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[/] [openrisc/] [trunk/] [gnu-old/] [gdb-6.8/] [gdb/] [infcmd.c] - Diff between revs 827 and 840

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/* Memory-access and commands for "inferior" process, for GDB.
/* Memory-access and commands for "inferior" process, for GDB.
 
 
   Copyright (C) 1986, 1987, 1988, 1989, 1990, 1991, 1992, 1993, 1994, 1995,
   Copyright (C) 1986, 1987, 1988, 1989, 1990, 1991, 1992, 1993, 1994, 1995,
   1996, 1997, 1998, 1999, 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007,
   1996, 1997, 1998, 1999, 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007,
   2008 Free Software Foundation, Inc.
   2008 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 3 of the License, or
   the Free Software Foundation; either version 3 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, see <http://www.gnu.org/licenses/>.  */
   along with this program.  If not, see <http://www.gnu.org/licenses/>.  */
 
 
#include "defs.h"
#include "defs.h"
#include <signal.h>
#include <signal.h>
#include "gdb_string.h"
#include "gdb_string.h"
#include "symtab.h"
#include "symtab.h"
#include "gdbtypes.h"
#include "gdbtypes.h"
#include "frame.h"
#include "frame.h"
#include "inferior.h"
#include "inferior.h"
#include "environ.h"
#include "environ.h"
#include "value.h"
#include "value.h"
#include "gdbcmd.h"
#include "gdbcmd.h"
#include "symfile.h"
#include "symfile.h"
#include "gdbcore.h"
#include "gdbcore.h"
#include "target.h"
#include "target.h"
#include "language.h"
#include "language.h"
#include "symfile.h"
#include "symfile.h"
#include "objfiles.h"
#include "objfiles.h"
#include "completer.h"
#include "completer.h"
#include "ui-out.h"
#include "ui-out.h"
#include "event-top.h"
#include "event-top.h"
#include "parser-defs.h"
#include "parser-defs.h"
#include "regcache.h"
#include "regcache.h"
#include "reggroups.h"
#include "reggroups.h"
#include "block.h"
#include "block.h"
#include "solib.h"
#include "solib.h"
#include <ctype.h>
#include <ctype.h>
#include "gdb_assert.h"
#include "gdb_assert.h"
#include "observer.h"
#include "observer.h"
#include "target-descriptions.h"
#include "target-descriptions.h"
#include "user-regs.h"
#include "user-regs.h"
 
 
/* Functions exported for general use, in inferior.h: */
/* Functions exported for general use, in inferior.h: */
 
 
void all_registers_info (char *, int);
void all_registers_info (char *, int);
 
 
void registers_info (char *, int);
void registers_info (char *, int);
 
 
void nexti_command (char *, int);
void nexti_command (char *, int);
 
 
void stepi_command (char *, int);
void stepi_command (char *, int);
 
 
void continue_command (char *, int);
void continue_command (char *, int);
 
 
void interrupt_target_command (char *args, int from_tty);
void interrupt_target_command (char *args, int from_tty);
 
 
/* Local functions: */
/* Local functions: */
 
 
static void nofp_registers_info (char *, int);
static void nofp_registers_info (char *, int);
 
 
static void print_return_value (struct type *value_type);
static void print_return_value (struct type *value_type);
 
 
static void finish_command_continuation (struct continuation_arg *);
static void finish_command_continuation (struct continuation_arg *);
 
 
static void until_next_command (int);
static void until_next_command (int);
 
 
static void until_command (char *, int);
static void until_command (char *, int);
 
 
static void path_info (char *, int);
static void path_info (char *, int);
 
 
static void path_command (char *, int);
static void path_command (char *, int);
 
 
static void unset_command (char *, int);
static void unset_command (char *, int);
 
 
static void float_info (char *, int);
static void float_info (char *, int);
 
 
static void detach_command (char *, int);
static void detach_command (char *, int);
 
 
static void disconnect_command (char *, int);
static void disconnect_command (char *, int);
 
 
static void unset_environment_command (char *, int);
static void unset_environment_command (char *, int);
 
 
static void set_environment_command (char *, int);
static void set_environment_command (char *, int);
 
 
static void environment_info (char *, int);
static void environment_info (char *, int);
 
 
static void program_info (char *, int);
static void program_info (char *, int);
 
 
static void finish_command (char *, int);
static void finish_command (char *, int);
 
 
static void signal_command (char *, int);
static void signal_command (char *, int);
 
 
static void jump_command (char *, int);
static void jump_command (char *, int);
 
 
static void step_1 (int, int, char *);
static void step_1 (int, int, char *);
static void step_once (int skip_subroutines, int single_inst, int count);
static void step_once (int skip_subroutines, int single_inst, int count);
static void step_1_continuation (struct continuation_arg *arg);
static void step_1_continuation (struct continuation_arg *arg);
 
 
static void next_command (char *, int);
static void next_command (char *, int);
 
 
static void step_command (char *, int);
static void step_command (char *, int);
 
 
static void run_command (char *, int);
static void run_command (char *, int);
 
 
static void run_no_args_command (char *args, int from_tty);
static void run_no_args_command (char *args, int from_tty);
 
 
static void go_command (char *line_no, int from_tty);
static void go_command (char *line_no, int from_tty);
 
 
static int strip_bg_char (char **);
static int strip_bg_char (char **);
 
 
void _initialize_infcmd (void);
void _initialize_infcmd (void);
 
 
#define GO_USAGE   "Usage: go <location>\n"
#define GO_USAGE   "Usage: go <location>\n"
 
 
#define ERROR_NO_INFERIOR \
#define ERROR_NO_INFERIOR \
   if (!target_has_execution) error (_("The program is not being run."));
   if (!target_has_execution) error (_("The program is not being run."));
 
 
/* String containing arguments to give to the program, separated by spaces.
/* String containing arguments to give to the program, separated by spaces.
   Empty string (pointer to '\0') means no args.  */
   Empty string (pointer to '\0') means no args.  */
 
 
static char *inferior_args;
static char *inferior_args;
 
 
/* The inferior arguments as a vector.  If INFERIOR_ARGC is nonzero,
/* The inferior arguments as a vector.  If INFERIOR_ARGC is nonzero,
   then we must compute INFERIOR_ARGS from this (via the target).  */
   then we must compute INFERIOR_ARGS from this (via the target).  */
 
 
static int inferior_argc;
static int inferior_argc;
static char **inferior_argv;
static char **inferior_argv;
 
 
/* File name for default use for standard in/out in the inferior.  */
/* File name for default use for standard in/out in the inferior.  */
 
 
static char *inferior_io_terminal;
static char *inferior_io_terminal;
 
 
/* Pid of our debugged inferior, or 0 if no inferior now.
/* Pid of our debugged inferior, or 0 if no inferior now.
   Since various parts of infrun.c test this to see whether there is a program
   Since various parts of infrun.c test this to see whether there is a program
   being debugged it should be nonzero (currently 3 is used) for remote
   being debugged it should be nonzero (currently 3 is used) for remote
   debugging.  */
   debugging.  */
 
 
ptid_t inferior_ptid;
ptid_t inferior_ptid;
 
 
/* Last signal that the inferior received (why it stopped).  */
/* Last signal that the inferior received (why it stopped).  */
 
 
enum target_signal stop_signal;
enum target_signal stop_signal;
 
 
/* Address at which inferior stopped.  */
/* Address at which inferior stopped.  */
 
 
CORE_ADDR stop_pc;
CORE_ADDR stop_pc;
 
 
/* Chain containing status of breakpoint(s) that we have stopped at.  */
/* Chain containing status of breakpoint(s) that we have stopped at.  */
 
 
bpstat stop_bpstat;
bpstat stop_bpstat;
 
 
/* Flag indicating that a command has proceeded the inferior past the
/* Flag indicating that a command has proceeded the inferior past the
   current breakpoint.  */
   current breakpoint.  */
 
 
int breakpoint_proceeded;
int breakpoint_proceeded;
 
 
/* Nonzero if stopped due to a step command.  */
/* Nonzero if stopped due to a step command.  */
 
 
int stop_step;
int stop_step;
 
 
/* Nonzero if stopped due to completion of a stack dummy routine.  */
/* Nonzero if stopped due to completion of a stack dummy routine.  */
 
 
int stop_stack_dummy;
int stop_stack_dummy;
 
 
/* Nonzero if stopped due to a random (unexpected) signal in inferior
/* Nonzero if stopped due to a random (unexpected) signal in inferior
   process.  */
   process.  */
 
 
int stopped_by_random_signal;
int stopped_by_random_signal;
 
 
/* Range to single step within.
/* Range to single step within.
   If this is nonzero, respond to a single-step signal
   If this is nonzero, respond to a single-step signal
   by continuing to step if the pc is in this range.  */
   by continuing to step if the pc is in this range.  */
 
 
CORE_ADDR step_range_start;     /* Inclusive */
CORE_ADDR step_range_start;     /* Inclusive */
CORE_ADDR step_range_end;       /* Exclusive */
CORE_ADDR step_range_end;       /* Exclusive */
 
 
/* Stack frame address as of when stepping command was issued.
/* Stack frame address as of when stepping command was issued.
   This is how we know when we step into a subroutine call,
   This is how we know when we step into a subroutine call,
   and how to set the frame for the breakpoint used to step out.  */
   and how to set the frame for the breakpoint used to step out.  */
 
 
struct frame_id step_frame_id;
struct frame_id step_frame_id;
 
 
enum step_over_calls_kind step_over_calls;
enum step_over_calls_kind step_over_calls;
 
 
/* If stepping, nonzero means step count is > 1
/* If stepping, nonzero means step count is > 1
   so don't print frame next time inferior stops
   so don't print frame next time inferior stops
   if it stops due to stepping.  */
   if it stops due to stepping.  */
 
 
int step_multi;
int step_multi;
 
 
/* Environment to use for running inferior,
/* Environment to use for running inferior,
   in format described in environ.h.  */
   in format described in environ.h.  */
 
 
struct gdb_environ *inferior_environ;
struct gdb_environ *inferior_environ;


/* Accessor routines. */
/* Accessor routines. */
 
 
void
void
set_inferior_io_terminal (const char *terminal_name)
set_inferior_io_terminal (const char *terminal_name)
{
{
  if (inferior_io_terminal)
  if (inferior_io_terminal)
    xfree (inferior_io_terminal);
    xfree (inferior_io_terminal);
 
 
  if (!terminal_name)
  if (!terminal_name)
    inferior_io_terminal = NULL;
    inferior_io_terminal = NULL;
  else
  else
    inferior_io_terminal = savestring (terminal_name, strlen (terminal_name));
    inferior_io_terminal = savestring (terminal_name, strlen (terminal_name));
}
}
 
 
const char *
const char *
get_inferior_io_terminal (void)
get_inferior_io_terminal (void)
{
{
  return inferior_io_terminal;
  return inferior_io_terminal;
}
}
 
 
char *
char *
get_inferior_args (void)
get_inferior_args (void)
{
{
  if (inferior_argc != 0)
  if (inferior_argc != 0)
    {
    {
      char *n, *old;
      char *n, *old;
 
 
      n = gdbarch_construct_inferior_arguments (current_gdbarch,
      n = gdbarch_construct_inferior_arguments (current_gdbarch,
                                                inferior_argc, inferior_argv);
                                                inferior_argc, inferior_argv);
      old = set_inferior_args (n);
      old = set_inferior_args (n);
      xfree (old);
      xfree (old);
    }
    }
 
 
  if (inferior_args == NULL)
  if (inferior_args == NULL)
    inferior_args = xstrdup ("");
    inferior_args = xstrdup ("");
 
 
  return inferior_args;
  return inferior_args;
}
}
 
 
char *
char *
set_inferior_args (char *newargs)
set_inferior_args (char *newargs)
{
{
  char *saved_args = inferior_args;
  char *saved_args = inferior_args;
 
 
  inferior_args = newargs;
  inferior_args = newargs;
  inferior_argc = 0;
  inferior_argc = 0;
  inferior_argv = 0;
  inferior_argv = 0;
 
 
  return saved_args;
  return saved_args;
}
}
 
 
void
void
set_inferior_args_vector (int argc, char **argv)
set_inferior_args_vector (int argc, char **argv)
{
{
  inferior_argc = argc;
  inferior_argc = argc;
  inferior_argv = argv;
  inferior_argv = argv;
}
}
 
 
/* Notice when `set args' is run.  */
/* Notice when `set args' is run.  */
static void
static void
notice_args_set (char *args, int from_tty, struct cmd_list_element *c)
notice_args_set (char *args, int from_tty, struct cmd_list_element *c)
{
{
  inferior_argc = 0;
  inferior_argc = 0;
  inferior_argv = 0;
  inferior_argv = 0;
}
}
 
 
/* Notice when `show args' is run.  */
/* Notice when `show args' is run.  */
static void
static void
notice_args_read (struct ui_file *file, int from_tty,
notice_args_read (struct ui_file *file, int from_tty,
                  struct cmd_list_element *c, const char *value)
                  struct cmd_list_element *c, const char *value)
{
{
  deprecated_show_value_hack (file, from_tty, c, value);
  deprecated_show_value_hack (file, from_tty, c, value);
  /* Might compute the value.  */
  /* Might compute the value.  */
  get_inferior_args ();
  get_inferior_args ();
}
}
 
 


/* Compute command-line string given argument vector.  This does the
/* Compute command-line string given argument vector.  This does the
   same shell processing as fork_inferior.  */
   same shell processing as fork_inferior.  */
char *
char *
construct_inferior_arguments (struct gdbarch *gdbarch, int argc, char **argv)
construct_inferior_arguments (struct gdbarch *gdbarch, int argc, char **argv)
{
{
  char *result;
  char *result;
 
 
  if (STARTUP_WITH_SHELL)
  if (STARTUP_WITH_SHELL)
    {
    {
      /* This holds all the characters considered special to the
      /* This holds all the characters considered special to the
         typical Unix shells.  We include `^' because the SunOS
         typical Unix shells.  We include `^' because the SunOS
         /bin/sh treats it as a synonym for `|'.  */
         /bin/sh treats it as a synonym for `|'.  */
      char *special = "\"!#$&*()\\|[]{}<>?'\"`~^; \t\n";
      char *special = "\"!#$&*()\\|[]{}<>?'\"`~^; \t\n";
      int i;
      int i;
      int length = 0;
      int length = 0;
      char *out, *cp;
      char *out, *cp;
 
 
      /* We over-compute the size.  It shouldn't matter.  */
      /* We over-compute the size.  It shouldn't matter.  */
      for (i = 0; i < argc; ++i)
      for (i = 0; i < argc; ++i)
        length += 2 * strlen (argv[i]) + 1 + 2 * (argv[i][0] == '\0');
        length += 2 * strlen (argv[i]) + 1 + 2 * (argv[i][0] == '\0');
 
 
      result = (char *) xmalloc (length);
      result = (char *) xmalloc (length);
      out = result;
      out = result;
 
 
      for (i = 0; i < argc; ++i)
      for (i = 0; i < argc; ++i)
        {
        {
          if (i > 0)
          if (i > 0)
            *out++ = ' ';
            *out++ = ' ';
 
 
          /* Need to handle empty arguments specially.  */
          /* Need to handle empty arguments specially.  */
          if (argv[i][0] == '\0')
          if (argv[i][0] == '\0')
            {
            {
              *out++ = '\'';
              *out++ = '\'';
              *out++ = '\'';
              *out++ = '\'';
            }
            }
          else
          else
            {
            {
              for (cp = argv[i]; *cp; ++cp)
              for (cp = argv[i]; *cp; ++cp)
                {
                {
                  if (strchr (special, *cp) != NULL)
                  if (strchr (special, *cp) != NULL)
                    *out++ = '\\';
                    *out++ = '\\';
                  *out++ = *cp;
                  *out++ = *cp;
                }
                }
            }
            }
        }
        }
      *out = '\0';
      *out = '\0';
    }
    }
  else
  else
    {
    {
      /* In this case we can't handle arguments that contain spaces,
      /* In this case we can't handle arguments that contain spaces,
         tabs, or newlines -- see breakup_args().  */
         tabs, or newlines -- see breakup_args().  */
      int i;
      int i;
      int length = 0;
      int length = 0;
 
 
      for (i = 0; i < argc; ++i)
      for (i = 0; i < argc; ++i)
        {
        {
          char *cp = strchr (argv[i], ' ');
          char *cp = strchr (argv[i], ' ');
          if (cp == NULL)
          if (cp == NULL)
            cp = strchr (argv[i], '\t');
            cp = strchr (argv[i], '\t');
          if (cp == NULL)
          if (cp == NULL)
            cp = strchr (argv[i], '\n');
            cp = strchr (argv[i], '\n');
          if (cp != NULL)
          if (cp != NULL)
            error (_("can't handle command-line argument containing whitespace"));
            error (_("can't handle command-line argument containing whitespace"));
          length += strlen (argv[i]) + 1;
          length += strlen (argv[i]) + 1;
        }
        }
 
 
      result = (char *) xmalloc (length);
      result = (char *) xmalloc (length);
      result[0] = '\0';
      result[0] = '\0';
      for (i = 0; i < argc; ++i)
      for (i = 0; i < argc; ++i)
        {
        {
          if (i > 0)
          if (i > 0)
            strcat (result, " ");
            strcat (result, " ");
          strcat (result, argv[i]);
          strcat (result, argv[i]);
        }
        }
    }
    }
 
 
  return result;
  return result;
}
}


 
 
