */
      ep = ep_list->breakpoint_at;
      ep = ep_list->breakpoint_at;
      if (ep == NULL)
      if (ep == NULL)
        break;
        break;
      if ((ep->type != bp_catch_load) &&
      if ((ep->type != bp_catch_load) &&
          (ep->type != bp_catch_unload) &&
          (ep->type != bp_catch_unload) &&
          (ep->type != bp_catch_catch) &&
          (ep->type != bp_catch_catch) &&
          (ep->type != bp_catch_throw))
          (ep->type != bp_catch_throw))
        /* pai: (temp) ADD fork/vfork here!!  */
        /* pai: (temp) ADD fork/vfork here!!  */
        continue;
        continue;
 
 
      /* Yes; add it to the list. */
      /* Yes; add it to the list. */
      bs = bpstat_alloc (ep, bs);
      bs = bpstat_alloc (ep, bs);
      *bs = *ep_list;
      *bs = *ep_list;
      bs->next = NULL;
      bs->next = NULL;
      bs = root_bs->next;
      bs = root_bs->next;
 
 
#if defined(SOLIB_ADD)
#if defined(SOLIB_ADD)
      /* Also, for each triggered catchpoint, tag it with the name of
      /* Also, for each triggered catchpoint, tag it with the name of
         the library that caused this trigger.  (We copy the name now,
         the library that caused this trigger.  (We copy the name now,
         because it's only guaranteed to be available NOW, when the
         because it's only guaranteed to be available NOW, when the
         catchpoint triggers.  Clients who may wish to know the name
         catchpoint triggers.  Clients who may wish to know the name
         later must get it from the catchpoint itself.) */
         later must get it from the catchpoint itself.) */
      if (ep->triggered_dll_pathname != NULL)
      if (ep->triggered_dll_pathname != NULL)
        free (ep->triggered_dll_pathname);
        free (ep->triggered_dll_pathname);
      if (ep->type == bp_catch_load)
      if (ep->type == bp_catch_load)
        dll_pathname = SOLIB_LOADED_LIBRARY_PATHNAME (inferior_pid);
        dll_pathname = SOLIB_LOADED_LIBRARY_PATHNAME (inferior_pid);
      else
      else
        dll_pathname = SOLIB_UNLOADED_LIBRARY_PATHNAME (inferior_pid);
        dll_pathname = SOLIB_UNLOADED_LIBRARY_PATHNAME (inferior_pid);
#else
#else
      dll_pathname = NULL;
      dll_pathname = NULL;
#endif
#endif
      if (dll_pathname)
      if (dll_pathname)
        {
        {
          ep->triggered_dll_pathname = (char *)
          ep->triggered_dll_pathname = (char *)
            xmalloc (strlen (dll_pathname) + 1);
            xmalloc (strlen (dll_pathname) + 1);
          strcpy (ep->triggered_dll_pathname, dll_pathname);
          strcpy (ep->triggered_dll_pathname, dll_pathname);
        }
        }
      else
      else
        ep->triggered_dll_pathname = NULL;
        ep->triggered_dll_pathname = NULL;
    }
    }
 
 
  *cp_list = bs;
  *cp_list = bs;
}
}
 
 
/* Print B to gdb_stdout. */
/* Print B to gdb_stdout. */
static void
static void
print_one_breakpoint (struct breakpoint *b,
print_one_breakpoint (struct breakpoint *b,
                      CORE_ADDR *last_addr)
                      CORE_ADDR *last_addr)
{
{
  register struct command_line *l;
  register struct command_line *l;
  register struct symbol *sym;
  register struct symbol *sym;
  struct ep_type_description
  struct ep_type_description
    {
    {
      enum bptype type;
      enum bptype type;
      char *description;
      char *description;
    };
    };
  static struct ep_type_description bptypes[] =
  static struct ep_type_description bptypes[] =
  {
  {
    {bp_none, "?deleted?"},
    {bp_none, "?deleted?"},
    {bp_breakpoint, "breakpoint"},
    {bp_breakpoint, "breakpoint"},
    {bp_hardware_breakpoint, "hw breakpoint"},
    {bp_hardware_breakpoint, "hw breakpoint"},
    {bp_until, "until"},
    {bp_until, "until"},
    {bp_finish, "finish"},
    {bp_finish, "finish"},
    {bp_watchpoint, "watchpoint"},
    {bp_watchpoint, "watchpoint"},
    {bp_hardware_watchpoint, "hw watchpoint"},
    {bp_hardware_watchpoint, "hw watchpoint"},
    {bp_read_watchpoint, "read watchpoint"},
    {bp_read_watchpoint, "read watchpoint"},
    {bp_access_watchpoint, "acc watchpoint"},
    {bp_access_watchpoint, "acc watchpoint"},
    {bp_longjmp, "longjmp"},
    {bp_longjmp, "longjmp"},
    {bp_longjmp_resume, "longjmp resume"},
    {bp_longjmp_resume, "longjmp resume"},
    {bp_step_resume, "step resume"},
    {bp_step_resume, "step resume"},
    {bp_through_sigtramp, "sigtramp"},
    {bp_through_sigtramp, "sigtramp"},
    {bp_watchpoint_scope, "watchpoint scope"},
    {bp_watchpoint_scope, "watchpoint scope"},
    {bp_call_dummy, "call dummy"},
    {bp_call_dummy, "call dummy"},
    {bp_shlib_event, "shlib events"},
    {bp_shlib_event, "shlib events"},
    {bp_thread_event, "thread events"},
    {bp_thread_event, "thread events"},
    {bp_catch_load, "catch load"},
    {bp_catch_load, "catch load"},
    {bp_catch_unload, "catch unload"},
    {bp_catch_unload, "catch unload"},
    {bp_catch_fork, "catch fork"},
    {bp_catch_fork, "catch fork"},
    {bp_catch_vfork, "catch vfork"},
    {bp_catch_vfork, "catch vfork"},
    {bp_catch_exec, "catch exec"},
    {bp_catch_exec, "catch exec"},
    {bp_catch_catch, "catch catch"},
    {bp_catch_catch, "catch catch"},
    {bp_catch_throw, "catch throw"}
    {bp_catch_throw, "catch throw"}
  };
  };
 
 
  static char *bpdisps[] =
  static char *bpdisps[] =
  {"del", "dstp", "dis", "keep"};
  {"del", "dstp", "dis", "keep"};
  static char bpenables[] = "nynny";
  static char bpenables[] = "nynny";
  char wrap_indent[80];
  char wrap_indent[80];
#ifdef UI_OUT
#ifdef UI_OUT
  struct ui_stream *stb = ui_out_stream_new (uiout);
  struct ui_stream *stb = ui_out_stream_new (uiout);
  struct cleanup *old_chain = make_cleanup_ui_out_stream_delete (stb);
  struct cleanup *old_chain = make_cleanup_ui_out_stream_delete (stb);
#endif
#endif
 
 
  annotate_record ();
  annotate_record ();
#ifdef UI_OUT
#ifdef UI_OUT
  ui_out_list_begin (uiout, "bkpt");
  ui_out_list_begin (uiout, "bkpt");
#endif
#endif
 
 
  /* 1 */
  /* 1 */
  annotate_field (0);
  annotate_field (0);
#ifdef UI_OUT
#ifdef UI_OUT
  ui_out_field_int (uiout, "number", b->number);
  ui_out_field_int (uiout, "number", b->number);
#else
#else
  printf_filtered ("%-3d ", b->number);
  printf_filtered ("%-3d ", b->number);
#endif
#endif
 
 
  /* 2 */
  /* 2 */
  annotate_field (1);
  annotate_field (1);
  if (((int) b->type > (sizeof (bptypes) / sizeof (bptypes[0])))
  if (((int) b->type > (sizeof (bptypes) / sizeof (bptypes[0])))
      || ((int) b->type != bptypes[(int) b->type].type))
      || ((int) b->type != bptypes[(int) b->type].type))
    internal_error ("bptypes table does not describe type #%d.",
    internal_error ("bptypes table does not describe type #%d.",
                    (int) b->type);
                    (int) b->type);
#ifdef UI_OUT
#ifdef UI_OUT
  ui_out_field_string (uiout, "type", bptypes[(int) b->type].description);
  ui_out_field_string (uiout, "type", bptypes[(int) b->type].description);
#else
#else
  printf_filtered ("%-14s ", bptypes[(int) b->type].description);
  printf_filtered ("%-14s ", bptypes[(int) b->type].description);
#endif
#endif
 
 
  /* 3 */
  /* 3 */
  annotate_field (2);
  annotate_field (2);
#ifdef UI_OUT
#ifdef UI_OUT
  ui_out_field_string (uiout, "disp", bpdisps[(int) b->disposition]);
  ui_out_field_string (uiout, "disp", bpdisps[(int) b->disposition]);
#else
#else
  printf_filtered ("%-4s ", bpdisps[(int) b->disposition]);
  printf_filtered ("%-4s ", bpdisps[(int) b->disposition]);
#endif
#endif
 
 
  /* 4 */
  /* 4 */
  annotate_field (3);
  annotate_field (3);
#ifdef UI_OUT
#ifdef UI_OUT
  ui_out_field_fmt (uiout, "enabled", "%c", bpenables[(int) b->enable]);
  ui_out_field_fmt (uiout, "enabled", "%c", bpenables[(int) b->enable]);
  ui_out_spaces (uiout, 2);
  ui_out_spaces (uiout, 2);
#else
#else
  printf_filtered ("%-3c ", bpenables[(int) b->enable]);
  printf_filtered ("%-3c ", bpenables[(int) b->enable]);
#endif
#endif
 
 
  /* 5 and 6 */
  /* 5 and 6 */
  strcpy (wrap_indent, "                           ");
  strcpy (wrap_indent, "                           ");
  if (addressprint)
  if (addressprint)
    strcat (wrap_indent, "           ");
    strcat (wrap_indent, "           ");
  switch (b->type)
  switch (b->type)
    {
    {
    case bp_none:
    case bp_none:
      internal_error ("print_one_breakpoint: bp_none encountered\n");
      internal_error ("print_one_breakpoint: bp_none encountered\n");
      break;
      break;
 
 
    case bp_watchpoint:
    case bp_watchpoint:
    case bp_hardware_watchpoint:
    case bp_hardware_watchpoint:
    case bp_read_watchpoint:
    case bp_read_watchpoint:
    case bp_access_watchpoint:
    case bp_access_watchpoint:
      /* Field 4, the address, is omitted (which makes the columns
      /* Field 4, the address, is omitted (which makes the columns
         not line up too nicely with the headers, but the effect
         not line up too nicely with the headers, but the effect
         is relatively readable).  */
         is relatively readable).  */
#ifdef UI_OUT
#ifdef UI_OUT
      if (addressprint)
      if (addressprint)
        ui_out_field_skip (uiout, "addr");
        ui_out_field_skip (uiout, "addr");
      annotate_field (5);
      annotate_field (5);
      print_expression (b->exp, stb->stream);
      print_expression (b->exp, stb->stream);
      ui_out_field_stream (uiout, "what", stb);
      ui_out_field_stream (uiout, "what", stb);
#else
#else
      annotate_field (5);
      annotate_field (5);
      print_expression (b->exp, gdb_stdout);
      print_expression (b->exp, gdb_stdout);
#endif
#endif
      break;
      break;
 
 
    case bp_catch_load:
    case bp_catch_load:
    case bp_catch_unload:
    case bp_catch_unload:
      /* Field 4, the address, is omitted (which makes the columns
      /* Field 4, the address, is omitted (which makes the columns
         not line up too nicely with the headers, but the effect
         not line up too nicely with the headers, but the effect
         is relatively readable).  */
         is relatively readable).  */
#ifdef UI_OUT
#ifdef UI_OUT
      if (addressprint)
      if (addressprint)
        ui_out_field_skip (uiout, "addr");
        ui_out_field_skip (uiout, "addr");
      annotate_field (5);
      annotate_field (5);
      if (b->dll_pathname == NULL)
      if (b->dll_pathname == NULL)
        {
        {
          ui_out_field_string (uiout, "what", "<any library>");
          ui_out_field_string (uiout, "what", "<any library>");
          ui_out_spaces (uiout, 1);
          ui_out_spaces (uiout, 1);
        }
        }
      else
      else
        {
        {
          ui_out_text (uiout, "library \"");
          ui_out_text (uiout, "library \"");
          ui_out_field_string (uiout, "what", b->dll_pathname);
          ui_out_field_string (uiout, "what", b->dll_pathname);
          ui_out_text (uiout, "\" ");
          ui_out_text (uiout, "\" ");
        }
        }
#else
#else
      annotate_field (5);
      annotate_field (5);
      if (b->dll_pathname == NULL)
      if (b->dll_pathname == NULL)
        printf_filtered ("<any library> ");
        printf_filtered ("<any library> ");
      else
      else
        printf_filtered ("library \"%s\" ", b->dll_pathname);
        printf_filtered ("library \"%s\" ", b->dll_pathname);
#endif
#endif
      break;
      break;
 
 
    case bp_catch_fork:
    case bp_catch_fork:
    case bp_catch_vfork:
    case bp_catch_vfork:
      /* Field 4, the address, is omitted (which makes the columns
      /* Field 4, the address, is omitted (which makes the columns
         not line up too nicely with the headers, but the effect
         not line up too nicely with the headers, but the effect
         is relatively readable).  */
         is relatively readable).  */
#ifdef UI_OUT
#ifdef UI_OUT
      if (addressprint)
      if (addressprint)
        ui_out_field_skip (uiout, "addr");
        ui_out_field_skip (uiout, "addr");
      annotate_field (5);
      annotate_field (5);
      if (b->forked_inferior_pid != 0)
      if (b->forked_inferior_pid != 0)
        {
        {
          ui_out_text (uiout, "process ");
          ui_out_text (uiout, "process ");
          ui_out_field_int (uiout, "what", b->forked_inferior_pid);
          ui_out_field_int (uiout, "what", b->forked_inferior_pid);
          ui_out_spaces (uiout, 1);
          ui_out_spaces (uiout, 1);
        }
        }
#else
#else
      annotate_field (5);
      annotate_field (5);
      if (b->forked_inferior_pid != 0)
      if (b->forked_inferior_pid != 0)
        printf_filtered ("process %d ", b->forked_inferior_pid);
        printf_filtered ("process %d ", b->forked_inferior_pid);
      break;
      break;
#endif
#endif
 
 
    case bp_catch_exec:
    case bp_catch_exec:
      /* Field 4, the address, is omitted (which makes the columns
      /* Field 4, the address, is omitted (which makes the columns
         not line up too nicely with the headers, but the effect
         not line up too nicely with the headers, but the effect
         is relatively readable).  */
         is relatively readable).  */
#ifdef UI_OUT
#ifdef UI_OUT
      if (addressprint)
      if (addressprint)
        ui_out_field_skip (uiout, "addr");
        ui_out_field_skip (uiout, "addr");
      annotate_field (5);
      annotate_field (5);
      if (b->exec_pathname != NULL)
      if (b->exec_pathname != NULL)
        {
        {
          ui_out_text (uiout, "program \"");
          ui_out_text (uiout, "program \"");
          ui_out_field_string (uiout, "what", b->exec_pathname);
          ui_out_field_string (uiout, "what", b->exec_pathname);
          ui_out_text (uiout, "\" ");
          ui_out_text (uiout, "\" ");
        }
        }
#else
#else
      annotate_field (5);
      annotate_field (5);
      if (b->exec_pathname != NULL)
      if (b->exec_pathname != NULL)
        printf_filtered ("program \"%s\" ", b->exec_pathname);
        printf_filtered ("program \"%s\" ", b->exec_pathname);
#endif
#endif
      break;
      break;
 
 
    case bp_catch_catch:
    case bp_catch_catch:
      /* Field 4, the address, is omitted (which makes the columns
      /* Field 4, the address, is omitted (which makes the columns
         not line up too nicely with the headers, but the effect
         not line up too nicely with the headers, but the effect
         is relatively readable).  */
         is relatively readable).  */
#ifdef UI_OUT
#ifdef UI_OUT
      if (addressprint)
      if (addressprint)
        ui_out_field_skip (uiout, "addr");
        ui_out_field_skip (uiout, "addr");
      annotate_field (5);
      annotate_field (5);
      ui_out_field_string (uiout, "what", "exception catch");
      ui_out_field_string (uiout, "what", "exception catch");
      ui_out_spaces (uiout, 1);
      ui_out_spaces (uiout, 1);
#else
#else
      annotate_field (5);
      annotate_field (5);
      printf_filtered ("exception catch ");
      printf_filtered ("exception catch ");
#endif
#endif
      break;
      break;
 
 
    case bp_catch_throw:
    case bp_catch_throw:
      /* Field 4, the address, is omitted (which makes the columns
      /* Field 4, the address, is omitted (which makes the columns
         not line up too nicely with the headers, but the effect
         not line up too nicely with the headers, but the effect
         is relatively readable).  */
         is relatively readable).  */
#ifdef UI_OUT
#ifdef UI_OUT
      if (addressprint)
      if (addressprint)
        ui_out_field_skip (uiout, "addr");
        ui_out_field_skip (uiout, "addr");
      annotate_field (5);
      annotate_field (5);
      ui_out_field_string (uiout, "what", "exception throw");
      ui_out_field_string (uiout, "what", "exception throw");
      ui_out_spaces (uiout, 1);
      ui_out_spaces (uiout, 1);
#else
#else
      annotate_field (5);
      annotate_field (5);
      printf_filtered ("exception throw ");
      printf_filtered ("exception throw ");
#endif
#endif
      break;
      break;
 
 
    case bp_breakpoint:
    case bp_breakpoint:
    case bp_hardware_breakpoint:
    case bp_hardware_breakpoint:
    case bp_until:
    case bp_until:
    case bp_finish:
    case bp_finish:
    case bp_longjmp:
    case bp_longjmp:
    case bp_longjmp_resume:
    case bp_longjmp_resume:
    case bp_step_resume:
    case bp_step_resume:
    case bp_through_sigtramp:
    case bp_through_sigtramp:
    case bp_watchpoint_scope:
    case bp_watchpoint_scope:
    case bp_call_dummy:
    case bp_call_dummy:
    case bp_shlib_event:
    case bp_shlib_event:
    case bp_thread_event:
    case bp_thread_event:
#ifdef UI_OUT
#ifdef UI_OUT
      if (addressprint)
      if (addressprint)
        {
        {
          annotate_field (4);
          annotate_field (4);
          ui_out_field_core_addr (uiout, "addr", b->address);
          ui_out_field_core_addr (uiout, "addr", b->address);
        }
        }
      annotate_field (5);
      annotate_field (5);
      *last_addr = b->address;
      *last_addr = b->address;
      if (b->source_file)
      if (b->source_file)
        {
        {
          sym = find_pc_sect_function (b->address, b->section);
          sym = find_pc_sect_function (b->address, b->section);
          if (sym)
          if (sym)
            {
            {
              ui_out_text (uiout, "in ");
              ui_out_text (uiout, "in ");
              ui_out_field_string (uiout, "func",
              ui_out_field_string (uiout, "func",
                                   SYMBOL_SOURCE_NAME (sym));
                                   SYMBOL_SOURCE_NAME (sym));
              ui_out_wrap_hint (uiout, wrap_indent);
              ui_out_wrap_hint (uiout, wrap_indent);
              ui_out_text (uiout, " at ");
              ui_out_text (uiout, " at ");
            }
            }
          ui_out_field_string (uiout, "file", b->source_file);
          ui_out_field_string (uiout, "file", b->source_file);
          ui_out_text (uiout, ":");
          ui_out_text (uiout, ":");
          ui_out_field_int (uiout, "line", b->line_number);
          ui_out_field_int (uiout, "line", b->line_number);
        }
        }
      else
      else
        {
        {
          print_address_symbolic (b->address, stb->stream, demangle, "");
          print_address_symbolic (b->address, stb->stream, demangle, "");
          ui_out_field_stream (uiout, "at", stb);
          ui_out_field_stream (uiout, "at", stb);
        }
        }
#else
#else
      if (addressprint)
      if (addressprint)
        {
        {
          annotate_field (4);
          annotate_field (4);
          /* FIXME-32x64: need a print_address_numeric with
          /* FIXME-32x64: need a print_address_numeric with
             field width */
             field width */
          printf_filtered
          printf_filtered
            ("%s ",
            ("%s ",
             local_hex_string_custom
             local_hex_string_custom
             ((unsigned long) b->address, "08l"));
             ((unsigned long) b->address, "08l"));
        }
        }
      annotate_field (5);
      annotate_field (5);
      *last_addr = b->address;
      *last_addr = b->address;
      if (b->source_file)
      if (b->source_file)
        {
        {
          sym = find_pc_sect_function (b->address, b->section);
          sym = find_pc_sect_function (b->address, b->section);
          if (sym)
          if (sym)
            {
            {
              fputs_filtered ("in ", gdb_stdout);
              fputs_filtered ("in ", gdb_stdout);
              fputs_filtered (SYMBOL_SOURCE_NAME (sym), gdb_stdout);
              fputs_filtered (SYMBOL_SOURCE_NAME (sym), gdb_stdout);
              wrap_here (wrap_indent);
              wrap_here (wrap_indent);
              fputs_filtered (" at ", gdb_stdout);
              fputs_filtered (" at ", gdb_stdout);
            }
            }
          fputs_filtered (b->source_file, gdb_stdout);
          fputs_filtered (b->source_file, gdb_stdout);
          printf_filtered (":%d", b->line_number);
          printf_filtered (":%d", b->line_number);
        }
        }
      else
      else
        print_address_symbolic (b->address, gdb_stdout, demangle, " ");
        print_address_symbolic (b->address, gdb_stdout, demangle, " ");
#endif
#endif
      break;
      break;
    }
    }
 
 
  if (b->thread != -1)
  if (b->thread != -1)
    {
    {
#ifdef UI_OUT
#ifdef UI_OUT
      /* FIXME: This seems to be redundant and lost here; see the
      /* FIXME: This seems to be redundant and lost here; see the
         "stop only in" line a little further down. */
         "stop only in" line a little further down. */
      ui_out_text (uiout, " thread ");
      ui_out_text (uiout, " thread ");
      ui_out_field_int (uiout, "thread", b->thread);
      ui_out_field_int (uiout, "thread", b->thread);
#else
#else
      printf_filtered (" thread %d", b->thread);
      printf_filtered (" thread %d", b->thread);
#endif
#endif
    }
    }
 
 
#ifdef UI_OUT
#ifdef UI_OUT
  ui_out_text (uiout, "\n");
  ui_out_text (uiout, "\n");
#else
#else
  printf_filtered ("\n");
  printf_filtered ("\n");
#endif
#endif
 
 
  if (b->frame)
  if (b->frame)
    {
    {
      annotate_field (6);
      annotate_field (6);
#ifdef UI_OUT
#ifdef UI_OUT
      ui_out_text (uiout, "\tstop only in stack frame at ");
      ui_out_text (uiout, "\tstop only in stack frame at ");
      ui_out_field_core_addr (uiout, "frame", b->frame);
      ui_out_field_core_addr (uiout, "frame", b->frame);
      ui_out_text (uiout, "\n");
      ui_out_text (uiout, "\n");
#else
#else
      printf_filtered ("\tstop only in stack frame at ");
      printf_filtered ("\tstop only in stack frame at ");
      print_address_numeric (b->frame, 1, gdb_stdout);
      print_address_numeric (b->frame, 1, gdb_stdout);
      printf_filtered ("\n");
      printf_filtered ("\n");
#endif
#endif
    }
    }
 
 
  if (b->cond)
  if (b->cond)
    {
    {
      annotate_field (7);
      annotate_field (7);
#ifdef UI_OUT
#ifdef UI_OUT
      ui_out_text (uiout, "\tstop only if ");
      ui_out_text (uiout, "\tstop only if ");
      print_expression (b->cond, stb->stream);
      print_expression (b->cond, stb->stream);
      ui_out_field_stream (uiout, "cond", stb);
      ui_out_field_stream (uiout, "cond", stb);
      ui_out_text (uiout, "\n");
      ui_out_text (uiout, "\n");
#else
#else
      printf_filtered ("\tstop only if ");
      printf_filtered ("\tstop only if ");
      print_expression (b->cond, gdb_stdout);
      print_expression (b->cond, gdb_stdout);
      printf_filtered ("\n");
      printf_filtered ("\n");
#endif
#endif
    }
    }
 
 
  if (b->thread != -1)
  if (b->thread != -1)
    {
    {
      /* FIXME should make an annotation for this */
      /* FIXME should make an annotation for this */
#ifdef UI_OUT
#ifdef UI_OUT
      ui_out_text (uiout, "\tstop only in thread ");
      ui_out_text (uiout, "\tstop only in thread ");
      ui_out_field_int (uiout, "thread", b->thread);
      ui_out_field_int (uiout, "thread", b->thread);
      ui_out_text (uiout, "\n");
      ui_out_text (uiout, "\n");
#else
#else
      printf_filtered ("\tstop only in thread %d\n", b->thread);
      printf_filtered ("\tstop only in thread %d\n", b->thread);
#endif
#endif
    }
    }
 
 
  if (show_breakpoint_hit_counts && b->hit_count)
  if (show_breakpoint_hit_counts && b->hit_count)
    {
    {
      /* FIXME should make an annotation for this */
      /* FIXME should make an annotation for this */
#ifdef UI_OUT
#ifdef UI_OUT
      if (ep_is_catchpoint (b))
      if (ep_is_catchpoint (b))
        ui_out_text (uiout, "\tcatchpoint");
        ui_out_text (uiout, "\tcatchpoint");
      else
      else
        ui_out_text (uiout, "\tbreakpoint");
        ui_out_text (uiout, "\tbreakpoint");
      ui_out_text (uiout, " already hit ");
      ui_out_text (uiout, " already hit ");
      ui_out_field_int (uiout, "times", b->hit_count);
      ui_out_field_int (uiout, "times", b->hit_count);
      if (b->hit_count == 1)
      if (b->hit_count == 1)
        ui_out_text (uiout, " time\n");
        ui_out_text (uiout, " time\n");
      else
      else
        ui_out_text (uiout, " times\n");
        ui_out_text (uiout, " times\n");
#else
#else
      if (ep_is_catchpoint (b))
      if (ep_is_catchpoint (b))
        printf_filtered ("\tcatchpoint");
        printf_filtered ("\tcatchpoint");
      else
      else
        printf_filtered ("\tbreakpoint");
        printf_filtered ("\tbreakpoint");
      printf_filtered (" already hit %d time%s\n",
      printf_filtered (" already hit %d time%s\n",
                       b->hit_count, (b->hit_count == 1 ? "" : "s"));
                       b->hit_count, (b->hit_count == 1 ? "" : "s"));
#endif
#endif
    }
    }
 
 
#ifdef UI_OUT
#ifdef UI_OUT
  /* Output the count also if it is zero, but only if this is
  /* Output the count also if it is zero, but only if this is
     mi. FIXME: Should have a better test for this. */
     mi. FIXME: Should have a better test for this. */
  if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
  if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
    if (show_breakpoint_hit_counts && b->hit_count == 0)
    if (show_breakpoint_hit_counts && b->hit_count == 0)
      ui_out_field_int (uiout, "times", b->hit_count);
      ui_out_field_int (uiout, "times", b->hit_count);
#endif
#endif
 
 
  if (b->ignore_count)
  if (b->ignore_count)
    {
    {
      annotate_field (8);
      annotate_field (8);
#ifdef UI_OUT
#ifdef UI_OUT
      ui_out_text (uiout, "\tignore next ");
      ui_out_text (uiout, "\tignore next ");
      ui_out_field_int (uiout, "ignore", b->ignore_count);
      ui_out_field_int (uiout, "ignore", b->ignore_count);
      ui_out_text (uiout, " hits\n");
      ui_out_text (uiout, " hits\n");
#else
#else
      printf_filtered ("\tignore next %d hits\n", b->ignore_count);
      printf_filtered ("\tignore next %d hits\n", b->ignore_count);
#endif
#endif
    }
    }
 
 
  if ((l = b->commands))
  if ((l = b->commands))
    {
    {
      annotate_field (9);
      annotate_field (9);
#ifdef UI_OUT
#ifdef UI_OUT
      ui_out_list_begin (uiout, "script");
      ui_out_list_begin (uiout, "script");
      print_command_lines (uiout, l, 4);
      print_command_lines (uiout, l, 4);
      ui_out_list_end (uiout);
      ui_out_list_end (uiout);
#else
#else
      while (l)
      while (l)
        {
        {
          print_command_line (l, 4, gdb_stdout);
          print_command_line (l, 4, gdb_stdout);
          l = l->next;
          l = l->next;
        }
        }
#endif
#endif
    }
    }
#ifdef UI_OUT
#ifdef UI_OUT
  ui_out_list_end (uiout);
  ui_out_list_end (uiout);
  do_cleanups (old_chain);
  do_cleanups (old_chain);
#endif
#endif
}
}
 
 
struct captured_breakpoint_query_args
struct captured_breakpoint_query_args
  {
  {
    int bnum;
    int bnum;
  };
  };
 
 
static int
static int
do_captured_breakpoint_query (void *data)
do_captured_breakpoint_query (void *data)
{
{
  struct captured_breakpoint_query_args *args = data;
  struct captured_breakpoint_query_args *args = data;
  register struct breakpoint *b;
  register struct breakpoint *b;
  CORE_ADDR dummy_addr = 0;
  CORE_ADDR dummy_addr = 0;
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    {
    {
      if (args->bnum == b->number)
      if (args->bnum == b->number)
        {
        {
          print_one_breakpoint (b, &dummy_addr);
          print_one_breakpoint (b, &dummy_addr);
          return GDB_RC_OK;
          return GDB_RC_OK;
        }
        }
    }
    }
  return GDB_RC_NONE;
  return GDB_RC_NONE;
}
}
 
 
enum gdb_rc
enum gdb_rc
gdb_breakpoint_query (/* output object, */ int bnum)
gdb_breakpoint_query (/* output object, */ int bnum)
{
{
  struct captured_breakpoint_query_args args;
  struct captured_breakpoint_query_args args;
  args.bnum = bnum;
  args.bnum = bnum;
  /* For the moment we don't trust print_one_breakpoint() to not throw
  /* For the moment we don't trust print_one_breakpoint() to not throw
     an error. */
     an error. */
  return catch_errors (do_captured_breakpoint_query, &args,
  return catch_errors (do_captured_breakpoint_query, &args,
                       NULL, RETURN_MASK_ALL);
                       NULL, RETURN_MASK_ALL);
}
}
 
 
/* Print information on breakpoint number BNUM, or -1 if all.
/* Print information on breakpoint number BNUM, or -1 if all.
   If WATCHPOINTS is zero, process only breakpoints; if WATCHPOINTS
   If WATCHPOINTS is zero, process only breakpoints; if WATCHPOINTS
   is nonzero, process only watchpoints.  */
   is nonzero, process only watchpoints.  */
 
 
static void
static void
breakpoint_1 (bnum, allflag)
breakpoint_1 (bnum, allflag)
     int bnum;
     int bnum;
     int allflag;
     int allflag;
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
  CORE_ADDR last_addr = (CORE_ADDR) -1;
  CORE_ADDR last_addr = (CORE_ADDR) -1;
  int found_a_breakpoint = 0;
  int found_a_breakpoint = 0;
 
 
#ifdef UI_OUT
#ifdef UI_OUT
  if (addressprint)
  if (addressprint)
    ui_out_table_begin (uiout, 6, "BreakpointTable");
    ui_out_table_begin (uiout, 6, "BreakpointTable");
  else
  else
    ui_out_table_begin (uiout, 5, "BreakpointTable");
    ui_out_table_begin (uiout, 5, "BreakpointTable");
#endif /* UI_OUT */
#endif /* UI_OUT */
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    if (bnum == -1
    if (bnum == -1
        || bnum == b->number)
        || bnum == b->number)
      {
      {
        /* We only print out user settable breakpoints unless the
        /* We only print out user settable breakpoints unless the
           allflag is set. */
           allflag is set. */
        if (!allflag
        if (!allflag
            && b->type != bp_breakpoint
            && b->type != bp_breakpoint
            && b->type != bp_catch_load
            && b->type != bp_catch_load
            && b->type != bp_catch_unload
            && b->type != bp_catch_unload
            && b->type != bp_catch_fork
            && b->type != bp_catch_fork
            && b->type != bp_catch_vfork
            && b->type != bp_catch_vfork
            && b->type != bp_catch_exec
            && b->type != bp_catch_exec
            && b->type != bp_catch_catch
            && b->type != bp_catch_catch
            && b->type != bp_catch_throw
            && b->type != bp_catch_throw
            && b->type != bp_hardware_breakpoint
            && b->type != bp_hardware_breakpoint
            && b->type != bp_watchpoint
            && b->type != bp_watchpoint
            && b->type != bp_read_watchpoint
            && b->type != bp_read_watchpoint
            && b->type != bp_access_watchpoint
            && b->type != bp_access_watchpoint
            && b->type != bp_hardware_watchpoint)
            && b->type != bp_hardware_watchpoint)
          continue;
          continue;
 
 
        if (!found_a_breakpoint++)
        if (!found_a_breakpoint++)
          {
          {
            annotate_breakpoints_headers ();
            annotate_breakpoints_headers ();
#ifdef UI_OUT
#ifdef UI_OUT
            annotate_field (0);
            annotate_field (0);
            ui_out_table_header (uiout, 3, ui_left, "Num");     /* 1 */
            ui_out_table_header (uiout, 3, ui_left, "Num");     /* 1 */
            annotate_field (1);
            annotate_field (1);
            ui_out_table_header (uiout, 14, ui_left, "Type");   /* 2 */
            ui_out_table_header (uiout, 14, ui_left, "Type");   /* 2 */
            annotate_field (2);
            annotate_field (2);
            ui_out_table_header (uiout, 4, ui_left, "Disp");    /* 3 */
            ui_out_table_header (uiout, 4, ui_left, "Disp");    /* 3 */
            annotate_field (3);
            annotate_field (3);
            ui_out_table_header (uiout, 3, ui_left, "Enb");     /* 4 */
            ui_out_table_header (uiout, 3, ui_left, "Enb");     /* 4 */
            if (addressprint)
            if (addressprint)
              {
              {
                annotate_field (4);
                annotate_field (4);
                ui_out_table_header (uiout, 10, ui_left, "Address");    /* 5 */
                ui_out_table_header (uiout, 10, ui_left, "Address");    /* 5 */
              }
              }
            annotate_field (5);
            annotate_field (5);
            ui_out_table_header (uiout, 40, ui_noalign, "What");        /* 6 */
            ui_out_table_header (uiout, 40, ui_noalign, "What");        /* 6 */
            ui_out_table_body (uiout);
            ui_out_table_body (uiout);
#else
#else
            annotate_field (0);
            annotate_field (0);
            printf_filtered ("Num ");
            printf_filtered ("Num ");
            annotate_field (1);
            annotate_field (1);
            printf_filtered ("Type           ");
            printf_filtered ("Type           ");
            annotate_field (2);
            annotate_field (2);
            printf_filtered ("Disp ");
            printf_filtered ("Disp ");
            annotate_field (3);
            annotate_field (3);
            printf_filtered ("Enb ");
            printf_filtered ("Enb ");
            if (addressprint)
            if (addressprint)
              {
              {
                annotate_field (4);
                annotate_field (4);
                printf_filtered ("Address    ");
                printf_filtered ("Address    ");
              }
              }
            annotate_field (5);
            annotate_field (5);
            printf_filtered ("What\n");
            printf_filtered ("What\n");
#endif /* UI_OUT */
#endif /* UI_OUT */
            annotate_breakpoints_table ();
            annotate_breakpoints_table ();
          }
          }
 
 
        print_one_breakpoint (b, &last_addr);
        print_one_breakpoint (b, &last_addr);
      }
      }
 
 
  if (!found_a_breakpoint)
  if (!found_a_breakpoint)
    {
    {
#ifdef UI_OUT
#ifdef UI_OUT
      if (bnum == -1)
      if (bnum == -1)
        ui_out_message (uiout, 0, "No breakpoints or watchpoints.\n");
        ui_out_message (uiout, 0, "No breakpoints or watchpoints.\n");
      else
      else
        ui_out_message (uiout, 0, "No breakpoint or watchpoint number %d.\n",
        ui_out_message (uiout, 0, "No breakpoint or watchpoint number %d.\n",
                        bnum);
                        bnum);
#else
#else
      if (bnum == -1)
      if (bnum == -1)
        printf_filtered ("No breakpoints or watchpoints.\n");
        printf_filtered ("No breakpoints or watchpoints.\n");
      else
      else
        printf_filtered ("No breakpoint or watchpoint number %d.\n", bnum);
        printf_filtered ("No breakpoint or watchpoint number %d.\n", bnum);
#endif /* UI_OUT */
#endif /* UI_OUT */
    }
    }
  else
  else
    {
    {
      /* Compare against (CORE_ADDR)-1 in case some compiler decides
      /* Compare against (CORE_ADDR)-1 in case some compiler decides
         that a comparison of an unsigned with -1 is always false.  */
         that a comparison of an unsigned with -1 is always false.  */
      if (last_addr != (CORE_ADDR) -1)
      if (last_addr != (CORE_ADDR) -1)
        set_next_address (last_addr);
        set_next_address (last_addr);
    }
    }
 