/* This function detects whether or not a '&' character (indicating
/* This function detects whether or not a '&' character (indicating
   background execution) has been added as *the last* of the arguments ARGS
   background execution) has been added as *the last* of the arguments ARGS
   of a command. If it has, it removes it and returns 1. Otherwise it
   of a command. If it has, it removes it and returns 1. Otherwise it
   does nothing and returns 0. */
   does nothing and returns 0. */
static int
static int
strip_bg_char (char **args)
strip_bg_char (char **args)
{
{
  char *p = NULL;
  char *p = NULL;
 
 
  p = strchr (*args, '&');
  p = strchr (*args, '&');
 
 
  if (p)
  if (p)
    {
    {
      if (p == (*args + strlen (*args) - 1))
      if (p == (*args + strlen (*args) - 1))
        {
        {
          if (strlen (*args) > 1)
          if (strlen (*args) > 1)
            {
            {
              do
              do
                p--;
                p--;
              while (*p == ' ' || *p == '\t');
              while (*p == ' ' || *p == '\t');
              *(p + 1) = '\0';
              *(p + 1) = '\0';
            }
            }
          else
          else
            *args = 0;
            *args = 0;
          return 1;
          return 1;
        }
        }
    }
    }
  return 0;
  return 0;
}
}
 
 
void
void
tty_command (char *file, int from_tty)
tty_command (char *file, int from_tty)
{
{
  if (file == 0)
  if (file == 0)
    error_no_arg (_("terminal name for running target process"));
    error_no_arg (_("terminal name for running target process"));
 
 
  set_inferior_io_terminal (file);
  set_inferior_io_terminal (file);
}
}
 
 
/* Common actions to take after creating any sort of inferior, by any
/* Common actions to take after creating any sort of inferior, by any
   means (running, attaching, connecting, et cetera).  The target
   means (running, attaching, connecting, et cetera).  The target
   should be stopped.  */
   should be stopped.  */
 
 
void
void
post_create_inferior (struct target_ops *target, int from_tty)
post_create_inferior (struct target_ops *target, int from_tty)
{
{
  /* Be sure we own the terminal in case write operations are performed.  */
  /* Be sure we own the terminal in case write operations are performed.  */
  target_terminal_ours ();
  target_terminal_ours ();
 
 
  /* If the target hasn't taken care of this already, do it now.
  /* If the target hasn't taken care of this already, do it now.
     Targets which need to access registers during to_open,
     Targets which need to access registers during to_open,
     to_create_inferior, or to_attach should do it earlier; but many
     to_create_inferior, or to_attach should do it earlier; but many
     don't need to.  */
     don't need to.  */
  target_find_description ();
  target_find_description ();
 
 
  if (exec_bfd)
  if (exec_bfd)
    {
    {
      /* Sometimes the platform-specific hook loads initial shared
      /* Sometimes the platform-specific hook loads initial shared
         libraries, and sometimes it doesn't.  Try to do so first, so
         libraries, and sometimes it doesn't.  Try to do so first, so
         that we can add them with the correct value for FROM_TTY.
         that we can add them with the correct value for FROM_TTY.
         If we made all the inferior hook methods consistent,
         If we made all the inferior hook methods consistent,
         this call could be removed.  */
         this call could be removed.  */
#ifdef SOLIB_ADD
#ifdef SOLIB_ADD
      SOLIB_ADD (NULL, from_tty, target, auto_solib_add);
      SOLIB_ADD (NULL, from_tty, target, auto_solib_add);
#else
#else
      solib_add (NULL, from_tty, target, auto_solib_add);
      solib_add (NULL, from_tty, target, auto_solib_add);
#endif
#endif
 
 
      /* Create the hooks to handle shared library load and unload
      /* Create the hooks to handle shared library load and unload
         events.  */
         events.  */
#ifdef SOLIB_CREATE_INFERIOR_HOOK
#ifdef SOLIB_CREATE_INFERIOR_HOOK
      SOLIB_CREATE_INFERIOR_HOOK (PIDGET (inferior_ptid));
      SOLIB_CREATE_INFERIOR_HOOK (PIDGET (inferior_ptid));
#else
#else
      solib_create_inferior_hook ();
      solib_create_inferior_hook ();
#endif
#endif
    }
    }
 
 
  observer_notify_inferior_created (target, from_tty);
  observer_notify_inferior_created (target, from_tty);
}
}
 
 
/* Kill the inferior if already running.  This function is designed
/* Kill the inferior if already running.  This function is designed
   to be called when we are about to start the execution of the program
   to be called when we are about to start the execution of the program
   from the beginning.  Ask the user to confirm that he wants to restart
   from the beginning.  Ask the user to confirm that he wants to restart
   the program being debugged when FROM_TTY is non-null.  */
   the program being debugged when FROM_TTY is non-null.  */
 
 
void
void
kill_if_already_running (int from_tty)
kill_if_already_running (int from_tty)
{
{
  if (! ptid_equal (inferior_ptid, null_ptid) && target_has_execution)
  if (! ptid_equal (inferior_ptid, null_ptid) && target_has_execution)
    {
    {
      if (from_tty
      if (from_tty
          && !query ("The program being debugged has been started already.\n\
          && !query ("The program being debugged has been started already.\n\
Start it from the beginning? "))
Start it from the beginning? "))
        error (_("Program not restarted."));
        error (_("Program not restarted."));
      target_kill ();
      target_kill ();
      no_shared_libraries (NULL, from_tty);
      no_shared_libraries (NULL, from_tty);
      init_wait_for_inferior ();
      init_wait_for_inferior ();
    }
    }
}
}
 
 
/* Implement the "run" command. If TBREAK_AT_MAIN is set, then insert
/* Implement the "run" command. If TBREAK_AT_MAIN is set, then insert
   a temporary breakpoint at the begining of the main program before
   a temporary breakpoint at the begining of the main program before
   running the program.  */
   running the program.  */
 
 
static void
static void
run_command_1 (char *args, int from_tty, int tbreak_at_main)
run_command_1 (char *args, int from_tty, int tbreak_at_main)
{
{
  char *exec_file;
  char *exec_file;
 
 
  dont_repeat ();
  dont_repeat ();
 
 
  kill_if_already_running (from_tty);
  kill_if_already_running (from_tty);
  clear_breakpoint_hit_counts ();
  clear_breakpoint_hit_counts ();
 
 
  /* Clean up any leftovers from other runs.  Some other things from
  /* Clean up any leftovers from other runs.  Some other things from
     this function should probably be moved into target_pre_inferior.  */
     this function should probably be moved into target_pre_inferior.  */
  target_pre_inferior (from_tty);
  target_pre_inferior (from_tty);
 
 
  /* Purge old solib objfiles. */
  /* Purge old solib objfiles. */
  objfile_purge_solibs ();
  objfile_purge_solibs ();
 
 
  clear_solib ();
  clear_solib ();
 
 
  /* The comment here used to read, "The exec file is re-read every
  /* The comment here used to read, "The exec file is re-read every
     time we do a generic_mourn_inferior, so we just have to worry
     time we do a generic_mourn_inferior, so we just have to worry
     about the symbol file."  The `generic_mourn_inferior' function
     about the symbol file."  The `generic_mourn_inferior' function
     gets called whenever the program exits.  However, suppose the
     gets called whenever the program exits.  However, suppose the
     program exits, and *then* the executable file changes?  We need
     program exits, and *then* the executable file changes?  We need
     to check again here.  Since reopen_exec_file doesn't do anything
     to check again here.  Since reopen_exec_file doesn't do anything
     if the timestamp hasn't changed, I don't see the harm.  */
     if the timestamp hasn't changed, I don't see the harm.  */
  reopen_exec_file ();
  reopen_exec_file ();
  reread_symbols ();
  reread_symbols ();
 
 
  /* Insert the temporary breakpoint if a location was specified.  */
  /* Insert the temporary breakpoint if a location was specified.  */
  if (tbreak_at_main)
  if (tbreak_at_main)
    tbreak_command (main_name (), 0);
    tbreak_command (main_name (), 0);
 
 
  exec_file = (char *) get_exec_file (0);
  exec_file = (char *) get_exec_file (0);
 
 
  /* We keep symbols from add-symbol-file, on the grounds that the
  /* We keep symbols from add-symbol-file, on the grounds that the
     user might want to add some symbols before running the program
     user might want to add some symbols before running the program
     (right?).  But sometimes (dynamic loading where the user manually
     (right?).  But sometimes (dynamic loading where the user manually
     introduces the new symbols with add-symbol-file), the code which
     introduces the new symbols with add-symbol-file), the code which
     the symbols describe does not persist between runs.  Currently
     the symbols describe does not persist between runs.  Currently
     the user has to manually nuke all symbols between runs if they
     the user has to manually nuke all symbols between runs if they
     want them to go away (PR 2207).  This is probably reasonable.  */
     want them to go away (PR 2207).  This is probably reasonable.  */
 
 
  if (!args)
  if (!args)
    {
    {
      if (target_can_async_p ())
      if (target_can_async_p ())
        async_disable_stdin ();
        async_disable_stdin ();
    }
    }
  else
  else
    {
    {
      int async_exec = strip_bg_char (&args);
      int async_exec = strip_bg_char (&args);
 
 
      /* If we get a request for running in the bg but the target
      /* If we get a request for running in the bg but the target
         doesn't support it, error out. */
         doesn't support it, error out. */
      if (async_exec && !target_can_async_p ())
      if (async_exec && !target_can_async_p ())
        error (_("Asynchronous execution not supported on this target."));
        error (_("Asynchronous execution not supported on this target."));
 
 
      /* If we don't get a request of running in the bg, then we need
      /* If we don't get a request of running in the bg, then we need
         to simulate synchronous (fg) execution. */
         to simulate synchronous (fg) execution. */
      if (!async_exec && target_can_async_p ())
      if (!async_exec && target_can_async_p ())
        {
        {
          /* Simulate synchronous execution */
          /* Simulate synchronous execution */
          async_disable_stdin ();
          async_disable_stdin ();
        }
        }
 
 
      /* If there were other args, beside '&', process them. */
      /* If there were other args, beside '&', process them. */
      if (args)
      if (args)
        {
        {
          char *old_args = set_inferior_args (xstrdup (args));
          char *old_args = set_inferior_args (xstrdup (args));
          xfree (old_args);
          xfree (old_args);
        }
        }
    }
    }
 
 
  if (from_tty)
  if (from_tty)
    {
    {
      ui_out_field_string (uiout, NULL, "Starting program");
      ui_out_field_string (uiout, NULL, "Starting program");
      ui_out_text (uiout, ": ");
      ui_out_text (uiout, ": ");
      if (exec_file)
      if (exec_file)
        ui_out_field_string (uiout, "execfile", exec_file);
        ui_out_field_string (uiout, "execfile", exec_file);
      ui_out_spaces (uiout, 1);
      ui_out_spaces (uiout, 1);
      /* We call get_inferior_args() because we might need to compute
      /* We call get_inferior_args() because we might need to compute
         the value now.  */
         the value now.  */
      ui_out_field_string (uiout, "infargs", get_inferior_args ());
      ui_out_field_string (uiout, "infargs", get_inferior_args ());
      ui_out_text (uiout, "\n");
      ui_out_text (uiout, "\n");
      ui_out_flush (uiout);
      ui_out_flush (uiout);
    }
    }
 
 
  /* We call get_inferior_args() because we might need to compute
  /* We call get_inferior_args() because we might need to compute
     the value now.  */
     the value now.  */
  target_create_inferior (exec_file, get_inferior_args (),
  target_create_inferior (exec_file, get_inferior_args (),
                          environ_vector (inferior_environ), from_tty);
                          environ_vector (inferior_environ), from_tty);
 
 
  /* Pass zero for FROM_TTY, because at this point the "run" command
  /* Pass zero for FROM_TTY, because at this point the "run" command
     has done its thing; now we are setting up the running program.  */
     has done its thing; now we are setting up the running program.  */
  post_create_inferior (&current_target, 0);
  post_create_inferior (&current_target, 0);
 
 
  /* Start the target running.  */
  /* Start the target running.  */
  proceed ((CORE_ADDR) -1, TARGET_SIGNAL_0, 0);
  proceed ((CORE_ADDR) -1, TARGET_SIGNAL_0, 0);
}
}
 
 
 
 
static void
static void
run_command (char *args, int from_tty)
run_command (char *args, int from_tty)
{
{
  run_command_1 (args, from_tty, 0);
  run_command_1 (args, from_tty, 0);
}
}
 
 
static void
static void
run_no_args_command (char *args, int from_tty)
run_no_args_command (char *args, int from_tty)
{
{
  char *old_args = set_inferior_args (xstrdup (""));
  char *old_args = set_inferior_args (xstrdup (""));
  xfree (old_args);
  xfree (old_args);
}
}


 
 
/* Start the execution of the program up until the beginning of the main
/* Start the execution of the program up until the beginning of the main
   program.  */
   program.  */
 
 
static void
static void
start_command (char *args, int from_tty)
start_command (char *args, int from_tty)
{
{
  /* Some languages such as Ada need to search inside the program
  /* Some languages such as Ada need to search inside the program
     minimal symbols for the location where to put the temporary
     minimal symbols for the location where to put the temporary
     breakpoint before starting.  */
     breakpoint before starting.  */
  if (!have_minimal_symbols ())
  if (!have_minimal_symbols ())
    error (_("No symbol table loaded.  Use the \"file\" command."));
    error (_("No symbol table loaded.  Use the \"file\" command."));
 
 
  /* Run the program until reaching the main procedure...  */
  /* Run the program until reaching the main procedure...  */
  run_command_1 (args, from_tty, 1);
  run_command_1 (args, from_tty, 1);
}
}
 
 
void
void
continue_command (char *proc_count_exp, int from_tty)
continue_command (char *proc_count_exp, int from_tty)
{
{
  int async_exec = 0;
  int async_exec = 0;
  ERROR_NO_INFERIOR;
  ERROR_NO_INFERIOR;
 
 
  /* Find out whether we must run in the background. */
  /* Find out whether we must run in the background. */
  if (proc_count_exp != NULL)
  if (proc_count_exp != NULL)
    async_exec = strip_bg_char (&proc_count_exp);
    async_exec = strip_bg_char (&proc_count_exp);
 
 
  /* If we must run in the background, but the target can't do it,
  /* If we must run in the background, but the target can't do it,
     error out. */
     error out. */
  if (async_exec && !target_can_async_p ())
  if (async_exec && !target_can_async_p ())
    error (_("Asynchronous execution not supported on this target."));
    error (_("Asynchronous execution not supported on this target."));
 
 
  /* If we are not asked to run in the bg, then prepare to run in the
  /* If we are not asked to run in the bg, then prepare to run in the
     foreground, synchronously. */
     foreground, synchronously. */
  if (!async_exec && target_can_async_p ())
  if (!async_exec && target_can_async_p ())
    {
    {
      /* Simulate synchronous execution */
      /* Simulate synchronous execution */
      async_disable_stdin ();
      async_disable_stdin ();
    }
    }
 
 
  /* If have argument (besides '&'), set proceed count of breakpoint
  /* If have argument (besides '&'), set proceed count of breakpoint
     we stopped at.  */
     we stopped at.  */
  if (proc_count_exp != NULL)
  if (proc_count_exp != NULL)
    {
    {
      bpstat bs = stop_bpstat;
      bpstat bs = stop_bpstat;
      int num, stat;
      int num, stat;
      int stopped = 0;
      int stopped = 0;
 
 
      while ((stat = bpstat_num (&bs, &num)) != 0)
      while ((stat = bpstat_num (&bs, &num)) != 0)
        if (stat > 0)
        if (stat > 0)
          {
          {
            set_ignore_count (num,
            set_ignore_count (num,
                              parse_and_eval_long (proc_count_exp) - 1,
                              parse_and_eval_long (proc_count_exp) - 1,
                              from_tty);
                              from_tty);
            /* set_ignore_count prints a message ending with a period.
            /* set_ignore_count prints a message ending with a period.
               So print two spaces before "Continuing.".  */
               So print two spaces before "Continuing.".  */
            if (from_tty)
            if (from_tty)
              printf_filtered ("  ");
              printf_filtered ("  ");
            stopped = 1;
            stopped = 1;
          }
          }
 
 
      if (!stopped && from_tty)
      if (!stopped && from_tty)
        {
        {
          printf_filtered
          printf_filtered
            ("Not stopped at any breakpoint; argument ignored.\n");
            ("Not stopped at any breakpoint; argument ignored.\n");
        }
        }
    }
    }
 
 
  if (from_tty)
  if (from_tty)
    printf_filtered (_("Continuing.\n"));
    printf_filtered (_("Continuing.\n"));
 
 
  clear_proceed_status ();
  clear_proceed_status ();
 
 
  proceed ((CORE_ADDR) -1, TARGET_SIGNAL_DEFAULT, 0);
  proceed ((CORE_ADDR) -1, TARGET_SIGNAL_DEFAULT, 0);
}
}


/* Step until outside of current statement.  */
/* Step until outside of current statement.  */
 
 
static void
static void
step_command (char *count_string, int from_tty)
step_command (char *count_string, int from_tty)
{
{
  step_1 (0, 0, count_string);
  step_1 (0, 0, count_string);
}
}
 
 
/* Likewise, but skip over subroutine calls as if single instructions.  */
/* Likewise, but skip over subroutine calls as if single instructions.  */
 
 
static void
static void
next_command (char *count_string, int from_tty)
next_command (char *count_string, int from_tty)
{
{
  step_1 (1, 0, count_string);
  step_1 (1, 0, count_string);
}
}
 
 
/* Likewise, but step only one instruction.  */
/* Likewise, but step only one instruction.  */
 
 
void
void
stepi_command (char *count_string, int from_tty)
stepi_command (char *count_string, int from_tty)
{
{
  step_1 (0, 1, count_string);
  step_1 (0, 1, count_string);
}
}
 
 
void
void
nexti_command (char *count_string, int from_tty)
nexti_command (char *count_string, int from_tty)
{
{
  step_1 (1, 1, count_string);
  step_1 (1, 1, count_string);
}
}
 
 
static void
static void
disable_longjmp_breakpoint_cleanup (void *ignore)
disable_longjmp_breakpoint_cleanup (void *ignore)
{
{
  disable_longjmp_breakpoint ();
  disable_longjmp_breakpoint ();
}
}
 
 
static void
static void
step_1 (int skip_subroutines, int single_inst, char *count_string)
step_1 (int skip_subroutines, int single_inst, char *count_string)
{
{
  int count = 1;
  int count = 1;
  struct frame_info *frame;
  struct frame_info *frame;
  struct cleanup *cleanups = 0;
  struct cleanup *cleanups = 0;
  int async_exec = 0;
  int async_exec = 0;
 
 
  ERROR_NO_INFERIOR;
  ERROR_NO_INFERIOR;
 
 
  if (count_string)
  if (count_string)
    async_exec = strip_bg_char (&count_string);
    async_exec = strip_bg_char (&count_string);
 
 
  /* If we get a request for running in the bg but the target
  /* If we get a request for running in the bg but the target
     doesn't support it, error out. */
     doesn't support it, error out. */
  if (async_exec && !target_can_async_p ())
  if (async_exec && !target_can_async_p ())
    error (_("Asynchronous execution not supported on this target."));
    error (_("Asynchronous execution not supported on this target."));
 
 
  /* If we don't get a request of running in the bg, then we need
  /* If we don't get a request of running in the bg, then we need
     to simulate synchronous (fg) execution. */
     to simulate synchronous (fg) execution. */
  if (!async_exec && target_can_async_p ())
  if (!async_exec && target_can_async_p ())
    {
    {
      /* Simulate synchronous execution */
      /* Simulate synchronous execution */
      async_disable_stdin ();
      async_disable_stdin ();
    }
    }
 
 
  count = count_string ? parse_and_eval_long (count_string) : 1;
  count = count_string ? parse_and_eval_long (count_string) : 1;
 
 
  if (!single_inst || skip_subroutines)         /* leave si command alone */
  if (!single_inst || skip_subroutines)         /* leave si command alone */
    {
    {
      enable_longjmp_breakpoint ();
      enable_longjmp_breakpoint ();
      if (!target_can_async_p ())
      if (!target_can_async_p ())
        cleanups = make_cleanup (disable_longjmp_breakpoint_cleanup, 0 /*ignore*/);
        cleanups = make_cleanup (disable_longjmp_breakpoint_cleanup, 0 /*ignore*/);
      else
      else
        make_exec_cleanup (disable_longjmp_breakpoint_cleanup, 0 /*ignore*/);
        make_exec_cleanup (disable_longjmp_breakpoint_cleanup, 0 /*ignore*/);
    }
    }
 
 
  /* In synchronous case, all is well, just use the regular for loop. */
  /* In synchronous case, all is well, just use the regular for loop. */
  if (!target_can_async_p ())
  if (!target_can_async_p ())
    {
    {
      for (; count > 0; count--)
      for (; count > 0; count--)
        {
        {
          clear_proceed_status ();
          clear_proceed_status ();
 
 
          frame = get_current_frame ();
          frame = get_current_frame ();
          if (!frame)           /* Avoid coredump here.  Why tho? */
          if (!frame)           /* Avoid coredump here.  Why tho? */
            error (_("No current frame"));
            error (_("No current frame"));
          step_frame_id = get_frame_id (frame);
          step_frame_id = get_frame_id (frame);
 
 
          if (!single_inst)
          if (!single_inst)
            {
            {
              find_pc_line_pc_range (stop_pc, &step_range_start, &step_range_end);
              find_pc_line_pc_range (stop_pc, &step_range_start, &step_range_end);
              if (step_range_end == 0)
              if (step_range_end == 0)
                {
                {
                  char *name;
                  char *name;
                  if (find_pc_partial_function (stop_pc, &name, &step_range_start,
                  if (find_pc_partial_function (stop_pc, &name, &step_range_start,
                                                &step_range_end) == 0)
                                                &step_range_end) == 0)
                    error (_("Cannot find bounds of current function"));
                    error (_("Cannot find bounds of current function"));
 
 
                  target_terminal_ours ();
                  target_terminal_ours ();
                  printf_filtered (_("\
                  printf_filtered (_("\
Single stepping until exit from function %s, \n\
Single stepping until exit from function %s, \n\
which has no line number information.\n"), name);
which has no line number information.\n"), name);
                }
                }
            }
            }
          else
          else
            {
            {
              /* Say we are stepping, but stop after one insn whatever it does.  */
              /* Say we are stepping, but stop after one insn whatever it does.  */
              step_range_start = step_range_end = 1;
              step_range_start = step_range_end = 1;
              if (!skip_subroutines)
              if (!skip_subroutines)
                /* It is stepi.
                /* It is stepi.
                   Don't step over function calls, not even to functions lacking
                   Don't step over function calls, not even to functions lacking
                   line numbers.  */
                   line numbers.  */
                step_over_calls = STEP_OVER_NONE;
                step_over_calls = STEP_OVER_NONE;
            }
            }
 
 
          if (skip_subroutines)
          if (skip_subroutines)
            step_over_calls = STEP_OVER_ALL;
            step_over_calls = STEP_OVER_ALL;
 
 
          step_multi = (count > 1);
          step_multi = (count > 1);
          proceed ((CORE_ADDR) -1, TARGET_SIGNAL_DEFAULT, 1);
          proceed ((CORE_ADDR) -1, TARGET_SIGNAL_DEFAULT, 1);
 
 
          if (!stop_step)
          if (!stop_step)
            break;
            break;
        }
        }
 
 
      if (!single_inst || skip_subroutines)
      if (!single_inst || skip_subroutines)
        do_cleanups (cleanups);
        do_cleanups (cleanups);
      return;
      return;
    }
    }
  /* In case of asynchronous target things get complicated, do only
  /* In case of asynchronous target things get complicated, do only
     one step for now, before returning control to the event loop. Let
     one step for now, before returning control to the event loop. Let
     the continuation figure out how many other steps we need to do,
     the continuation figure out how many other steps we need to do,
     and handle them one at the time, through step_once(). */
     and handle them one at the time, through step_once(). */
  else
  else
    {
    {
      if (target_can_async_p ())
      if (target_can_async_p ())
        step_once (skip_subroutines, single_inst, count);
        step_once (skip_subroutines, single_inst, count);
    }
    }
}
}
 
 
/* Called after we are done with one step operation, to check whether
/* Called after we are done with one step operation, to check whether
   we need to step again, before we print the prompt and return control
   we need to step again, before we print the prompt and return control
   to the user. If count is > 1, we will need to do one more call to
   to the user. If count is > 1, we will need to do one more call to
   proceed(), via step_once(). Basically it is like step_once and
   proceed(), via step_once(). Basically it is like step_once and
   step_1_continuation are co-recursive. */
   step_1_continuation are co-recursive. */
static void
static void
step_1_continuation (struct continuation_arg *arg)
step_1_continuation (struct continuation_arg *arg)
{
{
  int count;
  int count;
  int skip_subroutines;
  int skip_subroutines;
  int single_inst;
  int single_inst;
 
 
  skip_subroutines = arg->data.integer;
  skip_subroutines = arg->data.integer;
  single_inst      = arg->next->data.integer;
  single_inst      = arg->next->data.integer;
  count            = arg->next->next->data.integer;
  count            = arg->next->next->data.integer;
 
 
  if (stop_step)
  if (stop_step)
    step_once (skip_subroutines, single_inst, count - 1);
    step_once (skip_subroutines, single_inst, count - 1);
  else
  else
    if (!single_inst || skip_subroutines)
    if (!single_inst || skip_subroutines)
      do_exec_cleanups (ALL_CLEANUPS);
      do_exec_cleanups (ALL_CLEANUPS);
}
}
 
 
/* Do just one step operation. If count >1 we will have to set up a
/* Do just one step operation. If count >1 we will have to set up a
   continuation to be done after the target stops (after this one
   continuation to be done after the target stops (after this one
   step). This is useful to implement the 'step n' kind of commands, in
   step). This is useful to implement the 'step n' kind of commands, in
   case of asynchronous targets. We had to split step_1 into two parts,
   case of asynchronous targets. We had to split step_1 into two parts,
   one to be done before proceed() and one afterwards. This function is
   one to be done before proceed() and one afterwards. This function is
   called in case of step n with n>1, after the first step operation has
   called in case of step n with n>1, after the first step operation has
   been completed.*/
   been completed.*/
static void
static void
step_once (int skip_subroutines, int single_inst, int count)
step_once (int skip_subroutines, int single_inst, int count)
{
{
  struct continuation_arg *arg1;
  struct continuation_arg *arg1;
  struct continuation_arg *arg2;
  struct continuation_arg *arg2;
  struct continuation_arg *arg3;
  struct continuation_arg *arg3;
  struct frame_info *frame;
  struct frame_info *frame;
 
 
  if (count > 0)
  if (count > 0)
    {
    {
      clear_proceed_status ();
      clear_proceed_status ();
 
 
      frame = get_current_frame ();
      frame = get_current_frame ();
      if (!frame)               /* Avoid coredump here.  Why tho? */
      if (!frame)               /* Avoid coredump here.  Why tho? */
        error (_("No current frame"));
        error (_("No current frame"));
      step_frame_id = get_frame_id (frame);
      step_frame_id = get_frame_id (frame);
 
 
      if (!single_inst)
      if (!single_inst)
        {
        {
          find_pc_line_pc_range (stop_pc, &step_range_start, &step_range_end);
          find_pc_line_pc_range (stop_pc, &step_range_start, &step_range_end);
 
 
          /* If we have no line info, switch to stepi mode.  */
          /* If we have no line info, switch to stepi mode.  */
          if (step_range_end == 0 && step_stop_if_no_debug)
          if (step_range_end == 0 && step_stop_if_no_debug)
            {
            {
              step_range_start = step_range_end = 1;
              step_range_start = step_range_end = 1;
            }
            }
          else if (step_range_end == 0)
          else if (step_range_end == 0)
            {
            {
              char *name;
              char *name;
              if (find_pc_partial_function (stop_pc, &name, &step_range_start,
              if (find_pc_partial_function (stop_pc, &name, &step_range_start,
                                            &step_range_end) == 0)
                                            &step_range_end) == 0)
                error (_("Cannot find bounds of current function"));
                error (_("Cannot find bounds of current function"));
 
 
              target_terminal_ours ();
              target_terminal_ours ();
              printf_filtered (_("\
              printf_filtered (_("\
Single stepping until exit from function %s, \n\
Single stepping until exit from function %s, \n\
which has no line number information.\n"), name);
which has no line number information.\n"), name);
            }
            }
        }
        }
      else
      else
        {
        {
          /* Say we are stepping, but stop after one insn whatever it does.  */
          /* Say we are stepping, but stop after one insn whatever it does.  */
          step_range_start = step_range_end = 1;
          step_range_start = step_range_end = 1;
          if (!skip_subroutines)
          if (!skip_subroutines)
            /* It is stepi.
            /* It is stepi.
               Don't step over function calls, not even to functions lacking
               Don't step over function calls, not even to functions lacking
               line numbers.  */
               line numbers.  */
            step_over_calls = STEP_OVER_NONE;
            step_over_calls = STEP_OVER_NONE;
        }
        }
 
 
      if (skip_subroutines)
      if (skip_subroutines)
        step_over_calls = STEP_OVER_ALL;
        step_over_calls = STEP_OVER_ALL;
 
 
      step_multi = (count > 1);
      step_multi = (count > 1);
      arg1 =
      arg1 =
        (struct continuation_arg *) xmalloc (sizeof (struct continuation_arg));
        (struct continuation_arg *) xmalloc (sizeof (struct continuation_arg));
      arg2 =
      arg2 =
        (struct continuation_arg *) xmalloc (sizeof (struct continuation_arg));
        (struct continuation_arg *) xmalloc (sizeof (struct continuation_arg));
      arg3 =
      arg3 =
        (struct continuation_arg *) xmalloc (sizeof (struct continuation_arg));
        (struct continuation_arg *) xmalloc (sizeof (struct continuation_arg));
      arg1->next = arg2;
      arg1->next = arg2;
      arg1->data.integer = skip_subroutines;
      arg1->data.integer = skip_subroutines;
      arg2->next = arg3;
      arg2->next = arg3;
      arg2->data.integer = single_inst;
      arg2->data.integer = single_inst;
      arg3->next = NULL;
      arg3->next = NULL;
      arg3->data.integer = count;
      arg3->data.integer = count;
      add_intermediate_continuation (step_1_continuation, arg1);
      add_intermediate_continuation (step_1_continuation, arg1);
      proceed ((CORE_ADDR) -1, TARGET_SIGNAL_DEFAULT, 1);
      proceed ((CORE_ADDR) -1, TARGET_SIGNAL_DEFAULT, 1);
    }
    }
}
}
 
 


/* Continue program at specified address.  */
/* Continue program at specified address.  */
 
 
static void
static void
jump_command (char *arg, int from_tty)
jump_command (char *arg, int from_tty)
{
{
  CORE_ADDR addr;
  CORE_ADDR addr;
  struct symtabs_and_lines sals;
  struct symtabs_and_lines sals;
  struct symtab_and_line sal;
  struct symtab_and_line sal;
  struct symbol *fn;
  struct symbol *fn;
  struct symbol *sfn;
  struct symbol *sfn;
  int async_exec = 0;
  int async_exec = 0;
 
 
  ERROR_NO_INFERIOR;
  ERROR_NO_INFERIOR;
 
 
  /* Find out whether we must run in the background. */
  /* Find out whether we must run in the background. */
  if (arg != NULL)
  if (arg != NULL)
    async_exec = strip_bg_char (&arg);
    async_exec = strip_bg_char (&arg);
 
 
  /* If we must run in the background, but the target can't do it,
  /* If we must run in the background, but the target can't do it,
     error out. */
     error out. */
  if (async_exec && !target_can_async_p ())
  if (async_exec && !target_can_async_p ())
    error (_("Asynchronous execution not supported on this target."));
    error (_("Asynchronous execution not supported on this target."));
 