 
#ifdef UI_OUT
#ifdef UI_OUT
  ui_out_table_end (uiout);
  ui_out_table_end (uiout);
#endif /* UI_OUT */
#endif /* UI_OUT */
  /* FIXME? Should this be moved up so that it is only called when
  /* FIXME? Should this be moved up so that it is only called when
     there have been breakpoints? */
     there have been breakpoints? */
  annotate_breakpoints_table_end ();
  annotate_breakpoints_table_end ();
}
}
 
 
/* ARGSUSED */
/* ARGSUSED */
static void
static void
breakpoints_info (bnum_exp, from_tty)
breakpoints_info (bnum_exp, from_tty)
     char *bnum_exp;
     char *bnum_exp;
     int from_tty;
     int from_tty;
{
{
  int bnum = -1;
  int bnum = -1;
 
 
  if (bnum_exp)
  if (bnum_exp)
    bnum = parse_and_eval_address (bnum_exp);
    bnum = parse_and_eval_address (bnum_exp);
 
 
  breakpoint_1 (bnum, 0);
  breakpoint_1 (bnum, 0);
}
}
 
 
/* ARGSUSED */
/* ARGSUSED */
static void
static void
maintenance_info_breakpoints (bnum_exp, from_tty)
maintenance_info_breakpoints (bnum_exp, from_tty)
     char *bnum_exp;
     char *bnum_exp;
     int from_tty;
     int from_tty;
{
{
  int bnum = -1;
  int bnum = -1;
 
 
  if (bnum_exp)
  if (bnum_exp)
    bnum = parse_and_eval_address (bnum_exp);
    bnum = parse_and_eval_address (bnum_exp);
 
 
  breakpoint_1 (bnum, 1);
  breakpoint_1 (bnum, 1);
}
}
 
 
/* Print a message describing any breakpoints set at PC.  */
/* Print a message describing any breakpoints set at PC.  */
 
 
static void
static void
describe_other_breakpoints (pc, section)
describe_other_breakpoints (pc, section)
     CORE_ADDR pc;
     CORE_ADDR pc;
     asection *section;
     asection *section;
{
{
  register int others = 0;
  register int others = 0;
  register struct breakpoint *b;
  register struct breakpoint *b;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    if (b->address == pc)
    if (b->address == pc)
    if (overlay_debugging == 0 ||
    if (overlay_debugging == 0 ||
        b->section == section)
        b->section == section)
      others++;
      others++;
  if (others > 0)
  if (others > 0)
    {
    {
      printf_filtered ("Note: breakpoint%s ", (others > 1) ? "s" : "");
      printf_filtered ("Note: breakpoint%s ", (others > 1) ? "s" : "");
      ALL_BREAKPOINTS (b)
      ALL_BREAKPOINTS (b)
        if (b->address == pc)
        if (b->address == pc)
        if (overlay_debugging == 0 ||
        if (overlay_debugging == 0 ||
            b->section == section)
            b->section == section)
          {
          {
            others--;
            others--;
            printf_filtered
            printf_filtered
              ("%d%s%s ",
              ("%d%s%s ",
               b->number,
               b->number,
               ((b->enable == disabled ||
               ((b->enable == disabled ||
                 b->enable == shlib_disabled ||
                 b->enable == shlib_disabled ||
                 b->enable == call_disabled) ? " (disabled)"
                 b->enable == call_disabled) ? " (disabled)"
                : b->enable == permanent ? " (permanent)"
                : b->enable == permanent ? " (permanent)"
                : ""),
                : ""),
               (others > 1) ? "," : ((others == 1) ? " and" : ""));
               (others > 1) ? "," : ((others == 1) ? " and" : ""));
          }
          }
      printf_filtered ("also set at pc ");
      printf_filtered ("also set at pc ");
      print_address_numeric (pc, 1, gdb_stdout);
      print_address_numeric (pc, 1, gdb_stdout);
      printf_filtered (".\n");
      printf_filtered (".\n");
    }
    }
}
}


/* Set the default place to put a breakpoint
/* Set the default place to put a breakpoint
   for the `break' command with no arguments.  */
   for the `break' command with no arguments.  */
 
 
void
void
set_default_breakpoint (valid, addr, symtab, line)
set_default_breakpoint (valid, addr, symtab, line)
     int valid;
     int valid;
     CORE_ADDR addr;
     CORE_ADDR addr;
     struct symtab *symtab;
     struct symtab *symtab;
     int line;
     int line;
{
{
  default_breakpoint_valid = valid;
  default_breakpoint_valid = valid;
  default_breakpoint_address = addr;
  default_breakpoint_address = addr;
  default_breakpoint_symtab = symtab;
  default_breakpoint_symtab = symtab;
  default_breakpoint_line = line;
  default_breakpoint_line = line;
}
}
 
 
/* Rescan breakpoints at address ADDRESS,
/* Rescan breakpoints at address ADDRESS,
   marking the first one as "first" and any others as "duplicates".
   marking the first one as "first" and any others as "duplicates".
   This is so that the bpt instruction is only inserted once.
   This is so that the bpt instruction is only inserted once.
   If we have a permanent breakpoint at ADDRESS, make that one
   If we have a permanent breakpoint at ADDRESS, make that one
   the official one, and the rest as duplicates.  */
   the official one, and the rest as duplicates.  */
 
 
static void
static void
check_duplicates (address, section)
check_duplicates (address, section)
     CORE_ADDR address;
     CORE_ADDR address;
     asection *section;
     asection *section;
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
  register int count = 0;
  register int count = 0;
  struct breakpoint *perm_bp = 0;
  struct breakpoint *perm_bp = 0;
 
 
  if (address == 0)              /* Watchpoints are uninteresting */
  if (address == 0)              /* Watchpoints are uninteresting */
    return;
    return;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    if (b->enable != disabled
    if (b->enable != disabled
        && b->enable != shlib_disabled
        && b->enable != shlib_disabled
        && b->enable != call_disabled
        && b->enable != call_disabled
        && b->address == address
        && b->address == address
        && (overlay_debugging == 0 || b->section == section))
        && (overlay_debugging == 0 || b->section == section))
    {
    {
      /* Have we found a permanent breakpoint?  */
      /* Have we found a permanent breakpoint?  */
      if (b->enable == permanent)
      if (b->enable == permanent)
        {
        {
          perm_bp = b;
          perm_bp = b;
          break;
          break;
        }
        }
 
 
      count++;
      count++;
      b->duplicate = count > 1;
      b->duplicate = count > 1;
    }
    }
 
 
  /* If we found a permanent breakpoint at this address, go over the
  /* If we found a permanent breakpoint at this address, go over the
     list again and declare all the other breakpoints there to be the
     list again and declare all the other breakpoints there to be the
     duplicates.  */
     duplicates.  */
  if (perm_bp)
  if (perm_bp)
    {
    {
      perm_bp->duplicate = 0;
      perm_bp->duplicate = 0;
 
 
      /* Permanent breakpoint should always be inserted.  */
      /* Permanent breakpoint should always be inserted.  */
      if (! perm_bp->inserted)
      if (! perm_bp->inserted)
        internal_error ("allegedly permanent breakpoint is not "
        internal_error ("allegedly permanent breakpoint is not "
                        "actually inserted");
                        "actually inserted");
 
 
      ALL_BREAKPOINTS (b)
      ALL_BREAKPOINTS (b)
        if (b != perm_bp)
        if (b != perm_bp)
          {
          {
            if (b->inserted)
            if (b->inserted)
              internal_error ("another breakpoint was inserted on top of "
              internal_error ("another breakpoint was inserted on top of "
                              "a permanent breakpoint");
                              "a permanent breakpoint");
 
 
            if (b->enable != disabled
            if (b->enable != disabled
                && b->enable != shlib_disabled
                && b->enable != shlib_disabled
                && b->enable != call_disabled
                && b->enable != call_disabled
                && b->address == address
                && b->address == address
                && (overlay_debugging == 0 || b->section == section))
                && (overlay_debugging == 0 || b->section == section))
              b->duplicate = 1;
              b->duplicate = 1;
          }
          }
    }
    }
}
}
 
 
/* Low level routine to set a breakpoint.
/* Low level routine to set a breakpoint.
   Takes as args the three things that every breakpoint must have.
   Takes as args the three things that every breakpoint must have.
   Returns the breakpoint object so caller can set other things.
   Returns the breakpoint object so caller can set other things.
   Does not set the breakpoint number!
   Does not set the breakpoint number!
   Does not print anything.
   Does not print anything.
 
 
   ==> This routine should not be called if there is a chance of later
   ==> This routine should not be called if there is a chance of later
   error(); otherwise it leaves a bogus breakpoint on the chain.  Validate
   error(); otherwise it leaves a bogus breakpoint on the chain.  Validate
   your arguments BEFORE calling this routine!  */
   your arguments BEFORE calling this routine!  */
 
 
struct breakpoint *
struct breakpoint *
set_raw_breakpoint (sal)
set_raw_breakpoint (sal)
     struct symtab_and_line sal;
     struct symtab_and_line sal;
{
{
  register struct breakpoint *b, *b1;
  register struct breakpoint *b, *b1;
 
 
  b = (struct breakpoint *) xmalloc (sizeof (struct breakpoint));
  b = (struct breakpoint *) xmalloc (sizeof (struct breakpoint));
  memset (b, 0, sizeof (*b));
  memset (b, 0, sizeof (*b));
  b->address = sal.pc;
  b->address = sal.pc;
  if (sal.symtab == NULL)
  if (sal.symtab == NULL)
    b->source_file = NULL;
    b->source_file = NULL;
  else
  else
    b->source_file = savestring (sal.symtab->filename,
    b->source_file = savestring (sal.symtab->filename,
                                 strlen (sal.symtab->filename));
                                 strlen (sal.symtab->filename));
  b->section = sal.section;
  b->section = sal.section;
  b->language = current_language->la_language;
  b->language = current_language->la_language;
  b->input_radix = input_radix;
  b->input_radix = input_radix;
  b->thread = -1;
  b->thread = -1;
  b->line_number = sal.line;
  b->line_number = sal.line;
  b->enable = enabled;
  b->enable = enabled;
  b->next = 0;
  b->next = 0;
  b->silent = 0;
  b->silent = 0;
  b->ignore_count = 0;
  b->ignore_count = 0;
  b->commands = NULL;
  b->commands = NULL;
  b->frame = 0;
  b->frame = 0;
  b->dll_pathname = NULL;
  b->dll_pathname = NULL;
  b->triggered_dll_pathname = NULL;
  b->triggered_dll_pathname = NULL;
  b->forked_inferior_pid = 0;
  b->forked_inferior_pid = 0;
  b->exec_pathname = NULL;
  b->exec_pathname = NULL;
 
 
  /* Add this breakpoint to the end of the chain
  /* Add this breakpoint to the end of the chain
     so that a list of breakpoints will come out in order
     so that a list of breakpoints will come out in order
     of increasing numbers.  */
     of increasing numbers.  */
 
 
  b1 = breakpoint_chain;
  b1 = breakpoint_chain;
  if (b1 == 0)
  if (b1 == 0)
    breakpoint_chain = b;
    breakpoint_chain = b;
  else
  else
    {
    {
      while (b1->next)
      while (b1->next)
        b1 = b1->next;
        b1 = b1->next;
      b1->next = b;
      b1->next = b;
    }
    }
 
 
  check_duplicates (sal.pc, sal.section);
  check_duplicates (sal.pc, sal.section);
  breakpoints_changed ();
  breakpoints_changed ();
 
 
  return b;
  return b;
}
}
 
 
 
 
/* Note that the breakpoint object B describes a permanent breakpoint
/* Note that the breakpoint object B describes a permanent breakpoint
   instruction, hard-wired into the inferior's code.  */
   instruction, hard-wired into the inferior's code.  */
void
void
make_breakpoint_permanent (struct breakpoint *b)
make_breakpoint_permanent (struct breakpoint *b)
{
{
  b->enable = permanent;
  b->enable = permanent;
 
 
  /* By definition, permanent breakpoints are already present in the code.  */
  /* By definition, permanent breakpoints are already present in the code.  */
  b->inserted = 1;
  b->inserted = 1;
}
}
 
 
#ifdef GET_LONGJMP_TARGET
#ifdef GET_LONGJMP_TARGET
 
 
static void
static void
create_longjmp_breakpoint (func_name)
create_longjmp_breakpoint (func_name)
     char *func_name;
     char *func_name;
{
{
  struct symtab_and_line sal;
  struct symtab_and_line sal;
  struct breakpoint *b;
  struct breakpoint *b;
 
 
  INIT_SAL (&sal);              /* initialize to zeroes */
  INIT_SAL (&sal);              /* initialize to zeroes */
  if (func_name != NULL)
  if (func_name != NULL)
    {
    {
      struct minimal_symbol *m;
      struct minimal_symbol *m;
 
 
      m = lookup_minimal_symbol_text (func_name, NULL,
      m = lookup_minimal_symbol_text (func_name, NULL,
                                      (struct objfile *) NULL);
                                      (struct objfile *) NULL);
      if (m)
      if (m)
        sal.pc = SYMBOL_VALUE_ADDRESS (m);
        sal.pc = SYMBOL_VALUE_ADDRESS (m);
      else
      else
        return;
        return;
    }
    }
  sal.section = find_pc_overlay (sal.pc);
  sal.section = find_pc_overlay (sal.pc);
  b = set_raw_breakpoint (sal);
  b = set_raw_breakpoint (sal);
  if (!b)
  if (!b)
    return;
    return;
 
 
  b->type = func_name != NULL ? bp_longjmp : bp_longjmp_resume;
  b->type = func_name != NULL ? bp_longjmp : bp_longjmp_resume;
  b->disposition = donttouch;
  b->disposition = donttouch;
  b->enable = disabled;
  b->enable = disabled;
  b->silent = 1;
  b->silent = 1;
  if (func_name)
  if (func_name)
    b->addr_string = strsave (func_name);
    b->addr_string = strsave (func_name);
  b->number = internal_breakpoint_number--;
  b->number = internal_breakpoint_number--;
}
}
 
 
#endif /* #ifdef GET_LONGJMP_TARGET */
#endif /* #ifdef GET_LONGJMP_TARGET */
 
 
/* Call this routine when stepping and nexting to enable a breakpoint
/* Call this routine when stepping and nexting to enable a breakpoint
   if we do a longjmp().  When we hit that breakpoint, call
   if we do a longjmp().  When we hit that breakpoint, call
   set_longjmp_resume_breakpoint() to figure out where we are going. */
   set_longjmp_resume_breakpoint() to figure out where we are going. */
 
 
void
void
enable_longjmp_breakpoint ()
enable_longjmp_breakpoint ()
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    if (b->type == bp_longjmp)
    if (b->type == bp_longjmp)
    {
    {
      b->enable = enabled;
      b->enable = enabled;
      check_duplicates (b->address, b->section);
      check_duplicates (b->address, b->section);
    }
    }
}
}
 
 
void
void
disable_longjmp_breakpoint ()
disable_longjmp_breakpoint ()
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    if (b->type == bp_longjmp
    if (b->type == bp_longjmp
        || b->type == bp_longjmp_resume)
        || b->type == bp_longjmp_resume)
    {
    {
      b->enable = disabled;
      b->enable = disabled;
      check_duplicates (b->address, b->section);
      check_duplicates (b->address, b->section);
    }
    }
}
}
 
 
struct breakpoint *
struct breakpoint *
create_thread_event_breakpoint (address)
create_thread_event_breakpoint (address)
     CORE_ADDR address;
     CORE_ADDR address;
{
{
  struct breakpoint *b;
  struct breakpoint *b;
  struct symtab_and_line sal;
  struct symtab_and_line sal;
  char addr_string[80];         /* Surely an addr can't be longer than that. */
  char addr_string[80];         /* Surely an addr can't be longer than that. */
 
 
  INIT_SAL (&sal);              /* initialize to zeroes */
  INIT_SAL (&sal);              /* initialize to zeroes */
  sal.pc = address;
  sal.pc = address;
  sal.section = find_pc_overlay (sal.pc);
  sal.section = find_pc_overlay (sal.pc);
  if ((b = set_raw_breakpoint (sal)) == NULL)
  if ((b = set_raw_breakpoint (sal)) == NULL)
    return NULL;
    return NULL;
 
 
  b->number = internal_breakpoint_number--;
  b->number = internal_breakpoint_number--;
  b->disposition = donttouch;
  b->disposition = donttouch;
  b->type = bp_thread_event;    /* XXX: do we need a new type?
  b->type = bp_thread_event;    /* XXX: do we need a new type?
                                   bp_thread_event */
                                   bp_thread_event */
  b->enable = enabled;
  b->enable = enabled;
  /* addr_string has to be used or breakpoint_re_set will delete me.  */
  /* addr_string has to be used or breakpoint_re_set will delete me.  */
  sprintf (addr_string, "*0x%s", paddr (b->address));
  sprintf (addr_string, "*0x%s", paddr (b->address));
  b->addr_string = strsave (addr_string);
  b->addr_string = strsave (addr_string);
 
 
  return b;
  return b;
}
}
 
 
void
void
remove_thread_event_breakpoints (void)
remove_thread_event_breakpoints (void)
{
{
  struct breakpoint *b, *temp;
  struct breakpoint *b, *temp;
 
 
  ALL_BREAKPOINTS_SAFE (b, temp)
  ALL_BREAKPOINTS_SAFE (b, temp)
    if (b->type == bp_thread_event)
    if (b->type == bp_thread_event)
      delete_breakpoint (b);
      delete_breakpoint (b);
}
}
 
 
#ifdef SOLIB_ADD
#ifdef SOLIB_ADD
void
void
remove_solib_event_breakpoints ()
remove_solib_event_breakpoints ()
{
{
  register struct breakpoint *b, *temp;
  register struct breakpoint *b, *temp;
 
 
  ALL_BREAKPOINTS_SAFE (b, temp)
  ALL_BREAKPOINTS_SAFE (b, temp)
    if (b->type == bp_shlib_event)
    if (b->type == bp_shlib_event)
    delete_breakpoint (b);
    delete_breakpoint (b);
}
}
 
 
struct breakpoint *
struct breakpoint *
create_solib_event_breakpoint (address)
create_solib_event_breakpoint (address)
     CORE_ADDR address;
     CORE_ADDR address;
{
{
  struct breakpoint *b;
  struct breakpoint *b;
  struct symtab_and_line sal;
  struct symtab_and_line sal;
 
 
  INIT_SAL (&sal);              /* initialize to zeroes */
  INIT_SAL (&sal);              /* initialize to zeroes */
  sal.pc = address;
  sal.pc = address;
  sal.section = find_pc_overlay (sal.pc);
  sal.section = find_pc_overlay (sal.pc);
  b = set_raw_breakpoint (sal);
  b = set_raw_breakpoint (sal);
  b->number = internal_breakpoint_number--;
  b->number = internal_breakpoint_number--;
  b->disposition = donttouch;
  b->disposition = donttouch;
  b->type = bp_shlib_event;
  b->type = bp_shlib_event;
 
 
  return b;
  return b;
}
}
 
 
/* Disable any breakpoints that are on code in shared libraries.  Only
/* Disable any breakpoints that are on code in shared libraries.  Only
   apply to enabled breakpoints, disabled ones can just stay disabled.  */
   apply to enabled breakpoints, disabled ones can just stay disabled.  */
 
 
void
void
disable_breakpoints_in_shlibs (silent)
disable_breakpoints_in_shlibs (silent)
     int silent;
     int silent;
{
{
  struct breakpoint *b;
  struct breakpoint *b;
  int disabled_shlib_breaks = 0;
  int disabled_shlib_breaks = 0;
 
 
  /* See also: insert_breakpoints, under DISABLE_UNSETTABLE_BREAK. */
  /* See also: insert_breakpoints, under DISABLE_UNSETTABLE_BREAK. */
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
  {
  {
#if defined (PC_SOLIB)
#if defined (PC_SOLIB)
    if (((b->type == bp_breakpoint) ||
    if (((b->type == bp_breakpoint) ||
         (b->type == bp_hardware_breakpoint)) &&
         (b->type == bp_hardware_breakpoint)) &&
        b->enable == enabled &&
        b->enable == enabled &&
        !b->duplicate &&
        !b->duplicate &&
        PC_SOLIB (b->address))
        PC_SOLIB (b->address))
      {
      {
        b->enable = shlib_disabled;
        b->enable = shlib_disabled;
        if (!silent)
        if (!silent)
          {
          {
            if (!disabled_shlib_breaks)
            if (!disabled_shlib_breaks)
              {
              {
                target_terminal_ours_for_output ();
                target_terminal_ours_for_output ();
                warning ("Temporarily disabling shared library breakpoints:");
                warning ("Temporarily disabling shared library breakpoints:");
              }
              }
            disabled_shlib_breaks = 1;
            disabled_shlib_breaks = 1;
            warning ("breakpoint #%d ", b->number);
            warning ("breakpoint #%d ", b->number);
          }
          }
      }
      }
#endif
#endif
  }
  }
}
}
 
 
/* Try to reenable any breakpoints in shared libraries.  */
/* Try to reenable any breakpoints in shared libraries.  */
void
void
re_enable_breakpoints_in_shlibs ()
re_enable_breakpoints_in_shlibs ()
{
{
  struct breakpoint *b;
  struct breakpoint *b;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    if (b->enable == shlib_disabled)
    if (b->enable == shlib_disabled)
    {
    {
      char buf[1];
      char buf[1];
 
 
      /* Do not reenable the breakpoint if the shared library
      /* Do not reenable the breakpoint if the shared library
         is still not mapped in.  */
         is still not mapped in.  */
      if (target_read_memory (b->address, buf, 1) == 0)
      if (target_read_memory (b->address, buf, 1) == 0)
        b->enable = enabled;
        b->enable = enabled;
    }
    }
}
}
 
 
#endif
#endif
 
 
static void
static void
solib_load_unload_1 (hookname, tempflag, dll_pathname, cond_string, bp_kind)
solib_load_unload_1 (hookname, tempflag, dll_pathname, cond_string, bp_kind)
     char *hookname;
     char *hookname;
     int tempflag;
     int tempflag;
     char *dll_pathname;
     char *dll_pathname;
     char *cond_string;
     char *cond_string;
     enum bptype bp_kind;
     enum bptype bp_kind;
{
{
  struct breakpoint *b;
  struct breakpoint *b;
  struct symtabs_and_lines sals;
  struct symtabs_and_lines sals;
  struct cleanup *old_chain;
  struct cleanup *old_chain;
  struct cleanup *canonical_strings_chain = NULL;
  struct cleanup *canonical_strings_chain = NULL;
  char *addr_start = hookname;
  char *addr_start = hookname;
  char *addr_end = NULL;
  char *addr_end = NULL;
  char **canonical = (char **) NULL;
  char **canonical = (char **) NULL;
  int thread = -1;              /* All threads. */
  int thread = -1;              /* All threads. */
 
 
  /* Set a breakpoint on the specified hook. */
  /* Set a breakpoint on the specified hook. */
  sals = decode_line_1 (&hookname, 1, (struct symtab *) NULL, 0, &canonical);
  sals = decode_line_1 (&hookname, 1, (struct symtab *) NULL, 0, &canonical);
  addr_end = hookname;
  addr_end = hookname;
 
 
  if (sals.nelts == 0)
  if (sals.nelts == 0)
    {
    {
      warning ("Unable to set a breakpoint on dynamic linker callback.");
      warning ("Unable to set a breakpoint on dynamic linker callback.");
      warning ("Suggest linking with /opt/langtools/lib/end.o.");
      warning ("Suggest linking with /opt/langtools/lib/end.o.");
      warning ("GDB will be unable to track shl_load/shl_unload calls");
      warning ("GDB will be unable to track shl_load/shl_unload calls");
      return;
      return;
    }
    }
  if (sals.nelts != 1)
  if (sals.nelts != 1)
    {
    {
      warning ("Unable to set unique breakpoint on dynamic linker callback.");
      warning ("Unable to set unique breakpoint on dynamic linker callback.");
      warning ("GDB will be unable to track shl_load/shl_unload calls");
      warning ("GDB will be unable to track shl_load/shl_unload calls");
      return;
      return;
    }
    }
 
 
  /* Make sure that all storage allocated in decode_line_1 gets freed
  /* Make sure that all storage allocated in decode_line_1 gets freed
     in case the following errors out.  */
     in case the following errors out.  */
  old_chain = make_cleanup (free, sals.sals);
  old_chain = make_cleanup (free, sals.sals);
  if (canonical != (char **) NULL)
  if (canonical != (char **) NULL)
    {
    {
      make_cleanup (free, canonical);
      make_cleanup (free, canonical);
      canonical_strings_chain = make_cleanup (null_cleanup, 0);
      canonical_strings_chain = make_cleanup (null_cleanup, 0);
      if (canonical[0] != NULL)
      if (canonical[0] != NULL)
        make_cleanup (free, canonical[0]);
        make_cleanup (free, canonical[0]);
    }
    }
 
 
  resolve_sal_pc (&sals.sals[0]);
  resolve_sal_pc (&sals.sals[0]);
 
 
  /* Remove the canonical strings from the cleanup, they are needed below.  */
  /* Remove the canonical strings from the cleanup, they are needed below.  */
  if (canonical != (char **) NULL)
  if (canonical != (char **) NULL)
    discard_cleanups (canonical_strings_chain);
    discard_cleanups (canonical_strings_chain);
 
 
  b = set_raw_breakpoint (sals.sals[0]);
  b = set_raw_breakpoint (sals.sals[0]);
  set_breakpoint_count (breakpoint_count + 1);
  set_breakpoint_count (breakpoint_count + 1);
  b->number = breakpoint_count;
  b->number = breakpoint_count;
  b->cond = NULL;
  b->cond = NULL;
  b->cond_string = (cond_string == NULL) ?
  b->cond_string = (cond_string == NULL) ?
    NULL : savestring (cond_string, strlen (cond_string));
    NULL : savestring (cond_string, strlen (cond_string));
  b->thread = thread;
  b->thread = thread;
 
 
  if (canonical != (char **) NULL && canonical[0] != NULL)
  if (canonical != (char **) NULL && canonical[0] != NULL)
    b->addr_string = canonical[0];
    b->addr_string = canonical[0];
  else if (addr_start)
  else if (addr_start)
    b->addr_string = savestring (addr_start, addr_end - addr_start);
    b->addr_string = savestring (addr_start, addr_end - addr_start);
 
 
  b->enable = enabled;
  b->enable = enabled;
  b->disposition = tempflag ? del : donttouch;
  b->disposition = tempflag ? del : donttouch;
 
 
  if (dll_pathname == NULL)
  if (dll_pathname == NULL)
    b->dll_pathname = NULL;
    b->dll_pathname = NULL;
  else
  else
    {
    {
      b->dll_pathname = (char *) xmalloc (strlen (dll_pathname) + 1);
      b->dll_pathname = (char *) xmalloc (strlen (dll_pathname) + 1);
      strcpy (b->dll_pathname, dll_pathname);
      strcpy (b->dll_pathname, dll_pathname);
    }
    }
  b->type = bp_kind;
  b->type = bp_kind;
 
 
  mention (b);
  mention (b);
  do_cleanups (old_chain);
  do_cleanups (old_chain);
}
}
 
 
void
void
create_solib_load_event_breakpoint (hookname, tempflag,
create_solib_load_event_breakpoint (hookname, tempflag,
                                    dll_pathname, cond_string)
                                    dll_pathname, cond_string)
     char *hookname;
     char *hookname;
     int tempflag;
     int tempflag;
     char *dll_pathname;
     char *dll_pathname;
     char *cond_string;
     char *cond_string;
{
{
  solib_load_unload_1 (hookname, tempflag, dll_pathname,
  solib_load_unload_1 (hookname, tempflag, dll_pathname,
                       cond_string, bp_catch_load);
                       cond_string, bp_catch_load);
}
}
 
 
void
void
create_solib_unload_event_breakpoint (hookname, tempflag,
create_solib_unload_event_breakpoint (hookname, tempflag,
                                      dll_pathname, cond_string)
                                      dll_pathname, cond_string)
     char *hookname;
     char *hookname;
     int tempflag;
     int tempflag;
     char *dll_pathname;
     char *dll_pathname;
     char *cond_string;
     char *cond_string;
{
{
  solib_load_unload_1 (hookname,tempflag, dll_pathname,
  solib_load_unload_1 (hookname,tempflag, dll_pathname,
                       cond_string, bp_catch_unload);
                       cond_string, bp_catch_unload);
}
}
 
 
static void
static void
create_fork_vfork_event_catchpoint (tempflag, cond_string, bp_kind)
create_fork_vfork_event_catchpoint (tempflag, cond_string, bp_kind)
     int tempflag;
     int tempflag;
     char *cond_string;
     char *cond_string;
     enum bptype bp_kind;
     enum bptype bp_kind;
{
{
  struct symtab_and_line sal;
  struct symtab_and_line sal;
  struct breakpoint *b;
  struct breakpoint *b;
  int thread = -1;              /* All threads. */
  int thread = -1;              /* All threads. */
 
 
  INIT_SAL (&sal);
  INIT_SAL (&sal);
  sal.pc = 0;
  sal.pc = 0;
  sal.symtab = NULL;
  sal.symtab = NULL;
  sal.line = 0;
  sal.line = 0;
 
 
  b = set_raw_breakpoint (sal);
  b = set_raw_breakpoint (sal);
  set_breakpoint_count (breakpoint_count + 1);
  set_breakpoint_count (breakpoint_count + 1);
  b->number = breakpoint_count;
  b->number = breakpoint_count;
  b->cond = NULL;
  b->cond = NULL;
  b->cond_string = (cond_string == NULL) ?
  b->cond_string = (cond_string == NULL) ?
    NULL : savestring (cond_string, strlen (cond_string));
    NULL : savestring (cond_string, strlen (cond_string));
  b->thread = thread;
  b->thread = thread;
  b->addr_string = NULL;
  b->addr_string = NULL;
  b->enable = enabled;
  b->enable = enabled;
  b->disposition = tempflag ? del : donttouch;
  b->disposition = tempflag ? del : donttouch;
  b->forked_inferior_pid = 0;
  b->forked_inferior_pid = 0;
 
 
  b->type = bp_kind;
  b->type = bp_kind;
 
 
  mention (b);
  mention (b);
}
}
 
 
void
void
create_fork_event_catchpoint (tempflag, cond_string)
create_fork_event_catchpoint (tempflag, cond_string)
     int tempflag;
     int tempflag;
     char *cond_string;
     char *cond_string;
{
{
  create_fork_vfork_event_catchpoint (tempflag, cond_string, bp_catch_fork);
  create_fork_vfork_event_catchpoint (tempflag, cond_string, bp_catch_fork);
}
}
 
 
void
void
create_vfork_event_catchpoint (tempflag, cond_string)
create_vfork_event_catchpoint (tempflag, cond_string)
     int tempflag;
     int tempflag;
     char *cond_string;
     char *cond_string;
{
{
  create_fork_vfork_event_catchpoint (tempflag, cond_string, bp_catch_vfork);
  create_fork_vfork_event_catchpoint (tempflag, cond_string, bp_catch_vfork);
}
}
 
 
void
void
create_exec_event_catchpoint (tempflag, cond_string)
create_exec_event_catchpoint (tempflag, cond_string)
     int tempflag;
     int tempflag;
     char *cond_string;
     char *cond_string;
{
{
  struct symtab_and_line sal;
  struct symtab_and_line sal;
  struct breakpoint *b;
  struct breakpoint *b;
  int thread = -1;              /* All threads. */
  int thread = -1;              /* All threads. */
 
 
  INIT_SAL (&sal);
  INIT_SAL (&sal);
  sal.pc = 0;
  sal.pc = 0;
  sal.symtab = NULL;
  sal.symtab = NULL;
  sal.line = 0;
  sal.line = 0;
 
 
  b = set_raw_breakpoint (sal);
  b = set_raw_breakpoint (sal);
  set_breakpoint_count (breakpoint_count + 1);
  set_breakpoint_count (breakpoint_count + 1);
  b->number = breakpoint_count;
  b->number = breakpoint_count;
  b->cond = NULL;
  b->cond = NULL;
  b->cond_string = (cond_string == NULL) ?
  b->cond_string = (cond_string == NULL) ?
    NULL : savestring (cond_string, strlen (cond_string));
    NULL : savestring (cond_string, strlen (cond_string));
  b->thread = thread;
  b->thread = thread;
  b->addr_string = NULL;
  b->addr_string = NULL;
  b->enable = enabled;
  b->enable = enabled;
  b->disposition = tempflag ? del : donttouch;
  b->disposition = tempflag ? del : donttouch;
 
 
  b->type = bp_catch_exec;
  b->type = bp_catch_exec;
 
 
  mention (b);
  mention (b);
}
}
 
 
static int
static int
hw_breakpoint_used_count ()
hw_breakpoint_used_count ()
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
  int i = 0;
  int i = 0;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
  {
  {
    if (b->type == bp_hardware_breakpoint && b->enable == enabled)
    if (b->type == bp_hardware_breakpoint && b->enable == enabled)
      i++;
      i++;
  }
  }
 
 
  return i;
  return i;
}
}
 
 
static int
static int
hw_watchpoint_used_count (type, other_type_used)
hw_watchpoint_used_count (type, other_type_used)
     enum bptype type;
     enum bptype type;
     int *other_type_used;
     int *other_type_used;
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
  int i = 0;
  int i = 0;
 
 
  *other_type_used = 0;
  *other_type_used = 0;
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
  {
  {
    if (b->enable == enabled)
    if (b->enable == enabled)
      {
      {
        if (b->type == type)
        if (b->type == type)
          i++;
          i++;
        else if ((b->type == bp_hardware_watchpoint ||
        else if ((b->type == bp_hardware_watchpoint ||
                  b->type == bp_read_watchpoint ||
                  b->type == bp_read_watchpoint ||
                  b->type == bp_access_watchpoint)
                  b->type == bp_access_watchpoint)
                 && b->enable == enabled)
                 && b->enable == enabled)
          *other_type_used = 1;
          *other_type_used = 1;
      }
      }
  }
  }
  return i;
  return i;
}
}
 
 
/* Call this after hitting the longjmp() breakpoint.  Use this to set
/* Call this after hitting the longjmp() breakpoint.  Use this to set
   a new breakpoint at the target of the jmp_buf.
   a new breakpoint at the target of the jmp_buf.
 