 
  /* If we are not asked to run in the bg, then prepare to run in the
  /* If we are not asked to run in the bg, then prepare to run in the
     foreground, synchronously. */
     foreground, synchronously. */
  if (!async_exec && target_can_async_p ())
  if (!async_exec && target_can_async_p ())
    {
    {
      /* Simulate synchronous execution */
      /* Simulate synchronous execution */
      async_disable_stdin ();
      async_disable_stdin ();
    }
    }
 
 
  if (!arg)
  if (!arg)
    error_no_arg (_("starting address"));
    error_no_arg (_("starting address"));
 
 
  sals = decode_line_spec_1 (arg, 1);
  sals = decode_line_spec_1 (arg, 1);
  if (sals.nelts != 1)
  if (sals.nelts != 1)
    {
    {
      error (_("Unreasonable jump request"));
      error (_("Unreasonable jump request"));
    }
    }
 
 
  sal = sals.sals[0];
  sal = sals.sals[0];
  xfree (sals.sals);
  xfree (sals.sals);
 
 
  if (sal.symtab == 0 && sal.pc == 0)
  if (sal.symtab == 0 && sal.pc == 0)
    error (_("No source file has been specified."));
    error (_("No source file has been specified."));
 
 
  resolve_sal_pc (&sal);        /* May error out */
  resolve_sal_pc (&sal);        /* May error out */
 
 
  /* See if we are trying to jump to another function. */
  /* See if we are trying to jump to another function. */
  fn = get_frame_function (get_current_frame ());
  fn = get_frame_function (get_current_frame ());
  sfn = find_pc_function (sal.pc);
  sfn = find_pc_function (sal.pc);
  if (fn != NULL && sfn != fn)
  if (fn != NULL && sfn != fn)
    {
    {
      if (!query ("Line %d is not in `%s'.  Jump anyway? ", sal.line,
      if (!query ("Line %d is not in `%s'.  Jump anyway? ", sal.line,
                  SYMBOL_PRINT_NAME (fn)))
                  SYMBOL_PRINT_NAME (fn)))
        {
        {
          error (_("Not confirmed."));
          error (_("Not confirmed."));
          /* NOTREACHED */
          /* NOTREACHED */
        }
        }
    }
    }
 
 
  if (sfn != NULL)
  if (sfn != NULL)
    {
    {
      fixup_symbol_section (sfn, 0);
      fixup_symbol_section (sfn, 0);
      if (section_is_overlay (SYMBOL_BFD_SECTION (sfn)) &&
      if (section_is_overlay (SYMBOL_BFD_SECTION (sfn)) &&
          !section_is_mapped (SYMBOL_BFD_SECTION (sfn)))
          !section_is_mapped (SYMBOL_BFD_SECTION (sfn)))
        {
        {
          if (!query ("WARNING!!!  Destination is in unmapped overlay!  Jump anyway? "))
          if (!query ("WARNING!!!  Destination is in unmapped overlay!  Jump anyway? "))
            {
            {
              error (_("Not confirmed."));
              error (_("Not confirmed."));
              /* NOTREACHED */
              /* NOTREACHED */
            }
            }
        }
        }
    }
    }
 
 
  addr = sal.pc;
  addr = sal.pc;
 
 
  if (from_tty)
  if (from_tty)
    {
    {
      printf_filtered (_("Continuing at "));
      printf_filtered (_("Continuing at "));
      fputs_filtered (paddress (addr), gdb_stdout);
      fputs_filtered (paddress (addr), gdb_stdout);
      printf_filtered (".\n");
      printf_filtered (".\n");
    }
    }
 
 
  clear_proceed_status ();
  clear_proceed_status ();
  proceed (addr, TARGET_SIGNAL_0, 0);
  proceed (addr, TARGET_SIGNAL_0, 0);
}
}


 
 
/* Go to line or address in current procedure */
/* Go to line or address in current procedure */
static void
static void
go_command (char *line_no, int from_tty)
go_command (char *line_no, int from_tty)
{
{
  if (line_no == (char *) NULL || !*line_no)
  if (line_no == (char *) NULL || !*line_no)
    printf_filtered (GO_USAGE);
    printf_filtered (GO_USAGE);
  else
  else
    {
    {
      tbreak_command (line_no, from_tty);
      tbreak_command (line_no, from_tty);
      jump_command (line_no, from_tty);
      jump_command (line_no, from_tty);
    }
    }
}
}


 
 
/* Continue program giving it specified signal.  */
/* Continue program giving it specified signal.  */
 
 
static void
static void
signal_command (char *signum_exp, int from_tty)
signal_command (char *signum_exp, int from_tty)
{
{
  enum target_signal oursig;
  enum target_signal oursig;
 
 
  dont_repeat ();               /* Too dangerous.  */
  dont_repeat ();               /* Too dangerous.  */
  ERROR_NO_INFERIOR;
  ERROR_NO_INFERIOR;
 
 
  if (!signum_exp)
  if (!signum_exp)
    error_no_arg (_("signal number"));
    error_no_arg (_("signal number"));
 
 
  /* It would be even slicker to make signal names be valid expressions,
  /* It would be even slicker to make signal names be valid expressions,
     (the type could be "enum $signal" or some such), then the user could
     (the type could be "enum $signal" or some such), then the user could
     assign them to convenience variables.  */
     assign them to convenience variables.  */
  oursig = target_signal_from_name (signum_exp);
  oursig = target_signal_from_name (signum_exp);
 
 
  if (oursig == TARGET_SIGNAL_UNKNOWN)
  if (oursig == TARGET_SIGNAL_UNKNOWN)
    {
    {
      /* No, try numeric.  */
      /* No, try numeric.  */
      int num = parse_and_eval_long (signum_exp);
      int num = parse_and_eval_long (signum_exp);
 
 
      if (num == 0)
      if (num == 0)
        oursig = TARGET_SIGNAL_0;
        oursig = TARGET_SIGNAL_0;
      else
      else
        oursig = target_signal_from_command (num);
        oursig = target_signal_from_command (num);
    }
    }
 
 
  if (from_tty)
  if (from_tty)
    {
    {
      if (oursig == TARGET_SIGNAL_0)
      if (oursig == TARGET_SIGNAL_0)
        printf_filtered (_("Continuing with no signal.\n"));
        printf_filtered (_("Continuing with no signal.\n"));
      else
      else
        printf_filtered (_("Continuing with signal %s.\n"),
        printf_filtered (_("Continuing with signal %s.\n"),
                         target_signal_to_name (oursig));
                         target_signal_to_name (oursig));
    }
    }
 
 
  clear_proceed_status ();
  clear_proceed_status ();
  /* "signal 0" should not get stuck if we are stopped at a breakpoint.
  /* "signal 0" should not get stuck if we are stopped at a breakpoint.
     FIXME: Neither should "signal foo" but when I tried passing
     FIXME: Neither should "signal foo" but when I tried passing
     (CORE_ADDR)-1 unconditionally I got a testsuite failure which I haven't
     (CORE_ADDR)-1 unconditionally I got a testsuite failure which I haven't
     tried to track down yet.  */
     tried to track down yet.  */
  proceed (oursig == TARGET_SIGNAL_0 ? (CORE_ADDR) -1 : stop_pc, oursig, 0);
  proceed (oursig == TARGET_SIGNAL_0 ? (CORE_ADDR) -1 : stop_pc, oursig, 0);
}
}
 
 
/* Proceed until we reach a different source line with pc greater than
/* Proceed until we reach a different source line with pc greater than
   our current one or exit the function.  We skip calls in both cases.
   our current one or exit the function.  We skip calls in both cases.
 
 
   Note that eventually this command should probably be changed so
   Note that eventually this command should probably be changed so
   that only source lines are printed out when we hit the breakpoint
   that only source lines are printed out when we hit the breakpoint
   we set.  This may involve changes to wait_for_inferior and the
   we set.  This may involve changes to wait_for_inferior and the
   proceed status code.  */
   proceed status code.  */
 
 
static void
static void
until_next_command (int from_tty)
until_next_command (int from_tty)
{
{
  struct frame_info *frame;
  struct frame_info *frame;
  CORE_ADDR pc;
  CORE_ADDR pc;
  struct symbol *func;
  struct symbol *func;
  struct symtab_and_line sal;
  struct symtab_and_line sal;
 
 
  clear_proceed_status ();
  clear_proceed_status ();
 
 
  frame = get_current_frame ();
  frame = get_current_frame ();
 
 
  /* Step until either exited from this function or greater
  /* Step until either exited from this function or greater
     than the current line (if in symbolic section) or pc (if
     than the current line (if in symbolic section) or pc (if
     not). */
     not). */
 
 
  pc = read_pc ();
  pc = read_pc ();
  func = find_pc_function (pc);
  func = find_pc_function (pc);
 
 
  if (!func)
  if (!func)
    {
    {
      struct minimal_symbol *msymbol = lookup_minimal_symbol_by_pc (pc);
      struct minimal_symbol *msymbol = lookup_minimal_symbol_by_pc (pc);
 
 
      if (msymbol == NULL)
      if (msymbol == NULL)
        error (_("Execution is not within a known function."));
        error (_("Execution is not within a known function."));
 
 
      step_range_start = SYMBOL_VALUE_ADDRESS (msymbol);
      step_range_start = SYMBOL_VALUE_ADDRESS (msymbol);
      step_range_end = pc;
      step_range_end = pc;
    }
    }
  else
  else
    {
    {
      sal = find_pc_line (pc, 0);
      sal = find_pc_line (pc, 0);
 
 
      step_range_start = BLOCK_START (SYMBOL_BLOCK_VALUE (func));
      step_range_start = BLOCK_START (SYMBOL_BLOCK_VALUE (func));
      step_range_end = sal.end;
      step_range_end = sal.end;
    }
    }
 
 
  step_over_calls = STEP_OVER_ALL;
  step_over_calls = STEP_OVER_ALL;
  step_frame_id = get_frame_id (frame);
  step_frame_id = get_frame_id (frame);
 
 
  step_multi = 0;                /* Only one call to proceed */
  step_multi = 0;                /* Only one call to proceed */
 
 
  proceed ((CORE_ADDR) -1, TARGET_SIGNAL_DEFAULT, 1);
  proceed ((CORE_ADDR) -1, TARGET_SIGNAL_DEFAULT, 1);
}
}
 
 
static void
static void
until_command (char *arg, int from_tty)
until_command (char *arg, int from_tty)
{
{
  int async_exec = 0;
  int async_exec = 0;
 
 
  if (!target_has_execution)
  if (!target_has_execution)
    error (_("The program is not running."));
    error (_("The program is not running."));
 
 
  /* Find out whether we must run in the background. */
  /* Find out whether we must run in the background. */
  if (arg != NULL)
  if (arg != NULL)
    async_exec = strip_bg_char (&arg);
    async_exec = strip_bg_char (&arg);
 
 
  /* If we must run in the background, but the target can't do it,
  /* If we must run in the background, but the target can't do it,
     error out. */
     error out. */
  if (async_exec && !target_can_async_p ())
  if (async_exec && !target_can_async_p ())
    error (_("Asynchronous execution not supported on this target."));
    error (_("Asynchronous execution not supported on this target."));
 
 
  /* If we are not asked to run in the bg, then prepare to run in the
  /* If we are not asked to run in the bg, then prepare to run in the
     foreground, synchronously. */
     foreground, synchronously. */
  if (!async_exec && target_can_async_p ())
  if (!async_exec && target_can_async_p ())
    {
    {
      /* Simulate synchronous execution */
      /* Simulate synchronous execution */
      async_disable_stdin ();
      async_disable_stdin ();
    }
    }
 
 
  if (arg)
  if (arg)
    until_break_command (arg, from_tty, 0);
    until_break_command (arg, from_tty, 0);
  else
  else
    until_next_command (from_tty);
    until_next_command (from_tty);
}
}
 
 
static void
static void
advance_command (char *arg, int from_tty)
advance_command (char *arg, int from_tty)
{
{
  int async_exec = 0;
  int async_exec = 0;
 
 
  if (!target_has_execution)
  if (!target_has_execution)
    error (_("The program is not running."));
    error (_("The program is not running."));
 
 
  if (arg == NULL)
  if (arg == NULL)
    error_no_arg (_("a location"));
    error_no_arg (_("a location"));
 
 
  /* Find out whether we must run in the background.  */
  /* Find out whether we must run in the background.  */
  if (arg != NULL)
  if (arg != NULL)
    async_exec = strip_bg_char (&arg);
    async_exec = strip_bg_char (&arg);
 
 
  /* If we must run in the background, but the target can't do it,
  /* If we must run in the background, but the target can't do it,
     error out.  */
     error out.  */
  if (async_exec && !target_can_async_p ())
  if (async_exec && !target_can_async_p ())
    error (_("Asynchronous execution not supported on this target."));
    error (_("Asynchronous execution not supported on this target."));
 
 
  /* If we are not asked to run in the bg, then prepare to run in the
  /* If we are not asked to run in the bg, then prepare to run in the
     foreground, synchronously.  */
     foreground, synchronously.  */
  if (!async_exec && target_can_async_p ())
  if (!async_exec && target_can_async_p ())
    {
    {
      /* Simulate synchronous execution.  */
      /* Simulate synchronous execution.  */
      async_disable_stdin ();
      async_disable_stdin ();
    }
    }
 
 
  until_break_command (arg, from_tty, 1);
  until_break_command (arg, from_tty, 1);
}
}


/* Print the result of a function at the end of a 'finish' command.  */
/* Print the result of a function at the end of a 'finish' command.  */
 
 
static void
static void
print_return_value (struct type *value_type)
print_return_value (struct type *value_type)
{
{
  struct gdbarch *gdbarch = current_gdbarch;
  struct gdbarch *gdbarch = current_gdbarch;
  struct cleanup *old_chain;
  struct cleanup *old_chain;
  struct ui_stream *stb;
  struct ui_stream *stb;
  struct value *value;
  struct value *value;
 
 
  CHECK_TYPEDEF (value_type);
  CHECK_TYPEDEF (value_type);
  gdb_assert (TYPE_CODE (value_type) != TYPE_CODE_VOID);
  gdb_assert (TYPE_CODE (value_type) != TYPE_CODE_VOID);
 
 
  /* FIXME: 2003-09-27: When returning from a nested inferior function
  /* FIXME: 2003-09-27: When returning from a nested inferior function
     call, it's possible (with no help from the architecture vector)
     call, it's possible (with no help from the architecture vector)
     to locate and return/print a "struct return" value.  This is just
     to locate and return/print a "struct return" value.  This is just
     a more complicated case of what is already being done in in the
     a more complicated case of what is already being done in in the
     inferior function call code.  In fact, when inferior function
     inferior function call code.  In fact, when inferior function
     calls are made async, this will likely be made the norm.  */
     calls are made async, this will likely be made the norm.  */
 
 
  switch (gdbarch_return_value (gdbarch, value_type, NULL, NULL, NULL))
  switch (gdbarch_return_value (gdbarch, value_type, NULL, NULL, NULL))
    {
    {
    case RETURN_VALUE_REGISTER_CONVENTION:
    case RETURN_VALUE_REGISTER_CONVENTION:
    case RETURN_VALUE_ABI_RETURNS_ADDRESS:
    case RETURN_VALUE_ABI_RETURNS_ADDRESS:
    case RETURN_VALUE_ABI_PRESERVES_ADDRESS:
    case RETURN_VALUE_ABI_PRESERVES_ADDRESS:
      value = allocate_value (value_type);
      value = allocate_value (value_type);
      gdbarch_return_value (gdbarch, value_type, stop_registers,
      gdbarch_return_value (gdbarch, value_type, stop_registers,
                            value_contents_raw (value), NULL);
                            value_contents_raw (value), NULL);
      break;
      break;
    case RETURN_VALUE_STRUCT_CONVENTION:
    case RETURN_VALUE_STRUCT_CONVENTION:
      value = NULL;
      value = NULL;
      break;
      break;
    default:
    default:
      internal_error (__FILE__, __LINE__, _("bad switch"));
      internal_error (__FILE__, __LINE__, _("bad switch"));
    }
    }
 
 
  if (value)
  if (value)
    {
    {
      /* Print it.  */
      /* Print it.  */
      stb = ui_out_stream_new (uiout);
      stb = ui_out_stream_new (uiout);
      old_chain = make_cleanup_ui_out_stream_delete (stb);
      old_chain = make_cleanup_ui_out_stream_delete (stb);
      ui_out_text (uiout, "Value returned is ");
      ui_out_text (uiout, "Value returned is ");
      ui_out_field_fmt (uiout, "gdb-result-var", "$%d",
      ui_out_field_fmt (uiout, "gdb-result-var", "$%d",
                        record_latest_value (value));
                        record_latest_value (value));
      ui_out_text (uiout, " = ");
      ui_out_text (uiout, " = ");
      value_print (value, stb->stream, 0, Val_no_prettyprint);
      value_print (value, stb->stream, 0, Val_no_prettyprint);
      ui_out_field_stream (uiout, "return-value", stb);
      ui_out_field_stream (uiout, "return-value", stb);
      ui_out_text (uiout, "\n");
      ui_out_text (uiout, "\n");
      do_cleanups (old_chain);
      do_cleanups (old_chain);
    }
    }
  else
  else
    {
    {
      ui_out_text (uiout, "Value returned has type: ");
      ui_out_text (uiout, "Value returned has type: ");
      ui_out_field_string (uiout, "return-type", TYPE_NAME (value_type));
      ui_out_field_string (uiout, "return-type", TYPE_NAME (value_type));
      ui_out_text (uiout, ".");
      ui_out_text (uiout, ".");
      ui_out_text (uiout, " Cannot determine contents\n");
      ui_out_text (uiout, " Cannot determine contents\n");
    }
    }
}
}
 
 
/* Stuff that needs to be done by the finish command after the target
/* Stuff that needs to be done by the finish command after the target
   has stopped.  In asynchronous mode, we wait for the target to stop
   has stopped.  In asynchronous mode, we wait for the target to stop
   in the call to poll or select in the event loop, so it is
   in the call to poll or select in the event loop, so it is
   impossible to do all the stuff as part of the finish_command
   impossible to do all the stuff as part of the finish_command
   function itself.  The only chance we have to complete this command
   function itself.  The only chance we have to complete this command
   is in fetch_inferior_event, which is called by the event loop as
   is in fetch_inferior_event, which is called by the event loop as
   soon as it detects that the target has stopped. This function is
   soon as it detects that the target has stopped. This function is
   called via the cmd_continuation pointer.  */
   called via the cmd_continuation pointer.  */
 
 
static void
static void
finish_command_continuation (struct continuation_arg *arg)
finish_command_continuation (struct continuation_arg *arg)
{
{
  struct symbol *function;
  struct symbol *function;
  struct breakpoint *breakpoint;
  struct breakpoint *breakpoint;
  struct cleanup *cleanups;
  struct cleanup *cleanups;
 
 
  breakpoint = (struct breakpoint *) arg->data.pointer;
  breakpoint = (struct breakpoint *) arg->data.pointer;
  function = (struct symbol *) arg->next->data.pointer;
  function = (struct symbol *) arg->next->data.pointer;
  cleanups = (struct cleanup *) arg->next->next->data.pointer;
  cleanups = (struct cleanup *) arg->next->next->data.pointer;
 
 
  if (bpstat_find_breakpoint (stop_bpstat, breakpoint) != NULL
  if (bpstat_find_breakpoint (stop_bpstat, breakpoint) != NULL
      && function != NULL)
      && function != NULL)
    {
    {
      struct type *value_type;
      struct type *value_type;
 
 
      value_type = TYPE_TARGET_TYPE (SYMBOL_TYPE (function));
      value_type = TYPE_TARGET_TYPE (SYMBOL_TYPE (function));
      if (!value_type)
      if (!value_type)
        internal_error (__FILE__, __LINE__,
        internal_error (__FILE__, __LINE__,
                        _("finish_command: function has no target type"));
                        _("finish_command: function has no target type"));
 
 
      if (TYPE_CODE (value_type) != TYPE_CODE_VOID)
      if (TYPE_CODE (value_type) != TYPE_CODE_VOID)
        print_return_value (value_type);
        print_return_value (value_type);
    }
    }
 
 
  do_exec_cleanups (cleanups);
  do_exec_cleanups (cleanups);
}
}
 
 
/* "finish": Set a temporary breakpoint at the place the selected
/* "finish": Set a temporary breakpoint at the place the selected
   frame will return to, then continue.  */
   frame will return to, then continue.  */
 
 
static void
static void
finish_command (char *arg, int from_tty)
finish_command (char *arg, int from_tty)
{
{
  struct symtab_and_line sal;
  struct symtab_and_line sal;
  struct frame_info *frame;
  struct frame_info *frame;
  struct symbol *function;
  struct symbol *function;
  struct breakpoint *breakpoint;
  struct breakpoint *breakpoint;
  struct cleanup *old_chain;
  struct cleanup *old_chain;
  struct continuation_arg *arg1, *arg2, *arg3;
  struct continuation_arg *arg1, *arg2, *arg3;
 
 
  int async_exec = 0;
  int async_exec = 0;
 
 
  /* Find out whether we must run in the background.  */
  /* Find out whether we must run in the background.  */
  if (arg != NULL)
  if (arg != NULL)
    async_exec = strip_bg_char (&arg);
    async_exec = strip_bg_char (&arg);
 
 
  /* If we must run in the background, but the target can't do it,
  /* If we must run in the background, but the target can't do it,
     error out.  */
     error out.  */
  if (async_exec && !target_can_async_p ())
  if (async_exec && !target_can_async_p ())
    error (_("Asynchronous execution not supported on this target."));
    error (_("Asynchronous execution not supported on this target."));
 
 
  /* If we are not asked to run in the bg, then prepare to run in the
  /* If we are not asked to run in the bg, then prepare to run in the
     foreground, synchronously.  */
     foreground, synchronously.  */
  if (!async_exec && target_can_async_p ())
  if (!async_exec && target_can_async_p ())
    {
    {
      /* Simulate synchronous execution.  */
      /* Simulate synchronous execution.  */
      async_disable_stdin ();
      async_disable_stdin ();
    }
    }
 
 
  if (arg)
  if (arg)
    error (_("The \"finish\" command does not take any arguments."));
    error (_("The \"finish\" command does not take any arguments."));
  if (!target_has_execution)
  if (!target_has_execution)
    error (_("The program is not running."));
    error (_("The program is not running."));
 
 
  frame = get_prev_frame (get_selected_frame (_("No selected frame.")));
  frame = get_prev_frame (get_selected_frame (_("No selected frame.")));
  if (frame == 0)
  if (frame == 0)
    error (_("\"finish\" not meaningful in the outermost frame."));
    error (_("\"finish\" not meaningful in the outermost frame."));
 
 
  clear_proceed_status ();
  clear_proceed_status ();
 
 
  sal = find_pc_line (get_frame_pc (frame), 0);
  sal = find_pc_line (get_frame_pc (frame), 0);
  sal.pc = get_frame_pc (frame);
  sal.pc = get_frame_pc (frame);
 
 
  breakpoint = set_momentary_breakpoint (sal, get_frame_id (frame), bp_finish);
  breakpoint = set_momentary_breakpoint (sal, get_frame_id (frame), bp_finish);
 
 
  if (!target_can_async_p ())
  if (!target_can_async_p ())
    old_chain = make_cleanup_delete_breakpoint (breakpoint);
    old_chain = make_cleanup_delete_breakpoint (breakpoint);
  else
  else
    old_chain = make_exec_cleanup_delete_breakpoint (breakpoint);
    old_chain = make_exec_cleanup_delete_breakpoint (breakpoint);
 
 
  /* Find the function we will return from.  */
  /* Find the function we will return from.  */
 
 
  function = find_pc_function (get_frame_pc (get_selected_frame (NULL)));
  function = find_pc_function (get_frame_pc (get_selected_frame (NULL)));
 
 
  /* Print info on the selected frame, including level number but not
  /* Print info on the selected frame, including level number but not
     source.  */
     source.  */
  if (from_tty)
  if (from_tty)
    {
    {
      printf_filtered (_("Run till exit from "));
      printf_filtered (_("Run till exit from "));
      print_stack_frame (get_selected_frame (NULL), 1, LOCATION);
      print_stack_frame (get_selected_frame (NULL), 1, LOCATION);
    }
    }
 
 
  /* If running asynchronously and the target support asynchronous
  /* If running asynchronously and the target support asynchronous
     execution, set things up for the rest of the finish command to be
     execution, set things up for the rest of the finish command to be
     completed later on, when gdb has detected that the target has
     completed later on, when gdb has detected that the target has
     stopped, in fetch_inferior_event.  */
     stopped, in fetch_inferior_event.  */
  if (target_can_async_p ())
  if (target_can_async_p ())
    {
    {
      arg1 =
      arg1 =
        (struct continuation_arg *) xmalloc (sizeof (struct continuation_arg));
        (struct continuation_arg *) xmalloc (sizeof (struct continuation_arg));
      arg2 =
      arg2 =
        (struct continuation_arg *) xmalloc (sizeof (struct continuation_arg));
        (struct continuation_arg *) xmalloc (sizeof (struct continuation_arg));
      arg3 =
      arg3 =
        (struct continuation_arg *) xmalloc (sizeof (struct continuation_arg));
        (struct continuation_arg *) xmalloc (sizeof (struct continuation_arg));
      arg1->next = arg2;
      arg1->next = arg2;
      arg2->next = arg3;
      arg2->next = arg3;
      arg3->next = NULL;
      arg3->next = NULL;
      arg1->data.pointer = breakpoint;
      arg1->data.pointer = breakpoint;
      arg2->data.pointer = function;
      arg2->data.pointer = function;
      arg3->data.pointer = old_chain;
      arg3->data.pointer = old_chain;
      add_continuation (finish_command_continuation, arg1);
      add_continuation (finish_command_continuation, arg1);
    }
    }
 
 
  proceed_to_finish = 1;        /* We want stop_registers, please...  */
  proceed_to_finish = 1;        /* We want stop_registers, please...  */
  proceed ((CORE_ADDR) -1, TARGET_SIGNAL_DEFAULT, 0);
  proceed ((CORE_ADDR) -1, TARGET_SIGNAL_DEFAULT, 0);
 
 
  /* Do this only if not running asynchronously or if the target
  /* Do this only if not running asynchronously or if the target
     cannot do async execution.  Otherwise, complete this command when
     cannot do async execution.  Otherwise, complete this command when
     the target actually stops, in fetch_inferior_event.  */
     the target actually stops, in fetch_inferior_event.  */
  if (!target_can_async_p ())
  if (!target_can_async_p ())
    {
    {
      /* Did we stop at our breakpoint?  */
      /* Did we stop at our breakpoint?  */
      if (bpstat_find_breakpoint (stop_bpstat, breakpoint) != NULL
      if (bpstat_find_breakpoint (stop_bpstat, breakpoint) != NULL
          && function != NULL)
          && function != NULL)
        {
        {
          struct type *value_type;
          struct type *value_type;
 
 
          value_type = TYPE_TARGET_TYPE (SYMBOL_TYPE (function));
          value_type = TYPE_TARGET_TYPE (SYMBOL_TYPE (function));
          if (!value_type)
          if (!value_type)
            internal_error (__FILE__, __LINE__,
            internal_error (__FILE__, __LINE__,
                            _("finish_command: function has no target type"));
                            _("finish_command: function has no target type"));
 
 
          if (TYPE_CODE (value_type) != TYPE_CODE_VOID)
          if (TYPE_CODE (value_type) != TYPE_CODE_VOID)
            print_return_value (value_type);
            print_return_value (value_type);
        }
        }
 
 
      do_cleanups (old_chain);
      do_cleanups (old_chain);
    }
    }
}
}


 
 
static void
static void
program_info (char *args, int from_tty)
program_info (char *args, int from_tty)
{
{
  bpstat bs = stop_bpstat;
  bpstat bs = stop_bpstat;
  int num;
  int num;
  int stat = bpstat_num (&bs, &num);
  int stat = bpstat_num (&bs, &num);
 
 
  if (!target_has_execution)
  if (!target_has_execution)
    {
    {
      printf_filtered (_("The program being debugged is not being run.\n"));
      printf_filtered (_("The program being debugged is not being run.\n"));
      return;
      return;
    }
    }
 
 
  target_files_info ();
  target_files_info ();
  printf_filtered (_("Program stopped at %s.\n"),
  printf_filtered (_("Program stopped at %s.\n"),
                   hex_string ((unsigned long) stop_pc));
                   hex_string ((unsigned long) stop_pc));
  if (stop_step)
  if (stop_step)
    printf_filtered (_("It stopped after being stepped.\n"));
    printf_filtered (_("It stopped after being stepped.\n"));
  else if (stat != 0)
  else if (stat != 0)
    {
    {
      /* There may be several breakpoints in the same place, so this
      /* There may be several breakpoints in the same place, so this
         isn't as strange as it seems.  */
         isn't as strange as it seems.  */
      while (stat != 0)
      while (stat != 0)
        {
        {
          if (stat < 0)
          if (stat < 0)
            {
            {
              printf_filtered (_("\
              printf_filtered (_("\
It stopped at a breakpoint that has since been deleted.\n"));
It stopped at a breakpoint that has since been deleted.\n"));
            }
            }
          else
          else
            printf_filtered (_("It stopped at breakpoint %d.\n"), num);
            printf_filtered (_("It stopped at breakpoint %d.\n"), num);
          stat = bpstat_num (&bs, &num);
          stat = bpstat_num (&bs, &num);
        }
        }
    }
    }
  else if (stop_signal != TARGET_SIGNAL_0)
  else if (stop_signal != TARGET_SIGNAL_0)
    {
    {
      printf_filtered (_("It stopped with signal %s, %s.\n"),
      printf_filtered (_("It stopped with signal %s, %s.\n"),
                       target_signal_to_name (stop_signal),
                       target_signal_to_name (stop_signal),
                       target_signal_to_string (stop_signal));
                       target_signal_to_string (stop_signal));
    }
    }
 
 
  if (!from_tty)
  if (!from_tty)
    {
    {
      printf_filtered (_("\
      printf_filtered (_("\
Type \"info stack\" or \"info registers\" for more information.\n"));
Type \"info stack\" or \"info registers\" for more information.\n"));
    }
    }
}
}


static void
static void
environment_info (char *var, int from_tty)
environment_info (char *var, int from_tty)
{
{
  if (var)
  if (var)
    {
    {
      char *val = get_in_environ (inferior_environ, var);
      char *val = get_in_environ (inferior_environ, var);
      if (val)
      if (val)
        {
        {
          puts_filtered (var);
          puts_filtered (var);
          puts_filtered (" = ");
          puts_filtered (" = ");
          puts_filtered (val);
          puts_filtered (val);
          puts_filtered ("\n");
          puts_filtered ("\n");
        }
        }
      else
      else
        {
        {
          puts_filtered ("Environment variable \"");
          puts_filtered ("Environment variable \"");
          puts_filtered (var);
          puts_filtered (var);
          puts_filtered ("\" not defined.\n");
          puts_filtered ("\" not defined.\n");
        }
        }
    }
    }
  else
  else
    {
    {
      char **vector = environ_vector (inferior_environ);
      char **vector = environ_vector (inferior_environ);
      while (*vector)
      while (*vector)
        {
        {
          puts_filtered (*vector++);
          puts_filtered (*vector++);
          puts_filtered ("\n");
          puts_filtered ("\n");
        }
        }
    }
    }
}
}
 
 
static void
static void
set_environment_command (char *arg, int from_tty)
set_environment_command (char *arg, int from_tty)
{
{
  char *p, *val, *var;
  char *p, *val, *var;
  int nullset = 0;
  int nullset = 0;
 
 
  if (arg == 0)
  if (arg == 0)
    error_no_arg (_("environment variable and value"));
    error_no_arg (_("environment variable and value"));
 
 
  /* Find seperation between variable name and value */
  /* Find seperation between variable name and value */
  p = (char *) strchr (arg, '=');
  p = (char *) strchr (arg, '=');
  val = (char *) strchr (arg, ' ');
  val = (char *) strchr (arg, ' ');
 
 
  if (p != 0 && val != 0)
  if (p != 0 && val != 0)
    {
    {
      /* We have both a space and an equals.  If the space is before the
      /* We have both a space and an equals.  If the space is before the
         equals, walk forward over the spaces til we see a nonspace
         equals, walk forward over the spaces til we see a nonspace
         (possibly the equals). */
         (possibly the equals). */
      if (p > val)
      if (p > val)
        while (*val == ' ')
        while (*val == ' ')
          val++;
          val++;
 