 
   FIXME - This ought to be done by setting a temporary breakpoint
   FIXME - This ought to be done by setting a temporary breakpoint
   that gets deleted automatically... */
   that gets deleted automatically... */
 
 
void
void
set_longjmp_resume_breakpoint (pc, frame)
set_longjmp_resume_breakpoint (pc, frame)
     CORE_ADDR pc;
     CORE_ADDR pc;
     struct frame_info *frame;
     struct frame_info *frame;
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    if (b->type == bp_longjmp_resume)
    if (b->type == bp_longjmp_resume)
    {
    {
      b->address = pc;
      b->address = pc;
      b->enable = enabled;
      b->enable = enabled;
      if (frame != NULL)
      if (frame != NULL)
        b->frame = frame->frame;
        b->frame = frame->frame;
      else
      else
        b->frame = 0;
        b->frame = 0;
      check_duplicates (b->address, b->section);
      check_duplicates (b->address, b->section);
      return;
      return;
    }
    }
}
}
 
 
void
void
disable_watchpoints_before_interactive_call_start ()
disable_watchpoints_before_interactive_call_start ()
{
{
  struct breakpoint *b;
  struct breakpoint *b;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
  {
  {
    if (((b->type == bp_watchpoint)
    if (((b->type == bp_watchpoint)
         || (b->type == bp_hardware_watchpoint)
         || (b->type == bp_hardware_watchpoint)
         || (b->type == bp_read_watchpoint)
         || (b->type == bp_read_watchpoint)
         || (b->type == bp_access_watchpoint)
         || (b->type == bp_access_watchpoint)
         || ep_is_exception_catchpoint (b))
         || ep_is_exception_catchpoint (b))
        && (b->enable == enabled))
        && (b->enable == enabled))
      {
      {
        b->enable = call_disabled;
        b->enable = call_disabled;
        check_duplicates (b->address, b->section);
        check_duplicates (b->address, b->section);
      }
      }
  }
  }
}
}
 
 
void
void
enable_watchpoints_after_interactive_call_stop ()
enable_watchpoints_after_interactive_call_stop ()
{
{
  struct breakpoint *b;
  struct breakpoint *b;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
  {
  {
    if (((b->type == bp_watchpoint)
    if (((b->type == bp_watchpoint)
         || (b->type == bp_hardware_watchpoint)
         || (b->type == bp_hardware_watchpoint)
         || (b->type == bp_read_watchpoint)
         || (b->type == bp_read_watchpoint)
         || (b->type == bp_access_watchpoint)
         || (b->type == bp_access_watchpoint)
         || ep_is_exception_catchpoint (b))
         || ep_is_exception_catchpoint (b))
        && (b->enable == call_disabled))
        && (b->enable == call_disabled))
      {
      {
        b->enable = enabled;
        b->enable = enabled;
        check_duplicates (b->address, b->section);
        check_duplicates (b->address, b->section);
      }
      }
  }
  }
}
}
 
 
 
 
/* Set a breakpoint that will evaporate an end of command
/* Set a breakpoint that will evaporate an end of command
   at address specified by SAL.
   at address specified by SAL.
   Restrict it to frame FRAME if FRAME is nonzero.  */
   Restrict it to frame FRAME if FRAME is nonzero.  */
 
 
struct breakpoint *
struct breakpoint *
set_momentary_breakpoint (sal, frame, type)
set_momentary_breakpoint (sal, frame, type)
     struct symtab_and_line sal;
     struct symtab_and_line sal;
     struct frame_info *frame;
     struct frame_info *frame;
     enum bptype type;
     enum bptype type;
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
  b = set_raw_breakpoint (sal);
  b = set_raw_breakpoint (sal);
  b->type = type;
  b->type = type;
  b->enable = enabled;
  b->enable = enabled;
  b->disposition = donttouch;
  b->disposition = donttouch;
  b->frame = (frame ? frame->frame : 0);
  b->frame = (frame ? frame->frame : 0);
 
 
  /* If we're debugging a multi-threaded program, then we
  /* If we're debugging a multi-threaded program, then we
     want momentary breakpoints to be active in only a
     want momentary breakpoints to be active in only a
     single thread of control.  */
     single thread of control.  */
  if (in_thread_list (inferior_pid))
  if (in_thread_list (inferior_pid))
    b->thread = pid_to_thread_id (inferior_pid);
    b->thread = pid_to_thread_id (inferior_pid);
 
 
  return b;
  return b;
}
}


 
 
/* Tell the user we have just set a breakpoint B.  */
/* Tell the user we have just set a breakpoint B.  */
 
 
static void
static void
mention (b)
mention (b)
     struct breakpoint *b;
     struct breakpoint *b;
{
{
  int say_where = 0;
  int say_where = 0;
#ifdef UI_OUT
#ifdef UI_OUT
  struct cleanup *old_chain;
  struct cleanup *old_chain;
  struct ui_stream *stb;
  struct ui_stream *stb;
 
 
  stb = ui_out_stream_new (uiout);
  stb = ui_out_stream_new (uiout);
  old_chain = make_cleanup ((make_cleanup_func) ui_out_stream_delete, stb);
  old_chain = make_cleanup ((make_cleanup_func) ui_out_stream_delete, stb);
#endif /* UI_OUT */
#endif /* UI_OUT */
 
 
  /* FIXME: This is misplaced; mention() is called by things (like hitting a
  /* FIXME: This is misplaced; mention() is called by things (like hitting a
     watchpoint) other than breakpoint creation.  It should be possible to
     watchpoint) other than breakpoint creation.  It should be possible to
     clean this up and at the same time replace the random calls to
     clean this up and at the same time replace the random calls to
     breakpoint_changed with this hook, as has already been done for
     breakpoint_changed with this hook, as has already been done for
     delete_breakpoint_hook and so on.  */
     delete_breakpoint_hook and so on.  */
  if (create_breakpoint_hook)
  if (create_breakpoint_hook)
    create_breakpoint_hook (b);
    create_breakpoint_hook (b);
  breakpoint_create_event (b->number);
  breakpoint_create_event (b->number);
 
 
  switch (b->type)
  switch (b->type)
    {
    {
    case bp_none:
    case bp_none:
      printf_filtered ("(apparently deleted?) Eventpoint %d: ", b->number);
      printf_filtered ("(apparently deleted?) Eventpoint %d: ", b->number);
      break;
      break;
#ifdef UI_OUT
#ifdef UI_OUT
    case bp_watchpoint:
    case bp_watchpoint:
      ui_out_text (uiout, "Watchpoint ");
      ui_out_text (uiout, "Watchpoint ");
      ui_out_list_begin (uiout, "wpt");
      ui_out_list_begin (uiout, "wpt");
      ui_out_field_int (uiout, "number", b->number);
      ui_out_field_int (uiout, "number", b->number);
      ui_out_text (uiout, ": ");
      ui_out_text (uiout, ": ");
      print_expression (b->exp, stb->stream);
      print_expression (b->exp, stb->stream);
      ui_out_field_stream (uiout, "exp", stb);
      ui_out_field_stream (uiout, "exp", stb);
      ui_out_list_end (uiout);
      ui_out_list_end (uiout);
      break;
      break;
    case bp_hardware_watchpoint:
    case bp_hardware_watchpoint:
      ui_out_text (uiout, "Hardware watchpoint ");
      ui_out_text (uiout, "Hardware watchpoint ");
      ui_out_list_begin (uiout, "wpt");
      ui_out_list_begin (uiout, "wpt");
      ui_out_field_int (uiout, "number", b->number);
      ui_out_field_int (uiout, "number", b->number);
      ui_out_text (uiout, ": ");
      ui_out_text (uiout, ": ");
      print_expression (b->exp, stb->stream);
      print_expression (b->exp, stb->stream);
      ui_out_field_stream (uiout, "exp", stb);
      ui_out_field_stream (uiout, "exp", stb);
      ui_out_list_end (uiout);
      ui_out_list_end (uiout);
      break;
      break;
#else
#else
    case bp_watchpoint:
    case bp_watchpoint:
      printf_filtered ("Watchpoint %d: ", b->number);
      printf_filtered ("Watchpoint %d: ", b->number);
      print_expression (b->exp, gdb_stdout);
      print_expression (b->exp, gdb_stdout);
      break;
      break;
    case bp_hardware_watchpoint:
    case bp_hardware_watchpoint:
      printf_filtered ("Hardware watchpoint %d: ", b->number);
      printf_filtered ("Hardware watchpoint %d: ", b->number);
      print_expression (b->exp, gdb_stdout);
      print_expression (b->exp, gdb_stdout);
      break;
      break;
#endif
#endif
#ifdef UI_OUT
#ifdef UI_OUT
    case bp_read_watchpoint:
    case bp_read_watchpoint:
      ui_out_text (uiout, "Hardware read watchpoint ");
      ui_out_text (uiout, "Hardware read watchpoint ");
      ui_out_list_begin (uiout, "hw-rwpt");
      ui_out_list_begin (uiout, "hw-rwpt");
      ui_out_field_int (uiout, "number", b->number);
      ui_out_field_int (uiout, "number", b->number);
      ui_out_text (uiout, ": ");
      ui_out_text (uiout, ": ");
      print_expression (b->exp, stb->stream);
      print_expression (b->exp, stb->stream);
      ui_out_field_stream (uiout, "exp", stb);
      ui_out_field_stream (uiout, "exp", stb);
      ui_out_list_end (uiout);
      ui_out_list_end (uiout);
      break;
      break;
    case bp_access_watchpoint:
    case bp_access_watchpoint:
      ui_out_text (uiout, "Hardware access (read/write) watchpoint ");
      ui_out_text (uiout, "Hardware access (read/write) watchpoint ");
      ui_out_list_begin (uiout, "hw-awpt");
      ui_out_list_begin (uiout, "hw-awpt");
      ui_out_field_int (uiout, "number", b->number);
      ui_out_field_int (uiout, "number", b->number);
      ui_out_text (uiout, ": ");
      ui_out_text (uiout, ": ");
      print_expression (b->exp, stb->stream);
      print_expression (b->exp, stb->stream);
      ui_out_field_stream (uiout, "exp", stb);
      ui_out_field_stream (uiout, "exp", stb);
      ui_out_list_end (uiout);
      ui_out_list_end (uiout);
      break;
      break;
#else
#else
    case bp_read_watchpoint:
    case bp_read_watchpoint:
      printf_filtered ("Hardware read watchpoint %d: ", b->number);
      printf_filtered ("Hardware read watchpoint %d: ", b->number);
      print_expression (b->exp, gdb_stdout);
      print_expression (b->exp, gdb_stdout);
      break;
      break;
    case bp_access_watchpoint:
    case bp_access_watchpoint:
      printf_filtered ("Hardware access (read/write) watchpoint %d: ",
      printf_filtered ("Hardware access (read/write) watchpoint %d: ",
                       b->number);
                       b->number);
      print_expression (b->exp, gdb_stdout);
      print_expression (b->exp, gdb_stdout);
      break;
      break;
#endif
#endif
    case bp_breakpoint:
    case bp_breakpoint:
#ifdef UI_OUT
#ifdef UI_OUT
      if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
      if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
        {
        {
          say_where = 0;
          say_where = 0;
          break;
          break;
        }
        }
#endif
#endif
      printf_filtered ("Breakpoint %d", b->number);
      printf_filtered ("Breakpoint %d", b->number);
      say_where = 1;
      say_where = 1;
      break;
      break;
    case bp_hardware_breakpoint:
    case bp_hardware_breakpoint:
#ifdef UI_OUT
#ifdef UI_OUT
      if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
      if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
        {
        {
          say_where = 0;
          say_where = 0;
          break;
          break;
        }
        }
#endif
#endif
      printf_filtered ("Hardware assisted breakpoint %d", b->number);
      printf_filtered ("Hardware assisted breakpoint %d", b->number);
      say_where = 1;
      say_where = 1;
      break;
      break;
    case bp_catch_load:
    case bp_catch_load:
    case bp_catch_unload:
    case bp_catch_unload:
      printf_filtered ("Catchpoint %d (%s %s)",
      printf_filtered ("Catchpoint %d (%s %s)",
                       b->number,
                       b->number,
                       (b->type == bp_catch_load) ? "load" : "unload",
                       (b->type == bp_catch_load) ? "load" : "unload",
                       (b->dll_pathname != NULL) ?
                       (b->dll_pathname != NULL) ?
                       b->dll_pathname : "<any library>");
                       b->dll_pathname : "<any library>");
      break;
      break;
    case bp_catch_fork:
    case bp_catch_fork:
    case bp_catch_vfork:
    case bp_catch_vfork:
      printf_filtered ("Catchpoint %d (%s)",
      printf_filtered ("Catchpoint %d (%s)",
                       b->number,
                       b->number,
                       (b->type == bp_catch_fork) ? "fork" : "vfork");
                       (b->type == bp_catch_fork) ? "fork" : "vfork");
      break;
      break;
    case bp_catch_exec:
    case bp_catch_exec:
      printf_filtered ("Catchpoint %d (exec)",
      printf_filtered ("Catchpoint %d (exec)",
                       b->number);
                       b->number);
      break;
      break;
    case bp_catch_catch:
    case bp_catch_catch:
    case bp_catch_throw:
    case bp_catch_throw:
      printf_filtered ("Catchpoint %d (%s)",
      printf_filtered ("Catchpoint %d (%s)",
                       b->number,
                       b->number,
                       (b->type == bp_catch_catch) ? "catch" : "throw");
                       (b->type == bp_catch_catch) ? "catch" : "throw");
      break;
      break;
 
 
    case bp_until:
    case bp_until:
    case bp_finish:
    case bp_finish:
    case bp_longjmp:
    case bp_longjmp:
    case bp_longjmp_resume:
    case bp_longjmp_resume:
    case bp_step_resume:
    case bp_step_resume:
    case bp_through_sigtramp:
    case bp_through_sigtramp:
    case bp_call_dummy:
    case bp_call_dummy:
    case bp_watchpoint_scope:
    case bp_watchpoint_scope:
    case bp_shlib_event:
    case bp_shlib_event:
    case bp_thread_event:
    case bp_thread_event:
      break;
      break;
    }
    }
  if (say_where)
  if (say_where)
    {
    {
      if (addressprint || b->source_file == NULL)
      if (addressprint || b->source_file == NULL)
        {
        {
          printf_filtered (" at ");
          printf_filtered (" at ");
          print_address_numeric (b->address, 1, gdb_stdout);
          print_address_numeric (b->address, 1, gdb_stdout);
        }
        }
      if (b->source_file)
      if (b->source_file)
        printf_filtered (": file %s, line %d.",
        printf_filtered (": file %s, line %d.",
                         b->source_file, b->line_number);
                         b->source_file, b->line_number);
      TUIDO (((TuiOpaqueFuncPtr) tui_vAllSetHasBreakAt, b, 1));
      TUIDO (((TuiOpaqueFuncPtr) tui_vAllSetHasBreakAt, b, 1));
      TUIDO (((TuiOpaqueFuncPtr) tuiUpdateAllExecInfos));
      TUIDO (((TuiOpaqueFuncPtr) tuiUpdateAllExecInfos));
    }
    }
#ifdef UI_OUT
#ifdef UI_OUT
  do_cleanups (old_chain);
  do_cleanups (old_chain);
#endif
#endif
#ifdef UI_OUT
#ifdef UI_OUT
  if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
  if (interpreter_p && strcmp (interpreter_p, "mi") == 0)
    return;
    return;
#endif
#endif
  printf_filtered ("\n");
  printf_filtered ("\n");
}
}


 
 
/* Add SALS.nelts breakpoints to the breakpoint table.  For each
/* Add SALS.nelts breakpoints to the breakpoint table.  For each
   SALS.sal[i] breakpoint, include the corresponding ADDR_STRING[i],
   SALS.sal[i] breakpoint, include the corresponding ADDR_STRING[i],
   COND[i] and COND_STRING[i] values.
   COND[i] and COND_STRING[i] values.
 
 
   NOTE: If the function succeeds, the caller is expected to cleanup
   NOTE: If the function succeeds, the caller is expected to cleanup
   the arrays ADDR_STRING, COND_STRING, COND and SALS (but not the
   the arrays ADDR_STRING, COND_STRING, COND and SALS (but not the
   array contents).  If the function fails (error() is called), the
   array contents).  If the function fails (error() is called), the
   caller is expected to cleanups both the ADDR_STRING, COND_STRING,
   caller is expected to cleanups both the ADDR_STRING, COND_STRING,
   COND and SALS arrays and each of those arrays contents. */
   COND and SALS arrays and each of those arrays contents. */
 
 
static void
static void
create_breakpoints (struct symtabs_and_lines sals, char **addr_string,
create_breakpoints (struct symtabs_and_lines sals, char **addr_string,
                    struct expression **cond, char **cond_string,
                    struct expression **cond, char **cond_string,
                    enum bptype type, enum bpdisp disposition,
                    enum bptype type, enum bpdisp disposition,
                    int thread, int ignore_count, int from_tty)
                    int thread, int ignore_count, int from_tty)
{
{
  if (type == bp_hardware_breakpoint)
  if (type == bp_hardware_breakpoint)
    {
    {
      int i = hw_breakpoint_used_count ();
      int i = hw_breakpoint_used_count ();
      int target_resources_ok =
      int target_resources_ok =
        TARGET_CAN_USE_HARDWARE_WATCHPOINT (bp_hardware_breakpoint,
        TARGET_CAN_USE_HARDWARE_WATCHPOINT (bp_hardware_breakpoint,
                                            i + sals.nelts, 0);
                                            i + sals.nelts, 0);
      if (target_resources_ok == 0)
      if (target_resources_ok == 0)
        error ("No hardware breakpoint support in the target.");
        error ("No hardware breakpoint support in the target.");
      else if (target_resources_ok < 0)
      else if (target_resources_ok < 0)
        error ("Hardware breakpoints used exceeds limit.");
        error ("Hardware breakpoints used exceeds limit.");
    }
    }
 
 
  /* Now set all the breakpoints.  */
  /* Now set all the breakpoints.  */
  {
  {
    int i;
    int i;
    for (i = 0; i < sals.nelts; i++)
    for (i = 0; i < sals.nelts; i++)
      {
      {
        struct breakpoint *b;
        struct breakpoint *b;
        struct symtab_and_line sal = sals.sals[i];
        struct symtab_and_line sal = sals.sals[i];
 
 
        if (from_tty)
        if (from_tty)
          describe_other_breakpoints (sal.pc, sal.section);
          describe_other_breakpoints (sal.pc, sal.section);
 
 
        b = set_raw_breakpoint (sal);
        b = set_raw_breakpoint (sal);
        set_breakpoint_count (breakpoint_count + 1);
        set_breakpoint_count (breakpoint_count + 1);
        b->number = breakpoint_count;
        b->number = breakpoint_count;
        b->type = type;
        b->type = type;
        b->cond = cond[i];
        b->cond = cond[i];
        b->thread = thread;
        b->thread = thread;
        b->addr_string = addr_string[i];
        b->addr_string = addr_string[i];
        b->cond_string = cond_string[i];
        b->cond_string = cond_string[i];
        b->ignore_count = ignore_count;
        b->ignore_count = ignore_count;
        b->enable = enabled;
        b->enable = enabled;
        b->disposition = disposition;
        b->disposition = disposition;
        mention (b);
        mention (b);
      }
      }
  }
  }
}
}
 
 
/* Parse ARG which is assumed to be a SAL specification possibly
/* Parse ARG which is assumed to be a SAL specification possibly
   followed by conditionals.  On return, SALS contains an array of SAL
   followed by conditionals.  On return, SALS contains an array of SAL
   addresses found. ADDR_STRING contains a vector of (canonical)
   addresses found. ADDR_STRING contains a vector of (canonical)
   address strings. ARG points to the end of the SAL. */
   address strings. ARG points to the end of the SAL. */
 
 
void
void
parse_breakpoint_sals (char **address,
parse_breakpoint_sals (char **address,
                       struct symtabs_and_lines *sals,
                       struct symtabs_and_lines *sals,
                       char ***addr_string)
                       char ***addr_string)
{
{
  char *addr_start = *address;
  char *addr_start = *address;
  *addr_string = NULL;
  *addr_string = NULL;
  /* If no arg given, or if first arg is 'if ', use the default
  /* If no arg given, or if first arg is 'if ', use the default
     breakpoint. */
     breakpoint. */
  if ((*address) == NULL
  if ((*address) == NULL
      || (strncmp ((*address), "if", 2) == 0 && isspace ((*address)[2])))
      || (strncmp ((*address), "if", 2) == 0 && isspace ((*address)[2])))
    {
    {
      if (default_breakpoint_valid)
      if (default_breakpoint_valid)
        {
        {
          struct symtab_and_line sal;
          struct symtab_and_line sal;
          INIT_SAL (&sal);              /* initialize to zeroes */
          INIT_SAL (&sal);              /* initialize to zeroes */
          sals->sals = (struct symtab_and_line *)
          sals->sals = (struct symtab_and_line *)
            xmalloc (sizeof (struct symtab_and_line));
            xmalloc (sizeof (struct symtab_and_line));
          sal.pc = default_breakpoint_address;
          sal.pc = default_breakpoint_address;
          sal.line = default_breakpoint_line;
          sal.line = default_breakpoint_line;
          sal.symtab = default_breakpoint_symtab;
          sal.symtab = default_breakpoint_symtab;
          sal.section = find_pc_overlay (sal.pc);
          sal.section = find_pc_overlay (sal.pc);
          sals->sals[0] = sal;
          sals->sals[0] = sal;
          sals->nelts = 1;
          sals->nelts = 1;
        }
        }
      else
      else
        error ("No default breakpoint address now.");
        error ("No default breakpoint address now.");
    }
    }
  else
  else
    {
    {
      /* Force almost all breakpoints to be in terms of the
      /* Force almost all breakpoints to be in terms of the
         current_source_symtab (which is decode_line_1's default).  This
         current_source_symtab (which is decode_line_1's default).  This
         should produce the results we want almost all of the time while
         should produce the results we want almost all of the time while
         leaving default_breakpoint_* alone.  */
         leaving default_breakpoint_* alone.  */
      if (default_breakpoint_valid
      if (default_breakpoint_valid
          && (!current_source_symtab
          && (!current_source_symtab
              || (strchr ("+-", (*address)[0]) != NULL)))
              || (strchr ("+-", (*address)[0]) != NULL)))
        *sals = decode_line_1 (address, 1, default_breakpoint_symtab,
        *sals = decode_line_1 (address, 1, default_breakpoint_symtab,
                               default_breakpoint_line, addr_string);
                               default_breakpoint_line, addr_string);
      else
      else
        *sals = decode_line_1 (address, 1, (struct symtab *) NULL, 0, addr_string);
        *sals = decode_line_1 (address, 1, (struct symtab *) NULL, 0, addr_string);
    }
    }
  /* For any SAL that didn't have a canonical string, fill one in. */
  /* For any SAL that didn't have a canonical string, fill one in. */
  if (sals->nelts > 0 && *addr_string == NULL)
  if (sals->nelts > 0 && *addr_string == NULL)
    *addr_string = xcalloc (sals->nelts, sizeof (char **));
    *addr_string = xcalloc (sals->nelts, sizeof (char **));
  if (addr_start != (*address))
  if (addr_start != (*address))
    {
    {
      int i;
      int i;
      for (i = 0; i < sals->nelts; i++)
      for (i = 0; i < sals->nelts; i++)
        {
        {
          /* Add the string if not present. */
          /* Add the string if not present. */
          if ((*addr_string)[i] == NULL)
          if ((*addr_string)[i] == NULL)
            (*addr_string)[i] = savestring (addr_start, (*address) - addr_start);
            (*addr_string)[i] = savestring (addr_start, (*address) - addr_start);
        }
        }
    }
    }
}
}
 
 
 
 
/* Convert each SAL into a real PC.  Verify that the PC can be
/* Convert each SAL into a real PC.  Verify that the PC can be
   inserted as a breakpoint.  If it can't throw an error. */
   inserted as a breakpoint.  If it can't throw an error. */
 
 
void
void
breakpoint_sals_to_pc (struct symtabs_and_lines *sals,
breakpoint_sals_to_pc (struct symtabs_and_lines *sals,
                       char *address)
                       char *address)
{
{
  int i;
  int i;
  for (i = 0; i < sals->nelts; i++)
  for (i = 0; i < sals->nelts; i++)
    {
    {
      resolve_sal_pc (&sals->sals[i]);
      resolve_sal_pc (&sals->sals[i]);
 
 
      /* It's possible for the PC to be nonzero, but still an illegal
      /* It's possible for the PC to be nonzero, but still an illegal
         value on some targets.
         value on some targets.
 
 
         For example, on HP-UX if you start gdb, and before running the
         For example, on HP-UX if you start gdb, and before running the
         inferior you try to set a breakpoint on a shared library function
         inferior you try to set a breakpoint on a shared library function
         "foo" where the inferior doesn't call "foo" directly but does
         "foo" where the inferior doesn't call "foo" directly but does
         pass its address to another function call, then we do find a
         pass its address to another function call, then we do find a
         minimal symbol for the "foo", but it's address is invalid.
         minimal symbol for the "foo", but it's address is invalid.
         (Appears to be an index into a table that the loader sets up
         (Appears to be an index into a table that the loader sets up
         when the inferior is run.)
         when the inferior is run.)
 
 
         Give the target a chance to bless sals.sals[i].pc before we
         Give the target a chance to bless sals.sals[i].pc before we
         try to make a breakpoint for it. */
         try to make a breakpoint for it. */
      if (PC_REQUIRES_RUN_BEFORE_USE (sals->sals[i].pc))
      if (PC_REQUIRES_RUN_BEFORE_USE (sals->sals[i].pc))
        {
        {
          if (address == NULL)
          if (address == NULL)
            error ("Cannot break without a running program.");
            error ("Cannot break without a running program.");
          else
          else
            error ("Cannot break on %s without a running program.",
            error ("Cannot break on %s without a running program.",
                   address);
                   address);
        }
        }
    }
    }
}
}
 
 
/* Set a breakpoint according to ARG (function, linenum or *address)
/* Set a breakpoint according to ARG (function, linenum or *address)
   flag: first bit  : 0 non-temporary, 1 temporary.
   flag: first bit  : 0 non-temporary, 1 temporary.
   second bit : 0 normal breakpoint, 1 hardware breakpoint. */
   second bit : 0 normal breakpoint, 1 hardware breakpoint. */
 
 
static void
static void
break_command_1 (arg, flag, from_tty)
break_command_1 (arg, flag, from_tty)
     char *arg;
     char *arg;
     int flag, from_tty;
     int flag, from_tty;
{
{
  int tempflag, hardwareflag;
  int tempflag, hardwareflag;
  struct symtabs_and_lines sals;
  struct symtabs_and_lines sals;
  register struct expression **cond = 0;
  register struct expression **cond = 0;
  /* Pointers in arg to the start, and one past the end, of the
  /* Pointers in arg to the start, and one past the end, of the
     condition.  */
     condition.  */
  char **cond_string = (char **) NULL;
  char **cond_string = (char **) NULL;
  char *addr_start = arg;
  char *addr_start = arg;
  char **addr_string;
  char **addr_string;
  struct cleanup *old_chain;
  struct cleanup *old_chain;
  struct cleanup *breakpoint_chain = NULL;
  struct cleanup *breakpoint_chain = NULL;
  int i;
  int i;
  int thread = -1;
  int thread = -1;
  int ignore_count = 0;
  int ignore_count = 0;
 
 
  hardwareflag = flag & BP_HARDWAREFLAG;
  hardwareflag = flag & BP_HARDWAREFLAG;
  tempflag = flag & BP_TEMPFLAG;
  tempflag = flag & BP_TEMPFLAG;
 
 
  sals.sals = NULL;
  sals.sals = NULL;
  sals.nelts = 0;
  sals.nelts = 0;
  addr_string = NULL;
  addr_string = NULL;
  parse_breakpoint_sals (&arg, &sals, &addr_string);
  parse_breakpoint_sals (&arg, &sals, &addr_string);
 
 
  if (!sals.nelts)
  if (!sals.nelts)
    return;
    return;
 
 
  /* Create a chain of things that always need to be cleaned up. */
  /* Create a chain of things that always need to be cleaned up. */
  old_chain = make_cleanup (null_cleanup, 0);
  old_chain = make_cleanup (null_cleanup, 0);
 
 
  /* Make sure that all storage allocated to SALS gets freed.  */
  /* Make sure that all storage allocated to SALS gets freed.  */
  make_cleanup (free, sals.sals);
  make_cleanup (free, sals.sals);
 
 
  /* Cleanup the addr_string array but not its contents. */
  /* Cleanup the addr_string array but not its contents. */
  make_cleanup (free, addr_string);
  make_cleanup (free, addr_string);
 
 
  /* Allocate space for all the cond expressions. */
  /* Allocate space for all the cond expressions. */
  cond = xcalloc (sals.nelts, sizeof (struct expression *));
  cond = xcalloc (sals.nelts, sizeof (struct expression *));
  make_cleanup (free, cond);
  make_cleanup (free, cond);
 
 
  /* Allocate space for all the cond strings. */
  /* Allocate space for all the cond strings. */
  cond_string = xcalloc (sals.nelts, sizeof (char **));
  cond_string = xcalloc (sals.nelts, sizeof (char **));
  make_cleanup (free, cond_string);
  make_cleanup (free, cond_string);
 
 
  /* ----------------------------- SNIP -----------------------------
  /* ----------------------------- SNIP -----------------------------
     Anything added to the cleanup chain beyond this point is assumed
     Anything added to the cleanup chain beyond this point is assumed
     to be part of a breakpoint.  If the breakpoint create succeeds
     to be part of a breakpoint.  If the breakpoint create succeeds
     then the memory is not reclaimed. */
     then the memory is not reclaimed. */
  breakpoint_chain = make_cleanup (null_cleanup, 0);
  breakpoint_chain = make_cleanup (null_cleanup, 0);
 
 
  /* Mark the contents of the addr_string for cleanup.  These go on
  /* Mark the contents of the addr_string for cleanup.  These go on
     the breakpoint_chain and only occure if the breakpoint create
     the breakpoint_chain and only occure if the breakpoint create
     fails. */
     fails. */
  for (i = 0; i < sals.nelts; i++)
  for (i = 0; i < sals.nelts; i++)
    {
    {
      if (addr_string[i] != NULL)
      if (addr_string[i] != NULL)
        make_cleanup (free, addr_string[i]);
        make_cleanup (free, addr_string[i]);
    }
    }
 
 
  /* Resolve all line numbers to PC's and verify that the addresses
  /* Resolve all line numbers to PC's and verify that the addresses
     are ok for the target.  */
     are ok for the target.  */
  breakpoint_sals_to_pc (&sals, addr_start);
  breakpoint_sals_to_pc (&sals, addr_start);
 
 
  /* Verify that condition can be parsed, before setting any
  /* Verify that condition can be parsed, before setting any
     breakpoints.  Allocate a separate condition expression for each
     breakpoints.  Allocate a separate condition expression for each
     breakpoint. */
     breakpoint. */
  thread = -1;                  /* No specific thread yet */
  thread = -1;                  /* No specific thread yet */
  for (i = 0; i < sals.nelts; i++)
  for (i = 0; i < sals.nelts; i++)
    {
    {
      char *tok = arg;
      char *tok = arg;
      while (tok && *tok)
      while (tok && *tok)
        {
        {
          char *end_tok;
          char *end_tok;
          int toklen;
          int toklen;
          char *cond_start = NULL;
          char *cond_start = NULL;
          char *cond_end = NULL;
          char *cond_end = NULL;
          while (*tok == ' ' || *tok == '\t')
          while (*tok == ' ' || *tok == '\t')
            tok++;
            tok++;
 
 
          end_tok = tok;
          end_tok = tok;
 
 
          while (*end_tok != ' ' && *end_tok != '\t' && *end_tok != '\000')
          while (*end_tok != ' ' && *end_tok != '\t' && *end_tok != '\000')
            end_tok++;
            end_tok++;
 
 
          toklen = end_tok - tok;
          toklen = end_tok - tok;
 
 
          if (toklen >= 1 && strncmp (tok, "if", toklen) == 0)
          if (toklen >= 1 && strncmp (tok, "if", toklen) == 0)
            {
            {
              tok = cond_start = end_tok + 1;
              tok = cond_start = end_tok + 1;
              cond[i] = parse_exp_1 (&tok, block_for_pc (sals.sals[i].pc), 0);
              cond[i] = parse_exp_1 (&tok, block_for_pc (sals.sals[i].pc), 0);
              make_cleanup (free, cond[i]);
              make_cleanup (free, cond[i]);
              cond_end = tok;
              cond_end = tok;
              cond_string[i] = savestring (cond_start, cond_end - cond_start);
              cond_string[i] = savestring (cond_start, cond_end - cond_start);
              make_cleanup (free, cond_string[i]);
              make_cleanup (free, cond_string[i]);
            }
            }
          else if (toklen >= 1 && strncmp (tok, "thread", toklen) == 0)
          else if (toklen >= 1 && strncmp (tok, "thread", toklen) == 0)
            {
            {
              char *tmptok;
              char *tmptok;
 
 
              tok = end_tok + 1;
              tok = end_tok + 1;
              tmptok = tok;
              tmptok = tok;
              thread = strtol (tok, &tok, 0);
              thread = strtol (tok, &tok, 0);
              if (tok == tmptok)
              if (tok == tmptok)
                error ("Junk after thread keyword.");
                error ("Junk after thread keyword.");
              if (!valid_thread_id (thread))
              if (!valid_thread_id (thread))
                error ("Unknown thread %d\n", thread);
                error ("Unknown thread %d\n", thread);
            }
            }
          else
          else
            error ("Junk at end of arguments.");
            error ("Junk at end of arguments.");
        }
        }
    }
    }
 
 
  create_breakpoints (sals, addr_string, cond, cond_string,
  create_breakpoints (sals, addr_string, cond, cond_string,
                      hardwareflag ? bp_hardware_breakpoint : bp_breakpoint,
                      hardwareflag ? bp_hardware_breakpoint : bp_breakpoint,
                      tempflag ? del : donttouch,
                      tempflag ? del : donttouch,
                      thread, ignore_count, from_tty);
                      thread, ignore_count, from_tty);
 
 
  if (sals.nelts > 1)
  if (sals.nelts > 1)
    {
    {
      warning ("Multiple breakpoints were set.");
      warning ("Multiple breakpoints were set.");
      warning ("Use the \"delete\" command to delete unwanted breakpoints.");
      warning ("Use the \"delete\" command to delete unwanted breakpoints.");
    }
    }
  /* That's it. Discard the cleanups for data inserted into the
  /* That's it. Discard the cleanups for data inserted into the
     breakpoint. */
     breakpoint. */
  discard_cleanups (breakpoint_chain);
  discard_cleanups (breakpoint_chain);
  /* But cleanup everything else. */
  /* But cleanup everything else. */
  do_cleanups (old_chain);
  do_cleanups (old_chain);
}
}
 
 
/* Set a breakpoint of TYPE/DISPOSITION according to ARG (function,
/* Set a breakpoint of TYPE/DISPOSITION according to ARG (function,
   linenum or *address) with COND and IGNORE_COUNT. */
   linenum or *address) with COND and IGNORE_COUNT. */
 
 
struct captured_breakpoint_args
struct captured_breakpoint_args
  {
  {
    char *address;
    char *address;
    char *condition;
    char *condition;
    int hardwareflag;
    int hardwareflag;
    int tempflag;
    int tempflag;
    int thread;
    int thread;
    int ignore_count;
    int ignore_count;
  };
  };
 
 
static int
static int
do_captured_breakpoint (void *data)
do_captured_breakpoint (void *data)
{
{
  struct captured_breakpoint_args *args = data;
  struct captured_breakpoint_args *args = data;
  struct symtabs_and_lines sals;
  struct symtabs_and_lines sals;
  register struct expression **cond;
  register struct expression **cond;
  struct cleanup *old_chain;
  struct cleanup *old_chain;
  struct cleanup *breakpoint_chain = NULL;
  struct cleanup *breakpoint_chain = NULL;
  int i;
  int i;
  char **addr_string;
  char **addr_string;
  char **cond_string;
  char **cond_string;
 
 
  char *address_end;
  char *address_end;
 
 
  /* Parse the source and lines spec.  Delay check that the expression
  /* Parse the source and lines spec.  Delay check that the expression
     didn't contain trailing garbage until after cleanups are in
     didn't contain trailing garbage until after cleanups are in
     place. */
     place. */
  sals.sals = NULL;
  sals.sals = NULL;
  sals.nelts = 0;
  sals.nelts = 0;
  address_end = args->address;
  address_end = args->address;
  addr_string = NULL;
  addr_string = NULL;
  parse_breakpoint_sals (&address_end, &sals, &addr_string);
  parse_breakpoint_sals (&address_end, &sals, &addr_string);
 
 
  if (!sals.nelts)
  if (!sals.nelts)
    return GDB_RC_NONE;
    return GDB_RC_NONE;
 
 
  /* Create a chain of things at always need to be cleaned up. */
  /* Create a chain of things at always need to be cleaned up. */
  old_chain = make_cleanup (null_cleanup, 0);
  old_chain = make_cleanup (null_cleanup, 0);
 
 
  /* Always have a addr_string array, even if it is empty. */
  /* Always have a addr_string array, even if it is empty. */
  make_cleanup (free, addr_string);
  make_cleanup (free, addr_string);
 
 
  /* Make sure that all storage allocated to SALS gets freed.  */
  /* Make sure that all storage allocated to SALS gets freed.  */
  make_cleanup (free, sals.sals);
  make_cleanup (free, sals.sals);
 
 
  /* Allocate space for all the cond expressions. */
  /* Allocate space for all the cond expressions. */
  cond = xcalloc (sals.nelts, sizeof (struct expression *));
  cond = xcalloc (sals.nelts, sizeof (struct expression *));
  make_cleanup (free, cond);
  make_cleanup (free, cond);
 
 
  /* Allocate space for all the cond strings. */
  /* Allocate space for all the cond strings. */
  cond_string = xcalloc (sals.nelts, sizeof (char **));
  cond_string = xcalloc (sals.nelts, sizeof (char **));
  make_cleanup (free, cond_string);
  make_cleanup (free, cond_string);
 
 
  /* ----------------------------- SNIP -----------------------------
  /* ----------------------------- SNIP -----------------------------
     Anything added to the cleanup chain beyond this point is assumed
     Anything added to the cleanup chain beyond this point is assumed
     to be part of a breakpoint.  If the breakpoint create goes
     to be part of a breakpoint.  If the breakpoint create goes
     through then that memory is not cleaned up. */
     through then that memory is not cleaned up. */
  breakpoint_chain = make_cleanup (null_cleanup, 0);
  breakpoint_chain = make_cleanup (null_cleanup, 0);
 
 
  /* Mark the contents of the addr_string for cleanup.  These go on
  /* Mark the contents of the addr_string for cleanup.  These go on
     the breakpoint_chain and only occure if the breakpoint create
     the breakpoint_chain and only occure if the breakpoint create
     fails. */
     fails. */
  for (i = 0; i < sals.nelts; i++)
  for (i = 0; i < sals.nelts; i++)
    {
    {
      if (addr_string[i] != NULL)
      if (addr_string[i] != NULL)
        make_cleanup (free, addr_string[i]);
        make_cleanup (free, addr_string[i]);
    }
    }
 
 
  /* Wait until now before checking for garbage at the end of the
  /* Wait until now before checking for garbage at the end of the
     address. That way cleanups can take care of freeing any
     address. That way cleanups can take care of freeing any
     memory. */
     memory. */
  if (*address_end != '\0')
  if (*address_end != '\0')
    error ("Garbage %s following breakpoint address", address_end);
    error ("Garbage %s following breakpoint address", address_end);
 
 
  /* Resolve all line numbers to PC's.  */
  /* Resolve all line numbers to PC's.  */
  breakpoint_sals_to_pc (&sals, args->address);
  breakpoint_sals_to_pc (&sals, args->address);
 
 
  /* Verify that conditions can be parsed, before setting any
  /* Verify that conditions can be parsed, before setting any
     breakpoints.  */
     breakpoints.  */
  for (i = 0; i < sals.nelts; i++)
  for (i = 0; i < sals.nelts; i++)
    {
    {
      if (args->condition != NULL)
      if (args->condition != NULL)
        {
        {
          char *tok = args->condition;
          char *tok = args->condition;
          cond[i] = parse_exp_1 (&tok, block_for_pc (sals.sals[i].pc), 0);
          cond[i] = parse_exp_1 (&tok, block_for_pc (sals.sals[i].pc), 0);
          if (*tok != '\0')
          if (*tok != '\0')
            error ("Garbage %s follows condition", tok);
            error ("Garbage %s follows condition", tok);
          make_cleanup (free, cond[i]);
          make_cleanup (free, cond[i]);
          cond_string[i] = xstrdup (args->condition);
          cond_string[i] = xstrdup (args->condition);
        }
        }
    }
    }
 
 
  create_breakpoints (sals, addr_string, cond, cond_string,
  create_breakpoints (sals, addr_string, cond, cond_string,
                      args->hardwareflag ? bp_hardware_breakpoint : bp_breakpoint,
                      args->hardwareflag ? bp_hardware_breakpoint : bp_breakpoint,
                      args->tempflag ? del : donttouch,
                      args->tempflag ? del : donttouch,
                      args->thread, args->ignore_count, 0/*from-tty*/);
                      args->thread, args->ignore_count, 0/*from-tty*/);
 