 
      /* Now if the = is after the char following the spaces,
      /* Now if the = is after the char following the spaces,
         take the char following the spaces.  */
         take the char following the spaces.  */
      if (p > val)
      if (p > val)
        p = val - 1;
        p = val - 1;
    }
    }
  else if (val != 0 && p == 0)
  else if (val != 0 && p == 0)
    p = val;
    p = val;
 
 
  if (p == arg)
  if (p == arg)
    error_no_arg (_("environment variable to set"));
    error_no_arg (_("environment variable to set"));
 
 
  if (p == 0 || p[1] == 0)
  if (p == 0 || p[1] == 0)
    {
    {
      nullset = 1;
      nullset = 1;
      if (p == 0)
      if (p == 0)
        p = arg + strlen (arg); /* So that savestring below will work */
        p = arg + strlen (arg); /* So that savestring below will work */
    }
    }
  else
  else
    {
    {
      /* Not setting variable value to null */
      /* Not setting variable value to null */
      val = p + 1;
      val = p + 1;
      while (*val == ' ' || *val == '\t')
      while (*val == ' ' || *val == '\t')
        val++;
        val++;
    }
    }
 
 
  while (p != arg && (p[-1] == ' ' || p[-1] == '\t'))
  while (p != arg && (p[-1] == ' ' || p[-1] == '\t'))
    p--;
    p--;
 
 
  var = savestring (arg, p - arg);
  var = savestring (arg, p - arg);
  if (nullset)
  if (nullset)
    {
    {
      printf_filtered (_("\
      printf_filtered (_("\
Setting environment variable \"%s\" to null value.\n"),
Setting environment variable \"%s\" to null value.\n"),
                       var);
                       var);
      set_in_environ (inferior_environ, var, "");
      set_in_environ (inferior_environ, var, "");
    }
    }
  else
  else
    set_in_environ (inferior_environ, var, val);
    set_in_environ (inferior_environ, var, val);
  xfree (var);
  xfree (var);
}
}
 
 
static void
static void
unset_environment_command (char *var, int from_tty)
unset_environment_command (char *var, int from_tty)
{
{
  if (var == 0)
  if (var == 0)
    {
    {
      /* If there is no argument, delete all environment variables.
      /* If there is no argument, delete all environment variables.
         Ask for confirmation if reading from the terminal.  */
         Ask for confirmation if reading from the terminal.  */
      if (!from_tty || query (_("Delete all environment variables? ")))
      if (!from_tty || query (_("Delete all environment variables? ")))
        {
        {
          free_environ (inferior_environ);
          free_environ (inferior_environ);
          inferior_environ = make_environ ();
          inferior_environ = make_environ ();
        }
        }
    }
    }
  else
  else
    unset_in_environ (inferior_environ, var);
    unset_in_environ (inferior_environ, var);
}
}
 
 
/* Handle the execution path (PATH variable) */
/* Handle the execution path (PATH variable) */
 
 
static const char path_var_name[] = "PATH";
static const char path_var_name[] = "PATH";
 
 
static void
static void
path_info (char *args, int from_tty)
path_info (char *args, int from_tty)
{
{
  puts_filtered ("Executable and object file path: ");
  puts_filtered ("Executable and object file path: ");
  puts_filtered (get_in_environ (inferior_environ, path_var_name));
  puts_filtered (get_in_environ (inferior_environ, path_var_name));
  puts_filtered ("\n");
  puts_filtered ("\n");
}
}
 
 
/* Add zero or more directories to the front of the execution path.  */
/* Add zero or more directories to the front of the execution path.  */
 
 
static void
static void
path_command (char *dirname, int from_tty)
path_command (char *dirname, int from_tty)
{
{
  char *exec_path;
  char *exec_path;
  char *env;
  char *env;
  dont_repeat ();
  dont_repeat ();
  env = get_in_environ (inferior_environ, path_var_name);
  env = get_in_environ (inferior_environ, path_var_name);
  /* Can be null if path is not set */
  /* Can be null if path is not set */
  if (!env)
  if (!env)
    env = "";
    env = "";
  exec_path = xstrdup (env);
  exec_path = xstrdup (env);
  mod_path (dirname, &exec_path);
  mod_path (dirname, &exec_path);
  set_in_environ (inferior_environ, path_var_name, exec_path);
  set_in_environ (inferior_environ, path_var_name, exec_path);
  xfree (exec_path);
  xfree (exec_path);
  if (from_tty)
  if (from_tty)
    path_info ((char *) NULL, from_tty);
    path_info ((char *) NULL, from_tty);
}
}


 
 
/* Print out the machine register regnum. If regnum is -1, print all
/* Print out the machine register regnum. If regnum is -1, print all
   registers (print_all == 1) or all non-float and non-vector
   registers (print_all == 1) or all non-float and non-vector
   registers (print_all == 0).
   registers (print_all == 0).
 
 
   For most machines, having all_registers_info() print the
   For most machines, having all_registers_info() print the
   register(s) one per line is good enough.  If a different format is
   register(s) one per line is good enough.  If a different format is
   required, (eg, for MIPS or Pyramid 90x, which both have lots of
   required, (eg, for MIPS or Pyramid 90x, which both have lots of
   regs), or there is an existing convention for showing all the
   regs), or there is an existing convention for showing all the
   registers, define the architecture method PRINT_REGISTERS_INFO to
   registers, define the architecture method PRINT_REGISTERS_INFO to
   provide that format.  */
   provide that format.  */
 
 
void
void
default_print_registers_info (struct gdbarch *gdbarch,
default_print_registers_info (struct gdbarch *gdbarch,
                              struct ui_file *file,
                              struct ui_file *file,
                              struct frame_info *frame,
                              struct frame_info *frame,
                              int regnum, int print_all)
                              int regnum, int print_all)
{
{
  int i;
  int i;
  const int numregs = gdbarch_num_regs (gdbarch)
  const int numregs = gdbarch_num_regs (gdbarch)
                      + gdbarch_num_pseudo_regs (gdbarch);
                      + gdbarch_num_pseudo_regs (gdbarch);
  gdb_byte buffer[MAX_REGISTER_SIZE];
  gdb_byte buffer[MAX_REGISTER_SIZE];
 
 
  for (i = 0; i < numregs; i++)
  for (i = 0; i < numregs; i++)
    {
    {
      /* Decide between printing all regs, non-float / vector regs, or
      /* Decide between printing all regs, non-float / vector regs, or
         specific reg.  */
         specific reg.  */
      if (regnum == -1)
      if (regnum == -1)
        {
        {
          if (print_all)
          if (print_all)
            {
            {
              if (!gdbarch_register_reggroup_p (gdbarch, i, all_reggroup))
              if (!gdbarch_register_reggroup_p (gdbarch, i, all_reggroup))
                continue;
                continue;
            }
            }
          else
          else
            {
            {
              if (!gdbarch_register_reggroup_p (gdbarch, i, general_reggroup))
              if (!gdbarch_register_reggroup_p (gdbarch, i, general_reggroup))
                continue;
                continue;
            }
            }
        }
        }
      else
      else
        {
        {
          if (i != regnum)
          if (i != regnum)
            continue;
            continue;
        }
        }
 
 
      /* If the register name is empty, it is undefined for this
      /* If the register name is empty, it is undefined for this
         processor, so don't display anything.  */
         processor, so don't display anything.  */
      if (gdbarch_register_name (gdbarch, i) == NULL
      if (gdbarch_register_name (gdbarch, i) == NULL
          || *(gdbarch_register_name (gdbarch, i)) == '\0')
          || *(gdbarch_register_name (gdbarch, i)) == '\0')
        continue;
        continue;
 
 
      fputs_filtered (gdbarch_register_name (gdbarch, i), file);
      fputs_filtered (gdbarch_register_name (gdbarch, i), file);
      print_spaces_filtered (15 - strlen (gdbarch_register_name
      print_spaces_filtered (15 - strlen (gdbarch_register_name
                                          (gdbarch, i)), file);
                                          (gdbarch, i)), file);
 
 
      /* Get the data in raw format.  */
      /* Get the data in raw format.  */
      if (! frame_register_read (frame, i, buffer))
      if (! frame_register_read (frame, i, buffer))
        {
        {
          fprintf_filtered (file, "*value not available*\n");
          fprintf_filtered (file, "*value not available*\n");
          continue;
          continue;
        }
        }
 
 
      /* If virtual format is floating, print it that way, and in raw
      /* If virtual format is floating, print it that way, and in raw
         hex.  */
         hex.  */
      if (TYPE_CODE (register_type (gdbarch, i)) == TYPE_CODE_FLT
      if (TYPE_CODE (register_type (gdbarch, i)) == TYPE_CODE_FLT
          || TYPE_CODE (register_type (gdbarch, i)) == TYPE_CODE_DECFLOAT)
          || TYPE_CODE (register_type (gdbarch, i)) == TYPE_CODE_DECFLOAT)
        {
        {
          int j;
          int j;
 
 
          val_print (register_type (gdbarch, i), buffer, 0, 0,
          val_print (register_type (gdbarch, i), buffer, 0, 0,
                     file, 0, 1, 0, Val_pretty_default);
                     file, 0, 1, 0, Val_pretty_default);
 
 
          fprintf_filtered (file, "\t(raw 0x");
          fprintf_filtered (file, "\t(raw 0x");
          for (j = 0; j < register_size (gdbarch, i); j++)
          for (j = 0; j < register_size (gdbarch, i); j++)
            {
            {
              int idx;
              int idx;
              if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
              if (gdbarch_byte_order (gdbarch) == BFD_ENDIAN_BIG)
                idx = j;
                idx = j;
              else
              else
                idx = register_size (gdbarch, i) - 1 - j;
                idx = register_size (gdbarch, i) - 1 - j;
              fprintf_filtered (file, "%02x", (unsigned char) buffer[idx]);
              fprintf_filtered (file, "%02x", (unsigned char) buffer[idx]);
            }
            }
          fprintf_filtered (file, ")");
          fprintf_filtered (file, ")");
        }
        }
      else
      else
        {
        {
          /* Print the register in hex.  */
          /* Print the register in hex.  */
          val_print (register_type (gdbarch, i), buffer, 0, 0,
          val_print (register_type (gdbarch, i), buffer, 0, 0,
                     file, 'x', 1, 0, Val_pretty_default);
                     file, 'x', 1, 0, Val_pretty_default);
          /* If not a vector register, print it also according to its
          /* If not a vector register, print it also according to its
             natural format.  */
             natural format.  */
          if (TYPE_VECTOR (register_type (gdbarch, i)) == 0)
          if (TYPE_VECTOR (register_type (gdbarch, i)) == 0)
            {
            {
              fprintf_filtered (file, "\t");
              fprintf_filtered (file, "\t");
              val_print (register_type (gdbarch, i), buffer, 0, 0,
              val_print (register_type (gdbarch, i), buffer, 0, 0,
                         file, 0, 1, 0, Val_pretty_default);
                         file, 0, 1, 0, Val_pretty_default);
            }
            }
        }
        }
 
 
      fprintf_filtered (file, "\n");
      fprintf_filtered (file, "\n");
    }
    }
}
}
 
 
void
void
registers_info (char *addr_exp, int fpregs)
registers_info (char *addr_exp, int fpregs)
{
{
  struct frame_info *frame;
  struct frame_info *frame;
  struct gdbarch *gdbarch;
  struct gdbarch *gdbarch;
  int regnum, numregs;
  int regnum, numregs;
  char *end;
  char *end;
 
 
  if (!target_has_registers)
  if (!target_has_registers)
    error (_("The program has no registers now."));
    error (_("The program has no registers now."));
  frame = get_selected_frame (NULL);
  frame = get_selected_frame (NULL);
  gdbarch = get_frame_arch (frame);
  gdbarch = get_frame_arch (frame);
 
 
  if (!addr_exp)
  if (!addr_exp)
    {
    {
      gdbarch_print_registers_info (gdbarch, gdb_stdout,
      gdbarch_print_registers_info (gdbarch, gdb_stdout,
                                    frame, -1, fpregs);
                                    frame, -1, fpregs);
      return;
      return;
    }
    }
 
 
  while (*addr_exp != '\0')
  while (*addr_exp != '\0')
    {
    {
      char *start;
      char *start;
      const char *end;
      const char *end;
 
 
      /* Keep skipping leading white space.  */
      /* Keep skipping leading white space.  */
      if (isspace ((*addr_exp)))
      if (isspace ((*addr_exp)))
        {
        {
          addr_exp++;
          addr_exp++;
          continue;
          continue;
        }
        }
 
 
      /* Discard any leading ``$''.  Check that there is something
      /* Discard any leading ``$''.  Check that there is something
         resembling a register following it.  */
         resembling a register following it.  */
      if (addr_exp[0] == '$')
      if (addr_exp[0] == '$')
        addr_exp++;
        addr_exp++;
      if (isspace ((*addr_exp)) || (*addr_exp) == '\0')
      if (isspace ((*addr_exp)) || (*addr_exp) == '\0')
        error (_("Missing register name"));
        error (_("Missing register name"));
 
 
      /* Find the start/end of this register name/num/group.  */
      /* Find the start/end of this register name/num/group.  */
      start = addr_exp;
      start = addr_exp;
      while ((*addr_exp) != '\0' && !isspace ((*addr_exp)))
      while ((*addr_exp) != '\0' && !isspace ((*addr_exp)))
        addr_exp++;
        addr_exp++;
      end = addr_exp;
      end = addr_exp;
 
 
      /* Figure out what we've found and display it.  */
      /* Figure out what we've found and display it.  */
 
 
      /* A register name?  */
      /* A register name?  */
      {
      {
        int regnum = frame_map_name_to_regnum (frame, start, end - start);
        int regnum = frame_map_name_to_regnum (frame, start, end - start);
        if (regnum >= 0)
        if (regnum >= 0)
          {
          {
            /* User registers lie completely outside of the range of
            /* User registers lie completely outside of the range of
               normal registers.  Catch them early so that the target
               normal registers.  Catch them early so that the target
               never sees them.  */
               never sees them.  */
            if (regnum >= gdbarch_num_regs (gdbarch)
            if (regnum >= gdbarch_num_regs (gdbarch)
                          + gdbarch_num_pseudo_regs (gdbarch))
                          + gdbarch_num_pseudo_regs (gdbarch))
              {
              {
                struct value *val = value_of_user_reg (regnum, frame);
                struct value *val = value_of_user_reg (regnum, frame);
 
 
                printf_filtered ("%s: ", start);
                printf_filtered ("%s: ", start);
                print_scalar_formatted (value_contents (val),
                print_scalar_formatted (value_contents (val),
                                        check_typedef (value_type (val)),
                                        check_typedef (value_type (val)),
                                        'x', 0, gdb_stdout);
                                        'x', 0, gdb_stdout);
                printf_filtered ("\n");
                printf_filtered ("\n");
              }
              }
            else
            else
              gdbarch_print_registers_info (gdbarch, gdb_stdout,
              gdbarch_print_registers_info (gdbarch, gdb_stdout,
                                            frame, regnum, fpregs);
                                            frame, regnum, fpregs);
            continue;
            continue;
          }
          }
      }
      }
 
 
      /* A register number?  (how portable is this one?).  */
      /* A register number?  (how portable is this one?).  */
      {
      {
        char *endptr;
        char *endptr;
        int regnum = strtol (start, &endptr, 0);
        int regnum = strtol (start, &endptr, 0);
        if (endptr == end
        if (endptr == end
            && regnum >= 0
            && regnum >= 0
            && regnum < gdbarch_num_regs (gdbarch)
            && regnum < gdbarch_num_regs (gdbarch)
                        + gdbarch_num_pseudo_regs (gdbarch))
                        + gdbarch_num_pseudo_regs (gdbarch))
          {
          {
            gdbarch_print_registers_info (gdbarch, gdb_stdout,
            gdbarch_print_registers_info (gdbarch, gdb_stdout,
                                          frame, regnum, fpregs);
                                          frame, regnum, fpregs);
            continue;
            continue;
          }
          }
      }
      }
 
 
      /* A register group?  */
      /* A register group?  */
      {
      {
        struct reggroup *group;
        struct reggroup *group;
        for (group = reggroup_next (gdbarch, NULL);
        for (group = reggroup_next (gdbarch, NULL);
             group != NULL;
             group != NULL;
             group = reggroup_next (gdbarch, group))
             group = reggroup_next (gdbarch, group))
          {
          {
            /* Don't bother with a length check.  Should the user
            /* Don't bother with a length check.  Should the user
               enter a short register group name, go with the first
               enter a short register group name, go with the first
               group that matches.  */
               group that matches.  */
            if (strncmp (start, reggroup_name (group), end - start) == 0)
            if (strncmp (start, reggroup_name (group), end - start) == 0)
              break;
              break;
          }
          }
        if (group != NULL)
        if (group != NULL)
          {
          {
            int regnum;
            int regnum;
            for (regnum = 0;
            for (regnum = 0;
                 regnum < gdbarch_num_regs (gdbarch)
                 regnum < gdbarch_num_regs (gdbarch)
                          + gdbarch_num_pseudo_regs (gdbarch);
                          + gdbarch_num_pseudo_regs (gdbarch);
                 regnum++)
                 regnum++)
              {
              {
                if (gdbarch_register_reggroup_p (gdbarch, regnum, group))
                if (gdbarch_register_reggroup_p (gdbarch, regnum, group))
                  gdbarch_print_registers_info (gdbarch,
                  gdbarch_print_registers_info (gdbarch,
                                                gdb_stdout, frame,
                                                gdb_stdout, frame,
                                                regnum, fpregs);
                                                regnum, fpregs);
              }
              }
            continue;
            continue;
          }
          }
      }
      }
 