 
  /* That's it. Discard the cleanups for data inserted into the
  /* That's it. Discard the cleanups for data inserted into the
     breakpoint. */
     breakpoint. */
  discard_cleanups (breakpoint_chain);
  discard_cleanups (breakpoint_chain);
  /* But cleanup everything else. */
  /* But cleanup everything else. */
  do_cleanups (old_chain);
  do_cleanups (old_chain);
  return GDB_RC_OK;
  return GDB_RC_OK;
}
}
 
 
enum gdb_rc
enum gdb_rc
gdb_breakpoint (char *address, char *condition,
gdb_breakpoint (char *address, char *condition,
                int hardwareflag, int tempflag,
                int hardwareflag, int tempflag,
                int thread, int ignore_count)
                int thread, int ignore_count)
{
{
  struct captured_breakpoint_args args;
  struct captured_breakpoint_args args;
  args.address = address;
  args.address = address;
  args.condition = condition;
  args.condition = condition;
  args.hardwareflag = hardwareflag;
  args.hardwareflag = hardwareflag;
  args.tempflag = tempflag;
  args.tempflag = tempflag;
  args.thread = thread;
  args.thread = thread;
  args.ignore_count = ignore_count;
  args.ignore_count = ignore_count;
  return catch_errors (do_captured_breakpoint, &args,
  return catch_errors (do_captured_breakpoint, &args,
                       NULL, RETURN_MASK_ALL);
                       NULL, RETURN_MASK_ALL);
}
}
 
 
 
 
static void
static void
break_at_finish_at_depth_command_1 (arg, flag, from_tty)
break_at_finish_at_depth_command_1 (arg, flag, from_tty)
     char *arg;
     char *arg;
     int flag;
     int flag;
     int from_tty;
     int from_tty;
{
{
  struct frame_info *frame;
  struct frame_info *frame;
  CORE_ADDR low, high, selected_pc = 0;
  CORE_ADDR low, high, selected_pc = 0;
  char *extra_args, *level_arg, *addr_string;
  char *extra_args, *level_arg, *addr_string;
  int extra_args_len = 0, if_arg = 0;
  int extra_args_len = 0, if_arg = 0;
 
 
  if (!arg ||
  if (!arg ||
      (arg[0] == 'i' && arg[1] == 'f' && (arg[2] == ' ' || arg[2] == '\t')))
      (arg[0] == 'i' && arg[1] == 'f' && (arg[2] == ' ' || arg[2] == '\t')))
    {
    {
 
 
      if (default_breakpoint_valid)
      if (default_breakpoint_valid)
        {
        {
          if (selected_frame)
          if (selected_frame)
            {
            {
              selected_pc = selected_frame->pc;
              selected_pc = selected_frame->pc;
              if (arg)
              if (arg)
                if_arg = 1;
                if_arg = 1;
            }
            }
          else
          else
            error ("No selected frame.");
            error ("No selected frame.");
        }
        }
      else
      else
        error ("No default breakpoint address now.");
        error ("No default breakpoint address now.");
    }
    }
  else
  else
    {
    {
      extra_args = strchr (arg, ' ');
      extra_args = strchr (arg, ' ');
      if (extra_args)
      if (extra_args)
        {
        {
          extra_args++;
          extra_args++;
          extra_args_len = strlen (extra_args);
          extra_args_len = strlen (extra_args);
          level_arg = (char *) xmalloc (extra_args - arg);
          level_arg = (char *) xmalloc (extra_args - arg);
          strncpy (level_arg, arg, extra_args - arg - 1);
          strncpy (level_arg, arg, extra_args - arg - 1);
          level_arg[extra_args - arg - 1] = '\0';
          level_arg[extra_args - arg - 1] = '\0';
        }
        }
      else
      else
        {
        {
          level_arg = (char *) xmalloc (strlen (arg) + 1);
          level_arg = (char *) xmalloc (strlen (arg) + 1);
          strcpy (level_arg, arg);
          strcpy (level_arg, arg);
        }
        }
 
 
      frame = parse_frame_specification (level_arg);
      frame = parse_frame_specification (level_arg);
      if (frame)
      if (frame)
        selected_pc = frame->pc;
        selected_pc = frame->pc;
      else
      else
        selected_pc = 0;
        selected_pc = 0;
    }
    }
  if (if_arg)
  if (if_arg)
    {
    {
      extra_args = arg;
      extra_args = arg;
      extra_args_len = strlen (arg);
      extra_args_len = strlen (arg);
    }
    }
 
 
  if (selected_pc)
  if (selected_pc)
    {
    {
      if (find_pc_partial_function (selected_pc, (char **) NULL, &low, &high))
      if (find_pc_partial_function (selected_pc, (char **) NULL, &low, &high))
        {
        {
          addr_string = (char *) xmalloc (26 + extra_args_len);
          addr_string = (char *) xmalloc (26 + extra_args_len);
          if (extra_args_len)
          if (extra_args_len)
            sprintf (addr_string, "*0x%s %s", paddr_nz (high), extra_args);
            sprintf (addr_string, "*0x%s %s", paddr_nz (high), extra_args);
          else
          else
            sprintf (addr_string, "*0x%s", paddr_nz (high));
            sprintf (addr_string, "*0x%s", paddr_nz (high));
          break_command_1 (addr_string, flag, from_tty);
          break_command_1 (addr_string, flag, from_tty);
          free (addr_string);
          free (addr_string);
        }
        }
      else
      else
        error ("No function contains the specified address");
        error ("No function contains the specified address");
    }
    }
  else
  else
    error ("Unable to set breakpoint at procedure exit");
    error ("Unable to set breakpoint at procedure exit");
}
}
 
 
 
 
static void
static void
break_at_finish_command_1 (arg, flag, from_tty)
break_at_finish_command_1 (arg, flag, from_tty)
     char *arg;
     char *arg;
     int flag;
     int flag;
     int from_tty;
     int from_tty;
{
{
  char *addr_string, *break_string, *beg_addr_string;
  char *addr_string, *break_string, *beg_addr_string;
  CORE_ADDR low, high;
  CORE_ADDR low, high;
  struct symtabs_and_lines sals;
  struct symtabs_and_lines sals;
  struct symtab_and_line sal;
  struct symtab_and_line sal;
  struct cleanup *old_chain;
  struct cleanup *old_chain;
  char *extra_args;
  char *extra_args;
  int extra_args_len = 0;
  int extra_args_len = 0;
  int i, if_arg = 0;
  int i, if_arg = 0;
 
 
  if (!arg ||
  if (!arg ||
      (arg[0] == 'i' && arg[1] == 'f' && (arg[2] == ' ' || arg[2] == '\t')))
      (arg[0] == 'i' && arg[1] == 'f' && (arg[2] == ' ' || arg[2] == '\t')))
    {
    {
      if (default_breakpoint_valid)
      if (default_breakpoint_valid)
        {
        {
          if (selected_frame)
          if (selected_frame)
            {
            {
              addr_string = (char *) xmalloc (15);
              addr_string = (char *) xmalloc (15);
              sprintf (addr_string, "*0x%s", paddr_nz (selected_frame->pc));
              sprintf (addr_string, "*0x%s", paddr_nz (selected_frame->pc));
              if (arg)
              if (arg)
                if_arg = 1;
                if_arg = 1;
            }
            }
          else
          else
            error ("No selected frame.");
            error ("No selected frame.");
        }
        }
      else
      else
        error ("No default breakpoint address now.");
        error ("No default breakpoint address now.");
    }
    }
  else
  else
    {
    {
      addr_string = (char *) xmalloc (strlen (arg) + 1);
      addr_string = (char *) xmalloc (strlen (arg) + 1);
      strcpy (addr_string, arg);
      strcpy (addr_string, arg);
    }
    }
 
 
  if (if_arg)
  if (if_arg)
    {
    {
      extra_args = arg;
      extra_args = arg;
      extra_args_len = strlen (arg);
      extra_args_len = strlen (arg);
    }
    }
  else if (arg)
  else if (arg)
    {
    {
      /* get the stuff after the function name or address */
      /* get the stuff after the function name or address */
      extra_args = strchr (arg, ' ');
      extra_args = strchr (arg, ' ');
      if (extra_args)
      if (extra_args)
        {
        {
          extra_args++;
          extra_args++;
          extra_args_len = strlen (extra_args);
          extra_args_len = strlen (extra_args);
        }
        }
    }
    }
 
 
  sals.sals = NULL;
  sals.sals = NULL;
  sals.nelts = 0;
  sals.nelts = 0;
 
 
  beg_addr_string = addr_string;
  beg_addr_string = addr_string;
  sals = decode_line_1 (&addr_string, 1, (struct symtab *) NULL, 0,
  sals = decode_line_1 (&addr_string, 1, (struct symtab *) NULL, 0,
                        (char ***) NULL);
                        (char ***) NULL);
 
 
  free (beg_addr_string);
  free (beg_addr_string);
  old_chain = make_cleanup (free, sals.sals);
  old_chain = make_cleanup (free, sals.sals);
  for (i = 0; (i < sals.nelts); i++)
  for (i = 0; (i < sals.nelts); i++)
    {
    {
      sal = sals.sals[i];
      sal = sals.sals[i];
      if (find_pc_partial_function (sal.pc, (char **) NULL, &low, &high))
      if (find_pc_partial_function (sal.pc, (char **) NULL, &low, &high))
        {
        {
          break_string = (char *) xmalloc (extra_args_len + 26);
          break_string = (char *) xmalloc (extra_args_len + 26);
          if (extra_args_len)
          if (extra_args_len)
            sprintf (break_string, "*0x%s %s", paddr_nz (high), extra_args);
            sprintf (break_string, "*0x%s %s", paddr_nz (high), extra_args);
          else
          else
            sprintf (break_string, "*0x%s", paddr_nz (high));
            sprintf (break_string, "*0x%s", paddr_nz (high));
          break_command_1 (break_string, flag, from_tty);
          break_command_1 (break_string, flag, from_tty);
          free (break_string);
          free (break_string);
        }
        }
      else
      else
        error ("No function contains the specified address");
        error ("No function contains the specified address");
    }
    }
  if (sals.nelts > 1)
  if (sals.nelts > 1)
    {
    {
      warning ("Multiple breakpoints were set.\n");
      warning ("Multiple breakpoints were set.\n");
      warning ("Use the \"delete\" command to delete unwanted breakpoints.");
      warning ("Use the \"delete\" command to delete unwanted breakpoints.");
    }
    }
  do_cleanups (old_chain);
  do_cleanups (old_chain);
}
}
 
 
 
 
/* Helper function for break_command_1 and disassemble_command.  */
/* Helper function for break_command_1 and disassemble_command.  */
 
 
void
void
resolve_sal_pc (sal)
resolve_sal_pc (sal)
     struct symtab_and_line *sal;
     struct symtab_and_line *sal;
{
{
  CORE_ADDR pc;
  CORE_ADDR pc;
 
 
  if (sal->pc == 0 && sal->symtab != NULL)
  if (sal->pc == 0 && sal->symtab != NULL)
    {
    {
      if (!find_line_pc (sal->symtab, sal->line, &pc))
      if (!find_line_pc (sal->symtab, sal->line, &pc))
        error ("No line %d in file \"%s\".",
        error ("No line %d in file \"%s\".",
               sal->line, sal->symtab->filename);
               sal->line, sal->symtab->filename);
      sal->pc = pc;
      sal->pc = pc;
    }
    }
 
 
  if (sal->section == 0 && sal->symtab != NULL)
  if (sal->section == 0 && sal->symtab != NULL)
    {
    {
      struct blockvector *bv;
      struct blockvector *bv;
      struct block *b;
      struct block *b;
      struct symbol *sym;
      struct symbol *sym;
      int index;
      int index;
 
 
      bv = blockvector_for_pc_sect (sal->pc, 0, &index, sal->symtab);
      bv = blockvector_for_pc_sect (sal->pc, 0, &index, sal->symtab);
      if (bv != NULL)
      if (bv != NULL)
        {
        {
          b = BLOCKVECTOR_BLOCK (bv, index);
          b = BLOCKVECTOR_BLOCK (bv, index);
          sym = block_function (b);
          sym = block_function (b);
          if (sym != NULL)
          if (sym != NULL)
            {
            {
              fixup_symbol_section (sym, sal->symtab->objfile);
              fixup_symbol_section (sym, sal->symtab->objfile);
              sal->section = SYMBOL_BFD_SECTION (sym);
              sal->section = SYMBOL_BFD_SECTION (sym);
            }
            }
          else
          else
            {
            {
              /* It really is worthwhile to have the section, so we'll just
              /* It really is worthwhile to have the section, so we'll just
                 have to look harder. This case can be executed if we have
                 have to look harder. This case can be executed if we have
                 line numbers but no functions (as can happen in assembly
                 line numbers but no functions (as can happen in assembly
                 source).  */
                 source).  */
 
 
              struct minimal_symbol *msym;
              struct minimal_symbol *msym;
 
 
              msym = lookup_minimal_symbol_by_pc (sal->pc);
              msym = lookup_minimal_symbol_by_pc (sal->pc);
              if (msym)
              if (msym)
                sal->section = SYMBOL_BFD_SECTION (msym);
                sal->section = SYMBOL_BFD_SECTION (msym);
            }
            }
        }
        }
    }
    }
}
}
 
 
void
void
break_command (arg, from_tty)
break_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  break_command_1 (arg, 0, from_tty);
  break_command_1 (arg, 0, from_tty);
}
}
 
 
static void
static void
break_at_finish_command (arg, from_tty)
break_at_finish_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  break_at_finish_command_1 (arg, 0, from_tty);
  break_at_finish_command_1 (arg, 0, from_tty);
}
}
 
 
static void
static void
break_at_finish_at_depth_command (arg, from_tty)
break_at_finish_at_depth_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  break_at_finish_at_depth_command_1 (arg, 0, from_tty);
  break_at_finish_at_depth_command_1 (arg, 0, from_tty);
}
}
 
 
void
void
tbreak_command (arg, from_tty)
tbreak_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  break_command_1 (arg, BP_TEMPFLAG, from_tty);
  break_command_1 (arg, BP_TEMPFLAG, from_tty);
}
}
 
 
static void
static void
tbreak_at_finish_command (arg, from_tty)
tbreak_at_finish_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  break_at_finish_command_1 (arg, BP_TEMPFLAG, from_tty);
  break_at_finish_command_1 (arg, BP_TEMPFLAG, from_tty);
}
}
 
 
static void
static void
hbreak_command (arg, from_tty)
hbreak_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  break_command_1 (arg, BP_HARDWAREFLAG, from_tty);
  break_command_1 (arg, BP_HARDWAREFLAG, from_tty);
}
}
 
 
static void
static void
thbreak_command (arg, from_tty)
thbreak_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  break_command_1 (arg, (BP_TEMPFLAG | BP_HARDWAREFLAG), from_tty);
  break_command_1 (arg, (BP_TEMPFLAG | BP_HARDWAREFLAG), from_tty);
}
}
 
 
static void
static void
stop_command (arg, from_tty)
stop_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  printf_filtered ("Specify the type of breakpoint to set.\n\
  printf_filtered ("Specify the type of breakpoint to set.\n\
Usage: stop in <function | address>\n\
Usage: stop in <function | address>\n\
       stop at <line>\n");
       stop at <line>\n");
}
}
 
 
static void
static void
stopin_command (arg, from_tty)
stopin_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  int badInput = 0;
  int badInput = 0;
 
 
  if (arg == (char *) NULL)
  if (arg == (char *) NULL)
    badInput = 1;
    badInput = 1;
  else if (*arg != '*')
  else if (*arg != '*')
    {
    {
      char *argptr = arg;
      char *argptr = arg;
      int hasColon = 0;
      int hasColon = 0;
 
 
      /* look for a ':'.  If this is a line number specification, then
      /* look for a ':'.  If this is a line number specification, then
         say it is bad, otherwise, it should be an address or
         say it is bad, otherwise, it should be an address or
         function/method name */
         function/method name */
      while (*argptr && !hasColon)
      while (*argptr && !hasColon)
        {
        {
          hasColon = (*argptr == ':');
          hasColon = (*argptr == ':');
          argptr++;
          argptr++;
        }
        }
 
 
      if (hasColon)
      if (hasColon)
        badInput = (*argptr != ':');    /* Not a class::method */
        badInput = (*argptr != ':');    /* Not a class::method */
      else
      else
        badInput = isdigit (*arg);      /* a simple line number */
        badInput = isdigit (*arg);      /* a simple line number */
    }
    }
 
 
  if (badInput)
  if (badInput)
    printf_filtered ("Usage: stop in <function | address>\n");
    printf_filtered ("Usage: stop in <function | address>\n");
  else
  else
    break_command_1 (arg, 0, from_tty);
    break_command_1 (arg, 0, from_tty);
}
}
 
 
static void
static void
stopat_command (arg, from_tty)
stopat_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  int badInput = 0;
  int badInput = 0;
 
 
  if (arg == (char *) NULL || *arg == '*')      /* no line number */
  if (arg == (char *) NULL || *arg == '*')      /* no line number */
    badInput = 1;
    badInput = 1;
  else
  else
    {
    {
      char *argptr = arg;
      char *argptr = arg;
      int hasColon = 0;
      int hasColon = 0;
 
 
      /* look for a ':'.  If there is a '::' then get out, otherwise
      /* look for a ':'.  If there is a '::' then get out, otherwise
         it is probably a line number. */
         it is probably a line number. */
      while (*argptr && !hasColon)
      while (*argptr && !hasColon)
        {
        {
          hasColon = (*argptr == ':');
          hasColon = (*argptr == ':');
          argptr++;
          argptr++;
        }
        }
 
 
      if (hasColon)
      if (hasColon)
        badInput = (*argptr == ':');    /* we have class::method */
        badInput = (*argptr == ':');    /* we have class::method */
      else
      else
        badInput = !isdigit (*arg);     /* not a line number */
        badInput = !isdigit (*arg);     /* not a line number */
    }
    }
 
 
  if (badInput)
  if (badInput)
    printf_filtered ("Usage: stop at <line>\n");
    printf_filtered ("Usage: stop at <line>\n");
  else
  else
    break_command_1 (arg, 0, from_tty);
    break_command_1 (arg, 0, from_tty);
}
}
 
 
/* ARGSUSED */
/* ARGSUSED */
/* accessflag:  hw_write:  watch write,
/* accessflag:  hw_write:  watch write,
                hw_read:   watch read,
                hw_read:   watch read,
                hw_access: watch access (read or write) */
                hw_access: watch access (read or write) */
static void
static void
watch_command_1 (arg, accessflag, from_tty)
watch_command_1 (arg, accessflag, from_tty)
     char *arg;
     char *arg;
     int accessflag;
     int accessflag;
     int from_tty;
     int from_tty;
{
{
  struct breakpoint *b;
  struct breakpoint *b;
  struct symtab_and_line sal;
  struct symtab_and_line sal;
  struct expression *exp;
  struct expression *exp;
  struct block *exp_valid_block;
  struct block *exp_valid_block;
  struct value *val, *mark;
  struct value *val, *mark;
  struct frame_info *frame;
  struct frame_info *frame;
  struct frame_info *prev_frame = NULL;
  struct frame_info *prev_frame = NULL;
  char *exp_start = NULL;
  char *exp_start = NULL;
  char *exp_end = NULL;
  char *exp_end = NULL;
  char *tok, *end_tok;
  char *tok, *end_tok;
  int toklen;
  int toklen;
  char *cond_start = NULL;
  char *cond_start = NULL;
  char *cond_end = NULL;
  char *cond_end = NULL;
  struct expression *cond = NULL;
  struct expression *cond = NULL;
  int i, other_type_used, target_resources_ok = 0;
  int i, other_type_used, target_resources_ok = 0;
  enum bptype bp_type;
  enum bptype bp_type;
  int mem_cnt = 0;
  int mem_cnt = 0;
 
 
  INIT_SAL (&sal);              /* initialize to zeroes */
  INIT_SAL (&sal);              /* initialize to zeroes */
 
 
  /* Parse arguments.  */
  /* Parse arguments.  */
  innermost_block = NULL;
  innermost_block = NULL;
  exp_start = arg;
  exp_start = arg;
  exp = parse_exp_1 (&arg, 0, 0);
  exp = parse_exp_1 (&arg, 0, 0);
  exp_end = arg;
  exp_end = arg;
  exp_valid_block = innermost_block;
  exp_valid_block = innermost_block;
  mark = value_mark ();
  mark = value_mark ();
  val = evaluate_expression (exp);
  val = evaluate_expression (exp);
  release_value (val);
  release_value (val);
  if (VALUE_LAZY (val))
  if (VALUE_LAZY (val))
    value_fetch_lazy (val);
    value_fetch_lazy (val);
 
 
  tok = arg;
  tok = arg;
  while (*tok == ' ' || *tok == '\t')
  while (*tok == ' ' || *tok == '\t')
    tok++;
    tok++;
  end_tok = tok;
  end_tok = tok;
 
 
  while (*end_tok != ' ' && *end_tok != '\t' && *end_tok != '\000')
  while (*end_tok != ' ' && *end_tok != '\t' && *end_tok != '\000')
    end_tok++;
    end_tok++;
 
 
  toklen = end_tok - tok;
  toklen = end_tok - tok;
  if (toklen >= 1 && strncmp (tok, "if", toklen) == 0)
  if (toklen >= 1 && strncmp (tok, "if", toklen) == 0)
    {
    {
      tok = cond_start = end_tok + 1;
      tok = cond_start = end_tok + 1;
      cond = parse_exp_1 (&tok, 0, 0);
      cond = parse_exp_1 (&tok, 0, 0);
      cond_end = tok;
      cond_end = tok;
    }
    }
  if (*tok)
  if (*tok)
    error ("Junk at end of command.");
    error ("Junk at end of command.");
 
 
  if (accessflag == hw_read)
  if (accessflag == hw_read)
    bp_type = bp_read_watchpoint;
    bp_type = bp_read_watchpoint;
  else if (accessflag == hw_access)
  else if (accessflag == hw_access)
    bp_type = bp_access_watchpoint;
    bp_type = bp_access_watchpoint;
  else
  else
    bp_type = bp_hardware_watchpoint;
    bp_type = bp_hardware_watchpoint;
 
 
  mem_cnt = can_use_hardware_watchpoint (val);
  mem_cnt = can_use_hardware_watchpoint (val);
  if (mem_cnt == 0 && bp_type != bp_hardware_watchpoint)
  if (mem_cnt == 0 && bp_type != bp_hardware_watchpoint)
    error ("Expression cannot be implemented with read/access watchpoint.");
    error ("Expression cannot be implemented with read/access watchpoint.");
  if (mem_cnt != 0)
  if (mem_cnt != 0)
    {
    {
      i = hw_watchpoint_used_count (bp_type, &other_type_used);
      i = hw_watchpoint_used_count (bp_type, &other_type_used);
      target_resources_ok =
      target_resources_ok =
        TARGET_CAN_USE_HARDWARE_WATCHPOINT (bp_type, i + mem_cnt,
        TARGET_CAN_USE_HARDWARE_WATCHPOINT (bp_type, i + mem_cnt,
                                            other_type_used);
                                            other_type_used);
      if (target_resources_ok == 0 && bp_type != bp_hardware_watchpoint)
      if (target_resources_ok == 0 && bp_type != bp_hardware_watchpoint)
        error ("Target does not support this type of hardware watchpoint.");
        error ("Target does not support this type of hardware watchpoint.");
 
 
      if (target_resources_ok < 0 && bp_type != bp_hardware_watchpoint)
      if (target_resources_ok < 0 && bp_type != bp_hardware_watchpoint)
        error ("Target can only support one kind of HW watchpoint at a time.");
        error ("Target can only support one kind of HW watchpoint at a time.");
    }
    }
 
 
#if defined(HPUXHPPA)
#if defined(HPUXHPPA)
  /*  On HP-UX if you set a h/w
  /*  On HP-UX if you set a h/w
     watchpoint before the "run" command, the inferior dies with a e.g.,
     watchpoint before the "run" command, the inferior dies with a e.g.,
     SIGILL once you start it.  I initially believed this was due to a
     SIGILL once you start it.  I initially believed this was due to a
     bad interaction between page protection traps and the initial
     bad interaction between page protection traps and the initial
     startup sequence by the dynamic linker.
     startup sequence by the dynamic linker.
 
 
     However, I tried avoiding that by having HP-UX's implementation of
     However, I tried avoiding that by having HP-UX's implementation of
     TARGET_CAN_USE_HW_WATCHPOINT return FALSE if there was no inferior_pid
     TARGET_CAN_USE_HW_WATCHPOINT return FALSE if there was no inferior_pid
     yet, which forced slow watches before a "run" or "attach", and it
     yet, which forced slow watches before a "run" or "attach", and it
     still fails somewhere in the startup code.
     still fails somewhere in the startup code.
 
 
     Until I figure out what's happening, I'm disallowing watches altogether
     Until I figure out what's happening, I'm disallowing watches altogether
     before the "run" or "attach" command.  We'll tell the user they must
     before the "run" or "attach" command.  We'll tell the user they must
     set watches after getting the program started. */
     set watches after getting the program started. */
  if (!target_has_execution)
  if (!target_has_execution)
    {
    {
      warning ("can't do that without a running program; try \"break main\", \"run\" first");
      warning ("can't do that without a running program; try \"break main\", \"run\" first");
      return;
      return;
    }
    }
#endif /* HPUXHPPA */
#endif /* HPUXHPPA */
 
 
  /* Now set up the breakpoint.  */
  /* Now set up the breakpoint.  */
  b = set_raw_breakpoint (sal);
  b = set_raw_breakpoint (sal);
  set_breakpoint_count (breakpoint_count + 1);
  set_breakpoint_count (breakpoint_count + 1);
  b->number = breakpoint_count;
  b->number = breakpoint_count;
  b->disposition = donttouch;
  b->disposition = donttouch;
  b->exp = exp;
  b->exp = exp;
  b->exp_valid_block = exp_valid_block;
  b->exp_valid_block = exp_valid_block;
  b->exp_string = savestring (exp_start, exp_end - exp_start);
  b->exp_string = savestring (exp_start, exp_end - exp_start);
  b->val = val;
  b->val = val;
  b->cond = cond;
  b->cond = cond;
  if (cond_start)
  if (cond_start)
    b->cond_string = savestring (cond_start, cond_end - cond_start);
    b->cond_string = savestring (cond_start, cond_end - cond_start);
  else
  else
    b->cond_string = 0;
    b->cond_string = 0;
 
 
  frame = block_innermost_frame (exp_valid_block);
  frame = block_innermost_frame (exp_valid_block);
  if (frame)
  if (frame)
    {
    {
      prev_frame = get_prev_frame (frame);
      prev_frame = get_prev_frame (frame);
      b->watchpoint_frame = frame->frame;
      b->watchpoint_frame = frame->frame;
    }
    }
  else
  else
    b->watchpoint_frame = (CORE_ADDR) 0;
    b->watchpoint_frame = (CORE_ADDR) 0;
 
 
  if (mem_cnt && target_resources_ok > 0)
  if (mem_cnt && target_resources_ok > 0)
    b->type = bp_type;
    b->type = bp_type;
  else
  else
    b->type = bp_watchpoint;
    b->type = bp_watchpoint;
 
 
  /* If the expression is "local", then set up a "watchpoint scope"
  /* If the expression is "local", then set up a "watchpoint scope"
     breakpoint at the point where we've left the scope of the watchpoint
     breakpoint at the point where we've left the scope of the watchpoint
     expression.  */
     expression.  */
  if (innermost_block)
  if (innermost_block)
    {
    {
      if (prev_frame)
      if (prev_frame)
        {
        {
          struct breakpoint *scope_breakpoint;
          struct breakpoint *scope_breakpoint;
          struct symtab_and_line scope_sal;
          struct symtab_and_line scope_sal;
 
 
          INIT_SAL (&scope_sal);        /* initialize to zeroes */
          INIT_SAL (&scope_sal);        /* initialize to zeroes */
          scope_sal.pc = get_frame_pc (prev_frame);
          scope_sal.pc = get_frame_pc (prev_frame);
          scope_sal.section = find_pc_overlay (scope_sal.pc);
          scope_sal.section = find_pc_overlay (scope_sal.pc);
 
 
          scope_breakpoint = set_raw_breakpoint (scope_sal);
          scope_breakpoint = set_raw_breakpoint (scope_sal);
          set_breakpoint_count (breakpoint_count + 1);
          set_breakpoint_count (breakpoint_count + 1);
          scope_breakpoint->number = breakpoint_count;
          scope_breakpoint->number = breakpoint_count;
 
 
          scope_breakpoint->type = bp_watchpoint_scope;
          scope_breakpoint->type = bp_watchpoint_scope;
          scope_breakpoint->enable = enabled;
          scope_breakpoint->enable = enabled;
 
 
          /* Automatically delete the breakpoint when it hits.  */
          /* Automatically delete the breakpoint when it hits.  */
          scope_breakpoint->disposition = del;
          scope_breakpoint->disposition = del;
 
 
          /* Only break in the proper frame (help with recursion).  */
          /* Only break in the proper frame (help with recursion).  */
          scope_breakpoint->frame = prev_frame->frame;
          scope_breakpoint->frame = prev_frame->frame;
 
 
          /* Set the address at which we will stop.  */
          /* Set the address at which we will stop.  */
          scope_breakpoint->address = get_frame_pc (prev_frame);
          scope_breakpoint->address = get_frame_pc (prev_frame);
 
 
          /* The scope breakpoint is related to the watchpoint.  We
          /* The scope breakpoint is related to the watchpoint.  We
             will need to act on them together.  */
             will need to act on them together.  */
          b->related_breakpoint = scope_breakpoint;
          b->related_breakpoint = scope_breakpoint;
        }
        }
    }
    }
  value_free_to_mark (mark);
  value_free_to_mark (mark);
  mention (b);
  mention (b);
}
}
 
 
/* Return count of locations need to be watched and can be handled
/* Return count of locations need to be watched and can be handled
   in hardware.  If the watchpoint can not be handled
   in hardware.  If the watchpoint can not be handled
   in hardware return zero.  */
   in hardware return zero.  */
 
 
#if !defined(TARGET_REGION_SIZE_OK_FOR_HW_WATCHPOINT)
#if !defined(TARGET_REGION_SIZE_OK_FOR_HW_WATCHPOINT)
#define TARGET_REGION_SIZE_OK_FOR_HW_WATCHPOINT(BYTE_SIZE) \
#define TARGET_REGION_SIZE_OK_FOR_HW_WATCHPOINT(BYTE_SIZE) \
    ((BYTE_SIZE) <= (REGISTER_SIZE))
    ((BYTE_SIZE) <= (REGISTER_SIZE))
#endif
#endif
 
 
#if !defined(TARGET_REGION_OK_FOR_HW_WATCHPOINT)
#if !defined(TARGET_REGION_OK_FOR_HW_WATCHPOINT)
#define TARGET_REGION_OK_FOR_HW_WATCHPOINT(ADDR,LEN) \
#define TARGET_REGION_OK_FOR_HW_WATCHPOINT(ADDR,LEN) \
     TARGET_REGION_SIZE_OK_FOR_HW_WATCHPOINT(LEN)
     TARGET_REGION_SIZE_OK_FOR_HW_WATCHPOINT(LEN)
#endif
#endif
 
 
static int
static int
can_use_hardware_watchpoint (v)
can_use_hardware_watchpoint (v)
     struct value *v;
     struct value *v;
{
{
  int found_memory_cnt = 0;
  int found_memory_cnt = 0;
  struct value *head = v;
  struct value *head = v;
 
 
  /* Did the user specifically forbid us to use hardware watchpoints? */
  /* Did the user specifically forbid us to use hardware watchpoints? */
  if (!can_use_hw_watchpoints)
  if (!can_use_hw_watchpoints)
    return 0;
    return 0;
 
 
  /* Make sure that the value of the expression depends only upon
  /* Make sure that the value of the expression depends only upon
     memory contents, and values computed from them within GDB.  If we
     memory contents, and values computed from them within GDB.  If we
     find any register references or function calls, we can't use a
     find any register references or function calls, we can't use a
     hardware watchpoint.
     hardware watchpoint.
 
 
     The idea here is that evaluating an expression generates a series
     The idea here is that evaluating an expression generates a series
     of values, one holding the value of every subexpression.  (The
     of values, one holding the value of every subexpression.  (The
     expression a*b+c has five subexpressions: a, b, a*b, c, and
     expression a*b+c has five subexpressions: a, b, a*b, c, and
     a*b+c.)  GDB's values hold almost enough information to establish
     a*b+c.)  GDB's values hold almost enough information to establish
     the criteria given above --- they identify memory lvalues,
     the criteria given above --- they identify memory lvalues,
     register lvalues, computed values, etcetera.  So we can evaluate
     register lvalues, computed values, etcetera.  So we can evaluate
     the expression, and then scan the chain of values that leaves
     the expression, and then scan the chain of values that leaves
     behind to decide whether we can detect any possible change to the
     behind to decide whether we can detect any possible change to the
     expression's final value using only hardware watchpoints.
     expression's final value using only hardware watchpoints.
 