 
      /* Nothing matched.  */
      /* Nothing matched.  */
      error (_("Invalid register `%.*s'"), (int) (end - start), start);
      error (_("Invalid register `%.*s'"), (int) (end - start), start);
    }
    }
}
}
 
 
void
void
all_registers_info (char *addr_exp, int from_tty)
all_registers_info (char *addr_exp, int from_tty)
{
{
  registers_info (addr_exp, 1);
  registers_info (addr_exp, 1);
}
}
 
 
static void
static void
nofp_registers_info (char *addr_exp, int from_tty)
nofp_registers_info (char *addr_exp, int from_tty)
{
{
  registers_info (addr_exp, 0);
  registers_info (addr_exp, 0);
}
}
 
 
static void
static void
print_vector_info (struct gdbarch *gdbarch, struct ui_file *file,
print_vector_info (struct gdbarch *gdbarch, struct ui_file *file,
                   struct frame_info *frame, const char *args)
                   struct frame_info *frame, const char *args)
{
{
  if (gdbarch_print_vector_info_p (gdbarch))
  if (gdbarch_print_vector_info_p (gdbarch))
    gdbarch_print_vector_info (gdbarch, file, frame, args);
    gdbarch_print_vector_info (gdbarch, file, frame, args);
  else
  else
    {
    {
      int regnum;
      int regnum;
      int printed_something = 0;
      int printed_something = 0;
 
 
      for (regnum = 0;
      for (regnum = 0;
           regnum < gdbarch_num_regs (gdbarch)
           regnum < gdbarch_num_regs (gdbarch)
                    + gdbarch_num_pseudo_regs (gdbarch);
                    + gdbarch_num_pseudo_regs (gdbarch);
           regnum++)
           regnum++)
        {
        {
          if (gdbarch_register_reggroup_p (gdbarch, regnum, vector_reggroup))
          if (gdbarch_register_reggroup_p (gdbarch, regnum, vector_reggroup))
            {
            {
              printed_something = 1;
              printed_something = 1;
              gdbarch_print_registers_info (gdbarch, file, frame, regnum, 1);
              gdbarch_print_registers_info (gdbarch, file, frame, regnum, 1);
            }
            }
        }
        }
      if (!printed_something)
      if (!printed_something)
        fprintf_filtered (file, "No vector information\n");
        fprintf_filtered (file, "No vector information\n");
    }
    }
}
}
 
 
static void
static void
vector_info (char *args, int from_tty)
vector_info (char *args, int from_tty)
{
{
  if (!target_has_registers)
  if (!target_has_registers)
    error (_("The program has no registers now."));
    error (_("The program has no registers now."));
 
 
  print_vector_info (current_gdbarch, gdb_stdout,
  print_vector_info (current_gdbarch, gdb_stdout,
                     get_selected_frame (NULL), args);
                     get_selected_frame (NULL), args);
}
}


 
 
/*
/*
 * TODO:
 * TODO:
 * Should save/restore the tty state since it might be that the
 * Should save/restore the tty state since it might be that the
 * program to be debugged was started on this tty and it wants
 * program to be debugged was started on this tty and it wants
 * the tty in some state other than what we want.  If it's running
 * the tty in some state other than what we want.  If it's running
 * on another terminal or without a terminal, then saving and
 * on another terminal or without a terminal, then saving and
 * restoring the tty state is a harmless no-op.
 * restoring the tty state is a harmless no-op.
 * This only needs to be done if we are attaching to a process.
 * This only needs to be done if we are attaching to a process.
 */
 */
 
 
/*
/*
   attach_command --
   attach_command --
   takes a program started up outside of gdb and ``attaches'' to it.
   takes a program started up outside of gdb and ``attaches'' to it.
   This stops it cold in its tracks and allows us to start debugging it.
   This stops it cold in its tracks and allows us to start debugging it.
   and wait for the trace-trap that results from attaching.  */
   and wait for the trace-trap that results from attaching.  */
 
 
void
void
attach_command (char *args, int from_tty)
attach_command (char *args, int from_tty)
{
{
  char *exec_file;
  char *exec_file;
  char *full_exec_path = NULL;
  char *full_exec_path = NULL;
 
 
  dont_repeat ();               /* Not for the faint of heart */
  dont_repeat ();               /* Not for the faint of heart */
 
 
  if (target_has_execution)
  if (target_has_execution)
    {
    {
      if (query ("A program is being debugged already.  Kill it? "))
      if (query ("A program is being debugged already.  Kill it? "))
        target_kill ();
        target_kill ();
      else
      else
        error (_("Not killed."));
        error (_("Not killed."));
    }
    }
 
 
  /* Clean up any leftovers from other runs.  Some other things from
  /* Clean up any leftovers from other runs.  Some other things from
     this function should probably be moved into target_pre_inferior.  */
     this function should probably be moved into target_pre_inferior.  */
  target_pre_inferior (from_tty);
  target_pre_inferior (from_tty);
 
 
  /* Clear out solib state. Otherwise the solib state of the previous
  /* Clear out solib state. Otherwise the solib state of the previous
     inferior might have survived and is entirely wrong for the new
     inferior might have survived and is entirely wrong for the new
     target.  This has been observed on GNU/Linux using glibc 2.3. How
     target.  This has been observed on GNU/Linux using glibc 2.3. How
     to reproduce:
     to reproduce:
 
 
     bash$ ./foo&
     bash$ ./foo&
     [1] 4711
     [1] 4711
     bash$ ./foo&
     bash$ ./foo&
     [1] 4712
     [1] 4712
     bash$ gdb ./foo
     bash$ gdb ./foo
     [...]
     [...]
     (gdb) attach 4711
     (gdb) attach 4711
     (gdb) detach
     (gdb) detach
     (gdb) attach 4712
     (gdb) attach 4712
     Cannot access memory at address 0xdeadbeef
     Cannot access memory at address 0xdeadbeef
  */
  */
  clear_solib ();
  clear_solib ();
 
 
  target_attach (args, from_tty);
  target_attach (args, from_tty);
 
 
  /* Set up the "saved terminal modes" of the inferior
  /* Set up the "saved terminal modes" of the inferior
     based on what modes we are starting it with.  */
     based on what modes we are starting it with.  */
  target_terminal_init ();
  target_terminal_init ();
 
 
  /* Set up execution context to know that we should return from
  /* Set up execution context to know that we should return from
     wait_for_inferior as soon as the target reports a stop.  */
     wait_for_inferior as soon as the target reports a stop.  */
  init_wait_for_inferior ();
  init_wait_for_inferior ();
  clear_proceed_status ();
  clear_proceed_status ();
 
 
  /* No traps are generated when attaching to inferior under Mach 3
  /* No traps are generated when attaching to inferior under Mach 3
     or GNU hurd.  */
     or GNU hurd.  */
#ifndef ATTACH_NO_WAIT
#ifndef ATTACH_NO_WAIT
  /* Careful here. See comments in inferior.h.  Basically some OSes
  /* Careful here. See comments in inferior.h.  Basically some OSes
     don't ignore SIGSTOPs on continue requests anymore.  We need a
     don't ignore SIGSTOPs on continue requests anymore.  We need a
     way for handle_inferior_event to reset the stop_signal variable
     way for handle_inferior_event to reset the stop_signal variable
     after an attach, and this is what STOP_QUIETLY_NO_SIGSTOP is for.  */
     after an attach, and this is what STOP_QUIETLY_NO_SIGSTOP is for.  */
  stop_soon = STOP_QUIETLY_NO_SIGSTOP;
  stop_soon = STOP_QUIETLY_NO_SIGSTOP;
  wait_for_inferior (0);
  wait_for_inferior (0);
  stop_soon = NO_STOP_QUIETLY;
  stop_soon = NO_STOP_QUIETLY;
#endif
#endif
 
 
  /*
  /*
   * If no exec file is yet known, try to determine it from the
   * If no exec file is yet known, try to determine it from the
   * process itself.
   * process itself.
   */
   */
  exec_file = (char *) get_exec_file (0);
  exec_file = (char *) get_exec_file (0);
  if (!exec_file)
  if (!exec_file)
    {
    {
      exec_file = target_pid_to_exec_file (PIDGET (inferior_ptid));
      exec_file = target_pid_to_exec_file (PIDGET (inferior_ptid));
      if (exec_file)
      if (exec_file)
        {
        {
          /* It's possible we don't have a full path, but rather just a
          /* It's possible we don't have a full path, but rather just a
             filename.  Some targets, such as HP-UX, don't provide the
             filename.  Some targets, such as HP-UX, don't provide the
             full path, sigh.
             full path, sigh.
 
 
             Attempt to qualify the filename against the source path.
             Attempt to qualify the filename against the source path.
             (If that fails, we'll just fall back on the original
             (If that fails, we'll just fall back on the original
             filename.  Not much more we can do...)
             filename.  Not much more we can do...)
           */
           */
          if (!source_full_path_of (exec_file, &full_exec_path))
          if (!source_full_path_of (exec_file, &full_exec_path))
            full_exec_path = savestring (exec_file, strlen (exec_file));
            full_exec_path = savestring (exec_file, strlen (exec_file));
 
 
          exec_file_attach (full_exec_path, from_tty);
          exec_file_attach (full_exec_path, from_tty);
          symbol_file_add_main (full_exec_path, from_tty);
          symbol_file_add_main (full_exec_path, from_tty);
        }
        }
    }
    }
  else
  else
    {
    {
      reopen_exec_file ();
      reopen_exec_file ();
      reread_symbols ();
      reread_symbols ();
    }
    }
 
 
  /* Take any necessary post-attaching actions for this platform.
  /* Take any necessary post-attaching actions for this platform.
   */
   */
  target_post_attach (PIDGET (inferior_ptid));
  target_post_attach (PIDGET (inferior_ptid));
 
 
  post_create_inferior (&current_target, from_tty);
  post_create_inferior (&current_target, from_tty);
 
 
  /* Install inferior's terminal modes.  */
  /* Install inferior's terminal modes.  */
  target_terminal_inferior ();
  target_terminal_inferior ();
 
 
  normal_stop ();
  normal_stop ();
 
 
  if (deprecated_attach_hook)
  if (deprecated_attach_hook)
    deprecated_attach_hook ();
    deprecated_attach_hook ();
}
}
 
 
/*
/*
 * detach_command --
 * detach_command --
 * takes a program previously attached to and detaches it.
 * takes a program previously attached to and detaches it.
 * The program resumes execution and will no longer stop
 * The program resumes execution and will no longer stop
 * on signals, etc.  We better not have left any breakpoints
 * on signals, etc.  We better not have left any breakpoints
 * in the program or it'll die when it hits one.  For this
 * in the program or it'll die when it hits one.  For this
 * to work, it may be necessary for the process to have been
 * to work, it may be necessary for the process to have been
 * previously attached.  It *might* work if the program was
 * previously attached.  It *might* work if the program was
 * started via the normal ptrace (PTRACE_TRACEME).
 * started via the normal ptrace (PTRACE_TRACEME).
 */
 */
 
 
static void
static void
detach_command (char *args, int from_tty)
detach_command (char *args, int from_tty)
{
{
  dont_repeat ();               /* Not for the faint of heart.  */
  dont_repeat ();               /* Not for the faint of heart.  */
  target_detach (args, from_tty);
  target_detach (args, from_tty);
  no_shared_libraries (NULL, from_tty);
  no_shared_libraries (NULL, from_tty);
  if (deprecated_detach_hook)
  if (deprecated_detach_hook)
    deprecated_detach_hook ();
    deprecated_detach_hook ();
}
}
 
 
/* Disconnect from the current target without resuming it (leaving it
/* Disconnect from the current target without resuming it (leaving it
   waiting for a debugger).
   waiting for a debugger).
 
 
   We'd better not have left any breakpoints in the program or the
   We'd better not have left any breakpoints in the program or the
   next debugger will get confused.  Currently only supported for some
   next debugger will get confused.  Currently only supported for some
   remote targets, since the normal attach mechanisms don't work on
   remote targets, since the normal attach mechanisms don't work on
   stopped processes on some native platforms (e.g. GNU/Linux).  */
   stopped processes on some native platforms (e.g. GNU/Linux).  */
 
 
static void
static void
disconnect_command (char *args, int from_tty)
disconnect_command (char *args, int from_tty)
{
{
  dont_repeat ();               /* Not for the faint of heart */
  dont_repeat ();               /* Not for the faint of heart */
  target_disconnect (args, from_tty);
  target_disconnect (args, from_tty);
  no_shared_libraries (NULL, from_tty);
  no_shared_libraries (NULL, from_tty);
  if (deprecated_detach_hook)
  if (deprecated_detach_hook)
    deprecated_detach_hook ();
    deprecated_detach_hook ();
}
}
 
 
/* Stop the execution of the target while running in async mode, in
/* Stop the execution of the target while running in async mode, in
   the backgound. */
   the backgound. */
void
void
interrupt_target_command (char *args, int from_tty)
interrupt_target_command (char *args, int from_tty)
{
{
  if (target_can_async_p ())
  if (target_can_async_p ())
    {
    {
      dont_repeat ();           /* Not for the faint of heart */
      dont_repeat ();           /* Not for the faint of heart */
      target_stop ();
      target_stop ();
    }
    }
}
}
 
 
static void
static void
print_float_info (struct gdbarch *gdbarch, struct ui_file *file,
print_float_info (struct gdbarch *gdbarch, struct ui_file *file,
                  struct frame_info *frame, const char *args)
                  struct frame_info *frame, const char *args)
{
{
  if (gdbarch_print_float_info_p (gdbarch))
  if (gdbarch_print_float_info_p (gdbarch))
    gdbarch_print_float_info (gdbarch, file, frame, args);
    gdbarch_print_float_info (gdbarch, file, frame, args);
  else
  else
    {
    {
      int regnum;
      int regnum;
      int printed_something = 0;
      int printed_something = 0;
 
 
      for (regnum = 0;
      for (regnum = 0;
           regnum < gdbarch_num_regs (gdbarch)
           regnum < gdbarch_num_regs (gdbarch)
                    + gdbarch_num_pseudo_regs (gdbarch);
                    + gdbarch_num_pseudo_regs (gdbarch);
           regnum++)
           regnum++)
        {
        {
          if (gdbarch_register_reggroup_p (gdbarch, regnum, float_reggroup))
          if (gdbarch_register_reggroup_p (gdbarch, regnum, float_reggroup))
            {
            {
              printed_something = 1;
              printed_something = 1;
              gdbarch_print_registers_info (gdbarch, file, frame, regnum, 1);
              gdbarch_print_registers_info (gdbarch, file, frame, regnum, 1);
            }
            }
        }
        }
      if (!printed_something)
      if (!printed_something)
        fprintf_filtered (file, "\
        fprintf_filtered (file, "\
No floating-point info available for this processor.\n");
No floating-point info available for this processor.\n");
    }
    }
}
}
 
 
static void
static void
float_info (char *args, int from_tty)
float_info (char *args, int from_tty)
{
{
  if (!target_has_registers)
  if (!target_has_registers)
    error (_("The program has no registers now."));
    error (_("The program has no registers now."));
 
 
  print_float_info (current_gdbarch, gdb_stdout,
  print_float_info (current_gdbarch, gdb_stdout,
                    get_selected_frame (NULL), args);
                    get_selected_frame (NULL), args);
}
}


static void
static void
unset_command (char *args, int from_tty)
unset_command (char *args, int from_tty)
{
{
  printf_filtered (_("\
  printf_filtered (_("\
\"unset\" must be followed by the name of an unset subcommand.\n"));
\"unset\" must be followed by the name of an unset subcommand.\n"));
  help_list (unsetlist, "unset ", -1, gdb_stdout);
  help_list (unsetlist, "unset ", -1, gdb_stdout);
}
}
 
 
void
void
_initialize_infcmd (void)
_initialize_infcmd (void)
{
{
  struct cmd_list_element *c = NULL;
  struct cmd_list_element *c = NULL;
 