 
     However, I don't think that the values returned by inferior
     However, I don't think that the values returned by inferior
     function calls are special in any way.  So this function may not
     function calls are special in any way.  So this function may not
     notice that an expression involving an inferior function call
     notice that an expression involving an inferior function call
     can't be watched with hardware watchpoints.  FIXME.  */
     can't be watched with hardware watchpoints.  FIXME.  */
  for (; v; v = v->next)
  for (; v; v = v->next)
    {
    {
      if (VALUE_LVAL (v) == lval_memory)
      if (VALUE_LVAL (v) == lval_memory)
        {
        {
          if (VALUE_LAZY (v))
          if (VALUE_LAZY (v))
            /* A lazy memory lvalue is one that GDB never needed to fetch;
            /* A lazy memory lvalue is one that GDB never needed to fetch;
               we either just used its address (e.g., `a' in `a.b') or
               we either just used its address (e.g., `a' in `a.b') or
               we never needed it at all (e.g., `a' in `a,b').  */
               we never needed it at all (e.g., `a' in `a,b').  */
            ;
            ;
          else
          else
            {
            {
              /* Ahh, memory we actually used!  Check if we can cover
              /* Ahh, memory we actually used!  Check if we can cover
                 it with hardware watchpoints.  */
                 it with hardware watchpoints.  */
              struct type *vtype = check_typedef (VALUE_TYPE (v));
              struct type *vtype = check_typedef (VALUE_TYPE (v));
 
 
              /* We only watch structs and arrays if user asked for it
              /* We only watch structs and arrays if user asked for it
                 explicitly, never if they just happen to appear in a
                 explicitly, never if they just happen to appear in a
                 middle of some value chain.  */
                 middle of some value chain.  */
              if (v == head
              if (v == head
                  || (TYPE_CODE (vtype) != TYPE_CODE_STRUCT
                  || (TYPE_CODE (vtype) != TYPE_CODE_STRUCT
                      && TYPE_CODE (vtype) != TYPE_CODE_ARRAY))
                      && TYPE_CODE (vtype) != TYPE_CODE_ARRAY))
                {
                {
                  CORE_ADDR vaddr = VALUE_ADDRESS (v) + VALUE_OFFSET (v);
                  CORE_ADDR vaddr = VALUE_ADDRESS (v) + VALUE_OFFSET (v);
                  int       len   = TYPE_LENGTH (VALUE_TYPE (v));
                  int       len   = TYPE_LENGTH (VALUE_TYPE (v));
 
 
                  if (!TARGET_REGION_OK_FOR_HW_WATCHPOINT (vaddr, len))
                  if (!TARGET_REGION_OK_FOR_HW_WATCHPOINT (vaddr, len))
                    return 0;
                    return 0;
                  else
                  else
                    found_memory_cnt++;
                    found_memory_cnt++;
                }
                }
            }
            }
        }
        }
      else if (v->lval != not_lval && v->modifiable == 0)
      else if (v->lval != not_lval && v->modifiable == 0)
        return 0;        /* ??? What does this represent? */
        return 0;        /* ??? What does this represent? */
      else if (v->lval == lval_register)
      else if (v->lval == lval_register)
        return 0;        /* cannot watch a register with a HW watchpoint */
        return 0;        /* cannot watch a register with a HW watchpoint */
    }
    }
 
 
  /* The expression itself looks suitable for using a hardware
  /* The expression itself looks suitable for using a hardware
     watchpoint, but give the target machine a chance to reject it.  */
     watchpoint, but give the target machine a chance to reject it.  */
  return found_memory_cnt;
  return found_memory_cnt;
}
}
 
 
#ifdef UI_OUT
#ifdef UI_OUT
void
void
watch_command_wrapper (arg, from_tty)
watch_command_wrapper (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  watch_command (arg, from_tty);
  watch_command (arg, from_tty);
}
}
#endif
#endif
static void
static void
watch_command (arg, from_tty)
watch_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  watch_command_1 (arg, hw_write, from_tty);
  watch_command_1 (arg, hw_write, from_tty);
}
}
 
 
#ifdef UI_OUT
#ifdef UI_OUT
void
void
rwatch_command_wrapper (arg, from_tty)
rwatch_command_wrapper (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  rwatch_command (arg, from_tty);
  rwatch_command (arg, from_tty);
}
}
#endif
#endif
static void
static void
rwatch_command (arg, from_tty)
rwatch_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  watch_command_1 (arg, hw_read, from_tty);
  watch_command_1 (arg, hw_read, from_tty);
}
}
 
 
#ifdef UI_OUT
#ifdef UI_OUT
void
void
awatch_command_wrapper (arg, from_tty)
awatch_command_wrapper (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  awatch_command (arg, from_tty);
  awatch_command (arg, from_tty);
}
}
#endif
#endif
static void
static void
awatch_command (arg, from_tty)
awatch_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  watch_command_1 (arg, hw_access, from_tty);
  watch_command_1 (arg, hw_access, from_tty);
}
}


 
 
/* Helper routines for the until_command routine in infcmd.c.  Here
/* Helper routines for the until_command routine in infcmd.c.  Here
   because it uses the mechanisms of breakpoints.  */
   because it uses the mechanisms of breakpoints.  */
 
 
/* This function is called by fetch_inferior_event via the
/* This function is called by fetch_inferior_event via the
   cmd_continuation pointer, to complete the until command. It takes
   cmd_continuation pointer, to complete the until command. It takes
   care of cleaning up the temporary breakpoints set up by the until
   care of cleaning up the temporary breakpoints set up by the until
   command. */
   command. */
static void
static void
until_break_command_continuation (struct continuation_arg *arg)
until_break_command_continuation (struct continuation_arg *arg)
{
{
  struct cleanup *cleanups;
  struct cleanup *cleanups;
 
 
  cleanups = (struct cleanup *) arg->data.pointer;
  cleanups = (struct cleanup *) arg->data.pointer;
  do_exec_cleanups (cleanups);
  do_exec_cleanups (cleanups);
}
}
 
 
/* ARGSUSED */
/* ARGSUSED */
void
void
until_break_command (arg, from_tty)
until_break_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  struct symtabs_and_lines sals;
  struct symtabs_and_lines sals;
  struct symtab_and_line sal;
  struct symtab_and_line sal;
  struct frame_info *prev_frame = get_prev_frame (selected_frame);
  struct frame_info *prev_frame = get_prev_frame (selected_frame);
  struct breakpoint *breakpoint;
  struct breakpoint *breakpoint;
  struct cleanup *old_chain;
  struct cleanup *old_chain;
  struct continuation_arg *arg1;
  struct continuation_arg *arg1;
 
 
 
 
  clear_proceed_status ();
  clear_proceed_status ();
 
 
  /* Set a breakpoint where the user wants it and at return from
  /* Set a breakpoint where the user wants it and at return from
     this function */
     this function */
 
 
  if (default_breakpoint_valid)
  if (default_breakpoint_valid)
    sals = decode_line_1 (&arg, 1, default_breakpoint_symtab,
    sals = decode_line_1 (&arg, 1, default_breakpoint_symtab,
                          default_breakpoint_line, (char ***) NULL);
                          default_breakpoint_line, (char ***) NULL);
  else
  else
    sals = decode_line_1 (&arg, 1, (struct symtab *) NULL,
    sals = decode_line_1 (&arg, 1, (struct symtab *) NULL,
                          0, (char ***) NULL);
                          0, (char ***) NULL);
 
 
  if (sals.nelts != 1)
  if (sals.nelts != 1)
    error ("Couldn't get information on specified line.");
    error ("Couldn't get information on specified line.");
 
 
  sal = sals.sals[0];
  sal = sals.sals[0];
  free ((PTR) sals.sals);       /* malloc'd, so freed */
  free ((PTR) sals.sals);       /* malloc'd, so freed */
 
 
  if (*arg)
  if (*arg)
    error ("Junk at end of arguments.");
    error ("Junk at end of arguments.");
 
 
  resolve_sal_pc (&sal);
  resolve_sal_pc (&sal);
 
 
  breakpoint = set_momentary_breakpoint (sal, selected_frame, bp_until);
  breakpoint = set_momentary_breakpoint (sal, selected_frame, bp_until);
 
 
  if (!event_loop_p || !target_can_async_p ())
  if (!event_loop_p || !target_can_async_p ())
    old_chain = make_cleanup ((make_cleanup_func) delete_breakpoint,
    old_chain = make_cleanup ((make_cleanup_func) delete_breakpoint,
                              breakpoint);
                              breakpoint);
  else
  else
    old_chain = make_exec_cleanup ((make_cleanup_func) delete_breakpoint, breakpoint);
    old_chain = make_exec_cleanup ((make_cleanup_func) delete_breakpoint, breakpoint);
 
 
  /* If we are running asynchronously, and the target supports async
  /* If we are running asynchronously, and the target supports async
     execution, we are not waiting for the target to stop, in the call
     execution, we are not waiting for the target to stop, in the call
     tp proceed, below. This means that we cannot delete the
     tp proceed, below. This means that we cannot delete the
     brekpoints until the target has actually stopped. The only place
     brekpoints until the target has actually stopped. The only place
     where we get a chance to do that is in fetch_inferior_event, so
     where we get a chance to do that is in fetch_inferior_event, so
     we must set things up for that. */
     we must set things up for that. */
 
 
  if (event_loop_p && target_can_async_p ())
  if (event_loop_p && target_can_async_p ())
    {
    {
      /* In this case the arg for the continuation is just the point
      /* In this case the arg for the continuation is just the point
         in the exec_cleanups chain from where to start doing
         in the exec_cleanups chain from where to start doing
         cleanups, because all the continuation does is the cleanups in
         cleanups, because all the continuation does is the cleanups in
         the exec_cleanup_chain. */
         the exec_cleanup_chain. */
      arg1 =
      arg1 =
        (struct continuation_arg *) xmalloc (sizeof (struct continuation_arg));
        (struct continuation_arg *) xmalloc (sizeof (struct continuation_arg));
      arg1->next         = NULL;
      arg1->next         = NULL;
      arg1->data.pointer = old_chain;
      arg1->data.pointer = old_chain;
 
 
      add_continuation (until_break_command_continuation, arg1);
      add_continuation (until_break_command_continuation, arg1);
    }
    }
 
 
  /* Keep within the current frame */
  /* Keep within the current frame */
 
 
  if (prev_frame)
  if (prev_frame)
    {
    {
      sal = find_pc_line (prev_frame->pc, 0);
      sal = find_pc_line (prev_frame->pc, 0);
      sal.pc = prev_frame->pc;
      sal.pc = prev_frame->pc;
      breakpoint = set_momentary_breakpoint (sal, prev_frame, bp_until);
      breakpoint = set_momentary_breakpoint (sal, prev_frame, bp_until);
      if (!event_loop_p || !target_can_async_p ())
      if (!event_loop_p || !target_can_async_p ())
        make_cleanup ((make_cleanup_func) delete_breakpoint, breakpoint);
        make_cleanup ((make_cleanup_func) delete_breakpoint, breakpoint);
      else
      else
        make_exec_cleanup ((make_cleanup_func) delete_breakpoint, breakpoint);
        make_exec_cleanup ((make_cleanup_func) delete_breakpoint, breakpoint);
    }
    }
 
 
  proceed (-1, TARGET_SIGNAL_DEFAULT, 0);
  proceed (-1, TARGET_SIGNAL_DEFAULT, 0);
  /* Do the cleanups now, anly if we are not running asynchronously,
  /* Do the cleanups now, anly if we are not running asynchronously,
     of if we are, but the target is still synchronous. */
     of if we are, but the target is still synchronous. */
  if (!event_loop_p || !target_can_async_p ())
  if (!event_loop_p || !target_can_async_p ())
    do_cleanups (old_chain);
    do_cleanups (old_chain);
}
}


#if 0
#if 0
/* These aren't used; I don't konw what they were for.  */
/* These aren't used; I don't konw what they were for.  */
/* Set a breakpoint at the catch clause for NAME.  */
/* Set a breakpoint at the catch clause for NAME.  */
static int
static int
catch_breakpoint (name)
catch_breakpoint (name)
     char *name;
     char *name;
{
{
}
}
 
 
static int
static int
disable_catch_breakpoint ()
disable_catch_breakpoint ()
{
{
}
}
 
 
static int
static int
delete_catch_breakpoint ()
delete_catch_breakpoint ()
{
{
}
}
 
 
static int
static int
enable_catch_breakpoint ()
enable_catch_breakpoint ()
{
{
}
}
#endif /* 0 */
#endif /* 0 */
 
 
struct sal_chain
struct sal_chain
{
{
  struct sal_chain *next;
  struct sal_chain *next;
  struct symtab_and_line sal;
  struct symtab_and_line sal;
};
};
 
 
#if 0
#if 0
/* Not really used -- invocation in handle_gnu_4_16_catch_command
/* Not really used -- invocation in handle_gnu_4_16_catch_command
   had been commented out in the v.4.16 sources, and stays
   had been commented out in the v.4.16 sources, and stays
   disabled there now because "catch NAME" syntax isn't allowed.
   disabled there now because "catch NAME" syntax isn't allowed.
   pai/1997-07-11 */
   pai/1997-07-11 */
/* This isn't used; I don't know what it was for.  */
/* This isn't used; I don't know what it was for.  */
/* For each catch clause identified in ARGS, run FUNCTION
/* For each catch clause identified in ARGS, run FUNCTION
   with that clause as an argument.  */
   with that clause as an argument.  */
static struct symtabs_and_lines
static struct symtabs_and_lines
map_catch_names (args, function)
map_catch_names (args, function)
     char *args;
     char *args;
     int (*function) ();
     int (*function) ();
{
{
  register char *p = args;
  register char *p = args;
  register char *p1;
  register char *p1;
  struct symtabs_and_lines sals;
  struct symtabs_and_lines sals;
#if 0
#if 0
  struct sal_chain *sal_chain = 0;
  struct sal_chain *sal_chain = 0;
#endif
#endif
 
 
  if (p == 0)
  if (p == 0)
    error_no_arg ("one or more catch names");
    error_no_arg ("one or more catch names");
 
 
  sals.nelts = 0;
  sals.nelts = 0;
  sals.sals = NULL;
  sals.sals = NULL;
 
 
  while (*p)
  while (*p)
    {
    {
      p1 = p;
      p1 = p;
      /* Don't swallow conditional part.  */
      /* Don't swallow conditional part.  */
      if (p1[0] == 'i' && p1[1] == 'f'
      if (p1[0] == 'i' && p1[1] == 'f'
          && (p1[2] == ' ' || p1[2] == '\t'))
          && (p1[2] == ' ' || p1[2] == '\t'))
        break;
        break;
 
 
      if (isalpha (*p1))
      if (isalpha (*p1))
        {
        {
          p1++;
          p1++;
          while (isalnum (*p1) || *p1 == '_' || *p1 == '$')
          while (isalnum (*p1) || *p1 == '_' || *p1 == '$')
            p1++;
            p1++;
        }
        }
 
 
      if (*p1 && *p1 != ' ' && *p1 != '\t')
      if (*p1 && *p1 != ' ' && *p1 != '\t')
        error ("Arguments must be catch names.");
        error ("Arguments must be catch names.");
 
 
      *p1 = 0;
      *p1 = 0;
#if 0
#if 0
      if (function (p))
      if (function (p))
        {
        {
          struct sal_chain *next = (struct sal_chain *)
          struct sal_chain *next = (struct sal_chain *)
          alloca (sizeof (struct sal_chain));
          alloca (sizeof (struct sal_chain));
          next->next = sal_chain;
          next->next = sal_chain;
          next->sal = get_catch_sal (p);
          next->sal = get_catch_sal (p);
          sal_chain = next;
          sal_chain = next;
          goto win;
          goto win;
        }
        }
#endif
#endif
      printf_unfiltered ("No catch clause for exception %s.\n", p);
      printf_unfiltered ("No catch clause for exception %s.\n", p);
#if 0
#if 0
    win:
    win:
#endif
#endif
      p = p1;
      p = p1;
      while (*p == ' ' || *p == '\t')
      while (*p == ' ' || *p == '\t')
        p++;
        p++;
    }
    }
}
}
#endif
#endif
 
 
/* This shares a lot of code with `print_frame_label_vars' from stack.c.  */
/* This shares a lot of code with `print_frame_label_vars' from stack.c.  */
 
 
static struct symtabs_and_lines
static struct symtabs_and_lines
get_catch_sals (this_level_only)
get_catch_sals (this_level_only)
     int this_level_only;
     int this_level_only;
{
{
  register struct blockvector *bl;
  register struct blockvector *bl;
  register struct block *block;
  register struct block *block;
  int index, have_default = 0;
  int index, have_default = 0;
  CORE_ADDR pc;
  CORE_ADDR pc;
  struct symtabs_and_lines sals;
  struct symtabs_and_lines sals;
  struct sal_chain *sal_chain = 0;
  struct sal_chain *sal_chain = 0;
  char *blocks_searched;
  char *blocks_searched;
 
 
  /* Not sure whether an error message is always the correct response,
  /* Not sure whether an error message is always the correct response,
     but it's better than a core dump.  */
     but it's better than a core dump.  */
  if (selected_frame == NULL)
  if (selected_frame == NULL)
    error ("No selected frame.");
    error ("No selected frame.");
  block = get_frame_block (selected_frame);
  block = get_frame_block (selected_frame);
  pc = selected_frame->pc;
  pc = selected_frame->pc;
 
 
  sals.nelts = 0;
  sals.nelts = 0;
  sals.sals = NULL;
  sals.sals = NULL;
 
 
  if (block == 0)
  if (block == 0)
    error ("No symbol table info available.\n");
    error ("No symbol table info available.\n");
 
 
  bl = blockvector_for_pc (BLOCK_END (block) - 4, &index);
  bl = blockvector_for_pc (BLOCK_END (block) - 4, &index);
  blocks_searched = (char *) alloca (BLOCKVECTOR_NBLOCKS (bl) * sizeof (char));
  blocks_searched = (char *) alloca (BLOCKVECTOR_NBLOCKS (bl) * sizeof (char));
  memset (blocks_searched, 0, BLOCKVECTOR_NBLOCKS (bl) * sizeof (char));
  memset (blocks_searched, 0, BLOCKVECTOR_NBLOCKS (bl) * sizeof (char));
 
 
  while (block != 0)
  while (block != 0)
    {
    {
      CORE_ADDR end = BLOCK_END (block) - 4;
      CORE_ADDR end = BLOCK_END (block) - 4;
      int last_index;
      int last_index;
 
 
      if (bl != blockvector_for_pc (end, &index))
      if (bl != blockvector_for_pc (end, &index))
        error ("blockvector blotch");
        error ("blockvector blotch");
      if (BLOCKVECTOR_BLOCK (bl, index) != block)
      if (BLOCKVECTOR_BLOCK (bl, index) != block)
        error ("blockvector botch");
        error ("blockvector botch");
      last_index = BLOCKVECTOR_NBLOCKS (bl);
      last_index = BLOCKVECTOR_NBLOCKS (bl);
      index += 1;
      index += 1;
 
 
      /* Don't print out blocks that have gone by.  */
      /* Don't print out blocks that have gone by.  */
      while (index < last_index
      while (index < last_index
             && BLOCK_END (BLOCKVECTOR_BLOCK (bl, index)) < pc)
             && BLOCK_END (BLOCKVECTOR_BLOCK (bl, index)) < pc)
        index++;
        index++;
 
 
      while (index < last_index
      while (index < last_index
             && BLOCK_END (BLOCKVECTOR_BLOCK (bl, index)) < end)
             && BLOCK_END (BLOCKVECTOR_BLOCK (bl, index)) < end)
        {
        {
          if (blocks_searched[index] == 0)
          if (blocks_searched[index] == 0)
            {
            {
              struct block *b = BLOCKVECTOR_BLOCK (bl, index);
              struct block *b = BLOCKVECTOR_BLOCK (bl, index);
              int nsyms;
              int nsyms;
              register int i;
              register int i;
              register struct symbol *sym;
              register struct symbol *sym;
 
 
              nsyms = BLOCK_NSYMS (b);
              nsyms = BLOCK_NSYMS (b);
 
 
              for (i = 0; i < nsyms; i++)
              for (i = 0; i < nsyms; i++)
                {
                {
                  sym = BLOCK_SYM (b, i);
                  sym = BLOCK_SYM (b, i);
                  if (STREQ (SYMBOL_NAME (sym), "default"))
                  if (STREQ (SYMBOL_NAME (sym), "default"))
                    {
                    {
                      if (have_default)
                      if (have_default)
                        continue;
                        continue;
                      have_default = 1;
                      have_default = 1;
                    }
                    }
                  if (SYMBOL_CLASS (sym) == LOC_LABEL)
                  if (SYMBOL_CLASS (sym) == LOC_LABEL)
                    {
                    {
                      struct sal_chain *next = (struct sal_chain *)
                      struct sal_chain *next = (struct sal_chain *)
                      alloca (sizeof (struct sal_chain));
                      alloca (sizeof (struct sal_chain));
                      next->next = sal_chain;
                      next->next = sal_chain;
                      next->sal = find_pc_line (SYMBOL_VALUE_ADDRESS (sym),
                      next->sal = find_pc_line (SYMBOL_VALUE_ADDRESS (sym),
                                                0);
                                                0);
                      sal_chain = next;
                      sal_chain = next;
                    }
                    }
                }
                }
              blocks_searched[index] = 1;
              blocks_searched[index] = 1;
            }
            }
          index++;
          index++;
        }
        }
      if (have_default)
      if (have_default)
        break;
        break;
      if (sal_chain && this_level_only)
      if (sal_chain && this_level_only)
        break;
        break;
 
 
      /* After handling the function's top-level block, stop.
      /* After handling the function's top-level block, stop.
         Don't continue to its superblock, the block of
         Don't continue to its superblock, the block of
         per-file symbols.  */
         per-file symbols.  */
      if (BLOCK_FUNCTION (block))
      if (BLOCK_FUNCTION (block))
        break;
        break;
      block = BLOCK_SUPERBLOCK (block);
      block = BLOCK_SUPERBLOCK (block);
    }
    }
 
 
  if (sal_chain)
  if (sal_chain)
    {
    {
      struct sal_chain *tmp_chain;
      struct sal_chain *tmp_chain;
 
 
      /* Count the number of entries.  */
      /* Count the number of entries.  */
      for (index = 0, tmp_chain = sal_chain; tmp_chain;
      for (index = 0, tmp_chain = sal_chain; tmp_chain;
           tmp_chain = tmp_chain->next)
           tmp_chain = tmp_chain->next)
        index++;
        index++;
 
 
      sals.nelts = index;
      sals.nelts = index;
      sals.sals = (struct symtab_and_line *)
      sals.sals = (struct symtab_and_line *)
        xmalloc (index * sizeof (struct symtab_and_line));
        xmalloc (index * sizeof (struct symtab_and_line));
      for (index = 0; sal_chain; sal_chain = sal_chain->next, index++)
      for (index = 0; sal_chain; sal_chain = sal_chain->next, index++)
        sals.sals[index] = sal_chain->sal;
        sals.sals[index] = sal_chain->sal;
    }
    }
 
 
  return sals;
  return sals;
}
}
 
 
static void
static void
ep_skip_leading_whitespace (s)
ep_skip_leading_whitespace (s)
     char **s;
     char **s;
{
{
  if ((s == NULL) || (*s == NULL))
  if ((s == NULL) || (*s == NULL))
    return;
    return;
  while (isspace (**s))
  while (isspace (**s))
    *s += 1;
    *s += 1;
}
}
 
 
/* This function examines a string, and attempts to find a token
/* This function examines a string, and attempts to find a token
   that might be an event name in the leading characters.  If a
   that might be an event name in the leading characters.  If a
   possible match is found, a pointer to the last character of
   possible match is found, a pointer to the last character of
   the token is returned.  Else, NULL is returned. */
   the token is returned.  Else, NULL is returned. */
 
 
static char *
static char *
ep_find_event_name_end (arg)
ep_find_event_name_end (arg)
     char *arg;
     char *arg;
{
{
  char *s = arg;
  char *s = arg;
  char *event_name_end = NULL;
  char *event_name_end = NULL;
 
 
  /* If we could depend upon the presense of strrpbrk, we'd use that... */
  /* If we could depend upon the presense of strrpbrk, we'd use that... */
  if (arg == NULL)
  if (arg == NULL)
    return NULL;
    return NULL;
 
 
  /* We break out of the loop when we find a token delimiter.
  /* We break out of the loop when we find a token delimiter.
     Basically, we're looking for alphanumerics and underscores;
     Basically, we're looking for alphanumerics and underscores;
     anything else delimites the token. */
     anything else delimites the token. */
  while (*s != '\0')
  while (*s != '\0')
    {
    {
      if (!isalnum (*s) && (*s != '_'))
      if (!isalnum (*s) && (*s != '_'))
        break;
        break;
      event_name_end = s;
      event_name_end = s;
      s++;
      s++;
    }
    }
 
 
  return event_name_end;
  return event_name_end;
}
}
 
 
 
 
/* This function attempts to parse an optional "if <cond>" clause
/* This function attempts to parse an optional "if <cond>" clause
   from the arg string.  If one is not found, it returns NULL.
   from the arg string.  If one is not found, it returns NULL.
 
 
   Else, it returns a pointer to the condition string.  (It does not
   Else, it returns a pointer to the condition string.  (It does not
   attempt to evaluate the string against a particular block.)  And,
   attempt to evaluate the string against a particular block.)  And,
   it updates arg to point to the first character following the parsed
   it updates arg to point to the first character following the parsed
   if clause in the arg string. */
   if clause in the arg string. */
 
 
static char *
static char *
ep_parse_optional_if_clause (arg)
ep_parse_optional_if_clause (arg)
     char **arg;
     char **arg;
{
{
  char *cond_string;
  char *cond_string;
 
 
  if (((*arg)[0] != 'i') || ((*arg)[1] != 'f') || !isspace ((*arg)[2]))
  if (((*arg)[0] != 'i') || ((*arg)[1] != 'f') || !isspace ((*arg)[2]))
    return NULL;
    return NULL;
 
 
  /* Skip the "if" keyword. */
  /* Skip the "if" keyword. */
  (*arg) += 2;
  (*arg) += 2;
 
 
  /* Skip any extra leading whitespace, and record the start of the
  /* Skip any extra leading whitespace, and record the start of the
     condition string. */
     condition string. */
  ep_skip_leading_whitespace (arg);
  ep_skip_leading_whitespace (arg);
  cond_string = *arg;
  cond_string = *arg;
 
 
  /* Assume that the condition occupies the remainder of the arg string. */
  /* Assume that the condition occupies the remainder of the arg string. */
  (*arg) += strlen (cond_string);
  (*arg) += strlen (cond_string);
 
 
  return cond_string;
  return cond_string;
}
}
 
 
/* This function attempts to parse an optional filename from the arg
/* This function attempts to parse an optional filename from the arg
   string.  If one is not found, it returns NULL.
   string.  If one is not found, it returns NULL.
 
 
   Else, it returns a pointer to the parsed filename.  (This function
   Else, it returns a pointer to the parsed filename.  (This function
   makes no attempt to verify that a file of that name exists, or is
   makes no attempt to verify that a file of that name exists, or is
   accessible.)  And, it updates arg to point to the first character
   accessible.)  And, it updates arg to point to the first character
   following the parsed filename in the arg string.
   following the parsed filename in the arg string.
 
 
   Note that clients needing to preserve the returned filename for
   Note that clients needing to preserve the returned filename for
   future access should copy it to their own buffers. */
   future access should copy it to their own buffers. */
static char *
static char *
ep_parse_optional_filename (arg)
ep_parse_optional_filename (arg)
     char **arg;
     char **arg;
{
{
  static char filename[1024];
  static char filename[1024];
  char *arg_p = *arg;
  char *arg_p = *arg;
  int i;
  int i;
  char c;
  char c;
 
 
  if ((*arg_p == '\0') || isspace (*arg_p))
  if ((*arg_p == '\0') || isspace (*arg_p))
    return NULL;
    return NULL;
 
 
  for (i = 0;; i++)
  for (i = 0;; i++)
    {
    {
      c = *arg_p;
      c = *arg_p;
      if (isspace (c))
      if (isspace (c))
        c = '\0';
        c = '\0';
      filename[i] = c;
      filename[i] = c;
      if (c == '\0')
      if (c == '\0')
        break;
        break;
      arg_p++;
      arg_p++;
    }
    }
  *arg = arg_p;
  *arg = arg_p;
 
 
  return filename;
  return filename;
}
}
 
 
/* Commands to deal with catching events, such as signals, exceptions,
/* Commands to deal with catching events, such as signals, exceptions,
   process start/exit, etc.  */
   process start/exit, etc.  */
 
 
typedef enum
typedef enum
{
{
  catch_fork, catch_vfork
  catch_fork, catch_vfork
}
}
catch_fork_kind;
catch_fork_kind;
 
 
#if defined(CHILD_INSERT_FORK_CATCHPOINT) || defined(CHILD_INSERT_VFORK_CATCHPOINT)
#if defined(CHILD_INSERT_FORK_CATCHPOINT) || defined(CHILD_INSERT_VFORK_CATCHPOINT)
static void catch_fork_command_1 PARAMS ((catch_fork_kind fork_kind,
static void catch_fork_command_1 PARAMS ((catch_fork_kind fork_kind,
                                          char *arg,
                                          char *arg,
                                          int tempflag,
                                          int tempflag,
                                          int from_tty));
                                          int from_tty));
 
 
static void
static void
catch_fork_command_1 (fork_kind, arg, tempflag, from_tty)
catch_fork_command_1 (fork_kind, arg, tempflag, from_tty)
     catch_fork_kind fork_kind;
     catch_fork_kind fork_kind;
     char *arg;
     char *arg;
     int tempflag;
     int tempflag;
     int from_tty;
     int from_tty;
{
{
  char *cond_string = NULL;
  char *cond_string = NULL;
 
 
  ep_skip_leading_whitespace (&arg);
  ep_skip_leading_whitespace (&arg);
 
 
  /* The allowed syntax is:
  /* The allowed syntax is:
     catch [v]fork
     catch [v]fork
     catch [v]fork if <cond>
     catch [v]fork if <cond>
 
 
     First, check if there's an if clause. */
     First, check if there's an if clause. */
  cond_string = ep_parse_optional_if_clause (&arg);
  cond_string = ep_parse_optional_if_clause (&arg);
 
 
  if ((*arg != '\0') && !isspace (*arg))
  if ((*arg != '\0') && !isspace (*arg))
    error ("Junk at end of arguments.");
    error ("Junk at end of arguments.");
 
 
  /* If this target supports it, create a fork or vfork catchpoint
  /* If this target supports it, create a fork or vfork catchpoint
     and enable reporting of such events. */
     and enable reporting of such events. */
  switch (fork_kind)
  switch (fork_kind)
    {
    {
    case catch_fork:
    case catch_fork:
      create_fork_event_catchpoint (tempflag, cond_string);
      create_fork_event_catchpoint (tempflag, cond_string);
      break;
      break;
    case catch_vfork:
    case catch_vfork:
      create_vfork_event_catchpoint (tempflag, cond_string);
      create_vfork_event_catchpoint (tempflag, cond_string);
      break;
      break;
    default:
    default:
      error ("unsupported or unknown fork kind; cannot catch it");
      error ("unsupported or unknown fork kind; cannot catch it");
      break;
      break;
    }
    }
}
}
#endif
#endif
 
 
#if defined(CHILD_INSERT_EXEC_CATCHPOINT)
#if defined(CHILD_INSERT_EXEC_CATCHPOINT)
static void
static void
catch_exec_command_1 (arg, tempflag, from_tty)
catch_exec_command_1 (arg, tempflag, from_tty)
     char *arg;
     char *arg;
     int tempflag;
     int tempflag;
     int from_tty;
     int from_tty;
{
{
  char *cond_string = NULL;
  char *cond_string = NULL;
 
 
  ep_skip_leading_whitespace (&arg);
  ep_skip_leading_whitespace (&arg);
 
 
  /* The allowed syntax is:
  /* The allowed syntax is:
     catch exec
     catch exec
     catch exec if <cond>
     catch exec if <cond>
 
 
     First, check if there's an if clause. */
     First, check if there's an if clause. */
  cond_string = ep_parse_optional_if_clause (&arg);
  cond_string = ep_parse_optional_if_clause (&arg);
 
 
  if ((*arg != '\0') && !isspace (*arg))
  if ((*arg != '\0') && !isspace (*arg))
    error ("Junk at end of arguments.");
    error ("Junk at end of arguments.");
 
 
  /* If this target supports it, create an exec catchpoint
  /* If this target supports it, create an exec catchpoint
     and enable reporting of such events. */
     and enable reporting of such events. */
  create_exec_event_catchpoint (tempflag, cond_string);
  create_exec_event_catchpoint (tempflag, cond_string);
}
}
#endif
#endif
 
 
#if defined(SOLIB_ADD)
#if defined(SOLIB_ADD)
static void
static void
catch_load_command_1 (arg, tempflag, from_tty)
catch_load_command_1 (arg, tempflag, from_tty)
     char *arg;
     char *arg;
     int tempflag;
     int tempflag;
     int from_tty;
     int from_tty;
{
{
  char *dll_pathname = NULL;
  char *dll_pathname = NULL;
  char *cond_string = NULL;
  char *cond_string = NULL;
 
 
  ep_skip_leading_whitespace (&arg);
  ep_skip_leading_whitespace (&arg);
 
 
  /* The allowed syntax is:
  /* The allowed syntax is:
     catch load
     catch load
     catch load if <cond>
     catch load if <cond>
     catch load <filename>
     catch load <filename>
     catch load <filename> if <cond>
     catch load <filename> if <cond>
 
 
     The user is not allowed to specify the <filename> after an
     The user is not allowed to specify the <filename> after an
     if clause.
     if clause.
 
 
     We'll ignore the pathological case of a file named "if".
     We'll ignore the pathological case of a file named "if".
 
 
     First, check if there's an if clause.  If so, then there
     First, check if there's an if clause.  If so, then there
     cannot be a filename. */
     cannot be a filename. */
  cond_string = ep_parse_optional_if_clause (&arg);
  cond_string = ep_parse_optional_if_clause (&arg);
 
 
  /* If there was an if clause, then there cannot be a filename.
  /* If there was an if clause, then there cannot be a filename.
     Else, there might be a filename and an if clause. */
     Else, there might be a filename and an if clause. */
  if (cond_string == NULL)
  if (cond_string == NULL)
    {
    {
      dll_pathname = ep_parse_optional_filename (&arg);
      dll_pathname = ep_parse_optional_filename (&arg);
      ep_skip_leading_whitespace (&arg);
      ep_skip_leading_whitespace (&arg);
      cond_string = ep_parse_optional_if_clause (&arg);
      cond_string = ep_parse_optional_if_clause (&arg);
    }
    }
 
 
  if ((*arg != '\0') && !isspace (*arg))
  if ((*arg != '\0') && !isspace (*arg))
    error ("Junk at end of arguments.");
    error ("Junk at end of arguments.");
 
 
  /* Create a load breakpoint that only triggers when a load of
  /* Create a load breakpoint that only triggers when a load of
     the specified dll (or any dll, if no pathname was specified)
     the specified dll (or any dll, if no pathname was specified)
     occurs. */
     occurs. */
  SOLIB_CREATE_CATCH_LOAD_HOOK (inferior_pid, tempflag,
  SOLIB_CREATE_CATCH_LOAD_HOOK (inferior_pid, tempflag,
                                dll_pathname, cond_string);
                                dll_pathname, cond_string);
}
}
 
 
static void
static void
catch_unload_command_1 (arg, tempflag, from_tty)
catch_unload_command_1 (arg, tempflag, from_tty)
     char *arg;
     char *arg;
     int tempflag;
     int tempflag;
     int from_tty;
     int from_tty;
{
{
  char *dll_pathname = NULL;
  char *dll_pathname = NULL;
  char *cond_string = NULL;
  char *cond_string = NULL;
 
 
  ep_skip_leading_whitespace (&arg);
  ep_skip_leading_whitespace (&arg);
 
 
  /* The allowed syntax is:
  /* The allowed syntax is:
     catch unload
     catch unload
     catch unload if <cond>
     catch unload if <cond>
     catch unload <filename>
     catch unload <filename>
     catch unload <filename> if <cond>
     catch unload <filename> if <cond>
 
 
     The user is not allowed to specify the <filename> after an
     The user is not allowed to specify the <filename> after an
     if clause.
     if clause.
 
 
     We'll ignore the pathological case of a file named "if".
     We'll ignore the pathological case of a file named "if".
 
 
     First, check if there's an if clause.  If so, then there
     First, check if there's an if clause.  If so, then there
     cannot be a filename. */
     cannot be a filename. */
  cond_string = ep_parse_optional_if_clause (&arg);
  cond_string = ep_parse_optional_if_clause (&arg);
 
 
  /* If there was an if clause, then there cannot be a filename.
  /* If there was an if clause, then there cannot be a filename.
     Else, there might be a filename and an if clause. */
     Else, there might be a filename and an if clause. */
  if (cond_string == NULL)
  if (cond_string == NULL)
    {
    {
      dll_pathname = ep_parse_optional_filename (&arg);
      dll_pathname = ep_parse_optional_filename (&arg);
      ep_skip_leading_whitespace (&arg);
      ep_skip_leading_whitespace (&arg);
      cond_string = ep_parse_optional_if_clause (&arg);
      cond_string = ep_parse_optional_if_clause (&arg);
    }
    }
 
 
  if ((*arg != '\0') && !isspace (*arg))
  if ((*arg != '\0') && !isspace (*arg))
    error ("Junk at end of arguments.");
    error ("Junk at end of arguments.");
 
 
  /* Create an unload breakpoint that only triggers when an unload of
  /* Create an unload breakpoint that only triggers when an unload of
     the specified dll (or any dll, if no pathname was specified)
     the specified dll (or any dll, if no pathname was specified)
     occurs. */
     occurs. */
  SOLIB_CREATE_CATCH_UNLOAD_HOOK (inferior_pid, tempflag,
  SOLIB_CREATE_CATCH_UNLOAD_HOOK (inferior_pid, tempflag,
                                  dll_pathname, cond_string);
                                  dll_pathname, cond_string);
}
}
#endif /* SOLIB_ADD */
#endif /* SOLIB_ADD */
 
 
/* Commands to deal with catching exceptions.  */
/* Commands to deal with catching exceptions.  */
 
 
/* Set a breakpoint at the specified callback routine for an
/* Set a breakpoint at the specified callback routine for an
   exception event callback */
   exception event callback */
 
 
static void
static void
create_exception_catchpoint (tempflag, cond_string, ex_event, sal)
create_exception_catchpoint (tempflag, cond_string, ex_event, sal)
     int tempflag;
     int tempflag;
     char *cond_string;
     char *cond_string;
     enum exception_event_kind ex_event;
     enum exception_event_kind ex_event;
     struct symtab_and_line *sal;
     struct symtab_and_line *sal;
{
{
  struct breakpoint *b;
  struct breakpoint *b;
  int thread = -1;              /* All threads. */
  int thread = -1;              /* All threads. */
 
 
  if (!sal)                     /* no exception support? */
  if (!sal)                     /* no exception support? */
    return;
    return;
 
 
  b = set_raw_breakpoint (*sal);
  b = set_raw_breakpoint (*sal);
  set_breakpoint_count (breakpoint_count + 1);
  set_breakpoint_count (breakpoint_count + 1);
  b->number = breakpoint_count;
  b->number = breakpoint_count;
  b->cond = NULL;
  b->cond = NULL;
  b->cond_string = (cond_string == NULL) ?
  b->cond_string = (cond_string == NULL) ?
    NULL : savestring (cond_string, strlen (cond_string));
    NULL : savestring (cond_string, strlen (cond_string));
  b->thread = thread;
  b->thread = thread;
  b->addr_string = NULL;
  b->addr_string = NULL;
  b->enable = enabled;
  b->enable = enabled;
  b->disposition = tempflag ? del : donttouch;
  b->disposition = tempflag ? del : donttouch;
  switch (ex_event)
  switch (ex_event)
    {
    {
    case EX_EVENT_THROW:
    case EX_EVENT_THROW:
      b->type = bp_catch_throw;
      b->type = bp_catch_throw;
      break;
      break;
    case EX_EVENT_CATCH:
    case EX_EVENT_CATCH:
      b->type = bp_catch_catch;
      b->type = bp_catch_catch;
      break;
      break;
    default:                    /* error condition */
    default:                    /* error condition */
      b->type = bp_none;
      b->type = bp_none;
      b->enable = disabled;
      b->enable = disabled;
      error ("Internal error -- invalid catchpoint kind");
      error ("Internal error -- invalid catchpoint kind");
    }
    }
  mention (b);
  mention (b);
}
}
 
 
/* Deal with "catch catch" and "catch throw" commands */
/* Deal with "catch catch" and "catch throw" commands */
 
 
static void
static void
catch_exception_command_1 (ex_event, arg, tempflag, from_tty)
catch_exception_command_1 (ex_event, arg, tempflag, from_tty)
     enum exception_event_kind ex_event;
     enum exception_event_kind ex_event;
     char *arg;
     char *arg;
     int tempflag;
     int tempflag;
     int from_tty;
     int from_tty;
{
{
  char *cond_string = NULL;
  char *cond_string = NULL;
  struct symtab_and_line *sal = NULL;
  struct symtab_and_line *sal = NULL;
 
 
  ep_skip_leading_whitespace (&arg);
  ep_skip_leading_whitespace (&arg);
 
 
  cond_string = ep_parse_optional_if_clause (&arg);
  cond_string = ep_parse_optional_if_clause (&arg);
 
 
  if ((*arg != '\0') && !isspace (*arg))
  if ((*arg != '\0') && !isspace (*arg))
    error ("Junk at end of arguments.");
    error ("Junk at end of arguments.");
 
 
  if ((ex_event != EX_EVENT_THROW) &&
  if ((ex_event != EX_EVENT_THROW) &&
      (ex_event != EX_EVENT_CATCH))
      (ex_event != EX_EVENT_CATCH))
    error ("Unsupported or unknown exception event; cannot catch it");
    error ("Unsupported or unknown exception event; cannot catch it");
 
 
  /* See if we can find a callback routine */
  /* See if we can find a callback routine */
  sal = target_enable_exception_callback (ex_event, 1);
  sal = target_enable_exception_callback (ex_event, 1);
 
 
  if (sal)
  if (sal)
    {
    {
      /* We have callbacks from the runtime system for exceptions.
      /* We have callbacks from the runtime system for exceptions.
         Set a breakpoint on the sal found, if no errors */
         Set a breakpoint on the sal found, if no errors */
      if (sal != (struct symtab_and_line *) -1)
      if (sal != (struct symtab_and_line *) -1)
        create_exception_catchpoint (tempflag, cond_string, ex_event, sal);
        create_exception_catchpoint (tempflag, cond_string, ex_event, sal);
      else
      else
        return;         /* something went wrong with setting up callbacks */
        return;         /* something went wrong with setting up callbacks */
    }
    }
  else
  else
    {
    {
      /* No callbacks from runtime system for exceptions.
      /* No callbacks from runtime system for exceptions.
         Try GNU C++ exception breakpoints using labels in debug info. */
         Try GNU C++ exception breakpoints using labels in debug info. */
      if (ex_event == EX_EVENT_CATCH)
      if (ex_event == EX_EVENT_CATCH)
        {
        {
          handle_gnu_4_16_catch_command (arg, tempflag, from_tty);
          handle_gnu_4_16_catch_command (arg, tempflag, from_tty);
        }
        }
      else if (ex_event == EX_EVENT_THROW)
      else if (ex_event == EX_EVENT_THROW)
        {
        {
          /* Set a breakpoint on __raise_exception () */
          /* Set a breakpoint on __raise_exception () */
 
 
          warning ("Unsupported with this platform/compiler combination.");
          warning ("Unsupported with this platform/compiler combination.");
          warning ("Perhaps you can achieve the effect you want by setting");
          warning ("Perhaps you can achieve the effect you want by setting");
          warning ("a breakpoint on __raise_exception().");
          warning ("a breakpoint on __raise_exception().");
        }
        }
    }
    }
}
}
 
 
/* Cover routine to allow wrapping target_enable_exception_catchpoints
/* Cover routine to allow wrapping target_enable_exception_catchpoints
   inside a catch_errors */
   inside a catch_errors */
 
 
static int
static int
cover_target_enable_exception_callback (arg)
cover_target_enable_exception_callback (arg)
     PTR arg;
     PTR arg;
{
{
  args_for_catchpoint_enable *args = arg;
  args_for_catchpoint_enable *args = arg;
  struct symtab_and_line *sal;
  struct symtab_and_line *sal;
  sal = target_enable_exception_callback (args->kind, args->enable);
  sal = target_enable_exception_callback (args->kind, args->enable);
  if (sal == NULL)
  if (sal == NULL)
    return 0;
    return 0;
  else if (sal == (struct symtab_and_line *) -1)
  else if (sal == (struct symtab_and_line *) -1)
    return -1;
    return -1;
  else
  else
    return 1;                   /*is valid */
    return 1;                   /*is valid */
}
}
 
 
 
 
 
 
/* This is the original v.4.16 and earlier version of the
/* This is the original v.4.16 and earlier version of the
   catch_command_1() function.  Now that other flavours of "catch"
   catch_command_1() function.  Now that other flavours of "catch"
   have been introduced, and since exception handling can be handled
   have been introduced, and since exception handling can be handled
   in other ways (through target ops) also, this is used only for the
   in other ways (through target ops) also, this is used only for the
   GNU C++ exception handling system.
   GNU C++ exception handling system.
   Note: Only the "catch" flavour of GDB 4.16 is handled here.  The
   Note: Only the "catch" flavour of GDB 4.16 is handled here.  The
   "catch NAME" is now no longer allowed in catch_command_1().  Also,
   "catch NAME" is now no longer allowed in catch_command_1().  Also,
   there was no code in GDB 4.16 for "catch throw".
   there was no code in GDB 4.16 for "catch throw".
 
 
   Called from catch_exception_command_1 () */
   Called from catch_exception_command_1 () */
 
 
 
 
static void
static void
handle_gnu_4_16_catch_command (arg, tempflag, from_tty)
handle_gnu_4_16_catch_command (arg, tempflag, from_tty)
     char *arg;
     char *arg;
     int tempflag;
     int tempflag;
     int from_tty;
     int from_tty;
{
{
  /* First, translate ARG into something we can deal with in terms
  /* First, translate ARG into something we can deal with in terms
     of breakpoints.  */
     of breakpoints.  */
 
 
  struct symtabs_and_lines sals;
  struct symtabs_and_lines sals;
  struct symtab_and_line sal;
  struct symtab_and_line sal;
  register struct expression *cond = 0;
  register struct expression *cond = 0;
  register struct breakpoint *b;
  register struct breakpoint *b;
  char *save_arg;
  char *save_arg;
  int i;
  int i;
 
 
  INIT_SAL (&sal);              /* initialize to zeroes */
  INIT_SAL (&sal);              /* initialize to zeroes */
 
 
  /* If no arg given, or if first arg is 'if ', all active catch clauses
  /* If no arg given, or if first arg is 'if ', all active catch clauses
     are breakpointed. */
     are breakpointed. */
 
 
  if (!arg || (arg[0] == 'i' && arg[1] == 'f'
  if (!arg || (arg[0] == 'i' && arg[1] == 'f'
               && (arg[2] == ' ' || arg[2] == '\t')))
               && (arg[2] == ' ' || arg[2] == '\t')))
    {
    {
      /* Grab all active catch clauses.  */
      /* Grab all active catch clauses.  */
      sals = get_catch_sals (0);
      sals = get_catch_sals (0);
    }
    }
  else
  else
    {
    {
      /* Grab selected catch clauses.  */
      /* Grab selected catch clauses.  */
      error ("catch NAME not implemented");
      error ("catch NAME not implemented");
 
 
#if 0
#if 0
      /* Not sure why this code has been disabled. I'm leaving
      /* Not sure why this code has been disabled. I'm leaving
         it disabled.  We can never come here now anyway
         it disabled.  We can never come here now anyway
         since we don't allow the "catch NAME" syntax.
         since we don't allow the "catch NAME" syntax.
         pai/1997-07-11 */
         pai/1997-07-11 */
 
 
      /* This isn't used; I don't know what it was for.  */
      /* This isn't used; I don't know what it was for.  */
      sals = map_catch_names (arg, catch_breakpoint);
      sals = map_catch_names (arg, catch_breakpoint);
#endif
#endif
    }
    }
 
 
  if (!sals.nelts)
  if (!sals.nelts)
    return;
    return;
 
 
  save_arg = arg;
  save_arg = arg;
  for (i = 0; i < sals.nelts; i++)
  for (i = 0; i < sals.nelts; i++)
    {
    {
      resolve_sal_pc (&sals.sals[i]);
      resolve_sal_pc (&sals.sals[i]);
 
 
      while (arg && *arg)
      while (arg && *arg)
        {
        {
          if (arg[0] == 'i' && arg[1] == 'f'
          if (arg[0] == 'i' && arg[1] == 'f'
              && (arg[2] == ' ' || arg[2] == '\t'))
              && (arg[2] == ' ' || arg[2] == '\t'))
            cond = parse_exp_1 ((arg += 2, &arg),
            cond = parse_exp_1 ((arg += 2, &arg),
                                block_for_pc (sals.sals[i].pc), 0);
                                block_for_pc (sals.sals[i].pc), 0);
          else
          else
            error ("Junk at end of arguments.");
            error ("Junk at end of arguments.");
        }
        }
      arg = save_arg;
      arg = save_arg;
    }
    }
 
 
  for (i = 0; i < sals.nelts; i++)
  for (i = 0; i < sals.nelts; i++)
    {
    {
      sal = sals.sals[i];
      sal = sals.sals[i];
 
 
      if (from_tty)
      if (from_tty)
        describe_other_breakpoints (sal.pc, sal.section);
        describe_other_breakpoints (sal.pc, sal.section);
 
 
      b = set_raw_breakpoint (sal);
      b = set_raw_breakpoint (sal);
      set_breakpoint_count (breakpoint_count + 1);
      set_breakpoint_count (breakpoint_count + 1);
      b->number = breakpoint_count;
      b->number = breakpoint_count;
 
 
      /* Important -- this is an ordinary breakpoint.  For platforms
      /* Important -- this is an ordinary breakpoint.  For platforms
         with callback support for exceptions,
         with callback support for exceptions,
         create_exception_catchpoint() will create special bp types
         create_exception_catchpoint() will create special bp types
         (bp_catch_catch and bp_catch_throw), and there is code in
         (bp_catch_catch and bp_catch_throw), and there is code in
         insert_breakpoints() and elsewhere that depends on that. */
         insert_breakpoints() and elsewhere that depends on that. */
      b->type = bp_breakpoint;
      b->type = bp_breakpoint;
 
 
      b->cond = cond;
      b->cond = cond;
      b->enable = enabled;
      b->enable = enabled;
      b->disposition = tempflag ? del : donttouch;
      b->disposition = tempflag ? del : donttouch;
 
 
      mention (b);
      mention (b);
    }
    }
 
 
  if (sals.nelts > 1)
  if (sals.nelts > 1)
    {
    {
      warning ("Multiple breakpoints were set.");
      warning ("Multiple breakpoints were set.");
      warning ("Use the \"delete\" command to delete unwanted breakpoints.");
      warning ("Use the \"delete\" command to delete unwanted breakpoints.");
    }
    }
  free ((PTR) sals.sals);
  free ((PTR) sals.sals);
}
}
 
 
#if 0
#if 0
/* This creates a temporary internal breakpoint
/* This creates a temporary internal breakpoint
   just to placate infrun */
   just to placate infrun */
static struct breakpoint *
static struct breakpoint *
create_temp_exception_breakpoint (pc)
create_temp_exception_breakpoint (pc)
     CORE_ADDR pc;
     CORE_ADDR pc;
{
{
  struct symtab_and_line sal;
  struct symtab_and_line sal;
  struct breakpoint *b;
  struct breakpoint *b;
 
 
  INIT_SAL (&sal);
  INIT_SAL (&sal);
  sal.pc = pc;
  sal.pc = pc;
  sal.symtab = NULL;
  sal.symtab = NULL;
  sal.line = 0;
  sal.line = 0;
 
 
  b = set_raw_breakpoint (sal);
  b = set_raw_breakpoint (sal);
  if (!b)
  if (!b)
    error ("Internal error -- couldn't set temp exception breakpoint");
    error ("Internal error -- couldn't set temp exception breakpoint");
 
 
  b->type = bp_breakpoint;
  b->type = bp_breakpoint;
  b->disposition = del;
  b->disposition = del;
  b->enable = enabled;
  b->enable = enabled;
  b->silent = 1;
  b->silent = 1;
  b->number = internal_breakpoint_number--;
  b->number = internal_breakpoint_number--;
  return b;
  return b;
}
}
#endif
#endif
 
 
static void
static void
catch_command_1 (arg, tempflag, from_tty)
catch_command_1 (arg, tempflag, from_tty)
     char *arg;
     char *arg;
     int tempflag;
     int tempflag;
     int from_tty;
     int from_tty;
{
{
 
 
  /* The first argument may be an event name, such as "start" or "load".
  /* The first argument may be an event name, such as "start" or "load".
     If so, then handle it as such.  If it doesn't match an event name,
     If so, then handle it as such.  If it doesn't match an event name,
     then attempt to interpret it as an exception name.  (This latter is
     then attempt to interpret it as an exception name.  (This latter is
     the v4.16-and-earlier GDB meaning of the "catch" command.)
     the v4.16-and-earlier GDB meaning of the "catch" command.)
 
 
     First, try to find the bounds of what might be an event name. */
     First, try to find the bounds of what might be an event name. */
  char *arg1_start = arg;
  char *arg1_start = arg;
  char *arg1_end;
  char *arg1_end;
  int arg1_length;
  int arg1_length;
 
 
  if (arg1_start == NULL)
  if (arg1_start == NULL)
    {
    {
      /* Old behaviour was to use pre-v-4.16 syntax */
      /* Old behaviour was to use pre-v-4.16 syntax */
      /* catch_throw_command_1 (arg1_start, tempflag, from_tty); */
      /* catch_throw_command_1 (arg1_start, tempflag, from_tty); */
      /* return; */
      /* return; */
      /* Now, this is not allowed */
      /* Now, this is not allowed */
      error ("Catch requires an event name.");
      error ("Catch requires an event name.");
 
 
    }
    }
  arg1_end = ep_find_event_name_end (arg1_start);
  arg1_end = ep_find_event_name_end (arg1_start);
  if (arg1_end == NULL)
  if (arg1_end == NULL)
    error ("catch requires an event");
    error ("catch requires an event");
  arg1_length = arg1_end + 1 - arg1_start;
  arg1_length = arg1_end + 1 - arg1_start;
 
 
  /* Try to match what we found against known event names. */
  /* Try to match what we found against known event names. */
  if (strncmp (arg1_start, "signal", arg1_length) == 0)
  if (strncmp (arg1_start, "signal", arg1_length) == 0)
    {
    {
      error ("Catch of signal not yet implemented");
      error ("Catch of signal not yet implemented");
    }
    }
  else if (strncmp (arg1_start, "catch", arg1_length) == 0)
  else if (strncmp (arg1_start, "catch", arg1_length) == 0)
    {
    {
      catch_exception_command_1 (EX_EVENT_CATCH, arg1_end + 1,
      catch_exception_command_1 (EX_EVENT_CATCH, arg1_end + 1,
                                 tempflag, from_tty);
                                 tempflag, from_tty);
    }
    }
  else if (strncmp (arg1_start, "throw", arg1_length) == 0)
  else if (strncmp (arg1_start, "throw", arg1_length) == 0)
    {
    {
      catch_exception_command_1 (EX_EVENT_THROW, arg1_end + 1,
      catch_exception_command_1 (EX_EVENT_THROW, arg1_end + 1,
                                 tempflag, from_tty);
                                 tempflag, from_tty);
    }
    }
  else if (strncmp (arg1_start, "thread_start", arg1_length) == 0)
  else if (strncmp (arg1_start, "thread_start", arg1_length) == 0)
    {
    {
      error ("Catch of thread_start not yet implemented");
      error ("Catch of thread_start not yet implemented");
    }
    }
  else if (strncmp (arg1_start, "thread_exit", arg1_length) == 0)
  else if (strncmp (arg1_start, "thread_exit", arg1_length) == 0)
    {
    {
      error ("Catch of thread_exit not yet implemented");
      error ("Catch of thread_exit not yet implemented");
    }
    }
  else if (strncmp (arg1_start, "thread_join", arg1_length) == 0)
  else if (strncmp (arg1_start, "thread_join", arg1_length) == 0)
    {
    {
      error ("Catch of thread_join not yet implemented");
      error ("Catch of thread_join not yet implemented");
    }
    }
  else if (strncmp (arg1_start, "start", arg1_length) == 0)
  else if (strncmp (arg1_start, "start", arg1_length) == 0)
    {
    {
      error ("Catch of start not yet implemented");
      error ("Catch of start not yet implemented");
    }
    }
  else if (strncmp (arg1_start, "exit", arg1_length) == 0)
  else if (strncmp (arg1_start, "exit", arg1_length) == 0)
    {
    {
      error ("Catch of exit not yet implemented");
      error ("Catch of exit not yet implemented");
    }
    }
  else if (strncmp (arg1_start, "fork", arg1_length) == 0)
  else if (strncmp (arg1_start, "fork", arg1_length) == 0)
    {
    {
#if defined(CHILD_INSERT_FORK_CATCHPOINT)
#if defined(CHILD_INSERT_FORK_CATCHPOINT)
      catch_fork_command_1 (catch_fork, arg1_end + 1, tempflag, from_tty);
      catch_fork_command_1 (catch_fork, arg1_end + 1, tempflag, from_tty);
#else
#else
      error ("Catch of fork not yet implemented");
      error ("Catch of fork not yet implemented");
#endif
#endif
    }
    }
  else if (strncmp (arg1_start, "vfork", arg1_length) == 0)
  else if (strncmp (arg1_start, "vfork", arg1_length) == 0)
    {
    {
#if defined(CHILD_INSERT_VFORK_CATCHPOINT)
#if defined(CHILD_INSERT_VFORK_CATCHPOINT)
      catch_fork_command_1 (catch_vfork, arg1_end + 1, tempflag, from_tty);
      catch_fork_command_1 (catch_vfork, arg1_end + 1, tempflag, from_tty);
#else
#else
      error ("Catch of vfork not yet implemented");
      error ("Catch of vfork not yet implemented");
#endif
#endif
    }
    }
  else if (strncmp (arg1_start, "exec", arg1_length) == 0)
  else if (strncmp (arg1_start, "exec", arg1_length) == 0)
    {
    {
#if defined(CHILD_INSERT_EXEC_CATCHPOINT)
#if defined(CHILD_INSERT_EXEC_CATCHPOINT)
      catch_exec_command_1 (arg1_end + 1, tempflag, from_tty);
      catch_exec_command_1 (arg1_end + 1, tempflag, from_tty);
#else
#else
      error ("Catch of exec not yet implemented");
      error ("Catch of exec not yet implemented");
#endif
#endif
    }
    }
  else if (strncmp (arg1_start, "load", arg1_length) == 0)
  else if (strncmp (arg1_start, "load", arg1_length) == 0)
    {
    {
#if defined(SOLIB_ADD)
#if defined(SOLIB_ADD)
      catch_load_command_1 (arg1_end + 1, tempflag, from_tty);
      catch_load_command_1 (arg1_end + 1, tempflag, from_tty);
#else
#else
      error ("Catch of load not implemented");
      error ("Catch of load not implemented");
#endif
#endif
    }
    }
  else if (strncmp (arg1_start, "unload", arg1_length) == 0)
  else if (strncmp (arg1_start, "unload", arg1_length) == 0)
    {
    {
#if defined(SOLIB_ADD)
#if defined(SOLIB_ADD)
      catch_unload_command_1 (arg1_end + 1, tempflag, from_tty);
      catch_unload_command_1 (arg1_end + 1, tempflag, from_tty);
#else
#else
      error ("Catch of load not implemented");
      error ("Catch of load not implemented");
#endif
#endif
    }
    }
  else if (strncmp (arg1_start, "stop", arg1_length) == 0)
  else if (strncmp (arg1_start, "stop", arg1_length) == 0)
    {
    {
      error ("Catch of stop not yet implemented");
      error ("Catch of stop not yet implemented");
    }
    }
 
 
  /* This doesn't appear to be an event name */
  /* This doesn't appear to be an event name */
 
 
  else
  else
    {
    {
      /* Pre-v.4.16 behaviour was to treat the argument
      /* Pre-v.4.16 behaviour was to treat the argument
         as the name of an exception */
         as the name of an exception */
      /* catch_throw_command_1 (arg1_start, tempflag, from_tty); */
      /* catch_throw_command_1 (arg1_start, tempflag, from_tty); */
      /* Now this is not allowed */
      /* Now this is not allowed */
      error ("Unknown event kind specified for catch");
      error ("Unknown event kind specified for catch");
 
 
    }
    }
}
}
 
 
/* Used by the gui, could be made a worker for other things. */
/* Used by the gui, could be made a worker for other things. */
 
 
struct breakpoint *
struct breakpoint *
set_breakpoint_sal (sal)
set_breakpoint_sal (sal)
     struct symtab_and_line sal;
     struct symtab_and_line sal;
{
{
  struct breakpoint *b;
  struct breakpoint *b;
  b = set_raw_breakpoint (sal);
  b = set_raw_breakpoint (sal);
  set_breakpoint_count (breakpoint_count + 1);
  set_breakpoint_count (breakpoint_count + 1);
  b->number = breakpoint_count;
  b->number = breakpoint_count;
  b->type = bp_breakpoint;
  b->type = bp_breakpoint;
  b->cond = 0;
  b->cond = 0;
  b->thread = -1;
  b->thread = -1;
  return b;
  return b;
}
}
 
 
#if 0
#if 0
/* These aren't used; I don't know what they were for.  */
/* These aren't used; I don't know what they were for.  */
/* Disable breakpoints on all catch clauses described in ARGS.  */
/* Disable breakpoints on all catch clauses described in ARGS.  */
static void
static void
disable_catch (args)
disable_catch (args)
     char *args;
     char *args;
{
{
  /* Map the disable command to catch clauses described in ARGS.  */
  /* Map the disable command to catch clauses described in ARGS.  */
}
}
 
 
/* Enable breakpoints on all catch clauses described in ARGS.  */
/* Enable breakpoints on all catch clauses described in ARGS.  */
static void
static void
enable_catch (args)
enable_catch (args)
     char *args;
     char *args;
{
{
  /* Map the disable command to catch clauses described in ARGS.  */
  /* Map the disable command to catch clauses described in ARGS.  */
}
}
 
 
/* Delete breakpoints on all catch clauses in the active scope.  */
/* Delete breakpoints on all catch clauses in the active scope.  */
static void
static void
delete_catch (args)
delete_catch (args)
     char *args;
     char *args;
{
{
  /* Map the delete command to catch clauses described in ARGS.  */
  /* Map the delete command to catch clauses described in ARGS.  */
}
}
#endif /* 0 */
#endif /* 0 */
 
 
static void
static void
catch_command (arg, from_tty)
catch_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  catch_command_1 (arg, 0, from_tty);
  catch_command_1 (arg, 0, from_tty);
}
}


 
 
static void
static void
tcatch_command (arg, from_tty)
tcatch_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  catch_command_1 (arg, 1, from_tty);
  catch_command_1 (arg, 1, from_tty);
}
}
 
 
 
 
static void
static void
clear_command (arg, from_tty)
clear_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  register struct breakpoint *b, *b1;
  register struct breakpoint *b, *b1;
  int default_match;
  int default_match;
  struct symtabs_and_lines sals;
  struct symtabs_and_lines sals;
  struct symtab_and_line sal;
  struct symtab_and_line sal;
  register struct breakpoint *found;
  register struct breakpoint *found;
  int i;
  int i;
 
 
  if (arg)
  if (arg)
    {
    {
      sals = decode_line_spec (arg, 1);
      sals = decode_line_spec (arg, 1);
      default_match = 0;
      default_match = 0;
    }
    }
  else
  else
    {
    {
      sals.sals = (struct symtab_and_line *)
      sals.sals = (struct symtab_and_line *)
        xmalloc (sizeof (struct symtab_and_line));
        xmalloc (sizeof (struct symtab_and_line));
      INIT_SAL (&sal);          /* initialize to zeroes */
      INIT_SAL (&sal);          /* initialize to zeroes */
      sal.line = default_breakpoint_line;
      sal.line = default_breakpoint_line;
      sal.symtab = default_breakpoint_symtab;
      sal.symtab = default_breakpoint_symtab;
      sal.pc = default_breakpoint_address;
      sal.pc = default_breakpoint_address;
      if (sal.symtab == 0)
      if (sal.symtab == 0)
        error ("No source file specified.");
        error ("No source file specified.");
 
 
      sals.sals[0] = sal;
      sals.sals[0] = sal;
      sals.nelts = 1;
      sals.nelts = 1;
 
 
      default_match = 1;
      default_match = 1;
    }
    }
 
 
  /* For each line spec given, delete bps which correspond
  /* For each line spec given, delete bps which correspond
     to it.  We do this in two loops: the first loop looks at
     to it.  We do this in two loops: the first loop looks at
     the initial bp(s) in the chain which should be deleted,
     the initial bp(s) in the chain which should be deleted,
     the second goes down the rest of the chain looking ahead
     the second goes down the rest of the chain looking ahead
     one so it can take those bps off the chain without messing
     one so it can take those bps off the chain without messing
     up the chain. */
     up the chain. */
 
 
 
 
  for (i = 0; i < sals.nelts; i++)
  for (i = 0; i < sals.nelts; i++)
    {
    {
      /* If exact pc given, clear bpts at that pc.
      /* If exact pc given, clear bpts at that pc.
         If line given (pc == 0), clear all bpts on specified line.
         If line given (pc == 0), clear all bpts on specified line.
         If defaulting, clear all bpts on default line
         If defaulting, clear all bpts on default line
         or at default pc.
         or at default pc.
 
 
         defaulting    sal.pc != 0    tests to do
         defaulting    sal.pc != 0    tests to do
 
 
         0              1             pc
         0              1             pc
         1              1             pc _and_ line
         1              1             pc _and_ line
         0              0             line
         0              0             line
         1              0             <can't happen> */
         1              0             <can't happen> */
 
 
      sal = sals.sals[i];
      sal = sals.sals[i];
      found = (struct breakpoint *) 0;
      found = (struct breakpoint *) 0;
 
 
 
 
      while (breakpoint_chain
      while (breakpoint_chain
      /* Why don't we check here that this is not
      /* Why don't we check here that this is not
         a watchpoint, etc., as we do below?
         a watchpoint, etc., as we do below?
         I can't make it fail, but don't know
         I can't make it fail, but don't know
         what's stopping the failure: a watchpoint
         what's stopping the failure: a watchpoint
         of the same address as "sal.pc" should
         of the same address as "sal.pc" should
         wind up being deleted. */
         wind up being deleted. */
 
 
             && (((sal.pc && (breakpoint_chain->address == sal.pc)) &&
             && (((sal.pc && (breakpoint_chain->address == sal.pc)) &&
                  (overlay_debugging == 0 ||
                  (overlay_debugging == 0 ||
                   breakpoint_chain->section == sal.section))
                   breakpoint_chain->section == sal.section))
                 || ((default_match || (0 == sal.pc))
                 || ((default_match || (0 == sal.pc))
                     && breakpoint_chain->source_file != NULL
                     && breakpoint_chain->source_file != NULL
                     && sal.symtab != NULL
                     && sal.symtab != NULL
              && STREQ (breakpoint_chain->source_file, sal.symtab->filename)
              && STREQ (breakpoint_chain->source_file, sal.symtab->filename)
                     && breakpoint_chain->line_number == sal.line)))
                     && breakpoint_chain->line_number == sal.line)))
 
 
        {
        {
          b1 = breakpoint_chain;
          b1 = breakpoint_chain;
          breakpoint_chain = b1->next;
          breakpoint_chain = b1->next;
          b1->next = found;
          b1->next = found;
          found = b1;
          found = b1;
        }
        }
 
 
      ALL_BREAKPOINTS (b)
      ALL_BREAKPOINTS (b)
 
 
        while (b->next
        while (b->next
               && b->next->type != bp_none
               && b->next->type != bp_none
               && b->next->type != bp_watchpoint
               && b->next->type != bp_watchpoint
               && b->next->type != bp_hardware_watchpoint
               && b->next->type != bp_hardware_watchpoint
               && b->next->type != bp_read_watchpoint
               && b->next->type != bp_read_watchpoint
               && b->next->type != bp_access_watchpoint
               && b->next->type != bp_access_watchpoint
               && (((sal.pc && (b->next->address == sal.pc)) &&
               && (((sal.pc && (b->next->address == sal.pc)) &&
                    (overlay_debugging == 0 ||
                    (overlay_debugging == 0 ||
                     b->next->section == sal.section))
                     b->next->section == sal.section))
                   || ((default_match || (0 == sal.pc))
                   || ((default_match || (0 == sal.pc))
                       && b->next->source_file != NULL
                       && b->next->source_file != NULL
                       && sal.symtab != NULL
                       && sal.symtab != NULL
                       && STREQ (b->next->source_file, sal.symtab->filename)
                       && STREQ (b->next->source_file, sal.symtab->filename)
                       && b->next->line_number == sal.line)))
                       && b->next->line_number == sal.line)))
 
 
 
 
        {
        {
          b1 = b->next;
          b1 = b->next;
          b->next = b1->next;
          b->next = b1->next;
          b1->next = found;
          b1->next = found;
          found = b1;
          found = b1;
        }
        }
 
 
      if (found == 0)
      if (found == 0)
        {
        {
          if (arg)
          if (arg)
            error ("No breakpoint at %s.", arg);
            error ("No breakpoint at %s.", arg);
          else
          else
            error ("No breakpoint at this line.");
            error ("No breakpoint at this line.");
        }
        }
 
 
      if (found->next)
      if (found->next)
        from_tty = 1;           /* Always report if deleted more than one */
        from_tty = 1;           /* Always report if deleted more than one */
      if (from_tty)
      if (from_tty)
        printf_unfiltered ("Deleted breakpoint%s ", found->next ? "s" : "");
        printf_unfiltered ("Deleted breakpoint%s ", found->next ? "s" : "");
      breakpoints_changed ();
      breakpoints_changed ();
      while (found)
      while (found)
        {
        {
          if (from_tty)
          if (from_tty)
            printf_unfiltered ("%d ", found->number);
            printf_unfiltered ("%d ", found->number);
          b1 = found->next;
          b1 = found->next;
          delete_breakpoint (found);
          delete_breakpoint (found);
          found = b1;
          found = b1;
        }
        }
      if (from_tty)
      if (from_tty)
        putchar_unfiltered ('\n');
        putchar_unfiltered ('\n');
    }
    }
  free ((PTR) sals.sals);
  free ((PTR) sals.sals);
}
}


/* Delete breakpoint in BS if they are `delete' breakpoints and
/* Delete breakpoint in BS if they are `delete' breakpoints and
   all breakpoints that are marked for deletion, whether hit or not.
   all breakpoints that are marked for deletion, whether hit or not.
   This is called after any breakpoint is hit, or after errors.  */
   This is called after any breakpoint is hit, or after errors.  */
 
 
void
void
breakpoint_auto_delete (bs)
breakpoint_auto_delete (bs)
     bpstat bs;
     bpstat bs;
{
{
  struct breakpoint *b, *temp;
  struct breakpoint *b, *temp;
 
 
  for (; bs; bs = bs->next)
  for (; bs; bs = bs->next)
    if (bs->breakpoint_at && bs->breakpoint_at->disposition == del
    if (bs->breakpoint_at && bs->breakpoint_at->disposition == del
        && bs->stop)
        && bs->stop)
      delete_breakpoint (bs->breakpoint_at);
      delete_breakpoint (bs->breakpoint_at);
 
 
  ALL_BREAKPOINTS_SAFE (b, temp)
  ALL_BREAKPOINTS_SAFE (b, temp)
  {
  {
    if (b->disposition == del_at_next_stop)
    if (b->disposition == del_at_next_stop)
      delete_breakpoint (b);
      delete_breakpoint (b);
  }
  }
}
}
 
 
/* Delete a breakpoint and clean up all traces of it in the data
/* Delete a breakpoint and clean up all traces of it in the data
   structures. */
   structures. */
 
 
void
void
delete_breakpoint (bpt)
delete_breakpoint (bpt)
     struct breakpoint *bpt;
     struct breakpoint *bpt;
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
  register bpstat bs;
  register bpstat bs;
 
 
  if (bpt == NULL)
  if (bpt == NULL)
    error ("Internal error (attempted to delete a NULL breakpoint)");
    error ("Internal error (attempted to delete a NULL breakpoint)");
 
 
 
 
  /* Has this bp already been deleted?  This can happen because multiple
  /* Has this bp already been deleted?  This can happen because multiple
     lists can hold pointers to bp's.  bpstat lists are especial culprits.
     lists can hold pointers to bp's.  bpstat lists are especial culprits.
 
 
     One example of this happening is a watchpoint's scope bp.  When the
     One example of this happening is a watchpoint's scope bp.  When the
     scope bp triggers, we notice that the watchpoint is out of scope, and
     scope bp triggers, we notice that the watchpoint is out of scope, and
     delete it.  We also delete its scope bp.  But the scope bp is marked
     delete it.  We also delete its scope bp.  But the scope bp is marked
     "auto-deleting", and is already on a bpstat.  That bpstat is then
     "auto-deleting", and is already on a bpstat.  That bpstat is then
     checked for auto-deleting bp's, which are deleted.
     checked for auto-deleting bp's, which are deleted.
 