 
  /* add the filename of the terminal connected to inferior I/O */
  /* add the filename of the terminal connected to inferior I/O */
  add_setshow_filename_cmd ("inferior-tty", class_run,
  add_setshow_filename_cmd ("inferior-tty", class_run,
                            &inferior_io_terminal, _("\
                            &inferior_io_terminal, _("\
Set terminal for future runs of program being debugged."), _("\
Set terminal for future runs of program being debugged."), _("\
Show terminal for future runs of program being debugged."), _("\
Show terminal for future runs of program being debugged."), _("\
Usage: set inferior-tty /dev/pts/1"), NULL, NULL, &setlist, &showlist);
Usage: set inferior-tty /dev/pts/1"), NULL, NULL, &setlist, &showlist);
  add_com_alias ("tty", "set inferior-tty", class_alias, 0);
  add_com_alias ("tty", "set inferior-tty", class_alias, 0);
 
 
  add_setshow_optional_filename_cmd ("args", class_run,
  add_setshow_optional_filename_cmd ("args", class_run,
                                     &inferior_args, _("\
                                     &inferior_args, _("\
Set argument list to give program being debugged when it is started."), _("\
Set argument list to give program being debugged when it is started."), _("\
Show argument list to give program being debugged when it is started."), _("\
Show argument list to give program being debugged when it is started."), _("\
Follow this command with any number of args, to be passed to the program."),
Follow this command with any number of args, to be passed to the program."),
                                     notice_args_set,
                                     notice_args_set,
                                     notice_args_read,
                                     notice_args_read,
                                     &setlist, &showlist);
                                     &setlist, &showlist);
 
 
  c = add_cmd ("environment", no_class, environment_info, _("\
  c = add_cmd ("environment", no_class, environment_info, _("\
The environment to give the program, or one variable's value.\n\
The environment to give the program, or one variable's value.\n\
With an argument VAR, prints the value of environment variable VAR to\n\
With an argument VAR, prints the value of environment variable VAR to\n\
give the program being debugged.  With no arguments, prints the entire\n\
give the program being debugged.  With no arguments, prints the entire\n\
environment to be given to the program."), &showlist);
environment to be given to the program."), &showlist);
  set_cmd_completer (c, noop_completer);
  set_cmd_completer (c, noop_completer);
 
 
  add_prefix_cmd ("unset", no_class, unset_command,
  add_prefix_cmd ("unset", no_class, unset_command,
                  _("Complement to certain \"set\" commands."),
                  _("Complement to certain \"set\" commands."),
                  &unsetlist, "unset ", 0, &cmdlist);
                  &unsetlist, "unset ", 0, &cmdlist);
 
 
  c = add_cmd ("environment", class_run, unset_environment_command, _("\
  c = add_cmd ("environment", class_run, unset_environment_command, _("\
Cancel environment variable VAR for the program.\n\
Cancel environment variable VAR for the program.\n\
This does not affect the program until the next \"run\" command."),
This does not affect the program until the next \"run\" command."),
               &unsetlist);
               &unsetlist);
  set_cmd_completer (c, noop_completer);
  set_cmd_completer (c, noop_completer);
 
 
  c = add_cmd ("environment", class_run, set_environment_command, _("\
  c = add_cmd ("environment", class_run, set_environment_command, _("\
Set environment variable value to give the program.\n\
Set environment variable value to give the program.\n\
Arguments are VAR VALUE where VAR is variable name and VALUE is value.\n\
Arguments are VAR VALUE where VAR is variable name and VALUE is value.\n\
VALUES of environment variables are uninterpreted strings.\n\
VALUES of environment variables are uninterpreted strings.\n\
This does not affect the program until the next \"run\" command."),
This does not affect the program until the next \"run\" command."),
               &setlist);
               &setlist);
  set_cmd_completer (c, noop_completer);
  set_cmd_completer (c, noop_completer);
 
 
  c = add_com ("path", class_files, path_command, _("\
  c = add_com ("path", class_files, path_command, _("\
Add directory DIR(s) to beginning of search path for object files.\n\
Add directory DIR(s) to beginning of search path for object files.\n\
$cwd in the path means the current working directory.\n\
$cwd in the path means the current working directory.\n\
This path is equivalent to the $PATH shell variable.  It is a list of\n\
This path is equivalent to the $PATH shell variable.  It is a list of\n\
directories, separated by colons.  These directories are searched to find\n\
directories, separated by colons.  These directories are searched to find\n\
fully linked executable files and separately compiled object files as needed."));
fully linked executable files and separately compiled object files as needed."));
  set_cmd_completer (c, filename_completer);
  set_cmd_completer (c, filename_completer);
 
 
  c = add_cmd ("paths", no_class, path_info, _("\
  c = add_cmd ("paths", no_class, path_info, _("\
Current search path for finding object files.\n\
Current search path for finding object files.\n\
$cwd in the path means the current working directory.\n\
$cwd in the path means the current working directory.\n\
This path is equivalent to the $PATH shell variable.  It is a list of\n\
This path is equivalent to the $PATH shell variable.  It is a list of\n\
directories, separated by colons.  These directories are searched to find\n\
directories, separated by colons.  These directories are searched to find\n\
fully linked executable files and separately compiled object files as needed."),
fully linked executable files and separately compiled object files as needed."),
               &showlist);
               &showlist);
  set_cmd_completer (c, noop_completer);
  set_cmd_completer (c, noop_completer);
 
 
  add_com ("attach", class_run, attach_command, _("\
  add_com ("attach", class_run, attach_command, _("\
Attach to a process or file outside of GDB.\n\
Attach to a process or file outside of GDB.\n\
This command attaches to another target, of the same type as your last\n\
This command attaches to another target, of the same type as your last\n\
\"target\" command (\"info files\" will show your target stack).\n\
\"target\" command (\"info files\" will show your target stack).\n\
The command may take as argument a process id or a device file.\n\
The command may take as argument a process id or a device file.\n\
For a process id, you must have permission to send the process a signal,\n\
For a process id, you must have permission to send the process a signal,\n\
and it must have the same effective uid as the debugger.\n\
and it must have the same effective uid as the debugger.\n\
When using \"attach\" with a process id, the debugger finds the\n\
When using \"attach\" with a process id, the debugger finds the\n\
program running in the process, looking first in the current working\n\
program running in the process, looking first in the current working\n\
directory, or (if not found there) using the source file search path\n\
directory, or (if not found there) using the source file search path\n\
(see the \"directory\" command).  You can also use the \"file\" command\n\
(see the \"directory\" command).  You can also use the \"file\" command\n\
to specify the program, and to load its symbol table."));
to specify the program, and to load its symbol table."));
 
 
  add_prefix_cmd ("detach", class_run, detach_command, _("\
  add_prefix_cmd ("detach", class_run, detach_command, _("\
Detach a process or file previously attached.\n\
Detach a process or file previously attached.\n\
If a process, it is no longer traced, and it continues its execution.  If\n\
If a process, it is no longer traced, and it continues its execution.  If\n\
you were debugging a file, the file is closed and gdb no longer accesses it."),
you were debugging a file, the file is closed and gdb no longer accesses it."),
                  &detachlist, "detach ", 0, &cmdlist);
                  &detachlist, "detach ", 0, &cmdlist);
 
 
  add_com ("disconnect", class_run, disconnect_command, _("\
  add_com ("disconnect", class_run, disconnect_command, _("\
Disconnect from a target.\n\
Disconnect from a target.\n\
The target will wait for another debugger to connect.  Not available for\n\
The target will wait for another debugger to connect.  Not available for\n\
all targets."));
all targets."));
 
 
  add_com ("signal", class_run, signal_command, _("\
  add_com ("signal", class_run, signal_command, _("\
Continue program giving it signal specified by the argument.\n\
Continue program giving it signal specified by the argument.\n\
An argument of \"0\" means continue program without giving it a signal."));
An argument of \"0\" means continue program without giving it a signal."));
 
 
  add_com ("stepi", class_run, stepi_command, _("\
  add_com ("stepi", class_run, stepi_command, _("\
Step one instruction exactly.\n\
Step one instruction exactly.\n\
Argument N means do this N times (or till program stops for another reason)."));
Argument N means do this N times (or till program stops for another reason)."));
  add_com_alias ("si", "stepi", class_alias, 0);
  add_com_alias ("si", "stepi", class_alias, 0);
 
 
  add_com ("nexti", class_run, nexti_command, _("\
  add_com ("nexti", class_run, nexti_command, _("\
Step one instruction, but proceed through subroutine calls.\n\
Step one instruction, but proceed through subroutine calls.\n\
Argument N means do this N times (or till program stops for another reason)."));
Argument N means do this N times (or till program stops for another reason)."));
  add_com_alias ("ni", "nexti", class_alias, 0);
  add_com_alias ("ni", "nexti", class_alias, 0);
 
 
  add_com ("finish", class_run, finish_command, _("\
  add_com ("finish", class_run, finish_command, _("\
Execute until selected stack frame returns.\n\
Execute until selected stack frame returns.\n\
Upon return, the value returned is printed and put in the value history."));
Upon return, the value returned is printed and put in the value history."));
 
 
  add_com ("next", class_run, next_command, _("\
  add_com ("next", class_run, next_command, _("\
Step program, proceeding through subroutine calls.\n\
Step program, proceeding through subroutine calls.\n\
Like the \"step\" command as long as subroutine calls do not happen;\n\
Like the \"step\" command as long as subroutine calls do not happen;\n\
when they do, the call is treated as one instruction.\n\
when they do, the call is treated as one instruction.\n\
Argument N means do this N times (or till program stops for another reason)."));
Argument N means do this N times (or till program stops for another reason)."));
  add_com_alias ("n", "next", class_run, 1);
  add_com_alias ("n", "next", class_run, 1);
  if (xdb_commands)
  if (xdb_commands)
    add_com_alias ("S", "next", class_run, 1);
    add_com_alias ("S", "next", class_run, 1);
 
 
  add_com ("step", class_run, step_command, _("\
  add_com ("step", class_run, step_command, _("\
Step program until it reaches a different source line.\n\
Step program until it reaches a different source line.\n\
Argument N means do this N times (or till program stops for another reason)."));
Argument N means do this N times (or till program stops for another reason)."));
  add_com_alias ("s", "step", class_run, 1);
  add_com_alias ("s", "step", class_run, 1);
 
 
  c = add_com ("until", class_run, until_command, _("\
  c = add_com ("until", class_run, until_command, _("\
Execute until the program reaches a source line greater than the current\n\
Execute until the program reaches a source line greater than the current\n\
or a specified location (same args as break command) within the current frame."));
or a specified location (same args as break command) within the current frame."));
  set_cmd_completer (c, location_completer);
  set_cmd_completer (c, location_completer);
  add_com_alias ("u", "until", class_run, 1);
  add_com_alias ("u", "until", class_run, 1);
 
 
  c = add_com ("advance", class_run, advance_command, _("\
  c = add_com ("advance", class_run, advance_command, _("\
Continue the program up to the given location (same form as args for break command).\n\
Continue the program up to the given location (same form as args for break command).\n\
Execution will also stop upon exit from the current stack frame."));
Execution will also stop upon exit from the current stack frame."));
  set_cmd_completer (c, location_completer);
  set_cmd_completer (c, location_completer);
 
 
  c = add_com ("jump", class_run, jump_command, _("\
  c = add_com ("jump", class_run, jump_command, _("\
Continue program being debugged at specified line or address.\n\
Continue program being debugged at specified line or address.\n\
Give as argument either LINENUM or *ADDR, where ADDR is an expression\n\
Give as argument either LINENUM or *ADDR, where ADDR is an expression\n\
for an address to start at."));
for an address to start at."));
  set_cmd_completer (c, location_completer);
  set_cmd_completer (c, location_completer);
 
 
  if (xdb_commands)
  if (xdb_commands)
    {
    {
      c = add_com ("go", class_run, go_command, _("\
      c = add_com ("go", class_run, go_command, _("\
Usage: go <location>\n\
Usage: go <location>\n\
Continue program being debugged, stopping at specified line or \n\
Continue program being debugged, stopping at specified line or \n\
address.\n\
address.\n\
Give as argument either LINENUM or *ADDR, where ADDR is an \n\
Give as argument either LINENUM or *ADDR, where ADDR is an \n\
expression for an address to start at.\n\
expression for an address to start at.\n\
This command is a combination of tbreak and jump."));
This command is a combination of tbreak and jump."));
      set_cmd_completer (c, location_completer);
      set_cmd_completer (c, location_completer);
    }
    }
 
 
  if (xdb_commands)
  if (xdb_commands)
    add_com_alias ("g", "go", class_run, 1);
    add_com_alias ("g", "go", class_run, 1);
 
 
  add_com ("continue", class_run, continue_command, _("\
  add_com ("continue", class_run, continue_command, _("\
Continue program being debugged, after signal or breakpoint.\n\
Continue program being debugged, after signal or breakpoint.\n\
If proceeding from breakpoint, a number N may be used as an argument,\n\
If proceeding from breakpoint, a number N may be used as an argument,\n\
which means to set the ignore count of that breakpoint to N - 1 (so that\n\
which means to set the ignore count of that breakpoint to N - 1 (so that\n\
the breakpoint won't break until the Nth time it is reached)."));
the breakpoint won't break until the Nth time it is reached)."));
  add_com_alias ("c", "cont", class_run, 1);
  add_com_alias ("c", "cont", class_run, 1);
  add_com_alias ("fg", "cont", class_run, 1);
  add_com_alias ("fg", "cont", class_run, 1);
 
 
  c = add_com ("run", class_run, run_command, _("\
  c = add_com ("run", class_run, run_command, _("\
Start debugged program.  You may specify arguments to give it.\n\
Start debugged program.  You may specify arguments to give it.\n\
Args may include \"*\", or \"[...]\"; they are expanded using \"sh\".\n\
Args may include \"*\", or \"[...]\"; they are expanded using \"sh\".\n\
Input and output redirection with \">\", \"<\", or \">>\" are also allowed.\n\n\
Input and output redirection with \">\", \"<\", or \">>\" are also allowed.\n\n\
With no arguments, uses arguments last specified (with \"run\" or \"set args\").\n\
With no arguments, uses arguments last specified (with \"run\" or \"set args\").\n\
To cancel previous arguments and run with no arguments,\n\
To cancel previous arguments and run with no arguments,\n\
use \"set args\" without arguments."));
use \"set args\" without arguments."));
  set_cmd_completer (c, filename_completer);
  set_cmd_completer (c, filename_completer);
  add_com_alias ("r", "run", class_run, 1);
  add_com_alias ("r", "run", class_run, 1);
  if (xdb_commands)
  if (xdb_commands)
    add_com ("R", class_run, run_no_args_command,
    add_com ("R", class_run, run_no_args_command,
             _("Start debugged program with no arguments."));
             _("Start debugged program with no arguments."));
 
 
  c = add_com ("start", class_run, start_command, _("\
  c = add_com ("start", class_run, start_command, _("\
Run the debugged program until the beginning of the main procedure.\n\
Run the debugged program until the beginning of the main procedure.\n\
You may specify arguments to give to your program, just as with the\n\
You may specify arguments to give to your program, just as with the\n\
\"run\" command."));
\"run\" command."));
  set_cmd_completer (c, filename_completer);
  set_cmd_completer (c, filename_completer);
 
 
  add_com ("interrupt", class_run, interrupt_target_command,
  add_com ("interrupt", class_run, interrupt_target_command,
           _("Interrupt the execution of the debugged program."));
           _("Interrupt the execution of the debugged program."));
 
 
  add_info ("registers", nofp_registers_info, _("\
  add_info ("registers", nofp_registers_info, _("\
List of integer registers and their contents, for selected stack frame.\n\
List of integer registers and their contents, for selected stack frame.\n\
Register name as argument means describe only that register."));
Register name as argument means describe only that register."));
  add_info_alias ("r", "registers", 1);
  add_info_alias ("r", "registers", 1);
 
 
  if (xdb_commands)
  if (xdb_commands)
    add_com ("lr", class_info, nofp_registers_info, _("\
    add_com ("lr", class_info, nofp_registers_info, _("\
List of integer registers and their contents, for selected stack frame.\n\
List of integer registers and their contents, for selected stack frame.\n\
Register name as argument means describe only that register."));
Register name as argument means describe only that register."));
  add_info ("all-registers", all_registers_info, _("\
  add_info ("all-registers", all_registers_info, _("\
List of all registers and their contents, for selected stack frame.\n\
List of all registers and their contents, for selected stack frame.\n\
Register name as argument means describe only that register."));
Register name as argument means describe only that register."));
 
 
  add_info ("program", program_info,
  add_info ("program", program_info,
            _("Execution status of the program."));
            _("Execution status of the program."));
 
 
  add_info ("float", float_info,
  add_info ("float", float_info,
            _("Print the status of the floating point unit\n"));
            _("Print the status of the floating point unit\n"));
 
 
  add_info ("vector", vector_info,
  add_info ("vector", vector_info,
            _("Print the status of the vector unit\n"));
            _("Print the status of the vector unit\n"));
 
 
  inferior_environ = make_environ ();
  inferior_environ = make_environ ();
  init_environ (inferior_environ);
  init_environ (inferior_environ);
}
}
 
 

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