 
     A real solution to this problem might involve reference counts in bp's,
     A real solution to this problem might involve reference counts in bp's,
     and/or giving them pointers back to their referencing bpstat's, and
     and/or giving them pointers back to their referencing bpstat's, and
     teaching delete_breakpoint to only free a bp's storage when no more
     teaching delete_breakpoint to only free a bp's storage when no more
     references were extent.  A cheaper bandaid was chosen. */
     references were extent.  A cheaper bandaid was chosen. */
  if (bpt->type == bp_none)
  if (bpt->type == bp_none)
    return;
    return;
 
 
  if (delete_breakpoint_hook)
  if (delete_breakpoint_hook)
    delete_breakpoint_hook (bpt);
    delete_breakpoint_hook (bpt);
  breakpoint_delete_event (bpt->number);
  breakpoint_delete_event (bpt->number);
 
 
  if (bpt->inserted)
  if (bpt->inserted)
    remove_breakpoint (bpt, mark_uninserted);
    remove_breakpoint (bpt, mark_uninserted);
 
 
  if (breakpoint_chain == bpt)
  if (breakpoint_chain == bpt)
    breakpoint_chain = bpt->next;
    breakpoint_chain = bpt->next;
 
 
  /* If we have callback-style exception catchpoints, don't go through
  /* If we have callback-style exception catchpoints, don't go through
     the adjustments to the C++ runtime library etc. if the inferior
     the adjustments to the C++ runtime library etc. if the inferior
     isn't actually running.  target_enable_exception_callback for a
     isn't actually running.  target_enable_exception_callback for a
     null target ops vector gives an undesirable error message, so we
     null target ops vector gives an undesirable error message, so we
     check here and avoid it. Since currently (1997-09-17) only HP-UX aCC's
     check here and avoid it. Since currently (1997-09-17) only HP-UX aCC's
     exceptions are supported in this way, it's OK for now. FIXME */
     exceptions are supported in this way, it's OK for now. FIXME */
  if (ep_is_exception_catchpoint (bpt) && target_has_execution)
  if (ep_is_exception_catchpoint (bpt) && target_has_execution)
    {
    {
      static char message1[] = "Error in deleting catchpoint %d:\n";
      static char message1[] = "Error in deleting catchpoint %d:\n";
      static char message[sizeof (message1) + 30];
      static char message[sizeof (message1) + 30];
      args_for_catchpoint_enable args;
      args_for_catchpoint_enable args;
 
 
      /* Format possible error msg */
      /* Format possible error msg */
      sprintf (message, message1, bpt->number);
      sprintf (message, message1, bpt->number);
      args.kind = bpt->type == bp_catch_catch ?
      args.kind = bpt->type == bp_catch_catch ?
        EX_EVENT_CATCH : EX_EVENT_THROW;
        EX_EVENT_CATCH : EX_EVENT_THROW;
      args.enable = 0;
      args.enable = 0;
      catch_errors (cover_target_enable_exception_callback, &args,
      catch_errors (cover_target_enable_exception_callback, &args,
                    message, RETURN_MASK_ALL);
                    message, RETURN_MASK_ALL);
    }
    }
 
 
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    if (b->next == bpt)
    if (b->next == bpt)
    {
    {
      b->next = bpt->next;
      b->next = bpt->next;
      break;
      break;
    }
    }
 
 
  /* Before turning off the visuals for the bp, check to see that
  /* Before turning off the visuals for the bp, check to see that
     there are no other bps at the same address. */
     there are no other bps at the same address. */
  if (tui_version)
  if (tui_version)
    {
    {
      int clearIt;
      int clearIt;
 
 
      ALL_BREAKPOINTS (b)
      ALL_BREAKPOINTS (b)
      {
      {
        clearIt = (b->address != bpt->address);
        clearIt = (b->address != bpt->address);
        if (!clearIt)
        if (!clearIt)
          break;
          break;
      }
      }
 
 
      if (clearIt)
      if (clearIt)
        {
        {
          TUIDO (((TuiOpaqueFuncPtr) tui_vAllSetHasBreakAt, bpt, 0));
          TUIDO (((TuiOpaqueFuncPtr) tui_vAllSetHasBreakAt, bpt, 0));
          TUIDO (((TuiOpaqueFuncPtr) tuiUpdateAllExecInfos));
          TUIDO (((TuiOpaqueFuncPtr) tuiUpdateAllExecInfos));
        }
        }
    }
    }
 
 
  check_duplicates (bpt->address, bpt->section);
  check_duplicates (bpt->address, bpt->section);
  /* If this breakpoint was inserted, and there is another breakpoint
  /* If this breakpoint was inserted, and there is another breakpoint
     at the same address, we need to insert the other breakpoint.  */
     at the same address, we need to insert the other breakpoint.  */
  if (bpt->inserted
  if (bpt->inserted
      && bpt->type != bp_hardware_watchpoint
      && bpt->type != bp_hardware_watchpoint
      && bpt->type != bp_read_watchpoint
      && bpt->type != bp_read_watchpoint
      && bpt->type != bp_access_watchpoint
      && bpt->type != bp_access_watchpoint
      && bpt->type != bp_catch_fork
      && bpt->type != bp_catch_fork
      && bpt->type != bp_catch_vfork
      && bpt->type != bp_catch_vfork
      && bpt->type != bp_catch_exec)
      && bpt->type != bp_catch_exec)
    {
    {
      ALL_BREAKPOINTS (b)
      ALL_BREAKPOINTS (b)
        if (b->address == bpt->address
        if (b->address == bpt->address
            && b->section == bpt->section
            && b->section == bpt->section
            && !b->duplicate
            && !b->duplicate
            && b->enable != disabled
            && b->enable != disabled
            && b->enable != shlib_disabled
            && b->enable != shlib_disabled
            && b->enable != call_disabled)
            && b->enable != call_disabled)
        {
        {
          int val;
          int val;
 
 
          /* We should never reach this point if there is a permanent
          /* We should never reach this point if there is a permanent
             breakpoint at the same address as the one being deleted.
             breakpoint at the same address as the one being deleted.
             If there is a permanent breakpoint somewhere, it should
             If there is a permanent breakpoint somewhere, it should
             always be the only one inserted.  */
             always be the only one inserted.  */
          if (b->enable == permanent)
          if (b->enable == permanent)
            internal_error ("another breakpoint was inserted on top of "
            internal_error ("another breakpoint was inserted on top of "
                            "a permanent breakpoint");
                            "a permanent breakpoint");
 
 
          if (b->type == bp_hardware_breakpoint)
          if (b->type == bp_hardware_breakpoint)
            val = target_insert_hw_breakpoint (b->address, b->shadow_contents);
            val = target_insert_hw_breakpoint (b->address, b->shadow_contents);
          else
          else
            val = target_insert_breakpoint (b->address, b->shadow_contents);
            val = target_insert_breakpoint (b->address, b->shadow_contents);
 
 
          if (val != 0)
          if (val != 0)
            {
            {
              target_terminal_ours_for_output ();
              target_terminal_ours_for_output ();
              warning ("Cannot insert breakpoint %d:", b->number);
              warning ("Cannot insert breakpoint %d:", b->number);
              memory_error (val, b->address);   /* which bombs us out */
              memory_error (val, b->address);   /* which bombs us out */
            }
            }
          else
          else
            b->inserted = 1;
            b->inserted = 1;
        }
        }
    }
    }
 
 
  free_command_lines (&bpt->commands);
  free_command_lines (&bpt->commands);
  if (bpt->cond)
  if (bpt->cond)
    free (bpt->cond);
    free (bpt->cond);
  if (bpt->cond_string != NULL)
  if (bpt->cond_string != NULL)
    free (bpt->cond_string);
    free (bpt->cond_string);
  if (bpt->addr_string != NULL)
  if (bpt->addr_string != NULL)
    free (bpt->addr_string);
    free (bpt->addr_string);
  if (bpt->exp != NULL)
  if (bpt->exp != NULL)
    free (bpt->exp);
    free (bpt->exp);
  if (bpt->exp_string != NULL)
  if (bpt->exp_string != NULL)
    free (bpt->exp_string);
    free (bpt->exp_string);
  if (bpt->val != NULL)
  if (bpt->val != NULL)
    value_free (bpt->val);
    value_free (bpt->val);
  if (bpt->source_file != NULL)
  if (bpt->source_file != NULL)
    free (bpt->source_file);
    free (bpt->source_file);
  if (bpt->dll_pathname != NULL)
  if (bpt->dll_pathname != NULL)
    free (bpt->dll_pathname);
    free (bpt->dll_pathname);
  if (bpt->triggered_dll_pathname != NULL)
  if (bpt->triggered_dll_pathname != NULL)
    free (bpt->triggered_dll_pathname);
    free (bpt->triggered_dll_pathname);
  if (bpt->exec_pathname != NULL)
  if (bpt->exec_pathname != NULL)
    free (bpt->exec_pathname);
    free (bpt->exec_pathname);
 
 
  /* Be sure no bpstat's are pointing at it after it's been freed.  */
  /* Be sure no bpstat's are pointing at it after it's been freed.  */
  /* FIXME, how can we find all bpstat's?
  /* FIXME, how can we find all bpstat's?
     We just check stop_bpstat for now.  */
     We just check stop_bpstat for now.  */
  for (bs = stop_bpstat; bs; bs = bs->next)
  for (bs = stop_bpstat; bs; bs = bs->next)
    if (bs->breakpoint_at == bpt)
    if (bs->breakpoint_at == bpt)
      {
      {
        bs->breakpoint_at = NULL;
        bs->breakpoint_at = NULL;
 
 
        /* we'd call bpstat_clear_actions, but that free's stuff and due
        /* we'd call bpstat_clear_actions, but that free's stuff and due
           to the multiple pointers pointing to one item with no
           to the multiple pointers pointing to one item with no
           reference counts found anywhere through out the bpstat's (how
           reference counts found anywhere through out the bpstat's (how
           do you spell fragile?), we don't want to free things twice --
           do you spell fragile?), we don't want to free things twice --
           better a memory leak than a corrupt malloc pool! */
           better a memory leak than a corrupt malloc pool! */
        bs->commands = NULL;
        bs->commands = NULL;
        bs->old_val = NULL;
        bs->old_val = NULL;
      }
      }
  /* On the chance that someone will soon try again to delete this same
  /* On the chance that someone will soon try again to delete this same
     bp, we mark it as deleted before freeing its storage. */
     bp, we mark it as deleted before freeing its storage. */
  bpt->type = bp_none;
  bpt->type = bp_none;
 
 
  free ((PTR) bpt);
  free ((PTR) bpt);
}
}
 
 
void
void
delete_command (arg, from_tty)
delete_command (arg, from_tty)
     char *arg;
     char *arg;
     int from_tty;
     int from_tty;
{
{
  struct breakpoint *b, *temp;
  struct breakpoint *b, *temp;
 
 
  if (arg == 0)
  if (arg == 0)
    {
    {
      int breaks_to_delete = 0;
      int breaks_to_delete = 0;
 
 
      /* Delete all breakpoints if no argument.
      /* Delete all breakpoints if no argument.
         Do not delete internal or call-dummy breakpoints, these
         Do not delete internal or call-dummy breakpoints, these
         have to be deleted with an explicit breakpoint number argument.  */
         have to be deleted with an explicit breakpoint number argument.  */
      ALL_BREAKPOINTS (b)
      ALL_BREAKPOINTS (b)
      {
      {
        if (b->type != bp_call_dummy &&
        if (b->type != bp_call_dummy &&
            b->type != bp_shlib_event &&
            b->type != bp_shlib_event &&
            b->type != bp_thread_event &&
            b->type != bp_thread_event &&
            b->number >= 0)
            b->number >= 0)
          breaks_to_delete = 1;
          breaks_to_delete = 1;
      }
      }
 
 
      /* Ask user only if there are some breakpoints to delete.  */
      /* Ask user only if there are some breakpoints to delete.  */
      if (!from_tty
      if (!from_tty
          || (breaks_to_delete && query ("Delete all breakpoints? ")))
          || (breaks_to_delete && query ("Delete all breakpoints? ")))
        {
        {
          ALL_BREAKPOINTS_SAFE (b, temp)
          ALL_BREAKPOINTS_SAFE (b, temp)
          {
          {
            if (b->type != bp_call_dummy &&
            if (b->type != bp_call_dummy &&
                b->type != bp_shlib_event &&
                b->type != bp_shlib_event &&
                b->type != bp_thread_event &&
                b->type != bp_thread_event &&
                b->number >= 0)
                b->number >= 0)
              delete_breakpoint (b);
              delete_breakpoint (b);
          }
          }
        }
        }
    }
    }
  else
  else
    map_breakpoint_numbers (arg, delete_breakpoint);
    map_breakpoint_numbers (arg, delete_breakpoint);
}
}
 
 
/* Reset a breakpoint given it's struct breakpoint * BINT.
/* Reset a breakpoint given it's struct breakpoint * BINT.
   The value we return ends up being the return value from catch_errors.
   The value we return ends up being the return value from catch_errors.
   Unused in this case.  */
   Unused in this case.  */
 
 
static int
static int
breakpoint_re_set_one (bint)
breakpoint_re_set_one (bint)
     PTR bint;
     PTR bint;
{
{
  /* get past catch_errs */
  /* get past catch_errs */
  struct breakpoint *b = (struct breakpoint *) bint;
  struct breakpoint *b = (struct breakpoint *) bint;
  struct value *mark;
  struct value *mark;
  int i;
  int i;
  struct symtabs_and_lines sals;
  struct symtabs_and_lines sals;
  char *s;
  char *s;
  enum enable save_enable;
  enum enable save_enable;
 
 
  switch (b->type)
  switch (b->type)
    {
    {
    case bp_none:
    case bp_none:
      warning ("attempted to reset apparently deleted breakpoint #%d?",
      warning ("attempted to reset apparently deleted breakpoint #%d?",
               b->number);
               b->number);
      return 0;
      return 0;
    case bp_breakpoint:
    case bp_breakpoint:
    case bp_hardware_breakpoint:
    case bp_hardware_breakpoint:
    case bp_catch_load:
    case bp_catch_load:
    case bp_catch_unload:
    case bp_catch_unload:
      if (b->addr_string == NULL)
      if (b->addr_string == NULL)
        {
        {
          /* Anything without a string can't be re-set. */
          /* Anything without a string can't be re-set. */
          delete_breakpoint (b);
          delete_breakpoint (b);
          return 0;
          return 0;
        }
        }
      /* In case we have a problem, disable this breakpoint.  We'll restore
      /* In case we have a problem, disable this breakpoint.  We'll restore
         its status if we succeed.  */
         its status if we succeed.  */
      save_enable = b->enable;
      save_enable = b->enable;
      b->enable = disabled;
      b->enable = disabled;
 
 
      set_language (b->language);
      set_language (b->language);
      input_radix = b->input_radix;
      input_radix = b->input_radix;
      s = b->addr_string;
      s = b->addr_string;
      sals = decode_line_1 (&s, 1, (struct symtab *) NULL, 0, (char ***) NULL);
      sals = decode_line_1 (&s, 1, (struct symtab *) NULL, 0, (char ***) NULL);
      for (i = 0; i < sals.nelts; i++)
      for (i = 0; i < sals.nelts; i++)
        {
        {
          resolve_sal_pc (&sals.sals[i]);
          resolve_sal_pc (&sals.sals[i]);
 
 
          /* Reparse conditions, they might contain references to the
          /* Reparse conditions, they might contain references to the
             old symtab.  */
             old symtab.  */
          if (b->cond_string != NULL)
          if (b->cond_string != NULL)
            {
            {
              s = b->cond_string;
              s = b->cond_string;
              if (b->cond)
              if (b->cond)
                free ((PTR) b->cond);
                free ((PTR) b->cond);
              b->cond = parse_exp_1 (&s, block_for_pc (sals.sals[i].pc), 0);
              b->cond = parse_exp_1 (&s, block_for_pc (sals.sals[i].pc), 0);
            }
            }
 
 
          /* We need to re-set the breakpoint if the address changes... */
          /* We need to re-set the breakpoint if the address changes... */
          if (b->address != sals.sals[i].pc
          if (b->address != sals.sals[i].pc
          /* ...or new and old breakpoints both have source files, and
          /* ...or new and old breakpoints both have source files, and
             the source file name or the line number changes...  */
             the source file name or the line number changes...  */
              || (b->source_file != NULL
              || (b->source_file != NULL
                  && sals.sals[i].symtab != NULL
                  && sals.sals[i].symtab != NULL
                  && (!STREQ (b->source_file, sals.sals[i].symtab->filename)
                  && (!STREQ (b->source_file, sals.sals[i].symtab->filename)
                      || b->line_number != sals.sals[i].line)
                      || b->line_number != sals.sals[i].line)
              )
              )
          /* ...or we switch between having a source file and not having
          /* ...or we switch between having a source file and not having
             one.  */
             one.  */
              || ((b->source_file == NULL) != (sals.sals[i].symtab == NULL))
              || ((b->source_file == NULL) != (sals.sals[i].symtab == NULL))
            )
            )
            {
            {
              if (b->source_file != NULL)
              if (b->source_file != NULL)
                free (b->source_file);
                free (b->source_file);
              if (sals.sals[i].symtab == NULL)
              if (sals.sals[i].symtab == NULL)
                b->source_file = NULL;
                b->source_file = NULL;
              else
              else
                b->source_file =
                b->source_file =
                  savestring (sals.sals[i].symtab->filename,
                  savestring (sals.sals[i].symtab->filename,
                              strlen (sals.sals[i].symtab->filename));
                              strlen (sals.sals[i].symtab->filename));
              b->line_number = sals.sals[i].line;
              b->line_number = sals.sals[i].line;
              b->address = sals.sals[i].pc;
              b->address = sals.sals[i].pc;
 
 
              /* Used to check for duplicates here, but that can
              /* Used to check for duplicates here, but that can
                 cause trouble, as it doesn't check for disable
                 cause trouble, as it doesn't check for disable
                 breakpoints. */
                 breakpoints. */
 
 
              mention (b);
              mention (b);
 
 
              /* Might be better to do this just once per breakpoint_re_set,
              /* Might be better to do this just once per breakpoint_re_set,
                 rather than once for every breakpoint.  */
                 rather than once for every breakpoint.  */
              breakpoints_changed ();
              breakpoints_changed ();
            }
            }
          b->section = sals.sals[i].section;
          b->section = sals.sals[i].section;
          b->enable = save_enable;      /* Restore it, this worked. */
          b->enable = save_enable;      /* Restore it, this worked. */
 
 
 
 
          /* Now that this is re-enabled, check_duplicates
          /* Now that this is re-enabled, check_duplicates
             can be used. */
             can be used. */
          check_duplicates (b->address, b->section);
          check_duplicates (b->address, b->section);
 
 
        }
        }
      free ((PTR) sals.sals);
      free ((PTR) sals.sals);
      break;
      break;
 
 
    case bp_watchpoint:
    case bp_watchpoint:
    case bp_hardware_watchpoint:
    case bp_hardware_watchpoint:
    case bp_read_watchpoint:
    case bp_read_watchpoint:
    case bp_access_watchpoint:
    case bp_access_watchpoint:
      innermost_block = NULL;
      innermost_block = NULL;
      /* The issue arises of what context to evaluate this in.  The
      /* The issue arises of what context to evaluate this in.  The
         same one as when it was set, but what does that mean when
         same one as when it was set, but what does that mean when
         symbols have been re-read?  We could save the filename and
         symbols have been re-read?  We could save the filename and
         functionname, but if the context is more local than that, the
         functionname, but if the context is more local than that, the
         best we could do would be something like how many levels deep
         best we could do would be something like how many levels deep
         and which index at that particular level, but that's going to
         and which index at that particular level, but that's going to
         be less stable than filenames or function names.  */
         be less stable than filenames or function names.  */
 
 
      /* So for now, just use a global context.  */
      /* So for now, just use a global context.  */
      if (b->exp)
      if (b->exp)
        free ((PTR) b->exp);
        free ((PTR) b->exp);
      b->exp = parse_expression (b->exp_string);
      b->exp = parse_expression (b->exp_string);
      b->exp_valid_block = innermost_block;
      b->exp_valid_block = innermost_block;
      mark = value_mark ();
      mark = value_mark ();
      if (b->val)
      if (b->val)
        value_free (b->val);
        value_free (b->val);
      b->val = evaluate_expression (b->exp);
      b->val = evaluate_expression (b->exp);
      release_value (b->val);
      release_value (b->val);
      if (VALUE_LAZY (b->val))
      if (VALUE_LAZY (b->val))
        value_fetch_lazy (b->val);
        value_fetch_lazy (b->val);
 
 
      if (b->cond_string != NULL)
      if (b->cond_string != NULL)
        {
        {
          s = b->cond_string;
          s = b->cond_string;
          if (b->cond)
          if (b->cond)
            free ((PTR) b->cond);
            free ((PTR) b->cond);
          b->cond = parse_exp_1 (&s, (struct block *) 0, 0);
          b->cond = parse_exp_1 (&s, (struct block *) 0, 0);
        }
        }
      if (b->enable == enabled)
      if (b->enable == enabled)
        mention (b);
        mention (b);
      value_free_to_mark (mark);
      value_free_to_mark (mark);
      break;
      break;
    case bp_catch_catch:
    case bp_catch_catch:
    case bp_catch_throw:
    case bp_catch_throw:
      break;
      break;
      /* We needn't really do anything to reset these, since the mask
      /* We needn't really do anything to reset these, since the mask
         that requests them is unaffected by e.g., new libraries being
         that requests them is unaffected by e.g., new libraries being
         loaded. */
         loaded. */
    case bp_catch_fork:
    case bp_catch_fork:
    case bp_catch_vfork:
    case bp_catch_vfork:
    case bp_catch_exec:
    case bp_catch_exec:
      break;
      break;
 
 
    default:
    default:
      printf_filtered ("Deleting unknown breakpoint type %d\n", b->type);
      printf_filtered ("Deleting unknown breakpoint type %d\n", b->type);
      /* fall through */
      /* fall through */
      /* Delete longjmp breakpoints, they will be reset later by
      /* Delete longjmp breakpoints, they will be reset later by
         breakpoint_re_set.  */
         breakpoint_re_set.  */
    case bp_longjmp:
    case bp_longjmp:
    case bp_longjmp_resume:
    case bp_longjmp_resume:
      delete_breakpoint (b);
      delete_breakpoint (b);
      break;
      break;
 
 
      /* This breakpoint is special, it's set up when the inferior
      /* This breakpoint is special, it's set up when the inferior
         starts and we really don't want to touch it.  */
         starts and we really don't want to touch it.  */
    case bp_shlib_event:
    case bp_shlib_event:
 
 
      /* Like bp_shlib_event, this breakpoint type is special.
      /* Like bp_shlib_event, this breakpoint type is special.
         Once it is set up, we do not want to touch it.  */
         Once it is set up, we do not want to touch it.  */
    case bp_thread_event:
    case bp_thread_event:
 
 
      /* Keep temporary breakpoints, which can be encountered when we step
      /* Keep temporary breakpoints, which can be encountered when we step
         over a dlopen call and SOLIB_ADD is resetting the breakpoints.
         over a dlopen call and SOLIB_ADD is resetting the breakpoints.
         Otherwise these should have been blown away via the cleanup chain
         Otherwise these should have been blown away via the cleanup chain
         or by breakpoint_init_inferior when we rerun the executable.  */
         or by breakpoint_init_inferior when we rerun the executable.  */
    case bp_until:
    case bp_until:
    case bp_finish:
    case bp_finish:
    case bp_watchpoint_scope:
    case bp_watchpoint_scope:
    case bp_call_dummy:
    case bp_call_dummy:
    case bp_step_resume:
    case bp_step_resume:
      break;
      break;
    }
    }
 
 
  return 0;
  return 0;
}
}
 
 
/* Re-set all breakpoints after symbols have been re-loaded.  */
/* Re-set all breakpoints after symbols have been re-loaded.  */
void
void
breakpoint_re_set ()
breakpoint_re_set ()
{
{
  struct breakpoint *b, *temp;
  struct breakpoint *b, *temp;
  enum language save_language;
  enum language save_language;
  int save_input_radix;
  int save_input_radix;
  static char message1[] = "Error in re-setting breakpoint %d:\n";
  static char message1[] = "Error in re-setting breakpoint %d:\n";
  char message[sizeof (message1) + 30 /* slop */ ];
  char message[sizeof (message1) + 30 /* slop */ ];
 
 
  save_language = current_language->la_language;
  save_language = current_language->la_language;
  save_input_radix = input_radix;
  save_input_radix = input_radix;
  ALL_BREAKPOINTS_SAFE (b, temp)
  ALL_BREAKPOINTS_SAFE (b, temp)
  {
  {
    /* Format possible error msg */
    /* Format possible error msg */
    sprintf (message, message1, b->number);
    sprintf (message, message1, b->number);
    catch_errors (breakpoint_re_set_one, b, message, RETURN_MASK_ALL);
    catch_errors (breakpoint_re_set_one, b, message, RETURN_MASK_ALL);
  }
  }
  set_language (save_language);
  set_language (save_language);
  input_radix = save_input_radix;
  input_radix = save_input_radix;
 
 
#ifdef GET_LONGJMP_TARGET
#ifdef GET_LONGJMP_TARGET
  create_longjmp_breakpoint ("longjmp");
  create_longjmp_breakpoint ("longjmp");
  create_longjmp_breakpoint ("_longjmp");
  create_longjmp_breakpoint ("_longjmp");
  create_longjmp_breakpoint ("siglongjmp");
  create_longjmp_breakpoint ("siglongjmp");
  create_longjmp_breakpoint ("_siglongjmp");
  create_longjmp_breakpoint ("_siglongjmp");
  create_longjmp_breakpoint (NULL);
  create_longjmp_breakpoint (NULL);
#endif
#endif
 
 
#if 0
#if 0
  /* Took this out (temporarily at least), since it produces an extra
  /* Took this out (temporarily at least), since it produces an extra
     blank line at startup. This messes up the gdbtests. -PB */
     blank line at startup. This messes up the gdbtests. -PB */
  /* Blank line to finish off all those mention() messages we just printed.  */
  /* Blank line to finish off all those mention() messages we just printed.  */
  printf_filtered ("\n");
  printf_filtered ("\n");
#endif
#endif
}
}


/* Set ignore-count of breakpoint number BPTNUM to COUNT.
/* Set ignore-count of breakpoint number BPTNUM to COUNT.
   If from_tty is nonzero, it prints a message to that effect,
   If from_tty is nonzero, it prints a message to that effect,
   which ends with a period (no newline).  */
   which ends with a period (no newline).  */
 
 
/* Reset the thread number of this breakpoint:
/* Reset the thread number of this breakpoint:
 
 
   - If the breakpoint is for all threads, leave it as-is.
   - If the breakpoint is for all threads, leave it as-is.
   - Else, reset it to the current thread for inferior_pid. */
   - Else, reset it to the current thread for inferior_pid. */
void
void
breakpoint_re_set_thread (b)
breakpoint_re_set_thread (b)
     struct breakpoint *b;
     struct breakpoint *b;
{
{
  if (b->thread != -1)
  if (b->thread != -1)
    {
    {
      if (in_thread_list (inferior_pid))
      if (in_thread_list (inferior_pid))
        b->thread = pid_to_thread_id (inferior_pid);
        b->thread = pid_to_thread_id (inferior_pid);
    }
    }
}
}
 
 
void
void
set_ignore_count (bptnum, count, from_tty)
set_ignore_count (bptnum, count, from_tty)
     int bptnum, count, from_tty;
     int bptnum, count, from_tty;
{
{
  register struct breakpoint *b;
  register struct breakpoint *b;
 
 
  if (count < 0)
  if (count < 0)
    count = 0;
    count = 0;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    if (b->number == bptnum)
    if (b->number == bptnum)
    {
    {
      b->ignore_count = count;
      b->ignore_count = count;
      if (!from_tty)
      if (!from_tty)
        return;
        return;
      else if (count == 0)
      else if (count == 0)
        printf_filtered ("Will stop next time breakpoint %d is reached.",
        printf_filtered ("Will stop next time breakpoint %d is reached.",
                         bptnum);
                         bptnum);
      else if (count == 1)
      else if (count == 1)
        printf_filtered ("Will ignore next crossing of breakpoint %d.",
        printf_filtered ("Will ignore next crossing of breakpoint %d.",
                         bptnum);
                         bptnum);
      else
      else
        printf_filtered ("Will ignore next %d crossings of breakpoint %d.",
        printf_filtered ("Will ignore next %d crossings of breakpoint %d.",
                         count, bptnum);
                         count, bptnum);
      breakpoints_changed ();
      breakpoints_changed ();
      return;
      return;
    }
    }
 
 
  error ("No breakpoint number %d.", bptnum);
  error ("No breakpoint number %d.", bptnum);
}
}
 
 
/* Clear the ignore counts of all breakpoints.  */
/* Clear the ignore counts of all breakpoints.  */
void
void
breakpoint_clear_ignore_counts ()
breakpoint_clear_ignore_counts ()
{
{
  struct breakpoint *b;
  struct breakpoint *b;
 
 
  ALL_BREAKPOINTS (b)
  ALL_BREAKPOINTS (b)
    b->ignore_count = 0;
    b->ignore_count = 0;
}
}
 
 
/* Command to set ignore-count of breakpoint N to COUNT.  */
/* Command to set ignore-count of breakpoint N to COUNT.  */
 
 
static void
static void
ignore_command (args, from_tty)
ignore_command (args, from_tty)
     char *args;
     char *args;
     int from_tty;
     int from_tty;
{
{
  char *p = args;
  char *p = args;
  register int num;
  register int num;
 
 
  if (p == 0)
  if (p == 0)
    error_no_arg ("a breakpoint number");
    error_no_arg ("a breakpoint number");
 
 
  num = get_number (&p);
  num = get_number (&p);
  if (num == 0)
  if (num == 0)
    error ("bad breakpoint number: '%s'", args);
    error ("bad breakpoint number: '%s'", args);
  if (*p == 0)
  if (*p == 0)
    error ("Second argument (specified ignore-count) is missing.");
    error ("Second argument (specified ignore-count) is missing.");
 
 
  set_ignore_count (num,
  set_ignore_count (num,
                    longest_to_int (value_as_long (parse_and_eval (p))),
                    longest_to_int (value_as_long (parse_and_eval (p))),
                    from_tty);
                    from_tty);
  printf_filtered ("\n");
  printf_filtered ("\n");
  breakpoints_changed ();
  breakpoints_changed ();
}
}


/* Call FUNCTION on each of the breakpoints
/* Call FUNCTION on each of the breakpoints
   whose numbers are given in ARGS.  */
   whose numbers are given in ARGS.  */
 
 
static void
static void
map_breakpoint_numbers (args, function)
map_breakpoint_numbers (args, function)
     char *args;
     char *args;
     void (*function) PARAMS ((struct breakpoint *));
     void (*function) PARAMS ((struct breakpoint *));
{
{
  register char *p = args;
  register char *p = args;
  char *p1;
  char *p1;
  register int num;
  register int num;
  register struct breakpoint *b, *tmp;
  register struct breakpoint *b, *tmp;
  int match;
  int match;
 
 
  if (p == 0)
  if (p == 0)
    error_no_arg ("one or more breakpoint numbers");
    error_no_arg ("one or more breakpoint numbers");
 
 
  while (*p)
  while (*p)
    {
    {
      match = 0;
      match = 0;
      p1 = p;
      p1 = p;
 
 
      num = get_number_or_range (&p1);
      num = get_number_or_range (&p1);
      if (num == 0)
      if (num == 0)
        {
        {
          warning ("bad breakpoint number at or near '%s'", p);
          warning ("bad breakpoint number at or near '%s'", p);
        }
        }
      else
      else
        {
        {
          ALL_BREAKPOINTS_SAFE (b, tmp)
          ALL_BREAKPOINTS_SAFE (b, tmp)
            if (b->number == num)
            if (b->number == num)
              {
              {
                struct breakpoint *related_breakpoint = b->related_breakpoint;
                struct breakpoint *related_breakpoint = b->related_breakpoint;
                match = 1;
                match = 1;
                function (b);
                function (b);
                if (related_breakpoint)
                if (related_breakpoint)
                  function (related_breakpoint);
                  function (related_breakpoint);
                break;
                break;
              }
              }
          if (match == 0)
          if (match == 0)
            printf_unfiltered ("No breakpoint number %d.\n", num);
            printf_unfiltered ("No breakpoint number %d.\n", num);
        }
        }
      p = p1;
      p = p1;
    }
    }
}
}
 
 
void
void
disable_breakpoint (bpt)
disable_breakpoint (bpt)
     struct breakpoint *bpt;
     struct breakpoint *bpt;
{
{
  /* Never disable a watchpoint scope breakpoint; we want to
  /* Never disable a watchpoint scope breakpoint; we want to
     hit them when we leave scope so we can delete both the
     hit them when we leave scope so we can delete both the
     watchpoint and its scope breakpoint at that time.  */
     watchpoint and its scope breakpoint at that time.  */
  if (bpt->type == bp_watchpoint_scope)
  if (bpt->type == bp_watchpoint_scope)
    return;
    return;
 
 
  /* You can't disable permanent breakpoints.  */
  /* You can't disable permanent breakpoints.  */
  if (bpt->enable == permanent)
  if (bpt->enable == permanent)
    return;
    return;
 
 
  bpt->enable = disabled;
  bpt->enable = disabled;
 
 
  check_duplicates (bpt->address, bpt->section);
  check_duplicates (bpt->address, bpt->section);
 
 
  if (modify_breakpoint_hook)
  if (modify_breakpoint_hook)
    modify_breakpoint_hook (bpt);
    modify_breakpoint_hook (bpt);
  breakpoint_modify_event (bpt->number);
  breakpoint_modify_event (bpt->number);
}
}
 
 
/* ARGSUSED */
/* ARGSUSED */
static void
static void
disable_command (args, from_tty)
disable_command (args, from_tty)
     char *args;
     char *args;
     int from_tty;
     int from_tty;
{
{
  register struct breakpoint *bpt;
  register struct breakpoint *bpt;
  if (args == 0)
  if (args == 0)
    ALL_BREAKPOINTS (bpt)
    ALL_BREAKPOINTS (bpt)
      switch (bpt->type)
      switch (bpt->type)
      {
      {
      case bp_none:
      case bp_none:
        warning ("attempted to disable apparently deleted breakpoint #%d?",
        warning ("attempted to disable apparently deleted breakpoint #%d?",
                 bpt->number);
                 bpt->number);
        continue;
        continue;
      case bp_breakpoint:
      case bp_breakpoint:
      case bp_catch_load:
      case bp_catch_load:
      case bp_catch_unload:
      case bp_catch_unload:
      case bp_catch_fork:
      case bp_catch_fork:
      case bp_catch_vfork:
      case bp_catch_vfork:
      case bp_catch_exec:
      case bp_catch_exec:
      case bp_catch_catch:
      case bp_catch_catch:
      case bp_catch_throw:
      case bp_catch_throw:
      case bp_hardware_breakpoint:
      case bp_hardware_breakpoint:
      case bp_watchpoint:
      case bp_watchpoint:
      case bp_hardware_watchpoint:
      case bp_hardware_watchpoint:
      case bp_read_watchpoint:
      case bp_read_watchpoint:
      case bp_access_watchpoint:
      case bp_access_watchpoint:
        disable_breakpoint (bpt);
        disable_breakpoint (bpt);
      default:
      default:
        continue;
        continue;
      }
      }
  else
  else
    map_breakpoint_numbers (args, disable_breakpoint);
    map_breakpoint_numbers (args, disable_breakpoint);
}
}
 
 
static void
static void
do_enable_breakpoint (bpt, disposition)
do_enable_breakpoint (bpt, disposition)
     struct breakpoint *bpt;
     struct breakpoint *bpt;
     enum bpdisp disposition;
     enum bpdisp disposition;
{
{
  struct frame_info *save_selected_frame = NULL;
  struct frame_info *save_selected_frame = NULL;
  int save_selected_frame_level = -1;
  int save_selected_frame_level = -1;
  int target_resources_ok, other_type_used;
  int target_resources_ok, other_type_used;
  struct value *mark;
  struct value *mark;
 
 
  if (bpt->type == bp_hardware_breakpoint)
  if (bpt->type == bp_hardware_breakpoint)
    {
    {
      int i;
      int i;
      i = hw_breakpoint_used_count ();
      i = hw_breakpoint_used_count ();
      target_resources_ok =
      target_resources_ok =
        TARGET_CAN_USE_HARDWARE_WATCHPOINT (bp_hardware_breakpoint,
        TARGET_CAN_USE_HARDWARE_WATCHPOINT (bp_hardware_breakpoint,
                                            i + 1, 0);
                                            i + 1, 0);
      if (target_resources_ok == 0)
      if (target_resources_ok == 0)
        error ("No hardware breakpoint support in the target.");
        error ("No hardware breakpoint support in the target.");
      else if (target_resources_ok < 0)
      else if (target_resources_ok < 0)
        error ("Hardware breakpoints used exceeds limit.");
        error ("Hardware breakpoints used exceeds limit.");
    }
    }
 
 
  if (bpt->enable != permanent)
  if (bpt->enable != permanent)
    bpt->enable = enabled;
    bpt->enable = enabled;
  bpt->disposition = disposition;
  bpt->disposition = disposition;
  check_duplicates (bpt->address, bpt->section);
  check_duplicates (bpt->address, bpt->section);
  breakpoints_changed ();
  breakpoints_changed ();
 
 
  if (bpt->type == bp_watchpoint ||
  if (bpt->type == bp_watchpoint ||
      bpt->type == bp_hardware_watchpoint ||
      bpt->type == bp_hardware_watchpoint ||
      bpt->type == bp_read_watchpoint ||
      bpt->type == bp_read_watchpoint ||
      bpt->type == bp_access_watchpoint)
      bpt->type == bp_access_watchpoint)
    {
    {
      if (bpt->exp_valid_block != NULL)
      if (bpt->exp_valid_block != NULL)
        {
        {
          struct frame_info *fr =
          struct frame_info *fr =
 
 
          /* Ensure that we have the current frame.  Else, this
          /* Ensure that we have the current frame.  Else, this
             next query may pessimistically be answered as, "No,
             next query may pessimistically be answered as, "No,
             not within current scope". */
             not within current scope". */
          get_current_frame ();
          get_current_frame ();
          fr = find_frame_addr_in_frame_chain (bpt->watchpoint_frame);
          fr = find_frame_addr_in_frame_chain (bpt->watchpoint_frame);
          if (fr == NULL)
          if (fr == NULL)
            {
            {
              printf_filtered ("\
              printf_filtered ("\
Cannot enable watchpoint %d because the block in which its expression\n\
Cannot enable watchpoint %d because the block in which its expression\n\
is valid is not currently in scope.\n", bpt->number);
is valid is not currently in scope.\n", bpt->number);
              bpt->enable = disabled;
              bpt->enable = disabled;
              return;
              return;
            }
            }
 
 
          save_selected_frame = selected_frame;
          save_selected_frame = selected_frame;
          save_selected_frame_level = selected_frame_level;
          save_selected_frame_level = selected_frame_level;
          select_frame (fr, -1);
          select_frame (fr, -1);
        }
        }
 
 
      value_free (bpt->val);
      value_free (bpt->val);
      mark = value_mark ();
      mark = value_mark ();
      bpt->val = evaluate_expression (bpt->exp);
      bpt->val = evaluate_expression (bpt->exp);
      release_value (bpt->val);
      release_value (bpt->val);
      if (VALUE_LAZY (bpt->val))
      if (VALUE_LAZY (bpt->val))
        value_fetch_lazy (bpt->val);
        value_fetch_lazy (bpt->val);
 
 
      if (bpt->type == bp_hardware_watchpoint ||
      if (bpt->type == bp_hardware_watchpoint ||
          bpt->type == bp_read_watchpoint ||
          bpt->type == bp_read_watchpoint ||
          bpt->type == bp_access_watchpoint)
          bpt->type == bp_access_watchpoint)
        {
        {
          int i = hw_watchpoint_used_count (bpt->type, &other_type_used);
          int i = hw_watchpoint_used_count (bpt->type, &other_type_used);
          int mem_cnt = can_use_hardware_watchpoint (bpt->val);
          int mem_cnt = can_use_hardware_watchpoint (bpt->val);
 
 
          /* Hack around 'unused var' error for some targets here */
          /* Hack around 'unused var' error for some targets here */
          (void) mem_cnt, i;
          (void) mem_cnt, i;
          target_resources_ok = TARGET_CAN_USE_HARDWARE_WATCHPOINT (
          target_resources_ok = TARGET_CAN_USE_HARDWARE_WATCHPOINT (
                                   bpt->type, i + mem_cnt, other_type_used);
                                   bpt->type, i + mem_cnt, other_type_used);
          /* we can consider of type is bp_hardware_watchpoint, convert to
          /* we can consider of type is bp_hardware_watchpoint, convert to
             bp_watchpoint in the following condition */
             bp_watchpoint in the following condition */
          if (target_resources_ok < 0)
          if (target_resources_ok < 0)
            {
            {
              printf_filtered ("\
              printf_filtered ("\
Cannot enable watchpoint %d because target watch resources\n\
Cannot enable watchpoint %d because target watch resources\n\
have been allocated for other watchpoints.\n", bpt->number);
have been allocated for other watchpoints.\n", bpt->number);
              bpt->enable = disabled;
              bpt->enable = disabled;
              value_free_to_mark (mark);
              value_free_to_mark (mark);
              return;
              return;
            }
            }
        }
        }
 
 
      if (save_selected_frame_level >= 0)
      if (save_selected_frame_level >= 0)
        select_frame (save_selected_frame, save_selected_frame_level);
        select_frame (save_selected_frame, save_selected_frame_level);
      value_free_to_mark (mark);
      value_free_to_mark (mark);
    }
    }
  if (modify_breakpoint_hook)
  if (modify_breakpoint_hook)
    modify_breakpoint_hook (bpt);
    modify_breakpoint_hook (bpt);
  breakpoint_modify_event (bpt->number);
  breakpoint_modify_event (bpt->number);
}
}
 
 
void
void
enable_breakpoint (bpt)
enable_breakpoint (bpt)
     struct breakpoint *bpt;
     struct breakpoint *bpt;
{
{
  do_enable_breakpoint (bpt, bpt->disposition);
  do_enable_breakpoint (bpt, bpt->disposition);
}
}
 
 
/* The enable command enables the specified breakpoints (or all defined
/* The enable command enables the specified breakpoints (or all defined
   breakpoints) so they once again become (or continue to be) effective
   breakpoints) so they once again become (or continue to be) effective
   in stopping the inferior. */
   in stopping the inferior. */
 
 
/* ARGSUSED */
/* ARGSUSED */
static void
static void
enable_command (args, from_tty)
enable_command (args, from_tty)
     char *args;
     char *args;
     int from_tty;
     int from_tty;
{
{
  register struct breakpoint *bpt;
  register struct breakpoint *bpt;
  if (args == 0)
  if (args == 0)
    ALL_BREAKPOINTS (bpt)
    ALL_BREAKPOINTS (bpt)
      switch (bpt->type)
      switch (bpt->type)
      {
      {
      case bp_none:
      case bp_none:
        warning ("attempted to enable apparently deleted breakpoint #%d?",
        warning ("attempted to enable apparently deleted breakpoint #%d?",
                 bpt->number);
                 bpt->number);
        continue;
        continue;
      case bp_breakpoint:
      case bp_breakpoint:
      case bp_catch_load:
      case bp_catch_load:
      case bp_catch_unload:
      case bp_catch_unload:
      case bp_catch_fork:
      case bp_catch_fork:
      case bp_catch_vfork:
      case bp_catch_vfork:
      case bp_catch_exec:
      case bp_catch_exec:
      case bp_catch_catch:
      case bp_catch_catch:
      case bp_catch_throw:
      case bp_catch_throw:
      case bp_hardware_breakpoint:
      case bp_hardware_breakpoint:
      case bp_watchpoint:
      case bp_watchpoint:
      case bp_hardware_watchpoint:
      case bp_hardware_watchpoint:
      case bp_read_watchpoint:
      case bp_read_watchpoint:
      case bp_access_watchpoint:
      case bp_access_watchpoint:
        enable_breakpoint (bpt);
        enable_breakpoint (bpt);
      default:
      default:
        continue;
        continue;
      }
      }
  else
  else
    map_breakpoint_numbers (args, enable_breakpoint);
    map_breakpoint_numbers (args, enable_breakpoint);
}
}
 
 
static void
static void
enable_once_breakpoint (bpt)
enable_once_breakpoint (bpt)
     struct breakpoint *bpt;
     struct breakpoint *bpt;
{
{
  do_enable_breakpoint (bpt, disable);
  do_enable_breakpoint (bpt, disable);
}
}
 
 
/* ARGSUSED */
/* ARGSUSED */
static void
static void
enable_once_command (args, from_tty)
enable_once_command (args, from_tty)
     char *args;
     char *args;
     int from_tty;
     int from_tty;
{
{
  map_breakpoint_numbers (args, enable_once_breakpoint);
  map_breakpoint_numbers (args, enable_once_breakpoint);
}
}
 
 
static void
static void
enable_delete_breakpoint (bpt)
enable_delete_breakpoint (bpt)
     struct breakpoint *bpt;
     struct breakpoint *bpt;
{
{
  do_enable_breakpoint (bpt, del);
  do_enable_breakpoint (bpt, del);
}
}
 
 
/* ARGSUSED */
/* ARGSUSED */
static void
static void
enable_delete_command (args, from_tty)
enable_delete_command (args, from_tty)
     char *args;
     char *args;
     int from_tty;
     int from_tty;
{
{
  map_breakpoint_numbers (args, enable_delete_breakpoint);
  map_breakpoint_numbers (args, enable_delete_breakpoint);
}
}


/* Use default_breakpoint_'s, or nothing if they aren't valid.  */
/* Use default_breakpoint_'s, or nothing if they aren't valid.  */
 
 
struct symtabs_and_lines
struct symtabs_and_lines
decode_line_spec_1 (string, funfirstline)
decode_line_spec_1 (string, funfirstline)
     char *string;
     char *string;
     int funfirstline;
     int funfirstline;
{
{
  struct symtabs_and_lines sals;
  struct symtabs_and_lines sals;
  if (string == 0)
  if (string == 0)
    error ("Empty line specification.");
    error ("Empty line specification.");
  if (default_breakpoint_valid)
  if (default_breakpoint_valid)
    sals = decode_line_1 (&string, funfirstline,
    sals = decode_line_1 (&string, funfirstline,
                          default_breakpoint_symtab,
                          default_breakpoint_symtab,
                          default_breakpoint_line,
                          default_breakpoint_line,
                          (char ***) NULL);
                          (char ***) NULL);
  else
  else
    sals = decode_line_1 (&string, funfirstline,
    sals = decode_line_1 (&string, funfirstline,
                          (struct symtab *) NULL, 0, (char ***) NULL);
                          (struct symtab *) NULL, 0, (char ***) NULL);
  if (*string)
  if (*string)
    error ("Junk at end of line specification: %s", string);
    error ("Junk at end of line specification: %s", string);
  return sals;
  return sals;
}
}


void
void
_initialize_breakpoint ()
_initialize_breakpoint ()
{
{
  struct cmd_list_element *c;
  struct cmd_list_element *c;
 
 
  breakpoint_chain = 0;
  breakpoint_chain = 0;
  /* Don't bother to call set_breakpoint_count.  $bpnum isn't useful
  /* Don't bother to call set_breakpoint_count.  $bpnum isn't useful
     before a breakpoint is set.  */
     before a breakpoint is set.  */
  breakpoint_count = 0;
  breakpoint_count = 0;
 
 
  add_com ("ignore", class_breakpoint, ignore_command,
  add_com ("ignore", class_breakpoint, ignore_command,
           "Set ignore-count of breakpoint number N to COUNT.\n\
           "Set ignore-count of breakpoint number N to COUNT.\n\
Usage is `ignore N COUNT'.");
Usage is `ignore N COUNT'.");
  if (xdb_commands)
  if (xdb_commands)
    add_com_alias ("bc", "ignore", class_breakpoint, 1);
    add_com_alias ("bc", "ignore", class_breakpoint, 1);
 
 
  add_com ("commands", class_breakpoint, commands_command,
  add_com ("commands", class_breakpoint, commands_command,
           "Set commands to be executed when a breakpoint is hit.\n\
           "Set commands to be executed when a breakpoint is hit.\n\
Give breakpoint number as argument after \"commands\".\n\
Give breakpoint number as argument after \"commands\".\n\
With no argument, the targeted breakpoint is the last one set.\n\
With no argument, the targeted breakpoint is the last one set.\n\
The commands themselves follow starting on the next line.\n\
The commands themselves follow starting on the next line.\n\
Type a line containing \"end\" to indicate the end of them.\n\
Type a line containing \"end\" to indicate the end of them.\n\
Give \"silent\" as the first line to make the breakpoint silent;\n\
Give \"silent\" as the first line to make the breakpoint silent;\n\
then no output is printed when it is hit, except what the commands print.");
then no output is printed when it is hit, except what the commands print.");
 
 
  add_com ("condition", class_breakpoint, condition_command,
  add_com ("condition", class_breakpoint, condition_command,
           "Specify breakpoint number N to break only if COND is true.\n\
           "Specify breakpoint number N to break only if COND is true.\n\
Usage is `condition N COND', where N is an integer and COND is an\n\
Usage is `condition N COND', where N is an integer and COND is an\n\
expression to be evaluated whenever breakpoint N is reached.  ");
expression to be evaluated whenever breakpoint N is reached.  ");
 
 
  add_com ("tbreak", class_breakpoint, tbreak_command,
  add_com ("tbreak", class_breakpoint, tbreak_command,
           "Set a temporary breakpoint.  Args like \"break\" command.\n\
           "Set a temporary breakpoint.  Args like \"break\" command.\n\
Like \"break\" except the breakpoint is only temporary,\n\
Like \"break\" except the breakpoint is only temporary,\n\
so it will be deleted when hit.  Equivalent to \"break\" followed\n\
so it will be deleted when hit.  Equivalent to \"break\" followed\n\
by using \"enable delete\" on the breakpoint number.");
by using \"enable delete\" on the breakpoint number.");
  add_com ("txbreak", class_breakpoint, tbreak_at_finish_command,
  add_com ("txbreak", class_breakpoint, tbreak_at_finish_command,
           "Set temporary breakpoint at procedure exit.  Either there should\n\
           "Set temporary breakpoint at procedure exit.  Either there should\n\
be no argument or the argument must be a depth.\n");
be no argument or the argument must be a depth.\n");
 
 
  add_com ("hbreak", class_breakpoint, hbreak_command,
  add_com ("hbreak", class_breakpoint, hbreak_command,
           "Set a hardware assisted  breakpoint. Args like \"break\" command.\n\
           "Set a hardware assisted  breakpoint. Args like \"break\" command.\n\
Like \"break\" except the breakpoint requires hardware support,\n\
Like \"break\" except the breakpoint requires hardware support,\n\
some target hardware may not have this support.");
some target hardware may not have this support.");
 
 
  add_com ("thbreak", class_breakpoint, thbreak_command,
  add_com ("thbreak", class_breakpoint, thbreak_command,
           "Set a temporary hardware assisted breakpoint. Args like \"break\" command.\n\
           "Set a temporary hardware assisted breakpoint. Args like \"break\" command.\n\
Like \"hbreak\" except the breakpoint is only temporary,\n\
Like \"hbreak\" except the breakpoint is only temporary,\n\
so it will be deleted when hit.");
so it will be deleted when hit.");
 
 
  add_prefix_cmd ("enable", class_breakpoint, enable_command,
  add_prefix_cmd ("enable", class_breakpoint, enable_command,
                  "Enable some breakpoints.\n\
                  "Enable some breakpoints.\n\
Give breakpoint numbers (separated by spaces) as arguments.\n\
Give breakpoint numbers (separated by spaces) as arguments.\n\
With no subcommand, breakpoints are enabled until you command otherwise.\n\
With no subcommand, breakpoints are enabled until you command otherwise.\n\
This is used to cancel the effect of the \"disable\" command.\n\
This is used to cancel the effect of the \"disable\" command.\n\
With a subcommand you can enable temporarily.",
With a subcommand you can enable temporarily.",
                  &enablelist, "enable ", 1, &cmdlist);
                  &enablelist, "enable ", 1, &cmdlist);
  if (xdb_commands)
  if (xdb_commands)
    add_com ("ab", class_breakpoint, enable_command,
    add_com ("ab", class_breakpoint, enable_command,
             "Enable some breakpoints.\n\
             "Enable some breakpoints.\n\
Give breakpoint numbers (separated by spaces) as arguments.\n\
Give breakpoint numbers (separated by spaces) as arguments.\n\
With no subcommand, breakpoints are enabled until you command otherwise.\n\
With no subcommand, breakpoints are enabled until you command otherwise.\n\
This is used to cancel the effect of the \"disable\" command.\n\
This is used to cancel the effect of the \"disable\" command.\n\
With a subcommand you can enable temporarily.");
With a subcommand you can enable temporarily.");
 
 
  add_com_alias ("en", "enable", class_breakpoint, 1);
  add_com_alias ("en", "enable", class_breakpoint, 1);
 
 
  add_abbrev_prefix_cmd ("breakpoints", class_breakpoint, enable_command,
  add_abbrev_prefix_cmd ("breakpoints", class_breakpoint, enable_command,
                         "Enable some breakpoints.\n\
                         "Enable some breakpoints.\n\
Give breakpoint numbers (separated by spaces) as arguments.\n\
Give breakpoint numbers (separated by spaces) as arguments.\n\
This is used to cancel the effect of the \"disable\" command.\n\
This is used to cancel the effect of the \"disable\" command.\n\
May be abbreviated to simply \"enable\".\n",
May be abbreviated to simply \"enable\".\n",
                   &enablebreaklist, "enable breakpoints ", 1, &enablelist);
                   &enablebreaklist, "enable breakpoints ", 1, &enablelist);
 
 
  add_cmd ("once", no_class, enable_once_command,
  add_cmd ("once", no_class, enable_once_command,
           "Enable breakpoints for one hit.  Give breakpoint numbers.\n\
           "Enable breakpoints for one hit.  Give breakpoint numbers.\n\
If a breakpoint is hit while enabled in this fashion, it becomes disabled.",
If a breakpoint is hit while enabled in this fashion, it becomes disabled.",
           &enablebreaklist);
           &enablebreaklist);
 
 
  add_cmd ("delete", no_class, enable_delete_command,
  add_cmd ("delete", no_class, enable_delete_command,
           "Enable breakpoints and delete when hit.  Give breakpoint numbers.\n\
           "Enable breakpoints and delete when hit.  Give breakpoint numbers.\n\
If a breakpoint is hit while enabled in this fashion, it is deleted.",
If a breakpoint is hit while enabled in this fashion, it is deleted.",
           &enablebreaklist);
           &enablebreaklist);
 
 
  add_cmd ("delete", no_class, enable_delete_command,
  add_cmd ("delete", no_class, enable_delete_command,
           "Enable breakpoints and delete when hit.  Give breakpoint numbers.\n\
           "Enable breakpoints and delete when hit.  Give breakpoint numbers.\n\
If a breakpoint is hit while enabled in this fashion, it is deleted.",
If a breakpoint is hit while enabled in this fashion, it is deleted.",
           &enablelist);
           &enablelist);
 
 
  add_cmd ("once", no_class, enable_once_command,
  add_cmd ("once", no_class, enable_once_command,
           "Enable breakpoints for one hit.  Give breakpoint numbers.\n\
           "Enable breakpoints for one hit.  Give breakpoint numbers.\n\
If a breakpoint is hit while enabled in this fashion, it becomes disabled.",
If a breakpoint is hit while enabled in this fashion, it becomes disabled.",
           &enablelist);
           &enablelist);
 
 
  add_prefix_cmd ("disable", class_breakpoint, disable_command,
  add_prefix_cmd ("disable", class_breakpoint, disable_command,
                  "Disable some breakpoints.\n\
                  "Disable some breakpoints.\n\
Arguments are breakpoint numbers with spaces in between.\n\
Arguments are breakpoint numbers with spaces in between.\n\
To disable all breakpoints, give no argument.\n\
To disable all breakpoints, give no argument.\n\
A disabled breakpoint is not forgotten, but has no effect until reenabled.",
A disabled breakpoint is not forgotten, but has no effect until reenabled.",
                  &disablelist, "disable ", 1, &cmdlist);
                  &disablelist, "disable ", 1, &cmdlist);
  add_com_alias ("dis", "disable", class_breakpoint, 1);
  add_com_alias ("dis", "disable", class_breakpoint, 1);
  add_com_alias ("disa", "disable", class_breakpoint, 1);
  add_com_alias ("disa", "disable", class_breakpoint, 1);
  if (xdb_commands)
  if (xdb_commands)
    add_com ("sb", class_breakpoint, disable_command,
    add_com ("sb", class_breakpoint, disable_command,
             "Disable some breakpoints.\n\
             "Disable some breakpoints.\n\
Arguments are breakpoint numbers with spaces in between.\n\
Arguments are breakpoint numbers with spaces in between.\n\
To disable all breakpoints, give no argument.\n\
To disable all breakpoints, give no argument.\n\
A disabled breakpoint is not forgotten, but has no effect until reenabled.");
A disabled breakpoint is not forgotten, but has no effect until reenabled.");
 
 
  add_cmd ("breakpoints", class_alias, disable_command,
  add_cmd ("breakpoints", class_alias, disable_command,
           "Disable some breakpoints.\n\
           "Disable some breakpoints.\n\
Arguments are breakpoint numbers with spaces in between.\n\
Arguments are breakpoint numbers with spaces in between.\n\
To disable all breakpoints, give no argument.\n\
To disable all breakpoints, give no argument.\n\
A disabled breakpoint is not forgotten, but has no effect until reenabled.\n\
A disabled breakpoint is not forgotten, but has no effect until reenabled.\n\
This command may be abbreviated \"disable\".",
This command may be abbreviated \"disable\".",
           &disablelist);
           &disablelist);
 
 
  add_prefix_cmd ("delete", class_breakpoint, delete_command,
  add_prefix_cmd ("delete", class_breakpoint, delete_command,
                  "Delete some breakpoints or auto-display expressions.\n\
                  "Delete some breakpoints or auto-display expressions.\n\
Arguments are breakpoint numbers with spaces in between.\n\
Arguments are breakpoint numbers with spaces in between.\n\
To delete all breakpoints, give no argument.\n\
To delete all breakpoints, give no argument.\n\
\n\
\n\
Also a prefix command for deletion of other GDB objects.\n\
Also a prefix command for deletion of other GDB objects.\n\
The \"unset\" command is also an alias for \"delete\".",
The \"unset\" command is also an alias for \"delete\".",
                  &deletelist, "delete ", 1, &cmdlist);
                  &deletelist, "delete ", 1, &cmdlist);
  add_com_alias ("d", "delete", class_breakpoint, 1);
  add_com_alias ("d", "delete", class_breakpoint, 1);
  if (xdb_commands)
  if (xdb_commands)
    add_com ("db", class_breakpoint, delete_command,
    add_com ("db", class_breakpoint, delete_command,
             "Delete some breakpoints.\n\
             "Delete some breakpoints.\n\
Arguments are breakpoint numbers with spaces in between.\n\
Arguments are breakpoint numbers with spaces in between.\n\
To delete all breakpoints, give no argument.\n");
To delete all breakpoints, give no argument.\n");
 
 
  add_cmd ("breakpoints", class_alias, delete_command,
  add_cmd ("breakpoints", class_alias, delete_command,
           "Delete some breakpoints or auto-display expressions.\n\
           "Delete some breakpoints or auto-display expressions.\n\
Arguments are breakpoint numbers with spaces in between.\n\
Arguments are breakpoint numbers with spaces in between.\n\
To delete all breakpoints, give no argument.\n\
To delete all breakpoints, give no argument.\n\
This command may be abbreviated \"delete\".",
This command may be abbreviated \"delete\".",
           &deletelist);
           &deletelist);
 
 
  add_com ("clear", class_breakpoint, clear_command,
  add_com ("clear", class_breakpoint, clear_command,
           concat ("Clear breakpoint at specified line or function.\n\
           concat ("Clear breakpoint at specified line or function.\n\
Argument may be line number, function name, or \"*\" and an address.\n\
Argument may be line number, function name, or \"*\" and an address.\n\
If line number is specified, all breakpoints in that line are cleared.\n\
If line number is specified, all breakpoints in that line are cleared.\n\
If function is specified, breakpoints at beginning of function are cleared.\n\
If function is specified, breakpoints at beginning of function are cleared.\n\
If an address is specified, breakpoints at that address are cleared.\n\n",
If an address is specified, breakpoints at that address are cleared.\n\n",
                   "With no argument, clears all breakpoints in the line that the selected frame\n\
                   "With no argument, clears all breakpoints in the line that the selected frame\n\
is executing in.\n\
is executing in.\n\
\n\
\n\
See also the \"delete\" command which clears breakpoints by number.", NULL));
See also the \"delete\" command which clears breakpoints by number.", NULL));
 
 
  add_com ("break", class_breakpoint, break_command,
  add_com ("break", class_breakpoint, break_command,
           concat ("Set breakpoint at specified line or function.\n\
           concat ("Set breakpoint at specified line or function.\n\
Argument may be line number, function name, or \"*\" and an address.\n\
Argument may be line number, function name, or \"*\" and an address.\n\
If line number is specified, break at start of code for that line.\n\
If line number is specified, break at start of code for that line.\n\
If function is specified, break at start of code for that function.\n\
If function is specified, break at start of code for that function.\n\
If an address is specified, break at that exact address.\n",
If an address is specified, break at that exact address.\n",
                   "With no arg, uses current execution address of selected stack frame.\n\
                   "With no arg, uses current execution address of selected stack frame.\n\
This is useful for breaking on return to a stack frame.\n\
This is useful for breaking on return to a stack frame.\n\
\n\
\n\
Multiple breakpoints at one place are permitted, and useful if conditional.\n\
Multiple breakpoints at one place are permitted, and useful if conditional.\n\
\n\
\n\
Do \"help breakpoints\" for info on other commands dealing with breakpoints.", NULL));
Do \"help breakpoints\" for info on other commands dealing with breakpoints.", NULL));
  add_com_alias ("b", "break", class_run, 1);
  add_com_alias ("b", "break", class_run, 1);
  add_com_alias ("br", "break", class_run, 1);
  add_com_alias ("br", "break", class_run, 1);
  add_com_alias ("bre", "break", class_run, 1);
  add_com_alias ("bre", "break", class_run, 1);
  add_com_alias ("brea", "break", class_run, 1);
  add_com_alias ("brea", "break", class_run, 1);
 
 
  add_com ("xbreak", class_breakpoint, break_at_finish_command,
  add_com ("xbreak", class_breakpoint, break_at_finish_command,
           concat ("Set breakpoint at procedure exit. \n\
           concat ("Set breakpoint at procedure exit. \n\
Argument may be function name, or \"*\" and an address.\n\
Argument may be function name, or \"*\" and an address.\n\
If function is specified, break at end of code for that function.\n\
If function is specified, break at end of code for that function.\n\
If an address is specified, break at the end of the function that contains \n\
If an address is specified, break at the end of the function that contains \n\
that exact address.\n",
that exact address.\n",
                   "With no arg, uses current execution address of selected stack frame.\n\
                   "With no arg, uses current execution address of selected stack frame.\n\
This is useful for breaking on return to a stack frame.\n\
This is useful for breaking on return to a stack frame.\n\
\n\
\n\
Multiple breakpoints at one place are permitted, and useful if conditional.\n\
Multiple breakpoints at one place are permitted, and useful if conditional.\n\
\n\
\n\
Do \"help breakpoints\" for info on other commands dealing with breakpoints.", NULL));
Do \"help breakpoints\" for info on other commands dealing with breakpoints.", NULL));
  add_com_alias ("xb", "xbreak", class_breakpoint, 1);
  add_com_alias ("xb", "xbreak", class_breakpoint, 1);
  add_com_alias ("xbr", "xbreak", class_breakpoint, 1);
  add_com_alias ("xbr", "xbreak", class_breakpoint, 1);
  add_com_alias ("xbre", "xbreak", class_breakpoint, 1);
  add_com_alias ("xbre", "xbreak", class_breakpoint, 1);
  add_com_alias ("xbrea", "xbreak", class_breakpoint, 1);
  add_com_alias ("xbrea", "xbreak", class_breakpoint, 1);
 
 
  if (xdb_commands)
  if (xdb_commands)
    {
    {
      add_com_alias ("ba", "break", class_breakpoint, 1);
      add_com_alias ("ba", "break", class_breakpoint, 1);
      add_com_alias ("bu", "ubreak", class_breakpoint, 1);
      add_com_alias ("bu", "ubreak", class_breakpoint, 1);
      add_com ("bx", class_breakpoint, break_at_finish_at_depth_command,
      add_com ("bx", class_breakpoint, break_at_finish_at_depth_command,
               "Set breakpoint at procedure exit.  Either there should\n\
               "Set breakpoint at procedure exit.  Either there should\n\
be no argument or the argument must be a depth.\n");
be no argument or the argument must be a depth.\n");
    }
    }
 
 
  if (dbx_commands)
  if (dbx_commands)
    {
    {
      add_abbrev_prefix_cmd ("stop", class_breakpoint, stop_command,
      add_abbrev_prefix_cmd ("stop", class_breakpoint, stop_command,
        "Break in function/address or break at a line in the current file.",
        "Break in function/address or break at a line in the current file.",
                             &stoplist, "stop ", 1, &cmdlist);
                             &stoplist, "stop ", 1, &cmdlist);
      add_cmd ("in", class_breakpoint, stopin_command,
      add_cmd ("in", class_breakpoint, stopin_command,
               "Break in function or address.\n", &stoplist);
               "Break in function or address.\n", &stoplist);
      add_cmd ("at", class_breakpoint, stopat_command,
      add_cmd ("at", class_breakpoint, stopat_command,
               "Break at a line in the current file.\n", &stoplist);
               "Break at a line in the current file.\n", &stoplist);
      add_com ("status", class_info, breakpoints_info,
      add_com ("status", class_info, breakpoints_info,
               concat ("Status of user-settable breakpoints, or breakpoint number NUMBER.\n\
               concat ("Status of user-settable breakpoints, or breakpoint number NUMBER.\n\
The \"Type\" column indicates one of:\n\
The \"Type\" column indicates one of:\n\
\tbreakpoint     - normal breakpoint\n\
\tbreakpoint     - normal breakpoint\n\
\twatchpoint     - watchpoint\n\
\twatchpoint     - watchpoint\n\
The \"Disp\" column contains one of \"keep\", \"del\", or \"dis\" to indicate\n\
The \"Disp\" column contains one of \"keep\", \"del\", or \"dis\" to indicate\n\
the disposition of the breakpoint after it gets hit.  \"dis\" means that the\n\
the disposition of the breakpoint after it gets hit.  \"dis\" means that the\n\
breakpoint will be disabled.  The \"Address\" and \"What\" columns indicate the\n\
breakpoint will be disabled.  The \"Address\" and \"What\" columns indicate the\n\
address and file/line number respectively.\n\n",
address and file/line number respectively.\n\n",
                       "Convenience variable \"$_\" and default examine address for \"x\"\n\
                       "Convenience variable \"$_\" and default examine address for \"x\"\n\
are set to the address of the last breakpoint listed.\n\n\
are set to the address of the last breakpoint listed.\n\n\
Convenience variable \"$bpnum\" contains the number of the last\n\
Convenience variable \"$bpnum\" contains the number of the last\n\
breakpoint set.", NULL));
breakpoint set.", NULL));
    }
    }
 
 
  add_info ("breakpoints", breakpoints_info,
  add_info ("breakpoints", breakpoints_info,
            concat ("Status of user-settable breakpoints, or breakpoint number NUMBER.\n\
            concat ("Status of user-settable breakpoints, or breakpoint number NUMBER.\n\
The \"Type\" column indicates one of:\n\
The \"Type\" column indicates one of:\n\
\tbreakpoint     - normal breakpoint\n\
\tbreakpoint     - normal breakpoint\n\
\twatchpoint     - watchpoint\n\
\twatchpoint     - watchpoint\n\
The \"Disp\" column contains one of \"keep\", \"del\", or \"dis\" to indicate\n\
The \"Disp\" column contains one of \"keep\", \"del\", or \"dis\" to indicate\n\
the disposition of the breakpoint after it gets hit.  \"dis\" means that the\n\
the disposition of the breakpoint after it gets hit.  \"dis\" means that the\n\
breakpoint will be disabled.  The \"Address\" and \"What\" columns indicate the\n\
breakpoint will be disabled.  The \"Address\" and \"What\" columns indicate the\n\
address and file/line number respectively.\n\n",
address and file/line number respectively.\n\n",
                    "Convenience variable \"$_\" and default examine address for \"x\"\n\
                    "Convenience variable \"$_\" and default examine address for \"x\"\n\
are set to the address of the last breakpoint listed.\n\n\
are set to the address of the last breakpoint listed.\n\n\
Convenience variable \"$bpnum\" contains the number of the last\n\
Convenience variable \"$bpnum\" contains the number of the last\n\
breakpoint set.", NULL));
breakpoint set.", NULL));
 
 
  if (xdb_commands)
  if (xdb_commands)
    add_com ("lb", class_breakpoint, breakpoints_info,
    add_com ("lb", class_breakpoint, breakpoints_info,
             concat ("Status of user-settable breakpoints, or breakpoint number NUMBER.\n\
             concat ("Status of user-settable breakpoints, or breakpoint number NUMBER.\n\
The \"Type\" column indicates one of:\n\
The \"Type\" column indicates one of:\n\
\tbreakpoint     - normal breakpoint\n\
\tbreakpoint     - normal breakpoint\n\
\twatchpoint     - watchpoint\n\
\twatchpoint     - watchpoint\n\
The \"Disp\" column contains one of \"keep\", \"del\", or \"dis\" to indicate\n\
The \"Disp\" column contains one of \"keep\", \"del\", or \"dis\" to indicate\n\
the disposition of the breakpoint after it gets hit.  \"dis\" means that the\n\
the disposition of the breakpoint after it gets hit.  \"dis\" means that the\n\
breakpoint will be disabled.  The \"Address\" and \"What\" columns indicate the\n\
breakpoint will be disabled.  The \"Address\" and \"What\" columns indicate the\n\
address and file/line number respectively.\n\n",
address and file/line number respectively.\n\n",
                     "Convenience variable \"$_\" and default examine address for \"x\"\n\
                     "Convenience variable \"$_\" and default examine address for \"x\"\n\
are set to the address of the last breakpoint listed.\n\n\
are set to the address of the last breakpoint listed.\n\n\
Convenience variable \"$bpnum\" contains the number of the last\n\
Convenience variable \"$bpnum\" contains the number of the last\n\
breakpoint set.", NULL));
breakpoint set.", NULL));
 
 
  add_cmd ("breakpoints", class_maintenance, maintenance_info_breakpoints,
  add_cmd ("breakpoints", class_maintenance, maintenance_info_breakpoints,
           concat ("Status of all breakpoints, or breakpoint number NUMBER.\n\
           concat ("Status of all breakpoints, or breakpoint number NUMBER.\n\
The \"Type\" column indicates one of:\n\
The \"Type\" column indicates one of:\n\
\tbreakpoint     - normal breakpoint\n\
\tbreakpoint     - normal breakpoint\n\
\twatchpoint     - watchpoint\n\
\twatchpoint     - watchpoint\n\
\tlongjmp        - internal breakpoint used to step through longjmp()\n\
\tlongjmp        - internal breakpoint used to step through longjmp()\n\
\tlongjmp resume - internal breakpoint at the target of longjmp()\n\
\tlongjmp resume - internal breakpoint at the target of longjmp()\n\
\tuntil          - internal breakpoint used by the \"until\" command\n\
\tuntil          - internal breakpoint used by the \"until\" command\n\
\tfinish         - internal breakpoint used by the \"finish\" command\n",
\tfinish         - internal breakpoint used by the \"finish\" command\n",
                   "The \"Disp\" column contains one of \"keep\", \"del\", or \"dis\" to indicate\n\
                   "The \"Disp\" column contains one of \"keep\", \"del\", or \"dis\" to indicate\n\
the disposition of the breakpoint after it gets hit.  \"dis\" means that the\n\
the disposition of the breakpoint after it gets hit.  \"dis\" means that the\n\
breakpoint will be disabled.  The \"Address\" and \"What\" columns indicate the\n\
breakpoint will be disabled.  The \"Address\" and \"What\" columns indicate the\n\
address and file/line number respectively.\n\n",
address and file/line number respectively.\n\n",
                   "Convenience variable \"$_\" and default examine address for \"x\"\n\
                   "Convenience variable \"$_\" and default examine address for \"x\"\n\
are set to the address of the last breakpoint listed.\n\n\
are set to the address of the last breakpoint listed.\n\n\
Convenience variable \"$bpnum\" contains the number of the last\n\
Convenience variable \"$bpnum\" contains the number of the last\n\
breakpoint set.", NULL),
breakpoint set.", NULL),
           &maintenanceinfolist);
           &maintenanceinfolist);
 
 
  add_com ("catch", class_breakpoint, catch_command,
  add_com ("catch", class_breakpoint, catch_command,
           "Set catchpoints to catch events.\n\
           "Set catchpoints to catch events.\n\
Raised signals may be caught:\n\
Raised signals may be caught:\n\
\tcatch signal              - all signals\n\
\tcatch signal              - all signals\n\
\tcatch signal <signame>    - a particular signal\n\
\tcatch signal <signame>    - a particular signal\n\
Raised exceptions may be caught:\n\
Raised exceptions may be caught:\n\
\tcatch throw               - all exceptions, when thrown\n\
\tcatch throw               - all exceptions, when thrown\n\
\tcatch throw <exceptname>  - a particular exception, when thrown\n\
\tcatch throw <exceptname>  - a particular exception, when thrown\n\
\tcatch catch               - all exceptions, when caught\n\
\tcatch catch               - all exceptions, when caught\n\
\tcatch catch <exceptname>  - a particular exception, when caught\n\
\tcatch catch <exceptname>  - a particular exception, when caught\n\
Thread or process events may be caught:\n\
Thread or process events may be caught:\n\
\tcatch thread_start        - any threads, just after creation\n\
\tcatch thread_start        - any threads, just after creation\n\
\tcatch thread_exit         - any threads, just before expiration\n\
\tcatch thread_exit         - any threads, just before expiration\n\
\tcatch thread_join         - any threads, just after joins\n\
\tcatch thread_join         - any threads, just after joins\n\
Process events may be caught:\n\
Process events may be caught:\n\
\tcatch start               - any processes, just after creation\n\
\tcatch start               - any processes, just after creation\n\
\tcatch exit                - any processes, just before expiration\n\
\tcatch exit                - any processes, just before expiration\n\
\tcatch fork                - calls to fork()\n\
\tcatch fork                - calls to fork()\n\
\tcatch vfork               - calls to vfork()\n\
\tcatch vfork               - calls to vfork()\n\
\tcatch exec                - calls to exec()\n\
\tcatch exec                - calls to exec()\n\
Dynamically-linked library events may be caught:\n\
Dynamically-linked library events may be caught:\n\
\tcatch load                - loads of any library\n\
\tcatch load                - loads of any library\n\
\tcatch load <libname>      - loads of a particular library\n\
\tcatch load <libname>      - loads of a particular library\n\
\tcatch unload              - unloads of any library\n\
\tcatch unload              - unloads of any library\n\
\tcatch unload <libname>    - unloads of a particular library\n\
\tcatch unload <libname>    - unloads of a particular library\n\
The act of your program's execution stopping may also be caught:\n\
The act of your program's execution stopping may also be caught:\n\
\tcatch stop\n\n\
\tcatch stop\n\n\
C++ exceptions may be caught:\n\
C++ exceptions may be caught:\n\
\tcatch throw               - all exceptions, when thrown\n\
\tcatch throw               - all exceptions, when thrown\n\
\tcatch catch               - all exceptions, when caught\n\
\tcatch catch               - all exceptions, when caught\n\
\n\
\n\
Do \"help set follow-fork-mode\" for info on debugging your program\n\
Do \"help set follow-fork-mode\" for info on debugging your program\n\
after a fork or vfork is caught.\n\n\
after a fork or vfork is caught.\n\n\
Do \"help breakpoints\" for info on other commands dealing with breakpoints.");
Do \"help breakpoints\" for info on other commands dealing with breakpoints.");
 
 
  add_com ("tcatch", class_breakpoint, tcatch_command,
  add_com ("tcatch", class_breakpoint, tcatch_command,
           "Set temporary catchpoints to catch events.\n\
           "Set temporary catchpoints to catch events.\n\
Args like \"catch\" command.\n\
Args like \"catch\" command.\n\
Like \"catch\" except the catchpoint is only temporary,\n\
Like \"catch\" except the catchpoint is only temporary,\n\
so it will be deleted when hit.  Equivalent to \"catch\" followed\n\
so it will be deleted when hit.  Equivalent to \"catch\" followed\n\
by using \"enable delete\" on the catchpoint number.");
by using \"enable delete\" on the catchpoint number.");
 
 
  add_com ("watch", class_breakpoint, watch_command,
  add_com ("watch", class_breakpoint, watch_command,
           "Set a watchpoint for an expression.\n\
           "Set a watchpoint for an expression.\n\
A watchpoint stops execution of your program whenever the value of\n\
A watchpoint stops execution of your program whenever the value of\n\
an expression changes.");
an expression changes.");
 
 
  add_com ("rwatch", class_breakpoint, rwatch_command,
  add_com ("rwatch", class_breakpoint, rwatch_command,
           "Set a read watchpoint for an expression.\n\
           "Set a read watchpoint for an expression.\n\
A watchpoint stops execution of your program whenever the value of\n\
A watchpoint stops execution of your program whenever the value of\n\
an expression is read.");
an expression is read.");
 
 
  add_com ("awatch", class_breakpoint, awatch_command,
  add_com ("awatch", class_breakpoint, awatch_command,
           "Set a watchpoint for an expression.\n\
           "Set a watchpoint for an expression.\n\
A watchpoint stops execution of your program whenever the value of\n\
A watchpoint stops execution of your program whenever the value of\n\
an expression is either read or written.");
an expression is either read or written.");
 
 
  add_info ("watchpoints", breakpoints_info,
  add_info ("watchpoints", breakpoints_info,
            "Synonym for ``info breakpoints''.");
            "Synonym for ``info breakpoints''.");
 
 
 
 
  c = add_set_cmd ("can-use-hw-watchpoints", class_support, var_zinteger,
  c = add_set_cmd ("can-use-hw-watchpoints", class_support, var_zinteger,
                   (char *) &can_use_hw_watchpoints,
                   (char *) &can_use_hw_watchpoints,
                   "Set debugger's willingness to use watchpoint hardware.\n\
                   "Set debugger's willingness to use watchpoint hardware.\n\
If zero, gdb will not use hardware for new watchpoints, even if\n\
If zero, gdb will not use hardware for new watchpoints, even if\n\
such is available.  (However, any hardware watchpoints that were\n\
such is available.  (However, any hardware watchpoints that were\n\
created before setting this to nonzero, will continue to use watchpoint\n\
created before setting this to nonzero, will continue to use watchpoint\n\
hardware.)",
hardware.)",
                   &setlist);
                   &setlist);
  add_show_from_set (c, &showlist);
  add_show_from_set (c, &showlist);
 
 
  can_use_hw_watchpoints = 1;
  can_use_hw_watchpoints = 1;
}
}
 
 

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